﻿FN Clarivate Analytics Web of Science
VR 1.0
PT J
AU Gaegane, L
AF Gaegane, Lesego
TI Incorporating Sustainability into Development Plans in Selected African
   Cities
SO SUSTAINABILITY
LA English
DT Article
DE environmental sustainability; climate-resilient; development plans;
   mainstreaming; sustainable cities; resilient cities; sustainable
   development
ID CLIMATE-CHANGE ADAPTATION; RESILIENCE; BARRIERS
AB African cities face critical challenges in delivering essential services due to limited financial resources and vulnerabilities to climate change impacts, such as floods, and water and energy insecurity. Many cities lack adequate stormwater drainage infrastructure and capacity, hindering their ability to implement environmental sustainability projects. Reports show that two-thirds of sub-Saharan African cities are "at extreme risk" from climate change, threatening local infrastructure and development. Climate change mitigation and adaptation require integration across all sectors, as development without environmental considerations can exacerbate vulnerabilities. This study evaluated how selected African cities have incorporated environmental sustainability into their development plans, using the Organisation for Economic Co-operation and Development (OECD) mainstreaming framework for assessment. The research employed a qualitative approach through thematic content analysis, examining both successes and challenges in mainstreaming environmental sustainability. Findings indicate varying success levels, with some cities excelling in integrating certain environmental sustainability dimensions, while others face significant barriers. The study identifies key enablers and impediments to the effective incorporation of environmental sustainability into urban development, concluding that, while some aspects of environmental sustainability mainstreaming are well addressed, others remain inadequately integrated. These findings underscore the need for a more systematic and comprehensive approach to embedding environmental sustainability within urban development policies and practices across African cities.
C1 [Gaegane, Lesego] Univ Witwatersrand, Wits Business Sch, ZA-2000 Johannesburg, South Africa.
C3 University of Witwatersrand
RP Gaegane, L (corresponding author), Univ Witwatersrand, Wits Business Sch, ZA-2000 Johannesburg, South Africa.
EM 769580@students.wits.ac.za
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NR 83
TC 0
Z9 0
U1 2
U2 2
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2024
VL 16
IS 23
AR 10493
DI 10.3390/su162310493
PG 22
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA P4R0C
UT WOS:001377786300001
OA gold
DA 2025-04-22
ER

PT J
AU Li, SA
   Peng, L
   Wang, XH
   Huang, KX
   Tang, JQ
AF Li, Sainan
   Peng, Li
   Wang, Xiaohui
   Huang, Kexin
   Tang, Junqing
TI Do geohazards inhibit urban expansion at the regional scale? Evidence
   from a counterfactual analysis in Southwest China
SO CITIES
LA English
DT Article
DE Urban expansion; Geohazards; Cloud model; ESRM; Urban resilience;
   COVID-19
AB The inhibiting effect of geohazards on urban expansion has been demonstrated at the site or local scale. At the regional scale, the more ambiguous relationship between urban development and geohazards is attributed to the complexity and adaptability of cities. Therefore, this study focussed on Southwest China because it has the largest number and greatest frequency of geohazards. The cloud model was applied to evaluate the geohazard susceptibility of the research area. Next, a novel econometric model-the endogenous switching regression model (ESRM)-was introduced to conduct a counterfactual analysis. The empirical results passed the robustness test and showed that the proportion of high-susceptibility areas in the study area was 30.4 %. Importantly, the change from low susceptibility to high susceptibility will reduce the expansion intensity by 1.62 %. In contrast, the expansion intensity will increase by 25.9 % if a high-susceptibility area turns into a low-susceptibility area. Nevertheless, geohazards still inhibit urban expansion at the regional scale. Finally, based on the concept of urban resilience, proposals are made to minimize the risk of hazard exposure through various adaptive paths in the post-pandemic era, thereby creating a resilient city that is better suited for urban development.
C1 [Li, Sainan; Peng, Li; Wang, Xiaohui; Huang, Kexin] Sichuan Normal Univ, Coll Geog & Resources, Chengdu 610101, Peoples R China.
   [Li, Sainan; Peng, Li; Wang, Xiaohui; Huang, Kexin] Sichuan Normal Univ, Key Lab Land Resources Evaluat & Monitoring Southw, Minist Educ, Chengdu 610101, Peoples R China.
   [Tang, Junqing] Peking Univ, Sch Urban Planning & Design, Shenzhen Grad Sch, Shenzhen 518000, Peoples R China.
C3 Sichuan Normal University; Sichuan Normal University; Peking University
RP Peng, L (corresponding author), Sichuan Normal Univ, Coll Geog & Resources, Chengdu 610101, Peoples R China.
EM pengli@imde.ac.cn
RI Huang, Kexin/IGN-8658-2023; Peng, Lijian/MVX-5368-2025
FU Sichuan Science and Technology Program [2022JDJQ0015]; National Natural
   Science Foundation of China [42071222]; Tianfu Qingcheng Program
   [ZX20220027]
FX This work is funded by the Sichuan Science and Technology Program
   (2022JDJQ0015) , the National Natural Science Foundation of China
   (42071222) , and the Tianfu Qingcheng Program (ZX20220027) .
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NR 66
TC 8
Z9 8
U1 5
U2 24
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD NOV
PY 2023
VL 142
AR 104558
DI 10.1016/j.cities.2023.104558
EA SEP 2023
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA T7YJ2
UT WOS:001080098600001
DA 2025-04-22
ER

PT J
AU Titz, A
   Chiotha, SS
AF Titz, Alexandra
   Chiotha, Sosten S.
TI Pathways for Sustainable and Inclusive Cities in Southern and Eastern
   Africa through Urban Green Infrastructure?
SO SUSTAINABILITY
LA English
DT Review
DE urbanisation; sub-Saharan African cities; sustainable cities; inclusive
   cities; resilient cities; livelihood security; food security; urban
   green infrastructure; urban agriculture; right to the city
ID SUB-SAHARAN AFRICA; DAR-ES-SALAAM; CLIMATE-CHANGE; ECOSYSTEM SERVICES;
   PERIURBAN AGRICULTURE; NATURAL-RESOURCES; PUBLIC-HEALTH; FOOD;
   URBANIZATION; RESILIENCE
AB Cities in sub-Saharan Africa are currently confronted with a multitude, and hitherto unexperienced, magnitude of transformative phenomena such as rising inequality, exclusion, poverty and increased residency in informal settlements. These stressors are posing challenges to cities in terms of housing, infrastructure and provision of basic services as well as climate change adaptation. Despite the high dynamics and novel characteristics of city transformation, this urban transition seems to take place rather quietly' and has, so far, obviously hardly been understood or appreciated by researchers and governments. Subsequently, the multifaceted and extremely challenging problems associated with the process of urbanisation cannot be adequately addressed. Green infrastructure (GI) is currently emerging as a concept for cost-effective urban sustainability and livelihood security. Preservation and provision of accessible urban green spaces is increasingly recognised as an essential part of the liveability of cities. Extensive literature review revealed that the systematic integration of GI concepts in urban planning is seen by an increasing number of researchers as an essential approach to tackle major current and future challenges. Based on the literature review, we suggest that broadening the concept of urban GI by linking it to governance and rights-based conceptualisations will have the potential to unlock more resourceful paths for sustainable, green, and inclusive urban development of cities in Southern and Eastern Africa.
C1 [Titz, Alexandra] Friedrich Alexander Univ Erlangen Nurnberg FAU, Dept Geog & Earth Sci, Inst Geog, D-91058 Erlangen, Germany.
   [Chiotha, Sosten S.] LEAD Southern & Eastern Africa, Fishing Flies Rd, Zomba, Malawi.
C3 University of Erlangen Nuremberg
RP Titz, A (corresponding author), Friedrich Alexander Univ Erlangen Nurnberg FAU, Dept Geog & Earth Sci, Inst Geog, D-91058 Erlangen, Germany.
EM alexandra.titz@fau.de; schiotha@leadsea.mw
FU Federal Ministry of Education and Research (BMBF); German Academic
   Exchange Service (DAAD)
FX Research for this particular paper received no external funding. Some
   findings were, however, drawn from field studies we recently conducted
   in the AfriCity project (financially supported by Federal Ministry of
   Education and Research (BMBF) and German Academic Exchange Service
   (DAAD)).
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NR 159
TC 30
Z9 30
U1 7
U2 92
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY 2
PY 2019
VL 11
IS 10
AR 2729
DI 10.3390/su11102729
PG 27
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA IC5LV
UT WOS:000471010300012
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Menoni, S
   Galderisi, A
   Carrion, D
   Gerosa, C
AF Menoni, Scira
   Galderisi, Adriana
   Carrion, Daniela
   Gerosa, Chiara
TI Cross-Sectoral and Multilevel Dimensions of Risk and Resilience
   Management in Urban Areas Enabled by Geospatial Data Processing
SO SUSTAINABILITY
LA English
DT Article
DE multirisk management; resilience; volcanic hazards; resilient urban
   development; geospatial data processing; emergency and urban planning
   coherence
ID OPPORTUNITIES; CHALLENGES; REDUCTION; EMERGENCY; SCALE
AB The growing complexity of cities and the unprecedented pace of urbanisation create exposure and vulnerabilities to extreme events and crises that are difficult to manage and plan for as widely acknowledged by the existing literature. In this paper, three main challenges to be tackled are identified based on the selected literature according to the interpretation of the authors based on extended research in the field. Those challenges relate to the multi-risk environment characterising many contemporary cities, the need to overcome sectoral approaches towards increased alignment of emergency and spatial planning at different scales, and the opportunities that derive from integrated risk and resilience management. Such challenges are evidenced in the Pozzuoli case study, a densely inhabited municipality of the metropolitan city of Naples, placed into a volcanic caldera, that has been analysed in the light of the above challenges for an extended period of time of about fifty years. The in-depth assessment of the quality of urban development has been enabled by geospatial data management. Advanced geospatial information systems are not only instrumental in depicting the history of urban development in the period of consideration but also as an enabler to tackle the above-mentioned challenges. In fact, such systems permit a much more dynamic and updatable assessment of multirisk conditions and provide the basis for shared knowledge among the large number of stakeholders that are responsible for different sectoral and comprehensive urban and risk-related plans.
C1 [Menoni, Scira] Politecn Milan, Dipartimento Architettura Ingn Costruz & Ambiente, I-20133 Milan, Italy.
   [Galderisi, Adriana] Univ Campania Luigi Vanvitelli, Dipartimento Architettura & Disegno Ind, I-81031 Aversa, Italy.
   [Carrion, Daniela; Gerosa, Chiara] Politecn Milan, Dipartimento Ingn Civile & Ambientale, I-20133 Milan, Italy.
C3 Polytechnic University of Milan; Universita della Campania Vanvitelli;
   Polytechnic University of Milan
RP Menoni, S (corresponding author), Politecn Milan, Dipartimento Architettura Ingn Costruz & Ambiente, I-20133 Milan, Italy.
EM scira.menoni@polimi.it; adriana.galderisi@unicampania.it;
   daniela.carrion@polimi.it; chiara.gerosa@mail.polimi.it
RI Carrion, Daniela/C-3420-2012; Galderisi, Adriana/M-7860-2019
OI Carrion, Daniela/0000-0003-1262-9394; GALDERISI,
   Adriana/0000-0003-0565-4313
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NR 76
TC 0
Z9 0
U1 2
U2 2
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2024
VL 16
IS 19
AR 8712
DI 10.3390/su16198712
PG 26
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA I8U8J
UT WOS:001332959300001
OA gold
DA 2025-04-22
ER

PT J
AU Chen, Y
   Li, KY
   Zhou, Q
   Zhang, YX
AF Chen, Yu
   Li, Keyang
   Zhou, Qian
   Zhang, Yuxin
TI Can Population Mobility Make Cities More Resilient? Evidence from the
   Analysis of Baidu Migration Big Data in China
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE population mobility; urban economic resilience; instrumental variable;
   Baidu migration big data
ID URBANIZATION; INNOVATION; ECONOMY; REGIONS; GROWTH
AB Knowledge spillover and capital agglomeration caused by population migration behavior are of great significance for improving the carrying capacity and adaptability of the urban economy and promoting high-quality economic development. Based on the big data collected on urban migration during the Spring Festival travel period, this paper constructs geographic, economic and geo-economic matrices, introduces two instrumental variables, and uses a spatial econometric model to investigate the mechanism between population mobility and urban economic resilience. The results show that (1) urban economic resilience exhibits spatial correlation, and the correlation order is geo-economic matrix > economic matrix > geography matrix; (2) the economic resilience of inflow areas is significantly affected by the net inflow of population, and the urban economic resilience index increases by 0.36-0.56% when the population mobility index increases by one unit; (3) in the case of economic and geo-economic matrices, there is a spatial interaction relationship of neighbor-companion in the mechanism of population migration on urban economic resilience; and (4) the mechanism is significantly impacted by innovation input and fixed asset investment, with positive moderating effects. In the geographical and economic matrices, the innovation input effect has a negative externality, while in the economic and geo-economic matrices, the fixed asset investment effect has a positive externality.
C1 [Chen, Yu; Li, Keyang] Zhengzhou Univ Light Ind, Sch Econ & Management, Sci Ave 136, Zhengzhou 450000, Peoples R China.
   [Zhou, Qian] Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Peoples R China.
   [Zhang, Yuxin] Jingsh Lawyers Bldg,37 East Forth Ring,Middle Rd, Beijing 100000, Peoples R China.
C3 Zhengzhou University of Light Industry; Zhongnan University of Economics
   & Law
RP Zhou, Q (corresponding author), Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Peoples R China.
EM z0005072@zuel.edu.cn
OI Zhou, Qian/0000-0002-2319-1095
FU Support Plan for Scientific and Technological Innovation Talents in
   Henan Institutions of Higher Learning (humanities and social sciences)
   [2018-cx-012]; Good Scholar in Philosophy and Social Sciences in Henan
   Institutions of Higher Learning [2019-YXXZ-20]; Philosophy and Social
   Science Innovation Team Building Program of Henan Universities
   [2021-CXTD-12, 2022-CXTD-05]; Philosophy and Social Science planning
   project of Henan Province [2021BJJ112]; Applied Research project of
   Philosophy and Social Science of Henan Province [2022-YYZD-27]; Major
   projects of China Social Science Foundation [18VSJ036, 21ZDA115]
FX This work was supported by grants from Support Plan for Scientific and
   Technological Innovation Talents in Henan Institutions of Higher
   Learning (humanities and social sciences) (2018-cx-012); Good Scholar in
   Philosophy and Social Sciences in Henan Institutions of Higher Learning
   (2019-YXXZ-20); and Philosophy and Social Science Innovation Team
   Building Program of Henan Universities (2021-CXTD-12, 2022-CXTD-05);
   Philosophy and Social Science planning project of Henan Province
   (2021BJJ112); Applied Research project of Philosophy and Social Science
   of Henan Province (2022-YYZD-27); and Major projects of China Social
   Science Foundation (18VSJ036, 21ZDA115).
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NR 51
TC 7
Z9 7
U1 21
U2 138
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD JAN
PY 2023
VL 20
IS 1
AR 36
DI 10.3390/ijerph20010036
PG 25
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 7R0WM
UT WOS:000909800200001
PM 36612356
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Leandro, J
   Chen, KF
   Wood, RR
   Ludwig, R
AF Leandro, Jorge
   Chen, Kai-Feng
   Wood, Raul R.
   Ludwig, Ralph
TI A scalable flood-resilience-index for measuring climate change
   adaptation: Munich city
SO WATER RESEARCH
LA English
DT Article
DE Climate change; Climate adaptation measures; Flood resilience analysis;
   Heavy rainfall; Urban areas
ID WATER; MANAGEMENT; ENSEMBLE; MODEL; STEP
AB Climate change is affecting the frequency and intensity of rainfall extreme events worldwide. Despite the growing global awareness, developing flood resilient cities has proven to be a major challenge. This paper investigates the application of an event-based scalable Flood Resilience Index (FRI) for assessing climate change adaptation. Flood resilience is represented by three dimensions: physical, social and economic. A household climate adaptation is adopted consisting of a combination of a flood-proof gate with an indoor tank and a submersible pump system implemented in all houses. The climate related impact under a high-emission scenario (RCP8.5) is analysed for Munich with the CRCM5 Large-Ensemble. Results show that for Munich extreme heavy rainfall events are increasing. The FRI can successfully identify households and districts which: a) are mostly affected by heavy rainfall, b) benefit the most from the climate adaptation, and c) are the most resilient. For the most severe future scenario investigated the climate adaptation measure was able to improve 57% of all affected buildings within Maxvorstadt to an FRI equal to 1.0 during the event and recovery phase. (C) 2020 Elsevier Ltd. All rights reserved.
C1 [Leandro, Jorge; Chen, Kai-Feng] Tech Univ Munich, Chair Hydrol & River Basin Management, Dept Civil Geo & Environm Engn, Arcisstr 21, D-80333 Munich, Germany.
   [Wood, Raul R.; Ludwig, Ralph] Ludwig Maximilians Univ Munchen, Dept Geog, Munich, Germany.
C3 Technical University of Munich; University of Munich
RP Leandro, J (corresponding author), Tech Univ Munich, Chair Hydrol & River Basin Management, Dept Civil Geo & Environm Engn, Arcisstr 21, D-80333 Munich, Germany.
EM jorge.leandro@tum.de
RI ; Leandro, Jorge/M-6558-2014
OI Chen, Kai-Feng/0000-0001-5692-4593; Leandro, Jorge/0000-0002-2193-9741;
   Wood, Raul/0000-0003-4172-7719
FU Bavarian Ministry for the Environment and Consumer Protection
FX The authors are grateful to Professor Stephan Pauleit from the Centre
   for Urban Ecology and Climate Adaptation, TUM for providing GIS data of
   Maxvorstadt applied in this study. The CRCM5-LE data was provided
   through the ClimEx project which was funded by the Bavarian Ministry for
   the Environment and Consumer Protection. The authors would like to thank
   the Editor and anonymous Reviewers for their valuable and constructive
   comments related to this manuscript.
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NR 41
TC 66
Z9 69
U1 9
U2 100
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0043-1354
EI 1879-2448
J9 WATER RES
JI Water Res.
PD APR 15
PY 2020
VL 173
AR 115502
DI 10.1016/j.watres.2020.115502
PG 14
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA KZ9HB
UT WOS:000523569000009
PM 32028251
DA 2025-04-22
ER

PT J
AU Angheloiu, C
   Tennant, M
AF Angheloiu, Corina
   Tennant, Mike
TI Urban futures: Systemic or system changing interventions? A literature
   review using Meadows' leverage points as analytical framework
SO CITIES
LA English
DT Review
DE Urban resilience; Urban sustainability; Urban transitions; Urban
   transformation; Leverage points, urban interventions
ID GLOBAL ENVIRONMENTAL-CHANGE; SUSTAINABILITY TRANSITIONS; RESILIENT CITY;
   TRANSFORMATION; CITIES; POLICY; POLITICS; THINKING; PERSPECTIVE;
   CHALLENGE
AB Urban-led change for sustainability is a key site of intervention in delivering the ambitions of the Sustainable Development Goals. Within this broad discourse, four umbrella concepts have emerged in recent decades: urban sustainability, urban transitions, urban transformation and urban resilience.
   This literature review aims to offer a qualitative assessment of the types of interventions currently being advocated for in academic-led literature. Firstly, the paper presents an overview of the concepts and summarises current gaps; secondly, it uses Donella Meadows' Leverage Points as analytical framework to categorise and discuss interventions supported in the literature.
   Our findings indicate that although the literature advocates for systemic change towards sustainability as an outcome of a large palette of urban interventions, less consideration is given to the means of achieving these. The findings highlight the need to focus on processes as much as on outcomes when advocating, devising or implementing interventions. This requires a process of understanding and negotiating trade-offs and the different worldviews and values that underpin them. Addressing this entails going beyond technocratic skills through cultivating reflexivity, effective communities of practice and new forms of organising for knowledge production, as well as interrogate our roles and agency as urban researchers.
C1 [Angheloiu, Corina; Tennant, Mike] Imperial Coll London, London, England.
C3 Imperial College London
RP Angheloiu, C (corresponding author), Imperial Coll London, London, England.
EM corina.angheloiu17@imperial.ac.uk
OI Angheloiu, Corina/0000-0002-2644-9469
FU Economic and Social Research Council, United Kingdom [ES/P000703/1];
   ESRC [1917835] Funding Source: UKRI
FX We thank the anonymous reviewers for their careful reading of our
   manuscript and their insightful comments and suggestions, which have
   greatly improved the final paper. We thank Dr. Anna Birney, The School
   of System Change, for insightful conversations and reflections on the
   nature of the terms systemic and system changing. This work was
   supported by the Economic and Social Research Council, United Kingdom
   (grant reference ES/P000703/1).
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NR 102
TC 22
Z9 22
U1 2
U2 92
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD SEP
PY 2020
VL 104
AR 102808
DI 10.1016/j.cities.2020.102808
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA LZ3TV
UT WOS:000541151900014
DA 2025-04-22
ER

PT J
AU Chmutina, K
   Lizarralde, G
   Dainty, A
   Bosher, L
AF Chmutina, Ksenia
   Lizarralde, Gonzalo
   Dainty, Andrew
   Bosher, Lee
TI Unpacking resilience policy discourse
SO CITIES
LA English
DT Article
DE Resilience; National policy; UK
ID NATIONAL-SECURITY; URBAN RESILIENCE; POLITICS; CITIES
AB There are an increasing number of articles and publications that attempt to define resilience in the face of numerous drivers of risk. Most of this work has tried to identify the values and virtues that are encompassed within a resilient approach in relation to the fragile relationships between the social, natural and built environments (including, for instance, abilities to prevent, react, transform and adapt). However, much less attention has been paid to identifying the practical implications of these values and virtues once a paradigm of resilience has been adopted. In order to address this gap, this study examines what institutions in the UK have actually done when they attempt to enhance resilience. Instead of defining what resilience is, this paper focuses on what local and national governments and other stakeholders do when something is called (or is attempted to be made) 'resilient'. The analysis of 30 key policy documents, a review of 20 formal meetings of a Local Resilient Forum, and 11 interviews with stakeholders confirm that different (and often competing) understandings of resilience coexist; but this work also reveal that two rather different approaches to resilience dominate in the UK The first responds to security risks, based on a protectionist approach by the State, the other responds to natural risks, and prescribes the transfer of responsibilities from the State to other stakeholders. The analysis illustrates the extent to which resilience has become a highly complex, malleable and dynamic political construct with significant implications for the ways in which policy is enacted and enforced, often with unexpected consequences. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Chmutina, Ksenia; Dainty, Andrew; Bosher, Lee] Univ Loughborough, Sch Civil & Bldg Engn, Ashby Rd, Loughborough LE11 3TU, Leics, England.
   [Lizarralde, Gonzalo] Univ Montreal, Ecole Architecture, CP 6128,Succursale Ctr Ville, Montreal, PQ H3C 3J7, Canada.
C3 Loughborough University; Universite de Montreal
RP Chmutina, K (corresponding author), Univ Loughborough, Sch Civil & Bldg Engn, Ashby Rd, Loughborough LE11 3TU, Leics, England.
EM k.chmutina@lboro.ac.uk
RI Bosher, Lee/A-4063-2011; Dainty*12, Andrew/E-5508-2010; Chmutina,
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NR 56
TC 61
Z9 69
U1 5
U2 46
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD OCT
PY 2016
VL 58
BP 70
EP 79
DI 10.1016/j.cities.2016.05.017
PG 10
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA DZ1NS
UT WOS:000385605700007
OA Green Published, Green Accepted
DA 2025-04-22
ER

PT J
AU Gao, YP
   Chen, WJ
AF Gao, Yanpeng
   Chen, Wenjun
TI Study on the coupling relationship between urban resilience and
   urbanization quality-A case study of 14 cities of Liaoning Province in
   China
SO PLOS ONE
LA English
DT Article
AB In this paper, entropy, coupling coordination degree, spatial auto-analysis, LISA time path, and other methods have been used to analyze the coupling coordination degree of urban resilience and urbanization quality of 14 cities in Liaoning Province from 2009 to 2019. The results show that: 1. The number of highly resilient cities accounts for 14.3% of the total number of cities in Liaoning Province, and the overall resilience degree is low; the spatial distribution shrinks along the Shenyang-Dalian Economic Belt toward both sides, with obvious "core-margin" characteristics. 2. The average score of urbanization quality increased from 0.0574 to 0.0966, showing a fluctuating upward trend; the regional difference was significant, and the "dual-core" characteristic was prominent. 3. During the study period, the 14 cities of Liaoning Province were in a state of imbalance, and there was a positive correlation between the coupling degree and the coordination degree. Moran's I decreased from 0.237 to 0.220 and the spatial agglomeration characteristics also weakened. Further analysis of the spatial and temporal linkage characteristics of the coupling relationship shows that the relative length of LISA time path presents characteristics of protrusion in the central region and shrinkage on the East and West sides, and the curvature presents characteristics that are smaller in the North and larger in the South.
C1 [Gao, Yanpeng; Chen, Wenjun] Northeastern Univ, Jiangho Sch Architecture, Shenyang, Liaoning, Peoples R China.
C3 Northeastern University - China
RP Chen, WJ (corresponding author), Northeastern Univ, Jiangho Sch Architecture, Shenyang, Liaoning, Peoples R China.
EM 1901411@stu.neu.edu.cn
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NR 57
TC 23
Z9 23
U1 10
U2 136
PU PUBLIC LIBRARY SCIENCE
PI SAN FRANCISCO
PA 1160 BATTERY STREET, STE 100, SAN FRANCISCO, CA 94111 USA
SN 1932-6203
J9 PLOS ONE
JI PLoS One
PD JAN 4
PY 2021
VL 16
IS 1
AR e0244024
DI 10.1371/journal.pone.0244024
PG 18
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics
GA PR2KB
UT WOS:000607069100041
PM 33395429
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Dupuy, S
   Defrise, L
   Lebourgeois, V
   Gaetano, R
   Burnod, P
   Tonneau, JP
AF Dupuy, Stephane
   Defrise, Laurence
   Lebourgeois, Valentine
   Gaetano, Raffaele
   Burnod, Perrine
   Tonneau, Jean-Philippe
TI Analyzing Urban Agriculture's Contribution to a Southern City's
   Resilience through Land Cover Mapping: The Case of Antananarivo, Capital
   of Madagascar
SO REMOTE SENSING
LA English
DT Article
DE land-cover mapping; urban agriculture; agri-urban zoning; Madagascar;
   OBIA; Sentinel2; Landsat8; Pleiades
ID RANDOM FOREST CLASSIFIER; DIFFERENCE WATER INDEX; IMAGES;
   TRANSFORMATION; SELECTION; FEATURES; CITIES; NDWI
AB High urbanization rates in cities lead to rapid changes in land uses, particularly in southern cities where population growth is fast. Urban and peri-urban agricultural land is often seen as available space for the city to expand, but at the same time, agricultural land provides many benefits to cities pertaining to food, employment, and eco-services. In this context, there is an urgent need to provide spatial information to support planning in complex urban systems. The challenge is to integrate analysis of agriculture and urban land-cover classes, and of their spatial and functional patterns. This paper takes up this challenge in Antananarivo (Madagascar), where agricultural plots and homes are interlocked and very small. It innovates by using a methodology already tested in rural settings, but never applied to urban environments. The key step of the analysis is to produce landscape zoning based on multisource satellite data to identify agri-urban functional areas within the city, and to explore their relationships. Our results demonstrate that the proposed classification method is well suited for mapping agriculture and urban land cover (overall accuracy = 76.56% for the 20 classes of level 3) in such a complex setting. The systemic analysis of urban agriculture patterns and functions can help policymakers and urban planners to design and build resilient cities.
C1 [Dupuy, Stephane] CIRAD, UMR TETIS, F-97410 St Pierre, France.
   [Dupuy, Stephane; Defrise, Laurence; Burnod, Perrine] CIRAD, UMR TETIS, Antananarivo 101, Madagascar.
   [Dupuy, Stephane; Defrise, Laurence; Lebourgeois, Valentine; Gaetano, Raffaele; Burnod, Perrine; Tonneau, Jean-Philippe] CIRAD, UMR TETIS, F-34398 Montpellier, France.
   [Dupuy, Stephane; Defrise, Laurence; Lebourgeois, Valentine; Gaetano, Raffaele; Burnod, Perrine; Tonneau, Jean-Philippe] Univ Montpellier, TETIS, AgroParisTech, CIRAD,CNRS,INRAE, Montpellier, France.
C3 CIRAD; CIRAD; AgroParisTech; CIRAD; Centre National de la Recherche
   Scientifique (CNRS); AgroParisTech; Universite de Montpellier; INRAE;
   CIRAD
RP Dupuy, S (corresponding author), CIRAD, UMR TETIS, F-97410 St Pierre, France.; Dupuy, S (corresponding author), CIRAD, UMR TETIS, Antananarivo 101, Madagascar.; Dupuy, S (corresponding author), CIRAD, UMR TETIS, F-34398 Montpellier, France.; Dupuy, S (corresponding author), Univ Montpellier, TETIS, AgroParisTech, CIRAD,CNRS,INRAE, Montpellier, France.
EM stephane.dupuy@cirad.fr; defriselaurence@yahoo.fr;
   valentine.lebourgeois@cirad.fr; raffaele.gaetano@cirad.fr;
   perrine.burnod@cirad.fr; tonneaujp@wanadoo.fr
OI Dupuy, Stephane/0000-0002-9710-5364
FU Cirad; INRAE; Glofood meta-program (LEGENDE project); European Regional
   Development Fund (European Union); Reunion Region
FX This work was supported by (i) a financial contribution from Cirad and
   INRAE with the Glofood meta-program (LEGENDE project) and (ii) a
   financial contribution from the European Regional Development Fund
   (European Union), the French State, and the Reunion Region. This work
   benefited from the Pleiades images of the French CNES ISIS program help.
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NR 48
TC 16
Z9 16
U1 0
U2 28
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2072-4292
J9 REMOTE SENS-BASEL
JI Remote Sens.
PD JUN
PY 2020
VL 12
IS 12
AR 1962
DI 10.3390/rs12121962
PG 19
WC Environmental Sciences; Geosciences, Multidisciplinary; Remote Sensing;
   Imaging Science & Photographic Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geology; Remote Sensing; Imaging
   Science & Photographic Technology
GA MM7VV
UT WOS:000550361800001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Honjo, T
   Yamato, H
   Mikami, T
   Grimmond, CSB
AF Honjo, Tsuyoshi
   Yamato, Hiroaki
   Mikami, Takehiko
   Grimmond, C. S. B.
TI Network optimization for enhanced resilience of urban heat island
   measurements
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Meteorological measurement network; Random sampling; Hierarchical
   clustering
ID INTERPOLATION; ACCURACY; CITY
AB The urban heat island is a well-known phenomenon that impacts a wide variety of city operations. With greater availability of cheap meteorological sensors, it is possible to measure the spatial patterns of urban atmospheric characteristics with greater resolution. To develop robust and resilient networks, recognizing sensors may malfunction, it is important to know when measurement points are providing additional information and also the minimum number of sensors needed to provide spatial information for particular applications. Here we consider the example of temperature data, and the urban heat island, through analysis of a network of sensors in the Tokyo metropolitan area (Extended METROS). The effect of reducing observation points from an existing meteorological measurement network is considered, using random sampling and sampling with clustering. The results indicated the sampling with hierarchical clustering can yield similar temperature patterns with up to a 30% reduction in measurement sites in Tokyo. The methods presented have broader utility in evaluating the robustness and resilience of existing urban temperature networks and in how networks can be enhanced by new mobile and open data sources. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Honjo, Tsuyoshi] Chiba Univ, Fac Hort, Dept Environm Sci & Landscape Architecture, Matsudo, Chiba 2718510, Japan.
   [Yamato, Hiroaki] Chuo Univ, Bunkyo Ku, Tokyo 1128551, Japan.
   [Mikami, Takehiko] Teikyo Univ, Fac Liberal Arts, Hachioji, Tokyo 1920395, Japan.
   [Grimmond, C. S. B.] Univ Reading, Dept Meteorol, Reading RG6 6BB, Berks, England.
C3 Chiba University; Chuo University; Teikyo University; University of
   Reading
RP Honjo, T (corresponding author), Chiba Univ, Fac Hort, Dept Environm Sci & Landscape Architecture, Matsudo, Chiba 2718510, Japan.
EM honjo@faculty.chiba-u.jp
RI Grimmond, Sue/A-2179-2009; Honjo, Tsuyoshi/D-4361-2016
OI Honjo, Tsuyoshi/0000-0002-6189-7136; Grimmond, Sue/0000-0002-3166-9415
FU Grants-in-Aid for Scientific Research [25450368] Funding Source: KAKEN;
   NERC [NE/L008971/1, NE/I007032/2, NE/I007032/1] Funding Source: UKRI
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NR 31
TC 29
Z9 30
U1 1
U2 38
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD DEC
PY 2015
VL 19
BP 319
EP 330
DI 10.1016/j.scs.2015.02.004
PG 12
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA CZ9DV
UT WOS:000367398900032
DA 2025-04-22
ER

PT J
AU Duy, PN
   Chapman, L
   Tight, M
   Linh, PN
   Thuong, LV
AF Duy, Phan N.
   Chapman, Lee
   Tight, Miles
   Linh, Phan N.
   Thuong, Le V.
TI Increasing vulnerability to floods in new development areas: evidence
   from Ho Chi Minh City
SO INTERNATIONAL JOURNAL OF CLIMATE CHANGE STRATEGIES AND MANAGEMENT
LA English
DT Article
DE Resilience; Compact city; Flooding vulnerability; Spatial planning and
   management; Urban expansion
ID COASTAL CITIES
AB Purpose - Flooding is an emerging problem in Ho Chi Minh City (HCMC), Vietnam, and is fast becoming a major barrier to its ongoing development. While flooding is presently of nuisance value, there is a growing concern that a combination of rapid urban expansion and climate changes will significantly exacerbate the problem. There has been a trend of population being rapidly accommodated in new urban areas, which are considered highly vulnerable to floods, while the development strategy by the local government still attracts more property investments into the three new districts on the right side of Saigon River. This paper aims to discuss the increase in the number of residences vulnerable to flooding, to underline the need for more appropriate future spatial development. For the vision, an application of compact and resilient theories to strategic planning and management of this city is proposed to reduce vulnerability. This paper also highlights the need to better understand growing vulnerability to floods related to urban expansion over low-lying former wetlands and the more important role of planning spatial development accompanied with transportation investment which can contribute to flooding resilience.
   Design/methodology/approach - This research uses combined-methods geographical information system (GIS) analysis based on secondary data of flood records, population distributions, property development (with the details of 270 housing projects compiled as part of this research) and flooding simulation. This allows an integrated approach to the theories of urban resilience and compactness to discuss the implication of spatial planning and management in relevance to flooding vulnerability.
   Findings - The flooding situation in HCMC is an evidence of inappropriate urban expansion leading to increase in flooding vulnerability. Although climate change impacts are obvious, the rapid population growth and associated accommodation development are believed to be the key cause which has not been solved. It was found that the three new emerging districts (District 2, 9 and ThuDuc) are highly vulnerable to floods, but the local government still implements the plan for attracted investments in housing without an integrated flooding management. This is also in line with the development pattern of many coastal cities in Southeast Asia, as economic development can be seen as a driving factor.
   Research limitations/implications - The data of property development are diversified from different sources which have been compiled by this research from the basic map of housing investments from a governmental body, the Department of Construction. The number of projects was limited to 270 per over 500 projects, but this still sufficiently supports the evidence of increasing accommodation in new development districts.
   Practical implications - HCMC needs neater strategies for planning and management of spatial development to minimize the areas vulnerable to floods: creating more compact spaces in the central areas (Zone 1) protected by the current flooding management system, and offering more resilient spaces for new development areas (Zone 2), by improving the resilience of transportation system. Nevertheless, a similar combination of compact spaces and resilient spaces in emerging districts could also be incorporated into the existing developments, and sustainable drainage systems or underground water storage in buildings could also be included in the design to compensate for the former wetlands lost.
   Social implications - This paper highlights the need to better understand growing vulnerability to floods related to urban expansion over low-lying former wetlands and emphasizes the more important role of planning spatial development accompanied with transportation investment which can contribute to flooding resilience. Coastal cities in southeast countries need to utilize the former-land, whereas feasibility of new land for urban expansion needs to be thoroughly considered under risk of natural disasters.
   Originality/value - A combination of compact spaces with improved urban resilience is an alternative approach to decrease the flooding risk beyond that of traditional resistant systems and underlines the increasingly important role of urban planning and management to combat the future impacts of floods.
C1 [Duy, Phan N.; Linh, Phan N.] Univ Architecture Ho Chi Minh City, Dept Urban Planning, Ho Chi Minh City, Vietnam.
   [Duy, Phan N.; Chapman, Lee] Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham, W Midlands, England.
   [Tight, Miles] Univ Birmingham, Sch Civil Engn, Birmingham, W Midlands, England.
   [Thuong, Le V.] Southern Inst Spatial Planning Vietnam, Ho Chi Minh City, Vietnam.
C3 University of Birmingham; University of Birmingham
RP Duy, PN (corresponding author), Univ Architecture Ho Chi Minh City, Dept Urban Planning, Ho Chi Minh City, Vietnam.; Duy, PN (corresponding author), Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham, W Midlands, England.
EM duyadm@gmail.com
RI Tight, Miles/L-9984-2015; chapman, lee/F-4674-2014
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NR 43
TC 26
Z9 28
U1 1
U2 63
PU EMERALD GROUP PUBLISHING LTD
PI BINGLEY
PA HOWARD HOUSE, WAGON LANE, BINGLEY BD16 1WA, W YORKSHIRE, ENGLAND
SN 1756-8692
EI 1756-8706
J9 INT J CLIM CHANG STR
JI Int. J. Clim. Chang. Strateg. Manag.
PY 2018
VL 10
IS 1
SI SI
BP 197
EP 212
DI 10.1108/IJCCSM-12-2016-0169
PG 16
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA FQ9AL
UT WOS:000418654400012
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Kullberg, AT
   Aragón, L
   Bernal-Escobar, M
   Fortier, R
   Lautenschlager, L
   Ballantyne, J
   Feeley, KJ
AF Kullberg, Alyssa T.
   Aragon, Lina
   Bernal-Escobar, Manuel
   Fortier, Riley
   Lautenschlager, Lais
   Ballantyne, Jacqueline
   Feeley, Kenneth J.
TI Rising temperatures will make Miami's street life even more exotic
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Urban forestry; Urban heat islands; Heat stress; Invasive species
ID URBAN TREES; RISK
AB Species in humid, tropical regions frequently experience dangerously high heat. The danger of high temperatures is especially pronounced in cities due to the urban heat island effect. Trees can greatly reduce surface temperatures and mitigate the urban heat island effect through evapotranspiration and by reflecting solar radiation before it is absorbed by impervious surfaces. However, trees may also be physiologically susceptible to the effects of climate change as high temperatures exceed their physiological limits. In this study, we assessed how the urban tree community in subtropical Miami (Florida, USA) will be impacted by climate warming and how impacts will differ between native and exotic tree species. We calculated the thermal safety margin (TSM) in Miami for each of 235 tree species as the difference between the maximum temperature experienced by a species within its range and the current and future (2100) projected maximum temperature in the city. We also combined TSMs, a metric of resilience to heat, with each species' drought, wind, and salt tolerance to identify species that are resilient to multiple relevant stressors. We found that by 2100 Miami will be too hot for 16-41 % of the tree species currently planted in the city, depending on the climate change scenario. Native tree species will be disproportionately impacted compared to exotics, likely because most exotic species originate in the tropics, whereas most species native to Miami are primarily subtropical or temperate. The species that are more resilient to multiple stressors include mostly native species, several of which are ideal shade trees. Urban greening initiatives should carefully consider tree plantings to optimize the long-term health of urban tree communities and the services that they can provide to cities in the future.
C1 [Kullberg, Alyssa T.; Aragon, Lina; Bernal-Escobar, Manuel; Fortier, Riley; Lautenschlager, Lais; Ballantyne, Jacqueline; Feeley, Kenneth J.] Univ Miami, Dept Biol, Coral Gables, FL 33146 USA.
   [Feeley, Kenneth J.] Fairchild Trop Bot Garden, Coral Gables, FL 33156 USA.
C3 University of Miami
RP Kullberg, AT (corresponding author), Univ Miami, Dept Biol, Coral Gables, FL 33146 USA.
EM alyssa.kullberg@gmail.com
RI Feeley, Kenneth/A-7631-2009; Lautenschlager, Laís/IVV-3661-2023
OI Feeley, Kenneth/0000-0002-3618-1144
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NR 54
TC 1
Z9 1
U1 5
U2 8
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD NOV
PY 2024
VL 101
AR 128502
DI 10.1016/j.ufug.2024.128502
EA SEP 2024
PG 9
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA F9U2L
UT WOS:001313179900001
DA 2025-04-22
ER

PT J
AU Li, XQ
   Zhang, LX
   Hao, Y
   Shi, ZM
   Zhang, PP
   Xiong, X
   Li, YQ
   Lu, ZM
AF Li, Xinqing
   Zhang, Lixiao
   Hao, Yan
   Shi, Zhimin
   Zhang, Pengpeng
   Xiong, Xin
   Li, Yuqin
   Lu, Zhongming
TI Understanding resilience of urban food-energy-water nexus system:
   Insights from an ecological network analysis of megacity Beijing
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Food -energy -water nexus; Ecological network analysis; Urban
   resilience; Urban metabolism; Adaptability analysis
ID CARBON METABOLISM; CHALLENGES; FRAMEWORK; SUSTAINABILITY; SECURITY
AB Increasing resource crises force cities to scrutinize resilience status of urban food-energy-water (FEW) nexus system, which is highly depend on their metabolic processes. Taking Megacity Beijing as the case, we developed an ecological network model to explore structural and functional characteristics of urban FEW metabolic systems, with consideration of local availability, cross-region supply and resource nexus. The results show that the metabolism of food, energy and water exhibits different topological structures, and water presents typical loop network structure with APL and FCI values of 3.02 and 0.08 respectively, while food metabolizes in a loose topology and energy suffers dissipative losses in a uniflow form. This makes water metabolic network a robust organization with greater circulation, higher stability index (1.81) and better adaptive capacity to counter to vulnerability, yet energy network performs poorly for lacking redundancy and food network is more sensitive to changing conditions. Our findings enable decision-makers to find opportunities to build a more resilient city via improving FEW metabolic network synergistically, such as strengthening local resource reserves to provide buffering capacity when external supplies fail, as well as enhancing utilization efficiency of dominant industries and promoting treatment and reuse to make continuous survival and prosperity possible.
C1 [Li, Xinqing; Zhang, Lixiao; Hao, Yan; Shi, Zhimin; Xiong, Xin; Li, Yuqin] Beijing Normal Univ, Sch Environm, State Key Joint Lab Environm Simulat & Pollut Cont, Beijing 100875, Peoples R China.
   [Zhang, Pengpeng] Hebei Normal Univ, Sch Geog Sci, Shijiazhuang 050024, Peoples R China.
   [Lu, Zhongming] Hong Kong Univ Sci & Technol, Div Environm & Sustainabil, Kowloon, Clear Water Bay, Hong Kong, Peoples R China.
   [Zhang, Lixiao] 19 Xinjiekouwai St, Beijing 100875, Peoples R China.
C3 Beijing Normal University; Hebei Normal University; Hong Kong University
   of Science & Technology
RP Zhang, LX (corresponding author), 19 Xinjiekouwai St, Beijing 100875, Peoples R China.
EM zhanglixiao@bnu.edu.cn
RI Zhang, Lixiao/G-1462-2014; Hao, Yan/KPB-5529-2024; ZHIMIN,
   SHI/KHU-6707-2024; pengpeng, zhang/ABF-9611-2020; lu,
   zhongming/S-2757-2019
OI Li, Xinqing/0000-0002-1716-5683; lu, zhongming/0000-0002-4151-5065
FU Funds for National Natural Science Foundation of China [52225902];
   National Natural Science Foundation of China [72161147003, 52070022]
FX This work was supported by the Funds for National Natural Science
   Foundation of China [52225902], National Natural Science Foundation of
   China [52070022], and National Natural Science Foundation of China
   [72161147003].
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NR 75
TC 20
Z9 20
U1 42
U2 181
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD AUG
PY 2023
VL 95
AR 104605
DI 10.1016/j.scs.2023.104605
EA APR 2023
PG 10
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA H0NK2
UT WOS:000993014200001
DA 2025-04-22
ER

PT J
AU Brunetta, G
   Caldarice, O
   Faravelli, M
AF Brunetta, Grazia
   Caldarice, Ombretta
   Faravelli, Martino
TI Mainstreaming climate resilience: A GIS-based methodology to cope with
   cloudbursts in Turin, Italy
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article
DE urban resilience; mainstreaming adaptation; climate change;
   vulnerability
ID URBAN; EVENTS; RISK
AB Cities play an increasingly significant role in the challenges posed by climate change, mainly due to their role in economic and demographic drivers. It is generally agreed that the intensification of climate change effects, such as extreme weather events, requires strengthening in the mechanisms of adaptation and the endogenous self-organization of urban systems. An operative way to adapt is by mainstreaming climate resilience, i.e., the iterative process of integrating climate change considerations into policymaking, budgeting, implementation, and monitoring processes at national and subnational levels. This paper falls under this heading, and it aims at building an innovative methodology to experiment with data-driven approaches to support the resilient transition of the city of Turin in Italy. The process aims to create territorial knowledge of specific weather phenomenon, that cloudburst events are, by filling the gap of existing hazard information with original vulnerability datasets. The proposed approach will create a hydraulic vulnerability map by identifying cloudburst vulnerable areas with a GIS-based spatial overlay. The paper will employ an array of datasets combined with original modelling techniques elaborated with the help of the open-source InVEST (Integrated Valuation of Ecosystem Services and Trade-offs) software program. The results allow us to understand what would happen if the urban water network failed to discharge during a phenomenon of intense rain and, consequently, which city areas should undergo adaptation and transformation to reduce their flooding vulnerability.
C1 [Brunetta, Grazia; Caldarice, Ombretta; Faravelli, Martino] Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, Viale Mattioli 39, I-10125 Turin, Italy.
C3 Polytechnic University of Turin
RP Caldarice, O (corresponding author), Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, Viale Mattioli 39, I-10125 Turin, Italy.
OI Brunetta, Grazia/0000-0003-1868-2700; CALDARICE,
   OMBRETTA/0000-0001-6172-908X
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NR 35
TC 1
Z9 1
U1 5
U2 32
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 2399-8083
EI 2399-8091
J9 ENVIRON PLAN B-URBAN
JI Env. Plan. B-Urban Anal. City Sci.
PD JUN
PY 2022
VL 49
IS 5
BP 1431
EP 1447
AR 23998083221076500
DI 10.1177/23998083221076500
EA MAR 2022
PG 17
WC Environmental Studies; Geography; Regional & Urban Planning; Urban
   Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration;
   Urban Studies
GA 1R0PN
UT WOS:000771653200001
DA 2025-04-22
ER

PT J
AU Ruiz-Mallén, I
   Satorras, M
   March, H
   Baró, F
AF Ruiz-Mallen, Isabel
   Satorras, Mar
   March, Hug
   Baro, Francesc
TI Community climate resilience and environmental education: Opportunities
   and challenges for transformative learning
SO ENVIRONMENTAL EDUCATION RESEARCH
LA English
DT Article
DE Agency; community resilience; climate change; non-formal education;
   youth
ID GRASS-ROOTS INNOVATIONS; STEWARDSHIP; CAPACITY; AGENCY
AB Grassroots initiatives towards climate resilience in cities are likely to embed environmental education practices with potential transformative impact among young people. Through interviews and document review, we examine two initiatives involving different non-formal educational actions in Barcelona: a civic ecology practice based on the community gardening of tree pits and an energy citizenship project with the school community. Despite their diverse nature and outcomes, these educational actions promoted by grassroots groups intend to boost young people's critical reflection, responsibility, and agency for taking individual action towards more climate-resilient cities. However, connections between agency, empowerment and transformative learning become more challenging when translated to the collective. Limitations relate to the lack of effective engagement approaches that reinforce social connectedness and local identity, and insufficient evaluation strategies. By discussing these potentials and challenges, we shed light on the synergies concerning transformative learning between the fields of environmental education and urban community resilience.
C1 [Ruiz-Mallen, Isabel; Satorras, Mar; March, Hug] Univ Oberta Catalunya UOC, Internet Interdisciplinary Inst IN3, Av Carl Friedrich Gauss, Barcelona 08860, Spain.
   [March, Hug] Univ Oberta Catalunya UOC, Estudis Econ & Empresa, Barcelona, Spain.
   [Baro, Francesc] Vrije Univ Brussel VUB, Dept Geog, Brussels, Belgium.
   [Baro, Francesc] Vrije Univ Brussel VUB, Dept Sociol, Brussels, Belgium.
   [Baro, Francesc] Univ Autonoma Barcelona UAB, Inst Environm Sci & Technol ICTA, Edifici Z ICTA ICP, Cerdanyola Del Valles, Spain.
C3 UOC Universitat Oberta de Catalunya; UOC Universitat Oberta de
   Catalunya; Vrije Universiteit Brussel; Vrije Universiteit Brussel;
   Autonomous University of Barcelona
RP Ruiz-Mallén, I (corresponding author), Univ Oberta Catalunya UOC, Internet Interdisciplinary Inst IN3, Av Carl Friedrich Gauss, Barcelona 08860, Spain.
EM iruiz_mallen@uoc.edu
RI Satorras, Mar/AAB-2054-2021; Baro, Francesc/C-1564-2019; Ruiz-Mallen,
   Isabel/E-9614-2018; March, Hug/F-4935-2016
OI Baro, Francesc/0000-0002-0145-6320; Ruiz-Mallen,
   Isabel/0000-0002-9679-3329; March, Hug/0000-0003-2549-0803; Satorras,
   Mar/0000-0003-0991-7141
FU Spanish Ministry of Science and Innovation through the RESCITIES
   project: Plan Nacional [PGC2018-100996-A-I00]; Spanish State Research
   Agency through a "Ramon y Cajal" research fellowship [RYC-2015-17676];
   Spanish State Research Agency through a "Juan de la Cierva-Formacion"
   program [FJCI-2017-31723]; European Research Council [GA: 678034]; EU
   [GA: 730243]
FX This work received funding from the Spanish Ministry of Science and
   Innovation through the RESCITIES project: Plan Nacional
   (PGC2018-100996-A-I00 (MCIU/AEI/FEDER, UE)). I. Ruiz-Mallen acknowledges
   support from the Spanish State Research Agency through a "Ramon y Cajal"
   research fellowship (RYC-2015-17676). M. Satorras acknowledges funding
   received from the Spanish State Research Agency through a "Juan de la
   Cierva-Formacion" program (FJCI-2017-31723). F. Baro acknowledges
   funding received from the European Research Council (project GREENLULUs;
   GA: 678034); and the EU's Horizon 2020 framework program for research
   and innovation (project NATURVATION, GA: 730243).
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NR 74
TC 17
Z9 18
U1 7
U2 31
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1350-4622
EI 1469-5871
J9 ENVIRON EDUC RES
JI Environ. Educ. Res.
PD JUL 3
PY 2022
VL 28
IS 7
BP 1088
EP 1107
DI 10.1080/13504622.2022.2070602
EA APR 2022
PG 20
WC Education & Educational Research; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Environmental Sciences & Ecology
GA 2H6ZK
UT WOS:000789794400001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Wang, FJ
   Yan, JY
   Xu, JP
   Yan, ZXY
   Chen, D
AF Wang, Fengjuan
   Yan, Jinyue
   Xu, Jiuping
   Yan, Zhouxingyu
   Chen, Dan
TI Physical-cyber-human framework-based resilience evaluation toward urban
   power system: Case study from China
SO RISK ANALYSIS
LA English
DT Article
DE multicriteria decision making; physical-cyber-human system; resilience
   evaluation; urban power system
ID EXTREME WEATHER; GRID RESILIENCE; METRICS; IMPACT
AB Because the increased frequency, intensity, and duration of extreme weather events have significantly challenged power systems, there has been an increased interest in resilient power systems. This article establishes a multicriteria resilience evaluation framework for urban power systems from a physical-cyber-human system perspective, in which the two principal elements responsible for power system function degradation are described, the three major domains comprising urban power systems are explained, four core capacities that positively contribute to power system resilience are proposed, and 15 (11 objective and four subjective) power system resilience evaluation indicators are identified. Fuzzy hesitant judgment and a Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) aggregation method are employed to minimize the expert divergence and maximize the group consensus. A validation method is designed and a comparison with commonly applied performance-based and attributes-based evaluation methods is conducted. The applicability of the evaluation framework is verified using data from four Chinese municipalities: Shanghai, Beijing, Chongqing, and Tianjin. It was found that Shanghai's resilience was the best, and Chongqing's physical resistance disadvantages would result in the greatest difficulties in coping with extreme event disturbances. Physical, cyber, and human domain resilience enhancement strategies are given for different cities separately. This study provides a practical tool to evaluate, compare, and enhance power system resilience for governments and public utilities.
C1 [Wang, Fengjuan; Xu, Jiuping] Sichuan Univ, Business Sch, Chengdu 610064, Peoples R China.
   [Wang, Fengjuan; Yan, Jinyue] Malardalen Univ, Sch Business Soc & Engn, Vasteras, Sweden.
   [Yan, Zhouxingyu] South Kent Sch, South Kent, CT USA.
   [Chen, Dan] China Elect Council, Elect Reliabil Management Ctr, Beijing, Peoples R China.
C3 Sichuan University; Malardalen University
RP Xu, JP (corresponding author), Sichuan Univ, Business Sch, Chengdu 610064, Peoples R China.
EM xujiuping@scu.edu.cn
RI YAN, JINYUE/Y-3099-2019
OI Yan, Jinyue/0000-0003-0300-0762
FU China Scholarship Council [202006240189]; National Key Research and
   Development Program of China [2018YFE0196000]
FX China Scholarship Council, Grant/Award Number: No. 202006240189;
   National Key Research and Development Program of China, Grant/Award
   Number: 2018YFE0196000
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NR 68
TC 3
Z9 4
U1 17
U2 106
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0272-4332
EI 1539-6924
J9 RISK ANAL
JI Risk Anal.
PD APR
PY 2023
VL 43
IS 4
BP 800
EP 819
DI 10.1111/risa.13941
EA MAY 2022
PG 20
WC Public, Environmental & Occupational Health; Mathematics,
   Interdisciplinary Applications; Social Sciences, Mathematical Methods
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Mathematics; Mathematical
   Methods In Social Sciences
GA D4XZ5
UT WOS:000790955000001
PM 35512754
DA 2025-04-22
ER

PT J
AU Wang, D
   Xu, PY
   An, BW
   Guo, QP
AF Wang, Dong
   Xu, Pei-Yuan
   An, Bo-Wen
   Guo, Qiu-Ping
TI Urban green infrastructure: bridging biodiversity conservation and
   sustainable urban development through adaptive management approach
SO FRONTIERS IN ECOLOGY AND EVOLUTION
LA English
DT Article
DE urban green infrastructure; biodiversity conservation; sustainable urban
   development; adaptive management; ecosystem services
ID ECOSYSTEM SERVICES; PROVISION; WILDLIFE; JUSTICE; ECOLOGY; CLIMATE;
   CITIES
AB Urban green infrastructure (UGI) is pivotal in reconciling biodiversity conservation with sustainable urban development through adaptive management approaches. This paper introduces a comprehensive conceptual framework integrating ecological principles, urban planning strategies, and adaptive management methodologies to nurture resilient and biodiverse urban landscapes. The essence of UGI lies in its capacity to bolster ecological connectivity, restore ecosystem functions, and provide habitats for diverse flora and fauna within urban settings. Fundamental principles governing UGI design underscore its multifunctionality, connectivity, diversity, and accessibility, emphasizing the importance of adaptive management marked by its iterative and participatory nature. Despite challenges posed by urbanization, such as habitat loss, pollution, and climate change, UGI interventions offer promising avenues for enhancing habitat quality, connectivity, and ecosystem resilience. Global case studies demonstrate the effectiveness of UGI in biodiversity conservation, leveraging initiatives like green roofs, urban forests, and community gardens. UGI significantly contributes to sustainable urban development by offering diverse ecosystem services across various domains. Adaptive management is critical for effective UGI planning and implementation, ensuring flexibility amidst evolving environmental conditions. However, UGI encounters hurdles, including funding constraints, institutional fragmentation, and equity issues. Addressing these challenges necessitates innovative financing mechanisms, community involvement, and policy innovations. UGI presents a transformative pathway towards fostering resilient, biodiverse, and sustainable urban landscapes, imperative for cities to thrive in the 21st century.
C1 [Wang, Dong; Xu, Pei-Yuan; An, Bo-Wen] Huaqiao Univ, Coll Econ & Finance, Quanzhou, Peoples R China.
   [Guo, Qiu-Ping] Yunnan Normal Univ, Pan Asia Business Sch, Kunming, Peoples R China.
C3 Huaqiao University; Yunnan Normal University
RP An, BW (corresponding author), Huaqiao Univ, Coll Econ & Finance, Quanzhou, Peoples R China.; Guo, QP (corresponding author), Yunnan Normal Univ, Pan Asia Business Sch, Kunming, Peoples R China.
EM agony08@126.com; qiupingguo@ynnu.edu.cn
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NR 60
TC 6
Z9 6
U1 28
U2 48
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
SN 2296-701X
J9 FRONT ECOL EVOL
JI Front. Ecol. Evol.
PD AUG 1
PY 2024
VL 12
AR 1440477
DI 10.3389/fevo.2024.1440477
PG 20
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA C6X9G
UT WOS:001290792400001
OA gold
DA 2025-04-22
ER

PT J
AU Evans, J
   Collins, D
   Chai, CA
AF Evans, Joshua
   Collins, Damian
   Chai, Cher-Ann
TI On thin ice: Assembling a resilient service hub
SO AREA
LA English
DT Article
DE assemblage; Canada; case study; homelessness; service hubs
ID GENTRIFICATION-INDUCED DISPLACEMENT; SOCIAL-SERVICES; LONDON; CITY
AB Inner-city service hubs are vital spaces of survival for homeless populations. They are also vulnerable to gentrification-induced displacement, putting the populations they serve at increased risk. This paper contributes to recent work on the resilience of inner-city service hubs through a case study of Edmonton, Canada. Specifically, we theorise the assemblage-like qualities of Edmonton's service hub, in the context of a major urban redevelopment project. As a heterogeneous grouping of different spaces of care, service hubs lend themselves well to assemblage thinking. Viewed from this vantage point, service hubs can been seen as relational achievements, assembled through articulations among voluntary sector, private and government organisations. We demonstrate how these articulations express multiple practices, ideals and values and add to the spatial resilience of the service hub in historically and spatially contingent ways.
C1 [Evans, Joshua; Collins, Damian; Chai, Cher-Ann] Univ Alberta, Dept Earth & Atmospher Sci, Edmonton, AB, Canada.
C3 University of Alberta
RP Evans, J (corresponding author), Univ Alberta, Dept Earth & Atmospher Sci, Edmonton, AB, Canada.
EM jdevans@ualberta.ca
RI Collins, Damian/KFQ-8791-2024
OI Evans, Joshua/0000-0002-4546-9115; Collins, Damian/0000-0002-7981-3586
FU Athabasca University
FX Athabasca University, Grant/Award Number: Academic Research Fund Grant
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NR 26
TC 6
Z9 6
U1 0
U2 7
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0004-0894
EI 1475-4762
J9 AREA
JI Area
PD SEP
PY 2019
VL 51
IS 3
BP 451
EP 460
DI 10.1111/area.12448
PG 10
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA IN4WE
UT WOS:000478676900008
DA 2025-04-22
ER

PT J
AU Rogerson, RJ
   Giddings, B
AF Rogerson, Robert J.
   Giddings, Bob
TI The future of the city centre: Urbanisation, transformation and
   resilience - a tale of two Newcastle cities
SO URBAN STUDIES
LA English
DT Article
DE planning; policy; redevelopment; regeneration; theory; urban studies
AB Recent debates over the content and theoretical orientation of urban studies act as a strong reminder that the nature and existence of the city as a form of spatial urban agglomeration is changing. They have acted positively as a heuristic to inspire critical analysis of urbanisation and helped to illuminate the considerable empirical variation over time and space in urban agglomeration forms. However, in shifting the focus onto the planetary reach of urbanisation, such debates risk deflecting attention away from the city core at a time when it too is being subjected to transformation. The city centre has been taken for granted as critical attention has been given to the impact of development and enterprise in extending the city outwards. The recent proliferation of public and policy interest in the future of the city centre as the archetypal expression of urban agglomeration has not been matched by similar growth in academic and theoretical accounts of its transformation. Drawing on the examples of two city centres, and placing them in the context of the recent debates of urban agglomeration theory, this article seeks to initiate deeper analysis and dialogue about the future of the urban core, including how it is being articulated and by whom. It argues for a greater analytic understanding of the ways in which the city centre as a physical and emotional entity has been so resilient, and advocates for stronger engagement with initiatives seeking to reactivate the city centre as a crucial epicentre of urban agglomeration.
C1 [Rogerson, Robert J.] Univ Strathclyde, Glasgow, Lanark, Scotland.
   [Giddings, Bob] Northumbria Univ, Newcastle Upon Tyne, Tyne & Wear, England.
C3 University of Strathclyde; Northumbria University
RP Rogerson, RJ (corresponding author), Univ Strathclyde, Inst Future Cities, 99 George St, Glasgow G1 1RD, Lanark, Scotland.
EM r.j.rogerson@strath.ac.uk
RI Rogerson, Robert/HLP-7082-2023
OI Giddings, Bob/0000-0003-1794-0894; Rogerson, Robert/0000-0001-6943-9263
FU AHRC [AH/R006881/1] Funding Source: UKRI
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NR 58
TC 13
Z9 15
U1 1
U2 51
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD AUG
PY 2021
VL 58
IS 10
BP 1967
EP 1982
AR 0042098020936498
DI 10.1177/0042098020936498
EA JUL 2020
PG 16
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA TK4LH
UT WOS:000558861000001
OA Green Accepted, hybrid
DA 2025-04-22
ER

PT J
AU Frey, K
   Ramírez, DRC
AF Frey, Klaus
   Calderon Ramirez, Daniel Ricardo
TI Multi-level network governance of disaster risks: the case of the
   Metropolitan Region of the Aburra Valley (Medellin, Colombia)
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article
DE disaster risks; multi-level governance; resilience; adaptation; Colombia
ID CLIMATE-CHANGE ADAPTATION; URBAN ADAPTATION; FRAMEWORK; VULNERABILITY;
   RETHINKING; RESILIENCE; CAPACITY; CITIES
AB Cities have increasingly been confronted with disasters, ranging from earthquakes and storms to floods and landslides. Traditional technocratic top-down approaches have proved inadequate to face disaster risks in urban agglomerations. Thus, expectations have risen that through multi-level governance, metropolitan regions could become more resilient by joining forces across scales and sectors, enabling them to implement adaptation strategies collectively. Under the leadership of the city of Medellin and integrated within the national risk governance system of Colombia, such a governance arrangement has been established in the Metropolitan Area of the Aburra Valley. Applying social network analysis, this paper analyses the institutional relationships within the multi-level risk governance network Red Riesgos. It demonstrates that the effectiveness of multi-level disaster risk governance networks depends primarily on the protagonist role of local governments and on their abilities to involve local communities and citizens and to interact constantly with higher-level authorities in the implementation process.
C1 [Frey, Klaus; Calderon Ramirez, Daniel Ricardo] Univ Fed ABC, UFABC, Ctr Engn Modelagem & Ciencias Sociais Aplicadas P, Sao Paulo, Brazil.
C3 Universidade Federal do ABC (UFABC)
RP Frey, K (corresponding author), Univ Fed ABC, UFABC, Ctr Engn Modelagem & Ciencias Sociais Aplicadas P, Sao Paulo, Brazil.
EM klaus.frey@ufabc.edu.br
RI Frey, Klaus/N-7667-2015
OI Frey, Klaus/0000-0002-7564-1764; Calderon-Ramirez, Daniel
   Ricardo/0000-0003-1127-2602
FU Brazilian National Council of Scientific and Technological Development
   (CNPq) [311887/2013-9]; Brazilian Coordination for the Improvement of
   Higher Education Personnel (CAPES) [1373863]
FX The research was funded by the Brazilian National Council of Scientific
   and Technological Development (CNPq) [grant number 311887/2013-9]; and
   the Brazilian Coordination for the Improvement of Higher Education
   Personnel (CAPES) [grant number 1373863].
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NR 67
TC 21
Z9 22
U1 5
U2 44
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0964-0568
EI 1360-0559
J9 J ENVIRON PLANN MAN
JI J. Environ. Plan. Manag.
PD FEB 23
PY 2019
VL 62
IS 3
BP 424
EP 445
DI 10.1080/09640568.2018.1470968
PG 22
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA IB5QP
UT WOS:000470326900004
DA 2025-04-22
ER

PT J
AU Zhou, JZ
   Hou, QH
AF Zhou, Jizhe
   Hou, Quanhua
TI Resilience assessment and planning of suburban rural settlements based
   on complex network
SO SUSTAINABLE PRODUCTION AND CONSUMPTION
LA English
DT Article
DE Suburban village; Spatial resilience; Complex network; Resilience
   assessment; Resilient planning
ID URBAN; URBANIZATION; CONSERVATION
AB Under complex external disturbances, rural suburbs are confronted with rapidly changing man-land conflict. In this context, the path of resilience development in coordination with the spatiotemporal changes of rural settlements should be taken. This study interpreted the complex system of rural settlements based on complicated social network in the case of Qin and Han New City, and developed a research framework of "spatial simulation-resilience evaluation-spatial planning". The results include the evolution trends of settlement space from present to future and its spatial resilience in static and dynamic states. In the present study, 14 central villages and 6 types of rural development were finalized, and the study area possessed a long-term spatiotemporal resilience when 85 villages remained, thus forming an ideal spatial pattern of "rural relic zones + characteristic towns". The findings can offer guidance for the resilience development in suburban villages as well as provide a basis for guiding the regional urban- rural coordination, village-town system planning and rural construction. (C) 2021 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
C1 [Zhou, Jizhe; Hou, Quanhua] Changan Univ, Middle Sect, Naner Huan Rd Xian,161 Changan Middle Rd, Xian 710064, Shaanxi, Peoples R China.
C3 Chang'an University
RP Hou, QH (corresponding author), Changan Univ, Middle Sect, Naner Huan Rd Xian,161 Changan Middle Rd, Xian 710064, Shaanxi, Peoples R China.
EM houquanhua@chd.edu.cn
OI Zhou, Jizhe/0000-0002-4284-0441
FU National Natural Science Foundation of China [52178030]; Major
   Theoretical and Practical Research Project in the Social Sciences in
   Shaanxi [2021ND0458]; Fundamental Research Funds for the Central
   Universities [300102411608]
FX This work was funded by the National Natural Science Foundation of China
   under Grant 51978058, National Natural Science Foundation of China under
   Grant 52178030, Major Theoretical and Practical Research Project in the
   Social Sciences in Shaanxi under Grant 2021ND0458, Fundamental Research
   Funds for the Central Universities under Grant 300102411608.
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NR 59
TC 29
Z9 30
U1 38
U2 231
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2352-5509
J9 SUSTAIN PROD CONSUMP
JI Sustain. Prod. Consump.
PD OCT
PY 2021
VL 28
BP 1645
EP 1662
DI 10.1016/j.spc.2021.09.005
EA SEP 2021
PG 18
WC Green & Sustainable Science & Technology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA WS3BP
UT WOS:000715060800003
DA 2025-04-22
ER

PT J
AU Joerin, J
   Shaw, R
   Takeuchi, Y
   Krishnamurthy, R
AF Joerin, Jonas
   Shaw, Rajib
   Takeuchi, Yukiko
   Krishnamurthy, Ramasamy
TI Action-oriented resilience assessment of communities in Chennai, India
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Chennai; community resilience; disaster risk reduction
ID DISASTER RESILIENCE; CLIMATE; ADAPTATION; ORGANIZATIONS; ENVIRONMENT;
   MANAGEMENT; GOVERNMENT; METAPHOR; HAZARD; MUMBAI
AB Building resilience to disasters is indispensable in cities, like Chennai, India, which are challenged by emerging urban disaster risks caused by impacts of urbanization and higher probability of future disasters due to climate change. In this paper, an action-oriented resilience assessment (AoRA), consisting of 63 actions, divided into 21 parameters and 5 dimensions (physical, social, economic, institutional and natural), is defined which has the objective to enhance the resilience of communities of Chennai to climate-related disasters. On the basis of responses from the selected target group, community leaders (councillors) in the 155 wards, the local government of Chennai is the key stakeholder to implement the proposed actions in the AoRA. However, further findings underpin that a multi-stakeholder approach, involving communities, academia, private organizations and NGOs, is needed to create disaster resilient communities.
C1 [Joerin, Jonas; Shaw, Rajib; Takeuchi, Yukiko] Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Kyoto 6068501, Japan.
   [Krishnamurthy, Ramasamy] Univ Madras, Dept Appl Geol, Madras, Tamil Nadu, India.
C3 Kyoto University; University of Madras
RP Joerin, J (corresponding author), Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Kyoto 6068501, Japan.
EM joerin.jonas@ks2.ecs.kyoto-u.ac.jp
RI Shaw, Rajib/AAI-4834-2020
OI Shaw, Rajib/0000-0003-3153-1800; Joerin, Jonas/0000-0003-1834-8112
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NR 49
TC 32
Z9 45
U1 10
U2 103
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1747-7891
EI 1878-0059
J9 ENVIRON HAZARDS-UK
JI Environ. Hazards
PY 2012
VL 11
IS 3
BP 226
EP 241
DI 10.1080/17477891.2012.689248
PG 16
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 999GT
UT WOS:000308298500004
DA 2025-04-22
ER

PT J
AU Suarez-Inclan, AM
   Allende-Prieto, C
   Roces-Garcia, J
   Rodriguez-Sanchez, JP
   Sanudo-Fontaneda, LA
   Rey-Mahia, C
   alvarez-Rabanal, FP
AF Suarez-Inclan, Antonio Menendez
   Allende-Prieto, Cristina
   Roces-Garcia, Jorge
   Rodriguez-Sanchez, Juan P.
   Sanudo-Fontaneda, Luis A.
   Rey-Mahia, Carlos
   alvarez-Rabanal, Felipe P.
TI Development of a Multicriteria Scheme for the Identification of
   Strategic Areas for SUDS Implementation: A Case Study from Gijon, Spain
SO SUSTAINABILITY
LA English
DT Article
DE bio-urbanism; smart and resilient water cities; NBS; urban drainage
   planning; MCDA; AHP; SUDS location
ID DECISION-ANALYSIS; WATER-QUALITY; URBAN-DESIGN; IMPACT; MANAGEMENT;
   SURFACE; CITIES
AB Spain has been pinpointed as one of the European countries at major risk of extreme urban events. Thus, Spanish cities pursue new urban plans to increase their resilience. In this scenario, experiences in the implementation of Sustainable Urban Drainage Systems (SUDS) have increased substantially. Nevertheless, few cities have developed a global urban strategy for SUDS, lacking, in many cases, a method to identify strategic areas to maximize their synergetic benefits. Furthermore, there is still a need for a holistic Multicriteria Decision Analysis (MCDA) framework that considers the four pillars of SUDS design. The city of Gijon, NW Spain, has been selected as a case study due to its environmental and climatic stresses. This research presents the methodology developed for this city, which aims to analyze the need for SUDS implementation throughout the identification of strategic areas. With this aim, a combination of Geographic Information System (GIS) software and the MCDA Analytical Hierarchical Process (AHP) were proposed. The results show the potential for SUDS' implementation, according to nine criteria related to the SUDS' design pillars. We found that the areas where the implementation of SUDS would bring the greatest functional, environmental and social benefits are mainly located in consolidated urban areas.
C1 [Suarez-Inclan, Antonio Menendez; Allende-Prieto, Cristina; Roces-Garcia, Jorge; Sanudo-Fontaneda, Luis A.; Rey-Mahia, Carlos; alvarez-Rabanal, Felipe P.] Univ Oviedo, INDUROT Res Inst, Civil Environm & Geomat Engn Res Unit CEGE, Gonzalo Gutierrez Quiros S-N, Mieres 33600, Spain.
   [Allende-Prieto, Cristina] Univ Oviedo, Dept Min Exploitat & Prospecting, Gonzalo Gutierrez Quiros S-N, Mieres 33600, Spain.
   [Roces-Garcia, Jorge; Sanudo-Fontaneda, Luis A.; Rey-Mahia, Carlos] Univ Oviedo, Dept Construct & Mfg Engn, Gonzalo Gutierrez Quiros S-N, Mieres 33600, Spain.
   [Rodriguez-Sanchez, Juan P.] Univ Andes, Environm Engn Res Ctr CIIA, Dept Civil & Environm Engn, Bogota 111711, Colombia.
C3 University of Oviedo; University of Oviedo; University of Oviedo;
   Universidad de los Andes (Colombia)
RP Suarez-Inclan, AM (corresponding author), Univ Oviedo, INDUROT Res Inst, Civil Environm & Geomat Engn Res Unit CEGE, Gonzalo Gutierrez Quiros S-N, Mieres 33600, Spain.
EM pabl-rod@uniandes.edu.co; pabl-rod@uniandes.edu.co;
   pabl-rod@uniandes.edu.co; pabl-rod@uniandes.edu.co;
   pabl-rod@uniandes.edu.co; pabl-rod@uniandes.edu.co;
   pabl-rod@uniandes.edu.co
RI Roces García, Jorge/AAD-9377-2021; Sañudo-Fontaneda, Luis/AAB-5045-2020;
   Allende-Prieto, Cristina/AAB-6133-2019; Menéndez Suárez-Inclán,
   Antonio/ADM-0076-2022; Rodriguez Sanchez, Juan Pablo/A-2872-2013;
   /K-9034-2017
OI Allende Prieto, Cristina/0000-0002-1178-2269; Sanudo-Fontaneda, Luis
   Angel/0000-0002-1532-939X; Roces-Garcia, Jorge/0000-0002-8405-8976;
   Rey-Mahia, Carlos/0000-0002-8442-5991; Rodriguez Sanchez, Juan
   Pablo/0000-0001-5647-4385; /0000-0002-8011-7246
FU Council of Gijon through the University Institute of Industrial
   Technology of Asturias [IUTA-20-GIJON-01]; Gijon Water Company (Empresa
   Municipal de Aguas S.A.)
FX This work was partially supported by the Council of Gijon through the
   University Institute of Industrial Technology of Asturias (Ref.
   IUTA-20-GIJON-01). The views and opinions expressed herein do not
   necessarily reflect those of the IUTA. This investigation was also
   funded the Gijon Water Company (Empresa Municipal de Aguas S.A.) through
   the project with reference number FUO-21-226.
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NR 98
TC 5
Z9 5
U1 6
U2 18
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2022
VL 14
IS 5
AR 2877
DI 10.3390/su14052877
PG 20
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA ZW7OL
UT WOS:000771398000001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Nguyen, DN
   Usuda, Y
   Imamura, F
AF Nguyen, David N.
   Usuda, Yuichiro
   Imamura, Fumihiko
TI Gaps in and Opportunities for Disaster Risk Reduction in Urban Areas
   Through International Standardization of Smart Community Infrastructure
SO SUSTAINABILITY
LA English
DT Article
DE risk management; resiliency; sustainability; disasters; smart cities
ID CLIMATE-CHANGE ADAPTATION; PREPAREDNESS; INTEGRATION; RESILIENCE;
   PRIVACY
AB Global communities are becoming increasingly vulnerable to natural hazards and climate change, and the rapid pace of urbanization exacerbates these risks. According to the World Bank, approximately 50% of the world's population lives in areas exposed to natural hazards, making the need to overcome the challenges to sustainable urban development pressing. The increasing frequency of heavy rain, flooding, landslides, and wildfires underscores the urgent need for disaster risk mitigation strategies, aligned with sustainable development goals. Infrastructure plays a crucial role in cultivating resilient cities that can withstand, recover from, and adapt to disasters, while promoting long-term sustainability, by minimizing environmental degradation and encouraging responsible development. International standards for smart community infrastructure provide significant advantages, including cost reductions, technology transfer, and enhanced innovation through improved global competitiveness. This paper investigates how these standards can empower community stakeholders to strengthen both the resilience and sustainability of urban areas, facilitating balanced growth that addresses environmental and social demands.
C1 [Nguyen, David N.] Ritsumeikan Asia Pacific Univ, Coll Sustainabil & Tourism, Beppu, Oita 8740011, Japan.
   [Usuda, Yuichiro] Natl Res Inst Earth Sci & Disaster Resilience, Ibaraki 3050006, Japan.
   [Imamura, Fumihiko] Tohoku Univ, Int Res Inst Disaster Sci, Sendai, Miyagi 9800845, Japan.
C3 Ritsumeikan Asia Pacific University; National Research Institute for
   Earth Science & Disaster Resilience; Tohoku University
RP Nguyen, DN (corresponding author), Ritsumeikan Asia Pacific Univ, Coll Sustainabil & Tourism, Beppu, Oita 8740011, Japan.
EM nguyen.david.ngoc.a6@alumni.tohoku.ac.jp; usuyu@bosai.go.jp;
   fumihiko.imamura.c3@tohoku.ac.jp
RI USUDA, Yuichiro/AAF-3290-2020; Nguyen, David/C-1546-2019
OI Nguyen, David/0000-0001-8902-8461; Imamura, Fumihiko/0000-0001-7628-575X
FU Ministry of Economy, Trade and Industry, Japan; JST OPERA Prog.
   [JPMJOP1852]
FX This research was supported by a project from the Ministry of Economy,
   Trade and Industry, Japan, for the development of international
   standardization standards, and the JST OPERA Prog. on the "Creation of
   R-EIC (Resilient-Energy-Information-Communication) Converged Network
   Infrastructure based on Overall Optimization of Autonomous Distributed
   Decentralized Cooperative DC Microgrids" (JPMJOP1852).
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NR 53
TC 2
Z9 2
U1 8
U2 8
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2024
VL 16
IS 21
AR 9586
DI 10.3390/su16219586
PG 13
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA L6S4Q
UT WOS:001351993700001
OA gold
DA 2025-04-22
ER

PT J
AU Huang, ZR
   Loo, BPY
AF Huang, Zhiran
   Loo, Becky P. Y.
TI Vulnerability assessment of urban rail transit in face of disruptions: A
   framework and some lessons from Hong Kong
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Vulnerability assessment; Railway disruptions; Decision support system;
   Railway management
ID PUBLIC-TRANSIT; ORIENTED DEVELOPMENT; TRANSPORT RESILIENCE; LAND-USE;
   NETWORKS; RISK; SHANGHAI; CITIES; METRO; PATTERNS
AB Transport systems are confronting challenges under disruptive events. In transit-oriented cities, the heavy reliance on urban railways makes the transport system ever more vulnerable. Extant literature has paid much attention to urban rail transit vulnerability and resilience against natural disasters. Yet, less focus has been put on disturbances caused by people. In this study, by integrating the on- and off-road situations, we assess the urban rail transit vulnerability under the Anti-extradition Law Amendment Bill (Anti-ELAB) movement in Hong Kong in 2019, during which the Mass Transit Railway (MTR) services were severely disrupted. Our results show that very highly vulnerable stations are spatially concentrated in traditional urban core areas. It is also observed that roads around some new town stations became more congested during service disruption. When disruptive events occurred during non-peak hours, the level of congestion in more than half of stations' ambient roads did not show significant changes. This study sets forth a rail transit vulnerability assessment matrix and suggests that future assessments of transport vulnerability should take a more holistic approach and consider both on- and offroad traffic situations. The findings also provide directions for building resilient cities in the future.
C1 [Huang, Zhiran] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
   [Loo, Becky P. Y.] Univ Hong Kong, Dept Geog, Hong Kong, Peoples R China.
   [Loo, Becky P. Y.] Jiangxi Normal Univ, Sch Geog & Environm, Nanchang, Peoples R China.
C3 Hong Kong Polytechnic University; University of Hong Kong; Jiangxi
   Normal University
RP Loo, BPY (corresponding author), Univ Hong Kong, Dept Geog, Hong Kong, Peoples R China.; Loo, BPY (corresponding author), Jiangxi Normal Univ, Sch Geog & Environm, Nanchang, Peoples R China.
EM huangzr@connect.hku.hk; bpyloo@hku.hk
RI Huang, Zhiran/KIB-4781-2024; Loo, Becky/O-7394-2018
OI Huang, Zhiran/0000-0001-9567-8399; Loo, Becky/0000-0003-0822-5354
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NR 93
TC 15
Z9 15
U1 12
U2 72
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD NOV
PY 2023
VL 98
AR 104858
DI 10.1016/j.scs.2023.104858
EA AUG 2023
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA R3AM9
UT WOS:001063110400001
DA 2025-04-22
ER

PT J
AU Liu, YX
   Wang, X
   Song, C
   Chen, J
   Shu, H
   Wu, MB
   Guo, SH
   Huang, Q
   Pei, T
AF Liu, Yaxi
   Wang, Xi
   Song, Ci
   Chen, Jie
   Shu, Hua
   Wu, Mingbo
   Guo, Sihui
   Huang, Qiang
   Pei, Tao
TI Quantifying human mobility resilience to the COVID-19 pandemic: A case
   study of Beijing, China
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Human mobility; Resilience; COVID-19; Pandemic; Heterogeneities; Mobile
   phone data
ID SOCIOECONOMIC-FACTORS; PHONE DATA; RESTRICTIONS; FRAMEWORK; CITY
AB Human mobility, as a fundamental requirement of everyday life, has been most directly impacted during the COVID-19 pandemic. Existing studies have revealed its ensuing changes. However, its resilience, which is defined as people's ability to resist such impact and maintain their normal mobility, still remains unclear. Such resilience reveals people's response capabilities to the pandemic and quantifying it can help us better understand the interplay between them. Herein, we introduced an integrated framework to quantify the resilience of human mobility to COVID-19 based on its change process. Taking Beijing as a case study, the resilience of different mobility characteristics among different population groups, and under different waves of COVID-19, were compared. Overall, the mobility range and diversity were found to be less resilient than decisions on whether to move. Females consistently exhibited lower resilience than males; middle-aged people exhibited the lowest resilience under the first wave of COVID-19 while older adult's resilience became the lowest during the COVID-19 rebound. With the refinement of pandemic-control measures, human mobility resilience was enhanced. These findings reveal heterogeneities and variations in people's response capabilities to the pandemic, which can help formulate targeted and flexible policies, and thereby promote sustainable and resilient urban management.
C1 [Liu, Yaxi; Wang, Xi; Song, Ci; Chen, Jie; Shu, Hua; Wu, Mingbo; Guo, Sihui; Huang, Qiang; Pei, Tao] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, State Key Lab Resources & Environm Informat Syst, 11A Datun Rd, Beijing 100101, Peoples R China.
   [Liu, Yaxi; Wang, Xi; Song, Ci; Wu, Mingbo; Guo, Sihui; Huang, Qiang; Pei, Tao] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Pei, Tao] Jiangsu Ctr Collaborat Innovat Geog Informat Resou, Nanjing 210023, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Geographic Sciences & Natural
   Resources Research, CAS; Chinese Academy of Sciences; University of
   Chinese Academy of Sciences, CAS
RP Pei, T (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, State Key Lab Resources & Environm Informat Syst, 11A Datun Rd, Beijing 100101, Peoples R China.
EM peit@lreis.ac.cn
RI xi, wang/HIZ-7736-2022; Pei, Tao/KVB-5494-2024; wu, mingbo/N-4869-2018;
   Guo, Sihui/HTP-3086-2023
OI Pei, Tao/0000-0002-5311-8761; Wang, Xi/0000-0003-1859-9958
FU National Key Research & Develop- ment Program of China; National Natural
   Science Foundation of China (NSFC);  [2022YFC3800803];  [42071436]; 
   [42101431]
FX Funding This work was supported by the National Key Research & Develop-
   ment Program of China (Grant No. 2022YFC3800803) and the National
   Natural Science Foundation of China (NSFC) (Grant Nos. 42071436 and
   42101431) .
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NR 91
TC 30
Z9 32
U1 11
U2 95
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD FEB
PY 2023
VL 89
AR 104314
DI 10.1016/j.scs.2022.104314
EA DEC 2022
PG 16
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 7Z5UM
UT WOS:000915624200003
PM 36438675
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Hewitt, E
   Oberg, A
   Coronado, C
   Andrews, C
AF Hewitt, Elizabeth
   Oberg, Angela
   Coronado, Carla
   Andrews, Clinton
TI Assessing "green" and "resilient" building features using a purposeful
   systems approach
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Resilience; Green building; Sustainability; Cities; Hurricane Sandy;
   Purposeful systems
ID BUILT ENVIRONMENT; ENERGY EFFICIENCY; URBAN RESILIENCE; CLIMATE-CHANGE;
   EXTREME HEAT; SUSTAINABILITY; STRATEGIES; QUESTIONS; CITIES
AB There is significant overlap between the goals of two urban imperatives - sustainability and resilience - and current research highlights synergies. However, few studies are able to test this assumption under disruptive conditions. This paper questions the relevance of green building features to support resilience during a disruption, relying on fieldwork conducted at a green multifamily building before and after the 2012 Hurricane Sandy. Findings indicate that the building fared well during the storm, but much of the green infrastructure was bypassed during preparations; thus, the building performed largely as a conventional building. Although green features can potentially provide redundancies or substitutes for several building services, the characteristics that fostered the successful performance of the study building during the storm - effective building management, a superior location, and residents with resources - outweighed the importance of the green infrastructure. This finding highlights the need to redefine the goals of sustainability and resilience to ensure synergies. It identifies highly trained, empowered operating staff as the key. This research posits that current views of resilience can be expanded to include purposeful systems, or a system's ability to continue to serve its end-users' specific purposes while in an atypical state, even during a shock.
C1 [Hewitt, Elizabeth] SUNY Stony Brook, Dept Technol & Soc, Comp Sci Rm 1411,100 Nicolls Rd, Stony Brook, NY 11794 USA.
   [Oberg, Angela] Rutgers State Univ, Dept Human Ecol, 55 Dudley Rd, New Brunswick, NJ 08901 USA.
   [Coronado, Carla] Rutgers State Univ, Edward J Bloustein Sch Planning & Publ Policy, 33 Livingston Ave, New Brunswick, NJ 08901 USA.
   [Andrews, Clinton] Rutgers State Univ, Edward J Bloustein Sch Planning & Publ Policy, 33 Livingston Ave 383, New Brunswick, NJ 08901 USA.
C3 State University of New York (SUNY) System; Stony Brook University;
   Rutgers University System; Rutgers University New Brunswick; Rutgers
   University System; Rutgers University New Brunswick; Rutgers University
   System; Rutgers University New Brunswick
RP Hewitt, E (corresponding author), SUNY Stony Brook, Dept Technol & Soc, Comp Sci Rm 1411,100 Nicolls Rd, Stony Brook, NY 11794 USA.
EM elizabeth.hewitt@stonybrook.edu; angela.oberg@rutgers.edu;
   carla.coronado@rutgers.edu; cja1@rutgers.edu
RI Hewitt, Elizabeth/AAS-3210-2020; Andrews, Clinton/X-6346-2018
OI Andrews, Clinton/0000-0002-2989-8091; Hewitt,
   Elizabeth/0000-0002-7553-1266; Oberg, Angela/0000-0003-0211-4266
FU National Science Foundation [CMMI-0725503]
FX This work was supported by the National Science Foundation
   (CMMI-0725503).
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NR 67
TC 22
Z9 25
U1 4
U2 41
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JUL
PY 2019
VL 48
AR 101546
DI 10.1016/j.scs.2019.101546
PG 8
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA IJ4FF
UT WOS:000475859200034
DA 2025-04-22
ER

PT J
AU Mondal, A
   Garg, RD
AF Mondal, Arnab
   Garg, Rahul Dev
TI Assessing the role of sustainable water bodies in urban drainage systems
   to mitigate urban flooding: A case study of Gurgaon, Haryana, India
SO PHYSICS AND CHEMISTRY OF THE EARTH
LA English
DT Article
DE Urban; Flooding; Sustainable development; Drainage; Sustainable
   development goals
ID STORMWATER MANAGEMENT; CLIMATE-CHANGE; URBANIZATION; CHINA; SWMM
AB For the last 5 years, Gurgaon a city in India has been facing an issue of urban flooding due to illicit encroachments over the local waterbodies, poor drainage system and increasing rainfall. In this study, Remote sensing data are employed to find the most flooded areas identified using Partial Least Square Regression and 18 new retention ponds are proposed to build a Sustainable Drainage System (SuDS) in open space and barren lands. In SWMM, the Urban Drainage System (UDS) model is simulated using 24-h rainfall hyetograph from hourly PERSIANN-CSS rainfall data (yearly rainfall events) and 7-h rainfall hyetograph from half-hourly IMERG Global Precipitation Data (extreme rainfall events) from 2000 to 2023. After comparing both UDS and SuDS in SWMM, it is found that the flood volume has decreased significantly from 240 CMS to 180 CMS (for yearly rainfall) and 500 CMS to 350 CMS (7-h rainfall hyetograph). The study also compares the structural resilience of the drainage system under the conditions of no link failure and single link failure scenarios. In no failure situation, 20% more resilience has been achieved for yearly rainfall and 10% more for extreme rainfall events. In single link failure conditions, SuDS is helping to reach 20-47% resilience for yearly rainfall events and 7-30% resilience for extreme rainfall events. Thus, this study helps to achieve SDGs 11 and 13 to build a resilient and climate-adaptive urban drainage in Gurgaon. The study gives significant insights regarding the competency of urban waterbodies to city planners and policymakers.
C1 [Mondal, Arnab; Garg, Rahul Dev] Indian Inst Technol Roorkee, Dept Civil Engn, Geomat Engn Grp, Roorkee 247667, Uttarakhand, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Roorkee
RP Mondal, A (corresponding author), Indian Inst Technol Roorkee, Dept Civil Engn, Geomat Engn Grp, Roorkee 247667, Uttarakhand, India.
EM 2103arn@gmail.com
RI Garg, Rahul/F-3533-2018
OI Mondal, Arnab/0000-0002-5028-4190
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NR 92
TC 1
Z9 1
U1 7
U2 7
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1474-7065
EI 1873-5193
J9 PHYS CHEM EARTH
JI Phys. Chem. Earth
PD FEB
PY 2025
VL 137
AR 103803
DI 10.1016/j.pce.2024.103803
EA NOV 2024
PG 18
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA M8F4B
UT WOS:001359833400001
DA 2025-04-22
ER

PT J
AU Guo, P
   Li, Q
   Guo, HD
   Li, HM
   Yang, LB
AF Guo, Ping
   Li, Qin
   Guo, Haidong
   Li, Huimin
   Yang, Lingbo
TI A Bibliometric and Visual Analysis of Global Urban Resilience Research
   in 2011-2020: Development and Hotspots
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; bibliometric analysis; knowledge map; research trend
ID ECOSYSTEM SERVICES; CLIMATE-CHANGE; ENVIRONMENTAL JUSTICE; GREEN
   INFRASTRUCTURE; SUSTAINABILITY; MANAGEMENT; FRAMEWORK; GARDENS; CITIES;
   TRANSFORMATION
AB Urban resilience (UR), which promotes the implementation of resilient cities, has received widespread attention. The purpose of this study is to visualize the knowledge background, research status, and knowledge structure of relevant literatures by using a Citespace based scientometrics survey. The results show that UR is an increasingly popular topic, with 2629 articles published during the study period. (1) The most prolific publications and journals involved in the flourishment of UR research were identified by co-citation. The United States was the most productive contributor, with numerous publications and active institutions. Journal of Cleaner Production, Sustainability, International Journal of Disaster Risk Reduction were the three most cited journals. (2) Co-occurrence analysis was employed to determine the highly productive keywords, and subject categories in the UR domain, including "environmental science & ecology", "environmental sciences, "science & technology", "environmental studies", "green & sustainable science & technology", and "water resources". (3) The diversity of highly cited authors in different countries and regions confirmed the evolution of UR studies. (4) Furthermore, the classification of UR knowledge was performed in the form of clusters and knowledge structure to achieve ten distinct sub-domains (e.g., Urban floods and stormwater management, Urban ecosystem services, Urban landscapes, and Trauma). This study provides an overview of UR research and research topics so that future researchers can identify their research topics and partners.
C1 [Guo, Ping; Li, Huimin] Xian Univ Architecture & Technol, Sch Civil Engn, Xian 710055, Peoples R China.
   [Li, Qin] Beijing Univ Civil Engn & Architecture, Sch Architecture & Urban Planning, Beijing 100044, Peoples R China.
   [Guo, Haidong] Lanzhou Jiaotong Univ, Sch Civil Engn, Lanzhou 730070, Peoples R China.
   [Yang, Lingbo] Shaanxi Iron & Steel Grp Co Ltd, Xian 710018, Peoples R China.
C3 Xi'an University of Architecture & Technology; Beijing University of
   Civil Engineering & Architecture; Lanzhou Jiaotong University
RP Li, Q (corresponding author), Beijing Univ Civil Engn & Architecture, Sch Architecture & Urban Planning, Beijing 100044, Peoples R China.; Guo, HD (corresponding author), Lanzhou Jiaotong Univ, Sch Civil Engn, Lanzhou 730070, Peoples R China.
EM guoping@xauat.edu.cn; liqin@bucea.edu.cn; ghd_lzjt@outlook.com;
   li_huimin2005@126.com; sgjtylb@163.com
OI Guo, Ping/0000-0002-0293-2501
FU 13th Five-Year Plan for Education and Science of Beijing [CDDB19167];
   China Construction Education Association Project [2019061]; Special fund
   support for basic scientific research business expenses of municipal
   Universities of Beijing University of Civil Engineering and Architecture
   [x20055]
FX This research was funded by 2019 annual project of the 13th Five-Year
   Plan for Education and Science of Beijing (CDDB19167); China
   Construction Education Association Project (2019061); and Special fund
   support for basic scientific research business expenses of municipal
   Universities of Beijing University of Civil Engineering and
   Architecture(x20055).
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NR 97
TC 17
Z9 17
U1 11
U2 93
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JAN
PY 2022
VL 14
IS 1
AR 229
DI 10.3390/su14010229
PG 23
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA YV2ZQ
UT WOS:000752601000001
OA gold
DA 2025-04-22
ER

PT J
AU van Veelen, PC
   Stone, K
   Jeuken, A
AF van Veelen, Peter C.
   Stone, Karin
   Jeuken, Ad
TI Planning resilient urban waterfronts using adaptive pathways
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-WATER MANAGEMENT
LA English
DT Article
DE floods & floodworks; town & city planning; weather
ID ADAPTATION; SYSTEMS
AB Although resilience is widely embraced as a concept for adapting urbanised deltas, there is no planning method yet developed to operationalise resilience at the scale of urban development. The recently introduced adaptive pathway method allows stakeholders to consider a wide portfolio of adaptation actions including 'sell-by dates' (the time after which an adaptation action is no longer desirable or effective) and the potential to change from one action to another. This paper explores the applicability of this method for the planning of adaptive waterfront development by presenting the results of case study research in one of the flood-prone areas of Rotterdam. It is concluded that the method is effective to evaluate and select appropriate urban flood adaptation strategies. A weak aspect of the method, however, is that it relies on highly detailed information and the capacity of stakeholders to manage long-term pathways.
C1 [van Veelen, Peter C.] Delft Univ Technol, Fac Architecture & Built Environm, Dept Urbanism, Delft, Netherlands.
   [Stone, Karin] Deltares, Urban Flood Risk Management, Delft, Netherlands.
   [Stone, Karin] Deltares, Urban Flood Risk Management, Utrecht, Netherlands.
   [Jeuken, Ad] Deltares, Climate Adaptat & Water Management, Delft, Netherlands.
   [Jeuken, Ad] Deltares, Climate Adaptat & Water Management, Utrecht, Netherlands.
C3 Delft University of Technology; Deltares; Deltares; Deltares; Deltares
RP van Veelen, PC (corresponding author), Delft Univ Technol, Fac Architecture & Built Environm, Dept Urbanism, Delft, Netherlands.
OI Jeuken, Ad/0000-0002-6903-5493
CR [Anonymous], 892013B KFC
   [Anonymous], WATERROBUUST BOUWEN
   [Anonymous], J WATER CLI IN PRESS
   [Anonymous], 892013D KNOWL CLIM
   [Anonymous], THESIS TU DELFT DELF
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   [Anonymous], 1978, ADAPTIVE ENV ASSESSM
   [Anonymous], 892013C KFC
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NR 32
TC 11
Z9 13
U1 1
U2 44
PU ICE PUBLISHING
PI WESTMINISTER
PA INST CIVIL ENGINEERS, 1 GREAT GEORGE ST, WESTMINISTER SW 1P 3AA, ENGLAND
SN 1741-7589
EI 1751-7729
J9 P I CIVIL ENG-WAT M
JI Proc. Inst. Civil. Eng.-Water Manag.
PD APR
PY 2015
VL 168
IS 2
BP 49
EP 56
DI 10.1680/wama.14.00062
PG 8
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA CE9XU
UT WOS:000352197700002
DA 2025-04-22
ER

PT J
AU Sousa-Silva, R
   Cameron, E
   Paquette, A
AF Sousa-Silva, Rita
   Cameron, Elyssa
   Paquette, Alain
TI Prioritizing Street Tree Planting Locations to Increase Benefits for All
   Citizens: Experience From Joliette, Canada
SO FRONTIERS IN ECOLOGY AND EVOLUTION
LA English
DT Article
DE urban trees; urban forest planning; priority planting; ecosystem
   services; resilience
ID URBAN GREEN SPACE; CLIMATE-CHANGE; NORTH-AMERICA; CITIES; FOREST; COSTS;
   DIVERSITY; IMPACT; URBANIZATION; VEGETATION
AB As the climate continues to warm and the world becomes more urbanized, our reliance on trees and the benefits they provide is rapidly increasing. Many cities worldwide are planting trees to offset rising temperatures, trap pollutants, and enhance environmental and human health and well-being. To maximize the benefits of planting trees and avoid further increasing social inequities, a city needs to prioritize where to establish trees by first identifying those areas of greatest need. This work aims to demonstrate a spatially explicit approach for cities to determine these priority locations to achieve the greatest returns on specific benefits. Criteria for prioritization were developed in tandem with the City of Joliette, Canada, and based on nine indicators: surface temperature, tree density, vegetation cover, resilience, tree size and age, presence of species at risk, land use type, socioeconomic deprivation, and potential for active transportation. The City's preferences were taken into account when assigning different weights to each indicator. The resulting tree planting priority maps can be used to target street tree plantings to locations where trees are needed most. This approach can be readily applied to other cities as these criteria can be adjusted to accommodate specific tree canopy goals and planning constraints. As cities are looking to expand tree canopy, we hope this work will assist in sustaining and growing their urban forest, enabling it to be more resilient and to keep providing multiple and sustained benefits where they are needed the most.
C1 [Sousa-Silva, Rita; Cameron, Elyssa; Paquette, Alain] Univ Quebec Montreal, Ctr Forest Res, Montreal, PQ, Canada.
C3 University of Quebec; University of Quebec Montreal
RP Sousa-Silva, R (corresponding author), Univ Quebec Montreal, Ctr Forest Res, Montreal, PQ, Canada.
EM silva.as.rita@gmail.com
RI Sousa-Silva, Rita/K-9520-2013
OI Sousa-Silva, Rita/0000-0001-8640-6121
FU Ministere de l'Environnement et de la Lutte Contre les Changements
   Climatiques du Quebec
FX This research was supported by the City of Joliette and by the Programme
   Climat Municipalites from the Ministere de lEnvironnement et de la Lutte
   Contre les Changements Climatiques du Quebec.
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NR 78
TC 5
Z9 6
U1 3
U2 19
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
SN 2296-701X
J9 FRONT ECOL EVOL
JI Front. Ecol. Evol.
PD SEP 23
PY 2021
VL 9
AR 716611
DI 10.3389/fevo.2021.716611
PG 13
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA WV5LR
UT WOS:000717278700001
OA gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Nguyen, NTH
   Friess, DA
   Todd, PA
   Mazor, T
   Lovelock, CE
   Lowe, R
   Gilmour, J
   Chou, LM
   Bhatia, N
   Jaafar, Z
   Tun, K
   Yaakub, SM
   Huang, DW
AF Nguyen, Nhung T. H.
   Friess, Daniel A.
   Todd, Peter A.
   Mazor, Tessa
   Lovelock, Catherine E.
   Lowe, Ryan
   Gilmour, James
   Chou, Loke Ming
   Bhatia, Natasha
   Jaafar, Zeehan
   Tun, Karenne
   Yaakub, Siti Maryam
   Huang, Danwei
TI Maximising resilience to sea-level rise in urban coastal ecosystems
   through systematic conservation planning
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Climate change; Sea -level rise; Marxan; SLAMM; Southeast Asia; Tropical
   ecosystems; Wetlands
ID HARD CORAL COMMUNITIES; CLIMATE-CHANGE; MARINE-ECOSYSTEMS; REEF CORALS;
   SALT-MARSH; HABITATS; MANGROVE; VULNERABILITY; DIVERSITY; PATTERNS
AB Coastal cities and their natural environments are vulnerable to the impacts of climate change, especially sea-level rise (SLR). Hard coastal defences play a key role in protecting at-risk urban coastal populations from flooding and erosion, but coastal ecosystems also play important roles in the overall sustainability and resilience of cities and urban centres by contributing to coastal protection. Conserving coastal ecosystems and maximising their resilience will ensure that urban coastal communities can continue to benefit from ecosystem services and improve their adaptive capacity to cope with adverse impacts in the future. Using the hyper-urbanised coast of Singapore as a case study, we modelled the resilience of coastal wetlands to SLR and integrated resilience in conservation plan-ning. We found that the responses of coastal habitats to rising sea level vary across the modelling periods. While there is a slight net gain in the extent of mangrove forests and tidal flats by the end of the century due to potential habitat conversion, the existing habitats will experience a loss in coverage. Highly modified coastlines associated with urbanisation impede the ability of existing wetlands to migrate landward, which is a key mechanism for coastal habitats to cope with rising sea levels. Systematic conservation planning can identify sites that are potentially resilient to SLR and incorporate factors that influence an ecosystem's capability to respond to change. Crucially, the relatively slow rates of SLR and persistence of coastal wetlands during the earlier half of this century present an opportunity to introduce management interventions aimed at enhancing ecosystem resilience.
C1 [Nguyen, Nhung T. H.; Todd, Peter A.; Chou, Loke Ming; Jaafar, Zeehan; Huang, Danwei] Natl Univ Singapore, Dept Biol Sci, 16 Sci Dr 4, Singapore 117558, Singapore.
   [Friess, Daniel A.] Natl Univ Singapore, Dept Geog, 1 Arts Link, Singapore 117570, Singapore.
   [Friess, Daniel A.; Huang, Danwei] Natl Univ Singapore, Ctr Nat based Climate Solut, 16 Sci Dr 4, Singapore 117558, Singapore.
   [Mazor, Tessa] Dept Environm Land Water & Planning, Biodivers Div, East Melbourne, Vic 3002, Australia.
   [Lovelock, Catherine E.] Univ Queensland, Sch Biol Sci, St Lucia, Qld 4072, Australia.
   [Lowe, Ryan] Univ Western Australia, Sch Earth Sci, Perth, WA 6009, Australia.
   [Gilmour, James] Australian Inst Marine Sci, Indian Ocean Marine Res Ctr, Crawley, WA 6009, Australia.
   [Chou, Loke Ming; Jaafar, Zeehan; Huang, Danwei] Natl Univ Singapore, Trop Marine Sci Inst, 18 Kent Ridge Rd, Singapore 119227, Singapore.
   [Bhatia, Natasha] Nanyang Technol Univ, Asian Sch Environm, Singapore 637459, Singapore.
   [Tun, Karenne] Natl Biodivers Ctr, Natl Pk Board, Singapore 259569, Singapore.
   [Yaakub, Siti Maryam] DHI Water & Environm Singapore, Sustainabil & Climate Solut, Singapore 608526, Singapore.
   [Nguyen, Nhung T. H.] Nat Advisory, 5-61-63 Camberwell Rd, Hawthorn East, Vic 3123, Australia.
C3 National University of Singapore; National University of Singapore;
   National University of Singapore; University of Queensland; University
   of Western Australia; University of Western Australia; Australian
   Institute of Marine Science; National University of Singapore; Nanyang
   Technological University; Danish Hydraulic Institute (DHI)
RP Nguyen, NTH; Huang, DW (corresponding author), Natl Univ Singapore, Dept Biol Sci, 16 Sci Dr 4, Singapore 117558, Singapore.; Huang, DW (corresponding author), Natl Univ Singapore, Trop Marine Sci Inst, 18 Kent Ridge Rd, Singapore 119227, Singapore.
EM nhung@natureadvisory.com.au; huangdanwei@nus.edu.sg
RI Nguyễn, Nhung/KHV-4764-2024; Lovelock, Catherine/AAF-7294-2020; Yaakub,
   Siti/V-2246-2017; Jaafar, Zeehan/I-1248-2012; Friess,
   Daniel/HJY-2143-2023; Mazor, Tessa/G-2017-2012; Todd, Peter/H-8410-2012;
   Bhatia, Natasha/V-8682-2018; Chou, Loke/AAE-5266-2020; Lowe,
   Ryan/A-5032-2012
OI Friess, Daniel/0000-0002-3087-5233; Paton Gilmour,
   James/0000-0002-7179-6662; Lowe, Ryan/0000-0002-7080-8406
FU National Research Foundation (NRF), Prime Minister's Office, Singapore;
   Australian Department of Industry, Innovation and Science under the NRF
   Australia-Singapore Joint Research Grant Call [NRF2018AU-SG02]
FX Y This research is supported by the National Research Foundation (NRF),
   Prime Minister's Office, Singapore, and the Australian Department of
   Industry, Innovation and Science under the NRF AustraliaSingapore Joint
   Research Grant Call (NRF2018AU-SG02).
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TC 19
Z9 23
U1 22
U2 143
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0169-2046
EI 1872-6062
J9 LANDSCAPE URBAN PLAN
JI Landsc. Urban Plan.
PD MAY
PY 2022
VL 221
AR 104374
DI 10.1016/j.landurbplan.2022.104374
EA FEB 2022
PG 12
WC Ecology; Environmental Studies; Geography; Geography, Physical; Regional
   & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA 1F2NB
UT WOS:000795008600001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Covatta, A
   Ikalovic, V
AF Covatta, Alice
   Ikalovic, Vedrana
TI Urban Resilience: A Study of Leftover Spaces and Play in Dense City
   Fabric
SO SUSTAINABILITY
LA English
DT Article
DE leftover space; design strategies; Tokyo; density; play
AB Cities worldwide are urgently moving towards a more resilient and sustainable future. On this quest, national, regional, and local governments apply a combination of socio-spatial tools that regenerate and transform the city's leftover spaces. There is an abundance of community gardens, cultural centers, and large-scale urban developments that, through programmed activities, reactivate underused spaces. The bearers of this process are professionals and individuals who have become aware of their actions in the contemporary urban landscape. This paper highlights possible design strategies that domesticate leftover spaces of diverse scales by injecting creative and playful programs, using Tokyo as a paradigmatic case study. More so than other global metropolises, the city represents a living laboratory for experimentation due to its compactness and the variety of urban patterns. Its leftover spaces demonstrate how play positively affects everyday life in public spaces, and how it enables extraordinary uses. A combination of ethnographic observations and spatial analysis is applied as a trans-disciplinary method. This approach allows an understanding of how people use playfulness to transform, appropriate, and utilize leftover spaces, which serves as guidance for urban planners and designers.
C1 [Covatta, Alice] Univ Montreal, Sch Architecture, Montreal, PQ H3T 1B9, Canada.
   [Ikalovic, Vedrana] Lille Catholic Univ, Junia HEI Grad Sch Engn, Dept Bldg & Urban Environm, F-59000 Lille, France.
C3 Universite de Montreal
RP Covatta, A (corresponding author), Univ Montreal, Sch Architecture, Montreal, PQ H3T 1B9, Canada.
EM alice.covatta@umontreal.ca
RI Ikalovic, Vedrana/HJY-7252-2023
OI Covatta, Alice/0000-0002-0851-3121; Ikalovic,
   Vedrana/0000-0003-0914-293X
FU Japan Foundation; MEXT Program of the Japanese Government; Co+labo at
   Keio University
FX We acknowledge the Japan Foundation, the MEXT Program of the Japanese
   Government, and Co+labo at Keio University for their constant support
   during our research in an inspiring and encouraging environment. We
   would also like to thank the reviewers for their constructive comments.
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NR 55
TC 4
Z9 5
U1 15
U2 52
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2022
VL 14
IS 20
AR 13514
DI 10.3390/su142013514
PG 16
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 5P9OG
UT WOS:000873471200001
OA gold
DA 2025-04-22
ER

PT J
AU de Bruijn, KM
   Maran, C
   Zygnerski, M
   Jurado, J
   Burzel, A
   Jeuken, C
   Obeysekera, J
AF de Bruijn, Karin M.
   Maran, Carolina
   Zygnerski, Mike
   Jurado, Jennifer
   Burzel, Andreas
   Jeuken, Claire
   Obeysekera, Jayantha
TI Flood Resilience of Critical Infrastructure: Approach and Method Applied
   to Fort Lauderdale, Florida
SO WATER
LA English
DT Article
DE resilience; flood risk management; critical infrastructure
ID RISK
AB In order to increase the flood resilience of cities (i.e., the ability to cope with flood hazards), it is also crucial to make critical infrastructure functions resilient, since these are essential for urban society. Cities are complex systems with many actors of different disciplines and many interdependent critical infrastructure networks and functions. Common flood risk analysis techniques provide useful information but are not sufficient to obtain a complete overview of the effects of flooding and potential measures to increase flood resilience related to critical infrastructure networks. Therefore, a more comprehensive approach is needed which helps accessing knowledge of actors in a structured way. Fort Lauderdale, Florida, United States has suffered from flood impacts, especially from disruptions in critical infrastructure. This paper shows how shared insight among different sectors and stakeholders into critical infrastructure resilience and potential resilience-enhancing measures was obtained using input from these actors. It also provides a first quantitative indication of resilience, indicated by the potential disruption due to floods and the effect of measures on resilience. The paper contributes to the existing literature on resilience specifically by considering the duration of disruption, the inclusion of critical infrastructure disruption in flood impact analysis, and the step from resilience quantification to measures.
C1 [de Bruijn, Karin M.; Burzel, Andreas] Deltares, NL-2600 MH Delft, Netherlands.
   [Maran, Carolina; Zygnerski, Mike; Jurado, Jennifer] Environm Protect & Growth Management Dept, Environm Planning & Community Resilience Div, Ft Lauderdale, FL 33301 USA.
   [Jeuken, Claire] Deltares USA Inc, Silver Spring, MD 20910 USA.
   [Obeysekera, Jayantha] Florida Int Univ, Sea Level Solut Ctr, Miami, FL 33199 USA.
C3 Deltares; State University System of Florida; Florida International
   University
RP de Bruijn, KM (corresponding author), Deltares, NL-2600 MH Delft, Netherlands.; Obeysekera, J (corresponding author), Florida Int Univ, Sea Level Solut Ctr, Miami, FL 33199 USA.
EM karin.debruijn@deltares.nl; CMaran@broward.org; MZygnerski@broward.org;
   JJurado@broward.org; Andreas.Burzel@deltares.nl;
   claire.jeuken@deltares-usa.us; jobeysek@fiu.edu
RI De Bruijn, Karin/H-6261-2012
OI Obeysekera, Jayantha/0000-0002-7038-1668; de Bruijn,
   Karin/0000-0003-1454-5338
FU NOAA SARP program [NA16OAR4310127]
FX The work presented here used the results of the CIFRe project (Critical
   Infrastructure and future Flood Resilience in South Florida). This
   research was funded by the NOAA SARP program, award number
   NA16OAR4310127.
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NR 25
TC 32
Z9 35
U1 19
U2 97
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD MAR 12
PY 2019
VL 11
IS 3
AR 517
DI 10.3390/w11030517
PG 21
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA HT4IP
UT WOS:000464527500001
OA Green Submitted, Green Published, gold
DA 2025-04-22
ER

PT J
AU Arnaud, N
   Poch, M
   Popartan, LA
   Corominas, L
   Verdaguer, M
AF Arnaud, Nicole
   Poch, Manel
   Popartan, Lucia Alexandra
   Corominas, Lluis
   Verdaguer, Marta
TI How Scale Influences the Resilience of Urban Water Systems: A Literature
   Review of Trade-Offs and Recommendations
SO WATER
LA English
DT Review
DE urban water systems; resilience; planning; scale; suitability; urban
   water management; water-energy nexus
ID GREENHOUSE-GAS EMISSIONS; LOW-IMPACT DEVELOPMENT; ENERGY INTENSITY;
   REUSE SYSTEMS; NEXUS; OPPORTUNITIES; TECHNOLOGIES; MANAGEMENT; COST;
   INFRASTRUCTURE
AB Climate change severely affects urban water systems (UWSs). Infrastructure historically designed for milder conditions cannot manage growing water demands and extreme events. To obtain a resilient water sector, adaptation and mitigation strategies must address rising water challenges while striving for net-zero emissions. Researchers have noted that extreme decentralization is positively associated with closing cycles while reducing transport costs. However, part of the scientific community defends centralized schemes due to economies of scale. The objective of this systematic review is to understand the trade-offs associated with the adoption of different scales at UWSs design and how this impacts system resilience. This process includes identifying different scale trade-offs and unique environmental aspects that influence the optimal scale suitability. A clear distinction was made in terms of scale concept and classification, considering different design levels. That is, considering the UWS at the city level and water management units (WMUs) at the local level. Similarly, a classification of different scales for each level, covering all water streams-supply, wastewater, and stormwater-was introduced. We defined the key environmental aspects that influence the optimal scale and location suitability: ten at the city-catchment level and eleven at the site-neighbourhood level. Scale impacts three major UWSs functionalities that have repercussions on urban resilience: net energy, net water, and ecosystem services (ES).
C1 [Arnaud, Nicole; Poch, Manel; Popartan, Lucia Alexandra; Verdaguer, Marta] Univ Girona, Inst Environm, Lab Chem & Environm Engn LEQUIA, Campus Montilivi,C Maria Aurelia Capmany 69, Girona 17003, Catalonia, Spain.
   [Corominas, Lluis] Univ Girona, Catalan Inst Water Res ICRA CERCA, Sci & Technol Pk,Emili Grahit 101, Girona 17003, Catalonia, Spain.
   [Corominas, Lluis] Univ Girona, Placa St Domenec 3, Girona 17004, Catalonia, Spain.
C3 Universitat de Girona; Universitat de Girona; Universitat de Girona
RP Arnaud, N (corresponding author), Univ Girona, Inst Environm, Lab Chem & Environm Engn LEQUIA, Campus Montilivi,C Maria Aurelia Capmany 69, Girona 17003, Catalonia, Spain.
EM nicole.arnaud@udg.edu; manuel.poch@udg.edu; marta.verdaguer@udg.edu
RI corominas, lluis/AAH-6588-2021; Verdaguer, Marta/K-3917-2014
OI Verdaguer, Marta/0000-0001-8673-9866; Poch, Manel/0000-0002-2593-9298
FU Spanish Ministry of Science and Innovation and European Union
   "NextGenerationEU" [2021 SGR01352]; Catalan Ministry of Research and
   Universities [IFUdG2022/6]; Universitat de Girona [FJC2021-047857-I,
   MICIN/AEI/10,13039501100011033]; Generalitat de Catalunya through the
   Consolidated Research Group [2021-SGR-01283]; CERCA program of the
   Catalan Government
FX LEQUIA has been recognized as "consolidated research group" (Ref 2021
   SGR01352) by the Catalan Ministry of Research and Universities. Nicole
   Arnaud holds an IF-UdG pre-doctoral grant (Reference IFUdG2022/6) from
   Universitat de Girona. Lucia Alexandra Popartan acknowledges Juan de la
   Cierva 2021 grant (Reference FJC2021-047857-I,
   MICIN/AEI/10,13039501100011033). ICRA acknowledges the Generalitat de
   Catalunya through the Consolidated Research Group grant ICRA-Tech
   2021-SGR-01283, and the CERCA program of the Catalan Government.
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NR 89
TC 1
Z9 1
U1 12
U2 19
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD JUN
PY 2024
VL 16
IS 11
AR 1571
DI 10.3390/w16111571
PG 29
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA UA2J7
UT WOS:001245274300001
OA gold
DA 2025-04-22
ER

PT J
AU Yari, A
   Mashallahi, A
   Aghababaeian, H
   Nouri, M
   Yadav, N
   Mousavi, A
   Salehi, S
   Ostadtaghizadeh, A
AF Yari, Arezoo
   Mashallahi, Alireza
   Aghababaeian, Hamidreza
   Nouri, Mohsen
   Yadav, Nidhi
   Mousavi, Arefeh
   Salehi, Shiva
   Ostadtaghizadeh, Abbas
TI Definition and characteristics of climate-adaptive cities: a systematic
   review
SO BMC PUBLIC HEALTH
LA English
DT Article
DE Climate change; Climate-adaptive cities; Adaptation; Resilience;
   Resource management; Low-carbon economy
ID ADAPTATION; HEALTH; RESILIENCE
AB Background Cities, as frontline responders to climate change, necessitate a precise understanding of climate-adaptive features. This systematic review aims to define and outline the characteristics of climate-adaptive cities, contributing vital insights for resilient urban planning.Methods This systematic review, initiated on March 6, 2018, and concluded on August 26, 2021, involved reviewing multiple electronic databases based on the study's objectives. The Critical Appraisal Skills Program (CASP) tool was used for quality assessment and critical evaluation of articles retrieved through a comprehensive and systematic text search. Descriptive and thematic analyses were conducted to extract definitions, features, and characteristics of climate-adaptive cities.Results Out of 6104 identified articles, 38 articles met the inclusion criteria. In total, 20 definitions and 55 features for climate-adaptive cities were identified in this review. Codes were categorized into two categories and ten subcategories. The categories included definitions and features or characteristics of climate-adaptive cities.Conclusion A climate-adaptive city, as derived from the findings of this study, is a city that, through effective resource management, future-oriented planning, education, knowledge utilization, innovation in governance and industry, decentralized management, and low-carbon economy, leads to the adaptability, resilience, sustainability, and flexibility of the capacity of individuals, communities, institutions, businesses, and systems within a city against all climate change impacts and reduces their negative consequences.
C1 [Yari, Arezoo] Kurdistan Univ Med Sci, Res Inst Hlth Dev, Social Determinants Hlth Res Ctr, Sanandaj, Iran.
   [Mashallahi, Alireza; Ostadtaghizadeh, Abbas] Univ Tehran Med Sci, Sch Publ Hlth, Dept Hlth Emergencies & Disasters, Poorsina Ave, Tehran 1417743578, Iran.
   [Aghababaeian, Hamidreza] Dezful Univ Med Sci, Ctr Climate Change & Hlth Res CCCHR, Dezful, Iran.
   [Yadav, Nidhi] Int Inst Hlth Management Res, Delhi, India.
   [Mousavi, Arefeh] Isfahan Univ Med Sci, Social Determinants Hlth Res Ctr, Esfahan, Iran.
   [Salehi, Shiva] Islamic Azad Univ, Fac Nursing & Midwifery, Dept Nursing, Tehran Med Sci, Tehran, Iran.
   [Yari, Arezoo] Kurdistan Univ Med Sci, Sch Med, Dept Hlth Emergencies & Disasters, Sanandaj, Iran.
   [Nouri, Mohsen] Iran Univ Med Sci, Spiritual Hlth Res Ctr, Tehran, Iran.
   [Ostadtaghizadeh, Abbas] Univ Tehran Med Sci, Inst Environm Res IER, Climate Change & Hlth Res Ctr CCHRC, Tehran, Iran.
C3 Kurdistan University of Medical Sciences; Tehran University of Medical
   Sciences; International Institute of Health Management Research Delhi;
   Isfahan University of Medical Sciences; Islamic Azad University;
   Kurdistan University of Medical Sciences; Iran University of Medical
   Sciences; Tehran University of Medical Sciences
RP Ostadtaghizadeh, A (corresponding author), Univ Tehran Med Sci, Sch Publ Hlth, Dept Hlth Emergencies & Disasters, Poorsina Ave, Tehran 1417743578, Iran.; Ostadtaghizadeh, A (corresponding author), Univ Tehran Med Sci, Inst Environm Res IER, Climate Change & Hlth Res Ctr CCHRC, Tehran, Iran.
EM ostadtaghizadeh@gmail.com
RI salehi, Shiva/AAN-6390-2021; Mousavi, Arefeh/KZV-0491-2024;
   Ostadtaghizadeh, Abbas/AAO-2137-2020; Aghababaeian,
   Hamidreza/D-7325-2017
OI Aghababaeian, Hamidreza/0000-0003-3339-5507; mashallahi,
   alireza/0000-0003-1031-5383
FU Department of Health in Emergencies and Disasters, Climate Change and
   Health Research Group at the Institute for Environmental Research;
   School of Public Health at Tehran University of Medical Sciences
FX This study was carried out with the support of the Department of Health
   in Emergencies and Disasters, Climate Change and Health Research Group
   at the Institute for Environmental Research, and School of Public Health
   at Tehran University of Medical Sciences.
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PU BMC
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON N1 9XW, ENGLAND
EI 1471-2458
J9 BMC PUBLIC HEALTH
JI BMC Public Health
PD APR 30
PY 2024
VL 24
IS 1
AR 1200
DI 10.1186/s12889-024-18591-x
PG 22
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Public, Environmental & Occupational Health
GA XB2J9
UT WOS:001259155700002
PM 38684957
OA gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Lara, DVR
   Pfaffenbichler, P
   da Silva, ANR
AF Lara, Daniela Vanessa Rodriguez
   Pfaffenbichler, Paul
   da Silva, Antonio Nelson Rodrigues
TI Modeling the resilience of urban mobility when exposed to the COVID-19
   pandemic: A qualitative system dynamics approach
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban mobility resilience; COVID-19 pandemic; System dynamics;
   Qualitative modeling; Causal loop diagrams; Sustainable cities
ID SUSTAINABILITY; VULNERABILITY; TRANSITION
AB In December 2019, coronavirus disease (COVID-19) was detected in Wuhan, China. Due to the rapid spread of the disease, containment measures were adopted, which caused unprecedent shifts in individual mobility. Although some studies explored the impacts of the COVID-19 pandemic on travel patterns and resilience of transport systems based on different analysis techniques, there is a lack of studies addressing the impacts of the pandemic on the sustainability and resilience of urban mobility systems using in-depth and holistic methods, such as system dynamics. This research aims to characterize the dynamics present in urban mobility systems when exposed to pandemics and analyze the changes needed for systems to increase their resilience to pandemics using qualitative system dynamics modeling. The framework comprises the characterization of cause-and-effect relationships and the creation of systems' causal loop diagrams (CLD) in their basic state of functionality, when affected by pandemics, and still operating owing to its resilience. Our findings indicated that the CLD of a resilient system is driven by strategic preparedness and response plans, as well as research and development, which balance the spread of the pandemic and increase support on technological strengths and the activities performed from home.
C1 [Lara, Daniela Vanessa Rodriguez; da Silva, Antonio Nelson Rodrigues] Univ Sao Paulo, Sao Carlos Sch Engn, Dept Transportat Engn, Ave Trabalhador Sao-carlense,400, BR-13566590 Sao Carlos, SP, Brazil.
   [Pfaffenbichler, Paul] Univ Nat Resources & Life Sci, Inst Transport Studies, Dept Landscape Spatial & Infrastructure Sci, Peter Jordan Str 82, A-1190 Vienna, Austria.
C3 Universidade de Sao Paulo; BOKU University
RP Lara, DVR (corresponding author), Univ Sao Paulo, Sao Carlos Sch Engn, Dept Transportat Engn, Ave Trabalhador Sao-carlense,400, BR-13566590 Sao Carlos, SP, Brazil.
EM daniela.lara@usp.br
RI Pfaffenbichler, Paul/I-2879-2019; Lara, Daniela Vanessa
   Rodriguez/O-2140-2017; Rodrigues da Silva, Antonio Nelson/D-1596-2016
OI Pfaffenbichler, Paul/0000-0002-2532-3119; Lara, Daniela Vanessa
   Rodriguez/0000-0001-5378-8039; Rodrigues da Silva, Antonio
   Nelson/0000-0003-0996-8600
FU Brazilian National Council for Scientific and Technological Development
   (CNPq); Coordenacao de Aperfeicoamento de Pessoal de Nivel
   Superior-Brasil (CAPES) [001];  [308436/2015-6]
FX This work was supported by the Coordenacao de Aperfeicoamento de Pessoal
   de Nivel Superior-Brasil (CAPES) - Finance Code 001 and the Brazilian
   National Council for Scientific and Technological Development (CNPq -
   Grant 308436/2015-6).
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NR 81
TC 18
Z9 19
U1 10
U2 60
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD APR
PY 2023
VL 91
AR 104411
DI 10.1016/j.scs.2023.104411
EA JAN 2023
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 9H3HS
UT WOS:000938726700001
PM 36683862
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Ilbeigi, M
AF Ilbeigi, Mohammad
TI Statistical process control for analyzing resilience of transportation
   networks
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Transportation network; Resilience; Taxi GPS data; Statistical process
   control
ID HURRICANE SANDY; ROAD NETWORK; VULNERABILITY; RELIABILITY; METHODOLOGY;
   FRAMEWORK; LINKS
AB Resilient transportation networks constitute a vital component of urban societies. Even a temporary disruption in the network can paralyze an entire society. Extreme events, such as natural disasters, may have serious destructive impacts on the performance of transportation networks. Reliable performance of transportation systems during an emergency is also critical for a timely, efficient, and successful emergency management operation. Quantitatively analyzing resilience of transportation networks is a critical step toward developing reliable urban societies. Advanced technologies, namely GPS tracking systems, provide rich information about human mobility in urban areas and can be used to monitor traffic patterns. This study proposes a systematic quantitative approach, to develop transportation networks and quantify their topological features using taxi GPS traces. A process control is developed to statistically monitor the topological features of the transportation network through time. Such analysis can allow detection of unusual patterns due to an extreme event and to analyze resilience of the transportation network. This methodology is used to analyze resilience of the New York City transportation network against Hurricane Sandy in 2012. The outcomes of this study will help decision makers analyze resilience of transportation networks, measure and compare destructive impacts of extreme events, and identify vulnerabilities in transportation networks.
C1 [Ilbeigi, Mohammad] Bowling Green State Univ, Sch Built Environm, 127 E Technol Bldg, Bowling Green, OH 43403 USA.
C3 University System of Ohio; Bowling Green State University
RP Ilbeigi, M (corresponding author), Bowling Green State Univ, Sch Built Environm, 127 E Technol Bldg, Bowling Green, OH 43403 USA.
EM milbeig@bgsu.edu
RI Ilbeigi, Mohammad/ABB-5174-2021
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NR 50
TC 48
Z9 54
U1 4
U2 136
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD FEB
PY 2019
VL 33
BP 155
EP 161
DI 10.1016/j.ijdrr.2018.10.002
PG 7
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA HF8WQ
UT WOS:000454523300014
DA 2025-04-22
ER

PT J
AU Cai, JC
   Yang, JX
   Liu, MM
   Fang, W
   Ma, ZW
   Bi, J
AF Cai, Jiacong
   Yang, Jianxun
   Liu, Miaomiao
   Fang, Wen
   Ma, Zongwei
   Bi, Jun
TI Informing Urban Flood Risk Adaptation by Integrating Human Mobility Big
   Data During Heavy Precipitation
SO ENVIRONMENTAL SCIENCE & TECHNOLOGY
LA English
DT Article
DE urban flood risk; human mobility; mobile phonebig data; adaptation;
   small-scale hazard
ID RESILIENCE; PREDICTABILITY; MECHANISMS
AB Understanding the impact of heavy precipitation on human mobility is critical for finer-scale urban flood risk assessment and achieving sustainable development goals #11 to build resilient and safe cities. Using similar to 2.6 million mobile phone signal data collected during the summer of 2018 in Jiangsu, China, this study proposes a novel framework to assess human mobility changes during rainfall events at a high spatial granularity (500 m grid cell). The fine-scale mobility map identifies spatial hotspots with abnormal clustering or reduced human activities. When aggregating to the prefecture-city level, results show that human mobility changes range between -3.6 and 8.9%, revealing varied intracity movement across cities. Piecewise structural equation modeling analysis further suggests that city size, transport system, and crowding level directly affect mobility responses, whereas economic conditions influence mobility through multiple indirect pathways. When overlaying a historical urban flood map, we find such human mobility changes help 23 cities reduce 2.6% flood risks covering 0.45 million people but increase a mean of 1.64% flood risks in 12 cities covering 0.21 million people. The findings help deepen our understanding of the mobility pattern of urban dwellers after heavy precipitation events and foster urban adaptation by supporting more efficient small-scale hazard management.
C1 [Cai, Jiacong; Yang, Jianxun; Liu, Miaomiao; Fang, Wen; Ma, Zongwei; Bi, Jun] Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Nanjing 210023, Peoples R China.
   [Yang, Jianxun; Liu, Miaomiao; Bi, Jun] Nanjing Univ Informat Sci & Technol, Jiangsu Collaborat Innovat Ctr Atmospher Environm, Nanjing 210044, Jiangsu, Peoples R China.
C3 Nanjing University; Nanjing University of Information Science &
   Technology
RP Yang, JX; Liu, MM (corresponding author), Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Nanjing 210023, Peoples R China.; Yang, JX; Liu, MM (corresponding author), Nanjing Univ Informat Sci & Technol, Jiangsu Collaborat Innovat Ctr Atmospher Environm, Nanjing 210044, Jiangsu, Peoples R China.
EM yangjx@nju.edu.cn; liumm@nju.edu.cn
RI Liu, Miaomiao/MEK-9155-2025; Yang, Jianxun/IZE-3606-2023; Ma,
   Zongwei/ABG-4851-2020
OI Liu, Miaomiao/0000-0002-9043-3584; Cai, Jiacong/0009-0003-3708-878X;
   Yang, Jianxun/0009-0005-0821-7698
FU National Natural Science Foundation of China [72304136, 72222012,
   71921003, 52170189]; National Natural Science Foundation of China
   [BX20230159]; National Postdoctoral Program for Innovative Talent
   [BK20220014]; Jiangsu R&D Special Fund for Carbon Peaking and Carbon
   Neutrality [BK20220125]; Jiangsu Natural Science Foundation; Nanjing
   University; Research Committee of the School of Environment, Nanjing
   University
FX The project was financially supported by the National Natural Science
   Foundation of China (Grant Nos 72304136, 72222012, 71921003, and
   52170189), National Postdoctoral Program for Innovative Talent (Grant
   No. BX20230159), Jiangsu R&D Special Fund for Carbon Peaking and Carbon
   Neutrality (Grant No. BK20220014), and Jiangsu Natural Science
   Foundation (Grant No. BK20220125). Dr. Jianxun Yang acknowledges the
   Yuxiu Young Scholar Postdoc Fellowship granted by Nanjing University and
   the Research Committee of the School of Environment, Nanjing University,
   for approving this study.
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U2 56
PU AMER CHEMICAL SOC
PI WASHINGTON
PA 1155 16TH ST, NW, WASHINGTON, DC 20036 USA
SN 0013-936X
EI 1520-5851
J9 ENVIRON SCI TECHNOL
JI Environ. Sci. Technol.
PD FEB 29
PY 2024
VL 58
IS 10
BP 4617
EP 4626
DI 10.1021/acs.est.3c03145
EA FEB 2024
PG 10
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology
GA KO3A6
UT WOS:001178574400001
PM 38419288
DA 2025-04-22
ER

PT J
AU Fagan-Watson, B
   Burchell, K
AF Fagan-Watson, Ben
   Burchell, Kevin
TI Heatwave planning: community involvement in co-producing resilience
SO BUILDING RESEARCH AND INFORMATION
LA English
DT Article
DE adaptation; built environment; climate change; co-production; heatwave;
   public policy; resilience; resilient cities; urban politics
ID RENEWABLE ENERGY; CAPACITIES; POLITICS; SUMMER
AB Drawing on a thematic analysis of relevant policy documents, an apparent disconnect is identified between two associated contemporary UK policy areas: planning for heatwaves and community resilience. Regional and national policy documents that plan for heatwaves in the UK tend to focus on institutional emergency responses and infrastructure development. In these documents, although communities are mentioned, they are understood as passive recipients of resilience that is provided by active institutions. Meanwhile, contemporary discussion about community resilience highlights the potential for involving communities in planning for and responding to emergencies (although the concept is also the subject of critique). To improve heatwave preparation, planning and response, more effort by central and local governments is required to articulate and realize greater participation by individuals, and voluntary and community sector groups.
C1 [Fagan-Watson, Ben; Burchell, Kevin] Univ Westminster, Policy Studies Inst, 35 Marylebone Rd, London NW15LS, England.
C3 University of Westminster
RP Fagan-Watson, B (corresponding author), Univ Westminster, Policy Studies Inst, 35 Marylebone Rd, London NW15LS, England.
EM b.watson@psi.org.uk; k.burchell@psi.org.uk
FU Joseph Rowntree Foundation [1309003D]
FX This work was supported by the Joseph Rowntree Foundation through the
   'Urban Heat' project grant [grant number 1309003D].
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NR 48
TC 5
Z9 5
U1 4
U2 44
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0961-3218
EI 1466-4321
J9 BUILD RES INF
JI Build. Res. Informat.
PD OCT
PY 2016
VL 44
IS 7
BP 754
EP 763
DI 10.1080/09613218.2016.1209626
PG 10
WC Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology
GA DW7YF
UT WOS:000383868800005
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Li, CS
   Xue, Y
   Fu, XY
AF Li, Chaosu
   Xue, Yang
   Fu, Xinyu
TI Urban Built Environment and Flood Ramifications: Evidence from Insurance
   Claims Data in Miami, Florida
SO JOURNAL OF PLANNING EDUCATION AND RESEARCH
LA English
DT Article; Early Access
DE built environment; flooding; urban resilience; nature-based solutions;
   climate change
ID SOCIAL VULNERABILITY; DEVELOPMENT PATTERNS; RISK; WETLANDS; MODELS;
   IMPACT; COVER
AB This study examines the role of the urban built environment in mitigating or exacerbating flooding. By analyzing census tract-level insurance claims in Miami, we model such relationships during moderate and extreme flood events. Our findings indicate that lower population density, higher urban compactness, and proximity to coastal and riparian zones are linked to elevated flood insurance claims. The study also highlights the potential of nature-based solutions in alleviating flood impacts during extreme events. These insights provide crucial empirical evidence for urban planners and policymakers to adopt a systemic approach considering density, location, and nature-based solutions to foster climate-resilient cities.
C1 [Li, Chaosu; Xue, Yang] Hong Kong Univ Sci & Technol Guangzhou, Guangzhou, Peoples R China.
   [Li, Chaosu] Hong Kong Univ Sci & Technol, Hong Kong, Peoples R China.
   [Fu, Xinyu] Univ Waikato, Hamilton, New Zealand.
C3 Hong Kong University of Science & Technology (Guangzhou); Hong Kong
   University of Science & Technology; University of Waikato
RP Fu, XY (corresponding author), Univ Waikato, Environm Planning Program, Gate 1,Knighton Rd, Hamilton 3240, New Zealand.
EM xinyu.fu@waikato.ac.nz
RI Fu, Xinyu/ABA-6804-2020; Li, Chaosu/I-8419-2016; Fu, Xinyu/R-5560-2017
OI Li, Chaosu/0000-0002-1146-2361; Fu, Xinyu/0000-0002-3591-4158
FU National Natural Science Foundation of China [52378079]; Guangdong Basic
   and Applied Basic Research Foundation [2024A1515011609]; Ministry of
   Business, Innovation, and Employment (MBIE) Endeavour Fund [C01X2014]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: This
   research was supported by the National Natural Science Foundation of
   China (Grant No. 52378079), the Guangdong Basic and Applied Basic
   Research Foundation (Grant No. 2024A1515011609), and the Ministry of
   Business, Innovation, and Employment (MBIE) Endeavour Fund (Grant No.
   C01X2014). Any errors are solely the responsibility of the authors.
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NR 54
TC 4
Z9 4
U1 7
U2 8
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0739-456X
EI 1552-6577
J9 J PLAN EDUC RES
JI J. Plan. Educ. Res.
PD 2024 SEP 18
PY 2024
DI 10.1177/0739456X241276854
EA SEP 2024
PG 11
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA G4E2K
UT WOS:001316184000001
DA 2025-04-22
ER

PT J
AU Shokry, G
   Anguelovski, I
   Connolly, JJT
AF Shokry, Galia
   Anguelovski, Isabelle
   Connolly, James J. T.
TI (Mis-)belonging to the climate-resilient city: Making place in
   multi-risk communities of racialized urban America
SO JOURNAL OF URBAN AFFAIRS
LA English
DT Article
DE Climate resilience planning; green infrastructure; belonging;
   placemaking; gentrification; climate justice; climate coloniality
ID ENVIRONMENTAL JUSTICE; POLITICS; ADAPTATION; RECOGNITION; RACE;
   GENTRIFICATION; INFRASTRUCTURE; AGENDA
AB Through climate adaptation planning cities are transforming places and relations, most recently via green climate resilient infrastructure (GRI). Yet, GRI's incorporation into existing, racialized infrastructure systems of urban development, regeneration and finance has raised questions about the socio-cultural impacts and justice dimensions of recent directions in climate adaptation planning and urbanism. While critical scholars highlight the exclusion of historically marginalized residents, this paper's analysis of the impacts of GRI-driven planning for sense of belonging reveals a complex and multi-faceted experience of gentrification and displacement in the racialized, settler colonial city. Drawing on insights from civic actors about their lived experience of green and climate resilient projects in Boston, Massachusetts, we develop a novel understanding of belonging, which entails degrees of (mis)belonging. Our analysis uncovers three pathways by which climate urbanism shapes belonging into various alienated, subordinated, assimilated and emancipated forms, and reveals the kinds of political subjects and socio-cultural relations that emerge from the lived experience of climate adaptation projects. More broadly, this study sheds light on how less visible placemaking practices and alternative modes of addressing socio-climate vulnerability contribute to climate justice and injustice dynamics.
C1 [Shokry, Galia] Kean Univ, Union, NJ USA.
   [Shokry, Galia; Anguelovski, Isabelle] Univ Autonoma Barcelona, Bellaterra, Spain.
   [Connolly, James J. T.] Univ British Columbia, Vancouver, BC, Canada.
   [Shokry, Galia] Kean Univ, 1000 Morris Ave, Union, NJ 07083 USA.
C3 Kean University; Autonomous University of Barcelona; University of
   British Columbia; Kean University
RP Shokry, G (corresponding author), Kean Univ, 1000 Morris Ave, Union, NJ 07083 USA.
EM gshokry@kean.edu
RI Shokry, Galia/ABP-5934-2022; Connolly, James/AAZ-6161-2021
OI Anguelovski, Isabelle/0000-0002-6409-5155; Shokry,
   Galia/0000-0002-2959-3677
FU European Research Council (ERC) [GA678034]; Horizon 2020 Framework
   Programme [822357]; H2020 Societal Challenges Programme [822357] Funding
   Source: H2020 Societal Challenges Programme
FX This work was supported by the H2020 European Research Council
   [GA678034]; Horizon 2020 Framework Programme [822357].
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NR 93
TC 14
Z9 14
U1 7
U2 30
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0735-2166
EI 1467-9906
J9 J URBAN AFF
JI J. Urban Aff.
PD JAN 2
PY 2025
VL 47
IS 1
BP 121
EP 141
DI 10.1080/07352166.2022.2160339
EA FEB 2023
PG 21
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA R3A5E
UT WOS:000935975000001
PM 39803634
OA hybrid
DA 2025-04-22
ER

PT J
AU Turchi, A
   Lumino, R
   Gambardella, D
   Leone, MF
AF Turchi, Agnese
   Lumino, Rosaria
   Gambardella, Dora
   Leone, Mattia Federico
TI Coping Capacity, Adaptive Capacity, and Transformative Capacity
   Preliminary Characterization in a "Multi-Hazard" Resilience Perspective:
   The Soccavo District Case Study (City of Naples, Italy)
SO SUSTAINABILITY
LA English
DT Article
DE resilience; coping capacity; adaptive capacity; transformative capacity;
   DRR; CCA approaches; urban planning; co-design; community mapping; risk
   perception and awareness
ID VOLCANIC RISK PERCEPTION; CAMPI FLEGREI; DESIGN; MITIGATION; FRAMEWORK
AB An innovative methodology for characterizing Coping Capacity (CC), Adaptive Capacity (AC), and Transformative Capacity (TC) resilience determinants in a multi-hazard territorial context is applied to the Soccavo district (Naples, Italy), located in the Campi Flegrei caldera and exposed to volcanic eruptions, ground deformations (bradyseism), earthquakes, geomorphological processes (landslides, rock falls, erosion), and climate change-related hazards (heat waves, pluvial floods). The method allowed for the identification of the CC, AC, and TC parameters that can be easily converted into qualitative-quantitative variables. Among all parameters, the method focused on multi-stakeholder and civil society engagement, which is representative of TC and variable relating to the risk perception and awareness, the urban space perception, or the people's ability to activate bottom-up urban transformation processes within resilient development pathways. Therefore, qualitative tools such as collaborative mapping and co-design processes, pertaining to the urban planning and design fields, and quantitative tools such as surveys, from the social science field, were harmonized and combined to collect and analyze data on these site-specific topics. Considering people's priorities and needs, the study was useful to define shared sustainable and resilient solutions in order to holistically integrate Disaster Risk Reduction/Climate Change Adaptation urban planning and design approaches and simultaneously deliver social, environmental, and economic co-benefits.
C1 [Turchi, Agnese] Univ Naples Federico II, PLINIVS LUPT Study Ctr, Via Toledo 402, I-80134 Naples, Italy.
   [Lumino, Rosaria; Gambardella, Dora] Univ Naples Federico II, Dept Social Sci, Vico Monte Pieta, I-80138 Naples, Italy.
   [Leone, Mattia Federico] Univ Naples Federico II, Dept Architecture, Via Toledo 402, I-80134 Naples, Italy.
C3 University of Naples Federico II; University of Naples Federico II;
   University of Naples Federico II
RP Turchi, A (corresponding author), Univ Naples Federico II, PLINIVS LUPT Study Ctr, Via Toledo 402, I-80134 Naples, Italy.
EM agnese.turchi@unina.it; rosaria.lumino@unina.it;
   dora.gambardella@unina.it; mattia.leone@unina.it
RI Turchi, Agnese/MHR-3433-2025; Leone, Mattia/L-4807-2018
OI LEONE, MATTIA FEDERICO/0000-0003-2434-509X; Turchi,
   Agnese/0000-0002-8562-2858
FU University of Naples Federico II (UNINA) [2449]; Compagnia di San Paolo
   [E69C21000380001]
FX This research was founded by the CO-FRAME_NA project "Comprehensive
   multi-hazard & multi-risk Framework_Napoli" (2021-2023), which has
   received funding from the University of Naples Federico II (UNINA)
   within the FRA 2020 Programme (Finanziamento Ricerca di Ateneo, D.R. n.
   2449, 21/08/2020) with the contribution of the Compagnia di San Paolo,
   Grant Number E69C21000380001. The research is coordinated by the UNINA
   Department of Architecture (DiARC) and involves as partners the
   Department of Social Sciences (DiSS) and the Department of Structures
   for Engineering and Architecture (DiSt).
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NR 85
TC 5
Z9 5
U1 7
U2 24
PU MDPI
PI BASEL
PA Gross-peteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2023
VL 15
IS 14
AR 10877
DI 10.3390/su151410877
PG 24
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA N7RO8
UT WOS:001038942300001
OA gold
DA 2025-04-22
ER

PT J
AU Dai, DX
   Bo, MY
   Ren, XS
   Dai, KY
AF Dai, Daixin
   Bo, Mingyang
   Ren, Xiaosong
   Dai, Kaiyu
TI Application and exploration of artificial intelligence technology in
   urban ecosystem-based disaster risk reduction: A scoping review
SO ECOLOGICAL INDICATORS
LA English
DT Review
DE Eco-DRR; Artificial intelligence; Disaster risk; Resilient cities
ID MANAGEMENT; AREAS
AB The impacts of natural hazards on urban areas are becoming more severe and frequent. As a leading theory of resilient cities on an international level, ecosystem-based disaster risk reduction (Eco-DRR) is a crucial approach for disaster risk reduction (DRR) and urban resilience. The reasonable use of artificial intelligence (AI) technology can effectively address the uncertainty problem faced in urban ecosystems and natural hazard impacts. However, current research applying AI in urban Eco-DRR is still limited, and the evidence and concepts of the interplay between Eco-DRR and AI are still not clear. We utilized the PRISMA-ScR framework to survey and analyze studies that apply AI technology in urban Eco-DRR, ultimately selecting 76 studies for a scoping review. We qualitatively analyzed the case studies from 3 perspectives: natural disaster risk, Eco-DRR, and AI technology, and identified the spatiotemporal characteristics, objectives, AI algorithms, and data source of selected Eco-DRR cases. Based on the findings, we conducted a theoretical framework of AI applied in urban Eco-DRR by organizing out the logical relationship among the 3 perspectives. We proposed and discussed the key points of AI application in Eco-DRR practice: (1) The scales and types of disaster point out the aims of Eco-DRR. (2) The selection of AI algorithms should align with the objectives of AI to achieve the aims of Eco-DRR. (3) Data sources of disaster risk elements can effectively support AI applied in Eco-DRR. Finally, we summarized 4 approaches to integrating ecosystems with traditional Disaster Risk Reduction (DRR) using AI technology: ecosystem service, ecosystem indicators, dynamic change prediction, and green infrastructure (GI) construction. The logical framework, progress, and trend of this field summarized in this study provide a theoretical basis and reference for the application of AI technology in urban Eco-DRR, which is beneficial for urban security and resilience.
C1 [Dai, Daixin; Bo, Mingyang] Tongji Univ, Coll Architecture & Urban Planning, Shanghai 200092, Peoples R China.
   [Dai, Daixin; Bo, Mingyang; Ren, Xiaosong] Tongji Univ, State Key Lab Civil Engn Disaster Prevent, Shanghai 200092, Peoples R China.
   [Dai, Kaiyu] Fudan Univ, Sch Comp Sci, Shanghai 200433, Peoples R China.
C3 Tongji University; Tongji University; Fudan University
RP Dai, KY (corresponding author), Fudan Univ, Sch Comp Sci, Shanghai 200433, Peoples R China.
EM daidaixin@tongji.edu.cn; 2130142@tongji.edu.cn; rxs@tongji.edu.cn;
   kydai@fudan.edu.cn
OI Bo, Mingyang/0009-0004-7782-2595
FU Top Discipline Plan of Shanghai University-Class I
FX The authors declare the following financial interests/personal
   re-lationships which may be considered as potential competing interests:
   Daixin Dai, Mingyang Bo, Xiaosong Ren reports financial support was
   provided by The Top Discipline Plan of Shanghai University-Class I. If
   there are other authors, they declare that they have no known competing
   financial interests or personal relationships that could have appeared
   to influence the work reported in this paper.
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NR 76
TC 8
Z9 8
U1 32
U2 77
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD JAN
PY 2024
VL 158
AR 111565
DI 10.1016/j.ecolind.2024.111565
EA JAN 2024
PG 14
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA HT9T5
UT WOS:001161883200001
OA gold
DA 2025-04-22
ER

PT J
AU Hilbert, DR
   Koeser, AK
   Andreu, MG
   Hansen, G
   Roman, LA
   Thetford, M
   Thompson, GL
AF Hilbert, Deborah R.
   Koeser, Andrew K.
   Andreu, Michael G.
   Hansen, Gail
   Roman, Lara A.
   Thetford, Mack
   Thompson, Grant L.
TI Conceptualizing the human drivers of low tree diversity in planted urban
   landscapes
SO AMBIO
LA English
DT Article
DE City trees; Landscape design; Landscape architecture; Socio-ecological
   system; Urban ecosystem; Urban forest
ID PEST VULNERABILITY; FOREST DIVERSITY; BIODIVERSITY; GARDENS; CITIES;
   RESILIENCE; CHALLENGES; FRAMEWORK; ECOLOGY; PEOPLE
AB Despite the abundance of tree diversity in the natural world, and generally high tree species richness in urban areas, urban forests continue to be dominated by a limited number of species. As socio-ecological systems, urban forests are shaped by historical and current management efforts and decision-making across a wide range of human actors. Drawing on past research, we offer a conceptual framework for describing the complex interactions among tree producers and consumers as trees are selected, grown, specified, and planted in private and public urban areas. We illustrate how multiple layers of selection criteria filter down the entirety of potential local tree diversity to a handful of commonly used and accepted tree species. We detail the actors and decision-makers who impact tree composition and diversity across several land types. Finally, we identify research, education, and outreach needs as they relate to creating more diverse and resilient urban forest ecosystems.
C1 [Hilbert, Deborah R.; Koeser, Andrew K.] Univ Florida, Gulf Coast Res & Educ Ctr, Dept Environm Hort, IFAS, 14625 Co Rd 672, Wimauma, FL 33598 USA.
   [Andreu, Michael G.] Univ Florida Gainesville, Sch Forest Fisheries & Geomat Sci, POB 110410,36 Ne Wins Ziegler Hall, Gainesville, FL 32611 USA.
   [Hansen, Gail] Univ Florida Gainesville, Dept Environm Hort, IFAS, POB 110670,2550 Hull Rd Fifield Hall, Gainesville, FL 32611 USA.
   [Roman, Lara A.] USDA Forest Serv, Pacific Southwest Res Stn, 4955 Canyon Crest Dr, Riverside, CA 92507 USA.
   [Roman, Lara A.] Northern Res Stn, 4955 Canyon Crest Dr, Riverside, CA 92507 USA.
   [Thetford, Mack] Univ Florida, West Florida Res & Educ Ctr, Dept Environm Hort, IFAS, 5988 Hwy 90,Bldg 4900, Milton, FL 32583 USA.
   [Thompson, Grant L.] Genus Landscape Architects, 520 42nd St,Suite 400, Des Moines, IA 50312 USA.
C3 State University System of Florida; University of Florida; State
   University System of Florida; University of Florida; State University
   System of Florida; University of Florida; United States Department of
   Agriculture (USDA); United States Forest Service; State University
   System of Florida; University of Florida
RP Hilbert, DR (corresponding author), Univ Florida, Gulf Coast Res & Educ Ctr, Dept Environm Hort, IFAS, 14625 Co Rd 672, Wimauma, FL 33598 USA.
EM dhilbert@ufl.edu
RI Thompson, Grant/AAH-2241-2021
OI Hilbert, Deborah "Deb"/0000-0002-7802-7399; Roman,
   Lara/0000-0001-5507-6406
FU University of Florida/IFAS Center for Land Use Efficiency (CLUE)
   2020-2021 Program Enhancement and Graduate Student Support
FX This research was funded in part by the University of Florida/IFAS
   Center for Land Use Efficiency (CLUE) 2020-2021 Program Enhancement and
   Graduate Student Support Grant.
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NR 104
TC 3
Z9 4
U1 5
U2 25
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0044-7447
EI 1654-7209
J9 AMBIO
JI Ambio
PD SEP
PY 2023
VL 52
IS 9
SI SI
BP 1532
EP 1542
DI 10.1007/s13280-023-01876-7
EA MAY 2023
PG 11
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology
GA O1LN9
UT WOS:000995683900001
PM 37243924
OA Green Submitted, Green Published
DA 2025-04-22
ER

PT J
AU Gangwisch, M
   Matzarakis, A
AF Gangwisch, Marcel
   Matzarakis, Andreas
TI Composition of factors for local heat adaptation measures at the local
   level in cities of the mid-latitude - An approach for the south-west of
   Germany
SO ENVIRONMENT INTERNATIONAL
LA English
DT Article
DE Heat health warning system; Heat health action plan; Urban heat island
   analysis; Iso-area analysis; Recommendation for action
ID HUMAN THERMAL COMFORT; URBAN GREEN SPACES; CLIMATE; SYSTEM; ISLAND;
   PALM; RELEVANCE; STRESS; INDOOR; HEALTH
AB Traditional heat health warning systems focus on severe and extreme heat events at the district or regional level, often overlooking localized risk and protective factors such as healthcare access and urban green spaces. This approach considers less the varying impacts of heat within cities, including the phenomenon of Urban Heat Islands (UHIs) and the diverse needs of different populations. To address these shortcomings, a need for the development of an Urban Heat Health Warning and Information System (UHHWIS) that operates within the framework of Heat Health Action Plans is needed. Such a system integrates national acute heat health warnings with city-specific assessments of UHI effects and other relevant factors. The technical implementation of the UHHWIS involves the calculation and preprocessing of basic factors such as the Normalised Difference Vegetation Index (NDVI), imperviousness, and UHI intensity. Additionally, further factors are assessed, spatially processed, and provided in accordance with Open Geospatial Consortium (OGC) standards. An iso-area analysis is conducted to evaluate the accessibility of protective factors, such as urban green spaces, drinking wells, hospitals, physicians, and pharmacies, based on the city 's road topology. One crucial factor considered in the system is the casting of shadows, which is influenced by both time and location and facilitated through deck.gl. The developed template encompasses all these components into a unified system aimed at protecting vulnerable and risk groups, such as the elderly, through resilient, climate-adapted urban planning. The system provides warnings and information tailored to the urban morphology and prevailing conditions, complemented by a catalogue of potential short- to long-term measures focused on behavioral changes and climate-resilient urban planning strategies. The template can be adapted for use in various European cities, offering valuable insights to decision-makers in city administration for mitigating thermal stress and enhancing resilience against urban heat nowadays and in future.
C1 [Gangwisch, Marcel] German Meteorol Serv, Res Ctr Human Biometeorol, Stefan Meier Str 4, D-79104 Freiburg, Germany.
   [Gangwisch, Marcel; Matzarakis, Andreas] Univ Freiburg, Inst Earth & Environm Sci, Fac Environm & Nat Resources, Chair Environm Meteorol, Werthmannstr 10, D-79085 Freiburg, Germany.
   [Matzarakis, Andreas] Democritus Univ Thrace, Komotini 69100, Greece.
C3 Deutscher Wetterdienst; University of Freiburg; Democritus University of
   Thrace
RP Gangwisch, M (corresponding author), German Meteorol Serv, Res Ctr Human Biometeorol, Stefan Meier Str 4, D-79104 Freiburg, Germany.
EM marcel.gangwisch@saturn.uni-freiburg.de
RI Matzarakis, Andreas/AAO-2676-2021
FU (Zentrum fr Luft-und Raumfahrt e.V.); Federal Ministry of Ed-ucation and
   Research of Germany (Das Bundesministerium fr Bildung und
   Forschung-BMBF) [01LR1726C]
FX We want to thank the German Aerospace Center (Das DeutscheZentrum fur
   Luft-und Raumfahrt e.V.) and the Federal Ministry of Education and
   Research of Germany (Das Bundesministerium fur Bildung und
   Forschung-BMBF) for providing the financial support (GrueneLunge
   project-funding reference number 01LR1726C, https://
   www.projekt-gruenelunge.de/, last access: 01 April 2024) . The project
   is part of the Zukunftsstadt program (https://
   www.innovationsplattform-zukunfts-stadt.de/, last access: 01 April 2024)
   .r Zentrum fur Luft-und Raumfahrt e.V.) and the Federal Ministry of
   Ed-ucation and Research of Germany (Das Bundesministerium fur Bildung
   und Forschung-BMBF) for providing the financial support (GruneLunge
   project-funding reference number 01LR1726C, https://
   www.projekt-gruenelunge.de/, last access: 01 April 2024) . The project
   is part of the Zukunftsstadt program (https://
   www.innovationsplattform-zukunfts-stadt.de/, last access: 01 April 2024)
   .
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NR 90
TC 0
Z9 0
U1 7
U2 16
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0160-4120
EI 1873-6750
J9 ENVIRON INT
JI Environ. Int.
PD MAY
PY 2024
VL 187
AR 108718
DI 10.1016/j.envint.2024.108718
EA MAY 2024
PG 16
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA TJ9A8
UT WOS:001241001700001
PM 38735079
OA gold
DA 2025-04-22
ER

PT J
AU Cattari, S
   Ottonelli, D
   Mohammadi, S
AF Cattari, Serena
   Ottonelli, Daria
   Mohammadi, Soheil
TI EQ-DIRECTION Procedure towards an Improved Urban Seismic Resilience:
   Application to the Pilot Case Study of Sanremo Municipality
SO SUSTAINABILITY
LA English
DT Article
DE risk mitigation policy; urban resilience; seismic vulnerability;
   large-scale assessment
ID STRUCTURAL OPERATIONAL EFFICIENCY; EMERGENCY LIMIT CONDITION;
   VULNERABILITY; RECOVERY; LAQUILA; EARTHQUAKE; BUILDINGS; FRAMEWORK;
   RECONSTRUCTION; MODELS
AB This paper discusses the critical importance of effective mitigation policies to enhance earthquake resilience in urban systems, especially in light of recent seismic events in Italy. The Italian Civil Protection Department (ICPD) has delineated specific Limit Conditions (LCs) for urban settlements, serving as benchmarks for targeted mitigation policies, and akin to Limit States for buildings in Codes. While the ICPD has already developed operational procedures for some LCs, concentrating on evaluating the structural operational efficiency of strategic functions during emergency management, only a conceptual outline exists for other LCs involving preparedness and recovery/reconstruction phases. To address this gap, this paper introduces the EQ-DIRECTION (EarthQuake Disaster-REsilient City acTIOn plan) procedure. This method aims to analyze and assess the "Limit Condition for Safeguarding the Existence of the Settlement" (referred to as SLC). The procedure entails identifying the "minimum urban system" required for effective recovery and evaluating the performance of this system in terms of structural damage and economic losses against the SLC requirement. The practical application of this methodology to a real-world case study in Sanremo municipality on the western coast of Liguria (Italy) demonstrates the feasibility and potential effectiveness of the procedure for earthquake resilience in urban planning and management.
C1 [Cattari, Serena; Mohammadi, Soheil] Univ Genoa, Polytech Sch, Dept Civil Chem & Environm Engn DICCA, I-16145 Genoa, Italy.
   [Ottonelli, Daria] CIMA Fdn, I-17100 Savona, Italy.
C3 University of Genoa
RP Cattari, S (corresponding author), Univ Genoa, Polytech Sch, Dept Civil Chem & Environm Engn DICCA, I-16145 Genoa, Italy.
EM serena.cattari@unige.it; daria.ottonelli@gmail.com;
   soheil.mohammadi@edu.unige.it
RI Cattari, Serena/AAD-6007-2021
OI mohammadi, soheil/0000-0002-7180-1433; Cattari,
   Serena/0000-0001-9459-5989
FU Sanremo municipality; Liguria Region
FX The authors express their gratitude to the staff of Sanremo municipality
   that made the application presented in this paper possible, in
   particular Geol. Fulvio Franco (technical Responsible of this activity
   for the Municipality of Sanremo), Eng. Tommaso Buschiazzo, Geol. Valerio
   Vivaldi and Geol. Andrea Guardiani. The staff of Sanremo municipality
   contributes to collecting all the necessary data for the EQ-DIRECTION
   application and defining the buildings composing the SLCMIN system. The
   Sanremo municipality provided the financial support of this research
   activity. Moreover, the authors thankfully acknowledge the Liguria
   Region and, in particular, Geol. D. Bottero for the technical support
   and the contribution given to the development of the procedure,
   particularly related to the implications for public administrations.
   Note that the opinions and conclusions presented by the authors do not
   necessarily reflect those of the Italian Department of Civil Protection,
   even if the SLC general principles were established by such an
   institution.
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NR 109
TC 1
Z9 1
U1 4
U2 6
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2024
VL 16
IS 6
AR 2501
DI 10.3390/su16062501
PG 29
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA MH1J2
UT WOS:001192639100001
OA gold
DA 2025-04-22
ER

PT J
AU Ambily, P
   Chithra, NR
   Firoz, CM
AF Ambily, P.
   Chithra, N. R.
   Firoz, C. Mohammed
TI A framework for urban pluvial flood resilient spatial planning through
   blue-green infrastructure
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Blue-green infrastructure; Urban pluvial flood resilience; Multi
   -criteria decision making; Systematic literature review; Spatial
   planning
ID CITY; BIODIVERSITY
AB Blue-Green Infrastructure (BGI) is gaining global recognition as an innovative pathway to urban resilience. Current research on urban flood resilience focus on outcome-based variables like runoff, flood depth, duration, etc. with very limited studies on the inherent capacity of the system to adapt and transform in a disaster. Outcome-based assessments can result in overestimating risk and underestimation of resources in a socio-ecological system. Another lacuna is the theoretical ambiguity on 'resilience', as many studies considered resilience as a normative condition ignoring the notion of socio-ecological resilience as a capacity. The lack of a multi-dimensional approach is also a major research gap. The impact created by BGI in flood resilience depends on socio-political and bio-physical dimensions. To address these gaps, this study identifies and prioritizes the critical BGI dimensions, criteria, and variables and proposes a framework to optimize floodresilient spatial planning. This research uses a systematic literature review with multi-criteria decision-making (MCDM) to identify and prioritize parameters. Three primary criteria: (a) capacity, (b) connectivity, and (c) diversity with 42 variables are identified to assess urban flood resilience. The results are validated and weighted using MCDM techniques of Analytic Hierarchy Process (AHP) and Analytic Network Process (ANP). The study outcome is presented as a framework of dimensions, criteria, and variables that can evaluate the adaptive and transformative capacity of BGI. This research can be improved by including dimensions of physical infrastructure and by performing a case study-based validation. This study provides an effective methodological framework to assess and spatially represent urban flood resilience based on impact variables. The proposed framework is significant in the visual mapping of urban flood resilience in combination with geographic information systems.
C1 [Ambily, P.; Chithra, N. R.] Natl Inst Technol Calicut, Dept Civil Engn Water Resources, NIT Campus,POB 673 601, Kozhikode, India.
   [Firoz, C. Mohammed] Natl Inst Technol Calicut, Dept Architecture & Planning, NIT Campus,PO 673 601, Kozhikode, India.
C3 National Institute of Technology (NIT System); National Institute of
   Technology Calicut; National Institute of Technology (NIT System);
   National Institute of Technology Calicut
RP Ambily, P (corresponding author), Natl Inst Technol Calicut, Dept Civil Engn Water Resources, NIT Campus,POB 673 601, Kozhikode, India.
EM ambilymenon@rit.ac.in
RI NR, Chithra/JZD-4597-2024; FIROZ C, MOHAMMED/LDF-8024-2024
OI P, AMBILY/0000-0002-4790-0968; NR, Chithra/0000-0003-2555-0263
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NR 81
TC 8
Z9 9
U1 36
U2 68
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD MAR
PY 2024
VL 103
AR 104342
DI 10.1016/j.ijdrr.2024.104342
EA FEB 2024
PG 11
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA MZ8D9
UT WOS:001197539700001
DA 2025-04-22
ER

PT J
AU Sobhaninia, S
AF Sobhaninia, Saeideh
TI A resilient disaster recovery model for Puerto Rico: a qualitative case
   study
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article; Early Access
DE Resilient recovery; resource accessibility; disaster recovery; community
   resilience; Puerto Rico
ID COMMUNITY RESILIENCE; HURRICANE-KATRINA; SOCIAL COHESION; MARIA;
   RECONSTRUCTION; PARTICIPATION; VULNERABILITY; RISK
AB Environmental disruptions cause various damages to cities and communities. Many Puerto Ricans have endured catastrophes, suffered the loss of friends and family, resided in temporary shelters, and have been uncertain when they could return home. Thus, this study aims to understand the factors that help Puerto Rican communities better respond to and recover from shocks. Through a multiple-case-study design, the study analyses four Puerto Rican communities to identify the indicators that most significantly contribute to resilient disaster recovery. Data is collected via in-person interviews and analysed via qualitative inductive coding. The study results emphasise the role of internal - social cohesion, community engagement, and local leadership - and external factors - political vulnerability, available resources, social participation in preparation planning, and sustainable development - in resilient disaster recovery. This research deepens our comprehension of the critical factors that shape resilient disaster recovery efforts within Puerto Rican communities. It also aids communities in enhancing their preparedness, coping mechanisms, and adaptation strategies and offers guidance for urban planners and policymakers to concentrate on the internal and external factors that bolster the adaptive capabilities and resilience of communities in Puerto Rico.
   This research proposes a conceptual framework for resilient disaster recovery in Puerto Rico.Details of the framework are discussed across two categories: internal and external resourcesThe internal resources are social cohesion, community engagement, and local leadershipThe external resources are political vulnerability, available resources, and social participation
C1 [Sobhaninia, Saeideh] Arizona State Univ, Sch Geog Sci & Urban Planning, 2931 Madison Vistas Dr, Phoenix, AZ 85016 USA.
C3 Arizona State University; Arizona State University-Downtown Phoenix
RP Sobhaninia, S (corresponding author), Arizona State Univ, Sch Geog Sci & Urban Planning, 2931 Madison Vistas Dr, Phoenix, AZ 85016 USA.
EM saeideh.sobhaninia@asu.edu
RI Sobhaninia, Saeideh/KFY-5918-2024
FX I would like to especially express my thanks to Dr. Stephen Buckman, my
   advisor, mentor, and committee chair, for his expertise, profound
   insights, and thoughtful feedback on this study.
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NR 71
TC 2
Z9 2
U1 6
U2 6
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1747-7891
EI 1878-0059
J9 ENVIRON HAZARDS-UK
JI Environ. Hazards
PD 2024 AUG 13
PY 2024
DI 10.1080/17477891.2024.2390426
EA AUG 2024
PG 21
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA C5B6X
UT WOS:001289520600001
DA 2025-04-22
ER

PT J
AU Shi, S
   Pain, K
   Chen, X
AF Shi, Shuai
   Pain, Kathy
   Chen, Xi
TI Looking into mobility in the Covid-19 'eye of the storm': Simulating
   virus spread and urban resilience in the Wuhan city region travel flow
   network
SO CITIES
LA English
DT Article
DE Covid-19; City region; Travel flow Network; Spillover effects; Central
   place theory; Central flow theory
ID CENTRAL PLACE THEORY; AGGLOMERATION; GOVERNANCE; GLOBALIZATION;
   TRANSMISSION; TRANSITION; DYNAMICS; CITIES; MODEL
AB Recent urban and regional studies have focused on identifying positive spillover effects from intensifying flows of people in city region networks. However, potential negative spillover effects have lacked attention. The article addresses this research gap focusing on the negative spillover effects represented by Covid-19 contagion in the Wuhan regional travel flow network, China. Drawing on central place theory and central flow theory, Covid-19 spatial spread simulation scenarios are explored using a combined micro-level epidemic compartment model and urban network approach. It is found that not only centrally positioned primate but secondary cities are highly risk exposed to contagion. In addition, these cities have enhanced transmission capacity in a balanced, wellconnected travel flow network, whereas a centralised or locally clustered network would be more spread resilient. Both hierarchical position and horizontal flows are found relevant for explaining Covid-19 uneven spread and for informing mobility interventions for a potential future outbreak.
C1 [Shi, Shuai] Univ Hong Kong, Fac Architecture, Real Estate & Construct, Pok Fu Lam, Hong Kong, Peoples R China.
   [Pain, Kathy] Univ Reading, Henley Business Sch, Real Estate & Planning, Reading, Berks, England.
   [Chen, Xi] Changchun Normal Univ, Sch Geog Sci, Changchun, Peoples R China.
   [Chen, Xi] Chinese Acad Sci, Nanjing Inst Geog & Limnol, Nanjing, Peoples R China.
C3 University of Hong Kong; University of Reading; Changchun Normal
   University; Chinese Academy of Sciences; Nanjing Institute of Geography
   & Limnology, CAS
RP Pain, K (corresponding author), Univ Reading, Henley Business Sch, Real Estate & Planning, Reading, Berks, England.
EM alexshi@hku.hk; k.pain@reading.ac.uk
OI Chen, Xi/0000-0002-1506-7342
FU Hong Kong Research Grants Council (RGC) [17207920]
FX Acknowledgments The authors are grateful to the three anonymous
   reviewers for providing constructive comments to enhance the quality of
   this paper. The authors are grateful to the financial support from Hong
   Kong Research Grants Council (RGC) (General Research Funding Project
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NR 77
TC 12
Z9 12
U1 2
U2 85
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JUL
PY 2022
VL 126
AR 103675
DI 10.1016/j.cities.2022.103675
EA MAR 2022
PG 11
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 1B8MH
UT WOS:000792685900006
PM 35350111
OA Green Accepted, Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Blay-Palmer, A
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   Halliday, J
   Malec, R
   Carey, J
   Keller, L
   Ni, J
   Taguchi, M
   van Veenhuizen, R
AF Blay-Palmer, Alison
   Santini, Guido
   Halliday, Jess
   Malec, Roman
   Carey, Joy
   Keller, Leo
   Ni, Jia
   Taguchi, Makiko
   van Veenhuizen, Rene
TI City Region Food Systems: Building Resilience to COVID-19 and Other
   Shocks
SO SUSTAINABILITY
LA English
DT Review
DE resilience; sustainable food system; COVID-19; climate change; policy;
   infrastructure
AB Using examples from the COVID-19 pandemic, this paper reviews the contribution a City Region Food Systems (CRFS) approach makes to regional sustainability and resilience for existing and future shocks including climate change. We include both explicit interventions under United Nations Food and Agriculture Organization (FAO-RUAF) led initiatives, as well as ad hoc efforts that engage with elements of the CRFS approach. To provide context, we begin with a literature review of the CRFS approach followed by an overview of the global food crisis, where we outline many of the challenges inherent to the industrial capital driven food system. Next, we elaborate three key entry points for the CRFS approach-multistakeholder engagement across urban rural spaces; the infrastructure needed to support more robust CRFS; system centered planning, and, the role of policy in enabling (or thwarting) food system sustainability. The pandemic raises questions and provides insights about how to foster more resilient food systems, and provides lessons for the future for the City Region Food System approach in the context of others shocks including climate change.
C1 [Blay-Palmer, Alison] Wilfrid Laurier Univ, Dept Geog & Environm Studies, Waterloo, ON N2L 3C5, Canada.
   [Santini, Guido; Keller, Leo; Ni, Jia; Taguchi, Makiko] Food & Agr Org United Nations FAO, Plant Prod & Protect Div NSP, Viale Terme Caracalla, I-00153 Rome, Italy.
   [Halliday, Jess; Carey, Joy; van Veenhuizen, Rene] RUAF, Hivos, Grote Marktstr 47a, NL-2511 BH The Hague, Netherlands.
   [Malec, Roman] Food & Agr Org United Nations FAO, Off Emergencies & Resilience OER, Viale Terme Caracalla, I-00153 Rome, Italy.
C3 Wilfrid Laurier University; Food & Agriculture Organization of the
   United Nations (FAO); Food & Agriculture Organization of the United
   Nations (FAO)
RP Blay-Palmer, A (corresponding author), Wilfrid Laurier Univ, Dept Geog & Environm Studies, Waterloo, ON N2L 3C5, Canada.
EM ablaypalmr@wlu.ca; Guido.Santini@fao.org; j.halliday@ruaf.org;
   roman.malec@fao.org; j.carey@ruaf.org; Leo.Keller@fao.org;
   Jia.Ni@fao.org; Makiko.Taguchi@fao.org; r.van.veenhuizen@ruaf.org
OI Taguchi, Makiko/0000-0002-2945-1249
FU German Federal Ministry of Food and Agriculture [GCP-FAO-2018-1]; CGIAR
   Research ProgrammeWater Land and Ecosystems; Social Sciences Humanities
   Research Council of Canada [895-2015-1016]; Wilfrid Laurier
   University/Laurier Centre for Sustainable Food Systems
FX We acknowledge the financial support this publication and underlying
   work received from the German Federal Ministry of Food and Agriculture
   Project Identity Number GCP-FAO-2018-1, CGIAR Research ProgrammeWater
   Land and Ecosystems led by IWMI, the Social Sciences Humanities Research
   Council of Canada (award number 895-2015-1016), and Wilfrid Laurier
   University/Laurier Centre for Sustainable Food Systems for the financial
   support to the CRFS programme. We would also like to thank the three
   anonymous reviewers for their constructive comments.
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NR 53
TC 63
Z9 69
U1 3
U2 58
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB
PY 2021
VL 13
IS 3
AR 1325
DI 10.3390/su13031325
PG 19
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA QD6CR
UT WOS:000615604200001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Amistadi, L
   Bradecki, T
   Uherek-Bradecka, B
AF Amistadi, Lamberto
   Bradecki, Tomasz
   Uherek-Bradecka, Barbara
TI Resilient university campus in the city in COVID and post-COVID
   era-recommendations, guidelines, and evidence from research in Italy and
   Poland
SO URBAN DESIGN INTERNATIONAL
LA English
DT Article
DE Post-COVID campus; Academic facilities; Resilient university
AB The pandemic 'stay at home' obligations turned our homes from a place to live to a place to live, work, entertain ourselves and to study. Since March 2020, confinement has had a permanent impact on students' perception of studying and on academic lifestyle. Most universities continue teaching online, and most academic facilities, such as lecture and seminar halls, student halls, and dormitories, have been abandoned. Some of them form vast areas in cities that play a major role in the urban structure. The authors have examined the degree and way of occupation of the academic infrastructure before and in time of the pandemic. Evidence and data have been gathered from different universities in Poland and Italy. From their origins, academic campuses can be considered autonomous communities within or on the city limits. In a post-pandemic perspective, the evidence shows that the growing population of students does not mean campus development and that the campuses that have shown the greatest resilience are "open" campuses which are able to share, integrate, and exchange their spaces and facilities with those of the city. The authors conclude that the pandemic will have an impact on the future urban form of academic facilities.
C1 [Amistadi, Lamberto] STUDIORUM Univ Bologna, Dept Architecture, ALMA MATER, Campus Cesena,Via Univ 50, I-47522 Cesena, Italy.
   [Bradecki, Tomasz] Silesian Tech Univ, Fac Architecture, Akad 2A, PL-44100 Gliwice, Poland.
   [Uherek-Bradecka, Barbara] Acad Silesia, Fac Architecture Civil Construct & Appl Arts, 43 Rolna St, PL-40555 Katowice, Poland.
C3 University of Bologna; Silesian University of Technology; Academy of
   Silesia
RP Bradecki, T (corresponding author), Silesian Tech Univ, Fac Architecture, Akad 2A, PL-44100 Gliwice, Poland.
EM lamberto.amistadi@unibo.it; tomasz.bradecki@polsl.pl;
   barbara.bradecka@wst.com.pl
RI Bradecki, Tomasz/K-5084-2017; Uherek-Bradecka, Barbara/ADO-8353-2022
OI Bradecki, Tomasz/0000-0002-9459-4545; AMISTADI,
   LAMBERTO/0000-0002-1574-1798; Uherek-Bradecka,
   Barbara/0000-0001-8222-1488
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NR 56
TC 4
Z9 4
U1 3
U2 18
PU PALGRAVE MACMILLAN LTD
PI BASINGSTOKE
PA BRUNEL RD BLDG, HOUNDMILLS, BASINGSTOKE RG21 6XS, HANTS, ENGLAND
SN 1357-5317
EI 1468-4519
J9 URBAN DES INT
JI Urban Des. Int.
PD JUN
PY 2023
VL 28
IS 2
BP 141
EP 151
DI 10.1057/s41289-022-00211-y
EA NOV 2022
PG 11
WC Architecture; Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI); Arts &amp; Humanities Citation Index (A&amp;HCI)
SC Architecture; Public Administration; Urban Studies
GA I4ET1
UT WOS:000884616600001
OA Bronze
DA 2025-04-22
ER

PT J
AU Cohen, AK
   Schuchter, JW
AF Cohen, Alison Klebanoff
   Schuchter, Joseph W.
TI Revitalizing Communities Together The Shared Values, Goals, and Work of
   Education, Urban Planning, and Public Health
SO JOURNAL OF URBAN HEALTH-BULLETIN OF THE NEW YORK ACADEMY OF MEDICINE
LA English
DT Article
DE City planning; Educational status; Public health; Social change; Urban
   health
ID SELF-RATED HEALTH; PARTICIPATORY RESEARCH; MULTILEVEL ANALYSIS; HOPE VI;
   YOUTH PARTICIPATION; SOCIAL DETERMINANTS; POPULATION HEALTH; CHILDHOOD
   ASTHMA; RESILIENT CITIES; LOW-INCOME
AB Inequities in education, the urban environment, and health co-exist and mutually reinforce each other. Educators, planners, and public health practitioners share commitments to place-based, participatory, youth-focused, and equitable work. They also have shared goals of building community resilience, social capital, and civic engagement. Interdisciplinary programs that embody these shared values and work towards these shared goals are emerging, including school-based health centers, full-service community schools, community health centers, Promise Neighborhoods, and Choice Neighborhoods. The intersection of these three fields represents an opportunity to intervene on social determinants of health. More collaborative research and practice across public health, education, and planning should build from the shared values identified to continue to address these common goals.
C1 [Cohen, Alison Klebanoff; Schuchter, Joseph W.] Univ Calif Berkeley, Sch Publ Hlth, Berkeley, CA 94720 USA.
C3 University of California System; University of California Berkeley
RP Cohen, AK (corresponding author), Univ Calif Berkeley, Sch Publ Hlth, Berkeley, CA 94720 USA.
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NR 90
TC 12
Z9 21
U1 1
U2 84
PU SPRINGER
PI NEW YORK
PA 233 SPRING ST, NEW YORK, NY 10013 USA
SN 1099-3460
EI 1468-2869
J9 J URBAN HEALTH
JI J. Urban Health
PD APR
PY 2013
VL 90
IS 2
BP 187
EP 196
DI 10.1007/s11524-012-9733-3
PG 10
WC Public, Environmental & Occupational Health; Medicine, General &
   Internal
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; General & Internal Medicine
GA 114RJ
UT WOS:000316759600001
PM 22711169
OA Green Published
DA 2025-04-22
ER

PT J
AU Sim, T
   Wang, DM
   Han, ZQ
AF Sim, Timothy
   Wang, Dongming
   Han, Ziqiang
TI Assessing the Disaster Resilience of Megacities: The Case of Hong Kong
SO SUSTAINABILITY
LA English
DT Article
DE Hong Kong; disaster risk reduction; resilience; UNISDR Sendai Framework
ID HURRICANE SANDY; CLIMATE-CHANGE; PREPAREDNESS; CITIES; CHINA;
   HOUSEHOLDS; COMMUNITY; LESSONS
AB Many megacities are facing potential threats from various disasters, especially in the face of climate change. However, evaluating the resilience of megacities is not well established in both the academia and practice field. Using Hong Kong, which is a megacity ranked as the city in Asia with the highest risk for natural disasters, as a case study, we demonstrated the effort of assessing the resilience of a megacity. The Sendai Framework Local Urban Indicators Tools that was developed by the United Nation Office for Disaster Risk Reduction (UNISDR) was adopted as the main tool in this study, and a mixed bottom-up participatory and top-down method was utilized in the evaluation process. This is an innovative and participatory approach that is not commonly adopted in assessing the resilience of cities. The study found that Hong Kong is disaster resilient in that it mainstreams disaster risk in its development and that it dedicates sufficient financial resources. However, Hong Kong may improve on its disaster governance and encourage cooperation between the government and society to identify disaster risk and share information, particularly in the face of climate change and calls for more sustainable development.
C1 [Sim, Timothy; Han, Ziqiang] Hong Kong Polytech Univ, Dept Appl Social Sci, Hong Kong, Hong Kong, Peoples R China.
   [Wang, Dongming] Minist Civil Affairs, Natl Disaster Reduct Ctr China, Beijing 100124, Peoples R China.
   [Han, Ziqiang] Sichuan Univ, Inst Disaster Management & Reconstruct, Chengdu 610207, Sichuan, Peoples R China.
C3 Hong Kong Polytechnic University; Sichuan University
RP Han, ZQ (corresponding author), Hong Kong Polytech Univ, Dept Appl Social Sci, Hong Kong, Hong Kong, Peoples R China.; Han, ZQ (corresponding author), Sichuan Univ, Inst Disaster Management & Reconstruct, Chengdu 610207, Sichuan, Peoples R China.
EM timothy.sim@polyu.edu.hk; wangdm@cndr.gov.cn; hanziqiang@scu.edu.cn
RI Han, Ziqiang/AAZ-3181-2021; Sim, Timothy/C-2487-2014
OI Han, Ziqiang/0000-0003-0314-0570; Sim, Timothy/0000-0001-7478-474X
FU Hong Kong Polytechnic University in Asia; Pacific Region Health, Urban
   Planning, Development an Infrastructure Sectors [1-ZVEL]
FX This research is funded by the Hong Kong Polytechnic University for the
   project Enhancing Disaster Risk Reduction (DRR) in Asia and Pacific
   Region Health, Urban Planning, Development an Infrastructure Sectors
   (1-ZVEL). We thank the UNISDR, stakeholders of the city, including the
   governmental and non-governmental organizations for their critical
   comments and input in the process.
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NR 48
TC 31
Z9 32
U1 4
U2 84
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2018
VL 10
IS 4
AR 1137
DI 10.3390/su10041137
PG 16
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA GJ3IY
UT WOS:000435188000241
OA gold, Green Submitted, Green Published
DA 2025-04-22
ER

PT J
AU Fu, XY
   Li, CS
   Zhai, W
AF Fu, Xinyu
   Li, Chaosu
   Zhai, Wei
TI Using Natural Language Processing to Read Plans A Study of 78 Resilience
   Plans From the 100 Resilient Cities Network
SO JOURNAL OF THE AMERICAN PLANNING ASSOCIATION
LA English
DT Article
DE machine learning; natural language processing; plan evaluation; urban
   resilience
ID SEA-LEVEL RISE; ADAPTATION
AB Problem, research strategy, and findings Planners need to read plans to learn and adapt current practice. Planners may struggle to find time to read and study lengthy planning documents, especially in emerging areas such as climate change and urban resilience. Recently, natural language processing (NLP) has shown promise in processing big textual data. We asked whether planners could use NLP techniques to more efficiently extract useful and reliable information from planning documents. By analyzing 78 resilience plans from the 100 Resilient Cities Network, we found that results generated from topic modeling, which is an NLP technique, coincided to a large extent (80%) with those from the conventional content analysis approach. Topic modeling was generally effective and efficient in extracting the main information of plans, whereas the content analysis approach could find more in-depth details but at the expense of considerable time and effort. We further propose a transferrable model for cutting-edge planners to more efficiently read and study a large collection of plans using machine learning. Our methodology has limitations: Both topic modeling and content analysis can be subject to human bias and generate unreliable results; NLP text processing techniques may create inaccurate results due to their specific method limitations; and the transferable approach can be only applied to big textual data where there are enough sufficiently long documents. Takeaway for practice NLP represents a valuable addition to the planner's toolbox. Topic modeling coupled with other NLP techniques can help planners to effectively discover key topics in plans, identify planning priorities and plans of specific emphasis, and find relevant policies.
C1 [Fu, Xinyu] Univ Waikato, Environm Planning, Hamilton, New Zealand.
   [Li, Chaosu] Hong Kong Univ Sci & Technol Guangzhou, Urban Planning, Urban Governance & Design Thrust, Hong Kong, Peoples R China.
   [Li, Chaosu] Hong Kong Univ Sci & Technol, Div Publ Policy, Hong Kong, Peoples R China.
   [Zhai, Wei] Hong Kong Baptist Univ, Geog, Hong Kong, Peoples R China.
C3 University of Waikato; Hong Kong University of Science & Technology;
   Hong Kong Baptist University
RP Fu, XY (corresponding author), Univ Waikato, Environm Planning, Hamilton, New Zealand.
EM xinyuf@waikato.ac.nz; chaosuli@ust.hk; weizhai@hkbu.edu.hk
RI Fu, Xinyu/ABA-6804-2020; Li, Chaosu/I-8419-2016; Fu, Xinyu/R-5560-2017
OI Zhai, Wei/0000-0003-4064-0427; Li, Chaosu/0000-0002-1146-2361; Fu,
   Xinyu/0000-0002-3591-4158
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TC 16
Z9 17
U1 11
U2 81
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0194-4363
EI 1939-0130
J9 J AM PLANN ASSOC
JI J. Am. Plan. Assoc.
PD JAN 2
PY 2023
VL 89
IS 1
BP 107
EP 119
DI 10.1080/01944363.2022.2038659
EA JUN 2022
PG 13
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA 9C2XP
UT WOS:000813749500001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Liu, T
   Liu, XP
   Cai, YT
AF Liu, Tao
   Liu, Xiaoping
   Cai, Yaotong
TI Urban Trees Expansion and Exposure Improvement in China: Insights From
   Satellite Observations (1985-2023)
SO IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE
   SENSING
LA English
DT Article
DE Greenspace exposure; nature-based solutions; sustainable urban
   development; urban forestry; urban heat island effect
ID GREEN; COVER; URBANIZATION; MICROCLIMATE; CHALLENGES; BENEFITS; AREAS;
   HEAT
AB Urban tree cover plays a pivotal role in bolstering the sustainability, livability, and resilience of cities. However, the changes in urban tree cover and exposure under the backdrop of urbanization in China remain unclear. This study investigates the spatial distribution and temporal trends of urban tree cover expansion and exposure change from 1985 to 2023. Our findings highlight significant progress in enhancing urban tree cover, with the average tree cover in Chinese urban areas reaching 11.9% in 2023, representing a remarkable 116% increase from 5.5% in 1985. However, this positive trend contrasts with persistent deficiencies in forest resources, as reflected by the fact that urban forest cover in Chinese cities was only 4.1% in 2023, compared with 0.1% in 1985. Furthermore, our study revealed substantial heterogeneity in the spatiotemporal variations of urban tree cover. Only five cities exhibited a decreasing trend in tree cover during the study period, with coastal cities demonstrating significantly higher tree cover compared with inland cities. Additionally, we observed that urban tree cover and expansion rates decreased significantly with increasing latitude. Moreover, nationwide, there has been a sustained and accelerated improvement in urban tree exposure levels, with average tree exposure increasing from 0.66% in 1985 to 7.45% in 2020. The 69% of cities experienced positive changes in tree exposure levels, while only 1% exhibited negative changes. These findings offer valuable insights for policymakers, planners, and stakeholders to foster greener, more resilient, and sustainable urban environments in China.
C1 [Liu, Tao] Nanyang Med Coll, Nanyang 473000, Peoples R China.
   [Liu, Xiaoping; Cai, Yaotong] Sun Yat Sen Univ, Sch Geog & Planning, Guangzhou 510275, Peoples R China.
C3 Nanyang Medical College; Sun Yat Sen University
RP Cai, YT (corresponding author), Sun Yat Sen Univ, Sch Geog & Planning, Guangzhou 510275, Peoples R China.
EM ltgissky@126.com; liuxp3@mail.sysu.edu.cn; caiyt33@mail2.sysu.edu.cn
RI liu, xiaoping/AFE-3171-2022; Cai, Yaotong/LSM-1704-2024
OI Cai, Yaotong/0000-0002-5981-1786
FU National Science Foundation for Distinguished Young Scholars of China
FX No Statement Available
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NR 59
TC 3
Z9 3
U1 6
U2 8
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 1939-1404
EI 2151-1535
J9 IEEE J-STARS
JI IEEE J. Sel. Top. Appl. Earth Observ. Remote Sens.
PY 2024
VL 17
BP 9694
EP 9705
DI 10.1109/JSTARS.2024.3397722
PG 12
WC Engineering, Electrical & Electronic; Geography, Physical; Remote
   Sensing; Imaging Science & Photographic Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Physical Geography; Remote Sensing; Imaging Science &
   Photographic Technology
GA RW3O3
UT WOS:001230659900001
OA gold
DA 2025-04-22
ER

PT J
AU Saiz, AR
   Alonso, A
   Martín, DJ
   Lamíquiz, P
AF Saiz, Alba Ramirez
   Alonso, Andrea
   Jimenez Martin, Delfin
   Lamiquiz, Patxi
TI Can Proximal Environments Prevent Social Inequalities Amongst People of
   All Ages and Abilities? An Integrative Literature Review Approach
SO SUSTAINABILITY
LA English
DT Review
DE inclusive design; social sustainability; social inequalities; healthy
   cities; proximity models; urban mobility; cities for all; urban
   resilience; spatial justice; liveable communities
ID ESTIMATING NEIGHBORHOOD WALKABILITY; WALKABLE CITY; UNIVERSAL DESIGN;
   INCLUSIVE DESIGN; LAND-USE; DISABILITY; TIME; VALIDATION; TRANSPORT;
   INSTRUMENTS
AB Although many studies are currently examining the city of proximity as a way to promote sustainable and environmentally friendly cities, few consider it meaningful to achieve an "inclusive" mobility model for people of all ages and abilities, including people with disabilities, children, or the elderly. This literature review paper focuses on the extent to which the city of proximity can provide inclusive mobility and reduce inequalities in the urban scene, thus achieving social sustainability. Out of the 256 references analysed under an integrative review methodology, only 10 delivered solid results. One of the main contributions of this paper is an indicator and sub-indicator system to improve the integrative methodology in urban studies, which led to the identification of several incoherencies in proximity models in terms of accessibility and design for all risking fostering urban with these policies. Although the mentioning of vulnerable collectives may mean a rise in inclusion awareness, one of the most relevant outputs of this paper is the lack of specific measures to revert the disadvantageous situations that conventional mobility planning delivers, as well as the neglection to use proximity actions to promote inclusive and socially resilient urban cities.
C1 [Saiz, Alba Ramirez; Alonso, Andrea; Lamiquiz, Patxi] Univ Politecn Madrid, Dept Urban & Reg Planning, Madrid 28040, Spain.
   [Jimenez Martin, Delfin] EQAR Urbanism Bldg & Accessibil SLP, Madrid 28007, Spain.
C3 Universidad Politecnica de Madrid
RP Saiz, AR; Alonso, A (corresponding author), Univ Politecn Madrid, Dept Urban & Reg Planning, Madrid 28040, Spain.
EM alba.ramirez@alumnos.upm.es; andrea.alonso@upm.es
RI Martin, Delfin/AAO-7162-2020; Alonso Ramos, Andrea/K-7445-2017
OI Alonso Ramos, Andrea/0000-0001-8202-8581; Jimenez Martin,
   Delfin/0000-0001-9216-611X
FU National Plan of Scientific and Technical Research and Innovation
   [PID2020116584RB-I00]
FX This article is a partial result of the project "ACCESIBILITY PLANNIG
   FOR THE 15MINUTE CITY (ACC<15')", which is funded by the National
   Program of I+D+I for social challenges, included in the National Plan of
   Scientific and Technical Research and Innovation 2017-2020
   (PID2020116584RB-I00/AEI/10.13039/501100011033).
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NR 190
TC 6
Z9 6
U1 9
U2 49
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2022
VL 14
IS 19
AR 12911
DI 10.3390/su141912911
PG 31
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 5G9EY
UT WOS:000867294400001
OA gold
DA 2025-04-22
ER

PT J
AU Straulino, D
   Diodato, D
   O'Clery, N
AF Straulino, Daniel
   Diodato, Dario
   O'Clery, Neave
TI Economic crisis, urban structural change and inter-sectoral labour
   mobility
SO STRUCTURAL CHANGE AND ECONOMIC DYNAMICS
LA English
DT Article
DE Cities; Resilience; Financial crisis; Labour markets; Structural change;
   Labour mobility
ID REGIONAL RESILIENCE; GROWTH; DIVERSIFICATION; RELATEDNESS; CLUSTERS;
   VARIETY; FIRMS
AB Are recessions drivers of structural change? Here we investigate employment dynamics in the UK and show that a re-allocation of labour between industrial sectors in times of crisis induces an acceleration in structural change. Our key hypothesis is that cities with industrial baskets that exhibit strong potential for inter-industry labour mobility are more resilient as they can shift workers between sectors resulting in employment growth in some sectors - which in turn induces structural change during an economic crisis. Probing this hypothesis, we find that UK cities experienced a sharp increase in the rate of structural change at the city level around 2009 which coincided with an increase in inter-sectoral job transitions during the recession (2008-11) which persisted for years afterwards. To shed light on this, we deploy an econometric model to show that local employment in skill-related sectors, which captures the potential for inter-industry labour mobility, is most strongly associated with city-industry employment growth during the recession period.
C1 [Straulino, Daniel; O'Clery, Neave] UCL, Ctr Adv Spatial Anal, London, England.
   [Diodato, Dario] European Commiss, Joint Res Ctr, Seville, Spain.
   [O'Clery, Neave] Alan Turing Inst, London, England.
   [O'Clery, Neave] Univ Oxford, Math Inst, Oxford, England.
C3 University of London; University College London; University of Oxford
RP O'Clery, N (corresponding author), UCL, Ctr Adv Spatial Anal, London, England.
EM n.oclery@ucl.ac.uk
RI Diodato, Dario/JXY-1149-2024
FU Turing-HSBC-ONS Economic Data Science Award 'Network modelling of the
   UK's urban skill base' (NOC and DS)
FX We would like to acknowledge Camila Rangel Smith (Alan Turing Institute,
   UK) for research assistance on this project. We would also like to
   acknowledge the anonymous peer reviewers of the European Commission 'JRC
   Working Papers on Corporate R&D and Innovation'. The views expressed in
   this article are purely those of the author and may not in any
   circumstances be regarded as stating an official position of the
   European Commission. This article was completed with the support of a
   Turing-HSBC-ONS Economic Data Science Award 'Network modelling of the
   UK's urban skill base' (NOC and DS) .
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NR 72
TC 0
Z9 0
U1 1
U2 5
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0954-349X
EI 1873-6017
J9 STRUCT CHANGE ECON D
JI Struct. Change and Econ. Dyn.
PD DEC
PY 2024
VL 71
BP 135
EP 144
DI 10.1016/j.strueco.2024.06.009
EA JUL 2024
PG 10
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA ZD7U0
UT WOS:001273429900001
OA hybrid
DA 2025-04-22
ER

PT J
AU Barría, P
   Cruzat, ML
   Cienfuegos, R
   Gironás, J
   Escauriaza, C
   Bonilla, C
   Moris, R
   Ledezma, C
   Guerra, M
   Rodríguez, R
   Torres, A
AF Barria, Pilar
   Luisa Cruzat, Maria
   Cienfuegos, Rodrigo
   Gironas, Jorge
   Escauriaza, Cristian
   Bonilla, Carlos
   Moris, Roberto
   Ledezma, Christian
   Guerra, Maricarmen
   Rodriguez, Raimundo
   Torres, Alma
TI From Multi-Risk Evaluation to Resilience Planning: The Case of Central
   Chilean Coastal Cities
SO WATER
LA English
DT Article
DE multi-risk matrix; resilience; flood risk; multi-hazard; risk reduction
ID DEBRIS FLOWS; RISK-ASSESSMENT; HAZARD; MODEL
AB Multi-hazard evaluations are fundamental inputs for disaster risk management plans and the implementation of resilient urban environments, adapted to extreme natural events. Risk assessments from natural hazards have been typically restricted to the analysis of single hazards or focused on the vulnerability of specific targets, which might result in an underestimation of the risk level. This study presents a practical and effective methodology applied to two Chilean coastal cities to characterize risk in data-poor regions, which integrates multi-hazard and multi-vulnerability analyses through physically-based models and easily accessible data. A matrix approach was used to cross the degree of exposure to floods, landslides, tsunamis, and earthquakes hazards, and two dimensions of vulnerability (physical, socio-economical). This information is used to provide the guidelines to lead the development of resilience thinking and disaster risk management in Chile years after the major and destructive 2010 Mw8.8 earthquake.
C1 [Barria, Pilar; Cienfuegos, Rodrigo; Gironas, Jorge; Escauriaza, Cristian] Conicyt Fondap 15110017, Ctr Invest Gest Integrada Desastres Nat, Santiago 7820436, Chile.
   [Barria, Pilar] Univ Chile, Dept Gest Forestal & Medio Ambiente, Fac Ciencias Forestales & Conservac Nat, Santiago 8820808, Chile.
   [Luisa Cruzat, Maria; Cienfuegos, Rodrigo; Gironas, Jorge; Escauriaza, Cristian; Bonilla, Carlos; Guerra, Maricarmen] Pontificia Univ Catolica Chile, Dept Ingn Hidraul & Ambiental, Santiago 7820436, Chile.
   [Gironas, Jorge; Bonilla, Carlos] CONICYT FONDAP 15110020, Ctr Desarrollo Urbano Sustentable, Santiago 7530092, Chile.
   [Gironas, Jorge] Pontificia Univ Catolica Chile, Ctr Interdisciplinario Cambio Global, Santiago 7820436, Chile.
   [Moris, Roberto; Torres, Alma] Pontificia Univ Catolica Chile, Inst Estudios Urbanos & Terr, Santiago 7530091, Chile.
   [Ledezma, Christian] Pontificia Univ Catolica Chile, Dept Ingn Estruct & Geotecn, Santiago 7820436, Chile.
   [Guerra, Maricarmen] Univ Washington, Appl Phys Lab, Seattle, WA 98105 USA.
   [Rodriguez, Raimundo] Edic Ingn, Santiago 7560873, Chile.
C3 Universidad de Chile; Pontificia Universidad Catolica de Chile;
   Pontificia Universidad Catolica de Chile; Pontificia Universidad
   Catolica de Chile; Pontificia Universidad Catolica de Chile; University
   of Washington; University of Washington Seattle
RP Barría, P (corresponding author), Conicyt Fondap 15110017, Ctr Invest Gest Integrada Desastres Nat, Santiago 7820436, Chile.; Barría, P (corresponding author), Univ Chile, Dept Gest Forestal & Medio Ambiente, Fac Ciencias Forestales & Conservac Nat, Santiago 8820808, Chile.
EM pbarria@uchile.cl; mluisacruzats@gmail.com; racienfu@ing.puc.cl;
   jgironas@ing.puc.cl; cescauri@ing.puc.cl; cbonilla@ing.puc.cl;
   rmoris@uc.cl; ledezma@ing.puc.cl; mnguerra@uc.cl;
   raimundorodriguezt@gmail.com; adtorres@uc.cl
RI Gironás, Jorge/F-8297-2013; Barria, Pilar/L-2535-2018; Escauriaza,
   Cristian/D-6318-2014; Ledezma, Christian/D-1376-2014; Cienfuegos,
   Rodrigo/B-9162-2012
OI Escauriaza, Cristian/0000-0001-5275-8364; Ledezma,
   Christian/0000-0003-3821-6264; Cienfuegos, Rodrigo/0000-0001-5768-2477;
   Gironas, Jorge/0000-0002-6933-2658; Moris, Roberto/0000-0002-9992-8364;
   Barria, Pilar/0000-0002-0189-5008; Guerra,
   Maricarmen/0000-0002-1705-4879
FU Conicyt/Fondap [15110017]
FX This research was funded by Conicyt/Fondap grant no. 15110017.
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NR 88
TC 16
Z9 17
U1 8
U2 78
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD MAR 19
PY 2019
VL 11
IS 3
AR 572
DI 10.3390/w11030572
PG 24
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA HT4QL
UT WOS:000464548000004
OA gold
DA 2025-04-22
ER

PT J
AU Brunetta, G
   Salata, S
AF Brunetta, Grazia
   Salata, Stefano
TI Mapping Urban Resilience for Spatial PlanningA First Attempt to Measure
   the Vulnerability of the System
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; spatial planning; vulnerability; measuring; mapping;
   decision-making
ID ECOSYSTEM SERVICES; GREEN INFRASTRUCTURE; LAND; FRAMEWORK; CITIES;
   MANAGEMENT; SPRAWL
AB The concept of resilience' breaks down silos by providing a conceptual umbrella' under which different disciplines come together to tackle complex problems with more holistic interventions. Acknowledging the complexity of Davoudi's approach (2012) means to recognize that spatial resilience' is influenced by many phenomena that are difficult to measure: the adaptation and transformation of a co-evolutive system. This paper introduces a pioneering approach that is propaedeutic to the spatial measure of urban resilience assuming that it is possible to define a system as being intrinsically vulnerable to stress and shocks and minimally resilient, as described by Folke in 2006. In this sense, vulnerability is counterpoised to resilience, even if they act simultaneously: the first includes the exposure to a specific hazard, whereas the second emerges from the characteristics of a complex socio-ecological and technical system. Here we present a Geographic Information System-based vulnerability matrix performed in ESRI ArcGIS 10.6 environment as an output of the spatial interaction between sensitivities, shocks, and linear pressures of the urban system. The vulnerability is the first step of measuring the resilience of the system by a semi-quantitative approach. The spatial interaction of these measures is useful to define the interventions essential to designing and building the adaptation of the built environment by planning governance. Results demonstrate how mapping resilience aids the spatial planning decision-making processes, indicating where and what interventions are necessary to adapt and transform the system.
C1 [Brunetta, Grazia; Salata, Stefano] Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, I-10125 Turin, Italy.
C3 Polytechnic University of Turin
RP Salata, S (corresponding author), Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, I-10125 Turin, Italy.
EM grazia.brunetta@polito.it; stefano.salata@polito.it
RI Salata, Stefano/B-9186-2018
OI Salata, Stefano/0000-0001-9342-9241; Brunetta,
   Grazia/0000-0003-1868-2700
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NR 73
TC 34
Z9 34
U1 3
U2 37
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR 2
PY 2019
VL 11
IS 8
AR 2331
DI 10.3390/su11082331
PG 24
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA HX9TU
UT WOS:000467752200144
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Xiao, WY
   Wei, YD
   Wu, YY
AF Xiao, Weiye
   Wei, Yehua Dennis
   Wu, Yangyi
TI Neighborhood, built environment and resilience in transportation during
   the COVID-19 pandemic
SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Transit ridership; COVID-19; Bayesian structure time series; Regression
   tree; Build environment
ID TRANSIT RIDERSHIP; SUBWAY RIDERSHIP; DENSITY; OUTCOMES; SYSTEMS; CITY
AB COVID-19 has swept the world, and the unprecedented decline in transit ridership has been noticed. However, little attention has been paid to the resilience of the transportation system, particularly in medium-sized cities. Drawing upon a light rail ridership dataset in Salt Lake County from 2017 to 2021, we develop a novel method to measure the vulnerability and resilience of transit ridership using a Bayesian structure time series model. The results show that government policies have a more significant impact than the number of COVID-19 cases on transit ridership. Regarding the built environment, a highly compact urban design might reduce the building coverage ratio and makes transit stations more vulnerable and less resilient. Furthermore, the high rate of minorities is the primary reason for the drops in transit ridership. The findings are valuable for understanding the vulnerability and resilience of transit ridership to pandemics for better coping strategies in the future.
C1 [Xiao, Weiye] Chinese Acad Sci, Nanjing Inst Geog & Limnol, Nanjing 214000, Jiangsu, Peoples R China.
   [Wei, Yehua Dennis] Univ Utah, Dept Geog, Salt Lake City, UT 84112 USA.
   [Wu, Yangyi] Wuhan Univ, Sch Urban Design, Wuhan 430072, Hubei, Peoples R China.
C3 Chinese Academy of Sciences; Nanjing Institute of Geography & Limnology,
   CAS; Utah System of Higher Education; University of Utah; Wuhan
   University
RP Wei, YD (corresponding author), Univ Utah, Dept Geog, Salt Lake City, UT 84112 USA.
EM ywxiao@niglas.ac.cn; wei@geog.utah.edu; yangyi.wu@whu.edu.cn
RI Wei, Yehua/A-7831-2009; xiao, weiye/IAM-3453-2023; Wu,
   Yangyi/GQA-8134-2022
FU Jiangsu Funding Program [YJ20220202]
FX We would like to acknowledge the funding of Jiangsu Funding Program for
   Excellent Postdoctoral Talent and International Postdoctoral Exchange
   Fellowship Program, Grant No.YJ20220202.
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NR 67
TC 51
Z9 52
U1 8
U2 138
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1361-9209
EI 1879-2340
J9 TRANSPORT RES D-TR E
JI Transport. Res. Part D-Transport. Environ.
PD SEP
PY 2022
VL 110
AR 103428
DI 10.1016/j.trd.2022.103428
EA AUG 2022
PG 15
WC Environmental Studies; Transportation; Transportation Science &
   Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Transportation
GA 3Y7CD
UT WOS:000843878500001
PM 35975170
OA Green Published, Bronze
DA 2025-04-22
ER

PT J
AU Appel, A
   Hardaker, S
AF Appel, Alexandra
   Hardaker, Sina
TI Strategies in Times of Pandemic Crisis-Retailers and Regional Resilience
   in Wurzburg, Germany
SO SUSTAINABILITY
LA English
DT Article
DE resilience; COVID-19; pandemic crisis; regional resilience; retail;
   owner-operated retailers; textile sector; Germany
ID ORGANIZATIONS; GEOGRAPHY
AB Research on the COVID-19 crisis and its implications on regional resilience is still in its infancy. To understand resilience on its aggregate level it is important to identify (non)resilient actions of individual actors who comprise regions. As the retail sector among others represents an important factor in an urban regions recovery, we focus on the resilience of (textile) retailers within the city of Wurzburg in Germany to the COVID-19 pandemic. To address the identified research gap, this paper applies the concept of resilience. Firstly, conducting expert interviews, the individual (textile) retailers' level and their strategies in coping with the crisis is considered. Secondly, conducting a contextual analysis of the German city of Wurzburg, we wish to contribute to the discussion of how the resilience of a region is influenced inter alia by actors. Our study finds three main strategies on the individual level, with retailers: (1) intending to "bounce back" to a pre-crisis state, (2) reorganising existing practices, as well as (3) closing stores and winding up business. As at the time of research, no conclusions regarding long-term impacts and resilience are possible, the results are limited. Nevertheless, detailed analysis of retailers' strategies contributes to a better understanding of regional resilience.
C1 [Appel, Alexandra; Hardaker, Sina] Julius Maximilian Univ Wurzburg, Dept Econ Geog, Inst Geog & Geol, D-97070 Wurzburg, Germany.
C3 University of Wurzburg
RP Appel, A; Hardaker, S (corresponding author), Julius Maximilian Univ Wurzburg, Dept Econ Geog, Inst Geog & Geol, D-97070 Wurzburg, Germany.
EM alexandra.appel@uni-wuerzburg.de; sina.hardaker@uni-wuerzburg.de
RI Hardaker, Sina/I-4991-2016
OI Appel, Alexandra/0000-0001-5689-6684; Hardaker, Sina/0000-0002-8210-4107
FU Open Access Publication Fund of the University of Wurzburg
FX This publication was supported by the Open Access Publication Fund of
   the University of Wurzburg.
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PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2021
VL 13
IS 5
AR 2643
DI 10.3390/su13052643
PG 19
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA QW3TJ
UT WOS:000628575900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Sokolova, MV
   Fath, BD
   Grande, U
   Buonocore, E
   Franzese, PP
AF Sokolova, Milena V.
   Fath, Brian D.
   Grande, Umberto
   Buonocore, Elvira
   Franzese, Pier Paolo
TI The Role of Green Infrastructure in Providing Urban Ecosystem Services:
   Insights from a Bibliometric Perspective
SO LAND
LA English
DT Review
DE green infrastructure; cities; urban ecosystems; ecosystem services;
   urbanization; SDG 11; bibliometric network analysis; VOSviewer
ID URBANIZATION; DISSERVICES; CHALLENGES
AB Urban ecosystems, and the services they provide, are a key focus of the United Nations 2030 Agenda for Sustainable Development, specifically SDG 11, which emphasizes making cities inclusive, safe, resilient, and sustainable. Green infrastructure (GI) is crucial in enhancing citizens' quality of life and achieving this goal and it can be defined as a strategically planned network of natural and semi-natural areas designed to deliver a range of ecosystem services (ESs). These infrastructures improve ecosystem functioning, protect biodiversity, promote health, support sustainable land and water management, and boost the local green economy. This paper explores the scientific literature on GI and their ESs in cities using bibliometric science. By combining the keywords "Green Infrastructures", "Ecosystem Services", and "Cities" with VOSviewer software (1.6.20 version), we analyzed trends over time. Results show growing attention to these topics, emphasizing human well-being, urban resilience, and sustainability. The study also highlights that focusing exclusively on either "Green Infrastructure in Cities" or "Ecosystem Services in Cities" leads to fragmented insights. A more integrated examination of these three domains offers a holistic view and underscores the importance of considering ecosystem disservices. The study further identifies key research directions, including the need for a comprehensive evaluation of diverse GI types, especially those that are under-researched, such as green roofs, sports areas, and wetlands, and the underexplored role of cultural ecosystem services. Additionally, future research should consider both the benefits and disservices of GI to support better urban planning decisions. Finally, integrating biophysical, social, and economic values of ESs is critical for providing more holistic insights and enhancing sustainable urban development. The novelty of this paper lies in its integrated, holistic approach to examining GI and ESs in urban areas, with a focus on ecosystem disservices, insufficient attention to specific GI types, and the role of cultural ecosystem services-each contributing to the creation of more resilient and sustainable cities.
C1 [Sokolova, Milena V.; Grande, Umberto; Buonocore, Elvira; Franzese, Pier Paolo] Parthenope Univ Naples, UNESCO Chair Environm, Dept Sci & Technol, Int PhD Programme, I-80122 Naples, Italy.
   [Sokolova, Milena V.; Fath, Brian D.] Int Inst Appl Syst Anal, Adv Syst Anal Program, A-2361 Laxenburg, Austria.
   [Fath, Brian D.] Towson Univ, Dept Biol Sci, Towson, MD 21252 USA.
   [Fath, Brian D.] Masaryk Univ, Dept Environm Studies, Brno 60200, Czech Republic.
   [Grande, Umberto] Nicolaus Copernicus Univ, Dept Geobot & Landscape Planning, PL-87100 Torun, Poland.
C3 Parthenope University Naples; International Institute for Applied
   Systems Analysis (IIASA); University System of Maryland; Towson
   University; Masaryk University Brno; Nicolaus Copernicus University
RP Fath, BD (corresponding author), Int Inst Appl Syst Anal, Adv Syst Anal Program, A-2361 Laxenburg, Austria.; Fath, BD (corresponding author), Towson Univ, Dept Biol Sci, Towson, MD 21252 USA.; Fath, BD (corresponding author), Masaryk Univ, Dept Environm Studies, Brno 60200, Czech Republic.
EM milena.sokolova001@studenti.uniparthenope.it; bfath@towson.edu;
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RI buonocore, elvira/AAJ-5995-2021; Franzese, Pier/H-3357-2011
OI Fath, Brian D./0000-0001-9440-6842; Franzese, Pier
   Paolo/0000-0003-2156-6380
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NR 81
TC 5
Z9 5
U1 25
U2 25
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD OCT
PY 2024
VL 13
IS 10
AR 1664
DI 10.3390/land13101664
PG 20
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA K2V4U
UT WOS:001342505400001
OA gold
DA 2025-04-22
ER

PT J
AU Palazzo, E
   Wang, SS
AF Palazzo, Elisa
   Wang, Sisi
TI Landscape Design for Flood Adaptation from 20 Years of Constructed
   Ecologies in China
SO SUSTAINABILITY
LA English
DT Article
DE landscape architecture; research-by-design; submersible public space;
   flood adaptation; flood resilient cities
ID MULTIFUNCTIONAL LANDSCAPES; URBAN-DESIGN; RISK; CHALLENGES; STRATEGY;
   QUALITY
AB In highly urbanized floodplains, it is becoming widely accepted that a change is needed to move away from flood control towards flood adaptation paradigms. To address riverine and flash flooding in urban areas, urban and landscape designers have developed design solutions that are able to increase urban ecological resilience by allocating space to fluctuating water levels. With the purpose of operationalizing flood resilience, this study explores how constructed ecology principles are applied to the design of multifunctional landscapes to restore floodplain functions in urban areas and prevent downstream flooding. The study adopts a design-by-research approach to examine 30 case studies from the Sponge Cities initiative realized in China in the last twenty years and develops a toolbox of Flood Adaptation Types for stormwater management. The results are aimed at informing operations in the planning and design professions by proposing a schematic design framework for flood adaptation in different geographic conditions, scales, and climates. The study sets up the bases for a systematic assessment of flood adaptation responses also by facilitating communication between disciplines, designers, and non-experts. This will enable evidence-based decisions in landscape architecture and urban design, as well as fulfill pedagogic purposes in higher education and research.
C1 [Palazzo, Elisa] UNSW, Built Environm, Sydney, NSW 2052, Australia.
   [Wang, Sisi] Beijing Univ Civil Engn & Architecture, Ctr Urban Stormwater Syst & Water Environm, Beijing 100044, Peoples R China.
C3 University of New South Wales Sydney; Beijing University of Civil
   Engineering & Architecture
RP Palazzo, E (corresponding author), UNSW, Built Environm, Sydney, NSW 2052, Australia.
EM elisa.palazzo@unsw.edu.au; ezhu0309@sina.com
RI palazzo, elisa/AAM-5061-2020
OI palazzo, elisa/0000-0001-6189-8692
FU School of Built Environment, UNSW Sydney
FX This article APC were funded by the School of Built Environment, UNSW
   Sydney.
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TC 8
Z9 8
U1 14
U2 56
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2022
VL 14
IS 8
AR 4511
DI 10.3390/su14084511
PG 20
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 0S5XS
UT WOS:000786346900001
OA gold
DA 2025-04-22
ER

PT J
AU Thombre, A
   Agarwal, A
AF Thombre, Anurag
   Agarwal, Amit
TI A paradigm shift in urban mobility: Policy insights from travel before
   and after COVID-19 to seize the opportunity
SO TRANSPORT POLICY
LA English
DT Article
DE COVID-19; Travel behavior; Mobility-shift; Resilient public transport;
   Active travel; Transport policy; India
ID PERSONAL RAPID-TRANSIT; PUBLIC TRANSPORT; IMPACT; CONGESTION; SERVICES;
   PERIOD
AB Background: COVID-19 outbreak unfolds as the biggest challenge of this century by far. Virulence of the disease has compelled densely populated countries like India to impose severest measures, which include full or partial lockdown to contain the virus spread. The contagious virus has put the lives of many in urban cities on hold and forced them to abandon or restrict regular activities, which includes a basic human need to travel to satisfy one's daily needs. The eventual impact of the pandemic on individual mobility and the urban city's sustainability depends upon the resilience of medium and long-term policies during such disruptive events. Objective: In order to gauge the impact of this unprecedented disease on travel behavior and mobility patterns of individuals, a web survey is conducted in urban agglomerations of India. The idea is to record travel mode choices before, during and after situations. The study also attempts to elicit responses towards a safer and disaster-resilient public transport, which can also cater to the needs of private vehicle-owning individuals. Further, the study presents and evaluates a set of medium to long-term policy prescriptions to negate the repercussions of this crisis and seize the opportunity it has created so that the long-held dream of sustainable and resilient cities in the context of urban mobility is realized in the best way possible. Key findings: The study findings indicate an increase in the car-dependency pan-India level post the COVID-19 crisis. Strikingly the captive users of public transport and non-motorized transport mode (walk) are also willing to make a shift towards private motorized vehicles (car, motorized two-wheeler). The eventual mobility shift will depend upon- (a) the recovery period of mass transportation systems to normalcy (b) investments and promotion of active travel modes (non-motorized transport, i.e., walk, bicycle). The findings also reveal that demand and the willingness to pay extra for a safer, faster, cleaner, comfortable, and most importantly, resilient public transport exists. Further, policy evaluations for sustainable and resilient recovery reveal - (a) the provision of bicycle superhighway will push the bicycle share from 31% to approximately 44% (b) travel demand moderation efforts such as (i) staggering of working days demonstrates the reduction in the congestion externalities. (ii) Flexible arrangements for educational activities (two shifts in a day) facilitates overall gain in the system welfare, and (c) incentive such as reducing public transport fare has a positive impact on its share due to the mobility-shift from the private motorized vehicle. Interpretation and implications of results: Investment and encouragement of active travel mode should be prioritized for personal well-being and disaster-resilient cities. Resilience planning should be an integral part of public transportation systems to handle the future shock of pandemics and other emergencies. Additionally, selfsustainable neighborhoods should be encouraged to reduce the trip lengths substantially or the need for private motorized transport for various secondary activities.
C1 [Thombre, Anurag; Agarwal, Amit] Indian Inst Technol Roorkee, Dept Civil Engn, Roorkee 247667, Uttar Pradesh, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Roorkee
RP Agarwal, A (corresponding author), Indian Inst Technol Roorkee, Dept Civil Engn, Roorkee 247667, Uttar Pradesh, India.
EM athombre@ce.iitr.ac.in; amitfce@iitr.ac.in
RI Agarwal, Amit/U-5043-2019
OI Agarwal, Amit/0000-0002-3352-0227; Thombre, Anurag/0009-0002-7628-1745
FU Indian Institute of Technology Roorkee, India
FX The authors wish to thank respondents who voluntarily completed the
   survey, Mr. Harsh Vardhan at Indian Institute of Technology Roorkee for
   assistance in preparing the base script for Fig. 10 and Ms. Nidhi
   Kathait at Indian Institute of Technology Roorkee for assistance in
   literature review. The authors acknowledge the utilization of the
   resources from the FI grant for running simulation experiments, funded
   by Indian Institute of Technology Roorkee, India.
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NR 66
TC 99
Z9 100
U1 12
U2 85
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0967-070X
EI 1879-310X
J9 TRANSPORT POLICY
JI Transp. Policy
PD SEP
PY 2021
VL 110
BP 335
EP 353
DI 10.1016/j.tranpol.2021.06.010
EA JUN 2021
PG 19
WC Economics; Transportation
WE Social Science Citation Index (SSCI)
SC Business & Economics; Transportation
GA TS0TN
UT WOS:000679369400002
PM 36567700
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Rao, FJ
AF Rao, Fujie
TI Resilient Forms of Shopping Centers Amid the Rise of Online Retailing:
   Towards the Urban Experience
SO SUSTAINABILITY
LA English
DT Article
DE retail resilience; online retailing; shopping center; urban experience;
   urbanity
ID HIGH STREET; PERSPECTIVE; FRAMEWORK; EDMONTON; INTERNET; SYSTEMS;
   POLICY; MALL
AB The rapid expansion of online retailing has long raised the concern that shops and shopping centers (evolved or planned agglomerations of shops) may be abandoned and thus lead to a depletion of urbanity. Contesting this scenario, I employ the concept of retail resilience' to explore the ways in which different material forms of shopping may persist as online retailing proliferates. Through interviews with planning and development professionals in Edmonton (Canada), Melbourne (Australia), Portland (Oregon), and Wuhan (China); field/virtual observations in a wider range of cities; and a morphological analysis of key shopping centers, I find that brick-and-mortar retail space is not going away; rather, it is being increasingly developed into various shopping spaces geared toward the urban experience (a combination of density, mixed uses, and walkability) and may thus be adapted to online retailing. While not all emerging forms of shopping may persist, these diverse changes, experiments, and adaptations of shops and shopping centers can be considered a form of resilience. However, many emerging shopping centers pose a threat to urban public life.
C1 [Rao, Fujie] Univ Melbourne, Melbourne Sch Design, Melbourne, Vic 3010, Australia.
C3 University of Melbourne
RP Rao, FJ (corresponding author), Univ Melbourne, Melbourne Sch Design, Melbourne, Vic 3010, Australia.
EM raofujie@gmail.com
RI Rao, Fujie/AAH-5242-2019
OI Rao, Fujie/0000-0002-6828-6944
FU ABP Research PhD Fieldwork Grant; Melbourne School of Design, University
   of Melbourne
FX This research received the ABP Research PhD Fieldwork Grant (2017) by
   Melbourne School of Design, University of Melbourne.
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NR 86
TC 23
Z9 25
U1 6
U2 54
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2019
VL 11
IS 15
AR 3999
DI 10.3390/su11153999
PG 25
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA IW8FS
UT WOS:000485230200004
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Alfie-Cohen, M
   Garcia-Becerra, FY
AF Alfie-Cohen, Miriam
   Garcia-Becerra, Flor Yunuen
TI A multi-stakeholder participatory methodology to facilitate
   socio-ecological climate change vulnerability-adaptation-resilience
   strategies: application of the Q Method
SO MITIGATION AND ADAPTATION STRATEGIES FOR GLOBAL CHANGE
LA English
DT Article
DE Peri-urban community; Climate change; Resilient adaptation;
   Environmental economy; Ecological engineering; Side-by-side
   decision-making
ID ECOSYSTEM SERVICES; LAND-USE; PERSPECTIVES; PERCEPTIONS; MANAGEMENT;
   POLICIES; COVER; SCALE; RISK
AB Peri-urban spaces are critical components of urban systems and highly vulnerable to climate change (CC). Viable adaptation strategies for these spaces should consider the interconnectedness between cities and their peri-urbanities, and their vulnerability-adaptation-resilience dynamics, which emphasizes understanding their state of accumulative vulnerability, beyond the environmental realm. Further, the successful implementation of adaptation measures requires multi-stakeholder participation. Thus, peri-urbanities need to actively incorporate their perceptions during the development of such interventions. This work aims at establishing the preferences at both the individual and community level in a peri-urban area during the identification of its vulnerability-adaptation-resilience dynamics. This approach was applied to a peri-urbanity in Northwestern Mexico under a multi-decade drought. The Q Method was utilized to understand the community's priorities regarding CC adaptations. The findings were discussed between academics, local government officials, and the community and then used to outline a strategy that would empower locals to implement a priority-based plan. It is suggested that this plan include green infrastructure, household water and energy savings, comprehensive waste management, and local food production. These findings could be used as reference to create local adaptation-resilience efforts in other drought-prone peri-urban spaces with similar vulnerability-adaptation-resilience dynamics.
C1 [Alfie-Cohen, Miriam] Metropolitan Autonomous Univ, Unidad Cuajimalpa, Dept Social Sci, Cuajimalpa Campus, Mexico City, DF, Mexico.
   [Garcia-Becerra, Flor Yunuen] Univ Northern British Columbia, Sch Engn, 3333 Univ Way, Prince George, BC V2N 4Z9, Canada.
C3 Universidad Autonoma Metropolitana - Mexico; University Autonoma
   Metropolitana Cuajimalpa; University of Northern British Columbia
RP Garcia-Becerra, FY (corresponding author), Univ Northern British Columbia, Sch Engn, 3333 Univ Way, Prince George, BC V2N 4Z9, Canada.
EM june.garcia-becerra@unbc.ca
OI Alfie, Miriam/0000-0002-5967-5710
FU joint SEMARNAT/CONACYT grant [263102]; Dr. Garcia-Becerra's CONACYT
   Researcher-Professor Fellowship [2989]
FX This work was funded by the joint SEMARNAT/CONACYT grant (Project No.
   263102) and Dr. Garcia-Becerra's CONACYT Researcher-Professor Fellowship
   (Project No. 2989, 2014-2021).
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NR 61
TC 3
Z9 3
U1 8
U2 45
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1381-2386
EI 1573-1596
J9 MITIG ADAPT STRAT GL
JI Mitig. Adapt. Strateg. Glob. Chang.
PD FEB
PY 2022
VL 27
IS 2
AR 14
DI 10.1007/s11027-021-09988-9
PG 25
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA YH9ZT
UT WOS:000743518300001
DA 2025-04-22
ER

PT J
AU Mohebbi, S
   Zhang, Q
   Wells, EC
   Zhao, TT
   Nguyen, H
   Li, MY
   Abdel-Mottaleb, N
   Uddin, S
   Lu, Q
   Wakhungu, MJ
   Wu, ZQ
   Zhang, Y
   Tuladhar, A
   Ou, XM
AF Mohebbi, Shima
   Zhang, Qiong
   Wells, E. Christian
   Zhao, Tingting
   Nguyen, Hung
   Li, Mingyang
   Abdel-Mottaleb, Noha
   Uddin, Shihab
   Lu, Qing
   Wakhungu, Mathews J.
   Wu, Zhiqiang
   Zhang, Yu
   Tuladhar, Anwesh
   Ou, Xinming
TI Cyber-physical-social interdependencies and organizational resilience: A
   review of water, transportation, and cyber infrastructure systems and
   processes
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Review
DE Infrastructure interdependency; Integration; Resilience metrics;
   Sustainable design strategies
ID CLIMATE-CHANGE; NETWORK THEORY; PUBLIC-HEALTH; URBAN AREAS;
   VULNERABILITY; MANAGEMENT; COOPERATION; FRAMEWORK; POLITICS; METRICS
AB Building resilience in critical infrastructures for smart and connected cities requires consideration of different types of interdependencies. Previous research has mainly conceptualized three types of interdependencies including cyber, physical, and social. To develop resilient and sustainable design, operations, and managerial strategies, domain knowledge for each infrastructure along with its organizational characteristics needs to be integrated with those of other infrastructures. In this review paper, an infrastructure-oriented approach is taken to systematically examine different types of interdependencies and resilience quantification techniques for water, transportation, and cyber infrastructures. Design, operations, and managerial strategies are identified and categorized into short-term, mid-term, and long-term plans that can potentially improve the resilience and sustanability of the underlying infrastructures. Future research needs, in terms of resilience metrics, interdependency, and strategies, are discussed.
C1 [Mohebbi, Shima] George Mason Univ, Dept Syst Engn & Operat Res, Nguyen Engn Bldg, Fairfax, VA 22030 USA.
   [Zhang, Qiong; Zhao, Tingting; Abdel-Mottaleb, Noha; Uddin, Shihab; Lu, Qing; Wu, Zhiqiang; Zhang, Yu] Univ S Florida, Dept Civil & Environm Engn, 4202 E Fowler Ave, Tampa, FL 33620 USA.
   [Wells, E. Christian; Wakhungu, Mathews J.] Univ S Florida, Dept Anthropol, 4202 E Fowler Ave, Tampa, FL 33620 USA.
   [Nguyen, Hung; Li, Mingyang] Univ S Florida, Dept Ind & Management Syst Engn, 4202 E Fowler Ave, Tampa, FL 33620 USA.
   [Tuladhar, Anwesh; Ou, Xinming] Univ S Florida, Dept Comp Sci & Engn, 4202 E Fowler Ave, Tampa, FL 33620 USA.
C3 George Mason University; State University System of Florida; University
   of South Florida; State University System of Florida; University of
   South Florida; State University System of Florida; University of South
   Florida; State University System of Florida; University of South Florida
RP Zhang, Q (corresponding author), Univ S Florida, Dept Civil & Environm Engn, 4202 E Fowler Ave, Tampa, FL 33620 USA.
EM qiongzhang@usf.edu
RI lu, qing/HKM-8308-2023; , wuzhiqiang/C-7843-2017; zhao,
   tingting/HNI-8672-2023; Mohebbi, Shima/AAN-8532-2021; Zhang,
   Qiong/KHE-2175-2024
OI Wakhungu, Mathews/0000-0002-4751-2762; Nguyen, Hung/0000-0001-7046-4431;
   Zhao, Tingting/0000-0002-2820-5046; Zhang, Yu/0000-0003-1202-626X
FU U.S. National Science Foundation [1638301]
FX This material is based upon work supported by the U.S. National Science
   Foundation under Grant Number 1638301. Any opinions, findings, and
   conclusions or recommendations expressed in this material are those of
   the authors and do not necessarily reflect the views of the National
   Science Foundation.
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PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD NOV
PY 2020
VL 62
AR 102327
DI 10.1016/j.scs.2020.102327
PG 23
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA NU4DM
UT WOS:000573592700003
OA Bronze
DA 2025-04-22
ER

PT J
AU Barau, AS
   Maconachie, R
   Ludin, ANM
   Abdulharnid, A
AF Barau, Aliyu Salisu
   Maconachie, Roy
   Ludin, A. N. M.
   Abdulharnid, Adnan
TI Urban morphology dynamics and environmental change in Kano, Nigeria
SO LAND USE POLICY
LA English
DT Article
DE Urban sustainability; Vulnerability; Resilience; Coupled human and
   natural system; African city
ID FLOOD RISK-MANAGEMENT; COUPLED HUMAN; CLIMATE-CHANGE; ADAPTATION;
   TRANSITION; POLICY
AB In recent years, a critical understanding of human-nature interactions has become central to studies exploring the dynamics of urban morphology and the sustainability of growing cities in the developing world. Accordingly, numerous scholars have employed the coupled human and natural systems (CHANS) framework as a tool for understanding how cities are evolving in times of profound global change. Focusing on the case of Kano, northern Nigeria's largest city, this paper explores the potential of the CHANS framework in the analysis and interpretation of the human-nature interface in cities of the global south. Drawing on the qualitative analysis of graphic information and classical and contemporary literature, the centuries-old spatial morphology of Kano is traced and analysed. In the process, the paper highlights how change in the roles of traditional institutions of urban land administration have triggered the degeneration of the city's resilient indigenous urban morphology.
   Field investigations and the analysis of a variety of 19th, 20th and, 21st century images reveal significant change in the city's traditional building materials, roofing styles, street forms, distribution of ponds, and green and open spaces. Population pressure on urban land has also been a major driving force behind the unfolding changes. One catastrophic outcome of these changes has been the exacerbation of recurrent floods. In drawing attention to wider lessons for urban planners in other developing country contexts, the paper stresses the need to analyse any notable spatial and non-spatial events in cities in relation to the changing dynamics of urban morphology. (C) 2014 Elsevier Ltd. All rights reserved.
C1 [Barau, Aliyu Salisu] Univ Teknol Malaysia, Dept Urban & Reg Planning, Johor Baharu, Malaysia.
   [Maconachie, Roy] Univ Bath, Dept Social & Policy Sci, Bath BA2 7AY, Avon, England.
   [Ludin, A. N. M.] Univ Teknol Malaysia, Fac Built Environm, Johor Baharu, Malaysia.
   [Abdulharnid, Adnan] Bayero Univ Kano Kano, Dept Geog, Kano, Nigeria.
C3 Universiti Teknologi Malaysia; University of Bath; Universiti Teknologi
   Malaysia
RP Barau, AS (corresponding author), Univ Teknol Malaysia, Dept Urban & Reg Planning, Johor Baharu, Malaysia.
EM aliyubarau1@yahoo.co.uk; rm334@bath.ac.uk; b-anazri@utm.my;
   adnanuabdul@yahoo.com
RI Barau, Aliyu Salisu/D-2936-2015
OI Barau, Aliyu Salisu/0000-0002-1259-3929
FU Division Of Behavioral and Cognitive Sci; Direct For Social, Behav &
   Economic Scie [1229429] Funding Source: National Science Foundation
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NR 84
TC 36
Z9 40
U1 1
U2 70
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-8377
EI 1873-5754
J9 LAND USE POLICY
JI Land Use Pol.
PD JAN
PY 2015
VL 42
BP 307
EP 317
DI 10.1016/j.landusepol.2014.08.007
PG 11
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA AX6FN
UT WOS:000347018700029
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Sharifi, A
AF Sharifi, Ayyoob
TI Resilience of urban social-ecological-technological systems (SETS): A
   review
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Review
DE Social -ecological -technological systems; Urban resilience; Trade-offs;
   Adaptability; Justice; Resilient cities
ID SMART CITIES; INFRASTRUCTURE; FRAMEWORK
AB Resilience is a widely debated concept that encompasses various interpretations and definitions. Recently, in science and policy circles, there has been a growing interest in the concept of Social-Ecological-Technological Systems (SETS) resilience which offers a new interpretation. While this concept is now used frequently, it is not properly understood and there is still a lack of clarity on what it means and its underpinning principles. This lack of clarity and understanding may confuse and even disorient researchers and policy makers. To address this issue, we review the literature published in the context of urban systems. The reviewed literature is mainly focused on nature-based solutions, indicating more contributions from the ecological field. Also, flooding, extreme heat, and drought are major stressors discussed in the literature. We elaborate on the definition of SETS resilience and discuss that its dominant principles are adaptability, transformability, flexibility, redundancy, equity, diversity, foresight capacity, connectivity, robustness, multi-functionality, learning, and non-linearity. We also expound upon the key components of SETS, how they are intertwined, and potential trade-offs that may emerge between them. Our study demonstrates that the implementation of the SETS approach leads to numerous ancillary benefits. These include benefits for climate change adaptation and mitigation, pandemic prevention and response, human health and well-being, and justice. If multi-level and polycentric governance strategies are adopted, it can also help avoid trade-offs that may emerge between social, ecological, and tech-nological dimensions. We conclude by emphasizing that the literature is dominated by epistemological ap-proaches and more empirical research is needed to understand better the complex dynamics of SETS resilience.
C1 [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Lebanese Amer Univ, Sch Architecture & Design, Beirut, Lebanon.
C3 Hiroshima University; Lebanese American University
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.; Sharifi, A (corresponding author), Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.; Sharifi, A (corresponding author), Lebanese Amer Univ, Sch Architecture & Design, Beirut, Lebanon.
EM sharifi@hiroshima-u.ac.jp
RI Sharifi, Ayyoob/M-7584-2013
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NR 79
TC 69
Z9 71
U1 141
U2 262
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD DEC
PY 2023
VL 99
AR 104910
DI 10.1016/j.scs.2023.104910
EA SEP 2023
PG 12
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA S8KO7
UT WOS:001073604400001
OA hybrid
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Pearson, LJ
   Pearson, L
   Pearson, CJ
AF Pearson, Leonie J.
   Pearson, Linda
   Pearson, Craig J.
TI Sustainable urban agriculture: stocktake and opportunities
SO INTERNATIONAL JOURNAL OF AGRICULTURAL SUSTAINABILITY
LA English
DT Article
DE economic; institutions; legal; resilience; scale; social
ID DEVELOPING-COUNTRIES; HEALTH; MALARIA; SYSTEMS; HEAT; DETERMINANTS;
   WETLANDS; ISLANDS; GARDENS; HARARE
AB This paper reviews research on urban agriculture which relates to the three dimensions of sustainability: social, economic and environmental. We propose that urban agriculture has three elements: urban agriculture in isolation; its interface with the people and environment within which it is situated; and its contribution to the design of built form. Additionally, we consider its scale: micro, meso and macro. The analysis draws attention to legal, social and economic constraints and opportunities. It suggests that future priorities for research should be directed towards (i) strategically identifying principles of sustainable urban agriculture that help policy makers to design resilient cities, e.g. using flood-prone areas for food and employment, and (ii) operationally trialling innovative institutional mechanisms, e.g. differential land taxes to support sustainable urban agriculture or payments for environmental services provided by urban agriculture such as carbon sequestration.
C1 [Pearson, Leonie J.] Swinburne Univ Technol, Hawthorn, Vic 3122, Australia.
   [Pearson, Linda] Univ New S Wales, Fac Law, Sydney, NSW 2052, Australia.
   [Pearson, Craig J.] Univ Melbourne, Melbourne Sustainable Soc Inst, Melbourne, Vic 3010, Australia.
C3 Swinburne University of Technology; University of New South Wales
   Sydney; University of Melbourne
RP Pearson, LJ (corresponding author), Swinburne Univ Technol, GPO Box 218, Hawthorn, Vic 3122, Australia.
EM Ljpearson@swin.edu.au
OI Pearson, Leonie/0000-0001-6299-5283
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NR 82
TC 171
Z9 199
U1 2
U2 138
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1473-5903
EI 1747-762X
J9 INT J AGR SUSTAIN
JI Int. J. Agric. Sustain.
PY 2010
VL 8
IS 1-2
SI SI
BP 7
EP 19
DI 10.3763/ijas.2009.0468
PG 13
WC Agriculture, Multidisciplinary; Green & Sustainable Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Agriculture; Science & Technology - Other Topics
GA 566PV
UT WOS:000275386000003
DA 2025-04-22
ER

PT J
AU Voghera, A
   Giudice, B
AF Voghera, Angioletta
   Giudice, Benedetta
TI Evaluating and Planning Green Infrastructure: A Strategic Perspective
   for Sustainability and Resilience
SO SUSTAINABILITY
LA English
DT Article
DE green infrastructure; resilience; sustainability; social-ecological
   indicators
ID SOCIAL-ECOLOGICAL RESILIENCE; URBAN RESILIENCE; ECOSYSTEM SERVICES;
   CITIES; CONNECTIVITY; MANAGEMENT; METAPHOR; SYSTEMS; EXAMPLE; POLICY
AB In the light of the current changing global scenarios, green infrastructure is obtaining increasing relevance in planning policies, especially due to its ecological, environmental and social components which contribute to pursuing sustainable and resilient planning and designing of cities and territories. The issue of green infrastructure is framed within the conceptual contexts of sustainability and resilience, which are described through the analysis of their common aspects and differences with a particular focus on planning elements. In particular, the paper uses two distinct case studies of green infrastructure as representative: the green infrastructure of the Region Languedoc-Roussillon in France and the one of the Province of Turin in Italy. The analysis of two case studies focuses on the evaluation process carried on about the social-ecological system and describes the methodologies and the social-ecological indicators used to define the green infrastructure network. We related these indicators to their possible contribution to the measurement of sustainability and resilience. The analysis of this relationship led us to outline some conclusive considerations on the complex role of the design of green infrastructure with reference to sustainability and resilience.
C1 [Voghera, Angioletta; Giudice, Benedetta] Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, I-10125 Turin, Italy.
C3 Polytechnic University of Turin
RP Giudice, B (corresponding author), Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, I-10125 Turin, Italy.
EM angioletta.voghera@polito.it; benedetta.giudice@polito.it
RI Voghera, Angioletta/IYT-3424-2023; GIUDICE, BENEDETTA/HNO-9428-2023
OI GIUDICE, BENEDETTA/0000-0001-5289-3590
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NR 73
TC 40
Z9 43
U1 17
U2 137
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY 2
PY 2019
VL 11
IS 10
AR 2726
DI 10.3390/su11102726
PG 21
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA IC5LV
UT WOS:000471010300009
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Salomon, F
   Goira, JP
   Noirot, B
   Pleuger, E
   Bukowiecki, E
   Mazzini, I
   Carbonel, P
   Gadhoum, A
   Arnaud, P
   Keay, S
   Zampini, S
   Kay, S
   Raddi, M
   Ghelli, A
   Pellegrino, A
   Morelli, C
   Germoni, P
AF Salomon, Ferreol
   Goira, Jean-Philippe
   Noirot, Brice
   Pleuger, Elisa
   Bukowiecki, Evelyne
   Mazzini, Ilaria
   Carbonel, Pierre
   Gadhoum, Ahmed
   Arnaud, Pascal
   Keay, Simon
   Zampini, Sabrina
   Kay, Stephen
   Raddi, Michele
   Ghelli, Alessandra
   Pellegrino, Angelo
   Morelli, Cinzia
   Germoni, Paola
TI Geoarchaeology of the Roman port-city of Ostia: Fluvio-coastal mobility,
   Check for urban development and resilience
SO EARTH-SCIENCE REVIEWS
LA English
DT Article
DE Geoarchaeology; Roman city; Palaeoenvironmental analysis; Urban fabric;
   Resilience; Ostia; River Tiber; Tiber delta
ID SEA-LEVEL RISE; CLIMATE-CHANGE; TIBER RIVER; DELTA PLAIN; MARGINAL
   MARINE; ANCIENT HARBOR; NILE DELTA; EVOLUTION; LANDSCAPE; CITIES
AB Ostia is one of the most extensively excavated cities of the Roman period. The port-city of Rome, which today lies 4 km from the coastline, was established in a very constrained environment at the mouth of the River Tiber. Based on a review of the geoarchaeological and archaeological research at Ostia, 4 new cores analysed through palaeoenvionmental methods, and 21 new radiocarbon dates, we propose a new model of the fluvio-coastal landscape of Ostia from its origin: (1) the coastline shifted rapidly westward between the 8th and the 6th c. BCE followed by a slow progradation and possible erosion phases until the end of the 1st c. CE; (2) the castrum of Ostia (c. late 4th-early 3rd c. BCE) was founded away from the river mouth but dose to the River Tiber; (3) between the 4th and the 1st c. BCE, the River Tiber shifted from a position next to the castrunt, below the northern Imperial cardo of Ostia, to 150 m to the north; (4) a possible harbour was established to the north of the castrum during the Republican period; (5) the city expanded and a district was built over the harbour and the palaeochannel between the Republican period and the beginning of the 2nd c. CE, showing that Ostia was a dynamic and resilient city during that time. Finally, we suggest the possibility to combine urban fabric analysis (the orientation of the structures) and palaeoenvironmental analysis for reconstructing the evolution of the city in relation to the fluvio-coastal mobility.
C1 [Salomon, Ferreol] Univ Strasbourg, Fac Geog & Amenagement, Lab Image Ville Environm, UMR 7362, 3 Rue Argonne, F-67083 Strasbourg, France.
   [Salomon, Ferreol; Keay, Simon] Univ Southampton, Dept Archaeol, Fac Humanities, Ave Campus, Southampton SO17 1BF, Hants, England.
   [Goira, Jean-Philippe; Noirot, Brice] MOM, CNRS, UMR Archeorient 5133, 7 Rue Raulin, F-69007 Lyon, France.
   [Pleuger, Elisa] Univ Liege, Dept Geol, UR Argiles Geochim & Environm Sedimentaires, Liege, Belgium.
   [Bukowiecki, Evelyne] Ecole Francaise Rome, Piazza Farnese 67, I-00186 Rome, Italy.
   [Mazzini, Ilaria] IGAG CNR, Area Ric Roma 1, Rome, Italy.
   [Carbonel, Pierre] EPOC, CNRS, UMR 5508, 16 Rue Megret, F-33400 Talence, France.
   [Gadhoum, Ahmed] Inst Natl Patrimoine Tunisie INP, Dept Archeol Marine, 04 Pl Chateau, Tunis 1008, Tunisia.
   [Arnaud, Pascal] Univ Lumiere Lyon 2, UMR HiSoMA 5189, 5 Ave Pierre Mendes France, F-69676 Bron, France.
   [Zampini, Sabrina] Parsifal Cooperat Archeol, Via Macedonia 77, I-00179 Rome, Italy.
   [Kay, Stephen] British Sch Rome, Via Gramsci 61, I-00197 Rome, Italy.
   [Raddi, Michele] Udayana Univ, JL Pulau Nias 13, Denpasar, Bali, Indonesia.
   [Ghelli, Alessandra] Via Castagni 12, I-00040 Rocca Di Papa, RM, Italy.
   [Pellegrino, Angelo; Morelli, Cinzia; Germoni, Paola] Soprintendenza Speciale Colosseo, MNR, Via Romagnoli 717, Lazio, RM, Italy.
   [Pellegrino, Angelo; Morelli, Cinzia; Germoni, Paola] Sede Ostia, Area Archeol Roma, Via Romagnoli 717, Lazio, RM, Italy.
C3 Centre National de la Recherche Scientifique (CNRS); CNRS - Institute of
   Ecology & Environment (INEE); Universites de Strasbourg Etablissements
   Associes; Universite de Strasbourg; University of Southampton; Centre
   National de la Recherche Scientifique (CNRS); University of Liege;
   Consiglio Nazionale delle Ricerche (CNR); Istituto di Geologia
   Ambientale e Geoingegneria (IGAG-CNR); Centre National de la Recherche
   Scientifique (CNRS); CNRS - Institute for Engineering & Systems Sciences
   (INSIS); Universite de Tunis; Institut National du Patrimoine;
   Universite Lyon 2; Universitas Udayana
RP Salomon, F (corresponding author), Univ Strasbourg, Fac Geog & Amenagement, Lab Image Ville Environm, UMR 7362, 3 Rue Argonne, F-67083 Strasbourg, France.
EM ferreol.salomon@gmail.com; jean-philippe.goiran@mom.fr;
   brice.noirot@gmail.com; elisa.pleuger@ulg.ac.be;
   evelyne.bukowiecki@efrome.it; ilaria.mazzini@gmail.com;
   carbonel@free.fr; gadhoum@gmail.com; pascal.arnaud@mom.fr;
   S.J.Keay@soton.ac.uk; parsifal@parsifalarcheo.it; s.kay@bsrome.it;
   micheleraddi@gmail.com; alessandra.ghelli@gmail.com;
   angelo.pellegrino@beniculturali.it; cinzia.morelli@beniculturali.it;
   paola.germoni@beniculturali.it
RI Kay, Stephen/JMP-7390-2023; Mazzini, Ilaria/F-5412-2016
OI Mazzini, Ilaria/0000-0003-2164-7826; Salomon,
   Ferreol/0000-0002-4705-5370; Kay, Stephen/0000-0002-5920-3377
FU Ecole francaise de Rome; British School at Rome; ANR-Poltevere
   [ANR-11-JSH3-0002]; Institut Universitaire de France; European Research
   Council under the European Union [339123]; European Research Council
   (ERC) [339123] Funding Source: European Research Council (ERC); Agence
   Nationale de la Recherche (ANR) [ANR-11-JSH3-0002] Funding Source:
   Agence Nationale de la Recherche (ANR)
FX We gratefully acknowledge the financial and logistical support of the
   Ecole francaise de Rome and the British School at Rome, as well as the
   financial support from ANR-Poltevere (ANR-11-JSH3-0002), and a grant
   from the Institut Universitaire de France to Prof. Pascal Arnaud. The
   research leading to these results has also received funding from the
   European Research Council under the European Union's Seventh Framework
   Programme (FP7/2007-2013)/ERC grant agreement no 339123. We would like
   also to thanks Jean-Paul Bravard, Fausto Zevi, Carlo Pavolini and the
   anonymous reviewers for their useful comments and suggestions.
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NR 158
TC 23
Z9 24
U1 1
U2 17
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0012-8252
EI 1872-6828
J9 EARTH-SCI REV
JI Earth-Sci. Rev.
PD FEB
PY 2018
VL 177
BP 265
EP 283
DI 10.1016/j.earscirev.2017.10.003
PG 19
WC Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology
GA FX9HM
UT WOS:000426409200017
DA 2025-04-22
ER

PT J
AU Shiiba, N
   Singh, P
   Charan, D
   Raj, K
   Stuart, J
   Pratap, A
   Maekawa, M
AF Shiiba, Nagisa
   Singh, Priyatma
   Charan, Dhrishna
   Raj, Kushaal
   Stuart, Jack
   Pratap, Arpana
   Maekawa, Miko
TI Climate change and coastal resiliency of Suva, Fiji: a holistic approach
   for measuring climate risk using the climate and ocean risk
   vulnerability index (CORVI)
SO MITIGATION AND ADAPTATION STRATEGIES FOR GLOBAL CHANGE
LA English
DT Article
DE Climate change; Coastal risk assessment; Coastal city; Fiji
ID SEA-LEVEL RISE; PACIFIC; ADAPTATION; DISASTERS; IMPACTS
AB Coastal cities are under severe threat from the impacts of climate change, such as sea-level rise, extreme weather events, coastal inundation, and ecosystem degradation. It is well known that the ocean, and in particular coastal environments, have been changing at an unprecedented rate, which poses increasing risks to people in small island developing states, such as Fiji. The Greater Suva Urban Area, the capital and largest metropolitan area of Fiji, is expected to be largely impacted by climate-related risks to its socio-economic, cultural, and political positions. In the face of these threats, creating a resilient city that can withstand and adapt to the impacts of climate change and promote sustainable development should be guided by a holistic approach, encompassing stakeholders from the government, the private sector, civil society organizations, and international institutions. This study assesses the risk profile of Suva city using an innovative risk information tool, the climate and ocean risk vulnerability index (CORVI), which applies structured expert judgment to quantify climate-related risks in data-sparse environments. Through comparative quantification of diverse risk factors and narrative analysis, this study identifies three priority areas for Suva's future climate-resilient actions: development of climate risk-informed urban planning, harmonized urban development and natural restoration, and enhancing the climate resilience to the tourism sector.
C1 [Shiiba, Nagisa] Inst Global Environm Strategies, 2108-11 Kamiyamaguchi, Hayama 2400115, Japan.
   [Singh, Priyatma; Charan, Dhrishna] Univ Fiji, Lautoka, Fiji.
   [Raj, Kushaal] Minist Econ, Suva, Fiji.
   [Stuart, Jack] Stimson Ctr, Washington, DC USA.
   [Pratap, Arpana] Pacific Isl Dev Forum, Suva, Fiji.
   [Maekawa, Miko] Ocean Policy Res Inst Sasakawa Peace Fdn, Tokyo, Japan.
RP Shiiba, N (corresponding author), Inst Global Environm Strategies, 2108-11 Kamiyamaguchi, Hayama 2400115, Japan.
EM shiiba@iges.or.jp
RI Maekawa, Miko/GQA-6249-2022
FU Ocean Policy Research Institute of Sasakawa Peace Foundation (OPRI-SPF);
   Nippon Foundation
FX The authors would like to thank all the interviewed and surveyed experts
   from the following institutions for their support and cooperation. We
   also thank the Ocean Policy Research Institute of Sasakawa Peace
   Foundation (OPRI-SPF) and the Nippon Foundation for their funding and
   support of this study.
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NR 90
TC 7
Z9 8
U1 4
U2 32
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1381-2386
EI 1573-1596
J9 MITIG ADAPT STRAT GL
JI Mitig. Adapt. Strateg. Glob. Chang.
PD FEB
PY 2023
VL 28
IS 2
AR 9
DI 10.1007/s11027-022-10043-4
PG 31
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 7U3KE
UT WOS:000912032500001
PM 36685809
OA Green Published, Bronze
DA 2025-04-22
ER

PT J
AU Kong, J
   He, W
   Zheng, YL
   Li, XW
AF Kong, Jie
   He, Wei
   Zheng, Yongli
   Li, Xiaowei
TI Awareness of Spontaneous Urban Vegetation: Significance of Social
   Media-Based Public Psychogeography in Promoting Community
   Climate-Resilient Construction: A Technical Note
SO ATMOSPHERE
LA English
DT Article
DE spontaneous urban plants; interactive public engagement; social media;
   psychogeography; community climate sustainability
ID GREEN-SPACE; PLACE ATTACHMENT; BIODIVERSITY; BENEFITS; HABITAT;
   CONSERVATION; ENGAGEMENT; CHALLENGES; PREFERENCE; SERVICES
AB Traditional urban green spaces offer numerous benefits to the environment and residents, but their high social resource expenditure on exploitation and maintenance makes them insufficient to face the threats of global climate change and the rapid pace of urbanization, further raising numerous other socio-environmental issues. Spontaneous urban plants have a superior ability to mitigate urban environmental crises due to their ability to maintain urban biodiversity and provide ecological benefits with minor cost and effort of maintenance. However, these values are often overshadowed by their stigmatized image and aesthetic characteristics that are not widely appreciated by the general public. To promote the future utilization of spontaneous plants at the community level, this study explores how, from the perspective of individual psychology, aesthetic appreciation of spontaneous plants can serve as a pivotal element in motivating environmental participation, thereby fostering urban resilience. Public psychogeography, with its focus on the emotional and behavioral interactions between individuals and their urban environments, can be instrumental in promoting community climate resilience by enhancing place attachment and inspiring collective action towards sustainable urban living. Through study, the project conducted by Future Green Studio, based in New York City, raised public interest and awareness based on psychogeography theory and presented a way of using social media posts, not only as a reflection of the public's aesthetic appreciation of spontaneous urban plants but also as a data collection instrument of their geo-location and ecological properties. The result of the social media engagement activities enabled the establishment of a growing interactive digital open database, covering all of New York City. This database succeeded due to its efficient data collection methods, which resulted in more robust stakeholder engagement as compared to conventional community engagement efforts. The research argues that when residents are empowered to document and learn about their environment, they can become active agents in the creation of sustainable, resilient, and aesthetically enriched urban ecosystems. The success of this initiative offers a replicable model for other cities and demonstrates the potential for collaborative efforts in environmental restoration and education.
C1 [Kong, Jie; He, Wei] Guangzhou Acad Fine Arts, Sch Architecture & Allied Art, Guangzhou 510006, Peoples R China.
   [Kong, Jie] Columbia Univ, Sch Architecture Planning & Preservat, New York, NY 10027 USA.
   [Zheng, Yongli] Heilongjiang Ecol Engn Coll, Dept Landscape Architecture, Harbin 150025, Peoples R China.
   [Li, Xiaowei] Michigan State Univ, Sch Planning Design & Construct, E Lansing, MI 48824 USA.
C3 Guangzhou Academy of Fine Arts; Columbia University; Michigan State
   University
RP He, W (corresponding author), Guangzhou Acad Fine Arts, Sch Architecture & Allied Art, Guangzhou 510006, Peoples R China.
EM gafahew@gzarts.edu.cn
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Z9 2
U1 11
U2 26
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4433
J9 ATMOSPHERE-BASEL
JI Atmosphere
PD NOV
PY 2023
VL 14
IS 11
AR 1691
DI 10.3390/atmos14111691
PG 17
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA AD2S5
UT WOS:001116463400001
OA gold
DA 2025-04-22
ER

PT J
AU Bakhshipour, AE
   Hespen, J
   Haghighi, A
   Dittmer, U
   Nowak, W
AF Bakhshipour, Amin E.
   Hespen, Jessica
   Haghighi, Ali
   Dittmer, Ulrich
   Nowak, Wolfgang
TI Integrating Structural Resilience in the Design of Urban Drainage
   Networks in Flat Areas Using a Simplified Multi-Objective Optimization
   Framework
SO WATER
LA English
DT Article
DE urban drainage systems; graph theory; decentralization; multi-objective
   optimization; layout; resilience
AB Structural resilience describes urban drainage systems' (UDSs) ability to minimize the frequency and magnitude of failure due to common structural issues such as pipe clogging and cracking or pump failure. Structural resilience is often neglected in the design of UDSs. The current literature supports structural decentralization as a way to introduce structural resilience into UDSs. Although there are promising methods in the literature for generating and optimizing decentralized separate stormwater collection systems, incorporating hydraulic simulations in unsteady flow, these approaches sometimes require high computational effort, especially for flat areas. This may hamper their integration into ordinary commercially designed UDS software due to their predominantly scientific purposes. As a response, this paper introduces simplified cost and structural resilience indices that can be used as heuristic parameters for optimizing the UDS layout. These indices only use graph connectivity information, which is computationally much less expensive than hydraulic simulation. The use of simplified objective functions significantly simplifies the feasible search space and reduces blind searches by optimization. To demonstrate the application and advantages of the proposed model, a real case study in the southwest city of Ahvaz, Iran was explored. The proposed framework was proven to be promising for reducing the computational effort and for delivering realistic cost-wise and resilient UDSs.
C1 [Bakhshipour, Amin E.; Dittmer, Ulrich] TU Kaiserslautern, Dept Civil Engn, Inst Urban Water Management, D-67663 Kaiserslautern, Germany.
   [Hespen, Jessica; Nowak, Wolfgang] Univ Stuttgart, Fac Civil & Environm Engn, Dept Stochast Simulat & Safety Res LS3, D-70569 Stuttgart, Germany.
   [Haghighi, Ali] Shahid Chamran Univ Ahvaz, Fac Civil Engn & Architecture, Ahvaz 61357831351, Iran.
C3 University of Kaiserslautern; University of Stuttgart; Shahid Chamran
   University of Ahvaz
RP Bakhshipour, AE (corresponding author), TU Kaiserslautern, Dept Civil Engn, Inst Urban Water Management, D-67663 Kaiserslautern, Germany.
EM amin.bakhshipour@bauing.uni-kl.de; jhespen2017@gmail.com;
   a.haghighi@scu.ac.ir; ulrich.dittmer@bauing.uni-kl.de;
   wolfgang.nowak@iws.uni-stuttgart.de
RI Dittmer, Ulrich/AAZ-2605-2020; Nowak, Wolfgang/C-6487-2011; Haghighi,
   Ali/AAS-7665-2020; Bakhshipour, Amin/ABC-3464-2020
OI Dittmer, Ulrich/0000-0003-1723-3356; E. Bakhshipour,
   Amin/0000-0002-6921-2381; Haghighi, Ali/0000-0002-2765-6929
FU BMBF-DAAD SustainableWater Management: Study Scholarships and Research
   Grants 2015 [57156376]
FX This study was supported by BMBF-DAAD SustainableWater Management: Study
   Scholarships and Research Grants 2015 (57156376).
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NR 50
TC 12
Z9 12
U1 6
U2 38
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD FEB
PY 2021
VL 13
IS 3
AR 269
DI 10.3390/w13030269
PG 22
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA QD6MR
UT WOS:000615630200001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Callenberg, M
   Barnwal, A
   Bakarr, MI
AF Callenberg, Mia
   Barnwal, Aloke
   Bakarr, Mohamed Imam
TI COVID-19 Pandemic and Sustainable Urban Transformation: Perspectives on
   City-Level Actions and a Framework for the Future
SO LAND
LA English
DT Article
DE COVID-19 pandemic; urbanization; sustainable cities; global
   environmental benefits; resilience; health; integration; innovation;
   inclusiveness; urban transformation; knowledge and learning
AB Cities were at the center of the COVID-19 pandemic due to the concentration of affected populations and economic activities that needed to be revived to support global recovery. While cities offer strong economic and social benefits due to density, proximity, and global connectivity, the pandemic had a tremendous impact on their vital functions. It resulted in lost lives and livelihoods and deepened economic and social divides. Furthermore, the pandemic exacerbated many existing environmental challenges in cities. This presented an opportunity to tackle these interlinked challenges in an integrated manner. Evidence suggests that many city leaders integrated environmental sustainability as an important element to complement their emergency responses. Drawing from experiences in cities around the world, particularly those participating in the Sustainable Cities Program supported by the Global Environment Facility (GEF), this paper describes how integrated solutions were applied to tackle the COVID-19 pandemic. Consistent with a Healthy Planet Healthy People concept, a framework is proposed for sustainable urban transformation and to build cities that are resilient to shocks and stresses. With global environmental benefits at the core, the framework highlights the importance of integration, inclusion, and innovation as key approaches in steering the future green growth and prosperity of cities.
C1 [Callenberg, Mia; Barnwal, Aloke; Bakarr, Mohamed Imam] Global Environm Facil, Washington, DC 20006 USA.
   [Bakarr, Mohamed Imam] Njala Univ, Sch Nat Resources Management, Freetown 00232, Sierra Leone.
C3 Njala University
RP Callenberg, M (corresponding author), Global Environm Facil, Washington, DC 20006 USA.
EM mcallenberg@thegef.org; abarnwal@thegef.org; mbakarr@thegef.org
RI Bakarr, Mohamed/ISV-2467-2023
FX This paper draws on the experience and lessons learned from the Global
   Environment Facility's Sustainable Cities program. This work has been
   made possible thanks to the excellent work of many national and local
   governments, as well as the accredited agencies that design and
   implement the projects. These include the World Bank, the UN Environment
   Programme (UNEP), the African Development Bank (AfDB), the Asian
   Development Bank (ADB), the Development Bank of Southern Africa (DBSA),
   C40, ICLEI-Local Governments for Sustainability, Inter-American
   Development Bank (IDB), UN Development Programme (UNDP), United Nations
   Industrial Development Organization (UNIDO), and World Resources
   Institute (WRI). The authors acknowledge the invaluable contributions of
   all actors involved in the program, as well as the other case studies
   referenced in this paper. Special thanks to Shagun Mehrotra, Ripin
   Kalra, and two anonymous reviewers for comments on earlier versions of
   the paper.
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NR 88
TC 1
Z9 1
U1 5
U2 6
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD JUL
PY 2024
VL 13
IS 7
AR 1093
DI 10.3390/land13071093
PG 22
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA ZX6F3
UT WOS:001278616800001
OA gold
DA 2025-04-22
ER

PT J
AU Shen, CM
   Zhu, W
   Tang, XR
   Du, WP
   Wang, ZC
   Xu, S
   Yao, KL
AF Shen, Chunming
   Zhu, Wei
   Tang, Xiru
   Du, Wupeng
   Wang, Zhicheng
   Xu, Shuo
   Yao, Kailu
TI Risk assessment and resilience enhancement strategies for urban power
   supply-demand imbalance affected by extreme weather: A case study of
   Beijing
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Extreme weather and climate events (EWCE); Power supply imbalance; Risk
   assessment; Resilience enhancement; Urban power systems
ID DEFINITION; FRAMEWORKS
AB Extreme weather and climate events (EWCE) risk assessment and system resilience enhancement are important supports for urban power systems to cope with global climate change and realize green and low-carbon transformation. However, the existing risk assessment methods tend to ignore the impact of cumulative damage events, and lack the systematic analysis of the power supply process. Moreover, there is a deficiency in researches on resilience enhancement strategies with application analysis in practical scenarios. This study established a risk assessment methodology with the occurrence probability of extreme weather, the deviation state of power supplydemand and the state duration as the first-level indexes. The methodology was applied to the assessment of three EWCE scenarios using the urban power structure of Beijing as a case study. Finally, the power supply resilience of EWCE was defined, and the power supply resilience curves with severe impacts and cumulative damages were characterized, and then resilience enhancement strategies were proposed to guide the case applications. The results of the study suggest that coupled extreme weather scenarios and an increase in the percentage of electricity supplied from renewable sources would increase the level of supply imbalance risk. System resilience could be improved by extending the time for supply level minimums to occur and by increasing the level of supply capacity minimums. Beijing would need to focus on the resilience enhancement for extreme low temperature and heavy rainfall superimposed on heat wave. This study could provide theoretical reference for the construction of resilient cities under climate change.
C1 [Shen, Chunming; Zhu, Wei; Tang, Xiru; Xu, Shuo] Beijing Acad Sci & Technol, Urban Syst Engn Res Inst, Beijing 100089, Peoples R China.
   [Du, Wupeng] Beijing Climate Ctr, Beijing 100089, Peoples R China.
   [Wang, Zhicheng] Beijing Univ Civil Engn & Architecture, Dept Thermal Energy & Power Engn, Beijing 100044, Peoples R China.
   [Yao, Kailu] Beijing City Technol, Dept Urban Construct, Beijing 101399, Peoples R China.
C3 Beijing Academy of Science & Technology; Beijing University of Civil
   Engineering & Architecture
RP Shen, CM (corresponding author), Beijing Acad Sci & Technol, Urban Syst Engn Res Inst, Beijing 100089, Peoples R China.
EM Chunming_Shen@126.com
RI tang, xiru/HIR-1249-2022; Shen, Chunming/LDG-1560-2024
OI Shen, Chunming/0000-0002-5067-1350
FU Beijing Nova Program of Science and Technology [Z191100001119069]
FX Thanks for the support of the Beijing Nova Program of Science and
   Technology (Z191100001119069) .
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NR 41
TC 4
Z9 4
U1 23
U2 37
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD MAY
PY 2024
VL 106
AR 104471
DI 10.1016/j.ijdrr.2024.104471
EA APR 2024
PG 21
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA RU9Q5
UT WOS:001230295900001
DA 2025-04-22
ER

PT J
AU Jansson, Å
AF Jansson, Asa
TI Reaching for a sustainable, resilient urban future using the lens of
   ecosystem services
SO ECOLOGICAL ECONOMICS
LA English
DT Article
DE Sustainable cities; Resilience; Ecosystem services; Ecology of cities;
   Ecology in cities; Biodiversity
ID GREEN SPACE; LONG-TERM; RESPONSE DIVERSITY; BIODIVERSITY;
   CLASSIFICATION; BEES; CONSERVATION; POLLINATION; LANDSCAPES; MANAGEMENT
AB Based on recent research on erosion of ecosystem services, planetary boundaries and predicted pace of urbanization, it is now apparent that humans need to reconnect to the biosphere and that cities in this context, properly managed, could provide great opportunities and arenas for social ecological change and transformation towards sustainability To take advantage of these opportunities one needs to keep in mind that most of the ecosystem services consumed in cities are generated by ecosystems located outside of the cities themselves, not seldom half a world away. In order to operationalize our knowledge, hypothesis and theories on the connections between the work of nature and the welfare and survival of humans overtime, we suggest the use of the ecosystem service framework in combination with the merging of the concept "ecology in cities", mainly focusing on designing energy efficient building, sustainable logistics and providing inhabitants with healthy and functioning green urban environments, and the "ecology of dries". The "ecology of cities" framework acknowledges the total dependence of cities on the surrounding landscape and the ever-ongoing dance between urban and rural, viewing the city as an ecosystem. (C) 2012 Elsevier B.V. All rights reserved.
C1 Royal Swedish Acad Sci, Beijer Inst Ecol Econ, S-10405 Stockholm, Sweden.
C3 Royal Swedish Academy of Sciences; Beijer Institute of Ecological
   Economics
RP Jansson, Å (corresponding author), Royal Swedish Acad Sci, Beijer Inst Ecol Econ, Box 50005, S-10405 Stockholm, Sweden.
EM asaj@beijer.kva.se
FU Beijer Institute of Ecological Economics, The Royal Swedish Academy of
   Sciences, Stockholm, Sweden
FX I would like to thank the Beijer Institute of Ecological Economics, The
   Royal Swedish Academy of Sciences, Stockholm, Sweden, for funding this
   research. I also want to thank three anonymous reviewers for insightful
   comments and Dr Leonie Pearson for inviting me to be a part of this
   special issue.
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NR 80
TC 124
Z9 150
U1 9
U2 268
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0921-8009
EI 1873-6106
J9 ECOL ECON
JI Ecol. Econ.
PD FEB
PY 2013
VL 86
BP 285
EP 291
DI 10.1016/j.ecolecon.2012.06.013
PG 7
WC Ecology; Economics; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Business & Economics
GA 128XR
UT WOS:000317803500034
DA 2025-04-22
ER

PT J
AU Zhou, SJ
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   Yuan, L
AF Zhou, Shijie
   Tian, Meng
   Xu, Xuesong
   Yuan, Lei
TI Rethinking residential building design in high-density cities for
   enhancing pandemic resilience: Balancing importance and practicality
SO ENERGY AND BUILDINGS
LA English
DT Article
DE Pandemic-resilient design; Residential building; Built environment;
   Fuzzy synthetic evaluation; Epidemic prevention; High-density city
ID AIRBORNE TRANSMISSION; VENTILATION RATES; COVID-19; HEALTH; URBAN;
   DISINFECTION; FLATS
AB The relationship between the built environment and epidemic transmission is particularly pronounced within the context of lockdown policies and high-density urban areas. Non-pharmaceutical interventions have become increasingly important during and after the COVID-19 pandemic. This study proposes an evaluation index system for pandemic-resilient residential building designs in high-density cities, covering the entire design process including site planning, architecture design, building equipment and management. The system includes 64 design strategies, categorized into 15 sub-categories and 4 categories. Then, we evaluate the preference of each strategy by synthesizing the dimensions of importance and implementation difficulty. A questionnaire survey was conducted among experts who have experience with pandemic-resilient designs in high-density cities. Fuzzy synthetic evaluation analysis was implemented along with the "preference index" concept to identify the most important and practical interventions during the pandemic outbreak. The results indicate that "service and management" is the category that requires priority, followed by "property management," "common areas" and "building morphology" in sub-categories. Among the design strategies, "waste receptacle," "publicity and education," "floor drain and water seal" and "environmental cleaning and disinfection" are the top four recommended strategies. This study provides policymakers and practitioners with effective and easily implementable prevention measures during an outbreak of respiratory tract infections. It also offers specific policy recommendations and application suggestions for new and existing buildings, contributing to creating a safer and healthier living environment.
C1 [Zhou, Shijie; Tian, Meng; Xu, Xuesong; Yuan, Lei] Shenzhen Univ, Sch Architecture & Urban Planning, Shenzhen 518060, Peoples R China.
   [Zhou, Shijie; Tian, Meng; Xu, Xuesong; Yuan, Lei] Shenzhen Univ, Shenzhen Key Lab Optimizing Design Built Environm, Shenzhen 518060, Peoples R China.
   [Tian, Meng; Xu, Xuesong] Shenzhen Univ, Inst Architecture Design & Res, Shenzhen 518060, Peoples R China.
C3 Shenzhen University; Shenzhen University; Shenzhen University
RP Yuan, L (corresponding author), Shenzhen Univ, Shenzhen Key Lab Optimizing Design Built Environm, Shenzhen 518060, Peoples R China.
EM yuanlei@szu.edu.cn
RI xu, xuesong/K-7290-2019; Zhou, ShiJie/AAB-5295-2019; Tian,
   Meng/HQZ-8739-2023; yuan, lei/LOR-4520-2024
FU National Key R&D Program of China [2023YFC3806502]
FX This study was supported by the National Key R&D Program of China (No.
   2023YFC3806502) .
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NR 132
TC 0
Z9 0
U1 12
U2 12
PU ELSEVIER SCIENCE SA
PI LAUSANNE
PA PO BOX 564, 1001 LAUSANNE, SWITZERLAND
SN 0378-7788
EI 1872-6178
J9 ENERG BUILDINGS
JI Energy Build.
PD DEC 15
PY 2024
VL 325
AR 114985
DI 10.1016/j.enbuild.2024.114985
EA NOV 2024
PG 17
WC Construction & Building Technology; Energy & Fuels; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Energy & Fuels; Engineering
GA M1Q4J
UT WOS:001355353800001
DA 2025-04-22
ER

PT J
AU Opach, T
   Scherzer, S
   Lujala, P
   Rod, JK
AF Opach, Tomasz
   Scherzer, Sabrina
   Lujala, Paivi
   Rod, Jan Ketil
TI Seeking commonalities of community resilience to natural hazards: A
   cluster analysis approach
SO NORSK GEOGRAFISK TIDSSKRIFT-NORWEGIAN JOURNAL OF GEOGRAPHY
LA English
DT Article
DE cluster analysis; community capacities; indicators; Norway; resilience
   measurement
ID DISASTER RESILIENCE; SOCIAL VULNERABILITY; INDICATORS; FRAMEWORK;
   LANDSCAPE; MODEL
AB The aim of the study on which the article is based was to identify groups of communities with similar resilience profiles, using Norwegian municipalities as a case. The authors used a set of socioeconomic and environmental indicators as measures of municipalities' resilience and performed a cluster analysis to divide the municipalities into groups with similar multivariate resilience signatures. The results revealed six groups of municipalities that, apart from their unique combinations of indicator scores, featured certain spatial patterns, such as an "urban cluster" with urbanized municipalities and a "suburban cluster" with municipalities concentrated around major cities. The authors conclude that municipalities in each of the groups shared aspects that made them either more or less resilient to natural hazards, which could make them potential targets for shared interventions. Additionally, the authors conclude that clustering can be used to identify municipalities with similar resilience features and that could benefit from networking and sharing operational planning as a way to improve their respective communities' resilience to natural hazards.
C1 [Opach, Tomasz; Scherzer, Sabrina; Lujala, Paivi; Rod, Jan Ketil] Norwegian Univ Sci & Technol, Dept Geog, NO-7491 Trondheim, Norway.
   [Opach, Tomasz] Linkoping Univ, Dept Themat Studies, SE-58153 Linkoping, Sweden.
   [Lujala, Paivi] Univ Oulu, Geog Res Unit, POB 8000, FI-900014 Oulu, Finland.
C3 Norwegian University of Science & Technology (NTNU); Linkoping
   University; University of Oulu
RP Opach, T (corresponding author), Norwegian Univ Sci & Technol, Dept Geog, NO-7491 Trondheim, Norway.; Opach, T (corresponding author), Linkoping Univ, Dept Themat Studies, SE-58153 Linkoping, Sweden.
EM Tomasz.opach@ntnu.no
RI Scherzer, Sabrina/AAL-8221-2020
OI Rod, Jan Ketil/0000-0003-2935-6206; Scherzer,
   Sabrina/0000-0001-9391-9734; Lujala, Paivi/0000-0002-8225-958X
FU project "Climate change, and natural hazards: The geography of community
   resilience in Norway" (ClimRes) - Research Council of Norway's
   KLIMAFORSK program [NRC 235490]; Research Council of Norway [NRC 250028]
FX This work was supported by the project "Climate change, and natural
   hazards: The geography of community resilience in Norway" (ClimRes),
   funded by the Research Council of Norway's KLIMAFORSK program (Grant
   number NRC 235490). It was also supported by the Research Council of
   Norway's funding for research stays abroad (Grant number NRC 250028).
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Z9 20
U1 0
U2 20
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0029-1951
EI 1502-5292
J9 NORSK GEOGR TIDSSKR
JI Norsk. Geogr. Tidsskr.-Nor. J. Geogr.
PD MAY 26
PY 2020
VL 74
IS 3
SI SI
BP 181
EP 199
DI 10.1080/00291951.2020.1753236
EA APR 2020
PG 19
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA MT6QM
UT WOS:000532408800001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Fekete, A
AF Fekete, Alexander
TI Critical infrastructure and flood resilience: Cascading effects beyond
   water
SO WILEY INTERDISCIPLINARY REVIEWS-WATER
LA English
DT Article
DE critical infrastructure; disaster resilience; flood management; flood
   risk; flood risk management
ID DISASTER RISK REDUCTION; VULNERABILITY; SYSTEM; MANAGEMENT; FRAMEWORK;
   GERMANY; RECOVERY; FAILURES; IMPACTS
AB Critical infrastructure and cascading effects are analyzed in this article as cross-cutting topics in flood risk and resilience. A concept is developed for integrating aspects of disaster risk, hazard, vulnerability and resilience with critical infrastructure analytic components such as redundancy, rapidity or resourcefulness. These components are expressed for each phase of an unfolding flood event and cascading effects are indicated, too. This contribution discusses the implications of such a conceptual frame for the advancement of existing flood risk management concepts. Current international guiding strategies such as the United Nations Sendai Framework for Disaster Risk Reduction, the "Making Cities Resilient" campaigns in field of urban disaster resilience, Climate Change Adaptation processes such as the Paris Agreement of the IPCC process, or urban planning in the field of UN HABITAT are all interconnected to the topic of (critical) infrastructure. The article shows how flood risk management can connect to such wider international developments by the conceptual frame discussion presented. This article is categorized under: Engineering Water > Planning Water Science of Water > Water Extremes Human Water > Water Governance
C1 [Fekete, Alexander] Univ Appl Sci Cologne, Inst Rescue Engn & Civil Protect, Ubierring 40, D-50678 Cologne, Germany.
C3 University of Cologne
RP Fekete, A (corresponding author), Univ Appl Sci Cologne, Inst Rescue Engn & Civil Protect, Ubierring 40, D-50678 Cologne, Germany.
EM alexander.fekete@th-koeln.de
RI Fekete, Alexander/C-4071-2017
OI Fekete, Alexander/0000-0002-8029-6774
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NR 119
TC 62
Z9 64
U1 21
U2 133
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 2049-1948
J9 WIRES WATER
JI Wiley Interdiscip. Rev.-Water
PD SEP
PY 2019
VL 6
IS 5
AR e1370
DI 10.1002/wat2.1370
EA JUL 2019
PG 13
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA IR6AI
UT WOS:000478283300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Yang, M
   Jiao, MY
   Zhang, JY
AF Yang, Mei
   Jiao, Mengyun
   Zhang, Jinyu
TI Research on Urban Resilience and Influencing Factors of
   Chengdu-Chongqing Economic Circle
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; resilience level; configuration analysis; driving
   force
ID FRAMEWORK; EVOLUTION; MODEL
AB Building resilient cities is the foundation and guarantee for the Chengdu-Chongqing economic circle to achieve high-quality and sustainable development. This research uses the entropy TOPSIS method to evaluate the urban resilience level of the Chengdu-Chongqing Economic Circle and uses the Fuzzy Set Qualitative Comparative Analysis (fsQCA) approach to analyze the configuration of contributing factors. Research indicates that the overall urban resilience level is relatively low, with more than 70% of the areas being less than 0.3. Overall, Chengdu (Level 1) and Chongqing central districts (Level 2) are 1-3 levels higher than their surrounding areas, which indicates insufficient spatial balance. The consistency scores of the single-antecedent condition necessity analyses were all less than 0.9, and the consistencies of all configuration analysis results were all greater than 0.8. This research proves that the creation of urban resilience is the result of a combination of factors, rather than the independent influence from any individual factor. Financial and innovation forces are the key driving factors that affect the level of urban resilience. The multiple driving model also helps to improve the level of resilience. The lack of cultural and innovation forces in Chongqing area has been proven to inhibit the level of urban resilience, and the lack of openness and political focus has resulted in a low level of resilience in the Sichuan area. We propose to promote the construction of a "dual core", to create synergies between Chongqing and Chengdu, and to achieve balanced and integrated development in the entire region. We focus on the key factors affecting the resilience level of the Chengdu-Chongqing economic circle. In the future, we suggest further opening the market and implementing a developing strategy that is driven by economy and innovation. Regarding the construction of the Sichuan and the Chongqing areas, we encourage the two regions to adjust policies based on local conditions. First, the administration should solve the driving force deficiencies for development, then adopt differentiation strategies for regional development.
C1 [Yang, Mei; Jiao, Mengyun; Zhang, Jinyu] Chongqing Univ Technol, Sch Management, Chongqing 400054, Peoples R China.
   [Yang, Mei; Zhang, Jinyu] Chongqing Univ Technol, Innovat Driven Entrepreneurship Collaborat Res Ct, Chongqing 400054, Peoples R China.
C3 Chongqing University of Technology; Chongqing University of Technology
RP Jiao, MY (corresponding author), Chongqing Univ Technol, Sch Management, Chongqing 400054, Peoples R China.
EM jiaomengyun2022@163.com
FU National Social Science Foundation of China [18XSH017]; Chongqing
   Municipal Education Commission Humanities and Social Sciences Key
   Project [2022CJ27]; Action Plan for High Quality Development of
   Postgraduate Education of Chongqing University of Technology
   [gzlcx20223120]
FX This research was funded by National Social Science Foundation of China
   (18XSH017), Mei Yang. Chongqing Municipal Education Commission
   Humanities and Social Sciences Key Project (2022CJ27), Mei Yang. The
   Action Plan for High Quality Development of Postgraduate Education of
   Chongqing University of Technology (gzlcx20223120), Mei Yang.
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NR 52
TC 16
Z9 17
U1 9
U2 107
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2022
VL 14
IS 17
AR 10585
DI 10.3390/su141710585
PG 19
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 4K3RD
UT WOS:000851870500001
OA gold
DA 2025-04-22
ER

PT J
AU Palla, A
   Pezzagno, M
   Spadaro, I
   Ermini, R
AF Palla, Anna
   Pezzagno, Michele
   Spadaro, Ilenia
   Ermini, Ruggero
TI Participatory Approach to Planning Urban Resilience to Climate Change:
   Brescia, Genoa, and Matera-Three Case Studies from Italy Compared
SO SUSTAINABILITY
LA English
DT Article
DE urban resilient planning; territory safety; stakeholder participation;
   sustainable urban drainage systems
ID GOVERNANCE; GREEN; FRAMEWORK; SYSTEMS
AB Urban resilience must consider the ability of cities to cope with the effects of climate change. Community awareness raising and sustainable urban drainage systems (SUDs) are often mentioned in the literature as effective adaptation actions while the success of these solutions is highly context-dependent and improved planning procedures are urgently needed. In this framework, the URCA! project represents a good practice aiming to strengthen the resilience of urban areas by promoting the implementation of SUDs in territorial planning. The main objective of the present research deals with the role of participation in promoting the use of SUDs and their uptake in town planning and land management involving local communities, students, experts, local authorities, and enterprises. To this end, the research adopts a participatory approach to SUDs urban planning for three case studies in Italy selected under the criterion of maximum variation (Brescia, Genoa, and Matera). For the three case studies, participatory approaches are at different stages of development thus requiring appropriate ways of interacting and resulting in different impacts on decisions. Preliminary results, drivers, and barriers in the application of the participatory approach are discussed and compared in order to bring innovation into planning practices, stimulating a revision of typical governance mechanisms.
C1 [Palla, Anna; Spadaro, Ilenia] Univ Genoa, Dept Civil Chem & Environm Engn DICCA, Via Montallegro 1, I-16145 Genoa, Italy.
   [Pezzagno, Michele] Univ Brescia, Dept Civil Environm Architectural Engn & Math DICA, CRA2030, Via Branze 43, I-25123 Brescia, Italy.
   [Ermini, Ruggero] Univ Basilicata, Dept European & Mediterranean Cultures, Via Lanera, I-75100 Matera, Italy.
C3 University of Genoa; University of Brescia; University of Basilicata
RP Palla, A (corresponding author), Univ Genoa, Dept Civil Chem & Environm Engn DICCA, Via Montallegro 1, I-16145 Genoa, Italy.
EM anna.palla@unige.it; michele.pezzagno@unibs.it; ilenia.spadaro@unige.it
RI Spadaro, Ilenia/MBV-9571-2025; Ermini, Ruggero/AAK-2262-2021; Palla,
   Anna/I-6666-2013
OI Palla, Anna/0000-0003-0708-6794; SPADARO, ILENIA/0000-0002-8454-2629
FU Italian Ministry of University and Research (MUR) [CUP D33C220004100]
FX This research was supported by the project "URCA!-Urban Resilience to
   Climate change: Activation of participatory mapping and decision support
   tool for enhancing the sustainable urban drainage" (CUP D33C220004100)
   funded by the Italian Ministry of University and Research (MUR) in the
   PRIN2020 programme.
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NR 61
TC 6
Z9 6
U1 5
U2 11
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2024
VL 16
IS 5
AR 2170
DI 10.3390/su16052170
PG 25
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA KW9M6
UT WOS:001183117900001
OA gold
DA 2025-04-22
ER

PT J
AU Bui, MT
   Yáñez-Godoy, H
   Elachachi, SM
AF Bui, Minh Tuan
   Yanez-Godoy, Humberto
   Elachachi, Sidi Mohammed
TI Assessment of the Implications and Challenges of Using Artificial
   Intelligence for Urban Water Networks in the Context of Climate Change
   When Building Future Resilient and Smart Infrastructures
SO JOURNAL OF PIPELINE SYSTEMS ENGINEERING AND PRACTICE
LA English
DT Review
DE Urban water infrastructure; Machine learning; Surrogate model;
   Decision-making aid; Digital transformation
AB Urban water networks are more than obligatory infrastructures that help to develop and sustain cities; they are integral to urban resilience. Water networks have undergone an evolutionary process, yet persistent challenges continue, accompanied by complex climate dynamics that necessitate new thinking. This paper focuses on artificial intelligence-specifically, machine learning-with respect to transforming urban infrastructures into smart cities. The following is an examination of two key impacts that machine learning has in water infrastructure: detection and localization of leaks and prediction of failure in pipes due to physical factors. The aim of this paper is to combine the latest research that has been carried out up to 2023, along with the implementation of machine learning models and their scenarios and impacts. The results are promising with the most used support vector machines and neural networks, although effectiveness varies due to the physical and external socioeconomic or climatic conditions related to water. Major persistent problems include user demand uncertainty, unbalanced data, measurement uncertainties, noise, and calibration drifts. Future research is encouraged in areas like water demand forecasting and quality management through machine learning. There is also the potential for integration of this technology with other techniques, such as geotechnical modeling and/or experimental building methods to help overcome the current challenges and contribute to building resilient, smart urban infrastructures.
C1 [Bui, Minh Tuan; Yanez-Godoy, Humberto; Elachachi, Sidi Mohammed] Univ Bordeaux, Arts & Metiers Inst Technol, CNRS, Bordeaux INP,I2M,UMR 5295, F-33400 Talence, France.
C3 Universite de Bordeaux; Centre National de la Recherche Scientifique
   (CNRS); CNRS - Institute for Engineering & Systems Sciences (INSIS)
RP Bui, MT (corresponding author), Univ Bordeaux, Arts & Metiers Inst Technol, CNRS, Bordeaux INP,I2M,UMR 5295, F-33400 Talence, France.
EM minh-tuan.bui@u-bordeaux.fr; humberto.yanez-godoy@u-bordeaux.fr;
   sidi-mohammed.elachachi@u-bordeaux.fr
RI YANEZ GODOY, Humberto/JDM-1921-2023
OI YANEZ GODOY, Humberto/0000-0001-9918-3457
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NR 80
TC 1
Z9 1
U1 12
U2 12
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1949-1190
EI 1949-1204
J9 J PIPELINE SYST ENG
JI J. Pipel. Syst. Eng. Pract.
PD FEB 1
PY 2025
VL 16
IS 1
AR 03124004
DI 10.1061/JPSEA2.PSENG-1651
PG 13
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA P7H0J
UT WOS:001379560300018
DA 2025-04-22
ER

PT J
AU Mugagga, F
   Mukwaya, PI
   Kasaija, P
   Kiggundu, PN
   Nakanjako, R
   Kiiza, A
   Muyama, E
   Wepukhulu, J
   Kemigisha, M
   Mackay, H
   Jirstrom, M
AF Mugagga, Frank
   Mukwaya, Paul. I.
   Kasaija, Peter
   Kiggundu, Patricia Nagawa
   Nakanjako, Ritah
   Kiiza, Allen
   Muyama, Eunice
   Wepukhulu, Juma
   Kemigisha, Mary
   Mackay, Heather
   Jirstrom, Magnus
TI Using a Theory of Change Approach for Inclusive and Resilient Urban Food
   Systems in Uganda
SO SYSTEMIC PRACTICE AND ACTION RESEARCH
LA English
DT Article
DE Theory of change; Multi-stakeholder engagements; Smallholder farmers;
   Research impact; Mbale; Kasese; Uganda
ID COMPLEX
AB We explore how the Resilient Urban Food Systems (RUFS) project applied a theory of change approach to raise awareness of the importance of smallholder farmers and to bring them into decision making processes, as key players working towards a sustainable and resilient food system in Kasese Municipality and Mbale City in Uganda. Critical inputs from using a theory of change approach included: constant eye on research impact, in line with the desired long-term change; integrating local Municipality staff as part of the project team; mapping stakeholders and their (dis)interest; transparency and flexible engagement; building capacity for cross-stakeholder communication; attitudinal change and skills improvement via peer-to-peer learning, field visits and, institutional engagements. We can, with a high degree of certainty, conclude that, through working with theory of change, our project sparked a positive attitude change among policy makers, recognition and empowerment of smallholders, and efforts to boost smallholder resilience to stress and shocks.
C1 [Mugagga, Frank; Mukwaya, Paul. I.; Kasaija, Peter; Kiggundu, Patricia Nagawa; Nakanjako, Ritah] Makerere Univ, Dept Geog Geoinformat & Climat Sci, Kampala, Uganda.
   [Kiiza, Allen] Kasese Municipal Council, Kasese, Uganda.
   [Muyama, Eunice] Mbale City Council, Mbale city, Uganda.
   [Wepukhulu, Juma] Elgon Integrated Urban Farmers Assoc & Mbale City, Mbale City, Uganda.
   [Kemigisha, Mary] Kasese Municipal Food Syst Platform, Kasese, Uganda.
   [Mackay, Heather; Jirstrom, Magnus] Lund Univ, Dept Human Geog, Lund, Sweden.
C3 Makerere University; Lund University
RP Mugagga, F (corresponding author), Makerere Univ, Dept Geog Geoinformat & Climat Sci, Kampala, Uganda.
EM fmugagga@gmail.com
RI Mugagga, Frank/AAA-2937-2021
FU Sida-funded programme AgriFoSe2030 - Phase II, through challenge 4
   (Smallholder agriculture within transforming food systems); Mbale City
   Council
FX This project was financially supported by the Sida-funded programme
   AgriFoSe2030 - Phase II, through challenge 4 (Smallholder agriculture
   within transforming food systems). We thank the following partners for
   the support and participation in the project activities; Kasese
   Municipal Council, Mbale City Council, Nabuyonga Horticultural Farmers'
   Association, Elgon Integrated Urban Farmers Association, Lwasso Gravity
   Irrigation scheme, KKK Group Farm, BIGLAD Agri Tourism Farm Limited,
   Geno Family Farm, Uganda Prisons Service (Malukhu) and, the media
   fraternity in two urban authorities. We appreciate the following model
   farmers for allowing us to conduct field activities on their farms; Hon.
   Emily Namalwa, Mr. Julius Ssenkooto, Mr. Juma Wepukhulu, Ms. Mary
   Kemigisha, Mrs. Kahungu Jailes, Mrs. Eunice Mutoro, Mr. Salveri Sande,
   Mr. Stephen Nsibambi and Mr. Bwambale Agaba Ronald. Lastly, we
   acknowledge the tremendous support of Antony Philip Emenyu and Irene
   Magara during the initial stages of this project.
CR AgriFoSe2030, 2020, Phase II Programme
   AgriFoSe2030, 2021, AgrifoSe2030 Phase 2: MEL Guidelines and Templates for Project Teams
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NR 47
TC 0
Z9 0
U1 0
U2 0
PU SPRINGER/PLENUM PUBLISHERS
PI NEW YORK
PA 233 SPRING ST, NEW YORK, NY 10013 USA
SN 1094-429X
EI 1573-9295
J9 SYST PRACT ACT RES
JI Syst. Pract. Action Res.
PD MAR
PY 2025
VL 38
IS 1
AR 3
DI 10.1007/s11213-025-09711-8
PG 24
WC Management
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA 0SN7O
UT WOS:001454991500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Chelleri, L
   Kua, HW
   Sánchez, JPR
   Nahiduzzaman, KM
   Thondhlana, G
AF Chelleri, Lorenzo
   Kua, Harn Wei
   Rodriguez Sanchez, Juan Pablo
   Nahiduzzaman, Kh Md
   Thondhlana, Gladman
TI Are People Responsive to a More Sustainable, Decentralized, and
   User-Driven Management of Urban Metabolism?
SO SUSTAINABILITY
LA English
DT Article; Proceedings Paper
CT Sustainable Asia Conference (SAC)
CY SEP 20-21, 2015
CL Lanzhou, PEOPLES R CHINA
DE Bogota; sustainability transition; green infrastructure; change actor;
   energy saving; Saudi Arabia; South Africa; people-centered approach;
   behavioral change
ID ECOSYSTEM SERVICES; GREEN SPACE; CITY; INFRASTRUCTURE; ADAPTATION;
   RESILIENCE; TRANSITION; LESSONS; BOGOTA; CITIES
AB Smart, green, and resilient city paradigms have been mainly promoted through top-down and technocratic approaches. However, based on the notion to return to "the right to the city", emerging community-driven initiatives are providing self-managed infrastructures contributing to urban sustainability transitions. This paper explores the relevance of the behavioral aspects of people-centered approaches in dealing with two different facets of urban metabolism: physical infrastructure (involvement with the management of decentralized infrastructures) and consumption patterns (involvement in proactive reduction of resources used). In the first case we assessed community perceptions about the roles, benefits, and willingness to proactively engage in the management of decentralized green infrastructures in Bogota City, Colombia. For the second facet, we measured the effectiveness of change agents in re-shaping energy consumption decisions within urban social networks in South Africa and Saudi Arabia. This paper's results show that pre-determined and standardized strategies do not guarantee positive, nor homogeneous, results in terms of meeting sustainability targets, or promoting community involvement. Hence, a better integration of people-centered and top-down approaches is needed through context-dependent policies, for enhancing both users' appreciation of and commitment to urban metabolism participative management.
C1 [Chelleri, Lorenzo] Gran Sasso Sci Inst, GSSI Social Sci, Viale Francesco Crispi 7, I-67100 Laquila, Italy.
   [Kua, Harn Wei] Natl Univ Singapore, Sch Design & Environm, Dept Bldg, 4 Architecture Dr, Singapore 117566, Singapore.
   [Rodriguez Sanchez, Juan Pablo] Univ Los Andes, Dept Civil & Environm Engn, Environm Engn Res Ctr, Bogota 111711, Colombia.
   [Nahiduzzaman, Kh Md] King Fahd Univ Petr & Minerals, Dept City & Reg Planning, Dhahran 31261, Saudi Arabia.
   [Thondhlana, Gladman] Rhodes Univ, Dept Environm Sci, ZA-6140 Grahamstown, South Africa.
C3 Gran Sasso Science Institute (GSSI); National University of Singapore;
   Universidad de los Andes (Colombia); King Fahd University of Petroleum &
   Minerals; Rhodes University
RP Chelleri, L (corresponding author), Gran Sasso Sci Inst, GSSI Social Sci, Viale Francesco Crispi 7, I-67100 Laquila, Italy.
EM lorenzo.chelleri@gssi.infn.it; bdgkuahw@nus.edu.sg;
   pabl-rod@uniandes.edu.co; nahid@kfupm.edu.sa; g.thondhlana@ru.ac.za
RI Nahiduzzaman, Prof. Kh Md/L-9145-2019; Sánchez, Juan/I-7360-2019; Kua,
   Harn/AAD-2084-2021; Rodriguez Sanchez, Juan Pablo/A-2872-2013;
   Thondhlana, Gladman/GLN-2714-2022
OI Rodriguez Sanchez, Juan Pablo/0000-0001-5647-4385; Chelleri,
   Lorenzo/0000-0003-0229-5028; Thondhlana, Gladman/0000-0002-6141-3314;
   Nahiduzzaman, Prof. Kh/0000-0002-5254-3336
FU Santander; BIARI Engineering School
FX Authors wish to thank the Brown International Advanced Research
   Institute (BIARI) seed funding program, sponsored from Santander, for
   supporting the OURS CITIES Network creation and the BIARI Engineering
   School grants and courses which allow the multidisciplinary and
   international collaboration among authors. Furthermore, a special thank
   goes to all the involved students and households who decided to
   contribute to the pilot studies, and to the three anonymous reviewers
   that contributed to enhance the quality of this manuscript.
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NR 58
TC 20
Z9 20
U1 2
U2 76
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2016
VL 8
IS 3
AR 275
DI 10.3390/su8030275
PG 12
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI); Conference Proceedings Citation Index - Social Science &amp; Humanities (CPCI-SSH); Conference Proceedings Citation Index - Science (CPCI-S)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA DI9DC
UT WOS:000373800600043
OA Green Submitted, gold, Green Published
DA 2025-04-22
ER

PT J
AU Cash, C
AF Cash, Corrine
TI Good governance and strong political will: Are they enough for
   transformation?
SO LAND USE POLICY
LA English
DT Article
DE Planning; Africa; Canada; Resilience; Governance; Cities; South Africa;
   Political economy; Development
AB By the year 2050, more than 70% of the world's population will be living in cities. The rush to the cities, along with subsequent increased consumption patterns, has dire consequences, for the ecological systems that sustain human life. Some find hope in the potential that cities can be built differently, that green infrastructure and denser forms of development, will satisfy human needs while decreasing the stress on valuable resources and mitigating consequences of climate change. Some say that "strong political leadership and robust governance" is critical for this need to drive sustainable urban transitions. However, are "political will" and "good governance" enough or is the issue more complicated than this? Using a critical political economy approach this paper shows the fundamental difficulties that arise when attempting to transition urban centres to "smarter", more "sustainable" and "resilient" cities. Ultimately, the paper argues that "good governance" and "strong political will" are inadequate for understanding the requirements for transformation. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Cash, Corrine] Green Cities Solut, Dresden, Germany.
   [Cash, Corrine] Univ Cape Town, African Ctr Cities, ZA-7701 Rondebosch, South Africa.
C3 University of Cape Town
RP Cash, C (corresponding author), Green Cities Solut, Dresden, Germany.
EM corrinecash@gmail.com
OI Cash, Corrine/0000-0001-9365-9274
FU Social Sciences and Humanities Research Council (SSHCR), Canada
FX I would like to thank the Social Sciences and Humanities Research
   Council (SSHCR), Canada for funding this research.
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NR 12
TC 7
Z9 8
U1 0
U2 26
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-8377
EI 1873-5754
J9 LAND USE POLICY
JI Land Use Pol.
PD JAN
PY 2016
VL 50
BP 301
EP 311
DI 10.1016/j.landusepol.2015.10.009
PG 11
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA DA4FO
UT WOS:000367755700028
DA 2025-04-22
ER

PT J
AU Cash, C
AF Cash, Corrine
TI Good governance and strong political will: Are they enough for
   transformation?
SO LAND USE POLICY
LA English
DT Article
DE Planning; Africa; Canada; Resilience; Governance; Cities; South Africa;
   Political economy; Development; Urbanisation
AB By the year 2050, more than 70% of the world's population will be living in cities. The rush to the cities, along with subsequent increased consumption patterns, has dire consequences, for the ecological systems that sustain human life. Some find hope in the potential that cities can be built differently, that green infrastructure and denser forms of development will satisfy human needs while decreasing the stress on valuable resources and mitigating consequences of climate change. Some say that "strong political leadership and robust governance" is critical for this need to drive sustainable urban transitions. However, are "political will" and "good governance" enough or is the issue more complicated than this? Using a critical political economy approach this paper shows the fundamental difficulties that arise when attempting to transition urban centres to "smarter", more "sustainable" and "resilient" cities. Ultimately, the paper argues that "good governance" and "strong political will" are inadequate for understanding the requirements for transformation. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Cash, Corrine] Green Cities Solut, Waterloo, ON N2H 3C7, Canada.
RP Cash, C (corresponding author), Green Cities Solut, Waterloo, ON N2H 3C7, Canada.
EM corrinecash@gmail.com
OI Cash, Corrine/0000-0001-9365-9274
FU Social Sciences and Humanities Research Council (SSHCR), Canada
FX I would like to thank the Social Sciences and Humanities Research
   Council (SSHCR), Canada for funding this research.
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NR 31
TC 9
Z9 9
U1 1
U2 115
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-8377
EI 1873-5754
J9 LAND USE POLICY
JI Land Use Pol.
PD DEC 15
PY 2016
VL 58
BP 545
EP 556
DI 10.1016/j.landusepol.2016.08.012
PG 12
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA DY1JJ
UT WOS:000384851000048
DA 2025-04-22
ER

PT J
AU Kurth, M
   Kozlowski, W
   Ganin, A
   Mersky, A
   Leung, B
   Dykes, J
   Kitsak, M
   Linkov, I
AF Kurth, Margaret
   Kozlowski, William
   Ganin, Alexander
   Mersky, Avi
   Leung, Billy
   Dykes, Jeffrey
   Kitsak, Maksim
   Linkov, Igor
TI Lack of resilience in transportation networks: Economic implications
SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Risk; Regional economic modeling; Network science; Transportation
   networks; Resilience; Policy
AB Disruptions to transportation networks are inevitable. When road networks are not resilient, or in other words, do not recover rapidly from disruptions, unpredictable events can cause significant delays that may be disproportionately greater than the extent of the disruption. Enhancing transportation system resilience can help mitigate the consequences of disruptions; however, required investments are difficult to justify given the low probability of such events. This paper calculates economic implications of unmitigated random disruptions in urban road systems. We modeled delays in transportation networks and demonstrated how resilience can be integrated into macroeconomic modeling via the transportation planning model, REMI TranSight. The model was applied to 10 cities in the United States to forecast the impact of disruptions on gross domestic product (GDP). Different disruption scenarios were modeled and the magnitude of disruption was used to calculate additional delays in transportation networks, which were then integrated into the TranSight model. The results were compared to a baseline case, where economic impact was assumed to be proportional to the magnitude of disruptions. Results show that losses in GDP were far more pronounced in the case scenario as compared to the baseline. The losses tended to be higher in wealthier and more economically productive cities. The economic output tends to rebound one to two years after a disruptive event. We conclude that different topology in transportation networks in different cities requires explicit consideration and quantification of resilience to support investment decisions designed to improve transportation networks in cities.
C1 [Kurth, Margaret; Ganin, Alexander; Mersky, Avi; Kitsak, Maksim; Linkov, Igor] US Army Corps Engineers, Engineer Res & Dev Ctr, 696 Virginia Rd, Concord, MA 01742 USA.
   [Kozlowski, William; Leung, Billy; Dykes, Jeffrey] Reg Econ Models Inc, 433 West St, Amherst, MA 01002 USA.
C3 United States Department of Defense; United States Army; U.S. Army Corps
   of Engineers; U.S. Army Engineer Research & Development Center (ERDC);
   ERDC - Risk Modeling
RP Linkov, I (corresponding author), US Army Corps Engineers, Engineer Res & Dev Ctr, 696 Virginia Rd, Concord, MA 01742 USA.
EM Igor.Linkov@usace.army.mil
RI Ganin, Alexander/I-3210-2019; Linkov, Igor/AAH-5981-2019; Mersky,
   Avi/X-9625-2019
OI Kitsak, Maksim/0000-0002-6862-6021
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NR 28
TC 58
Z9 67
U1 13
U2 116
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1361-9209
J9 TRANSPORT RES D-TR E
JI Transport. Res. Part D-Transport. Environ.
PD SEP
PY 2020
VL 86
AR 102419
DI 10.1016/j.trd.2020.102419
PG 10
WC Environmental Studies; Transportation; Transportation Science &
   Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Transportation
GA NO2QO
UT WOS:000569329300004
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Liu, Y
   Zhang, X
   Liu, J
   Wang, Y
   Jia, HF
   Tao, SY
AF Liu, Yue
   Zhang, Xiang
   Liu, Jie
   Wang, Yao
   Jia, Haifeng
   Tao, Shiyong
TI A flood resilience assessment method of green-grey-blue coupled urban
   drainage system considering backwater effects
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Green-grey-blue; Flood resilience; Global resilience analysis; Backwater
   effect; Drainage system
ID DECISION-MAKING; INFRASTRUCTURE; CITY
AB Currently, the increasing frequency of urban floods-driven by extreme rainfall resulting from climate change, human-induced urbanization, and inadequacies in urban drainage systems-has heightened interest in resilient cities. Among these approaches, green-grey-blue coupling measures have emerged as one of the prominent technical solutions. Several studies have demonstrated the effectiveness of blue-green infrastructure and integrated green-grey-blue systems in mitigating flood disasters. However, a comprehensive assessment of the effectiveness of green-grey-blue infrastructure in enhancing urban flood resilience remains insufficient. This paper proposes an improved global resilience analysis (GRA) method to quantify the effectiveness of green-greyblue infrastructure in flood resilience and the feedback relationships between influencing factors. The method offers a way to quantify the backwater effect of blue infrastructure in conditions where hydrological and hydraulic models cannot efficiently simulate the situation, by introducing the Potential Flooding Area Ratio (PFAR). The effectiveness of this method was further demonstrated in a typical watershed in Wuhan, China. The results show that green infrastructure is sufficient to handle rainfall with a return period of 5 years, with Low Impact Development (LID) facilities (green roof, permeable pavement and rain garden) outperforming Natural Green Space (NGS), but the difference decreases with increasing rain intensity. While the extension of the rainfall return period exacerbates urban flooding, even under the precipitation scenario associated with a 1,000-year return period, increasing pipe diameter can significantly enhance the flood resilience of grey infrastructure. The potential contribution of blue infrastructure to flood resilience is considerable, and optimized regulation schemes for the pre-flood water levels can enhance the adaptability of the system. It is worth noting that ignoring the backwater effect can lead to an overestimation of flood resilience assessment by up to 104 %, therefore, the introduction of PFAR has improved the accuracy of the assessment method by considering the convenience and efficiency of the model. The introduced backwater effect index incorporates the flooded area into the failure mode, filling the gap of traditional GRA method that only considers the flood volume and time, to help quantify the structural impact of green-grey-blue system on flood resilience.
C1 [Liu, Yue; Zhang, Xiang; Tao, Shiyong] Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.
   [Liu, Jie] Chengdu Univ, Sch Architecture & Civil Engn, Chengdu 610106, Peoples R China.
   [Liu, Yue; Zhang, Xiang; Liu, Jie; Tao, Shiyong] Wuhan Univ, Hubei Key Lab Water Syst Sci Sponge City Construct, Wuhan 430072, Peoples R China.
   [Wang, Yao] Hohai Univ, Coll Hydrol & Water Resources, Nanjing 210024, Peoples R China.
   [Jia, Haifeng] Tsinghua Univ, Sch Environm, Beijing 100084, Peoples R China.
C3 Wuhan University; Chengdu University; Wuhan University; Hohai
   University; Tsinghua University
RP Zhang, X; Tao, SY (corresponding author), Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.
EM zhangxiang@whu.edu.cn; taoshiyong@whu.edu.cn
RI ZHANG, Xiang/H-3158-2013; , haifeng/AAF-7606-2021
OI Zhang, Xiang/0000-0003-0965-7298
FU National Natural Science Founda-tion of China [41890823, 52009092];
   Hubei Key R D Project [2021BCA128]
FX This research was funded by the National Natural Science Founda-tion of
   China, grant numbers: No. 41890823 and No. 52009092, and Hubei Key R & D
   Project (2021BCA128) .
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NR 56
TC 2
Z9 2
U1 30
U2 30
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD JAN
PY 2025
VL 170
AR 113032
DI 10.1016/j.ecolind.2024.113032
EA DEC 2024
PG 16
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA R9W5L
UT WOS:001394857700001
OA gold
DA 2025-04-22
ER

PT J
AU Santos, JR
   Safitri, ND
   Safira, M
   Varghese, V
   Chikaraishi, M
AF Santos, Johan Rose
   Safitri, Nur Diana
   Safira, Maya
   Varghese, Varun
   Chikaraishi, Makoto
TI Road network vulnerability and city-level characteristics: A nationwide
   comparative analysis of Japanese cities
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article
DE Vulnerability; efficiency; robustness; transport network; Japan
AB Climate change is making our cities more vulnerable, increasing the needs for further policy actions to make them more resilient. In particular, the transport network is critical in the first phase of disaster response. This study presents the epirical findings of a large scale, nationwide analysis of the road network vulnerability in 69 Japanese cities. We (1) identify the level of network efficiency using topological elements in its undisturbed normal state; (2) evaluate the level of network robustness under different random and targeted attack scenarios; and (3) analyze the relationship of the identified network efficiency and robustness indicators with city-level characteristics. The main findings include: (1) cities with a higher population and a higher infrastructure investment tend to be more robust under random attacks; (2) larger cities tend to be less robust to targeted attacks, presumably due to their high agglomeration of urban functions; (3) car dependency tends to make cities more vulnerable toward random attacks and less vulnerable toward targeted attacks as it indicates a weaker concentration in urban functions; and (4) a high modal share for trains tends to make cities less vulnerable toward random events as it indicates a high agglomeration of urban functions. These findings will help policymakers to prioritize their budget allocations to improve nationwide disaster resilience.
C1 [Santos, Johan Rose; Safitri, Nur Diana; Chikaraishi, Makoto] Hiroshima Univ, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
   [Safira, Maya; Varghese, Varun] Hiroshima Univ, Infrastruct Planning & Urban Risk Management Lab, Higashihiroshima, Japan.
C3 Hiroshima University; Hiroshima University
RP Chikaraishi, M (corresponding author), Hiroshima Univ, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
EM chikaraishim@hiroshima-u.ac.jp
RI Chikaraishi, Makoto/J-9296-2015; Varghese, Varun/ABF-7035-2020; Safira,
   Maya/KVB-5522-2024
OI Santos, Johan Rose/0000-0001-5330-5009; Varghese,
   Varun/0000-0001-6524-7192; Safira, Maya/0000-0002-5568-6690; Safitri,
   Nur Diana/0000-0002-2012-6562
FU Committee on Advanced Road Technology under the Ministry of Land,
   Infrastructure, Transport, and Tourism of Japan
FX The authors would like to acknowledge that a part of this research was
   conducted under the research project "Short-term travel demand
   prediction and comprehensive transport demand management," supported by
   the Committee on Advanced Road Technology under the authority of the
   Ministry of Land, Infrastructure, Transport, and Tourism of Japan.
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NR 39
TC 9
Z9 10
U1 1
U2 39
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 2399-8083
EI 2399-8091
J9 ENVIRON PLAN B-URBAN
JI Env. Plan. B-Urban Anal. City Sci.
PD JUN
PY 2021
VL 48
IS 5
BP 1091
EP 1107
AR 2399808321999318
DI 10.1177/2399808321999318
EA MAR 2021
PG 17
WC Environmental Studies; Geography; Regional & Urban Planning; Urban
   Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration;
   Urban Studies
GA SS7QN
UT WOS:000630558400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ndebele-Murisa, MR
   Mubaya, CP
   Pretorius, L
   Mamombe, R
   Iipinge, K
   Nchito, W
   Mfune, JK
   Siame, G
   Mwalukanga, B
AF Ndebele-Murisa, Mzime R.
   Mubaya, Chipo P.
   Pretorius, Lulu
   Mamombe, Rudo
   Iipinge, Kornelia
   Nchito, Wilma
   Mfune, John K.
   Siame, Gilbert
   Mwalukanga, Brenda
TI City to city learning and knowledge exchange for climate resilience in
   southern Africa
SO PLOS ONE
LA English
DT Article
ID CHANGE ADAPTATION; WATER MANAGEMENT; CITIES; LESSONS; POLICY; HARARE;
   PERSPECTIVES; GOVERNANCE; CHALLENGES; NETWORKS
AB Southern African cities face several challenges including management of rapid urbanization, rising populations, expanding informal settlements; adequate water and other service provision, and a host of governance challenges. Climate change and variability add a compounding effect to this complex, multi stressor context. Addressing the complexity requires an understanding of urban ecosystems functioning and interactions amongst the built and natural environment (climate) and human systems. In this paper we argue that learning is essential for cities to be resilient to current and future challenges. We profile the Future Resilience for African CiTies And Lands (FRACTAL) project which contributed towards climate resilient development by providing relevant climate information for decision-making at the city regional scale in southern Africa. Following FRACTAL's city-to-city learning approach of sharing good practices, knowledge and experiences framed around transdisciplinary research, the study cities of Harare, Lusaka, Windhoek and Durban conducted city learning exchange visits between 2017 and 2018. We used a mixed methods approach to collect and analyze historical climate and hydrological data and current socio-economic and development data among the cities. A qualitative, in-depth, case study comparative analysis was used to identify similarities and differences as well as lessons drawn from the learning process during the city exchanges and these were complimented by desktop studies. Results showed water scarcity, large informal settlements, reliance on external water and energy sources, inadequate protection of ecologically sensitive resources and service provision as some of the common complications in the cities. Several lessons and transferable practices learnt from the cities included effective water conservation and waste management and the use of public-private partnerships in Windhoek, community engagements in Durban and Lusaka while lessons on decisive leadership in dealing with informal settlements emanated from Harare's limited informal settlements. Lastly, Durban's Adaptation Charter and integrated climate planning provided lessons for biodiversity protection and mainstreaming climate change at city governance level. While we recognize that cities are context-specific we consider these good practices as being broadly transferable to other southern African cities. We conclude that social, experiential and structured learning can be an innovative way of multi-stakeholder engagement and a useful approach to increase city resilience planning across southern Africa and cities that face similar developmental challenges.
C1 [Ndebele-Murisa, Mzime R.; Mamombe, Rudo] Chinhoyi Univ Technol, Dept Freshwater & Fishery Sci, Chinhoyi, Zimbabwe.
   [Mubaya, Chipo P.] Chinhoyi Univ Technol, Int Collaborat Off, Chinhoyi, Zimbabwe.
   [Pretorius, Lulu] Univ KwaZulu Natal, Sch Life Sci, Pietermaritzburg, South Africa.
   [Iipinge, Kornelia; Mfune, John K.] Univ Namibia, Dept Biol Sci, Windhoek, Namibia.
   [Nchito, Wilma; Siame, Gilbert; Mwalukanga, Brenda] Univ Zambia, Dept Geog & Environm Studies, Lusaka, Zambia.
   [Ndebele-Murisa, Mzime R.] START Int, Washington, DC 20005 USA.
C3 University of Kwazulu Natal; University of Namibia; University of Zambia
RP Ndebele-Murisa, MR (corresponding author), Chinhoyi Univ Technol, Dept Freshwater & Fishery Sci, Chinhoyi, Zimbabwe.; Ndebele-Murisa, MR (corresponding author), START Int, Washington, DC 20005 USA.
EM murisa.mzime@gmail.com
RI Siame, Gilbert/IWD-6465-2023; Murisa, Mzime/H-8882-2019
OI Murisa, Mzime/0000-0001-8096-2979; Pretorius, Lulu/0000-0001-5064-9658;
   Nchito, Wilma Sithabiso/0000-0001-7089-9777
FU UK's Department for International Development (DFID); Natural
   Environment Research Council (NERC); START International's Global
   Environmental Change (GEC) grants (2016-2017); IDRC's African Climate
   Change Leadership Program (AfriCLP) (2018-2019); NERC [NE/M020347/1,
   NE/M020118/1] Funding Source: UKRI
FX This study was funded by the UK's Department for International
   Development (DFID) and the Natural Environment Research Council (NERC)
   (2015-2019). The Authors acknowledge funding from START International's
   Global Environmental Change (GEC) grants (2016-2017) also administered
   under FRACTAL while the data analyses and writing of this manuscript was
   funded under the IDRC's African Climate Change Leadership Program
   (AfriCLP) (2018-2019). The funders had no role in study design, data
   collection and analysis, decision to publish, or preparation of the
   manuscript.
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PU PUBLIC LIBRARY SCIENCE
PI SAN FRANCISCO
PA 1160 BATTERY STREET, STE 100, SAN FRANCISCO, CA 94111 USA
SN 1932-6203
J9 PLOS ONE
JI PLoS One
PD JAN 24
PY 2020
VL 15
IS 1
AR e0227915
DI 10.1371/journal.pone.0227915
PG 25
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics
GA LP8WY
UT WOS:000534599100076
PM 31978090
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Zhao, HB
   Liu, YY
   Yue, L
   Gu, TS
   Tang, JQ
   Wang, ZY
AF Zhao, Hongbo
   Liu, Yangyang
   Yue, Li
   Gu, Tianshun
   Tang, Junqing
   Wang, Zheye
TI Unraveling the factors behind self-reported trapped incidents in the
   extraordinary urban flood disaster: a case study of Zhengzhou City,
   China
SO CITIES
LA English
DT Article
DE Urban flood disaster; Self-reported trapped incidents; Geographical
   random forest model; Urban resilience
ID RISK; GIS; CLIMATE; VULNERABILITY; GUANGZHOU; MODEL
AB With the rapid development of urbanization, urban flood disasters caused by extreme rainfall have become increasingly frequent, causing great losses to residents' lives and property. Understanding the spatial disparities of residents trapped in floods and its influencing factors at the fine-scale is crucial for realizing urban risk mitigation. This study analyzed 994 self-reported trapped incidents from social media platforms during the 7 & sdot;20 extreme flood disaster in 2021 in Zhengzhou City, China. Using the Kernel density estimation (KDE) method and Geographical random forest (GRF) model, we explored the spatial disparities and influencing factors of these incidents. Results showed that self-reported trapped residents mainly concentrated in the central urban areas characterized by high population density and frequent socio-economic activities, exhibiting spatial heterogeneity characteristics. In addition, precipitation, road density, density of vulnerable groups, per unit GDP, water depth and river density had the significant impact on spatial disparities of residents trapped in floods. The spatial heterogeneities of local coefficients (%IncMSE) in the GRF model showed that these influencing factors played different importance within the city. Based on the perspective of detailed trapped incidents in floods at a fine scale, this study can provide vital implications for building resilient cities in other areas worldwide.
C1 [Zhao, Hongbo; Liu, Yangyang; Yue, Li] Henan Univ, Key Res Inst Yellow River Civilizat & Sustainable, Kaifeng 475001, Peoples R China.
   [Zhao, Hongbo; Liu, Yangyang; Yue, Li] Henan Univ, Collaborat Innovat Ctr Yellow River Civilizat Join, Kaifeng 475001, Peoples R China.
   [Zhao, Hongbo] Henan Univ, Lab Climate Change Mitigat & Carbon Neutral, Zhengzhou 450046, Peoples R China.
   [Gu, Tianshun] China Univ Geosci, Sch Environm Studies, Dept Atmospher Sci, Wuhan 430074, Peoples R China.
   [Tang, Junqing] Peking Univ, Sch Urban Planning & Design, Shenzhen Grad Sch, Shenzhen 518055, Peoples R China.
   [Wang, Zheye] Rice Univ, Kinder Inst Urban Res, 6100 Main St Kraft,Hall,3rd Floor, Houston, TX 77005 USA.
C3 Henan University; Henan University; Henan University; China University
   of Geosciences; Peking University; Rice University
RP Liu, YY (corresponding author), Henan Univ, Key Res Inst Yellow River Civilizat & Sustainable, Kaifeng 475001, Peoples R China.; Liu, YY (corresponding author), Henan Univ, Collaborat Innovat Ctr Yellow River Civilizat Join, Kaifeng 475001, Peoples R China.
EM liu2yy@163.com
RI Z, HB/KHX-5716-2024
OI Gu, Tianshun/0000-0001-6359-8028
FU National Natural Science Foundation of China [42371217]; Natural Science
   Foundation for Excellent Young Scholars of Henan Province
   [232300421101]; Key Laboratory of Earth Surface System and Human-Earth
   Relations, Ministry of Natural Resources of China [LBXT2023YB08]
FX We are very grateful to Dr. Xiaona Guo from School of Design, Shanghai
   Jiao Tong University for providing relevant data support for this study.
   This research was supported by the National Natural Science Foundation
   of China (42371217) , the Natural Science Foundation for Excellent Young
   Scholars of Henan Province (232300421101) and the Key Laboratory of
   Earth Surface System and Human-Earth Relations, Ministry of Natural
   Resources of China (LBXT2023YB08) .
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NR 88
TC 5
Z9 5
U1 44
U2 44
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2024
VL 155
AR 105444
DI 10.1016/j.cities.2024.105444
EA OCT 2024
PG 15
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA J1T3G
UT WOS:001334959800001
DA 2025-04-22
ER

PT J
AU Sun, XZ
   Cui, X
AF Sun, Xiaozheng
   Cui, Xu
TI Resilience and adaptability: The evolving roles of Bikeshare to public
   transport amid pandemic disruptions
SO CITIES
LA English
DT Article
DE Resilience and adaptability; Multilevel interaction; Bikeshare systems;
   Public transportation; COVID-19 pandemic
ID BICYCLE-SHARING SYSTEM; WEATHER CONDITIONS; RIDERSHIP; IMPACT;
   WASHINGTON; COVID-19; BEHAVIOR; MODE
AB The COVID-19 pandemic has significantly disrupted urban transportation systems, revealing the necessity for resilient and adaptable mobility solutions. This study examines the evolving roles of bikeshare systems (BSS) relative to public transit (PT) at micro, meso, and macro levels across four major U.S. cities during different pandemic phases, by employing a multilevel analytical framework that incorporates advanced statistical and machine learning methods. Results indicate remarkable resilience and adaptability of BSS, with usage surpassing pre-pandemic levels and the post-restrictions, contrasting with notable declines and slow recovery of PT. The analysis identifies short-term synergistic effects, long-term seasonal fluctuations, and the influence of weather, government policies, and pandemic severity on BSS-PT relationships. While weather conditions and city-specific factors alone do not exhibit significant correlations, their interactive terms with other variables significantly impact BSS-PT dynamics. Key pandemic-related variables are illustrated as critical determinants, with the initial outbreak and lockdown phase and COVID-19 death tolls exhibiting a pronounced negative association with BSSPT interactions. Conversely, COVID-19 case counts display a notably positive correlation. This research provides valuable insights into the adaptation of transit systems to future disruptions, fostering more resilient and integrated mobility networks.
C1 [Sun, Xiaozheng; Cui, Xu] Southwest Jiaotong Univ, Sch Architecture, Chengdu, Peoples R China.
C3 Southwest Jiaotong University
RP Cui, X (corresponding author), Southwest Jiaotong Univ, Sch Architecture, Chengdu, Peoples R China.
EM xsun19@my.swjtu.edu.cn; cuixu@home.swjtu.edu.cn
RI Sun, Xiao-Zheng/E-6456-2014
FU National Natural Science Foundation of China [U20A20330]
FX This work was supported by the National Natural Science Foundation of
   China [U20A20330] .
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NR 92
TC 0
Z9 0
U1 3
U2 3
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD MAR
PY 2025
VL 158
AR 105733
DI 10.1016/j.cities.2025.105733
EA JAN 2025
PG 21
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA T2M0S
UT WOS:001403402500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Mabrouk, M
   Han, HY
   Fan, C
   Abdrabo, KI
   Shen, GQ
   Saber, M
   Kantoush, SA
   Sumi, T
AF Mabrouk, Mahmoud
   Han, Haoying
   Fan, Chao
   Abdrabo, Karim I.
   Shen, Guoqiang
   Saber, Mohamed
   Kantoush, Sameh A.
   Sumi, Tetsuya
TI Assessing the effectiveness of nature-based solutions-strengthened urban
   planning mechanisms in forming flood-resilient cities
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Flood; Urban planning; Sustainable cities; LID; Natural -based
   solutions; Alexandria
ID GREEN INFRASTRUCTURE; ALEXANDRIA; PATTERN; DESIGN; IMPACT; REGION; CITY
AB Cities have experienced rapid urbanization-induced harsh climatic events, especially flooding, inevitably resulting in negative and irreversible consequences for urban resilience and endangering residents' lives. Numerous studies have analyzed the effects of anthropogenic practices (land use changes and urbanization) on flood forecasting. However, non-structural mitigation's effectiveness, like Nature-Based Solutions (NBS), has yet to receive adequate attention, particularly in the Middle East and North Africa (MENA) region, which have become increasingly significant and indispensable for operationalizing cities efficiently. Therefore, our study investigated the predictive influence of incorporating one of the most common NBS strategies called low-impact development tools (LID) (such as rain gardens, bio-retention cells, green roofs, infiltration trenches, permeable pavement, and vegetative swale) during the urban planning of Alexandria, Egypt, which experiences the harshest rainfall annually and includes various urban patterns. City characteristics-dependent 14 LID scenarios were simulated with recurrence intervals ranging from 2 to 100 years using the LID Treatment Train Tool (LID TTT), depending on calibrated data from 2015 to 2020, by the Nash-Sutcliffe efficiency index and deterministic coefficient, and root-mean-square error with values of 0.97, 0.91, and 0.31, respectively. Our findings confirmed the significant effectiveness of combined LID tools on total flood runoff volume reduction by 73.7%, revealing that different urban patterns can be used in flood-prone cities, provided LID tools are considered in city planning besides grey infrastructure to achieve optimal mitigation. These results, which combined multiple disciplines and were not explicitly mentioned in similar studies in developing countries, may assist municipalities' policymakers in planning flood-resistant, sustainable cities.
C1 [Mabrouk, Mahmoud; Han, Haoying; Shen, Guoqiang] Zhejiang Univ, Coll Civil Engn & Architecture, Hangzhou, Peoples R China.
   [Mabrouk, Mahmoud; Abdrabo, Karim I.] Cairo Univ, Fac Urban & Reg Planning, Giza, Egypt.
   [Fan, Chao] Clemson Univ, Sch Civil & Environm Engn & Earth Sci, Clemson, SC USA.
   [Abdrabo, Karim I.; Saber, Mohamed; Kantoush, Sameh A.; Sumi, Tetsuya] Kyoto Univ, Disaster Prevent Res Inst DPRI, Kyoto 6110011, Japan.
C3 Zhejiang University; Egyptian Knowledge Bank (EKB); Cairo University;
   Clemson University; Kyoto University
RP Han, HY (corresponding author), Zhejiang Univ, Coll Civil Engn & Architecture, Hangzhou, Peoples R China.
EM hanhaoying@zju.edu.cn
RI Saber, Mohamed/H-8261-2019; Sumi, Tetsuya/I-2848-2019; Han,
   Haoying/KHZ-9674-2024; abdrabo, karim/AAL-6139-2020
OI Sumi, Tetsuya/0000-0002-1423-7477; Han, Haoying/0000-0003-4933-9665;
   abdrabo, karim/0000-0002-8696-1616
FU Center for Balance Architecture of Zhejiang University [K Heng
   20203512-02B]
FX This research is supported by the Center for Balance Architecture of
   Zhejiang University (Project No: K Heng 20203512-02B, Index and planning
   methods of resilient cities).
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NR 106
TC 29
Z9 29
U1 25
U2 84
PU ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
PI LONDON
PA 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND
SN 0301-4797
EI 1095-8630
J9 J ENVIRON MANAGE
JI J. Environ. Manage.
PD OCT 15
PY 2023
VL 344
AR 118260
DI 10.1016/j.jenvman.2023.118260
EA JUN 2023
PG 18
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA M5LR9
UT WOS:001030636400001
PM 37354590
DA 2025-04-22
ER

PT J
AU Sandoval, ADO
   Sánchez, JPR
   Bharati, L
AF Sandoval, A. D. Ortega
   Sanchez, J. P. Rodriguez
   Bharati, L.
TI A transdisciplinary approach for assessing the potential feasibility of
   Sustainable Urban Drainage Systems: case study, Bogota, Colombia
SO URBAN WATER JOURNAL
LA English
DT Article
DE flood resilience; fuzzy logic; green infrastructure; multi-criteria
   analysis; transdisciplinary methods; urbanization; >
ID FLOOD-RISK-MANAGEMENT; GREEN INFRASTRUCTURE; STORMWATER MANAGEMENT;
   DECISION-MAKING; FUZZY-LOGIC; BARRIERS; DRIVERS; SELECTION; HIGHWAY;
   RUNOFF
AB Rapid population growth and urban sprawl have expanded built-up areas, affecting flood patterns in cities. Sustainable urban drainage systems (SUDS) have gained significant attention by attempting to replicate natural pre-development drainage conditions. This paper presents a new transdisciplinary methodology for assessing the potential feasibility of 12 different SUDS typologies by considering physical restrictions and six types of contextual barriers. The approach integrates input from academic and non-academic actors, fuzzy logic, geographic information system tools, and multi-criteria decision analysis. A neighborhood in Bogota, Colombia, was selected as the unit of analysis, framing a relevant case study for highly urbanized areas. The findings demonstrate the differential impact of local context constraints and emphasize the importance of comprehensive approaches to SUDS planning that consider criteria other than technical. The methodology is a tool to support architects, engineers, urban planners, and urban water decision-makers in the planning of sustainable and flood-resilient cities.
C1 [Sandoval, A. D. Ortega] Univ Bonn, Ctr Dev Res ZEF, Dept Ecol & Nat Resources Management, Bonn, Germany.
   [Sanchez, J. P. Rodriguez] Univ Andes, Dept Civil & Environm Engn, Bogota, Colombia.
   [Bharati, L.] German Fed Inst Hydrol, Int Ctr Water Resources & Global Change, UNESCO Category Ctr 2, Koblenz, Germany.
C3 University of Bonn; Universidad de los Andes (Colombia)
RP Sandoval, ADO (corresponding author), Univ Bonn, Ctr Dev Res ZEF, Dept Ecol & Nat Resources Management, Bonn, Germany.
EM abby.os@uni-bonn.de
RI Rodriguez Sanchez, Juan Pablo/A-2872-2013
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NR 62
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PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1573-062X
EI 1744-9006
J9 URBAN WATER J
JI Urban Water J.
PD SEP 14
PY 2023
VL 20
IS 8
BP 1081
EP 1094
DI 10.1080/1573062X.2023.2233494
EA JUL 2023
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WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
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OA Green Submitted
DA 2025-04-22
ER

PT J
AU Santos, T
   Silva, MA
   Fernandes, VA
   Marsden, G
AF Santos, Talita
   Silva, Marcelino Aurelio
   Fernandes, Vicente Aprigliano
   Marsden, Greg
TI Resilience and Vulnerability of Public Transportation Fare Systems: The
   Case of the City of Rio De Janeiro, Brazil
SO SUSTAINABILITY
LA English
DT Article
DE resilience; vulnerability; public transport; fuzzy logic
ID URBAN RESILIENCE; INTEGRATED FRAMEWORK; CLIMATE-CHANGE; SUSTAINABILITY;
   MANAGEMENT; ACCESSIBILITY; PERFORMANCE; MITIGATION; ENHANCE; IMPACT
AB Resilience is the ability of a system to adapt, persist, and transform as a reaction to threats, which may be external or internal to the system, while vulnerability is the state of being susceptible to harm from exposure to stresses associated with environmental and social change and from the inability to adapt. Based on a study of the threats that can affect urban mobility, we identified a gap regarding the analysis of the levels of resilience and vulnerability in the face of subsidy threats that can severely affect developing countries. This article measures the level of resilience and vulnerability due to the absence of public transport fare subsidies. For this purpose, we developed an approach based on fuzzy logic and applied it in 33 administrative regions (ARs) of the city of Rio de Janeiro, Brazil. We obtained four matrices of the levels of vulnerability and resilience of each of the regions as an origin and destination. The results show that areas nearest to the downtown region and those with high-capacity transportation available (commuter train and/or subway, systems with many transfer points) are more resilient, while a high level of vulnerability is associated with low income, negative socioeconomic indicators, and the predominance of road transportation to reach jobs. The contribution of this paper is the method applied to analyse the levels of vulnerability and resilience of public transport, which includes a threat that can cause a rupture that impacts routines and job accessibility in a region.
C1 [Santos, Talita; Silva, Marcelino Aurelio] Univ Fed Rio de Janeiro, Transportat Engn Program, Av Horacio Macedo 2030, BR-21941914 Rio De Janeiro, Brazil.
   [Santos, Talita] Univ Fed Piaui, Dept Prod Engn, Av Univ, BR-64049550 Teresina, Brazil.
   [Fernandes, Vicente Aprigliano] Pontificia Univ Catolica Valparaiso, Inst Geog, Av Brasil 2241, Valparaiso 2362807, Chile.
   [Marsden, Greg] Univ Leeds, Inst Transport Studies, 34-40 Univ Rd, Leeds LS2 9JT, W Yorkshire, England.
C3 Universidade Federal do Rio de Janeiro; Universidade Federal do Piaui;
   Pontificia Universidad Catolica de Valparaiso; University of Leeds
RP Santos, T (corresponding author), Univ Fed Rio de Janeiro, Transportat Engn Program, Av Horacio Macedo 2030, BR-21941914 Rio De Janeiro, Brazil.; Santos, T (corresponding author), Univ Fed Piaui, Dept Prod Engn, Av Univ, BR-64049550 Teresina, Brazil.
EM talitafloriano@pet.coppe.ufrj.br; marcelino@pet.coppe.ufrj.br;
   vicente.aprigliano@pucv.cl; G.R.Marsden@its.leeds.ac.uk
RI da Silva, Marcelino/AAJ-9996-2021; Aprigliano Fernandes,
   Vicente/J-5057-2014
OI Aprigliano Fernandes, Vicente/0000-0002-7285-2742; Santos,
   Talita/0000-0003-2337-194X; Marsden, Greg/0000-0003-3570-2793
FU Conselho Nacional de Desenvolvimento Cientifico e Tecnologico -CNPq
   [201575/2018-3]
FX This research was funded by Conselho Nacional de Desenvolvimento
   Cientifico e Tecnologico -CNPq (process 201575/2018-3)-Brazil.
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Z9 16
U1 2
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PU MDPI
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PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
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J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JAN 2
PY 2020
VL 12
IS 2
AR 647
DI 10.3390/su12020647
PG 22
WC Green & Sustainable Science & Technology; Environmental Sciences;
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WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA KQ3KE
UT WOS:000516824600205
OA gold
DA 2025-04-22
ER

PT J
AU Caratù, M
   Pigliautile, I
   Piselli, C
   Fabiani, C
AF Caratu, Myriam
   Pigliautile, Ilaria
   Piselli, Cristina
   Fabiani, Claudia
TI A perspective on managing cities and citizens' well-being through smart
   sensing data
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Sustainability; Sensors; Environment; Cities; Well-being; E-management
ID CLIMATE-CHANGE; HEALTH; SYSTEM; CITY; TECHNOLOGY; POLLUTION; INTERNET;
   QUALITY
AB Urban development and growth have a significant impact on the environment, contributing to ongoing climate change and affecting the resilience of urban communities. However, cities also have the potential to become innovation centers and drive the urgent green transition. Smart cities, in particular, rely on digital services to enhance citizens' quality of life while minimizing their environmental footprint. Therefore, public authorities and policymakers must leverage technological innovations and smart sensing to gather and process relevant data in real-time, supporting citizens' well-being through dedicated services. This work aims to provide a perspective toward healthier and more resilient smart cities by integrating personal, contextual, and environmental data to enhance Early Warning Systems and resiliency planning. Existing studies on the usage of smart sensing tech-nologies in healthcare and environmental assessment services are reviewed to present existing opportunities in both fields. A critical analysis of the background is provided, highlighting the potentials and challenges of the proposed smart city management protocol, leveraging data directly collected by citizens -viewed in this sense as data prosumers.
C1 [Caratu, Myriam] Univ Int Roma, Fac Econ, Via Sette Chiese 139, I-00147 Rome, Italy.
   [Pigliautile, Ilaria; Fabiani, Claudia] Univ Perugia, Dept Engn, Via G Duranti 93, I-06125 Perugia, Italy.
   [Piselli, Cristina] Univ Florence, Dept Architecture DIDA, Via Mattonaia 8, I-50121 Florence, Italy.
C3 University of Perugia; University of Florence
RP Caratù, M (corresponding author), Univ Int Roma, Fac Econ, Via Sette Chiese 139, I-00147 Rome, Italy.
EM myriam.caratu@unint.eu
RI Caratù, Myriam/E-3757-2019; Piselli, Cristina/AGL-4455-2022;
   Pigliautile, Ilaria/JBS-0015-2023; Fabiani, Claudia/L-8288-2013
FU European Union-PON Research and Innovation [240, 1062]
FX Cristina Piselli's research contract is co-funded by the European
   Union-PON Research and Innovation 2014-2020 in accordance with Article
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   Ministerial Decree No. 1062 of August 10, 2021 through the project
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Z9 9
U1 4
U2 17
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 1462-9011
EI 1873-6416
J9 ENVIRON SCI POLICY
JI Environ. Sci. Policy
PD SEP
PY 2023
VL 147
BP 169
EP 176
DI 10.1016/j.envsci.2023.06.012
EA JUN 2023
PG 8
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA M1SV0
UT WOS:001028050600001
DA 2025-04-22
ER

PT J
AU Sharifi, A
   Yamagata, Y
AF Sharifi, Ayyoob
   Yamagata, Yoshiki
TI Principles and criteria for assessing urban energy resilience: A
   literature review
SO RENEWABLE & SUSTAINABLE ENERGY REVIEWS
LA English
DT Review
DE Urban energy; Resilience; Sustainability; Principles; Criteria;
   Assessment; Climate change mitigation and adaptation
ID NEIGHBORHOOD SUSTAINABILITY ASSESSMENT; CLIMATE-CHANGE; LOW-CARBON;
   COMMUNITY RESILIENCE; GREEN ROOFS; BUILDING RESILIENCE; BUILT
   ENVIRONMENT; HEAT-ISLAND; LAND-USE; WATER
AB Between 60% and 80% of global energy is consumed in urban areas and given the projected increase in world's urban population, this share is expected to further increase in the future. Continuity of energy supply in cities is affected by climate change and a growing array of other threats such as cyber attacks, terrorism, technical deficiencies, and market volatility. Determined efforts, acknowledging the interactions and interlinkages between energy and other sectors, are needed to avoid adverse consequences of disruption in energy supply. Resilience thinking is an approach to management of socio-ecological systems that aims to develop an integrated framework for bringing together the (often) fragmented, diverse research on disaster risk management. The literature on urban resilience is immense and still growing. This paper reviews literature related to energy resilience to develop a conceptual framework for assessing urban energy resilience, identify planning and design criteria that can be used for assessing urban energy resilience, and examine the relationship of these criteria with the underlying components of the conceptual framework. In the conceptual framework, it is proposed that in order to be resilient, urban energy system needs to be capable of "planning and preparing for", "absorbing", "recovering from", and "adapting" to any adverse events that may happen in the future. Integrating these four abilities into the system would enable it to continuously address "availability", "accessibility", "affordability", and "acceptability" as the four sustainability-related dimensions of energy. The paper explains different resilience principles associated with these abilities and sustainability dimensions. Also, different planning and design criteria were extracted from the literature and categorized into five themes: infrastructure; resources; land use, urban geometry and morphology; governance; and socio-demographic aspects and human behavior. Examination of the relationship of these criteria with the underlying components of the conceptual framework highlighted the complexity and multi-faceted nature of energy resilience. Exploration of the relevance of the identified criteria to climate change mitigation and adaptation revealed that most of the identified criteria can provide both mitigation and adaptation benefits. (C) 2016 The Authors. Published by Elsevier Ltd.
C1 [Sharifi, Ayyoob] Natl Inst Environm Studies, Global Carbon Project, Tsukuba Int Off, 16-2 Onogawa, Tsukuba, Ibaraki 3058506, Japan.
   [Yamagata, Yoshiki] Natl Inst Environm Studies, 16-2 Onogawa, Tsukuba, Ibaraki 3058506, Japan.
C3 National Institute for Environmental Studies - Japan; National Institute
   for Environmental Studies - Japan
RP Sharifi, A (corresponding author), Natl Inst Environm Studies, Global Carbon Project, Tsukuba Int Off, 16-2 Onogawa, Tsukuba, Ibaraki 3058506, Japan.
EM sharifigeomatic@gmail.com
RI Yamagata, Yoshiki/T-6489-2019; Sharifi, Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613
FU Asia-Pacific Network for Global Change Research
FX We appreciate the financial support from the Asia-Pacific Network for
   Global Change Research. We would also like to thank two anonymous
   referees of the journal for their insightful comments on the earlier
   version of this paper.
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NR 244
TC 342
Z9 375
U1 88
U2 594
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1364-0321
EI 1879-0690
J9 RENEW SUST ENERG REV
JI Renew. Sust. Energ. Rev.
PD JUL
PY 2016
VL 60
BP 1654
EP 1677
DI 10.1016/j.rser.2016.03.028
PG 24
WC Green & Sustainable Science & Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Energy & Fuels
GA DP4EG
UT WOS:000378448400113
OA hybrid
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Benites, AJ
   Simoes, AF
AF Benites, Ana Jane
   Simoes, Andre Felipe
TI Assessing the urban sustainable development strategy: An application of
   a smart city services sustainability taxonomy
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Smart city; Sustainable city; Urban sustainability management; Smart
   services management; Sustainable development indicators; Sustainable
   innovation management
ID INNOVATION POLICY; INDICATORS; FRAMEWORK; SYSTEMS; INITIATIVES;
   RESILIENCE; CITIES
AB This article contextualizes the smart cities paradigm in the panorama of contemporary city challenges, which increasingly encompasses the pursuit of sustainable development goals and the need to incorporate urban resilient behaviors, mainly in response to the impacts of climate change. Such a scenario also comprises the interpretation of smart cities as tools to assist policymakers and city administrators in directing solutions based on emerging information and communication technologies (ICTs) to the materialization of urban strategic plans addressing these confrontations. There are, however, no established indicator systems that attest to the substantiation of such plans by smart city solutions, nor to their alignment with the goals of urban sustainable development. Therefore, an analytical framework is proposed here to address this knowledge gap. It enables guiding the leverage of smart cities' ICTs, not only for the achievement of economic goals, a feature intrinsic to smart city innovations, but also to reach other sustainability dimensions, as the environmental, social, institutional and cultural. To this end, generic sustainability indicator frameworks and also a set of smart city indicators are explored. They are examined as potential sources of specific taxonomies in smart city services for urban sustainable development. From this compilation of options, the Dashboard of Sustainability, once one of the indicator systems most recommended by experts, is revisited. It is adapted as a framework for analyzing and helping to maintain the strategic targeting of smart city solutions, during their entire lifecycle, at sustainability. To complete the qualitative-analytical-taxonomic frame, the services offered by a real smart city solution, the Rio de Janeiro Center of Operations, are employed as a model. This allows investigating its 9-year transition from a wider, larger capacity, strategic and innovative configuration in orientation towards sustainability perspectives, to a more narrow, operational composition, that is predominantly devoted to the economic dimension.
C1 [Benites, Ana Jane; Simoes, Andre Felipe] Univ Sao Paulo, Sustainabil & Environm Management Res Grp, Sustainabil Grad Program & City, Sch Arts Sci & Humanities, Sao Paulo, Brazil.
C3 Universidade de Sao Paulo
RP Benites, AJ; Simoes, AF (corresponding author), Univ Sao Paulo, Sustainabil & Environm Management Res Grp, Sustainabil Grad Program & City, Sch Arts Sci & Humanities, Sao Paulo, Brazil.
EM benites.ana@gmail.com; afsimoes@usp.br
RI Benites, Ana/JTS-2970-2023; Simões, André/JZT-9345-2024
OI Simoes, Andre/0000-0003-4887-309X
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NR 68
TC 32
Z9 33
U1 7
U2 69
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD AUG
PY 2021
VL 127
AR 107734
DI 10.1016/j.ecolind.2021.107734
EA MAY 2021
PG 11
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA SO7XW
UT WOS:000659190100004
OA gold
DA 2025-04-22
ER

PT J
AU Wolfram, M
   Frantzeskaki, N
   Maschmeyer, S
AF Wolfram, Marc
   Frantzeskaki, Niki
   Maschmeyer, Steffen
TI Cities, systems and sustainability: status and perspectives of research
   on urban transformations
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID TRANSITIONS; RESILIENCE; INFRASTRUCTURE; ADAPTATION; GOVERNANCE;
   FRAMEWORK; DESIGN; CARBON; LEARN
AB Urban transformation research forms an emergent interdisciplinary field with open boundaries that combines complex system studies and urban studies. It explores patterns and dynamics of change linking cities and diverse sociotechnical and social-ecological systems across levels and scales, and develops new forms of intervention to foster their sustainability. This paper identifies and maps out the current status in this field and derives strategic recommendations for future research. It delineates a spectrum of recurrent epistemologies concerned with either system change, urban change or urban/system interactions, linked to an emphasis on urban metabolism, resilient communities and ecosystems, grassroots innovations or urban innovation systems. Moreover, seven key factors co-shaping urban transformations are recognized (agency, politics, capacity, policy, experiments, foresight and geography). To better exploit potential synergies between existing strands and address gaps in the light of imminent urban sustainability challenges, future urban transformation research should (1) Share a relational geographical perspective that connects the above epistemologies; (2) Identify and engage with the spatialinstitutional challenges of urban transformations; (3) Move towards multi-system approaches linking various sectors and domains; and (4) Focus on transformative capacity and its agency components as an empowering lever for systemic urban change.
C1 [Wolfram, Marc] Yonsei Univ, Dept Urban Planning & Engn, 50 Yonsei Ro, Seoul 03722, South Korea.
   [Frantzeskaki, Niki; Maschmeyer, Steffen] Erasmus Univ, Dutch Res Inst Transit, Postbus 1738, NL-3000 DR Rotterdam, Netherlands.
C3 Yonsei University; Erasmus University Rotterdam; Erasmus University
   Rotterdam - Excl Erasmus MC
RP Wolfram, M (corresponding author), Yonsei Univ, Dept Urban Planning & Engn, 50 Yonsei Ro, Seoul 03722, South Korea.
EM m.wolfram@yonsei.ac.kr
RI Frantzeskaki, Niki/AAN-1044-2021
OI Frantzeskaki, Niki/0000-0002-6983-448X; Wolfram,
   Marc/0000-0003-3070-0836
FU National Research Foundation of Korea (NRF) [2014S1A5A8018045]; 7th
   European Research Framework Programme [603654]
FX The authors would like to especially thank Ying Li for her invaluable
   support in the literature database search and graphical analysis. This
   research has been co-funded by the National Research Foundation of Korea
   (NRF), contract no. 2014S1A5A8018045, and the 7th European Research
   Framework Programme, grant agreement No. 603654, ARTS project
   (Accelerating and Rescaling Transitions to Sustainability,
   www.acceleratingtransitions.eu).
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NR 52
TC 85
Z9 89
U1 2
U2 62
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 1877-3435
EI 1877-3443
J9 CURR OPIN ENV SUST
JI Curr. Opin. Environ. Sustain.
PD OCT
PY 2016
VL 22
BP 18
EP 25
DI 10.1016/j.cosust.2017.01.014
PG 8
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA FN6CC
UT WOS:000416098300004
DA 2025-04-22
ER

PT J
AU McGrail, S
   Gaziulusoy, AI
   Twomey, P
AF McGrail, Stephen
   Gaziulusoy, A. Idil
   Twomey, Paul
TI Framing Processes in the Envisioning of Low-Carbon, Resilient Cities:
   Results from Two Visioning Exercises
SO SUSTAINABILITY
LA English
DT Article
DE frames; framing processes; low carbon cities; visioning; urban
   resilience
ID EXPECTATIONS; POLITICS; LESSONS; SOCIOLOGY; FORESIGHT; SCIENCE; POWER
AB Visioning exercises were convened in Melbourne and Sydney, Australia, to explore how these cities could become low-carbon and maintain resilience over the next 25 years. Drawing on the concept of framesin particular Schon and Rein's conceptualisation of a frame as a diagnostic-prescriptive story that is based on an underlying structure of beliefs, perceptions and appreciationthis paper seeks to: Attend to the ways that workshop participants framed the problems (of emissions reduction and maintaining resilience); surface framing processes and potential related sources of political contention; and discuss the role of visioning exercises in sustainability transitions. Five frames are identified, along with the interpretive orientations underpinning each frame, framing processes and the potential for frame conflict and alignment. The study suggests that the designers and facilitators of visioning exercises need to be attentive to framing processes, potential framing contests, and related social processes during a visioning exercise. Key implications are identified, with a focus on whether an exercise seeks to open up a complex issue or to agree upon a singular, i.e., consensual, agenda.
C1 [McGrail, Stephen] Swinburne Univ, Swinburne Inst Social Res, Hawthorn, Vic 3122, Australia.
   [Gaziulusoy, A. Idil] Univ Melbourne, VEIL, Fac Architecture Bldg & Environm, Parkville, Vic 3010, Australia.
   [Twomey, Paul] Univ New S Wales, Fac Built Environm, Sydney, NSW 2052, Australia.
   [Twomey, Paul] Univ New S Wales, Ctr Energy & Environm Market, Sydney, NSW 2052, Australia.
C3 Swinburne University of Technology; University of Melbourne; University
   of New South Wales Sydney; University of New South Wales Sydney
RP McGrail, S (corresponding author), Swinburne Univ, Swinburne Inst Social Res, Hawthorn, Vic 3122, Australia.
EM smcgrail@swin.edu.au; idil.gaziulusoy@unimelb.edu.au;
   p.twomey@unsw.edu.au
OI Gaziulusoy, Idil/0000-0003-2542-1832
FU Cooperative Research Centre for Low-carbon Living
FX We would like to acknowledge funding received through the Cooperative
   Research Centre for Low-carbon Living and its partners that has
   supported this research (Visions and Pathways 2040 project).
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ER

PT J
AU Bayulken, B
   Huisingh, D
   Fisher, PMJ
AF Bayulken, Bogachan
   Huisingh, Donald
   Fisher, Peter M. J.
TI How are nature based solutions helping in the greening of cities in the
   context of crises such as climate change and pandemics? A comprehensive
   review
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Review
DE Nature-based solutions; Transformative capacity; Rewilding; Anticipatory
   learning; Enhanced urban resilience; Bio-assessment; Urban
   sustainability indicators; Urban wellbeing; Air quality; Heat-island
   effects; Pandemics
ID ECOSYSTEM-BASED ADAPTATION; PROTECTED AREAS; AIR-QUALITY; URBAN;
   SUSTAINABILITY; GOVERNANCE; FRAMEWORK; BENEFITS; SERVICES; SYSTEMS
AB Urban areas are expanding due to rural-urban migration and due to population increases. Their resilience is being challenged due to socio-political consequences of increasingly frequent and severe storms, due to climate changes, influx of human and animal refugees and as a consequence of the COVID-19 pandemic. The authors prepared a systematic literature of ways cities can be transformed into more resilient, and sustainable regions by creatively enhancing the quality and quantity of blue and green areas in and around them. The literature review was conducted to provide holistic insights into selection, implementation monitoring, assessment, and valuation of Nature-based Solutions in diverse urban regions. The authors reviewed no fewer than 298 articles from 109 academic journals and related sources, published within 1997-2020. The focus of the articles was upon 'nature-based' changes that are being implemented in urban areas, globally to enhance their resilience and the 'quality-of-life' of humans and other species. By implementing nature-based solutions, and complimentary 'urban wilding' approaches, urban areas and their hinterlands are expanding their 'blue' and 'green' areas and are thereby decreasing the 'heat-island' effects, while improving human health by surrounding them with rich bio-diversities of locally adapted, aquatic and terrestrial plants and animals. Although, many NBS options have been documented to be beneficial, their environmental, economic and social/psychological dimensions have not been adequately quantified, especially in the context of climate changes, and with regard to COVID-19. It is essential that the benefits of NBS are quantified with easily measurable outcomes, that are readily understood by practitioners, city policy-makers and members of community organizations, based upon specific geographical and climatological contexts. This will help them accelerate implementation of NBS and wilding into their urban systems. The reviewers found that more research is needed on anticipatory learning, backcasting and community participation to help to effectively implement the appropriate NBS for improving the sustainability of urban systems. The reviewers provide guidance for urban leaders to incorporate NBS into their policies and strategies to improve urban resilience and equity and to more effectively reduce impacts of climate change, population growth and pandemics. (C) 2020 Elsevier Ltd. All rights reserved.
C1 [Bayulken, Bogachan] Girne Amer Univ GAU, Fac Architecture Design & Fine Arts, Dept Architecture, Room ADA209,Univ Dr,99428 Karmi Campus, Kyrenia, Northern Cyprus, Cyprus.
   [Huisingh, Donald] Univ Tennessee, Journal Cleaner Prod, Knoxville, TN USA.
   [Fisher, Peter M. J.] Deakin Univ, Sch Architecture & Built Environm, Geelong, Vic, Australia.
C3 University of Tennessee System; University of Tennessee Knoxville;
   Deakin University
RP Bayulken, B (corresponding author), Girne Amer Univ GAU, Fac Architecture Design & Fine Arts, Dept Architecture, Room ADA209,Univ Dr,99428 Karmi Campus, Kyrenia, Northern Cyprus, Cyprus.
EM bbayulken@gmail.com; dhuisingh@utk.edu; pmjfisher@bigpond.com
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PU ELSEVIER SCI LTD
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PA 125 London Wall, London, ENGLAND
SN 0959-6526
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JI J. Clean Prod.
PD MAR 15
PY 2021
VL 288
AR 125569
DI 10.1016/j.jclepro.2020.125569
PG 20
WC Green & Sustainable Science & Technology; Engineering, Environmental;
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WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA QE2XM
UT WOS:000616074300009
DA 2025-04-22
ER

PT J
AU Jia, S
   Zhan, DJ
AF Jia, Shuo
   Zhan, Dong-Jie
TI Quantitative method for seismic resilience assessment of individual
   buildings
SO STRUCTURES
LA English
DT Article
DE Seismic resilience; Fragility analysis; Loss evaluation; Recovery model;
   Functionality model; Quantitative assessment framework; Individual
   buildings
ID FRAME STRUCTURES; SUSTAINABILITY; FUNCTIONALITY
AB With the rapid economic and social development, the establishment of resilient city becomes the focus of academia and engineering, in which the resilience of the individual building is the most fundamental part. Currently, most of the existing seismic resilience assessment indicators and methods still need to be improved and validated in practice. This study concentrates on the seismic resilience evaluation of individual buildings, which is the improvement of the Standard for Seismic Resilience Assessment of Buildings (GB/T38591-2020). The novelty can be summarized as follows. Firstly, the environmental loss is integrated into the functionality loss model and the economic and social loss quantification are improved, which can comprehensively reflect the effects brought by earthquakes from economic, social and environmental prospectives and achieve more reasonable functionality loss estimation with compatible consideration of the sustainability aspects. Secondly, the piecewise functionality models comprising the preparation phase and recovery phase are proposed to effectively simulate the full recovery process of buildings under different post-earthquake conditions (i.e. damage states, resource conditions and recovery strategies). Meanwhile, the mixed functionality model, which assigns suitable piecewise functionality models with different damage states, is ultimately established to calculate the resilience index, largely reducing the uncertainty of resilience assessment induced by selecting single functionality models. Finally, the intact quantitative seismic resilience assessment framework is established, and the RC frame structure is conducted as an example to validate the rationality of the proposed method. The results show that the environmental loss accounts for large proportion especially for higher earthquake intensity, further indicating the significance and necessity of evaluating the environmental loss. Additionally, the proposed mixed functionality model avoids overestimation or underestimation of the seismic resilience, which can more effectively simulate the recovery process under different recovery conditions. The proposed resilience assessment method can not only provide an effective analysis tool for seismic resilience evaluation of individual buildings, but also lay the theoretical basis for the resilience research and further contribute to the establishment of resilient city and urban sustainable development.
C1 [Jia, Shuo; Zhan, Dong-Jie] Northeast Elect Power Univ, Sch Civil Engn & Architecture, Key Lab Elect Power Infrastruct Safety Assessment, Jilin 132012, Jilin Province, Peoples R China.
C3 Northeast Electric Power University
RP Jia, S (corresponding author), Northeast Elect Power Univ, Sch Civil Engn & Architecture, Key Lab Elect Power Infrastruct Safety Assessment, Jilin 132012, Jilin Province, Peoples R China.
EM Jiash.pr@qq.com
FU Education Department of Jilin Province [JJKH20230137KJ]
FX Funding for authors was provided by the "Education Department of Jilin
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NR 48
TC 2
Z9 2
U1 29
U2 49
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 2352-0124
J9 STRUCTURES
JI Structures
PD JUN
PY 2024
VL 64
AR 106588
DI 10.1016/j.istruc.2024.106588
EA MAY 2024
PG 13
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA TW0U3
UT WOS:001244186800001
DA 2025-04-22
ER

PT J
AU Zhu, CL
   Wu, JP
   Liu, MY
   Luan, JL
   Li, TT
   Hu, KZ
AF Zhu, Chunli
   Wu, Jianping
   Liu, Mingyu
   Luan, Jianlin
   Li, Tingting
   Hu, Kezhen
TI Cyber-physical resilience modelling and assessment of urban roadway
   system interrupted by rainfall
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Urban roadway system; Cyber-physical resilience; Self-healing; Causal
   Bayesian network
ID BAYESIAN NETWORK MODEL; TRAFFIC NETWORKS; GRAPH-THEORY; FRAMEWORK;
   TRANSPORTATION; INFRASTRUCTURE; RECOVERY; DEFINITION; EXTENSION;
   TOPOLOGY
AB Emerging technologies such as the Internet of Things (IoT) and connected vehicles enable urban roadway system more tightly integrated as a Cyber-Physical System (CPS). Accordingly, cyber-physical resilience brings the system with new mitigation strategy interpretation, specifically when being disrupted by rainfall and its induced waterlogging risk. However, modelling and assessment of cyber-physical resilience are not easy for the complicated interaction between 4I(municipal Infrastructure, human Individuality, vehicle Instrument and network Information). In this paper, a Causal Bayesian Network (CBN) framework is employed for resilience modelling and assessment, which is described by absorptive, adaptive and restorative capacity. Forward propagation, backward propagation and sensitivity analysis are being conducted. For validation, a case study via real-world Radio Frequency Identification (RFID) data is utilized to analyze the system's self-healing process. In the underlying CBN model, absorptive capacity is 74.56%, which exhibits a good fit with RFID data analysis that performs a 75% performance index compared with the original state in heavy rainfall scenario. This study can be of great potential for offering practical opportunities on risk preparedness and management as well as investment decisions, for obtaining a more resilient and sustainable future city.
C1 [Zhu, Chunli; Wu, Jianping; Liu, Mingyu; Li, Tingting; Hu, Kezhen] Tsinghua Univ, Dept Civil Engn, Beijing 100084, Peoples R China.
   [Luan, Jianlin] Imperial Coll London, Ctr Transport Studies, Exhibit Rd, London SW7 2AZ, England.
   [Hu, Kezhen] China Acad Informat & Commun Technol, Beijing 100191, Peoples R China.
C3 Tsinghua University; University of London; University College London;
   Imperial College London; China Academy of Information & Communication
   Technology
RP Zhu, CL (corresponding author), Tsinghua Univ, Dept Civil Engn, Beijing 100084, Peoples R China.
EM zcl17@mails.tsinghua.edu.cn
RI Li, Tingting/E-6673-2019
FU NSFC-Zhejiang Joint Fund for the Integration of Industrialization and
   Informatization [U1709212]; National Natural Science Foundation of China
   [U1509205]; China Association for Science and Technology; China
   Scholarship Council (CSC) [201906210384]
FX The authors gratefully acknowledge the support provided by the
   NSFC-Zhejiang Joint Fund for the Integration of Industrialization and
   Informatization (U1709212), National Natural Science Foundation of China
   (U1509205), and "Research on frontiers of intelligent transport system"
   funded by China Association for Science and Technology. This work was
   also supported by the China Scholarship Council (CSC) during the stay of
   Chunli Zhu (201906210384) at IVT, ETH Zurich. The authors are indebted
   to anonymous reviewers for their insightful and constructive comments.
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NR 54
TC 23
Z9 25
U1 8
U2 98
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0951-8320
EI 1879-0836
J9 RELIAB ENG SYST SAFE
JI Reliab. Eng. Syst. Saf.
PD DEC
PY 2020
VL 204
AR 107095
DI 10.1016/j.ress.2020.107095
PG 14
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA OJ4DD
UT WOS:000583913400003
DA 2025-04-22
ER

PT J
AU Rajendran, LP
   Raul, L
   Chen, MZ
   Andrade, JCG
   Akhtar, R
   Mngumi, LE
   Chander, S
   Srinivas, S
   Roy, MR
AF Rajendran, Lakshmi Priya
   Raul, Leal
   Chen, Mingze
   Andrade, Juan Carlos Guerrero
   Akhtar, Rakib
   Mngumi, Lazaro Eliyah
   Chander, Sheeba
   Srinivas, Sudhan
   Roy, Maria Rinya
TI The 'peri-urban turn': A systems thinking approach for a
   paradigm shift in reconceptualising urban-rural futures in the global
   South
SO HABITAT INTERNATIONAL
LA English
DT Article
ID COUNTER-URBANIZATION; PERIURBAN INTERFACE; COUNTERURBANISATION; GROWTH;
   MIGRATION; SEARCH; CITIES; LAND
AB With the rapid pace of urbanization, urban sprawl has become a prevalent phenomenon, particularly in the global South, leading to the emergence of peri-urban spaces where rural-urban interfaces occur. These peri-urban areas exhibit dynamic and continuous interactions among social, economic, and environmental systems, offering valuable insights for fostering resilient futures. However, this aspect remains largely unexplored in current research due to a lack of innovative methodological approaches that effectively capture the complementarities, potentialities, and contestations inherent in the dynamics of peri-urban areas. We contend that peri-urbanisation needs to be reconceptualized as an alternative socio-spatial framework that extends the predominantly Eurocentric discourse on counterurbanisation, making it more inclusive of the emerging urban-rural transformations in the global South. By doing so, we can better understand and address the complex dynamics and challenges associated with peri-urban areas and develop strategies to foster resilience in these contexts.
C1 [Rajendran, Lakshmi Priya] UCL, Bartlett Sch Architecture, Bartlett Fac Built Environm, London, England.
   [Raul, Leal] Rabdan Acad, Syst Engn, Abu Dhabi, U Arab Emirates.
   [Chen, Mingze] Univ British Columbia, Dept Forest & Resources Management, Vancouver, BC, Canada.
   [Andrade, Juan Carlos Guerrero] UCL, Dept Space & Climate Phys, London, England.
   [Akhtar, Rakib] Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham, England.
   [Mngumi, Lazaro Eliyah] Ardhi Univ, Inst Human Settlement Studies IHSS, POB 35176, Dar Es Salaam, Tanzania.
   [Chander, Sheeba; Srinivas, Sudhan; Roy, Maria Rinya] Hindustan Inst Technol & Sci, Sch Planning Architecture & Design Excellence, Chennai, India.
C3 University of London; University College London; University of British
   Columbia; University of London; University College London; University of
   Birmingham; Hindustan Institute of Technology & Science
RP Rajendran, LP (corresponding author), UCL, Bartlett Sch Architecture, Bartlett Fac Built Environm, London, England.
EM l.rajendran@ucl.ac.uk
RI Rajendran, Lakshmi/AAT-2757-2021
OI Akhtar, Rakib/0000-0002-0049-304X; Rajendran,
   Lakshmi/0000-0002-4974-4663; srinivas, sudhan/0009-0003-3135-7555; Chen,
   Mingze/0000-0001-6732-4964
FU SHLC - the Centre for Sustainable, Healthy and Learning Cities and
   Neighbourhoods; UK Research and Innovation (UKRI), UK Government's
   Global Challenges Research Fund (GCRF); Climate Emergency Fund from the
   UCL Environment Domain and UCL Grand Challenges
FX This data collection for the project has been funded by 1) SHLC - the
   Centre for Sustainable, Healthy and Learning Cities and Neighbourhoods.
   SHLC is funded via UK Research and Innovation (UKRI) as part of the UK
   Government's Global Challenges Research Fund (GCRF) 2) The Climate
   Emergency Fund from the UCL Environment Domain and UCL Grand Challenges
   and their support is gratefully acknowledged.
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NR 88
TC 10
Z9 10
U1 31
U2 58
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD APR
PY 2024
VL 146
AR 103041
DI 10.1016/j.habitatint.2024.103041
EA FEB 2024
PG 13
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA MZ9Q3
UT WOS:001197578200001
OA Green Published, hybrid
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Grove, K
   Barnett, A
   Cox, S
AF Grove, Kevin
   Barnett, Allain
   Cox, Savannah
TI Designing justice? Race and the limits of recognition in greater Miami
   resilience planning
SO GEOFORUM
LA English
DT Article
DE Resilience; Design; Racial capitalism; Justice; Recognition
ID CLIMATE JUSTICE; URBAN RESILIENCE; DISCOURSE; POLITICS
AB This paper explores the relation between resilience, justice and recognition through a case study of resilience planning in the Greater Miami Region. Greater Miami resilience plans, prepared through the Rockefeller Foundation's 100 Resilient Cities program, have foregrounded equity as a cross-cutting theme - a surprising move given the region's history of anti-Black violence, segregation, and racially exclusionary governance, and the recent focus of resilience-building initiatives on sustaining property values. Bringing together literatures on resilience and justice, recognition, critical race theory, and design theory, we ask how Miami resilience initiatives extend the structures of anti-Black violence through efforts to address the region's extreme racial and economic inequalities in the name of equity and shore up the regional economy against complex socio-ecological shocks and stressors. Our analysis details how Miami's resilience-building efforts are uneasily situated across at least two distinct styles of recognition. On the one hand, contextually-specific norms of recognition shaped through the region's history of racial capitalism valorize the security of Miami's racialized real estate markets. On the other hand, design-driven resilience planning initiatives valorize diverse forms of knowledge on racially uneven development for the pragmatic utility they offer planners and professionals seeking holistic solutions to complex socio-ecological problems. While designerly approaches to resilience-building have created new possibilities for incorporating equity concerns (promoted by local social and climate justice organizations) into decision-making processes, they ultimately fail to unsettle the libidinal economy of dehumanizing anti-Black violence that continues to structure who can author(ize) what a resilient Miami might become.
C1 [Grove, Kevin; Barnett, Allain] Florida Int Univ, Dept Global & Sociocultural Studies, Miami, FL 33199 USA.
   [Cox, Savannah] Univ Calif Berkeley, Dept City & Reg Planning, Berkeley, CA 94720 USA.
C3 State University System of Florida; Florida International University;
   University of California System; University of California Berkeley
RP Grove, K (corresponding author), Florida Int Univ, Dept Global & Sociocultural Studies, Miami, FL 33199 USA.
EM kgrove@fiu.edu; allain.barnett@gmail.com; savannah.cox@berkeley.edu
OI Grove, Kevin/0000-0001-9114-5050
FU National Science Foundation Urban Resilience to Extremes Sustainability
   Research Network (NSF) [SES-1444755]; National Science Foundation
   Florida Coastal Everglades Long Term Ecological Research Program-IV
   (NSF) [DEB-1832229]
FX We would like to thank audiences at the "Theorizing the Just City in the
   Era of Climate Change" sessions at the 2019 annual meeting of the AAG,
   Stephanie Wakefield, and three anonymous reviewers for insightful
   comments on earlier versions of this manuscript. Research for this
   manuscript was supported by the National Science Foundation Urban
   Resilience to Extremes Sustainability Research Network (NSF SES-1444755)
   and the National Science Foundation Florida Coastal Everglades Long Term
   Ecological Research Program-IV (NSF DEB-1832229). This is publication
   number 22 of the Sea Level Solutions Center in the Institute of
   Environment at Florida International University, and contribution number
   981 from the Southeast Environmental Research Center in the Institute of
   Environment at Florida International University.
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Z9 30
U1 1
U2 28
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0016-7185
EI 1872-9398
J9 GEOFORUM
JI Geoforum
PD DEC
PY 2020
VL 117
BP 134
EP 143
DI 10.1016/j.geoforum.2020.09.014
PG 10
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA OW5FL
UT WOS:000592912200015
DA 2025-04-22
ER

PT J
AU Jaung, WG
   Carrasco, LR
   Shaikh, SFEA
   Tan, PY
   Richards, DR
AF Jaung, Wanggi
   Carrasco, L. Roman
   Shaikh, Shaikh Fairul Edros Ahmad
   Tan, Puay Yok
   Richards, Daniel R.
TI Temperature and air pollution reductions by urban green spaces are
   highly valued in a tropical city-state
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Urban neighborhood green spaces; Nature's contributions to people; Urban
   heat island effect; Urban planning; Cooling effect
ID RECREATIONAL TRAIL PREFERENCES; DISCRETE-CHOICE EXPERIMENT; ECOSYSTEM
   SERVICES; COMMUNITY GARDENS; BIODIVERSITY; RESILIENCE; VEGETATION;
   VISITORS; BENEFITS; HEALTH
AB Urban neighborhood green spaces provide ecosystem services important for sustainable and resilient cities. We examine public preferences for these ecosystem services by conducting a discrete choice experiment in Singapore. The results showed that the public preferred the contributions of neighborhood green spaces in reducing temperature (1, 2, or 3 degrees C), reducing air pollution (20 or 40 %), and learning in nature. However, they did not prefer noise abatement (10, 20, or 30 dB) and increases of bird, butterfly, and native plant species. Creation of a new neighborhood green space was preferred by people living near parks, but not preferred by those living near nature areas. These results show that diverse public preferences exist for different ecosystem services provided by neighborhood green spaces. In the context of Singapore, the urban heat island effect, to be exacerbated under climate change, and air pollution are perceived to be major environmental problems mitigated by urban vegetation.
C1 [Jaung, Wanggi] Duke Kunshan Univ, Suzhou, Peoples R China.
   [Carrasco, L. Roman; Shaikh, Shaikh Fairul Edros Ahmad] Natl Univ Singapore, Dept Biol Sci, Singapore, Singapore.
   [Carrasco, L. Roman; Shaikh, Shaikh Fairul Edros Ahmad; Tan, Puay Yok; Richards, Daniel R.] Campus Res Excellence & Technol Enterprise, Singapore, Singapore.
   [Tan, Puay Yok] Natl Univ Singapore, Sch Design & Environm, Dept Architecture, Singapore, Singapore.
   [Richards, Daniel R.] Swiss Fed Inst Technol, Singapore ETH Ctr, Zurich, Switzerland.
C3 Duke Kunshan University; National University of Singapore; National
   University of Singapore; Swiss Federal Institutes of Technology Domain;
   ETH Zurich
RP Jaung, WG (corresponding author), Duke Kunshan Univ, Suzhou, Peoples R China.
EM wanggi.jaung@dukekunshan.edu.cn
RI ; Carrasco, Luis Roman/H-8017-2012; Tan, Puay Yok/AAY-6873-2020
OI Shaikh, Shaikh Fairul Edros Ahmad/0000-0002-7855-4316; Carrasco, Luis
   Roman/0000-0002-2894-1473; Tan, Puay Yok/0000-0003-0378-590X; Jaung,
   Wanggi/0000-0003-2011-5748; Richards, Daniel/0000-0002-8196-8421
FU National Research Foundation, Prime Minister's Office, Singapore under
   its Campus for Research Excellence and Technological Enterprise (CREATE)
   Programme [NRF2016-ITC001-013]
FX This research is supported by the National Research Foundation, Prime
   Minister's Office, Singapore under its Campus for Research Excellence
   and Technological Enterprise (CREATE) Programme (NRF2016-ITC001-013).
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NR 79
TC 37
Z9 38
U1 11
U2 145
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD NOV
PY 2020
VL 55
AR 126827
DI 10.1016/j.ufug.2020.126827
PG 9
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA OY0CG
UT WOS:000593921600002
DA 2025-04-22
ER

PT J
AU Coaffee, J
   Moore, C
   Fletcher, D
   Bosher, L
AF Coaffee, J.
   Moore, C.
   Fletcher, D.
   Bosher, L.
TI Resilient design for community safety and terror-resistant cities
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-MUNICIPAL ENGINEER
LA English
DT Article
DE safety & hazards; town and city planning; urban regeneration
ID ENVIRONMENT; SECURITY; THREAT; CRIME
AB Resilience against an array of traditional and unconventional terrorist threats is increasingly important to the way towns and\cities are designed and managed and how built environment professionals attempt to enhance levels of community safety. This is particularly the case with regard to crowded public places and transport systems such as light rail or trams, which are seen as particularly vulnerable to terrorist attack. This paper argues that contemporary terrorist threats and tactics mean that counter-terrorism in urban areas should increasingly seek to hybridise hard and soft engineering solutions in order to design and manage the built environment in ways that can reduce the occurrence or impact of a terrorist attack. In particular, it is argued that for counter-terrorism to be successful, inter-professional solutions are required for a wide range of public, private and community stakeholders that are (or should be) involved with the planning, design, construction, operation and management of public places.
C1 [Coaffee, J.] Univ Manchester, Manchester M13 9PL, Lancs, England.
   [Moore, C.] Univ Birmingham, Birmingham B15 2TT, W Midlands, England.
   [Fletcher, D.] Univ Newcastle, Newcastle Upon Tyne, Tyne & Wear, England.
C3 University of Manchester; University of Birmingham; Newcastle University
   - UK
RP Coaffee, J (corresponding author), Univ Manchester, Manchester M13 9PL, Lancs, England.
RI Bosher, Lee/A-4063-2011
OI Fletcher, David/0000-0002-1562-4655
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NR 37
TC 31
Z9 32
U1 4
U2 47
PU ICE PUBLISHING
PI WESTMINISTER
PA INST CIVIL ENGINEERS, 1 GREAT GEORGE ST, WESTMINISTER SW 1P 3AA, ENGLAND
SN 0965-0903
EI 1751-7699
J9 P I CIVIL ENG-MUNIC
JI Proc. Inst. Civil Eng.-Munic. Eng.
PD JUN
PY 2008
VL 161
IS 2
BP 103
EP 110
DI 10.1680/muen.2008.161.2.103
PG 8
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA 312VF
UT WOS:000256699800007
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Sharifi, A
   Allam, Z
AF Sharifi, Ayyoob
   Allam, Zaheer
TI On the taxonomy of smart city indicators and their alignment with
   sustainability and resilience
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article
DE Smart city; indicators; taxonomy; sustainability; urban resilience;
   information and communication technologies
ID CONSUMPTION; CITIES; GROWTH
AB As interest in smart city initiatives continues to grow rapidly, various involved actors and stakeholders increasingly rely on assessment frameworks or indicator sets for different purposes such as monitoring and benchmarking performance, identifying strengths and weaknesses, and determining priority intervention areas. Accordingly, many smart city assessment frameworks and/or indicator sets have been developed in the last decade. To guide actors and stakeholders in their selection of the most suitable frameworks, several studies have examined contents and structure of smart city assessment frameworks or indicator sets. Such studies have significantly improved our understanding of the thematic focus of assessment tools and their methodological approaches. However, there is still a lack of knowledge on the taxonomy of smart city indicators. In addition, since other concepts such as sustainability and resilience are increasingly recognized to be connected to the smart city concept, more clarity on how different assessment frameworks or indicator sets are aligned with sustainability and resilience dimensions and characteristics is needed. To fill these gaps, we developed a taxonomy and examined 33 assessment frameworks or indicator sets in terms of indicator type, sectoral linkages, and alignment with sustainability and resilience dimensions and characteristics. In terms of indicator type, results show that output indicators are dominant but limited attention has been paid to impact indicators. In terms of sectoral focus, existing indicators are mainly related to information and communication technologies, economy, and governance. Regarding resilience abilities, indicators are mainly related to planning abilities and limited attention has been paid to recovery and adaptation. As for resilience characteristics, reasonable levels of alignment with resourcefulness and efficiency were observed, but indicators are not well-aligned with other important characteristics such as redundancy and diversity. Finally, in terms of sustainability, limited alignment with the environmental dimension was found, which raises concerns regarding the suitability of smart city indicators for guiding environmental sustainability and informing efforts aimed at addressing climate change issues. Results of this study can support interested stakeholders in their efforts to select the most suitable assessment frameworks or indicator sets for promoting resilient, smart, and sustainable communities.
C1 [Sharifi, Ayyoob] Hiroshima Univ, Grad Sch Humanities & Social Sci, 1-3-1 Kagamiyama, Higashihiroshima 7398530, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Grad Sch Adv Sci & Engn, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Japan.
   [Allam, Zaheer] Univ Paris 1 Pantheon Sorbonne, IAE Paris Sorbonne Business Sch, I Chaire Entrepreneuriat Terr Innovat ETI, Grp Rech Gest Org GREGOR, Geelong, Vic, Australia.
   [Allam, Zaheer] Deakin Univ, Sch Architecture & Built Environm, Live Smart Res Lab, Geelong, Vic, Australia.
C3 Hiroshima University; Hiroshima University; Hiroshima University; Deakin
   University
RP Sharifi, A (corresponding author), Hiroshima Univ, Grad Sch Humanities & Social Sci, 1-3-1 Kagamiyama, Higashihiroshima 7398530, Japan.
EM sharifi@hiroshima-u.ac.jp
RI ; Sharifi, Ayyoob/M-7584-2013
OI Allam, Zaheer/0000-0001-7682-5912; Sharifi, Ayyoob/0000-0002-8983-8613
FU Asia-Pacific Network for Global Change Research
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: This work
   was supported by the Asia-Pacific Network for Global Change Research.
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NR 59
TC 19
Z9 20
U1 16
U2 79
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 2399-8083
EI 2399-8091
J9 ENVIRON PLAN B-URBAN
JI Env. Plan. B-Urban Anal. City Sci.
PD JUN
PY 2022
VL 49
IS 5
BP 1536
EP 1555
AR 23998083211058798
DI 10.1177/23998083211058798
EA DEC 2021
PG 20
WC Environmental Studies; Geography; Regional & Urban Planning; Urban
   Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration;
   Urban Studies
GA 1R0PN
UT WOS:000729497400001
DA 2025-04-22
ER

PT J
AU Visconti, C
AF Visconti, Cristina
TI Co-production of knowledge for climate-resilient design and planning in
   Naples, Italy
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Co -production; Climate resilient design; Participatory mapping;
   Community -based adaptation; Risk reduction; Collective learning;
   Inclusive planning
ID COMMUNITY-BASED ADAPTATION; DISASTER RISK REDUCTION; GOVERNANCE;
   PARTICIPATION; VULNERABILITY; LESSONS; JUSTICE; CITY
AB In terms of both understanding risk and creating urban resilience measures, integrated knowledge and community involvement are recognized as crucial to activating risk-reduction processes embedded in decision-making, the social fabric and daily life of risk-affected communities. This article outlines a path to implementing coproduction in urban planning and design practices to overcome the issue of knowledge transfer in the fields of Climate Change Adaptation and Disaster Risk Reduction in order to build collective learning processes at multiple dimensions (community, academia, education, institutions). For this aim the case of Naples (Italy) is analyzed as an urban context in which marginalization phenomena coupled with high environmental risks have been over-looked by configured a scenario of socio-ecological stress in which traditional planning and business as usual urban policies have demonstrated a systematic failure. Climate-resilient design experiments with participatory tools were used to investigate the everyday dimension of risk and contextualize climate change effects in the urban fabric and their relationship with community issues. It is concluded that participatory mapping tools in cases of socio-environmental vulnerability can foster a more inclusive learning process about urban risks and ways to respond that. A comprehensive co-production strategy carried out at analysis, design and implementation levels has the potential to promote community-based processes and influence the inclusiveness of planning decisions.
C1 [Visconti, Cristina] Univ Naples Federico II, Dept Architecture, Naples, Italy.
   [Visconti, Cristina] Ctr Invest Gest Integrada Riesgo Desastres, CIGIDEN, Santiago, Chile.
C3 University of Naples Federico II
RP Visconti, C (corresponding author), Univ Naples Federico II, Dept Architecture, Naples, Italy.
EM cristina.visconti@unina.it
OI Visconti, Cristina/0000-0003-3773-254X
FU Centro de Investigacion para la Gestion Integrada del Riesgo de
   Desastres Santiago (CIGIDEN), Santiago, Chile
FX The author thanks the community, stakeholders, students and Needle
   collective who took part in the workshop for their time and strong
   commitment. The writing of this article was carried on during the
   author's post-doc fellowship at Centro de Investigacion para la Gestion
   Integrada del Riesgo de Desastres Santiago (CIGIDEN), Santiago, Chile.
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NR 94
TC 11
Z9 11
U1 9
U2 32
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD MAY
PY 2023
VL 135
AR 102748
DI 10.1016/j.habitatint.2023.102748
EA MAR 2023
PG 14
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA E3XG6
UT WOS:000974902600001
DA 2025-04-22
ER

PT J
AU Sepehri, B
   Sharifi, A
AF Sepehri, Borhan
   Sharifi, Ayyoob
TI X-minute cities as a growing notion of sustainable urbanism: A
   literature review
SO CITIES
LA English
DT Review
DE X-minute cities; Fifteen-minute cities; Twenty-minute cities; Urban
   planning and design; Proximity; Sustainable urbanism
ID 15-MINUTE CITY; TRENDS
AB The notion of X-minute cities has gained significant popularity in recent years, particularly in the wake of the COVID-19 pandemic and the growing recognition of the importance of enhancing urban resilience to other stressors, such as climate change. This notion encompasses concepts such as the 5-minute city, 10-minute city, 15-minute city, and 20-minute city. It has emerged as a novel approach in urban design and planning, focusing on sustainable, smart, and and climate-resilient cities characterized by proximity and efficient accessibility. Despite this growing interest, there is a lack of a literature review on this notion. This study employs bibliometric analysis techniques utilizing Bibliometrix and VOSviewer software tools to analyze bibliographic data, identify trending topics and terms, identify research gaps, and explore future research directions. The findings showed that interest in X-minute cities began with the emergence of the COVID-19 pandemic and intensified as the pandemic affected urban communities worldwide. Results showed that topics such as accessibility, mobility, food, walkability, quality of life, and smart city have garnered relatively more attention. Separate analyses of articles related to X-minute cities, 15-minute cities, and 20-minute showed that the thematic focus of 15-minute and 20-minute cities is different. The most important clusters identified by co-occurrence analysis for X-minute cities, 15-minute cities, and 20-minute cities were urban planning and neighborhoods, mobility and accessibility, and socioeconomic aspects, respectively. Based on the findings, we identified nine future research directions that require further development. Among other things, future research should pay more attention to implementation challenges and topics related to energy, artificial intelligence, public preferences, health, and regulations. The results of this research contribute to the advancement and development of the notion of X-minute cities, enhancing its integration into both practice and theory.
C1 [Sepehri, Borhan] Tarbiat Modares Univ, Dept Urban Planning & Design, Tehran, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Hiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Hiroshima, Japan.
   [Sharifi, Ayyoob] Univ Queensland, Sch Architecture Design & Planning, Brisbane 4067, Australia.
C3 Tarbiat Modares University; Hiroshima University; Hiroshima University;
   University of Queensland
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, Hiroshima, Japan.; Sharifi, A (corresponding author), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Hiroshima, Japan.; Sharifi, A (corresponding author), Univ Queensland, Sch Architecture Design & Planning, Brisbane 4067, Australia.
EM sharifi@hiroshima-u.ac.jp
RI Sharifi, Ayyoob/M-7584-2013
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NR 146
TC 0
Z9 0
U1 0
U2 0
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JUN
PY 2025
VL 161
AR 105902
DI 10.1016/j.cities.2025.105902
PG 16
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 1AV5R
UT WOS:001460627600001
DA 2025-04-22
ER

PT J
AU Sun, C
   Xiong, YX
   Wu, ZQ
   Li, J
AF Sun, Cheng
   Xiong, Yaxuan
   Wu, Zhiqin
   Li, Jie
TI Enclave-Reinforced Inequality during the COVID-19 Pandemic: Evidence
   from University Campus Lockdowns in Wuhan, China
SO SUSTAINABILITY
LA English
DT Article
DE enclave-reinforced inequality; COVID-19; urban enclaves; university
   campus; accessibility; Wuhan
ID ACCESSIBILITY; URBANISM; RESILIENCE; CHALLENGE; CITIES; ACCESS
AB The COVID-19 pandemic has impacted urban life and created spatial and social inequalities in cities. The impacts of lifting full lockdown restrictions once fast-spreading and community-acquired infection waves were under control are still not fully understood. This study aims to explore spatial inequality reinforced in the intervals between the waves of infection during the COVID-19 pandemic. Enclave-reinforced inequality resulting from enclave-based lockdown policies in Chinese cities was investigated through an analysis of the impacts of university campus enclave closures on the accessibility and crowdedness of urban green spaces. Using a modified two-step floating catchment area (2SFCA) and inversed 2SFCA (i2SFCA) method, accessibility and crowdedness were calculated and compared under two different scenarios. Additionally, the Lorenz curve, Gini coefficient, and Theil index were used to measure and compare intra-city global and local inequalities under each scenario. The results indicate that the lockdown of university campus enclaves decreased the supply of urban green spaces. Campus closures not only exacerbated the unequal distribution of urban green space, but also reduced the inequality of crowdedness in urban parks due to increased crowdedness in parks near the closed enclaves. Moreover, both accessibility and crowdedness worsened when the calculations were weighted for population size and the total supply of green space. Enclave-based lockdown in cities reinforced spatial inequality, and it is highly complex and has multidimensional impacts on urban inequalities and environmental injustice which should be considered by urban planners and decision-makers hoping to create healthy, inclusive, resilient, and sustainable cities in the "new normal" of the COVID-19 pandemic.
C1 [Sun, Cheng] Hubei Univ Econ, Ctr Hubei Cooperat Innovat Emiss Trading Syst, Wuhan 430205, Peoples R China.
   [Sun, Cheng; Xiong, Yaxuan; Li, Jie] Hubei Univ Econ, Sch Low Carbon Econ, Wuhan 430205, Peoples R China.
   [Wu, Zhiqin] Univ Manchester, Sch Social Sci, Manchester M13 9PL, Lancs, England.
C3 Hubei University of Economics; Hubei University of Economics; University
   of Manchester
RP Sun, C (corresponding author), Hubei Univ Econ, Ctr Hubei Cooperat Innovat Emiss Trading Syst, Wuhan 430205, Peoples R China.; Sun, C (corresponding author), Hubei Univ Econ, Sch Low Carbon Econ, Wuhan 430205, Peoples R China.
EM zhiqin.wu@manchester.ac.uk
RI Sun, Cheng/AGY-3541-2022
OI Sun, Cheng/0000-0001-6505-821X
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NR 70
TC 7
Z9 7
U1 3
U2 43
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2021
VL 13
IS 23
AR 13100
DI 10.3390/su132313100
PG 21
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA XU9TX
UT WOS:000734599000001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Xu, ZM
   Sridhar, KS
   Xu, QW
   Ravi, V
AF Xu, Zhumin
   Sridhar, Kala S.
   Xu, Qingwen
   Ravi, Vishal
TI Governing pandemics: Resilience and community responses for COVID-19 in
   Bengaluru and Shanghai
SO JOURNAL OF URBAN AFFAIRS
LA English
DT Article; Early Access
DE Governance; urban health; Asia
ID URBAN GOVERNANCE; POLITICS
AB This study explores governance strategies and community responses to the COVID-19 pandemic in Bengaluru and Shanghai. It builds on recent evidence showing China centers on territorial institutions to respond to the pandemic, whereas democratic India relies on associational politics, including alliances with different stakeholders. The study argues that increased community involvement in Shanghai arose from the state's inadequacies during the crisis, while resident welfare associations (RWAs) in Bengaluru primarily served the middle class and had limited impact on vulnerable populations. Using a mixed-methods approach, the study highlights key lessons that contributed to effective responses in both cities, offering policy recommendations for building resilient cities with stronger leadership. Community reactions in India and China surpassed the normal during the pandemic. Despite differences in urban regimes and political systems, Shanghai's territorial institutions contrasted with Bengaluru's associational approach; however local governance and community efforts significantly shaped their pandemic outcomes during the health disaster.
C1 [Xu, Zhumin] McGill Univ, Sch Social Work, 550 Sherbrooke Ouest, Montreal, PQ H3A 1B9, Canada.
   [Xu, Zhumin] Univ Hong Kong, Int Ctr China Dev Studies ICCDS, 10F,Jockey Club Tower,Centennial Campus,Pokfulam R, Hong Kong, Peoples R China.
   [Sridhar, Kala S.] Inst Social & Econ Change, Nagarbavi, India.
   [Xu, Qingwen] NYU, New York, NY 10016 USA.
   [Ravi, Vishal] Govt Karnataka, Bengaluru, India.
C3 McGill University; University of Hong Kong; New York University
RP Xu, ZM (corresponding author), McGill Univ, Sch Social Work, 550 Sherbrooke Ouest, Montreal, PQ H3A 1B9, Canada.; Xu, ZM (corresponding author), Univ Hong Kong, Int Ctr China Dev Studies ICCDS, 10F,Jockey Club Tower,Centennial Campus,Pokfulam R, Hong Kong, Peoples R China.
EM zhumin.xu@mail.mcgill.ca
OI Zheng, Jane/0000-0002-8791-5734; Sridhar, Kala
   Seetharam/0000-0002-7739-9297; Xu, Zhumin/0000-0003-2148-6321
FX This research is a collaborative effort that owes its depth to the
   contributions of numerous individuals and institutions. We thank all the
   interviewees in Bengaluru and Shanghai. Special thanks to Ms. Hitaishi
   Shivaram from Christ University, for her invaluable assistance with the
   slum surveys in Bengaluru in July 2022, and to Dr. Tusi Das along with
   students, including Ms. Shwetha Pai, Dr. Sukanya Bhaumik, and Mr. K.B.
   Nagarjun, for their diligent work in conducting surveys of resident
   welfare associations RWAs in Bengaluru. Dr. Tusi Das also created a
   detailed map of Bengaluru, highlighting the locations of slum wards,
   RWAs, and businesses that were surveyed. We are grateful for the
   cooperation and insights provided by government officials from the
   government of Karnataka. In addition, this article is dedicated to the
   citizens and small business owners from Shanghai who endured the
   COVID-19 restrictions in 2022. Lastly, our gratitude is extended to five
   reviewers and editor June Wang for their helpful comments. An earlier
   version of this article was presented at the 2023 International
   Conference on Public Policy (IPPA) held in Toronto. Any errors remain
   ours.
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NR 48
TC 0
Z9 0
U1 5
U2 5
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0735-2166
EI 1467-9906
J9 J URBAN AFF
JI J. Urban Aff.
PD 2024 OCT 13
PY 2024
DI 10.1080/07352166.2024.2407358
EA OCT 2024
PG 20
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA I7F4O
UT WOS:001331877600001
DA 2025-04-22
ER

PT J
AU Al Shawabkeh, R
   Al-Hawwari, L
   Al-Fugara, A
   Saleem, K
   Smerat, A
   Abualigah, L
AF Al Shawabkeh, R.
   Al-Hawwari, L.
   Al-Fugara, A.
   Saleem, K.
   Smerat, A.
   Abualigah, L.
TI Analyzing urban landscapes and land surface temperature for sustainable
   development in industrial zones
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY
LA English
DT Article; Early Access
DE Cooling effect; Green spaces; Industrial zones; Land use; Microclimate;
   Sustainable cities
ID HEAT-ISLAND; GREEN SPACES; VEGETATION; URBANIZATION; COVER; IMPACTS;
   PATTERN; GROWTH; CITY
AB This study explores the influence of urban landscape characteristics, particularly land use and vegetation cover, on land surface temperature in three industrial urban areas in Jordan. Utilizing a mixed-method approach that combines quantitative analysis and qualitative case studies, the research relies on ground-based and remotely sensed data, including Landsat-8 Thematic Mapper images from 2022. The three case study areas-Zarqa, Abu-Alanda, and Sahab-were categorized based on the extent of green spaces. The findings reveal that residential and industrial areas impact LST differently, depending on their spatial arrangement and proximity. Larger green spaces were found to have the highest cooling effect, with high vegetation areas (7% green cover) reducing LST by 26% at the farthest measured point, compared to medium vegetation areas (2% green cover), which showed a 14% reduction. Smaller green areas demonstrated lower cooling intensities. The study underscores the critical role of urban green spaces in mitigating the urban heat island effect, enhancing climate resilience, and fostering sustainable urban environments. It emphasizes the integration of green spaces into urban planning as a key strategy to improve environmental conditions and the well-being of residents. These findings provide actionable insights for policymakers and urban planners aiming to create more sustainable, livable, and climate-resilient cities.
C1 [Al Shawabkeh, R.; Al-Hawwari, L.] Al Al Bayt Univ, Fac Engn, Dept Architecture, Mafraq 25113, Jordan.
   [Al-Fugara, A.] Al Al Bayt Univ, Fac Engn, Dept Surveying Engn, Mafraq 25113, Jordan.
   [Saleem, K.] King Saud Univ, Coll Appl Studies & Community Serv, Dept Comp Sci & Engn, Riyadh 11362, Saudi Arabia.
   [Smerat, A.] Al Ahliyya Amman Univ, Fac Educ Sci, Amman 19328, Jordan.
   [Smerat, A.] Chitkara Univ, Inst Engn & Technol, Ctr Res Impact & Outcome, Rajpura 140401, Punjab, India.
   [Abualigah, L.] China Univ Petr, Coll Comp Sci & Technol, Qingdao 266580, Peoples R China.
   [Smerat, A.] Mazaya Univ Coll, Comp Technol Engn, Nasiriyah, Iraq.
C3 Al al-Bayt University; Al al-Bayt University; King Saud University;
   Al-Ahliyya Amman University; Chitkara University, Punjab; China
   University of Petroleum
RP Abualigah, L (corresponding author), China Univ Petr, Coll Comp Sci & Technol, Qingdao 266580, Peoples R China.
EM aligah.2020@gmail.com
RI Al shawabkeh, Rami/AAC-5523-2021; al_fugrara, A’kif/ADO-6630-2022
FU King Saud University, Riyadh, Saudi Arabia [RSPD2024R697]
FX This work was supported by the King Saud University, Riyadh, Saudi
   Arabia, under Researchers Supporting Project number RSPD2024R697.
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NR 51
TC 0
Z9 0
U1 1
U2 1
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1735-1472
EI 1735-2630
J9 INT J ENVIRON SCI TE
JI Int. J. Environ. Sci. Technol.
PD 2025 FEB 24
PY 2025
DI 10.1007/s13762-025-06401-9
EA FEB 2025
PG 24
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA Y4K7Y
UT WOS:001431840000001
DA 2025-04-22
ER

PT J
AU Adams, C
   Frantzeskaki, N
   Moglia, M
AF Adams, Clare
   Frantzeskaki, Niki
   Moglia, Magnus
TI Actors mainstreaming nature-based solutions in cities: A case study of
   Melbourne's change agents and pathways for urban sustainability
   transformations
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Sustainability transitions; Governance; Agency; Pathways; Urban
   forestry; Green infrastructure
ID GREEN INFRASTRUCTURE; TRANSITIONS; GOVERNANCE; POLITICS; LESSONS; POWER
AB Nature-based solutions (NBS) are implemented across multiple cities worldwide and feature as promising solutions in local and global agendas. As solutions that can deal with interlinked urban challenges, NBS are being taken up by cities in different geographies and are considered to be mainstreaming. The process, referred to as mainstreaming, and how this can be achieved needs to be better understood, which is identified as a research gap. In this paper, we examine the roles that actors can undertake that contribute to the mainstreaming of NBS in cities. The aim is to understand the roles that urban actors, especially those within local governments, assume in the process of NBS mainstreaming to mobilise and implement novel and innovative strategic solutions for cities. This topic is explored in a case study of the metropolitan Melbourne region in Australia, where urban forest strategies are gaining traction in local governments for addressing urban resilience concerns. We present how the roles different actors assume contribute to the (re)shaping, building, and/or transformation of institutions to attain climate and ecologically resilient cities. The main contribution of this paper is a pathways framework that illustrates how sustainability norms can move through the mainstreaming process, facilitated by the roles that actors undertake - to champion, advocate, and realise transformative discourses and actions within urban politics and urban practices. Our key findings are framed as success factors of mainstreaming agencies and pathways underpinning transformation, which are: commitment longevity, innovative capacity, collaborative mindset, and on-ground delivery.
C1 [Adams, Clare; Moglia, Magnus] Swinburne Univ Technol, Ctr Urban Transit, Melbourne, Australia.
   [Frantzeskaki, Niki] Univ Utrecht, Fac Geosci, Human Geog & Spatial Planning, Utrecht, Netherlands.
C3 Swinburne University of Technology; Utrecht University
RP Adams, C (corresponding author), Swinburne Univ Technol, Ctr Urban Transit, Melbourne, Australia.
EM cladams@swin.edu.au; n.frantzeskaki@uu.nl; mmoglia@swin.edu.au
RI Frantzeskaki, Niki/AAN-1044-2021
OI Adams, Clare/0000-0001-8318-7664; Frantzeskaki, Niki/0000-0002-6983-448X
FU Australian Government Research Training Program Scholarship; Swinburne
   University Postgraduate Research Award
FX This research has received support through an Australian Government
   Research Training Program Scholarship and a Swinburne University
   Postgraduate Research Award.
CR Adams C, 2024, URBAN FOR URBAN GREE, V91, DOI 10.1016/j.ufug.2023.128160
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NR 69
TC 2
Z9 2
U1 5
U2 10
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 1462-9011
EI 1873-6416
J9 ENVIRON SCI POLICY
JI Environ. Sci. Policy
PD MAY
PY 2024
VL 155
AR 103723
DI 10.1016/j.envsci.2024.103723
EA MAR 2024
PG 13
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA QE2O9
UT WOS:001219139500001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Avazpour, B
   Osmond, P
   Corkery, L
AF Avazpour, Behnaz
   Osmond, Paul
   Corkery, Linda
TI Using Water-Sensitive City Factors to Evaluate the Performance of Water
   Management Projects at a Global Scale
SO JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT
LA English
DT Article
DE Climate change; Water-sensitive cities (WSCs); Water-sensitive urban
   design (WSUD); Sustainable water management indicators; Livable cities
ID URBAN STORMWATER MANAGEMENT; GREEN INFRASTRUCTURE; CLIMATE-CHANGE;
   DESIGN; LESSONS; POLICY; CITIES; SUSTAINABILITY; IMPLEMENTATION;
   BARRIERS
AB In recent decades, the effects of climate change, rapid urbanization, and the burdens of economic development have confronted cities with challenges in urban water management. This has resulted in mounting pressures on water resources and contributed to water scarcity and extreme flood events. Water-sensitive cities (WSCs) are cites that are resilient, sustainable, and livable and that offer a range of social, economic, and environmental benefits through water-sensitive urban design (WSUD). This paper bridges the gap between theoretical research and practical applications in stormwater management, presenting new methodologies that can be integrated into current engineering practices. By explicitly defining the concepts of WSC and WSUD, this study provides a clear framework for practitioners and engineers to enhance urban water resilience. The research establishes a set of environmental, social, policy, and economic (ESPE) indicators to evaluate the performance of WSUD projects within urban areas to achieve WSCs. Such indicators apply in three specific phases of WSUD projects: planning and design, implementation, and management and maintenance. The data were collected using a survey that received global responses from 388 water management experts from the aforementioned sectors. Structural equation modeling (SEM) was employed to identify the key factors in achieving WSCs. The outcomes of this analysis provide insights to enable water authorities, academics, and practitioners to evaluate the ability of WSUD projects to achieve sustainable water management.
C1 [Avazpour, Behnaz; Osmond, Paul; Corkery, Linda] Univ New South Wales, High St, Kensington, 2052, Australia.
C3 University of New South Wales Sydney
RP Avazpour, B (corresponding author), Univ New South Wales, High St, Kensington, 2052, Australia.
EM B.avazpour@unsw.edu.au; p.osmond@unsw.edu.au; l.corkery@unsw.edu.au
RI Avazpour, Behnaz/MIN-9479-2025
OI Osmond, Paul/0000-0002-8533-6624
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NR 109
TC 0
Z9 0
U1 8
U2 8
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 0733-9496
EI 1943-5452
J9 J WATER RES PLAN MAN
JI J. Water Resour. Plan. Manage.-ASCE
PD DEC 1
PY 2024
VL 150
IS 12
AR 04024054
DI 10.1061/JWRMD5.WRENG-6054
PG 15
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA J7F5J
UT WOS:001338684800004
DA 2025-04-22
ER

PT J
AU Paranunzio, R
   Anton, I
   Adirosi, E
   Ahmed, T
   Baldini, L
   Brandini, C
   Giannetti, F
   Meulenberg, C
   Ortolani, A
   Pilla, F
   Iglesias, G
   Gharbia, S
AF Paranunzio, Roberta
   Anton, Iulia
   Adirosi, Elisa
   Ahmed, Tasneem
   Baldini, Luca
   Brandini, Carlo
   Giannetti, Filippo
   Meulenberg, Cecil
   Ortolani, Alberto
   Pilla, Francesco
   Iglesias, Gregorio
   Gharbia, Salem
TI A New Approach towards a User-Driven Coastal Climate Service to Enhance
   Climate Resilience in European Cities
SO SUSTAINABILITY
LA English
DT Article
DE coastal climate service; urban areas; coastal hazards; climate
   resilience
ID SEA-LEVEL RISE; FLOOD RISK; LIVING LAB; INFORMATION; LESSONS;
   VULNERABILITY; UNCERTAINTY; SCIENCE; MODELS
AB Coastal climate services play a crucial role in developing customised climate information for diverse end-users and stakeholders. To build climate-resilient societies, decision-makers should be empowered through easy access to powerful tools that enable timely adaptation to future and ongoing hazards. For this reason, fit-for-purpose climate services are needed to conduct accurate historical characterisation and projections for interpretative studies on climate- and water-related risks at the local coastal scale. The EU-funded SCORE project (Smart Control of Climate Resilience in European Coastal Cities) utilises climate and marine services for the development of smart technologies that support nature-based solutions to address specific concerns, including rising sea levels, coastal erosion, and coastal flooding due to extreme weather events. As part of the SCORE project, decision-makers will be able to address climate change-related coastal effects in their own cities through novel participatory approaches (Coastal City Living Labs-CCLLs). As part of this framework, this work (i) discusses the main requirements for the identification of fit-for-purpose coastal climate services for local-scale impact studies in European coastal cities based on CCLL requests and prior knowledge and (ii) provides relevant parameters and features that fulfil the users' needs.
C1 [Paranunzio, Roberta] Natl Res Council Italy CNR ISAC, Inst Atmospher Sci & Climate, I-10133 Turin, Italy.
   [Anton, Iulia; Ahmed, Tasneem; Gharbia, Salem] Atlantic Technol Univ, Dept Environm Sci, Sligo F91 YW50, Ireland.
   [Adirosi, Elisa; Baldini, Luca] Natl Res Council Italy CNR ISAC, Inst Atmospher Sci & Climate, I-00133 Rome, Italy.
   [Brandini, Carlo; Ortolani, Alberto] Consortium Lab Environm Monitoring & Modelling Sus, I-50019 Florence, Italy.
   [Brandini, Carlo] Natl Res Council Italy CNR ISMAR, Marine Sci Inst, I-50019 Florence, Italy.
   [Giannetti, Filippo] Univ Pisa, Dept Informat Engn, I-56122 Pisa, Italy.
   [Meulenberg, Cecil] Sci & Res Ctr Koper, Mediterranean Inst Environm Studies, Koper 6000, Slovenia.
   [Ortolani, Alberto] Natl Res Council Italy CNR IBE, Inst Bioecon, I-50019 Florence, Italy.
   [Pilla, Francesco] Univ Coll Dublin, Sch Architecture Planning & Environm Policy, Dublin D04 V1W8, Ireland.
   [Iglesias, Gregorio] Univ Coll Cork, Environm Res Inst, Sch Engn & Architecture, Coll Rd, Cork T12 YN60, Ireland.
   [Iglesias, Gregorio] Univ Coll Cork, Environm Res Inst, MaREI, Coll Rd, Cork T12 YN60, Ireland.
   [Iglesias, Gregorio] Univ Plymouth, Sch Engn, Marine Bldg, Plymouth PL4 8AA, England.
C3 Atlantic Technological University (ATU); Consiglio Nazionale delle
   Ricerche (CNR); Istituto di Scienze Marine (ISMAR-CNR); University of
   Pisa; University College Dublin; University College Cork; University
   College Cork; University of Plymouth
RP Paranunzio, R (corresponding author), Natl Res Council Italy CNR ISAC, Inst Atmospher Sci & Climate, I-10133 Turin, Italy.
EM r.paranunzio@isac.cnr.it; iulia.anton@atu.ie;
   elisa.adirosi@artov.isac.cnr.it; tasneem.ahmed@mail.itsligo.ie;
   l.baldini@isac.cnr.it; brandini@lamma.toscana.it;
   filippo.giannetti@unipi.it; cecil.meulenberg@zrs-kp.si;
   ortolani@lamma.toscana.it; francesco.pilla@ucd.ie;
   gregorio.iglesias@ucc.ie; salem.gharbia@atu.ie
RI Iglesias, Gregorio/AAD-6108-2021; Baldini, Luca/C-7166-2015; Paranunzio,
   Roberta/N-2647-2019; adirosi, elisa/Q-5226-2018; BRANDINI,
   CARLO/A-6446-2016; Iglesias, Gregorio/E-5114-2012; Meulenberg,
   Cecil/JXN-3201-2024; Anton, Iulia/S-3543-2017
OI adirosi, elisa/0000-0001-9500-5004; Gharbia, Salem/0000-0003-2130-1841;
   Baldini, Luca/0000-0001-5217-1205; BRANDINI, CARLO/0000-0002-6509-4533;
   Iglesias, Gregorio/0000-0003-2719-1663; Paranunzio,
   Roberta/0000-0002-2270-7467; Ahmed, Tasneem/0000-0002-7087-6230;
   Meulenberg, Cecil/0000-0001-8778-3316; ORTOLANI,
   ALBERTO/0000-0003-3864-8411; Anton, Iulia/0000-0001-6491-4096;
   Giannetti, Filippo/0000-0003-0043-4098; Pilla,
   Francesco/0000-0002-1535-1239
FU European Commission's Horizon 2020 research and innovation programme
FX No Statement Available
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NR 102
TC 5
Z9 5
U1 5
U2 14
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JAN
PY 2024
VL 16
IS 1
AR 335
DI 10.3390/su16010335
PG 26
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA EQ2U9
UT WOS:001140332600001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Odemerho, FO
AF Odemerho, Francis O.
TI Building climate change resilience through bottom-up adaptation to flood
   risk in Warri, Nigeria
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE climate change; flood adaptation choices; on-street floodwater retention
   pools; urban expansion; urban flood resilience; urban flood risk
   management; Warri-Nigeria
ID NATURAL HAZARDS; URBAN; COMMUNITIES; POOR
AB The problem of flooding in Warri, Nigeria is as old as the city itself. What has changed in recent years is the rapidly increasing magnitude and frequency of floodwater retention pools on urban streets as urban development expanded into low-lying swamplands within the city. Through the process of community urban risk assessments, urban flood zone occupants acknowledge the growing problem of on-street flood retention pools in a city once dominated by problems with off-street flood retention pools. A factor analysis of the perceived causes of flooding shows that Warri residents believe that human activities that reduced the floodwater storage capacity of its natural drainage sinks (i.e., its swamplands), violated building codes, changed local water levels, altered low-lying mangrove swamp terrain, and eliminated drainage facilities are responsible for the increasing retention of floodwater pools on city streets in the last few decades. Such local stock of flood knowledge has implications for a local participatory approach to community adaptations and mitigation methods to reduce urban flood risks from climate change and uncontrolled urban expansion. Local community adaptation choices guide how flood-affected residents cope with urban floods, especially how they use and alter their living space and respond to emergencies. However, such community views are often ignored by experts seeking solutions to flooding. If the views of flood zone occupants begin to inform flood adaptation choices, proposed solutions to flooding problems would be more likely to receive local support and acceptance, thus making the bottom-up solutions developed in this paper easier to implement and sustain. Once a well-formulated grassroots adaptation strategy for urban flood risk management for resiliency becomes the base for action, a more resilient national policy is sure to succeed, especially in low-income and lower-middle-income countries where informal settlement is the case and the role of government in flood management is still minimal.
C1 So Illinois Univ, Dept Geog, Edwardsville, IL 62026 USA.
C3 Southern Illinois University System; Southern Illinois University
   Edwardsville
RP Odemerho, FO (corresponding author), So Illinois Univ, Dept Geog, Edwardsville, IL 62026 USA.
EM fodemer@siue.edu
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NR 43
TC 31
Z9 31
U1 4
U2 84
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0956-2478
EI 1746-0301
J9 ENVIRON URBAN
JI Environ. Urban.
PD APR
PY 2015
VL 27
IS 1
BP 139
EP 160
DI 10.1177/0956247814558194
PG 22
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA CG0SQ
UT WOS:000352979200010
DA 2025-04-22
ER

PT J
AU Miguez, MG
   Raupp, IP
   Veról, AP
AF Miguez, Marcelo G.
   Raupp, Igor P.
   Verol, Aline P.
TI An integrated quantitative framework to support design of resilient
   alternatives to manage urban flood risks
SO JOURNAL OF FLOOD RISK MANAGEMENT
LA English
DT Article
DE economic assessment; flood mitigation; integrated flood risk management;
   resilience
ID INDEX
AB Urban floods can disrupt city services and cause significant damage. This study intends to contribute to the flood control discussion by proposing a design framework combining flood risk, resilience, and economic feasibility to support decision-making among flood control alternatives. First, a hydrodynamic model (Urban Flood Cell Model-MODCEL) simulates flood maps for different return periods. Then, a multicriteria flood risk index is used to introduce socioeconomic variables and an integrated flood resilience index indicates the best alternative for maintaining risks at an acceptable level under future pressures, that is, guaranteeing that future risks will not increase significantly. Finally, economic feasibility is assessed, adding a benefit-cost analysis, considering the expected avoided losses over a given time. To illustrate this discussion, two design alternatives are compared for a project lifetime of 50 years in the Dona Eugenia watershed, in the metropolitan area of Rio de Janeiro, Brazil. The proposed framework showed that the most complete (and initially preferred) alternative, which considered a whole set of distributed sustainable urban drainage and river restoration measures, was not economically feasible. A variant of this alternative focusing on fluvial floodable parks and river restoration, avoiding individual adaptations (like implementing green roofs in existing buildings), showed more sustainable results.
C1 [Miguez, Marcelo G.; Verol, Aline P.] Univ Fed Rio de Janeiro, Programa Engn Civil, COPPE UFRJ, Ave Athos da Silveira Ramos 149,CT Sala I206, BR-21941909 Rio De Janeiro, RJ, Brazil.
   [Raupp, Igor P.] Ctr Pesquisas Energia Elect, CEPEL, Dept Otimizacao Energet & Meio Ambiente, Rio De Janeiro, Brazil.
   [Verol, Aline P.] Univ Fed Rio de Janeiro, Programa Posgrad Arquitetura, FAU UFRJ, Rio De Janeiro, RJ, Brazil.
C3 Universidade Federal do Rio de Janeiro; Eletrobras Cepel; Universidade
   Federal do Rio de Janeiro
RP Miguez, MG (corresponding author), Univ Fed Rio de Janeiro, Programa Engn Civil, COPPE UFRJ, Ave Athos da Silveira Ramos 149,CT Sala I206, BR-21941909 Rio De Janeiro, RJ, Brazil.
EM marcelomiguez@poli.ufrj.br
RI ; VEROL, ALINE PIRES/R-2750-2017; Miguez, Marcelo Gomes/A-3252-2013
OI RAUPP, IGOR/0000-0003-0375-7239; VEROL, ALINE PIRES/0000-0001-7793-1143;
   Miguez, Marcelo Gomes/0000-0003-4206-4013
FU CNPq -Conselho Nacional de Desenvolvimento Cientifico e
   Tecnologico/Brasil [303240/2017-2]; CAPES - Coordenacao de
   Aperfeicoamento de Pessoal de Nivel Superior/Brasil [001]
FX CNPq -Conselho Nacional de Desenvolvimento Cientifico e
   Tecnologico/Brasil, Grant/Award Number: 303240/2017-2; CAPES -
   Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior/Brasil,
   Grant/Award Number: Finance Code 001
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NR 45
TC 9
Z9 10
U1 0
U2 30
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1753-318X
J9 J FLOOD RISK MANAG
JI J. Flood Risk Manag.
PD NOV
PY 2019
VL 12
SU 2
AR e12514
DI 10.1111/jfr3.12514
PG 13
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA JG4OD
UT WOS:000492052900008
DA 2025-04-22
ER

PT J
AU Mombelli, S
   Miralles-Guasch, C
   Marquet, O
AF Mombelli, Serena
   Miralles-Guasch, Carme
   Marquet, Oriol
TI Can proximity forge strong bonds? Exploring the relationship between
   urban proximity and social cohesion at the neighbourhood level
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban proximity; Urban design; 15-minute cities; Social cohesion;
   Sustainable and resilient cities; People and environment; Urban
   structure; Structural equation modelling
ID WALKING ACCESSIBILITY; PERCEIVED PROXIMITY; PEDESTRIAN TRAVEL;
   OLDER-ADULTS; COMMUNITY; SENSE; CITY; WALKABILITY; ENVIRONMENT;
   DEFINITION
AB Urban proximity has recently regained prominence in urban and transport planning. While the environmental and health benefits of increased proximity are well documented, its social implications, particularly in relation to social cohesion, remain under-researched. This is important because social cohesion is often associated with increased community resilience and societal stability. While previous research has examined how features of the built environment affect social cohesion, few studies have isolated the impact of proximity to daily destinations. We address this gap by integrating objective and subjective measures of proximity to daily destinations and assessing their impact on neighbourhood social cohesion. Using survey data on social cohesion and perceived proximity, together with georeferenced data on destination distances in five Spanish cities, we apply an SEM approach to analyse the relationship. The results indicate a negative relationship between distance to destinations and social cohesion, mediated by perceptions of proximity. This means that the impact of distances to destinations over social cohesion is stronger when destinations are perceived to be closer or further than they actually are. Urban planners and policymakers should consider objective and subjective measures of proximity and focus on equitable access to essential services to promote community cohesion.
C1 [Mombelli, Serena; Miralles-Guasch, Carme; Marquet, Oriol] Autonomous Univ Barcelona, Dept Geog, Bellaterra Campus,Bldg B,Carrer Fortuna S-N, Bellaterra 08193, Barcelona, Spain.
   [Marquet, Oriol] Inst Environm Sci & Technol ICTA UAB, Bldg ICTA ICP,Carrer Columnes S-N,UAB Campus, Cerdanyola Del Valles 08193, Barcelona, Spain.
C3 Autonomous University of Barcelona; Autonomous University of Barcelona
RP Mombelli, S (corresponding author), Autonomous Univ Barcelona, Dept Geog, Bellaterra Campus,Bldg B,Carrer Fortuna S-N, Bellaterra 08193, Barcelona, Spain.
EM serena.mombelli@uab.cat; carme.miralles@uab.cat; oriol.marquet@uab.cat
RI Miralles-Guasch, Carme/M-6156-2015; Marquet, Oriol/M-6159-2015
FU MCIN/AEI [PDC2022 - 133212-I00]; European Union Next GenerationEU/PRTR;
   Social Observatory of the La Caixa Foundation [SR22 - 00147]; Spanish
   State Research Agency (AEI) [PREP2022 - 000946]; Spanish Ministry of
   Science and Innovation [RYC2020 - 029441-I];  [PDC2021 - 120820- I00]
FX This study has been funded by the MOVACTES (PDC2021 - 120820- I00) and
   MOBITOOLS (PDC2022 - 133212-I00) projects, funded by
   MCIN/AEI/10.13039/501100011033 and by the European Union Next
   GenerationEU/PRTR, as well as by the STEPP project: Social Equity in
   Transportation through Proximity Planning (SR22 - 00147) funded by the
   Social Observatory of the La Caixa Foundation. Serena Mombelli has a
   doctoral scholarship awarded by the Spanish State Research Agency (AEI,
   PREP2022 - 000946) and Oriol Marquet receives funding from the Spanish
   Ministry of Science and Innovation through a 'Ramon y Cajal ' contract
   (RYC2020 - 029441-I) .
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NR 117
TC 0
Z9 0
U1 3
U2 3
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD FEB
PY 2025
VL 119
AR 106096
DI 10.1016/j.scs.2024.106096
EA DEC 2024
PG 12
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA U5X4S
UT WOS:001412519100001
OA hybrid
DA 2025-04-22
ER

PT J
AU Litt, G
   Ferraioli, E
   Magni, F
   Lucertini, G
   Musco, F
AF Litt, Giovanni
   Ferraioli, Elena
   Magni, Filippo
   Lucertini, Giulia
   Musco, Francesco
TI Inter-Municipal Methodology for Climate Transition Strategies: The First
   Case in Italy
SO SUSTAINABILITY
LA English
DT Article
DE climate transition; transition strategies; inter-municipal strategies;
   methodological framework; climate-neutral cities; resilient cities;
   local administrations; climate change
ID CITY
AB To build resilient and climate-neutral cities, it is required to modify current territorial planning processes to make them more sustainable and virtuous. However, the implementation of new strategies and innovative governance models faces multiple obstacles, economic restrictions, and technical gaps. In particular, local governments often find it difficult to build structured transition processes. This article investigates how it is possible to respond effectively to the need of urban contexts to adapt to climate impacts, analyzing the case of the Climate Transition Strategy (CTS) "La Brianza Cambia Clima", the first in Italy of this kind. Through the technical framework and the methodology described, the CTS can activate inter-municipal transformative actions through the mainstreaming of planning tools, the construction of a medium-long-term vision, and the identification of concrete and widespread actions to be implemented in the territory. This coordinated and shared strategic approach allows one to give stability, coherence, and continuity to adaptation processes involving different stakeholders and sectors of the Public Administration. Finally, it favors the implementation of multidisciplinary policies for territorial resilience on a large scale.
C1 [Litt, Giovanni; Ferraioli, Elena] Iuav Univ Venice, Dept Architecture & Arts, I-30135 Venice, Italy.
   [Magni, Filippo; Lucertini, Giulia; Musco, Francesco] Iuav Univ Venice, EPiC Earth & Polis Res Ctr, Dept Architecture & Arts, I-30135 Venice, Italy.
C3 IUAV University Venice; IUAV University Venice
RP Ferraioli, E (corresponding author), Iuav Univ Venice, Dept Architecture & Arts, I-30135 Venice, Italy.
EM giovanni.litt@iuav.it; elena.ferraioli@iuav.it; filippo.magni@iuav.it;
   giulia.lucertini@iuav.it; francesco.musco@iuav.it
RI Magni, Filippo/AAL-3262-2021; lucertini, giulia/ABB-4250-2020
OI Musco, Francesco/0000-0002-8377-0128; Litt,
   Giovanni/0000-0003-0837-005X; Magni, Filippo/0000-0002-1399-1080;
   LUCERTINI, GIULIA/0000-0002-5824-6666; Ferraioli,
   Elena/0000-0003-4106-6447
CR Arras F., 2019, LINEE GUIDA IMPLEMEN
   Arras F., 2020, DELIVERABLE AZIONE C
   Bockel L., 2009, MAINSTREAM CLIMATE C
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NR 20
TC 11
Z9 11
U1 1
U2 4
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2022
VL 14
IS 5
AR 2529
DI 10.3390/su14052529
PG 19
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA ZT5PY
UT WOS:000769209100001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU El-Maissi, AM
   Argyroudis, SA
   Kassem, MM
   Nazri, FM
AF El-Maissi, Ahmad Mohamad
   Argyroudis, Sotirios A.
   Kassem, Moustafa Moufid
   Nazri, Fadzli Mohamed
TI Integrated seismic vulnerability assessment of road network in complex
   built environment toward more resilient cities
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Accessibility index; Cities disaster risk reduction; Resilient
   infrastructure; Vulnerability assessment; Critical service centres; UN
   SDG 9; SDG11
ID ACCESSIBILITY; BRIDGES; AREAS
AB The road network is recognized as an important infrastructure system that is playing an essential role in making cities more sustainable and resilient. Hence, it is crucial to increase the safety and resiliency of urban road networks against external shocks such as earthquakes, by ensuring that they function efficiently within the complex-built environment systems in that they reside. Previous research on disaster risk management for road networks focused mainly on the assessment of the physical vulnerability for one criterion, without considering multiple vulnerability criteria of the road infrastructure and its interaction with the built environment. The primary goal of this research is to present an integrated vulnerability assessment approach based on intrinsic and eccentric characteristics of road networks. The proposed method employs two Vulnerability Indexes (VI); the first one assesses the Intrinsic Seismic Vulnerability (ISVI) of the network that considers the direct physical damage of the roadway system, while the second one, is the Eccentric Seismic Vulnerability (ESVI) that is based on the damage of the surrounding damaged buildings surrounding the roads. Subsequently, the correlation between the assessed indexes is utilized to provide a more holistic assessment tool in support of emergency and evacuation plans during earthquake incidents. These indexes are applied to assess the accessibility to emergency critical service centres based on a territorial framework for an urban area. The methodology and case study show the importance of the integrated seismic vulnerability assessment in the resilience of critical city infrastructure, for enhancing emergency access and implementing effective risk mitigation measures.
C1 [El-Maissi, Ahmad Mohamad; Nazri, Fadzli Mohamed] Univ Sains Malaysia, Sch Civil Engn, Engn Campus, Nibong Tebal 14300, Penang, Malaysia.
   [Argyroudis, Sotirios A.] Brunel Univ, Coll Engn Design & Phys Sci, Dept Civil & Environm Engn, London UB8 3PH, England.
   [Kassem, Moustafa Moufid] Univ Sains Malaysia, Sch Civil Engn, Engn Campus, George Town 14300, Malaysia.
C3 Universiti Sains Malaysia; Brunel University; Universiti Sains Malaysia
RP Nazri, FM (corresponding author), Univ Sains Malaysia, Sch Civil Engn, Engn Campus, Nibong Tebal 14300, Penang, Malaysia.
EM cefmn@usm.my
RI Argyroudis, Sotirios/AAE-8935-2021; El Maissi, Ahmad/HMD-7507-2023;
   Mohamed Nazri, Fadzli/J-9158-2019; Kassem, Dr. Moustafa/AAV-2745-2020;
   Mohamed Nazri, Fadzli/A-7697-2012
OI KASSEM, MOUSTAFA/0000-0003-2707-685X; Mohamed Nazri,
   Fadzli/0000-0002-0712-0705; El-Maissi, Ahmad/0000-0001-6606-1461;
   Argyroudis, Sotirios/0000-0002-8131-3038
FU Ministry of Higher Education Malaysia [FRGS/1/2020/TK02/USM/02/1]
FX This research was supported by "Ministry of Higher Education Malaysia
   for Fundamental Research Grant Scheme with Project Code:
   FRGS/1/2020/TK02/USM/02/1.
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NR 53
TC 22
Z9 22
U1 21
U2 81
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD FEB
PY 2023
VL 89
AR 104363
DI 10.1016/j.scs.2022.104363
EA DEC 2022
PG 18
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 7U8ZF
UT WOS:000912414200001
DA 2025-04-22
ER

PT J
AU Choo, M
   Yoon, H
   Yoon, DK
AF Choo, Mijin
   Yoon, Hyewon
   Yoon, D. K.
TI Investigating consistent effects of the urban built environment and
   human mobility on COVID-19 outbreaks: A comprehensive meta-analysis
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE COVID-19; Urban built environment; Density; Meta-analysis
ID DETERMINANTS
AB The COVID-19 pandemic has prompted strategies for mitigating its transmission across various disciplines and raised questions regarding the impact of urban density on spread. To build sustainable cities that protect against the pandemic, it is imperative to assess the impact of urban built environments and human mobility. However, current research on this topic presents mixed and conflicting results and has not confirmed consistent trends or quantified effect sizes. We conducted a meta-analysis of 50 studies to address this issue and determine a consistent trend in the effects of urban built environments on COVID-19 morbidity and mortality. A sensitivity analysis revealed that population density, road density, and human mobility significantly impact COVID-19 outbreaks, whereas other urban density metrics have minimal effects. The findings highlight the greater importance of human gatherings and active movement over static density, such as housing and building density or land use, in infectious disease transmission. These insights provide a comprehensive perspective on enhancing urban resilience to infectious diseases by rethinking urban density and implementing effective measures. Understanding the complex dynamics between urban built environment factors and disease transmission can inform policymakers and urban planners in creating healthier and more resilient cities.
C1 [Choo, Mijin; Yoon, D. K.] Yonsei Univ, Dept Urban Planning & Engn, 50 Yonsei-ro, Seoul 03722, South Korea.
   [Yoon, Hyewon] Texas A&M Univ, Dept Landscape Architecture & Urban Planning, 788 Ross St, College Stn, TX 77840 USA.
C3 Yonsei University; Texas A&M University System; Texas A&M University
   College Station
RP Yoon, DK (corresponding author), Yonsei Univ, Dept Urban Planning & Engn, 50 Yonsei-ro, Seoul 03722, South Korea.
EM dkyoon26@yonsei.ac.kr
RI Choo, Mijin/HHC-4112-2022; Yoon, D.K./KHX-6878-2024
FU National Research Foundation of Korea (NRF) - Korea government (MSIT)
   [2021R1A2C2013282]
FX <BOLD>Acknowledgements</BOLD> This work has supported by the National
   Research Foundation of Korea (NRF) grant funded by the Korea government
   (MSIT) (No. 2021R1A2C2013282) .
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NR 85
TC 6
Z9 6
U1 10
U2 21
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAR
PY 2024
VL 102
AR 105226
DI 10.1016/j.scs.2024.105226
EA JAN 2024
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA JU5B5
UT WOS:001175678000001
DA 2025-04-22
ER

PT J
AU Reynard, D
   Collins, D
   Shirgaokar, M
AF Reynard, Darcy
   Collins, Damian
   Shirgaokar, Manish
TI Growth over resilience: how Canadian municipalities frame the challenge
   of reducing carbon emissions
SO LOCAL ENVIRONMENT
LA English
DT Article
DE Canada; carbon pricing; framing analysis; mobilities; social exclusion;
   urban planning
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C1 [Reynard, Darcy; Collins, Damian] Univ Alberta, Dept Earth & Atmospher Sci, 1-26 Earth Sci Bldg, Edmonton, AB T6G 2E3, Canada.
   [Shirgaokar, Manish] Univ Colorado, Coll Architecture & Planning, Dept Urban & Reg Planning, Denver, CO 80202 USA.
C3 University of Alberta; University of Colorado System; University of
   Colorado Denver
RP Reynard, D (corresponding author), Univ Alberta, Dept Earth & Atmospher Sci, 1-26 Earth Sci Bldg, Edmonton, AB T6G 2E3, Canada.
EM reynard@ualberta.ca
RI Collins, Damian/KFQ-8791-2024
OI Collins, Damian/0000-0002-7981-3586; Shirgaokar,
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PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1354-9839
EI 1469-6711
J9 LOCAL ENVIRON
JI Local Environ.
PD APR 3
PY 2021
VL 26
IS 4
BP 448
EP 460
DI 10.1080/13549839.2021.1892046
EA FEB 2021
PG 13
WC Green & Sustainable Science & Technology; Environmental Studies;
   Geography; Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology;
   Geography; Public Administration; Urban Studies
GA RS4ZK
UT WOS:000621685800001
DA 2025-04-22
ER

PT J
AU Hale, JD
   Pugh, TAM
   Sadler, JP
   Boyko, CT
   Brown, J
   Caputo, S
   Caserio, M
   Coles, R
   Farmani, R
   Hales, C
   Horsey, R
   Hunt, DVL
   Leach, JM
   Rogers, CDF
   MacKenzie, AR
AF Hale, James D.
   Pugh, Thomas A. M.
   Sadler, Jon P.
   Boyko, Christopher T.
   Brown, Julie
   Caputo, Silvio
   Caserio, Maria
   Coles, Richard
   Farmani, Raziyeh
   Hales, Chantal
   Horsey, Russell
   Hunt, Dexter V. L.
   Leach, Joanne M.
   Rogers, Christopher D. F.
   MacKenzie, A. Rob
TI Delivering a Multi-Functional and Resilient Urban Forest
SO SUSTAINABILITY
LA English
DT Article
ID ECOSYSTEM SERVICES; STREET TREES; AIR-QUALITY; POLLUTION MITIGATION;
   COVER CHANGE; IMPACTS; SUSTAINABILITY; CONSERVATION; CHALLENGES;
   DISPERSION
AB Tree planting is widely advocated and applied in urban areas, with large-scale projects underway in cities globally. Numerous potential benefits are used to justify these planting campaigns. However, reports of poor tree survival raise questions about the ability of such projects to deliver on their promises over the long-term. Each potential benefit requires different supporting conditions-relating not only to the type and placement of the tree, but also to the broader urban system within which it is embedded. This set of supporting conditions may not always be mutually compatible and may not persist for the lifetime of the tree. Here, we demonstrate a systems-based approach that makes these dependencies, synergies, and tensions more explicit, allowing them to be used to test the decadal-scale resilience of urban street trees. Our analysis highlights social, environmental, and economic assumptions that are implicit within planting projects; notably that high levels of maintenance and public support for urban street trees will persist throughout their natural lifespan, and that the surrounding built form will remain largely unchanged. Whilst the vulnerability of each benefit may be highly context specific, we identify approaches that address some typical weaknesses, making a functional, resilient, urban forest more attainable.
C1 [Hale, James D.; Sadler, Jon P.; MacKenzie, A. Rob] Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham B15 2TT, W Midlands, England.
   [Hale, James D.; Sadler, Jon P.; MacKenzie, A. Rob] Univ Birmingham, Birmingham Inst Forest Res, Birmingham B15 2TT, W Midlands, England.
   [Pugh, Thomas A. M.] Karlsruhe Inst Technol, Inst Meteorol & Climate Res, Atmospher Environm Res, D-82467 Garmisch Partenkirchen, Germany.
   [Boyko, Christopher T.] Univ Lancaster, Lancaster Inst Contemporary Arts, ImaginationLancaster, Lancaster LA1 4YW, England.
   [Brown, Julie] Southampton Solent Univ, Fac Creat Ind, Southampton SO14 0YN, Hants, England.
   [Caputo, Silvio] Coventry Univ, Dept Civil Engn Architecture & Bldg, Coventry CV1 5FB, W Midlands, England.
   [Caserio, Maria; Coles, Richard] Birmingham City Univ, Fac Arts Design & Media, Birmingham B4 7BD, W Midlands, England.
   [Farmani, Raziyeh] Univ Exeter, Coll Engn Math & Phys Sci, Exeter EX4 4QF, Devon, England.
   [Hales, Chantal] London Sch Commerce, London SE1 1NX, England.
   [Horsey, Russell] Inst Chartered Foresters, Bristol BS2 8PE, Avon, England.
   [Hunt, Dexter V. L.; Leach, Joanne M.; Rogers, Christopher D. F.] Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, W Midlands, England.
C3 University of Birmingham; University of Birmingham; Helmholtz
   Association; Karlsruhe Institute of Technology; Lancaster University;
   Solent University; Coventry University; Birmingham City University;
   University of Exeter; University of Birmingham
RP Hale, JD (corresponding author), Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham B15 2TT, W Midlands, England.
EM j.hale@bham.ac.uk; thomas.pugh@kit.edu; j.p.sadler@bham.ac.uk;
   c.boyko@lancaster.ac.uk; j.brown@leeds.ac.uk;
   silvio.caputo@coventry.ac.uk; maria.caserio@bcu.ac.uk;
   richard.coles@bcu.ac.uk; r.farmani@exeter.ac.uk;
   chantal.hales@lsclondon.co.uk; russell.horsey@charteredforesters.org;
   d.hunt@bham.ac.uk; j.leach@bham.ac.uk; c.d.f.rogers@bham.ac.uk;
   a.r.mackenzie@bham.ac.uk
RI Rogers, Christopher/AAE-2395-2020; Leach, Joanne/H-5304-2019; MacKenzie,
   Angus/ISS-0362-2023; Pugh, Thomas/A-3790-2010; MacKenzie, Angus
   Robert/B-1704-2009; Farmani, Raziyeh/D-3457-2012
OI Rogers, Christopher/0000-0002-1693-1999; Boyko, Christopher
   Thomas/0000-0001-5642-5911; Pugh, Thomas/0000-0002-6242-7371; Caserio,
   Maria/0009-0004-4446-8630; Hale, James/0000-0001-9662-1853; MacKenzie,
   Angus Robert/0000-0002-8227-742X; Sadler, Jonathan
   P./0000-0003-0443-4458; Farmani, Raziyeh/0000-0001-8148-0488; Leach,
   Joanne/0000-0001-7526-624X
FU UK Engineering and Physical Sciences Research Council [EP/F007426/1,
   EP/J017698/1]; EPSRC [EP/J017698/1, EP/E021956/1, EP/F007426/1] Funding
   Source: UKRI
FX The authors would like to thank the broader Urban Futures research team
   for their development of the "Designing Resilient Cities" methodology
   and associated tools. We are grateful for early contributions to the
   development and testing of this methodology from the Royal Institute of
   British Architects, the Building Research Establishment and Lancaster
   City Council via Urban Futures workshops. We also thank the anonymous
   reviewers for their useful comments. This work was supported by the UK
   Engineering and Physical Sciences Research Council through the Urban
   Futures project and Liveable Cities programme (grants EP/F007426/1 and
   EP/J017698/1) and was subsequently developed as paper number 3 from the
   Birmingham Institute of Forest Research.
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NR 84
TC 23
Z9 27
U1 4
U2 59
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
SN 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2015
VL 7
IS 4
BP 4600
EP 4624
DI 10.3390/su7044600
PG 25
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA CH0MV
UT WOS:000353715400058
OA Green Accepted, Green Submitted, Green Published, gold
DA 2025-04-22
ER

PT J
AU Arosio, M
   Cesarini, L
   Martina, MLV
AF Arosio, Marcello
   Cesarini, Luigi
   Martina, Mario L. V.
TI Assessment of the Disaster Resilience of Complex Systems: The Case of
   the Flood Resilience of a Densely Populated City
SO WATER
LA English
DT Article
DE resilience; disaster; urban; pluvial flood; river flood; graph theory;
   systemic risk; complex system
ID COMMUNITY RESILIENCE; INFRASTRUCTURE; RISK; FRAMEWORK; FAILURES; CASCADE
AB In the last decades, resilience became officially the worldwide cornerstone to reduce the risk of disasters and improve preparedness, response, and recovery capacities. Although the concept of resilience is now clear, it is still under debate how to model and quantify it. The aim of this work was to quantify the resilience of a complex system, such as a densely populated and urbanized area, by modelling it with a graph, the mathematical representation of the system element and connections. We showed that the graph can account for the resilience characteristics included in its definition according to the United Nations General Assembly, considering two significant aspects of this definition in particular: (1) resilience is a property of a system and not of single entities and (2) resilience is a property of the system dynamic response. We proposed to represent the exposed elements of the system and their connections (i.e., the services they exchange) with a weighted and redundant graph. By mean of it, we assessed the systemic properties, such as authority and hub values and highlighted the centrality of some elements. Furthermore, we showed that after an external perturbation, such as a hazardous event, each element can dynamically adapt, and a new graph configuration is set up, taking advantage of the redundancy of the connections and the capacity of each element to supply lost services. Finally, we proposed a quantitative metric for resilience as the actual reduction of the impacts of events at different return periods when resilient properties of the system are activated. To illustrate step by step the proposed methodology and show its practical feasibility, we applied it to a pilot study: the city of Monza, a densely populated urban environment exposed to river and pluvial floods.
C1 [Arosio, Marcello; Cesarini, Luigi; Martina, Mario L. V.] Scuola Univ Super IUSS Pavia, Dept Sci Technol & Soc, I-27100 Pavia, Italy.
C3 IUSS PAVIA
RP Arosio, M (corresponding author), Scuola Univ Super IUSS Pavia, Dept Sci Technol & Soc, I-27100 Pavia, Italy.
EM marcello.arosio@iusspavia.it; luigi.cesarini@iusspavia.it;
   mario.martina@iusspavia.it
RI Martina, Mario/ABH-4600-2020; Cesarini, Luigi/ABG-1811-2021; Arosio,
   Marcello/ISV-0245-2023
OI AROSIO, Marcello/0000-0002-4845-8905; Martina, Mario Lloyd
   Virgilio/0000-0001-6283-2732; Cesarini, Luigi/0000-0001-7525-9613
FU Fondazione Cariplo [2017-0724]
FX This research was funded by Fondazione Cariplo [reference number
   2017-0724].
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NR 55
TC 8
Z9 8
U1 3
U2 59
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD OCT
PY 2021
VL 13
IS 20
AR 2830
DI 10.3390/w13202830
PG 20
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA XJ6KW
UT WOS:000726895300001
OA gold
DA 2025-04-22
ER

PT J
AU Aalto, HE
   Marcus, L
   Torsvall, J
AF Aalto, Hanna Erixon
   Marcus, Lars
   Torsvall, Jonas
TI Towards a Social-Ecological Urbanism: Co-Producing Knowledge through
   Design in the Albano Resilient Campus Project in Stockholm
SO SUSTAINABILITY
LA English
DT Article
DE social-ecological urbanism; design theory; resilience; ecosystem
   services; transdisciplinary; prototyping and co-design
ID OPERATING SPACE; SYSTEMS; BIODIVERSITY; MANAGEMENT; CITIES; VALUES; PARK
AB If we are to promote urban sustainability and resilience, social-ecological knowledge must be better integrated in urban planning and design projects. Due to gaps in the two cultures of thinking that are associated with the disciplines of ecology and design, such integration has, however, proven to be challenging. In mainstream practice, ecologists often act as sub-consultants; they are seldom engaged in the creative and conceptual phases of the process. Conversely, research aiming to bridge the gap between design and ecology has tended to be dominated by a relatively static and linear outlook on what the design process is, and what it could be. Further, few concrete examples of the co-production of ecological and design knowledge exist. In this paper, we give an account of a transdisciplinary design proposal for Albano Resilient Campus in Stockholm, discussing how design-seen as a process and an assemblage of artifacts-can act as a framework for co-producing knowledge and operationalizing concepts of resilience and ecosystem services. Through a design-based and action-oriented approach, we discuss how such a collaborative design process may integrate ecological knowledge into urban design through three concrete practices: (a) iterative prototyping; (b) generative matrix models; and, (c) legible, open-ended, comprehensive narratives. In the conclusion, we sketch the contours of a social-ecological urbanism, speculating on possible broader and changed roles for ecologists, designers, and the associated actors within this framework.
C1 [Aalto, Hanna Erixon] Royal Inst Technol, KTH, Sch Architecture & Built Environm, S-10044 Stockholm, Sweden.
   [Marcus, Lars] Chalmers Univ Technol, Architecture & Civil Engn, S-41258 Gothenburg, Sweden.
   [Torsvall, Jonas] 2BK Arkitekter, S-11848 Stockholm, Sweden.
C3 Royal Institute of Technology; Chalmers University of Technology
RP Aalto, HE (corresponding author), Royal Inst Technol, KTH, Sch Architecture & Built Environm, S-10044 Stockholm, Sweden.
EM hanna.erixon@arch.kth.se; lars.marcus@chalmers.se;
   jonas.torsvall@2bka.se
FU Stiftelsen Olle Engkvist Byggmastare
FX First of all we would like to thank our fellow colleagues in the
   PatchWork group with whom we jointly developed the ARC proposal for
   their invaluable input on this article: Stephan Barthel; Henrik
   Ernstson; and Johan Colding (who were all based at the Stockholm
   Resilience Centre when we began working together); Sara Grahn from KTH;
   and Carl Karsten and Matts Ingman from KIT. Secondly we want to extend a
   warm thank you to all the workshop participants for lending us their
   time, in particular the organizations gathered under the umbrella
   organization "Association of the Ecopark" as well as Stefan Lundberg at
   the Natural Museum of History; Stockholm University; and Akademiska Hus.
   We are also grateful to Ulrika Karlsson and Marcelyn Gow from SERVO.
   Finally, the first author would like to thank Stiftelsen Olle Engkvist
   Byggmastare for providing funding to finalize this study.
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NR 102
TC 14
Z9 16
U1 2
U2 74
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2018
VL 10
IS 3
AR 717
DI 10.3390/su10030717
PG 25
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA GA8DA
UT WOS:000428567100144
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Song, JL
   Huang, B
   Li, RR
AF Song, Jinglu
   Huang, Bo
   Li, Rongrong
TI Measuring Recovery to Build up Metrics of Flood Resilience Based on
   Pollutant Discharge Data: A Case Study in East China
SO WATER
LA English
DT Article
DE recovery capability; disaster resilience; resilience measurement;
   pollutant discharge data; East China
ID COMMUNITY-RESILIENCE; DISASTER RESILIENCE; SOCIAL VULNERABILITY;
   HURRICANE KATRINA; FRAMEWORK; INDICATORS; HAZARDS; BASIN
AB Building "disaster-resilient" rather than "disaster-resistant" cities/communities requires the development of response capabilities to natural disasters and subsequent recovery. This study devises a new method to measure resilience via recovery capability to validate indicators from social, economic, infrastructural, and environmental domains. The pollutant discharge data (waste-water and waste-gas discharge/emission data) of local power plants, sewage treatment plants and main factories were used to monitor recovery process of both people's living and local industrial production as the waste water/gas is released irregularly during the short disaster-hit period. A time series analysis of such data was employed to detect the disturbance on these infrastructures from disasters and to assess community recovery capability. A recent record-breaking flash flood in Changzhou, a city in eastern-central China, was selected as a case study. We used ordinal logistic regression to identify leading proxies of flood resilience. A combination of six variables related to socioeconomic factors, infrastructure development and the environment, stood out and explained 61.4% of the variance in measured recovery capability. These findings substantiate the possibility of using recovery measurement based on pollutant discharge to validate resilience metrics, and contribute more solid evidences for policy-makers and urban planners to make corresponding measures for resilience enhancement.
C1 [Song, Jinglu; Huang, Bo] Chinese Univ Hong Kong, Dept Geog & Resource Management, Shatin, Hong Kong, Peoples R China.
   [Huang, Bo; Li, Rongrong] Chinese Univ Hong Kong, Inst Space & Earth Informat Sci, Shatin, Hong Kong, Peoples R China.
   [Huang, Bo] Chinese Univ Hong Kong, Shenzhen Res Inst, Shenzhen 518057, Peoples R China.
C3 Chinese University of Hong Kong; Chinese University of Hong Kong; The
   Chinese University of Hong Kong, Shenzhen; CUHK Shenzhen Research
   Institute
RP Huang, B (corresponding author), Chinese Univ Hong Kong, Dept Geog & Resource Management, Shatin, Hong Kong, Peoples R China.; Huang, B (corresponding author), Chinese Univ Hong Kong, Inst Space & Earth Informat Sci, Shatin, Hong Kong, Peoples R China.; Huang, B (corresponding author), Chinese Univ Hong Kong, Shenzhen Res Inst, Shenzhen 518057, Peoples R China.
EM jinglusong@link.cuhk.edu.hk; bohuang@cuhk.edu.hk; rongrongli@cuhk.edu.hk
RI Huang, Bo/LIC-1378-2024; Huang, Bo/H-9874-2014; Song,
   Jinglu/AGZ-8138-2022
OI Huang, Bo/0000-0002-5063-3522; Song, Jinglu/0000-0002-5220-6364
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NR 60
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U1 6
U2 70
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD AUG
PY 2017
VL 9
IS 8
AR 619
DI 10.3390/w9080619
PG 20
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA FF2LP
UT WOS:000408729200063
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Orozco-Messana, J
   Lopez-Mateu, V
   Pellicer, TM
AF Orozco-Messana, Javier
   Lopez-Mateu, Vicente
   Pellicer, Teresa M.
TI City Regeneration through Modular Phase Change Materials (PCM) Envelopes
   for Climate Neutral Buildings
SO SUSTAINABILITY
LA English
DT Article
DE neighbourhood sustainability; PCM; Passive Haus; NBS; sustainability
   assessment
ID SUSTAINABILITY; PERFORMANCE
AB Climate change is driving urban development policies for nearly all cities, which are responsible for over 40% carbon emissions in the world. UN SDG 11 ("Make cities and human settlements inclusive, safe, resilient and sustainable") defines critical indicators focused on carbon footprint reduction through green policies and city heritage preservation. Urban regeneration should ensure climate comfort for citizens while enhancing legacy urban resilience. New solutions for urban regeneration such as Phase Change Materials (PCMs) provide inexpensive energy adaption solutions by reducing peak thermal loads, and their market share is growing yearly by 16% (OECD market trends). However, these materials must be integrated into recyclable flexible building elements to ensure tailored responses to different seasons and climates. Modular PCM elements working together with Passive Haus techniques have demonstrated their flexibility. This paper presents a new, efficient, and sustainable modular solution for PCM-based building envelope regeneration projects implemented jointly with Passive Haus strategies and Nature-Based Solutions (NBS) at street level. The efficiency of the proposed strategy is demonstrated though a simplified Digital Twin of the Benicalap neighbourhood in Valencia, Spain. The model simulates the climate evolution at the neighbourhood level, and can be used in any urban background to obtain a new carbon footprint which is then used as the main criterion for joint impact assessment of the proposed modular PCM-based building envelopes.
C1 [Orozco-Messana, Javier] Univ Politecn Valencia, Inst Mat Technol ITM, Camino Vera S-N, Valencia 46022, Spain.
   [Lopez-Mateu, Vicente] Univ Politecn Valencia, Dept Construcc Arquitecton, Valencia 46022, Spain.
   [Pellicer, Teresa M.] Univ Politecn Valencia, Dept Ingn Construcc, Valencia 46022, Spain.
C3 Universitat Politecnica de Valencia; Universitat Politecnica de
   Valencia; Universitat Politecnica de Valencia
RP Orozco-Messana, J (corresponding author), Univ Politecn Valencia, Inst Mat Technol ITM, Camino Vera S-N, Valencia 46022, Spain.
EM jaormes@cst.upv.es; viloma@upv.es; tpa@upv.es
RI Pellicer, Teresa/C-8474-2016; Orozco-Messana, Javier/B-3737-2016
OI Lopez-Mateu, Vicente/0000-0001-6983-8977; Orozco-Messana,
   Javier/0000-0001-8611-8816
FU European Commission [730283]; H2020 Societal Challenges Programme
   [730283] Funding Source: H2020 Societal Challenges Programme
FX This research was co-funded by the European Commission through the H2020
   project "Green Cities for Climate and Water Resilience, Sustainable
   Economic Growth, Healthy Citizens and Environments (GROW GREEN)" Grant
   Agreement: 730283.
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NR 34
TC 6
Z9 6
U1 8
U2 39
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2022
VL 14
IS 14
AR 8902
DI 10.3390/su14148902
PG 12
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 3G5CI
UT WOS:000831372100001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Wang, CL
   Shen, JF
AF Wang, Chenglong
   Shen, Jianfa
TI Towards a socially resilient city: Healthcare accessibility and rural
   migrants' identity integration in urban China
SO APPLIED GEOGRAPHY
LA English
DT Article
DE Healthcare accessibility; Identity integration; Social resilience; Rural
   migrants; China
ID ETHNIC IDENTIFICATION; IMMIGRANTS; ACCULTURATION; DETERMINANTS;
   MIGRATION; OUTCOMES; WORKERS
AB Aligned with the Sustainable Development Goals' emphasis on mitigating inequalities and fostering inclusive human settlements, China initiated the New-Type Urbanization (NTU) plan to reduce disparities in public service access for rural migrants, with healthcare accessibility being a primary focus. This study pioneers the exploration of the relationship between the temporal distance to healthcare services and rural migrants' identity integration through the lens of social resilience. Theoretically, we posit that economic, perceived, and institutional supports shape this relationship, highlighting the mediating role of urban contexts. Empirically, our analysis utilizes survey data from 94,221 rural migrants across 172 prefecture-level cities, employing a multilevel logistic regression model. The findings indicate that neoclassical and structural perspectives provide limited explanatory power for the relationship between healthcare accessibility and rural migrants' identity integration at the city level. Our analysis revealed that enhanced healthcare access significantly strengthens identity integration, particularly in cities with limited medical resources or challenging living conditions, such as severe air pollution and inadequate green spaces. These results underscore the critical role of perceived support and partially affirm the significance of institutional support. We propose optimizing spatial healthcare planning as a strategic solution to address medical staff shortages and enhance healthcare accessibility.
C1 [Wang, Chenglong] Nanjing Univ, Sch Geog & Ocean Sci, Nanjing, Peoples R China.
   [Shen, Jianfa] Chinese Univ Hong Kong, Dept Geog & Resource Management, Hong Kong, Peoples R China.
C3 Nanjing University; Chinese University of Hong Kong
RP Wang, CL (corresponding author), Nanjing Univ, Sch Geog & Ocean Sci, Nanjing, Peoples R China.
EM wangcl@nju.edu.cn
RI Wang, Chenglong/KLC-2930-2024
FU National Natural Science Foundation of China [42471233]; RGC Senior
   Research Fellow Award [2020/21]; Research Grant Council, Hong Kong SAR,
   China [SRFS2021-4H02]
FX This work was supported by the National Natural Science Foundation of
   China (No. 42471233) , the RGC Senior Research Fellow Award 2020/21,
   Research Grant Council, Hong Kong SAR, China (Grant number
   SRFS2021-4H02) .
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NR 72
TC 0
Z9 0
U1 6
U2 6
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0143-6228
EI 1873-7730
J9 APPL GEOGR
JI Appl. Geogr.
PD MAR
PY 2025
VL 176
AR 103542
DI 10.1016/j.apgeog.2025.103542
EA JAN 2025
PG 11
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA W8E0R
UT WOS:001420826200001
DA 2025-04-22
ER

PT J
AU Lian, MY
   Zhang, XX
   Zhou, JJ
   Wang, ZJ
   Wang, H
AF Lian, Mengyuan
   Zhang, Xiaoxin
   Zhou, Jinjun
   Wang, Zijian
   Wang, Hao
TI Resilience Assessment Method of Urban Flooding Prevention and Control
   System (FPC) Based on Attribute Resilience (AR) and Functional
   Resilience (FR)
SO WATER
LA English
DT Article
DE urban flooding; flooding prevention and control system; resilient
   cities; spatial autocorrelation analysis
ID DRAINAGE
AB Under the context of global climate change, floods are one of the major challenges facing urban development. Based on resilience theory, this study proposed an evaluation method to accurately assess the resilience of urban flooding prevention and control systems (FPCs), integrating both attribute resilience (AR) and functional resilience (FR). First, the method organized FPC attributes from the perspective of the waterlogging generation and elimination processes using foundational data from the study area, and it established a resilience indicator system. The Entropy Weight Method (EWM) was applied to calculate indicator weights, and the Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) was used to calculate indicator values, ultimately deriving the attribute resilience (AR). Subsequently, functional performance during actual operations was evaluated using scenario simulation based on hydrodynamic model results, and the FR was determined. Finally, spatial correlation analysis of the AR and FR was conducted to identify areas with weak resilience. This study developed an evaluation method that considers both system attributes and functional performance using the central urban area of Beijing as a case study to assess flood resilience. The results indicated that the most influential factors affecting the AR of the FPC are the green space percentage (GSP), average slope, and drainage capacity (DC), with their weights calculated as 0.17, 0.137, and 0.205, respectively. Among resistance, absorption, and recovery, absorption had the greatest influence, with a weight of 0.447. The Moran's I indices for the AR and FR were 0.66 and 0.49, respectively, indicating spatial clustering, although the clustering locations differed. There was spatial correlation between the AR and FR, enabling more precise identification of areas with high and low flood resilience. However, the trends of the AR and FR were not entirely consistent across different types of sub-districts due to differences in evaluation methods and the influence of various indicators.
C1 [Lian, Mengyuan; Zhou, Jinjun; Wang, Zijian; Wang, Hao] Beijing Univ Technol, Coll Architecture & Civil Engn, 100 Pingleyuan, Beijing 100124, Peoples R China.
   [Zhang, Xiaoxin] Beijing Municipal Inst City Planning & Design, Beijing 100045, Peoples R China.
C3 Beijing University of Technology
RP Wang, H (corresponding author), Beijing Univ Technol, Coll Architecture & Civil Engn, 100 Pingleyuan, Beijing 100124, Peoples R China.
EM lianmengyuan@emails.bjut.edu.cn; zhangxiaoxin@bjghy.com;
   zhoujj@bjut.edu.cn; accamonster@163.com; wanghao87@bjut.edu.cn
FU Beijing Natural Science Foundation; Major Science and Technology
   Innovation Pilot Project for Water Resources Protection and
   Integrated-Saving Utilization in the Yellow River Basin of Inner
   Mongolia Autonomous Region [2023JBGS0007]; National Natural Science
   Foundation of China General Project [2023JBGS0007, 72373011];  [8242003]
FX This research was funded by the Beijing Natural Science Foundation,
   grant number: 8242003, the Major Science and Technology Innovation Pilot
   Project for Water Resources Protection and Integrated-Saving Utilization
   in the Yellow River Basin of Inner Mongolia Autonomous Region, grant
   number: 2023JBGS0007, and the National Natural Science Foundation of
   China General Project, grant number: 72373011. And The APC was funded by
   2023JBGS0007.
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NR 36
TC 0
Z9 0
U1 0
U2 0
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD MAR 26
PY 2025
VL 17
IS 7
AR 964
DI 10.3390/w17070964
PG 23
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA 1FD9M
UT WOS:001463567400001
OA gold
DA 2025-04-22
ER

PT J
AU Jamshed, A
   Patel, C
   Puriya, A
   Iqbal, N
   Rana, IA
   Mcmillan, JM
   Pandey, R
   Altaf, S
   Mehmood, RT
   bin Saad, U
AF Jamshed, Ali
   Patel, Chirag
   Puriya, Anshul
   Iqbal, Nimra
   Rana, Irfan Ahmad
   Mcmillan, Joanna M.
   Pandey, Rajiv
   Altaf, Shahbaz
   Mehmood, Rana Tahir
   bin Saad, Umair
TI Flood resilience assessment from the perspective of urban (in)formality
   in Surat, India: Implications for sustainable development
SO NATURAL HAZARDS
LA English
DT Article
DE Sustainability; Resilience building; Indicators; Disaster risk
   reduction; Climate change adaptation; Informality
ID COMMUNITY RESILIENCE; INFORMAL SETTLEMENTS; DISASTER RESILIENCE;
   BUILDING RESILIENCE; KHYBER PAKHTUNKHWA; RISK-ASSESSMENT; VULNERABILITY;
   HAZARDS; DHAKA; GOVERNANCE
AB Urbanization has resulted in increasing the pace of informality, specifically in developing countries like India. Informality is taking place at locations that are exposed to various hazards, and therefore, resilience building of both informal and formal settlements is needed to achieve sustainable development. Resilience assessment is key in defining appropriate area-specific resilience measures. Given that, this research assesses the resilience of formal and informal settlements of Surat city in India and presents implications for sustainable development. To assess resilience, an indicator-based approach was taken, using a household survey to collect the data. Analysis suggests that the resilience of formal and informal settlements is significantly different. Key differences were found in physical and institutional resilience, where informal settlements were found to be significantly less resilient than formal settlements. Several measures, such as gender-sensitive education and livelihood programs, as well as mobile water and sanitation, have positive implications for sustainable development. Overall, the study can guide disaster managers and policy makers to adopt a strategic and more targeted approach to strengthen resilience and achieve sustainable development.
C1 [Jamshed, Ali] Univ Stuttgart, Inst Spatial & Reg Planning IREUS, Pfaffenwalding 7, D-70569 Stuttgart, Germany.
   [Patel, Chirag] Univ Stuttgart, Infrastruct Planning, Pfaffenwalding 7, D-70569 Stuttgart, Germany.
   [Puriya, Anshul] Atal Bihari Vajpayee Inst Good Governance & Policy, Bhopal, India.
   [Iqbal, Nimra] Univ Stuttgart, Inst Spatial & Reg Planning IREUS, Pfaffenwalding 7, D-70569 Stuttgart, Germany.
   [Rana, Irfan Ahmad] Natl Univ Sci & Technol NUST, Dept Urban & Reg Planning, Islamabad, Pakistan.
   [Rana, Irfan Ahmad] Univ Nevada, Dept Civil & Environm Engn, Reno, NV 89503 USA.
   [Mcmillan, Joanna M.] Univ Stuttgart, Inst Spatial & Reg Planning IREUS, Pfaffenwalding 7, D-70569 Stuttgart, Germany.
   [Pandey, Rajiv] Indian Council Forestry Res & Educ ICFRE, Dehra Dun, India.
   [Altaf, Shahbaz] Natl Univ Sci & Technol NUST, Dept Urban & Reg Planning, Islamabad, Pakistan.
   [Mehmood, Rana Tahir] Univ Technol Malaysia, Fac Built Environm, Urban & Reg Planning Dept, Johor Baharu, Malaysia.
   [bin Saad, Umair] Lahore Dev Author, Lahore, Pakistan.
C3 University of Stuttgart; University of Stuttgart; University of
   Stuttgart; National University of Sciences & Technology - Pakistan;
   Nevada System of Higher Education (NSHE); University of Nevada Reno;
   University of Stuttgart; Indian Council of Forestry Research & Education
   (ICFRE); National University of Sciences & Technology - Pakistan;
   Universiti Teknologi Malaysia
RP Jamshed, A (corresponding author), Univ Stuttgart, Inst Spatial & Reg Planning IREUS, Pfaffenwalding 7, D-70569 Stuttgart, Germany.
EM ali.jamshed@ireus.uni-stuttgart.de; chirag.patel3141@gmail.com;
   apuriya@ar.iitr.ac.in; nimra.iqbal@ireus.uni-stuttgart.de;
   irfanrana90@hotmail.com; joanna.mcmillan@ireus.uni-stuttgart.de;
   rajivfri@yahoo.com; saltaf@nit.nust.edu.pk;
   tahirmehmood@graduate.utm.my; umairbinsaad54@gmail.com
RI Rana, Irfan Ahmad/C-2560-2017; Altaf, Shahbaz/GSE-3596-2022; Jamshed,
   Ali/AAF-6809-2020; PURIYA, ANSHUL/CAJ-3019-2022; Mehmood, Rana
   Tahir/LEH-6637-2024
OI Puriya, Anshul/0000-0002-6800-0512; Altaf, Shahbaz/0000-0001-7846-4129
FU We would like to thank the participants of the household survey for
   their cooperation and time. We are also grateful to the SMC staff for
   providing us with the relevant information for this study.
FX We would like to thank the participants of the household survey for
   their cooperation and time. We are also grateful to the SMC staff for
   providing us with the relevant information for this study.
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NR 139
TC 4
Z9 4
U1 13
U2 37
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD AUG
PY 2024
VL 120
IS 10
SI SI
BP 9297
EP 9326
DI 10.1007/s11069-023-06267-5
EA OCT 2023
PG 30
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA A9R8O
UT WOS:001090735500002
OA hybrid
DA 2025-04-22
ER

PT J
AU Alda-Vidal, C
   Browne, AL
   Lawhon, M
   Iossifova, D
AF Alda-Vidal, Cecilia
   Browne, Alison L.
   Lawhon, Mary
   Iossifova, Deljana
TI Sanitation configurations in Lilongwe: Everyday experiences on and off
   the grid
SO URBAN STUDIES
LA English
DT Article
DE everyday practices; heterogeneous infrastructure configurations;
   infrastructure; resilience; sanitation; urban political ecology
ID DAR-ES-SALAAM; POLITICAL ECOLOGY; DRINKING-WATER; URBAN; RESILIENCE;
   INFRASTRUCTURE; COPRODUCTION; INEQUALITIES; INSECURITY; THINKING
AB Scholars have called for increased attention to the practices through which residents of southern cities create and use infrastructure. The failures and disruptions of many particular artefacts have meant that people often develop multiple ways to access water, electricity, or transportation, even if all of them have limitations. For sanitation, thinking through heterogeneous infrastructure configurations can help us to see connections between toilets, and the reasons for maintaining access to different types of toilets, given their different risks and benefits. In this paper, we focus on plots in Lilongwe with both indoor flush-toilets and backyard latrines, and the lived experiences of people as they navigate choices about the use of these toilets. The presence of on and off-grid toilets is rooted in colonial urban form, yet is perpetuated - and proliferates in new places - as residents face a number of constraints, including most recently recurrent water shortages due to droughts. We consider both how this configuration challenges official imaginaries of urban sanitation, and how it helps residents to address different risks and sanitation needs. Drawing on the experience of Lilongwe, we reflect on what can be learnt from this heterogeneous infrastructural configuration in terms of planning for more resilient water and sanitation services in Global South cities and beyond.
C1 [Alda-Vidal, Cecilia; Browne, Alison L.; Iossifova, Deljana] Univ Manchester, Manchester, England.
   [Lawhon, Mary] Univ Edinburgh, Edinburgh, Scotland.
   [Lawhon, Mary] Univ Cologne, Cologne, Germany.
   [Alda-Vidal, Cecilia] Univ Manchester, Human Geog, Arthur Lewis Bldg,Oxford Rd, Manchester M13 9PL, Greater Manches, England.
C3 University of Manchester; University of Edinburgh; University of
   Cologne; University of Manchester
RP Alda-Vidal, C (corresponding author), Univ Manchester, Human Geog, Arthur Lewis Bldg,Oxford Rd, Manchester M13 9PL, Greater Manches, England.
EM cecilia.aldavidal@manchester.ac.uk
RI Iossifova, Deljana/W-8409-2019; Alda-Vidal, Cecilia/JZC-7799-2024
OI Lawhon, Mary/0000-0003-4850-1560; Browne, Alison L/0000-0002-1048-6724;
   Iossifova, Deljana/0000-0003-0477-1462; Alda-Vidal,
   Cecilia/0000-0001-5128-0012
FU riksbankens jubileumsfond [P19-0286:1]; Sustainable Consumption
   Institute at the University of Manchester - Riksbankens Jubileumsfond
FX We thank participants in the study for their willingness to share their
   time and personal experiences. We are thankful to our field assistants
   Mr Charles Mkula, Ms Emmie Ngosi and Ms Diana Nkomba. This study is part
   of the PhD project of the first author, funded by the Sustainable
   Consumption Institute at the University of Manchester (PhD Studentship)
   and supervised by Dr Alison Browne (main supervisor) and Dr Deljana
   Iossifova (co-supervisor). The paper was further developed and refined
   through in a postdoc mentorship with Dr Mary Lawhon funded by The
   Riksbankens Jubileumsfond (RJ) for work conducted under the project
   'Examining nature society relations through urban infrastructure'
   (project number P19-0286:1) https://www.kth.se/nature. Cecilia would
   like to thank her PhD examiners Saska Petrova and Antje Bruns for their
   deep engagement with, and insightful feedback on her thesis and this
   manuscript.
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TC 4
Z9 4
U1 1
U2 3
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD JUL
PY 2024
VL 61
IS 9
BP 1773
EP 1788
DI 10.1177/00420980231217661
EA JAN 2024
PG 16
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA ZJ9S4
UT WOS:001146938800001
OA hybrid
DA 2025-04-22
ER

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AU Liu, Z
   Liu, TT
AF Liu, Zhe
   Liu, Tongtong
TI Temporal and spatial evolution and network analysis of urban ecological
   resilience considering natural influences
SO JOURNAL OF INDUSTRIAL ECOLOGY
LA English
DT Article; Early Access
DE industrial ecology; social network analysis; spatio-temporal variation;
   urban ecological resilience; urban ecosystem; urban environment
ID OPPORTUNITIES; CITIES
AB The urbanization process in China has to deal with numerous unique challenges, such as rapid urbanization, significant regional disparities, high natural resource consumption, severe environmental pollution, and difficulties in unified governance, all of which exacerbate the vulnerability of China's urban ecosystems. In order to investigate the urban ecological resilience (UER) in China, this study integrates natural factors into the ecological resilience assessment framework to evaluate UER in China. Using social network analysis based on a modified gravity model, the network structure characteristics of UER in China was assessed and the formation mechanism of spatial association networks was further explored, aiming to identify ecological vulnerabilities and resilient areas. The results indicate: (1) UER shows distinct regional differentiation, with a spatial distribution pattern exhibiting a gradient of decreasing values from east to west. In particular, economically developed areas in the eastern coastal regions show significant "radiation effects" in spatial associations, playing a "central" role in improving the overall UER of the region. (2) The overall network of UER is complex, but the network density is relatively low. The inter-regional connections and collaborative efforts in enhancing UER need to be strengthened. (3) Economic development level, innovation capacity, industrial structure, and geographical distance disparities in energy consumption significantly influenced the formation of spatial connections in UER across the nation. This study demonstrates the importance of strengthening inter-regional coordination and cooperation to enhance UER, providing empirical insights for the achievement of global sustainable development goals.
C1 [Liu, Zhe; Liu, Tongtong] Xi An Jiao Tong Univ, Inst Populat & Dev Studies, Res Ctr Resource & Environm Management, Sch Publ Policy & Adm, Xian, Shaanxi, Peoples R China.
C3 Xi'an Jiaotong University
RP Liu, Z (corresponding author), Xi An Jiao Tong Univ, Inst Populat & Dev Studies, Res Ctr Resource & Environm Management, Sch Publ Policy & Adm, Xian, Shaanxi, Peoples R China.
EM zhe.liu@dal.ca
RI Liu, Tongtong/MVX-4658-2025
FU Youth Talent Fund from Xi'an Jiaotong University, China;  [GG6J006]
FX This study was supported by Youth Talent Fund from Xi'an Jiaotong
   University, China (GG6J006).
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TC 0
Z9 0
U1 0
U2 0
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1088-1980
EI 1530-9290
J9 J IND ECOL
JI J. Ind. Ecol.
PD 2025 APR 7
PY 2025
DI 10.1111/jiec.70025
EA APR 2025
PG 15
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA 1AI8C
UT WOS:001460294200001
DA 2025-04-22
ER

PT J
AU Makris, N
   Vu, T
   Moghimi, G
   Chatzikyriakidis, G
   Godat, E
AF Makris, Nicos
   Vu, Tue
   Moghimi, Gholamreza
   Chatzikyriakidis, Georgios
   Godat, Eric
TI Characterization of the Inherent Resilience of Large Cities to Natural
   Hazards
SO JOURNAL OF ENGINEERING MECHANICS
LA English
DT Article
ID BROWNIAN-MOTION; MICROSCOPIC VISCOELASTICITY; NETWORKS; MODULI; ANALOG
AB In view that cities will continue to house the majority of the world's population at an increasing rate in the face of climate change, this paper studies urban resilience by examining the response history of the mean-square displacement of the citizens of large cities prior to and upon historic natural hazards strike. The recorded mean-square displacements of large numbers of cellphone users from the cities of Houston, Miami, and Jacksonville when struck by hurricanes Harvey 2017, Irma 2017, and Dorian 2019 together with the recorded mean-square displacements of the citizens of Dallas and Houston when experiencing the 2021 North American winter storm suggest that large cities of average population density when struck by natural hazards are inherently resilient. The recorded mean-square displacements presented in this study also validate a mechanical model for cities, previously developed by the authors, that is rooted in Langevin dynamics and predicts that following a natural hazard, large cities revert immediately to their initial steady-state behavior and resume their normal, preevent activities. The inherent ability of large American cities to revert to their normal, preevent, steady-state response as evidenced in this study by the recorded mean-square displacement of their citizens needs to be further explored for other cities around the world with different resources, and socioeconomic structures.
C1 [Makris, Nicos; Moghimi, Gholamreza; Chatzikyriakidis, Georgios] Southern Methodist Univ, Dept Civil & Environm Engn, Dallas, TX 75275 USA.
   [Vu, Tue; Godat, Eric] Southern Methodist Univ, Data Sci & Res Serv, Off Informat Technol OIT, Dallas, TX 75275 USA.
C3 Southern Methodist University; Southern Methodist University
RP Makris, N (corresponding author), Southern Methodist Univ, Dept Civil & Environm Engn, Dallas, TX 75275 USA.
EM nmakris@smu.edu
OI Moghimi, Gholamreza/0000-0001-5950-5204; Godat, Eric/0000-0002-1484-199X
FU SMU/Bush Institute postdoctoral program [20-43-0061-S320086]; SMU
   Research and Data Science Services
FX AcknowledgmentsThis work was funded by the SMU/Bush Institute
   postdoctoral program and by the SMU-Lyle interdisciplinary seed funding
   initiative with No. 20-43-0061-S320086. Data analysis was performed on
   the ManeFrame II (M2): high-performance computing (HPC) cluster
   supported by SMU Research and Data Science Services.
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NR 57
TC 2
Z9 2
U1 2
U2 4
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 0733-9399
EI 1943-7889
J9 J ENG MECH
JI J. Eng. Mech.
PD OCT 1
PY 2023
VL 149
IS 10
AR 04023076
DI 10.1061/JENMDT.EMENG-7102
PG 14
WC Engineering, Mechanical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA P1QE9
UT WOS:001048449300009
DA 2025-04-22
ER

PT J
AU Bin Hishammuddin, MAH
   Wang, JX
   Wu, F
   Bin Ismail, MA
   Abidin, HZ
   Siong, HC
   Huang, XL
   Yang, TL
   Kanniah, KD
AF Bin Hishammuddin, Muhammad Akmal Hakim
   Wang, Jianxiu
   Wu, Fan
   Bin Ismail, Muhammad Azizol
   Abidin, Hasanuddin Zainal
   Siong, Ho Chin
   Huang, Xinlei
   Yang, Tianliang
   Kanniah, Kasturi Devi
TI Scenario spatial planning evaluation model for subsidence-economic
   resilience environment in geohazard prone-coastal megacities: urban
   underground space (UUS) development in Shanghai by year 2035
SO ENVIRONMENTAL EARTH SCIENCES
LA English
DT Article
DE Geo-environmental hazards risks; Land subsidence; Urban underground
   space; Spatial planning; Urban growth theory; Economic disaster
   resilience; Structural equation modelling (SEM); Scenario spatial
   modelling
ID LAND SUBSIDENCE
AB Coastal megacity like Shanghai is continuously challenged with natural-anthropogenic geo-environmental hazards and risks which possess high correlations between land subsidence (LS), socio-economic development, current and future underground space development (UUS). This research focuses on comprehensive evaluation geo-environmental risks and scenario spatial planning model towards economic impact (EI) resilience of UUS the context of large subsidence hazard prone coastal megacity. Newly established factors are used as indicators to understand the relations and scenario prediction by 2035. The cause-effect relations are analysed via structural equation modelling (SEM), spatiotemporal and scenario spatial modelling in ArcGIS platform based on the secondary big open multisource data. Spatiotemporal pattern basis between year 1960-2020 and urban planning growth theories, results indicate expansion of subsidence and UUS in parallel with economic impact from city centre to new five suburb districts by 2035 with prediction of 75% of areas in medium to high hazard risk assessment category areas. This research can be referred to coastal megacities with land subsidence issues for economic resilient multidisciplinary geo-environmental hazard management, UUS development and urban planning policies formulation.
C1 [Bin Hishammuddin, Muhammad Akmal Hakim; Wang, Jianxiu; Wu, Fan] Tongji Univ, Key Lab Land Subsidence Monitoring & Prevent, Coll Civil Engn, Minist Nat Resources, Shanghai 200092, Peoples R China.
   [Bin Hishammuddin, Muhammad Akmal Hakim; Bin Ismail, Muhammad Azizol; Siong, Ho Chin; Kanniah, Kasturi Devi] Univ Teknol Malaysia, Fac Built Environm & Surveying, Johor Baharu 81310, Malaysia.
   [Abidin, Hasanuddin Zainal] ITB, Fac Earth Sci & Technol, Bandung, Indonesia.
   [Huang, Xinlei; Yang, Tianliang] SIGS, Shanghai 200093, Peoples R China.
C3 Ministry of Natural Resources of the People's Republic of China; Tongji
   University; Universiti Teknologi Malaysia; Institute Technology of
   Bandung
RP Bin Hishammuddin, MAH (corresponding author), Tongji Univ, Key Lab Land Subsidence Monitoring & Prevent, Coll Civil Engn, Minist Nat Resources, Shanghai 200092, Peoples R China.; Bin Hishammuddin, MAH (corresponding author), Univ Teknol Malaysia, Fac Built Environm & Surveying, Johor Baharu 81310, Malaysia.
EM akmal_hkm@yahoo.com
RI Kanniah, Kasturi/K-6777-2012; Abidin, Hasanuddin/AAM-6900-2021; Wang,
   JX/J-9223-2019; Huang, XL/KLD-7796-2024
FU Shanghai Municipal Science and Technology Project [18DZ1201301,
   19DZ1200900]; Key Laboratory of Land Subsidence Monitoring and
   Prevention, Ministry of Natural Resources of the People's Republic of
   China [KLLSMP202101]; International Geoscience Programme (IGCP) Project
   [663]
FX This research is sponsored by the Shanghai Municipal Science and
   Technology Project (18DZ1201301; 19DZ1200900); Key Laboratory of Land
   Subsidence Monitoring and Prevention, Ministry of Natural Resources of
   the People's Republic of China (No.KLLSMP202101), and International
   Geoscience Programme (IGCP) Project (663-Landsubsidence in coastal
   cities).
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NR 62
TC 1
Z9 1
U1 18
U2 23
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1866-6280
EI 1866-6299
J9 ENVIRON EARTH SCI
JI Environ. Earth Sci.
PD AUG
PY 2024
VL 83
IS 16
AR 456
DI 10.1007/s12665-024-11763-3
PG 23
WC Environmental Sciences; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Geology; Water Resources
GA A2M5I
UT WOS:001280923100002
DA 2025-04-22
ER

PT J
AU Mukherjee, J
AF Mukherjee, Jenia
TI "Living systems infrastructure" of Kolkata: exploring co-production of
   urban nature using historical urban political ecology (HUPE)
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE East Kolkata wetlands; environmental history; infrastructures; political
   ecology; wastewater
ID WATER; MODERNITY
AB Capital investment-laden green blue infrastructures (GBI) are being globally celebrated as harbingers of urban resilience to address environmental risks. These technocratic designs exclude historical and micro-political processes shaping urban environments. It is within this context that exposure to social sciences frameworks remains significant. Here, I formulate and deploy historical urban political ecology (HUPE) to explore the mutual relationship between Kolkata and her wetlands, finally demonstrating that cities need to be perceived as complex and adaptive "living systems infrastructure" evolved over time, across an intersecting array of technological apparatuses and social arrangements through constant interactions between human and non-human actors. Beyond linear choreographies of power equations, HUPE conveys the "plural" by exemplifying collaborations, compulsions and contingencies that mediate urban ecologies. I argue that HUPE is an enabling framework, eliciting emancipatory possibilities within political ecology by envisioning the translation of epistemological insights into implementable actions, towards more just and resilient urban ecologies of future.
C1 [Mukherjee, Jenia] Indian Inst Technol Kharagpur, Kharagpur 721302, In Wb West Beng, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Kharagpur
RP Mukherjee, J (corresponding author), Indian Inst Technol Kharagpur, Kharagpur 721302, In Wb West Beng, India.
EM jeniamukherjee@gmail.com
FU Institute Scheme for Innovative Research and Development (ISIRD);
   EU-ICSSR
FX I would like to acknowledge that the archival access and field
   investigations pertaining to this research were funded through the
   Institute Scheme for Innovative Research and Development (ISIRD) Project
   (2017-2021), Sponsored Research and Industrial Consultancy, Indian
   Institute of Technology Kharagpur and the EU-ICSSR-sponsored EqUIP
   Project (2019-2022) entitled Towards a Fluid Governance: Hydrosocial
   Analysis of Flood Paradigms and Management Practices in Rhone and Ganges
   Basins (India, France and Switzerland). My heartfelt gratitude to my PhD
   students Raktima Ghosh and Souradip Pathak for providing technical
   assistance. I would like to convey my thanks to Sarah Colenbrander for
   offering her critical feedback on numerous versions of the draft and
   also thoroughly editing the final article so that it could reach a wider
   readership.
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NR 69
TC 6
Z9 6
U1 5
U2 21
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0956-2478
EI 1746-0301
J9 ENVIRON URBAN
JI Environ. Urban.
PD APR
PY 2022
VL 34
IS 1
BP 32
EP 51
DI 10.1177/09562478221084560
PG 20
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA 0V2LU
UT WOS:000788176600003
DA 2025-04-22
ER

PT J
AU Tümtürk, O
   Karakiewicz, J
   de Haan, FJ
AF Tumturk, Onur
   Karakiewicz, Justyna
   de Haan, Fjalar J.
TI Measuring the impact of plot types on physical change: A diachronic
   analysis of urban form evolution in New York, Melbourne and Barcelona
SO CITIES
LA English
DT Article
DE Plot pattern; Urban form; Typo-morphology; Physical change; Urban form
   resilience; Morphometrics
ID STREET; REDEVELOPMENT; RESILIENCE; FRAMEWORK; DESIGN; SHAPE
AB Plots are hypothesised as the most influential determinant of urban form evolution yet remain understudied. Existing morphological studies exploring plots' influential role lack quantitative methods, while more recent quantitative urban form studies remain largely synchronic, analysing urban form at a single timeframe without offering diachronic frameworks. Addressing this gap, we investigate the relationship between plot types and physical change in three international case studies (New York, Melbourne and Barcelona) over two centuries. Employing a novel longitudinal spatial database generated from historical maps, we present a methodology to measure the configurational character of plot structures and identify multi-variable plot typologies using kmeans clustering. Statistical analysis of the relation between plot types and physical change reveals that finergrained, narrower, and more compact plot types exhibit significantly greater resistance to building replacement compared to coarser-grained, broader, and less compact plot types. Our findings demonstrate the robustness of plot structures' configurational character in explaining physical change dynamics in cities. These datadriven findings can guide policymakers in strategic land subdivision decisions to guide future preservation and development needs and patterns, ultimately promoting more resilient and adaptive urban environments.
C1 [Tumturk, Onur; Karakiewicz, Justyna] Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Australia.
   [de Haan, Fjalar J.] Univ Melbourne, Melbourne Ctr Data Sci, Sch Comp & Informat Syst, Melbourne, Australia.
C3 University of Melbourne; University of Melbourne
RP Tümtürk, O (corresponding author), Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Australia.
EM o.tumturk@unimelb.edu.au; justynak@unimelb.edu.au;
   fjalar.dehaan@unimelb.edu.au
RI Tumturk, Onur/MCI-7287-2025
OI Tumturk, Onur/0000-0003-1202-3675
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TC 2
Z9 2
U1 7
U2 12
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD NOV
PY 2024
VL 154
AR 105380
DI 10.1016/j.cities.2024.105380
EA AUG 2024
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA D7H9G
UT WOS:001297867600001
OA hybrid
DA 2025-04-22
ER

PT J
AU Yao, KS
   Chen, SR
AF Yao, Kaisen
   Chen, Suren
TI Percolation-Based Resilience Modeling and Active Intervention of
   Disrupted Urban Traffic Network during a Snowstorm
SO JOURNAL OF TRANSPORTATION ENGINEERING PART A-SYSTEMS
LA English
DT Article
DE Resilience; Robustness; Network; Disruption; Hazard; Active
   intervention; Snow
ID INFRASTRUCTURE
AB Road networks are the backbones of urban communities and can be vulnerable to many disruptions caused by natural hazards, crashes, and rush hours, etc. Numerous efforts have been made in recent years to building more resilient urban road traffic systems against various disruptions through an improved understanding of resilience performance and more effective traffic intervention. A new resilience modeling methodology has been developed for disrupted traffic systems under natural hazards in terms of both local traffic performance and percolation-based robustness at the network scale. Hybrid data enhancement is conducted by integrating limited real-world data and microscopic traffic simulation to address the common challenge of data scarcity under hazards. The study further investigates the feasibility of applying early active traffic intervention through traffic signal design optimization only at some strategic intersections to improve both the traffic performance and resilience at local and network scales. A case study of the City of Fort Collins during snowstorms is made to demonstrate the methodology. The contributions of this study are reflected by shedding light on the following critical, yet unanswered questions: (1) how to deal with the common data shortage of disrupted traffic systems under hazards, (2) how to provide comprehensive time-progressive resilience assessment of a disrupted traffic system at different spatial scales, and (3) is it feasible to apply traffic intervention, such as smart intersection traffic control, only at limited intersections during hazards to improve both system resilience and traffic performance.
C1 [Yao, Kaisen; Chen, Suren] Colorado State Univ, Dept Civil & Environm Engn, Ft Collins, CO 80523 USA.
C3 Colorado State University System; Colorado State University Fort Collins
RP Chen, SR (corresponding author), Colorado State Univ, Dept Civil & Environm Engn, Ft Collins, CO 80523 USA.
EM kaisen.yao@colostate.edu; suren.chen@colostate.edu
RI Chen, Suren/E-4684-2010
OI Chen, Suren/0000-0002-3708-5875; Yao, Kaisen/0009-0000-2128-1591
FU Mountain-Plains Consortium, a University Transportation Center - US
   Department of Transportation
FX The work presented in this paper was conducted with support from the
   Mountain-Plains Consortium, a University Transportation Center funded by
   the US Department of Transportation. The contents of this paper reflect
   the views of the authors, who are responsible for the facts and accuracy
   of the information presented. The authors would also like to acknowledge
   the traffic operation division of City of Fort Collins for providing the
   traffic data used in this study.
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PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 2473-2907
EI 2473-2893
J9 J TRANSP ENG A-SYST
JI J. Transp. Eng. Pt A-Syst.
PD MAY 1
PY 2023
VL 149
IS 5
AR 04023027
DI 10.1061/JTEPBS.TEENG-7364
PG 15
WC Engineering, Civil; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA A0VF7
UT WOS:000952388800005
DA 2025-04-22
ER

PT J
AU Chan, FKS
   Wang, ZL
   Chen, JN
   Lu, XH
   Nafea, T
   Montz, B
   Adekola, O
   Pezzoli, A
   Griffiths, J
   Peng, Y
   Li, PF
   Wang, JL
AF Chan, F. K. S.
   Wang, Zilin
   Chen, Jiannan
   Lu, Xiaohui
   Nafea, Taiseer
   Montz, Burrell
   Adekola, Olalekan
   Pezzoli, Alessandro
   Griffiths, James
   Peng, Yi
   Li, Pengfei
   Wang, Juanle
TI Selected global flood preparation and response lessons: implications for
   more resilient Chinese Cities
SO NATURAL HAZARDS
LA English
DT Review
DE Flood; Global cities; Response; Preparation and resilience
ID RISK-MANAGEMENT; CLIMATE-CHANGE; COMMUNICATION; ENVIRONMENT; RIVERS
AB Urban populations are rising globally, and more extreme climate events are occurring, which means more people are exposed to flood hazards such as pluvial, fluvial, coastal and compound floods. Cities located in flood-prone areas beside coasts, rivers, or both are at risk because such extreme events are often coupled with insufficient drainage capacity to offload peak discharge and withstand the surge levels. Further, the combined drivers of non-climatic factors, such as increasing urbanisation and social-economic development, and climatic drivers such as increasing extreme rainfall patterns, storms, surges, and global mean sea-level rise are unstoppable. This makes it problematic to continue to rely on improving flood protection to secure resilience. This review focuses on the lessons from recent major flood events in Europe, S Asia, E Asia, Australia, America and Africa, including the causes of the events and the post-flood responses. These responses and options are core values to understand both the importance of addressing flood resilience, by responding to floods and the explicit ways to improve risk communication among stakeholders, administration and the public which seem to be the keys to minimising flood impacts on communities. Given the continuous growth of human exposure, we suggest an urgent call for authorities to enact better flood preparation and response strategies in their flood disaster risk reduction plans and policies. This review provides implications for improving the resilience of Chinese cities and elsewhere.
C1 [Chan, F. K. S.; Wang, Zilin] Univ Nottingham Ningbo China, Sch Geog Sci, Ningbo 315100, Peoples R China.
   [Chan, F. K. S.] Univ Leeds, Water Leeds, Leeds LS2 9JT, W Yorkshire, England.
   [Chan, F. K. S.] Univ Leeds, Sch Geog, Leeds LS2 9JT, W Yorkshire, England.
   [Chan, F. K. S.] Southern Univ Sci & Technol, Res Ctr Intelligent Management & Innovat Dev, Res Base Shenzhen Municipal Policy & Dev, Shenzhen 518000, Peoples R China.
   [Chen, Jiannan; Li, Pengfei] Xian Univ Sci & Technol, Coll Geomat, Xian 710054, Peoples R China.
   [Lu, Xiaohui; Nafea, Taiseer] Chinese Acad Sci, Inst Urban Environm, Key Lab Urban Environm & Hlth, Xiamen 361021, Peoples R China.
   [Nafea, Taiseer] Univ Nottingham Ningbo China, Dept Environm Engn, Ningbo 315100, Peoples R China.
   [Montz, Burrell] East Carolina Univ, Dept Geog Planning & Environm, A 227 Brewster Bldg, Greenville, NC 27858 USA.
   [Adekola, Olalekan] York St John Univ, Sch Humanities, York YO31 7EX, N Yorkshire, England.
   [Pezzoli, Alessandro] Politecn Torino, DIST, Viale Mattioli 39, I-10125 Turin, Italy.
   [Pezzoli, Alessandro] Univ Torino, Viale Mattioli 39, I-10125 Turin, Italy.
   [Griffiths, James] Natl Inst Water & Atmosphere NIWA, Christchurch, New Zealand.
   [Peng, Yi] Nanjing Univ, Sch Govt, Dept Emergency Management, Shengda Bldg,163 Xianlin Ave, Nanjing 210023, Peoples R China.
   [Wang, Juanle] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, State Key Lab Resources & Environm Informat Syst, Beijing 100101, Peoples R China.
C3 University of Nottingham Ningbo China; University of Leeds; University
   of Leeds; Southern University of Science & Technology; Xi'an University
   of Science & Technology; Chinese Academy of Sciences; Institute of Urban
   Environment, CAS; University of Nottingham Ningbo China; University of
   North Carolina; East Carolina University; York Saint John University;
   Polytechnic University of Turin; University of Turin; National Institute
   of Water & Atmospheric Research (NIWA) - New Zealand; Nanjing
   University; Chinese Academy of Sciences; Institute of Geographic
   Sciences & Natural Resources Research, CAS
RP Chan, FKS; Wang, ZL (corresponding author), Univ Nottingham Ningbo China, Sch Geog Sci, Ningbo 315100, Peoples R China.; Chan, FKS (corresponding author), Univ Leeds, Water Leeds, Leeds LS2 9JT, W Yorkshire, England.; Chan, FKS (corresponding author), Univ Leeds, Sch Geog, Leeds LS2 9JT, W Yorkshire, England.; Chan, FKS (corresponding author), Southern Univ Sci & Technol, Res Ctr Intelligent Management & Innovat Dev, Res Base Shenzhen Municipal Policy & Dev, Shenzhen 518000, Peoples R China.; Chen, JN (corresponding author), Xian Univ Sci & Technol, Coll Geomat, Xian 710054, Peoples R China.; Lu, XH (corresponding author), Chinese Acad Sci, Inst Urban Environm, Key Lab Urban Environm & Hlth, Xiamen 361021, Peoples R China.; Montz, B (corresponding author), East Carolina Univ, Dept Geog Planning & Environm, A 227 Brewster Bldg, Greenville, NC 27858 USA.; Peng, Y (corresponding author), Nanjing Univ, Sch Govt, Dept Emergency Management, Shengda Bldg,163 Xianlin Ave, Nanjing 210023, Peoples R China.; Wang, JL (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, State Key Lab Resources & Environm Informat Syst, Beijing 100101, Peoples R China.
EM faith.chan@nottingham.edu.cn; sgxzw1@nottingham.edu.cn;
   m18392631056@163.com; xhlu@iue.ac.cn; montzb@ecu.edu; pengyi@nju.edu.cn;
   wangjl@igsnrr.ac.cn
RI Jiannan, Chen/JJC-8513-2023; Nafea, Taiseer Hussain/LXV-2535-2024; Wang,
   Zilin/HTT-2378-2023; griffiths, james/L-1926-2019; Chan,
   Faith/AAV-4088-2020; Adekola, Olalekan/AAR-7864-2021; Chan, Faith Ka
   Shun/H-1541-2017
OI Nafea, Taiseer Hussain/0000-0003-1043-3590; Chen,
   Jiannan/0000-0001-6909-0284; Adekola, Olalekan/0000-0001-9747-0583;
   Wang, Zilin/0000-0002-2582-3076; Griffiths, James
   Andrew/0000-0002-6769-8998; Peng, Yi/0000-0002-7042-9254; Chan, Faith Ka
   Shun/0000-0001-6091-6596; Montz, Burrell/0000-0002-4251-294X
FU Construction Project of China Knowledge Centre for Engineering Sciences
   and Technology [CKCEST-2022-1-41]; National Key Ramp;D Program of China
   [2019YFC1510400]; National Science Foundation Program of China
   [NSFC41850410497]; Institute of Asia Pacific Studies (IAPS) research
   funds; Doctoral Training Partnership and the postgraduate research fund
   at University Nottingham Ningbo China; Chinese Academy of Sciences;
   Institute of Urban Environment
FX & nbsp;This study was funded by the Construction Project of China
   Knowledge Centre for Engineering Sciences and Technology (Grant
   No.CKCEST-2022-1-41), the National Key R&D Program of China (Grant
   Number: 2019YFC1510400) and the National Science Foundation Program of
   China (Grant Number: NSFC41850410497); the Institute of Asia Pacific
   Studies (IAPS) research funds and the Doctoral Training Partnership and
   the postgraduate research fund at University Nottingham Ningbo China and
   the Chinese Academy of Sciences, Institute of Urban Environment.
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NR 118
TC 7
Z9 7
U1 18
U2 80
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD SEP
PY 2023
VL 118
IS 3
BP 1767
EP 1796
DI 10.1007/s11069-023-06102-x
EA JUL 2023
PG 30
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA Q8AR6
UT WOS:001037156700003
DA 2025-04-22
ER

PT J
AU Fernández-Blanco, CR
   Muys, B
   Winkel, G
   Parra, C
AF Fernandez-Blanco, Carmen Rodriguez
   Muys, Bart
   Winkel, Georg
   Parra, Constanza
TI Revisiting wildfire resilience from a territorial perspective: insights
   from Mediterranean Spain
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article; Early Access
DE wildfire; fire-prone territory; socioecological resilience; framing;
   Mediterranean
ID ADAPTIVE GOVERNANCE; FIRE MANAGEMENT; FOREST; NETWORK; PERCEPTIONS;
   ADAPTATION; ECOLOGY; AGENDA; CITIES; AREAS
AB Wildfires are increasingly recognized as a complex socioecological phenomenon, yet their linkages with territorial development are not clearly spelled out. This article seeks to unveil the sociopolitical and sociospatial ramifications of wildfires by framing them as a territorial issue, and understanding fire-prone territories as dynamic entities that emerge in essentially political processes, defined by socioecological relations that unfold across different spatial and temporal scales. Against this backdrop, building resilience is considered a territorially embedded and continuous process, driven by mechanisms operating "behind the flames." By operationalizing this framework in the region of Valencia (Spain), it is shown how social innovation can help overcome lock-ins and enhance resilience. This research showcases the importance of building a trusting, collaborative culture across sectors and actors, and brings to the forefront the importance of considering rural-urban relationships for reducing territorial inequalities and building more resilient futures in Mediterranean, fire-prone territories.
C1 [Fernandez-Blanco, Carmen Rodriguez] European Forest Inst, Governance Unit, Bonn, Germany.
   [Fernandez-Blanco, Carmen Rodriguez; Muys, Bart; Parra, Constanza] Katholieke Univ Leuven, Dept Earth & Environm Sci, Leuven, Belgium.
   [Winkel, Georg] Wageningen Univ & Res, Forest & Nat Conservat Policy Grp, Wageningen, Netherlands.
C3 KU Leuven; Wageningen University & Research
RP Fernández-Blanco, CR (corresponding author), European Forest Inst, Governance Unit, Bonn, Germany.; Fernández-Blanco, CR (corresponding author), Katholieke Univ Leuven, Dept Earth & Environm Sci, Leuven, Belgium.
EM carmen.rodriguez@efi.in
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NR 175
TC 0
Z9 0
U1 7
U2 10
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0964-0568
EI 1360-0559
J9 J ENVIRON PLANN MAN
JI J. Environ. Plan. Manag.
PD 2024 APR 15
PY 2024
DI 10.1080/09640568.2024.2342333
EA APR 2024
PG 30
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA QL7Q2
UT WOS:001221098500001
DA 2025-04-22
ER

PT J
AU Zhang, F
   Wang, DY
   Zhou, X
   Ye, F
AF Zhang, Fang
   Wang, Dengyu
   Zhou, Xi
   Ye, Fan
TI Community Resilience Evaluation and Construction Strategies in the
   Perspective of Public Health Emergencies: A Case Study of Six
   Communities in Nanjing
SO SUSTAINABILITY
LA English
DT Article
DE community; resilience; public health emergencies; evaluation system;
   strategies
AB The theory of resilience has undergone three stages: engineering, ecological, and evolutionary. It has been developed in various professional fields, focusing on research scales such as urban resilience and community resilience. As the smallest unit of urban composition, the community serves as the principal carrier of numerous emergencies at the grassroots level. Its resilience construction level is somewhat connected to the city's safe development. However, there is still a lack of a systematic evaluation framework for assessing community resilience, and studies from the perspective of public health safety also lack scientific quantitative results and dynamic analysis. In order to fully understand the connotation of resilient community in the combination of epidemic prevention and control, this study employs literature crawling and high-frequency vocabulary screening to construct a three-level resilience index. Taking into consideration both physical and social factors, a community resilience evaluation system with 4 core indicators, 14 secondary indicators, and 39 tertiary indicators is established by employing the resilience matrix (RM) framework and Analytic Hierarchy Process (AHP). It set up a collection quantification path based on the properties of multivariate data and weighted the indicators using the Delphi method. Taking the typical community in Xuanwu District, Nanjing, as the research sample, the differentiated performance during the COVID-19 pandemic is analyzed, and a systematic evaluation and scoring are conducted. The resilience composition and improvement directions of each sample are interpreted and analyzed to support the formulation of future sustainability strategies as much as possible. The study developed an evaluation approach combining three time periods and four response dimensions to demonstrate a relationship between complex factors and community resilience. The expandable resilience evaluation system offers a wide range of applications and serves as a scientific reference for strengthening community resilience, which is critical for urban sustainability.
C1 [Zhang, Fang; Wang, Dengyu; Zhou, Xi; Ye, Fan] Suzhou Univ Sci & Technol, Sch Architecture & Urban Planning, Suzhou 215000, Peoples R China.
C3 Suzhou University of Science & Technology
RP Zhang, F; Zhou, X (corresponding author), Suzhou Univ Sci & Technol, Sch Architecture & Urban Planning, Suzhou 215000, Peoples R China.
EM 2140@usts.edu.cn; wyuyu36@gmail.com; zhouxi@mail.usts.edu.cn;
   echoisland97@gmail.com
FU Jiangsu Province Graduate Student Practice and Innovation Program
   [SJCX22_1544]; National Natural Science Foundation of China [51808365]
FX This research was supported by a grant from the project fund of Jiangsu
   Province Graduate Student Practice and Innovation Program 2022
   (Adaptability Techniques for Renovating Urban Public Spaces in the
   Post-Epidemic Era, Grant No. SJCX22_1544) and National Natural Science
   Foundation of China (Grant No. 51808365).
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NR 45
TC 0
Z9 0
U1 31
U2 38
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2024
VL 16
IS 16
AR 6992
DI 10.3390/su16166992
PG 24
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA F1Q6O
UT WOS:001307636700001
OA gold
DA 2025-04-22
ER

PT J
AU Nickayin, SS
   Halbac-Cotoara-Zamfir, R
   Clemente, M
   Chelli, FM
   Salvati, L
   Benassi, F
   Morera, AG
AF Nickayin, Samaneh Sadat
   Halbac-Cotoara-Zamfir, Rares
   Clemente, Matteo
   Chelli, Francesco Maria
   Salvati, Luca
   Benassi, Federico
   Morera, Antonio Gimenez
TI "Qualifying Peripheries" or "Repolarizing the Center": A Comparison of
   Gentrification Processes in Europe
SO SUSTAINABILITY
LA English
DT Article
DE urban sustainability; mobility; policy; advanced economies
ID INNER-CITY; URBAN; SEGREGATION; TRANSITION; AMERICA; NEIGHBORHOODS;
   BUDAPEST; MOBILITY; LESSONS; SPAIN
AB Reflecting a broader form of neo-liberal urban policy underlying the progressive return of capital investment, gentrification is a key issue in urban studies. Although earlier definitions of "gentrification" focused mostly on socio-cultural processes, recent works have qualified gentrification as a mixed political-economic issue. Clarifying whether inner city gentrification should be supported, controlled, constricted, or prevented is a key debate in urban sustainability and metabolism, contributing to managing and, possibly, enhancing metropolitan resilience. To define the causes and consequences of gentrification, understanding the intrinsic linkage with different social contexts is crucial. There are no universal and comprehensive gentrification processes, displaying similarities and differences at the same time. A comparative analysis of different forms of gentrification and urban change provides basic knowledge to delineate complex, non-linear paths of socioeconomic development in cities, shedding light on the increased socioeconomic complexity and the most appropriate policies to fuel metropolitan sustainability in a broader context of global change. From this perspective, our commentary focuses on the main issues at the base of gentrification in Europe, starting from basic definitions and providing a regional vision distinguishing three "gentrification ideal-types" (northern, eastern, and Mediterranean). The implications of these different socioeconomic processes for the policy and governance of sustainable and resilient cities were discussed, evidencing new lines of investigation to frame (or re-frame) the increasing complexity of urbanization patterns and processes.
C1 [Nickayin, Samaneh Sadat] Agr Univ Iceland, Landscape Architecture Dept, IS-311 Hvanneyri, Borgarbyggo, Iceland.
   [Halbac-Cotoara-Zamfir, Rares] Politehn Univ Timisoara, Dept Overland Commun Ways, Fdn & Cadastral Survey, 1A I Curea St, Timisoara 300224, Romania.
   [Clemente, Matteo] Sapienza Univ Rome, Dept Architecture & Project, Piazza Borghese 9, I-00186 Rome, Italy.
   [Chelli, Francesco Maria] Polytech Univ Marche, Dept Econ Sci, Piazza Martelli 8, I-60121 Ancona, Italy.
   [Salvati, Luca] Univ Macerata, Dept Econ & Law, Via Armaroli 43, I-62100 Macerata, Italy.
   [Benassi, Federico] Italian Natl Inst Stat ISTAT, Piazza G Marconi 24, I-00144 Rome, Italy.
   [Morera, Antonio Gimenez] Univ Politecn Valencia, Dept Econ & Ciencias Sociales, Cami Vera S-N, ES-46022 Valencia, Spain.
C3 Universitatea Politehnica Timisoara; Sapienza University Rome; Marche
   Polytechnic University; University of Macerata; Universitat Politecnica
   de Valencia
RP Clemente, M (corresponding author), Sapienza Univ Rome, Dept Architecture & Project, Piazza Borghese 9, I-00186 Rome, Italy.
EM samaneh@lbhi.is; raresh_81@yahoo.com; matteo.clemente@uniroma1.it;
   francesco.chelli@univpm.it; luca.salvati@unimc.it;
   federico.benassi@istat.it; angimo1@doctor.upv.es
RI Benassi, Federico/LTD-8323-2024; Salvati, Luca/AAS-6179-2021;
   Halbac-Cotoara-Zamfir, Rares/E-3429-2012
OI Halbac-Cotoara-Zamfir, Rares/0000-0002-3766-6493; Clemente,
   Matteo/0000-0003-4288-3668; Nickayin, Samaneh Sadat/0000-0002-5230-6103;
   Benassi, Federico/0000-0002-8861-9996
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NR 131
TC 2
Z9 2
U1 1
U2 13
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2020
VL 12
IS 21
AR 9039
DI 10.3390/su12219039
PG 14
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA OR1DX
UT WOS:000589218000001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Tang, P
   Lai, SY
AF Tang, Pan
   Lai, Shiyi
TI A framework for managing public security risks with complex interactions
   in cities and its application evidenced from Shenzhen City in China
SO CITIES
LA English
DT Article
DE Urban disaster risk reduction; Public security risk; Risk interaction;
   Risk mitigation; Social Network Analysis
ID CRITICAL INFRASTRUCTURE; SYSTEMS-APPROACH; MANAGEMENT; NETWORKS;
   VULNERABILITY; RESILIENCE; DISASTERS
AB The ongoing rapid urbanization in cities across China has exposed urban areas to a broad range of public security risks with interaction in a great degree. Urban disaster risk management has limitations of treating risks in isolation and neglecting the widespread existence of risk interaction, thereby reducing the performance of risk mitigation. The clear conceptualization of identifying and understanding public security risks with interactions are also lacking in the existing literature. To bridge this gap, this study develops a framework for identifying, measuring, and analyzing public security risks and their interactions to provide insights into designing effective risk mitigation strategies from system thinking perspectives. An approach to identify potential risk interactions and measure their strength is presented. In particular, it demonstrates how to use Social Network Analysis to explore the structural characteristics of public security risk network and the manner in which risk mitigation strategies are designed by integrating individual and networked risk assessments. A case study in Shenzhen City, China is conducted for illustrating a practical application of the developed framework to address interweaving public security risks effectively and efficiently, with an added value to the traditional risk management paradigm. This study not only presents an innovative perspective of conducting urban disaster risk management in rapidly urbanizing cities but also provides a practical approach for urban managers to design effective risk mitigation strategies to build sustainable and resilient cities.
C1 [Tang, Pan; Lai, Shiyi] Jinan Univ, Res Ctr Emergency Management, Sch Publ Management Emergency Management, Guangzhou, Guangdong, Peoples R China.
   [Tang, Pan] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
C3 Jinan University; Hong Kong Polytechnic University
RP Tang, P (corresponding author), Jinan Univ, Res Ctr Emergency Management, Sch Publ Management Emergency Management, Guangzhou, Guangdong, Peoples R China.
EM tangpan2017@jnu.edu.cn
FU National Science Foundation of China [71774068, 71303093]; China
   Postdoctoral Science Foundation [2016M590845]; Fundamental Research
   Funds for the Central Universities of China [21612301]; Major Project of
   National Social Science Fund [14ZDB166]; Major Project of Key Research
   Institution of the Ministry of Education of China [16JJD840011]
FX The study is supported by the National Science Foundation of China
   (Project Nos. 71774068 and 71303093), the China Postdoctoral Science
   Foundation (Project No. 2016M590845), the Fundamental Research Funds for
   the Central Universities of China (Project No. 21612301), the Major
   Project of National Social Science Fund (Project No. 14ZDB166), and the
   Major Project of Key Research Institution of the Ministry of Education
   of China (Project No. 16JJD840011).
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NR 52
TC 15
Z9 15
U1 3
U2 79
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2019
VL 95
AR 102390
DI 10.1016/j.cities.2019.102390
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA JQ1YG
UT WOS:000498748100022
DA 2025-04-22
ER

PT J
AU Monstadt, J
   Schmidt, M
AF Monstadt, Jochen
   Schmidt, Martin
TI Urban resilience in the making? The governance of critical
   infrastructures in German cities
SO URBAN STUDIES
LA English
DT Article
DE crisis management; critical infrastructures; urban governance; urban
   resilience; wicked problems
ID SECURITY; POLITICS; POLICY
AB Over the last decade, the protection of urban infrastructures has become a focus in German security policies. These point not solely to the multiple external infrastructural threats (e.g. natural disasters, terrorist and cyber-attacks), but also to the endogenous risks of cascading failures across geographical and functional borders that arise from interlocking and often mutually dependent infrastructures. As geographical nodes in infrastructurally mediated flows, cities are considered to be particularly vulnerable to infrastructure breakdowns. Their capability to prevent and to prepare for infrastructural failures, and thus to manage infrastructural interdependencies, is seen as a major prerequisite for resilient societies. However, as our article demonstrates, the institutional capacity of the local authorities and utility companies for risk mitigation and preparedness is limited. Drawing on qualitative research in selected German cities, we argue that the governance of critical infrastructures involves considerable challenges: it overarches different, often fragmented, policy domains and territories and institutionally unbundled utility (sub-) domains. Moreover, risk mitigation and preparedness are usually not based on experience from past events, but on destructive scenarios. They involve considerable uncertainty and contestations among local decision-makers. Interviews with local experts indicate that effective governance of critical infrastructures requires more regulatory efforts by national policies. At the same time, they point to the need for identifying and assessing place-based vulnerabilities, for defining locally differentiated mitigation and preparedness strategies and for the training of local utility companies as well as crisis management.
C1 [Monstadt, Jochen] Univ Utrecht, Dept Human Geog & Spatial Planning, Fac Geosci, Princetonlaan 8a, NL-3584 CB Utrecht, Netherlands.
   [Schmidt, Martin] Tech Univ Darmstadt, Darmstadt, Germany.
C3 Utrecht University; Technical University of Darmstadt
RP Monstadt, J (corresponding author), Univ Utrecht, Dept Human Geog & Spatial Planning, Fac Geosci, Princetonlaan 8a, NL-3584 CB Utrecht, Netherlands.
EM j.monstadt@uu.nl
RI Monstadt, Jochen/AAE-5440-2022
OI Monstadt, Jochen/0000-0001-9146-1571
FU German Research Foundation (DFG) [MO 1804/6-1]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: The work
   on this article was supported by a grant from the German Research
   Foundation (DFG, MO 1804/6-1).
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NR 42
TC 64
Z9 67
U1 8
U2 73
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD AUG
PY 2019
VL 56
IS 11
SI SI
BP 2353
EP 2371
DI 10.1177/0042098018808483
PG 19
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA IK3ZR
UT WOS:000476527400010
OA hybrid, Green Submitted
DA 2025-04-22
ER

PT J
AU Baldin, ML
   Sinning, H
AF Baldin, Marie-Luise
   Sinning, Heidi
TI Hitzeresiliente Stadte: Warum gelingt die Umsetzung nicht?
   Governanceanalyse zu Umsetzungs- und Kommunikationshemmnissen am
   Beispiel Dresden und Erfurt
SO DISP
LA English
DT Article
ID CLIMATE
AB Heat resilience of cities has been gaining importance increasingly due to rising temperatures and lasting heat waves in the context of climate change. Therefore, the need to take climate action and implement effective adaption measures has become more urgent. In addition, the Covid-19 pandemic has been promoting strategies to increase resilience, e.g. by improving both urban green and health prevention, which can be seen as synergetic to climate adaptation. Despite a broad consensus that immediate climate action is needed, progress in implementation is advancing rather slowly. By investigating case studies in Dresden and Erfurt, Germany, this article points out barriers in implementing adaption measures and within the communication between stakeholders in the adaption process. The study has found insufficiencies in the current standing of climate adaption in cities' responsibilities and in conflict with competing interests, its integration into administrative tasks and the cross-departmental, collaborative approach in planning and implementation of adaption measures. Furthermore, a relevant obstacle has been identified in the holding on to traditional urban design principles that conflict with climate adaption to urban heat. The analysis is followed by a discussion of possible solutions to these obstacles, which are contextualized by theorical approach of Climate Adaption Governance by reviewing available instruments and examining the relations between key stakeholders. English title: Heat-resilient cities: Why does the implementation not succeed? Governance analysis of implementation and communication problems using the case studies of Dresden and Erfurt
C1 [Baldin, Marie-Luise] Hsch Mittweida, Inst Nachbaltigkeits & Immobilienmanagement INIM, Tech Pl 17, D-09648 Mittweida, Germany.
   [Sinning, Heidi] Fachhsch Erfurt, ISP Inst Stadtforsch Planung & Kommunikat, Altonaer Str 25, D-99085 Erfurt, Germany.
C3 Fachhochschule Erfurt
RP Baldin, ML (corresponding author), Hsch Mittweida, Inst Nachbaltigkeits & Immobilienmanagement INIM, Tech Pl 17, D-09648 Mittweida, Germany.
EM baldin@bs-mittweida.de; sinning@fb-erfurt.de
OI Sinning, Heidi/0000-0002-8332-5059
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NR 53
TC 0
Z9 0
U1 2
U2 11
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0251-3625
EI 2166-8604
J9 DISP
JI disP
PD JAN 2
PY 2022
VL 58
IS 1
BP 4
EP 20
DI 10.1080/02513625.2022.2091848
PG 17
WC Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Public Administration
GA 2N7RE
UT WOS:000818571600002
DA 2025-04-22
ER

PT J
AU Iida, A
   Yamazaki, T
   Hino, K
   Yokohari, M
AF Iida, Akiko
   Yamazaki, Takahiro
   Hino, Kimihiro
   Yokohari, Makoto
TI Urban agriculture in walkable neighborhoods bore fruit for health and
   food system resilience during the COVID-19 pandemic
SO NPJ URBAN SUSTAINABILITY
LA English
DT Article
ID PHYSICAL-ACTIVITY; COMMUNITY GARDENS; ENVIRONMENT; SECURITY; SERVICES;
   IMPACTS
AB Urban agriculture is the key to creating healthy cities and developing resilient urban food systems in uncertain times. However, relevant empirical evidence is limited. This study quantitatively verified the association of access to local food through urban agriculture with subjective well-being, physical activity, and food security concerns of neighborhood communities in the context of the COVID-19 pandemic. The target was Tokyo, Japan, where small-scale local food systems are widespread in walkable neighborhoods. We found that diversity in local food access, ranging from self-cultivation to direct-to-consumer sales, was significantly associated with health and food security variables. In particular, the use of allotment farms was more strongly associated with subjective well-being than the use of urban parks, and it was more strongly associated with the mitigation of food security concerns than the use of food retailers. These findings provide robust evidence for the effectiveness of integrating urban agriculture into walkable neighborhoods.
C1 [Iida, Akiko; Yamazaki, Takahiro; Hino, Kimihiro; Yokohari, Makoto] Univ Tokyo, Grad Sch Engn, Dept Urban Engn, Tokyo 1138656, Japan.
   [Yamazaki, Takahiro] Kobe Design Univ, Dept Environm Design, Kobe, Hyogo 6512196, Japan.
C3 University of Tokyo
RP Iida, A (corresponding author), Univ Tokyo, Grad Sch Engn, Dept Urban Engn, Tokyo 1138656, Japan.
EM iida@epd.t.u-tokyo.ac.jp
RI Hino, Kimihiro/AAJ-3922-2020
OI Iida, Akiko/0000-0002-4795-267X
FU Tokyo Metropolitan Government; Volkswagen Foundation; JSPS KAKENHI
   [19H02984, 19K15863]
FX This research was funded by the Tokyo Metropolitan Government,
   Volkswagen Foundation, and JSPS KAKENHI grant numbers 19H02984 and
   19K15863.
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NR 58
TC 15
Z9 15
U1 4
U2 23
PU SPRINGERNATURE
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON, N1 9XW, ENGLAND
EI 2661-8001
J9 NPJ URBAN SUSTAIN
JI npj Urban Sustain.
PD FEB 1
PY 2023
VL 3
IS 1
AR 4
DI 10.1038/s42949-023-00083-3
PG 10
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I0SL1
UT WOS:000999960000001
PM 37521202
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Viitanen, J
   Kingston, R
AF Viitanen, Jenni
   Kingston, Richard
TI Smart cities and green growth: outsourcing democratic and environmental
   resilience to the global technology sector
SO ENVIRONMENT AND PLANNING A-ECONOMY AND SPACE
LA English
DT Article
DE climate change; smart cities; ICT; democracy; future cities
ID WORLD CITIES; URBAN; MANCHESTER; POLITICS; TELECOMMUNICATIONS;
   URBANIZATION; CITY
AB Climate change and advances in urban technology propel forward the 'smart city'. As decision makers strive to find a technological fix, smart city strategies are often based on technological orthodoxies which are conceptually and empirically shallow. The motivation behind this paper is to address the conceptual adolescence which relates to the wholesale digitisation of the city by pursuing a twin argument about the democratic and environmental consequences. The authors draw on interdisciplinary theory and insights from urban studies, infrastructure, informatics, and the sociology of the Internet to critique the way the 'smart city' is taken forward. It is concluded that private firms market smart city services and solutions based on an ideological legacy of 'ubiquitous computing', 'universal infrastructure', and 'green technology'. Based on evidence from three UK cities-Manchester, Birmingham, and Glasgow-it is argued that the underlying principle of future city strategies is to expand the market for new technology products and services to support 'green growth' with disregard for their wider impacts. For citizens, becoming a consumer of the technologies is often presented as progressive 'participation' or 'empowerment' with unknown or hidden consequences both political and environmental. The city systems become a digital marketplace where citizen-consumers' participation is increasingly involuntary and the hegemony of global technology firms is inflated. What follows is that the city's 'intelligent systems' are defined through a digital consumer experience that has inherent biases and leaves parts of the city and its population unaccounted for. This renders the city less resilient in the face of future social and climatic risks.
C1 [Viitanen, Jenni; Kingston, Richard] Univ Manchester, Sch Environm & Dev, Ctr Urban Policy Studies, Manchester M13 9PL, Lancs, England.
C3 University of Manchester
RP Viitanen, J (corresponding author), Univ Manchester, Sch Environm & Dev, Ctr Urban Policy Studies, Oxford Rd, Manchester M13 9PL, Lancs, England.
EM jenni.viitanen@manchester.ac.uk; richard.kingston@manchester.ac.uk
RI Kingston, Richard/AAH-4034-2021
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NR 92
TC 279
Z9 296
U1 29
U2 396
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0308-518X
EI 1472-3409
J9 ENVIRON PLANN A
JI Environ. Plan. A
PY 2014
VL 46
IS 4
BP 803
EP 819
DI 10.1068/a46242
PG 17
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA AU6CO
UT WOS:000345690400005
OA Green Published, Green Submitted
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Sokolova, MV
   Fath, BD
   Buonocore, E
   Franzese, PP
AF Sokolova, Milena, V
   Fath, Brian D.
   Buonocore, Elvira
   Franzese, Pier Paolo
TI Assessment of regulating ecosystem services generated by green
   infrastructure: A case study of Bolzano, Italy
SO URBAN CLIMATE
LA English
DT Article
DE Green infrastructure; Ecosystem services; i-Tree Eco software; SDG 11;
   Bolzano; Urban ecosystems
ID TREE; BALANCE; CARBON; HEALTH
AB Sustainable cities is one of the key topics of the United Nations 2030 Agenda for Sustainable Development. SDG 11 promotes the goal that cities should be inclusive, safe, resilient and sustainable human settlements. In this context, urban ecosystems, namely, Green Infrastructure (GI) can play a key role to enhance ecosystem services. GI improves ecosystem functioning and resilience, protects biodiversity, promotes societal health and well-being. The concept of GI in cities is becoming increasingly important in the development of urban policies since it improves the quality of life while mitigating the adverse effects of climate change. In this paper, we integrate biophysical method and monetary methods using i-Tree Eco software with about 12,000 trees within Bolzano, Italy. Model results are given for five assessed ecosystem services: 1) carbon storage, 2) carbon sequestration, 3) oxygen production, 4) avoided runoff, and 5) air pollution removal. Thus, our results show the significance of urban trees as a key element for better urban planning considering specific species contribution. The findings of this study will increase the awareness on the important role GIs play in urban systems to improve human well-being, informing policy-makers in charge of developing strategies to achieve impelling conservation actions and sustainability goals.
C1 [Sokolova, Milena, V; Buonocore, Elvira; Franzese, Pier Paolo] Parthenope Univ Naples, UNESCO Chair Environm Resources & Sustainable Dev, Dept Sci & Technol, Int PhD Programme, Naples, Italy.
   [Sokolova, Milena, V; Fath, Brian D.] Int Inst Appl Syst Anal, Adv Syst Anal Program, Laxenburg, Austria.
   [Fath, Brian D.] Towson Univ, Dept Biol Sci, Towson, MD USA.
   [Fath, Brian D.] Masaryk Univ, Dept Environm Studies, Brno, Czech Republic.
C3 Parthenope University Naples; International Institute for Applied
   Systems Analysis (IIASA); University System of Maryland; Towson
   University; Masaryk University Brno
RP Sokolova, MV (corresponding author), Parthenope Univ Naples, Villa Doria Angri,Via Francesco Petrarca 80, I-80123 Naples, Italy.
EM milena.sokolova001@studenti.uniparthenope.it
RI Franzese, Pier/H-3357-2011; buonocore, elvira/AAJ-5995-2021
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NR 94
TC 0
Z9 0
U1 3
U2 3
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD MAR
PY 2025
VL 60
AR 102324
DI 10.1016/j.uclim.2025.102324
EA FEB 2025
PG 21
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA Y8Y5H
UT WOS:001434908300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Lambrou, N
AF Lambrou, Nicole
TI Resilience Design in Practice: Future Climate Visions from California's
   Bay Area
SO LAND
LA English
DT Article
DE adaptation design; resilience planning; spatial justice; Resilient by
   Design competition
ID CHANGE ADAPTATION; URBAN; CITIES; GREEN; SUSTAINABILITY; LANDSCAPE;
   FRAMEWORK; POLITICS; JUSTICE; ECOLOGY
AB This study discusses the implications of resilience design for questions of economic and social resilience, and for equity. Resilience design proposals for California's Bay Area, resulting from the Resilience by Design project and published in 2017, were evaluated through content analysis and interviews with design teams and plan authors. Findings from the study indicate that these proposals offer visions and strategies for large-scale infrastructural projects that rely on a land-as-ecosystem framing to adapt to extreme weather events, but that they also attempt to direct the impact of these ecological processes on surrounding social systems such as planning processes and landscape regenerations for adaptation purposes. However, findings also indicate that the design process does little to address equity beyond proposing access to those new landscapes and green infrastructure spaces, and to a much lesser degree homeownership and labor models for wealth accumulation. Ecology is consistently deployed in the data analyzed to normalize and propose socio-environmental relationships, implicating questions of equity that are often not addressed. These findings matter for urban design projects and processes that are increasingly pursued by municipalities and public agencies in an effort to secure funding and implement strategies for a climate just future.
C1 [Lambrou, Nicole] Univ Calif Los Angeles, Los Angeles, CA 90095 USA.
C3 University of California System; University of California Los Angeles
RP Lambrou, N (corresponding author), Univ Calif Los Angeles, Los Angeles, CA 90095 USA.
EM nlambrou@ucla.edu
OI Lambrou, Nicole/0000-0002-8321-4498
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NR 48
TC 3
Z9 3
U1 4
U2 15
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD OCT
PY 2022
VL 11
IS 10
AR 1795
DI 10.3390/land11101795
PG 18
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 5S5ER
UT WOS:000875213400001
OA gold
DA 2025-04-22
ER

PT J
AU McPherson, EG
   Berry, AM
   van Doorn, NS
AF McPherson, E. Gregory
   Berry, Alison M.
   van Doorn, Natalie S.
TI Performance testing to identify climate-ready trees
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Adaptation; Climate change; Growth; Tree selection; Resilience; Urban
   forest
ID URBAN FOREST; STREET TREES; CALIFORNIA; IMPACT; GROWTH; DECOMPOSITION;
   SCENARIOS; FRAMEWORK; SELECTION; DROUGHT
AB Urban forests produce ecosystem services that can benefit city dwellers, but are especially vulnerable to climate change stressors such as heat, drought, extreme winds and pests. Tree selection is an important decision point for managers wanting to transition to a more stable and resilient urban forest structure. This study describes a five-step process to identify and evaluate the performance of promising but infrequently used tree species. The approach is illustrated for the Central Valley of California, USA and has been implemented in the Inland Empire and Southern Coastal regions of California. Horticultural advisors nominated 134 taxon for consideration. A filtering process eliminated taxon that were relatively abundant in a compilation of 8 municipal tree inventories, then those with low adaptive capacity when scored on habitat suitability, physiology and biological interactions. In 2015, 144 trees were planted, with 2 trees of each of 12 species planted in 4 Sacramento parks and 4 replicates planted in the Davis, California reference site. This approach can serve as an international model for cities interested in climate adaptation through urban forestry.
C1 [McPherson, E. Gregory] US Forest Serv, USDA, Pacific Southwest Res Stn, 1731 Res Pk Dr, Davis, CA 95618 USA.
   [Berry, Alison M.] Univ Calif Davis, Dept Plant Sci, One Shields Ave, Davis, CA 95616 USA.
   [van Doorn, Natalie S.] US Forest Serv, USDA, Pacific Southwest Res Stn, 800 Buchanan St, Albany, CA 94710 USA.
C3 United States Department of Agriculture (USDA); United States Forest
   Service; University of California System; University of California
   Davis; United States Department of Agriculture (USDA); United States
   Forest Service
RP McPherson, EG (corresponding author), US Forest Serv, USDA, Pacific Southwest Res Stn, 1731 Res Pk Dr, Davis, CA 95618 USA.
EM gmcpherson@fs.fed.us; amberry@ucdavis.edu; nvandoorn@fs.fed.us
RI Solomonoff, Natalie/C-3785-2009
FU Britton Fund; International Society of Arboriculture; Western Chapter;
   USDA Forest Service; Pacific Southwest Research Station; City Plants Los
   Angeles
FX Funding for this project was provided to the University of California,
   Davis by The Britton Fund, International Society of Arboriculture,
   Western Chapter, USDA Forest Service, Pacific Southwest Research Station
   and City Plants Los Angeles. We are deeply indebted to our horticultural
   advisors and all of our partners who provided trees and helped to plant,
   maintain and measure the trees in three California regions. These
   cooperators include Erika Teach (U.S. Forest Service, PSW) and Qingfu
   Xiao (UC Davis). Our Southern California trials included colleagues with
   the University of California Cooperative Extension, Janet Hartin (San
   Bernardino, Los Angeles and Riverside Counties), Jim Downer (Ventura
   County) and Darren Haver (South Coast Research & Extension Center,
   Irvine). Trees were generously provided for testing by Mountain States
   Wholesale Nursery, Boething Treeland and J. Frank Schmidt & Sons. The
   Sacramento Tree Foundation assisted with planting and stewardship and
   the City of Sacramento, Departments of Public Works and Parks and, UC
   Davis Grounds Department identified sites, installed irrigation and
   maintained the trees. In the Southern California trials the Los Angeles
   Beautification Team, City Plants, and Los Angeles City Recreation and
   Parks Department assisted with planting and stewardship. Without the
   contributions of these and other cooperators this study would not have
   been possible.
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NR 74
TC 62
Z9 75
U1 8
U2 88
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD JAN
PY 2018
VL 29
BP 28
EP 39
DI 10.1016/j.ufug.2017.09.003
PG 12
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA FY9PA
UT WOS:000427197500004
OA Bronze
DA 2025-04-22
ER

PT J
AU Chopra, SS
   Dillon, T
   Bilec, MM
   Khanna, V
AF Chopra, Shauhrat S.
   Dillon, Trent
   Bilec, Melissa M.
   Khanna, Vikas
TI A network-based framework for assessing infrastructure resilience: a
   case study of the London metro system
SO JOURNAL OF THE ROYAL SOCIETY INTERFACE
LA English
DT Article
DE London metro system; urban infrastructure; resilience; network analysis;
   complex systems
ID PUBLIC TRANSPORT NETWORKS; WORLD; ROBUSTNESS; BEHAVIOR; SUBWAY; CITIES
AB Modern society is increasingly dependent on the stability of a complex system of interdependent infrastructure sectors. It is imperative to build resilience of large-scale infrastructures like metro systems for addressing the threat of natural disasters and man-made attacks in urban areas. Analysis is needed to ensure that these systems are capable of withstanding and containing unexpected perturbations, and develop heuristic strategies for guiding the design of more resilient networks in the future. We present a comprehensive, multi-pronged framework that analyses information on network topology, spatial organization and passenger flow to understand the resilience of the London metro system. Topology of the London metro system is not fault tolerant in terms of maintaining connectivity at the periphery of the network since it does not exhibit small-world properties. The passenger strength distribution follows a power law, suggesting that while the London metro system is robust to random failures, it is vulnerable to disruptions on a few critical stations. The analysis further identifies particular sources of structural and functional vulnerabilities that need to be mitigated for improving the resilience of the London metro network. The insights from our framework provide useful strategies to build resilience for both existing and upcoming metro systems.
C1 [Chopra, Shauhrat S.; Bilec, Melissa M.; Khanna, Vikas] Univ Pittsburgh, Dept Civil & Environm Engn, Pittsburgh, PA 15261 USA.
   [Dillon, Trent] Univ Pittsburgh, Dept Mech Engn, Pittsburgh, PA 15261 USA.
C3 Pennsylvania Commonwealth System of Higher Education (PCSHE); University
   of Pittsburgh; Pennsylvania Commonwealth System of Higher Education
   (PCSHE); University of Pittsburgh
RP Khanna, V (corresponding author), Univ Pittsburgh, Dept Civil & Environm Engn, Pittsburgh, PA 15261 USA.
EM khannav@pitt.edu
RI Chopra, Shauhrat S./HIK-2137-2022
OI Khanna, Vikas/0000-0002-7211-5195; Bilec, Melissa/0000-0002-6101-6263;
   Chopra, Shauhrat S./0000-0001-9067-4321
FU Mascaro Center for Sustainable Innovation at the University of
   Pittsburgh
FX This work was partially supported by the Mascaro Center for Sustainable
   Innovation at the University of Pittsburgh.
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NR 67
TC 125
Z9 139
U1 30
U2 287
PU ROYAL SOC
PI LONDON
PA 6-9 CARLTON HOUSE TERRACE, LONDON SW1Y 5AG, ENGLAND
SN 1742-5689
EI 1742-5662
J9 J R SOC INTERFACE
JI J. R. Soc. Interface
PD MAY 1
PY 2016
VL 13
IS 118
AR 20160113
DI 10.1098/rsif.2016.0113
PG 11
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA DP2IZ
UT WOS:000378313200011
PM 27146689
OA Green Published, Bronze
DA 2025-04-22
ER

PT J
AU Esperon-Rodriguez, M
   Rymer, PD
   Power, SA
   Barton, DN
   Cariñanos, P
   Dobbs, C
   Eleuterio, AA
   Escobedo, FJ
   Hauer, R
   Hermy, M
   Jahani, A
   Onyekwelu, JC
   Östberg, J
   Pataki, D
   Randrup, TB
   Rasmussen, T
   Roman, LA
   Russo, A
   Shackleton, C
   Solfjeld, I
   Doorn, NS
   Wells, MJ
   Wiström, B
   Yan, PB
   Yang, J
   Tjoelker, MG
AF Esperon-Rodriguez, Manuel
   Rymer, Paul D.
   Power, Sally A.
   Barton, David N.
   Carinanos, Paloma
   Dobbs, Cynnamon
   Eleuterio, Ana Alice
   Escobedo, Francisco J.
   Hauer, Richard
   Hermy, Martin
   Jahani, Ali
   Onyekwelu, Jonathan C.
   Ostberg, Johan
   Pataki, Diane
   Randrup, Thomas B.
   Rasmussen, Torres
   Roman, Lara A.
   Russo, Alessio
   Shackleton, Charlie
   Solfjeld, Ingjerd
   Doorn, Natalie S.
   Wells, Matthew J.
   Wistrom, Bjorn
   Yan, Pengbo
   Yang, Jun
   Tjoelker, Mark G.
TI Assessing climate risk to support urban forests in a changing climate
SO PLANTS PEOPLE PLANET
LA English
DT Article
DE tree failure; tree mortality; urban planning; urban sustainability;
   urban trees
ID TREE MORTALITY; VULNERABILITY; FRAMEWORK; CHALLENGES; INCREASES;
   SELECTION; SURVIVAL; DATABASE; IMPACT; PLANTS
AB Societal Impact Statement Globally, cities are planning for resilience through urban greening initiatives as governments understand the importance of urban forests in improving quality of life and mitigating climate change. However, the persistence of urban forests and the ecosystem benefits they provide are threatened by climate change, and systematic assessments of causes of tree dieback and mortality in urban environments are rare. Long-term monitoring studies and adaptive management are needed to identify and prevent climate change-driven failures and mortality. Research and monitoring when coupled with systematic forecasting will enable governments to incorporate climate change resilience into urban forestry planning. Future scenarios in which urban forests are resilient or in decline will depend on the management and planning actions we make today. A nivel mundial, las ciudades estan expandiendo las areas verdes a medida que los gobiernos comprenden la importancia de los bosques urbanos para mitigar el cambio climatico y mejorar la calidad de vida de los ciudadanos. Sin embargo, la supervivencia de los bosques urbanos y los servicios ecosistemicos que brindan se ven amenazados por el cambio climatico y actualmente, son muy raros los estudios sistematicos sobre las causas de la muerte de los arboles urbanos. Se necesitan estudios de monitoreo a largo plazo y de gestion adaptativa para identificar y prevenir la mortalidad en bosques urbanos provocada por el cambio climatico. Dicha investigacion y monitoreo, combinados con predicciones de clima, permitiran a los gobiernos mitigar los efectos adversos del cambio climatico a traves de la planificacion forestal urbana. Los escenarios futuros en los que los bosques urbanos sean resilientes o esten en declive dependeran de las acciones de gestion y planificacion que realicemos hoy. The management of urban forests is a key element of resilience planning in cities across the globe. Urban forests provide ecosystem services as well as other nature-based solutions to 4.2 billion people living in cities. However, to continue to do so effectively, urban forests need to be able to thrive in an increasingly changing climate. Trees in cities are vulnerable to extreme heat and drought events, which are predicted to increase in frequency and severity under climate change. Knowledge of species' vulnerability to climate change, therefore, is crucial to ensure provision of desired ecosystem benefits, improve species selection, maintain tree growth and reduce tree mortality, dieback and stress in urban forests. Yet, systematic assessments of causes of tree dieback and mortality in urban environments are rare. We reviewed the state of knowledge of tree mortality in urban forests globally, finding very few frameworks that enable detection of climate change impacts on urban forests and no long-term studies assessing climate change as a direct driver of urban tree dieback and mortality. The effects of climate change on urban forests remain poorly understood and quantified, constraining the ability of governments to incorporate climate change resilience into urban forestry planning.
C1 [Esperon-Rodriguez, Manuel; Rymer, Paul D.; Power, Sally A.; Tjoelker, Mark G.] Western Sydney Univ, Hawkesbury Inst Environm, Locked Bag 1797, Penrith, NSW 2751, Australia.
   [Barton, David N.] Norwegian Inst Nat Res NINA, Oslo, Norway.
   [Carinanos, Paloma] Univ Granada, Dept Bot, Fac Pharm, Granada, Spain.
   [Carinanos, Paloma] Univ Granada, Andalusian Inst Earth Syst Res, IISTA CEAMA, Granada, Spain.
   [Dobbs, Cynnamon] Univ Mayor, Fac Ciencias, Ctr Modelac & Monitoreo Ecosistemas, Santiago, Chile.
   [Eleuterio, Ana Alice] Univ Fed Integracao Latinoamer, Inst Latinoamer Econ Soc & Polit, Foz Do Iguacu, Brazil.
   [Escobedo, Francisco J.] US Forest Serv, Pacific Southwest Res Stn, USDA, Riverside, CA USA.
   [Hauer, Richard] Univ Wisconsin, Coll Nat Resources, Stevens Point, WI 54481 USA.
   [Hermy, Martin] Univ Leuven, Div Forest Nat & Landscape, Leuven, Belgium.
   [Jahani, Ali] Natl Dept Environm, Res Ctr Environm & Sustainable Dev, Assessment & Environm Risks Dept, Tehran, Iran.
   [Jahani, Ali] Natl Dept Environm, Coll Environm, Tehran, Iran.
   [Onyekwelu, Jonathan C.] Fed Univ Technol Akure, Dept Forestry & Wood Technol, Akure, Akure, Nigeria.
   [Ostberg, Johan; Randrup, Thomas B.; Wistrom, Bjorn] Swedish Univ Agr Sci, Dept Landscape Architecture Planning & Management, Uppsala, Sweden.
   [Pataki, Diane] Univ Utah, Sch Biol Sci, Salt Lake City, UT USA.
   [Pataki, Diane] Arizona State Univ, Sch Sustainabil, Tempe, AZ USA.
   [Rasmussen, Torres; Wells, Matthew J.] Oslo Kommune, Bymiljoetaten, Oslo, Norway.
   [Roman, Lara A.] US Forest Serv, Philadelphia Field Stn, USDA, Philadelphia, PA USA.
   [Russo, Alessio] Univ Gloucestershire, Sch Arts, Francis Close Hall Campus, Cheltenham, Glos, England.
   [Shackleton, Charlie] Rhodes Univ, Dept Environm Sci, Makanda, South Africa.
   [Solfjeld, Ingjerd] Norwegian Univ Life Sci NMBU, Fac Landscape & Soc, As, Norway.
   [Doorn, Natalie S.] US Forest Serv, Pacific Southwest Res Stn, USDA, Albany, CA USA.
   [Yan, Pengbo] Guilin Tourism Univ, Sch Tourism Management, Guilin, Peoples R China.
   [Yang, Jun] Tsinghua Univ, Dept Earth Syst Sci, Key Lab Earth Syst Modeling, Minist Educ, Beijing, Peoples R China.
   [Yang, Jun] Joint Ctr Global Change Studies JCGCS, Beijing, Peoples R China.
C3 Western Sydney University; Norwegian Institute Nature Research;
   University of Granada; Universidad de Cordoba; Universidad de Jaen;
   University of Granada; Instituto Interuniversitario de Investigacion del
   Sistema Tierra en Andalucia; Universidad Mayor; Universidade Federal da
   Integracao Latino-Americana; United States Department of Agriculture
   (USDA); United States Forest Service; University of Wisconsin System;
   University of Wisconsin Stevens Point; KU Leuven; Swedish University of
   Agricultural Sciences; Utah System of Higher Education; University of
   Utah; Arizona State University; Arizona State University-Tempe; United
   States Department of Agriculture (USDA); United States Forest Service;
   University of Gloucestershire; Rhodes University; Norwegian University
   of Life Sciences; United States Department of Agriculture (USDA); United
   States Forest Service; Guilin Tourism University; Tsinghua University
RP Esperon-Rodriguez, M (corresponding author), Western Sydney Univ, Hawkesbury Inst Environm, Locked Bag 1797, Penrith, NSW 2751, Australia.
EM m.esperon-rodriguez@westernsydney.edu.au
RI Esperon-Rodriguez, Manuel/H-3668-2019; Onyekwelu, Jonathan/K-7403-2012;
   Escobedo, Francisco/H-1286-2016; Eleuterio, Ana Alice/H-4268-2012; Yan,
   Pengbo/HSB-2308-2023; Carinanos, Paloma/K-5696-2014; Power,
   Sally/I-2923-2012; Pataki, Diane/F-9732-2011; Jahani, Ali/L-4850-2019;
   Barton, David/KGM-8862-2024; Randrup, Thomas/JCE-0718-2023; Hermy,
   Martin/A-3769-2009; Russo, Alessio/M-6352-2016; B. Randrup,
   Thomas/N-1650-2015; Shackleton, Charlie/GLV-1260-2022; Yang,
   Jun/KHW-4756-2024; Tjoelker, Mark/M-2413-2016
OI Russo, Alessio/0000-0002-0073-7243; Onyekwelu, Jonathan
   C./0000-0003-1473-178X; B. Randrup, Thomas/0000-0003-1368-3915; Dobbs,
   Cynnamon/0000-0001-9845-6660; Shackleton, Charlie/0000-0002-8489-6136;
   Pataki, Diane/0000-0001-7209-514X; Yang, Jun/0000-0003-0824-749X; Roman,
   Lara/0000-0001-5507-6406; Tjoelker, Mark/0000-0003-4607-5238; Rymer,
   Paul/0000-0003-0988-4351; Esperon-Rodriguez, Manuel/0000-0003-3649-2134
FU Hort Frontiers Green Cities Fund, Hort Frontiers strategic partnership
   initiative; Research Council of Norway; FORMAS [2016-20098]; Formas
   [2016-20098] Funding Source: Formas
FX We thank Leslie Brandt and Gregory McPherson (USDA Forest Service, USA),
   Jakub Kronenberg (University of Lodz, Poland), Shawn Landry (University
   of South Florida, USA) and Per Anker Pedersen (Faculty of Landscape and
   Society, Norwegian University of Life Sciences) for their thoughts and
   contributions. MER, PR, SP and MGT thank Leigh Staas (Macquarie
   University) and funding from the Hort Frontiers Green Cities Fund, part
   of the Hort Frontiers strategic partnership initiative developed by Hort
   Innovation, with co-investment from Macquarie University, Western Sydney
   University and the NSW Department of Planning, Industry and Environment
   and contributions from the Australian Government. DNB acknowledges
   support from the Research Council of Norway to the ENABLE project
   through the BiodivERsA COFUND 2015-2016 call for research proposals. BW
   acknowledges support from FORMAS (dia.nr 2016-20098). Finally, we thank
   the anonymous reviewers for their critical observations and thoughtful
   contributions that improved this work. The opinions and findings
   expressed in this paper are those of the authors and should not be
   construed to represent any official USDA or US Government determination
   or policy.
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NR 82
TC 26
Z9 28
U1 17
U2 169
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
EI 2572-2611
J9 PLANTS PEOPLE PLANET
JI Plants People Planet
PD MAY
PY 2022
VL 4
IS 3
BP 201
EP 213
DI 10.1002/ppp3.10240
EA JAN 2022
PG 13
WC Biodiversity Conservation; Plant Sciences; Ecology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Plant Sciences; Environmental Sciences &
   Ecology
GA 0T8RA
UT WOS:000743755700001
OA Green Published, gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Kalbar, PP
   Lokhande, S
AF Kalbar, Pradip P.
   Lokhande, Shweta
TI Need to adopt scaled decentralized systems in the water infrastructure
   to achieve sustainability and build resilience
SO WATER POLICY
LA English
DT Article
DE Decentralization; Resilience; Scale of decentralization; Sustainability;
   Urban water systems; Water and wastewater infrastructure
ID WASTE-WATER; EMERGING CONTAMINANTS; ENERGY; MANAGEMENT; PERFORMANCE;
   TECHNOLOGY; DEFINITION; SANITATION; SELECTION; CRITERIA
AB Urban water infrastructure (UWI) in cities faces enormous pressure to cope with increased water demands, handle extreme events and improve the service with minimum resource consumption and environmental impacts. The current study presents an approach for addressing the challenges in UWI, specifically in water supply and sewerage. The article argues a need for a paradigm shift that simultaneously includes the sustainability and resilience aspects throughout the life cycle of UWI. The article further highlights the issues in the prevailing approach of centralized infrastructure and demonstrates the necessity of moving away from such an approach and shifting towards decentralized infrastructure. Understanding the factors accelerating decentralization to attain a paradigm shift to decentralization is necessary. Hence, the study first identifies the drivers of decentralization. Secondly, the need for an appropriate scale to be considered while implementing decentralized UWI is highlighted in this study. Furthermore, the effect of the scale of infrastructure is discussed through the trade-offs between life-cycle costs, ease of governance, resilience and recycling benefits. The approach of scaled decentralization outlined in the study will be useful for developing countries to plan new infrastructure and also for developed countries to replace the ageing UWI to create future sustainable and resilient urban systems
C1 [Kalbar, Pradip P.; Lokhande, Shweta] Indian Inst Technol, Ctr Urban Sci & Engn CUSE, Mumbai 400076, Maharashtra, India.
   [Kalbar, Pradip P.] Indian Inst Technol, Interdisciplinary Programme Climate Studies, Mumbai 400076, Maharashtra, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Bombay; Indian Institute of Technology System (IIT
   System); Indian Institute of Technology (IIT) - Bombay
RP Kalbar, PP (corresponding author), Indian Inst Technol, Ctr Urban Sci & Engn CUSE, Mumbai 400076, Maharashtra, India.; Kalbar, PP (corresponding author), Indian Inst Technol, Interdisciplinary Programme Climate Studies, Mumbai 400076, Maharashtra, India.
EM kalbar@iitb.ac.in
RI Kalbar, Pradip/N-2734-2015
OI Kalbar, Pradip/0000-0002-1436-3609
FU Department of Science and Technology, Government of India
   [DST/TM/EWO/WTI/2K19/UWS-03(C4)]
FX This work has received partial funding for the work from the Department
   of Science and Technology, Government of India through the project 'Fast
   Forward to SDG6: Acceptable and Affordable Water in Secondary Indian
   Cities (4WARD)' (project no. DST/TM/EWO/WTI/2K19/UWS-03(C4)).
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NR 75
TC 12
Z9 13
U1 4
U2 12
PU IWA PUBLISHING
PI LONDON
PA REPUBLIC-EXPORT BLDG, UNITS 1 04 & 1 05, 1 CLOVE CRESCENT, LONDON,
   ENGLAND
SN 1366-7017
EI 1996-9759
J9 WATER POLICY
JI Water Policy
PD APR
PY 2023
VL 25
IS 4
BP 359
EP 378
DI 10.2166/wp.2023.267
EA MAR 2023
PG 20
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA E3OU3
UT WOS:000949828400001
OA gold
DA 2025-04-22
ER

PT J
AU Hou, J
AF Hou, Jeffrey
TI Governing urban gardens for resilient cities: Examining the 'Garden City
   Initiative' in Taipei
SO URBAN STUDIES
LA English
DT Article
DE environment; sustainability; governance; local government; planning;
   policy; urban agriculture; urban gardens
ID COMMUNITY GARDENS; FOOD; AGRICULTURE; GOVERNANCE; SPACE; SUSTAINABILITY;
   INCLUSION; SYSTEMS
AB With rising concerns for food security and climate adaptation, urban gardening and urban agriculture have emerged as a rising agenda for urban resilience around the world. In East Asia, a variety of initiatives have emerged in recent years with different levels of institutional support. Focusing on Taipei, where a vibrant urban agriculture movement has been unleashed in recent years, this article examines the ongoing outcomes of the city's new 'Garden City Initiative', which supports the establishment of urban gardens including community gardens, rooftop gardens and school gardens. Based on interviews and participant observations during the initial period of advocacy, planning and implementation between 2014 and 2017, this study examines the background of the programme, the involvement of governmental and non-governmental actors and the programme's ongoing implementation. Based on the findings, the article further reflects upon their implications for the practices of urban governance in the face of contemporary environmental, political and social challenges. The case of Taipei suggests a model in which policy formation and implementation may require opportunistic actions involving a variety of actors and organisations in both institutions and the civil society. Rather than dramatic changes or instant institutional realignment, the effort may require strategic adaptation of the existing bureaucratic structure, while mobilising its strengths and resources. In addition, despite the critical role of civil society organisations, the Taipei case also illustrates a considerable public-sector investment, distinct from the predominant model of neoliberal governance that has been associated with urban gardening programmes elsewhere.
C1 [Hou, Jeffrey] Univ Washington, Dept Landscape Architecture, Box 355734, Seattle, WA 98195 USA.
C3 University of Washington; University of Washington Seattle
RP Hou, J (corresponding author), Univ Washington, Dept Landscape Architecture, Box 355734, Seattle, WA 98195 USA.
EM jhou@uw.edu
RI Hou, Jeffrey/AAC-4502-2020
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NR 52
TC 32
Z9 33
U1 10
U2 79
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD MAY
PY 2020
VL 57
IS 7
SI SI
BP 1398
EP 1416
DI 10.1177/0042098018778671
PG 19
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA LN4MU
UT WOS:000532914400003
DA 2025-04-22
ER

PT J
AU Seelig, S
AF Seelig, Sebastian
TI A master plan for low carbon and resilient housing: The 35 ha area in
   Hashtgerd New Town, Iran
SO CITIES
LA English
DT Article
DE Iran; Climate change; Urban planning; Urban design; Mitigation;
   Adaptation
ID URBANIZATION
AB With 60% of the population younger than 26 years, a need of about 1.5 million residential units per year for the next 5 years and the necessity of mitigating its rapidly growing GHG emissions together with adapting cities to the expected drastic effects of climate change, Iran's urban agglomerations are facing tremendous challenges now and in the future. The paper presents interim findings of the German-Iranian research initiative "Young Cities" (2005-2013) that investigates approaches for these immense challenges. The project aims at developing energy-efficient and resilient housing in a real-life pilot project, the 35 ha area in Hashtgerd New Town in the Tehran province. The article explores the framing conditions and the master plan of this pilot and identifies four key planning strategies. Besides applying climate-sensitive urban form, the project stresses the need to develop culturally adapted building typologies for reduced heating and cooling, an efficient public transport in a mixed and dense urban structure and integrated water and energy systems on the neighborhood level. Simulations of these planning approaches have proven a significant reduction of energy- and resource consumption and the capacity of the design to adapt to (a potentially changing) environment. These promising strategies for energy-efficiency and resilience were transferred into a legally binding comprehensive plan commissioned in October 2010, though the major challenge in the second phase of the project (2011-2013) will be making these innovations a built reality. (C) 2011 Elsevier Ltd. All rights reserved.
C1 Tech Univ Berlin, D-10623 Berlin, Germany.
C3 Technical University of Berlin
RP Seelig, S (corresponding author), Tech Univ Berlin, Hardenbergstr 40A, D-10623 Berlin, Germany.
EM seelig@youngcities.org
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NR 44
TC 19
Z9 21
U1 5
U2 49
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2011
VL 28
IS 6
SI SI
BP 545
EP 556
DI 10.1016/j.cities.2011.06.001
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 841BU
UT WOS:000296488100007
DA 2025-04-22
ER

PT J
AU Pisello, AL
   Rosso, F
   Castaldo, VL
   Piselli, C
   Fabiani, C
   Cotana, F
AF Pisello, A. L.
   Rosso, F.
   Castaldo, V. L.
   Piselli, C.
   Fabiani, C.
   Cotana, F.
TI The role of building occupants' education in their resilience to
   climate-change related events
SO ENERGY AND BUILDINGS
LA English
DT Article
DE Urban Heat Island; Heat waves; Urban resilience; Population
   vulnerability and awareness; Built environment; Climate change
   adaptation; Building occupant education
ID HEAT WAVES; ENERGY; MORTALITY; TEMPERATURE; VULNERABILITY; IMPACTS;
   CONSUMPTION; COMFORT; INCOME; CITIES
AB Urban climate change phenomena, exacerbated by increasingly frequent heat waves, represent an urgent environmental research issue to be further investigated and counteracted through multidisciplinary approaches covering both engineering and socio-environmental sciences. After acknowledging that Urban Heat Island hugely affects building thermal-energy behavior, recent contributions deal with its effect on vulnerable population groups in terms of their exposure risk to health diseases even worsened by energy poverty. In this view, the paper investigates the role played by occupants' education and their knowledge of environmental risks and climate change-related events, by exploring the opportunity to improve their information level as trigger for improving their climate change behavioral resilience and reducing their health risk in the built environment during extreme events. To this aim, a novel widespread questionnaire was elaborated and submitted to more than 300 individuals with varying their educational background and personal characteristics, seasonal period, submission mode, temporal closeness to heat wave emergency. Key findings showed that participants' educational background represents a clear way to drive environmentally aware behaviors minimizing the consequent health risk imputable to urban overheating and other environmental hazards such as heat waves. In fact, a higher level of awareness and consciousness may lead to a better adaptation capability to such climate change related hazards since they tend to implement conscious and resilient behavioral attitudes to minimize their indoor thermal stress at home (0.8 versus 1.4 points awareness level about mitigation strategies). Therefore, this paper demonstrated that informative campaigns may represent an effective strategy for making building occupants more resilient to climate change toward dedicated environmental management solutions and policies taking advantage of educational vehicles. (C) 2017 Elsevier B.V. All rights reserved.
C1 [Pisello, A. L.; Cotana, F.] Univ Perugia, Dept Engn, Via G Duranti 93, I-06125 Perugia, Italy.
   [Rosso, F.] Sapienza Univ Rome, DICEA, Via Eudossiana 18, I-00184 Rome, Italy.
   [Castaldo, V. L.; Piselli, C.; Fabiani, C.] Univ Perugia, CIRIAF Interuniv Res Ctr Pollut & Environm M Fell, Via G Duranti 63, I-06125 Perugia, Italy.
C3 University of Perugia; Sapienza University Rome; University of Perugia
RP Pisello, AL (corresponding author), Univ Perugia, Dept Engn, Via G Duranti 93, I-06125 Perugia, Italy.
EM pisello@crbnet.it; federica.rosso@uniroma1.it; castaldo@crbnet.it;
   piselli@crbnet.it; fabiani@crbnet.it; cotana@crbnet.it
RI Piselli, Cristina/AGL-4455-2022; Rosso, Federica/AAL-3321-2020; Fabiani,
   Claudia/GZG-5184-2022
OI Piselli, Cristina/0000-0003-1856-3103; CASTALDO, VERONICA
   LUCIA/0009-0006-8599-0577; Fabiani, Claudia/0000-0001-9198-8162; Rosso,
   Federica/0000-0003-2151-3780
FU UNESCO Chair "Water Resources Management and Culture"; H2CU; Honors
   Center of Italian Universities; Sapienza University of Rome
FX A.L. Pisello's acknowledgments are due to the UNESCO Chair "Water
   Resources Management and Culture", for supporting her research. This
   work was carried on also thanks to the support of H2CU, the Honors
   Center of Italian Universities, for the international scientific
   cooperation, and thanks to Sapienza University of Rome for funding
   starting grants to F. Rosso.
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NR 58
TC 43
Z9 44
U1 5
U2 48
PU ELSEVIER SCIENCE SA
PI LAUSANNE
PA PO BOX 564, 1001 LAUSANNE, SWITZERLAND
SN 0378-7788
EI 1872-6178
J9 ENERG BUILDINGS
JI Energy Build.
PD NOV 1
PY 2017
VL 154
BP 217
EP 231
DI 10.1016/j.enbuild.2017.08.024
PG 15
WC Construction & Building Technology; Energy & Fuels; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Energy & Fuels; Engineering
GA FK6IN
UT WOS:000413607400019
DA 2025-04-22
ER

PT J
AU Zhang, MX
   Li, JX
   Wang, LN
   Xu, B
   Nie, WB
AF Zhang, Mengxian
   Li, Jiaxin
   Wang, Lina
   Xu, Bin
   Nie, Wenbin
TI The impact of connectivity in natural protected areas on the resilience
   of urban ecological networks: A research framework based on hierarchical
   disturbance scenario simulation
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Ecological network; Resilience; Complex networks; Hierarchical sources;
   Disturbance scenarios; Urbanization
ID LANDSCAPE CONNECTIVITY; ECOSYSTEM SERVICES; CIRCUIT-THEORY;
   NATURE-RESERVE; LAND-USE; CITY; BIOGEOGRAPHY; SECURITY
AB In the context of accelerating ecological fragmentation, it is urgent to enhance the interconnectivity of urban ecological patches to form a resilient ecological network (EN). The construction of a Natural Protected Area (NPA) system proposed in 2019 is the latest strategy implemented by China in protecting ecological spaces. However, the effectiveness of this strategy has not been adequately demonstrated. This study specifically analyzes the concrete impacts of the natural protected area system on the resilience of ecological networks (ENs). The economically developed Urban Agglomeration around Hangzhou Bay (UAHB) was chosen as an example for the argumentation. Firstly, we utilized circuit theory to construct an EN consisting of 173 ecological sources and 401 ecological corridors. Secondly, the ecological sources were categorized into three levels based on their connectivity values. Finally, a dynamic disturbance scenario simulation framework was constructed to evaluate the impact of NPA on the resilience of EN. The results indicated that: (1) The preceding 47% of ecological sources are crucial for maintaining the resilience of the EN; (2) Compared with other ecological spaces, NPAs have a 38% and 1100% greater effect on the resilience of the EN in first and second-level ecological sources, respectively, while its impact in third-level is 118% lower. This study innovatively investigates the differential impacts of hierarchical natural protected areas and natural unprotected areas on the ecological environment.
C1 [Zhang, Mengxian; Li, Jiaxin; Wang, Lina; Xu, Bin; Nie, Wenbin] Zhejiang A&F Univ, Coll Landscape Architecture, Hangzhou 311300, Peoples R China.
C3 Zhejiang A&F University
RP Xu, B; Nie, WB (corresponding author), Zhejiang A&F Univ, Coll Landscape Architecture, Hangzhou 311300, Peoples R China.
EM 200005@zafu.edu.cn; niewenbin@zafu.edu.cn
RI zhang, Mengxian/HGC-6664-2022; 王, 立娜/GSD-4255-2022
OI Nie, Wenbin/0000-0001-9199-4255
FU Zhejiang Province key Research and Development Project [2019C02023];
   Zhejiang Provincial Soft Science Research Planning Project [2024C35023];
   Zhejiang A & F University Scientific Research Devel- opment Fund Project
   [2023LFR120]
FX This work was financially supported by Zhejiang Province key Research
   and Development Project under Grants No.2019C02023, Zhejiang Provincial
   Soft Science Research Planning Project No. 2024C35023 and Zhejiang A & F
   University Scientific Research Devel- opment Fund Project under Grants
   No. 2023LFR120.
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NR 112
TC 5
Z9 5
U1 47
U2 68
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD JUL
PY 2024
VL 164
AR 112144
DI 10.1016/j.ecolind.2024.112144
EA MAY 2024
PG 14
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA TY7R6
UT WOS:001244889600001
OA gold
DA 2025-04-22
ER

PT J
AU Wen, HW
   Hu, KY
   Nghiem, XH
   Acheampong, AO
AF Wen, Huwei
   Hu, Keyu
   Nghiem, Xuan-Hoa
   Acheampong, Alex O.
TI Urban climate adaptability and green total-factor productivity: Evidence
   from double dual machine learning and differences-in-differences
   techniques
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Green development; Climate change; Pilot policy; Double dual machine
   learning; Digital economy; China
ID INNOVATION EVIDENCE; ECONOMIC-GROWTH; EMISSIONS; VIEWS
AB Climate change has increasingly become a significant challenge to sustainable socio-economic development, and climate adaptation is a key issue that relevant research focuses on regional sustainable development models. By employing panel data between 2007 and 2020 from 284 Chinese prefecture-level cities, this study adopts quasi experimental methods, including a difference-in-differences design and double dual machine learning model, to study the impact of climate adaptability on green regional sustainable development. Empirical results confirm that the pilot policy of building climate-resilient cities significantly improves urban green total-factor productivity. Difference-in-difference models (derived from entropy-weight and propensity score matching) and double dual learning models also support the improving effect of regional green total-factor productivity after policy intervention. The digital economy has strengthened the green development effect of pilot policies for building climate-adaptive cities. In addition, policy interventions to build climate-adaptive cities promote green urban development by optimizing industrial development structures and enhancing economic growth resilience. In addition, climate adaptability can also attract highly skilled talent and high-quality enterprises, facilitate science and technological progress in urban areas, and thus promoting the green development of cities in China. This study objectively evaluates the effects of climate policies and provides insights for global adaptation to climate change and optimization of public policies.
C1 [Wen, Huwei; Hu, Keyu] Nanchang Univ, Sch Econ & Management, Nanchang 330031, Peoples R China.
   [Nghiem, Xuan-Hoa] Vietnam Natl Univ, Int Sch, Hanoi, Vietnam.
   [Acheampong, Alex O.] Bond Univ, Bond Business Sch, Gold Coast, Australia.
   [Acheampong, Alex O.] Bond Univ, Ctr Data Analyt, Gold Coast, Australia.
C3 Nanchang University; Vietnam National University Hanoi (VNU Hanoi)
   System; VNU International School (VNU-IS); Bond University; Bond
   University
RP Acheampong, AO (corresponding author), Bond Univ, Bond Business Sch, Gold Coast, Australia.
EM wenhuwei@ncu.edu.cn; 5402121073@email.ncu.edu.cn; hoanx@vnu.edu.vn;
   aacheamp@bond.edu.au
RI Acheampong, Alex O./AFU-9688-2022; Hu, Keyu/MGV-9565-2025; Wen,
   Huwei/ABX-7160-2022
OI Nghiem, Xuan Hoa/0000-0003-2292-0257; Acheampong, Alex
   Opoku/0000-0002-5462-5466; Wen, Huwei/0000-0002-8422-1593
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NR 46
TC 42
Z9 42
U1 89
U2 277
PU ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
PI LONDON
PA 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND
SN 0301-4797
EI 1095-8630
J9 J ENVIRON MANAGE
JI J. Environ. Manage.
PD JAN 15
PY 2024
VL 350
AR 119588
DI 10.1016/j.jenvman.2023.119588
EA NOV 2023
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA CK3L8
UT WOS:001125106700001
PM 38000270
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Brunetta, G
   Ceravolo, R
   Barbieri, CA
   Borghini, A
   de Carlo, F
   Mela, A
   Beltramo, S
   Longhi, A
   De Lucia, G
   Ferraris, S
   Pezzoli, A
   Quagliolo, C
   Salata, S
   Voghera, A
AF Brunetta, Grazia
   Ceravolo, Rosario
   Barbieri, Carlo Alberto
   Borghini, Alberto
   de Carlo, Francesca
   Mela, Alfredo
   Beltramo, Silvia
   Longhi, Andrea
   De Lucia, Giulia
   Ferraris, Stefano
   Pezzoli, Alessandro
   Quagliolo, Carlotta
   Salata, Stefano
   Voghera, Angioletta
TI Territorial Resilience: Toward a Proactive Meaning for Spatial Planning
SO SUSTAINABILITY
LA English
DT Article
DE resilience; spatial planning; interdisciplinary; co-evolution;
   adaptation; transformation
ID ECOSYSTEM SERVICES; COMMUNITY RESILIENCE; SOCIAL RESILIENCE; URBAN
   RESILIENCE; VULNERABILITY; SYSTEMS; ADAPTATION; FRAMEWORK; CITIES;
   INFRASTRUCTURE
AB The international debate on resilience has grown around the ability of a community to prepare for and adapt to natural disasters, with a growing interest in holistically understanding complex systems. Although the concept of resilience has been investigated from different perspectives, the lack of understanding of its conceptual comprehensive aspects presents strong limitations for spatial planning and for the adoption of policies and programs for its measurement and achievement. In this paper, we refer to territorial resilience as an emerging concept capable of aiding the decision-making process of identifying vulnerabilities and improving the transformation of socio-ecological and technological systems (SETSs). Here, we explore the epistemology of resilience, reviewing the origins and the evolution of this term, providing evidence on how this conceptual umbrella is used by different disciplines to tackle problem-solving that arises from disaster management and command-control practices to augment the robustness. Assuming the SETSs paradigm, the seismic and structural engineering, social sciences and history, urban planning and climatology perspectives intersects providing different analytical levels of resilience, including vulnerability and patrimony from a community and cultural perspective. We conclude that territorial resilience surpasses the analytical barriers between different disciplines, providing a useful concept related to complex problem-solving phenomena for land use planning, opening a new research question: how can territorial resilience be measured, acknowledging different units and levels of analysis aiding decision-making in spatial plans and projects? In attempting to understand a resilient system, quantitative and qualitative measurements are crucial to supporting planning decisions.
C1 [Brunetta, Grazia; Barbieri, Carlo Alberto; Borghini, Alberto; de Carlo, Francesca; Mela, Alfredo; Beltramo, Silvia; Longhi, Andrea; Pezzoli, Alessandro; Quagliolo, Carlotta; Salata, Stefano; Voghera, Angioletta] Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, I-10125 Turin, Italy.
   [Ceravolo, Rosario; De Lucia, Giulia] Politecn Torino, Responsible Risk Resilience Ctr, Dept Struct Geotech & Bldg Engn, I-10129 Turin, Italy.
   [Ferraris, Stefano] Univ Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, I-10124 Turin, Italy.
C3 Polytechnic University of Turin; Polytechnic University of Turin;
   University of Turin
RP Salata, S (corresponding author), Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, I-10125 Turin, Italy.
EM grazia.brunetta@polito.it; rosario.ceravolo@polito.it;
   carloalberto.barbieri@polito.it; alberto.borghini@polito.it;
   francesca.decarlo@polito.it; alfredo.mela@polito.it;
   silvia.beltramo@polito.it; andrea.longhi@polito.it;
   giulia.delucia@polito.it; stefano.ferraris@polito.it;
   alessandro.pezzoli@polito.it; carlotta.quagliolo@polito.it;
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NR 105
TC 47
Z9 48
U1 3
U2 58
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR 2
PY 2019
VL 11
IS 8
AR 2286
DI 10.3390/su11082286
PG 17
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA HX9TU
UT WOS:000467752200099
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Scharf, B
   Kogler, M
   Kraus, F
   Perez, IG
   Garcia, LG
AF Scharf, Bernhard
   Kogler, Martha
   Kraus, Florian
   Garcia Perez, Igone
   Gutierrez Garcia, Laura
TI NBS Impact Evaluation with GREENPASS Methodology Shown by the Case Study
   'Fischbeker Hofe' in Hamburg/Germany
SO SUSTAINABILITY
LA English
DT Article
DE climate resilience; urban planning; nature-based solutions; decision
   making tools; greenpass
ID THERMAL COMFORT; IMPROVE; CITIES
AB The implementation of nature-based solutions (NBS) in urban regeneration aims to improve citizens' health and well-being. Therefore, tools need to be applied to identify the most suitable and efficient location and type of NBS. Within the CLEVER-cities H2020 project, the Greenpass method has been chosen to evaluate different design solutions regarding thermal comfort and physiological equivalent temperature (PET), energy, water and air fluxes. The Greenpass system comprises of standardized tools, reports and a unique set of Key Performance Score (KPS) and Key Performance Indicators (KPI). This paper deals with the impact assessment of NBS by the use of the innovative Greenpass system for the CLEVER-cities project 'Fischbeker Hofe' in Hamburg, Germany to ensure human health and well-being improvements for the citizens. To that end and considering the climate change context, thermal comfort is a KPI with high relevance in terms of the NBS co-benefits. Based on the PET within a project area Greenpass calculates the Thermal Comfort Score (TCS). The share of the different PET classes within the project area is multiplied with a weighting factor and summarized to the TCS. The results of the climate resilience analysis of the urban development area 'Fischbeker Hofe' in Hamburg are presented and discussed in comparison to a conventional architecture that disregards NBS, showing improvement with regards to four out of five KPS. Based on the evaluation results, advice is given to the co-creative design team on how to further improve the design towards climate resilience. The Greenpass system has proven to be a powerful and tailored tool to support climate resilient urban design and architecture. It provides a standardized and comprehensible but still scientific basis for decisions in a highly efficient and understandable way.
C1 [Scharf, Bernhard] Univ Life Sci & Nat Resources, Inst Soil Bioengn & Landscape Construct, A-1190 Vienna, Austria.
   [Scharf, Bernhard; Kogler, Martha; Kraus, Florian] Green4Cities GmbH, A-1180 Vienna, Austria.
   [Scharf, Bernhard; Kraus, Florian] GREENPASS GmbH, A-1180 Vienna, Austria.
   [Garcia Perez, Igone; Gutierrez Garcia, Laura] TECNALIA, Basque Res & Technol Alliance BRTA, Derio 48160, Spain.
   [Garcia Perez, Igone] Univ Pontificia Comillas, Dept Mech Engn, ICAI, Madrid 28015, Spain.
C3 Comillas Pontifical University
RP Scharf, B (corresponding author), Univ Life Sci & Nat Resources, Inst Soil Bioengn & Landscape Construct, A-1190 Vienna, Austria.; Scharf, B; Kogler, M (corresponding author), Green4Cities GmbH, A-1180 Vienna, Austria.; Scharf, B (corresponding author), GREENPASS GmbH, A-1180 Vienna, Austria.
EM bernhard.scharf@boku.ac.at; martha.kogler@green4cities.com;
   florian.kraus@greenpass.io; igone.garcia@tecnalia.com;
   laura.gutierrez@tecnalia.com
OI Garcia, IgoneG_TECNALIA/0000-0003-0524-1826; Scharf,
   Bernhard/0000-0002-8569-0885
FU EU; European Union [776604]; H2020 Societal Challenges Programme
   [776604] Funding Source: H2020 Societal Challenges Programme
FX This project has been applied in the frame of EU H2020 Project
   CLEVER-cities funded from the European Union's Horizon 2020 innovation
   action program under grant agreement No 776604.
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Z9 4
U1 2
U2 18
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2021
VL 13
IS 16
AR 9167
DI 10.3390/su13169167
PG 20
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA UH3PP
UT WOS:000689847700001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Davoudi, S
AF Davoudi, Simin
TI Climate change, securitisation of nature, and resilient urbanism
SO ENVIRONMENT AND PLANNING C-GOVERNMENT AND POLICY
LA English
DT Article
DE nature; climate change; risk security; emergency; postpolitics;
   resilient urbanism
ID RISK; SECURITY; POLITICS; FRAMEWORK; CITIES; CITY
AB Climate change is a powerful reminder of the interdependencies of the humannature relationship and the fallacy of the modernist assumption about our ability to tame nature for our exploitation with little or no consequences. However, it is argued that such reflexivity is being subverted by the dominant discourses of climate change which portray: nature as risk, our relation to it in terms of security, and the quest for urban resilience as emergency planning. By construing nature as a threat to rather than an asset for cities, they signify a departure from sustainability discourses. They represent a hark back to a premodern conception of human-nature relations that was centred on what nature does to us rather than what we do to nature. Seeing nature as risk ushers in deep concerns with security. The `risk society' becomes entwined with the security society. This paper examines the political implications of this discursive shift and argues that, as securitisation becomes the hegemonic discourse of our time, the postpolitics of hope, which underpinned sustainability, is giving way to the postpolitics of fear which underlies climate change.
C1 Newcastle Univ, Sch Architecture Planning & Landscape, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England.
C3 Newcastle University - UK
RP Davoudi, S (corresponding author), Newcastle Univ, Sch Architecture Planning & Landscape, Claremont Tower, Newcastle Upon Tyne NE1 7RU, Tyne & Wear, England.
EM simin.davoudi@ncl.ac.uk
OI Davoudi, Simin/0000-0001-6299-3675
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NR 96
TC 52
Z9 60
U1 2
U2 54
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0263-774X
EI 1472-3425
J9 ENVIRON PLANN C
JI Environ. Plan. C-Gov. Policy
PY 2014
VL 32
IS 2
SI SI
BP 360
EP 375
DI 10.1068/c12269
PG 16
WC Environmental Studies; Public Administration
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public Administration
GA AE9UG
UT WOS:000334355400010
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Long, J
   Rice, JL
AF Long, Joshua
   Rice, Jennifer L.
TI From sustainable urbanism to climate urbanism
SO URBAN STUDIES
LA English
DT Article
DE climate change; climate urbanism; displacement; gentrification;
   environment; sustainability; social justice; theory
ID POLITICS; CITY; CITIES; RESILIENCE; CARBON; GENTRIFICATION;
   VULNERABILITY; DISPLACEMENT; ECOLOGY; POLICY
AB As the negative impacts of climate change become increasingly apparent, many city leaders and policymakers have begun to regard climate action as both a fiscal challenge and strategic economic opportunity. However, addressing the increasingly evident threats of climate change in the neoliberal, post-financial-crisis city raises several questions about its equitable implementation. This paper suggests that the prioritisation of a specific mode of climate resilient urban development represents a departure from the previous decades' movement toward sustainable urbanism. We refer to this new development paradigm as climate urbanism', a policy orientation that (1) promotes cities as the most viable and appropriate sites of climate action and (2) prioritises efforts to protect the physical and digital infrastructures of urban economies from the hazards associated with climate change. We argue that the potential social justice impacts of climate urbanism have not been fully interrogated. Certainly, cities are appropriate sites for addressing climate change, but in the current neoliberal context, the transition from policy rhetoric to climate action presents a potentially problematic landscape of inequality and injustice. With that in mind, this paper offers a critical lens to evaluate the merits of climate urbanism and to interrogate its potential outcomes.
C1 [Long, Joshua] Southwestern Univ, Georgetown, TX USA.
   [Rice, Jennifer L.] Univ Georgia, Athens, GA 30602 USA.
C3 University System of Georgia; University of Georgia
RP Long, J (corresponding author), Southwestern Univ, Environm Studies, 1001 E Univ Ave,Box 7376, Georgetown, TX 78626 USA.
EM jlong@southwestern.edu
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NR 76
TC 152
Z9 166
U1 29
U2 216
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD APR
PY 2019
VL 56
IS 5
BP 992
EP 1008
DI 10.1177/0042098018770846
PG 17
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA HQ8KE
UT WOS:000462672800009
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Bao, YX
   Leung, MK
   Poon, D
   Xiang, CY
AF Bao, Yuxin
   Leung, M. K.
   Poon, Dicken
   Xiang, Changying
TI Integrating vertical farm into low-carbon high-rise building in
   high-density context: A design case study in Hong Kong
SO JOURNAL OF BUILDING ENGINEERING
LA English
DT Article
DE Vertical farming; Residential high-rise; Self-sufficient community;
   BIPV; Post-pandemic; Low-carbon living; Urban resilience
ID SYSTEMS; CITY; SUSTAINABILITY; STRATEGIES; CLIMATE
AB Today's world faces multiple challenges, including climate change, biodiversity loss, and food security. In addition, in the post-pandemic era, there is an urgent need to re-design urban habitats to reduce the epidemic's enduring impacts and reconnect citizens with healthy community activities. As a city with the top population density level in the world, Hong Kong is home to many high-rise communities. This article took the architectural design competition "Green Tower Hong Kong" as an entry point to discuss the technical feasibility and design strategies of integrating high-rise residential buildings with urban agriculture to improve urban food security, enhance on-site solar energy utilization, and develop a sustainable residential environment conducive to low-carbon living and working. The issue of how to improve the dietary structure of Hong Kong residents and reconnect them through space design was focused. Finally, taking the site of Kwun Tong Center as the case study, a resilient residential high-rise building integrated with shared gardens and greenhouses was proposed with a technical-oriented methodology and optimization framework. The final design of mixed-use buildings can provide apartments for 2500 individuals, produce 340,750 kg of vegetables with 156 % self-sufficiency, and generate electricity of 1,080,000 kWh annually. This paper examines strategies for integrating urban agriculture into high-rise residential buildings in high-density urban environments. It proposes a technology- based design optimization method, offering a reference for future explorations of low-carbon, resilient communities.
C1 [Bao, Yuxin; Xiang, Changying] Hong Kong Univ Sci & Technol, Div Integrat Syst & Design, Hong Kong, Peoples R China.
   [Leung, M. K.; Poon, Dicken] Behave Ltd, Hong Kong, Peoples R China.
   [Leung, M. K.; Poon, Dicken] Ronald Lu & Partners Hong Kong Ltd, Hong Kong, Peoples R China.
C3 Hong Kong University of Science & Technology
RP Xiang, CY (corresponding author), Hong Kong Univ Sci & Technol, Div Integrat Syst & Design, Hong Kong, Peoples R China.
EM changyingx@ust.hk
RI Xiang, Changying/ADY-7799-2022
OI BAO, Yuxin/0009-0008-9537-2726; Xiang, Changying/0000-0002-8271-0801
FU Hong Kong University of Science and Technology [R9832]; HKUST; Hong Kong
   Research Grants Committee
FX This study was supported by the Research Startup Fund (R9832) at the
   Hong Kong University of Science and Technology. The authors sincerely
   thank HKUST and the Hong Kong Research Grants Committee for their
   support. They would also like to express their heartfelt gratitude to
   Professor Wong Kam-sing for his invaluable comments and feedback during
   the revision process of this paper. Additionally, the authors would like
   to thank Mr. Nathan Yu, a former employee of Behave, for his valuable
   assistance in completing this work.
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NR 90
TC 2
Z9 2
U1 28
U2 31
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
EI 2352-7102
J9 J BUILD ENG
JI J. Build. Eng.
PD NOV 1
PY 2024
VL 96
AR 110472
DI 10.1016/j.jobe.2024.110472
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA E3E8X
UT WOS:001301875300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Puntub, W
   Greiving, S
   Birkmann, J
AF Puntub, Wiriya
   Greiving, Stefan
   Birkmann, Joern
TI Framework for collaborative local climate adaptation scenario
   development- nexus between climate resilience, public health service and
   spatial planning
SO INTERNATIONAL JOURNAL OF CLIMATE CHANGE STRATEGIES AND MANAGEMENT
LA English
DT Article
DE Climate risk; Local climate adaptation scenario; Climate resilience;
   Public health; Spatial planning
AB Purpose-The interaction between urban development and climate change significantly impacts local public health services. Unfortunately, cities and involved institutions often fail to prioritize and integrate spatial planning when dealing with these unprecedented future challenges. This study aims to offer Health Integrative Climate Resilience and Adaptation Future (HICRAF), an innovative planning framework that systematically operationalizes future climate risks and their impact on local public health services. Design/methodology/approach-HICRAF is developed based on the intermix of explorative and normative scenario planning approaches. Mixed methods of quantitative and qualitative techniques were applied to develop and operationalize the local climate adaptation scenarios through stakeholder participation. The framework demonstrates how different methods and scales (spatial and temporal) can be linked to exhibit climate risk outcomes of different future pathways. Findings-The practicality of HICRAF was demonstrated in Khon Kaen city, where it bridged the gaps between global climate trajectories and local climate adaptation scenarios. It also highlights the need to consider intertwining spatial and systemic risks in local infrastructure operations. Although HICRAF has gained political buy-in and fostered the establishment of stakeholder discourse on climate-resilient futures, further research is needed to enhance its robustness and replicability. Originality/value-This paper proposes a novel planning framework, HICRAF, that can systematically operationalize the future challenges of unprecedented climate change and urban development changes for the local public health service. The demonstration of HICRAF in Khon Kaen city provides empirical evidence of its implement ability and upscaling potential.
C1 [Puntub, Wiriya; Greiving, Stefan] TU Dortmund Univ, Dept Spatial Planning, Dortmund, Germany.
   [Birkmann, Joern] Univ Stuttgart, Inst Spatial & Reg Planning IREUS, Stuttgart, Germany.
C3 Dortmund University of Technology; University of Stuttgart
RP Puntub, W (corresponding author), TU Dortmund Univ, Dept Spatial Planning, Dortmund, Germany.
EM wiriya.puntub@tu-dortmund.de; stefan.greiving@tu-dortmund.de;
   joern.birkmann@ireus.uni-stuttgart.de
FU Human Research Ethics Committee of Khon Kaen Hospital [KH 0032.002/259]
FX Our sincere thanks go to Mr. Surapong Khamtanit, Dr. Benjawan Tawatsupa,
   Khon Kaen city stakeholders and experts, Thai government agencies, as
   well as colleagues & friends who contributed their time and input to
   this research. The authors declare no conflict of interest. Ethics
   approval for this research was obtained from the Human Research Ethics
   Committee of Khon Kaen Hospital (Reference: KH 0032.002/259).
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NR 59
TC 0
Z9 0
U1 3
U2 3
PU EMERALD GROUP PUBLISHING LTD
PI Leeds
PA Floor 5, Northspring 21-23 Wellington Street, Leeds, W YORKSHIRE,
   ENGLAND
SN 1756-8692
EI 1756-8706
J9 INT J CLIM CHANG STR
JI Int. J. Clim. Chang. Strateg. Manag.
PD NOV 25
PY 2024
VL 17
IS 1
BP 311
EP 332
DI 10.1108/IJCCSM-09-2023-0110
EA NOV 2024
PG 22
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA U5A6M
UT WOS:001361099800001
OA gold
DA 2025-04-22
ER

PT J
AU Soto-Montes-de-Oca, G
   Cruz-Bello, GM
   Bark, RH
AF Soto-Montes-de-Oca, Gloria
   Cruz-Bello, Gustavo M.
   Bark, Rosalind H.
TI Enhancing megacities' resilience to flood hazard through peri-urban
   nature-based solutions: Evidence from Mexico City
SO CITIES
LA English
DT Article
DE Nature-based solutions; Urban floods; Peri-urban areas; Water flow
   regulating ecosystem service; Mexico City; Spatial analysis
ID SUPPLY-AND-DEMAND; MAPPING ECOSYSTEM SERVICES; GREEN INFRASTRUCTURE;
   INSURANCE VALUE; MANAGEMENT
AB Floods are one of the most frequent natural hazards in almost every country, with climate change exacerbating their frequency and intensity. Nature-based solutions (NbS) can be a cost-effective way to make human settlements more resilient to flooding. However, decision-makers need reliable information on which to base NbS policy and funding. This research estimates the potential of peri-urban NbS to regulate water flow and the benefits downstream through the development of supply and demand indicators for the context of complex megacities. In our Mexico City case study the supply indicator is the runoff coefficient, which is spatially estimated across peri-urban areas, and the economic value is estimated using replacement cost (grey infrastructure). The demand indicator identifies floodprone areas based on spatially explicit ponding events and avoided costs of insurance flood claims data and estimates with parametric cost functions. The supply indicator provides straightforward information for decisionmakers to spatially target conservation in peri-urban areas where runoff coefficients are high combined with flood-prone areas, while the lowest coefficients reinforce the importance of policies for protected areas. In combination with demand indicator information, we find NbS in peri-urban upstream catchments is cost-effective compared to avoidable flood-related costs and alternative investments in grey infrastructure.
C1 [Soto-Montes-de-Oca, Gloria; Cruz-Bello, Gustavo M.] Metropolitan Autonomous Univ UAM, Dept Social Sci, Ave Vasco de Quiroga 4871, Cuajimalpa 05348, DF, Mexico.
   [Soto-Montes-de-Oca, Gloria; Bark, Rosalind H.] Univ East Anglia, Sch Environm Sci, Ctr Social & Econ Res Global Environm, Norwich, England.
   [Bark, Rosalind H.] Univ East Anglia, Sch Environm Sci, Norwich Res Pk, Norwich NR4 7JT, England.
C3 University of East Anglia; University of East Anglia
RP Soto-Montes-de-Oca, G (corresponding author), Metropolitan Autonomous Univ UAM, Dept Social Sci, Ave Vasco de Quiroga 4871, Cuajimalpa 05348, DF, Mexico.
EM gsoto@cua.uam.mx; gcruz@cua.uam.mx; r.bark@uea.ac.uk
RI Bark, Rosalind/D-3278-2011; Soto-Montes-de-Oca, Gloria/GLR-0991-2022;
   Cruz-Bello, Gustavo M./GPW-9436-2022
OI Soto-Montes-de-Oca, Gloria/0000-0002-6370-2136; Cruz-Bello, Gustavo
   M./0000-0001-9118-6565
FU Division of Social Sciences and Humanities (Strengthening of Substantive
   Functions 2021); Department of Social Sciences of the Metropolitan
   Autonomous University, Mexico
FX This work was supported by the Division of Social Sciences and
   Humanities (Strengthening of Substantive Functions 2021) and the
   Department of Social Sciences of the Metropolitan Autonomous University,
   Mexico
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NR 78
TC 8
Z9 8
U1 17
U2 44
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2023
VL 143
AR 104571
DI 10.1016/j.cities.2023.104571
EA SEP 2023
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA X3SZ4
UT WOS:001097698900001
DA 2025-04-22
ER

PT J
AU Diaz, CG
   Zambrana-Vasquez, D
   Bartolome, C
AF Diaz, Carlota Garcia
   Zambrana-Vasquez, David
   Bartolome, Carmen
TI Building Resilient Cities: A Comprehensive Review of Climate Change
   Adaptation Indicators for Urban Design
SO ENERGIES
LA English
DT Review
DE climate change; climate change adaptation; urban areas; index; natural
   risk; indicators
ID VULNERABILITY; CITY; HEAT; CAPACITY; SUMMER; INDEX; TOOL
AB Urban areas generate more than 70% of the world's climate change emissions, mainly CO2, produced by the combustion of fossil fuels. Climate change is increasing cities' exposure to climate hazards, such as heat waves or floods. Therefore, there is a need to improve risk management with the inclusion of climate resilience in urban policy design. Despite improved urban climate monitoring, there are still relatively few scientific publications on climate change adaptation in urban areas. Adaptation to climate change is not achieved through specific action, but rather through the adoption and continuous implementation of adaptation actions such as housing rehabilitation, green space management and protection measures for vulnerable groups. This variety of actions makes it difficult not only to identify different indicators, but also to use common benchmarks. Considering the role of municipalities in adapting to climate change, it is crucial to identify adaptation indicators that serve as a basis for decision making, as well as evaluation methods that allow the effectiveness of planned and implemented measures in municipalities. It can be used to determine which measures increase the level of adaptation or lead to poor adaptation. Therefore, monitoring indicators makes it possible to evaluate the effectiveness of the measures, in addition to formulating new ones. This paper includes a literature review of existing index designed to address climate hazards and mitigate their impacts in urban areas.
C1 [Diaz, Carlota Garcia] Fdn CIRCE, Parque Empresarial Dinamiza,Avda Ranillas 3D, Zaragoza 50018, Spain.
   [Zambrana-Vasquez, David; Bartolome, Carmen] Univ Zaragoza, Fdn CIRCE, Inst Univ Invest Mixto CIRCE, Parque Empresarial Dinamiza,Avda Ranillas 3D, Zaragoza 50018, Spain.
C3 University of Zaragoza
RP Diaz, CG (corresponding author), Fdn CIRCE, Parque Empresarial Dinamiza,Avda Ranillas 3D, Zaragoza 50018, Spain.
EM cgarcia@fcirce.es; dazambrana@fcirce.es; cbartolome@fcirce.es
RI Zambrana Vasquez, David Alejandro/M-1688-2014
OI Zambrana Vasquez, David Alejandro/0000-0003-1093-5734
FU European Union
FX The authors express their gratitude to the REXUS project.
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NR 118
TC 4
Z9 4
U1 28
U2 59
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD APR
PY 2024
VL 17
IS 8
AR 1959
DI 10.3390/en17081959
PG 19
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA OV0S1
UT WOS:001209943300001
OA gold
DA 2025-04-22
ER

PT J
AU Bosseler, B
   Salomon, M
   Schlüter, M
   Rubinato, M
AF Bosseler, Bert
   Salomon, Mirko
   Schlueter, Marco
   Rubinato, Matteo
TI Living with Urban Flooding: A Continuous Learning Process for Local
   Municipalities and Lessons Learnt from the 2021 Events in Germany
SO WATER
LA English
DT Article
DE climate change; increased urbanization; flood adaptation; flood
   mitigation; resilient cities
ID SOCIAL VULNERABILITY; DRAINAGE SYSTEMS; RISK; RESILIENCE; PERCEPTION;
   PREPAREDNESS; EXCHANGE; DISASTER; STEADY; HAZARD
AB In 2021, heavy precipitation events in Germany have confirmed once again that pluvial flooding can cause catastrophic damage in large, medium, and small cities. However, despite several hazard-oriented strategies already in place, to date there is still a lack of integrated approaches to actually preventing negative consequences induced by heavy rainfall events. Furthermore, municipalities across the world are still learning from recent episodes and there is a general need to explore new techniques and guidelines that could help to reduce vulnerability, and enhance the resilience, adaptive capacity, and sustainability of urban environments, considering the already predicted future challenges associated with climate variability. To address this gap, this paper presents the outcomes of the research project "Heavy Rainfall Checklist for Sewer Operation " which was conducted by IKT Institute for Underground Infrastructure, to involve all the stakeholders affected by pluvial flooding within cities, and implement a series of documents that can be adopted by municipalities across the world to support organizations and their operational staff in preventing problems caused by heavy rainfall incidents. More in detail, three different rainfall scenarios have been deeply analysed, and for each of them a list of specific tasks and suggestions has been provided for aiding decision-making.
C1 [Bosseler, Bert; Salomon, Mirko; Schlueter, Marco; Rubinato, Matteo] IKT Inst Underground Infrastruct, Exterbruch 1, D-45886 Gelsenkirchen, Germany.
   [Rubinato, Matteo] Coventry Univ, Sch Energy Construct & Environm, Fac Engn Environm & Comp, Coventry CV1 5FB, W Midlands, England.
   [Rubinato, Matteo] Coventry Univ, Ctr Agroecol Water & Resilience, Coventry CV1 2LT, W Midlands, England.
C3 Coventry University; Coventry University
RP Bosseler, B; Rubinato, M (corresponding author), IKT Inst Underground Infrastruct, Exterbruch 1, D-45886 Gelsenkirchen, Germany.; Rubinato, M (corresponding author), Coventry Univ, Sch Energy Construct & Environm, Fac Engn Environm & Comp, Coventry CV1 5FB, W Midlands, England.; Rubinato, M (corresponding author), Coventry Univ, Ctr Agroecol Water & Resilience, Coventry CV1 2LT, W Midlands, England.
EM bosseler@ikt.de; salomon@ikt.de; schlueter@ikt.de; ad2323@coventry.ac.uk
RI Bosseler, Bert/AAE-1246-2020
OI Bosseler, Bert/0000-0001-5413-7043; Rubinato, Matteo/0000-0002-8446-4448
FU Ministry for Environment, Agriculture, Conservation and Consumer
   Protection of the State of North Rhine-Westphalia [AZ
   54.08.0854.028/SR-01/17-RW]
FX The research was funded by 13 municipal sewer network operators lead by
   the city of Rheda-Wiedenbruck, and supported by additional funds from
   the Ministry for Environment, Agriculture, Conservation and Consumer
   Protection of the State of North Rhine-Westphalia (Grant N. AZ
   54.08.0854.028/SR-01/17-RW).
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NR 67
TC 22
Z9 25
U1 2
U2 46
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD OCT
PY 2021
VL 13
IS 19
AR 2769
DI 10.3390/w13192769
PG 19
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA WG3JL
UT WOS:000706891900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Sharifi, A
   Khavarian-Garmsir, AR
   Allam, Z
   Asadzadeh, A
AF Sharifi, Ayyoob
   Khavarian-Garmsir, Amir Reza
   Allam, Zaheer
   Asadzadeh, Asad
TI Progress and prospects in planning: A bibliometric review of literature
   in Urban Studies and Regional and Urban Planning, 1956-2022
SO PROGRESS IN PLANNING
LA English
DT Review
DE Urban Studies; Urban Planning; Urban resilience; Climate change; Urban
   sustainability; Smart cities
ID SUSTAINABLE DEVELOPMENT GOALS; RESEARCH-AND-DEVELOPMENT; LAND-USE; GREEN
   INFRASTRUCTURE; ECOSYSTEM SERVICES; CLIMATE ADAPTATION; ECONOMIC-GROWTH;
   PUBLIC-HEALTH; SMART CITIES; HOUSING AFFORDABILITY
AB The global population has rapidly urbanized over the past century, and the urbanization rate is projected to reach about 70% by 2050. In line with these trends and the increasing recognition of the significance of cities in addressing local and global challenges, a lot of research has been published on urban studies and planning since the middle of the twentieth century. While the number of publications has been rapidly increasing over the past decades, there is still a lack of studies analyzing the field's knowledge structure and its evolution. To fill this gap, this study analyzes data related to more than 100,000 articles indexed under the "Urban Studies" and "Regional & Urban Planning" subject categories of the Web of Science. We conduct various analyses such as term cooccurrence, co-citation, bibliographic coupling, and citation analysis to identify the key defining thematic areas of the field and examine how they have evolved. We also identify key authors, journals, references, and organizations that have contributed more to the field's development. The analysis is conducted over five periods: 1956-1975 (the genesis period), 1976-1995 (economic growth and environmentalism), 1996-2015 (sustainable development and technological innovation), 2016-2019 (climate change and SDGs), and 2020 onwards (postCOVID urbanism). Four major thematic areas are identified: 1) socio-economic issues and inequalities, 2) economic growth and innovation, 3) urban ecology and land use planning, and 4) urban policy and governance and sustainability. The first two are recurring themes over different periods, while the latter two have gained currency over the past 2-3 decades following global events and policy frameworks related to global challenges like sustainability and climate change. Following the COVID-19 pandemic, issues related to smart cities, big data analytics, urban resilience, and governance have received particular attention. We found disproportionate contributions to the field from the Global North. Some countries from the Global South with rapid urbanization rates are underrepresented, which may have implications for the future of urbanization. We conclude the study by highlighting thematic gaps and other critical issues that need to be addressed by urban scholars to accelerate the transition toward sustainable and resilient cities.
C1 [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Network Educ & Res Peace & Sustainabil NERPS, Hiroshima, Japan.
   [Khavarian-Garmsir, Amir Reza] Univ Isfahan, Fac Geog Sci & Planning, Dept Geog & Urban Planning, Esfahan, Iran.
   [Allam, Zaheer] Univ Paris 1 Pantheon Sorbonne, IAE Paris Sorbonne Business Sch, Chaire Entrepreneuriat Terr Innovat ETI, Paris, France.
   [Asadzadeh, Asad] Univ Bonn, Inst Geodesy & Geoinformat, Urban Planning & Land Management Grp, Bonn, Germany.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
C3 Hiroshima University; University of Isfahan; University of Bonn;
   Hiroshima University
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
EM sharifigeomatic@gmail.com
RI Khavarian-Garmsir, Amir/ABF-2234-2020; Sharifi, Ayyoob/M-7584-2013
OI Asadzadeh, Asad/0000-0002-1432-2663
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PU PERGAMON-ELSEVIER SCIENCE LTD
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WC Environmental Studies; Regional & Urban Planning
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ER

PT J
AU Wang, K
AF Wang, Kyungsoon
TI Neighborhood Housing Resilience: Examining Changes in Foreclosed Homes
   During the US Housing Recovery
SO HOUSING POLICY DEBATE
LA English
DT Article
DE housing; neighborhood; resilience; recovery; foreclosure; housing crisis
ID REGIONAL RESILIENCE; TRANSIT RIDERSHIP; DYNAMICS; CRISIS; GEOGRAPHY;
   FORTUNES; MODEL
AB The surge in foreclosures in the United States that began in 2007 reached a peak in mid-2011, and since then, the rate of foreclosures has been decreasing, providing evidence of the housing market recovery. This study examines factors that affected changes in ZIP code-level foreclosure rates in more than 300 U.S. metropolitan areas during the national housing recovery. Using multivariate analyses of the long- and short-term effects of foreclosures simultaneously, this finding shows that certain characteristics of the mortgage and housing markets led to more rapid neighborhood recovery. Results also indicate, however, that most urban-form variables led to neighborhood resilience over the long term, that high shares of mixed land use were strongly associated with fewer foreclosures, and that high shares of auto dependency were associated with high foreclosure rates. Finally, findings suggest that low- and moderate-income neighborhoods, particularly in cities, were more vulnerable and less resilient to economic shock, and the accumulated effects of foreclosures worsened over the long term. However, low- and moderate-income neighborhoods surrounded by suburban affluent neighborhoods recovered more rapidly than those in cities did. Understanding such resilience to economic crises will provide policymakers with insights that they can leverage to establish housing policies for sustainable neighborhoods.
C1 [Wang, Kyungsoon] Georgia Inst Technol, Sch City & Reg Planning, Atlanta, GA 30332 USA.
C3 University System of Georgia; Georgia Institute of Technology
RP Wang, K (corresponding author), Georgia Inst Technol, Sch City & Reg Planning, Atlanta, GA 30332 USA.
EM kwang42@gatech.edu
RI Wang, Kyungsoon/AAG-7113-2019
OI Wang, Kyungsoon/0000-0002-3954-0798
FU Community and Economic Development Department of the Federal Reserve
   Bank of Atlanta
FX I would like to thank the Community and Economic Development Department
   of the Federal Reserve Bank of Atlanta for supporting this work through
   its Co-op Graduate Researcher program. All opinions are those of the
   author, and any errors in this research are her sole responsibility.
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NR 68
TC 8
Z9 10
U1 1
U2 13
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1051-1482
EI 2152-050X
J9 HOUS POLICY DEBATE
JI Hous. Policy Debate
PD MAR 4
PY 2019
VL 29
IS 2
BP 296
EP 318
DI 10.1080/10511482.2018.1515098
PG 23
WC Development Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Urban Studies
GA HM7CD
UT WOS:000459634000004
DA 2025-04-22
ER

PT J
AU Liu, H
   Li, M
   Yang, C
   Jia, L
AF Liu, H.
   Li, M.
   Yang, C.
   Jia, L.
TI Application of time-series analysis to urban climate change assessment
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY
LA English
DT Article; Early Access
DE Urban climate change; Process-based management; Data-driven analysis;
   Time series clustering; Digital signal decomposition
ID HEAT ISLANDS; IMPACT; TREND
AB Emerging process-based urban management creates an urgent necessity to track the evolution of urban climate and assess the efficacy of existing plans and practices in building climate resilient cities. However, the complex interactions between urban surface and the upper atmosphere bring about non-linear, non-stationary, and multi-scale urban climate variations, making it challenging to isolate urban effects from other nature-induced variations. This study introduces two types of data-driven techniques, time series clustering and digital signal decomposition, to tackle the above challenge. Particularly, time series clustering is able to zone any study area into multiple geographical clusters according to the heterogeneity among temporal evolution trajectories of a given urban climate parameter, accounting for its non-linear and non-stationary variations. The clusters present diverse patterns of ascending, descending, or other complex temporal variations that can be used to identify both successes and failures of existing plans in combating adverse urban climate change. Digital signal decomposition can decompose the non-linear and non-stationary time series into multiple components with different time-scales, thereby offering the possibility to identify the part of long-term variation induced by the concerned urban effects. It can be used alone to identify the urban-induced climate change in a specific city, or in combination with time series clustering to recognize the similarities and disparities of urban-induced long-term trends across multiple clusters within a city. This study provides scientific basis and technical support for more robust and precise assessment of urban-induced local climate change, thereby empowers policymakers to develop targeted strategies to enhance climate-resilience.
C1 [Liu, H.; Li, M.] Wuhan Univ, Sch Urban Design, Wuhan 430072, Peoples R China.
   [Liu, H.; Li, M.] Wuhan Univ, Res Ctr Digital City, Wuhan 430072, Peoples R China.
   [Liu, H.; Li, M.; Jia, L.] Tianjin Key Lab Smart City Planning, Tianjin 300110, Peoples R China.
   [Liu, H.; Li, M.] Minist Nat Resources China, Key Lab Earth Surface Syst & Human Earth Relat, Shenzhen 518055, Peoples R China.
   [Yang, C.] Peking Univ, Coll Urban & Environm Sci, Key Lab Earth Surface Proc Minist Educ, Minist Educ, Beijing 100871, Peoples R China.
   [Jia, L.] Tianjin Urban Planning & Design Inst Co Ltd, Tianjin 300110, Peoples R China.
C3 Wuhan University; Wuhan University; Ministry of Natural Resources of the
   People's Republic of China; Peking University
RP Yang, C (corresponding author), Peking Univ, Coll Urban & Environm Sci, Key Lab Earth Surface Proc Minist Educ, Minist Educ, Beijing 100871, Peoples R China.
EM yangchenwhu@whu.edu.cn
FU National Natural Science Foundation of China [52308079]; Natural Science
   Foundation of Hubei Province [2023AFB080]; Tianjin Key Laboratory of
   Smart City Planning [GHKF-202301]; Key Laboratory of Earth Surface
   System and Human-Earth Relations [LBXT2023YB04]
FX This research was supported by the National Natural Science Foundation
   of China (No. 52308079), the Natural Science Foundation of Hubei
   Province (2023AFB080), Tianjin Key Laboratory of Smart City Planning
   (GHKF-202301), and Key Laboratory of Earth Surface System and
   Human-Earth Relations (LBXT2023YB04).
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NR 33
TC 1
Z9 1
U1 6
U2 7
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1735-1472
EI 1735-2630
J9 INT J ENVIRON SCI TE
JI Int. J. Environ. Sci. Technol.
PD 2024 SEP 20
PY 2024
DI 10.1007/s13762-024-05961-6
EA SEP 2024
PG 8
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA G6M1N
UT WOS:001317747300001
DA 2025-04-22
ER

PT J
AU Gu, TT
   Wang, YC
   Li, LZ
   Dai, YN
   Chang, WX
AF Gu, Tiantian
   Wang, Yongchao
   Li, Lingzhi
   Dai, Yanan
   Chang, Wenxiu
TI An enhanced dynamic-network-based framework for quantifying and
   enhancing the resilience of disaster response networks to old
   communities under rainstorm waterlogging
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Old community; Rainstorm waterlogging; Disaster response network;
   Dynamic network analysis; CRITIC-VIKOR
ID REDUNDANCY; EMERGENCY
AB Developing effective disaster response networks (DRNs) is crucial for mitigating the impacts of rainstorm waterlogging in old communities. Aiming at providing implementable strategies for enhancing DRN resilience, this paper developed an enhanced dynamic network analysis (DNA)-based framework for DRNs utilizing the DNA and CRITIC-VIKOR method. This framework conceptualizes community disaster response as a three-stage 'agentinformation-resource-task' (A-I-R-T) dynamic network, facilitating a comprehensive understanding of interactions among stakeholders, disaster information, emergency resources, and response tasks. Subsequently, a hybrid evaluation model combining CRITIC and VIKOR methods was established to quantify DRN resilience by assessing deviations from ideal response scenarios. Validated through a case study of the Y community in Xuzhou city of China, the findings reveal significant variations in stakeholder communication effectiveness across different stages of disaster response, with resilience peaking during the function recovery stage at 0.292. This study not only contributes to the body of knowledge in disaster management and resilience theory but also provides actionable strategies for enhancing DRN resilience, thereby contributing to more resilient urban environments.
C1 [Gu, Tiantian; Wang, Yongchao; Dai, Yanan; Chang, Wenxiu] China Univ Min & Technol, Sch Mech & Civil Engn, 1 Univ Rd, Xuzhou 221000, Jiangsu, Peoples R China.
   [Li, Lingzhi] Nanjing Tech Univ, Res Ctr Smart City, 30 Puzhu Rd, Nanjing 211816, Peoples R China.
C3 China University of Mining & Technology; Nanjing Tech University
RP Gu, TT (corresponding author), China Univ Min & Technol, Sch Mech & Civil Engn, 1 Univ Rd, Xuzhou 221000, Jiangsu, Peoples R China.
EM 6072@cumt.edu.cn; TS22030232P31@cumt.edu.cn; 6370@njtech.edu.cn;
   Dyna01@126.com; TS22030136P31@cumt.edu.cn
RI Gu, Tiantian/HKM-6673-2023
FU National Natural Science Foundation of China [72104233]; China
   Postdoctoral Science Founda-tion [2023M743767]
FX This study is funded by the National Natural Science Foundation of China
   (Grant No. 72104233) and China Postdoctoral Science Founda-tion
   (Certificate Number: 2023M743767) . The authors are grateful for the
   constructive comments received from the anonymous referees which
   enhanced the quality of their paper.
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NR 117
TC 1
Z9 1
U1 37
U2 37
PU ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
PI LONDON
PA 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND
SN 0301-4797
EI 1095-8630
J9 J ENVIRON MANAGE
JI J. Environ. Manage.
PD DEC
PY 2024
VL 372
AR 123098
DI 10.1016/j.jenvman.2024.123098
EA NOV 2024
PG 19
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA M8H2O
UT WOS:001359882000001
PM 39550961
DA 2025-04-22
ER

PT J
AU Arvin, M
   Beiki, P
   Hejazi, SJ
   Sharifi, A
   Atashafrooz, N
AF Arvin, Mahmoud
   Beiki, Parisa
   Hejazi, Seyed Jafar
   Sharifi, Ayyoob
   Atashafrooz, Nasrin
TI Assessment of infrastructure resilience in multi-hazard regions: A case
   study of Khuzestan Province
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Natural hazards; Vulnerability assessment; Resilience assessment;
   Infrastructure resilience; Multi-criteria decision making; GIS
ID DISASTER-RESILIENCE; RISK-ASSESSMENT; LANDSLIDE HAZARD; FLOOD HAZARD;
   COMMUNITIES; FRAMEWORK; GIS; VULNERABILITY; SUITABILITY; INDICATORS
AB Natural hazards greatly affect the livelihood and social life of people in communities by disrupting the process of growth and development. Assessing vulnerability and resilience against natural hazards is fundamental in achieving sustainable urban and regional development goals. It is also important for making cities and regions more resilient. This study aims to measure the exposure to natural hazards and the infrastructural resilience in the counties of Khuzestan province (southwestern Iran). GIS data and multi-criteria decision-making techniques were used to measure the exposure to three hazards:flood, earthquake, and landslide. Furthermore, multicriteria decision-making techniques with 25 indicators were used to rank the counties in terms of infrastructure resilience. Results of the hazard assessment showed that the northern and northeastern counties are mainly exposed to hazards such as earthquakes and landslides, while the central and southern counties have the highest exposure to flooding. Shushtar County ranks first and Abadan ranks last in terms of the integrated hazard index. The results of the resilience assessment also demonstrated major disparities across different counties. The resilience scores were particularly low in counties with higher rates of rural population. The results have implications for designing and implementing effective urban and regional development programs and plans. Indeed, a correct understanding of the current state of hazards and infrastructures plays a vital role in specifying and applying the necessary reforms in risk management programs. Besides, spatial and multidimensional analysis of exposure to hazards and infrastructural resilience is the first step in directing actions and financial resources to reduce vulnerability and improve resilience in high-risk counties.
C1 [Arvin, Mahmoud] Univ Tehran, Fac Geog, Dept Human Geog, Tehran, Iran.
   [Beiki, Parisa] Islamic Azad Univ, Dept Geog, Cent Tehran Branch, Tehran, Iran.
   [Hejazi, Seyed Jafar] Shahid Chamran Univ Ahvaz, Fac Civil Engn & Architecture, Dept Civil Engn, Ahvaz, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Japan.
   [Atashafrooz, Nasrin] Shahid Chamran Univ Ahvaz, Dept Geog & Urban Planning, Ahvaz, Iran.
   [Sharifi, Ayyoob] 1 5 1 Kagamiyama, Hiroshima 7398529, Japan.
C3 University of Tehran; Islamic Azad University; Shahid Chamran University
   of Ahvaz; Hiroshima University; Shahid Chamran University of Ahvaz
RP Sharifi, A (corresponding author), 1 5 1 Kagamiyama, Hiroshima 7398529, Japan.
EM arvin.mahmood@ut.ac.ir; pbeiki917@gmail.com; Hejazi_j@scu.ac.ir;
   sharifi@hiroshima-u.ac.jp; nasrin.atashafrooz67@gmail.com
RI Sharifi, Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613
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NR 140
TC 16
Z9 16
U1 21
U2 96
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD APR 1
PY 2023
VL 88
AR 103601
DI 10.1016/j.ijdrr.2023.103601
EA FEB 2023
PG 24
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 9W0ZM
UT WOS:000948810700001
DA 2025-04-22
ER

PT J
AU Wang, W
   He, BJ
AF Wang, Wei
   He, Bao-Jie
TI Co-occurrence of urban heat and the COVID-19: Impacts, drivers, methods,
   and implications for the post-pandemic era
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban heat; Pandemic; Co-occurrence; Urban governance; City manager
ID SURFACE-TEMPERATURE; AGGLOMERATIONS; COMMUNITY
AB Cities, the main place of human settlements, are under various mega challenges such as climate change, popu-lation increase, economic growth, urbanization, and pandemic diseases, and such challenges are mostly inter -linked. Urban heat, due to heatwaves and heat islands, is the combined effect of climate change and urbanization. The COVID-19 is found to be a critical intervention of urban heat. However, the interrelationship between COVID-19 and urban heat has not been fully understood, constraining urban planning and design ac-tions for improving the resilience to the dual impacts of heat and the pandemic. To close this research gap, this paper conducted a review on the co-occurrence of urban heat and the COVID-19 pandemic for a better under-standing of their synergies, conflicts or trade-offs. The research involves a systematic review of urban temper-ature anomalies, variations in air pollutant concentrations, unbalanced energy development, and thermal health risks during the pandemic lockdown. In addition, this paper further explored data sources and analytical methods adopted to screen and identify the interventions of COVID-19 to urban heat. Overall, this paper is of significance for understanding the impact of COVID-19 on urban heat and provides a reference for coping with urban heat and the pandemic simultaneously. The world is witnessing the co-existence of heat and the pandemic, even in the post-pandemic era. This study can enlighten city managers, planners, the public, and researchers to collaborate for constructing a robust and resilient urban system for dealing with more than one challenges.
C1 [Wang, Wei; He, Bao-Jie] Chongqing Univ, Ctr Climate Resilient & Low Carbon Cities, Sch Architecture & Urban Planning, Chongqing 400045, Peoples R China.
   [Wang, Wei; He, Bao-Jie] Chongqing Univ, Inst Smart City Chongqing Univ Liyang, Liyang 213300, Jiangsu, Peoples R China.
   [He, Bao-Jie] Chongqing Univ, Key Lab New Technol Construct Cities Mt Area, Minist Educ, Chongqing 400045, Peoples R China.
   [He, Bao-Jie] South China Univ Technol, State Key Lab Subtrop Bldg Sci, Guangzhou 510641, Peoples R China.
   [He, Bao-Jie] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Hiroshima 7398530, Japan.
C3 Chongqing University; Chongqing University; Chongqing University; South
   China University of Technology; Hiroshima University
RP He, BJ (corresponding author), Chongqing Univ, Ctr Climate Resilient & Low Carbon Cities, Sch Architecture & Urban Planning, Chongqing 400045, Peoples R China.; He, BJ (corresponding author), Chongqing Univ, Inst Smart City Chongqing Univ Liyang, Liyang 213300, Jiangsu, Peoples R China.; He, BJ (corresponding author), Chongqing Univ, Key Lab New Technol Construct Cities Mt Area, Minist Educ, Chongqing 400045, Peoples R China.; He, BJ (corresponding author), South China Univ Technol, State Key Lab Subtrop Bldg Sci, Guangzhou 510641, Peoples R China.; He, BJ (corresponding author), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Hiroshima 7398530, Japan.
EM baojie.unsw@gmail.com
RI He, Baojie/J-4430-2019; He, Bao-Jie/L-9595-2015
OI He, Bao-Jie/0000-0002-8841-0711
FU State Key Laboratory of Subtropical Building Science, South China
   University of Technology [2022ZA01]; Graduate Scientific Research and
   Innovation Foundation of Chongqing, China [CYB22035, CYS22058]; National
   Natural Science Foundation of China [52108011]; Guangzhou Philosophy and
   Social Science Planning 2022 Annual Project [2022GZQN14]; Department of
   Housing and Urban-Rural Development of Guangdong Province
   [2021-K2-305243]; Department of Education of Guangdong Province
   [2021KTSCX004]; Science and Technology Program of Guangzhou, China
   [202102020302]; China Postdoctoral Science Foundation [2021M701249]
FX State Key Laboratory of Subtropical Building Science, South China
   University of Technology (Grant No. 2022ZA01) . Graduate Scientific
   Research and Innovation Foundation of Chongqing, China (CYB22035;
   CYS22058) .This research is additionally supported by the National
   Natural Science Foundation of China (Grant No. 52108011) ; Guangzhou
   Philosophy and Social Science Planning 2022 Annual Project (Grant No.
   2022GZQN14) ; Department of Housing and Urban-Rural Development of
   Guangdong Province (Grant No. 2021-K2-305243) ; Department of Education
   of Guangdong Province (Grant No. 2021KTSCX004) ; Science and Technology
   Program of Guangzhou, China (Grant No. 202102020302) ; China
   Postdoctoral Science Foundation (Grant No. 2021M701249) .
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NR 113
TC 16
Z9 17
U1 9
U2 73
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAR
PY 2023
VL 90
AR 104387
DI 10.1016/j.scs.2022.104387
EA JAN 2023
PG 17
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 8H8AE
UT WOS:000921250600001
PM 36597490
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Lee, SE
   Braithwaite, P
   Leach, JM
   Rogers, CDF
AF Lee, Susan E.
   Braithwaite, Peter
   Leach, Joanne M.
   Rogers, Chris D. F.
TI A comparison of energy systems in Birmingham, UK, with Masdar City, an
   embryonic city in Abu Dhabi Emirate
SO RENEWABLE & SUSTAINABLE ENERGY REVIEWS
LA English
DT Review
DE Sustainability; Resilience; Energy systems; Experimentation; Lock-in;
   Flexibility; Governance
ID URBAN METABOLISM; CITIES
AB Energy is a vital resource in modern life. With increasingly limited availability of traditional energy resources, e.g., oil, coal and nuclear, together with environmental concerns, there is raised awareness that energy needs to be both used more efficiently and generated in line with thinking on sustainability. Ready access to 'clean' energy is essential if we wish to maintain our current way of life without compromising our wellbeing or the carrying capacity of the planet. This paper aims to analyse the differences and similarities in energy supply and demand between two very different cities. Masdar City, founded in 2008, is a dynamic new Middle-Eastern city being built in a desert environment. Its aim is to be the most sustainable city in the world and offers an exciting opportunity to provide unique insights into the application of different innovative technologies as 'new-build' within an urban environment. Birmingham is a well-established post-industrial city that has evolved over fourteen hundred years. It was one of the fastest growing cities in 19th century England (Popp and Wilson, 2009) [1]. To do this a material flow analysis approach has been adopted to provide a framework for the study. The energy-related opportunities and mutual benefits that each city can gain from the experiences of the other are explored and five emergent issues are identified: innovation and experimentation, lock-in, balance, resilience and governance. This work shows how a greater understanding of common issues can lead to more sustainable, resilient and robust cities, able to face the challenges of the next 50 years. (C) 2016 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license.
C1 [Lee, Susan E.; Braithwaite, Peter; Leach, Joanne M.; Rogers, Chris D. F.] Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, W Midlands, England.
C3 University of Birmingham
RP Lee, SE (corresponding author), Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, W Midlands, England.
EM s.e.lee@bham.ac.uk
RI Leach, Joanne/H-5304-2019; Rogers, Christopher/AAE-2395-2020
OI Rogers, Christopher/0000-0002-1693-1999; Lee, Susan/0000-0001-5458-2331;
   Leach, Joanne/0000-0001-7526-624X
FU UK Engineering and Physical Sciences Research Council (EPSRC)
   [EP/J017698/1, EP/F007426/1]; EPSRC [EP/F007426/1, EP/J017698/1] Funding
   Source: UKRI
FX The authors wish to thank the UK Engineering and Physical Sciences
   Research Council (EPSRC) for their support under grant numbers
   EP/J017698/1 and EP/F007426/1. We also wish to thank Steve Severance,
   Head of Programme Management and Strategy at Masdar City, for providing
   information on recent building developments in Masdar. Underpinning data
   are available from various sources as referenced. Detailed calculations
   are available from the lead author.
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NR 71
TC 10
Z9 12
U1 6
U2 45
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1364-0321
J9 RENEW SUST ENERG REV
JI Renew. Sust. Energ. Rev.
PD NOV
PY 2016
VL 65
BP 1299
EP 1309
DI 10.1016/j.rser.2016.07.019
PG 11
WC Green & Sustainable Science & Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Energy & Fuels
GA DV9WV
UT WOS:000383293800091
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Cao, Y
   Yang, TT
   Wu, H
   Yan, SQ
   Yang, HD
   Zhu, CY
   Liu, Y
AF Cao, Yang
   Yang, Tingting
   Wu, Hao
   Yan, Shuqi
   Yang, Huadong
   Zhu, Chengying
   Liu, Yan
TI Resilience Assessment and Improvement Strategies for Urban Haze
   Disasters Based on Resident Activity Characteristics: A Case Study of
   Gaoyou, China
SO ATMOSPHERE
LA English
DT Article
DE haze disasters; resilient cities; activity space; optimisation strategy;
   Gaoyou
AB The popularisation of mobile information technology has provided access to the living habits and activity trajectories of residents and enabled the accurate measurement of the impact of urban haze disasters on residents' lives, supporting urban haze risk response. Using the main urban area of Gaoyou City as a case study, this study identifies the spatial range and trajectory characteristics of the daily activities of residents in a haze disaster environment, based on air pollution monitoring and resident travel positioning data. We constructed an evaluation index system to measure the corresponding relationship between residential activities and haze disasters. The results indicate that the interference with residential activities and the adaptability of built environments are key indicators for evaluating urban resilience in haze environments, with weights of 0.57 and 0.43, and correlation indices of 0.67 and 0.81, respectively. The interference with residential activities and the adaptability of built environments exhibit spatial characteristics of cold and hot 'multi-core' agglomeration and 'strip' agglomeration, respectively. Specific indicators show that the residential activity exposure index is significantly influenced by the built environment factor index, with the vegetation coverage index showing a significant positive correlation (0.837) and the public transportation facility accessibility index showing a significant negative correlation (-1.242). Planning should focus on improving the adaptability of the built environment or reducing the interference with residential activities and enhancing the matching degree of the two at the spatial facility level.
C1 [Cao, Yang] Jiangsu Open Univ, Coll Construct Engn, Nanjing 210019, Peoples R China.
   [Yang, Tingting; Wu, Hao; Yan, Shuqi; Yang, Huadong; Zhu, Chengying; Liu, Yan] Nanjing Joint Inst Atmospher Sci, Key Lab Transportat Meteorol China Meteorol Adm, Nanjing 210041, Peoples R China.
C3 Jiangsu Open University
RP Yang, TT (corresponding author), Nanjing Joint Inst Atmospher Sci, Key Lab Transportat Meteorol China Meteorol Adm, Nanjing 210041, Peoples R China.
EM caoyang@jsou.edu.cn; yangtt@cma.gov.cn; haowu@cma.gov.cn;
   yansq@cma.gov.cn; yanghd@cma.gov.cn; cherrinzhu@163.com;
   yanliu@cma.gov.cn
RI Yang, Tingting/V-4723-2019; Yan, Shuqi/AEG-0400-2022; Yang,
   Huadong/HJG-6479-2022
OI Yang, Huadong/0000-0002-7428-6457
FU Basic Research Fund of CAMS
FX No Statement Available
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NR 47
TC 0
Z9 0
U1 4
U2 12
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4433
J9 ATMOSPHERE-BASEL
JI Atmosphere
PD MAR
PY 2024
VL 15
IS 3
AR 289
DI 10.3390/atmos15030289
PG 17
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA MC9Y1
UT WOS:001191557000001
OA gold
DA 2025-04-22
ER

PT J
AU Pan, WJ
AF Pan, Wenjian
TI Self-adaptive hybrid urban morphologies community (HUMC): Its shared
   environment and soft intervention for sustainable urban governance
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Hybrid urban morphologies community; Environmental evaluation; Shared
   environment; Urban governance; Soft intervention; Urban resilience
ID CLIMATE; COMFORT; MITIGATION; EFFICIENCY; COVER; SPACE
AB Cities have entered a transitional stage from incremental development to intension existent development. Beyond demolition and reconstruction, revitalising existing functioning neighbourhoods to make them more liveable and resilient while balancing their inter-relationships is an important topic in sustainable urban planning and governance. This paper puts forward a conceptual model for a "hybrid urban morphologies community" (HUMC) and explores its collective environmental performances. Taking the Hubei HUMC as a case study site, the paper examines its diverse temporal-spatial environmental performances by adopting on-site observation and measurement, focusing on local micro-scale climate, thermal comfort, and pedestrian ventilation capacity. Results reveal that none of the eight examined morphological patterns in Hubei HUMC consistently exhibited satisfactory environmental performance across all time periods in a typical summer day. Each morphological pattern presented varied merits and drawbacks during specific time periods. These morphological patterns together create an environmental complementary and form a synergetic socio-ecological system under the shared environment mechanism, which enables residents to have continuous outdoor habitation. Correlation and regression analyses illustrated that SVF, TSF, GCR, and GSA were the most critical of the "adaptable" urban morphological indicators (UMIs) that influenced urban outdoor environmental performances. Ultimately, soft intervention is advocated through temporarily rather than permanently adjusting these "adaptable" UMIs to ameliorate spaces with unsatisfactory environmental performances during the specific time periods. The proposed HUMC provides a reference model for urban management zoning and establishment of resilient self-adaptive urban communities.
C1 [Pan, Wenjian] Huazhong Univ Sci & Technol, Sch Architecture & Urban Planning, Luoyu Rd 1037, Wuhan 430074, Peoples R China.
C3 Huazhong University of Science & Technology
RP Pan, WJ (corresponding author), Huazhong Univ Sci & Technol, Sch Architecture & Urban Planning, Luoyu Rd 1037, Wuhan 430074, Peoples R China.
EM blueice3@163.com
RI Pan, Wenjian/ABB-5674-2021
OI Pan, Wenjian/0000-0001-5626-3617
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NR 100
TC 3
Z9 3
U1 16
U2 43
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0360-1323
EI 1873-684X
J9 BUILD ENVIRON
JI Build. Environ.
PD MAY 15
PY 2023
VL 236
AR 110251
DI 10.1016/j.buildenv.2023.110251
EA APR 2023
PG 20
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA G2AE1
UT WOS:000987240600001
DA 2025-04-22
ER

PT J
AU Ji, J
   Wang, DY
AF Ji, Juan
   Wang, Dayong
TI Evaluation analysis and strategy selection in urban flood resilience
   based on EWM-TOPSIS method and graph model
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Urban flood resilience; Evaluation analysis; Strategy selection;
   EWM-TOPSIS method; Graph model
ID COMMUNITY RESILIENCE; FRAMEWORK; RISK; VULNERABILITY; PREFERENCES;
   RIYADH
AB In the background of rapid population growth and rapid urbanization, extreme floods have brought great challenges to urban construction and development, and have aroused research interest to better understand the role of urban flood resilience (UFR) in mitigating the damage caused by floods. However, most of the existing research on UFR mainly focuses on analyzing the UFR level and its main influencing factors, but rarely involves the strategy selection of stakeholders after evaluation and analysis of UFR. To fill this gap, this study, taking Shanghai as an example, applies the hybrid entropy weight method (EWM)-TOPSIS model to develop an index based measurement to compare and evaluate UFR, and then uses the grey relational analysis (GRA) to find out the main factors affecting UFR. The results showed that the UFR level in Shanghai significantly increased by 39.34% from 2000 to 2020, but the natural resilience showed a fluctuating downward trend. The factors that affect UFR are highly correlated with economic development. The results provide scientific theoretical guidance for the construction of resilient cities. Then, decision makers (DMs) from different departments are involved in the construction and promotion of UFR, and they tend to pay more attention to the factors that are beneficial to them. Based on this, this situation inevitably causes the promotion of UFR in real life to become a conflict problem. Thus, the fuzzy graph model can be used to model and analyze tripartite conflict problems in UFR, and the fuzzy stability analysis represents that state s4 is the optimal solution of conflicts, which can promote each involver to follow the rules and regulations for constructing the UFR for Shanghai in spirit.
C1 [Ji, Juan; Wang, Dayong] Hohai Univ, Business Sch, Nanjing 211100, Peoples R China.
C3 Hohai University
RP Wang, DY (corresponding author), Hohai Univ, Business Sch, Nanjing 211100, Peoples R China.
EM wangdayong0521@126.com
OI Ji, Juan/0000-0003-0596-8785
FU China Scholarship Council [202206710024]
FX This work was supported by China Scholarship Council (Grant No.
   202206710024) . The authors would like to express their appreciation for
   excellent work of editor and anonymous reviewer.
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NR 71
TC 29
Z9 30
U1 32
U2 102
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD NOV 1
PY 2023
VL 425
AR 138955
DI 10.1016/j.jclepro.2023.138955
EA SEP 2023
PG 13
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA W0PS2
UT WOS:001088743100001
DA 2025-04-22
ER

PT J
AU Aloscious, AA
   Artuso, M
   Moghadam, ST
AF Aloscious, Arun Antony
   Artuso, Mario
   Torabi Moghadam, Sara
TI Nature-Based Solutions for Flood Mitigation: The Case Study of Kochi
SO SUSTAINABILITY
LA English
DT Article
DE flood resilience; nature-based solutions (NBS); urban infrastructure
   management; climate change adaptation; sustainable development;
   urbanization; climate resilience; SWOT analysis
ID VULNERABILITY; COCHIN
AB Flood risks are escalating globally due to unplanned urban expansion and the impacts of climate change, posing significant challenges for urban areas and necessitating effective mitigation strategies. Nature-based solutions (NBSs) have emerged as innovative and sustainable approaches for managing flood risks. The International Union for Conservation of Nature (IUCN) defines NBSs as actions that conserve, manage, and restore natural and modified ecosystems to address societal concerns while benefiting both people and the environment. This research focuses on developing NBS strategies for the most flood-prone area within Kochi, a city highly vulnerable to flooding. The study begins with a comprehensive site examination to identify flood sources and causes in Kochi, aiding in selecting flood vulnerability indicators. An analytical framework incorporating flood risk assessment and exposure studies using physical and social indicators, alongside GIS mapping techniques, revealed that approximately half of Kochi is affected. The study identified key vulnerability hotspots, particularly within the Central Business District (CBD), where high population density and inadequate infrastructure exacerbate flood risks. Proposed NBS interventions include restoring natural floodplains, enhancing canal capacities, creating urban forests, and establishing green infrastructure like permeable pavements and rainwater harvesting systems. Key findings emphasize the effectiveness of integrating NBSs with traditional flood management strategies, forming a mixed flood control system. These interventions mitigate flood risks, improve biodiversity, reduce the urban heat island effect, and enhance community well-being. Importantly, the research underscores the role of public participation and community-driven maintenance plans in ensuring the sustainability of NBS interventions. Aligning these strategies with Kochi's Master Plan 2040 ensures coherence with broader urban planning and climate resilience goals. The research anticipates changes in climate, land use patterns, and urban dynamics to inform NBS suitability in Kochi. Ultimately, the research demonstrates how implementing NBSs can deliver a range of socio-environmental benefits, significantly influencing urban development in vulnerable zones. By advocating for the integration of NBSs into urban infrastructure planning, this study offers a blueprint for resilient and sustainable flood management strategies that are applicable to other coastal cities facing similar challenges.
C1 [Aloscious, Arun Antony; Artuso, Mario; Torabi Moghadam, Sara] Politecn Torino, Interuniv Dept Terr Sci Projects & Pol, I-10125 Turin, Italy.
C3 Polytechnic University of Turin
RP Moghadam, ST (corresponding author), Politecn Torino, Interuniv Dept Terr Sci Projects & Pol, I-10125 Turin, Italy.
EM s301993@studenti.polito.it; mario.artuso@polito.it;
   sara.torabi@polito.it
RI TORABI MOGHADAM, SARA/AAM-1702-2020
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NR 82
TC 0
Z9 0
U1 26
U2 26
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2025
VL 17
IS 5
AR 1983
DI 10.3390/su17051983
PG 32
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 0BR2A
UT WOS:001443540600001
OA gold
DA 2025-04-22
ER

PT J
AU Lareaux, J
   Watkins, D
AF Lareaux, Jessica
   Watkins, David
TI Geospatial analysis for promoting urban green space equity: Case study
   of Detroit, Michigan, USA
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Urban green space; Equity; Network analysis; Geographically weighted
   regression; Geospatial; Detroit
AB Urban green spaces play a vital role in promoting human health and well-being, enhancing urban ecosystems, and supporting urban sustainability and resilience. However, inequities in the distribution and accessibility to urban green spaces can disproportionately affect vulnerable and underserved communities. This study examines the distribution and accessibility of urban green spaces in Detroit, Michigan, using high-resolution geospatial data and geospatial analysis methods, including geographically weighted regression (GWR) and network-based analyses. The study aims to correlate urban green space access inequities with social and environmental justice indicators and offer strategies for urban planners to identify and address green space inequities using geospatial analysis. The case study identifies significant urban green space inequities, with 87% (53%) of buildings lacking a park or recreational area within a quarter-mile (half-mile) walking distance. GWR analysis further demonstrates that neighborhoods with higher social vulnerability scores tend to have significantly lower green space availability, although park areas appear to be equitably distributed in some parts of the city. These findings highlight critical areas in Detroit that can be prioritized for green space development to address these inequities and create healthier, more resilient urban environments. The methods presented can be applied to other cities to assist urban planners in identifying where resources can be most efficiently allocated to address current green space disparities, particularly in historically underserved areas.
C1 [Lareaux, Jessica; Watkins, David] Michigan Technol Univ, Houghton, MI USA.
C3 Michigan Technological University
RP Watkins, D (corresponding author), Michigan Technol Univ, Dept Civil Environm & Geospatial Engn, 1400 Townsend Dr, Houghton, MI 49931 USA.
EM dwatkins@mtu.edu
OI Watkins, David/0000-0002-0978-2710
FU National Aeronautics and Space Administration [21-EEJ21-0024]; Michigan
   Technological University; Michigan Space Grant Consortium Graduate
   Fellowship [80NSSC20M0124]
FX This research was funded by the National Aeronautics and Space
   Administration (Grant no. 21-EEJ21-0024) , the Harry R. Cohodas Upper
   Peninsula Graduate Student Endowed Fellowship awarded by Michigan
   Technological University, and a Michigan Space Grant Consortium Graduate
   Fellowship (Grant no. 80NSSC20M0124) . .
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NR 111
TC 0
Z9 0
U1 12
U2 12
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD MAR
PY 2025
VL 105
AR 128716
DI 10.1016/j.ufug.2025.128716
EA FEB 2025
PG 16
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA X5Y9F
UT WOS:001426111900001
DA 2025-04-22
ER

PT J
AU Kendal, D
   Dobbs, C
   Lohr, VI
AF Kendal, Dave
   Dobbs, Cynnamon
   Lohr, Virginia I.
TI Global patterns of diversity in the urban forest: Is there evidence to
   support the 10/20/30 rule?
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Biodiversity; Climate change; Pests and diseases; Resilience; Street
   trees; trees
ID TREE SPECIES-DIVERSITY; PLANT DIVERSITY; GARDENS; RICHNESS; DRIVERS;
   PHOENIX; DROUGHT; CLIMATE; PARKS; SCALE
AB Diversity in the urban forest is important as it reduces risks from pests and diseases and from climate change and improves resilience in the supply of ecosystem services. To manage and improve diversity, there has been wide-spread acceptance of the 10/20/30 'rule of thumb' proposed by Santamour, which states that municipal forests should comprise no more than 10% of any particular species, 20% of any one genus or 30% of any single family. While the implementation of targets based on Santamour's rule has contributed to a more diverse and resilient urban forest in many cities, there has been little empirical investigation of actual patterns of diversity occurring globally in different climates and land uses. In this study, we explored diversity and the relative abundance of the most common species, genus and family in 151 urban forest inventories from 108 different cities around the world. Observed patterns showed that relative abundance of the most common taxon was a good predictor of diversity and could be a useful measure of diversity for urban forest managers. Relative abundance of the most common taxon was much higher than the proposed benchmark at the species level, but comparable with proposed benchmarks at the genus and family level. Patterns varied by both climate and land use. Diversity was consistently lower in Continental climates and in streetscapes, and higher in Temperate climates and in urban forests that spanned multiple land uses. Further considerations in setting diversity benchmarks are discussed. (C) 2014 Elsevier GmbH. All rights reserved.
C1 [Kendal, Dave] Univ Melbourne, Sch Bot, Australian Res Ctr Urban Ecol, Royal Bot Gardens Melbourne, Melbourne, Vic 3010, Australia.
   [Kendal, Dave] Univ Melbourne, Sch Bot, Australian Res Ctr Urban Ecol, Royal Bot Gardens Melbourne, Melbourne, Vic 3010, Australia.
   [Dobbs, Cynnamon] Univ Melbourne, Sch Bot, Melbourne, Vic 3010, Australia.
   [Lohr, Virginia I.] Washington State Univ, Dept Hort, Pullman, WA 99164 USA.
C3 University of Melbourne; University of Melbourne; University of
   Melbourne; Washington State University
RP Kendal, D (corresponding author), Univ Melbourne, Sch Bot, Australian Res Ctr Urban Ecol, Royal Bot Gardens Melbourne, Melbourne, Vic 3010, Australia.
EM dkendal@unimelb.edu.au
RI kendal, dave/HJY-3311-2023
OI kendal, dave/0000-0003-2816-1722; Dobbs, Cynnamon/0000-0001-9845-6660
FU Baker Foundation
FX We would like to thank the editors of Urban Forestry & Urban Greening
   and several anonymous reviewers, whose comments and suggestions have
   resulted in a greatly improved manuscript. This research was undertaken
   with the generous support of the Baker Foundation.
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NR 63
TC 101
Z9 133
U1 5
U2 127
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PY 2014
VL 13
IS 3
BP 411
EP 417
DI 10.1016/j.ufug.2014.04.004
PG 7
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA AO7TQ
UT WOS:000341555900001
DA 2025-04-22
ER

PT J
AU Liu, KL
   Chen, B
   Wang, SG
   Wang, H
AF Liu, Keling
   Chen, Bin
   Wang, Saige
   Wang, Hao
TI An urban waterlogging footprint accounting based on emergy: A case study
   of Beijing
SO APPLIED ENERGY
LA English
DT Article
DE Urban waterlogging; Emergy theory; Depth-damage function; Input -output
   analysis
ID SUSTAINABILITY EVALUATION; FLOOD RISK; LAND-USE; METABOLISM; CITY;
   VULNERABILITY; ENERGY; BASIN
AB The waterlogging disaster has become a major threat to the resilient development of cities, which needs a unified and systematic accounting framework to estimate potential waterlogging effects in terms of forming disaster prevention strategies. In this paper, we developed an emergy-based waterlogging footprint accounting framework applying depth-damage functions, input-output (IO) analysis and ecological footprint, considering both economic and environmental factors. Taking the old town Beijing as a case study, we simulated the urban waterlogging distribution with a hydrodynamic model (InfoWorks ICM) over different return periods (1, 2, 3, 5, 10, 20, and 50 years) at high resolution. This study first considered the economic impact caused by urban waterlogging to evaluate the direct economic loss and indirect economic loss by using the depth-damage function and IO model, respectively. The environmental loss was assessed with an ecological footprint and was unified by emergy with economic loss. Then, four emergy-based indicators were established to quantify the specific impacts of waterlogging on urban resilience. The results show that the waterlogging footprints grew constantly by 284.57% from 1 year to 50 years. The waterlogging footprints driven by environmental loss, which were overlooked, accounted for 13.02% of the total. The waterlogging footprint density and waterlogging resilience index showed high spatial heterogeneity, indicating that the sensitivity of subdistricts to waterlogging varies greatly. Our study provides a useful energy-based tool for assessing urban waterlogging losses and supports decision-making for waterlogging disaster mitigation and risk zoning management.
C1 [Liu, Keling; Chen, Bin; Wang, Saige] Beijing Normal Univ, Sch Environm, State Key Joint Lab Environm Simulat & Pollut Cont, Beijing 100875, Peoples R China.
   [Wang, Hao] Beijing Univ Technol, Fac Architecture Civil & Transportat Engn, Beijing 100124, Peoples R China.
   [Chen, Bin] Beijing Normal Univ, Sch Environm, Beijing 100875, Peoples R China.
C3 Beijing Normal University; Beijing University of Technology; Beijing
   Normal University
RP Chen, B (corresponding author), Beijing Normal Univ, Sch Environm, Beijing 100875, Peoples R China.
EM chenb@bnu.edu.cn
RI Chen, Bin/A-6951-2012
FU Major Program of National Natural Science Foundation of China
   [72091511]; National Science Fund for Distinguished Young Scholars of
   China [71725005]; Beijing Outstanding Scientist Program
   [BJJWZYJH01201910027031]; Strategic Priority Research Program of Chinese
   Academy of Sciences [XDA20100104]; Beijing Natural Science Foundation
   [9222017]
FX This work was supported by Major Program of National Natural Science
   Foundation of China (72091511) , National Science Fund for Distinguished
   Young Scholars of China (71725005) , Beijing Outstanding Scientist
   Program (BJJWZYJH01201910027031) , Strategic Priority Research Program
   of Chinese Academy of Sciences (No. XDA20100104) , and Beijing Natural
   Science Foundation (9222017) . We thank Editor and reviewers for their
   great help with improving the paper quality.
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NR 57
TC 13
Z9 13
U1 23
U2 107
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0306-2619
EI 1872-9118
J9 APPL ENERG
JI Appl. Energy
PD OCT 15
PY 2023
VL 348
AR 121527
DI 10.1016/j.apenergy.2023.121527
EA JUL 2023
PG 14
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA O4PU1
UT WOS:001043658100001
DA 2025-04-22
ER

PT J
AU Khromova, S
   Mendez, GV
   Eckelman, MJ
   Herreros-Cantis, P
   Langemeyer, J
AF Khromova, S.
   Mendez, G. Villalba
   Eckelman, M. J.
   Herreros-Cantis, P.
   Langemeyer, J.
TI A social-ecological-technological vulnerability approach for assessing
   urban hydrological risks
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Urban stromwater; Risk; Social-ecological-technological systems;
   Mapping; Resilience
ID WATER-QUALITY; RESILIENCE; DISCHARGE; SCIENCE
AB In the context of urban population growth and climate change, and ever greater number of people are anticipated to face severe risks associated with extreme climate events; major ones are due to stormwater-related hazards. This study offers novel understanding of the complex nature of water-related risks in urban geographies by employing a Social-Ecological-Technological Systems (SETS) framework to assess vulnerabilities. Hydrologyinformed urban risk index was developed, quantifying seventeen indicators from historical and modeled data on sewer overflow and flood events. The spatially explicit SETS-based approach identifies high-risk communities and hotspots where multiple vulnerabilities intersect and can serve as a valuable tool for guiding policy and decision-making to support more resilient urban futures. Our findings reveal that social vulnerability plays a critical role in determining the overall risk (R = 0.4), with the greatest impacts imposed on socially vulnerable communities. However, insights from the ecological (R = 0.2) and technological (R = 0.1) domains provide essential guidance for future risk reduction strategies-such as upgrading outdated sewer infrastructure and exploring green space potential for run-off mitigation. The framework proposed is generalizable to other cities facing similar environmental challenges, highlighting its potential as a foundational tool for policymaking to reduce risks associated with extreme climate events.
C1 [Khromova, S.; Mendez, G. Villalba; Herreros-Cantis, P.; Langemeyer, J.] Univ Autonoma Barcelona, Inst Environm Sci & Technol, Carrer Columnes Ed Z,Campus UAB, Bellaterra 08193, Barcelona, Spain.
   [Eckelman, M. J.] Northeastern Univ, Coll Engn, Boston, MA USA.
   [Mendez, G. Villalba] Univ Autonoma Barcelona UAB, Dept Chem Biol & Environm Engn, Bellaterra, Spain.
   [Herreros-Cantis, P.] Basque Ctr Climate Change BC3, Leioa 48940, Spain.
   [Herreros-Cantis, P.] New Sch, Urban Syst Lab, New York, NY USA.
   [Langemeyer, J.] Humboldt Univ, Dept Geog, Berlin, Germany.
   [Langemeyer, J.] Barcelona Supercomp Ctr, Dept Computat Social Sci & Humanities, Barcelona, Spain.
C3 Autonomous University of Barcelona; Northeastern University; Autonomous
   University of Barcelona; Basque Centre for Climate Change (BC3); The New
   School; Humboldt University of Berlin; Universitat Politecnica de
   Catalunya; Barcelona Supercomputer Center (BSC-CNS)
RP Khromova, S (corresponding author), Univ Autonoma Barcelona, Inst Environm Sci & Technol, Carrer Columnes Ed Z,Campus UAB, Bellaterra 08193, Barcelona, Spain.
EM svetlana.khromova@uab.cat
RI Méndez, Gara/B-1379-2009
FU European Fund Social Plus [2020-2021 Biodiversa, PCI2022133011,
   MICIU/AEI/10.13039/501100011033]; European Union NextGenerationEU/PRTR
   [818002-URBAG, 2021 SGR 00734]; Department of Research and Universities
   of the Generalitat de Catalunya [LCF/BQ/DI22/11940028]; La Caixa"
   Foundation [100010434]; "Maria de Maeztu" Programme for Units of
   Excellence of the Spanish Ministry of Science and Innovation
   [CEX2019-000940-M]
FX Publications are supported by the predoctoral program AGAUR-FI grants
   (2024 FI-2 00594) Joan Oro of the Secretariat of Universities and
   Research of Department of Research and Universities of the Generalitatde
   Catalunya and the European Fund Social Plus; the 2020-2021 Biodiversa
   and Water JPI joint call for research proposals, under the BiodivRestore
   ERA-Net COFUND programme, Project NICHES (PCI2022133011) financed by
   MICIU/AEI/10.13039/501100011033 and by the European Union
   NextGenerationEU/PRTR; ERC Consolidator Grant (818002-URBAG); Sostenipra
   (2021 SGR 00734) funded by the Department of Research and Universities
   of the Generalitat de Catalunya. PHC's time was supported by the
   Doctoral INPhINIT-INCOMING program, fellowship code
   (LCF/BQ/DI22/11940028), from "La Caixa" Foundation (ID 100010434). This
   work contributes to the "Maria de Maeztu" Programme for Units of
   Excellence of the Spanish Ministry of Science and Innovation
   (CEX2019-000940-M).
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NR 81
TC 0
Z9 0
U1 0
U2 0
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD APR
PY 2025
VL 173
AR 113334
DI 10.1016/j.ecolind.2025.113334
PG 16
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA 1CB7G
UT WOS:001461468300001
OA gold
DA 2025-04-22
ER

PT J
AU Keenan-Jones, DC
   Serra-Llobet, A
   He, HM
   Kondolf, GM
AF Keenan-Jones, Duncan C.
   Serra-Llobet, Anna
   He, Hongming
   Kondolf, G. Mathias
TI Urban development and long-term flood risk and resilience: Experiences
   over time and across cultures. Cases from Asia, North America, Europe
   and Australia
SO URBAN STUDIES
LA English
DT Article
DE disaster management; flood management; flood risk; history; regional
   urban planning; river basin management; urban planning
ID MISSISSIPPI RIVER; MANAGEMENT
AB Rivers are the lifeblood of many cities, but flood risk is projected to increase due to urbanisation and climate change. Better floodplain management in and near urban areas is required to produce the New Urban Agenda's 'just, safe, healthy, accessible, affordable, resilient and sustainable cities'. Many jurisdictions are looking to move or keep people out of human-constructed residential 'niches' on hazardous floodplains, but this has proved difficult to achieve. Our historical case studies of colonial societies in ancient Rome, as well as on the Yangtze, Mississippi and Brisbane rivers, show the deep roots of many contemporary flood risk issues, such as failures of risk perception related to recent settlement, the moral hazard of spending on flood defence infrastructure, the creeping nature of floodplain encroachment into 'niches' of perceived protection created by structural interventions, the need for a central, 'whole of river' approach, and the difficulties of implementing this approach locally. These case studies also suggest solutions, including the adoption of Indigenous perspectives, benefits to incentivise local actors and a historical education strategy to increase appetite for more sustainable flood risk mitigation.
C1 [Keenan-Jones, Duncan C.] Univ Manchester, Manchester, England.
   [Keenan-Jones, Duncan C.] Univ Queensland, St Lucia, Australia.
   [Serra-Llobet, Anna; Kondolf, G. Mathias] Univ Calif Berkeley, Berkeley, CA USA.
   [He, Hongming] East China Normal Univ, Shanghai, Peoples R China.
   [Keenan-Jones, Duncan C.] Univ Manchester, Sch Arts Languages & Cultures, Oxford Rd, Manchester M13 9PL, England.
C3 University of Manchester; University of Queensland; University of
   California System; University of California Berkeley; East China Normal
   University; University of Manchester
RP Keenan-Jones, DC (corresponding author), Univ Manchester, Sch Arts Languages & Cultures, Oxford Rd, Manchester M13 9PL, England.
EM duncan.keenan-jones@manchester.ac.uk
FU Collegium-Institut d'Etudes Avancees, Universite de Lyon; National
   Natural Science Foundation of China [42271007]; EURIAS Fellowship
   Program; European Commission (Marie-Sklodowska-Curie Actions-COFUND
   Programme FP7); Institutd'E tudes Avancees d'Aix-Marseille Universite;
   Laboratoire d'Excellence (Labex) OT-Med in Aix-en-Provence
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship,and/or publication of this article: We
   acknowledge support for manuscript preparation from the
   Collegium-Institut d'Etudes Avancees, Universite de Lyon, National
   Natural Science Foundation of China (No. 42271007) and the EURIAS
   Fellowship Program and the European Commission (Marie-Sklodowska-Curie
   Actions-COFUND Programme FP7), the Institutd'E tudes Avancees
   d'Aix-Marseille Universite and the Laboratoire d'Excellence (Labex)
   OT-Med in Aix-en-Provence.
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NR 59
TC 3
Z9 3
U1 12
U2 31
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD FEB
PY 2025
VL 62
IS 3
BP 469
EP 486
DI 10.1177/00420980231212077
EA DEC 2023
PG 18
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA W0D9L
UT WOS:001125534800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ahern, J
   Cilliers, S
   Niemelä, J
AF Ahern, Jack
   Cilliers, Sarel
   Niemela, Jari
TI The concept of ecosystem services in adaptive urban planning and design:
   A framework for supporting innovation
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Ecosystem services; Adaptive design; Learning by doing; Citizen science;
   Transdisciplinarity; Performance indicators
ID CIVIC SCIENCE; BIODIVERSITY; CHALLENGES; LANDSCAPES; STRATEGY; AREAS
AB Recent research and professional interest in planning for sustainable and resilient cities emphasizes the assessment of a broad spectrum of urban ecosystem services. While such assessments are useful to establish specific benchmarks, and for measuring progress toward sustainability and resilience goals, they do not motivate, or support the innovations required to provide specific ecosystem services as an intentional part of routine urban and infrastructure development activity by municipalities and professionals. In this context, predictions for unprecedented future urbanization and development of new urban infrastructure represent a unique opportunity to "learn-by-doing". Significant advances in urban sustainability have recently been made through transdisciplinary collaborations among researchers, professionals, decision-makers and stakeholders. However, these advances, often through pilot projects, have limited transferability to other cities due to the inherent biophysical and cultural uniqueness of the city in which they originated, and of the projects and plans themselves. The promise of practicing "learning-by-doing", therefore, remains an elusive goal, not yet fully integrated with urban development. In this essay, a framework for "safe to fail" adaptive urban design is proposed to integrate science, professional practice, and stakeholder participation. The framework is a transdisciplinary working method, and includes experimental design guidelines, monitoring and assessment protocols and strategies for realizing specific urban ecosystem services integral with urban development. The "safe-to-fail" adaptive urban design framework encourages and rewards innovation in a low-risk context - while assessing the achievement and performance of the specific intended ecosystem services. (C) 2014 Elsevier B.V. All rights reserved.
C1 [Ahern, Jack] Univ Massachusetts, Amherst, MA 01003 USA.
   [Cilliers, Sarel] North West Univ, Potchefstroom, South Africa.
   [Niemela, Jari] Univ Helsinki, Dept Environm Sci, FI-00014 Helsinki, Finland.
C3 University of Massachusetts System; University of Massachusetts Amherst;
   North West University - South Africa; University of Helsinki
RP Ahern, J (corresponding author), Univ Massachusetts, Amherst, MA 01003 USA.
EM jfa@ipo.umass.edu; Sarel.Cilliers@nwu.ac.za; jari.niemela@helsinki.fi
RI Cilliers, Sarel/R-1537-2019; Ahern, Jack/JUV-2655-2023
OI Cilliers, Sarel/0000-0001-6108-6686
FU Div Of Biological Infrastructure; Direct For Biological Sciences
   [1052875, 1639145] Funding Source: National Science Foundation
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NR 54
TC 289
Z9 349
U1 24
U2 818
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0169-2046
EI 1872-6062
J9 LANDSCAPE URBAN PLAN
JI Landsc. Urban Plan.
PD MAY
PY 2014
VL 125
SI SI
BP 254
EP 259
DI 10.1016/j.landurbplan.2014.01.020
PG 6
WC Ecology; Environmental Studies; Geography; Geography, Physical; Regional
   & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA AH9ME
UT WOS:000336465700025
OA Green Published
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Schibuola, L
   Tambani, C
AF Schibuola, Luigi
   Tambani, Chiara
TI Performance assessment of seawater cooled chillers to mitigate urban
   heat island
SO APPLIED THERMAL ENGINEERING
LA English
DT Article
DE Urban heat island; Seawater cooled chillers; Resilient city; Urban
   weather model; Anthropogenic heat; District cooling network
ID ENERGY-CONSUMPTION; PUMP; CLIMATE; IMPACT
AB Urban heat island (UHI) phenomenon, nowadays accentuated by global warming, is growing its negative influence on urban resilience, building energy budget and human comfort during summer. To reduce UHI effect, mitigation strategies are normally focused on actions related to urban design like the use of high reflectivity surfaces and increase of vegetation. But, as concerns building anthropogenic heat, the benefits of a possible reduction of the heat released by air conditioning systems to neighborhoods are often underestimate. An effective solution consists in transporting the heat emitted by chiller condensers elsewhere by using water as heat transfer fluid. The systematic use of seawater to cool chillers in an urban area of a coastal city was investigated. The modification of the UHI phenomenon was studied as well as the consequences on building cooling demands and chiller performances assessed in dynamic conditions. Urban weather files in presence of different types of chillers were elaborated by Urban Weather Generator model. Building cooling demands in the area were evaluated by using archetype modeling approach and EnergyPlus model. The algorithm adopted to assess chiller performances takes into account also the effect of part load working condition. The comparison of seawater cooled chillers technology versus the more diffuse use of air cooled chillers highlights a significant UHI effect reduction which reaches 57% during the night. As regards cooling demand increment caused by UHI, with seawater cooled chillers it is reduced of 58%. In the end, thanks to lower demand and higher chiller efficiency, seawater cooling chillers achieve an energy saving of 23.5%. Therefore this solution can foster the urban resilience and sustainability with an increasing contribution in front of the future climate scenario. Therefore, the introduction of a district cooling network is an important UHI mitigation strategy and its feasibility would have to be always verified between the possible actions.
C1 [Schibuola, Luigi; Tambani, Chiara] Univ IUAV Venice, Dorsoduro 2206, I-30123 Venice, Italy.
C3 IUAV University Venice
RP Tambani, C (corresponding author), Univ IUAV Venice, Dorsoduro 2206, I-30123 Venice, Italy.
EM chiara.tambani@iuav.it
RI Tambani, Chiara/AAG-3578-2020; Schibuola, Luigi/AAD-9221-2021
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NR 57
TC 17
Z9 17
U1 2
U2 28
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1359-4311
EI 1873-5606
J9 APPL THERM ENG
JI Appl. Therm. Eng.
PD JUL 5
PY 2020
VL 175
AR 115390
DI 10.1016/j.applthermaleng.2020.115390
PG 11
WC Thermodynamics; Energy & Fuels; Engineering, Mechanical; Mechanics
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Thermodynamics; Energy & Fuels; Engineering; Mechanics
GA LO4TR
UT WOS:000533622700066
OA Green Published
DA 2025-04-22
ER

PT J
AU Liu, C
   Liu, J
AF Liu, Chen
   Liu, Jia
TI Resilience of Living Streets in Small and Medium-Sized Towns: A Grounded
   Theory Study of Yixing, China
SO SUSTAINABILITY
LA English
DT Article
DE resilience concept; living streets; small and medium-sized towns;
   Jiangnan area; grounded theory; SDG11; sustainable city
AB In the context of the global fine-grained urban renewal initiative, living streets closely related to people's lives have become a hot topic. This study provides a comprehensive framework for addressing prominent issues such as the limited adaptability and inability to accommodate development in living streets. It explores the value and design innovation points of incorporating resilience concepts in the renewal of living streets. Taking the living streets in Yixing, Jiangsu Province, as an example, the grounded theory approach was employed to conduct in-depth interviews and three-level coding of the data to systematically elucidate the influencing factors and implementation paths of resilience in living streets. The study reveals that the resilient development of living streets is influenced and constrained by six factors: positive values, demand factors, spatial environment, contextual factors, operation and management, and resilience characteristics. Each of these six main dimensions encompasses multiple subcategories and the factors influencing living streets' resilience through different mechanisms. Building upon the guidance-demand-design-context-operation pathway model for enhancing the resilience of living streets in small and medium-sized towns in the Jiangnan region, the study proposes new perspectives such as correct orientation, adaptability to change, and a balance between rigidity and flexibility tailored explicitly to the enhancement of resilience in living streets. These novel perspectives contribute to the theoretical research achievements on the resilience development of living streets in small and medium-sized towns in the Jiangnan region of China to a certain extent. Furthermore, these findings hold significant implications for attaining SDG11, which emphasizes sustainable urban development.
C1 [Liu, Chen; Liu, Jia] Jiangnan Univ, Sch Design, Wuxi 214122, Peoples R China.
C3 Jiangnan University
RP Liu, J (corresponding author), Jiangnan Univ, Sch Design, Wuxi 214122, Peoples R China.
EM 6210307054@stu.jiangnan.edu.cn; liujia11231123@jiangnan.edu.cn
RI LIU, CHEN/MBG-4468-2025
OI liu, chen/0009-0001-4187-5271
FU Art Project of National Social Science Foundation of China [22BG124]
FX This research was funded by the Art Project of National Social Science
   Foundation of China (Grant No. 22BG124).
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NR 55
TC 0
Z9 0
U1 9
U2 37
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2023
VL 15
IS 15
AR 12084
DI 10.3390/su151512084
PG 23
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA O7WZ0
UT WOS:001045884700001
OA gold
DA 2025-04-22
ER

PT J
AU Van Haren, C
   Kumar, I
   Cormont, A
   van Scheltinga, CT
   De Rooij, B
   Islam, S
   Verweij, P
AF Van Haren, Charlotte
   Kumar, Inder
   Cormont, Anouk
   van Scheltinga, Catharien Terwisscha
   De Rooij, Bertram
   Islam, Syed
   Verweij, Peter
TI The Role of Spatialisation and Spatial Planning in Improving Food
   Systems: Insights from the Fast-Growing City of Dhaka, Bangladesh
SO SUSTAINABILITY
LA English
DT Article
DE spatial analysis; maps; nutrition; footprint; metropole; urbanisation;
   population growth; urban poor; value chain; logistics
AB Cities are growing rapidly. It takes a chain of activities to get food from farms to cities. This food system is largely driven by autonomous market development, seizing opportunities favourable to a stakeholder but unfavourable to society at large. Spatial planning is crucial along the chain of food system activities to improve food system outcomes, resilience, and limit negative trade-offs. To include the food system in spatial planning, it must first be mapped (i.e., spatialisation) to understand the functions. These maps inform the spatial planning process, which in turn influences spatial configuration of activities. This paper explores the role of spatialisation and spatial planning in the food system of the fast-growing Dhaka Metropolitan Area (DMA) using three different approaches: urban footprint, mapping, and semi-structured interviews. Stakeholders are unaware of spatial aspects that are present in DMA's food system and therefore do not consider it while developing spatial plans. The analysis in this article, based on the Urban Food Footprint analysis, food system spatialisation, and interviews shows that spatial planning informed by descriptive spatial information can play an important role in guiding the transformation to a more robust, resilient, and inclusive food system.
C1 [Van Haren, Charlotte; Kumar, Inder; Cormont, Anouk; van Scheltinga, Catharien Terwisscha; De Rooij, Bertram; Verweij, Peter] Wageningen Environm Res, POB 47, NL-6700 Wageningen, Netherlands.
   [Islam, Syed] FAO, Dhaka 1215, Bangladesh.
C3 Wageningen University & Research; Food & Agriculture Organization of the
   United Nations (FAO)
RP Van Haren, C (corresponding author), Wageningen Environm Res, POB 47, NL-6700 Wageningen, Netherlands.
EM charlotte.vanharen@wur.nl
OI van Haren, Charlotte/0009-0005-4585-1815; de Rooij,
   Bertram/0000-0001-9181-3565; Terwisscha van Scheltinga,
   Catharien/0000-0002-1590-9941
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NR 41
TC 2
Z9 2
U1 1
U2 4
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB
PY 2023
VL 15
IS 4
AR 3423
DI 10.3390/su15043423
PG 13
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 9L2LG
UT WOS:000941385500001
OA gold
DA 2025-04-22
ER

PT J
AU Hu, LT
   Deng, SD
   Ma, JX
   Liang, KH
   Shao, YC
   Liu, MM
   Yang, JX
   Fang, W
   Bi, J
   Ma, ZW
AF Hu, Litiao
   Deng, Shudan
   Ma, Jixiang
   Liang, Kehan
   Shao, Yanchuan
   Liu, Miaomiao
   Yang, Jianxun
   Fang, Wen
   Bi, Jun
   Ma, Zongwei
TI Informing Risk Hotspots and Critical Mitigations for Rainstorms Using
   Machine Learning: Evidence from 268 Chinese Cities
SO ENVIRONMENTAL SCIENCE & TECHNOLOGY
LA English
DT Article
DE causal forest; random forest; SHAP; urban rainstorm risks; mitigation
   strategies
ID RESILIENCE; IMPACT
AB Climate change is exacerbating rainstorms, increasing the risk of flooding and threatening urban sustainability, which could undermine climate action. Here, we propose a machine learning-based framework to assess heterogeneous risks and identify critical mitigation measures for rainstorms across 268 Chinese cities. Nighttime light serves as a proxy for urban functionality, and meteorological, socio-economic, and infrastructural factors are incorporated to uncover underlying impact mechanisms. The Causal Forest (CF) model identifies 150 and 250 mm monthly rainstorm totals as critical thresholds, with significant negative impacts in the risk hotspots of eastern and north-central China. Additionally, Random Forest and SHAP (RF-SHAP) analysis highlight effective mitigation strategies, including well-developed drainage and bridges, expanded road networks, and sufficient dams. The Fixed Effects (FE) model reveals that the greatest negative impacts of rainstorms occur in spring, particularly in April, followed by autumn and winter for both the 50 and 150 mm thresholds. Our results demonstrate that the three models complement and validate each other, enhancing the reliability of the estimates. This novel framework leverages machine learning model to inform evidence-based mitigation, contributing to the achievement of Sustainable Development Goals 11 and 13-building resilient cities and combating climate change.
C1 [Hu, Litiao; Deng, Shudan; Ma, Jixiang; Liang, Kehan; Shao, Yanchuan; Liu, Miaomiao; Yang, Jianxun; Fang, Wen; Bi, Jun; Ma, Zongwei] Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Nanjing 210023, Peoples R China.
   [Bi, Jun; Ma, Zongwei] Nanjing Univ Informat Sci & Technol, Jiangsu Collaborat Innovat Ctr Atmospher Environm, Nanjing 210044, Peoples R China.
   [Liu, Miaomiao; Yang, Jianxun; Fang, Wen; Bi, Jun; Ma, Zongwei] Basic Sci Ctr Energy & Climate Change, Beijing 100081, Peoples R China.
   [Yang, Jianxun; Bi, Jun] Nanjing Univ, Inst Environm & Hlth, Suzhou Campus, Suzhou 215163, Peoples R China.
C3 Nanjing University; Nanjing University of Information Science &
   Technology; Nanjing University
RP Ma, ZW (corresponding author), Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Nanjing 210023, Peoples R China.; Ma, ZW (corresponding author), Nanjing Univ Informat Sci & Technol, Jiangsu Collaborat Innovat Ctr Atmospher Environm, Nanjing 210044, Peoples R China.; Ma, ZW (corresponding author), Basic Sci Ctr Energy & Climate Change, Beijing 100081, Peoples R China.
EM zma@nju.edu.cn
RI Ma, Zongwei/ABG-4851-2020; Liu, Miaomiao/MEK-9155-2025; yang,
   jianxun/JXY-7219-2024; Shudan, Deng/JPK-6573-2023
OI Yang, Jianxun/0009-0005-0821-7698; Liu, Miaomiao/0000-0002-9043-3584;
   Ma, Zongwei/0000-0003-0257-5695
FU National Natural Science Foundation of China [52170189, 71921003,
   72234003, 72488101]; National Natural Science Foundation of China
FX This work was supported by the National Natural Science Foundation of
   China (Grants 52170189, 71921003, 72234003, and 72488101).
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NR 65
TC 0
Z9 0
U1 41
U2 41
PU AMER CHEMICAL SOC
PI WASHINGTON
PA 1155 16TH ST, NW, WASHINGTON, DC 20036 USA
SN 0013-936X
EI 1520-5851
J9 ENVIRON SCI TECHNOL
JI Environ. Sci. Technol.
PD JAN 16
PY 2025
VL 59
IS 3
BP 1619
EP 1630
DI 10.1021/acs.est.4c08699
EA JAN 2025
PG 12
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology
GA T9K5B
UT WOS:001399121000001
PM 39818747
DA 2025-04-22
ER

PT J
AU Smail, SA
   Zemmouri, N
   Djenane, M
   Nikolopoulou, M
AF Smail, Sabah Ali
   Zemmouri, Noureddine
   Djenane, Moussadek
   Nikolopoulou, Marialena
TI Investigating the transient conditions of "Sabat" space and its
   influence on pedestrian sensations during thermal walks. Algiers' Casbah
   case study
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Walkability; Lift -up design; Fatigue sensation; Alliesthesia; Semi
   -outdoor; Resilient comfort
ID URBAN DESIGN QUALITIES; AFFECTIVE EXPERIENCES; BUILT ENVIRONMENTS; CITY
   BREATHABILITY; COMFORT; OUTDOOR; ENHANCEMENT; FATIGUE; CLIMATE;
   KNOWLEDGE
AB Cities are already witnessing the impacts of climate change. Prolonged heat exposure have a direct effect on pedestrians' thermoregulatory system, causing serious heat-related issues in the form of fatigue and thermal exhaustion. While the human body is capable of maintaining heat balance, excessive heat exposure combined with increasing heat loads can deteriorate the thermoregulatory process which leads to discomfort. Walkability is one of the significant challenges for climate change mitigation. Balancing the dichotomy of walking to mitigate climate change, and mitigating climate change to walk emphasizes the importance of promoting resilient walkability. In this context, the term "resilience" is used to highlight the need to design urban spaces able to adapt to increased urban heat, enabling pedestrians to tolerate and recover from discomfort conditions. This study investigates the potential of the "Sabat", a traditional semi-outdoor space with lift-up design, and its distribution in generating transient thermal aeraulic conditions, and reducing fatigue sensation, hence, supporting a positive walking experience. Thermal walks have been conducted in Casbah of Algiers during temperate and hot weather conditions, in the context of uphill walking. Results revealed the alliesthesial effect of cool-shaded and ventilated Sabats to reduce fatigue sensation, which was confirmed by the significant correlation at lag-(-1) (r = 0.504, p < 0.001). Findings shed light on the importance of maintaining dynamic alliesthesia to create modulated restorative opportunities and offer starting point for hypothesizing broader trends for future implementation of Sabat design in modern cities.
C1 [Smail, Sabah Ali; Zemmouri, Noureddine; Djenane, Moussadek] Univ Mohamed Khider, Dept Architecture, LACOMOFA Lab, Biskra 07000, Algeria.
   [Smail, Sabah Ali; Nikolopoulou, Marialena] Univ Kent, Kent Sch Architecture & Planning, Canterbury CT2 7NR, England.
C3 Universite Mohamed Khider Biskra; University of Kent
RP Smail, SA (corresponding author), BP 145 RP, Biskra 07000, Algeria.
EM sabah.alismail@univ-biskra.dz
RI Zemmouri, Noureddine/JVZ-3841-2024
OI Nikolopoulou, Marialena/0000-0002-0528-2145; ALI-SMAIL,
   SABAH/0000-0002-6919-0100
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NR 71
TC 3
Z9 3
U1 8
U2 11
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0360-1323
EI 1873-684X
J9 BUILD ENVIRON
JI Build. Environ.
PD AUG 1
PY 2024
VL 261
AR 111760
DI 10.1016/j.buildenv.2024.111760
EA JUN 2024
PG 15
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA XJ7Y7
UT WOS:001261394000001
OA hybrid, Green Accepted
DA 2025-04-22
ER

PT J
AU Hardy, CL
   de Rivera, CE
   Bliss-Ketchum, LL
   Butler, EP
   Dissanayake, STM
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   Huffine, B
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AF Hardy, Carole L.
   de Rivera, Catherine E.
   Bliss-Ketchum, Leslie L.
   Butler, Eric P.
   Dissanayake, Sahan T. M.
   Horn, Dorothy A.
   Huffine, Ben
   Temple, Amanda M.
   Vermeulen, Michael E.
   Wallace, Hailey
   Karps, Jennifer
TI Ecosystem Connectivity for Livable Cities: a Connectivity Benefits
   Framework for Urban Planning
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE benefit-relevant indicators; eco-social connectivity; ecosystem
   multifunctionality; resilient cities; risk-relevant indicators; urban
   resilience
ID SERVICES; TREES; EXTINCTION; SYSTEMS; MATRIX; AREAS
AB Urbanization disrupts landscapes and ecosystem functions, which poses threats to biodiversity, social systems, and human health, particularly among vulnerable populations. Urban land-use planners are faced with competing demands for housing, safety, transportation, and economic development and often lack tools to integrate these with protecting environmental functions. We identify three major barriers to integrating the benefits that flow with connected, functioning ecosystems into land-use planning. The lack of a shared language among planners and stakeholders poses a barrier to the restoration and preservation of ecological features. Methods of incorporating the benefits from connectivity are not standardized because values are not readily available or lack credibility. Ecological restoration tends to be poorly coordinated at broad scales, and thus often fails to achieve landscape-level objectives. To address these challenges, we developed a novel integrated framework, the Connectivity Benefits Framework (CBF), which combines the benefits from three categories of ecosystem connectivity with benefit-and risk-relevant indicators, enabling both monetary and non-monetary valuation of benefits. Moreover, it provides a method to identify and visualize the multiple and overlapping benefits from management actions to aid in prioritizing initiatives that support ecosystem functions. Unlike software tools that incorporate generalized values of ecosystem services at a landscape level, the CBF guides a systematic approach to community-engaged land-use planning that prioritizes localized societal needs while protecting biodiversity and ecosystem function for more equitable, resilient cities. We demonstrate the potential for multiple overlapping benefits from actions that restore and protect ecosystem connectivity by applying the framework to a transit planning project in Portland, Oregon.
C1 [Hardy, Carole L.; de Rivera, Catherine E.; Bliss-Ketchum, Leslie L.; Butler, Eric P.; Horn, Dorothy A.; Huffine, Ben; Temple, Amanda M.; Vermeulen, Michael E.; Wallace, Hailey] Portland State Univ, Dept Environm Sci & Management, Portland, OR 97207 USA.
   [Bliss-Ketchum, Leslie L.] Samara Grp, Tallinn, Estonia.
   [Dissanayake, Sahan T. M.] Portland State Univ, Dept Econ, Portland, OR 97207 USA.
   [Temple, Amanda M.] Portland State Univ, Dept Geog, Portland, OR 97207 USA.
   [Karps, Jennifer] Bur Environm Serv, Portland, OR USA.
C3 Portland State University; Portland State University; Portland State
   University
RP Hardy, CL (corresponding author), Portland State Univ, Dept Environm Sci & Management, Portland, OR 97207 USA.
OI Vermeulen, Michael/0000-0001-9062-843X
FU Portland State University Library's Open Access Fund
FX Our sincere thanks to Portland area planners and practitioners who
   provided feedback on the CBF and this manuscript: Janelle StPierre,
   Clean Water Services; Lori Hennings, Metro; Ted Labbe, Urban Greenspaces
   Institute; and Roberta Jortner, retired from Portland Bureau of Planning
   and Sustainability. Thanks also to our colleague, Liliana Caughman, for
   her insights on Portland community plans. Publication of this article in
   an open-access journal was funded by the Portland State University
   Library's Open Access Fund.
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NR 73
TC 6
Z9 6
U1 5
U2 31
PU RESILIENCE ALLIANCE
PI WOLFVILLE
PA ACADIA UNIV, BIOLOGY DEPT, WOLFVILLE, NS B0P 1X0, CANADA
SN 1708-3087
J9 ECOL SOC
JI Ecol. Soc.
PD JUN
PY 2022
VL 27
IS 2
AR 36
DI 10.5751/ES-13371-270236
PG 25
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 3C1MA
UT WOS:000828393500002
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Carpenter, A
AF Carpenter, Ann
TI Resilience in the social and physical realms: Lessons from the Gulf
   Coast
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
AB The mounting frequency and scale of natural disasters, increasing urbanization, a growing reliance on interdependent technologies and infrastructure, and inflated expectations of emergency response interventions are responsible for greater disaster vulnerability and demonstrate the need to establish more resilient communities ahead of a disaster. The decisions of the private sector are among the reasons for increased vulnerability, for example through unsustainable or unsound real estate development.
   One factor that is known to impact resilience is social capital, particularly as manifested in strong social networks. The built environment has been shown to influence social networks in multiple ways. Research has shown that walkable, mixed-use neighborhoods with a higher concentration of social gathering places and public space encourage the development of social capital and place attachment through an increase in social interaction. The built environment is a physical, social, and symbolic anchor for residents. Most importantly for resilience, it can be a support system for social networks. The private sector influences this relationship through real estate development decisions.
   \This paper examines how characteristics of the built environment that influence social networks contributed to greater resilience to Hurricane Katrina along the Mississippi Gulf Coast. Given that social networks increase community resilience to all types of disasters, that social networks are shown to be influenced by certain types of space, and that the built environment is a common intervention for urban planners, this paper explores the potential for creating cities that are more resilient by encouraging private development that fosters social networks. (C) 2014 Elsevier Ltd. All rights reserved.
C1 [Carpenter, Ann] Fed Reserve Bank Atlanta, Community & Econ Dev Dept, Div Res, Atlanta, GA 30309 USA.
   [Carpenter, Ann] Georgia Inst Technol, Georgia Tech Res Inst, Atlanta, GA 30332 USA.
C3 Federal Reserve System - USA; Federal Reserve Bank - Atlanta; University
   System of Georgia; Georgia Institute of Technology
RP Carpenter, A (corresponding author), Georgia Inst Technol, Georgia Tech Res Inst, Atlanta, GA 30332 USA.
EM acarpenter@gatech.edu
RI Carpenter, Ann/B-2988-2012
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NR 40
TC 28
Z9 35
U1 1
U2 40
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD DEC
PY 2015
VL 14
BP 290
EP 301
DI 10.1016/j.ijdrr.2014.09.003
PN 3
PG 12
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA DC0SX
UT WOS:000368929100007
OA Green Published
DA 2025-04-22
ER

PT J
AU Planas-Carbonell, A
   Anguelovski, I
   Oscilowicz, E
   Shokry, G
   Perez-del-Pulgar, C
AF Planas-Carbonell, Aina
   Anguelovski, Isabelle
   Oscilowicz, Emilia
   Shokry, Galia
   Perez-del-Pulgar, Carmen
TI From greening the climate-adaptive city to green climate gentrification?
   Civic perceptions of short-lived benefits and exclusionary protection in
   Boston, Philadelphia, Amsterdam and Barcelona
SO URBAN CLIMATE
LA English
DT Article
DE Urban adaptation planning; Green urban infrastructure; Displacement;
   Climate injustice; Green climate gentrification; Europe; North America;
   Climate resilience
ID ADAPTATION; NEIGHBORHOODS; RESILIENCE
AB Municipal governments are increasingly promoting green climate-adaptive infrastructure projects to address climate threats and impacts while maximizing multiple socio-environmental benefits. Although these strategies are repeatedly advanced as "win-win" solutions for all, recent literature has drawn attention to numerous negative effects, especially the displacement and exclusion of vulnerable social groups, pointing at yet another layer of climate injustice. In this article, we focus our analysis on the experienced and/or perceived negative social effects of greening interventions for climate adaptation on historically marginalized groups through a cross-case qualitative com-parison of four neighborhoods in North American and European cities (Boston, Philadelphia, Amsterdam and Barcelona). Interviews conducted among a diverse sample of civic groups related to each neighborhood reveal that most respondents highly value green resilient infrastructures for their socio-environmental benefits. However, unless these green interventions are implemented alongside policies that guarantee equitable outcomes for all, then civic respondents mostly identify negative social impacts on marginalized residents, making those benefits short-lived. Most promi-nent negative impacts include physical displacement and the related threat of more displacement together with risks that new (green) real estate developments and resilient greening will remain exclusionary for marginalized groups. Such similar findings across different socio-political contexts point to the need for bolder policies that guarantee that investments in green climate adaptation interventions secure both environmental and social benefits in underinvested and environmentally neglected neighborhoods and mitigate the negative impacts of such interventions, namely socio-cultural and physical displacement and overall exclusionary climate protection.
C1 [Anguelovski, Isabelle] UAB Univ Autonoma Barcelona, BCNUEJ Barcelona Lab Urban Environm Justice & Sust, ICTA Inst Environm Sci & Technol, ICREA Institucio Catalana Recerca & Estudis Avanca, Barcelona, Spain.
   [Planas-Carbonell, Aina; Oscilowicz, Emilia; Shokry, Galia] UAB Univ Autonoma Barcelona, BCNUEJ Barcelona Lab Urban Environm Justice & Sust, ICTA Inst Environm Sci & Technol, Barcelona, Spain.
   [Perez-del-Pulgar, Carmen] UFZ Helmholtz Ctr Environm Res, Dept Environm Polit, Leipzig, Germany.
   [Perez-del-Pulgar, Carmen] Friedrich Schiller Univ, Dept Polit Sci, Jena, Germany.
   [Shokry, Galia] Kean Univ, Dept Environm & Sustainabil Sci, Barcelona, Spain.
C3 Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Friedrich Schiller University of Jena
RP Anguelovski, I (corresponding author), UAB Univ Autonoma Barcelona, BCNUEJ Barcelona Lab Urban Environm Justice & Sust, ICTA Inst Environm Sci & Technol, ICREA Institucio Catalana Recerca & Estudis Avanca, Barcelona, Spain.
EM Isabelle.Anguelovski@uab.cat
RI Shokry, Galia/ABP-5934-2022; Oscilowicz, Emilia/JGM-5412-2023; Perez del
   Pulgar Frowein, Carmen/AFI-2603-2022
OI Perez del Pulgar Frowein, Carmen/0000-0001-8331-2365; Shokry,
   Galia/0000-0002-2959-3677
FU European Research Council [678034, CEX2019-000940-M]; Spanish Ministry
   of Science; European Research Council (ERC) [678034] Funding Source:
   European Research Council (ERC)
FX The study was funded by the European Research Council under grant
   agreement [No 678034] and CEX2019-000940-M for the Maria de Maetzu from
   the Spanish Ministry of Science. None of the funding organizations were
   involved in the design, analysis or writing of this article.
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Z9 16
U1 14
U2 55
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD MAR
PY 2023
VL 48
AR 101295
DI 10.1016/j.uclim.2022.101295
EA JAN 2023
PG 17
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA 8H5LX
UT WOS:000921075900001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU James, SW
   Friel, S
AF James, Sarah W.
   Friel, Sharon
TI An integrated approach to identifying and characterising resilient urban
   food systems to promote population health in a changing climate
SO PUBLIC HEALTH NUTRITION
LA English
DT Article
DE Climate change; Ecological footprint; Food systems; Food security;
   Population health; Health inequity; Urban settlements
ID GREENHOUSE-GAS EMISSIONS; LOCAL FOOD; DIETARY GUIDELINES; CHANGE
   ADAPTATION; SUPPLY CHAINS; 9 BILLION; SECURITY; SUSTAINABILITY;
   AGRICULTURE; CONSUMPTION
AB Objective: To determine key points of intervention in urban food systems to improve the climate resilience, equity and healthfulness of the whole system.
   Design: The paper brings together evidence from a 3-year, Australia-based mixed-methods research project focused on climate change adaptation, cities, food systems and health. In an integrated analysis of the three research domains encompassing the production, distribution and consumption sectors of the food chain - the paper examines the efficacy of various food subsystems (industrial, alternative commercial and civic) in achieving climate resilience and good nutrition.
   Setting: Greater Western Sydney, Australia.
   Subjects: Primary producers, retailers and consumers in Western Sydney.
   Results: This overarching analysis of the tripartite study found that: (i) industrial food production systems can be more environmentally sustainable than alternative systems, indicating the importance of multiple food subsystems for food security; (ii) a variety of food distributors stocking healthy and sustainable items is required to ensure that these items are accessible, affordable and available to all; and (iii) it is not enough that healthy and sustainable foods are produced or sold, consumers must also want to consume them. In summary, a resilient urban food system requires that healthy and sustainable food items are produced, that consumers can attain them and that they actually wish to purchase them.
   Conclusions: This capstone paper found that the interconnected nature of the different sectors in the food system means that to improve environmental sustainability, equity and population health outcomes, action should focus on the system as a whole and not just on any one sector.
C1 [James, Sarah W.; Friel, Sharon] Australian Natl Univ, Regulatory Inst Network, Acton, ACT 2601, Australia.
C3 Australian National University
RP Friel, S (corresponding author), Australian Natl Univ, Regulatory Inst Network, Fellows Rd 8, Acton, ACT 2601, Australia.
EM Sharon.Friel@anu.edu.au
OI james, sarah/0000-0002-6042-7001; Friel, Sharon/0000-0002-8345-5435
FU Climate and Health Cluster; CSIRO Flagship Collaboration Fund
FX This research received support from the Climate and Health Cluster which
   is funded by the CSIRO Flagship Collaboration Fund. The funder had no
   role in the design, analysis or writing of this article.
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NR 81
TC 18
Z9 20
U1 1
U2 14
PU CAMBRIDGE UNIV PRESS
PI CAMBRIDGE
PA EDINBURGH BLDG, SHAFTESBURY RD, CB2 8RU CAMBRIDGE, ENGLAND
SN 1368-9800
EI 1475-2727
J9 PUBLIC HEALTH NUTR
JI Public Health Nutr.
PD AUG
PY 2015
VL 18
IS 13
BP 2498
EP 2508
DI 10.1017/S1368980015000610
PG 11
WC Public, Environmental & Occupational Health; Nutrition & Dietetics
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Nutrition & Dietetics
GA CR1EO
UT WOS:000361067000023
PM 25857316
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Almihat, MGM
   Munda, JL
AF Almihat, Mohamed G. Moh
   Munda, Josiah L.
TI The Role of Smart Grid Technologies in Urban and Sustainable Energy
   Planning
SO ENERGIES
LA English
DT Review
DE smart microgrids; sustainable energy planning; artificial intelligence;
   urbanization; energy; distributed energy resources
ID MICROGRIDS; MANAGEMENT; CHALLENGES; SYSTEM; RESILIENCE; PROTECTION;
   MECHANISM; FRAMEWORK; FUTURE
AB Traditional centralized energy grids struggle to meet urban areas' increasingly complex energy demands, necessitating the development of more sustainable and resilient energy solutions. Smart microgrids offer a decentralized approach that enhances energy efficiency, facilitates the integration of renewable energy sources, and improves urban resilience. This study follows a systematic review approach, analyzing the literature published in peer-reviewed journals, conference proceedings, and industry reports between 2011 and 2025. The research draws from academic publications of energy institutions alongside regulatory reports, examining actual smart microgrid deployments in San Diego, Barcelona, and Seoul. Additionally, this article provides real-world case studies from New York and London, showcasing successful and unsuccessful smart microgrid deployments. The Brooklyn Microgrid in New York demonstrates peer-to-peer energy trading, while London faces regulations and funding challenges in its decentralized energy systems. The paper also explores economic and policy frameworks such as public-private partnerships (PPPs), localized energy markets, and standardized regulatory models to enable microgrid adoption at scale. While PPPs provide financial and infrastructural support for microgrid deployment, they also introduce stakeholder alignment and regulatory compliance complexities. Countries like Germany and India have successfully used PPPs for smart microgrid development, leveraging low-interest loans, government incentives, and regulatory mechanisms to encourage innovation and adoption of smart microgrid technologies. In addition, the review examines new trends like the utilization of AI and quantum computing to optimize energy, peer-to-peer energy trading, and climate resilient design before outlining a future research agenda focused on cybersecurity, decarbonization, and the inclusion of new technology. Contributions include the development of a modular and scalable microgrid framework, innovative hybrid storage systems, and a performance-based policy model suited to the urban environment. These contributions help to fill the gap between what is possible today and what is needed for future sustainable urban energy systems and create the foundation for resilient cities of the next century.
C1 [Almihat, Mohamed G. Moh; Munda, Josiah L.] Tshwane Univ Technol, Dept Elect Engn, ZA-0001 Pretoria, South Africa.
C3 Tshwane University of Technology
RP Almihat, MGM (corresponding author), Tshwane Univ Technol, Dept Elect Engn, ZA-0001 Pretoria, South Africa.
EM almihatmgm@tut.ac.za; mundajl@tut.ac.za
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NR 172
TC 0
Z9 0
U1 0
U2 0
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD MAR 24
PY 2025
VL 18
IS 7
AR 1618
DI 10.3390/en18071618
PG 30
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA 1IF8T
UT WOS:001465647200001
OA gold
DA 2025-04-22
ER

PT J
AU Esraz-Ul-Zannat, M
   Dedekorkut-Howes, A
   Morgan, EA
AF Esraz-Ul-Zannat, Md.
   Dedekorkut-Howes, Aysin
   Morgan, Edward Alexander
TI A review of nature-based infrastructures and their effectiveness for
   urban flood risk mitigation
SO WILEY INTERDISCIPLINARY REVIEWS-CLIMATE CHANGE
LA English
DT Review
DE climate adaptation; flood resilience; hybrid infrastructure; resilient
   city; stormwater management
ID LOW IMPACT DEVELOPMENT; CLIMATE-CHANGE; GREEN INFRASTRUCTURE; WATER
   MANAGEMENT; RESILIENT; STRATEGIES; DESIGN; BENEFITS; SYSTEM;
   SUSTAINABILITY
AB Anthropogenic climate change and rapid urbanization are contributing to more frequent and intense urban flooding. There is widespread agreement that traditional gray infrastructure, a single-purpose solution, fails to address the problem properly and contributes to adverse direct and indirect environmental impacts. As such, Nature-based Solutions (NbS) can provide improved outcomes to flood risk management along with co-benefits to society and the economy, as they have numerous benefits incuding often a smaller carbon footprint or even sometimes sequestering carbon. However, there is ambiguity and misconception about NbS and the uptake of NbS for flood management, which is still inadequate compared to traditional gray infrastructure. This research seeks to explore various nature-based infrastructures including their present status of application for flood risk management to build resilience to urban flooding through a systematic literature review. The robustness of some NbS is questionable and varies across different spatial scales from plot to watershed. NbS can work stand-alone in many cases as well as supplement traditional gray infrastructure to achieve wider benefits. The review provides a comparison of nature-based solutions with gray infrastructure, identifies flood mitigation infrastructures that include nature-based elements, and provides an overview of their effectiveness across different scales. The research findings should contribute to a better understanding of appropriate and diverse options of NbS, gray, and hybrid designs by policymakers and decision-makers to enable them in effectively designing and implementing urban flood risk mitigation measures. This article is categorized under: Climate and Development > Urbanization, Development, and Climate Chang Vulnerability and Adaptation to Climate Change > Learning from Cases and Analogies
C1 [Esraz-Ul-Zannat, Md.; Dedekorkut-Howes, Aysin] Griffith Univ, Sch Engn & Built Environm, Gold Coast Campus, Southport, Qld 4222, Australia.
   [Esraz-Ul-Zannat, Md.; Dedekorkut-Howes, Aysin; Morgan, Edward Alexander] Griffith Univ, Cities Res Inst, Nathan, Qld, Australia.
   [Morgan, Edward Alexander] Griffith Univ, Policy Innovat Hub, Brisbane, Qld, Australia.
C3 Griffith University; Griffith University - Gold Coast Campus; Griffith
   University; Griffith University
RP Esraz-Ul-Zannat, M (corresponding author), Griffith Univ, Sch Engn & Built Environm, Gold Coast Campus, Southport, Qld 4222, Australia.
EM md.esraz-ul-zannat@griffithuni.edu.au
RI Morgan, Edward/AAX-2372-2020; Dedekorkut-Howes, Aysin/V-5636-2018
OI Esraz-Ul-Zannat, Md./0000-0002-6443-2553; Dedekorkut-Howes,
   Aysin/0000-0002-3844-4796
FU Griffith University; Griffith University, as part of the Wiley -
   Griffith University agreement via the Council of Australian University
   Librarians
FX The authors acknowledge the PhD scholarship from Griffith University
   that supported this research. Open access publishing facilitated by
   Griffith University, as part of the Wiley - Griffith University
   agreement via the Council of Australian University Librarians.
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NR 158
TC 6
Z9 6
U1 43
U2 80
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1757-7780
EI 1757-7799
J9 WIRES CLIM CHANGE
JI Wiley Interdiscip. Rev.-Clim. Chang.
PD SEP
PY 2024
VL 15
IS 5
AR e889
DI 10.1002/wcc.889
EA MAY 2024
PG 28
WC Environmental Studies; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA M5N4C
UT WOS:001214913000001
OA hybrid
DA 2025-04-22
ER

PT J
AU Chan, FKS
   Lu, XH
   Li, JF
   Lai, YC
   Luo, M
   Chen, YD
   Wang, DH
   Li, N
   Chen, WQ
   Zhu, YG
   Chan, HK
AF Chan, Faith Ka Shun
   Lu, Xiaohui
   Li, Jianfeng
   Lai, Yangchen
   Luo, Ming
   Chen, Yongqin David
   Wang, Donghai
   Li, Nan
   Chen, Wei-Qiang
   Zhu, Yong-Guan
   Chan, Hing Kai
TI Compound flood effects, challenges and solutions: Lessons toward
   climate-resilient Chinese coastal cities
SO OCEAN & COASTAL MANAGEMENT
LA English
DT Review
DE Compound flood; Climate change; Storms; Technologies; Resilience;
   Chinese coastal cities
ID HONG-KONG; TROPICAL CYCLONES; RISK-MANAGEMENT; MEGACITIES; DELTA; CITY
AB Compound flood events by storm-enhanced intensive rainfall and surges on coastal and inland surface water flooding are increasingly exacerbated, causing significant impacts in coastal cities. In light of climate change and the rapid urbanisation process, future flood risks and consequences of compound floods are growing. Among global coastal cities, Chinese coastal cities face substantial challenges reflected in recent flood impacts and damages. Here we investigate the previous compound flood sources, impacts, consequences, challenges, and more importantly the response measures from the case of Chinese coastal cities by integrating the media sources and governmental literature analyses. We have found that, during the last decade (the 2010s-2020s), the Chinese Central Government (CCG) and Municipality authorities have co-produced good practices to reduce compound flood impacts accordingly via efficient emergency responses, technological services (e.g., via mobile phones and apps), and improvement of the blue-green (i.e., via "Sponge City Program") and adopted with the engineering measures standard in the coastal urban environment. For the advancement in the next 10 years and beyond, we encourage the governments to transform the Chinese coastal cities by further implementing the "Sponge", Nature-Based Solutions mixed with communication technologies, engineering and meteorological perspectives. These practices are the keys to improving future Chinese coastal flood resilience in terms of reducing the risk and consequences of the compound flood generated by sea-level rise, storm surges and intensive rainstorms under climate uncertainties.
C1 [Chan, Faith Ka Shun] Univ Nottingham Ningbo China, Sch Geog Sci, Ningbo 315100, Peoples R China.
   [Chan, Faith Ka Shun] Univ Leeds, Sch Geog, WaterLeeds, Leeds LS2 9JT, England.
   [Chan, Faith Ka Shun] Southern Univ Sci & Technol, Res Base Shenzhen Municipal Policy & Dev, Shenzhen 518000, Peoples R China.
   [Lu, Xiaohui; Chen, Wei-Qiang; Zhu, Yong-Guan] Chinese Acad Sci, Key Lab Urban Environm & Hlth, Inst Urban Environm, Xiamen 361021, Peoples R China.
   [Lu, Xiaohui; Chan, Hing Kai] Univ Nottingham Ningbo China, Nottingham Univ Business Sch NUBS, Ningbo 315100, Peoples R China.
   [Li, Jianfeng; Lai, Yangchen] Hong Kong Baptist Univ, Dept Geog, Hong Kong, Peoples R China.
   [Luo, Ming] Sun Yat sen Univ, Sch Geog & Planning, Guangzhou 510006, Peoples R China.
   [Luo, Ming] Sun Yat sen Univ, Guangdong Prov Key Lab Urbanizat & Geosimulat, Guangzhou 510006, Peoples R China.
   [Luo, Ming] Chinese Univ Hong Kong, Inst Environm Energy & Sustainabil, Hong Kong, Peoples R China.
   [Chen, Yongqin David] Chinese Univ Hong Kong, Sch Humanities & Social Sci, Shenzhen, Peoples R China.
   [Chen, Yongqin David] Chinese Univ Hong Kong, Dept Geog & Resource Management, Hong Kong, Peoples R China.
   [Wang, Donghai] Sun Yat Sen Univ, Sch Atmospher Sci, Guangdong Prov Key Lab Climate Change & Nat Disas, Guangzhou 510275, Peoples R China.
   [Wang, Donghai] Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai, Peoples R China.
   [Li, Nan] Tsinghua Univ, Sch Environm, Beijing 100084, Peoples R China.
   [Wang, Donghai] Macau Univ Sci & Technol, Macao Environm Res Inst, Fac Innovat Engn, Natl Observat & Res Stn Coastal Ecol Environm Maca, Macau 999078, Peoples R China.
C3 University of Nottingham Ningbo China; University of Leeds; Southern
   University of Science & Technology; Chinese Academy of Sciences;
   Institute of Urban Environment, CAS; University of Nottingham Ningbo
   China; Hong Kong Baptist University; Sun Yat Sen University; Sun Yat Sen
   University; Chinese University of Hong Kong; The Chinese University of
   Hong Kong, Shenzhen; Chinese University of Hong Kong; Sun Yat Sen
   University; Southern Marine Science & Engineering Guangdong Laboratory;
   Southern Marine Science & Engineering Guangdong Laboratory (Zhuhai);
   Tsinghua University; Macau University of Science & Technology
RP Chan, FKS (corresponding author), Univ Nottingham Ningbo China, Sch Geog Sci, Ningbo 315100, Peoples R China.; Lu, XH (corresponding author), Univ Nottingham Ningbo China, Nottingham Univ Business Sch NUBS, Ningbo 315100, Peoples R China.; Li, JF; Lai, YC (corresponding author), Hong Kong Baptist Univ, Dept Geog, Hong Kong, Peoples R China.; Luo, M (corresponding author), Chinese Univ Hong Kong, Inst Environm Energy & Sustainabil, Hong Kong, Peoples R China.
EM faith.chan@nottingham.edu.cn; xhlu@iue.ac.cn; jianfengli@hkbu.edu.hk;
   laiych@hkbu.edu.hk; luom38@mail.sysu.edu.cn
RI Zhu, Yong-Guan/A-1412-2009; Chen, Yan/D-4884-2009; LAI,
   Yangchen/AAN-2899-2021; LI, NAN/AAH-6847-2020; Jianfeng,
   Li/AFD-9378-2022; Chan, Faith/AAV-4088-2020; Chan, Hing Kai/A-8343-2008;
   Chen, Wei-Qiang/HJY-2209-2023; Luo, Ming/IUQ-1554-2023; Chan, Faith Ka
   Shun/H-1541-2017
OI Lai, Yangchen/0000-0001-8557-9485; Luo, Ming/0000-0002-5474-3892; Chan,
   Faith Ka Shun/0000-0001-6091-6596; CHEN, Yongqin
   David/0000-0001-8891-2116
FU National Key Research and Development Program of China [2019YFC1510400];
   National Natural Science Foundation of China [41850410497]; Environment
   and Conservation Fund of Hong Kong [44/2020]; Guangdong-Hong Kong Joint
   Laboratory for Water Security [2020B1212030005]; Ningbo Science and
   Technology Bureau [201401C5008005]
FX This study is funded by the National Key Research and Development
   Program of China (no. 2019YFC1510400), the National Natural Science
   Foundation of China (no. 41850410497), the Environment and Conservation
   Fund of Hong Kong (44/2020), the Guangdong-Hong Kong Joint Laboratory
   for Water Security (no. 2020B1212030005) and Ningbo Science and
   Technology Bureau (no. 201401C5008005).
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NR 93
TC 10
Z9 11
U1 49
U2 99
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0964-5691
EI 1873-524X
J9 OCEAN COAST MANAGE
JI Ocean Coastal Manage.
PD MAR 1
PY 2024
VL 249
AR 107015
DI 10.1016/j.ocecoaman.2023.107015
EA JAN 2024
PG 13
WC Oceanography; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Oceanography; Water Resources
GA GU1F1
UT WOS:001155086500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Sjöman, H
   Watkins, H
   Kelly, LJ
   Hirons, A
   Kainulainen, K
   Martin, KWE
   Antonelli, A
AF Sjoman, Henrik
   Watkins, Harry
   Kelly, Laura J.
   Hirons, Andrew
   Kainulainen, Kent
   Martin, Kevin W. E.
   Antonelli, Alexandre
TI Resilient trees for urban environments: The importance of intraspecific
   variation
SO PLANTS PEOPLE PLANET
LA English
DT Article
DE biodiversity; climate change; tree selection; urban environment; urban
   trees
ID EXTINCTION; DIVERSITY; PLANTS; CONSERVATION; POPULATIONS; TOLERANCE;
   SELECTION
AB Societal Impact StatementTrees in urban environments provide us with shade, heat mitigation, flood abatement, noise and pollution reduction, pollination, beauty, and much more. However, many of these benefits are strongly connected to tree size and vitality, with larger, healthier trees providing ecosystem services more effectively, which means that selecting the right tree for site and function is crucial in order to gain all benefits from our urban trees.SummaryTrees play a major role in the Earth's biogeochemical processes, influencing soil production, hydrological, nutrient and carbon cycles, and the global climate. They store about 50% of the world's terrestrial carbon stocks, and provide habitats for a wide range of other species, supporting at least half of the Earth's known terrestrial plants and animals. Trees are not only found in forests and other natural ecosystems, but also in urban environments. Most of the human population is concentrated in cities, towns and villages, so urban trees are critical to meet on-going and future social, economic and environmental challenges. However, many urban tree populations are strongly challenged by a changing climate, outbreaks of pests and pathogens and an urban development with increasingly dense cities and a high proportion of impermeable surface materials. The importance of intraspecific variation needs to be better acknowledged in this context, since poor matching of trees and the local climate and growing conditions can lead to extensive loss of valuable trees. By using the right genetic plant material for the challenging urban environments, a more resilient tree population with a greater diversity and higher capacity for delivering ecosystem services can be gained. Here, we wish to discuss the need to consider intraspecific variation when planning resilient tree populations for urban environments and how seed banks and botanical garden play important roles in efforts to improve the matching of genetic plant material for future environmental challenges. Strategies to enrich urban tree diversity and increase resilience are outlined.
   Trees in urban environments provide us with shade, heat mitigation, flood abatement, noise and pollution reduction, pollination, beauty, and much more. However, many of these benefits are strongly connected to tree size and vitality, with larger, healthier trees providing ecosystem services more effectively, which means that selecting the right tree for site and function is crucial in order to gain all benefits from our urban trees. image
C1 [Sjoman, Henrik] Swedish Univ Agr Sci, Dept Landscape Architecture Planning & Management, S-23053 Alnarp, Sweden.
   [Sjoman, Henrik; Kainulainen, Kent] Gothenburg Bot Garden, Gothenburg, Sweden.
   [Sjoman, Henrik; Kainulainen, Kent] Univ Gothenburg, Dept Biol & Environm Sci, Gothenburg Global Biodivers Ctr, Gothenburg, Sweden.
   [Sjoman, Henrik; Kelly, Laura J.; Martin, Kevin W. E.; Antonelli, Alexandre] Royal Bot Gardens Kew, Richmond, England.
   [Watkins, Harry] St Andrews Bot Garden, Canongate, St Andrews, Fife, Scotland.
   [Watkins, Harry] Bartlett Sch Architecture, London, England.
   [Hirons, Andrew] Univ Ctr Myerscough, Preston, Lancs, England.
   [Antonelli, Alexandre] Univ Oxford, Dept Plant Sci, Oxford, England.
C3 Swedish University of Agricultural Sciences; University of Gothenburg;
   Royal Botanic Gardens, Kew; University of London; University College
   London; University of Oxford
RP Sjöman, H (corresponding author), Swedish Univ Agr Sci, Dept Landscape Architecture Planning & Management, S-23053 Alnarp, Sweden.
EM henrik.sjoman@slu.se
RI Kainulainen, Kent/D-2581-2017; Martin, kevin/KIK-7499-2024; Antonelli,
   Alexandre/A-5353-2011
OI Kainulainen, Kent/0000-0003-4271-1778; Watkins,
   Harry/0000-0002-4038-7145; Sjoman, Henrik/0000-0002-5526-6303;
   Antonelli, Alexandre/0000-0003-1842-9297; Hirons,
   Andrew/0000-0002-7870-8266
FX The authors would like to express their gratitude to the two anonymous
   reviewers for their insightful and thought-provoking comments on the
   manuscript.
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JI Plants People Planet
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PY 2024
VL 6
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DI 10.1002/ppp3.10518
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PG 10
WC Biodiversity Conservation; Plant Sciences; Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Plant Sciences; Environmental Sciences &
   Ecology
GA K2D8E
UT WOS:001260205200001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Vardopoulos, I
   Papoui-Evangelou, M
   Nosova, B
   Salvati, L
AF Vardopoulos, Ioannis
   Papoui-Evangelou, Maria
   Nosova, Bogdana
   Salvati, Luca
TI Smart 'Tourist Cities' Revisited: Culture-Led Urban Sustainability and
   the Global Real Estate Market
SO SUSTAINABILITY
LA English
DT Article
DE smart cities; urban sustainability; local growth; regional cities;
   cultural heritage; real estate; intelligent regions; innovation systems;
   circular economy; regional policies
ID CITY; SPRAWL; METABOLISM; CHALLENGES; MANAGEMENT; PULL; PUSH
AB Smart tourism destinations have received increasing attention during the last few years. Digital technologies have reshaped the smart city paradigm in terms of both resilience and sustainability, capitalizing cities' cultural and historical components while providing unique potential for growth in the real estate industry. Real estate, in particular, is considered a main asset to the tourist experience, whether it is in the form of hospitality accommodation facilities, urban landscapes, or cultural heritage hotspots. In addition, the effect of cultural sites and overall destination attractiveness on real estate dynamics (land/housing prices and building activity) is well established. Thus, uncovering how enhanced technological throughputs and synergies, culture-led urban sustainability initiatives and the real estate dimension are directly (or indirectly) associated could support cities to better delineate policies for their promotion as international, sustainable, and resilient tourist destinations. With this perspective, the present study focused on four particular cities' successful smart initiatives, namely Amsterdam, Barcelona, Seoul, and Stockholm, in an attempt to identify how developers and local authorities will need to transform in order to offer better services to residents and visitors. This work reveals that smart projects alone cannot secure the transition of existing (European) cities into smart and sustainable tourism destinations. In addition, this study also contributes to public policy by demonstrating how challenging it is to be smart without the support and involvement of the local community, highlighting the significance of public awareness. The empirical findings suggest that local authorities are of critical importance when shaping a well-structured and practically effective strategy for the integration of sustainable and technologically advanced smart features. Results are promising, and final reflections provide insights for tourism destinations policymakers, city authorities, and real estate professionals.
C1 [Vardopoulos, Ioannis] Harokopio Univ HUA, Sch Environm Geog & Appl Econ, Attica 17671, Greece.
   [Vardopoulos, Ioannis; Papoui-Evangelou, Maria] Neapolis Univ Pafos NUP, Sch Architecture Land & Environm Sci, RICS Accredited Master Sci Real Estate, CY-8042 Pafos, Cyprus.
   [Vardopoulos, Ioannis] Agr Univ Athens AUA, Sch Appl Econ & Social Sci, Dept Reg & Econ Dev, Central Greece 33100, Greece.
   [Nosova, Bogdana] Taras Shevchenko Natl Univ Kyiv, Inst Journalism, Dept Social Commun, UA-01601 Kiev, Ukraine.
   [Salvati, Luca] Sapienza Univ Rome, Fac Econ, Dept Methods & Models Econ Terr & Finance, I-00161 Rome, Italy.
C3 Ministry of Education & Science of Ukraine; Taras Shevchenko National
   University of Kyiv; Sapienza University Rome
RP Vardopoulos, I (corresponding author), Harokopio Univ HUA, Sch Environm Geog & Appl Econ, Attica 17671, Greece.; Vardopoulos, I (corresponding author), Neapolis Univ Pafos NUP, Sch Architecture Land & Environm Sci, RICS Accredited Master Sci Real Estate, CY-8042 Pafos, Cyprus.; Vardopoulos, I (corresponding author), Agr Univ Athens AUA, Sch Appl Econ & Social Sci, Dept Reg & Econ Dev, Central Greece 33100, Greece.
EM ivardopoulos@post.com
RI Vardopoulos, Ioannis/AAA-1448-2019
OI Vardopoulos, Ioannis/0000-0002-7593-4188; Nosova,
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TC 19
Z9 19
U1 20
U2 87
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
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J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2023
VL 15
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AR 4313
DI 10.3390/su15054313
PG 26
WC Green & Sustainable Science & Technology; Environmental Sciences;
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WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 9T8RM
UT WOS:000947289900001
OA gold
DA 2025-04-22
ER

PT J
AU Ryan, C
AF Ryan, Chris
TI Eco-Acupuncture: designing and facilitating pathways for urban
   transformation, for a resilient low-carbon future
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Designing; Resilience; Cities; Low-carbon; Community engagement;
   Back-casting; Intervention; Niche transformation
ID CLIMATE-CHANGE
AB The implications of climate change and the end of the fossil fuel era suggest that we are entering a period of major, transformative, change requiring the restructure of the most fundamental systems for urban living. But rapid structural change is hard to negotiate within existing communities. In Melbourne Australia, a research unit known as the Victorian Eco-Innovation Lab (VEIL) has developed a unique process to co-create visions for a 25 year horizon for specific urban communities in response to climate change. The need to bring that process from vision to intervention, to catalyse rapid transformation of an existing urban environment, has produced a new program - Eco-Acupuncture - for work with local precincts in metropolitan Melbourne and regional communities. Eco-Acupuncture focuses on multiple small interventions in an existing urban precinct that can shift the community's ideas of what is permissible, desirable and possible and provide transformation points for a new trajectory of development to a resilient low-carbon future. The paper describes the context and evolution of the program and the framework developed to deliver new locally specific starting points for urban transformation, a process involving academic researchers and designers, a shifting network of professional designers, many hundreds of design masters students, representatives of local government, business and the wider community. Crown Copyright (C) 2012 Published by Elsevier Ltd. All rights reserved.
C1 Univ Melbourne, Victorian Ecoinnovat Lab, Fac Architecture Bldg & Planning, Melbourne, Vic 3010, Australia.
C3 University of Melbourne
RP Ryan, C (corresponding author), Univ Melbourne, Victorian Ecoinnovat Lab, Fac Architecture Bldg & Planning, Melbourne, Vic 3010, Australia.
EM cryan@unimelb.edu.au
CR [Anonymous], DESIGN SOCIAL INNOVA
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NR 77
TC 40
Z9 41
U1 12
U2 73
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD JUL 1
PY 2013
VL 50
BP 189
EP 199
DI 10.1016/j.jclepro.2012.11.029
PG 11
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA 165NM
UT WOS:000320490600019
DA 2025-04-22
ER

PT J
AU Min, YH
   Lee, HW
AF Min, Yohan
   Lee, Hyun Woo
TI Quantifying clean energy justice: Impact of Solarize programs on rooftop
   solar disparities in the Pacific Northwest
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Distributed energy resource; Spatial justice; Resilient city; Climate
   adaptation; Energy transition; Energy equity
ID PHOTOVOLTAIC SYSTEMS; UNITED-STATES; ADOPTION; TECHNOLOGY; RESILIENCE
AB This study investigates the dynamics of rooftop solar deployment disparities in relation to Solarize programs in metropolitan cities in the Pacific Northwest. We introduce four equity domains and five disparity indices that encompass aspects of distributional and recognition justice, placing emphasis on spatial distribution and deployment patterns. We find that Solarize programs have a discernible impact on spatial and Gini disparities, with these disparities intensifying as installations increase. However, while spatial disparities rise with cumulative installations, Gini disparities consistently decrease over time. Interestingly, less advantageous communities exhibit heightened Gini disparities with cumulative installations, underscoring the need to focus on these communities. Additionally, communities with higher socioeconomic and demographic attributes exhibit more prominent Gini disparities, emphasizing the role of these attributes in shaping deployment disparities. Our results underscore the importance of considering spatial clustering tendencies in Solarize program advocacy and emphasize the pivotal role of community characteristics in rooftop solar deployment disparities. This study addresses energy equity trends with a unique focus on spatiotemporal dimensions, Solarize programs, and their impact on deployment disparities, offering valuable insights for policymakers and urban planners striving for socially and physically resilient cities.
C1 [Min, Yohan; Lee, Hyun Woo] Univ Washington, Coll Built Environm, Seattle, WA 98195 USA.
   [Min, Yohan] Dartmouth Coll, Thayer Sch Engn, Hanover, NH 03755 USA.
C3 University of Washington; University of Washington Seattle; Dartmouth
   College
RP Min, YH (corresponding author), Univ Washington, Coll Built Environm, Seattle, WA 98195 USA.; Min, YH (corresponding author), Dartmouth Coll, Thayer Sch Engn, Hanover, NH 03755 USA.
EM yohan.min@dartmouth.edu
RI Min, Yohan/HTM-7844-2023
OI Min, Yohan/0000-0002-8001-4124; Lee, Hyun Woo/0000-0003-1994-2850
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NR 74
TC 2
Z9 2
U1 4
U2 14
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAY
PY 2024
VL 104
AR 105287
DI 10.1016/j.scs.2024.105287
EA FEB 2024
PG 18
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA NJ9T3
UT WOS:001200210700001
DA 2025-04-22
ER

PT J
AU Munoz, SM
   Schoelynck, J
   Tetzlaff, D
   Debbaut, R
   Warter, M
   Staes, J
AF Martin Munoz, Silvia
   Schoelynck, Jonas
   Tetzlaff, Doerthe
   Debbaut, Robrecht
   Warter, Maria
   Staes, Jan
TI Assessing biodiversity and regulatory ecosystem services in urban water
   bodies which serve as aqua-Nature-based Solutions
SO FRONTIERS IN ENVIRONMENTAL SCIENCE
LA English
DT Article
DE ecosystem services; nature-based solutions; biodiversity; climate
   change; urban ponds; urban planning; water regulation; hydroperiod
ID STORMWATER PONDS; MANAGEMENT; DIVERSITY; WETLANDS; CONSERVATION;
   HYDROPERIOD; TEMPORARY
AB In sight of a growing urban population and intensified extreme weather events, cities must integrate in their urban planning elements to both reduce their impact (i.e., air and water pollution, degradation of habitats, loss of biodiversity) and increase their resilience to climate change. In contrast to engineering solutions, which normally not only fail to adequately address these issues but often also exacerbate them, Nature-based Solutions are an efficient strategy which can help cities become more sustainable. Aqua-Nature-based Solutions (aNBS) tackle water-related hazards by enhancing water regulation and mitigating flood and drought impacts. However, under a warming climate, aNBS are expected to often dry-out, changing biodiversity and the ecosystem services they support. The aim of this study is to compare the biodiversity of temporarily and permanently wet urban waterbodies which function as aNBS. We selected two pond complexes with different hydroperiod (i.e., different duration, amplitude and frequency of inundation) and studied the riparian vegetation and aquatic macroinvertebrate biodiversity. The Multimetric Macroinvertebrate Index of Flanders was used to determine the macroinvertebrate biodiversity and to assess water quality of the ponds. Using water stable isotopes and piezometers, the hydrological dynamics were studied in order to identify the water regulating ecosystem services these ponds deliver. The results showed that the selected pond complexes have a high plant biodiversity, particularly in temporary ponds. Water quality ranged from moderate to poor and macroinvertebrate biodiversity tended to be greater in permanent ponds. Plant and macroinvertebrate alien species were also found in the aNBS. Regarding water regulating ecosystem services, the pond complexes enhanced infiltration and groundwater recharge, providing resilience to both flooding and drought. Our findings corroborate previous studies on the need of diversifying urban ponds' hydroperiod to support biodiversity. Thus, integrating well-designed aNBS into urban planning might be a way to make cities more resilient to water climate-related hazards while enhancing biodiversity.
C1 [Martin Munoz, Silvia; Schoelynck, Jonas; Debbaut, Robrecht] Univ Antwerp, Dept Biol, ECOSPHERE Res Grp, Antwerp, Belgium.
   [Tetzlaff, Doerthe; Warter, Maria] Leibniz Inst Freshwater Ecol & Inland Fisheries, Berlin, Germany.
   [Tetzlaff, Doerthe; Staes, Jan] Humboldt Univ, Geog Inst, Berlin, Germany.
   [Staes, Jan] Humboldt Univ, IRI THESys, Berlin, Germany.
C3 University of Antwerp; Leibniz Association; Leibniz Institut fur
   Gewasserokologie und Binnenfischerei (IGB); Humboldt University of
   Berlin; Humboldt University of Berlin
RP Staes, J (corresponding author), Humboldt Univ, Geog Inst, Berlin, Germany.; Staes, J (corresponding author), Humboldt Univ, IRI THESys, Berlin, Germany.
EM jan.staes@uantwerpen.be
RI Tetzlaff, Doerthe/D-1818-2018
OI Tetzlaff, Doerthe/0000-0002-7183-8674; Schoelynck,
   Jonas/0000-0003-0166-280X
FU Bundesministerium fr Bildung und Forschung (BMBF, Germany); Biodiversa
   and Water JPI joint call for research projects, under the BiodivRestore
   ERA-NET Cofund [101003777]; Academy of Finland (Finland);
   Bundesministerium fur Bildung und Forschung (BMBF, Germany); Federal
   Ministry of Education and Research (Germany); National Science Centre
   (Poland); Research Foundation Flanders (fwo, Belgium); Fundacao para a
   Ciencia e Tecnologia (Portugal)
FX The author(s) declare financial support was received for the research,
   authorship, and/or publication of this article. This research was
   developed within the project BiNatUr: Bringing nature
   back-biodiversity-friendly nature-based solutions in cities and funded
   through the 2020-2021 Biodiversa and Water JPI joint call for research
   projects, under the BiodivRestore ERA-NET Cofund (GA No 101003777), with
   the EU and the funding organisations Academy of Finland (Finland),
   Bundesministerium fur Bildung und Forschung (BMBF, Germany), Federal
   Ministry of Education and Research (Germany), National Science Centre
   (Poland), Research Foundation Flanders (fwo, Belgium) and Fundacao para
   a Ciencia e Tecnologia (Portugal).
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NR 59
TC 4
Z9 4
U1 16
U2 47
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
EI 2296-665X
J9 FRONT ENV SCI-SWITZ
JI Front. Environ. Sci.
PD JAN 5
PY 2024
VL 11
AR 1304347
DI 10.3389/fenvs.2023.1304347
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA FF3D0
UT WOS:001144299400001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Liang, X
AF Liang, Xiao
TI Integrated Economic and Financial Analysis of China's Sponge City
   Program for Water-resilient Urban Development
SO SUSTAINABILITY
LA English
DT Article
DE China; economic analysis; financial analysis; Sponge City Program; urban
   water management
ID PERFORMANCE; SERVICES
AB To improve Chinese cities' resilience to climate change, the Sponge City Program, which was designed to tackle water pollution, storm water management, and flooding, was initiated in 2014. Being a major policy initiative, the Sponge City Program raises heated discussions among Chinese academics; however, no relevant extensive economic or financial analysis has been conducted. The research carries out an integrated economic and financial analysis on the Sponge City Program from the perspectives of two stakeholders: the government and the project manager. Different stakeholders have unique perspectives on the management of water projects. This study has two parts: economic analysis and financial analysis. The economic analysis is from the government perspective, and considers all the economic, environmental, and social effects. The financial analysis is from the project manager's perspective, and judges the financial feasibility of projects. Changde city, one of the demo cities of Sponge City Program, is chosen for the research. The results show that from the perspective of the government, the Sponge City Program should be promoted, because most water projects are economically feasible. From the perspective of the project manager, the program should not be invested in, because the water projects are financially infeasible. A more comprehensive and integrated plan for developing and managing the water projects of the Sponge City Program is required. Otherwise, the private sector may not be interested in investing in the water projects, and the water projects may not be operational in the long term.
C1 [Liang, Xiao] Shenzhen Univ, Coll Econ, Shenzhen 518060, Peoples R China.
C3 Shenzhen University
RP Liang, X (corresponding author), Shenzhen Univ, Coll Econ, Shenzhen 518060, Peoples R China.
EM liangx@szu.edu.cn
FU Social Science Foundation of Guangdong Province [GD15YGL03]
FX This research was funded by Social Science Foundation of Guangdong
   Province (grant No. GD15YGL03). I am grateful to the anonymous reviewers
   for their insightful comments.
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NR 25
TC 30
Z9 32
U1 3
U2 85
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2018
VL 10
IS 3
AR 669
DI 10.3390/su10030669
PG 12
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA GA8DA
UT WOS:000428567100096
OA gold
DA 2025-04-22
ER

PT J
AU Arvin, M
   Jalaei, M
   Taheri, J
   Badakhshan, B
   Ghane, M
   Sharifi, A
AF Arvin, Mahmoud
   Jalaei, Mehdi
   Taheri, Jamal
   Badakhshan, Babak
   Ghane, Mahsa
   Sharifi, Ayyoob
TI Examining the relationship between urban form and social inequality: A
   neighborhood-level analysis
SO APPLIED GEOGRAPHY
LA English
DT Article
DE Social inequality; Spatial inequality; Spatial justice; Compact city;
   Urban sprawl; Urban resilience; Urban density
ID COMPACT CITY; SPATIAL INEQUALITY; PUBLIC TRANSPORTATION; HOUSING
   AFFORDABILITY; BUILT ENVIRONMENT; LAND-USE; SPRAWL; LIFE; ACCESSIBILITY;
   INDICATORS
AB Inequality is a pervasive aspect of human life, manifesting spatially and intertwining with urban form and the built environment. While compactness can enhance urban equity, sprawling forms often amplify disparities. This study explores how compactness and sprawl influence spatial and social inequalities at the neighborhood scale in Ahvaz, Iran. Unlike prior studies, it employs multidimensional indicators to examine urban form alongside inequality and population density, addressing both spatial and statistical dimensions. Using Ordinary Least Squares (OLS) and Geographically Weighted Regression (GWR) models, this study evaluates socio-spatial inequalities across 111 neighborhoods. Results reveal that compact neighborhoods generally exhibit lower social and spatial inequality due to better access to urban services, while sprawling areas, particularly in the periphery, face significant inequities. For instance, a one-unit increase in compactness correlates with a 15.2% reduction in social inequality and a 40.5% reduction in spatial inequality. However, the effects of population density vary across neighborhoods; higher density in marginalized areas may exacerbate inequality, necessitating contextsensitive planning. The findings underline the importance of promoting compact urban forms while addressing socio-economic disparities. Recommendations include tailoring urban planning policies to local contexts, improving infrastructure in marginalized neighborhoods, and enhancing service distribution to achieve spatial equity. This research highlights how urban form interventions can mitigate inequalities, contributing to sustainable and resilient urban development in rapidly urbanizing regions like Ahvaz.
C1 [Arvin, Mahmoud] Univ Tehran, Fac Geog, Dept Human Geog, Tehran, Iran.
   [Jalaei, Mehdi] Islamic AzadUniv, Dept Urban Dev, Sci & Res Branch, Tehran, Iran.
   [Taheri, Jamal] Islamic Azad Univ, Tabriz Branch, Dept Urban Design, Tabriz, Iran.
   [Badakhshan, Babak] Kharazmi Univ, Fac Geog Sci, Dept Human Geog, Tehran, Iran.
   [Ghane, Mahsa] Univ Tehran, Dept Urban Planning, Kish Int Campus, Kish, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Higashihiroshima, Hiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Hiroshima, Japan.
   [Sharifi, Ayyoob] Univ Queensland, Sch Architecture Design & Planning, Brisbane, Qld 4067, Australia.
C3 University of Tehran; Islamic Azad University; Kharazmi University;
   Hiroshima University; Hiroshima University; University of Queensland
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, Higashihiroshima, Hiroshima, Japan.; Sharifi, A (corresponding author), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Hiroshima, Japan.
EM arvin.mahmood@ut.ac.ir; mehdi1jalaei@gmail.com;
   stu.taherijamal963@iaut.ac.ir; babakbadakhshan98@gmail.com;
   Mahsaghane92@ut.ac.ir; sharifi@hiroshima-u.ac.jp
RI Sharifi, Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613
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NR 107
TC 0
Z9 0
U1 14
U2 14
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0143-6228
EI 1873-7730
J9 APPL GEOGR
JI Appl. Geogr.
PD MAR
PY 2025
VL 176
AR 103532
DI 10.1016/j.apgeog.2025.103532
EA JAN 2025
PG 12
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA U7A2O
UT WOS:001413269500001
DA 2025-04-22
ER

PT J
AU Wang, K
   Immergluck, D
AF Wang, Kyungsoon
   Immergluck, Dan
TI Neighborhood Affordability and Housing Market Resilience Evidence From
   the US National Foreclosure Recovery
SO JOURNAL OF THE AMERICAN PLANNING ASSOCIATION
LA English
DT Article
DE foreclosure; housing affordability; location affordability; resilience;
   urban form
ID LOCATION EFFICIENCY; GREAT RECESSION; FEDERAL-POLICY; CRISIS; HOMES;
   GENTRIFICATION; SUBPRIME
AB Problem, research strategy, and findings: Although many researchers have examined factors associated with vulnerability to foreclosure, few have investigated the role neighborhood affordability plays in foreclosures in metropolitan areas. In this study, we examine the effects of location affordability (i.e., housing and transportation affordability combined) on resilience to foreclosure in more than 300 U.S. metropolitan areas during the U.S. housing recovery period. Using hierarchical linear regression with changes in zip code-level home foreclosure rates, our findings suggest the relationship between affordability and foreclosure resilience varies according to urban form (central/high-density city versus suburban low-density area) and types of metropolitan housing markets (boom-bust versus strong versus weak). In the national analysis, where location affordability was high, home foreclosure rates dropped substantially in central/high-density areas but not in suburban low-density areas. When we disaggregated the zip codes according to the market type, location affordability contributed to recovery in central cities in strong and weak metros and in the suburbs of boom-bust metros. There was no positive association in the suburbs of strong and weak metros. With improved data, future studies could measure an association between affordability and lower income renter households. Takeaway for practice: Our study of the affordability crisis that followed the foreclosure crisis shows that planners can foster resilient and affordable housing markets by expanding and densifying affordable neighborhood locations and considering interactions between the costs of housing and transportation. Planners can improve neighborhood affordability with local and regional strategies based on the local residential density and the type of metropolitan housing market.
C1 [Wang, Kyungsoon] Housing & Urban Res Inst, Melbourne, Vic, Australia.
   [Immergluck, Dan] Georgia State Univ, Urban Studies, Atlanta, GA 30303 USA.
C3 Australian Housing & Urban Research Institute; University System of
   Georgia; Georgia State University
RP Wang, K (corresponding author), Housing & Urban Res Inst, Melbourne, Vic, Australia.
EM kwang42@gatech.edu; dimmergluck@gsu.edu
RI Wang, Kyungsoon/AAG-7113-2019
OI Wang, Kyungsoon/0000-0002-3954-0798
FU Community and Economic Development Department of the Federal Reserve
   Bank of Atlanta through its Co-op researcher program
FX This study is partially supported by the Community and Economic
   Development Department of the Federal Reserve Bank of Atlanta through
   its Co-op researcher program.
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NR 55
TC 5
Z9 6
U1 3
U2 21
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0194-4363
EI 1939-0130
J9 J AM PLANN ASSOC
JI J. Am. Plan. Assoc.
PD OCT 2
PY 2019
VL 85
IS 4
BP 544
EP 563
DI 10.1080/01944363.2019.1647793
EA SEP 2019
PG 20
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA JH3SJ
UT WOS:000486767400001
DA 2025-04-22
ER

PT J
AU Alvarez, I
   Quesada-Ganuza, L
   Briz, E
   Garmendia, L
AF Alvarez, Irantzu
   Quesada-Ganuza, Laura
   Briz, Estibaliz
   Garmendia, Leire
TI Urban Heat Islands and Thermal Comfort: A Case Study of Zorrotzaurre
   Island in Bilbao
SO SUSTAINABILITY
LA English
DT Article
DE climate change; urban planning; resilience; heat waves; thermal comfort;
   simulation
ID CITIES; INDEX; WAVES
AB This study assesses the impact of a heat wave on the thermal comfort of an unconstructed area: the North Zone of the Island of Zorrotzaurre (Bilbao, Spain). In this study, the impact of urban planning as proposed in the master plan on thermal comfort is modeled using the ENVI-met program. Likewise, the question of whether the urbanistic proposals are designed to create more resilient urban environments is analyzed in the face of increasingly frequent extreme weather events, especially heat waves. The study is centered on the analysis of temperature variables (air temperature and average radiant temperature) as well as wind speed and relative humidity. This was completed with the parameters of thermal comfort, the physiological equivalent temperature (PET) and the Universal Temperature Climate Index (UTCI) for the hours of the maximum and minimum daily temperatures. The results demonstrated the viability of analyzing thermal comfort through simulations with the ENVI-met program in order to analyze the behavior of urban spaces in various climate scenarios.
C1 [Alvarez, Irantzu] Univ Basque Country UPV EHU, Graph Design & Engn Projects Dept, Sch Engn, Bldg 1,Plaza Ingeniero Torres Quevedo S-N, Bilbao 48013, Spain.
   [Quesada-Ganuza, Laura; Briz, Estibaliz; Garmendia, Leire] Univ Basque Country UPV EHU, Mech Engn Dept, Sch Engn, Bldg 1,Plaza Ingeniero Torres Quevedo S-N, Bilbao 48013, Spain.
C3 University of Basque Country; University of Basque Country
RP Alvarez, I (corresponding author), Univ Basque Country UPV EHU, Graph Design & Engn Projects Dept, Sch Engn, Bldg 1,Plaza Ingeniero Torres Quevedo S-N, Bilbao 48013, Spain.
EM irantzu.alvarez@ehu.eus; laura.quesada@ehu.eus; estibaliz.briz@ehu.eus;
   leire.garmendia@ehu.eus
RI Blanco, Estibaliz/Y-9926-2019; ALVAREZ GONZALEZ, IRANTZU/ABA-3618-2021;
   Quesada-Ganuza, Laura/ABA-2494-2021; GARMENDIA ARRIETA,
   LEIRE/O-8006-2015
OI BRIZ, ESTIBALIZ/0000-0003-3933-3585; Quesada-Ganuza,
   Laura/0000-0001-8225-575X; GARMENDIA ARRIETA, LEIRE/0000-0002-3363-1015;
   ALVAREZ GONZALEZ, IRANTZU/0000-0003-4444-292X
FU Basque Government [IT1314-19]
FX This research was funded by research group IT1314-19 of the Basque
   Government.
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NR 23
TC 12
Z9 12
U1 3
U2 47
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2021
VL 13
IS 11
AR 6106
DI 10.3390/su13116106
PG 13
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA SR0NN
UT WOS:000660742300001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Pandolfi, G
   Pettinari, J
AF Pandolfi, Giulia
   Pettinari, Jessica
TI NATURE-BASED SOLUTIONS FOR FLOOD MANAGEMENT: A STUDY CONDUCTED IN LABARO
   - PRIMA PORTA DISTRICT, ROME, ITALY
SO ENVIRONMENTAL ENGINEERING AND MANAGEMENT JOURNAL
LA English
DT Article; Proceedings Paper
CT 23rd International Trade Fair of Material & Energy Recovery and
   Sustainable Development
CY NOV 05-08, 2019
CL Ecomondo, Rimini, ITALY
HO Ecomondo
DE hydro-ecological infrastructure; landscape design; SWMM; nature-based
   solutions; sponge city; urban water management
ID WATER; RUNOFF; TIBER
AB 'Labaro-Prima Porta' is a district in the outskirts of Rome, increasingly afflicted by recurrent floods. In order to reduce the local runoff volume, this paper defines a resilience and twofold strategy. At first, the use of a hydrologic software, called Storm Water Management Model (SWMM), along the research makes possible the evaluation of which Nature-based Solutions (NbS) are more effective in terms of runoff management. The results demonstrate short-term positive effects, with an immediate reduction of the local discharge of about 8%. The second phase of the study explores the possibility of designing a resilient 'Labaro-Prima Porta' district. A master plan, structured in two overlapping scales, is proposed. One large-scale, improving the ecological network of the Veio Park and the rivers close to the urban settlements; in the second layer a green blue infrastructure at the district scale is defined, including a 3.3 km greenway as an urban and ecological corridor. The overall objective of this study is to provide theoretical support for the "sponge city" theory.
C1 [Pandolfi, Giulia] Univ Roma Tre, Architecture Dept, Urban Studies, Largo Giovanni Battista Marzi 10, I-00154 Rome, Italy.
   [Pettinari, Jessica] Univ Rome Sapienza, Architecture Dept, Landscape, Piazza Borghese 9, I-00186 Rome, Italy.
C3 Roma Tre University; Sapienza University Rome
RP Pandolfi, G (corresponding author), Univ Roma Tre, Architecture Dept, Urban Studies, Largo Giovanni Battista Marzi 10, I-00154 Rome, Italy.
EM giuliapandolfi@hotmail.com
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NR 28
TC 3
Z9 4
U1 6
U2 33
PU GH ASACHI TECHNICAL UNIV IASI
PI IASI
PA 71 MANGERON BLVD, IASI, 700050, ROMANIA
SN 1582-9596
EI 1843-3707
J9 ENVIRON ENG MANAG J
JI Environ. Eng. Manag. J.
PD OCT
PY 2020
VL 19
IS 10
BP 1835
EP 1846
PG 12
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Conference Proceedings Citation Index - Science (CPCI-S)
SC Environmental Sciences & Ecology
GA PQ8YF
UT WOS:000606828200023
DA 2025-04-22
ER

PT J
AU Borowski, E
   Soria, J
   Schofer, J
   Stathopoulos, A
AF Borowski, Elisa
   Soria, Jason
   Schofer, Joseph
   Stathopoulos, Amanda
TI Does ridesourcing respond to unplanned rail disruptions? A natural
   experiment analysis of mobility resilience and disparity
SO CITIES
LA English
DT Article
DE Mobility resilience; Transit disruption; Multilevel model; Natural
   experiment; Ridesourcing; Community equity
ID PUBLIC-TRANSIT; CLIMATE-CHANGE; DEMAND; MULTILEVEL; MODEL; TRAVEL; UBER;
   ACCESSIBILITY; CONSEQUENCES; WASHINGTON
AB Urban rail transit networks provide critical access to opportunities and livelihood in many urban systems. Ensuring that these services are resilient (that is, exhibiting efficient responses to and recovery from disruptions) is a key economic and social priority. Increasingly, the ability of urban rail systems to cope with disruptions is a function of a complex patchwork of mobility options, wherein alternative modes can complement and fill occurring service gaps. This study analyzes the role of ridesourcing in providing adaptive mobility capacity that could be leveraged to fill no-notice gaps in rail transit services, addressing the question of distributional impacts of resilience. Using a natural experiment, we systematically identify 28 major transit disruptions over the period of one year in Chicago and match them, both temporally and spatially, with ridesourcing trip data. Using multilevel mixed modeling, we quantify variation in the adaptive use of on-demand mobility across the racially and economically diverse city of Chicago. Our findings show that the gap-filling potential of adaptive ridesourcing during rail transit disruptions is significantly influenced by the station-, community-, and district-level factors. Specifically, greater shifts to ridesourcing occur during weekdays, nonholidays, and more severe disruptions, in community areas that have higher percentages of white residents and transit commuters, and in the more affluent North district of the city. These findings suggest that while ridesourcing appears to provide adaptive capacity during rail disruptions, its benefits do not appear to be equitable for lower-income communities of color that already experience limited mobility options. Research implications for mobility operator collaborations to support mobility as a service are discussed. This study builds a more comprehensive understanding of transit service resilience, variation in vulnerability, and the complementarity of ridesourcing to existing transport networks during disruptions.
C1 [Borowski, Elisa; Schofer, Joseph; Stathopoulos, Amanda] Northwestern Univ, Technol Inst, Dept Civil & Environm Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA.
   [Soria, Jason] Georgia Inst Technol, Coll Engn, 788 Atlantic Dr, Atlanta, GA 30332 USA.
C3 Northwestern University; University System of Georgia; Georgia Institute
   of Technology
RP Stathopoulos, A (corresponding author), Northwestern Univ, Technol Inst, Dept Civil & Environm Engn, 2145 Sheridan Rd, Evanston, IL 60208 USA.
EM elisaborowski2022@u.northwestern.edu; jasonsoria@gatech.edu;
   j-schofer@northwestern.edu; a-stathopoulos@northwestern.edu
RI Stathopoulos, Amanda/GWM-4799-2022
FU National Defense Science and Engineering Graduate (NDSEG) fellowship;
   NUTC; McCormick School of Engineering Terminal Year Fellowship; U.S.
   National Science Foundation (NSF) [1847537]
FX This research was supported in part by funding from the National Defense
   Science and Engineering Graduate (NDSEG) fellowship, and the NUTC
   Dissertation Year Fellow (DYF), as well as McCormick School of
   Engineering Terminal Year Fellowship provided to Borowski. Stathopoulos
   was partially supported by the U.S. National Science Foundation (NSF)
   Career grant No. 1847537.
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NR 119
TC 6
Z9 6
U1 5
U2 23
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD SEP
PY 2023
VL 140
AR 104439
DI 10.1016/j.cities.2023.104439
EA JUN 2023
PG 16
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA N0YP1
UT WOS:001034375600001
OA Green Submitted, Bronze
DA 2025-04-22
ER

PT J
AU van de Ven, FHM
   Snep, RPH
   Koole, S
   Brolsma, R
   van der Brugge, R
   Spijker, J
   Vergroesen, T
AF van de Ven, Frans H. M.
   Snep, Robbert P. H.
   Koole, Stijn
   Brolsma, Reinder
   van der Brugge, Rutger
   Spijker, Joop
   Vergroesen, Toine
TI Adaptation Planning Support Toolbox: Measurable performance information
   based tools for co-creation of resilient, ecosystem-based urban plans
   with urban designers, decision-makers and stakeholders
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Urban climate adaptation; Collaborative planning; Green infrastructure;
   Ecosystem-based adaptation; Planning support system; Performance
   indicators
ID CLIMATE; KNOWLEDGE; SCIENCE
AB Currently, most tools, guidelines and benchmarks for urban adaptation raise awareness on climate change impacts, assess the city's vulnerability and/or address the need for adaptation on a policy-level. However, tools that have the ability to implement adaptation solutions in the actual urban planning and design practice seem to be missing. We developed and tested the Adaptation Planning Support'Toolbox (APST) to fill this gap. This toolbox supports local policymakers, planners, designers and practitioners in defining the program of demands, in setting adaptation targets, in selecting from more than 60 blue, green and grey adaptation measures and with informed co-creation of conceptual adaptation plans. The APST provides quantitative, evidence-based performance information on (cost)effectiveness of adaptation measures regarding climate resilience and co-benefits. The APST can be used design workshops, to feed dialogues among stakeholders on where and how which ecosystem-based adaptation measures can be applied. Applications of the AST in various settings and context in cities on different continents have illustrated the added value of the toolbox in bringing policy and practice together with help of science. With more and more cities worldwide that will make the step from policymaking to actual adaptation-inclusive urban (re)development practice we foresee a growing demand for such tools. (C) 2016 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license.
C1 [van de Ven, Frans H. M.; Brolsma, Reinder; van der Brugge, Rutger; Vergroesen, Toine] Deltares, POB 85467, NL-3508 AL Utrecht, Netherlands.
   [Snep, Robbert P. H.; Spijker, Joop] Alterra Wageningen Univ & Res, POB 47, NL-6700 Wageningen, Netherlands.
   [Koole, Stijn] Bosch Slabbers Landscape Architects, 1e Sweelinckstr 30, NL-2517 GD The Hague, Netherlands.
   [van de Ven, Frans H. M.] Delft Univ Technol, Dept Water Management, Stevinweg 1, NL-2628 CN Delft, Netherlands.
C3 Deltares; Wageningen University & Research; Delft University of
   Technology
RP van de Ven, FHM (corresponding author), Deltares, POB 85467, NL-3508 AL Utrecht, Netherlands.
EM Frans.vandeVen@deltares.nl
RI Snep, Robbert/C-2458-2008
OI Snep, Robbert/0000-0002-7130-9254
FU European Union; EU-EIT Climate-KIC project Smart Sustainable District;
   Netherlands' Climate Changes Spatial Planning Knowledge Programme
FX The Adaptation Support Tool was developed by Deltares, Alterra
   Wageningen University & Research and Bosch Slabbers landscape architects
   as part of the EU-EIT Climate-KIC project Blue Green Dream, funded by
   the European Union and the three organisations. The application in
   Utrecht was funded partly by the EU-EIT Climate-KIC project Smart
   Sustainable District. The Climate Adaptation App was developed by
   Deltares, Grontmij, Witteveen + Bos, Bosch Slabbers and KNMI, in a
   project funded by the Netherlands' Climate Changes Spatial Planning
   Knowledge Programme.
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NR 49
TC 56
Z9 57
U1 1
U2 93
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 1462-9011
EI 1873-6416
J9 ENVIRON SCI POLICY
JI Environ. Sci. Policy
PD DEC
PY 2016
VL 66
BP 427
EP 436
DI 10.1016/j.envsci.2016.06.010
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA ED7YT
UT WOS:000389089300045
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Ashbaugh, M
   Kittner, N
AF Ashbaugh, Melissa
   Kittner, Noah
TI Addressing extreme urban heat and energy vulnerability of renters in
   Portland, OR with resilient household energy policies
SO ENERGY POLICY
LA English
DT Article
DE Household energy consumption; Energy burden; Urban heat island;
   Portland; Split-incentive problem
ID JUSTICE; EFFICIENCY
AB Extreme heat is the deadliest weather-related hazard in the United States, contributing to more than 700 excess deaths per year. Heat is only growing more dangerous due to climate change and urban heat island effects. This paper addresses energy burden and urban heat island effects of a heatwave in Portland, Oregon in 2021. Barriers unique to non-homeowners have left Portland renters 2.5 times less likely than homeowners to have air conditioning. Renters spend 0.7% more of their incomes on energy than homeowners on average and renters in the hottest quartile of census tracts spend 1.3 times more of their incomes than homeowners in the coolest tracts. Renters are more likely to live in the hotter areas of the city. East Portland in particular bears the brunt of the heat exposure and energy burden. Policies addressing energy utility costs and upgrading renter-occupied buildings appear less frequently in recent plans, which suggests Portland may be overlooking tenant rights and access to air conditioning. Nonetheless, a few key local programs are emerging to overcome the splitincentive problem and protect renters. Policy actions with potential impact include tenant rights and access to air conditioning, directed clean energy funds, climate resilient building standards, and community resilience centers.
C1 [Ashbaugh, Melissa; Kittner, Noah] Univ North Carolina Chapel Hill, Dept City & Reg Planning, Chapel Hill, NC USA.
   [Kittner, Noah] Univ North Carolina Chapel Hill, Gillings Sch Global Publ Hlth, Dept Environm Sci & Engn, Chapel Hill, NC 27599 USA.
   [Kittner, Noah] Univ North Carolina Chapel Hill, Environm Ecol & Energy Program, Chapel Hill, NC USA.
C3 University of North Carolina; University of North Carolina Chapel Hill;
   University of North Carolina School of Medicine; University of North
   Carolina School of Medicine; University of North Carolina; University of
   North Carolina Chapel Hill; University of North Carolina School of
   Medicine; University of North Carolina; University of North Carolina
   Chapel Hill
RP Kittner, N (corresponding author), Univ North Carolina Chapel Hill, Gillings Sch Global Publ Hlth, Dept Environm Sci & Engn, Chapel Hill, NC 27599 USA.
EM kittner@unc.edu
OI Kittner, Noah/0000-0002-3449-7823
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NR 75
TC 2
Z9 2
U1 6
U2 8
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0301-4215
EI 1873-6777
J9 ENERG POLICY
JI Energy Policy
PD JUL
PY 2024
VL 190
AR 114143
DI 10.1016/j.enpol.2024.114143
EA APR 2024
PG 14
WC Economics; Energy & Fuels; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Energy & Fuels; Environmental Sciences & Ecology
GA SX3C6
UT WOS:001237698300001
DA 2025-04-22
ER

PT J
AU Miranda, AC
   Fidelis, T
   Roebeling, P
   Meireles, I
AF Miranda, Ana Catarina
   Fidelis, Teresa
   Roebeling, Peter
   Meireles, Ines
TI Assessing the Inclusion of Water Circularity Principles in
   Environment-Related City Concepts Using a Bibliometric Analysis
SO WATER
LA English
DT Article
DE city concept; circular economy; water; bibliometric analysis
ID STORMWATER MANAGEMENT; URBAN; ECONOMY; SUSTAINABILITY; METABOLISM;
   RESILIENCE; GOVERNANCE; WASTE
AB Cities face increasing water pressure and supply issues, jeopardizing the balance between growth and sustainable water resource use. Green, resilient, smart, circular, blue, water sensitive, or water-wise city concepts are increasingly part of the design of strategies to rethink cities. These concepts have motivated many studies, but little is known about their relative relevance among the scientific community and how they consider water circularity. The objective of this study is to assess how these city concepts incorporate water circularity principles. The assessment is based on a bibliometric analysis of scientific articles recently published. The findings show that despite the wide number of articles dedicated to the various city concepts, water circularity-related challenges are still a small niche of concern, strongly driven by European authors. Moreover, our study showed that water circularity principles are not equally considered among the different city concepts. This uneven assimilation of principles in influential city concepts unveiled gaps regarding water circularity. This brings a new perspective to the use of more integrated definitions, highlighting the importance of such principles in the future use of these concepts when envisioning roadmaps toward sustainable water use in cities.
C1 [Miranda, Ana Catarina] Univ Aveiro, Dept Environm & Planning, Campus Univ Santiago, P-3810193 Aveiro, Portugal.
   [Fidelis, Teresa] Univ Aveiro, Dept Environm & Planning, GOVCOPP, Campus Univ Santiago, P-3810193 Aveiro, Portugal.
   [Roebeling, Peter] Univ Aveiro, Dept Environm & Planning, CESAM, Campus Univ Santiago, P-3810193 Aveiro, Portugal.
   [Roebeling, Peter] Wageningen Univ & Res, Wageningen Econ Res, NL-6708 PB Wageningen, Netherlands.
   [Meireles, Ines] Univ Aveiro, Dept Civil Engn, RISCO, Campus Univ Santiago, P-3810193 Aveiro, Portugal.
C3 Universidade de Aveiro; Universidade de Aveiro; Universidade de Aveiro;
   Wageningen University & Research; Universidade de Aveiro
RP Miranda, AC (corresponding author), Univ Aveiro, Dept Environm & Planning, Campus Univ Santiago, P-3810193 Aveiro, Portugal.
EM anacatarinamiranda@ua.pt; teresafidelis@ua.pt; peter.roebeling@ua.pt;
   imeireles@ua.pt
RI Fidélis, Teresa/F-2677-2012; Roebeling, Peter/G-6233-2011; Meireles,
   Ines/B-1512-2013
OI Roebeling, Peter/0000-0002-2421-9299; Martins de Matos, Manuel
   Victor/0000-0002-9514-5127; Meireles, Ines/0000-0002-4122-4137; Fidelis,
   Teresa/0000-0002-6594-2571
FU European Union [776816]; European Regional Development fund (FEDER)
   through COMPETE [POCI-01-0145-FEDER-008540]; Foundation for Science and
   Technology (FCT)-Research Centre for Risks and Sustainability in
   Construction (RISCO), University of Aveiro, Portugal
   [FCT/UIDB/ECI/04450/2020]; FCT [SFRH/BD/141209/2018, UIDP/04450/2020];
   H2020 Societal Challenges Programme [776816] Funding Source: H2020
   Societal Challenges Programme; Fundação para a Ciência e a Tecnologia
   [SFRH/BD/141209/2018, UIDP/04450/2020] Funding Source: FCT
FX This work was supported by the "Project O-Demonstration of planning and
   technology tools for a circular, integrated, and symbiotic use of
   water", Research Project funded from the European Union's Horizon 2020
   research and innovation programme under grant agreement No. 776816.
   Thanks for the financial support are also due to the Research Unit on
   Governance, Competitiveness and Public Policies (GOVCOPP)
   (POCI-01-0145-FEDER-008540), funded by European Regional Development
   fund (FEDER) through COMPETE 2020, and the Foundation for Science and
   Technology (FCT)-Research Centre for Risks and Sustainability in
   Construction (RISCO), University of Aveiro, Portugal
   [FCT/UIDB/ECI/04450/2020]. A. C. Miranda also acknowledges the support
   from FCT through grants SFRH/BD/141209/2018 and UIDP/04450/2020,
   Research Project of the Multiannual Financing of R&D Units 2020-2023,
   RISCO.
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NR 72
TC 4
Z9 4
U1 4
U2 19
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD JUN
PY 2022
VL 14
IS 11
AR 1703
DI 10.3390/w14111703
PG 23
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA 1Z4NL
UT WOS:000808803300001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Morel Journel, C
   Gay, G
   Ferrieux, C
   Le Noan, R
AF Morel Journel, Christelle
   Gay, Georges
   Ferrieux, Cecile
   Le Noan, Robin
TI Soil Pollution as an Industrial Heritage From Indifference to
   Resilience?
SO HOUILLE BLANCHE-REVUE INTERNATIONALE DE L EAU
LA French
DT Article
DE deindustrialization; soil pollution; brownfields; resilience;
   Saint-Etienne; France
AB Soil pollution in Saint-Etienne region (42-France) is today a crucial dimension of planning and urban renewal. After being ignored for a long time while water and air foccussed the attention, and even reduced by indifference, soil pollution is gradually taken into account by the local actors. As a matter of facts, soil pollution has been put on the agenda - even a rather "silent" one - and a set of national public policies have been implemented from the 1990's untill nowadays. Beyond site-level accommodation, which sometimes creates some tensions with the local State perceived as more controlling than accompanying by local actors, some initiatives show a firmer capacity of action in the management of this Inheritance or even an ability to innovate either in technical answers or in the configuration of relations between actors. These intiatives are not related to the epitomzed and rather standardised bounce which leads to qualify cities and territories as resilient. But, beyond the accomodation of urban projects to soil pollution, they invite to consider resilience starting from existing communities et from the political reappropriation of the industrial heritage rather than from the results one can expect from standardised models of development.
C1 [Morel Journel, Christelle; Gay, Georges] Lyon Univ, EVS UMR 5600, F-42023 St Etienne, France.
   [Ferrieux, Cecile] UMR Metaft AgroParisTech, Paris, France.
   [Le Noan, Robin] CEREMA, Dt Normandie, France.
C3 Institut National des Sciences Appliquees de Lyon - INSA Lyon; Centre
   National de la Recherche Scientifique (CNRS); CNRS - Institute of
   Ecology & Environment (INEE); AgroParisTech; CEREMA
RP Morel Journel, C (corresponding author), Lyon Univ, EVS UMR 5600, F-42023 St Etienne, France.
EM christelle.morel.journel@univ-st-etienne.fr
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NR 29
TC 1
Z9 1
U1 1
U2 26
PU EDP SCIENCES S A
PI LES ULIS CEDEX A
PA 17, AVE DU HOGGAR, PA COURTABOEUF, BP 112, F-91944 LES ULIS CEDEX A,
   FRANCE
SN 0018-6368
EI 1958-5551
J9 HOUILLE BLANCHE
JI Houille Blanche-Rev. Int.
PD AUG
PY 2018
IS 4
BP 20
EP 26
DI 10.1051/lhb/2018038
PG 7
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA HA9RN
UT WOS:000450643500003
OA Bronze
DA 2025-04-22
ER

PT J
AU Ge, Y
   Dou, W
   Zhang, HB
AF Ge, Yi
   Dou, Wen
   Zhang, Haibo
TI A New Framework for Understanding Urban Social Vulnerability from a
   Network Perspective
SO SUSTAINABILITY
LA English
DT Article
DE social vulnerability; connectivity; network; city; the Yangtze River
   Delta (YRD) region
ID CLIMATE-CHANGE; ADAPTATION; URBANIZATION; RESILIENCE; LEVEL
AB Rapid urbanization in China has strengthened the connection and cooperation among cities and has also led urban residents to be more vulnerable in adverse environmental conditions. Vulnerability research has been an important foundation in urban risk management. To make cities safe and resilient, it is also necessary to integrate the connection among cities into a vulnerability assessment. Therefore, this paper proposed a new conceptual framework for urban social vulnerability assessment based on network theory, where a new dimension of social vulnerability (connectivity) was added into the framework. Using attribute data, the traditional social vulnerability index of a city (SVInode) was calculated via the projection pursuit cluster (PPC) model. With the relational data retrieved from the Baidu search index, a new dimension (connectivity) of social vulnerability (SVIconnectivity) was evaluated. Finally, an integrated social vulnerability index (SVIurban) was measured combined with SVInode and SVIconnectivity. This method was applied in the Yangtze River Delta region of China, where the top three high values of SVInode belonged to the cities of Taizhou (Z), Jiaxing, and Huzhou. The three lowest cities were Hangzhou, Nanjing, and Shanghai. For SVIurban, the social vulnerability of cities in different hierarchies behaved differently. For Hierarchies 2 and 3, when compared to SVInode, the SVIurban was significantly reduced. However, the variation between SVInode and SVIurban in Hierarchy 4 was slight. Furthermore, an increase for the city of Taizhou (J) in its social vulnerability was achieved after connecting to the network. Huzhou, in Hierarchy 5, increased its social vulnerability the most when adding connectivity in the social vulnerability assessment. Based on the results of our case study, a conclusion was drawn that network connectivity had an influence on social vulnerability. However, when connectivity was strong enough, it could help cities to mitigate their traditional social vulnerability, whereas a loose connection in the network aggregated their traditional social vulnerability. Hence, the latter should be emphasized in future urban risk management.
C1 [Ge, Yi] Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Nanjing 210093, Jiangsu, Peoples R China.
   [Dou, Wen] Southeast Univ, Sch Transportat, Nanjing 210018, Jiangsu, Peoples R China.
   [Zhang, Haibo] Nanjing Univ, Sch Govt, Ctr Risk Disaster & Crisis Res, Nanjing 210093, Jiangsu, Peoples R China.
C3 Nanjing University; Southeast University - China; Nanjing University
RP Ge, Y (corresponding author), Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Nanjing 210093, Jiangsu, Peoples R China.; Zhang, HB (corresponding author), Nanjing Univ, Sch Govt, Ctr Risk Disaster & Crisis Res, Nanjing 210093, Jiangsu, Peoples R China.
EM geyi@nju.edu.cn; douw@seu.edu.cn; zhb@nju.edu.cn
RI Zhang, Haibo/HLP-9266-2023
FU National Natural Science Foundation of China [41571488, 41401382];
   National foundation of philosophy and social sciences, philosophical
   study on the climate science debates [13BZX029]
FX This study was financially supported by the National Natural Science
   Foundation of China (Grant No. 41571488 and Grant No. 41401382),
   National foundation of philosophy and social sciences, philosophical
   study on the climate science debates (Grant No. 13BZX029). Special
   thanks to the reviewers and the editors for their critical comments that
   greatly helped in improving the quality of this article.
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NR 62
TC 23
Z9 27
U1 7
U2 67
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2017
VL 9
IS 10
AR 1723
DI 10.3390/su9101723
PG 16
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA FM3HW
UT WOS:000414896200054
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Zaman, S
   Angeles, L
AF Zaman, Sunya
   Angeles, Leonora
TI Translating disaster resilience: How values, world views and politics
   complicate interpretation and implementation
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Disaster resilience; Disaster risk governance; International
   development; Pakistan floods; Language translation; Values
ID CLIMATE-CHANGE
AB Globalized climate change and ecological collapse discourses have created a universally relatable conceptual arena within which institutional actors' debate, design and implement interventions to create 'disaster resilient cities' in the Global South. The implications of resilience ideologies and practices adopted from the Global North can have detrimental and counterproductive effects when translated into interventions in postcolonial countries like Pakistan. In this research paper, we use interviews and discourse analysis to underscore the techniques, rationalities, and framings mobilized by governmental and non-governmental actors in the name of 'reducing risks' and building 'disaster resilience'. Within this arena, Pakistani institutional actors create, mimic, and adapt normative resilience trajectories influenced by international resilience standards that do not align, or worse, conflict with the spiritual, cultural, and postcolonial contexts and values of communities they engage with. Imposition of international resilience standards may result in disconnected top-down interventions that overlook the vulnerabilities of local communities deemed as 'beneficiaries' and misallocate funds in favor of ineffective projects and programmes, ultimately missing opportunities for meaningful change. While building upon existing urban resilience efforts in Pakistan is important, it is critical to recognize that merely pursuing resilience as an outcome is not enough. Fulfilling basic needs should take precedence over resilience efforts, particularly when the goal is not only the survival of local communities in the face of escalating climate and disaster risks but also their overall well-being.
C1 [Zaman, Sunya] Univ British Columbia, Sch Community & Reg Planning, 433-6333 Mem Rd, Vancouver, BC V6T 1Z2, Canada.
   [Angeles, Leonora] Univ British Columbia, Inst Gender Race Sexual & Social Justice, Buchanan Tower, 1097-1873 East Mall, Vancouver, BC V6T 1Z1, Canada.
C3 University of British Columbia; University of British Columbia
RP Zaman, S (corresponding author), Univ British Columbia, Sch Community & Reg Planning, 433-6333 Mem Rd, Vancouver, BC V6T 1Z2, Canada.
EM sz91@student.ubc.ca; nora.angeles@ubc.ca
OI Zaman, Sunya/0009-0002-9152-1970
FU Social Sciences and Humanities Research Council of Canada
   [435-2019-1203]
FX Funding statement This research work was supported by The Social
   Sciences and Humanities Research Council of Canada [grant number
   435-2019-1203] .
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NR 83
TC 1
Z9 1
U1 3
U2 3
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD OCT 15
PY 2024
VL 113
AR 104840
DI 10.1016/j.ijdrr.2024.104840
EA SEP 2024
PG 13
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA H6Q6G
UT WOS:001324670300001
DA 2025-04-22
ER

PT J
AU Tambal, SARMA
   Elsawahli, HMH
   Ibrahim, EIE
   Lumbroso, D
AF Tambal, Samah Abdel Rhman Mohammed Ahmed
   Elsawahli, Hanan Mohamed Hassan
   Ibrahim, Eltayeb Ibrahim Elmadih
   Lumbroso, Darren
TI Increasing urban flood resilience through public participation: A case
   study of Tuti Island in Khartoum, Sudan
SO JOURNAL OF FLOOD RISK MANAGEMENT
LA English
DT Article
DE flood risk management; Nafeer; public participation; resilient cities;
   Sudan; Tuti Island
ID RISK-MANAGEMENT
AB Over the past 30 years, Sudan has experienced several severe floods which have caused loss of life and significant damage to property. The frequency and intensity of floods in Sudan are predicted to increase as a result of climate change. The main objective of this research was to assist policymakers in establishing a mechanism for public participation in Sudan to enable communities to be engaged in improving flood risk management. This paper focuses on Tuti Island, which is located near the confluence of the Blue and White Niles in Khartoum which is severely affected by flooding. The research was based on surveys and interviews with both officials and the public to examine the degree of public participation in mitigating flood risks. The research concluded that Sudan has no policy or official way of engaging the public in disaster risk reduction; however, the traditional method of social mobilization called Nafeer (building together) can play a significant role in increasing communities' flood resilience. Establishing a clear framework for public participation, such as Nafeer, for the various stages of the flood management cycle that coordinates with decision-makers can help increase the resilience of urban areas in low-income countries like Sudan.
C1 [Tambal, Samah Abdel Rhman Mohammed Ahmed] Natl Ribat Univ, Fac Architecture, Architectural Design Dept, Khartoum, Sudan.
   [Elsawahli, Hanan Mohamed Hassan; Ibrahim, Eltayeb Ibrahim Elmadih] Natl Ribat Univ, Fac Architecture, Khartoum, Sudan.
   [Lumbroso, Darren] Flood & Water Management, HR Wallingford, Howbery Pk, Wallingford, Oxfordshire, England.
   [Tambal, Samah Abdel Rhman Mohammed Ahmed] Natl Ribat Univ, Fac Architecture, Architectural Design Dept, Burri Nile St, Khartoum, Sudan.
C3 HR Wallingford Limited
RP Tambal, SARMA (corresponding author), Natl Ribat Univ, Fac Architecture, Architectural Design Dept, Burri Nile St, Khartoum, Sudan.
EM samah_tambal@yahoo.com
RI Lumbroso, Darren/AAF-2561-2020; Elsawahli, Hanan/LFT-8481-2024
OI Elsawahli, Hanan/0009-0002-9413-9064
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NR 37
TC 4
Z9 4
U1 5
U2 25
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1753-318X
J9 J FLOOD RISK MANAG
JI J. Flood Risk Manag.
PD JUN
PY 2024
VL 17
IS 2
DI 10.1111/jfr3.12966
EA JAN 2024
PG 24
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA PR3E1
UT WOS:001139396600001
OA gold
DA 2025-04-22
ER

PT J
AU He, Z
   Chen, HH
   Yan, HY
   Yin, Y
   Qiu, Q
   Wang, TP
AF He, Zheng
   Chen, Huihua
   Yan, Hongyan
   Yin, Yang
   Qiu, Qi
   Wang, Tingpeng
TI Scenario-Based Comprehensive Assessment for Community Resilience Adapted
   to Fire Following an Earthquake, Implementing the Analytic Network
   Process and Preference Ranking Organization Method for Enriched
   Evaluation II Techniques
SO BUILDINGS
LA English
DT Article
DE community resilience; fire following earthquake; comprehensive
   assessment; MCDA
ID MULTICRITERIA DECISION-MAKING; SUSTAINABILITY ASSESSMENT; NATURAL
   HAZARD; SOCIAL SUSTAINABILITY; ASSESSMENT FRAMEWORKS;
   DISASTER-RESILIENCE; EMPIRICAL-EVIDENCE; BUILDING-MATERIALS; GREEN
   BUILDINGS; FLOOD HAZARDS
AB Natural hazards bring significant influences on and socioeconomic loss to cities and communities. Historic events show that fire following earthquake (FFE) is the most influential uncertain disturbance on the urban infrastructure system. Under the FFE scenario, the concept of resilience is widely implemented to make up the shortcomings derived from the traditional disaster management methodology. Resilient cities and communities are required to improve the systemic performance in responding to the FFE. To fulfill these goals, measuring community resilience is an essential work for municipal policy makers. Therefore, this study conducted a comprehensive assessment on community resilience adapted to the FFE scenario. The systematic literature review (SLR) was employed to identify the indicators, and the analytic network process (ANP) technique was implemented to determine their weights. 20 indicators were extracted, and 4 communities that encountered FFE in China were selected for the empirical analysis. Thereafter, the preference ranking organization method for enriched evaluation (PROMETHEE) II technique was selected through using the multicriteria decision analysis (MCDA) methods selection framework to fulfill the comprehensive assessment. The results were discussed and demonstrated with graphical analysis for interactive aid (GAIA) technique. The findings revealed that the G Community won the highest score and had the strongest performance. However, H Community had the lowest score and the weakest performance. The proposed comprehensive methods could benefit the decision-makers and the policy executors achieving the community resilience adapted to the FFE scenario by improving the effective indicators.
C1 [He, Zheng; Chen, Huihua; Yan, Hongyan; Yin, Yang; Qiu, Qi; Wang, Tingpeng] Cent South Univ, Sch Civil Engn, Changsha 410075, Peoples R China.
   [He, Zheng; Yan, Hongyan] Hunan Univ Finance & Econ, Sch Engn Management, Changsha 410205, Peoples R China.
C3 Central South University; Hunan University of Finance & Economics
RP Chen, HH (corresponding author), Cent South Univ, Sch Civil Engn, Changsha 410075, Peoples R China.
EM he0814@csu.edu.cn; chh@csu.edu.cn; yanhongyan@hufe.edu.cn;
   yinyang@csu.edu.cn; 174801042@csu.edu.cn; wangtp@csu.edu.cn
RI Wang, Tingpeng/GQI-1453-2022; He, Zheng/JCF-0440-2023
OI He, Zheng/0000-0001-8645-1600; Wang, Tingpeng/0000-0001-5693-2198; Chen,
   Huihua/0000-0002-1159-1999
FU Natural Science Foundation of Hunan Province [2021JJ30861]; National
   Natural Science Foundation of China [71273283]
FX FundingThis research was funded by Natural Science Foundation of Hunan
   Province, grant number [2021JJ30861]. The APC was funded by National
   Natural Science Foundation of China, grant number [71273283].
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NR 188
TC 15
Z9 15
U1 15
U2 102
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD NOV
PY 2021
VL 11
IS 11
AR 523
DI 10.3390/buildings11110523
PG 24
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Engineering
GA XG0BG
UT WOS:000724426700001
OA gold
DA 2025-04-22
ER

PT J
AU Wood, PB
   Brunson, RK
AF Wood, Patricia Burke
   Brunson, Rod K.
TI GEOGRAPHIES OF RESILIENT SOCIAL NETWORKS: THE ROLE OF AFRICAN AMERICAN
   BARBERSHOPS
SO URBAN GEOGRAPHY
LA English
DT Article
ID NEIGHBORHOODS; CITY
AB This study examines the geographic reach of the African American barbershop, a neighborhood institution that is commonly acknowledged as important, yet whose significance is often overlooked. Data were gathered regarding the residential location of clienteles for two barbershops in the inner suburbs of St. Louis, Missouri, a city with a history of racial segregation. Plotting this information on maps of the area revealed that many customers travel to these shops from well outside the neighborhood. The significance of the spatial extent of the shops' communities is contextualized with in-depth interviews and ethnographic research on life inside the businesses. In light of urban and inner-suburban decline in metropolitan St. Louis, this research strengthens the case for the importance of such informal institutions for understanding the resilience of the African American community in the face of the reproduction of racialized social geographies.
C1 [Wood, Patricia Burke] York Univ, Dept Geog, N York, ON M3J 1P3, Canada.
   [Brunson, Rod K.] Rutgers State Univ, Sch Criminal Justice, Piscataway, NJ 08855 USA.
C3 York University - Canada; Rutgers University System; Rutgers University
   New Brunswick
RP Wood, PB (corresponding author), York Univ, Dept Geog, 4700 Keele St, N York, ON M3J 1P3, Canada.
EM pwood@yorku.ca
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   [No title captured]
NR 43
TC 11
Z9 19
U1 0
U2 17
PU BELLWETHER PUBL LTD
PI COLUMBIA
PA 8640 GUILFORD RD, STE 200, COLUMBIA, MD 21046 USA
SN 0272-3638
J9 URBAN GEOGR
JI Urban Geogr.
PD FEB-MAR
PY 2011
VL 32
IS 2
BP 228
EP 243
DI 10.2747/0272-3638.31.2.228
PG 16
WC Geography; Urban Studies
WE Social Science Citation Index (SSCI)
SC Geography; Urban Studies
GA 737BN
UT WOS:000288543100005
DA 2025-04-22
ER

PT J
AU Madrigal-González, J
   de Benito, A
   Antorán, E
   Cuesta-Cano, IC
   Sangüesa-Barreda, G
AF Madrigal-Gonzalez, Jaime
   de Benito, Antonio
   Antoran, Ezequiel
   Cuesta-Cano, Isabel Catalina
   Sanguesa-Barreda, Gabriel
TI Irrigation in Mediterranean urban areas: a good strategy to face the
   ongoing climate change impacts on urban cedar trees?
SO URBAN ECOSYSTEMS
LA English
DT Article
DE Urban greening; Atlas cedar; Mediterranean gardens; Dendrhronology;
   Resilience; Resistance; Growth sensitivity
ID CEDRUS-ATLANTICA; DRIVEN
AB Irrigated trees are known to develop large aboveground structures that can be detrimental during dry spells, and therefore irrigated trees are expected to perform worse than non-irrigated ones under climate change. In this study, we evaluated the climate-growth relationship of irrigated and non-irrigated trees of the species Cedrus atlantica (Endl.) Manetti ex Carri & egrave;re (Atlas cedar) in an urban environment in central Spain. We first studied climate-growth relationships with and without irrigation to test the hypothesis that irrigated trees should be less sensitive to interannual climatic variability than non-irrigated ones. Secondly, we identified the four most intense droughts over the 21st century (2005, 2012, 2017, 2019) to test the hypothesis that growth resilience should be lower in irrigated than non-irrigated trees due to traits such as total height. Our results support the idea that irrigated trees are less responsive to climatic interannual variability and notably less resilient to drought stress, with these differences becoming more pronounced with age. These results suggest that irrigation may increase the risk in a scenario of more frequent and intense droughts in Mediterranean urban areas. Thus, widening urban green areas to meet the European Green Deal 2030 in Mediterranean cities should consider better-adapted tree species and ad hoc adaptation to water shortage rather than watering and strategies based on resource supplements.
C1 [Madrigal-Gonzalez, Jaime; Cuesta-Cano, Isabel Catalina] Univ Valladolid, ETSIIAA iuFOR, Campus Yutera, Palencia 34004, Spain.
   [Madrigal-Gonzalez, Jaime; de Benito, Antonio; Antoran, Ezequiel; Cuesta-Cano, Isabel Catalina] Nonprofit Org Nat Conservat Espadanal, Cuellar 40200, Spain.
   [Antoran, Ezequiel] Univ Rey Juan Carlos, Dept Biol Geol Fis Aplicada & Quim Inorgan, Area Biodiversidad & Conservac, ESCET, Madrid, Spain.
   [Sanguesa-Barreda, Gabriel] Univ Valladolid, EiFAB IuFOR, Campus Duques Soria, Soria 42004, Spain.
C3 Universidad de Valladolid; Universidad Rey Juan Carlos; Universidad de
   Valladolid
RP Madrigal-González, J (corresponding author), Univ Valladolid, ETSIIAA iuFOR, Campus Yutera, Palencia 34004, Spain.; Madrigal-González, J (corresponding author), Nonprofit Org Nat Conservat Espadanal, Cuellar 40200, Spain.
EM jaime.madrigal@uva.es
RI Sangüesa-Barreda, Gabriel/ABE-4520-2020
FU Fundacion Caja Segovia Caixabank; MICIU/AEI [CNS2022-135319]; European
   Union NextGenerationEU/PRTR
FX The project 'Urban biodiversity to mitigate climate change: a case study
   in the town of Cuellar' was funded by the Fundacion Caja Segovia
   Caixabank in the first contest for research projects on conservation and
   environmental sciences (2022). We also acknowledge Grant CNS2022-135319
   funded by MICIU/AEI/ h t t p s : / / d o i . o r g / 1 0 . 1 3 0 3 9 / 5
   0 1 1 0 0 0 1 1 0 3 3 and by "European Union NextGenerationEU/PRTR".
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NR 34
TC 0
Z9 0
U1 1
U2 1
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1083-8155
EI 1573-1642
J9 URBAN ECOSYST
JI Urban Ecosyst.
PD APR
PY 2025
VL 28
IS 2
AR 2
DI 10.1007/s11252-024-01665-4
PG 9
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA R0M5O
UT WOS:001388504200002
DA 2025-04-22
ER

PT J
AU Blount, K
   Wolfand, JM
   Bell, CD
   Ajami, NK
   Hogue, TS
AF Blount, Kyle
   Wolfand, Jordyn M.
   Bell, Colin D.
   Ajami, Newsha K.
   Hogue, Terri S.
TI Satellites to Sprinklers: Assessing the Role of Climate and Land Cover
   Change on Patterns of Urban Outdoor Water Use
SO WATER RESOURCES RESEARCH
LA English
DT Article
ID LOS-ANGELES; UNITED-STATES; EVAPOTRANSPIRATION; CONSERVATION;
   IRRIGATION; DATABASE; IMPACTS; TRANSITIONS; PERFORMANCE; CONSUMPTION
AB Outdoor water use represents over 50% of total water demand in semiarid and arid cities and presents both challenges to and opportunities for improved efficiency and water resilience. The current work adapts a remote sensing-based methodology to estimate growing season irrigation rates at the census block group scale in Denver, Colorado. Results show that city-wide outdoor water use does not change significantly from 1995 to 2018, while per capita water use and total water use significantly decrease from 2000 to 2018. Because total water use, but not outdoor use, is decreasing, the percent of water used outdoors significantly increases across the city from 2000 to 2018. Climate variables account for one-quarter of interannual variation in mean irrigation rates due primarily to changes in temperature, not precipitation. Percent impervious land cover exhibits a significant inverse nonlinear relationship with irrigation rates at the census block group scale. Finally, 38% of Denver census block groups show significantly increasing irrigation rates between 1995 and 2018 driven primarily by increasing temperatures. The increasing proportion of water used for irrigation highlights the importance of outdoor demand management for urban water systems as indoor efficiencies improve. We advocate that resilient water systems necessitate integrated land use, infrastructure, and water planning in the face of urban growth and climate change. While minimizing irrigated urban areas may reduce demand, remaining green spaces should be designed to maximize multiple benefits including reductions in water demand and urban heat islands, stormwater management, and recreation to improve the sustainability of growing cities.
C1 [Blount, Kyle; Hogue, Terri S.] Colorado Sch Mines, Hydrol Sci & Engn, Golden, CO 80401 USA.
   [Wolfand, Jordyn M.; Hogue, Terri S.] Colorado Sch Mines, Civil & Environm Engn, Golden, CO 80401 USA.
   [Wolfand, Jordyn M.] Univ Portland, Shiley Sch Engn, Portland, OR 97203 USA.
   [Bell, Colin D.] City & Cty Denver, Dept Transportat & Infrastruct, Denver, CO USA.
   [Ajami, Newsha K.] Stanford Univ, Woods Inst Environm, Stanford, CA 94305 USA.
C3 Colorado School of Mines; Colorado School of Mines; University of
   Portland; Stanford University
RP Blount, K; Hogue, TS (corresponding author), Colorado Sch Mines, Hydrol Sci & Engn, Golden, CO 80401 USA.; Hogue, TS (corresponding author), Colorado Sch Mines, Civil & Environm Engn, Golden, CO 80401 USA.
EM wkblount@mymail.mines.edu; thogue@mines.edu
RI Ajami, Newsha/GLU-2387-2022; Blount, Kyle/AAH-9325-2021; Blount,
   Kyle/E-4479-2018; Ajami, Newsha/C-9151-2017
OI Blount, Kyle/0000-0002-0878-2655; Hogue, Terri/0000-0003-1524-8896;
   Ajami, Newsha/0000-0003-4421-3764; Wolfand, Jordyn/0000-0003-2650-4373
FU National Science Foundation [NSF EEC-1028968]; Colorado Higher Education
   Competitive Research Authority (CHECRA); US Environmental Protection
   Agency [R836174]
FX We would like to thank Kate Legg and Josh Ferguson of Denver Water as
   well as Pamela Smith of the Denver Parks and Recreation department for
   assistance in providing data and feedback for this project. We would
   also like to thank the two anonymous reviewers and editor, Dr. Marc
   Bierkens, for their comments, which have helped improve and clarify this
   manuscript. This work was primarily supported by the National Science
   Foundation-funded Engineering Research Center for Reinventing the
   Nation's Urban Water Infrastructure (ReNUWIt) (NSF EEC-1028968) and a
   grant from the Colorado Higher Education Competitive Research Authority
   (CHECRA). This work was also supported under Assistance Agreement No.
   R836174 awarded by the US Environmental Protection Agency to the
   Colorado School of Mines, the Nature Conservancy, and the University of
   California-Berkeley. The authors declare no conflict of interest.
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NR 100
TC 9
Z9 11
U1 2
U2 30
PU AMER GEOPHYSICAL UNION
PI WASHINGTON
PA 2000 FLORIDA AVE NW, WASHINGTON, DC 20009 USA
SN 0043-1397
EI 1944-7973
J9 WATER RESOUR RES
JI Water Resour. Res.
PD JAN
PY 2021
VL 57
IS 1
AR e2020WR027587
DI 10.1029/2020WR027587
PG 22
WC Environmental Sciences; Limnology; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Marine & Freshwater Biology; Water
   Resources
GA QH0XN
UT WOS:000618001100013
OA Bronze
DA 2025-04-22
ER

PT J
AU Rumbach, A
   Follingstad, G
AF Rumbach, Andrew
   Follingstad, Gretel
TI Urban disasters beyond the city: Environmental risk in India's
   fast-growing towns and villages
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
ID SOCIAL VULNERABILITY; CLIMATE-CHANGE; ADAPTATION; RESILIENCE; REDUCTION
AB India is one of the fastest urbanizing countries in the world. Although urban scholars tend to focus on India's large cities, urbanization is also transforming its villages and towns. In this paper we ask how urbanization is shaping environmental risk in five fast-growing towns and villages in the Darjeeling District, a mountainous region in the state of West Bengal. We base our study on the MOVE Framework, a comprehensive and integrative framework for assessing disaster and climate risk. Drawing on primary and secondary data collected over a 3-year period 2015-2017, we find that urbanizing towns and villages are characterized by rapid spatial growth, dynamic and challenging hazard contexts, and limitations in governance capacity or resources to document, govern, or adapt to emerging environmental threats. The risk that is accumulating in the built environment and economy may only be "revealed" after a major disaster, however. These characteristics and trends are likely common in other small urbanizing places and must be managed to achieve national and international goals for sustainable and resilient development.
C1 [Rumbach, Andrew] Univ Colorado Denver, Dept Urban & Reg Planning, Denver, CO 80204 USA.
   [Follingstad, Gretel] Univ Colorado Denver, Coll Architecture & Planning, Denver, CO USA.
C3 Children's Hospital Colorado; University of Colorado System; University
   of Colorado Anschutz Medical Campus; University of Colorado Denver;
   University of Colorado System; University of Colorado Denver; Children's
   Hospital Colorado; University of Colorado Anschutz Medical Campus
RP Rumbach, A (corresponding author), Univ Colorado Denver, Dept Urban & Reg Planning, Denver, CO 80204 USA.
EM andrew.rumbach@ucdenver.edu
RI Rumbach, Andrew/AAA-1827-2020
OI Follingstad, Gretel/0000-0002-7566-4042
FU DigitalGlobe Foundation; Office of Research Services at the University
   of Colorado Denver
FX The authors gratefully acknowledge research assistance from Rohan Rao,
   Izabela Petrykowska, Bryan Sullivan, Vivek Mishra, Aachal Tamang and
   Juanita Mukhia. This study was made possible by grants from the
   DigitalGlobe Foundation and the Office of Research Services at the
   University of Colorado Denver.
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TC 16
Z9 17
U1 3
U2 29
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD MAR
PY 2019
VL 34
BP 94
EP 107
DI 10.1016/j.ijdrr.2018.11.008
PG 14
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA HN2RJ
UT WOS:000460032200010
DA 2025-04-22
ER

PT J
AU Green, TL
   Kronenberg, J
   Andersson, E
   Elmqvist, T
   Gómez-Baggethun, E
AF Green, Tom L.
   Kronenberg, Jakub
   Andersson, Erik
   Elmqvist, Thomas
   Gomez-Baggethun, Erik
TI Insurance Value of Green Infrastructure in and Around Cities
SO ECOSYSTEMS
LA English
DT Article
DE social-ecological systems; urban ecology urban ecosystem services;
   resilience; nature-base solutions; ecosystem restoration
ID ECOSYSTEM SERVICES; RESPONSE DIVERSITY; CLIMATE-CHANGE; URBAN AREAS;
   BIODIVERSITY; RESILIENCE; MANAGEMENT; ECONOMICS; ECOLOGY; DEBATE
AB The combination of climate change and urbanization projected to occur until 2050 poses new challenges for land-use planning, not least in terms of reducing urban vulnerability to hazards from projected increases in the frequency and intensity of climate extremes. Interest in investments in green infrastructure (interconnected systems of parks, wetlands, gardens and other green spaces), as well as in restoration of urban ecosystems as part of such adaptation strategies, is growing worldwide. Previous research has highlighted the insurance value of ecosystems in securing the supply of ecosystem services in the face of disturbance and change, yet this literature neglects urban areas even though urban populations are often highly vulnerable. We revisit the insurance value literature to examine the applicability of the concept in urban contexts, illustrating it with two case studies: watersheds providing drinking water for residents of Vancouver, Canada; and private gardens ensuring connectedness between other parts of urban green infrastructure in London, UK. Our research supports the notion that investments in green infrastructure can enhance insurance value, reducing vulnerability and the costs of adaptation to climate change and other environmental change. Although we recommend that urban authorities consider the insurance value of ecosystems in their decision-making matrix, we advise caution in relying upon monetary evaluations of insurance value. We conclude by identifying actions and management strategies oriented to maintain or enhance the insurance value of urban ecosystems. Ecosystems that are themselves resilient to external disturbances are better able to provide insurance for broader social-ecological systems.
C1 [Green, Tom L.] Simon Fraser Univ, Ctr Dialogue, 3305-515 Hastings St West, Vancouver, BC V6B 5K3, Canada.
   [Kronenberg, Jakub] Univ Lodz, Dept Int Econ, POW 3-5, PL-90255 Lodz, Poland.
   [Andersson, Erik; Elmqvist, Thomas] Stockholm Univ, Stockholm Resilience Ctr, Kraftriket 2B, S-10691 Stockholm, Sweden.
   [Gomez-Baggethun, Erik] Norwegian Inst Nat Res NINA, Gaustadalleen 21, N-0349 Oslo, Norway.
   [Gomez-Baggethun, Erik] Norwegian Univ Life Sci NMBU, Dept Int Environm & Dev Studies, Univ Tunet 3, N-1430 As, Norway.
C3 Simon Fraser University; University of Lodz; Stockholm University;
   Norwegian Institute Nature Research; Norwegian University of Life
   Sciences
RP Green, TL (corresponding author), Simon Fraser Univ, Ctr Dialogue, 3305-515 Hastings St West, Vancouver, BC V6B 5K3, Canada.
EM tom@viableeconomics.com
RI Elmqvist, Thomas/AAY-6344-2021; Kronenberg, Jakub/ABD-9941-2021;
   Andersson, Erik/AAE-9771-2019; Gomez-Baggethun, Erik/LSL-9726-2024
OI Andersson, Erik/0000-0003-2716-5502; Green, Tom L./0000-0001-9096-4476;
   Elmqvist, Thomas/0000-0002-4617-6197; Kronenberg,
   Jakub/0000-0003-4903-2401
FU BioDiversa URBES project; GREEN SURGE EU FP7 collaborative project
   [FP7-ENV.2013.6.2-5-603567]; OpenNESS EU FP7 ENVIRONMENT project
   [308428]
FX We appreciate the helpful comments of two anonymous reviewers. The BC
   Tap Water Alliance's extensive archives provided invaluable information
   on the Vancouver watersheds. Thora Gislason of Metro Vancouver kindly
   helped track down historical documents. Charlotte McLoed assisted with
   editing. We also acknowledge the BioDiversa URBES project, the GREEN
   SURGE EU FP7 collaborative project (FP7-ENV.2013.6.2-5-603567) and the
   OpenNESS EU FP7 ENVIRONMENT project (code 308428).
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NR 86
TC 55
Z9 59
U1 3
U2 125
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1432-9840
EI 1435-0629
J9 ECOSYSTEMS
JI Ecosystems
PD SEP
PY 2016
VL 19
IS 6
BP 1051
EP 1063
DI 10.1007/s10021-016-9986-x
PG 13
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA EA6BN
UT WOS:000386710000008
OA hybrid
DA 2025-04-22
ER

PT J
AU Ali, S
   George, A
AF Ali, Sameer
   George, Abraham
TI Modelling a community resilience index for urban flood-prone areas of
   Kerala, India (CRIF)
SO NATURAL HAZARDS
LA English
DT Article
DE Multi-criteria decision analysis; Communities; Disaster mitigation;
   Empirical study; Validation
ID CLIMATE-RELATED DISASTERS; CHENNAI
AB Communities are ever-evolving, cities are constantly expanding, and the threat of natural hazards has escalated like never before. Cities can develop and prosper only if their society is resilient to external shocks. Measuring community resilience over time is crucial with the influence of technology and change in community lifestyles. With the frequent onset of floods in Kerala in recent years, the community must be well-prepared for future calamities. Thus, this paper develops a community resilience index for Kerala's urban flood-prone areas (CRIF) through a rigorous bottom-up approach. The criteria for the index were developed using multi-criteria decision analysis that covered a fuzzy Delphi study, an empirical study using multi-variate probit regression, and an AHP analysis. The fuzzy Delphi study selected seven criteria: 'social', 'economical', 'governance/political', 'health', 'communication/coordination, 'education', and 'infrastructure' from 65 experts. The empirical study helped apprehend the public's viewpoints under each criterion. Finally, the AHP analysis helped assign appropriate weights to the criteria which 28 experts designated. The index is also designed according to the Sendai Framework for Disaster Risk Reduction (2015-2030). Further, the CRIF Index is put into action through a case study of the Kochi Municipal Corporation area, and the results are also validated using the Spearman's rank correlation coefficient method. Results from validation returned a value of 0.7209 for the perceived CRIF method and 0.5798 for the external validation method, which corresponds to a 'high' and 'moderate' correlation, respectively.
C1 [Ali, Sameer; George, Abraham] IIT Kharagpur, Dept Architecture & Planning, Kharagpur 721302, W Bengal, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Kharagpur
RP Ali, S (corresponding author), IIT Kharagpur, Dept Architecture & Planning, Kharagpur 721302, W Bengal, India.
EM sameer_aaa@live.com; abrahamiitkgp@gmail.com
RI Ali, Sameer/ABB-7262-2021
OI Abbas Ali, Sameer Ali/0000-0002-3966-5240
FU Ministry of Education, India
FX Partial financial support was received from the Ministry of Education,
   India.
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U2 47
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD AUG
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VL 113
IS 1
BP 261
EP 286
DI 10.1007/s11069-022-05299-7
EA MAR 2022
PG 26
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 3I8NA
UT WOS:000766436800002
PM 35287382
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Anderson, P
   Charles-Dominique, T
   Ernstson, H
   Andersson, E
   Goodness, J
   Elmqvist, T
AF Anderson, Pippin
   Charles-Dominique, Tristan
   Ernstson, Henrik
   Andersson, Erik
   Goodness, Julie
   Elmqvist, Thomas
TI Post-apartheid ecologies in the City of Cape Town: An examination of
   plant functional traits in relation to urban gradients
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
ID ECOSYSTEM SERVICES; RESPONSE DIVERSITY; TREE COVER; CONSERVATION;
   RESILIENCE; GARDENS; SUSTAINABILITY; TEMPERATURE; FRAMEWORK; PATTERNS
AB In this study we explore species richness and traits across two urban gradients in the City of Cape Town. The first is the natural-urban boundary and the second is a socio-economic gradient informed by historical race-based apartheid planning. Plant species and cover were recorded in 156 plots sampled from conservation areas, private gardens, and public open green space. The socio-economic gradient transitioned from wealthier, predominantly white neighbourhoods to poorer, predominantly black neighbourhoods. The socio-economic gradient was selected to fall within one original vegetation type to ensure a consistent biophysical template. There is a marked shift between the natural and urban plant communities in the City of Cape Town, with little structural affinity. Urban landscapes are dominated by grass, with low diversity compared to natural counterparts. A significant ecological gradient of reduced biodiversity, traits, and in turn functionality, was found across the socio-economic gradient. Wealthier communities benefit from more private green space, more public green space, and a greater plant diversity. Poorer communities have limited green space on all fronts, and lower plant and trait diversity. Plant communities with limited diversity are less resilient and if exposed to environmental perturbation would lose species, and associated ecosystem services faster than a species rich community. These species-poor plant communities mirror historical apartheid planning that is resistant to change. Based on how biodiversity, functionality, and associated ecosystem services and ecosystem stability are linked, the results of this study suggests how significant environmental injustice persists in the City of Cape Town.
C1 [Anderson, Pippin] Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
   [Charles-Dominique, Tristan] Univ Cape Town, Dept Biol Sci, Cape Town, South Africa.
   [Charles-Dominique, Tristan] Sorbonne Univ, Inst Ecol & Environm Sci Paris, CNRS, UMR7618, 4 Pl Jussieu, F-75005 Paris, France.
   [Ernstson, Henrik] Univ Manchester, Dept Geog, Manchester, Lancs, England.
   [Ernstson, Henrik; Elmqvist, Thomas] Univ Cape Town, African Ctr Cities, Cape Town, South Africa.
   [Andersson, Erik; Goodness, Julie] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [Andersson, Erik] North West Univ, Unit Environm Sci & Management, Potchefstroom, South Africa.
C3 University of Cape Town; University of Cape Town; Centre National de la
   Recherche Scientifique (CNRS); CNRS - Institute of Ecology & Environment
   (INEE); Universite Paris-Est-Creteil-Val-de-Marne (UPEC); Universite
   Paris Cite; Sorbonne Universite; University of Manchester; University of
   Cape Town; Stockholm University; North West University - South Africa
RP Anderson, P (corresponding author), Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
EM pippin.anderson@uct.ac.za
RI Ernstson, Henrik/LMP-6473-2024; Andersson, Erik/AAE-9771-2019; Elmqvist,
   Thomas/AAY-6344-2021
OI Ernstson, Henrik/0000-0002-6415-4821; Elmqvist,
   Thomas/0000-0002-4617-6197; Andersson, Erik/0000-0003-2716-5502;
   Anderson, Pippin/0000-0003-3716-1206; Charles-Dominique,
   Tristan/0000-0002-5767-0406
FU Swedish Research Council Formas through the research grant
   "Socioecological Movements and Transformative Collective Action in Urban
   Ecosystems" (MOVE) [211-2011-1519]
FX We thank reviewers for their feedback which helped to improve the paper.
   The Swedish Research Council Formas is acknowledged for providing
   funding for this research through the research grant "Socioecological
   Movements and Transformative Collective Action in Urban Ecosystems"
   (MOVE; Dnr: 211-2011-1519; PI: H Ernstson).
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NR 81
TC 20
Z9 22
U1 5
U2 73
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0169-2046
EI 1872-6062
J9 LANDSCAPE URBAN PLAN
JI Landsc. Urban Plan.
PD JAN
PY 2020
VL 193
AR 103662
DI 10.1016/j.landurbplan.2019.103662
PG 10
WC Ecology; Environmental Studies; Geography; Geography, Physical; Regional
   & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA JN4VC
UT WOS:000496895900006
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Wang, SC
   Song, DL
   Gao, MM
AF Wang, Sicheng
   Song, Dinglin
   Gao, Mingming
TI The tight balance state and mechanism of disaster-resilient resources in
   karst small towns: a Chinese karst landform case study
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Karst landform; Small towns; Disaster-resilient resources; Disaster
   management
ID CITIES; SYSTEM
AB Karst small towns globally face challenges due to limited disaster-resilient resources, making it difficult to handle increasingly severe disaster environments. Improving the efficiency of disaster-resilient resource utilization and maintaining a tight balance state of disaster-resilient resources (TBS) are crucial for enhancing disaster adaptability and resilience. This study used urban and disaster data from a representative karst region in China (2017-2021) to conduct a quantitative analysis of TBS in karst small towns, exploring the mechanisms and interactions within this state and identifying obstacle factors. Results show an average TBS of 0.355, indicating a low level with growing disparities among towns. The spatial pattern of TBS has shifted from "high in the south, low in the north" to a multi-center structure, with central towns exhibiting stronger resource siphoning compared to radiating and driving abilities. The Coupling Coordination Degree model shows high coupling but low coordination, with an average value of 0.56, suggesting moderate coordination. Enhancing subsystem coupling and coordination is essential for improving TBS and disaster adaptability. Obstacle factor diagnosis identifies Driving Forces as the main constraint, followed by Responses, States, Pressures, and Impact. Lack of disaster monitoring and early warning technologies increases socio-economic losses caused by disasters.
C1 [Wang, Sicheng; Song, Dinglin; Gao, Mingming] Guizhou Univ, Coll Architecture & Urban Planning, Guiyang 550025, Peoples R China.
   [Wang, Sicheng] Peking Univ, Coll Urban & Environm Sci, Beijing 100871, Peoples R China.
C3 Guizhou University; Peking University
RP Song, DL (corresponding author), Guizhou Univ, Coll Architecture & Urban Planning, Guiyang 550025, Peoples R China.
EM gs.dlsong22@gzu.edu.cn
FU National Natural Science Foundation of China
FX We are particularly grateful to the providers of information on the data
   researched for this paper. The editor's hard work on this paper and the
   reviewers' valuable comments on this paper are also gratefully
   acknowledged.
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NR 62
TC 0
Z9 0
U1 6
U2 6
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD JAN 4
PY 2025
VL 15
IS 1
AR 758
DI 10.1038/s41598-025-85107-x
PG 14
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA R2Y7T
UT WOS:001390173900008
PM 39755824
OA gold
DA 2025-04-22
ER

PT J
AU Rogers, CDF
   Bouch, CJ
   Williams, S
   Barber, ARG
   Baker, CJ
   Bryson, JR
   Chapman, DN
   Chapman, L
   Coaffee, J
   Jefferson, I
   Quinn, AD
AF Rogers, Christopher D. F.
   Bouch, Christopher J.
   Williams, Stephen
   Barber, Austin R. G.
   Baker, Christopher J.
   Bryson, John R.
   Chapman, David N.
   Chapman, Lee
   Coaffee, Jon
   Jefferson, Ian
   Quinn, Andrew D.
TI Resistance and resilience - paradigms for critical local infrastructure
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-MUNICIPAL ENGINEER
LA English
DT Article
DE buildings, structures & design; infrastructure planning; sustainability
ID ELECTRIC-POWER; RISK ANALYSIS; LOS-ANGELES; URBAN; IMPACTS
AB 'Critical infrastructure' generally refers to significant pieces of plant and equipment, such as power stations and motorways. High population densities in cities, and the increasing interconnectedness of the services and supply chains that sustain them, mean local infrastructure is equally important. Local infrastructure must be able to cope with system shocks, whether from natural hazards, terrorism or catastrophic failures. Engineering design plays a major part in achieving this, but shocks will occur that overwhelm even the most conservative design. Local infrastructure must therefore be able to adapt to, and recover from, shocks: it must be resilient. Local infrastructure has evolved with little consideration for resilience of the interconnected system as a whole, whereas resilience has been the subject of much research in many other systems. This paper explores the lessons that local infrastructure can learn from such research by reviewing literature related to resilience of ecological, economic, physical infrastructure, community/social and government systems. A critical analysis highlights the factors affecting resilience and different approaches that need to be taken into account when attempting to model infrastructure at a local scale. The ultimate aim is to provide an evidence base on which to build resilience into various infrastructures and direct future local infrastructure resilience research in an age of austerity.
C1 [Rogers, Christopher D. F.] Birmingham Ctr Resilience Res & Educ, Birmingham, W Midlands, England.
   [Bouch, Christopher J.; Chapman, David N.; Jefferson, Ian; Quinn, Andrew D.] Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, W Midlands, England.
   [Barber, Austin R. G.; Coaffee, Jon] Univ Birmingham, Sch Geog Earth & Environm Sci, Ctr Urban & Reg Studies, Birmingham B15 2TT, W Midlands, England.
   [Baker, Christopher J.] Birmingham Ctr Railway Res & Educ, Birmingham, W Midlands, England.
C3 University of Birmingham; University of Birmingham
RP Rogers, CDF (corresponding author), Birmingham Ctr Resilience Res & Educ, Birmingham, W Midlands, England.
RI Bryson, John/ABE-8229-2020; Rogers, Christopher/AAE-2395-2020; chapman,
   lee/F-4674-2014; Quinn, Andrew/B-7793-2008
OI chapman, lee/0000-0002-2837-8334; Jefferson, Ian/0000-0001-6437-101X;
   Quinn, Andrew/0000-0003-0254-4661; Baker,
   Christopher/0000-0001-7572-1871; Rogers,
   Christopher/0000-0002-1693-1999; Bryson, John/0000-0002-6435-8402;
   Bouch, Christopher/0000-0002-6281-2050
FU Engineering and Physical Sciences Research Council [EP/I016163];
   underpinning work of the Urban Futures (EPSRC) [EP/F007426]; FUTURENET
   (EPSRC) [EP/G060762]; EPSRC [EP/I016163/1] Funding Source: UKRI
FX The authors gratefully acknowledge the financial support of the
   Engineering and Physical Sciences Research Council under the
   cross-disciplinary feasibility account scheme (grant reference
   EP/I016163), and also the underpinning work of the Urban Futures (EPSRC
   grant reference EP/F007426) and FUTURENET (EPSRC grant reference
   EP/G060762) projects.
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NR 48
TC 67
Z9 73
U1 4
U2 137
PU EMERALD GROUP PUBLISHING LTD
PI Leeds
PA Floor 5, Northspring 21-23 Wellington Street, Leeds, W YORKSHIRE,
   ENGLAND
SN 0965-0903
EI 1751-7699
J9 P I CIVIL ENG-MUNIC
JI Proc. Inst. Civil Eng.-Munic. Eng.
PD JUN
PY 2012
VL 165
IS 2
BP 73
EP 84
DI 10.1680/muen.11.00030
PG 12
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering
GA 990KU
UT WOS:000307630500004
DA 2025-04-22
ER

PT J
AU Perera, ATD
   Javanroodi, K
   Nik, VM
AF Perera, A. T. D.
   Javanroodi, Kavan
   Nik, Vahid M.
TI Climate resilient interconnected infrastructure: Co-optimization of
   energy systems and urban morphology
SO APPLIED ENERGY
LA English
DT Article
DE Interconnected infrastructure; Energy systems; Urban form; Urban
   planning; Sustainable cities
ID POWER-SUPPLY PROBABILITY; OF-LOAD PROBABILITY; RENEWABLE ENERGY;
   ELECTRICAL HUBS; SWISS VILLAGE; SOLAR-ENERGY; DESIGN; FORM; IMPACT;
   SCENARIOS
AB Co-optimization of urban morphology and distributed energy systems is key to curb energy consumption and optimally exploit renewable energy in cities. Currently available optimization techniques focus on either buildings or energy systems, mostly neglecting the impact of their interactions, which limits the renewable energy integration and robustness of the energy infrastructure; particularly in extreme weather conditions. To move beyond the current state-of-the-art, this study proposes a novel methodology to optimize urban energy systems as interconnected urban infrastructures affected by urban morphology. A set of urban morphologies representing twenty distinct neighborhoods is generated based on fifteen influencing parameters. The energy performance of each urban morphology is assessed and optimized for typical and extreme warm and cold weather datasets in three time periods from 2010 to 2039, 2040 to 2069, and 2070 to 2099 for Athens, Greece. Pareto optimization is conducted to generate an optimal energy system and urban morphology. The results show that a thus optimized urban morphology can reduce the levelized cost for energy infrastructure by up to 30%. The study reveals further that the current building form and urban density of the modelled neighborhoods will lead to an increase in the energy demand by 10% and 27% respectively. Furthermore, extreme climate conditions will increase energy demand by 20%, which will lead to an increment in the levelized cost of energy infrastructure by 40%. Finally, it is shown that co-optimization of both urban morphology and energy system will guarantee climate resilience of urban energy systems with a minimum investment.
C1 [Perera, A. T. D.] EMPA, Urban Energy Syst Lab, Uberland Str 129, CH-8600 Dubendorf, Switzerland.
   [Javanroodi, Kavan] Ecole Polytech Fed Lausanne EPFL, Solar Energy & Bldg Phys Lab LESO PB, CH-1015 Lausanne, Switzerland.
   [Javanroodi, Kavan; Nik, Vahid M.] Chalmers Univ Technol, Dept Architecture & Civil Engn, Div Bldg Technol, SE-41296 Gothenburg, Sweden.
   [Nik, Vahid M.] Lund Univ, Dept Bldg & Environm Technol, Div Bldg Phys, SE-22363 Lund, Sweden.
   [Nik, Vahid M.] Queensland Univ Technol, Inst Future Environm, Garden Point Campus,2 George St, Brisbane, Qld 4000, Australia.
C3 Swiss Federal Institutes of Technology Domain; Swiss Federal
   Laboratories for Materials Science & Technology (EMPA); Swiss Federal
   Institutes of Technology Domain; Ecole Polytechnique Federale de
   Lausanne; Chalmers University of Technology; Lund University; Queensland
   University of Technology (QUT)
RP Perera, ATD (corresponding author), EMPA, Urban Energy Syst Lab, Uberland Str 129, CH-8600 Dubendorf, Switzerland.
EM dasun.perera@empa.ch; kavan.javanroodi@epfl.ch
RI Javanroodi, Kavan/ABF-5290-2021; Perera, Amarasinghage/KSL-7665-2024;
   Perera, Amarasinghage Tharindu Dasun/D-7408-2013; Nik, Vahid
   M./K-2632-2016
OI Perera, Amarasinghage Tharindu Dasun/0000-0002-0461-8874; Javanroodi,
   Kavan/0000-0002-4989-9681; Nik, Vahid M./0000-0002-1497-4813
FU European Union's Horizon 2020 research and innovation programme
   [775970]; H2020 Societal Challenges Programme [775970] Funding Source:
   H2020 Societal Challenges Programme
FX The Swedish contribution was supported by the framework of the joint
   programming initiative 'ERA-Net Smart Energy Systems' focus initiative
   on Integrated, Regional Energy Systems, with support from the European
   Union's Horizon 2020 research and innovation programme [775970].
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NR 68
TC 80
Z9 85
U1 18
U2 119
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0306-2619
EI 1872-9118
J9 APPL ENERG
JI Appl. Energy
PD MAR 1
PY 2021
VL 285
AR 116430
DI 10.1016/j.apenergy.2020.116430
EA JAN 2021
PG 17
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Energy & Fuels; Engineering
GA QL6XR
UT WOS:000621228300003
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Cerchiello, V
   Ceresa, P
   Monteiro, R
   Komendantova, N
AF Cerchiello, Vania
   Ceresa, Paola
   Monteiro, Ricardo
   Komendantova, Nadejda
TI Assessment of social vulnerability to seismic hazard in Nablus,
   Palestine
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Palestine; Resilience; Scorecard Approach; Spatial autocorrelation;
   Vulnerability
ID NEEDS; FLOOD
AB Social vulnerability helps to explain why communities experience the consequences of an extreme event, such as an earthquake, differently, even when they are subjected to similar levels of intensity (ground shaking). The differential impacts of an earthquake can indeed be a consequence of social vulnerability, hence, it is a critical element for fostering mitigation plans and developing policies to reduce seismic risk. This study addresses the assessment of the social vulnerability and resilience level of the city of Nablus, Palestine, a region affected by seismic events and political conflicts. The method employed is the Scorecard Approach, a self-assessment and participatory tool that measures resilience with qualitatively derived information at two different urban levels: population and local administration. The results enable the resilience assessment of different districts of Nablus concerning several themes relevant to disaster risk reduction. The latter facilitate the better understanding of how different variables - such as gender, age, educational level, monthly income and membership neighbourhood - influence the social vulnerability level. Furthermore, by applying a spatial analysis method to the case study region, it is observed that resilient indicators are not spatially random, but rather geographically correlated.
C1 [Cerchiello, Vania; Ceresa, Paola; Monteiro, Ricardo] Scuola Univ Super IUSS Pavia, Pavia, Italy.
   [Ceresa, Paola] RED Risk Engn Design, Pavia, Italy.
   [Komendantova, Nadejda] Int Inst Appl Syst Anal, Laxenburg, Austria.
C3 IUSS PAVIA; International Institute for Applied Systems Analysis (IIASA)
RP Ceresa, P (corresponding author), Scuola Univ Super IUSS Pavia, Pavia, Italy.
EM vania.cerchiello@iusspavia.it; paola.ceresa@iusspavia.it;
   ricardo.monteiro@iusspavia.it; komendan@iiasa.ac.at
RI Komendantova, Nadejda/AAI-1536-2021; Monteiro, Ricardo/H-1936-2018
OI Monteiro, Ricardo/0000-0002-2505-2996; Komendantova,
   Nadejda/0000-0003-2568-6179
FU ECHO Humanitarian Aid and Civil Protection;  [ECHO/SUB/2014/694399
   SASPARM 2.0]
FX This research has been carried out under the project
   ECHO/SUB/2014/694399 SASPARM 2.0 Support Action for Strengthening
   Palestine capabilities for seismic Risk Mitigation, co-funded by ECHO
   Humanitarian Aid and Civil Protection. The authors also thank
   Christopher Burton, Jalal Al Dabbeek, Iason Grigoratos and Jamal Dabeek
   for their valuable input to the work described in this paper.
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NR 40
TC 26
Z9 27
U1 0
U2 34
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD JUN
PY 2018
VL 28
BP 491
EP 506
DI 10.1016/j.ijdrr.2017.12.012
PG 16
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA GD1TK
UT WOS:000430284000045
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Bernardini, G
   Lucesoli, M
   Quagliarini, E
AF Bernardini, Gabriele
   Lucesoli, Michele
   Quagliarini, Enrico
TI Sustainable planning of seismic emergency in historic centres through
   semeiotic tools: Comparison of different existing methods through real
   case studies
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Resilient urban environment; Urban emergency planning; Historic city
   centres; Streets seismic damages; Evacuation; Decision support system
ID VULNERABILITY ASSESSMENT; CITY CENTERS; RESILIENCE; RISK
AB Sustainable cities have to constantly face natural catastrophes, and planning actions should be oriented to quickly manage emergency conditions. Earthquake represents one of the most critical disasters. Earthquake-induced built environment modifications (i.e. building debris) affect the urban paths network availability. Historic centres are relevant scenarios because of their specific features (i.e. Heritage vulnerability; complex and compact fabric). Predicting which paths could be used by rescuers to rapidly reach damaged inhabitants could reduce losses and improve first aid actions. Sustainable semeiotic tools are proposed to quickly esteem the paths availability combining street geometrical features and building damages. Currently, no study provides insights on methods reliability. Hence, this work critically analyses methods outcomes by implementing them, for the first time, on the same real-world sample (Italian historic centres). Rapid tools (satellite images, photographic documentation) are used to compare methods previsions with effective post-earthquake paths availability. Pros and cons of each analysed method are evidenced, underlining that the approach that combines street-building geometry, building vulnerability and earthquake severity seems to give the best results. This could help Local Authorities and Civil Protection Bodies in better developing risk-mitigation strategies concerning, e.g., emergency management (rescuers' access routes definition) and urban planning (building retrofitting interventions).
C1 [Bernardini, Gabriele; Lucesoli, Michele; Quagliarini, Enrico] Univ Politecn Marche, Dept Construct Civil Engn & Architecture DICEA, Ancona, Italy.
C3 Marche Polytechnic University
RP Bernardini, G (corresponding author), Univ Politecn Marche, Dept Construct Civil Engn & Architecture DICEA, Ancona, Italy.
EM g.bernardini@univpm.it; m.lucesoli@pm.univpm.it;
   e.quagliarini@staff.univpm.it
RI Quagliarini, Enrico/M-5281-2019; Bernardini, Gabriele/S-6283-2017;
   Lucesoli, Michele/AAE-2212-2020
OI quagliarini, enrico/0000-0002-1091-8929
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NR 29
TC 10
Z9 10
U1 8
U2 33
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JAN
PY 2020
VL 52
AR 101834
DI 10.1016/j.scs.2019.101834
PG 10
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA JX9PF
UT WOS:000504058400074
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Vicente-Vicente, JL
   Doernberg, A
   Zasada, I
   Ludlow, D
   Staszek, D
   Bushell, J
   Hainoun, A
   Loibl, W
   Piorr, A
AF Vicente-Vicente, Jose Luis
   Doernberg, Alexandra
   Zasada, Ingo
   Ludlow, David
   Staszek, Damian
   Bushell, Joanna
   Hainoun, Ali
   Loibl, Wolfgang
   Piorr, Annette
TI Exploring alternative pathways toward more sustainable regional food
   systems by foodshed assessment-City region examples from Vienna and
   Bristol
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Food policy; Sustainable diet; Self-sufficiency; Resilience; City region
   food system
ID GREENHOUSE-GAS EMISSIONS; LAND-USE CHANGE; SELF-SUFFICIENCY;
   CLIMATE-CHANGE; ABANDONMENT; DEGRADATION; RESILIENCE; CONTEXT; URBAN;
   DIETS
AB The resilience of the food supply system has become a vital issue for many countries especially under substantial international supply disturbances (e.g. the effects of COVID-19 restrictions). Regionalizing diets and increasing food self-sufficiency contribute greatly to shortening food supply chains and, therefore, to increasing the resilience of the food system. Simultaneously, food supply disturbances can offer a chance for food system transition toward implementing sustainable management practices in agriculture (e.g. organic farming), increasing the sustainability of food production. In this study, we have proposed a foodshed for the cities of Vienna and Bristol, delineating the spatial extent for such a regionalization and self-sufficiency discussion. We used the Metropolitan Foodshed and Self-sufficiency Scenario model to assess the potential self-sufficiency of these areas under different pathways involving more sustainable and resilient food system scenarios by distinguishing: i) The regionalization, ii) production system, iii) food losses and wastage, and iv) population growth until 2050. Furthermore, we have found the main local food policies and studies involving both cities, linking them to the current self-sufficiency levels and proposing pathways to increase them. Our results suggest that the foodsheds proposed are suitable to achieve a high degree of potential self-sufficiency when shifting consumers' behavior toward sustainably produced regional products, and reducing food wastes in households and food losses in agriculture. This should be accompanied in parallel by an increase in the diversification of regional crop production managed sustainably. We call for the adoption of the foodshed approach - based on the concept of sustainable city region food systems - so that it can be integrated into the food policies to increase food selfsufficiency sustainably.
C1 [Vicente-Vicente, Jose Luis; Doernberg, Alexandra; Piorr, Annette] Leibniz Ctr Agr Landscape Res ZALF, Eberswalder Str 84, D-15374 Muncheberg, Germany.
   [Zasada, Ingo] Deutsch Zentrum Luft & Raumfahrt, Rosa Luxemburg Str 2, D-10178 Berlin, Germany.
   [Ludlow, David; Bushell, Joanna] Univ West England UWE, Dept Architecture & Built Environm, Frenchay Campus,Coldharbour Lane Bristol, Bristol BS16 1QY, Avon, England.
   [Staszek, Damian] Univ Exeter, Coll Engn Math & Phys Sci, Harrison Bldg,Streatham Campus,N Pk Rd, Exeter EX4 4QF, Devon, England.
   [Hainoun, Ali; Loibl, Wolfgang] Austrian Inst Technol, Giefinggasse 6, A-1210 Vienna, Austria.
C3 Leibniz Association; Leibniz Zentrum fur Agrarlandschaftsforschung
   (ZALF); Helmholtz Association; German Aerospace Centre (DLR); University
   of West England; University of Exeter; Austrian Institute of Technology
   (AIT)
RP Vicente-Vicente, JL (corresponding author), Leibniz Ctr Agr Landscape Res ZALF, Eberswalder Str 84, D-15374 Muncheberg, Germany.
EM vicente@zalf.de
RI Zasada, Ingo/K-5629-2017; Vicente Vicente, Jose Luis/AFL-8798-2022
OI Hainoun, Ali/0000-0003-4897-3752; Vicente Vicente, Jose
   Luis/0000-0003-3554-9354
FU JPI Urban Europe Joint Research Programme SUGI/FWE NEXUS (EU Horizon
   2020) [857160]; BMBF in Germany [033WU003]; FFG in Austria [730254];
   ESRC in the United Kingdom [ES/S002286/1]; ESRC [ES/S002286/1] Funding
   Source: UKRI
FX This work has been carried out as part of the ongoing project SUNEX
   (Formulating sustainable urban FWE strategy by optimizing the synergies
   between food, water and energy systems) in the scope of the Belmont
   Forum and JPI Urban Europe Joint Research Programme SUGI/FWE NEXUS (EU
   Horizon 2020, grant agreement No. 857160) . The project SUNEX has
   received funding from the BMBF in Germany (grant agreement number
   033WU003) , from FFG in Austria (grant agreement number 730254) and from
   ESRC in the United Kingdom (grant agreement number ES/S002286/1) .
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NR 126
TC 32
Z9 35
U1 7
U2 76
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 1462-9011
EI 1873-6416
J9 ENVIRON SCI POLICY
JI Environ. Sci. Policy
PD OCT
PY 2021
VL 124
BP 401
EP 412
DI 10.1016/j.envsci.2021.07.013
EA JUL 2021
PG 12
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA UK2IQ
UT WOS:000691798900003
DA 2025-04-22
ER

PT J
AU Pan, WY
   Yan, MW
   Zhao, ZK
   Gulzar, MA
AF Pan, Wenyan
   Yan, Mengwei
   Zhao, Zhikun
   Gulzar, Muhammad Awais
TI Flood Risk Assessment and Management in Urban Communities: The Case of
   Communities in Wuhan
SO LAND
LA English
DT Article
DE flood risk assessment; resilience theory; AHP and DS evidence theory;
   community governance
ID RESILIENCE; DISASTERS; DELTA
AB The likelihood and uncertainty of severe rains and flooding in the middle basin of the Yangtze River have grown due to global warming and growing urbanization. A flood risk assessment index system is built based on resilience theory to assess community flood risk in a significantly changing environment, with communities serving as the primary body to manage flood risk in cities. The flood risk level of communities in Wuhan from 2011 to 2020 was assessed using the Analytic Hierarchical Process (AHP) and Dempster-Shafer (DS) evidence theory, utilizing an example of the typical Wuhan community. The findings indicate that: (1) The weight of hazard-causing factors is the largest and has the greatest influence on the risk of flooding in the community. (2) When looking at time series, the risk of hazard-causing factors gradually rises, while the risks associated with systemic governance, protective works, and community vulnerability steadily decline. Building resilient communities and enhancing flood risk management capability should be priorities for the government, local communities, and citizens.
C1 [Pan, Wenyan; Yan, Mengwei; Zhao, Zhikun] Wuhan Univ Technol, Sch Safety Sci & Emergency Management, Wuhan 430070, Peoples R China.
   [Gulzar, Muhammad Awais] Zhejiang Univ City Coll, Univ Waikato Joint Inst, Hangzhou 310015, Peoples R China.
   [Gulzar, Muhammad Awais] Univ Waikato, Waikato Management Sch, Hamilton 3240, New Zealand.
C3 Wuhan University of Technology; Hangzhou City University; University of
   Waikato
RP Gulzar, MA (corresponding author), Zhejiang Univ City Coll, Univ Waikato Joint Inst, Hangzhou 310015, Peoples R China.; Gulzar, MA (corresponding author), Univ Waikato, Waikato Management Sch, Hamilton 3240, New Zealand.
EM awais.gulzar@waikato.ac.nz
RI Gulzar, M./D-3451-2019
FU National innovation and entrepreneurship training program for college
   students [312040000212]; Ministry of Education of Humanities and Social
   Science Project of China [21YJC630104]; National Natural Sciences
   Foundation of China [72172112]
FX This work was supported by the National innovation and entrepreneurship
   training program for college students (312040000212); the Ministry of
   Education of Humanities and Social Science Project of China
   (21YJC630104); the National Natural Sciences Foundation of China
   (72172112).
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TC 8
Z9 8
U1 10
U2 61
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD JAN
PY 2023
VL 12
IS 1
AR 112
DI 10.3390/land12010112
PG 14
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 7Z3HV
UT WOS:000915455000001
OA gold
DA 2025-04-22
ER

PT J
AU Dong, Y
   Wang, SY
   Lin, AP
   Wang, F
AF Dong, Ying
   Wang, Shunyi
   Lin, Aiping
   Wang, Fang
TI Vulnerable or resilient? The response of informal settlements to
   COVID-19: The case of urban village communities in Beijing
SO INDOOR AND BUILT ENVIRONMENT
LA English
DT Article
DE COVID-19; informal settlements; urban villages; actor-network theory;
   community resilience
ID ACTOR-NETWORK; CONTEXT
AB The COVID-19 pandemic has brought topics of the impact, response and adaptation of cities in emergencies to the forefront. When compared with formal settlements, the problems faced by informal settlements are more prominent. We propose the framework of an actor-network theory, substantiated by an empirical study of three typical informal settlements in Haidian District, Beijing, in which the process, characteristics and internal mechanism of the spatial reconstruction of the informal settlements in response to COVID-19 are closely scrutinised. Human actors such as local governments, community volunteers, landlords, tenants and non-human actors all participated in the response to COVID-19 according to their goal vision and political logic, with the local government as the core driving force, forming an integrated actor network. Rooted in the special locality of informal settlements, the actor network was both hierarchical and flexible, and its inherent dynamism has proven to be efficient during COVID-19, resulting in social adaptation and spatial reconstruction. This study contributes to the cautiously optimistic estimate of similar urban community resilience in terms of global epidemics and enriches the understanding of their interlacing dynamics from the perspective of spatial reconstruction.
C1 [Dong, Ying; Wang, Shunyi; Lin, Aiping; Wang, Fang] Peking Univ, NSFC DFG Sino German Cooperat Grp Urbanizat & Loc, Beijing 100871, Peoples R China.
   [Dong, Ying; Lin, Aiping; Wang, Fang] Peking Univ, Coll Architecture & Landscape Architecture, Beijing 100871, Peoples R China.
   [Wang, Shunyi] Peking Univ, Coll Urban & Environm Sci, Beijing, Peoples R China.
C3 Peking University; Peking University; Peking University
RP Wang, F (corresponding author), Peking Univ, NSFC DFG Sino German Cooperat Grp Urbanizat & Loc, Beijing 100871, Peoples R China.; Wang, F (corresponding author), Peking Univ, Coll Architecture & Landscape Architecture, Beijing 100871, Peoples R China.
EM vfphd@pku.edu.cn
OI Wang, Shunyi/0000-0002-8227-0375; Dong, Ying/0009-0001-5692-1496
FU Peking University's Humanities and Social Sciences Special Project [34]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: from the
   Peking University's Humanities and Social Sciences Special Project
   (Grant No. 34).
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NR 52
TC 4
Z9 4
U1 2
U2 39
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 1420-326X
EI 1423-0070
J9 INDOOR BUILT ENVIRON
JI Indoor Built Environ.
PD DEC
PY 2023
VL 32
IS 10
SI SI
BP 2050
EP 2063
DI 10.1177/1420326X221125860
EA SEP 2022
PG 14
WC Construction & Building Technology; Engineering, Environmental; Public,
   Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering; Public, Environmental &
   Occupational Health
GA CG5S8
UT WOS:000853960700001
OA Green Published
DA 2025-04-22
ER

PT J
AU Shahmohammad, M
   Salamattalab, MM
   Sohn, W
   Kouhizadeh, M
   Aghamohmmadi, N
AF Shahmohammad, Mohsen
   Salamattalab, Mohammad Milad
   Sohn, Wonmin
   Kouhizadeh, Mahtab
   Aghamohmmadi, Nasrin
TI Opportunities and obstacles of blockchain use in pursuit of sustainable
   development goal 11: A systematic scoping review
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Review
DE Blockchain technology; Sustainable development goals; Smart cities;
   Tokenization; Sustainability; Quantum
ID CONSTRUCTION-INDUSTRY; CITIZEN PARTICIPATION; TECHNOLOGY; MANAGEMENT;
   ARCHITECTURE; CHALLENGES; TRANSPORT; FRAMEWORK; POLLUTION; INTERNET
AB The United Nations Sustainable Development Goal 11 (SDG 11), which focuses on making cities inclusive, safe, resilient, and ecologically viable, is an essential framework for assessing the sustainability of urban areas. Achieving this goal requires complex multi-pronged solutions. Blockchain technology (BCT) is emerging as a potentially powerful tool for addressing the multifaceted challenges of urban sustainability and resilience. In this paper, we provide a critical review and evaluation of BCT as a core contributor to the targets set by SDG 11. Each of the 10 specific targets is critically evaluated herein with regards to how BCT can help achieve or potentially hinder success. BCT can serve to enhance the inclusiveness, safety, and environmental quality of cities. However, its implementation should be approached with caution. BCT could also contribute to a digital divide, raise privacy concerns, be unfairly leveraged by more developed regions, and even exacerbate existing environmental issues. While BCT has shown promise in managing urban crises, it is crucial to exercise restraint to prevent inadvertently aggravating certain challenges. Therefore, informed policymakers must carefully capitalize on the potential of BCT in their efforts to align with SDG 11. Lastly, an overview of the key areas for future research is presented.
C1 [Shahmohammad, Mohsen; Sohn, Wonmin] Michigan State Univ, Sch Planning Design & Construct, 552 W Circle Dr, E Lansing, MI 48824 USA.
   [Salamattalab, Mohammad Milad] Iran Univ Sci & Technol, Sch Civil Engn, Tehran 1684613114, Iran.
   [Kouhizadeh, Mahtab] Univ Rhode Isl, Coll Business, Kingston, RI 02881 USA.
   [Aghamohmmadi, Nasrin] Curtin Univ, Sustainabil Policy CUSP Inst, Sch Design & Built Environm, Bentley 6102, Australia.
C3 Michigan State University; Iran University Science & Technology;
   University of Rhode Island; Curtin University
RP Shahmohammad, M (corresponding author), Michigan State Univ, 552 W Circle Dr, E Lansing, MI 48824 USA.
EM shahmoh1@msu.edu
RI Salamattalab, Mohammad Milad/HKP-1259-2023; Aghamohammadi,
   Nasrin/L-5822-2013; Kouhizadeh, Mahtab/AAV-6880-2020; Aghamohammadi,
   Nasrin/G-9392-2013; Shahmohammad, Mohsen/AEN-8587-2022
OI Aghamohammadi, Nasrin/0000-0002-7063-1671; Salamattalab, Mohammad
   Milad/0009-0006-5625-0983; Shahmohammad, Mohsen/0000-0002-9382-197X
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NR 265
TC 3
Z9 3
U1 7
U2 15
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT 1
PY 2024
VL 112
AR 105620
DI 10.1016/j.scs.2024.105620
EA JUL 2024
PG 23
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA XY7A6
UT WOS:001265294300001
DA 2025-04-22
ER

PT J
AU Wang, XL
   Wang, L
   Zhang, XR
   Fan, F
AF Wang, Xueli
   Wang, Lei
   Zhang, Xuerong
   Fan, Fei
TI The spatiotemporal evolution of COVID-19 in China and its impact on
   urban economic resilience
SO CHINA ECONOMIC REVIEW
LA English
DT Article
DE Economic resilience; COVID-19; Spatial distribution; Panel vector
   autoregressive model; Standard deviation ellipse
ID REGIONAL RESILIENCE; EUROPE; COINTEGRATION; RECESSIONS; CRISIS; HEALTH;
   POLICY; TOPSIS; TESTS
AB The spread of the novel coronavirus (COVID-19) has had a major political, economic, social, and cultural impact on various countries worldwide. Based on economic operation, public opinion, public health, government policies and population inflow in the affected areas, this study measures daily economic resilience during the COVID-19 outbreak in 286 prefecture-level cities in China (from 1st January to 8th February, 2020). Specifically, this study further investigates the economic resilience and the number of COVID-19 cases by analysing the evolutionary trend of their spatial distribution pattern using the standard deviation ellipse (SDE). The impact of COVID-19 on economic resilience is examined using a panel vector autoregressive model. The following are the findings. (1) The economic resilience value decreased throughout the study period, but the cities with high economic resilience showed a trend of spatial diffusion in the late study period. Wuhan's lockdown strategy was benefit to control the spread of COVID-19, and promptly stopped the decline of China's economic resilience. (2) Economic resilience and the number of COVID-19 cases influenced their future trends positively, but this effect gradually decreased over time. During the COVID-19, although the number of confirmed cases significantly influenced China's economic resilience, and the disease's spread was evident, China maintained a high level of economic development resilience. (3) The rise in economic resilience during the pandemic's early stages promoted the number of confirmed cases, but the strength of this relationship gradually declined as the pandemic progressed. Returning to work and other activities may increase the risk of infection. Numerous policies implemented at the outbreak' inception aided in laying the groundwork for economic resilience. Although the outbreak had a detrimental effect on economic resilience in the later stages of the pandemic, a convergent trend was observed at the end of the research period. (4) Using variance decomposition, we discovered that future economic resilience was significantly influenced by itself and by relatively few changes. However, the impact of confirmed cases on economic resilience becomes apparent after the fourth period. This indicates that the number of confirmed cases must be limited during the initial stages. The early support of various sectors in China facilitated the spatial expansion of economically resilient cities. The pandemic has a non-negligible negative impact on economic resilience, but this has been mitigated by Wuhan's timely closure.
C1 [Wang, Xueli; Wang, Lei; Fan, Fei] Wuhan Univ, Inst Cent China Dev, Wuhan, Hubei, Peoples R China.
   [Wang, Xueli] Natl Univ Singapore, Dept Geog, 1 Arts Link, Singapore 117570, Singapore.
   [Zhang, Xuerong] Adm Xian Jiaotong Univ, Sch Publ Policy, Xi'an, Shaanxi, Peoples R China.
   [Fan, Fei] Wuhan Univ, Inst Cent China Dev, 299 Bayi Rd, Wuhan 430072, Peoples R China.
C3 Wuhan University; National University of Singapore; Wuhan University
RP Fan, F (corresponding author), Wuhan Univ, Inst Cent China Dev, 299 Bayi Rd, Wuhan 430072, Peoples R China.
EM ffan@whu.edu.cn
RI Xinyuan, Zhao/KIB-8956-2024; fan, fan/KDO-5068-2024
OI Zhang, Xuerong/0000-0003-1898-6771
FU China Scholarship Council [202006270227]; National Natural Science
   Foundation of China (NSFC) [42071154]; Humanities and Social Science
   Fund of Ministry of Education of the People's Republic of China
   [20YJA790010, 19YJA630079]; COVID-19 Emergency Research Project of Wuhan
   University [2020YJ061]
FX The first author is supported by the China Scholarship Council
   [202006270227]. This work was supported by the National Natural Science
   Foundation of China (NSFC) Funded Projects [42071154], Humanities and
   Social Science Fund of Ministry of Education of the People's Republic of
   China [20YJA790010;19YJA630079], COVID-19 Emergency Research Project of
   Wuhan University [2020YJ061].
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NR 84
TC 81
Z9 84
U1 50
U2 483
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 1043-951X
EI 1873-7781
J9 CHINA ECON REV
JI China Econ. Rev.
PD AUG
PY 2022
VL 74
AR 101806
DI 10.1016/j.chieco.2022.101806
EA MAY 2022
PG 21
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA 1X8SW
UT WOS:000807721300003
PM 35601194
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Brown, R
   Ashley, R
   Farrelly, M
AF Brown, Rebekah
   Ashley, Richard
   Farrelly, Megan
TI Political and Professional Agency Entrapment: An Agenda for Urban Water
   Research
SO WATER RESOURCES MANAGEMENT
LA English
DT Article
DE Adaptive capacity; Path dependency; Socio-technical; Urban water regime;
   Technological lock-in
ID PATH DEPENDENCE; RESOURCES MANAGEMENT; LOCK-IN; SYSTEMS; GOVERNANCE;
   CITIES; ADAPTATION; RESILIENCE; TRANSITION; PRINCIPLES
AB The many societal benefits provided by traditional, centralised urban water servicing models are being re-examined following recent extreme weather events, climate uncertainty and other variable socio-technical trends. Total water cycle management offers a more flexible and resilient approach to urban water management, however, transformative change in the sector is difficult. A growing number of scholars have identified that the urban water sector is locked-in to the current large-scale, centralised infrastructure model and suggest the sector is unable to accommodate new technologies and management approaches beyond niche projects. Based on extensive socio-institutional research and example cases from Australian and United Kingdom experiences managing urban water under pressures such as modern environmentalism, prolonged water scarcity and sewerage overflows, this paper provides a commentary on common factors exhibited in both countries related to technological path dependency. Three key factors promoting this pathway: political risk, professional agency fear and a lack of a hybrid governance approach are discussed and a future scholarly research agenda is presented.
C1 [Brown, Rebekah; Farrelly, Megan] Monash Univ, Sch Geog & Environm Sci, Ctr Water Sensit Cities, Clayton, Vic, Australia.
   [Ashley, Richard] Univ Sheffield, Pennine Water Grp, Sheffield, S Yorkshire, England.
C3 Monash University; Cooperative Research Centre for Water Sensitive
   Cities (CRCWSC); University of Sheffield
RP Farrelly, M (corresponding author), Monash Univ, Sch Geog & Environm Sci, Ctr Water Sensit Cities, Clayton, Vic, Australia.
EM megan.farrelly@monash.edu
RI Farrelly, Megan/G-8128-2011
OI Farrelly, Megan/0000-0002-0453-059X; Brown, Rebekah/0000-0002-8689-7562
FU EPSRC [EP/I029346/1] Funding Source: UKRI
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NR 82
TC 94
Z9 104
U1 1
U2 65
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0920-4741
EI 1573-1650
J9 WATER RESOUR MANAG
JI Water Resour. Manag.
PD DEC
PY 2011
VL 25
IS 15
SI SI
BP 4037
EP 4050
DI 10.1007/s11269-011-9886-y
PG 14
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Water Resources
GA 858XU
UT WOS:000297837400006
DA 2025-04-22
ER

PT J
AU Fleischman, RB
   Seeber, PEK
AF Fleischman, R. B.
   Seeber, P. E. Kim
TI New construction for resilient cities: The argument for sustainable low
   damage precast/prestressed concrete building structures in the 21st
   century
SO SCIENTIA IRANICA
LA English
DT Review
DE Precast-prestressed concrete structures; Resilient construction;
   Sustainable construction; seismic-resistant structures; Low-damage
   systems
ID PRECAST; PERFORMANCE; EARTHQUAKE
AB Thoughtfully chosen, properly designed new construction can significantly improve both the resilience to natural and man-induced disasters and the long-term sustain ability of modern urban environments in the 21st century. In particular, precast/prestressed concrete construction has the ability to provide low-damage buildings at similar costs to traditional construction while also providing a more sustainable construction form, in terms of higher energy efficiency and lower embodied energy. In this paper, low-damage sustainable precast concrete seismic systems are described. Prestressing leads to less material required and hence less embodied energy; piece erection leads to cleaner, quieter construction sites; and insulation and architectural finish can be integrated directly into the precast unit, increasing energy efficiency, and consolidating construction operations. With respect to resilience, earthquake damage is avoided by taking advantage of the inherent jointed nature of precast concrete construction, thereby promoting opening of gaps between precast units rather than cracking of the concrete itself, and using unbonded post-tensioning concepts to restore the structure to its original position. The potential use of precast concrete in developing countries, where no precast industry exists, is considered in the context of global sustainability. The performance of precast concrete in recent earthquakes is presented as an example of a resilient construction. (C) 2016 Sharif University of Technology. All rights reserved.
C1 [Fleischman, R. B.] Univ Arizona, Dept Civil Engn & Engn Mech, Tucson, AZ 85721 USA.
   [Seeber, P. E. Kim] Seaboard Serv Virginia Inc, Taylors, SC USA.
C3 University of Arizona
RP Fleischman, RB (corresponding author), Univ Arizona, Dept Civil Engn & Engn Mech, Tucson, AZ 85721 USA.
EM rfleisch.@email.arizona.edu; kseeber@seaboardservices.com
FU Precast/Prestressed Concrete Institute (PCI)
FX The post-earthquake reconnaissance trip to Christchurch New Zealand was
   supported by funds from the Precast/Prestressed Concrete Institute
   (PCI). The participation and contributions of PCI reconnaissance team
   members, Stefano Pampanin, Jose Restrepo, Joe Maffei, and Franz Zahn, in
   addition to the co-authors are acknowledged. Any findings or conclusions
   do not necessarily reflect the views of PCI.
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NR 58
TC 7
Z9 7
U1 8
U2 91
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 1026-3098
J9 SCI IRAN
JI Sci. Iran.
PD AUG
PY 2016
VL 23
IS 4
SI SI
BP 1578
EP 1593
DI 10.24200/sci.2016.2230
PG 16
WC Engineering, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA DV6AE
UT WOS:000383011000003
OA gold
DA 2025-04-22
ER

PT J
AU Ding, W
   Wu, JD
AF Ding, Wei
   Wu, Jidong
TI Interregional economic impacts of an extreme storm flood scenario
   considering transportation interruption: A case study of Shanghai, China
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Economic impact modeling; Transportation disruption; Resilience
   strategies; Interregional ripple effects; Extreme flooding scenario
ID INPUT-OUTPUT MODEL; CLIMATE-CHANGE; PORT CITIES; DAMAGE; NETWORK; RISK;
   LOSSES; DISRUPTION; SHUTDOWN; COST
AB As engines of economic growth, coastal cities are vulnerable to future extreme floods with climate change and rapid urbanization. Flood damage and flood-induced transportation interruptions inevitably affect local economic activities and generate interregional ripple effects due to the networked economy. We incorporate the impacts of transport disruptions into the interregional input-output (IRIO) model and evaluate the combined economic effects of transport disruptions and supply chain bottlenecks on the mainland of China due to a 1,000year return period storm flood scenario in Shanghai. Except for production bottlenecks, the temporary rerouting of freight flows, transport delay and transport cost change are modeled, and important adaptive behaviors such as supplier substitution and inventories are also considered. Our results show that East China may suffer more than 53.1% of China's indirect economic losses (IELs), while Shanghai's IELs account for 28%. National IELs are very sensitive to the duration of transport delay, i.e., China's IELs increase by 80.8% if the delay time increases from 3 to 14 days. These findings highlight the importance of building a resilient transportation system and strengthening the resilience of regional supply chains and have significant implications for promoting urban resilience through various resilience strategies.
C1 [Ding, Wei; Wu, Jidong] Beijing Normal Univ, State Key Lab Earth Surface Proc & Resource Ecol, Beijing 100875, Peoples R China.
   [Wu, Jidong] Beijing Normal Univ, Sch Natl Safety & Emergency Management, Beijing 100875, Peoples R China.
   [Wu, Jidong] Peoples Govt Qinghai Prov, Acad Plateau Sci & Sustainabil, Xining 810016, Peoples R China.
   [Wu, Jidong] Beijing Normal Univ, Xining 810016, Peoples R China.
C3 Beijing Normal University; Beijing Normal University; Beijing Normal
   University
RP Wu, JD (corresponding author), Beijing Normal Univ, State Key Lab Earth Surface Proc & Resource Ecol, Beijing 100875, Peoples R China.; Wu, JD (corresponding author), Beijing Normal Univ, Sch Natl Safety & Emergency Management, Beijing 100875, Peoples R China.; Wu, JD (corresponding author), Peoples Govt Qinghai Prov, Acad Plateau Sci & Sustainabil, Xining 810016, Peoples R China.; Wu, JD (corresponding author), Beijing Normal Univ, Xining 810016, Peoples R China.
EM wujidong@bnu.edu.cn
RI Ding, Wei/AEQ-3213-2022; Wu, Jidong/A-4500-2017
OI Ding, Wei/0000-0001-9866-8073; Wu, Jidong/0000-0001-8208-8373
FU National Natural Science Founda-tion of China;  [42077437];  [41571492]
FX Acknowledgments This research was funded by the National Natural Science
   Founda-tion of China under grant numbers 42077437 and 41571492.
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NR 69
TC 19
Z9 20
U1 27
U2 105
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JAN
PY 2023
VL 88
AR 104296
DI 10.1016/j.scs.2022.104296
EA NOV 2022
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 7V9QF
UT WOS:000913146900006
DA 2025-04-22
ER

PT J
AU Zimmerman, R
   Zhu, QY
   Dimitri, C
AF Zimmerman, Rae
   Zhu, Quanyan
   Dimitri, Carolyn
TI A network framework for dynamic models of urban food, energy and water
   systems (FEWS)
SO ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY
LA English
DT Article
DE Interdependent infrastructure; urban food systems; energy; water;
   transportation
AB The urban food system addressed here centers on urban food processing, distribution and consumption (including food packaging and waste disposal) and as such addresses how food moves from processing and distribution centers to points of consumption and ultimately waste disposal within cities. The Food-Energy-Water Systems (FEWS) Nexus extends to and through urban boundaries. Energy and water resource use are vital along these routes and are interdependent with one another and with food processing in ways that differ from those in agricultural production systems outside urban boundaries. This paper addresses how the urban food system affects the intensity of energy and water resource use and how these interdependencies can be altered by abrupt changes or extreme events. The urban food system is significantly affected by resource disruptions such as power outages, water contamination or disruption due to droughts or distribution line breakages. The system must be able to be resilient to these changes to be sustainable. FEWS flows and usage concepts presented in this paper are based on system characteristics analogous to one of the largest food distribution centers in the U.S. and the largest city, the Hunts Point Distribution Center in New York City. The Center handles a large share of the perishable food supply, involves numerous utilities that support one another, and a wide range of products, and thus provides a framework for evaluating urban FEWS relationships. In addition to direct energy for refrigeration, lighting, heating and cooling, indirect energy resources consumed by transportation systems that deliver food to Hunts Point exemplify interdependencies. Network models are used to describe scenarios for the interrelationships in the urban food system, including changes in the mix of resources due to conservation and other resource decisions as well as disruption of those resources in an extreme event. Selected food consumption and production practices are also considered. The modeling framework provides a generalizable network model that captures extreme weather event effects and enables the quantitative static and resilience analysis and planning. The extreme weather event component uses both static and dynamic formulations for resilience to portray changes in network topology and network changes over time respectively. The nodes of the network capture urban FEWS resources and the linkages between the nodes capture network characteristics. The network models that correspond to different scenarios are integrated to understand the interdependencies from processing through resource consumption as a basis to identify the patterns of interdependencies that lead to cascading failures, pinpoint nodes and links that are the weakest components of the network, and support resilience planning for the disruptive events. The analysis and design of the network will inform the planning and recovery policies to enhance the resiliency of the FEW critical infrastructures of New York City and potentially transferrable to other large urban areas and prepare them for future anticipated and unanticipated extreme events. The modeling used for the scenarios is considered generalizable to other areas and scalable to urban food systems of different sizes and configurations. (C) 2017 American Institute of Chemical Engineers
C1 [Zimmerman, Rae] NYU, Wagner Sch, 295 Lafayette St,2nd Floor, New York, NY 10012 USA.
   [Zhu, Quanyan] NYU, Tandon Sch Engn, New York, NY USA.
   [Dimitri, Carolyn] NYU, Steinhardt Sch, Dept Nutr & Food Studies, New York, NY USA.
C3 New York University; New York University; New York University Tandon
   School of Engineering; New York University
RP Zimmerman, R (corresponding author), NYU, Wagner Sch, 295 Lafayette St,2nd Floor, New York, NY 10012 USA.
EM rae.zimmerman@nyu.edu
FU National Science Foundation [1441140, 1541164, 1444755]; Direct For
   Social, Behav & Economic Scie; Divn Of Social and Economic Sciences
   [1541164] Funding Source: National Science Foundation; Division Of
   Behavioral and Cognitive Sci; Direct For Social, Behav & Economic Scie
   [1444755] Funding Source: National Science Foundation; Emerging
   Frontiers & Multidisciplinary Activities; Directorate For Engineering
   [1441140] Funding Source: National Science Foundation
FX The authors acknowledge the following grants for support of portions of
   this article: "Resilient Interdependent Infrastructure Processes and
   Systems (RIPS) Type 1: A Meta-Network System Framework for Resilient
   Analysis and Design of Modern Interdependent Critical Infrastructures,"
   funded by the National Science Foundation (1441140); "Critical Resilient
   Interdependent Infrastructure Systems and Processes (CRISP) Type 1:
   Reductionist and Integrative Approaches to Improve the Resiliency of
   Multi-Scale Interdependent Critical Infrastructure," funded by the
   National Science Foundation (1541164); and "Urban Resilience to Extreme
   Weather Related Events Sustainability Research Network (UREx SRN),"
   funded by the National Science Foundation (1444755). The views expressed
   in this presentation are the opinions of the author and not necessarily
   those of the NSF.
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NR 38
TC 23
Z9 28
U1 7
U2 87
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1944-7442
EI 1944-7450
J9 ENVIRON PROG SUSTAIN
JI Environ. Prog. Sustain. Energy
PD JAN
PY 2018
VL 37
IS 1
BP 122
EP 131
DI 10.1002/ep.12699
PG 10
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Engineering, Chemical; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA FS6LF
UT WOS:000419908200012
DA 2025-04-22
ER

PT J
AU Wang, HC
AF Wang, Hsi-Chuan
TI Resilient development impacts could be assessed: A case in Accra, Ghana
SO CITIES
LA English
DT Article
DE Global South; Resilience; Assessment framework; Case study; Mixed
   methods; International development
ID CLIMATE-CHANGE
AB Urban projects featured with resilient development have become popular, whereas limited studies have been invested in evaluating the impacts of these projects. A debate exists, asking if these impacts could ever be captured and verified. This communication paper argues that project impacts could be demonstrated, by specifying (1) the relatable literature, measurements, and rational assessment criteria, (2) a confined assessment timeframe, and (3) available scientific data sources. The paper derives the assessment experiences of the Greater Accra Resilient and Integrated Development Project (GARID), supported by the World Bank, in view of the above argument. Through a mixed-methods approach with two waves of investigation, the assessment experiences successfully capture the pre-intervention indicators that GARID may lead. The assessment experiences also provide in-time recommendations toward GARID's implementation, advancing more inclusive stakeholder engagement. The fruitful results confirm the paper's argument. Meanwhile, having third parties to conduct impact assessments could uncover non-supervised project outcomes and challenges that typical official reports would not investigate. Encouraging commitments to impact assessments of international development projects like GARID would help southern cities move toward inclusive prosperity.
C1 [Wang, Hsi-Chuan] Univ Kansas, Sch Publ Affairs & Adm, Lawrence, KS USA.
   [Wang, Hsi-Chuan] Wescoe Hall, Room 4060,1445 Jayhawk Blvd, Lawrence, KS 66045 USA.
C3 University of Kansas
RP Wang, HC (corresponding author), Wescoe Hall, Room 4060,1445 Jayhawk Blvd, Lawrence, KS 66045 USA.
EM andrewwang@wustl.edu
OI Wang, Hsi-Chuan/0000-0002-5894-0690
FU International Growth Centre [GHA-22068]
FX The International Growth Centre supports the author (GHA-22068) for this
   article's research and publication.
CR Accra Metropolitan Assembly, 2019, Accra resilience strategy
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NR 17
TC 0
Z9 0
U1 2
U2 5
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD MAR
PY 2024
VL 146
AR 104762
DI 10.1016/j.cities.2023.104762
EA JAN 2024
PG 5
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA GS6A2
UT WOS:001154688800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ortega, AD
   Rodríguez, JP
   Bharati, L
AF Ortega, A. D.
   Rodriguez, J. P.
   Bharati, L.
TI Building flood-resilient cities by promoting SUDS adoption: A
   multi-sector analysis of barriers and benefits in Bogot?, Colombia
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Climate change; Flood resilience; Inductive-deductive approach;
   Interdisciplinary approach; Sustainable urban water management; Thematic
   analysis
ID URBAN WATER MANAGEMENT; LOW IMPACT DEVELOPMENT; GREEN INFRASTRUCTURE;
   RISK-MANAGEMENT; DRAINAGE SYSTEM; STORMWATER MANAGEMENT; CLIMATE-CHANGE;
   GOVERNANCE; FRAMEWORK; POLICY
AB In light of rapid urbanization and climate change, managing urban flood risk by combining tradi-tional pipe-bound infrastructure with sustainable urban drainage systems (SUDS) has recently gained significant attention. SUDS provide a wide range of social, economic, and environmental advantages; nonetheless, there are perceptions, barriers, and benefits whose understanding is lacking, especially in the context of developing countries. To fill these gaps, a case study was con-ducted in the city of Bogota, Colombia's capital city, systematically investigating the visions of four key actors, i.e., the public sector, urban developers, a private non-profit organization, and community members of a flood-prone area. Thematic analysis supported by an induc-tive-deductive coding approach was employed to analyze data collected from in-depth semi -structured interviews and questionnaires. After identifying and categorizing 39 barriers in Bo-gota, technical and institutional/organizational barriers such as "operation and maintenance" and "unclear institutional responsibilities" prevailed over financial ones. The assessment of bene-fits yielded a total of 34 results and demonstrated the wide scope of SUDS strategies, ranging from "use of harvested water in secondary uses" to "promotion of environmental awareness" and "corporate image enhancement." Furthermore, there are direct relationships between barriers, benefits, and actors, strengthened by particular objectives, motivations, and needs. The findings of this study highlight the significance of interdisciplinary approaches to achieve comprehensive sustainable urban water planning and improved flood risk management. Further work on benefits quantification and participatory spatial-hydraulic modeling could foster SUDS interest, broaden-ing the debate beyond the technical realm.
C1 [Ortega, A. D.; Bharati, L.] Univ Bonn, Dept Ecol & Nat Resources Management, ZEF, Genscherallee 3, D-53113 Bonn, Germany.
   [Rodriguez, J. P.] Univ Andes, Dept Civil & Environm Engn, Bogota, Colombia.
   [Bharati, L.] UNESCO, German Fed Inst Hydrol, Int Ctr Water Resources & Global Change, Category Ctr 2, Koblenz, Germany.
C3 University of Bonn; Universidad de los Andes (Colombia)
RP Ortega, AD (corresponding author), Univ Bonn, Dept Ecol & Nat Resources Management, ZEF, Genscherallee 3, D-53113 Bonn, Germany.
EM abby.os@uni-bonn.de
RI Rodriguez Sanchez, Juan Pablo/A-2872-2013
OI Rodriguez Sanchez, Juan Pablo/0000-0001-5647-4385; Ortega Sandoval, Abby
   Daniela/0000-0001-9879-7270
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NR 126
TC 13
Z9 13
U1 5
U2 20
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD APR 1
PY 2023
VL 88
AR 103621
DI 10.1016/j.ijdrr.2023.103621
EA MAR 2023
PG 20
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 9X1GR
UT WOS:000949522700001
OA Green Submitted, hybrid
DA 2025-04-22
ER

PT J
AU Yuan, FX
   Liu, R
   Mao, L
   Li, M
AF Yuan, Faxi
   Liu, Rui
   Mao, Liang
   Li, Min
TI Internet of people enabled framework for evaluating performance loss and
   resilience of urban critical infrastructures
SO SAFETY SCIENCE
LA English
DT Article
DE Internet of People (IoP); Natural disasters; Road network analysis;
   Performance loss; Resilience; Social media
ID SEISMIC RESILIENCE; DATA-COLLECTION; SOCIAL MEDIA; NETWORKS; METRICS
AB Critical infrastructures (CIs) such as road networks play a critical role in transporting affected people to hospitals and shelters during disasters. Timely evaluation of road networks' performance loss and resilience enables emergency management agencies (EMAs) to make quick and optimized decisions on resource allocation to critical road segments and bridges. However, real-time monitoring of road network conditions has been recognized as a challenge during major natural disasters because the affected regions are often inaccessible. This research introduces the Internet of People (IoP) enabled framework to assess road network's performance loss during disasters and proposes a performance loss rate to evaluate the road network resilience. The framework is illustrated by a case study of Hurricane Florence in Wilmington, North Caroline, USA. Through semantic analysis of road-related social media data, this study identifies the affected roads during the hurricane. To further evaluate the road network resilience, this research utilizes road network analysis to generate a service zone for each main hospital before and after the hurricane. The population-weighted travel time in each service zone are compared before and after the hurricane to indicate the degree of performance loss. The findings show that our IoP enabled framework can effectively support CI protection for building smart and resilient city environments.
C1 [Yuan, Faxi; Liu, Rui] Univ Florida, ME Rinker Sr Sch Construct Management, Gainesville, FL 32611 USA.
   [Mao, Liang] Univ Florida, Dept Geog, Gainesville, FL 32611 USA.
   [Li, Min] Western Carolina Univ, Dept Anthropol & Sociol, Cullowhee, NC 28723 USA.
C3 State University System of Florida; University of Florida; State
   University System of Florida; University of Florida; University of North
   Carolina; Western Carolina University
RP Yuan, FX; Liu, R (corresponding author), Univ Florida, ME Rinker Sr Sch Construct Management, Gainesville, FL 32611 USA.
EM faxi.yuan@ufl.edu; liurui@ufl.edu; liangmao@ufl.edu; mli@wcu.edu
RI Yuan, Faxi/J-3343-2019
OI Yuan, Faxi/0000-0003-1275-8233; Liu, Rui/0000-0002-6213-1642; Mao,
   Liang/0000-0002-7363-0308
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NR 62
TC 30
Z9 34
U1 12
U2 114
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0925-7535
EI 1879-1042
J9 SAFETY SCI
JI Saf. Sci.
PD FEB
PY 2021
VL 134
AR 105079
DI 10.1016/j.ssci.2020.105079
PG 10
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Operations Research & Management Science
GA PG9QZ
UT WOS:000600062200032
DA 2025-04-22
ER

PT J
AU Xiao, J
   Yuizono, T
   Li, RX
AF Xiao, Jing
   Yuizono, Takaya
   Li, Ruixuan
TI Synergistic Landscape Design Strategies to Renew Thermal Environment: A
   Case Study of a Cfa-Climate Urban Community in Central Komatsu City,
   Japan
SO SUSTAINABILITY
LA English
DT Article
DE thermal environment renewal; urban community; ENVI-met V5; urban
   microclimate; synergistic landscape design strategies (SLDS); humid
   subtropical climate (Cfa)
ID VERTICAL GREENING SYSTEMS; HEAT-ISLAND MITIGATION; RESIDENTIAL DISTRICT;
   ENERGY EFFICIENCY; COMFORT; ROOFS; PERFORMANCE; BUILDINGS; FACADE; WALLS
AB An effective community landscape design consistently impacts thermally comfortable outdoor conditions and climate adaptation. Therefore, constructing sustainable communities requires a resilience assessment of existing built environments for optimal design mechanisms, especially the renewal of thermally resilient communities in densely populated cities. However, the current community only involves green space design and lacks synergistic landscape design for renewing the central community. The main contribution of this study is that it reveals a three-level optimization method to validate the Synergistic Landscape Design Strategies (SLDS) (i.e., planting, green building envelope, water body, and urban trees) for renewing urban communities. A typical Japanese community in central Komatsu City was selected to illustrate the simulation-based design strategies. The microclimate model ENVI-met reproduces communities involving 38 case implementations to evaluate the physiologically equivalent temperature (PET) and microclimate condition as a measure of the thermal environments in humid subtropical climates. The simulation results indicated that the single-family buildings and real estate flats were adapted to the summer thermal mitigation strategy of water bodies and green roofs (W). In small-scale and large-scale models, the mean PET was lowered by 1.4-5.0 degrees C (0.9-2.3 degrees C), and the cooling effect reduced mean air temperature by 0.4-2.3 degrees C (0.5-0.8 degrees C) and improved humidification by 3.7-15.2% (3.7-5.3%). The successful SLDS provides precise alternatives for realizing Sustainable Development Goals (SDGs) in the renewal of urban communities.
C1 [Xiao, Jing] Zhejiang Normal Univ, Sch Design & Innovat, Jinhua 321004, Peoples R China.
   [Yuizono, Takaya] Japan Adv Inst Sci & Technol, Sch Adv Sci & Technol, 1-1 Asahidai, Nomi, Ishikawa 9231292, Japan.
   [Li, Ruixuan] Dalian Polytech Univ, Sch Art & Design, Dalian 116034, Peoples R China.
C3 Zhejiang Normal University; Japan Advanced Institute of Science &
   Technology (JAIST); Dalian Polytechnic University
RP Xiao, J (corresponding author), Zhejiang Normal Univ, Sch Design & Innovat, Jinhua 321004, Peoples R China.
EM jingxiao@zjnu.edu.cn; yuizono@jaist.ac.jp; lirx@dlpu.edu.cn
RI Li, Ruixuan/HIR-8367-2022
OI Yuizono, Takaya/0000-0002-9576-362X
FX A very special thanks go to Zhao for his help in investigating the
   building environment in the study area. The authors also appreciate the
   anonymous reviewers who provided invaluable comments for this paper.
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NR 72
TC 3
Z9 3
U1 18
U2 30
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2024
VL 16
IS 13
AR 5582
DI 10.3390/su16135582
PG 28
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA YO0C5
UT WOS:001269300600001
OA gold
DA 2025-04-22
ER

PT J
AU Lopes, HS
   Silva, PF
   Pinto, BG
   Cuevas, PD
   Ribeiro, V
   Remoaldo, P
AF Lopes, Helder S.
   Silva, Pedro F.
   Pinto, B. G.
   Cuevas, Pilar Diaz
   Ribeiro, V.
   Remoaldo, P.
TI Urban heat stress in the context of socioeconomic and environmental
   challenges: Heat risk analysis and online surveys in northwestern
   Portugal
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban heat stress; Heatwave protection; Vulnerable populations;
   Socioeconomic factors; Perceived impacts
ID CLIMATE-CHANGE; VEGETATION COVER; PUBLIC-HEALTH; EXTREME HEAT;
   VULNERABILITY; ADAPTATION; ISLANDS; WAVE; MITIGATION; IMPACTS
AB The issue of Urban Heat Stress (UHS) is becoming increasingly critical, with the rising frequency and intensity of heatwaves serving to exacerbate the problem. It is of the utmost importance to gain insight into the preparedness levels of urban populations if we are to foster resilient cities. However, research on the perceived impacts of heat among city dwellers remains limited, particularly studies that integrate both objective and subjective assessments. To address this gap in the literature, a survey was conducted in Porto and Braga, two major cities in northwestern Portugal, after categorising the risk levels associated with extreme heat. The objective of the survey was to identify personal characteristics associated with knowledge about heatwave protection and preferred communication channels for receiving related information. The online household survey yielded 613 responses, with 365 from Braga and 248 from Porto. It focused on how different socioeconomic groups are impacted by heat stress and the relationship between perceived heat impacts and indicators of exposure and vulnerability across the different groups. The findings indicated that demographic groups typically perceived as vulnerable exhibited the highest levels of exposure and susceptibility to heat stress. The study indicates that respondents identified health authorities and civil protection agents as principal sources of information during extreme heat events. This emphasises the significance of targeted communication strategies aimed at vulnerable groups through these channels to enhance their comprehension of heatwave protection measures. These insights can facilitate the enhancement of urban resilience and the reduction of the impact of UHS, underscoring the necessity for policymakers to adopt more refined strategies in managing heat stress in urban environments.
C1 [Lopes, Helder S.] Univ Minho, IN2PAST Associate Lab Res & Innovat Heritage Arts, Lab2PT Landscape Heritage & Terr Lab, Dept Geog,ICS Inst Social Sci, Guimaraes, Portugal.
   [Lopes, Helder S.] Higher Sch Educ Paula Frassinetti, Porto, Portugal.
   [Silva, Pedro F.; Pinto, B. G.] Univ Minho, Inst Social Sci, Dept Geog, Guimaraes, Portugal.
   [Cuevas, Pilar Diaz] Univ Seville, Dept Phys Geog & Reg Anal, Seville, Spain.
   [Ribeiro, V.] Univ Minho, Dept Geog, IN2PAST Associate Lab Res & Innovat Heritage Arts, Landscape Heritage & Terr Lab Lab2PT,ICS, Guimaraes, Portugal.
   [Remoaldo, P.] Univ Minho, Dept Geog, Lab2PT Landscape Heritage & Terr Lab, ICS, Guimaraes, Portugal.
C3 Universidade do Minho; Universidade do Minho; University of Sevilla;
   Universidade do Minho; Universidade do Minho
RP Lopes, HS (corresponding author), Univ Minho, IN2PAST Associate Lab Res & Innovat Heritage Arts, Lab2PT Landscape Heritage & Terr Lab, Dept Geog,ICS Inst Social Sci, Guimaraes, Portugal.
EM helderlopes@geografia.uminho.pt; franciscosilva258@gmail.com;
   beatrizgp@outlook.pt; pilard@us.es; vitor.geografia@gmail.com;
   premoaldo@uminho.pt
RI DIAZ CUEVAS, MARIA DEL PILAR/K-2692-2014
OI DIAZ CUEVAS, MARIA DEL PILAR/0000-0003-0846-9930; SILVA,
   PEDRO/0009-0001-3518-2241
FU Multiannual Funding of the Laboratory of Landscapes, Heritage and
   Territory (Lab2PT) by national funds (PIDDAC) through FCT/Q3 MCTES
FX This publication was supported by the Multiannual Funding of the
   Laboratory of Landscapes, Heritage and Territory (Lab2PT) , financed by
   national funds (PIDDAC) through FCT/Q3 MCTES.
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NR 108
TC 0
Z9 0
U1 1
U2 1
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD APR 1
PY 2025
VL 120
AR 105384
DI 10.1016/j.ijdrr.2025.105384
EA MAR 2025
PG 21
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 0IJ7V
UT WOS:001448101800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Wang, Y
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TI Impact of Rapid Urbanization on Vulnerability of Land System from
   Complex Networks View: A Methodological Approach
SO COMPLEXITY
LA English
DT Article
ID DRIVING FORCES; PATTERNS; CHINA; WUHAN; URBAN; RESILIENCE; EMERGENCE;
   SCIENCE; MODELS
AB Rapid urbanization is responsible for the increased vulnerability of land systems and the loss of many crucial ecosystem services. Land systems are typical complex systems comprised of different land use types which interact with each other and respond to external environment processes (such as urbanization), resulting in dynamics in land systems. This work develops a methodology approach by integrating complex networks and disruptive scenarios and applies it to a case study area (Wuhan City in China) to explore the effects of urbanization on land system structural vulnerability. The land system network topologies of Wuhan City during five time periods from 1990 to 2015 are extracted. Our results reveal that (1) the urban land expands at a higher speed than the urban population in Wuhan City; (2) the period of 2005-2010 has witnessed more land area conversions from ecological lands to urban land than other periods; (3) the land system is more vulnerable to intentional attacks on nodes with higher integrated node centrality and larger land area, such as paddy, dryland, and lake; and (4) the network efficiency of the land system would decline sharply if the area shrinkage of paddy, dryland, and lake is larger than 30%, 50%, and 20%, respectively. The results provide some insights into building a resilient urban land system, such as increasing the efficiency of existing urban land and controlling the shrinkage rate of important land use types. This study contributes to existing literature on complex networks by expanding its application in land systems, which highlight the potential of complex networks to capture the complexity, dynamics, heterogeneity, and emergent phenomena in land systems.
C1 [Wang, Ying; Li, Jiangfeng] China Univ Geosci, Sch Publ Adm, Wuhan 430074, Hubei, Peoples R China.
   [Li, Xiangmei; Huang, Zhengdong] Hubei Univ Econ, Sch Econ Environm & Resources, Wuhan 430205, Hubei, Peoples R China.
   [Xiao, Renbin] Huazhong Univ Sci & Technol, Sch Automat, Wuhan 430074, Hubei, Peoples R China.
C3 China University of Geosciences; Hubei University of Economics; Huazhong
   University of Science & Technology
RP Li, XM (corresponding author), Hubei Univ Econ, Sch Econ Environm & Resources, Wuhan 430205, Hubei, Peoples R China.; Xiao, RB (corresponding author), Huazhong Univ Sci & Technol, Sch Automat, Wuhan 430074, Hubei, Peoples R China.
EM xmlihust@aliyun.com; rbxiao@hust.edu.cn
RI wang, ying/ABG-8215-2020; Li, Jiangfeng/N-5695-2014; Xiao,
   Renbin/N-5136-2018
OI Xiao, Renbin/0000-0003-0951-2734; wang, ying/0000-0001-5868-5661
FU National Natural Science Foundation of China [41501183]; China
   Scholarship Council (CSC)
FX This research was supported by the National Natural Science Foundation
   of China (41501183) and the China Scholarship Council (CSC). The land
   use dataset is provided by Data Center for Resources and Environmental
   Sciences, Chinese Academy of Sciences (RESDC) (http://www.resdc.cn).
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NR 55
TC 42
Z9 42
U1 0
U2 24
PU WILEY-HINDAWI
PI LONDON
PA ADAM HOUSE, 3RD FL, 1 FITZROY SQ, LONDON, WIT 5HE, ENGLAND
SN 1076-2787
EI 1099-0526
J9 COMPLEXITY
JI Complexity
PY 2018
AR 8561675
DI 10.1155/2018/8561675
PG 18
WC Mathematics, Interdisciplinary Applications; Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Mathematics; Science & Technology - Other Topics
GA GF5SG
UT WOS:000432027400001
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Shekhar, H
   Schmidt, AJ
   Wehling, HW
AF Shekhar, Himanshu
   Schmidt, Alexander J.
   Wehling, Hans-Werner
TI Exploring wellbeing in human settlements - A spatial planning
   perspective
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Wellbeing; Urban planning; Cities; Quality of life; Sustainability;
   Happiness
ID INCOME INEQUALITY; CLIMATE-CHANGE; IDENTITY; HAPPINESS; LIFE;
   ENVIRONMENT
AB This paper explores wellbeing as a central concept in the larger conceptual framework of human settlement planning that combines ongoing debates related to climate change, sustainability, resilience, earth jurisprudence and builds upon similar recent research. As more and more people are living in larger settlements, there is growing a curiosity as well as need to understand what wellbeing is and how it can be understood from the spatial planning perspective. Prominent contemporary global policy documents including the New Urban Agenda (NUA) advocate cities to foster people's wellbeing by incorporating it in planning practices. However, there is a dearth of research that explores wellbeing in human settlements from the spatial planning perspective. This paper presents an interdisciplinary understandings of wellbeing and proposes the wheel of wellbeing in human settlements which consists of four pillars, participation and engagement, access, identity and safety. It also discusses the linkage between wellbeing and sustainable development and argues that by focusing on the wellbeing of people, settlements can become more resilient and sustainable. It further highlights prominent spatial features of wellbeing and the increasing attention that wellbeing is getting in policy formulations. Finally it concludes that even though a universal definition of wellbeing remains arguable, understanding wellbeing in human settlements as a spectrum of attributes and aspects that depend upon their context, can assist in formulating policies that enhance the wellbeing of people and make settlements more sustainable and resilient.
C1 [Shekhar, Himanshu; Schmidt, Alexander J.] Univ Duisburg Essen, Inst City Planning & Urban Design ISS, Univ Str 5, D-45141 Essen, Germany.
   [Wehling, Hans-Werner] Univ Duisburg Essen, Fak Geisteswissensch, Schutzenbahn 70, D-45147 Essen, Germany.
   [Shekhar, Himanshu] UNU, EHS, Inst Environm & Human Secur, Pl Vereinten Nationen 1,UN Campus, D-53113 Bonn, Germany.
C3 University of Duisburg Essen; University of Duisburg Essen
RP Shekhar, H (corresponding author), Univ Duisburg Essen, Inst City Planning & Urban Design ISS, Univ Str 5, D-45141 Essen, Germany.; Shekhar, H (corresponding author), UNU, EHS, Inst Environm & Human Secur, Pl Vereinten Nationen 1,UN Campus, D-53113 Bonn, Germany.
EM shekhar@ehs.unu.edu; alexander.schmidt@uni-due.de;
   hans-werner.wehling@uni-due.de
OI Shekhar, Himanshu/0000-0002-2793-5143
FU German Academic Exchange Service or DAAD (Deutscher Akademischer
   Austauschdienst)
FX Himanshu Shekhar acknowledges the funding received from the German
   Academic Exchange Service or DAAD (Deutscher Akademischer
   Austauschdienst) for the doctoral research, from which this paper stems.
   Authors would also like to thank the annonymous reviewers whose helped
   them in improving this paper.
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NR 136
TC 45
Z9 49
U1 5
U2 91
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD MAY
PY 2019
VL 87
BP 66
EP 74
DI 10.1016/j.habitatint.2019.04.007
PG 9
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA IC2OM
UT WOS:000470799600007
DA 2025-04-22
ER

PT J
AU Vashist, M
   Singh, SK
   Kumar, TV
AF Vashist, Mallika
   Singh, S. K.
   Kumar, T. Vijaya
TI Enhancing resilience for sustainable cities: a review of threats to
   urban trees
SO BIODIVERSITY AND CONSERVATION
LA English
DT Review
DE Urban vegetation; Pest management; Resilient trees; Biological threats;
   Ecosystem-services; Sustainable management strategies
ID NONNATIVE FOREST INSECTS; ASH BORER INVASION; DUTCH ELM DISEASE;
   BIOLOGICAL-CONTROL; ECONOMIC-IMPACTS; CHESTNUT TREES; RISK ANALYSIS;
   BEETLE; POLICY; PESTS
AB Urban trees provide essential provisioning, regulating, and cultural services, such as carbon sequestration, air and water quality regulation, and pest and disease control. However, unregulated urbanization increases the vulnerability of these trees to invasive pests, leading to tree loss and a reduction in ecosystem benefits. While many studies focus on forest ecosystems, limited research exists on the impact of pests and disease in urban settings. This review aims to address this gap by examining the ecosystem services provided by urban trees and the threats posed by pests and pathogens on them. It highlights the negative implications of pests on urban trees, affecting ecological, economic, and cultural factors such as disrupting biodiversity, reducing ecosystem services, increasing management costs, lowering property values, degrading aesthetics and heritage value, and risking human health. It discusses several strategies to mitigate the adverse effects of pests and pathogens and control their spread. Additionally, it characterizes the various stages to detect and manage tree pests (pre-border, border, or post-border) and identifies critical areas for further improvements within each stage before their establishment. The study also highlights strategies like biological control and implementing well-designed landscapes (with high diversity street trees), which can effectively control the spread and mitigate the pests after their establishment. In conclusion, the study emphasizes that effective pest management requires revising existing laws and policies at various administrative levels, necessitating a collaborative and inclusive approach that involves multiple stakeholders, local actors, and the public in creating sustainable and resilient urban environments.
C1 [Vashist, Mallika; Singh, S. K.] Delhi Technol Univ, Dept Environm Engn, Bawana Rd Shahbad Daulatpur, Delhi, India.
   [Singh, S. K.] Rajasthan Tech Univ, Kota, Rajasthan, India.
   [Kumar, T. Vijaya] Delhi Technol Univ, Dept Civil Engn, Delhi, India.
C3 Delhi Technological University; Rajasthan Technical University; Delhi
   Technological University
RP Vashist, M (corresponding author), Delhi Technol Univ, Dept Environm Engn, Bawana Rd Shahbad Daulatpur, Delhi, India.
EM m.vst979@gmail.com
OI Vashist, Mallika/0000-0003-3814-8150
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NR 162
TC 1
Z9 1
U1 8
U2 8
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0960-3115
EI 1572-9710
J9 BIODIVERS CONSERV
JI Biodivers. Conserv.
PD MAR
PY 2025
VL 34
IS 4
BP 1231
EP 1258
DI 10.1007/s10531-025-03025-w
EA FEB 2025
PG 28
WC Biodiversity Conservation; Ecology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA 0GO8I
UT WOS:001410788700001
DA 2025-04-22
ER

PT J
AU Pagano, A
   Pluchinotta, I
   Giordano, R
   Vurro, M
AF Pagano, Alessandro
   Pluchinotta, Irene
   Giordano, Raffaele
   Vurro, Michele
TI Drinking water supply in resilient cities: Notes from L'Aquila
   earthquake case study
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE System dynamic model; Water supply systems; Resilience; TOSE approach;
   L'Aquila Earthquake
ID SYSTEM DYNAMICS; INFRASTRUCTURE SYSTEMS; RISK; FRAMEWORK; MODEL; METRICS
AB Disasters impacts on urban environment are the result of interactions among natural and human systems, which are intimately linked each other. What is more, cities are directly dependent on infrastructures providing essential services (Lifeline Systems, LS). The operation of LS in ordinary conditions as well as after disasters is crucial. Among the LS, drinking water supply deserves a critical role for citizens.
   The present work summarizes some preliminary activities related to an ongoing EU funded research project. The main aim of the paper is to define a System Dynamic Model (SDM) to assess the evolution of resilience of a drinking water supply system in case of natural disasters, with particular attention to the role of both 'structural' and 'non-structural' parameters. Reflections are carried out on L'Aquila (Italy) case study, since drinking water infrastructures were significantly stressed during the 2009 earthquake, causing a limited functionality in the aftermath of the event. Furthermore, the reallocation of citizens in temporary shelters determined a change in the demand pattern, requiring a dynamic adaptation of the infrastructure. Based on an innovative approach to resilience, the model was developed also to simulate different emergency management scenarios, corresponding to different disaster management strategies. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Pagano, Alessandro; Giordano, Raffaele; Vurro, Michele] Natl Res Council IRSA CNR, Water Res Inst, Via De Blasio 5, I-70132 Bari, Italy.
   [Pluchinotta, Irene] Univ Paris 09, CNRS, LAMSADE, Pl Marechal Lattre Tassigny, F-75016 Paris, France.
C3 Consiglio Nazionale delle Ricerche (CNR); Istituto di Ricerca sulle
   Acque (IRSA-CNR); Centre National de la Recherche Scientifique (CNRS);
   Universite PSL; Universite Paris-Dauphine
RP Pagano, A (corresponding author), Natl Res Council IRSA CNR, Water Res Inst, Via De Blasio 5, I-70132 Bari, Italy.
EM alessandro.pagano@ba.irsa.cnr.it; irene.pluchinotta@dauphine.fr;
   raffaele.giordano@ba.irsa.cnr.it; michele.vurro@ba.irsa.cnr.it
RI GIORDANO, RAFFAELE/AAX-7089-2020; Pagano, Alessandro/P-1544-2018
OI Pluchinotta, Irene/0000-0002-1883-8675; Pagano,
   Alessandro/0000-0002-2511-9396
FU Italian Department of Civil Protection ('Intesa Operativa del tra DPC e
   IRSA') [618]; EU [653874]; H2020 Societal Challenges Programme [653874]
   Funding Source: H2020 Societal Challenges Programme
FX The present research activity was partially developed within a research
   project funded by the Italian Department of Civil Protection ('Intesa
   Operativa del 19.12.2006 tra DPC e IRSA-Rep. 618'), and partially within
   the EU Horizon 2020 funded project 'EDUCEN' (Grant Agreement No 653874).
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NR 62
TC 50
Z9 55
U1 1
U2 115
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JAN
PY 2017
VL 28
BP 435
EP 449
DI 10.1016/j.scs.2016.09.005
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA EE1EB
UT WOS:000389322700040
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Banchs-Piqué, M
   Hutchinson, DJ
   Becerra, VM
   Gaterell, M
AF Banchs-Pique, Miquel
   Hutchinson, David J.
   Becerra, Victor M.
   Gaterell, Mark
TI Adapting futures scenarios to study UK household energy demand
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-ENGINEERING
   SUSTAINABILITY
LA English
DT Article
DE energy conservation; environment; sustainability
ID ELECTRICITY CONSUMPTION; SOCIO-DEMOGRAPHICS; BUILDING FACTORS; SPACE;
   APPLIANCES; BEHAVIORS
AB Greenhouse gas emissions originating from the built environment play a significant role towards climate change. Carefully planning the future of the building sector is key to mitigating these emissions. Addressing this problem by using a predictive approach may miss possible futures that cannot be anticipated. Using explorative scenarios to perform futures analysis helps widen the range of futures taken into account, which minimises this risk. Tools that use scenarios to help study the resilience of sustainable solutions for the UK urban environment are already available. However, they do not facilitate in-depth analysis of future household energy demand. This paper considers how one such tool, 'Designing Resilient Cities' (DRC), could be modified appropriately. It includes (a) a series of indicators representing factors affecting the energy demand in dwellings and (b) their characteristics for each scenario to complement the narratives in DRC. As a case study to validate these additions, the resilience of a recommendation to decrease domestic electricity consumption is evaluated.
C1 [Banchs-Pique, Miquel; Gaterell, Mark] Univ Portsmouth, Sch Civil Engn & Surveying, Portsmouth, Hants, England.
   [Hutchinson, David J.] Univ Portsmouth, Fac Technol, Portsmouth, Hants, England.
   [Becerra, Victor M.] Univ Portsmouth, Sch Engn, Portsmouth, Hants, England.
C3 University of Portsmouth; University of Portsmouth; University of
   Portsmouth
RP Banchs-Piqué, M (corresponding author), Univ Portsmouth, Sch Civil Engn & Surveying, Portsmouth, Hants, England.
EM miquel.banchs-pique@port.ac.uk
RI Banchs-Piqué, Miquel/AAI-8136-2020; Becerra, Victor/AAA-1361-2020;
   Becerra, Victor/B-1889-2015
OI gaterell, mark/0000-0002-0504-4841; Banchs-Pique,
   Miquel/0000-0002-9022-2453; Becerra, Victor/0000-0002-3790-4236;
   Hutchinson, David/0000-0002-0023-4689
FU University of Portsmouth; University Alliance as part of the Doctoral
   Training Alliance programme
FX This work was supported by the University of Portsmouth and University
   Alliance as part of the Doctoral Training Alliance programme. The first
   author would like to thank his supervisors for their guidance and
   patience and the staff of the Laboratory for Cavitation and
   Micro-erosion (Gottingen) for their patience and the opportunity given
   to work in academia; without them, the investigation for this paper
   would have never taken place.
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NR 60
TC 1
Z9 1
U1 1
U2 11
PU ICE PUBLISHING
PI WESTMINISTER
PA INST CIVIL ENGINEERS, 1 GREAT GEORGE ST, WESTMINISTER SW 1P 3AA, ENGLAND
SN 1478-4629
EI 1751-7680
J9 P I CIVIL ENG-ENG SU
JI Proc. Inst. Civ. Eng.-Eng. Sustain.
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PY 2020
VL 173
IS 5
BP 241
EP 256
DI 10.1680/jensu.18.00057
PG 16
WC Green & Sustainable Science & Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Engineering
GA MM9QI
UT WOS:000550482700004
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Orsetti, E
   Tollin, N
   Lehmann, M
   Valderrama, VA
   Morato, J
AF Orsetti, Eleonora
   Tollin, Nicola
   Lehmann, Martin
   Valderrama, Vanessa Agudelo
   Morato, Jordi
TI Building Resilient Cities: Climate Change and Health Interlinkages in
   the Planning of Public Spaces
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE climate change; health; city; public space; urban resilience;
   vulnerability; inequality
ID EXPERT INTERVIEW; VULNERABILITY; QUALITY
AB Greenhouse gases emissions resulting from the combustion of fossil fuels are worsening air quality and affecting the climate system. While climate change impacts on meteorological variables affects air quality by altering the concentration and distribution of pollutants, air pollution significantly influences the climate, leading to negative impacts on human health. Due to the combination of high temperatures, air pollution, and high population density, cities are particularly vulnerable to climate change impacts. The planning and design of public spaces aimed at climate change mitigation and adaptation can result in multiple co-benefits for human health, while reducing social inequalities. To address the major research gaps in the communication between health and planning experts, and the lack of capacity among public sectors and policy makers, it is necessary to promote capacity building and knowledge sharing between the planning and health sectors. The purpose of this article is to develop preliminary recommendations for a process that allows a comprehensive assessment of the interlinkages between climate and health, social, environmental, and economic vulnerabilities, and the quality of the urban spaces, to support local governments, policymakers, and education institutions in making informed decisions for public spaces. The methods applied were a literature review and interviews with experts.
C1 [Orsetti, Eleonora; Tollin, Nicola] Univ Southern Denmark, Dept Technol & Innovat, DK-5230 Odense, Denmark.
   [Lehmann, Martin] Aalborg Univ, Dept Planning, DK-9000 Aalborg, Denmark.
   [Valderrama, Vanessa Agudelo; Morato, Jordi] Univ Politecn Cataluna, BarcelonaTech, Sch Ind Aerosp & Audiovisual Engn Terrassa, Catedra UNESCO Sostenibilitat,ESEIAAT, Terrassa 08222, Spain.
C3 University of Southern Denmark; Aalborg University; Universitat
   Politecnica de Catalunya
RP Orsetti, E (corresponding author), Univ Southern Denmark, Dept Technol & Innovat, DK-5230 Odense, Denmark.
EM elos@iti.sdu.dk; nto@iti.sdu.dk; martinl@plan.aau.dk;
   vanessa.agudelo@upc.edu; jordi.morato@upc.edu
RI Tollin, Nicola/E-9351-2019; Morato Farreras, Jordi/AAC-7435-2021
OI Tollin, Nicola/0000-0002-6028-4733; Morato Farreras,
   Jordi/0000-0003-2588-8846; Orsetti, Eleonora/0000-0001-7969-7514;
   Agudelo Valderrama, Vanessa/0000-0003-1439-4381; Lehmann,
   Martin/0000-0003-2089-4550
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NR 66
TC 38
Z9 40
U1 6
U2 60
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD FEB
PY 2022
VL 19
IS 3
AR 1355
DI 10.3390/ijerph19031355
PG 22
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA YZ5FZ
UT WOS:000755503400001
PM 35162378
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Amorim-Maia, AT
   Anguelovski, I
   Chu, ER
   Connolly, J
AF Amorim-Maia, Ana Terra
   Anguelovski, Isabelle
   Chu, Eric
   Connolly, James
TI Governing intersectional climate justice: Tactics and lessons from
   Barcelona
SO ENVIRONMENTAL POLICY AND GOVERNANCE
LA English
DT Article
DE Barcelona; climate governance; intersectional climate justice; social
   justice; urban politics
ID ENVIRONMENTAL GOVERNANCE; TRANSNATIONAL NETWORKS; MULTILEVEL GOVERNANCE;
   ADAPTATION; POLITICS; CITIES; EQUITY; OPPORTUNITIES; INCLUSION; EVERYDAY
AB Cities and local governments are important actors in the global governance of climate change; however, the specific governance principles and arrangements that enable urban climate plans and policies to realize commitments to social equity and justice remain largely unexplored. This article uses the City of Barcelona, Spain, as a critical case study of emerging "intersectional climate justice" practice, where plans to build resilience to climate change are pursued in conjunction with efforts to tackle structural inequalities in accessing the built environment, health services, energy, housing, and transportation experienced by frontline communities. The study illustrates how Barcelona and its community partners do this through four different categories of governance and decision-making tactics, which include: (1) experimenting with disruptive planning strategies; (2) working transversally across agencies and actors to institutionalize climate justice over time; (3) putting care at the center of urban planning; and (4) mobilizing place-based approaches to tackle intersecting vulnerabilities of frontline residents. These tactics seek to redistribute the benefits of climate-resilient infrastructures more fairly and to enhance participatory processes more meaningfully. Finally, we assess the limitations and challenges of mobilizing these tactics in everyday urban politics. Barcelona's experience contributes to research on climate governance by challenging the notion of distinct waves of governance and revealing concurrent dimensions of climate urbanism that coexist spatially and temporally. Our research also illustrates lessons for fairer climate governance in the city, where different tactics are mobilized to address structural and intersecting socioeconomic vulnerabilities that exacerbate the experience of climate change of frontline residents.
C1 [Amorim-Maia, Ana Terra; Anguelovski, Isabelle] Univ Autonoma Barcelona UAB, Inst Environm Sci & Technol ICTA, Cerdanyola Del Valles, Spain.
   [Amorim-Maia, Ana Terra; Anguelovski, Isabelle] Barcelona Lab Urban Environm Justice & Sustainabil, Barcelona, Spain.
   [Anguelovski, Isabelle] Institucio Catalana Recerca & Estudis Avancats ICR, Barcelona, Spain.
   [Chu, Eric] Univ Calif Davis, Dept Human Ecol, Davis, CA USA.
   [Connolly, James] Univ British Columbia, Sch Community & Reg Planning SCARP, Vancouver, BC, Canada.
   [Amorim-Maia, Ana Terra] Univ Autonoma Barcelona UAB, Inst Environm Sci & Technol ICTA, Edif Z ICTA ICP,Carrer Columnes S-N,Off Z-148,Camp, Cerdanyola Del Valles 08193, Spain.
C3 Autonomous University of Barcelona; University of California System;
   University of California Davis; University of British Columbia;
   Autonomous University of Barcelona
RP Amorim-Maia, AT (corresponding author), Univ Autonoma Barcelona UAB, Inst Environm Sci & Technol ICTA, Edif Z ICTA ICP,Carrer Columnes S-N,Off Z-148,Camp, Cerdanyola Del Valles 08193, Spain.
EM anaterra.maia@uab.cat
RI Amorim-Maia, Ana Terra/HJI-9752-2023; Connolly, James/M-8757-2019; Chu,
   Eric/O-6464-2015
OI AMORIM MAIA, ANA TERRA/0000-0003-2604-897X; Chu,
   Eric/0000-0002-5648-6615
FU We thank all the representatives from the Barcelona City Council,
   Metropolitan Area, and Government of Catalonia for sharing their
   valuable perspectives and experiences.
FX We thank all the representatives from the Barcelona City Council,
   Metropolitan Area, and Government of Catalonia for sharing their
   valuable perspectives and experiences.
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NR 95
TC 9
Z9 9
U1 10
U2 29
PU WILEY PERIODICALS, INC
PI SAN FRANCISCO
PA ONE MONTGOMERY ST, SUITE 1200, SAN FRANCISCO, CA 94104 USA
SN 1756-932X
EI 1756-9338
J9 ENVIRON POLICY GOV
JI Environ. Policy Gov.
PD JUN
PY 2024
VL 34
IS 3
BP 256
EP 274
DI 10.1002/eet.2075
EA SEP 2023
PG 19
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA SW8A6
UT WOS:001063901200001
OA Green Published
DA 2025-04-22
ER

PT J
AU Adams, C
   Frantzeskaki, N
   Moglia, M
AF Adams, Clare
   Frantzeskaki, Niki
   Moglia, Magnus
TI Mainstreaming nature-based solutions in cities: A systematic literature
   review and a proposal for facilitating urban transitions
SO LAND USE POLICY
LA English
DT Review
DE NBS; Ecosystem services; Green infrastructure; Policy integration;
   Multi-level governance; Climate adaptation
ID CLIMATE-CHANGE ADAPTATION; ECOSYSTEM SERVICES; SUSTAINABILITY
   TRANSITIONS; KNOWLEDGE COPRODUCTION; POLICY INTERFACE; LOCAL-GOVERNMENT;
   GOVERNANCE; BIODIVERSITY; INSIGHTS; LESSONS
AB Nature-based solutions are gaining prominence in urban sustainability discourses, especially in climate adap-tation, in efforts to increase resilience, and as a means of promoting a range of social, environmental, and economic benefits. There are however barriers and inertia that slow the adoption of such solutions, and a term commonly used for overcoming such factors is mainstreaming. The term mainstreaming in relation to nature-based solutions is ambiguous, as it is entangled within or conflated with other similar concepts that also describe change processes. This lack of clarity is a cause for potential misdirection of planning with nature-based solutions towards more climate resilient cities. Therefore, this article expands and deepens the understanding of mainstreaming nature-based solutions in cities by proposing a (re)conceptualisation of the term mainstreaming. Our (re)conceptualisation explores mainstreaming in the context of multi-level governance, to unpack where mainstreaming can unfold within and across levels, and focuses on knowledge drivers, to unpack how main-streaming activities are shaped. These dimensions are important for unpacking where mainstreaming can happen and what informs mainstreaming activities, facilitating more effective discourses, policy-making, and wider adoption of urban nature-based solutions. We report on a systematic literature review and synthesis of 147 ar-ticles, which proposes a new mainstreaming framework and definition by identifying five mechanisms and four roles to explain how mainstreaming processes unfold or mobilise in cities. This adds a framework and language to the academic and policy debate that is needed for operationalising nature-based solutions mainstreaming processes, and thereby to transform urban planning practices.
C1 [Adams, Clare; Frantzeskaki, Niki; Moglia, Magnus] Swinburne Univ Technol, Ctr Urban Transit, Melbourne, Australia.
   [Frantzeskaki, Niki] Univ Utrecht, Fac Geosci, Human Geog & Spatial Planning, Utrecht, Netherlands.
C3 Swinburne University of Technology; Utrecht University
RP Adams, C (corresponding author), Swinburne Univ Technol, Ctr Urban Transit, Melbourne, Australia.
EM cladams@swin.edu.au
RI Frantzeskaki, Niki/AAN-1044-2021; Moglia, Magnus/C-8575-2011
OI Moglia, Magnus/0000-0002-8290-610X; Adams, Clare/0000-0001-8318-7664;
   Frantzeskaki, Niki/0000-0002-6983-448X
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NR 143
TC 27
Z9 27
U1 15
U2 67
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-8377
EI 1873-5754
J9 LAND USE POLICY
JI Land Use Pol.
PD JUL
PY 2023
VL 130
AR 106661
DI 10.1016/j.landusepol.2023.106661
EA APR 2023
PG 14
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA F6EN5
UT WOS:000983256800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Wang, CH
   Guldmann, JM
AF Wang, Chih-Hao
   Guldmann, Jean-Michel
TI A land-use allocation optimization model to mitigate potential seismic
   damages
SO ENVIRONMENT AND PLANNING B-PLANNING & DESIGN
LA English
DT Article
DE seismic hazard; earthquake simulation; urban resilience; land-use
   planning; optimization
ID EARTHQUAKE RISK ANALYSIS; LOS-ANGELES-COUNTY; SOCIAL VULNERABILITY;
   SIMULATION; RECOVERY; HAZARDS
AB Seismic hazard mitigation is becoming an important consideration in planning for disaster-resilient cities. Seismic hazard and urban vulnerability are the two major factors in the assessment of seismic risk. Peak ground acceleration (PGA) and peak ground displacement (PGD) are the two major measures of seismic hazards, and land-use and building patterns characterize urban vulnerability. A set of pseudodata is generated by an earthquake-engineering simulation model for the city of Taichung, Taiwan, using twenty-two significant historical seismic events. A seismic damage model is first statistically estimated, relating monetary building damages to seismic impacts (PGA and PGD) and building inventories (residential, commercial, industrial, government). This damage function is then incorporated into a seismic land-use optimization model to allocate future land uses to the available land while minimizing aggregate seismic damages. Solving the model under the twenty-two seismic events and under different regional growth scenarios generates robust site rankings, pointing to priority locations for future activities away from the most severe historical earthquakes. These rankings can help decision makers allocate future activities under the uncertainty of both regional development and seismic hazard.
C1 [Wang, Chih-Hao] Calif State Univ Fresno, Dept Geog & City & Reg Planning, Fresno, CA 93740 USA.
   [Guldmann, Jean-Michel] Ohio State Univ, Dept City & Reg Planning, Columbus, OH 43210 USA.
C3 California State University System; California State University Fresno;
   University System of Ohio; Ohio State University
RP Guldmann, JM (corresponding author), Ohio State Univ, Dept City & Reg Planning, Columbus, OH 43210 USA.
EM cwang@csufresno.edu; guldmann.1@osu.edu
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PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0265-8135
EI 1472-3417
J9 ENVIRON PLANN B
JI Environ. Plan. B-Plan. Des.
PY 2015
VL 42
IS 4
BP 730
EP 753
DI 10.1068/b130152p
PG 24
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA CP6VB
UT WOS:000360025200010
DA 2025-04-22
ER

PT J
AU Chan, THY
AF Chan, Tommy H. Y.
TI How does bike-sharing enable (or not) resilient cities, communities, and
   individuals? Conceptualising transport resilience from the
   socio-ecological and multi-level perspective
SO TRANSPORT POLICY
LA English
DT Article
DE Socio-ecological resilience; Multi-level perspective (MLP); Cycling
   system; Socio-technical transition; Institutional lock-in; Social
   exclusion
ID SOCIOTECHNICAL TRANSITION; LOCK-IN; SYSTEMS; DYNAMICS; ENERGY;
   STRUCTURATION; INITIATIVES; FOUNDATIONS; RETHINKING; CHALLENGES
AB Bicycles play a crucial role in promoting resilient urban mobility, yet current approaches often focus primarily on engineering resilience, emphasising short-term resistance, adaptability, and recovery from disruptions. This perspective tends to overlook the equally important social dynamics and institutional factors. Socio-ecological resilience theory fills this gap by viewing disruptions as opportunities for renewal, innovation, and transformation, recognising that systems operate in dynamic, non-equilibrium states where change is inevitable and unpredictable. However, its application in transport studies has been limited due to the complexity of empirical implementation. This paper utilises the Multi-Level Perspective (MLP) to offer a framework for understanding transport systems as complex socio-technical networks-encompassing artifacts, infrastructure, human actors, regulations, and cultural meanings. MLP's nested, layered ontology helps conceptualise the complexity and evolution of transport systems. Using Hong Kong's dockless bike-sharing system during the social movements and pandemic, this study explores how individual, community, and organisational resilience interact across scales. It shows how institutions both shape and are shaped by human agency, with interpretive flexibility allowing individuals to adapt institutional rules to personal contexts. The structuration of parking practices-shaped by voluntary digital communities managing bike parking and formalised through organisational and regulatory frameworks-illustrates how multi-level resilience arises through interactions among diverse actors, rather than from the mere accumulation of individual actions. While higher degrees of structuration, shaped by the scale of fields and number of actors reproducing them, foster stability, they can also perpetuate social exclusion, highlighting the need for equitable policies that balance individual responsibility with inclusive institutional strategies.
C1 [Chan, Tommy H. Y.] Univ Oxford, Sch Geog & Environm, Transport Studies Unit, South Parks Rd, Oxford OX1 3QY, England.
C3 University of Oxford
RP Chan, THY (corresponding author), Univ Oxford, Sch Geog & Environm, Transport Studies Unit, South Parks Rd, Oxford OX1 3QY, England.
EM ho.chan@ouce.ox.ac.uk
RI Chan, Ho-Yin/AAZ-8700-2021
OI Chan, Ho-Yin/0000-0002-5455-3386
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NR 153
TC 3
Z9 3
U1 10
U2 10
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0967-070X
EI 1879-310X
J9 TRANSPORT POLICY
JI Transp. Policy
PD MAR
PY 2025
VL 163
BP 247
EP 261
DI 10.1016/j.tranpol.2025.01.020
EA JAN 2025
PG 15
WC Economics; Transportation
WE Social Science Citation Index (SSCI)
SC Business & Economics; Transportation
GA T5O1N
UT WOS:001405485600001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ahmad, S
   Peng, XR
   Ashraf, A
   Yin, DK
   Chen, ZX
   Ahmed, R
   Israr, M
   Jia, HF
AF Ahmad, Shakeel
   Peng, Xuanrong
   Ashraf, Anam
   Yin, Dingkun
   Chen, Zhengxia
   Ahmed, Rasheed
   Israr, Muhammad
   Jia, Haifeng
TI Building resilient urban drainage systems by integrated flood risk index
   for evidence-based planning
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban flooding; Flood risk index; Pressure-state-response; Low impact
   development; GIS; SWMM; AHP
ID DECISION
AB Urban flooding poses a significant risk to cities worldwide, exacerbated by increasing urbanization and climate change. Effective flood risk management requires comprehensive assessments considering the complex interaction of social, economic, and environmental factors. This study developed an innovative Urban Flood Risk Index (FRI) to quantify and assess flood risk at the sub-catchment level, providing a tool for evidence-based planning and resilient infrastructure development. This study integrates Geographic Information System (GIS), Storm Water Management Model (SWMM), Analytic Hierarchy Process (AHP), and the Pressure-State-Response (PSR) framework. The FRI incorporates seven pressure and state indicators and three response indicators weighted by expert judgment. The FRI was calculated by combining the weighted sub-indices, classifying flood risk into five levels. Results showed that 51% of the study area experienced high pressure, with 26% facing veryhigh pressure. The state index indicated that 55% of the area falls under a moderate state, while 21% exhibits a high state. Importantly, the response index highlighted the effectiveness of Low Impact Development (LID) practices, with 20% of the area showing high to very-high response levels. The integrated FRI demonstrated an overall moderate flood risk level for maximum sub-catchments, emphasizing the positive impact of LID practices in mitigating flood risk despite existing pressures and system limitations. This evidence-based assessment provides a valuable tool for sub-catchment level flood risk assessment. It empowers decision-makers to prioritize investments, target interventions, and develop adaptive strategies to enhance urban resilience in a changing climate.
C1 [Ahmad, Shakeel; Ashraf, Anam; Yin, Dingkun; Chen, Zhengxia; Jia, Haifeng] Tsinghua Univ, Sch Environm, Beijing 100084, Peoples R China.
   [Peng, Xuanrong] Univ Sydney, Sch Civil Engn, Sydney, NSW 2008, Australia.
   [Ashraf, Anam] Chinese Acad Sci, Ctr Integrat Conservat, Landscape Ecol Lab, Xishuangbanna Trop Bot Garden, Mengla 666303, Yunnan, Peoples R China.
   [Ahmed, Rasheed] Univ Haripur, Dept Soil & Climate Sci, Haripur 22620, Pakistan.
   [Israr, Muhammad] Univ Agr Peshawar, Inst Dev Studies, Peshawar 25130, Pakistan.
   [Jia, Haifeng] Suzhou Univ Sci & Technol, Jiangsu Collaborat Innovat Ctr Technol & Mat Water, Suzhou 215009, Peoples R China.
C3 Tsinghua University; University of Sydney; Chinese Academy of Sciences;
   Xishuangbanna Tropical Botanical Garden, CAS; Suzhou University of
   Science & Technology
RP Jia, HF (corresponding author), Tsinghua Univ, Director Ctr Urban Runoff Control & Stream Restora, Beijing 100084, Peoples R China.
EM jhf@tsinghua.edu.cn
RI , haifeng/AAF-7606-2021; Israr, Muhammad/HLW-7263-2023
OI jia, haifeng/0000-0002-3005-9316
FU National Natural Science Foundation of China [52070112]; project of
   systematic global promotion of sponge city construction in Guang 'an
   City
FX The authors express their gratitude for the financial support from
   National Natural Science Foundation of China (No. 52070112), and the
   project of systematic global promotion of sponge city construction in
   Guang 'an City, for this research study. The funding made it possible to
   collect data, analyze it, build a model, and finish the study
   successfully.
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NR 48
TC 1
Z9 1
U1 18
U2 18
PU ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
PI LONDON
PA 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND
SN 0301-4797
EI 1095-8630
J9 J ENVIRON MANAGE
JI J. Environ. Manage.
PD FEB
PY 2025
VL 374
AR 124130
DI 10.1016/j.jenvman.2025.124130
EA JAN 2025
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA X0J1G
UT WOS:001422310800001
PM 39813804
DA 2025-04-22
ER

PT J
AU Peng, L
   Wang, YF
   Yang, L
   Garchagen, M
   Deng, XZ
AF Peng, Lu
   Wang, Yifei
   Yang, Liang
   Garchagen, Matthias
   Deng, Xiangzheng
TI A comparative analysis on flood risk assessment and management
   performances between Beijing and Munich
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Article
DE Flood risk assessment; Urban floods; Flood management; Resilient city;
   Comparative analysis
ID CLIMATE-CHANGE; VULNERABILITY; RESILIENCE; PATTERNS
AB With climate change and rapid urbanization, the prevalent flood disasters and associated risks in urban areas have become increasingly crucial global issues. Risk assessment is a basic step in flood management and mitigation, while flood management is important to achieve risk mitigation. A comprehensive assessment framework considering both pre-and post-disasters that can address flood risk is lacking. Therefore, this study developed an integrated framework by combining the assessments of flood risk and flood management performance. Taking Beijing and Munich as research objects, this study generated flood risk maps at the grid scale for the period 2000-2020 and comparatively assessed the performance of various flood management measures. The urban flood risk in Beijing showed an increasing trend and then a decreasing one from 2000 to 2020, exhibiting high spatial characteristics in the southeast and low spatial characteristics in the northwest. The flood risk in Munich showed an overall decreasing trend, with strong spatial characteristics in the center area but less so in suburban areas. The shift from low to high urbanization levels was the major factor increasing the regional flood risk. Therefore, effective flood management measures in urban areas could potentially mitigate the flood risk, and Munich had a higher flood management performance owing to its well-developed flood management systems. This study provides a new framework for flood risk assessment and resilient flood management and contributes to the development of practical measures for disaster mitigation in rapidly-developing urban areas.
C1 [Peng, Lu] Chengdu Normal Univ, Inst Humanity Resources Western China, Chengdu 611130, Peoples R China.
   [Wang, Yifei; Deng, Xiangzheng] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Wang, Yifei; Deng, Xiangzheng] Chinese Acad Sci, Key Lab Land Surface Pattern & Simulat, Beijing 100101, Peoples R China.
   [Wang, Yifei; Deng, Xiangzheng] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Yang, Liang; Garchagen, Matthias] Ludwig Maximilian Univ Munich, Munich, Germany.
C3 Chengdu Normal University; Chinese Academy of Sciences; Institute of
   Geographic Sciences & Natural Resources Research, CAS; Chinese Academy
   of Sciences; Chinese Academy of Sciences; University of Chinese Academy
   of Sciences, CAS; University of Munich
RP Deng, XZ (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
EM dengxz@igsnrr.ac.cn
RI Wang, Yifei/ABD-8504-2021; Deng, Xiangzheng/N-1335-2018
FU Sino-German Center of the National Natural Science Foundation of China
   [M-0369]; Key program of International Cooperation, Bureau of
   International Cooperation, Chinese Academy of Sciences
   [131551KYSB20210030]
FX This research was supported by the Sino-German Center of the Na- tional
   Natural Science Foundation of China (M-0369) ; and Key program of
   International Cooperation, Bureau of International Cooperation, Chinese
   Academy of Sciences (131551KYSB20210030) .
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NR 56
TC 27
Z9 27
U1 22
U2 69
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 0195-9255
EI 1873-6432
J9 ENVIRON IMPACT ASSES
JI Environ. Impact Assess. Rev.
PD JAN
PY 2024
VL 104
AR 107319
DI 10.1016/j.eiar.2023.107319
EA OCT 2023
PG 13
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA X3AV7
UT WOS:001097223600001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Acosta, F
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AF Acosta, Fortino
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TI Memorial Parking Trees: Resilient Modular Design with Nature-Based
   Solutions in Vulnerable Urban Areas
SO LAND
LA English
DT Article
DE nature-based solutions; environmental justice; geographic information
   systems; urban resilience; green infrastructure; urban design;
   sustainable urban design; urban vulnerability
ID BIOSWALES
AB Nature-based solutions (NbS) include all the landscape's ecological components that have a function in the natural or urban ecosystem. Memorial Parking Trees (MPTs) are a new variant of a nature-based solution composed of a bioswale and a street tree allocated in the road, occupying a space that is sub-utilised by parked cars. This infill green practice can maximise the use of street trees in secondary streets and have multiple benefits in our communities. Using GIS mapping and methodology can support implementation in vulnerable neighbourhoods. In this research, we based vulnerability assessments for London, Rio de Janeiro, and Los Angeles on the following three indicators: extreme temperature, air quality, and flood-prone areas. Evidence is emerging that disadvantaged populations may live at higher risks of exposure to environmental hazards. The income and healthcare accessibility of neighbourhoods are the two indicators that will help us target these communities for a better and faster decision-making process. The contrast between the results and the 15-min city concept supports our detecting and prioritising neighbourhoods for MPTS implementation, among other NbS solutions integrated into a more inclusive and sustainable urban design.
C1 [Acosta, Fortino; Haroon, Stephen] Univ Nevada, Howard R Hughes Coll Engn, Las Vegas, NV 89154 USA.
C3 Nevada System of Higher Education (NSHE); University of Nevada Las Vegas
RP Acosta, F (corresponding author), Univ Nevada, Howard R Hughes Coll Engn, Las Vegas, NV 89154 USA.
EM fortino.acosta@unly.edu; haroon.stephen@unly.edu
OI Acosta, Fortino/0000-0002-6239-4880; Stephen, Haroon/0000-0003-3116-1416
FU UNLV Howard R. Hughes College of Engineering; UNLV Libraries; UNLV
   Graduate & Professional Student Association; UNLV School of Architecture
FX We want to thank Marco Martinez for the support to prove that Parking
   Trees are an NbS feasible solution. Thanks also to Mayra Arzate, Jorge
   Paiz-Say, and Brian Chernoff for our conversations to link environmental
   justice, and the commemoration of the people that passed away by the
   current Sars-Cov-2 pandemic. Finally, we are also grateful to our
   Technical Writer Meagan Madariaga-Hopkins and to UNLV Libraries,
   Graduate & Professional Student Association, Howard R. Hughes College of
   Engineering and the School of Architecture for your funding to publish
   this research.
CR Anderson BS, 2016, ENVIRON TOXICOL CHEM, V35, P3124, DOI 10.1002/etc.3472
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NR 43
TC 11
Z9 11
U1 3
U2 45
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD MAR
PY 2021
VL 10
IS 3
AR 298
DI 10.3390/land10030298
PG 16
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA RE0ER
UT WOS:000633839600001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Xu, DS
   Li, YF
   Yang, X
   Zhong, H
   Li, JM
   Li, JX
   Huang, YB
AF Xu, Desheng
   Li, Yanfeng
   Yang, Xin
   Zhong, Hua
   Li, Junmei
   Li, Jiaxin
   Huang, Youbo
TI Enhancing resilience in urban utility tunnels power transmission
   systems: Analysing temperature distribution in near-wall cable fires for
   risk mitigation
SO TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY
LA English
DT Article
DE Underground power transmission; Urban utility tunnel; Near -wall cable
   fire; Temperature distribution; Risk -resilient understanding
ID GAS TEMPERATURE; FLAME SPREAD; CEILING-JET; ATTENUATION; COMBUSTION;
   VELOCITY; PLUMES
AB Urban utility tunnels are integral to the underground power transmission systems of cities. Enhancing the understanding of cable fire hazards within these tunnels is pivotal for fostering risk-resilient underground environments. This study delves into the temperature distribution characteristics of near-wall cable fires in urban utility tunnels. Employing a reduced-scale utility tunnel model, a series of fire experiments were conducted, focusing on the safety monitoring of horizontally arranged cables. Cone calorimeter tests were initially performed to ascertain the heat release rate of cable fires. The study meticulously considered cable spatial position parameters, such as cable height and near-wall distance, as dependent variables, and monitored real-time temperature changes within the utility tunnel under various fire scenarios. The findings reveal that the cable's proximity to the wall significantly influences the fire temperature field. For instance, when a fire near the sidewall (at 1 cm) is compared to one in the middle of the tunnel (at 20 cm), the ceiling maximum temperature is reduced by 38.9 %. The sidewall's limiting effect diminishes fire energy release, moderates vertical temperature decay, and enhances longitudinal temperature attenuation. The study introduces dimensionless mathematical models that account for the sidewall effect, quantifying the characteristics of fireinduced smoke temperature distribution in utility tunnels, such as ceiling maximum temperature rise, vertical smoke temperature profile, and longitudinal smoke temperature decay. The models' predicted values closely align with the experimental results. These insights are pivotal for integrating cable numbers and spatial positioning in scenario-based fire prevention and mitigation strategies. The study's implications extend to the design and operation of urban utility tunnels, emphasizing the need for strategic cable placement and the potential for mathematical models to inform risk mitigation measures. The research contributes to the advancement of sustainable urban development by providing a framework for enhancing the safety and resilience of critical infrastructure against fire hazards.
C1 [Xu, Desheng; Li, Yanfeng; Yang, Xin; Li, Junmei; Li, Jiaxin] Beijing Univ Technol, Beijing Key Lab Green Built Environm & Energy Effi, Beijing, Peoples R China.
   [Zhong, Hua] London South Bank Univ, Sch Built Environm & Architecture, 103 Borough Rd, London SE1 0AA, England.
   [Huang, Youbo] Chongqing Univ Sci & Technol, Coll Safety Engn, Chongqing, Peoples R China.
   [Li, Yanfeng; Zhong, Hua] Beijing Univ Technol, Beijing 100124, Peoples R China.
C3 Beijing University of Technology; London South Bank University;
   Chongqing University of Science & Technology; Beijing University of
   Technology
RP Li, YF (corresponding author), Beijing Univ Technol, Beijing Key Lab Green Built Environm & Energy Effi, Beijing, Peoples R China.; Zhong, H (corresponding author), London South Bank Univ, Sch Built Environm & Architecture, 103 Borough Rd, London SE1 0AA, England.; Li, YF; Zhong, H (corresponding author), Beijing Univ Technol, Beijing 100124, Peoples R China.
EM liyanfeng@bjut.edu.cn; hua.zhong@lsbu.ac.uk
RI zhong, hua/AAC-9831-2022; Desheng, Xu/IVV-4174-2023; Huang,
   Youbo/IVH-1868-2023
OI zhong, hua/0000-0001-9604-4523; Xu, Desheng/0000-0002-6629-4561
FU Beijing Natural Science Foundation [8222002]; National Natural Science
   Foundation of China [52104185]
FX This work was supported by the Beijing Natural Science Foundation (Grant
   No: 8222002) , National Natural Science Foundation of China (Grant No:
   51378040) , and National Natural Science Foundation of China (Grant No.
   52104185) .
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NR 59
TC 6
Z9 6
U1 20
U2 32
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0886-7798
EI 1878-4364
J9 TUNN UNDERGR SP TECH
JI Tunn. Undergr. Space Technol.
PD OCT
PY 2024
VL 152
AR 105911
DI 10.1016/j.tust.2024.105911
EA JUN 2024
PG 15
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA XL5U1
UT WOS:001261860100001
DA 2025-04-22
ER

PT J
AU Tsinganos, K
   Gerasopoulos, E
   Keramitsoglou, I
   Pirrone, N
AF Tsinganos, Kanaris
   Gerasopoulos, Evangelos
   Keramitsoglou, Iphigenia
   Pirrone, Nicola
CA ERA-PLANET Team
TI ERA-PLANET, a European Network for Observing Our Changing Planet
SO SUSTAINABILITY
LA English
DT Article
DE earth observation; smart cities; GEOSS; air pollution; natural
   disasters; urban heat islands
AB ERA-PLANET is a wide European network comprised of 118 researchers from 35 partner institutions located in 18 countries, aiming to strengthen the European Research Area in the domain of Earth Observation (EO) in coherence with the European participation to the Group on Earth Observation (GEO) and the program for the establishment of a European capacity for Earth Observation, COPERNICUS. It will provide more accurate, comprehensive, and authoritative information to policy and decision-makers in key societal benefit areas (SBAs), under the umbrellas of dedicated projects in the topics of: smart cities and resilient societies; resource efficiency and environmental management; global changes and environmental treaties; polar areas and natural resources. ERA-PLANET will provide advanced decision support tools and technologies aimed to better monitor our global environment and share the information and knowledge in different domains of EO by launching joint transnational calls along the above four strands. The concept of the project that tackles with strand 1, as well as an example of a specific application fitting in, are described, aspiring to promote and coordinate the "smart-city" approach into a European network of cities and non-European follower cities, serving the need for a common approach to enhance environmental and societal resilience to air pollution, urban growth, and urban heat islands, as well as other natural/manmade stresses and relevant impacts. This is achieved through the synergy among technology, government, and society, while at the same time creating bridges between local/national initiatives with GEO/GEOSS, COPERNICUS, and other smart cities and GEO relevant projects. The project addresses initiatives in European cities but also specific issues dealing with air quality management in other parts of the world. Finally, it places major emphasis on fully exploiting key-enabling technologies and firmly addressing interoperability issues, in the context of big "smart city" data, and open science.
C1 [Tsinganos, Kanaris] Univ Athens, Dept Phys, Athens 15784, Greece.
   [Tsinganos, Kanaris; Gerasopoulos, Evangelos; Keramitsoglou, Iphigenia] Natl Observ Athens, Athens 11810, Greece.
   [Pirrone, Nicola; ERA-PLANET Team] Inst Atmospher Pollut Res, I-00185 Rome, Italy.
C3 National & Kapodistrian University of Athens; National Observatory of
   Athens; Consiglio Nazionale delle Ricerche (CNR); Istituto
   Sull'inquinamento Atmosferico (IIA-CNR)
RP Tsinganos, K (corresponding author), Univ Athens, Dept Phys, Athens 15784, Greece.; Tsinganos, K (corresponding author), Natl Observ Athens, Athens 11810, Greece.
EM tsingan@phys.uoa.gr; egera@noa.gr; ik@noa.gr; nicola.pirrone@iia.cnr.it
RI Pirrone, Nicola/IXD-5019-2023; Keramitsoglou, Iphigenia/F-3076-2011;
   Gerasopoulos, Evangelos/D-8808-2014
OI Gerasopoulos, Evangelos/0000-0002-8579-8562; Keramitsoglou,
   Iphigenia/0000-0002-9040-8653
FU European Commission [689443, H2020-SC5]
FX The authors wish to acknowledge the contribution of the ERA-PLANET
   project (Grant agreement no. 689443) funded by the European Commission
   as part of the H2020-SC5.
CR [Anonymous], WORLD URB PROSP 2014
   Department for Business Innovation and Skills, SMART CIT MARK OPP U
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NR 6
TC 7
Z9 7
U1 0
U2 23
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2017
VL 9
IS 6
AR 1040
DI 10.3390/su9061040
PG 8
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA EY6ZF
UT WOS:000404133200169
OA Green Submitted, Green Published, gold
DA 2025-04-22
ER

PT J
AU Zhang, YK
   Wang, ES
   Gong, YW
AF Zhang, Yukun
   Wang, Ersong
   Gong, Yongwei
TI A Structural Optimization of Urban Drainage Systems: An Optimization
   Approach for Mitigating Urban Floods
SO WATER
LA English
DT Article
DE urban drainage systems; redundancy intervention strategies; SWMM; flood
   risk mitigation
ID RESILIENCE
AB Urbanization and climate change increasingly challenge urban water management. In this context, the design of stormwater drainage systems, which traditionally relies on historical rainfall records, is being questioned. Although significant efforts have been dedicated to optimizing drainage networks, the upgrading of existing systems remains understudied. This research devised a set of viable stormwater drainage networks, referencing the road network of the Sino-Singapore Tianjin Eco-City (data from Google Maps). On this basis, utilizing design rainfall data (sourced from the local meteorological center), an extensive array of scenario analyses was conducted. The investigation assessed the performance of implementing two redundancy-based interventions-introducing loops and enlarging pipe diameters-as well as the patterns of flood risk response, and by integrating a multi-objective optimization algorithm, this study proposes a framework for the optimization of grey infrastructure upgrades based on component replacement. The findings suggest that a precise deployment strategy for grey infrastructure is essential. The former improves the effective flow distribution of the drainage system, while the latter enhances its flow capacity, making each intervention suitable for drainage systems with a different degree of centralization. Further research shows that an integrated hybrid scheme brings significant flood risk improvement with strong applicability for most urban drainage systems. The upgrade model proposed in this study could be a valuable initiative, offering theoretical insights for the construction and development of resilient cities.
C1 [Zhang, Yukun; Gong, Yongwei] Beijing Univ Civil Engn & Architecture, Key Lab Urban Stormwater Syst & Water Environm, Minist Educ, Beijing 100044, Peoples R China.
   [Wang, Ersong] Collaborat Innovat Ctr Energy Conservat & Emiss Re, Beijing 100044, Peoples R China.
C3 Beijing University of Civil Engineering & Architecture
RP Gong, YW (corresponding author), Beijing Univ Civil Engn & Architecture, Key Lab Urban Stormwater Syst & Water Environm, Minist Educ, Beijing 100044, Peoples R China.
EM gongyongwei@bucea.edu.cn
RI Zhang, Yukun/JZC-6813-2024
OI Gong, Yongwei/0000-0001-5439-6635
FU National Key R&D Program of China [2022YFC3800500]; Project of
   Construction and Support for High-Level Innovative Teams of Beijing
   Municipal-Institutions [BPHR20220108]; BUCEA Doctor Graduate Scientific
   Research Ability Improvement Project [DG2022012]
FX This research was funded by National Key R&D Program of China (Grand No.
   2022YFC3800500) and the Project of Construction and Support for
   High-Level Innovative Teams of Beijing Municipal-Institutions
   (BPHR20220108) and the BUCEA Doctor Graduate Scientific Research Ability
   Improvement Project (No. DG2022012).
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PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD JUN
PY 2024
VL 16
IS 12
AR 1696
DI 10.3390/w16121696
PG 21
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA WQ2O7
UT WOS:001256275400001
OA gold
DA 2025-04-22
ER

PT J
AU Doorga, JRS
   Magerl, L
   Bunwaree, P
   Zhao, JX
   Watkins, S
   Staub, CG
   Rughooputh, SDD
   Cunden, TSM
   Lollchund, R
   Boojhawon, R
AF Doorga, Jay R. S.
   Magerl, Leonard
   Bunwaree, Priyal
   Zhao, Jiaxin
   Watkins, Sophia
   Staub, Caroline G.
   Rughooputh, Soonil D. D., V
   Cunden, Tyagaraja S. M.
   Lollchund, Roddy
   Boojhawon, Ravindra
TI GIS-based multi-criteria modelling of flood risk susceptibility in Port
   Louis, Mauritius: Towards resilient flood management
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Flood risk; Site suitability analysis; Geospatial assessment; MCDM; AHP;
   Mauritius
ID ISLAND DEVELOPING STATE; DECISION-MAKING; URBAN; IRAN; AHP
AB Economic growth and population expansion in Mauritius have driven unprecedented rates of development. Most notably, increased urbanization of flood-prone regions has exacerbated challenges around resilience and vulnerability to recurrent flooding. We implement a multi criteria model consisting of a physical-oriented, a social-oriented and an economic-oriented scenario to identify highly vulnerable sites to flooding in the capital city, Port Louis. Social, technical, economic and legal perspectives are incorporated to propose comprehensive flood management strategies. The aim is to minimize the physical impacts of floods while also addressing the broader social and economic risks. Location-based flood management strategies are thereafter proposed to increase the resilience of the city to flooding. Measures include, inter alia, the construction of an underground stormwater storage tank at Champ de Mars, establishment of flood refugee camps at Valle acute accent e Pitot and Cite acute accent La Cure, reviewing building regulations and urban planning, replacement of the Caudan Underpass by an Overhead Bridge, green renaturing of rivers in downstream areas, construction of a retention pond on the downhill slope of the mountain at Bell Village, and the setting up of a diversion tunnel linking St Louis River to Grand River North West. The approach adopted will allow an understanding of the geography of flooding in Port Louis and support management decisions for limiting its impacts.
C1 [Doorga, Jay R. S.; Magerl, Leonard; Bunwaree, Priyal; Zhao, Jiaxin; Watkins, Sophia] Univ Oxford, Sch Geog & Environm, Oxford, England.
   [Doorga, Jay R. S.; Cunden, Tyagaraja S. M.] Univ Mascareignes, Fac Sustainable Dev & Engn, Rose Hill, Mauritius.
   [Staub, Caroline G.] Univ Dist Columbia, Ctr Urban Res Engagement & Scholarship, Washington, DC USA.
   [Rughooputh, Soonil D. D., V; Lollchund, Roddy; Boojhawon, Ravindra] Univ Mauritius, Fac Sci, Dept Phys & Math, Reduit, Mauritius.
C3 University of Oxford; University of the District of Columbia; University
   of Mauritius
RP Doorga, JRS (corresponding author), Univ Oxford, Sch Geog & Environm, Oxford, England.
EM jdoorga@udm.ac.mu
RI Doorga, Jay/AHB-5859-2022; Boojhawon, Ravindra/KWB-4883-2024; Zhao,
   Jiaxin/HKM-6699-2023
OI Bunwaree, Priyal/0000-0002-3697-7046; Magerl,
   Leonard/0000-0003-3909-772X
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VL 67
AR 102683
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PG 17
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WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA ZI9TJ
UT WOS:000761954100001
DA 2025-04-22
ER

PT J
AU Chan, FKS
   Chuah, CJ
   Ziegler, AD
   Dabrowski, M
   Varis, O
AF Chan, F. K. S.
   Chuah, C. Joon
   Ziegler, A. D.
   Dabrowski, M.
   Varis, O.
TI Towards resilient flood risk management for Asian coastal cities:
   Lessons learned from Hong Kong and Singapore
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Coastal cities; Climate adaptation; Resilience; Flood risk management;
   Hong Kong and Singapore
ID CLIMATE-CHANGE; ADAPTATION; MEGACITIES; STRATEGY; DELTAS; POLICY;
   INTEGRATION; RETHINKING; EXPOSURE; DRIVERS
AB Many coastal cities are experiencing growing risk to hydrological hazards through the combination of uncontrolled urban development and exposure to natural phenomena linked to climate change, including rising sea levels, intensified storms, and amplified storm surges. This growing risk is particularly acute in Asian coastal mega-cities, many of which have yet to develop adequate adaptation policies to address plausible impacts of climate change. In this analysis, we review how Hong Kong and Singapore, two of the most affluent coastal cities in East Asia, have initiated many flood mitigation strategies policies that have allowed them to reduce the impacts flooding. These strategies, once relying largely on building flood control structures, have now evolved to include holistic flood risk management approaches that include socio-economic factors. Arguably these two success stories provide inspiration for other coastal Asian cities. However, as climate change and uncontrolled development are likely to increase urban flooding in the future, general improvements could be made to improve knowledge transfer: e.g., develop means to work across policy silos and strike compromises between conflicting sectoral responsibilities, and develop long-term integrated strategies using planning tools and practices to address growing risk. While knowledge transfer cannot be direct because of different geographical settings, socio-economic situations, and political situations, we encourage governments to look beyond engineering-based flood control structures as to develop flood governance programs. (C) 2018 Elsevier Ltd. All rights reserved.
C1 [Chan, F. K. S.] Univ Nottingham Ningbo China, Sch Geog Sci, 199 Taikang East Rd, Ningbo 315100, Zhejiang, Peoples R China.
   [Chan, F. K. S.] Univ Leeds, Sch Geog, Leeds LS2 9JT, W Yorkshire, England.
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   [Chuah, C. Joon] Natl Univ Singapore, Inst Water Policy, 469A Bukit Timah Rd,Level 2,Tower Block, Singapore 259770, Singapore.
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C3 University of Nottingham Ningbo China; University of Leeds; University
   of Leeds; National University of Singapore; National University of
   Singapore; Delft University of Technology; Aalto University
RP Chan, FKS (corresponding author), Univ Nottingham Ningbo China, Sch Geog Sci, 199 Taikang East Rd, Ningbo 315100, Zhejiang, Peoples R China.
EM faith.chan@nottingham.edu.cn
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Z9 96
U1 14
U2 150
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD JUN 20
PY 2018
VL 187
BP 576
EP 589
DI 10.1016/j.jclepro.2018.03.217
PG 14
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA GF6UB
UT WOS:000432102500049
DA 2025-04-22
ER

PT J
AU Lo, AY
   Xu, BX
   Chan, FKS
   Su, RX
AF Lo, Alex Y.
   Xu, Bixia
   Chan, Faith K. S.
   Su, Ruixian
TI Social capital and community preparation for urban flooding in China
SO APPLIED GEOGRAPHY
LA English
DT Article
DE Social capital; Community resilience; Climate change adaptation; Risk
   mitigation; Flooding; China
ID RISK PERCEPTION; CLIMATE-CHANGE; ADAPTATION; MITIGATION; RESILIENCE;
   VULNERABILITY; PREPAREDNESS; MANAGEMENT; SHANGHAI; DROUGHT
AB Social capital can enhance community resilience to environmental change. Productive and trusted relations among social actors and effectual social norms can help local residents share resources, information and risks. The main objective of our study is to understand the ways in which social attributes and risk considerations influence adoption of resilient economic measures by individuals for reducing potential losses due to catastrophic rainstorm and flooding. This article provides evidence from China on how social capital contributes to anticipatory adaptation to environmental change. The inquiry is based on structured interviews with local residents of Tianjin, a flood-prone port city in China, and a standard regression analysis. Findings show that the intention to make preparation increases with the levels of social expectation, social relationship, and institutional trust. Perceived risk and damage experience, however, have no significant impacts. This suggests that building social capacity and trust will be more effective in enhancing community resilience than merely increasing awareness of hazard risks. We call for greater efforts on strengthening the capacity of formal and informal communal institutions. The structural changes required, however, are challenging. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Lo, Alex Y.] Univ Hong Kong, Kadoorie Inst, Hong Kong, Hong Kong, Peoples R China.
   [Xu, Bixia] Griffith Univ, Griffith Sch Environm, Nathan, Qld 4111, Australia.
   [Chan, Faith K. S.] Univ Nottingham, Sch Geog Sci, Ningbo, Zhejiang, Peoples R China.
   [Su, Ruixian] Tianjin Normal Univ, Sch Urban & Environm Studies, Tianjin, Peoples R China.
C3 University of Hong Kong; Griffith University; University of Nottingham
   Ningbo China; Tianjin Normal University
RP Lo, AY (corresponding author), Univ Hong Kong, TT Tsui Bldg,Pokfulam Rd, Hong Kong, Hong Kong, Peoples R China.
EM alexloyh@hku.hk
RI Chan, Faith Ka Shun/H-1541-2017; Lo, Alex/B-7948-2008
OI Chan, Faith Ka Shun/0000-0001-6091-6596; Lo, Alex/0000-0002-5953-4176
FU Academy of the Social Sciences in Australia under Australia-China
   Joint-action Program; Griffith Climate Change Response Program at
   Griffith University
FX This research was funded by the Academy of the Social Sciences in
   Australia under the Australia-China Joint-action Program and the
   Griffith Climate Change Response Program at Griffith University. The
   authors appreciate the research assistance provided by students at the
   Tianjin Normal University.
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NR 51
TC 58
Z9 63
U1 9
U2 108
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0143-6228
EI 1873-7730
J9 APPL GEOGR
JI Appl. Geogr.
PD OCT
PY 2015
VL 64
BP 1
EP 11
DI 10.1016/j.apgeog.2015.08.003
PG 11
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA CY2FU
UT WOS:000366225000001
DA 2025-04-22
ER

PT J
AU Tasmen, T
   Sen, MK
   Hossain, NUI
   Kabir, G
AF Tasmen, Taiyba
   Sen, Mrinal Kanti
   Hossain, Niamat Ullah Ibne
   Kabir, Golam
TI Modelling and assessing seismic resilience of critical housing
   infrastructure system by using dynamic Bayesian approach
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Resilience; Seismic hazards; Dynamic Bayesian network; Housing
   infrastructure system; ArcMap
ID FRAMEWORK; QUALITY
AB Seismic resilience, the ability of urban housing infrastructure to withstand and recover from seismic events, is of paramount importance in regions prone to earthquakes. Infrastructure systems are frequently harmed by different natural calamities. Despite the high degree of unpredictability in these risks, infrastructure may be made more dependable, resilient, and recoverable using the notion of resilience. This study uses DBN (Dynamic Bayesian Network) to quantify the time-varying resilience of critical housing infrastructure against seismic risks. It creates a methodology to measure seismic resilience and applies it to a real-world case study region, such as Tokyo and Kyoto in Japan, located in one of the world's most seismically active regions. All the resilience parameters under housing infrastructure against seismic resilience are selected, and information about the linked factors of the parameters are collected through literature and experts' opinion. Then using certain methods, the seismic resilience values for various time periods are computed. Eventually, this study examines the end resilience scenarios and attributes of two cities in Japan. Additionally, the resilience values for various time periods of each area of both cities are evaluated. The findings of the study demonstrate the dynamic nature of seismic resilience. In the pre-disaster phase, the housing infrastructure exhibited substantial resilience, with attributes such as rapidity, redundancy, and resourcefulness exceeding 80%. However, the occurrence of seismic events, particularly a heavy earthquake, resulted in a temporary decline in resilience. The post-earthquake period saw rapid recovery efforts, which contributed significantly to the restoration of resilience levels. Ultimately, the resilience levels exceeded the pre-disaster values, highlighting the efficacy of preventive measures. Upon examining five distinct time intervals, it becomes evident that the initial resilience levels (aligned with time slice 0) for Tokyo and Kyoto were documented at 0.85 and 0.90, respectively. However, subsequent to the manifestation of a seismic hazard (represented by time slice 1), these resilience values underwent significant reductions, plummeting to 18.82% for Tokyo and 15.56% for Kyoto. A comparative analysis between Tokyo and Kyoto (between time periods 1 to 4) further highlights the critical role of geographic location in resilience planning. Tokyo, being in closer proximity to seismic epicenters, experienced a significant resilience drop of 26.1% during a heavy earthquake, while Kyoto, situated farther away, demonstrated a 21.05% decline. These findings underscore the need for tailored resilience strategies based on risk exposure. Finally, with the help of evaluated resilience values, resilience maps for various time periods are prepared using ArcMap software to get a clear scenario against seismic hazards of both cities. The quantified resilience values will help the public authorities, stakeholders, and decision-makers to make decisions based on resilience with the assistance of this comparison and the assessed values of seismic resilience.
C1 [Tasmen, Taiyba] Khulna Univ Engn & Technol, Ind Engn & Management, Khulna, Bangladesh.
   [Sen, Mrinal Kanti] Assam Don Bosco Univ, Azara, India.
   [Hossain, Niamat Ullah Ibne] Arkansas State Univ, Engn Management Dept, Jonesboro, AR 72401 USA.
   [Kabir, Golam] Univ Regina, Ind Syst Engn, Regina, SK, Canada.
C3 Khulna University of Engineering & Technology (KUET); Assam Don Bosco
   University; Arkansas State University; University of Regina
RP Hossain, NUI (corresponding author), Arkansas State Univ, Engn Management Dept, Jonesboro, AR 72401 USA.
EM taiybatasmen@gmail.com; mrinal.sen@dbuniversity.ac.in;
   nibnehossain@astate.edu; golam.kabir@uregina.ca
RI Hossain, Niamat/ABE-1309-2020; SEN, MRINAL KANTI/AAV-9991-2021; Kabir,
   Golam/ACW-5831-2022
OI Kabir, Golam/0000-0001-9591-0629; SEN, MRINAL KANTI/0000-0003-0364-7726;
   Ibne Hossain, Niamat Ullah/0000-0002-6775-585X
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NR 43
TC 12
Z9 13
U1 15
U2 45
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD NOV 20
PY 2023
VL 428
AR 139349
DI 10.1016/j.jclepro.2023.139349
EA OCT 2023
PG 17
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA Y5RX6
UT WOS:001105839100001
DA 2025-04-22
ER

PT J
AU Gómez-Expósito, A
   Arcos-Vargas, A
   Maza-Ortega, JM
   Rosendo-Macías, JA
   Alvarez-Cordero, G
   Carillo-Aparicio, S
   González-Lara, J
   Morales-Wagner, D
   González-García, T
AF Gomez-Exposito, Antonio
   Arcos-Vargas, Angel
   Maza-Ortega, Jose M.
   Rosendo-Macias, Jose A.
   Alvarez-Cordero, Gabriel
   Carillo-Aparicio, Susana
   Gonzalez-Lara, Juan
   Morales-Wagner, Daniel
   Gonzalez-Garcia, Tomas
TI City-Friendly Smart Network Technologies and Infrastructures: The
   Spanish Experience
SO PROCEEDINGS OF THE IEEE
LA English
DT Article
DE Asset optimization; demand management; distribution automation;
   distributed generation; resilience; smart grids
ID ACTIVE DISTRIBUTION NETWORKS; RENEWABLE ENERGY-SOURCES; STATE
   ESTIMATION; MANAGEMENT-SYSTEMS; ELECTRIC VEHICLES; POWER; STORAGE;
   MICROGRIDS; CITIES; HVDC
AB Efficient, resilient, and sustainable electricity delivery is a key cornerstone in increasingly large and complex urban environments, where citizens expect to keep or rise their living standards. In this context, cost-effective and ubiquitous digital technologies are driving the transformation of existing electrical infrastructures into truly smart systems capable of better providing the services a low-carbon society is demanding. The goal of this paper is twofold: 1) to review the dramatically evolving landscape of power systems, from the old framework based on centralized generation and control, aimed at serving inelastic customers through alternating current (ac) transmission networks and one-way distribution feeders, to a new paradigm centered mainly around two main axes: renewable generation, both centralized and distributed, and active customers (prosumers), interacting with each other through hybrid ac/dc smart grids; 2) to illustrate, through featured success stories, how several smart grid concepts and technologies have been put into practice in Spain over the last few years to optimize the performance of urban electrical assets.
C1 [Gomez-Exposito, Antonio; Arcos-Vargas, Angel; Maza-Ortega, Jose M.; Rosendo-Macias, Jose A.] Univ Seville, Seville 41004, Spain.
   [Alvarez-Cordero, Gabriel] REE, Madrid 28109, Spain.
   [Carillo-Aparicio, Susana; Gonzalez-Lara, Juan] Endesa, Madrid 28042, Spain.
   [Morales-Wagner, Daniel] Ingelectus, Seville 41092, Spain.
C3 University of Sevilla
RP Gómez-Expósito, A (corresponding author), Univ Seville, Seville 41004, Spain.
EM age@us.es
RI Macias, José/A-4707-2011; Maza-Ortega, Jose M./L-3067-2014;
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NR 205
TC 22
Z9 25
U1 3
U2 42
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 0018-9219
EI 1558-2256
J9 P IEEE
JI Proc. IEEE
PD APR
PY 2018
VL 106
IS 4
SI SI
BP 626
EP 660
DI 10.1109/JPROC.2018.2793461
PG 35
WC Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering
GA GB6RX
UT WOS:000429201400009
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Li, BN
   Liao, WC
   Sun, WZ
   Zeng, YX
   Zheng, SQ
AF Li, Boning
   Liao, Wen-Chi
   Sun, Weizeng
   Zeng, Yongxuan
   Zheng, Siqi
TI The US-China Trade War: Quantify the Negative Shocks to Local Housing
   Markets and Land-Based Finance in Chinese Cities
SO JOURNAL OF REAL ESTATE RESEARCH
LA English
DT Article
DE US-China trade war; Trump tariffs; housing market; land-based finance;
   Three Red Lines; urban resilience; F13; R31; H71
ID REGIONAL-DEVELOPMENT; IMPACTS; DEMAND; PRICES; POLICY
AB The US-China trade war's impacts on Chinese cities' housing markets and local public finance are examined. In China, institutional reforms and ever-growing housing prices in the past resulted in land-based finance that city governments heavily rely on land sales (state-land use-right transfers) for fiscal revenues. However, the trade war has severely struck the cities' housing markets and land sales since 2018. This article applies 2016-2019 data to a shift-share analysis and finds the following. Imposed by the US on imports from China, the retaliatory tariffs hurt Chinese cities' production and caused employment and wage declines and firm exit. Importantly, the tariff shocks also affected housing and land markets. A one percentage point (p.p.) increases in the (weighted average) tariffs applicable to cities' exports reduced cities' new home sale volume by 3.1% and prices by 1.2%. Besides, city governments' land sale revenues dropped 7.6%. Since the applicable tariffs to cities increased by 1.62 p.p. on average and 10.4 p.p. at the extreme by 2019, many cities' housing markets and public finance have hit trouble. The resilient cities to the tariff shocks were those with less overbuilding, more population, more diversified industries or export destinations, or a stronger tertiary sector.
C1 [Li, Boning] Beijing Wuzi Univ, Beijing, Peoples R China.
   [Liao, Wen-Chi] Natl Univ Singapore, Singapore, Singapore.
   [Liao, Wen-Chi; Zheng, Siqi] MIT, Cambridge, MA USA.
   [Sun, Weizeng] Nanjing Audit Univ, Nanjing, Peoples R China.
   [Sun, Weizeng; Zeng, Yongxuan] Cent Univ Finance & Econ, Beijing, Peoples R China.
C3 Beijing Wuzi University; National University of Singapore; Massachusetts
   Institute of Technology (MIT); Nanjing Audit University; Central
   University of Finance & Economics
RP Liao, WC (corresponding author), MIT, Ctr Real Estate, 105 Massachusetts Ave, Samuel Tak Lee Bldg 9-343, Cambridge, MA 02139 USA.
EM wliao@nus.edu.sg
RI ; Liao, Wen-Chi/K-1559-2013
OI Zheng, Siqi/0000-0002-4467-8505; Liao, Wen-Chi/0000-0002-5672-2016; SUN,
   WEIZENG/0000-0001-8343-6093; Zeng, Yongxuan/0009-0000-9774-3713
FU National Natural Science Foundation of China [71903210, 72274228]; Youth
   Research Fund Project of Beijing Wuzi University [2024XJQN25]; Beijing
   Social Science Fund Project, Beijing Education Commission Social Science
   Plan Key Project [SZ202210037018]
FX This study was funded by National Natural Science Foundation of China
   under Grants [No. 71903210] and [No. 72274228], Youth Research Fund
   Project of Beijing Wuzi University for the Grant [No. 2024XJQN25], and
   Beijing Social Science Fund Project, Beijing Education Commission Social
   Science Plan Key Project [No.: SZ202210037018].
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NR 57
TC 1
Z9 1
U1 12
U2 13
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 0896-5803
EI 2691-1175
J9 J REAL ESTATE RES
JI J. Real Estate Res.
PD JUL 2
PY 2024
VL 46
IS 3
SI SI
BP 308
EP 335
DI 10.1080/08965803.2024.2367794
EA JUN 2024
PG 28
WC Business, Finance; Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA G2O9M
UT WOS:001285638300001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Li, PJ
   Zhuang, LW
   Lin, KR
   She, DX
   Chen, QL
   Wang, Q
   Xia, J
AF Li, Pengjun
   Zhuang, Luwen
   Lin, Kairong
   She, Dunxian
   Chen, Qiuling
   Wang, Qiang
   Xia, Jun
TI New perspectives on urban stormwater management in China, with a focus
   on extreme rainfall events
SO NATURAL HAZARDS
LA English
DT Review
DE Resilient City; Smart integrated management; Urban extreme rainfall;
   Urban stormwater management; "7.20" extreme rainfall in Zhengzhou
ID PRECIPITATION EXTREMES; NON-STATIONARITY; WATER; SIMULATION; INTENSITY;
   FREQUENCY; TRENDS; MODEL; SWMM; AREA
AB Climate change, especially the rise in extreme rainfall events, combined with urbanization, poses significant challenges to traditional hydrological methodologies. These developments call for researchers to reassess conventional analytical and numerical approaches and make the necessary adjustments to address these evolving conditions. In this study, we begin by analyzing the patterns and mechanisms of the extreme rainfall event in Zhengzhou on July 20, 2021 ("7.20" extreme rainfall in Zhengzhou). Building on this analysis, we offer insights and propose solutions to key issues in urban stormwater management. A bibliometric analysis of the Zhengzhou event indicates that urban flooding is primarily driven by climate change, with urbanization being a secondary factor. Additionally, the integration of machine learning with traditional numerical hydrological models, such as the widely used SWMM model, has emerged as a research trend to enhance the accuracy and comprehensiveness of parameter estimation. New urban stormwater management techniques and strategies are essential for improving urban flooding resilience, including a three-level collaborative governance system, urban green-gray-blue facilities, smart integrated management, and digital twin technologies. Furthermore, fully coupled water management models and strategies that incorporate all elements of hydrological cycles are essential for addressing complex urban hydrological challenges.
C1 [Li, Pengjun; She, Dunxian; Xia, Jun] Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.
   [Xia, Jun] Chinese Acad Sci, Key Lab Water Cycle & Related Land Surface Proc, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Zhuang, Luwen; Lin, Kairong; Wang, Qiang] Sun Yat sen Univ, Sch Civil Engn, State Key Lab Tunnel Engn, Guangzhou 510275, Peoples R China.
   [Chen, Qiuling; Wang, Qiang] Pearl River Water Resources Commiss, Pearl River Water Resources Res Inst, Guangzhou 510611, Peoples R China.
C3 Wuhan University; Chinese Academy of Sciences; Institute of Geographic
   Sciences & Natural Resources Research, CAS; Sun Yat Sen University
RP Xia, J (corresponding author), Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.; Xia, J (corresponding author), Chinese Acad Sci, Key Lab Water Cycle & Related Land Surface Proc, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
EM xiajun666@whu.edu.cn
RI Wang, Qiang/MNO-3313-2025; she, dunxian/B-4667-2018
FU The Ministry of Water Resources of the People's Republic of China
   [SKS-2022014]; Ministry of Water Resources of the People's Republic of
   China [2023B1515040028, 2023A1515110764]; Guangdong Basic and Applied
   Basic Research Foundation [440001-2023-10716]; Guangdong Provincial
   Bureau of Hydrology
FX We acknowledge the financial support from The Ministry of Water
   Resources of the People's Republic of China (SKS-2022014), Guangdong
   Basic and Applied Basic Research Foundation (2023B1515040028,
   2023A1515110764), and Guangdong Provincial Bureau of Hydrology
   (440001-2023-10716).
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NR 132
TC 1
Z9 1
U1 44
U2 44
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD MAR
PY 2025
VL 121
IS 4
BP 3745
EP 3774
DI 10.1007/s11069-024-06994-3
EA NOV 2024
PG 30
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 1KC8W
UT WOS:001349527300003
DA 2025-04-22
ER

PT J
AU Rahimi-Golkhandan, A
   Garvin, MJ
   Brown, BL
AF Rahimi-Golkhandan, Armin
   Garvin, Michael J.
   Brown, Bryan L.
TI Characterizing and measuring transportation infrastructure diversity
   through linkages with ecological stability theory
SO TRANSPORTATION RESEARCH PART A-POLICY AND PRACTICE
LA English
DT Article
DE Infrastructure; Natural Hazards; Multimode; Transportation; Diversity;
   Resilience
ID FUNCTIONAL DIVERSITY; TEMPORAL VARIABILITY; NETWORK RESILIENCE;
   CLIMATE-CHANGE; ROAD NETWORKS; GRAPH-THEORY; BIODIVERSITY;
   VULNERABILITY; ACCESSIBILITY; CONNECTIVITY
AB Transportation infrastructure is critical to any community. Disturbances such as natural hazards can hinder transportation infrastructure performance impacting a community's quality of life through disruptions in service and effects on interdependent systems. Ecological systems are robust and resilient and have similarities with infrastructure systems. Diversity is a fundamental element of ecological resilience and is recognized as an important factor in transportation resilience. However, measures of transportation diversity are not well-developed. Accordingly, this paper adapts the ecological diversity concepts of richness and evenness to develop an approach to characterize transportation system diversity and distinguishes the approach from existing methods. Measures of transportation functional richness and evenness are derived and applied to New York City at the zip code level. The results facilitate identification of zip codes in New York City with varying levels of transportation diversity. Those zip codes with low diversity generally have limited availability (low richness) and disproportionate distribution (low evenness) of alternative transportation modes. Further, these zip codes are potentially susceptible to system disturbances as a consequence of routine disruptions or natural hazards. For instance, many low diversity zip codes are in hurricane evacuation zones. Limited complementarity in the transportation system of these zip codes will likely impact evacuations during hurricanes and recovery to pre-disturbance performance levels. Ultimately, the transportation diversity approach presented should lead to better understanding of transportation system characteristics such as inherent and augmented complementarity, which will enhance transportation system performance in urban communities.
C1 [Rahimi-Golkhandan, Armin; Garvin, Michael J.] Virginia Tech, Dept Civil & Environm Engn, Blacksburg, VA 24060 USA.
   [Brown, Bryan L.] Virginia Tech, Dept Biol Sci, Blacksburg, VA 24060 USA.
C3 Virginia Polytechnic Institute & State University; Virginia Polytechnic
   Institute & State University
RP Garvin, MJ (corresponding author), Virginia Tech, Dept Civil & Environm Engn, 116 Patton Hall, Blacksburg, VA 24061 USA.
EM armin@vt.edu; garvin@vt.edu; brown51@vt.edu
RI Brown, Bryan/D-9726-2014; Garvin, Michael/JGL-6361-2023
OI Brown, Bryan/0000-0003-4837-7117
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NR 120
TC 11
Z9 11
U1 11
U2 89
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0965-8564
J9 TRANSPORT RES A-POL
JI Transp. Res. Pt. A-Policy Pract.
PD OCT
PY 2019
VL 128
BP 114
EP 130
DI 10.1016/j.tra.2019.07.013
PG 17
WC Economics; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Transportation
GA IT6SS
UT WOS:000483005700008
DA 2025-04-22
ER

PT J
AU Karamouz, M
   Zahmatkesh, Z
AF Karamouz, Mohammad
   Zahmatkesh, Zahra
TI Quantifying Resilience and Uncertainty in Coastal Flooding Events:
   Framework for Assessing Urban Vulnerability
SO JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT
LA English
DT Article
DE Coastal urban areas; Flood vulnerability; Resiliency; Exposure;
   Susceptibility uncertainty analysis
ID SENSITIVITY-ANALYSIS; DECISION-MAKING; INDEX; MODEL; RISK; GIS
AB Flood resilience is a desirable state of natural and built environments in dealing with hazards such as extreme rainfalls, storm surges, and hurricanes. Here, resilience means the capacity to reach an acceptable level of functionality during and after a flood. Observations of the recent history of flood disasters in New Orleans and New York City (NYC) have suggested the necessity of quantifying resilience in these regions utilizing a floodplain's vulnerability assessment platform. Once a meaningful and well-recognized method is developed, then resources can be allocated to increase resiliency. In this study, redundancy, resourcefulness, robustness, and rapidity metrics based on socioeconomic, manmade, and natural conditions are developed to quantify coastal resilience. Exposure and susceptibility are also defined and evaluated for quantifying vulnerability. The proposed evaluation method, which is based on the linear combination of the developed metrics, uses a multicriteria decision making technique for ranking the factors of the system and their weights. Sensitivity and uncertainty analyses are performed to determine the sensitivity of the developed platform to 54 different factors affecting the system's vulnerability and the uncertainty associated with estimating the representative values and weights of those factors. The proposed platform allows identifying those factors that have the most significant impact on resiliency. As a result, resource allocation could be directed to strengthen those factors rather than ad hoc allocations without consideration of their overall impact on building a more resilient region. Application of the proposed scheme is investigated using a coastal area in the Bronx Borough of NYC. The proposed algorithm can be applied to other coastal areas in identifying effective factors on their system's flood resiliency. (C) 2016 American Society of Civil Engineers.
C1 [Karamouz, Mohammad] Univ Tehran, Sch Civil Engn, Coll Engn, Tehran 1417466191, Iran.
   [Zahmatkesh, Zahra] Univ Manitoba, Dept Civil Engn, Fac Engn, Winnipeg, MB R3T 5V6, Canada.
C3 University of Tehran; University of Manitoba
RP Karamouz, M (corresponding author), Univ Tehran, Sch Civil Engn, Coll Engn, Tehran 1417466191, Iran.
EM karamouz@ut.ac.ir; Zahra.ZahmatkeshAliabadi@umanitoba.ca
RI Karamouz, Mohammad/Z-2080-2019
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NR 69
TC 25
Z9 27
U1 7
U2 143
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 0733-9496
EI 1943-5452
J9 J WATER RES PLAN MAN
JI J. Water Resour. Plan. Manage.-ASCE
PD JAN
PY 2017
VL 143
IS 1
AR 04016071
DI 10.1061/(ASCE)WR.1943-5452.0000724
PG 19
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Water Resources
GA EK1CA
UT WOS:000393662200006
DA 2025-04-22
ER

PT J
AU Aboukorin, SAA
   Han, HY
   Mahran, MGN
AF Aboukorin, Salma Antar A.
   Han, Haoying
   Mahran, Mahran Gamal N.
TI Pandemic resilience planning: NPI measures and Covid-19 impacts in UK,
   Germany, and Italy
SO CITIES
LA English
DT Article
DE Covid-19; Resilience; Public health measures; Stringency Index
AB In the absence of vaccines and antiviral medication or until a worldwide vaccine is distributed, non-pharmaceutical interventions (NPIs), else known by precautionary measures, implemented in response to emerging epidemic respiratory viruses are the only option available to delay and moderate the spread of the virus in a population. Almost all NPI measures relate to mega urban policies in dealing with the movement and gathering of population in urban areas and public establishments. These precautionary measures are known to vary in scale of application, as some may be performed on the national scale while others are only practiced in certain regions or cities. Therefore, this study is an attempt to assess the effectiveness of such measures according to their level of practice, duration, and stringency score (degree of application), in curbing the aggressive spread of covid-19, and thus formulate possible urban policies for the future planning of pandemic resilient cities. Since Europe is known to be one of the hardly hit regions, this research targeted three of its worst infested countries, Germany, Italy, and the UK. This study is structured to address the three main pandemic waves from the first announcement of the pandemic attack in January 2020 to March 2021. This method is followed to identify the most effective measures to counter a pandemic attack and determine their optimal scale of implementation. Findings suggest that less strict measures and smaller implementation scales were more effective in stemming the spread of COVID-19 compared to other measures that were economically and socially burdensome. Timing also played a crucial role, as implementing stricter measures early on in a pandemic proved beneficial in reducing its overall impact. Therefore, it is advisable to prioritize stringent interventions in the initial phases of a pandemic and then transition to less strict and localized measures to support the resilience of urban societies in the face of future outbreaks. In alignment with these recommendations, this research significantly advances the fields of pandemic preparedness and urban policies. By revealing the dynamic nature of disease control strategies and the need for adaptability, it provides a robust theoretical foundation for crafting more effective public health and urban policies during future outbreaks.
C1 [Aboukorin, Salma Antar A.; Han, Haoying; Mahran, Mahran Gamal N.] Zhejiang Univ, Coll Civil Engn & Architecture, Hangzhou, Peoples R China.
   [Han, Haoying] City Univ Macau, Fac Innovat & Design, Taipa, Peoples R China.
   [Aboukorin, Salma Antar A.; Mahran, Mahran Gamal N.] El Minya High Inst Engn & technol, Dept Architecture, Al Minya, Egypt.
C3 Zhejiang University; City University of Macau
RP Han, HY (corresponding author), Zhejiang Univ, Coll Civil Engn & Architecture, Hangzhou, Peoples R China.; Han, HY (corresponding author), City Univ Macau, Fac Innovat & Design, Taipa, Peoples R China.
EM salma.antar@mhiet.edu.eg; hanhaoying@zju.edu.cn;
   mahran.gamal@mhiet.edu.eg
RI Han, Haoying/KHZ-9674-2024; naguib, Mahran/HZM-0901-2023
OI Han, Haoying/0000-0003-4933-9665; Mahran, Mahran/0000-0002-5187-0466
FU Center for Balance Architecture of Zhejiang University [20203512-02B]
FX This research is supported by the Center for Balance Architecture of
   Zhejiang University (Project No: K Heng 20203512-02B, Index and planning
   methods of resilient cities) .
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NR 51
TC 2
Z9 2
U1 6
U2 13
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2023
VL 143
AR 104621
DI 10.1016/j.cities.2023.104621
EA OCT 2023
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA X2GP5
UT WOS:001096693900001
DA 2025-04-22
ER

PT J
AU Abdul-Rahman, M
   Adegoriola, MI
   McWilson, WK
   Soyinka, O
   Adenle, YA
AF Abdul-Rahman, Mohammed
   Adegoriola, Mayowa I.
   McWilson, Wilson Kodwo
   Soyinka, Oluwole
   Adenle, Yusuf A.
TI Novel Use of Social Media Big Data and Artificial Intelligence for
   Community Resilience Assessment (CRA) in University Towns
SO SUSTAINABILITY
LA English
DT Article
DE machine learning; natural language processing; text mining; social
   media; studentification; sustainability
ID STUDENTIFICATION; GEOGRAPHIES; STUDENTS; PEOPLE; FUTURE; CITIES; PLACE
AB University towns face many challenges in the 21st century due to urbanization, increased student population, and higher educational institutions' inability to house all their students on-campus. For university towns to be resilient and sustainable, the challenges facing them must be assessed and addressed. To carry out community resilience assessments, this study adopted a novel methodological framework to harness the power of artificial intelligence and social media big data (user-generated content on Twitter) to carry out remote studies in six university towns on six continents using Text Mining, Machine Learning, and Natural Language Processing. Cultural, social, physical, economic, and institutional and governance community challenges were identified and analyzed from the historical big data and validated using an online expert survey. This study gives a global overview of the challenges university towns experience due to studentification and shows that artificial intelligence can provide an easy, cheap, and more accurate way of conducting community resilience assessments in urban communities. The study also contributes to knowledge of research in the new normal by proving that longitudinal studies can be completed remotely.
C1 [Abdul-Rahman, Mohammed; Adegoriola, Mayowa I.; McWilson, Wilson Kodwo] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
   [Abdul-Rahman, Mohammed] Univ Lagos, Dept Urban & Reg Planning, Lagos 101017, Nigeria.
   [Abdul-Rahman, Mohammed] AI Africa Lab, Lagos 101017, Nigeria.
   [Soyinka, Oluwole] Univ British Columbia, Sch Publ Policy & Global Affairs, Vancouver Campus, Vancouver, BC V6T 1Z2, Canada.
   [Adenle, Yusuf A.] Chinese Univ Hong Kong, Dept Geog & Resource Management, Hong Kong, Peoples R China.
C3 Hong Kong Polytechnic University; University of Lagos; University of
   British Columbia; Chinese University of Hong Kong
RP Abdul-Rahman, M (corresponding author), Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.; Abdul-Rahman, M (corresponding author), Univ Lagos, Dept Urban & Reg Planning, Lagos 101017, Nigeria.; Abdul-Rahman, M (corresponding author), AI Africa Lab, Lagos 101017, Nigeria.
EM 18042561r@connect.polyu.hk
RI Adenle, Yusuf/JHU-7218-2023; Adegoriola, mayowa/GRN-9385-2022;
   Abdul-Rahman, Mohammed/V-1227-2018; SOYINKA, Oluwole/N-4011-2015
OI Abdul-Rahman, Mohammed/0000-0002-0568-1744; Adenle,
   Yusuf/0000-0002-4596-5311; Adegoriola, Mayowa
   Idakolo/0000-0003-2933-4875; McWilson, Wilson Kodwo/0000-0001-6206-0883;
   SOYINKA, Oluwole/0000-0002-4687-1843
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NR 73
TC 4
Z9 4
U1 12
U2 56
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JAN
PY 2023
VL 15
IS 2
AR 1295
DI 10.3390/su15021295
PG 30
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 8I2II
UT WOS:000921549600001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Singh, I
   Muhuri, S
AF Singh, Ishkiran
   Muhuri, Soumi
TI Livelihood Asset-Based Resilience for Urban Development-Induced Rural
   Displacement and Resettlement: A Case Study of Atal Nagar-Nava Raipur,
   Chhattisgarh, India
SO JOURNAL OF URBAN PLANNING AND DEVELOPMENT
LA English
DT Article
DE Urban development; Rural area; Displacement and resettlement; Livelihood
   resilience; Confirmatory factor analysis
ID IMPACTS; HOUSEHOLD; PERSPECTIVES; ADAPTATION; EXPERIENCE; HERITAGE;
   MODEL; RIVER
AB Transformation of agricultural land into urban areas causes negative impacts on the livelihood of people in rural areas and affects their overall condition. To maintain or increase the opportunities for living and well-being during any disturbance resulting from a development project is called livelihood resilience. This research presents a comprehensive assessment of the effects of urban development-induced displacement and resettlement on the livelihood resilience of rural households. The sustainable livelihood approach (SLA), proposed by the Department for International Development (DFID), has been utilized to achieve these objectives. This research designed a measurement model through a systematic selection of indicators under five livelihood assets. The measurement model was verified by interviewing 348 households and applying a confirmatory factor analysis. Then, through a pairwise comparison of three scenarios of households (already displaced, economically displaced, and to-be-displaced) applying Mann-Whitney U-tests, the study evaluated the livelihood resilience of the households of Atal Nagar-Nava Raipur, Chhattisgarh, India. The findings show variability in physical assets across the scenarios, while there is no significant difference in social assets. The economic assets are significantly different for economically displaced and to-be-displaced households. Moreover, the result also shows that economically displaced households suffer the most, while the already displaced households get accustomed to the situation with time. The research reveals that rather than only providing monetary compensation, intensifying agricultural or farming activities, along with providing various supports for maintaining social and human assets, can better ensure the sustainable development of affected people and the efficacy of urban development projects. Moreover, it highlights the critical role of well-structured resettlement programs in mitigating negative impacts and bolstering livelihood resilience. With a novel methodological approach and the obtained results, this research provides valuable insights for policymakers and urban planners that can help craft urban development strategies that prioritize the welfare of the affected people from rural areas and improve their livelihood resilience.
   Urban development, through the transformation of agricultural land, negatively impacts the lives and livelihoods of the people in rural areas. This research endeavors to mitigate the risks by strengthening the livelihood resilience of the households in rural areas impacted by a new city/town development. This research identified four livelihood assets, namely, physical, social, economic, and human, to understand the nature of livelihood resilience. The research reveals that rather than only providing monetary compensation, intensification of agricultural or farming activities, livestock breeding, and accessibility of irrigation facilities are more crucial for people in rural areas. Moreover, the physical infrastructure, although improved after resettlement, may not ensure long-term resilience for displacees and resettlers due to the loss of regular income and employment. In addition, providing necessary information related to displacement and resettlement and various government schemes and assessing and planning by local government, institutions to enhance communication with neighbors and friends are important for making the deprived people resilient.
C1 [Singh, Ishkiran; Muhuri, Soumi] Natl Inst Technol, Dept Planning & Architecture, Rourkela 769008, Orissa, India.
C3 National Institute of Technology (NIT System); National Institute of
   Technology Rourkela
RP Singh, I (corresponding author), Natl Inst Technol, Dept Planning & Architecture, Rourkela 769008, Orissa, India.
EM gangish58@gmail.com; muhurisoumi@gmail.com
FU National Institute of Technology Rourkela; Ministry of Human Resource
   and Development (MHRD), India
FX The authors sincerely thank the National Institute of Technology
   Rourkela for providing the necessary facilities and the Ministry of
   Human Resource and Development (MHRD), India, for funding the research
   program carried out at the institute. The authors also acknowledge the
   villagers and officials who participated, gave their precious time for
   the survey, and provided valuable information regarding the
   questionnaire. The authors also recognize the assistance of the
   surveyors; without them, the survey would be impossible.
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NR 92
TC 0
Z9 0
U1 10
U2 18
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 0733-9488
EI 1943-5444
J9 J URBAN PLAN DEV
JI J. Urban Plan. Dev
PD SEP 1
PY 2024
VL 150
IS 3
AR 04024028
DI 10.1061/JUPDDM.UPENG-5061
PG 17
WC Engineering, Civil; Regional & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Public Administration; Urban Studies
GA YU2F2
UT WOS:001270926900003
DA 2025-04-22
ER

PT J
AU Tang, DC
   Zhao, ZQ
   Li, JN
   Boamah, V
AF Tang, Decai
   Zhao, Ziqian
   Li, Jiannan
   Boamah, Valentina
TI Research on coupling coordination degree of digital finance and economic
   resilience in the Yangtze River Economic Belt
SO NATURAL HAZARDS
LA English
DT Article
DE Digital finance; Economic resilience; Coupling coordination degree
   model; Utilizing canonical correlation analysis; Yangtze River Economic
   Belt
ID URBAN RESILIENCE; IMPACT
AB As one of the economic centers of China, improving the economic resilience of the Yangtze river economic belt (YREB) is vital to China's steady economic advancement. This study analyzes the provinces and cities' digital financial and economic resilient status in the YREB for 2011-2021. A coupled coordination degree model is used to verify the interaction and strength between digital finance and economic resilience advancement in the YREB from both temporal and spatial perspectives. Utilizing canonical correlation analysis, the influencing factors and degree of the interaction between digital finance and economic resilience are investigated. The findings indicate that the level of digital finance and economic resilience coupled coordinated in the YREB is generally on the rise, from basic coordination to moderate coordination, and that there are spatial differences in coupled coordination, with the backward part of the YREB having the highest levels, followed by the middle and upward part. The first canonical correlation coefficient (0.948) obtained by canonical correlation analysis is significantly higher than the other coefficients, and digital finance and economic resilience are significantly correlated. Moreover, the digital financial coverage breadth and use depth, economic level, social consumption level and industrial upgrading level are the key factors affecting the coordinated development and economic resilience in the YREB. Therefore, this study proposes the following policy recommendations based on the results: actively facilitate digital financial growth, optimize the industrial structure, enhance countries' economic resilience, and boost the construction of countries' coordinated growth to foster the synergy of the YREB.
C1 [Tang, Decai; Zhao, Ziqian; Li, Jiannan; Boamah, Valentina] Nanjing Univ Informat Sci & Technol, Sch Management Sci & Engn, Nanjing 210044, Peoples R China.
C3 Nanjing University of Information Science & Technology
RP Zhao, ZQ (corresponding author), Nanjing Univ Informat Sci & Technol, Sch Management Sci & Engn, Nanjing 210044, Peoples R China.
EM tangdecai@nuist.edu.cn; 20211224032@nuist.edu.cn;
   202219000026@nuist.edu.cn; 202351240004@nuist.edu.cn
RI TANG, DE-CAI/GZM-9447-2022; li, jn/ABH-3120-2021; Boamah,
   Valentina/HRD-7690-2023
OI Tang, Decai/0000-0003-4447-2619
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NR 80
TC 1
Z9 1
U1 22
U2 29
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD DEC
PY 2024
VL 120
IS 15
BP 14279
EP 14309
DI 10.1007/s11069-024-06776-x
EA JUL 2024
PG 31
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA O5G7O
UT WOS:001272241200016
DA 2025-04-22
ER

PT J
AU Navarro, FAR
   Gesualdo, GC
   Ferreira, RG
   Rápalo, LMC
   Benso, MR
   de Macedo, MB
   Mendiondo, EM
AF Richmond Navarro, Fabricio Alonso
   Gesualdo, Gabriela Chiquito
   Ferreira, Renan Gon
   Castillo Rapalo, Luis Miguel
   Benso, Marcos Roberto
   de Macedo, Marina Batalini
   Mendiondo, Eduardo Mario
TI A novel multistage risk management applied to water-related disaster
   using diversity of measures: A theoretical approach
SO ECOHYDROLOGY & HYDROBIOLOGY
LA English
DT Article
DE multistage risk management; natural disaster; anthropological
   activities; resilience; ecohydrology
ID CLIMATE-CHANGE SCENARIOS; SAO-PAULO; QUALITY; SYSTEM; RETURN
AB The concept of water security considers the availability of water in sufficient quantity and quality for human activities and ecosystem maintenance in a resilient, stable politic and peaceful climate. The cooperation and interaction between human activities and ecosystems has not been clearly understood, which undermines the resilience of society and the environment against water-related disasters. Thus, we presented a theoretical approach of multistage risk management combining Nature-based Solutions (NbS), multidimensional indices and raising awareness measures to increase water security. Our results show how this proposal can improve risk management, decreasing economic global losses from natural hazards and increasing willingness to adapt and preparedness better than in some real cases analyzed here. We concluded that the understanding of the relationship among water security elements can increase the resilience of cities and urban centers, through the implementation of new tools such as NbS, multidimensional indices and other novel non-structural measures. (c) 2021 European Regional Centre for Ecohydrology of the Polish Academy of Sciences. Published by Elsevier B.V. All rights reserved.
C1 [Richmond Navarro, Fabricio Alonso; Gesualdo, Gabriela Chiquito; Ferreira, Renan Gon; Castillo Rapalo, Luis Miguel; Benso, Marcos Roberto; de Macedo, Marina Batalini; Mendiondo, Eduardo Mario] Univ Sao Paulo, Sao Carlos Sch Engn, Dept Hydraul Engn & Sanitat, BR-13566590 Sao Carlos, SP, Brazil.
C3 Universidade de Sao Paulo
RP Navarro, FAR (corresponding author), Univ Sao Paulo, Sao Carlos Sch Engn, Dept Hydraul Engn & Sanitat, BR-13566590 Sao Carlos, SP, Brazil.
EM fabricionavarro@usp.br
RI Navarro, Fabricio/AAA-7357-2022; Benso, Marcos Roberto/AAA-3256-2020;
   Gesualdo, Gabriela/AAJ-8546-2020; Mendiondo, Eduardo Mario/C-7317-2012;
   Gon Ferreira, Renan/X-6804-2018
OI Castillo Rapalo, Luis Miguel/0000-0002-6241-7069; Mendiondo, Eduardo
   Mario/0000-0003-2319-2773; Gesualdo, Gabriela/0000-0001-6589-3397; Gon
   Ferreira, Renan/0000-0002-3747-7588; Richmond Navarro, Fabricio
   Alonso/0000-0001-7999-4746; Benso, Marcos Roberto/0000-0002-1237-3686
FU Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior do Brasil
   (CAPES) [001]; Brazilian National Council for Scientific and
   Technological Development (CNPq)
FX This study was supported by the Coordenacao de Aperfeicoamento de
   Pessoal de Nivel Superior do Brasil (CAPES) -finance Code 001, and
   regular funding to post-graduate program in Hydraulics and Sanitation of
   University of Sao Paulo, Sao Carlos School of Engineering by the
   Brazilian National Council for Scientific and Technological Development
   (CNPq).
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NR 85
TC 2
Z9 2
U1 0
U2 13
PU EUROPEAN REGIONAL CENTRE ECOHYDROLOGY POLISH ACAD SCIENCES
PI LODZ
PA 3 TYLNA STR, LODZ, PORTUGAL
SN 1642-3593
EI 2080-3397
J9 ECOHYDROL HYDROBIOL
JI Ecohydrol. Hydrobiol.
PD JUL
PY 2021
VL 21
IS 3
SI SI
BP 443
EP 453
DI 10.1016/j.ecohyd.2021.07.004
EA OCT 2021
PG 11
WC Ecology; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA WK5QN
UT WOS:000709780600007
DA 2025-04-22
ER

PT J
AU Wang, ZR
   Tan, YY
   Lu, X
AF Wang, Zongrun
   Tan, Yiyun
   Lu, Xin
TI Twenty Years of Resilient City Research: Reviews and Perspectives
SO SUSTAINABILITY
LA English
DT Review
DE urban study; resilient city; urban risk; climate risk; urban resource
ID URBAN SUSTAINABILITY; KNOWLEDGE; SCIENCE; SCIENTOMETRICS;
   RECONSTRUCTION; NETWORKS; PATTERNS; TRENDS; WATER
AB The resilient city plays an increasingly important role in coping with the challenges raised by economic, social, and environmental risks. In this review, we examine approximately 27,094 papers published in the Web of Science Core Collection (WOSCC) and perform extensive bibliometric and scientometric analyses to identify the research themes, evolutionary history, and potential research trends in the state of the art in resilient city studies. Seven main resilient city research themes are identified, with significant differences persisting across regions. Specifically, the research on resilient cities in Europe, Asia, Africa, and North America reveals clear regional characteristics in macro development planning and strategies, technological methods, urban economic growth, urban water resource protection, and so on. The analysis also reveals the collaborative networks among different countries and regions in the study of resilient cities. The evolutionary history of resilient city research shows that it has gradually evolved from a single research field into a multidisciplinary field and further formed a unique discipline. Moreover, the urban ecological environment, urban economic development, urban sprawl, and urban mobility have become key research hot spots and trends in resilient city research. This study provides a systematic and data-driven analytical demonstration of resilient city research, which provides empirical support for policy formulation and practice.
C1 [Wang, Zongrun; Tan, Yiyun] Cent South Univ, Coll Business Sch, Changsha 410083, Peoples R China.
   [Lu, Xin] Natl Univ Def Technol, Coll Syst Engn, Changsha 410073, Peoples R China.
C3 Central South University; National University of Defense Technology -
   China
RP Tan, YY (corresponding author), Cent South Univ, Coll Business Sch, Changsha 410083, Peoples R China.; Lu, X (corresponding author), Natl Univ Def Technol, Coll Syst Engn, Changsha 410073, Peoples R China.
EM zrwang0209@sina.com; tanyiyunxx@sina.com; xin_lyu@sina.com
RI lu, xin/C-1940-2009
OI lu, xin/0000-0002-3547-6493
FU National Natural Science Foundation of China; Major Project of the
   National Natural Science Foundation of China [72093215015]; National
   Social Science Foundation of China [22ZDA102]; Shenzhen Basic Research
   Project for Development of Science and Technology
   [JCYJ20200109141218676, 202008291726500001]; Innovation Team Project of
   Colleges in Guangdong Province [2020KCXTD040]; Hunan Science and
   Technology Plan Project [2020TP1013, 2020JJ4673];  [72025405]; 
   [72088101]
FX This work was supported by the Major Project of the National Natural
   Science Foundation of China (72093215015), the National Natural Science
   Foundation of China (72025405, 72088101), the National Social Science
   Foundation of China (22ZDA102), the Shenzhen Basic Research Project for
   Development of Science and Technology (JCYJ20200109141218676,
   202008291726500001), the Innovation Team Project of Colleges in
   Guangdong Province (2020KCXTD040), the Hunan Science and Technology Plan
   Project (2020TP1013, 2020JJ4673), and the Academic Annual Meeting of the
   Third China (Sino French) Risk Management Summit.
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NR 78
TC 0
Z9 0
U1 34
U2 34
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2024
VL 16
IS 24
AR 11211
DI 10.3390/su162411211
PG 23
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA Q7T1Y
UT WOS:001386646600001
OA gold
DA 2025-04-22
ER

PT J
AU Sumari, NS
   Cobbinah, PB
   Ujoh, F
   Xu, G
AF Sumari, Neema Simon
   Cobbinah, Patrick Brandful
   Ujoh, Fanan
   Xu, Gang
TI On the absurdity of rapid urbanization: Spatio-temporal analysis of
   land-use changes in Morogoro, Tanzania
SO CITIES
LA English
DT Article
DE Land-use; Land cover; Urban expansion; Spatio-temporal pattern; Morogoro
ID URBAN EXPANSION; TIME-SERIES; CITIES; EARTH; CULTIVATION; EVOLUTION;
   ATTITUDES; PATTERNS; IMPACTS; KUMASI
AB This study questions the frequent overemphasis on population growth aspects of African urbanization with little consideration of the spatial extent by analyzing the influence of population growth on the spatial expansion of the Morogoro urban municipality (MUM) in Tanzania between 2000 and 2016. Shannon's Entropy, a random forest supervised classifier, and spatial analysis were adopted to analyze Multi-temporal Landsat images obtained through the Google Earth Engine platform to quantify the spatial and temporal distribution and pattern of land-use change. Findings from this research show that Shannon's entropy values for MUM increased from 0.522 in 2000, to 0.761 in 2007, and to 0.901 in 2016 with the urban land cover recording a considerable and consistent increase. Similarly, the municipality's annual rate of change in population decreased from 4.17% in 1967 to 3.81% in 2016, and is estimated to rise to 4.54% by 2030 with a corresponding population of 25,262 in 1967 and 622,000 in 2016. From the results, the rate of population growth is not commensurate with the rate of spatial expansion, as the spatial extent is more than twice the population growth. An important contribution from this research relates to the limited attention to the faster rate of urban expansion compared to population growth in African cities; a situation that is inconsistent with sustainable and resilient urban futures. It is recommended that municipal authorities should consider initiatives (e.g., environmental planning models) to reverse the current trend of urban growth in order to improve the health, density, sustainability and resilience of the urban environment.
C1 [Sumari, Neema Simon] Sokoine Univ Agr, Solomon Mahlangu Coll Sci & Educ, Dept Math Informat & Computat Sci, POB 3038, Morogoro, Tanzania.
   [Cobbinah, Patrick Brandful] Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Vic 3010, Australia.
   [Ujoh, Fanan] London South Bank Univ, Ctr Sustainabil & Resilient Infrastruct & Communi, London, England.
   [Xu, Gang] Wuhan Univ, Sch Remote Sensing & Informat Engn, 129 Luoyu Rd, Wuhan 430079, Peoples R China.
C3 Sokoine University of Agriculture; University of Melbourne; London South
   Bank University; Wuhan University
RP Sumari, NS (corresponding author), Sokoine Univ Agr, Solomon Mahlangu Coll Sci & Educ, Dept Math Informat & Computat Sci, POB 3038, Morogoro, Tanzania.
EM neydsumari@sua.ac.tz; patrick.cobbinah@unimelb.edu.au; xugang@whu.edu.cn
RI Cobbinah, Patrick/ABH-9950-2020; Sumari, Neema Simona/GRI-9746-2022; Xu,
   Gang/B-1816-2018
OI Ujoh, Fanan/0000-0003-2554-0815
FU National Natural Science Foundation of China [41771452, 41771454,
   41890820]; Natural Science Fund of Hubei Province in China [2018CFA007]
FX The authors are grateful to the editor and the anonymous reviewers for
   their valuable suggestions and comments that helped improve this paper.
   This work was supported by the National Natural Science Foundation of
   China [Grants Number 41771452, 41771454 and 41890820], and the Natural
   Science Fund of Hubei Province in China [Grant Number 2018CFA007].
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   Xu G, 2019, SCI TOTAL ENVIRON, V660, P375, DOI 10.1016/j.scitotenv.2019.01.039
   Xu YD, 2018, REMOTE SENS ENVIRON, V218, P13, DOI 10.1016/j.rse.2018.09.008
   Yin H, 2018, REMOTE SENS ENVIRON, V210, P12, DOI 10.1016/j.rse.2018.02.050
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NR 66
TC 59
Z9 61
U1 7
U2 50
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2020
VL 107
AR 102876
DI 10.1016/j.cities.2020.102876
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA OZ2LB
UT WOS:000594762900014
DA 2025-04-22
ER

PT J
AU Leal, W
   Balogun, AL
   Olayide, OE
   Azeiteiro, UM
   Ayal, DY
   Muñoz, PDC
   Nagy, GJ
   Bynoe, P
   Oguge, O
   Toamukum, NY
   Saroar, M
   Li, CL
AF Leal Filho, Walter
   Balogun, Abdul-Lateef
   Olayide, Olawale Emmanuel
   Azeiteiro, Ulisses M.
   Ayal, Desalegn Y.
   Chavez Munoz, Pastor David
   Nagy, Gustavo J.
   Bynoe, Paulette
   Oguge, Otienoh
   Toamukum, N. Yannick
   Saroar, Mustafa
   Li, Chunluan
TI Assessing the impacts of climate change in cities and their adaptive
   capacity: Towards transformative approaches to climate change adaptation
   and poverty reduction in urban areas in a set of developing countries
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Adaptation; Climate change; Developing cities; Policies; Poverty;
   Vulnerability
ID KUALA-LUMPUR; ECOSYSTEM SERVICES; COASTAL AREAS; VULNERABILITY; WATER;
   BANGLADESH; AFRICA; RESILIENCE; CHALLENGES; MITIGATION
AB Many cities across the world are facing many problems climate change poses to their populations, communities and infrastructure. These vary from increased exposures to floods, to discomfort due to urban heat, depending on their geographical locations and settings. However, even though some cities have a greater ability to cope with climate change challenges, many struggle to do so, particularly in cities in developing countries. In addition, there is a shortage of international studies which examine the links between climate change adaptation and cities, and which at the same time draw some successful examples of good practice, which may assist future efforts. This paper is an attempt to address this information need. The aim of this paper is to analyse the extent to which cities in a sample of developing countries are attempting to pursue climate change adaptation and the problems which hinder this process. Its goal is to showcase examples of initiatives and good practice in transformative adaptation, which may be replicable elsewhere. To this purpose, the paper describes some trends related to climate change in a set of cities in developing countries across different continents, including one of the smallest capital cities (Georgetown, Guyana) and Shanghai, one the world's most populous cities. In particular, it analyses their degree of vulnerability, how they manage to cope with climate change impacts, and the policies being implemented to aid adaptation. It also suggests the use of transformative approaches which may be adopted, in order to assist them in their efforts towards investments in low-carbon and climate-resilient infrastructure, thereby maximizing investments in urban areas and trying to address their related poverty issues. This paper addresses a gap in the international literature on the problems many cities in developing countries face, in trying to adapt to a changing climate. (C) 2019 Elsevier B.V. All rights reserved.
C1 [Leal Filho, Walter] Manchester Metropolitan Univ, Sch Sci & Environm, Manchester, Lancs, England.
   [Balogun, Abdul-Lateef] UTP, Geospatial Anal & Modelling Res GAMR Grp, Dept Civil & Environm Engn, Seri Iskandar, Malaysia.
   [Olayide, Olawale Emmanuel] Univ Ibadan, Ctr Sustainable Dev, Ibadan, Nigeria.
   [Azeiteiro, Ulisses M.] Univ Aveiro, Dept Biol, Aveiro, Portugal.
   [Azeiteiro, Ulisses M.] Univ Aveiro, CESAM, Aveiro, Portugal.
   [Ayal, Desalegn Y.] Addis Ababa Univ, Coll Dev Studies, CFSS, Addis Ababa, Ethiopia.
   [Chavez Munoz, Pastor David] PUCP, Dept Engn, GTR, 1801 Ave Univ San Miguel, Lima 15088, Peru.
   [Nagy, Gustavo J.] Univ Republ UdelaR, Fac Ciencias, Inst Ecol & CienciasAmbientales IECA, Igua 4225, Montevideo, Uruguay.
   [Bynoe, Paulette] Univ Guyana, Fac Earth & Environm Sci, Leslie Cummings Bldg, Georgetown, Guyana.
   [Oguge, Otienoh] Univ Nairobi, Ctr Adv Studies Environm Law & Policy, POB 30197-00100, Nairobi, Kenya.
   [Toamukum, N. Yannick] Ardhi Univ, Sch Environm Sci & Technol, Disaster Management Training Ctr, POB 35176, Dar Es Salaam, Tanzania.
   [Saroar, Mustafa] KUET, Dept Urban & Reg Planning, Fac Civil Engn, Khulna 9203, Bangladesh.
   [Li, Chunluan] East China Normal Univ, Minist Educ, Key Lab Geog Informat Sci, Shanghai 200241, Peoples R China.
   [Leal Filho, Walter; Li, Chunluan] Hamburg Univ Appl Sci, Res & Transfer Ctr Sustainabil & Climate Change M, Fac Life Sci, Ulmenliet 20, D-21033 Hamburg, Germany.
   [Toamukum, N. Yannick] Manchester Metropolitan Univ, Manchester, Lancs, England.
   [Li, Chunluan] East China Normal Univ, Sch Geog Sci, Shanghai 200241, Peoples R China.
   [Li, Chunluan] Hamburg Univ Appl Sci, Hamburg, Germany.
C3 Manchester Metropolitan University; University of Ibadan; Universidade
   de Aveiro; Universidade de Aveiro; Addis Ababa University; Pontificia
   Universidad Catolica del Peru; Universidad de la Republica, Uruguay;
   University of Nairobi; Khulna University of Engineering & Technology
   (KUET); East China Normal University; Hochschule Angewandte Wissenschaft
   Hamburg; Manchester Metropolitan University; East China Normal
   University; Hochschule Angewandte Wissenschaft Hamburg
RP Balogun, AL (corresponding author), UTP, Geospatial Anal & Modelling Res GAMR Grp, Dept Civil & Environm Engn, Seri Iskandar, Malaysia.
EM w.leal@mmu.ac.uk; alateef.babatunde@utp.edu.my; oe.olayide@ui.edu.ng;
   ulisses@ua.pt; desalegn.yayeh@aau.edu.et; dchavez@pucp.edu.pe;
   gnagy@fcien.edu.uy; paulette.bynoe@uog.edu.gy; oguge@uonbi.ac.ke;
   y.otamukum@mmu.ac.uk; Saroar.mustafa@urp.kuet.ac.bd;
   chunlanli@haw-hamburg.de
RI Olayide, Olawale/HNP-6402-2023; Saroar, Mustafa/KWU-5190-2024; Leal,
   Walter/ACX-9082-2022; Ayal, Desalegn/AAG-3042-2021; li,
   chunlan/IUP-7784-2023; Balogun, Abdul-Lateef/AAH-2963-2020; Bynoe,
   Paulette/HGU-6040-2022; Azeiteiro, Ulisses/C-5933-2008; nagy,
   gustavo/G-8097-2017
OI Olayide, Olawale Emmanuel/0000-0003-3151-0807; Balogun,
   Abdul-Lateef/0000-0002-0418-3487; Bynoe, Paulette/0000-0002-9152-2693;
   Leal Filho, Walter/0000-0002-1241-5225; Oguge,
   Otienoh/0000-0002-4852-9363; Azeiteiro, Ulisses/0000-0002-5252-1700;
   nagy, gustavo/0000-0002-8296-4465; Saroar, Md
   Mustafa/0000-0002-2832-3691; Ayal, Desalegn Y/0000-0001-8966-2673;
   Chavez Munoz, Pastor David/0000-0001-7012-2167
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NR 111
TC 136
Z9 143
U1 8
U2 218
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0048-9697
EI 1879-1026
J9 SCI TOTAL ENVIRON
JI Sci. Total Environ.
PD NOV 20
PY 2019
VL 692
BP 1175
EP 1190
DI 10.1016/j.scitotenv.2019.07.227
PG 16
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA IW5BW
UT WOS:000484994700111
PM 31539949
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Liu, HM
   Li, M
   Zhan, QM
   Ma, ZY
   He, BJ
AF Liu, Huimin
   Li, Miao
   Zhan, Qingming
   Ma, Zhengyue
   He, Bao-Jie
TI Homogeneity and heterogeneity of diurnal and nocturnal hotspots and the
   implications for synergetic mitigation in heat-resilient urban planning
SO COMPUTERS ENVIRONMENT AND URBAN SYSTEMS
LA English
DT Article
DE Urban surface thermal environment; Diurnal and nocturnal hotspots;
   Synergetic mitigation; Co-benefits; Multi-model analysis;
   Climate-resilience
ID CLIMATE-CHANGE; STATISTICAL-ANALYSIS; LAND-USE; ISLANDS; TEMPERATURE;
   SHANGHAI; IMPACTS; ZONES
AB Many cities are under intense heat challenges with severe environmental, social, and economic consequences, sparking great concern on heat-resilient urban planning, yet normally with biased focus on limited (e.g., diurnal) mitigation needs. Particularly, the recognition of urban thermal hotspots is crucial for adding effective cooling interventions for mitigation and avoiding overheating in newly built areas. However, the hotspots and associated drivers vary across time and space, bringing challenges to urban planners to make win-win decisions to synchronously address diurnal and nocturnal heat stresses through an integrated set of cooling strategies. This study aims to recognize the homogeneity and heterogeneity of diurnal and nocturnal hotspots and interpret principal and synergetic drivers behind them by developing a robust methodological scheme in addressing uncertainties associated with temperature data and analytical models. It explicitly 1) identified summer diurnal and nocturnal hotspots using rigorously screened satellite data; 2) recognized the typical typologies of hotspot-prone urban landscape according to urban composition, morphology, and function; 3) explored the day-night similarities and disparities in major urban factors and their robust effective ranges for synergetic mitigation through multi-model non-linear analysis with diverse machine learning techniques covering random forest, gradient boosting machines, and boosted regression trees. Results revealed that the specific locations and typical urban landscape features varied between diurnal and nocturnal hotspots. Among the six typologies recognized, industrialdominated ones were more inclined to emerge as diurnal hotspots, while mid- to high-rise and mid-density blocks, with diversified land uses (mostly residential-dominated), tended to become diurnal, and more likely, nocturnal hotspots. All three models reached robust conclusion that urban morphology exhibited significant influence on both diurnal and nocturnal hotspot formation. Although trade-offs remained unavoidable in many cases, synergetic mitigation could be achieved through optimizing area averaged building height below 15 m or above 25 m, and building volume density under 2 % for Wuhan, China. Overall, this study responds to the emerging multidimensional urban science and praxis and extends the conventional one-dimensional planning against urban heat to win-win decisions over both diurnal and nocturnal hotspots. The empirical findings can benefit the development of complete, unbiased, and implementable actions for enhanced climate-resilience.
C1 [Liu, Huimin; Li, Miao; Zhan, Qingming; Ma, Zhengyue] Wuhan Univ, Sch Urban Design, Wuhan 430072, Peoples R China.
   [Liu, Huimin; Li, Miao; Zhan, Qingming; Ma, Zhengyue] Wuhan Univ, Res Ctr Digital City, Wuhan 430072, Peoples R China.
   [Liu, Huimin; Li, Miao] Minist Nat Resources China, Key Lab Earth Surface Syst & Human Earth Relat, Shenzhen 518055, Peoples R China.
   [Liu, Huimin; Li, Miao] Minist Nat Resources, Key Lab Spatial Intelligent Planning Technol, Shenzhen, Peoples R China.
   [He, Bao-Jie] Chongqing Univ, Ctr Climate Resilient & Low Carbon Cities, Sch Architecture & Urban Planning, Key Lab New Technol Construct Cities Mt Area,Minis, Chongqing 400045, Peoples R China.
   [He, Bao-Jie] Chongqing Univ, Inst Smart City Chongqing Univ Liyang, Liyang 213300, Jiangsu, Peoples R China.
   [He, Bao-Jie] CMA Key Open Lab Transforming Climate Resources Ec, Chongqing 401147, Peoples R China.
C3 Wuhan University; Wuhan University; Ministry of Natural Resources of the
   People's Republic of China; Ministry of Natural Resources of the
   People's Republic of China; Chongqing University; Chongqing University
RP He, BJ (corresponding author), Chongqing Univ, Ctr Climate Resilient & Low Carbon Cities, Sch Architecture & Urban Planning, Key Lab New Technol Construct Cities Mt Area,Minis, Chongqing 400045, Peoples R China.
EM hmliu@whu.edu.cn; miouli@whu.edu.cn; qmzhan@whu.edu.cn;
   zhengyuema@whu.edu.cn; baojie.unsw@gmail.com
RI He, Bao-jie/ABC-5621-2020; Zhan, Qingming/H-1553-2016
FU National Natural Science Foundation of China [52308079, 42301339,
   52078389]; Natural Science Foundation of Hubei Province [2023AFB080];
   Key Laboratory of Spatial Intelligent Planning Technology, Ministry of
   Natural Re-sources [20240302]; Key Laboratory of Earth Surface System
   and Human-Earth Relations [LBXT2023YB04]; Tianjin Key Laboratory of
   Smart City Planning [GHKF-202301]; China Meteorological Administration
   "Research on value realization of climate ecological products" Youth
   Innovation Team Project [CMA2024QN15]
FX This research was supported by the National Natural Science Foundation
   of China (No. 52308079, 42301339, 52078389) , the Natural Science
   Foundation of Hubei Province (2023AFB080) , Key Laboratory of Spatial
   Intelligent Planning Technology, Ministry of Natural Resources
   (20240302) , Key Laboratory of Earth Surface System and Human-Earth
   Relations (LBXT2023YB04) , Tianjin Key Laboratory of Smart City Planning
   (GHKF-202301) , and the China Meteorological Administration "Research on
   value realization of climate ecological products" Youth Innovation Team
   Project (No. CMA2024QN15) .
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NR 95
TC 3
Z9 3
U1 21
U2 21
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0198-9715
EI 1873-7587
J9 COMPUT ENVIRON URBAN
JI Comput. Environ. Urban Syst.
PD APR
PY 2025
VL 117
AR 102241
DI 10.1016/j.compenvurbsys.2024.102241
EA DEC 2024
PG 16
WC Computer Science, Interdisciplinary Applications; Engineering,
   Environmental; Environmental Studies; Geography; Operations Research &
   Management Science; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Computer Science; Engineering; Environmental Sciences & Ecology;
   Geography; Operations Research & Management Science; Public
   Administration
GA R1W3S
UT WOS:001389435400001
DA 2025-04-22
ER

PT J
AU Balsas, CJL
AF Balsas, Carlos J. L.
TI When markets reset, will we regain? Planning lessons from across the
   Atlantic Ocean
SO LAND USE POLICY
LA English
DT Article
DE Metropolitan development; Regional planning; Governance; Economy;
   Resilience
ID CRISIS; GROWTH; GOVERNANCE; RESILIENT; POLITICS; REGIONS
AB Globalisation and economic integration has brought new territorial and governance challenges. The inter-connectedness of the economy, the need to remain competitive and to plan cities and regions sustainably has created new risks, given the uncertainty and magnitude of economic crises. This paper analyses how metropolises in Arizona (Phoenix and Tucson), U.S., and Portugal (Lisbon and Porto) have developed recently and how their stakeholders have been dealing with processes of metropolitan transformation. Recent regional planning is examined with the intent to understand whether stages of maturity, compact urban development patterns, regulatory and administrative planning traditions, and socio-economic and cultural systems influence territorial coherence. Two key findings stand out: First, anticipatory regional planning has the capacity to adapt to changing conditions in order to maintain and develop more sustainable and resilient territories; second, public spending oversight and programmatic firewalls allow corrections to be made before problems escalate out-of-control. (C) 2017 Elsevier Ltd. All rights reserved.
C1 [Balsas, Carlos J. L.] SUNY Albany, Geog & Planning, AS 210,1400 Washington Ave, Albany, NY 12222 USA.
C3 State University of New York (SUNY) System; University at Albany, SUNY
RP Balsas, CJL (corresponding author), SUNY Albany, Geog & Planning, AS 210,1400 Washington Ave, Albany, NY 12222 USA.
EM cbalsas@albany.edu
OI Balsas, Ph.D., AICP, Carlos J. L./0000-0002-4714-9879
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NR 78
TC 4
Z9 5
U1 0
U2 9
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-8377
EI 1873-5754
J9 LAND USE POLICY
JI Land Use Pol.
PD JUN
PY 2017
VL 65
BP 78
EP 92
DI 10.1016/j.landusepol.2017.03.033
PG 15
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA EU9RA
UT WOS:000401376100008
DA 2025-04-22
ER

PT J
AU Afzal, S
   Mokhlis, H
   Illias, HA
   Bajwa, AA
   Mekhilef, S
   Mubin, M
   Muhammad, MA
   Shareef, H
AF Afzal, Suhail
   Mokhlis, Hazlie
   Illias, Hazlee Azil
   Bajwa, Abdullah Akram
   Mekhilef, Saad
   Mubin, Marizan
   Muhammad, Munir Azam
   Shareef, Hussain
TI Modelling spatiotemporal impact of flash floods on power distribution
   system and dynamic service restoration with renewable generators
   considering interdependent critical loads
SO IET GENERATION TRANSMISSION & DISTRIBUTION
LA English
DT Article
DE disasters; hazards; micro grids; power system resilience; power system
   restoration; power systems
ID RESILIENCE ENHANCEMENT; NETWORKED MICROGRIDS; ALLOCATION;
   RECONFIGURATION; STRATEGY; EXTREME; DGS
AB In recent decades, flash floods have become more common because of climate change and are considered a substantial risk for many cities worldwide. This catastrophic natural hazard presents a significant threat to critical infrastructure in urban areas, particularly the power distribution system. As modern societies are much more dependent on electrical energy these days, it is essential and imperative to make existing distribution systems resilient against flash flooding. Although researchers in this area have proposed various algorithms to impart resilience to a distribution system, however, the focus in these works is on wind-related events such as hurricanes, cyclones, and windstorms. Therefore, here, the spatiotemporal effects of a flash flood on the distribution system are modelled using a grid-based hydrodynamic model. The evolving line faults are then included in the proposed resilience-oriented time horizon-based service restoration model that also considers dynamic load demand, heavy uncertainties related to renewable generation, and interdependence among critical loads. Finally, the resilience of the distribution system's response is assessed using an operational resilience metric. The efficacy of the proposed framework is evaluated on IEEE 33-bus and 69-bus systems and the results show that the model provides an efficient restoration solution despite increased complexity caused by varying conditions.
C1 [Afzal, Suhail] Bahauddin Zakariya Univ, Fac Engn & Technol, Dept Elect Engn, Multan, Pakistan.
   [Afzal, Suhail; Mokhlis, Hazlie; Illias, Hazlee Azil; Bajwa, Abdullah Akram; Mekhilef, Saad; Mubin, Marizan] Univ Malaya, Fac Engn, Dept Elect Engn, Kuala Lumpur, Malaysia.
   [Bajwa, Abdullah Akram] u blox, Arfa Tower,Nishtar Town, Lahore, Pakistan.
   [Mekhilef, Saad] Swinburne Univ Technol, Sch Sci Comp & Engn Technol, Hawthorn, Australia.
   [Muhammad, Munir Azam] Iqra Univ, Dept Elect Engn, Main Campus, Karachi, Pakistan.
   [Shareef, Hussain] United Arab Emirates Univ, Dept Elect & Commun Engn, Al Ain, U Arab Emirates.
   [Afzal, Suhail] Bahauddin Zakariya Univ, Fac Engn & Technol, Dept Elect Engn, Multan 60800, Pakistan.
   [Mokhlis, Hazlie] Univ Malaya, Fac Engn, Dept Elect Engn, Kuala Lumpur 50603, Malaysia.
C3 Bahauddin Zakariya University; Universiti Malaya; Swinburne University
   of Technology; Iqra University; United Arab Emirates University;
   Bahauddin Zakariya University; Universiti Malaya
RP Afzal, S (corresponding author), Bahauddin Zakariya Univ, Fac Engn & Technol, Dept Elect Engn, Multan 60800, Pakistan.; Mokhlis, H (corresponding author), Univ Malaya, Fac Engn, Dept Elect Engn, Kuala Lumpur 50603, Malaysia.
EM suhailafzal@bzu.edu.pk; hazli@um.edu.my
RI MUBIN, MARIZAN/N-7490-2019; Saad, Mekhilef/B-9652-2010; Shareef,
   Hussain/AFK-9223-2022; Illias, Hazlee Azil/K-2630-2015; Mokhlis,
   Hazlie/B-8616-2010
OI Mekhilef, Saad/0000-0001-8544-8995; Illias, Hazlee
   Azil/0000-0002-5061-1809; Mokhlis, Hazlie/0000-0002-1166-1934
FU Universiti Malaya: Impact-Oriented Interdisciplinary~ Research
   [IIRG001A-2020IISS, IF022-2023]
FX Universiti Malaya: Impact-Oriented Interdisciplinary & nbsp; Research,
   Grant/Award Numbers: IIRG001A-2020IISS, IF022-2023
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NR 41
TC 1
Z9 1
U1 4
U2 24
PU INST ENGINEERING TECHNOLOGY-IET
PI HERTFORD
PA MICHAEL FARADAY HOUSE SIX HILLS WAY STEVENAGE, HERTFORD SG1 2AY, ENGLAND
SN 1751-8687
EI 1751-8695
J9 IET GENER TRANSM DIS
JI IET Gener. Transm. Distrib.
PD JAN
PY 2024
VL 18
IS 2
BP 368
EP 387
DI 10.1049/gtd2.12947
EA AUG 2023
PG 20
WC Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA FI3V6
UT WOS:001044199800001
OA gold
DA 2025-04-22
ER

PT J
AU Deatrick, JF
AF Deatrick, John Frederick
TI Flood-resilient redevelopment: Cincinnati's central riverfront
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-WATER MANAGEMENT
LA English
DT Article
DE environment; floods & floodworks; urban regeneration
AB Since the founding of Cincinnati on the banks of the Ohio River in 1788, the city's flood-prone central riverside area has been exploited in multiple waves of development, none of which were viewed a success - until now. Owing to floods, most minor but some severe, the riverside has not been very attractive or very productive in terms of employment, culture or recreation. However, this situation has now changed. This paper suggests that the current success in regenerating the riverside area is due to a fresh approach taken in the area's urban design master plan, drafted in 1997, which was based on flood resilience instead of the conventional wisdom based on flood resistance. The master plan enabled a mixed-use, environmentally friendly development on the riverside with minimal effect on the storage capacity of the river floodplain. Additionally, it has left the area well connected to the central business district, the Ohio River and the region.
C1 City Cincinnati, Cincinnati, OH 45241 USA.
RP Deatrick, JF (corresponding author), City Cincinnati, Cincinnati, OH 45241 USA.
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NR 34
TC 2
Z9 3
U1 1
U2 24
PU ICE PUBLISHING
PI WESTMINISTER
PA INST CIVIL ENGINEERS, 1 GREAT GEORGE ST, WESTMINISTER SW 1P 3AA, ENGLAND
SN 1741-7589
J9 P I CIVIL ENG-WAT M
JI Proc. Inst. Civil. Eng.-Water Manag.
PD APR
PY 2015
VL 168
IS 2
BP 85
EP 96
DI 10.1680/wama.14.00067
PG 12
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA CE9XU
UT WOS:000352197700006
DA 2025-04-22
ER

PT J
AU Huang, J
   Li, JF
   Huang, Z
AF Huang, Juan
   Li, Jiangfeng
   Huang, Zhi
TI Identification of Waterlogging-Prone Areas in Nanning from the
   Perspective of Urban Expansion
SO SUSTAINABILITY
LA English
DT Article
DE impervious surface; fractal dimension; hydrological analysis;
   waterlogging-prone area; preventive governance
AB The objective of this study was to discern the spatial and temporal patterns of areas in Nanning that are susceptible to waterlogging, particularly during various phases of urban expansion. Furthermore, this study presents a proposal outlining strategies aimed at preventing and controlling waterlogging. These strategies are based on the integration of the concepts of sponge city and resilient city construction. This study employed remote sensing (RS) and geographic information system (GIS) techniques to provide technical support. The supervised classification method and normalized difference index method were utilized to compare and extract impervious surfaces in Nanning from 2013 to 2020. The present investigation utilized the acquired impervious surfaces to compute the fractal dimension as a weighting factor, incorporating a digital elevation model (DEM) for the purpose of conducting a hydrological analysis in ArcGIS. Based on the findings of the study, several conclusions can be derived. The following conclusions can be drawn from the study: (1) The fractal dimension of Nanning varied over the study period, with values of 1.32, 1.41, and 1.58 in 2013, 2017, and 2020, respectively. The distribution of impervious surfaces showed a decreasing trend from the city center to the periphery. Urban planning and construction activities have significantly influenced the distribution of impervious surfaces, resulting in a progressively more complex and unstable structure. (2) From 2013 to 2020, the urban expansion fractal dimension increased from 1.32 to 1.58, indicating a decrease in the stability of impervious surfaces. The areas with higher concentrations of impervious surfaces coincided with frequent waterlogging-prone areas. Furthermore, the distribution of waterlogging-prone points transformed from a concentrated pattern to a scattered one. (3) In terms of waterlogging prevention and control strategies, the old urban areas are recommended to be transformed into sponge city projects, and the new development areas are planned, designed and implemented with the concept of "resilience".
C1 [Huang, Juan; Li, Jiangfeng] China Univ Geosci, Sch Publ Adm, Wuhan 430074, Peoples R China.
   [Huang, Juan] Guangxi Univ Finance & Econ, Dept Econ & Trade, Nanning 530007, Peoples R China.
   [Huang, Zhi] Baise Univ, Ctr Hlth, Baise 533000, Guangxi, Peoples R China.
C3 China University of Geosciences; Guangxi University of Finance &
   Economics; Baise University
RP Li, JF (corresponding author), China Univ Geosci, Sch Publ Adm, Wuhan 430074, Peoples R China.
EM jfli0524@163.com
RI Li, Jiangfeng/N-5695-2014
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NR 84
TC 1
Z9 1
U1 1
U2 21
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2023
VL 15
IS 20
AR 15095
DI 10.3390/su152015095
PG 17
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA W9VY6
UT WOS:001095047800001
OA gold
DA 2025-04-22
ER

PT J
AU Fiksel, J
   Sanjay, P
   Raman, K
AF Fiksel, Joseph
   Sanjay, Praveena
   Raman, Kavya
TI Steps toward a resilient circular economy in India
SO CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY
LA English
DT Article
DE Resilience; Waste; Circular economy; Sustainable development; Systems
   thinking; India
AB Developing nations, including India, face a number of daunting challenges in the twenty-first century, including population growth, political strife, rapid urbanization, food and water scarcity, environmental pollution, infectious diseases, and climate change. In this turbulent era, there is a need for resilience at every level-from the village family to the corporate boardroom to the halls of government. We argue that achieving resilience will require both enlightened government policies and successful initiatives by social and environmental innovators that demonstrate the capacity for adapting to these challenges. Such practical first steps can serve as models for creating a more resilient and sustainable economy in India. One way to stimulate rapid progress is development of circular economy solutions that create innovative pathways for utilization of discarded materials, thus seeking to eliminate waste. Previous research has shown that such initiatives reduce environmental pressures and improve community resilience, while stimulating the regional economy. An international conference on Waste Management Innovation, held in 2017 in Mumbai with funding from the US Consulate General, resulted in the award of seed grants to two Indian non-profits that sought to apply circular economy principles to regional communities-one urban and one rural. These initiatives provide case studies of circular economy implementation. The World Institute of Sustainable Energy has developed an action plan to capture at least 60 percent of the electronic waste generated in the city of Pune, one of the largest metropolitan areas in India. Their approach is based on circular economy principles, and has been embraced in stakeholder meetings with city officials as well as local residents and non-governmental organizations. Barefoot College has established and demonstrated a low-cost, end-to-end solid waste management model for rural villages that is designed by the local community. Their unique approach ensures sanitation, environmental protection, income and livelihood generation, and drives behavioral change in village residents by motivating them to maintain community hygiene. This paper presents the results of these two efforts, and suggests what lessons were learned. One overarching insight is that an integrated systems view is necessary to understand the interplay of economic, environmental, and social forces.
   [GRAPHICS]
   .
C1 [Fiksel, Joseph] Ohio State Univ, Columbus, OH 43210 USA.
   [Sanjay, Praveena] World Inst Sustainable Energy, Pune, Maharashtra, India.
   [Raman, Kavya] Barefoot Coll, Social Work & Res Ctr, Tilonia, Rajasthan, India.
C3 University System of Ohio; Ohio State University
RP Fiksel, J (corresponding author), Ohio State Univ, Columbus, OH 43210 USA.
EM fiksel.2@osu.edu; praveena.ccs@wisein.org; kavyaraman8@gmail.com
OI Fiksel, Joseph/0000-0003-1725-7163
FU US Consulate General, Mumbai; Ohio State University (OSU)
FX The authors wish to thank Neha Tiple and Debarshi Gupta of WISE, who
   co-authored several sections of this report. We are grateful to the US
   Consulate General, Mumbai, for funding the 2017 conference and the
   subsequent seed grants, especially the efforts of Tasneem Kalsekar and
   Tejaswini Karalkar. We also thank the Ohio State University (OSU) staff
   who supported the seed grants, including the contract officer, Geetha
   Sampathkumar and the director of the OSU Mumbai Gateway Office, Nikhil
   Tambe. Finally, we wish to acknowledge the contributions of the entire
   WISE Project team in Pune, as well as the many volunteers at Barefoot
   College who supported development of a rural waste management system.
CR Accenture and Federation of Indian Chambers of Commerce and Industry (FICCI), 2019, ACC IND CIRC EC SHIF
   [Anonymous], 2018, Electricals and Electronics manufacturing in India
   Associated Chambers of Commerce and Industry of India (ASSOCHAM) Ernst and Young (EY) Consumer Electronics and Appliances Manufacturers Association (CEAMA) Association of Public-Safety Communications Officials (APCO), 2019, E WAST IND BIG W IMP
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   Ellen MacArthur Foundation, 2017, WHAT IS CIRC EC
   Fiksel J., 2015, Resilient by Design: Creating Businesses That Adapt and Flourish in a Changing World
   Fiksel J., 2011, Design for Environment, VSecond
   Fiksel J, 2018, ENVIRON DEV, V26, P123, DOI 10.1016/j.envdev.2018.02.002
   Fiksel J, 2014, CLEAN TECHNOL ENVIR, V16, P691, DOI 10.1007/s10098-013-0696-1
   India Environment Portal, 2016, SOL WAST MAN RUL
   Lal R., 2013, Journal of the Indian Society of Soil Science, V61, P267
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   Ohio State University (OSU), 2017, OSU C P
   U.N, 2015, SUST DEV GOALS PEOPL
   World Economic Forum (WEF), 2013, CIRC EC ACC SCAL UP
NR 15
TC 60
Z9 62
U1 7
U2 46
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1618-954X
EI 1618-9558
J9 CLEAN TECHNOL ENVIR
JI Clean Technol. Environ. Policy
PD JAN
PY 2021
VL 23
IS 1
SI SI
BP 203
EP 218
DI 10.1007/s10098-020-01982-0
EA NOV 2020
PG 16
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA QA5QV
UT WOS:000588591900002
PM 33199980
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Lu, YW
   Zhai, GF
   Zhou, ST
   Shi, YJ
AF Lu, Yuwen
   Zhai, Guofang
   Zhou, Shutian
   Shi, Yijun
TI Risk reduction through urban spatial resilience: A theoretical framework
SO HUMAN AND ECOLOGICAL RISK ASSESSMENT
LA English
DT Article
DE Risk reduction; urban space; urban spatial resilience; theoretical
   framework; qualitative analysis
ID CLIMATE-CHANGE; HAZARD MITIGATION; BUILT ENVIRONMENT; DESIGN; DISASTER;
   SYSTEMS; CITIES; URBANIZATION; MANAGEMENT; HEALTH
AB Resilience provides an adaptive approach for dealing with environmental change, natural risks and public health emergencies. Urban spatial resilience is an interpretation of resilience in the spatial dimension. However, studies on urban spatial resilience and the relationship between resilience and urban space are limited. This study tries to understand urban spatial systems and to establish an urban spatial resilience theoretical framework by integrating resilience into urban spaces to reduce urban risks. This article describes urban spatial resilience by identifying a set of urban spatial factors that may affect resilience and by linking spatial elements and resilience characteristics. The theoretical framework of urban spatial resilience has been divided into five dimensions here, urban spatial scale resilience, urban spatial structure resilience, urban spatial form resilience, urban spatial function resilience, and urban spatial network resilience. This study considers the advantages of spatial resilience from landscape ecology and urban resilience from urban studies. As a supplement to existing resilience research, this study provides a new perspective on improving the resilience of urban spaces and reduce urban risks, and guides spatial planning practitioners.
C1 [Lu, Yuwen; Zhai, Guofang] Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210000, Peoples R China.
   [Zhou, Shutian] Nantong Univ, Sch Art, Nantong, Peoples R China.
   [Shi, Yijun] Zhejiang F Univ, Sch Landscape Architecture, Hangzhou, Peoples R China.
C3 Nanjing University; Nantong University
RP Zhai, GF (corresponding author), Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210000, Peoples R China.
EM guofang_zhai@nju.edu.cn
RI 鲁, 钰雯/JDW-1571-2023; Zhai, Guofang/JJD-3299-2023; Shi,
   Yijun/LUY-9496-2024
OI Lu, Yuwen/0000-0002-7449-829X
CR Adger WN, 2000, PROG HUM GEOG, V24, P347, DOI 10.1191/030913200701540465
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NR 98
TC 45
Z9 54
U1 113
U2 885
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 1080-7039
EI 1549-7860
J9 HUM ECOL RISK ASSESS
JI Hum. Ecol. Risk Assess.
PD APR 21
PY 2021
VL 27
IS 4
BP 921
EP 937
DI 10.1080/10807039.2020.1788918
EA JUL 2020
PG 17
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA RH2JV
UT WOS:000547670200001
DA 2025-04-22
ER

PT J
AU Ziliaskopoulos, K
   Petropoulos, C
   Laspidou, C
AF Ziliaskopoulos, Konstantinos
   Petropoulos, Christos
   Laspidou, Chrysi
TI Enhancing Sustainability: Quantifying and Mapping Vulnerability to
   Extreme Heat Using Socioeconomic Factors at the National, Regional and
   Local Levels
SO SUSTAINABILITY
LA English
DT Article
DE urban sustainability; SDG 11; socioeconomic vulnerability; resilience;
   climate change; morbidity; mortality; urban setting
ID METAANALYSIS; TEMPERATURE
AB Population-dense urban areas often concentrate high commercial and industrial activity and intricate transportation systems. In crowded cities, extreme events can be even more damaging due to the high population they affect and the social inequalities that are likely to emerge. Extreme heat is a climate hazard that has been linked to high morbidity and mortality, especially in cities with high population densities. The way extreme heat events are felt in the population varies depending on a variety of factors, such as age, employment status, living conditions, air-conditioning, housing conditions, habits, behaviors and other socio-demographic parameters. In this article, we quantify and locate vulnerabilities of populations to extreme heat in order to formulate policy and practice recommendations that will make communities resilient and will shape the transition to a more sustainable future. This work contributes towards the achievement of Sustainable Development Goal 11-Sustainable Cities and Communities-by developing the tools to make cities and settlements resilient and sustainable. To this end, we analyze socioeconomic data at the NUTS3 level for the national case study of Greece and at the census tract level for the local case study of the city of Athens. The target variable for this study is defined as the average daily mortality during heatwaves per 100,000 individuals, and a methodology is developed for constructing this variable based on socioeconomic data available in public databases. The independent variables were selected based on their contribution to socioeconomic vulnerability; they include the percentage of elderly individuals, retirees, unemployed persons, renters, those living alone, those residing in smaller houses, those living in older houses and immigrants from developing countries. An ensemble gradient boosted tree model was employed for this study to obtain feature importance metrics that was used to construct a composite index of socioeconomic heat vulnerability. The socioeconomic heat vulnerability index (SHVI) was calculated for each prefecture in Greece and for each census tract in the city of Athens, Greece. The unique feature of this SHVI is that it can be applied to any geographical resolution using the same methodology and produces a result that is not only quantifiable, but also facilitates a comparison between vulnerability scores across different regions. This application aimed to map the SHVI of both prefecture and city, to examine the significance of scale, to identify vulnerability hotspots, and rank the most vulnerable areas, which are prioritized by authorities for interventions that protect public health.
C1 [Ziliaskopoulos, Konstantinos] Univ Thessaly, Dept Environm Sci, Larisa 41500, Greece.
   [Ziliaskopoulos, Konstantinos; Laspidou, Chrysi] Athena Res & Innovat Ctr, Sustainable Dev Unit, Maroussi 15125, Greece.
   [Ziliaskopoulos, Konstantinos] Auburn Univ, Dept Ind & Syst Engn, Auburn, AL 36849 USA.
   [Petropoulos, Christos] EETAA Hellen Agcy Local Dev & Local Govt, Athens 10436, Greece.
   [Laspidou, Chrysi] Univ Thessaly, Dept Civil Engn, Volos 38334, Greece.
C3 University of Thessaly; Auburn University System; Auburn University;
   University of Thessaly
RP Laspidou, C (corresponding author), Athena Res & Innovat Ctr, Sustainable Dev Unit, Maroussi 15125, Greece.; Laspidou, C (corresponding author), Univ Thessaly, Dept Civil Engn, Volos 38334, Greece.
EM zilikons93@gmail.com; xpetro@eetaa.gr; laspidou@uth.gr
RI Laspidou, Chrysi/AAI-4606-2020
OI Ziliaskopoulos, Konstantinos/0000-0001-8323-3392; Laspidou,
   Chrysi/0000-0001-5225-4844
FU the European Union's Horizon 2020 Innovation Action program [101037424
   ARSINOE]; European Union's Horizon 2020 Innovation Action program
   [CA20138]; European Cooperation in Science and Technology COST Action
FX The work described in this paper was conducted within the project
   ARSINOE. This project received funding from the European Union's Horizon
   2020 Innovation Action program under Grant Agreement No. 101037424
   ARSINOE. The project also received funding from the European Cooperation
   in Science and Technology COST Action CA20138 NexusNet.
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NR 32
TC 0
Z9 0
U1 10
U2 11
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2024
VL 16
IS 17
AR 7603
DI 10.3390/su16177603
PG 16
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA F7G7W
UT WOS:001311467400001
OA gold
DA 2025-04-22
ER

PT J
AU Lessa, PWB
   Gondim-Matos, B
   Valdevino, AM
AF Lessa, Patrick Wendell Barbosa
   Gondim-Matos, Beatriz
   Valdevino, Antonio Messias
TI Micro-entrepreneurs in the creative industry: how resilience overcomes
   the impacts of the pandemic
SO RBGN-REVISTA BRASILEIRA DE GESTAO DE NEGOCIOS
LA English
DT Article
DE Trade fair; resilience; s-commerce; creative industry
ID COMMERCE; MARKET; SPACES; URBAN; CITY
AB Purpose - This study aims to understand the resilience process through the initiatives of micro-entrepreneurs at a creative fair to deal with an external shock context. Theoretical framework - The study is based on the resilience lens and seeks to add new reflections on this lens in the context of social commerce. Design/methodology/approach - A case study was conducted on the changes brought about by COVID-19 in the creative industry. Interviews were carried out with micro-entrepreneurs in Crato, in the state of Ceara, Brazil. In addition, regional decrees were collected to analyze how micro-entrepreneurs reacted to the implementation of measures against the spread of COVID-19. Findings - It was possible to create a framework that reflects how micro-entrepreneurs saw the trade fair before the pandemic and their resilient and adaptable attitudes to overcome external shocks and sell their products through social commerce on the Internet. Practical & social implications of research - This study develops new reflections on resilience and the role of social commerce, in addition to filling gaps in the understanding of micro-entrepreneurs' resilience. In addition, this study can help micro-entrepreneurs understand how social commerce can help develop their businesses. Originality/value - This article managed to fill some gaps about the resilience of micro-entrepreneurs in the creative industry. It also showed that social media were used to overcome the external shocks caused by COVID-19. However, the physical space is still important for this type of market, even during a pandemic.
C1 [Lessa, Patrick Wendell Barbosa] Univ Fed Santa Catarina, Ctr Socioecon, Florianopolis, SC, Brazil.
   [Gondim-Matos, Beatriz] Univ Fed Cariri, Ctr Ciencias Sociais Aplicadas, Juazeiro Do Norte, CE, Brazil.
   [Valdevino, Antonio Messias] Univ Fed Paraiba, Ctr Ciencias Sociais Aplicadas, Joao Pessoa, PB, Brazil.
C3 Universidade Federal de Santa Catarina (UFSC); Universidade Federal do
   Cariri; Universidade Federal da Paraiba
RP Lessa, PWB (corresponding author), Univ Fed Santa Catarina, Ctr Socioecon, Florianopolis, SC, Brazil.
EM patrickwbarbosa@gmail.com; beatriz.gondim@ufca.edu.br;
   valdevino@academico.ufpb.br
OI Messias Valdevino, Antonio/0000-0001-7096-7071; Gondim-Matos,
   Beatriz/0000-0002-1871-797X; Barbosa Lessa, Patrick
   Wendell/0000-0003-1892-2786
FU National Council for Scientific and Technological Development of Brazil
   (CNPq) [433530/2018-9]; Cearense Foundation for Supporting Scientific
   and Technological Development (FUNCAP) [BP4-0172-00128.01.05/22]
FX Supporting research agencies: National Council for Scientific and
   Technological Development of Brazil (CNPq-Process 433530/2018-9) and
   Cearense Foundation for Supporting Scientific and Technological
   Development (FUNCAP-Process BP4-0172-00128.01.05/22) . We are also
   grateful to the anonymous editors and reviewers of the Revista
   Brasileira de Gestao de Negocios, who constructively contributed to the
   improvement, refinement and quality of this article. In addition, we
   would like to thank the vendors at Feira Cariri Criativo and Casa Uca
   who helped in the development of this research.
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NR 50
TC 0
Z9 1
U1 6
U2 13
PU FUND ESCOLA COMERCIO ALVARES PENTEADO-FECAP
PI SAO PAULO SP
PA AV DA LIBERDADE 532, SAO PAULO SP, CEP01502-001, BRAZIL
SN 1806-4892
EI 1983-0807
J9 RBGN-REV BRAS GEST N
JI RBGN-Rev. Bras. Gest. Negocios
PD JUL-SEP
PY 2023
VL 25
IS 3
BP 353
EP 372
DI 10.7819/rbgn.v25i3.4234
PG 20
WC Business; Management
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA U7NB1
UT WOS:001086625200001
OA gold
DA 2025-04-22
ER

PT J
AU Okyere, SA
   Abunyewah, M
   Addai, J
   Mensah, SL
   Frimpong, LK
   Kwang, C
AF Okyere, Seth Asare
   Abunyewah, Matthew
   Addai, Justina
   Mensah, Stephen Leonard
   Frimpong, Louis Kusi
   Kwang, Clement
TI Faith-based organisations and disaster management in informal urban
   Accra
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article; Early Access
DE Faith-based organisations; multi-actor frameworks; community-based
   disaster management; informal settlements; Accra
ID RISK REDUCTION; CLIMATE-CHANGE; COMMUNITY RESILIENCE; INDONESIA; HEALTH;
   COORDINATION; SETTLEMENTS; FLOOD
AB Disaster risks in African cities are compounding due to the triple convergence of climate change impacts, unplanned urbanisation, and entrenched socio-spatial inequities. Disaster events are, therefore, common with disproportionate impacts on informal residents yet resting within reactive and extremely limited disaster management regime that leaves behind many voids in disaster risk reduction. Drawing on a qualitative approach and situated in a disaster-vulnerable community of Dome, Greater Accra, this paper unpacks the activities of Faith-based Organisations (FBOs) in filling the voids in disaster preparedness, response, and recovery. This research is timely because elevating and integrating FBOs activities in disaster management could concretise multi-actor frameworks for disaster risk reduction that are culturally sensitive, locally situated, and socially engaged. The paper documents that experimenting with formal-informal collaborations in community-based risk reduction and leveraging the practices and experiences of FBOs in disaster risk reduction holds the potential for building disaster prevention and resilient capacities in informal urban riskscapes. The study recommends that active collaboration between FBOs and government organisations can assist in bridging crisis management gaps and improving community disaster resilience.
C1 [Okyere, Seth Asare] Univ Arizona, Sch Landscape Architecture & Planning, Tucson, AZ USA.
   [Abunyewah, Matthew] Charles Darwin Univ, Australasian Ctr Resilience Implementat Sustainabl, Darwin, Australia.
   [Addai, Justina] Univ Ghana, Sch Educ & Leadership, Legon, Ghana.
   [Mensah, Stephen Leonard] Univ Memphis, Dept City & Reg Planning, Memphis, TN USA.
   [Frimpong, Louis Kusi] Univ Environm & Sustainable Dev, Dept Geog & Earth Sci, Somanya, Ghana.
   [Kwang, Clement] Univ Ghana, Dept Geog & Resource Dev, Legon, Ghana.
C3 University of Arizona; Charles Darwin University; University of Ghana;
   University of Memphis; University of Ghana
RP Abunyewah, M (corresponding author), Charles Darwin Univ, Australasian Ctr Resilience Implementat Sustainabl, Darwin, Australia.
EM matthew.abunyewah@cdu.edu.gh
OI Abunyewah, Matthew/0000-0002-6649-6489
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NR 112
TC 6
Z9 6
U1 6
U2 13
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1747-7891
EI 1878-0059
J9 ENVIRON HAZARDS-UK
JI Environ. Hazards
PD 2024 MAR 26
PY 2024
DI 10.1080/17477891.2024.2333738
EA MAR 2024
PG 24
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA MA8K0
UT WOS:001190992200001
OA hybrid
DA 2025-04-22
ER

PT J
AU Iliadis, C
   Glenis, V
   Kilsby, C
AF Iliadis, Christos
   Glenis, Vassilis
   Kilsby, Chris
TI Cloud Modelling of Property-Level Flood Exposure in Megacities
SO WATER
LA English
DT Article
DE flood risk; pluvial floods; cloud computing; flood modelling;
   hydrodynamic model; CityCAT; digital terrain model
ID URBAN; INUNDATION; RISK; SIMULATION
AB Surface water flood risk is projected to increase worldwide due to the growth of cities as well as the frequency of extreme rainfall events. Flood risk modelling at high resolution in megacities is now feasible due to the advent of high spatial resolution terrain data, fast and accurate hydrodynamic models, and the power of cloud computing platforms. Analysing the flood exposure of urban features in these cities during multiple storm events is essential to understanding flood risk for insurance and planning and ultimately for designing resilient solutions. This study focuses on London, UK, a sprawling megacity that has experienced damaging floods in the last few years. The analysis highlights the key role of accurate digital terrain models (DTMs) in hydrodynamic models. Flood exposure at individual building level is evaluated using the outputs from the CityCAT model driven by a range of design storms of different magnitudes, including validation with observations of a real storm event that hit London on the 12 July 2021. Overall, a novel demonstration is presented of how cloud-based flood modelling can be used to inform exposure insurance and flood resilience in cities of any size worldwide, and a specification is presented of what datasets are needed to achieve this aim.
C1 [Iliadis, Christos; Glenis, Vassilis; Kilsby, Chris] Newcastle Univ, Sch Engn, Newcastle Upon Tyne NE1 7RU, England.
   [Kilsby, Chris] Willis Res Network, 51 Lime St, London EC3M 7DQ, England.
C3 Newcastle University - UK
RP Iliadis, C (corresponding author), Newcastle Univ, Sch Engn, Newcastle Upon Tyne NE1 7RU, England.
EM c.iliadis2@newcastle.ac.uk; vassilis.glenis@newcastle.ac.uk;
   chris.kilsby@newcastle.ac.uk
RI ; Glenis, Vassilis/U-4374-2017
OI Iliadis, Christos/0000-0002-1181-3686; Glenis,
   Vassilis/0000-0001-6037-9508; kilsby, chris/0000-0003-3422-294X
FU The authors acknowledge support from the Willis Research Network and
   their encouragement in modelling flood risk in London. We thank Ferg
   Kilsby for his assistance with identifying the locations of the social
   media flood reports. We thank the three anonymo; Willis Research Network
   and their encouragement in modelling flood risk in London; EPSRC
   [2281772] Funding Source: UKRI
FX The authors acknowledge support from the Willis Research Network and
   their encouragement in modelling flood risk in London. We thank Ferg
   Kilsby for his assistance with identifying the locations of the social
   media flood reports. We thank the three anonymous reviewers for their
   constructive comments.
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NR 72
TC 4
Z9 4
U1 1
U2 14
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD OCT
PY 2023
VL 15
IS 19
AR 3395
DI 10.3390/w15193395
PG 21
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA T9LW5
UT WOS:001081136400001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Bigger, P
   Webber, S
AF Bigger, Patrick
   Webber, Sophie
TI Green Structural Adjustment in the World Bank's Resilient City
SO ANNALS OF THE AMERICAN ASSOCIATION OF GEOGRAPHERS
LA English
DT Article
DE adaptation; development; infrastructure; overaccumulation
ID FINANCIALIZATION; DECENTRALIZATION; POLICY; STATE; AGE
AB According to an increasingly prevalent set of discourses and practices within environmental and development finance, cities across the Global South are facing a costly infrastructural crisis stemming from rapid urbanization and climate change that threatens to further entrench poverty and precarity for millions of people. The cost of achieving urban resilience across the world dwarfs available public finance, however, from both development banks and governments themselves. Meanwhile, vast amounts of money on capital markets are searching for profitable investment opportunities. The World Bank is attempting to channel return-seeking investment into urban infrastructure in response to these challenges. To harness this private finance, though, cities must be reformatted in investment-friendly ways. In this article, we chart the emergence of this discourse and associated practices within the World Bank. We call this rescaled and climate-inflected program of leveraged investments coupled with technical assistance Green Structural Adjustment. Drawing on policy documents, reports, and interviews with key staff, we examine programs that include Green Structural Adjustment to show how it aims to restructure local governments to capture new financial flows. Green Structural Adjustment reduces adaptation to a question of infrastructure finance and government capacity building, reinscribing both causes and effects of uneven development while creating spatial fixes for overaccumulated Northern capital in the Global South.
C1 [Bigger, Patrick] Univ Lancaster, Lancaster Environm Ctr, Econ Geog, Bailrigg LA1 4YQ, England.
   [Webber, Sophie] Univ Sydney, Sch Geosci, Geog, Camperdown, NSW 2006, Australia.
C3 Lancaster University; University of Sydney
RP Bigger, P (corresponding author), Univ Lancaster, Lancaster Environm Ctr, Econ Geog, Bailrigg LA1 4YQ, England.
EM p.bigger@lancaster.ac.uk; sophie.webber@sydney.edu.au
RI Bigger, Patrick/JPL-7319-2023
OI Webber, Sophie/0000-0002-7597-4622; Bigger, Patrick/0000-0002-0022-6822
FU Social Sciences and Humanities Research Council (Canada); Swedish
   Research Council; American Association of Geographers
FX The authors received funding from the Social Sciences and Humanities
   Research Council (Canada), the Swedish Research Council, and the
   American Association of Geographers.
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NR 83
TC 65
Z9 66
U1 4
U2 28
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 2469-4452
EI 2469-4460
J9 ANN AM ASSOC GEOGR
JI Ann. Am. Assoc. Geogr.
PD JAN 2
PY 2021
VL 111
IS 1
BP 36
EP 51
DI 10.1080/24694452.2020.1749023
EA JUN 2020
PG 16
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA PA2NF
UT WOS:000543263300001
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Paredes, LHL
   Vigiola, GQ
AF Paredes, Luis Hernando Lozano
   Vigiola, Gabriela Quintana
TI Microspheres of self-governance: Platform communities in times of need
   in Bogota<acute accent>, Colombia
SO CITIES
LA English
DT Article
DE Self-governance; Platform technology; Informality; Platform
   municipalism; Social innovation; Community resilience
ID DIGITAL METHODS; RESPONSES; SENSE
AB This paper delves into the emergence of alternative governance models in Bogota<acute accent>, Colombia, enabled by platform technology amid state inefficiencies magnified by poorly managed COVID-19 lockdowns. The argument on how these microspheres of alternative self-governance emerged draws on a digital ethnography study of ride-hailing platform drivers in Bogota<acute accent> who operate within the city's informal economy due to the local lack of regulations. Predominantly representing marginalised populations and servicing lower-income neighbourhoods, these drivers enhance their informal organisation and growth through social media platforms by performing unregulated services such as food delivery during lockdowns. The paper unveils how these platform-mediated self-governance mechanisms challenge the city's institutional frameworks. Centring on the 'Drivers Club Bogota<acute accent>' case, the paper advocates for policy reforms encouraging a 'partner state' model that promotes social innovation and citizen involvement in governance. Urban policymakers should harness insights from these informal governance models to better manage post-pandemic realities in Bogota<acute accent> and other contexts. Ultimately, this paper highlights the transformative potential of platform technologies and emphasises the need for a deeper understanding of platform technologies in fostering social innovation, empowering citizens, and bettering urban governance, thereby promoting inclusive, resilient, and more equitable urban ecosystems.
C1 [Paredes, Luis Hernando Lozano] Univ Technol Sydney, Transdisciplinary Sch, Broadway, NSW, Australia.
   [Vigiola, Gabriela Quintana] Univ Technol Sydney, Sch Built Environm, Broadway, NSW, Australia.
C3 University of Technology Sydney; University of Technology Sydney
RP Paredes, LHL (corresponding author), Univ Technol Sydney, POB 123, Broadway, NSW 2007, Australia.
EM luishernando.lozanoparedes@uts.edu.au; Gabriela.quintana@uts.edu.au
RI Lozano-Paredes, Luis/KYR-6902-2024; Vigiola, Gabriela/ABE-2205-2021;
   Quintana Vigiola, Gabriela/I-4509-2014
OI Lozano Paredes, Luis Hernando/0000-0002-4753-2317; Quintana Vigiola,
   Gabriela/0000-0002-4157-5287
FU Institute for Humane Studies, George Mason University [IHS016750];
   University of Technology Sydney's President and International Research
   Scholarships
FX This work received support from the Institute for Humane Studies, George
   Mason University under grant no. IHS016750. This work also received
   support from the University of Technology Sydney's President and
   International Research Scholarships.
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TC 0
Z9 0
U1 6
U2 9
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD OCT
PY 2024
VL 153
AR 105311
DI 10.1016/j.cities.2024.105311
EA JUL 2024
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA A9P1Y
UT WOS:001285777600001
OA hybrid
DA 2025-04-22
ER

PT J
AU Bixler, RP
   Lieberknecht, K
   Leite, F
   Felkner, J
   Oden, M
   Richter, SM
   Atshan, S
   Zilveti, A
   Thomas, R
AF Bixler, R. Patrick
   Lieberknecht, Katherine
   Leite, Fernanda
   Felkner, Juliana
   Oden, Michael
   Richter, Steven M.
   Atshan, Samer
   Zilveti, Alvaro
   Thomas, Rachel
TI An Observatory Framework for Metropolitan Change: Understanding Urban
   Social-Ecological-Technical Systems in Texas and Beyond
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; urban sustainability; observatory; social-ecological
   systems; socio-technical systems; social-ecological-technological
   systems; Texas
ID GLOBAL CHANGE; CO-CREATION; KNOWLEDGE; SCIENCE; SUSTAINABILITY;
   GOVERNANCE; RESILIENCE; COPRODUCTION; INDICATORS; CHALLENGES
AB In Texas and elsewhere, the looming realities of rapid population growth and intensifying effects of climate change mean that the things we rely on to live-water, energy, dependable infrastructure, social cohesion, and an ecosystem to support them-are exposed to unprecedented risk. Limited resources will be in ever greater demand and the environmental stress from prolonged droughts, record-breaking heat waves, and destructive floods will increase. Existing long-term trends and behaviors will not be sustainable. That is our current trajectory, but we can still change course. Significant advances in information communication technologies and big data, combined with new frameworks for thinking about urban places as social-ecological-technical systems, and an increasing movement towards transdisciplinary scholarship and practice sets the foundation and framework for a metropolitan observatory. Yet, more is required than an infrastructure for data. Making cities inclusive, safe, resilient, and sustainable will require that data become actionable knowledge that change policy and practice. Research and development of urban sustainability and resilience knowledge is burgeoning, yet the uptake to policy has been slow. An integrative and holistic approach is necessary to develop effective sustainability science that synthesizes different sources of knowledge, relevant disciplines, multi-sectoral alliances, and connections to policy-makers and the public. To address these challenges and opportunities, we developed a conceptual framework for a metropolitan observatory to generate standardized long-term, large-scale datasets about social, ecological, and technical dimensions of metropolitan systems. We apply this conceptual model in Texas, known as the Texas Metro Observatory, to advance strategic research and decision-making at the intersection of urbanization and climate change. The Texas Metro Observatory project is part of Planet Texas 2050, a University of Texas Austin grand challenge initiative.
C1 [Bixler, R. Patrick; Atshan, Samer] Univ Texas Austin, LBJ Sch Publ Affairs, RGK Ctr Philanthropy & Community Serv, Austin, TX 78712 USA.
   [Lieberknecht, Katherine; Oden, Michael; Richter, Steven M.; Thomas, Rachel] Univ Texas Austin, Sch Architecture, Community & Reg Planning Program, Austin, TX 78712 USA.
   [Leite, Fernanda; Zilveti, Alvaro] Univ Texas Austin, Dept Civil Architectural & Environm Engn, Construct Engn & Project Management Program, Austin, TX 78712 USA.
   [Felkner, Juliana] Univ Texas Austin, Sch Architecture, Sustainable Design Program, Austin, TX 78712 USA.
C3 University of Texas System; University of Texas Austin; University of
   Texas System; University of Texas Austin; University of Texas System;
   University of Texas Austin; University of Texas System; University of
   Texas Austin
RP Bixler, RP (corresponding author), Univ Texas Austin, LBJ Sch Publ Affairs, RGK Ctr Philanthropy & Community Serv, Austin, TX 78712 USA.
EM rpbixler@utexas.edu
RI Atshan, Samer/MGW-7041-2025; Leite, Fernanda/AAT-2099-2021
OI Leite, Fernanda/0000-0002-7789-4474; Bixler, R.
   Patrick/0000-0003-0515-0967; Lieberknecht,
   Katherine/0000-0002-4168-7457; Atshan, Samer/0000-0001-9091-3695
FU Planet Texas 2050, a research grand challenge at the University of Texas
   at Austin
FX This work was financially supported by Planet Texas 2050, a research
   grand challenge at the University of Texas at Austin.
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NR 74
TC 20
Z9 23
U1 6
U2 38
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL 1
PY 2019
VL 11
IS 13
AR 3611
DI 10.3390/su11133611
PG 17
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA IL1IB
UT WOS:000477051900112
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU He, BJ
   Fu, XC
   Zhao, ZQ
   Chen, PX
   Sharifi, A
   Li, H
AF He, Bao-Jie
   Fu, Xuecheng
   Zhao, Ziqi
   Chen, Pengxin
   Sharifi, Ayyoob
   Li, Hong
TI Capability of LCZ Scheme to Differentiate Urban Thermal Environments in
   Five Megacities of China: Implications for Integrating LCZ System Into
   Heat-Resilient Planning and Design
SO IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE
   SENSING
LA English
DT Article
DE Heating systems; Urban areas; Meteorology; Urban planning; Planning;
   Ocean temperature; Temperature distribution; Springs; Prevention and
   mitigation; Heat resilience; hot/cold zones; land surface temperature
   (LST); local climate zone (LCZ) capability; local climate zones (LCZs);
   seasonal variability; seasonal variability
ID LOCAL CLIMATE ZONES; LAND-SURFACE TEMPERATURE; COVER
AB The local climate zone (LCZ) classification scheme provides a standardized method to characterize urban morphological characteristics and urban thermal environments. However, its capability to differentiate urban temperatures has not been well examined. This article investigated the LCZ-based land surface temperature (LST) in five megacities, including Shenyang, Beijing, Xi'an, Nanjing, and Nanchang. The results indicate that the LCZ scheme might conceal areas with the most critical heat risks, if the maximum LST was not used. The built-dominated zones often contributed to urban temperature increase, but it was not always true. The nonbuilt-dominated zones, mostly lowered urban temperatures, while they could contribute to urban temperature increase depending on seasonal and urban context. Both hot and cold nonbuilt-dominated zones varied significantly with city and season. Some zones were the hottest in one season, but changed to be the coldest in another season. LCZ scheme showed good capability to differentiate the temperatures of built-dominated zones, while its capability to characterize nonbuilt-dominated zones was weaker. In Beijing, the LCZ capability to characterize the temperature of nonbuilt-dominated zones was below 70%, and was only 16.67% in summer. Therefore, urban planners, designers, and managers should prudently adopt LCZ scheme to rank the priorities for integrating cooling interventions in both built-dominated and nonbuilt-dominated zones. It is important to not copy the LCZ-based LST pattern of other cities or seasons when making decisions. Overall, this article provides a reference to understand LCZ capability and make proper decisions for urban heat mitigation, adaptation, and management.
C1 [He, Bao-Jie; Li, Hong] Chongqing Univ, Sch Architecture & Urban Planning, Key Lab New Technol Construction Cities Mt Area, Minist Educ, Chongqing 400045, Peoples R China.
   [He, Bao-Jie; Fu, Xuecheng] Chongqing Univ, Inst Smart City Chongqing Univ Liyang, Liyang 213300, Peoples R China.
   [He, Bao-Jie] Univ Queensland, Sch Architecture Design & Planning, Brisbane, Qld 4072, Australia.
   [He, Bao-Jie] CMA Key Open Lab Transforming Climate Resourcesto, Chongqing 401147, Peoples R China.
   [Fu, Xuecheng; Li, Hong] Chongqing Univ, Sch Architecture & Urban Planning, Minist Educ, Chongqing 400045, Peoples R China.
   [Zhao, Ziqi] China Meteorol Adm, Inst Atmospher Environm, Shenyang 110166, Peoples R China.
   [Chen, Pengxin] Shenyang Meteorol Serv, Shenyang, Peoples R China.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Hiroshima 7390046, Japan.
C3 Chongqing University; Chongqing University; University of Queensland;
   Chongqing University; China Meteorological Administration; Institute of
   Atmospheric Environment, China Meteorological Administration; Hiroshima
   University
RP Li, H (corresponding author), Chongqing Univ, Sch Architecture & Urban Planning, Key Lab New Technol Construction Cities Mt Area, Minist Educ, Chongqing 400045, Peoples R China.; Li, H (corresponding author), Chongqing Univ, Sch Architecture & Urban Planning, Minist Educ, Chongqing 400045, Peoples R China.
EM lihom@cqu.edu.cn
RI He, Bao-jie/ABC-5621-2020; Ferwin, John/HCH-0462-2022; Sharifi,
   Ayyoob/M-7584-2013; He, Bao-Jie/L-9595-2015
OI Sharifi, Ayyoob/0000-0002-8983-8613; He, Bao-Jie/0000-0002-8841-0711
FU National Natural Science Foundation of China [42301339, 32101337];
   Fundamental Research Funds for the Central Universities [2024CDJXY014];
   China Meteorological Administration Youth Innovation Team Project
   [CMA2024QN15]; Joint Open Fund Project of Shenyang Institute of
   Atmospheric Environment, China Meteorological Administration
   [2023SYIAEKFMS02]
FX This work was supported in part by the National Natural Science
   Foundation of China under Grant 42301339 and Grant 32101337; in part by
   the Fundamental Research Funds for the Central Universities under Grant
   2024CDJXY014; in part by the China Meteorological Administration Youth
   Innovation Team Project under Grant CMA2024QN15; and in part by the
   Joint Open Fund Project of Shenyang Institute of Atmospheric
   Environment, China Meteorological Administration under Grant
   2023SYIAEKFMS02.
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TC 5
Z9 5
U1 23
U2 23
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 1939-1404
EI 2151-1535
J9 IEEE J-STARS
JI IEEE J. Sel. Top. Appl. Earth Observ. Remote Sens.
PY 2024
VL 17
BP 18800
EP 18817
DI 10.1109/JSTARS.2024.3469241
PG 18
WC Engineering, Electrical & Electronic; Geography, Physical; Remote
   Sensing; Imaging Science & Photographic Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Physical Geography; Remote Sensing; Imaging Science &
   Photographic Technology
GA K0K5X
UT WOS:001340861900012
OA gold
DA 2025-04-22
ER

PT J
AU Xia, YQ
   Shao, Y
   Zheng, Y
   Yan, X
   Lyu, H
AF Xia, Yanqing
   Shao, Yu
   Zheng, Yue
   Yan, Xin
   Lyu, Hanlu
TI Bridging Nature and Urbanization: A Comprehensive Study of Biophilic
   Design in the Knowledge Economy Era
SO JOURNAL OF THE KNOWLEDGE ECONOMY
LA English
DT Article; Early Access
DE Biophilic design; Sustainable urban planning; Green spaces; Urban
   well-being; Environmental studies; Ecological landscapes
ID HEALTH; URBAN; SCIENCE; SUSTAINABILITY; ARCHITECTURE; BUILDINGS;
   ECOLOGY; CITIES
AB The relentless pace of global urbanization has ushered in a complex web of challenges, often referred to as "urban ills," threatening the well-being of urban residents. This paper delves into the evolving concept of biophilic design, which seeks to address the disconnect between modern urban culture and nature, offering a promising paradigm for sustainable urban development. As the world moves towards a knowledge-based economy, the significance of biophilic design in fostering resilient, inclusive, and equitable cities becomes increasingly evident. This research, spanning from 2008 to 2023, employs bibliometric analysis, utilizing tools like VOSviewer and CiteSpace to comprehensively examine the global landscape of biophilic design research. It traces the trajectory of biophilic design from its inception, exploring its theoretical foundations and real-world applications. The study identifies influential authors, productive institutions, and key themes, shedding light on the current state of research in this field. Notably, the paper highlights the intersectionality of biophilic design, as it touches on areas such as criminology, medicine, psychology, and urban transportation. The COVID-19 pandemic has further emphasized the importance of mental health and well-being in urban settings, making collaboration with the field of psychology crucial. Theoretical implications include the need for adaptable theoretical frameworks that accommodate the evolving nature of biophilic design research. Policy implications stress the importance of integrating biophilic design concepts into urban planning regulations, fostering interdisciplinary research, and raising public awareness. Planning for resilience in a post-pandemic world calls for flexible zoning restrictions, improved healthcare infrastructure, and the incorporation of biophilic elements. This research contributes to a deeper understanding of biophilic design theory and its potential for shaping future urban development, aligning with the principles of the knowledge-based economy while addressing contemporary urban challenges.
C1 [Xia, Yanqing; Shao, Yu] Pukyong Natl Univ, Ind Design Dept, Busan 612022, South Korea.
   [Shao, Yu] Hanyang Univ, Coll Design, Ansan 15588, Gyeonggi Do, South Korea.
   [Zheng, Yue] Guangdong Technol Coll, Construct Inst, Zhaoqing 526000, Guangdong, Peoples R China.
   [Yan, Xin] Tai Zhou Univ, Acad Fine Arts, Tai Zhou 225300, Jiangsu, Peoples R China.
   [Lyu, Hanlu] Daejin Univ, Dept Art Design, Pocheon Si 11159, Gyeonggi Do, South Korea.
C3 Pukyong National University; Hanyang University; Daejin University
RP Zheng, Y (corresponding author), Guangdong Technol Coll, Construct Inst, Zhaoqing 526000, Guangdong, Peoples R China.
EM zhengyue@gdlgxy.edu.cn
FU Graduate School of Art and Design at Pukyong National University, South
   Korea
FX We extend our gratitude to the reviewers and editors for their valuable
   feedback on this manuscript. We also express our sincere appreciation to
   the Graduate School of Art and Design at Pukyong National University,
   South Korea, for their generous support of this research.
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NR 97
TC 3
Z9 3
U1 13
U2 20
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1868-7865
EI 1868-7873
J9 J KNOWL ECON
JI J. Knowl. Econ.
PD 2024 JUN 8
PY 2024
DI 10.1007/s13132-024-02023-7
EA JUN 2024
PG 40
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA TO3G1
UT WOS:001242158200002
DA 2025-04-22
ER

PT J
AU Cui, L
   Yang, HW
   Heng, XX
   Song, RQ
   Wu, LS
   Hu, YK
AF Cui, Liu
   Yang, Hanwen
   Heng, Xiaoxu
   Song, Ruiqi
   Wu, Lunsai
   Hu, Yike
TI Urban Street Greening in a Developed City: The Influence of COVID-19 and
   Socio-Economic Dynamics in Beijing
SO LAND
LA English
DT Article
DE urban street greening; green infrastructures; street view images;
   COVID-19 pandemic; computer vision
ID TREES; BENEFITS; VIEW
AB This study aims to investigate the spatial distribution and structural characteristics of urban greening in Beijing, focusing on three typologies: Single Tree (S-T), Tree-ush (T-B), and Tree-Bush-Grass (T-B-G). The analysis examines how socio-economic factors and the COVID-19 pandemic have influenced these structures across three time periods: pre-pandemic, during the pandemic, and post-pandemic recovery. To achieve this, a deep learning-based approach utilizing the DeepLabV3+ neural network was applied to analyze the features extracted from Baidu Street View (BSV) images. This method enabled the precise quantification of the structural characteristics of urban greening. The findings indicate that greening structures are significantly influenced by commercial activity, population mobility, and economic conditions. During the pandemic, simpler forms like S-T proved more resilient due to their lower maintenance requirements, while complex systems such as T-B-G experienced reduced support. These results underscore the vulnerability of green infrastructure during economic strain and highlight the need for urban greening strategies that incorporate flexibility and resilience to adapt to changing socio-economic contexts while maintaining ecological and social benefits.
C1 [Cui, Liu] Beijing Forestry Univ, Sch Landscape Architecture, Beijing 100091, Peoples R China.
   [Yang, Hanwen; Heng, Xiaoxu; Wu, Lunsai; Hu, Yike] Tianjin Univ, Sch Architecture, Tianjin 300072, Peoples R China.
   [Song, Ruiqi] Tianjin Renai Coll, Sch Architecture, Tianjin 301636, Peoples R China.
C3 Beijing Forestry University; Tianjin University
RP Cui, L (corresponding author), Beijing Forestry Univ, Sch Landscape Architecture, Beijing 100091, Peoples R China.; Song, RQ (corresponding author), Tianjin Renai Coll, Sch Architecture, Tianjin 301636, Peoples R China.
EM cuiliula@bjfu.edu.cn; 2122206046@tju.edu.cn; liudan@adm.tjftz.gov.cn;
   223044@tjrac.edu.cn; 2021206039@tju.edu.cn; huyike11@tju.edu.cn
FU Key Projects of the National Natural Science Foundation of China
   (NNSFC): Dynamic Simulation and Prediction of China's Forest Ecosystems
   through Quantification of Impacts of Anthropogenic and Natural
   Disturbances [42330507]; Key Projects of the National Natural Science
   Foundation of China (NNSFC): Dynamic Simulation and Prediction of
   China's Forest Ecosystems through Quantification of Impacts of
   Anthropogenic [52038007]; L.C. And the National Natural Science
   Foundation of China [FZ231009]; Case Study of Tianjin City, a
   Collaborative Project of Tianjin Renai College-Tianjin University
   Teachers' Development Fund
FX This research is funded by the Key Projects of the National Natural
   Science Foundation of China (NNSFC): Dynamic Simulation and Prediction
   of China's Forest Ecosystems through Quantification of Impacts of
   Anthropogenic and Natural Disturbances. Project No. 42330507, Funded by
   L.C. And the National Natural Science Foundation of China under the
   project "Research on the Reconstruction of China's Contemporary
   Architectural System Based on the Integration Mechanism of
   'Architecture-Human-Environment'". Project No. 52038007, funded by Y.H.
   And Research on Spatial Optimization Methods of Street-Leading Building
   Facades in Urban Renewal: A Case Study of Tianjin City, a Collaborative
   Project of Tianjin Renai College-Tianjin University Teachers'
   Development Fund, Project No. FZ231009, Funded by R.S.
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NR 30
TC 0
Z9 0
U1 0
U2 0
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD FEB
PY 2025
VL 14
IS 2
AR 238
DI 10.3390/land14020238
PG 19
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA Y3H1R
UT WOS:001431068500001
OA gold
DA 2025-04-22
ER

PT J
AU Henry, E
   Furno, A
   El Faouzi, NE
   Rey, D
AF Henry, Elise
   Furno, Angelo
   El Faouzi, Nour-Eddin
   Rey, David
TI Locating park-and-ride facilities for resilient on-demand urbanmobility
SO TRANSPORTATION RESEARCH PART E-LOGISTICS AND TRANSPORTATION REVIEW
LA English
DT Article
DE Park-and-ride; On-demand mobility; Resilience; Mixed-integer
   programming; Lagrangian relaxation
ID PUBLIC TRANSPORT; TRAVEL-TIME; NETWORK; FRAMEWORK
AB Urban transport networks, yet essential, are frequently impacted by recurrent disruptionssuch as public transport failures, adverse weather or strikes. Flexible transit systems canbe used to limit the impacts of recurrent disruptions on urban mobility. In this study, weexamine the potential of on-demand park-and-ride systems to complement an existing transportinfrastructure and improve network resilience. We formulate a stochastic park-and-ride facilitylocation problem which captures the entire user trip chain from the origin to the destinationvia pick up and drop off nodes in a mobility network. We use a Logit model to capture users'mode choice between paths in the park-and-ride system and a reserve travel option. Stochasticscenarios are used to represent varying traffic conditions to recurrent disruptions. The goalis to maximize the expected ridership in the park-and-ride system by identifying the optimallocation of pick up and drop off facilities and accounting for users' mode choice. We develop acustomized Lagrangian relaxation algorithm to solve the resulting mixed-integer programmingproblem on large scale instances and quantify its performance through a sensitivity analysis bycomparing it against a direct mixed-integer linear programming approach. Numerical resultsare presented on realistic instances generated based on the city of Lyon, France. Our findingsshow that the proposed methodology can provide key insights to support the deployment ofpark-and-ride systems and improve network resilience by capturing a significant proportion ofusers under disrupted traffic conditions
C1 [Henry, Elise; Furno, Angelo; El Faouzi, Nour-Eddin] Univ Gustave Eiffel, Univ Lyon, ENTPE, LICIT UMR T9401, F-69675 Lyon, France.
   [Rey, David] Univ Cote dAzur, SKEMA Business Sch, Sophia Antipolis Campus, Nice, France.
C3 Universite Gustave-Eiffel; SKEMA Business School; Universite Cote d'Azur
RP Henry, E (corresponding author), Univ Gustave Eiffel, Univ Lyon, ENTPE, LICIT UMR T9401, F-69675 Lyon, France.
EM elise.henry@univ-eiffel.fr
RI Furno, Angelo/Y-3756-2019; Rey, David/AAW-8123-2020
OI Furno, Angelo/0000-0001-9658-9179; Rey, David/0000-0002-1577-3845
FU French ANR research project PROMENADE [ANR-18-CE22-0008]; ISITE FUTURE
   Fellowship Program of Universite Gustave Eiffel; LICIT laboratory;
   Agence Nationale de la Recherche (ANR) [ANR-18-CE22-0008] Funding
   Source: Agence Nationale de la Recherche (ANR)
FX This research is funded by the French ANR research project PROMENADE
   (grant number ANR-18-CE22-0008). One of the authors(D. R.) would like to
   acknowledge support from the ISITE FUTURE Fellowship Program of
   Universite Gustave Eiffel and the LICIT laboratory
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NR 49
TC 11
Z9 13
U1 7
U2 52
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1366-5545
EI 1878-5794
J9 TRANSPORT RES E-LOG
JI Transp. Res. Pt. e-Logist. Transp. Rev.
PD FEB
PY 2022
VL 158
AR 102557
DI 10.1016/j.tre.2021.102557
EA JAN 2022
PG 24
WC Economics; Engineering, Civil; Operations Research & Management Science;
   Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Engineering; Operations Research & Management
   Science; Transportation
GA 0K8MB
UT WOS:000781042100005
OA Bronze, Green Submitted
DA 2025-04-22
ER

PT J
AU Zhou, MZ
   Zhou, JP
AF Zhou, Mingzhi
   Zhou, Jiangping
TI Multiscalar trip resilience and metro station-area characteristics: A
   case study of Hong Kong amid the pandemic
SO JOURNAL OF TRANSPORT GEOGRAPHY
LA English
DT Article
DE Multiscale; Travel; Resilience; Metro; COVID-19
ID BUILT ENVIRONMENT; MODE CHOICE; LAND-USE; COVID-19; ASSOCIATION;
   PATTERNS; BEHAVIOR; CITIES
AB A resilient urban system should cope with the dynamic human activities in its subsystems. Since travel allows people to have their needs satisfied in scattered locales, the dynamics of travel and its effects on people's wellbeing can vary across different spatial scales (including different subsystems) and over time. However, little empirical research has been done regarding these spatiotemporal variations. In this article, we introduced a trip resilience (TR) index to measure the time-varying travel characteristics, especially trip attraction changes, across different spatial scales. Using empirical data from Hong Kong, we quantified the TR indices for metro trips at a station across three spatial scales: local, neighborhood, and citywide. Then, we examined the spatial distribution of the TR and investigated which station (area) characteristics could explain the stations' TR indices for trips in different scales. We found that the TR indices and their predictors varied across the scales. The diversity of points of interest significantly predicted the TR indices across all the scales. Yet, other characteristics, such as the median age of residents, street density, working population, and provisions of parking spaces, only predicted the TR indices for trips at one or two of the scales. These findings shed light on more refined urban and transport planning strategies and policies concerning travel demand management across spatial scales in the post-COVID19 era.
C1 [Zhou, Jiangping] Univ Hong Kong, Fac Architecture, Dept Urban Planning & Design, Hong Kong, Peoples R China.
   [Zhou, Jiangping] Univ Hong Kong, Urban Syst Inst, Hong Kong, Peoples R China.
C3 University of Hong Kong; University of Hong Kong
RP Zhou, JP (corresponding author), Univ Hong Kong, Fac Architecture, Dept Urban Planning & Design, Hong Kong, Peoples R China.; Zhou, JP (corresponding author), Univ Hong Kong, Urban Syst Inst, Hong Kong, Peoples R China.
EM mingzhi@connect.hku.hk; zhoujp@hku.hk
FU General Research Fund of Hong Kong and Platform Technology Funding
   [17603220, URC012530226]; University of Hong Kong
FX The research underlying this paper is financially supported by the
   General Research Fund of Hong Kong (Grant #17603220) and Platform
   Technology Funding (URC012530226) , The University of Hong Kong. Any
   discrepancies or omissions, however, remain sole responsibilities of the
   authors.
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NR 80
TC 1
Z9 1
U1 11
U2 22
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0966-6923
EI 1873-1236
J9 J TRANSP GEOGR
JI J. Transp. Geogr.
PD APR
PY 2024
VL 116
AR 103851
DI 10.1016/j.jtrangeo.2024.103851
EA MAR 2024
PG 12
WC Economics; Geography; Transportation
WE Social Science Citation Index (SSCI)
SC Business & Economics; Geography; Transportation
GA QR1B4
UT WOS:001222494600001
DA 2025-04-22
ER

PT J
AU Lloyd, GR
   Ossola, A
   Burley, HM
   Evans, KL
AF Lloyd, G. R.
   Ossola, A.
   Burley, H. M.
   Evans, K. L.
TI Climate change threatens carbon storage in Europe's urban trees
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Ecosystem services; Rainfall; Thermal tolerance; Urban heat islands;
   Urban forests; Urban planning
ID ECOSYSTEM SERVICES; DROUGHT; PRECIPITATION; MECHANISMS; MORTALITY;
   STRATEGY; BIOMASS; GROWTH; VOLUME
AB Urban trees contribute substantially to numerous ecosystem services. Here we quantify the threat to carbon stored by urban trees from increased heat and drought arising from climate change. We use data from tree inventories in 22 European cities, spread across five Koppen-Geiger climatic zones, that record similar to 1.2 million trees from 188 species. We calculate species' climatic niches using global tree distribution data and estimate speciesspecific thermal and hydraulic safety gaps and margins for each city in 2050 and 2070 using the RCP 8.5 emissions scenario. This scenario provides the best match for emissions to at least 2050 under current and stated policy plans, and highly plausible emission levels to 2100. We then assess the proportion of current carbon storage at risk from changes in temperature (associated with thermal stress) and precipitation changes (associated with hydraulic stress). By 2070 a substantial amount of the current carbon storage in urban trees is projected to be threatened by climatic stress. Average values (depending on the precise methods used for calculating climatic niches) are: 99.96 % - 99.98 % in the cold semi-arid climate zone; 82.97 % - 92.61 % in the humid subtropical zone, 69.72 % - 72.00 % in the warm Mediterranean zone, 44.18 % - 55.06 % in the humid continental zone and 29.60 % - 43.22 % in the temperate oceanic zone - although within each climatic zone risks are lower in some cities. In each climatic zone the vast majority of this threat is associated with thermal stress, with precipitation changes projected to be a comparatively minor threat. Our analyses highlight individual species which are particularly vulnerable to future climatic conditions, and more resilient species that if rapidly planted on mass could improve resilience of urban tree stocks to climate change. Our findings inform the development of climate-ready urban forestry and planning strategies that will facilitate long term carbon storage capacity of Europe's urban forests, and emphasise the urgency of doing so.
C1 [Lloyd, G. R.; Evans, K. L.] Univ Sheffield, Sch Biosci, Ecol & Evolutionary Biol, Sheffield S10 5DJ, S Yorkshire, England.
   [Ossola, A.] Univ Calif Davis, Dept Plant Sci, One Shields Ave, Davis, CA 95616 USA.
   [Ossola, A.] Univ Melbourne, Sch Agr Food & Ecosyst Sci, Burnley, Vic 3121, Australia.
   [Ossola, A.] Macquarie Univ, Dept Biol Sci, N Ryde, NSW 2109, Australia.
   [Burley, H. M.] UNSW, Dept Biol Earth & Environm Sci, Kensington, NSW 2052, Australia.
C3 University of Sheffield; University of California System; University of
   California Davis; University of Melbourne; Macquarie University;
   University of New South Wales Sydney
RP Lloyd, GR (corresponding author), Univ Sheffield, Sch Biosci, Ecol & Evolutionary Biol, Sheffield S10 5DJ, S Yorkshire, England.
EM georgelloyd300@gmail.com
RI Ossola, Alessandro/D-1262-2012
OI Ossola, Alessandro/0000-0002-0507-6026
FU NERC [NE/W002906/1]; Hatch Project [CA-D-PLS-2735-H]
FX We thank all the municipalities and organisations responsible for
   carrying out the urban tree inventories across Europe, and those who
   made them available to GUTI. The research was supported by NERC grant
   NE/W002906/1 awarded to KLE. AO is supported by a Hatch Project
   (CA-D-PLS-2735-H) .
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NR 71
TC 2
Z9 2
U1 14
U2 14
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD NOV
PY 2024
VL 101
AR 128532
DI 10.1016/j.ufug.2024.128532
EA OCT 2024
PG 11
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA J9V7G
UT WOS:001340473700001
OA hybrid
DA 2025-04-22
ER

PT J
AU He, BJ
AF He, Bao-Jie
TI Spatial and socioeconomic heterogeneity of heat-related perception,
   awareness, knowledge and impacts for unbiased heat action plans
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Urban heat; Daily functioning; Severity perception; Awareness and
   knowledge; Vulnerability; Socioeconomic determinants
ID EMERGENCY-DEPARTMENT VISITS; THERMAL COMFORT; ADAPTATION; WAVES;
   QUANTIFICATION; ILLNESS; CLIMATE
AB Understanding heat-related impacts is important for supporting urban managers, planners, and designers in creating heat-resilient cities. However, existing literature has not revealed city-specific and group-specific public perception, awareness, knowledge, and impacts. This results international, national, and regional heat action plans in only providing general information for building resilience capacity, making them fail to offer accurate and unbiased suggestions for implementation. This study overcomes such knowledge gaps by investigating public perception, awareness, knowledge, and impacts on daily functioning based on 4210 valid questionnaires in nine megacities in China. The analysis verified the disparity between heat severity and adaptation awareness and knowledge in both nationwide and city-specific scenarios. Lack of awareness and knowledge was identified as a major challenge for action, possibly associated with background climates, extreme heat events, and socioeconomic characteristics. The subjects' responses showed heterogeneity across the nine megacities in terms of heat severity, impact knowledge, action awareness, and solution knowledge. Heat-induced impacts on daily functioning were spatially heterogeneous, with Chongqing and Nanchang being the most affected cities. Socioeconomic drivers of public perception, awareness, knowledge, and impact varied among cities. Overall, the results reveal that nationwide findings cannot exactly represent city-wide heat severity and action urgency. When transferring nation-scale action plans formulated on a nationwide dataset to city-scale plans, city-specific perception, awareness, knowledge, and impacts should be considered to avoid biases. Moreover, differences in socioeconomic determinants suggested the variability of susceptible groups, which should be emphasized when formulating city-scale action plans. Overall, this study adds original findings on city-specific heat-related perception, awareness, knowledge, and impacts, and offers implications for accurate and unbiased heat action plan formulation.
C1 [He, Bao-Jie] Chongqing Univ, Ctr Climate Resilient & Low Carbon Cities, Sch Architecture & Urban Planning, Key Lab New Technol Construct Cities Mt Area,Minis, Chongqing 400045, Peoples R China.
   [He, Bao-Jie] Chongqing Univ, Inst Smart City Chongqing Univ Liyang, Liyang 213300, Jiangsu, Peoples R China.
   [He, Bao-Jie] CMA Key Open Lab Transforming Climate Resources Ec, Chongqing 401147, Peoples R China.
C3 Chongqing University; Chongqing University
RP He, BJ (corresponding author), Chongqing Univ, Ctr Climate Resilient & Low Carbon Cities, Sch Architecture & Urban Planning, Key Lab New Technol Construct Cities Mt Area,Minis, Chongqing 400045, Peoples R China.
EM baojie.unsw@gmail.com
RI He, Bao-jie/ABC-5621-2020; He, Bao-Jie/L-9595-2015
OI He, Bao-Jie/0000-0002-8841-0711
FU CMA Key Open Laboratory of Transforming Climate Resources to Economy
   [CMA2024QN15];  [2023018]
FX This project is supported by the National Natural Science Foundation of
   China (No. 42301339) , the Fundamental Research Funds for the Central
   Universities (Grant No. 2024CDJXY014) , the China Meteoro-logical
   Administration "Research on value realization of climateecological
   products" Youth Innovation Team Project (No. CMA2024QN15) , and the CMA
   Key Open Laboratory of Transforming Climate Resources to Economy (No.
   2023018) .r ecological products" Youth Innovation Team Project (No.
   CMA2024QN15) , and the CMA Key Open Laboratory of Transforming Climate
   Resources to Economy (No. 2023018) .
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NR 57
TC 4
Z9 4
U1 3
U2 9
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD SEP 1
PY 2024
VL 469
AR 143164
DI 10.1016/j.jclepro.2024.143164
EA JUL 2024
PG 19
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA ZH2J1
UT WOS:001274336900001
DA 2025-04-22
ER

PT J
AU Páez-Curtidor, N
   Keilmann-Gondhalekar, D
   Drewes, JE
AF Paez-Curtidor, Natalie
   Keilmann-Gondhalekar, Daphne
   Drewes, Joerg E.
TI Application of the Water-Energy-Food Nexus Approach to the
   Climate-Resilient Water Safety Plan of Leh Town, India
SO SUSTAINABILITY
LA English
DT Article
DE climate-resilient water safety plans; Water-Energy-Food Nexus; water
   security
ID FLASH FLOODS; MANAGEMENT; FRAMEWORK; SYSTEMS; WEB; GIS
AB Climate-resilient water safety plans (CR-WSPs) have been developed as a risk-based approach to ensure a safe drinking-water supply while addressing the increasing stress on water resources resulting from climate change. Current examples of the application of CR-WSPs show a strong sectoral approach that fails to explore the potential synergies between other climate-sensitive sectors related to water, such as food and energy. This can increase the vulnerability or decrease the overall resilience of urban systems when planning climate change adaptation measures. In this work, the Water-Energy-Food (WEF) Nexus approach was applied in the formulation of a CR-WSP in Leh Town, India, a city with rapid development and population growth located in the Himalayas-one of the most sensitive ecosystems to climate change. The WEF Nexus approach was applied in the system description using a critical infrastructure approach and in the formulation of scenarios for risk management which exploited intersectoral synergies through water reclamation with resource recovery using constructed wetlands. The improvements in WEF security and risk reduction were demonstrated through indicators and risk mapping with geographical information systems (GISs). The methods for integrating the WEF Nexus approach in CR-WSPs provided through this work can serve as a base for a trans-sectoral, resilient approach within risk-based approaches for water security.
C1 [Paez-Curtidor, Natalie; Keilmann-Gondhalekar, Daphne; Drewes, Joerg E.] Tech Univ Munich, Dept Civil & Environm Engn, Chair Urban Water Syst Engn, Coulombwall 3, D-85748 Garching, Germany.
C3 Technical University of Munich
RP Keilmann-Gondhalekar, D (corresponding author), Tech Univ Munich, Dept Civil & Environm Engn, Chair Urban Water Syst Engn, Coulombwall 3, D-85748 Garching, Germany.
EM natalie.paez@tum.de; d.gondhalekar@tum.de; jdrewes@tum.de
RI Drewes, Jörg/AAK-1473-2020
OI , Natalie Paez-Curtidor/0009-0009-0162-1689; Drewes, Jorg
   E./0000-0003-2520-7596; Gondhalekar, Daphne/0000-0002-4265-6505
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NR 88
TC 10
Z9 10
U1 5
U2 37
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2021
VL 13
IS 19
AR 10550
DI 10.3390/su131910550
PG 29
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA WK3IE
UT WOS:000709621700001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Li, WL
   Li, Q
   Jia, LX
   Hou, DC
   Wang, SM
   Liu, YJ
AF Li, Wenlong
   Li, Qin
   Jia, Lixin
   Hou, Dongchen
   Wang, Sunmeng
   Liu, Yijun
TI Resilience Regeneration Priorities for Old Blocks Based on Public
   Satisfaction: A Case Study of Beijing, China
SO BUILDINGS
LA English
DT Article
DE old blocks; resilience regeneration priority; public satisfaction;
   satisfaction three-factor theory; asymmetric impact-performance analysis
   (AIPA)
ID ASYMMETRIC INFLUENCES; ATTRIBUTES
AB In the process of urban development, old blocks face issues such as long construction times, outdated buildings and facilities, and poor environmental quality, which do not meet the current requirements for the construction and development of resilient cities. Resilience regeneration of old blocks is an important measure to improve public satisfaction and an important way to achieve high-quality and sustainable development of old blocks. Therefore, the priority of resilience regeneration is an important research issue that deserves attention. This study combines the three-factor theory with the asymmetric impact-performance analysis (AIPA) to explore the asymmetric impact relationship between resilience regeneration attributes and public satisfaction, in order to determine the priority order of resilience regeneration of old blocks to improve public satisfaction. Firstly, the main attributes affecting the resilience regeneration of old blocks were summarized and sorted into five dimensions. Secondly, representative old blocks in Beijing were selected, and relevant data were collected through questionnaire surveys, followed by data organization and analysis, to gain a deep understanding of the key issues of resilience regeneration elements in old blocks. Finally, the asymmetric impact-performance analysis was employed to explore and quantify the asymmetric impact relationship between resilience regeneration factors and public satisfaction. The results show that the resilience regeneration attributes can be divided into three categories: spatial texture as a basic factor, environment and emotional experience as excitement factors, and infrastructure and operation and maintenance management as performance factors. This study provides a scientific basis for determining the priority order of resilience regeneration of old blocks and offers a reference for managers to develop targeted resilience regeneration strategies, which is conducive to further improving public satisfaction and promoting the revitalization of old blocks.
C1 [Li, Wenlong] Beijing Univ Civil Engn & Architecture, Sch Urban Econ & Management, Beijing 100044, Peoples R China.
   [Li, Qin; Hou, Dongchen] Beijing Univ Civil Engn & Architecture, Sch Architecture & Urban Planning, Beijing 100044, Peoples R China.
   [Jia, Lixin] Xian Univ Architecture & Technol, Sch Phys Educ, Xian 710055, Peoples R China.
   [Wang, Sunmeng] Xian Univ Architecture & Technol, Sch Management, Xian 710055, Peoples R China.
   [Liu, Yijun] Xian Univ Architecture & Technol, Sch Civil Engn, Xian 710055, Peoples R China.
C3 Beijing University of Civil Engineering & Architecture; Beijing
   University of Civil Engineering & Architecture; Xi'an University of
   Architecture & Technology; Xi'an University of Architecture &
   Technology; Xi'an University of Architecture & Technology
RP Li, Q (corresponding author), Beijing Univ Civil Engn & Architecture, Sch Architecture & Urban Planning, Beijing 100044, Peoples R China.
EM liwenlong@bucea.edu.cn; liqin@bucea.edu.cn
RI HOU, DONGCHEN/HPH-2962-2023
FU the Project of Beijing Social Science Foundation [18YTC020]; Project of
   Beijing Social Science Foundation [CDDB19167]; Project of Beijing
   Municipal Educational Science "13th Five-Year Plan" [2019061]; Project
   of China Association of Construction Education [MS2022276]; Subject of
   Beijing Association of Higher Education [X24003]; Scientific Research
   Cultivation Project of BUCEA [PG2024002]; Post Graduate Innovation
   Project of BUCEA
FX This research was supported by the Project of Beijing Social Science
   Foundation (grant No. 18YTC020), the Project of Beijing Municipal
   Educational Science "13th Five-Year Plan" (grant No. CDDB19167), the
   Project of China Association of Construction Education (grant No.
   2019061), the Subject of Beijing Association of Higher Education (grant
   No. MS2022276), the Scientific Research Cultivation Project of BUCEA
   (grant No. X24003), and the Post Graduate Innovation Project of BUCEA
   (grant No. PG2024002).
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NR 59
TC 0
Z9 0
U1 3
U2 3
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD FEB
PY 2025
VL 15
IS 4
AR 536
DI 10.3390/buildings15040536
PG 17
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA Y2K1V
UT WOS:001430470100001
OA gold
DA 2025-04-22
ER

PT J
AU Orr, AM
   Stewart, JL
   Jackson, C
   White, JT
AF Orr, Allison M.
   Stewart, Joanna L.
   Jackson, Cath
   White, James T.
TI Not quite the 'death of the high street' in UK city centres: Rising
   vacancy rates and the shift in property use richness and diversity
SO CITIES
LA English
DT Article
DE Retailing systems; Real estate; Property use; Change of use; Property
   use richness; Property use diversity; Mixed use
ID ECONOMIC-CRISIS; LAND-USE; RETAIL; RESILIENCE
AB This paper explores the inter-connections between property use diversity, change of use, and the adaptive capacity within urban retailing systems. The retailing centres of five UK case study cities, Edinburgh, Glasgow, Hull, Liverpool, and Nottingham, are examined over a twenty-year period using original databases on property use and geospatial mapping techniques to employ property use richness and diversity metrics in a novel manner. Overall, the analysis finds property use richness has generally risen as comparison retailing and financial services have contracted, to be replaced by hospitality, leisure, and residential uses. However, this re-balancing has not been even across retailing centres and is outstripped by rising vacancies. The study also reveals spatial variation in change of use and use diversity and richness as retailing centres slowly adapt, implying that future policymaking should focus on creating more resilient, mixed use city centres as an alternative to the single use retail high streets of the past.
C1 [Orr, Allison M.; White, James T.] Univ Glasgow, Sch Social & Polit Sci, Urban Studies, 25-29 Bute Gardens, Glasgow G12 8RS, Scotland.
   [Stewart, Joanna L.] Univ Glasgow, Urban Studies, 7 Lilybank Gardens, Glasgow G12 8RZ, Scotland.
   [Jackson, Cath] Dept Urban Studies & Planning, Geog & Planning Bldg, Winter St, Sheffield S3 7ND, England.
C3 University of Glasgow; University of Glasgow
RP Orr, AM (corresponding author), Univ Glasgow, Sch Social & Polit Sci, Urban Studies, 25-29 Bute Gardens, Glasgow G12 8RS, Scotland.
EM Allison.Orr@glasgow.ac.uk
RI Stewart, Joanna/P-3106-2019
OI Orr, Allison/0000-0003-0452-2159
FU Economic and Social Research Council [ES/R005117/1]
FX Acknowledgements This work was supported by the Economic and Social
   Research Council [grant number ES/R005117/1] . The authors are also
   grateful to the data service at Urban Big Data Centre for providing
   access to data.
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NR 66
TC 3
Z9 3
U1 4
U2 18
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD FEB
PY 2023
VL 133
AR 104124
DI 10.1016/j.cities.2022.104124
EA DEC 2022
PG 18
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA H1PK3
UT WOS:000993749200001
OA Green Accepted, hybrid
DA 2025-04-22
ER

PT J
AU Lopez, IP
   Carrasco, S
   Madrigal, CM
AF Lopez, Irene Perez
   Carrasco, Sandra
   Madrigal, Cesar Mariscal
TI Cartographic analysis as spatial determinant for climate change
   adaptation in the Hunter River Estuary, Australia
SO CITIES
LA English
DT Article
DE Ecological design; Estuary urbanism; Climate adaptation; Living
   infrastructures; Hunter River Australia
ID DESIGN; POLICY; CITY
AB This paper explores the hydrological history of the Hunter River and Estuary (Newcastle, Australia), to identify pathways for incorporating climate-sensitive adaptation approaches into urban development and planning. The research method utilises mapping as a methodological discovery tools to visually articulate the correlation of precolonial hydrological landscapes, the transformation of the estuary over two centuries, the areas identified as at risk, and the opportunities for developing a climate-resilient estuary. This research aims to contribute to the redefinition of the discourse on the role of estuary planning for changing climate, focusing on four critical aspects: identify the impacts of urbanisation and industrialisation on ecosystems and its correlation with climate hazard at the estuary; visualise such transformations over time and space to identify critical spatial and climate factors threatening inhabitation; propose strategic spatial practices towards adaptation and resilience; and synthesising the options to foster reflective thinking and establish a correlation with novel policies, governance and practices. The study highlights that adopting new urbanism aligned with cultural and ecological principles can mitigate future climate impacts through re-naturalisation and urban adaptation to sea-level rise by focusing on proactive approaches to building resilient communities. This paper also acknowledges the need for sitespecific adaptive design and planning strategies at multiple scales and governance levels.
C1 [Lopez, Irene Perez; Carrasco, Sandra] Univ Newcastle, Coll Engn Sci & Environm, Sch Architecture & Built Environm, Architecture Dr, Callaghan 2308, Australia.
   [Madrigal, Cesar Mariscal] Pan Amer Observ Landscape Terr & Architecture, Madrid, Spain.
C3 University of Newcastle
RP Lopez, IP (corresponding author), Univ Newcastle, Coll Engn Sci & Environm, Sch Architecture & Built Environm, Architecture Dr, Callaghan 2308, Australia.
EM irene.perezlopez@newcastle.edu.au; Sandra.Carrasco@newcastle.edu.au;
   cesarmariscal@gmail.com
RI Carrasco, Sandra/HLG-8004-2023
OI Carrasco, Sandra/0000-0002-1395-4976
FU University of Newcastle Research Advantage Women in Research; College of
   Engineering, Science and Environment Start-up Support Funds
FX This research was funded by the University of Newcastle Research
   Advantage Women in Research and the College of Engineering, Science and
   Environment Start-up Support Funds.
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NR 109
TC 1
Z9 1
U1 4
U2 10
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD SEP
PY 2024
VL 152
AR 105162
DI 10.1016/j.cities.2024.105162
EA JUN 2024
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA XI9P8
UT WOS:001261176500001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU De Fino, M
   Tavolare, R
   Bernardini, G
   Quagliarini, E
   Fatiguso, F
AF De Fino, Mariella
   Tavolare, Riccardo
   Bernardini, Gabriele
   Quagliarini, Enrico
   Fatiguso, Fabio
TI Boosting urban community resilience to multi-hazard scenarios in open
   spaces: A virtual reality - serious game training prototype for heat
   wave protection and earthquake response
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban squares and buildings; Universal thermal climate index; Earthquake
   debris; Crowd evacuation motion; Game environments; User experience
ID FIRE EVACUATION; RISK; PREPAREDNESS; SIMULATION; EDUCATION
AB A key role in making cities resilient has been acknowledged in raising risk preparedness and awareness of urban communities, by appropriate education and communication strategies, which should rely on innovative and pervasive tools. In this regard, an outstanding paradigm shift is driven by the advancement of Virtual Reality, which can take advantage of Serious Games, for helping individuals develop responsive behaviours in case of both slow and sudden disasters and, thus, boosting effective human-urban-building interaction within a wider process of safety and sustainability. To this end, the paper proposes a VR-SG training prototype for multi-hazard scenarios in urban open spaces. The prototype integrates results from phenomenological and behavioural analyses and is applied to representative typologies of the built environment. The prototype is demonstrated for heat wave protection and earthquake response through the design and implementation of its functional features - virtual environment, interaction mode, learning outcomes and storyline - and its informative contents, including simulation-based data on surface temperatures, extent of falling debris and crowd motion. The final goal is to validate a reliable and flexible tool in view of wide replication in urban contexts for both instructing on critical situations and communicating mitigation strategies.
C1 [De Fino, Mariella; Tavolare, Riccardo; Fatiguso, Fabio] Politecn Bari, Dept Civil Environm Land Construct & Chem, Bari, Italy.
   [Bernardini, Gabriele; Quagliarini, Enrico] Univ Politecn Marche, Dept Construct Civil Engn & Architecture, Ancona, Italy.
C3 Politecnico di Bari; Marche Polytechnic University
RP De Fino, M (corresponding author), Politecn Bari, Dept Civil Environm Land Construct & Chem, Bari, Italy.
EM mariella.defino@poliba.it
RI De Fino, Mariella/ABF-4542-2021; Bernardini, Gabriele/S-6283-2017;
   Quagliarini, Enrico/M-5281-2019
OI DE FINO, Mariella/0000-0002-2675-704X; Tavolare,
   Riccardo/0000-0003-1698-9952
FU MIUR (the Italian Ministry of Education, University) [2017LR75XK]
FX This research was funded by the MIUR (the Italian Ministry of Education,
   University, and Research) Project BE S2ECURe-(make) Built Environment
   Safer in Slow and Emergency Conditions through behavioural
   assessed/designed Resilient solutions (grant number: 2017LR75XK).
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NR 96
TC 15
Z9 15
U1 13
U2 63
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD DEC
PY 2023
VL 99
AR 104847
DI 10.1016/j.scs.2023.104847
EA AUG 2023
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA S4AF0
UT WOS:001070604000001
OA hybrid
DA 2025-04-22
ER

PT J
AU Dong, CY
   Yan, Y
   Guo, J
   Lin, KR
   Chen, XH
   Okin, GS
   Gillespie, TW
   Dialesandro, J
   MacDonald, GM
AF Dong, Chunyu
   Yan, Yu
   Guo, Jie
   Lin, Kairong
   Chen, Xiaohong
   Okin, Gregory S.
   Gillespie, Thomas W.
   Dialesandro, Jake
   MacDonald, Glen M.
TI Drought-vulnerable vegetation increases exposure of disadvantaged
   populations to heatwaves under global warming: A case study from Los
   Angeles
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban vegetation; Drought; Climate change; Environmental justice; Los
   Angeles
ID LAND-SURFACE TEMPERATURE; HEAT-RELATED MORTALITY; URBAN VEGETATION;
   HUMAN HEALTH; SPATIAL-PATTERN; CLIMATE-CHANGE; GREEN SPACES; CALIFORNIA;
   NDVI; PROJECTIONS
AB Urban vegetation is valuable in alleviating local heatwaves. However, drought may decrease vegetation health and limit this cooling effect. Here we use satellite-based Normalized Difference Vegetation Index (NDVI) and Palmer Drought Severity Index (PDSI) to investigate the sensitivity of urban vegetation to drought in Coastal Greater Los Angeles (CGLA) from 2001 to 2020. We applied four statistical models to analyze the relations between 15 socioeconomic variables and the vegetation's sensitivity to drought. We then examined the changes in the cooling effect of the urban vegetation during drought and non-drought periods using remotely sensed land surface temperature (LST) data. The results suggest that economically disadvantaged areas with higher pro-portions of Hispanics and Blacks are typified by vegetation more sensitive to drought, which is likely linked to inequality in water use. Moreover, these populations experience a lower degree of vegetation cooling effects and higher exposure to heatwaves. The findings of this study imply that the potential of a community's vegetation in mitigating heatwaves is significantly influenced by the socioeconomic conditions of the community. Increasing the resilience of urban vegetation to drought in disadvantaged communities may help promote environmentally sustainable and socially resilient cities under a warming climate.
C1 [Dong, Chunyu; Yan, Yu; Lin, Kairong; Chen, Xiaohong] Sun Yat Sen Univ, Sch Civil Engn, Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai, Peoples R China.
   [Guo, Jie] Guangdong Acad Sci, Guangzhou Inst Geog, Guangdong Open Lab Geospatial Informat Technol &, Guangzhou, Peoples R China.
   [Okin, Gregory S.; Gillespie, Thomas W.; MacDonald, Glen M.] Univ Calif Los Angeles, Dept Geog, Los Angeles, CA 90095 USA.
   [Dialesandro, Jake] Univ Calif Los Angeles, Luskin Sch Publ Affairs, Los Angeles, CA USA.
C3 Sun Yat Sen University; Southern Marine Science & Engineering Guangdong
   Laboratory; Southern Marine Science & Engineering Guangdong Laboratory
   (Zhuhai); Guangdong Academy of Sciences; Guangzhou Institute of
   Geography, Guangdong Academy of Sciences; University of California
   System; University of California Los Angeles; University of California
   System; University of California Los Angeles
RP Guo, J (corresponding author), Guangdong Acad Sci, Guangzhou Inst Geog, Guangdong Open Lab Geospatial Informat Technol &, Guangzhou, Peoples R China.; MacDonald, GM (corresponding author), Univ Calif Los Angeles, Dept Geog, Los Angeles, CA 90095 USA.
EM jieguo@gdas.ac.cn; glen@geog.ucla.edu
RI Dong, Chunyu/P-1741-2019; Guo, Jie/HTM-8304-2023; Chen,
   Xiaohong/ABG-7114-2021; Gillespie, Thomas/A-5132-2010; Okin,
   Greg/D-3226-2019
OI Guo, Jie/0000-0001-8982-3000; Dong, Chunyu/0000-0001-5721-9247; Lin,
   Kairong/0000-0001-6533-3357; yan, yu/0000-0002-7045-0459
FU Guangdong Provincial Natural Science Foundation [2023A1515030122];
   Sustainable LA Grand Challenge; National Sciences Foundation EAR
   Collaborative Research Grant [1702580]; Department of the Interior
   Southwest Climate Adaptation Science Center; UCLA John Muir Memorial
   Endowed Chair
FX We acknowledge the funding from the Guangdong Provincial Natural Science
   Foundation (No. 2023A1515030122), the Sustainable LA Grand Challenge,
   and the National Sciences Foundation EAR Collaborative Research Grant
   (No. 1702580). This work was also supported by the Department of the
   Interior Southwest Climate Adaptation Science Center, and the UCLA John
   Muir Memorial Endowed Chair. The revision of this paper benefited from
   insightful comments and suggestions from the editor and two anonymous
   reviewers
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NR 99
TC 14
Z9 15
U1 15
U2 70
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JUN
PY 2023
VL 93
AR 104488
DI 10.1016/j.scs.2023.104488
EA MAR 2023
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA A5FA3
UT WOS:000955366600001
DA 2025-04-22
ER

PT J
AU Dumitru, A
   Frantzeskaki, N
   Collier, M
AF Dumitru, Adina
   Frantzeskaki, Niki
   Collier, Marcus
TI Identifying principles for the design of robust impact evaluation
   frameworks for nature-based solutions in cities
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Review
DE Nature-based solutions; Cities; Evaluation; Impact; Social cohesion;
   Well-being; Knowledge gaps
ID CULTURAL ECOSYSTEM SERVICES; URBAN GREEN SPACE; SOCIAL COHESION;
   PHYSICAL-ACTIVITY; BIODIVERSITY; MANAGEMENT; BENEFITS; HEALTH;
   INFRASTRUCTURE; RESILIENCE
AB Cities all over the world are confronting intertwined environmental, social and economic problems and aim to become resilient to climate change and promote wellbeing for all their citizens. Nature-based solutions have been proposed as a promising policy approach to addressing urban problems for the potential they have to deliver multiple benefits and foster wellbeing for individuals and communities. However, the evidence for their multiple benefits is rather scarce and highly fragmented, and more robust frameworks for the monitoring and assessment of their impacts are needed to guide urban policy-making. This paper focuses on the current state of impact assessment of nature-based solutions in Europe and through a systematic review of the literature identifies four conceptual problems and three empirical gaps that impede the accumulation of solid evidence regarding of the impacts of different types of nature-based solutions for different social groups; as well as of the contextual conditions that contribute to their performance and delivery of multiple outcomes. Based on the identified mis-conceptualizations and gaps, we derive a series of principles that should guide the development of robust impact assessment frameworks for nature-based solutions. We discuss the policy implications of these gaps and principles. We conclude by making a series of recommendations that should inform the design of impact monitoring and evaluation frameworks in cities, in order to develop the comparative evidence base on the effectiveness of nature-based solutions. This, in turn, can inform urban decision-making on the appropriate design, implementation, and long-term regeneration of nature-based solutions, to ensure long-term delivery of important ecosystem services for different social groups.
C1 [Dumitru, Adina] Univ A Coruna, Fac Educ Sci, Dept Psychol, Campus Elvina, La Coruna 15071, Spain.
   [Frantzeskaki, Niki] Swinburne Univ Technol, Fac Hlth Arts & Design, Ctr Urban Transit, Melbourne, Vic 3122, Australia.
   [Frantzeskaki, Niki] Erasmus Univ, Dutch Res Inst Transit, Rotterdam, Netherlands.
   [Collier, Marcus] Trinity Coll Dublin, Coll Green, Sch Nat Sci, Dublin 2, Ireland.
C3 Universidade da Coruna; Swinburne University of Technology; Erasmus
   University Rotterdam; Erasmus University Rotterdam - Excl Erasmus MC;
   Trinity College Dublin
RP Dumitru, A (corresponding author), Univ A Coruna, Fac Educ Sci, Dept Psychol, Campus Elvina, La Coruna 15071, Spain.
EM adina.dumitru@udc.es; nfrantzeskaki@swin.edu.au; marcus.collier@tcd.ie
RI Dumitru, Adina/ITU-5179-2023; Frantzeskaki, Niki/AAN-1044-2021; Collier,
   Marcus/G-3557-2010
OI Frantzeskaki, Niki/0000-0002-6983-448X; Collier,
   Marcus/0000-0002-6853-9980; Dumitru, Adina/0000-0002-6841-8820
FU European Union's Horizon 2020 research and innovation programme
   [730222]; H2020 Societal Challenges Programme [730222] Funding Source:
   H2020 Societal Challenges Programme
FX The research of this paper is part of the Connecting Nature project, and
   has received funding from the European Union's Horizon 2020 research and
   innovation programme under grant agreement No 730222. Authors are
   thankful to Helena Martinez for her assistance in the initial literature
   search on social cohesion, well-being and naturebased solutions and to
   Giorgia Silvestri for organizing the expert elicitation process that
   supported the findings of this paper.
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NR 79
TC 67
Z9 68
U1 13
U2 156
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 1462-9011
EI 1873-6416
J9 ENVIRON SCI POLICY
JI Environ. Sci. Policy
PD OCT
PY 2020
VL 112
BP 107
EP 116
DI 10.1016/j.envsci.2020.05.024
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA NR8SV
UT WOS:000571832600002
OA Green Published
DA 2025-04-22
ER

PT J
AU Mannucci, S
   Kwakkel, JH
   Morganti, M
   Ferrero, M
AF Mannucci, Simona
   Kwakkel, Jan H.
   Morganti, Michele
   Ferrero, Marco
TI Exploring potential futures: Evaluating the influence of deep
   uncertainties in urban planning through scenario planning: A case study
   in Rome, Italy
SO FUTURES
LA English
DT Article
DE Scenario planning; Deep uncertainties; Urban planning; Decision-making;
   Climate adaptation
ID ROBUST DECISION-MAKING; ADAPTIVE POLICY PATHWAYS; CLIMATE-CHANGE;
   ADAPTATION; OPTIMIZATION; MODELS; CHALLENGES; STRATEGIES; MANAGEMENT;
   DISCOVERY
AB Cities play a critical role in developing adaptable strategies to address the challenges posed by climate change. However, the inherent complexity of urban environments and their uncertain future conditions necessitate exploring innovative approaches and tools to assist the current planning practices. This paper presents a workflow rooted in model-based scenario planning for long-term adaptation planning given uncertain futures. To demonstrate the workflow's effectiveness, a pertinent case study was conducted in a flood-prone area of Rome. The study employed a land-use change model to examine potential urban growth patterns, considering the uncertain implementation of new poles of attraction. This interdisciplinary study constitutes an initial stride toward implementing uncertainty within urban planning frameworks. Future prospects encompass the integration of multiple models for cross-scale analysis, embracing further critical environmental and social aspects. This research contributes to advancing urban resilience strategies. It enhances the understanding of adapting to an uncertain future in the face of climate change, as urban areas must embrace comprehensive planning to ensure flexible adaptation when faced with climate-driven uncertainties in long-term planning. In conclusion, the study underscores that embracing uncertainty is a challenge and a pivotal opportunity to shape resilient and adaptable urban futures.
C1 [Mannucci, Simona; Morganti, Michele; Ferrero, Marco] Sapienza Univ Rome, DICEA Dept Civil Bldg & Environm Engn, SOS Urban Lab, Via Eudossiana 18, I-00184 Rome, Italy.
   [Kwakkel, Jan H.] Delft Univ Technol, Fac Technol Policy & Management, Jaffalaan 5, NL-2628 BX Delft, Netherlands.
C3 Sapienza University Rome; Delft University of Technology
RP Mannucci, S (corresponding author), Sapienza Univ Rome, DICEA Dept Civil Bldg & Environm Engn, SOS Urban Lab, Via Eudossiana 18, I-00184 Rome, Italy.
EM simona.mannucci@uniroma1.it
RI Ferrero, Marco/C-1254-2010; Kwakkel, Jan/D-9680-2013; Mannucci,
   Simona/HLP-6436-2023; Morganti, Michele/AAD-9759-2019
OI Ferrero, Marco/0000-0001-5600-0390; Mannucci, Simona/0000-0003-3275-0167
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NR 102
TC 7
Z9 7
U1 4
U2 12
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0016-3287
EI 1873-6378
J9 FUTURES
JI Futures
PD DEC
PY 2023
VL 154
AR 103265
DI 10.1016/j.futures.2023.103265
EA OCT 2023
PG 16
WC Economics; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Public Administration
GA X5AM9
UT WOS:001098575400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Palliwoda, J
   Haase, A
   Suppee, C
   Rink, D
   Priess, JA
AF Palliwoda, Julia
   Haase, Annegret
   Suppee, Constantin
   Rink, Dieter
   Priess, Joerg A.
TI Visions for development and management of urban green and blue
   infrastructure: a citizen's perspective
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE compact green city; citizen participation; land use change; planning;
   urban green spaces
ID ECOSYSTEM SERVICES; PHYSICAL-ACTIVITY; HUMAN HEALTH; BIODIVERSITY;
   CITIES; ECOLOGY; SPACE; PARKS; CHALLENGES; BENEFITS
AB Ongoing urbanization leads to problems such as densification, loss of biodiversity, and social injustice in cities. For increasing urban populations, green???blue infrastructure (GBI) is an important element in compact cities contributing to human health, well-being, and the provision of important ecosystem services. We analyzed responses from two open-ended questions about visions, ideas, and topics for the development and management of GBI important for citizens of the city of Leipzig, Germany. The questions were part of an online survey accompanying the development of the local GBI planning strategy: Master Plan Green. The strategy is focusing on five guiding themes that are leading local and global debates about sustainable and resilient cities: biodiversity, climate adaptation, environmental justice, health, and sustainable mobility. We categorize citizens' ideas and suggestions, summarize frequent problems and conflicts, and link ideas and visions to the five guiding themes. As the last step, we discuss citizens' suggestions in order to minimize conflicts in GBI and to identify deficits in present local planning. Major problems and conflicts that were addressed by respondents relate to quality, usability, other users, activities, and safety and security of GBI. Numerous suggestions aimed to tackle these problems, for example, by designating separate use areas, adding naturalness, improving maintenance, and enhancing facilities. A range of ideas and suggestions were based on diverging expectations underpinning the challenge of matching heterogeneous demands of GBI users in an equitable fashion. Linking these suggestions to the five guiding themes reveals that most ideas are covered by one or several guiding themes and are considered in local planning strategies. However, findings also demonstrate that increasing the quantity of Leipzig's GBI is a central request from respondents. Sociocultural and economic aspects as well as conflicting demands among citizens should further be central to GBI planning to avoid injustice and achieve sustainability objectives. This analysis gives insights into opinions and visions of citizens regarding the development of the city's GBI network and thus substantiates major strategic and planning themes leading global and local urban strategies toward sustainable cities. Considering specific suggestions and GBI deficits that bother citizens on a local level, offers the opportunity to improve the social and ecological resilience of GBI.
C1 [Palliwoda, Julia; Priess, Joerg A.] UFZ Helmholtz Ctr Environm Res, Dept Computat Landscape Ecol, Leipzig, Germany.
   [Haase, Annegret; Rink, Dieter] UFZ Helmholtz Ctr Environm Res, Dept Urban & Environm Sociol, Leipzig, Germany.
   [Suppee, Constantin] Off Green Space & Water, Leipzig, Germany.
C3 Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Helmholtz Association; Helmholtz Center for Environmental
   Research (UFZ)
RP Palliwoda, J (corresponding author), UFZ Helmholtz Ctr Environm Res, Dept Computat Landscape Ecol, Leipzig, Germany.
RI Priess, Joerg/G-1697-2012
OI Palliwoda, Julia/0000-0001-5247-875X
FU BiodivErsA [01LC1616A]
FX The study was part of the UrbanGaia project http://urbangaia.eu/, which
   was funded by BiodivErsA, project number 01LC1616A. We thank T. Wilke
   from the City of Leipzig, Office of Green Space and Water, for his input
   in the expert workshops and R. Guschel from Stadtlabor for providing the
   survey data and valuable comments. Thanks to L. Orth for supporting the
   data analysis and to L. Jakobs for language editing.
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NR 95
TC 14
Z9 14
U1 11
U2 59
PU Resilience Alliance
PI Dedham
PA 231 Bussey St., Beckwith and Brown, Dedham, Massachusetts, UNITED STATES
SN 1708-3087
J9 ECOL SOC
JI Ecol. Soc.
PD JUN
PY 2022
VL 27
IS 2
AR 270208
DI 10.5751/ES-13129-270208
PG 26
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 3C3QF
UT WOS:000828540400002
OA gold
DA 2025-04-22
ER

PT J
AU Leandro, J
   Cunneff, S
   Viernstein, L
AF Leandro, Jorge
   Cunneff, Shane
   Viernstein, Lorenz
TI Resilience Modeling of Flood Induced Electrical Distribution Network
   Failures: Munich, Germany
SO FRONTIERS IN EARTH SCIENCE
LA English
DT Article
DE network flood resilience; electrical distribution network; urban floods;
   flood risk assessment; flood inundation modeling; critical
   infrastructure
AB Of many defining characteristics for a flood resilient city and its infrastructure networks, mitigating flooding impacts and recovering quickly to a pre-flood state are to be considered of high importance. With a likely increase in the frequency and intensity of future heavy precipitation and flooding events in Europe, the vulnerability of the electrical distribution network of Maxvorstadt, Munich will also increase. These facts justify the need for quantifying how the electrical distribution network would respond to flooding, and more so, how stakeholders can better prepare for such an event. For a synthetic electrical distribution network of Maxvorstadt, the timing and location of network components failure due to flooding and affected persons without power have been computed for a combination of realistic future flooding events via the Electrical Network Flood Resilience Model developed in this study. It has been learned that most buildings, and therefore their inhabitants, lose power due to the failure of a specific component, Medium Voltage-Low Voltage transformer buses, and that flood risk solutions should focus on protecting network components from inundation to ensure its functionality through flooding events. Solutions like dry proofing such components before severe flooding occurs is recommended for several neighborhoods analyzed in this study.
C1 [Leandro, Jorge; Cunneff, Shane] Tech Univ Munich, Dept Civil Geo & Environm Engn, Munich, Germany.
   [Viernstein, Lorenz] Tech Univ Munich, Dept Elect & Comp Engn, Munich, Germany.
C3 Technical University of Munich; Technical University of Munich
RP Leandro, J (corresponding author), Tech Univ Munich, Dept Civil Geo & Environm Engn, Munich, Germany.
EM Jorge.leandro@tum.de
RI Leandro, Jorge/M-6558-2014
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TC 8
Z9 8
U1 4
U2 40
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
EI 2296-6463
J9 FRONT EARTH SC-SWITZ
JI Front. Earth Sci.
PD MAR 22
PY 2021
VL 9
AR 572925
DI 10.3389/feart.2021.572925
PG 11
WC Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology
GA RI3DX
UT WOS:000636789200001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Guo, WQ
   Wang, JW
   Liu, XY
   Pan, ZY
   Zhuang, R
   Li, CY
   Tang, HD
AF Guo, Weiqi
   Wang, Jingwei
   Liu, Xiaoyu
   Pan, Zhenyu
   Zhuang, Rui
   Li, Chunying
   Tang, Haida
TI Towards resilient communities: Evaluating the nonlinear impact of the
   built environment on COVID-19 transmission risk in residential areas
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Built environment; Residential areas; COVID-19; Random Forest
   regression; Multiscale Geographically Weighted; Regression
ID URBAN; REGRESSION; CITIES
AB Reflections on urban epidemics often drive improvements in the resilience of the built environment. However, the assessment regarding the nonlinear influence of the community environment on the spread of Corona Virus Disease 2019 (COVID-19) is inadequate. This study analyzed the influential mechanism of built environment factors on the epidemic risk in residential areas, using Shanghai as a case study. During the lockdown in April 2022, Shanghai reported daily data on COVID-19 outbreaks in residential areas, amounting to a total of 90,324 entries. Based on a GIS-based grid analysis approach, we employed a Random Forest (RF) model and a Multiscale Geographically Weighted Regression (MGWR) model to investigate the marginal effects and spatial heterogeneity of environmental factors on the mean count of COVID-19 outbreak days (MC) in residential areas within each grid zone. The results show that the value of MC forms a ring-mountain distribution surrounding the city's outer ring road. The RF model (R2 = 0.57) demonstrates that the house price, population density, family number, and the standard deviation of building height (BH_SD) significantly correlated with MC, with the relative importance of 25%, 13%, 11 %, and 6%, respectively. The MGWR model (R2 = 0.63) highlights the spatial heterogeneity of family number, house age, house price, property fee, and delivery density. We also found that property fee and green rate were negatively correlated with the MC. These findings help improve responses to public health emergencies and create more resilient communities to cope with pandemics.
C1 [Guo, Weiqi; Liu, Xiaoyu; Pan, Zhenyu; Zhuang, Rui; Li, Chunying; Tang, Haida] Shenzhen Univ, Sch Architecture & Urban Planning, Shenzhen 518060, Peoples R China.
   [Wang, Jingwei] Southeast Univ, Sch Architecture, Nanjing 210096, Peoples R China.
   [Li, Chunying; Tang, Haida] Shenzhen Key Lab Architecture Hlth & Well being in, Shenzhen 518060, Peoples R China.
C3 Shenzhen University; Southeast University - China
RP Tang, HD (corresponding author), Shenzhen Univ, Sch Architecture & Urban Planning, Shenzhen 518060, Peoples R China.
EM tanghdd@szu.edu.cn
RI guo, weiqi/AAI-8823-2021; Zhenyu, Pan/GYD-7055-2022; Wang,
   Jingwei/GZB-0655-2022
FU National Natural Science Founda-tion of China [52078296]; Shenzhen
   Science and Technology Pro-gram [ZDSYS20210623101534001,
   JCYJ20210324093204011]
FX This study was supported by the National Natural Science Founda-tion of
   China (No. 52078296) , Shenzhen Science and Technology Pro-gram (No.
   ZDSYS20210623101534001, JCYJ20210324093204011) .
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TC 0
Z9 0
U1 14
U2 14
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0360-1323
EI 1873-684X
J9 BUILD ENVIRON
JI Build. Environ.
PD JAN 1
PY 2025
VL 267
AR 112289
DI 10.1016/j.buildenv.2024.112289
EA NOV 2024
PN A
PG 15
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA M6T8I
UT WOS:001358848200001
DA 2025-04-22
ER

PT J
AU Wang, P
   Li, YB
   Zhang, YH
AF Wang, Peng
   Li, Yabo
   Zhang, Yuhu
TI An urban system perspective on urban flood resilience using SEM:
   evidence from Nanjing city, China
SO NATURAL HAZARDS
LA English
DT Article
DE Flood disaster; Urban flood resilience; Urban subsystem; Urban flood
   mitigation
ID COMMUNITY RESILIENCE; DISASTER RESILIENCE; CLIMATE-CHANGE; INDEX;
   VULNERABILITY; HAZARDS; GROWTH
AB The increasing flood disasters have led to serious losses and damage around the world, especially in the developing countries. Nanjing, China, has suffered from the frequent urban flood in recent years, which has hindered its sustainable development. This study assessed urban flood resilience in Nanjing based on the resilience dimensions of social, economic, natural, physical, human, political and institutional resilience. Results revealed that urban flood resilience and subdomain resilience showed the increasing trend from 1990 to 2017. Natural, social, natural, physical and political resilience influenced urban flood resilience a lot before 2006, while economic institutional, human and physical resilience made significant contributions after 2006. Economic, political and physical resilience showed the significant direct effect on urban flood resilience and political resilience had the mediating effect in economic and physical resilience.
C1 [Wang, Peng; Li, Yabo] Jiangsu Univ, Fac Civil Engn & Mech, Zhenjiang 212013, Jiangsu, Peoples R China.
   [Zhang, Yuhu] Capital Normal Univ, Coll Resource Environm & Tourism, Beijing 100048, Peoples R China.
C3 Jiangsu University; Capital Normal University
RP Wang, P (corresponding author), Jiangsu Univ, Fac Civil Engn & Mech, Zhenjiang 212013, Jiangsu, Peoples R China.
EM upeswp@ujs.edu.cn
OI Wang, Peng/0000-0003-3639-6126
FU National Natural Science Foundation of China [51908249]; Natural Science
   Foundation of the Jiangsu Higher Education Institutions of China
   [19KIB560012]; High-level Scientific Research Foundation for the
   introduction of talent for Jiangsu University [18JDG038]
FX This work was supported by the National Natural Science Foundation of
   China [Grant No. 51908249], the Natural Science Foundation of the
   Jiangsu Higher Education Institutions of China [Grant No. 19KIB560012],
   the High-level Scientific Research Foundation for the introduction of
   talent for Jiangsu University [Grant No. 18JDG038].
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NR 62
TC 55
Z9 61
U1 144
U2 786
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD DEC
PY 2021
VL 109
IS 3
BP 2575
EP 2599
DI 10.1007/s11069-021-04933-0
EA JUL 2021
PG 25
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA XA5DA
UT WOS:000673887700001
DA 2025-04-22
ER

PT J
AU Nanehkaran, YA
   Chen, BY
   Cemiloglu, A
   Chen, JD
   Anwar, S
   Azarafza, M
   Derakhshani, R
AF Nanehkaran, Yaser A. A.
   Chen, Biyun
   Cemiloglu, Ahmed
   Chen, Junde
   Anwar, Sheraz
   Azarafza, Mohammad
   Derakhshani, Reza
TI Riverside Landslide Susceptibility Overview: Leveraging Artificial
   Neural Networks and Machine Learning in Accordance with the United
   Nations (UN) Sustainable Development Goals
SO WATER
LA English
DT Review
DE riverside landslides; United Nations' Sustainable Development Goals;
   geo-hazards; artificial neural networks
ID ANALYTIC HIERARCHY PROCESS; LOGISTIC-REGRESSION;
   CONDITIONAL-PROBABILITY; SAMPLING STRATEGIES; HAZARD ASSESSMENT;
   LIKELIHOOD RATIO; FREQUENCY RATIO; GIS; RAINFALL; INFORMATION
AB Riverside landslides present a significant geohazard globally, posing threats to infrastructure and human lives. In line with the United Nations' Sustainable Development Goals (SDGs), which aim to address global challenges, professionals in the field have developed diverse methodologies to analyze, assess, and predict the occurrence of landslides, including quantitative, qualitative, and semi-quantitative approaches. With the advent of computer programs, quantitative techniques have gained prominence, with computational intelligence and knowledge-based methods like artificial neural networks (ANNs) achieving remarkable success in landslide susceptibility assessments. This article offers a comprehensive review of the literature concerning the utilization of ANNs for landslide susceptibility assessment, focusing specifically on riverside areas, in alignment with the SDGs. Through a systematic search and analysis of various references, it has become evident that ANNs have emerged as the preferred method for these assessments, surpassing traditional approaches. The application of ANNs aligns with the SDGs, particularly Goal 11: Sustainable Cities and Communities, which emphasizes the importance of inclusive, safe, resilient, and sustainable urban environments. By effectively assessing riverside landslide susceptibility using ANNs, communities can better manage risks and enhance the resilience of cities and communities to geohazards. While the number of ANN-based studies in landslide susceptibility modeling has grown in recent years, the overarching objective remains consistent: researchers strive to develop more accurate and detailed procedures. By leveraging the power of ANNs and incorporating relevant SDGs, this survey focuses on the most commonly employed neural network methods for riverside landslide susceptibility mapping, contributing to the overall SDG agenda of promoting sustainable development, resilience, and disaster risk reduction. Through the integration of ANNs in riverside landslide susceptibility assessments, in line with the SDGs, this review aims to advance our knowledge and understanding of this field. By providing insights into the effectiveness of ANNs and their alignment with the SDGs, this research contributes to the development of improved risk management strategies, sustainable urban planning, and resilient communities in the face of riverside landslides.
C1 [Nanehkaran, Yaser A. A.; Chen, Biyun; Cemiloglu, Ahmed] Yancheng Teachers Univ, Sch Informat Engn, Yancheng 224002, Peoples R China.
   [Chen, Junde] Xiangtan Univ, Dept Elect Commerce, Xiangtan 411100, Peoples R China.
   [Anwar, Sheraz] Xiamen Inst Technol, Sch Mech Elect & Informat Engn, Xiamen 361021, Peoples R China.
   [Azarafza, Mohammad] Univ Tabriz, Dept Civil Engn, Tabriz 5166616471, Iran.
   [Derakhshani, Reza] Univ Utrecht, Dept Earth Sci, NL-3584 CB Utrecht, Netherlands.
C3 Yancheng Teachers University; Xiangtan University; Xiamen Institute of
   Technology; University of Tabriz; Utrecht University
RP Derakhshani, R (corresponding author), Univ Utrecht, Dept Earth Sci, NL-3584 CB Utrecht, Netherlands.
EM r.derakhshani@uu.nl
RI Nanehkaran, Yaser/AAN-6150-2021; Derakhshani, Reza/P-1194-2019;
   Cemiloğlu, Ahmed/HJZ-4981-2023; Anwar, Sheraz/O-9496-2019; Azarafza,
   Mohammad/AAP-2136-2020
OI Derakhshani, Reza/0000-0001-7499-4384; Chen, Junde/0000-0003-1748-4374;
   Ahangari Nanehkaran, Yaser/0000-0002-8055-3195; Azarafza,
   Mohammad/0000-0001-7777-3800; Cemiloglu, Ahmed/0000-0003-2633-0924;
   Anwar, Sheraz/0000-0003-2087-4699
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NR 152
TC 69
Z9 69
U1 27
U2 61
PU MDPI
PI BASEL
PA Gross-peteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD AUG
PY 2023
VL 15
IS 15
AR 2707
DI 10.3390/w15152707
PG 28
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA O7QR7
UT WOS:001045717800001
OA Green Published, gold
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Iliadis, C
   Glenis, V
   Kilsby, C
AF Iliadis, Christos
   Glenis, Vassilis
   Kilsby, Chris
TI A cost-benefit 'source-receptor ' framework for implementation of
   Blue-Green flood risk management
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Pluvial flooding; Flood exposure; Catchment-based; Blue-green
   infrastructure; Urban development; Cost-benefit
ID WATER; STRATEGIES; EXPOSURE; SYSTEMS
AB As floods are a major and growing source of risk in urban areas, there is a necessity to improve flood risk management frameworks and civil protection through planning interventions that modify surface flow pathways and introduce storage. Despite the complexity of densely urbanised areas (topography, buildings, green spaces, roads), modern flood models can represent urban features and flow characteristics in order to help researchers, local authorities, and insurance companies to develop and improve efficient flood risk frameworks to achieve resilience in cities. A cost-benefit driven 'source-receptor' flood risk framework is developed in this study to identify (1) locations contributing to surface flooding (sources), (2) buildings and locations at high flood risk (receptors), (3) the cost-benefit nexus between the 'source' and the 'receptor', and finally (4) ways to mitigate flooding at the 'receptor' by adding Blue-Green Infrastructure (BGI) in critical locations. The analysis is based on five steps to identify the 'source' and the 'receptor' in a study area based on the flood exposure of buildings, damages arising from flooding and available green spaces with the best potential to add sustainable and resilient solutions to reduce flooding. The framework was developed using the detailed hydrodynamic model CityCAT in a case study of the city centre of Newcastle upon Tyne, UK. The novelty of this analysis is that firstly, multiple storm magnitudes (i.e. small and large floods) are used combined with a method to locate the areas and the buildings at flood risk and a prioritized set of best places to add interventions upstream and downstream. Secondly, planning decisions are informed by considering the benefit from reduced damages to properties and the cost to construct resilient BGI options rather than a restricted hydraulic analysis considering only flood depths and storages in isolation from real world economics.
C1 [Iliadis, Christos; Glenis, Vassilis; Kilsby, Chris] Newcastle Univ, Sch Engn, Newcastle Upon Tyne NE1 7RU, England.
   [Kilsby, Chris] Willis Res Network, 51 Lime St, London EC3M 7DQ, England.
C3 Newcastle University - UK
RP Iliadis, C (corresponding author), Newcastle Univ, Sch Engn, Newcastle Upon Tyne NE1 7RU, England.
EM c.iliadis2@newcastle.ac.uk
RI Glenis, Vassilis/U-4374-2017
OI kilsby, chris/0000-0003-3422-294X; Iliadis, Christos/0000-0002-1181-3686
FU Engineering and Physical Science Research Council (EPSRC), Centre for
   Doctoral Training in Water Infrastructure and Resilience (WIRe)
   [EP/S023666/1]
FX This work has been funded by the Engineering and Physical Science
   Research Council (EPSRC) as part of the Centre for Doctoral Training in
   Water Infrastructure and Resilience (WIRe, EP/S023666/1) .
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NR 57
TC 3
Z9 3
U1 12
U2 25
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0022-1694
EI 1879-2707
J9 J HYDROL
JI J. Hydrol.
PD MAY
PY 2024
VL 634
AR 131113
DI 10.1016/j.jhydrol.2024.131113
EA MAR 2024
PG 12
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA QV0W5
UT WOS:001223536700001
OA hybrid, Green Submitted
DA 2025-04-22
ER

PT J
AU Song, J
   Yang, R
   Chang, Z
   Li, WF
   Wu, JS
AF Song, Jing
   Yang, Rui
   Chang, Zheng
   Li, Weifeng
   Wu, Jiansheng
TI Adaptation as an indicator of measuring low-impact-development
   effectiveness in urban flooding risk mitigation
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Adaptation; Resilience; Climate change; Hydrodynamic inundation model;
   Low impact development
ID SOCIAL-ECOLOGICAL SYSTEMS; CLIMATE-CHANGE; RESILIENCE MANAGEMENT;
   URBANIZATION; SUSTAINABILITY; CITIES
AB Frequent and intensive urban flooding requires an extensive adoption of low-impact development (LID) to supplement traditional drainage infrastructures. Our study conceptualizes the resilient infrastructure framework with a particular reference to adaptation, an adjustment capacity in the social-ecological system to withstand various natural hazards and absorb negative impacts. We argue that adaption is an indicator for measuring LID effectiveness. A methodological framework is adopted using a time-dependent technique with a hydrodynamic inundation model to evaluate LID effectiveness. Results of a case study in Gongming, Shenzhen, China, show that LID projects can effectively reinforce adaptation capacity. However, spatial inequality and accumulation of different levels of adaptation are evident. This outcome is due to a relatively low absorption capacity because most areas will have a relatively high recovery capacity but retain a low absorption capacity with the construction of LID projects. A relatively mild increase in absorption capacity is due to the quality of man-made infrastructural development is conflicting across different areas of Gongming, for example some infrastructures are constructed by the government, whereas others by developers and villagers. In addition, the topographical factor makes some areas in Gongming lower-lying than others and is therefore increasingly vulnerable to urban flooding during rainstorms given the difficulty of discharging the surface runoff, thereby limiting the effectiveness of LID projects. Furthermore, the spatial inequality of adaptation improvement where LID projects cannot be evenly distributed within the research area leads to the unequal distribution of adaptation. These findings can confirm that the government can practically use adaptation as an indicator in evaluating LID effectiveness and identifying the problematic stages of drainage resilience in urban flooding risk mitigation. (C) 2019 Published by Elsevier B.V.
C1 [Song, Jing; Yang, Rui; Wu, Jiansheng] Peking Univ, Sch Urban Planning & Design, Shenzhen Grad Sch, Key Lab Environm & Urban Sci, Shenzhen 518055, Guangdong, Peoples R China.
   [Song, Jing] QIIR, Shenzhen, Guangdong, Peoples R China.
   [Chang, Zheng] City Univ Hong Kong, Dept Architecture & Civil Engn, Hong Kong, Peoples R China.
   [Li, Weifeng] Univ Hong Kong, Dept Urban Planning & Design, Hong Kong, Peoples R China.
   [Li, Weifeng] Univ Hong Kong, Shenzhen Inst Res & Innovat, Shenzhen, Guangdong, Peoples R China.
   [Wu, Jiansheng] Peking Univ, Coll Urban & Environm Sci, Lab Earth Surface Proc, Minist Educ, Beijing 100871, Peoples R China.
C3 Peking University; City University of Hong Kong; University of Hong
   Kong; The University of Hong Kong Shenzhen Institute of Research &
   Innovation; University of Hong Kong; Peking University
RP Wu, JS (corresponding author), Peking Univ, Sch Urban Planning & Design, Shenzhen Grad Sch, Key Lab Environm & Urban Sci, Shenzhen 518055, Guangdong, Peoples R China.
EM wujs@pkusz.edu.cn
RI Wu, Jiansheng/GLS-1168-2022; /E-1478-2011
OI chang, zheng/0000-0001-6624-3206; /0000-0001-5386-3019
FU Programs of Science and Technology of Shenzhen [JCYJ20170412150910443];
   National Natural Science Foundation of China [41671180]
FX This research was supported by the Programs of Science and Technology of
   Shenzhen (JCYJ20170412150910443) and the National Natural Science
   Foundation of China (Grant No. 41671180).
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NR 44
TC 22
Z9 22
U1 5
U2 106
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0048-9697
EI 1879-1026
J9 SCI TOTAL ENVIRON
JI Sci. Total Environ.
PD DEC 15
PY 2019
VL 696
AR 133764
DI 10.1016/j.scitotenv.2019.133764
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA JQ2RR
UT WOS:000498798600002
PM 31454603
DA 2025-04-22
ER

PT J
AU Buckley, N
   Mills, G
   Letellier-Duchesne, S
   Benis, K
AF Buckley, Niall
   Mills, Gerald
   Letellier-Duchesne, Samuel
   Benis, Khadija
TI Designing an Energy-Resilient Neighbourhood Using an Urban Building
   Energy Model
SO ENERGIES
LA English
DT Article
DE UBEM; UMI; zero-carbon; climate resilience; digital twin; renewables;
   closed loop
ID GENERATION; STOCK; CONSUMPTION; TYPOLOGIES; WORKFLOW; SUPPORT; SECTOR;
   UBEM; TOOL
AB A climate resilient city, perforce, has an efficient and robust energy infrastructure that can harvest local energy resources and match energy sources and sinks that vary over space and time. This paper explores the use of an urban building energy model (UBEM) to examine the potential for creating a near-zero carbon neighbourhood in Dublin (Ireland) that is characterised by diverse land-uses and old and new building stock. UBEMs are a relatively new tool that allows the simulation of building energy demand across an urbanised landscape and can account for building layout, including the effects of overshadowing and the potential for facade retrofits and energy generation. In this research, a novel geographic database of buildings is created using archetypes, and the associated information on dimensions, fabric and energy systems is integrated into the Urban Modelling Interface (UMI). The model is used to simulate current and future energy demand based on climate change projections and to test scenarios that apply retrofits to the existing stock and that link proximate land-uses and land-covers. The latter allows a significant decoupling of the neighbourhood from an offsite electricity generation station with a high carbon output. The findings of this paper demonstrate that treating neighbourhoods as single energy entities rather than collections of individual sectors allows the development of bespoke carbon reducing scenarios that are geographically situated. The work shows the value of a neighbourhood-based approach to energy management using UBEMs.
C1 [Buckley, Niall; Mills, Gerald] Univ Coll Dublin, Sch Geog, Dublin D04 V1W8, Ireland.
   [Letellier-Duchesne, Samuel; Benis, Khadija] MIT, Sustainable Design Lab, Cambridge, MA 02139 USA.
C3 University College Dublin; Massachusetts Institute of Technology (MIT)
RP Buckley, N (corresponding author), Univ Coll Dublin, Sch Geog, Dublin D04 V1W8, Ireland.
EM niall.buckley1@ucdconnect.ie; gerald.mills@ucd.ie; samueld@mit.edu;
   kbenis@mit.edu
RI mills, gerald/N-4244-2017
OI mills, gerald/0000-0003-2186-8936; Buckley, Niall/0000-0002-3061-0606
FU Sustainable Energy Authority of Ireland under the SEAI Research,
   Development and Demonstration Funding Program [18/RDD/232]
FX This work has been funded by the Sustainable Energy Authority of Ireland
   under the SEAI Research, Development and Demonstration Funding Program
   2018, Grant number 18/RDD/232.
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NR 33
TC 22
Z9 23
U1 5
U2 53
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD AUG
PY 2021
VL 14
IS 15
AR 4445
DI 10.3390/en14154445
PG 17
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA TV7SY
UT WOS:000681919700001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Samuelsson, K
   Barthel, S
   Giusti, M
   Hartig, T
AF Samuelsson, Karl
   Barthel, Stephan
   Giusti, Matteo
   Hartig, Terry
TI Visiting nearby natural settings supported wellbeing during Sweden's
   "soft-touch" pandemic restrictions
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Place-based coping; Geographic information system; Urban planning;
   Crisis preparedness; Spatial statistics
ID HEALTH; LONELINESS; CITY; WILL
AB The coronavirus pandemic entailed varying restrictions on access, movement and social behavior in populations around the world. Knowledge about how people coped with "soft-touch" restrictions can inform urban spatial planning strategies that enhance resilience against future pandemics. We analyzed data from an online place based survey on 2845 places across Sweden that respondents abstained from visiting, visited with similar frequency, or visited more frequently in spring 2020 as compared to before the pandemic. In spatial logistic regression models, we relate geographical and sociodemographic properties of places (fields, forests, water, residential population density and daytime population density) to self-perceived changes in wellbeing from visiting the given place less or more often, respectively. Abstaining from visiting places with natural features located in areas of high residential density was associated with a self-perceived negative influence on wellbeing. Yet, fields, forests and water were strongly associated with places people claimed wellbeing benefits from during pandemic restrictions. The further a visited place was from the respondent's home, the more likely it was to have a positive wellbeing influence. As an illustrative case, we map our models onto the landscape of Stockholm, showing that some neighborhoods are likely more resilient than others when coping with pandemic restrictions. Both the most and least resilient neighborhoods span the socio-economic spectrum. Urban planning will do well to enable equitable, easy access to natural settings by foot or bike, to increase pandemic preparedness as well as support climate change mitigation and biodiversity protection.
C1 [Samuelsson, Karl] Univ Gavle, Dept Comp & Geospatial Sci, Kungsbacksvagen 47, S-80176 Gavle, Sweden.
   [Barthel, Stephan; Giusti, Matteo] Univ Gavle, Dept Bldg Engn Energy Syst & Sustainabil Sci, Gavle, Sweden.
   [Hartig, Terry] Uppsala Univ, Inst Housing & Urban Res, Uppsala, Sweden.
C3 University of Gavle; University of Gavle; Uppsala University
RP Samuelsson, K (corresponding author), Univ Gavle, Dept Comp & Geospatial Sci, Kungsbacksvagen 47, S-80176 Gavle, Sweden.
EM karl.samuelsson@hig.se; stephan.barthel@hig.se; matteo.giusti@hig.se;
   terry.hartig@ibf.uu.se
RI Samuelsson, Karl/AAA-8709-2019; Hartig, Terry/AAC-5676-2021; barthel,
   stephan/AAE-8367-2019
OI barthel, stephan/0000-0003-2637-2024; Giusti, Matteo/0000-0003-0179-2540
FU University of Gavle [2016-01193]
FX We thank the University of Gavle for funding Karl Samuelsson, Stephan
   Barthel and Matteo Giusti, and Formas (grant No. 2016-01193) for funding
   Karl Samuelsson and Stephan Barthel. Thanks to the University of Gavle,
   Vinnova and Future Position X for good collaboration in a GeoLife Region
   sub-project called BIG. We thank Ann Legeby and Daniel Koch from KTH
   Royal Institute of Technology for the valuable collaboration around the
   survey that the analysis in this paper is based on. We also thank all
   three reviewers for thorough and insightful suggestions for revisions
   that helped improve the manuscript.
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NR 64
TC 32
Z9 32
U1 2
U2 14
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0169-2046
EI 1872-6062
J9 LANDSCAPE URBAN PLAN
JI Landsc. Urban Plan.
PD OCT
PY 2021
VL 214
AR 104176
DI 10.1016/j.landurbplan.2021.104176
PG 12
WC Ecology; Environmental Studies; Geography; Geography, Physical; Regional
   & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA TU6AJ
UT WOS:000681116600005
PM 35719409
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Luo, ZY
   Tian, J
   Zeng, J
   Pilla, F
AF Luo, Ziyuan
   Tian, Jian
   Zeng, Jian
   Pilla, Francesco
TI Resilient landscape pattern for reducing coastal flood susceptibility
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Flood resilience; Machine learning; Nature -based solutions; Landscape
   metrics; Spatial planning; Green infrastructure networks
ID GENETIC ALGORITHM; RISK-ASSESSMENT; URBAN; EUROPE; AREAS
AB Evaluating flood susceptibility, identifying flood-prone areas, and planning reasonable landscape patterns are impor-tant measures in promoting sustainable urban development and flood mitigation. To this end, this study evaluated the flood susceptibility using a neural network model depending on a flood inundation map created from satellite data from 2010 to 2020, and explanatory factors for flood inundation selected by Geodetector and regularized random for-est. Subsequently, the landscape pattern of the coastal city was quantified based on the land cover, and key landscape pattern metrics for flood susceptibility were selected at patch and class levels using statistical approaches. Eventually, urban spatial planning strategies for flood management were proposed based on the ecological significance of key met-rics. Taking Xiamen as a case study, the flood susceptibility map showed that flood-prone areas in Xiamen are mainly distributed along river banks and coastlines. Key landscape pattern metrics for flood susceptibility selected by statisti-cal approaches showed that patch-level metrics account for more explanatory power than class-level metrics, and the classes of the landscape would affect the role of patch-level metrics. Overall, the division index of the forest, the connectance index of water, the number of core areas and the fractal dimension index of urban, and the Euclidean nearest-neighbor distance of urban and water are significantly positively related to flood susceptibility, while the core area and the proximity index of urban, the similarity index, the core area index, and the edge contrast index of the forest, and the contiguity index of forest, grass, farmland, and shrub negatively related with flood susceptibility. Based on these findings, intensive urban planning and integrative Nature-based Solutions networks should be consid-ered as strategies for enhancing coastal flood resilience.
C1 [Luo, Ziyuan; Tian, Jian; Zeng, Jian] Tianjin Univ, Sch Architecture, Tianjin 300072, Peoples R China.
   [Zeng, Jian] Chinese Soc Urban Studies, Resilient City Council, Beijing 100835, Peoples R China.
   [Pilla, Francesco] Univ Coll Dublin, Sch Architecture Planning & Environm Policy, Spatial Dynam Lab, Dublin, Ireland.
C3 Tianjin University; University College Dublin
RP Zeng, J (corresponding author), Tianjin Univ, Sch Architecture, Tianjin 300072, Peoples R China.
EM ziyuan_luo@tju.edu.cn; ecoplanning_tju@163.com; francesco.pilla@ucd.ie
OI Tian, Jian/0000-0001-9537-1178; Pilla, Francesco/0000-0002-1535-1239
FU National Natural Science Founda-tion of China; China Scholarship
   Council;  [52078330];  [202206250080]
FX Acknowledgments This research was supported by the National Natural
   Science Founda-tion of China (Grant No. 52078330) and the China
   Scholarship Council (Grant No. 202206250080) .
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NR 72
TC 30
Z9 31
U1 25
U2 206
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0048-9697
EI 1879-1026
J9 SCI TOTAL ENVIRON
JI Sci. Total Environ.
PD JAN 15
PY 2023
VL 856
AR 159087
DI 10.1016/j.scitotenv.2022.159087
EA OCT 2022
PN 1
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 5K9ZD
UT WOS:000870075900004
PM 36181828
DA 2025-04-22
ER

PT J
AU Amegavi, GB
   Nursey-Bray, M
   Suh, J
AF Amegavi, George Babington
   Nursey-Bray, Melissa
   Suh, Jungho
TI Exploring the realities of urban resilience: Practitioners' perspectives
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban resilience; Climate change; Practitioners; Transformation; Ghana
ID ADAPTATION; CONSTRUCTION
AB Cities in Sub-Saharan African countries, already vulnerable, are under increasing pressure from the impacts of climate change and its associated risks. Urban resilience has emerged as a development strategy for improving the capacity of urban systems to cope with, withstand, and mitigate the impacts of extreme events in cities. Using a qualitative research approach and drawing on semi-structured interviews with 20 practitioners in Ghana, the study examined practitioner insights into urban resilience and the implications for urban resilience theory and practice. The study identified that practitioners have diverse understandings and views about urban resilience, shaped by their different experiences and priorities. Functional and outcome-oriented urban resilience understanding prioritising physical urban infrastructure dominated urban resilience views among the practitioners. Few practitioners understood urban resilience in social and governance terms that align with transformative urban resilience ideas. The key point for urban resilience planning is that the dominant outcome and functional view that aligns with conservative urban resilience ideas limits opportunities for multi-stakeholder engagement, collaboration, and urban transformation. Therefore, if urban resilience remains an essential goal for urban planning, it should incorporate change, learning, social, and governance ideas because they hold enormous promise for advancing politically feasible and socially equitable urban resilience policies and planning outcomes.
C1 [Amegavi, George Babington; Nursey-Bray, Melissa; Suh, Jungho] Univ Adelaide, Dept Geog Environm & Populat, Adelaide, SA 5005, Australia.
C3 University of Adelaide
RP Amegavi, GB (corresponding author), Univ Adelaide, Dept Geog Environm & Populat, Adelaide, SA 5005, Australia.
EM george.amegavi@adelaide.edu.au; melissa.nursey-bray@adelaide.edu.au;
   jungho.suh@adelaide.edu.au
RI Amegavi, George/MEP-3561-2025; Nursey-Bray, Melissa/J-8183-2019
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NR 46
TC 8
Z9 8
U1 73
U2 126
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD MAR
PY 2024
VL 103
AR 104313
DI 10.1016/j.ijdrr.2024.104313
EA FEB 2024
PG 12
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA LH3Y5
UT WOS:001185871300001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Sánchez-Almodávar, E
   Olcina-Cantos, J
   Martí-Talavera, J
   Prieto-Cerdán, A
   Padilla-Blanco, A
AF Sanchez-Almodovar, Esther
   Olcina-Cantos, Jorge
   Marti-Talavera, Javier
   Prieto-Cerdan, Antonio
   Padilla-Blanco, Ascension
TI Floods and Adaptation to Climate Change in Tourist Areas: Management
   Experiences on the Coast of the Province of Alicante (Spain)
SO WATER
LA English
DT Article
DE resilience; nature-based solutions; sustainable urban drainage systems;
   water reuse; south-east Spain
ID URBAN; CRITERIA; DESIGN
AB One of the principal challenges for cities on the Mediterranean coast is the management of urban runoff after episodes of intense rainfall. This problem is aggravated by the effects of climate change, with the increase in the frequency and intensity of extreme weather phenomena in this region. In light of this situation, the local governments, in collaboration with the concessionaire companies providing supply and sewage services, are committed to adopting measures aimed at a more efficient management of non-conventional water resources. Examples of good practice for reducing urban flood risk and adapting to climate change are those actions developed in the tourist municipalities of Alicante, Torrevieja, and Benidorm, where measures have been implemented or have been planned and integrated with green spaces, with a commitment to sustainability, such as sustainable urban drainage systems (SUDS) or Nature-Based Solutions (NBSs). This study analyses these case studies, based on a detailed review of the technical projects that contemplate each of the actions. Furthermore, several field trips were made with technical personnel who are familiar with the measures adopted. The results show that the implementation of these systems contributes to advancing the reduction of urban flood risk and the adaptation to climate change, creating more resilient and safer urban spaces for the citizens residing in them.
C1 [Sanchez-Almodovar, Esther] Univ Alicante, Interuniv Inst Geog, Water & Terr Res Grp, San Vicente Del Raspeig 03690, Spain.
   [Olcina-Cantos, Jorge; Prieto-Cerdan, Antonio] Univ Alicante, Dept Reg Geog Anal & Phys Geog, San Vicente Del Raspeig 03690, Spain.
   [Marti-Talavera, Javier] Univ Alicante, Interuniv Inst Geog, San Vicente Del Raspeig 03690, Spain.
   [Padilla-Blanco, Ascension] Univ Alicante, CIBIO Res Inst, Ctr Iberoamer Biodivers, Environm Soc & Landscape Res Grp MedsPai, San Vicente Del Raspeig 03690, Spain.
C3 Universitat d'Alacant; Universitat d'Alacant; Universitat d'Alacant;
   Universitat d'Alacant
RP Sánchez-Almodávar, E (corresponding author), Univ Alicante, Interuniv Inst Geog, Water & Terr Res Grp, San Vicente Del Raspeig 03690, Spain.
EM esther.sanchez@ua.es
RI Padilla-Blanco, Ascensión/S-6548-2018; Sánchez-Almodóvar,
   Esther/AGK-2683-2022; Olcina, Jorge/H-2447-2015
OI PRIETO CERDAN, ANTONIO/0000-0002-6086-6290; Olcina,
   Jorge/0000-0002-4846-8126; Sanchez Almodovar, Esther/0000-0003-4201-0779
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NR 81
TC 13
Z9 13
U1 3
U2 17
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD FEB
PY 2023
VL 15
IS 4
AR 807
DI 10.3390/w15040807
PG 26
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA 9M1PX
UT WOS:000942011100001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Yang, GJ
   Mao, JB
   Tian, L
   Du, YF
   Tang, GW
AF Yang, Guojun
   Mao, Jianbo
   Tian, Li
   Du, Yongfeng
   Tang, Guangwu
TI Optimization of retrofit strategies for urban bridge networks before
   earthquake via dynamic-static integration
SO ENGINEERING STRUCTURES
LA English
DT Article
DE Bridge network; Network structure characteristics; Sandpile model;
   Seismic resilience; Retrofit strategy
ID RESILIENT CITIES; SEISMIC RISK; BELT
AB Addressing earthquake resistance in urban areas, the intervention and retrofit of bridge networks are crucial considerations. While previous studies have predominantly focused on the importance and retrofit aspects of bridges, there has been limited exploration of optimization issues. This study introduces a method for assessing node importance and optimizing retrofit strategies for bridge networks before earthquake. Combining the Personal PageRank (PPR) approach with the technique of ideal solution similarity order preference (TOPSIS) yields static importance evaluation results for nodes, reducing the subjectivity of their weights in multi-metric evaluation works. Employing a sandpile model to simulate post-earthquake traffic congestion, the static results are then refined based on the model. The study establishes a dynamic-static integration approach to assess bridge importance, and genetic algorithms are applied to optimize the retrofit strategy. The practicality of the dynamic and static integration evaluation methods is verified through a numerical example, demonstrating that the optimized strategy effectively improves retrofit performance.
C1 [Yang, Guojun; Mao, Jianbo; Tian, Li; Du, Yongfeng] Lanzhou Univ Tech, Western Engn Res Ctr Disaster Mitigat Civil Engn, Lanzhou 730050, Peoples R China.
   [Yang, Guojun; Mao, Jianbo; Tian, Li; Du, Yongfeng] Lanzhou Univ Tech, Inst Earthquake Protect & Disaster Mitigat, Lanzhou 730050, Peoples R China.
   [Yang, Guojun; Tang, Guangwu] China Merchants Chongqing Commun Technol Res & Des, State Key Lab Bridge Engn Struct Dynam, Chongqing 400074, Peoples R China.
C3 Lanzhou University of Technology; Lanzhou University of Technology
RP Yang, GJ (corresponding author), Lanzhou Univ Tech, Western Engn Res Ctr Disaster Mitigat Civil Engn, Lanzhou 730050, Peoples R China.
EM yanggj403@163.com
FU National Natural Science Foundation of China [52168042, 51808274]; Gansu
   Natural Science Foundation of China [22JR5RA250]; China Postdoctoral
   Science Foundation [2019M653897XB]; Lanzhou University of Technology
   Scientific Research Innovation Training (Scientific Research Exploration
   Project)
FX This paper is supported by the National Natural Science Foundation of
   China (52168042, 51808274) , Gansu Natural Science Foundation of China
   (22JR5RA250) , China Postdoctoral Science Foundation (2019M653897XB) ,
   and Lanzhou University of Technology Scientific Research Innovation
   Training (Scientific Research Exploration Project) .
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Z9 1
U1 8
U2 18
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0141-0296
EI 1873-7323
J9 ENG STRUCT
JI Eng. Struct.
PD MAY 15
PY 2024
VL 307
AR 117907
DI 10.1016/j.engstruct.2024.117907
EA APR 2024
PG 14
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA QP2D4
UT WOS:001222000100001
DA 2025-04-22
ER

PT J
AU Marquet, O
   Miralles-Guasch, C
AF Marquet, Oriol
   Miralles-Guasch, Carme
TI Resilient territories and mobility adaptation strategies in times of
   economic recession: Evidence from the metropolitan region of Barcelona,
   Spain 2004-2012
SO EUROPEAN URBAN AND REGIONAL STUDIES
LA English
DT Article
DE Adaptation strategies; economic crisis; mobility; mobility habits;
   territorial resilience
ID NETWORK VULNERABILITY ANALYSIS; TRANSPORT DISADVANTAGE; FINANCIAL
   CRISIS; TRAVEL BEHAVIOR; HOUSING BUBBLE; EVERYDAY MOBILITY; SOCIAL
   EXCLUSION; URBAN; MODE; CITY
AB The international financial crisis has affected people's everyday activities, changing multiple aspects of their daily behavior. In countries deeply affected by the economic recession, the crisis has produced a significant incentive to change transport and mobility habits towards cheaper and affordable modes of transport. The impacts of the crisis have been spatially heterogeneous and socially diverse, and consequently mobility adaptation strategies depend on both territorial and social resilience. The present paper analyzes the main changes of mobility habits that occurred between 2004-2012 in the Metropolitan Area of Barcelona, covering the end of the era of economic growth, and the advent and unfolding of the economic crisis. The research uses travel survey data to understand how different population groups have adapted their mobility to the crisis, and how core and outer metropolitan areas have shaped the adaptation strategies of their inhabitants. The results show a general trend towards a rationalized use of private modes in favor of an increased use of shorter trips and non-motorized modes, but also show how social factors and urban forms interact to generate significant differences in mobility adaptation strategies.
C1 [Marquet, Oriol] North Carolina State Univ, Raleigh, NC USA.
   [Miralles-Guasch, Carme] Autonomous Univ Barcelona, Barcelona, Spain.
C3 North Carolina State University; Autonomous University of Barcelona
RP Marquet, O (corresponding author), North Carolina State Univ, Ctr Geospatial Analyt, Dept Pk Recreat & Tourism Management, Raleigh, NC 27695 USA.
EM omarque@ncsu.edu
RI Miralles-Guasch, Carme/M-6156-2015; Marquet, Oriol/M-6159-2015
OI Marquet, Oriol/0000-0002-7346-5664
FU Government of Spain [CSO2013-42513-P]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: This work
   was supported by Project CSO2013-42513-P (sub-program GEOG). "Everyday
   mobility and urban dynamics of proximity. A territorial, social and
   environmental approach" funded by the Government of Spain.
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NR 51
TC 26
Z9 27
U1 1
U2 18
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0969-7764
EI 1461-7145
J9 EUR URBAN REG STUD
JI Eur. Urban Reg. Stud.
PD OCT
PY 2018
VL 25
IS 4
BP 345
EP 359
DI 10.1177/0969776417703158
PG 15
WC Environmental Studies; Geography; Regional & Urban Planning; Urban
   Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration;
   Urban Studies
GA GW2AK
UT WOS:000446684200001
OA Green Published
DA 2025-04-22
ER

PT J
AU Olsson, H
   Mugume, SN
   Sörensen, J
AF Olsson, Hjalmar
   Mugume, Seith N.
   Sorensen, Johanna
TI Modelling the effect of sediment and solid waste deposition on pluvial
   flood risk using in situ high-resolution rainfall and water level
   measurements
SO WATER SCIENCE AND TECHNOLOGY
LA English
DT Article
DE 1D hydraulic modelling; high-temporal resolution rainfall measurements;
   pluvial flood risk; sediments; solid waste; water level measurements
ID HYDROLOGICAL MODELS; URBAN DRAINAGE; RESILIENCE; KAMPALA
AB Pluvial flooding is a significant threat in many Sub-Saharan African cities, driven by rapid urbanisation, climate change, failures, and insufficient hydraulic capacity of existing urban drainage systems (UDSs). However, limited modelling studies have investigated the effect of sediment and solid waste accumulation on the performance of UDSs during extreme loading conditions. In this research, the influence of combined scenarios of sediment and solid waste deposition and extreme rainfall on urban flooding in the upper Lubigi catchment in Kampala was investigated. The collected high-resolution rainfall data and water level observations in combination with field observations were used for model calibration and validation. The results show three locations that account for over 50% of the flooded volume in the catchment, based on the existing conditions. A near-complete blockage of sediment and solid waste at three culvert crossings increased the flood volumes by up to 40% for higher (>= 50 years) return periods and by up to 105% for low return periods (<= 10 years). This research underscores the importance of using high-resolution rainfall data in flood modelling, as well as the necessity of improved UDS asset management, and effective solid waste and sediment management in order to achieve resilient and sustainable water management in cities.
C1 [Olsson, Hjalmar; Sorensen, Johanna] Lund Univ, Dept Water Resources Engn, POB 118, Lund, Sweden.
   [Mugume, Seith N.] Makerere Univ, Dept Civil & Environm Engn, POB 7062, Kampala, Uganda.
C3 Lund University; Makerere University
RP Mugume, SN (corresponding author), Makerere Univ, Dept Civil & Environm Engn, POB 7062, Kampala, Uganda.
EM seith.mugume@mak.ac.ug
RI Mugume, Seith/ADW-0407-2022
FU Aforsk; Miljofonden; Sveriges Ingenjorer in Sweden; Early Career
   Researcher Collaboration Award [ARUA/U21]
FX This study was made possible through grants from Aforsk, Miljofonden,
   and Sveriges Ingenjorer in Sweden and from the ARUA/U21 Early Career
   Researcher Collaboration Award 2023.
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NR 56
TC 0
Z9 0
U1 0
U2 0
PU IWA PUBLISHING
PI LONDON
PA REPUBLIC-EXPORT BLDG, UNITS 1 04 & 1 05, 1 CLOVE CRESCENT, LONDON,
   ENGLAND
SN 0273-1223
EI 1996-9732
J9 WATER SCI TECHNOL
JI Water Sci. Technol.
PD MAR 15
PY 2025
VL 91
IS 6
BP 757
EP 782
DI 10.2166/wst.2025.039
PG 26
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA 0TZ4F
UT WOS:001455976700004
PM 40156451
OA gold
DA 2025-04-22
ER

PT J
AU Goddard, MA
   Dougill, AJ
   Benton, TG
AF Goddard, Mark A.
   Dougill, Andrew J.
   Benton, Tim G.
TI Why garden for wildlife? Social and ecological drivers, motivations and
   barriers for biodiversity management in residential landscapes
SO ECOLOGICAL ECONOMICS
LA English
DT Article
DE Private gardens; Wildlife-friendly gardening; Urban biodiversity;
   Householder decision-making; Sustainable community initiatives;
   Pro-environmental behaviour
ID URBAN DOMESTIC GARDENS; CONSERVATION; BIRDS; VEGETATION; RESILIENCE;
   DENSITIES; CAPACITY; PATTERNS; RESOURCE; HABITAT
AB Residential landscapes with private gardens are major land covers in cities and their sustainable management is paramount for achieving a resilient urban future. Here we focus on the value of residential ecosystems for biodiversity conservation and explore the social and ecological factors that influence wildlife-friendly garden management. Using a stratified sampling design across the UK city of Leeds, this interdisciplinary study develops and applies a mixed method approach, including questionnaires, interviews and ecological surveys across multiple spatial scales. We quantify wildlife-friendly gardening using two measures: (i) the number of wildlife-friendly features within gardens (the wildlife resources index, WRI); and (ii) the frequency of winter bird feeding. Wildlife-friendly gardening is influenced by a combination of garden characteristics and management intensity, householder demographics, wider environmental activity and landscape context. Residents reveal a range of motivations for wildlife-friendly gardening, notably personal well-being and a moral responsibility to nature. Respondents expressed a duty to maintain neighbourhood standards, revealing that social norms are a considerable barrier to uptake of wildlife-friendly activities, but also provide an opportunity where neighbour mimicry results in diffusion of wildlife-friendly practices. Community-driven initiatives that engage, educate and empower residents are better placed to encourage wildlife-friendly gardening than top-down financial incentives. (C) 2012 Elsevier B.V. All rights reserved.
C1 [Goddard, Mark A.; Benton, Tim G.] Univ Leeds, Inst Integrat & Comparat Biol, Leeds LS2 9JT, W Yorkshire, England.
   [Dougill, Andrew J.] Univ Leeds, Sustainabil Res Inst, Sch Earth & Environm, Leeds LS2 9JT, W Yorkshire, England.
C3 University of Leeds; University of Leeds
RP Goddard, MA (corresponding author), Univ Leeds, Inst Integrat & Comparat Biol, Leeds LS2 9JT, W Yorkshire, England.
EM M.Goddard@leeds.ac.uk; A.J.Dougill@leeds.ac.UK
RI Goddard, Mark/D-1166-2010; Benton, Tim/C-6493-2009
OI Goddard, Mark/0000-0002-2283-6752; Benton, Tim/0000-0002-7448-1973;
   Dougill, Andrew/0000-0002-3422-8228
FU University of Leeds Earth and Biosphere Institute studentship
FX We would like to thank all Leeds householders who participated in the
   research. Lucie Middlemiss, Evan Fraser and Bill Kunin contributed
   helpful comments on interview and questionnaire design. We are grateful
   to Chris Lepczyk and one anonymous reviewer for insightful suggestions
   that improved the manuscript. MG was supported by a University of Leeds
   Earth and Biosphere Institute studentship. The geospatial data used was
   provided by the Ordnance Survey (GB) and comprised OS Mastermap
   Topography Layer downloaded using EDINA Digimap
   (http://edina.ac.uk/digimap/) and OS Mastermap Address Layer, provided
   directly by Ordnance Survey. Census output is Crown copyright and is
   reproduced with the permission of the Controller of HMSO and Queen's
   Printer for Scotland.
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NR 94
TC 201
Z9 247
U1 7
U2 319
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 0921-8009
EI 1873-6106
J9 ECOL ECON
JI Ecol. Econ.
PD FEB
PY 2013
VL 86
BP 258
EP 273
DI 10.1016/j.ecolecon.2012.07.016
PG 16
WC Ecology; Economics; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Business & Economics
GA 128XR
UT WOS:000317803500032
DA 2025-04-22
ER

PT J
AU Zhang, YT
   Song, SQ
   Li, X
   Gao, S
   Raubal, M
AF Zhang, Yatao
   Song, Siqi
   Li, Xia
   Gao, Song
   Raubal, Martin
TI Leveraging context-adjusted nighttime light data for socioeconomic
   explanations of global urban resilience
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Global urban resilience; Nighttime light; Urban resilience pattern;
   Socioeconomic explanation; Counterfactual explanation; Global pandemic
ID TIME
AB Urban resilience, crucial for achieving sustainable development goals, entails the adaptation and recovery urban systems from external shocks, such as the recent global pandemic. To investigate the response urban systems to COVID-19, this study employs context-adjusted nighttime light data to model global urban resilience by combining an evolving urban resilience metric (EURm) with the shape similarity of resilience curves. Random effect analysis and counterfactual explanations are then implemented to explore the socioeconomic impacts on urban resilience during the pandemic, providing strategic insights for improvement. Our results delineate five diverse urban resilience patterns, each characterized by distinct phases of downturn, minimum, and recovery, with examples from Malaysia, Japan, the United States, China, and South Sudan. We also find notable correlations between socioeconomic factors and urban resilience, highlighting that stringent measures may reduce resilience, whereas proactive health and containment strategies could bolster resilience. Meanwhile, economic stress reflected by inflation adversely affects resilience. Furthermore, we delve into strategic socioeconomic modifications to enhance urban resilience using counterfactual explanations, underlining the importance of customized interpretation for varying countries. Overall, this study advances our understanding of urban resilience during global crises, guiding context-specific resilience strategies in urban planning and policy-making.
C1 [Zhang, Yatao; Raubal, Martin] Swiss Fed Inst Technol, Singapore ETH Ctr, Future Resilient Syst, 1 Create Way,CREATE Tower 06-01, Singapore 138602, Singapore.
   [Li, Xia] Swiss Fed Inst Technol, Inst Cartog & Geoinformat, Zurich, Switzerland.
   [Gao, Song] East China Normal Univ, Sch Geog Sci, Key Lab Geog Informat Sci, Minist Educ, Shanghai, Peoples R China.
   [Zhang, Yatao] Univ Wisconsin, Dept Geog, Geospatial Data Sci Lab, Madison, WI USA.
C3 Swiss Federal Institutes of Technology Domain; ETH Zurich; East China
   Normal University; University of Wisconsin System; University of
   Wisconsin Madison
RP Zhang, YT (corresponding author), Swiss Fed Inst Technol, Singapore ETH Ctr, Future Resilient Syst, 1 Create Way,CREATE Tower 06-01, Singapore 138602, Singapore.
EM yatzhang@ethz.ch; siqi.song@sec.ethz.ch; lixia@geo.ecnu.edu.cn;
   song.gao@wisc.edu; mraubal@ethz.ch
RI Gao, Song/N-9573-2019
OI Gao, Song/0000-0003-4359-6302; Raubal, Martin/0000-0001-5951-6835;
   Zhang, Yatao/0000-0001-5701-2836
FU National Research Foundation Singapore; National Research Foundation
   Singapore (NRF) under its Campus for Research Excellence and
   Technological Enterprise (CREATE) programme
FX The research was conducted at the Future Resilient Systems at
   Singapore-ETH Centre, which was established collaboratively between ETH
   Zurich and the National Research Foundation Singapore. research is
   supported by the National Research Foundation Singapore (NRF) under its
   Campus for Research Excellence and Technological Enterprise (CREATE)
   programme.
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NR 44
TC 4
Z9 4
U1 71
U2 88
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD NOV 1
PY 2024
VL 114
AR 105739
DI 10.1016/j.scs.2024.105739
EA AUG 2024
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA D7Q9B
UT WOS:001298102600001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ruan, JE
   Chen, YB
   Yang, ZW
AF Ruan, Jieer
   Chen, Yingbiao
   Yang, Zhiwei
TI Assessment of temporal and spatial progress of urban resilience in
   Guangzhou under rainstorm scenarios
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban resilience; Flood disaster; PSR model; CMIP5 model; Guangzhou
ID COMPREHENSIVE EVALUATION; CLIMATE-CHANGE; INDEX; PRECIPITATION;
   VULNERABILITY
AB In the face of increasingly severe flood disasters, urban resilience is a new path for future urban development. Based on a review of relevant literature on urban resilience, we focusing on flood disaster scenes, present the perspective of "pressure - state - response" to the urban resilience process decomposition based on resilience city theories, disaster theories and ecology theories. We establish the rain flood situation of quantitative evaluation model of city resilience, combined with rough set theory to the urban economy, society and ecological integrated into three subsystems elements to investigate the spatiotemporal resilience of Guangzhou city. The results indicate that the overall urban resilience of Guangzhou from 2015 to 2019 is at a medium level, and shows a slight upward trend, among which the state resilience shows a sharp decline trend. The areas with high comprehensive resilience are mainly distributed in the main urban area, while the areas with weak comprehensive resilience are mainly distributed in the new urban development area. The index of vegetation coverage, regional economic spatial stability and average rainfall showed the most obvious decreasing trend. From 2050 to 2070, the future urban resilience of Guangzhou under each RCPS model will develop to a deteriorating trend, among which, the urban resilience under 2050 RCP2.6 scenario is the best, and the urban resilience under 2070 RCP8.5 scenario is the best. Finally, we put forward a systematic urban resilience improvement strategy from three aspects of pressure resilience, state resilience and response resilience. This study is helpful to provide detailed decision-making assistance for urban resilience construction and case support for quantitative research on urban resilience.
C1 [Ruan, Jieer; Chen, Yingbiao; Yang, Zhiwei] Guangzhou Univ, Sch Geog & Remote Sensing, Guangzhou 510006, Peoples R China.
   [Ruan, Jieer; Chen, Yingbiao; Yang, Zhiwei] Guangdong Prov Engn Technol Res Ctr Geog Condit M, Guangzhou 510006, Peoples R China.
   [Ruan, Jieer] Zhongshan Planning & Design Inst, Zhongshan 528400, Peoples R China.
C3 Guangzhou University
RP Chen, YB (corresponding author), Guangzhou Univ, Sch Geog & Remote Sensing, Guangzhou 510006, Peoples R China.
EM gzhucyb@163.com
RI yang, zhiwei/GVU-2690-2022
FU National Key R&D Program of China [2018YFB2100703]; Key Science and
   Technology Projects of Guangzhou [20180203008]
FX This work was supported by the National Key R&D Program of China [grant
   no. 2018YFB2100703] ; the Key Science and Technology Projects of
   Guangzhou [grant no. 20180203008] .
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NR 41
TC 84
Z9 91
U1 87
U2 547
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD DEC
PY 2021
VL 66
AR 102578
DI 10.1016/j.ijdrr.2021.102578
EA SEP 2021
PG 14
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA WD0QJ
UT WOS:000704652100005
OA Bronze
DA 2025-04-22
ER

PT J
AU He, W
   Zheng, SW
   Zhao, XQ
AF He, Wei
   Zheng, ShiWei
   Zhao, XiaoQuan
TI Exploring the spatiotemporal changes and influencing factors of urban
   resilience based on Scale-Density-Morphology-A case study of the
   Chengdu-Deyang-Mianyang Economic Belt, China
SO FRONTIERS IN ENVIRONMENTAL SCIENCE
LA English
DT Article
DE urban resilience; Scale-Density-Morphological; Chengdu-Deyang-Mianyang
   Economic Belt; influencing factors; geographic detector
ID CAPACITY
AB It is of great significance to carry out research on the evolution of urban resilience and the detection of influencing factors to promote urban safety management and guide urban planning. This paper constructs urban resilience evaluation indicators based on Scale-Density-Morphology, adopts the "polyhedron method " to evaluate the urban resilience of the Chengdu-Deyang-Mianyang Economic Belt from 2010 to 2020, analyzes the temporal and spatial changes in urban resilience, and explores the impact of natural, social, economic and other factors on urban resilience, to provide a basis for regional sustainable development. The results show that 1) The overall level of urban resilience is not high, showing a clear downward trend and imbalance. Urban resilience decreased from 0.296 in 2010 to 0.213 in 2020. The proportion of districts and counties with high urban resilience is relatively small and continues to decline. The differences in urban resilience in the region are significant and gradually increasing, and there is an obvious imbalance in urban resilience. 2) Urban resilience presents the spatial distribution characteristics of continuous expansion of low-resilience and lower-resilience urban, and shrinkage of the distribution of high-resilience and higher-resilience urban. The types of evolution are mainly manifested as rapid decline and fluctuation decline. 3) The influencing factors affecting the spatial differentiation of urban resilience are different. Ecological factors represented by per capita ecological land area have gradually become the primary factor. The influence of factor interactions is greater than that of individual factors, including both non-linear enhancement and two-factor enhancement.
C1 [He, Wei; Zheng, ShiWei; Zhao, XiaoQuan] Sichuan Normal Univ, Coll Geog & Resources Sci, Chengdu, Peoples R China.
   [He, Wei; Zheng, ShiWei; Zhao, XiaoQuan] Sichuan Normal Univ, Key Lab Land Resources Evaluat & Monitoring Southw, Minist Educ, Chengdu, Peoples R China.
C3 Sichuan Normal University; Sichuan Normal University
RP He, W (corresponding author), Sichuan Normal Univ, Coll Geog & Resources Sci, Chengdu, Peoples R China.; He, W (corresponding author), Sichuan Normal Univ, Key Lab Land Resources Evaluat & Monitoring Southw, Minist Educ, Chengdu, Peoples R China.
EM cdwhe@163.com
FU foundation Science and technology innovation project of the Sichuan
   Provincial Department of natural resources [KJ-2018-19]
FX Funding This research is funded by the foundation Science and technology
   innovation project of the Sichuan Provincial Department of natural
   resources (KJ-2018-19).
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NR 40
TC 9
Z9 9
U1 51
U2 228
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
EI 2296-665X
J9 FRONT ENV SCI-SWITZ
JI Front. Environ. Sci.
PD FEB 13
PY 2023
VL 11
AR 1042264
DI 10.3389/fenvs.2023.1042264
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 9I9WD
UT WOS:000939850000001
OA gold
DA 2025-04-22
ER

PT J
AU Sharma, M
   Sharma, B
   Kumar, N
   Kumar, A
AF Sharma, Manish
   Sharma, Bansari
   Kumar, Nand
   Kumar, Ashwani
TI Establishing Conceptual Components for Urban Resilience: Taking Clues
   from Urbanization through a Planner's Lens
SO NATURAL HAZARDS REVIEW
LA English
DT Article
DE Urban resilience; Planning; Resilience framework; Resilience
   characteristics; Capacities
ID SOCIAL-ECOLOGICAL SYSTEMS; DISASTER RISK REDUCTION; BUILT-IN RESILIENCE;
   CLIMATE-CHANGE; PUBLIC-PARTICIPATION; VULNERABILITY; ADAPTATION;
   FRAMEWORK; CHALLENGES; PRINCIPLES
AB This paper aims to establish inherent concepts associated with urban resilience theorizing, which lacks the links to urban planning in a way useful to enhance the urban resilience of existing settlements, through a multidisciplinary approach and acceptance of the complex structure of urban resilience. Moreover, most of the literature addressing the subject refer to it through bland and perplexing terminology, making the subject of urban resilience difficult to practice in a contemporary urban planning scenario. This literature study-based paper reviews the concept of resilience and identifies its key components and its application to disaster and urban planning nexus while exploring the links between the 5 W's of urban resilience literature, namely, What, Where, When, Why, and Who. Based on this, the paper intends to establish the synthesized urban resilience characteristic concepts to lay out the directions for cities to move toward resiliency with a link to urban planning by working on the suggested linked attributes. Hence, the concept of urban planning is explored as a means of engaging and embedding urban resilience in a transdisciplinary process. The concepts of vulnerability and adaptive coping capacities are presented, interlinking the concepts of urban planning and urban resilience and supporting the suggestive attributes through past literature. Furthermore, the paper discusses the suggestive elements connecting the theory of resilience and urban planning and suggests the components encompassing vulnerability, urban planning, coping and adaptation, and urban governance as key factors for the urban resilience framework. Urban planning and governance have the potential to reduce vulnerability and enhance coping and adaptive capacities, thereby impacting urban resilience positively. The various attributes of urban planning can be explored to assess, impact, and influence the urban resilience levels (J or correspondingly vulnerability and adaptive/coping capacities); hence, urban planning can be a potent tool to influence, affect, and strengthen the resilience of the urban system. (C) 2022 American Society of Civil Engineers.
C1 [Sharma, Manish] Manipal Univ Jaipur, Sch Architecture & Design, Jaipur 303007, Rajasthan, India.
   [Sharma, Bansari; Kumar, Nand; Kumar, Ashwani] Malaviya Natl Inst Technol Jaipur, Dept Architecture & Planning, Jaipur 302017, Rajasthan, India.
C3 Manipal University Jaipur; National Institute of Technology (NIT
   System); Malaviya National Institute of Technology Jaipur
RP Kumar, A (corresponding author), Malaviya Natl Inst Technol Jaipur, Dept Architecture & Planning, Jaipur 302017, Rajasthan, India.
EM manishsharma.ar@gmail.com; 2020rar9573@mnit.ac.in;
   nkumar.arch@mnit.ac.in; akumar.arch@mnit.ac.in
RI sharma, manish/X-8109-2019; Kumar, Ashwani/R-3565-2016
OI Kumar, Ashwani/0000-0002-1387-4503
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NR 79
TC 13
Z9 13
U1 28
U2 176
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1527-6988
EI 1527-6996
J9 NAT HAZARDS REV
JI Nat. Hazards Rev.
PD FEB 1
PY 2023
VL 24
IS 1
AR 04022040
DI 10.1061/NHREFO.NHENG-1523
PG 10
WC Engineering, Civil; Environmental Studies; Geosciences,
   Multidisciplinary; Meteorology & Atmospheric Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology; Geology; Meteorology &
   Atmospheric Sciences; Water Resources
GA 7B7VG
UT WOS:000899336200015
DA 2025-04-22
ER

PT J
AU Liu, J
   Wang, CL
   Zhang, R
AF Liu, Juan
   Wang, Chengli
   Zhang, Rui
TI Experiment in resilient city: An evaluation of China's demonstration
   city of safe development policies
SO HELIYON
LA English
DT Article
DE Resilient city; China; Demonstration city of safe development; Policy
   evaluation; Quantitative evaluation; PMC-index model
ID INFRASTRUCTURE
AB The drive of resilient city explores a new path for urban governance in the context of risk society, and China's demonstration city of safe development (DCSD) policies are the indigenous practice of resilient city idea. This paper used text mining technology and PMC-index model to establish an evaluation system for DCSD policies. Then eight representative sample DCSD policies were assessed. The results show that the average PMC-index scores 5.38 and reaches a great consistency grade. Nine model indicators indicate that the Chinese government has a clear policy focus on the efforts of DCSD, prefers to use compulsory type policy tools, and fully mobilizes the public to participate in safe city development jointly. Meanwhile, structural imbalance in policy instruments is a prominent disadvantage. The research establishes an evaluation system for DCSD policies, and provides a new perspective for the explorations of resilient cities worldwide. The extensive applicability of the policy evaluation model needs to be studied in depth in the future.
C1 [Liu, Juan] China Univ Min & Technol, Sch Law & Humanities, Xuzhou, Peoples R China.
   [Wang, Chengli; Zhang, Rui] China Univ Min & Technol, Sch Publ Policy & Management, Xuzhou, Peoples R China.
C3 China University of Mining & Technology; China University of Mining &
   Technology
RP Zhang, R (corresponding author), China Univ Min & Technol, Sch Publ Policy & Management, Xuzhou, Peoples R China.
EM cumtliuj@163.com; cumtsscicome@163.com; cumtrayy@163.com
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NR 50
TC 1
Z9 1
U1 29
U2 46
PU CELL PRESS
PI CAMBRIDGE
PA 50 HAMPSHIRE ST, FLOOR 5, CAMBRIDGE, MA 02139 USA
EI 2405-8440
J9 HELIYON
JI Heliyon
PD JUN 15
PY 2024
VL 10
IS 11
AR e32000
DI 10.1016/j.heliyon.2024.e32000
EA JUN 2024
PG 14
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA UV4S6
UT WOS:001250830200001
PM 38868016
OA gold
DA 2025-04-22
ER

PT J
AU Li, ZC
   Liu, L
   Ye, YT
AF Li, Zhichao
   Liu, Long
   Ye, Yanting
TI Can Urban Agglomeration Policy Enhance Comprehensive Urban Resilience?
   Evidence from China
SO NATURAL HAZARDS REVIEW
LA English
DT Article
DE Urban resilience; Urban agglomeration; TOPSIS; Difference-in-differences
AB Recently, researchers have become increasingly interested in urban resilience, which can be used to comprehensively evaluate the quality of urban development. Although some studies have addressed the effects of China's national urban agglomeration (NUA) policy on the economic and environmental resilience of Chinese cities, scholars have not yet adequately addressed the impact of NUA on comprehensive urban resilience. Accordingly, this study introduced a theoretical framework to explore the effects of NUA on comprehensive urban resilience in China. Specifically, this study conducted a quasi-natural experiment with NUA and adopted a difference-in-differences (DID) method to evaluate its effect on China's comprehensive urban resilience. As no widely acknowledged urban resilience evaluation method yet exists, we employed an entropy-weighted "technique for order preference by similarity to an ideal solution" (TOPSIS) to assign comprehensive urban resilience values to Chinese cities at the prefecture level or above based on the multiple economic resilience index, the social resilience index, the environmental resilience index, and the technological resilience index. The results indicate that NUA not only directly improves comprehensive urban resilience but also enhances it through the mediating effects of trade openness and industrial structure upgrading. In addition, the study revealed that city heterogeneity can impact NUA's effect on comprehensive urban resilience. These results not only expand current theoretical understanding of the effects of urban agglomeration on urban resilience but also offer insights useful for improving comprehensive urban resilience to facilitate the high-quality and sustainable development of cities.
C1 [Li, Zhichao; Ye, Yanting] Shanghai Jiao Tong Univ, Sch Int & Publ Affairs, Shanghai 200030, Peoples R China.
   [Liu, Long] East China Univ Polit Sci & Law, Sch Govt, Shanghai 201620, Peoples R China.
C3 Shanghai Jiao Tong University; East China University Political Science &
   Law
RP Liu, L (corresponding author), East China Univ Polit Sci & Law, Sch Govt, Shanghai 201620, Peoples R China.
EM lizhichao@sjtu.edu.cn; 3024@ecupl.edu.cn; kristenyip@163.com
RI Li, Zhichao/ABF-2918-2020
FU National Natural Science Foundation of China [71974057, 72374132];
   Shanghai Municipal Education Commission [21SG49]; Shanghai Education
   Development Foundation; Ministry of Education through the Humanities and
   Social Science Project [19YJC630104]
FX This work was supported by the National Natural Science Foundation of
   China (Grant Nos. 71974057 and 72374132); the "Shu Guang" project (Grant
   No. 21SG49) of the Shanghai Municipal Education Commission, and the
   Shanghai Education Development Foundation, the Ministry of Education
   through the Humanities and Social Science Project (Grant No.
   19YJC630104).
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NR 45
TC 3
Z9 3
U1 101
U2 192
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1527-6988
EI 1527-6996
J9 NAT HAZARDS REV
JI Nat. Hazards Rev.
PD MAY 1
PY 2024
VL 25
IS 2
AR 04024007
DI 10.1061/NHREFO.NHENG-2001
PG 12
WC Engineering, Civil; Environmental Studies; Geosciences,
   Multidisciplinary; Meteorology & Atmospheric Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology; Geology; Meteorology &
   Atmospheric Sciences; Water Resources
GA LG6P6
UT WOS:001185674700001
DA 2025-04-22
ER

PT J
AU Tang, DC
   Li, JN
   Zhao, ZQ
   Boamah, V
   Lansana, DD
AF Tang, Decai
   Li, Jiannan
   Zhao, Ziqian
   Boamah, Valentina
   Lansana, David D.
TI The influence of industrial structure transformation on urban resilience
   based on 110 prefecture-level cities in the Yangtze River
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Industrial structure rationalization; Industrial structure upgrading;
   Urban resilience; Sustainable city
ID SPATIOTEMPORAL EVOLUTION; GROWTH; CHINA
AB The advancement of industrialization and urbanization in China brings many challenges to urban management. Studying the relationship between industrial structure transformation and urban resilience has received increasing attention from scholars. In this paper, 110 prefecture-level cities in the Yangtze River Economic Belt (YREB) from 2010 to 2019 are used as samples. First, five research dimensions of urban resilience research are identified, and these are economic resilience, social resilience, environmental resilience, infrastructure resilience, and institutional resilience. Urban resilience is measured by using the entropy value method. Secondly, how industrial structural transformation affects urban resilience is investigated. It is discovered that the effect of industrial structure rationalization (TL) is better than industrial structure upgrading (TS) in promoting the improvement of urban resilience, but there is a delay between the two for economic resilience. Nevertheless, both TL and TS can promote the improvement of urban resilience. This paper focuses on the relationship between industrial structure and urban resilience and then contributes to the transformation of industrial structure and the future urban resilience of China.
C1 [Tang, Decai; Li, Jiannan; Zhao, Ziqian; Boamah, Valentina; Lansana, David D.] Nanjing Univ Informat Sci & Technol, Sch Management Sci & Engn, Nanjing 210044, Peoples R China.
C3 Nanjing University of Information Science & Technology
RP Li, JN (corresponding author), Nanjing Univ Informat Sci & Technol, Sch Management Sci & Engn, Nanjing 210044, Peoples R China.
EM 202219000026@nuist.edu.cn
RI TANG, DE-CAI/GZM-9447-2022; li, jn/ABH-3120-2021; Boamah,
   Valentina/HRD-7690-2023
OI Tang, Decai/0000-0003-4447-2619
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NR 61
TC 60
Z9 61
U1 205
U2 616
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD SEP
PY 2023
VL 96
AR 104621
DI 10.1016/j.scs.2023.104621
EA MAY 2023
PG 17
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA I1ZN0
UT WOS:001000837300001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Dong, WL
   Gao, XY
   Han, WY
   Wang, JW
AF Dong, Wenli
   Gao, Xinyue
   Han, Wenying
   Wang, Jiwu
TI Renewal Framework for Self-Built Houses in "Village-to-Community" Areas
   with a Focus on Safety and Resilience
SO BUILDINGS
LA English
DT Article
DE self-built houses; village-to-community area; safety and resilience;
   Conzenian school
ID URBAN MORPHOLOGY
AB Against the backdrop of rapid urbanization, with the expansion of administrative boundaries, some former villages have been transformed from administrative to urban in the sense that they have become special "village-to-city areas"; in this context, the housing pattern, which was previously dominated by self-built houses, is facing many challenges. In particular, the frequent occurrence of safety accidents in self-built houses in the village conversion areas in recent years constitutes an important component of urban spatial vulnerability. However, the ensuing "one-size-fits-all" ban on self-built housing has also raised concerns among scholars. In order to better guide the planning and construction of self-built houses, official safety inspections, planning guidance, and institutional constraints are essential. However, the safety inspection of self-built houses across China is difficult. On the one hand, it is challenging to obtain data on individual buildings (e.g., age, use, building structure ratio, foundation, structural condition, illegal demolition and alteration, and illegal use), and the methods of obtaining such data rely mainly on the basic checking of the safety grids under the responsibility of grassroots safety officers. However, the current organizational system of safety officers is not perfect, and the relevant evaluation training also has limitations. On the other hand, due to the city's finances, development stage, and other reasons, the agricultural-to-residential areas in the cities of poverty-stricken counties are not likely to be renewed as rapidly as the cities of developed regions but instead may face long-term renewal timelines. Therefore, for the agricultural resettlement areas in the cities of poverty-stricken counties, it is necessary to screen the current problems, systematically study the mechanism and strategy of their renewal based on the management framework of the whole process, and carry out the organic renewal of self-built houses, so as to gradually realize a safe and resilient development mode. This paper establishes a framework for the renewal of self-built houses oriented to security resilience based on the theory of fortress land under the urban form theory of Conzen. Taking Lianhua County as a case study, we analyze the problems and issues related to self-built housing areas through an investigation of the current situation. Then, in response to the existing problems, based on the comprehensive investigation of the safety of self-built houses, we clarify the planning objectives and value orientation and suggest (i) the adoption of hierarchical and classified planning and construction control for the self-built housing areas of villages converted to residences in accordance with the local conditions; (ii) the enhancement of government supervision in the use of self-built houses and the establishment of laws and regulations; and (iii) renewal planning in an orderly manner to enhance the safety resilience of the self-built housing areas. Based on the renewal study of self-built houses in Lianhua County, a systematic exploration of the planning, construction, and governance strategies of self-built houses in China is carried out, which can provide a reference for the decision making of relevant departments.
C1 [Dong, Wenli; Gao, Xinyue; Han, Wenying; Wang, Jiwu] Zhejiang Univ, Coll Civil Engn & Architecture, B817,Anzhong Bldg,Zijingang Campus,866 Yuhangtang, Hangzhou 310058, Peoples R China.
   [Dong, Wenli] Zhejiang Univ, Ctr Balanced Architecture, Hangzhou 310058, Peoples R China.
C3 Zhejiang University; Zhejiang University
RP Dong, WL (corresponding author), Zhejiang Univ, Coll Civil Engn & Architecture, B817,Anzhong Bldg,Zijingang Campus,866 Yuhangtang, Hangzhou 310058, Peoples R China.; Dong, WL (corresponding author), Zhejiang Univ, Ctr Balanced Architecture, Hangzhou 310058, Peoples R China.
EM wenlidong@zju.edu.cn; 22112169@zju.edu.cn; 22212161@zju.edu.cn;
   wangjiwu@zju.edu.cn
OI Dong, Wenli/0000-0003-4603-6212
FU China National Social Science Foundation Project
FX No Statement Available
CR [Anonymous], 2006, 503682005 GB
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NR 25
TC 2
Z9 2
U1 11
U2 36
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD DEC
PY 2023
VL 13
IS 12
AR 3003
DI 10.3390/buildings13123003
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA DI6Q1
UT WOS:001131445100001
OA gold
DA 2025-04-22
ER

PT J
AU Wang, L
   Xue, XL
   Zhang, YX
   Luo, XW
AF Wang, Liang
   Xue, Xiaolong
   Zhang, Yuanxin
   Luo, Xiaowei
TI Exploring the Emerging Evolution Trends of Urban Resilience Research by
   Scientometric Analysis
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Review
DE urban resilience; CiteSpace; Web of Science (WOS); evolution trends;
   scientometrics; visualization
ID CLIMATE-CHANGE; REGIONAL RESILIENCE; ECONOMIC RESILIENCE; COMMUNITY
   STRUCTURE; WATER MANAGEMENT; ECOLOGY; CITIES; SUSTAINABILITY;
   ADAPTATION; CHALLENGES
AB Numerous studies in urban resilience have been published in the past decade. However, only a few publications have tracked the evolution trends of urban resilience research, the findings of which can serve as a useful guide for scholars to foresee worth-effort research areas and make the best use of precious time and resources. In order to fill the research gap, this study performed a scientometric analysis on the evolution trends of urban resilience research using a versatile software package-CiteSpace. The scientomentric analysis focuses on distribution of lead authors and their institutions, high frequency categories and keywords, high influential journals, author contribution, and evolutionary trends based on co-author analysis, co-word analysis, co-citation analysis and cluster analysis of documents. This study discoveries that first, the U.S., England, Australia, Canada, China and Sweden are the countries that make the most significant contributions in the advancement of urban resilience research; second, the existing urban resilience research focuses primarily on environmental studies, geography and planning development; third, hot topics of the urban resilience research keep shifting from 1993 to 2016; fourth, the knowledge body of urban resilience research consists of five clusters: resilience exploratory analysis, disaster resilience, urban resilience, urban resilience practice, and social-ecological systems; last, the emerging trends in urban resilience research include defining urban resilience, adaptation model, case studies, analytical methods and urban social-ecological systems, resulting in cutting-edge research areas in urban resilience.
C1 [Wang, Liang; Xue, Xiaolong] Harbin Inst Technol, Sch Management, Harbin 150001, Heilongjiang, Peoples R China.
   [Xue, Xiaolong; Zhang, Yuanxin] Guangzhou Univ, Sch Management, Guangzhou 510006, Guangdong, Peoples R China.
   [Luo, Xiaowei] City Univ Hong Kong, Dept Architecture & Civil Engn, Hong Kong 999077, Hong Kong, Peoples R China.
C3 Harbin Institute of Technology; Guangzhou University; City University of
   Hong Kong
RP Xue, XL (corresponding author), Harbin Inst Technol, Sch Management, Harbin 150001, Heilongjiang, Peoples R China.; Xue, XL (corresponding author), Guangzhou Univ, Sch Management, Guangzhou 510006, Guangdong, Peoples R China.
EM 14b910008@hit.edu.cn; xlxue@hit.edu.cn; yuanxin@gzhu.edu.cn;
   xiaowluo@cityu.edu.hk
RI Wang, Liang/AAI-1031-2021; luo, xiaowei/GON-4131-2022; Zhang,
   Yuanxin/IQU-9607-2023
OI Wang, Liang/0000-0002-4063-6842; Zhang, Yuanxin/0000-0002-2046-8116;
   luo, xiaowei/0000-0002-9360-7308
FU National Natural Science Foundation of China (NSFC) [71390522, 71671053,
   71271065, 71771067]; National Key R&D Program of China [2016YFC0701800,
   2016YFC0701808]
FX This research was supported by the National Natural Science Foundation
   of China (NSFC) (No. 71390522, NO. 71671053, NO. 71271065, NO.
   71771067). The work described in this paper was also funded by the
   National Key R&D Program of China (No. 2016YFC0701800 and No.
   2016YFC0701808).
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NR 121
TC 44
Z9 45
U1 19
U2 316
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD OCT
PY 2018
VL 15
IS 10
AR 2181
DI 10.3390/ijerph15102181
PG 29
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA GY7TQ
UT WOS:000448818100123
PM 30301209
OA Green Published, Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Vardanyan, Z
   Nersisyan, G
   Przybysz, A
   Elbakidze, M
   Sayadyan, H
   Grigoryan, M
   Ktrakyan, S
   Avetisyan, G
   Muradyan, N
AF Vardanyan, Zhirayr
   Nersisyan, Gayane
   Przybysz, Arkadiusz
   Elbakidze, Marine
   Sayadyan, Hovik
   Grigoryan, Manik
   Ktrakyan, Sergey
   Avetisyan, Gorik
   Muradyan, Nelli
TI Improvement in the Adaptation and Resilience of the Green Areas of
   Yerevan City to Climate-Ecological Challenges
SO ATMOSPHERE
LA English
DT Article
DE climate-ecological condition; green areas; air pollution; climate
   change; sanitary-hygienic conditions; tree-bush composition; Yerevan
   city
ID PARTICULATE MATTER; CARBON STORAGE; HUMAN HEALTH; AMBIENT AIR; INDOOR
   AIR; URBAN; SEQUESTRATION; BIOFILTRATION; DEPOSITION; EXPOSURE
AB The services provided by green infrastructures may lead to a decrease in climate-related ecological, social, and health risks, especially in the urban environment. Consequently, the best guarantee to make this environment as safe as possible is to increase the extent of green areas, taking into consideration the functional importance, and climatic-ecological peculiarities of the area. These are also issues for the Republic of Armenia's (RA) capital Yerevan. There the current conditions of the green areas of Yerevan city do not meet the expected requirements of the climatic-ecological development of urban areas. The green area per capita is 8 m2, which is unevenly distributed within 12 different administrative districts of Yerevan city. The aim of this research was to study the natural climatic and ecological conditions of Yerevan city and the status of the green areas of the city. The eco-biological indicators of the trees and shrubs growing in Yerevan green areas have been assessed, and the more resilient plant species have been singled out. All 12 administrative districts of Yerevan have been mapped and the green area per capita for each administrative district has been calculated. The received data have been combined with health indicators and suggestions have been made to add green areas in Yerevan according to the functional significance and sustainability of shrubby species and to their decorative and phyto-filtration properties. The city has unfavorable climatic conditions. It is located in the northern section of the subtropical climatic zone and has a distinct dry continental climate. Temperatures above +40 degrees C are typical, while winter is rather cold and sometimes temperatures may drop below -20 degrees C (in January 2008, it dropped to -27.6 degrees C). The amount of atmospheric precipitation has reduced by 9%. The city is counted as one of the driest urban areas of the South Caucasus. The other unfavorable ecological conditions are heavy traffic, the city's open landfill, the concentration of industrial enterprises, large-scale construction works, etc. The atmospheric concentrations of particulate matter (PM), gases and heavy metals have been detected to exceed the permitted limits. In terms of health care, the death cases due to various diseases (acute respiratory, vascular, and cancer) have increased, which requires complex activities to reduce environmental pollution and to improve the microclimate.
C1 [Vardanyan, Zhirayr; Nersisyan, Gayane; Grigoryan, Manik; Ktrakyan, Sergey; Muradyan, Nelli] Inst Bot, Natl Acad Sci Republ Armenia, Atcharjan St 1, Avan 0063, Yerevan, Armenia.
   [Przybysz, Arkadiusz] Warsaw Univ life Sci, Katedra Ochrony Roslin, Nowoursynowska 159, PL-02776 Warsaw, Poland.
   [Elbakidze, Marine] Swedish Univ Agr Sci SLU, Fac Forest Sci, POB 43, S-73921 Skinnskatteberg, Sweden.
   [Elbakidze, Marine] Ivan Franko Natl Univ Lviv, Fac Geog, Doroshenka Str 41, UA-79000 Lvov, Ukraine.
   [Sayadyan, Hovik] Yerevan State Univ, Fac Geog & Geol, Alex Manoogian 1, Yerevan 0025, Armenia.
   [Avetisyan, Gorik] Municipal Yerevan, Dept Nat Protect, Dept Ecol & Nat Protect, Argishti Str 1, Yerevan 0015, Armenia.
C3 National Academy of Sciences of Armenia; Institute of Botany after A.L.
   Takhtajyan - NAS RA; Warsaw University of Life Sciences; Swedish
   University of Agricultural Sciences; Ministry of Education & Science of
   Ukraine; Ivan Franko National University Lviv; Yerevan State University
RP Sayadyan, H (corresponding author), Yerevan State Univ, Fac Geog & Geol, Alex Manoogian 1, Yerevan 0025, Armenia.
EM zh.vardanyan@botany.am; g.nersisyan@botany.am;
   arkadiusz_przybysz@sggw.edu.pl; marine.elbakidze@slu.se;
   h.sayadyan@botany.am; m.grigoryan@botany.am; s.ktrakyan@botany.am;
   gorik.avetisyan@yerevan.am; n.muradyan@botany.am
RI Elbakidze, Marine/LTF-1436-2024; Muradyan, Nelli/GLT-8821-2022;
   Sayadyan, Hovik/JCE-0633-2023; Przybysz, Arkadiusz/N-9137-2018
OI Przybysz, Arkadiusz/0000-0002-1378-6546
FU Science Committee of RA
FX We thank the editors and anonymous reviewers for their helpful comments.
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NR 80
TC 1
Z9 1
U1 2
U2 5
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4433
J9 ATMOSPHERE-BASEL
JI Atmosphere
PD APR
PY 2024
VL 15
IS 4
AR 473
DI 10.3390/atmos15040473
PG 19
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA OV7M1
UT WOS:001210119300001
OA gold
DA 2025-04-22
ER

PT J
AU He, CY
   Zhang, Q
   Wang, G
   Singh, VP
   Li, TT
   Cui, S
AF He, Changyuan
   Zhang, Qiang
   Wang, Gang
   Singh, Vijay P.
   Li, Tiantian
   Cui, Shuai
TI Evaluation of Urban Resilience of China's Three Major Urban
   Agglomerations Using Complex Adaptive System Theory
SO SUSTAINABILITY
LA English
DT Article
DE resilience assessment; urban system; urban agglomerations; complex
   adaptive systems
ID YANGTZE-RIVER DELTA; COMMUNITY RESILIENCE; CLIMATE-CHANGE; HAZARDS;
   VULNERABILITY; URBANIZATION; ECOLOGY; AREA
AB By 2050, a majority of the global population will reside in urban agglomerations. Intensifying natural hazards are posing serious challenges to populations within the urban agglomerations. Therefore, it is critical to evaluate the resilience of urban agglomerations to natural hazards. However, the urban resilience of China's three major urban agglomerations, Beijing-Tianjin-Hebei (BTH), the Yangtze River Delta (YRD), and Guangdong-Hong Kong-Macao Greater Bay Area (GHMB), is not properly determined. To enhance the evaluation of comprehensive resilience in complex urban agglomerations and improve adaptability in the face of uncertain risks, this paper adopts the theory of complex adaptive systems to reveal the driving factors behind resilience. We developed a model for measuring disaster severity, exposure, bearing capacity, recoverability, and learnability. Furthermore, spatial autocorrelation analysis was employed to explore the distribution patterns of resilience and devise strategies for enhancement. The results indicate that the average urban resilience value of the three major urban agglomerations was 0.5061. The average urban resilience values for BTH, YRD, and GHMB are 0.5331, 0.5116, and 0.4612. We found BTH having the highest resilience level, followed by YRD and GHMB. Within BTH, the resilience level was the highest in the northern part of BTH, but the overall resilience of the southern cities should be improved by enhancing Shijiazhuang's central role. We also found higher resilience level in northwest YRD than in southeast YRD due to lower population density and lower disaster exposure in northwest YRD. However, we found obscure spatial patterns of urban resilience within GHMB, i.e., higher urban resilience in east and west GHMB and lower urban resilience level in central GHMB. This study presents different urban resilience levels over three urban agglomerations, providing background information for urban planning and urban mitigation to natural disasters in a warming climate.
C1 [He, Changyuan; Wang, Gang; Li, Tiantian] Beijing Normal Univ, Fac Geog Sci, Beijing 100875, Peoples R China.
   [Zhang, Qiang] Beijing Normal Univ, Adv Interdisciplinary Inst Environm & Ecol, Zhuhai 519087, Peoples R China.
   [Singh, Vijay P.] Texas A&M Univ, Dept Biol & Agr Engn, College Stn, TX 77843 USA.
   [Singh, Vijay P.] UAE Univ, Natl Water & Energy Ctr, POB 15551, Al Ain, U Arab Emirates.
   [Cui, Shuai] Jilin Agr Univ, Coll Resource & Environm Sci, Changchun 130118, Peoples R China.
C3 Beijing Normal University; Beijing Normal University; Texas A&M
   University System; Texas A&M University College Station; United Arab
   Emirates University; Jilin Agricultural University
RP Zhang, Q (corresponding author), Beijing Normal Univ, Adv Interdisciplinary Inst Environm & Ecol, Zhuhai 519087, Peoples R China.
EM chechangyuanxf@163.com; zhangq68@bnu.edu.cn
RI SINGH, VIJAY/ACV-1417-2022; li, tiantian/LCE-4770-2024; Wang,
   Gang/KBD-1083-2024
OI Zhang, Qiang/0000-0002-4411-1891; Wang, Gang/0000-0001-5749-744X
FU Our cordial gratitude will be extended to the editors and anonymous
   reviewers for their invaluable insights and assistance in this article.
   Their guidance and feedback have significantly enhanced the quality and
   impact of this work.
FX Our cordial gratitude will be extended to the editors and anonymous
   reviewers for their invaluable insights and assistance in this article.
   Their guidance and feedback have significantly enhanced the quality and
   impact of this work.
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NR 84
TC 2
Z9 2
U1 60
U2 125
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2023
VL 15
IS 19
AR 14537
DI 10.3390/su151914537
PG 16
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA FK3I0
UT WOS:001145628400001
OA gold
DA 2025-04-22
ER

PT J
AU Lu, H
   Zhang, C
   Jiao, LD
   Wei, Y
   Zhang, Y
AF Lu, Hao
   Zhang, Cheng
   Jiao, Liudan
   Wei, Yi
   Zhang, Yu
TI Analysis on the spatial-temporal evolution of urban agglomeration
   resilience: A case study in Chengdu-Chongqing Urban Agglomeration, China
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban resilience; Genetic algorithm; BP neural Network; Entropy method;
   Chengdu-chongqing urban agglomeration; China
ID FRAMEWORK; CITIES
AB An accurate assessment of urban resilience can provide decision-makers with a better under-standing of urban resilience and valuable references for developing relevant urban resilience development strategies. However, most works of existing literature focus on evaluating urban resilience from a static perspective and few studies focus on the spatio-temporal evolution characteristics of urban resilience. Therefore, an urban resilience measurement model combined with the BP neural network with a genetic algorithm is established. The Chengdu-Chongqing Urban Agglomeration is taken as a case study. In addition, the spatial-temporal evolution is analyzed by the convergence model to explore the difference among the cities in Chengdu -Chongqing Urban Agglomeration. The main results of this study show that: (1) the distribution of urban resilience in Chengdu-Chongqing Urban Agglomeration has a double-headed structure, which differs from other urban agglomerations in China. (2) the four subsystems of resilience reveal exciting results that the ecological, economic and social resilience in the Chengdu -Chongqing urban agglomeration all presented a polarized pattern, and the infrastructure resil-ience is balanced. (3) The temporal evolution of urban agglomeration resilience indicates that the resilience gap between cities in Chengdu-Chongqing Urban Agglomeration is narrowing from 2011 to 2019.
C1 [Lu, Hao; Jiao, Liudan; Wei, Yi; Zhang, Yu] Chongqing Jiaotong Univ, Sch Econ & Management, Chongqing, Peoples R China.
   [Zhang, Cheng] Publ Sect Reform Off Chongqing, Chongqing, Peoples R China.
C3 Chongqing Jiaotong University
RP Jiao, LD (corresponding author), Chongqing Jiaotong Univ, Sch Econ & Management, Chongqing, Peoples R China.
EM luhao@cqjtu.edu.cn; 622200910005@mails.cqjtu.edu.cn; jld@cqjtu.edu.cn;
   622190122033@mails.cqjtu.edu.cn; zhangyu_0112@foxmail.com
RI Zhang, Yu/GOK-0090-2022; Jiao, Liudan/HIK-0853-2022
FU National Natural Science Foundation of China [71901043]; Chongqing
   Social Science Planning Project the Chongqing [2017PY40]; Municipal
   Education Commission Project [KJQN201900739]; Science and Technology
   Bureau Foundation and Frontier Project of Chongqing
   [cstc2019jcyj-msxmX0629]
FX Acknowledgements This paper is supported by the National Natural Science
   Foundation of China (No. 71901043) , Chongqing Social Science Planning
   Project the Chongqing (No. 2017PY40) , Municipal Education Commission
   Project (No. KJQN201900739) and the Science and Technology Bureau
   Foundation and Frontier Project of Chongqing (No.
   cstc2019jcyj-msxmX0629) .
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   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 4X1KT
UT WOS:000860609600003
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Huang, J
   Sun, ZM
   Du, MZ
AF Huang, Jie
   Sun, Zimin
   Du, Minzhe
TI Differences and Drivers of Urban Resilience in Eight Major Urban
   Agglomerations: Evidence from China
SO LAND
LA English
DT Article
DE urban resilience; spatial difference; structural source; geographic
   detector; China
ID COMMUNITY RESILIENCE; SOCIAL RESILIENCE; FRAMEWORK; MANAGEMENT;
   INEQUALITY; HAZARDS
AB This paper constructs an evaluation indicator system for urban resilience in China on four dimensions-economy, environment, society, and infrastructure. The evaluation indicator is used by the entropy weight method to measure the resilience levels of 138 cities in 8 urban agglomerations from 2005 to 2018. Using the Theil index and variance decomposition method, we explore the size and sources of urban resilience differences among the eight urban agglomerations from the dual perspectives of space and structure and employ geographic detectors to identify the driving factors behind their differences. The results show that although the overall resilience level of the eight urban agglomerations is not high, it shows an upward trend. The differences within the eight urban agglomerations are the main spatial sources of urban resilience differences and economic resilience is the main structural source of urban resilience differences. Moreover, economic resilience and social resilience have the greatest contribution and driving effect on the resilience differences of BTH, YRD, PRD, MYR, CC, GP, and HC urban agglomerations, but the difference in resilience of CP is mainly caused by the difference in infrastructure resilience. Compared with the single factor, the impact of the interaction of each factor is even greater.
C1 [Huang, Jie; Sun, Zimin] Xinyang Normal Univ, Business Sch, Xinyang 464000, Peoples R China.
   [Du, Minzhe] South China Normal Univ, Sch Econ & Management, Guangzhou 510006, Peoples R China.
C3 Xinyang Normal University; South China Normal University
RP Du, MZ (corresponding author), South China Normal Univ, Sch Econ & Management, Guangzhou 510006, Peoples R China.
EM mzdu@m.scnu.edu.cn
RI Du, Minzhe/JOV-2399-2023
OI huang, jie/0009-0009-8230-1424
FU National Natural Science Foundation of China [72003071]; Natural Science
   Foundation of Guangdong Province of China [2020A1515110425]; Support
   Plan for Scientific and Technological Innovation Talents in Henan
   Institutions of Higher Learning (humanities and social sciences)
   [2021-CX-54]
FX This paper was supported by grants from the National Natural Science
   Foundation of China (72003071), the Natural Science Foundation of
   Guangdong Province of China (2020A1515110425), Support Plan for
   Scientific and Technological Innovation Talents in Henan Institutions of
   Higher Learning (humanities and social sciences) (2021-CX-54).
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NR 43
TC 21
Z9 22
U1 29
U2 223
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD SEP
PY 2022
VL 11
IS 9
AR 1470
DI 10.3390/land11091470
PG 18
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 4R5PE
UT WOS:000856815000001
OA gold
DA 2025-04-22
ER

PT J
AU Tong, PH
AF Tong, Peihao
TI Characteristics, dimensions and methods of current assessment for urban
   resilience to climate-related disasters: A systematic review of the
   literature
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Review
DE Urban resilience; Climate-related disasters; Assessment; Urban
   ecosystems
ID CITY; INDEX; VULNERABILITY; PERFORMANCE; ECOSYSTEMS; FRAMEWORK;
   PATTERNS; CITIES; FLOODS
AB As the frequency and severity of climate-related disasters increases, understanding how to improve urban resilience has become an important area of research. The first step in improving urban resilience to climaterelated disasters is the assessment of current levels of resilience. Through a systematic review, this study aims to answer the following questions about current urban resilience assessment: 1) what are the most common characteristics of urban resilience; 2) what are the most commonly involved dimensions of urban ecosystems; and 3) what are most frequently applied methods. This study concludes by providing recommendations for future resilience assessments, including the employment of more holistic assessments for urban ecosystems as a whole and in parts and a unifying framing based on urban resilience characteristics for comparing resilience assessments across studies. This review of current resilience assessment literature can be a starting point for scholars and practitioners to optimize resilience assessments and, in turn, improve urban resilience.
C1 [Tong, Peihao] Washington Univ, Sam Fox Sch Design & Visual Arts, 1 Brookings Dr, St Louis, MO 63130 USA.
C3 Washington University (WUSTL)
RP Tong, PH (corresponding author), Washington Univ, Sam Fox Sch Design & Visual Arts, 1 Brookings Dr, St Louis, MO 63130 USA.
EM peihao.tong@wustl.edu
RI Tong, Peihao/AGL-7145-2022
OI Tong, Peihao/0000-0003-4306-6483
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   [No title captured]
NR 79
TC 56
Z9 57
U1 67
U2 398
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD JUN 15
PY 2021
VL 60
AR 102276
DI 10.1016/j.ijdrr.2021.102276
EA MAY 2021
PG 10
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA SQ7BR
UT WOS:000660507600008
DA 2025-04-22
ER

PT J
AU Gao, W
   Guo, YW
   Jiang, FY
AF Gao, Wei
   Guo, Yuwei
   Jiang, Fanying
TI Playing for a Resilient Future: A Serious Game Designed to Explore and
   Understand the Complexity of the Interaction among Climate Change,
   Disaster Risk, and Urban Development
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE serious game; disaster risk reduction; decision making; trade-off;
   urbanization; urban resilience
ID TRADE-OFFS; CHANGE ADAPTATION; SAMPLE-SIZE; MANAGEMENT; COMMUNITY;
   KNOWLEDGE
AB Urban development and disaster risk are deeply linked, especially now when we are facing increasingly frequent climate change. Hence, knowledge of the potential trade-offs between urban development and disaster risk reduction (DRR) may have potential to build a resilient and sustainable future. The objectives of this study are (1) to present education for a sustainability (EfS) program and to evaluate its performance: a serious game of knowledge communication for the interactions among climate change, disaster risk, and urban development; (2) to explore factors that will influence the players' decision making in the trade-offs between urban development and DRR under an urbanization background through counterfactual scenarios constructed by a series of serious games. The Yudai Trench, once a critical component of the urban green infrastructure of ancient Guangzhou, has disappeared under rapid urban expansion, leaving the city exposed to environmental hazards caused by climate change. Is the disappearance of the Yudai Trench an inevitable event in the progress of urbanization? To answer this question, the study constructed counterfactual scenarios by recuring the historical progress through the same serious game. Gameplay involved the players' decision making with associated impacts on the urbanization progress and the DRR in diverse climate hazard scenarios. For this study, 107 undergraduates from related majors, who are also would-be policymakers, were selected as players. The methodology combined questionnaire survey and participant observation complemented by interviews. The t-test results indicated that undergraduates' knowledge levels had significant positive changes after the end of the serious game. Importantly, the results showed that the knowledge could potentially contribute to the players' decision-making process for DRR by assisting them in making pre-decision. Beside this knowledge, the results expanded the range of influencing factors and solutions reported by previous literature on DRR under an urbanization background against climate hazards by constructing counterfactual scenarios, e.g., higher economic levels and policy incentives. In this study, the serious game was evaluated as an innovative communication and the EfS method in counterfactual scenarios. These findings of the study provide a reference for future practice, policymaking, and decision making so as to help harness lessons learned from unrealized environmental hazards to support a more resilient future through informed policies and plans.
C1 [Gao, Wei; Guo, Yuwei; Jiang, Fanying] South China Agr Univ, Coll Forestry & Landscape Architecture, Guangzhou 510642, Peoples R China.
C3 South China Agricultural University
RP Jiang, FY (corresponding author), South China Agr Univ, Coll Forestry & Landscape Architecture, Guangzhou 510642, Peoples R China.
EM gaowei@scau.edu.cn; yueiguo@163.com; riverjfy@hotmail.com
OI Jiang, Fanying/0000-0002-1717-9700
FU National Natural Science Foundation of China [51708227]; Research on
   database Construction of Historic Urban Landscape Features Based on
   Information Model Technology-A case study of Guangzhou of the Natural
   Science Foundation of Guangdong Province China [2017A030310461]
FX This research was funded by the National Natural Science Foundation of
   China, grant number 51708227. This research was funded by the Research
   on database Construction of Historic Urban Landscape Features Based on
   Information Model Technology-A case study of Guangzhou of the Natural
   Science Foundation of Guangdong Province China, grant number
   2017A030310461.
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NR 65
TC 14
Z9 14
U1 12
U2 72
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD SEP
PY 2021
VL 18
IS 17
AR 8949
DI 10.3390/ijerph18178949
PG 20
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA UN5KG
UT WOS:000694054800001
PM 34501538
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Jiang, W
   Wang, KL
   Miao, Z
AF Jiang, Wei
   Wang, Ke-Liang
   Miao, Zhuang
TI Can telecommunications infrastructure enhance urban resilience?
   Empirical evidence from a differences-in-differences approach in China
SO ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY
LA English
DT Article
DE Urban resilience; Telecommunications infrastructure; Time-varying DID
   model
ID CITIES; INFORMATION
AB The concept of urban resilience provides a viable solution for addressing urban challenges and managing urban security risks. The development of telecommunications infrastructure (TI) is considered a crucial force driving urban digital transformation and is expected to enhance urban resilience. However, limited research has examined TI's impact on urban resilience. Considering the Broadband China policy implementation as a quasi-natural experiment, we adopt the time-varying difference-in-differences (DID) model to quantify TI's impact on urban resilience in China, with its heterogeneity and mechanism further analyzed. The results reveal that TI can enhance urban resilience in China, as confirmed by various robustness tests. More specifically, TI can improve urban economic, social, and infrastructure resilience, while inhibiting ecological resilience and having no significant effect on institutional resilience. Besides, accelerating urban innovation, promoting urban industrial structure upgrading, and stimulating urban entrepreneurship are confirmed as three key pathways through which TI affects urban resilience. Finally, the heterogeneity analysis shows that TI's impact on urban resilience is considerable in cities with high-level traditional infrastructure, non-resource-based cities, and cities with high education levels, but is not notable in cities with low-level traditional infrastructure, resource-based cities, and cities with low education level. These findings can provide important implications for policy-makers in promoting urban resilience through TI construction.
C1 [Jiang, Wei; Wang, Ke-Liang] Ocean Univ China, Sch Econ, 238 Songling Rd, Qingdao 266100, Shandong, Peoples R China.
   [Miao, Zhuang] Jiangsu Univ, Sch Finance & Econ, Zhenjiang 2012013, Jiangsu, Peoples R China.
C3 Ocean University of China; Jiangsu University
RP Wang, KL (corresponding author), Ocean Univ China, Sch Econ, 238 Songling Rd, Qingdao 266100, Shandong, Peoples R China.
EM klwang@163.com
OI Ke-Liang, Wang/0000-0003-3220-0296
FU National Natural Science Foundation of China [71973131]
FX Funding was provided by National Natural Science Foundation of China
   (Grant No. 71973131).
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TC 6
Z9 6
U1 52
U2 134
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1387-585X
EI 1573-2975
J9 ENVIRON DEV SUSTAIN
JI Environ. Dev. Sustain.
PD JAN
PY 2025
VL 27
IS 1
BP 2379
EP 2410
DI 10.1007/s10668-023-03971-x
EA OCT 2023
PG 32
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 1LB5Y
UT WOS:001084091000005
DA 2025-04-22
ER

PT J
AU Rayan, M
   Gruehn, D
   Khayyam, U
AF Rayan, Muhammad
   Gruehn, Dietwald
   Khayyam, Umer
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   Khyber Pakhtunkhwa (KP), Pakistan
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE climate change; adaptation; urban green infrastructure; community
   participation; KP; Pakistan
ID ECOSYSTEM; HEALTH; MODEL; TOOL
AB Rising vulnerability of the urban green infrastructure (UGI) is grabbing global attention, for which inclusive urban landscape and greening policies (ULGP) and frameworks are crucial to support green growth. As such, this research intends to explore the local community's perspective to assemble sustainable UGI indicators for vital taxonomy of the urban green space (UGS) elements, aiming to develop a multi-functional and sustainable UGI-indicator-based framework that is eco-friendly and supports green-resilient cities in Khyber Pakhtunkhwa (KP) province, Pakistan. An in-depth household survey was executed in three KP districts: Charsadda, Peshawar, and Mardan, placing self-administered 192 questionnaires while covering themes around climate change adaptation, urban resilience, and UGI. Relative importance index (RII) and the interquartile range (IQR) methods were set up for data analysis that revealed excellent reliability (alpha > 0.88) and internal consistency. The results confirmed community-based UGI indicators with a focus on promoting green-energy-saving strategies as e-imp (level 9, RII = 0.915), while other (ten) UGI indicators as important (RII = 0.811-0.894) and (eleven) as moderately important (RII = 0.738-0.792). These UGI indicators were found to be enhanced by UGS elements (RII >= 0.70). These findings provide a foundation for urban policy change and the development of a sustainable UGI framework to build an eco-regional paradigm for greener growth.
C1 [Rayan, Muhammad; Gruehn, Dietwald] TU Dortmund Univ, Res Grp Landscape Ecol & Landscape Planning LLP, Dept Spatial Planning, D-44227 Dortmund, Germany.
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C3 Dortmund University of Technology; National University of Sciences &
   Technology - Pakistan
RP Rayan, M (corresponding author), TU Dortmund Univ, Res Grp Landscape Ecol & Landscape Planning LLP, Dept Spatial Planning, D-44227 Dortmund, Germany.
EM muhammad.rayan@tu-dortmund.de
OI Gruehn, Dietwald/0000-0002-7570-4104; Rayan,
   Muhammad/0000-0001-6984-797X; Khayyam, Dr. Umer/0000-0002-1253-7265
FU Deutscher Akademischer Austauschdienst (DAAD), Government of Germany
   [57381412]; TU-Dortmund University, Germany
FX This research, as a part of the Ph.D. dissertation, was funded by the
   Deutscher Akademischer Austauschdienst (DAAD), Government of Germany,
   grant number 57381412. TU-Dortmund University, Germany, funded the
   Article Processing Charges (APCs).
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NR 92
TC 5
Z9 5
U1 5
U2 18
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD OCT
PY 2022
VL 19
IS 19
AR 11844
DI 10.3390/ijerph191911844
PG 29
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 5G3QE
UT WOS:000866916100001
PM 36231145
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Chen, XL
   Yu, LX
   Lin, WD
   Yang, FQ
   Li, YP
   Tao, J
   Cheng, S
AF Chen, Xing-lin
   Yu, Long-xing
   Lin, Wei-dong
   Yang, Fu-qiang
   Li, Yi-ping
   Tao, Jing
   Cheng, Shuo
TI Urban resilience assessment from the multidimensional perspective using
   dynamic Bayesian network: A case study of Fujian Province, China
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Urban resilience; Multidimensional perspective; Resilience assessment;
   Dynamic Bayesian network
ID COMMUNITY RESILIENCE; FRAMEWORK; TRANSPORTATION; METAPHOR; MODELS
AB Pursuing the high-quality urbanisation and improving urban system reliability are the current goal of urban development. Urban resilience reflects the reliability of a city in coping with external and internal disturbances. Therefore, the urban system reliability can be quantified by assessing urban resilience. Simultaneously, urban resilience assessments can identify vulnerabilities that affect the urban system reliability. Based on this, targeted decisions are proposed to enhance the reliability, stability and safety of urban systems. This study constructs an assessment indicator system to quantitatively estimate the reliability of urban systems and develops a dynamic urban resilience assessment model by combining it with a dynamic network framework that accounts for time varying factors. The model estimates the urban system reliability from a resilience perspective and identifies vulnerabilities in urban resilience. The applicability of the model is verified using Fujian Province as a research case. The case study uses annual urban data from 2016 to 2021, which is outstanding in terms of data objectivity. The results provide important insights for practitioners and researchers in optimising urban resilience, improving urban system reliability and formulating urban development strategies.
C1 [Chen, Xing-lin; Yu, Long-xing; Yang, Fu-qiang; Tao, Jing; Cheng, Shuo] Fuzhou Univ, Coll Environm & Safety Engn, Fuzhou 350116, Peoples R China.
   [Lin, Wei-dong] Fujian Prov Inst Architectural Design & Res CO LTD, Fuzhou 350001, Peoples R China.
   [Yang, Fu-qiang] Fuzhou Univ, Fujian Prov Key Lab Remote Sensing Soil Eros & Dis, Fuzhou 350116, Peoples R China.
   [Tao, Jing] Fuzhou Univ, Sch Law, Fuzhou 350116, Peoples R China.
C3 Fuzhou University; Fuzhou University; Fuzhou University
RP Yang, FQ; Tao, J (corresponding author), Fuzhou Univ, Coll Environm & Safety Engn, Fuzhou 350116, Peoples R China.
EM yangfuqiang@fzu.edu.cn; taojing@fzu.edu.cn
RI 陈, 星霖/GPS-8427-2022; Yu, Longxing/LMN-9077-2024
OI Yu, Long-Xing/0000-0002-4077-3599; Lin, Weidong/0009-0002-7631-8990
FU National Natural Science Foundation of China [52274181]; Regional
   Development Science and Technol- ogy Program of Fujian Province, China
   [2023Y31010005]
FX This work was supported by the National Natural Science Foundation of
   China (52274181) and Regional Development Science and Technol- ogy
   Program of Fujian Province, China (Grant No. 2023Y31010005) .
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NR 99
TC 29
Z9 30
U1 98
U2 334
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0951-8320
EI 1879-0836
J9 RELIAB ENG SYST SAFE
JI Reliab. Eng. Syst. Saf.
PD OCT
PY 2023
VL 238
AR 109469
DI 10.1016/j.ress.2023.109469
EA JUN 2023
PG 20
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA L8LI3
UT WOS:001025720200001
DA 2025-04-22
ER

PT J
AU Zhang, MS
   Yang, YG
   Li, HH
   van Dijk, MP
AF Zhang, Mingshun
   Yang, Yaguang
   Li, Huanhuan
   van Dijk, Meine Pieter
TI Measuring Urban Resilience to Climate Change in Three Chinese Cities
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; resilience assessment; hazards management; climate
   change; urban governance
ID SUSTAINABILITY; INDICATORS; FRAMEWORK; RISK
AB Building an urban resilience index results in developing an increasingly popular tool for monitoring progress towards climate-proof cities. This paper develops an urban resilience index in the context of urban China, which helps planners and policy-makers at city level to identify whether urban development is leading to more resilience. The urban resilience index (URI) suggested in this research uses data on 24 indicators distributed over six URI component indices. While no measure of such a complex phenomenon can be perfect, the URI proved to be effective, useful and robust. Our findings show that the URI ensures access to integrated information on urban resilience to climate change. It allows comparisons of cities in a systematic and quantitative way, and enables identification of strong and weak points related to urban resilience. The URI provides tangible measures of not only overall measures of urban resilience to climate change, but also urban resilience components and related indicators. Therefore, it could meet a wide range of policy and research needs. URI is a helpful tool for urban decision-makers and urban planners to quantify goals, measure progress, benchmark performance, and identify priorities for achieving high urban resilience to climate change.
C1 [Zhang, Mingshun; Yang, Yaguang; Li, Huanhuan] Beijing Univ Civil Engn & Architecture, Beijing Climate Change Response Res & Educ Ctr, Beijing 100044, Peoples R China.
   [van Dijk, Meine Pieter] Maastricht Sch Management MSM, NL-6229 EP Maastricht, Netherlands.
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C3 Beijing University of Civil Engineering & Architecture; Maastricht
   University; Erasmus University Rotterdam; Erasmus University Rotterdam -
   Excl Erasmus MC
RP Zhang, MS (corresponding author), Beijing Univ Civil Engn & Architecture, Beijing Climate Change Response Res & Educ Ctr, Beijing 100044, Peoples R China.
EM zhangmingshun@bucea.edu.cn; 2108300219005@stu.bucea.edu.cn;
   lhh805825@163.com; mpvandijk@iss.nl
RI van Dijk, Meine Pieter/HJG-5481-2022; van Dijk, Meine Pieter/N-3533-2013
OI van Dijk, Meine Pieter/0000-0002-2555-3555
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NR 30
TC 20
Z9 20
U1 38
U2 201
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2020
VL 12
IS 22
AR 9735
DI 10.3390/su12229735
PG 18
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA OY9NO
UT WOS:000594565600001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Xu, X
   Wang, MM
   Wang, MF
   Yang, YC
   Wang, YL
AF Xu, Xin
   Wang, Meimei
   Wang, Mingfeng
   Yang, Yongchun
   Wang, Yuliang
TI The Coupling Coordination Degree of Economic, Social and Ecological
   Resilience of Urban Agglomerations in China
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE urban agglomeration; economic resilience; social resilience; ecological
   resilience; coupling coordination degree; fuzzy logic method
ID VULNERABILITY; LESSONS
AB This paper refines the fuzzy logic method, while constructing a theoretical model of the relationship between economic resilience, social resilience and ecological resilience, and evaluates the coupling coordination between the economic-social-ecological resilience of 197 prefecture-level cities in China's urban agglomerations in 2019. Findings include: (1) The mean ecological resilience of China's urban agglomerations in 2019 was the highest, followed by economic and social resilience. (2) Promoting urban agglomerations had higher resilience scores in the three dimensions, especially in the economic dimension. Growing urban agglomerations had low resilience values on the whole, especially economic resilience. (3) The mean coupling coordination degree of economic-social-ecological resilience ranged from near-incoordination to narrow balance. (4) The coupling coordination degree between the two coincided with the positioning of existing urban agglomerations. (5) Economic resilience had the most significant impact on the coupling coordination. Finally, we give differentiated countermeasures to improve the resilience of urban agglomerations. This study aims to contribute to the promotion of urban resilience research, and helps to plan and design more rational urban economic-social-ecological systems, thereby enhancing the ability of cities to cope with any uncertainties and contingencies.
C1 [Xu, Xin; Wang, Meimei; Yang, Yongchun; Wang, Yuliang] Lanzhou Univ, Sch Resources & Environm, Lanzhou 730000, Peoples R China.
   [Xu, Xin; Wang, Mingfeng] East China Normal Univ, Sch Urban & Reg Sci, Shanghai 200241, Peoples R China.
C3 Lanzhou University; East China Normal University
RP Wang, MM (corresponding author), Lanzhou Univ, Sch Resources & Environm, Lanzhou 730000, Peoples R China.
EM wangmm@lzu.edu.cn
RI Wang, Yuliang/AAY-9498-2020
OI XU, XIN/0009-0006-4576-4452; Wang, Mingfeng/0000-0001-9945-7358
FU National Natural Science Foundation of China [42201198]; Youth Science
   and Technology Fund of Gansu province [22JR5RA518]; Central University
   Basic Research Fund of China of lanzhou university [lzujbky-2022-46];
   Philosophy and social science Planning Project of Lanzhou city [22-A06]
FX This work was supported by the National Natural Science Foundation of
   China (42201198), The Youth Science and Technology Fund of Gansu
   province (22JR5RA518); The Central University Basic Research Fund of
   China of lanzhou university (lzujbky-2022-46), and the Philosophy and
   social science Planning Project of Lanzhou city (22-A06).
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NR 38
TC 27
Z9 28
U1 133
U2 598
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD JAN
PY 2023
VL 20
IS 1
AR 413
DI 10.3390/ijerph20010413
PG 19
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 7R4AV
UT WOS:000910017600001
PM 36612734
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Wang, QX
   Xin, YJ
   Tian, ZH
   Hu, A
   Liu, Y
AF Wang, Qingxi
   Xin, Yueji
   Tian, Zhihua
   Hu, An
   Liu, Ye
TI Does Resource Industry Dependence Undermine Urban Resilience? Evidence
   From China
SO GROWTH AND CHANGE
LA English
DT Article
DE China; ecological resilience; resource curse; resource industry
   dependence; sustainable development; urban resilience
ID NATURAL-RESOURCES; CURSE; CITIES; KNOWLEDGE; EDUCATION; EVOLUTION; LABOR
AB This study empirically investigates the causal relationship between resource industry dependence and urban resilience from three perspectives: ecological, economic, and social, contributing to the resource curse theory and the sustainable development of resource-dependent cities. We use the entropy method to establish an urban resilience index system to measure the resilience of 269 Chinese cities from 2000 to 2019, and construct a two-way fixed-effects model to test the impact of resource industry dependence on urban resilience. The results show that resource industry dependence impairs urban resilience, and this finding remains robust to the estimation using an instrumental variable approach. Moreover, mechanism tests show that resource industry dependence undermines urban resilience by inhibiting industrial structural upgrading and hindering green technological innovation. We further categorize urban resilience into ecological resilience, economic resilience, and social resilience, and find that resource industry dependence has a more significant negative impact on urban ecological resilience and social resilience than on economic resilience. Our investigations suggest that cities should develop strategies based on their unique endowments to reduce resource dependence, improve urban resilience by strengthening industrial systems and promoting innovation, and achieve sustainable economic development.
C1 [Wang, Qingxi; Xin, Yueji; Tian, Zhihua; Liu, Ye] Zhejiang Univ Technol, Sch Econ, Hangzhou, Peoples R China.
   [Wang, Qingxi; Tian, Zhihua; Liu, Ye] Zhejiang Univ Technol, Inst Ind Syst Modernizat, Hangzhou, Peoples R China.
   [Hu, An] Jiaxing Univ, Sch Econ, Jiaxing, Peoples R China.
C3 Zhejiang University of Technology; Zhejiang University of Technology;
   Jiaxing University
RP Tian, ZH (corresponding author), Zhejiang Univ Technol, Sch Econ, Hangzhou, Peoples R China.; Tian, ZH (corresponding author), Zhejiang Univ Technol, Inst Ind Syst Modernizat, Hangzhou, Peoples R China.
EM tianzhihua@zjut.edu.cn
RI Hu, An/HPF-6861-2023
OI Tian, Zhihua/0000-0002-0868-7287; Liu, Ye/0000-0002-6935-4208
FU Zhejiang Provincial Natural Science Foundation of China; National
   Natural Science Foundation of China [72004204]; Zhejiang Provincial
   Philosophy and Social Sciences Planning Project [24NDQN18Z]; Fundamental
   Research Funds for the Provincial Universities of Zhejiang
   [GB202302001]; Humanities and Social Sciences Pre-Research Fund of
   Zhejiang University of Technology;  [LY22G030004]
FX This research was supported by the Zhejiang Provincial Natural Science
   Foundation of China under Grant No. LY22G030004, the National Natural
   Science Foundation of China (No. 72004204), the Zhejiang Provincial
   Philosophy and Social Sciences Planning Project (No. 24NDQN18Z), the
   Fundamental Research Funds for the Provincial Universities of Zhejiang
   (No. GB202302001), and the Humanities and Social Sciences Pre-Research
   Fund of Zhejiang University of Technology.
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NR 55
TC 1
Z9 1
U1 20
U2 20
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0017-4815
EI 1468-2257
J9 GROWTH CHANGE
JI Growth Change
PD MAR
PY 2025
VL 56
IS 1
AR e70012
DI 10.1111/grow.70012
PG 16
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA P1T0G
UT WOS:001375807600001
DA 2025-04-22
ER

PT J
AU Kim, J
   de Leeuw, E
   Harris-Roxas, B
   Sainsbury, P
AF Kim, Jinhee
   de Leeuw, Evelyne
   Harris-Roxas, Ben
   Sainsbury, Peter
TI Five urban health research traditions: A meta-narrative review
SO SOCIAL SCIENCE & MEDICINE
LA English
DT Review
DE Urban health; Research traditions; Paradigms; Ontology;
   Transdisciplinary; Meta-narrative review; Bibliometric analysis
ID ECOSYSTEM SERVICES; GREEN-SPACE; SUSTAINABLE DEVELOPMENT;
   PHYSICAL-ACTIVITY; CLIMATE-CHANGE; BUILT ENVIRONMENT; LAND-USE;
   CONCEPTUAL-FRAMEWORK; POPULATION HEALTH; RESILIENT CITIES
AB Urban health scholars explore the connection between the urban space and health through ontological perspectives that are shaped by their disciplinary traditions. Without explicit recognition of the different approaches, there are barriers to collaboration. This paper maps the terrain of the urban health scholarship to identify key urban health research traditions; and to articulate the main features distinguishing these different traditions. We apply a meta-narrative review guided by a bibliometric co-citation network analysis to the body of research on urban health retrieved from the Web of Science Core Collection. Five urban health research traditions were identified: (1) sustainable urban development, (2) urban ecosystem services, (3) urban resilience, (4) healthy urban planning, and (5) urban green spaces. Each research tradition has a different conceptual and thematic perspective to addressing urban health. These include perspectives on the scale of the urban health issue of interest, and on the conceptualisation of the urban context and health. Additionally, we developed a framework to allow for better differentiation between the differing research traditions based on (1) perspectives of the urban system as complicated or complex, (2) the preferred locus of change as a function of structure and agency and (3) the geographic scale of the urban health issue that is addressed. These dimensions have even deeper implications for transdisciplinary collaboration as they are underpinned by paradigmatic differences, rather than disciplinary differences. We conclude that it is essential for urban health researchers to reflect on the different urban health approaches and seek coherence by understanding their similarities and differences. Such endeavours are required to produce and interpret transdisciplinary knowledge for the goal of improving health by transforming urban systems.
C1 [Kim, Jinhee; de Leeuw, Evelyne] Univ New South Wales, Ctr Primary Hlth Care & Equ, Kensington, Australia.
   [de Leeuw, Evelyne] Ecole Sante Publ Univ Montreal ESPUM, Chaire Excellence Rech CanadaUne Seule St Urbaine, Quebec City, PQ, Canada.
   [de Leeuw, Evelyne] Educ Res & Enterprise SPHERE, Hlth Urban Environm HUE Collaboratory, Maridulu Budyari Gumal Sydney Partnership Hlth, Sydney, Australia.
   [Harris-Roxas, Ben] Univ New South Wales, Sch Populat Hlth, Kensington, Australia.
   [Sainsbury, Peter] Univ Notre Dame, Sch Med Sydney, Fremantle, Australia.
   [Kim, Jinhee] UNSW, Ctr Primary Hlth Care & Equ, Sydney, NSW 2052, Australia.
C3 University of New South Wales Sydney; University of New South Wales
   Sydney; The University of Notre Dame Australia; University of New South
   Wales Sydney
RP Kim, J (corresponding author), UNSW, Ctr Primary Hlth Care & Equ, Sydney, NSW 2052, Australia.
EM jinhee.kim@unsw.edu.au; e.deleeuw@unsw.edu.au;
   b.harris-roxas@unsw.edu.au; petersainsbury27@gmail.com
RI de Leeuw, Evelyne/R-9219-2019; Harris-Roxas, Ben/A-3925-2015
OI Harris-Roxas, Ben/0000-0003-1716-2009; Kim, Jinhee/0000-0002-6439-792X
FU UNSW Scientia Scheme
FX This work was supported by the UNSW Scientia Scheme. The funder had no
   involvement in the conduct of the research nor in the preparation of the
   manuscript.
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NR 112
TC 5
Z9 5
U1 8
U2 36
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0277-9536
EI 1873-5347
J9 SOC SCI MED
JI Soc. Sci. Med.
PD NOV
PY 2023
VL 336
AR 116265
DI 10.1016/j.socscimed.2023.116265
EA OCT 2023
PG 13
WC Public, Environmental & Occupational Health; Social Sciences, Biomedical
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Biomedical Social Sciences
GA X5XR1
UT WOS:001099184800001
PM 37820495
OA hybrid
DA 2025-04-22
ER

PT J
AU Asibey, MO
   Haruna, HA
   Appau, PK
   Yeboah, V
AF Asibey, Michael Osei
   Haruna, Haruna Awudu
   Appau, Pius Kwabena
   Yeboah, Vivian
TI Empowering communities, protecting ecosystems: Climate resilience of
   urban socio-ecological systems
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Resilience; Socio-ecological systems; Climate-induced disasters;
   Flooding; Ahensan
ID KUMASI; POOR
AB Underpinned by the socio-ecological systems (SES) framework, this study identifies and examines SES climate interventions employed by residents and local planning authorities to address climate-induced vulnerabilities in an African city. With a focus on Ahensan, Kumasi, we employed the exploratory sequential mixed methods research approach to gather and analyse data from 152 residents, discussants of two focus group discussions and four key informants. The institutions were first purposively selected based on their important roles in addressing community climate hazards. Residents were purposively and conveniently selected based on their exposed and vulnerability to climate-induced disasters in the community. Flooding was the major climate hazard, with perennial devastating impacts. There was weak combination of both social and ecological systems to address the hazard, where there was much emphasis on the use of social systems. Notable interventions implemented were clean-up exercises, planting trees and grass, together with sensitisation campaigns on the essence of avoiding building on waterways and flood-prone areas. Residents were largely excluded from the design of local SES climate-resilient interventions, but were engaged in their implementation. We argue that effectively and consciously integrating ecosystem-based solutions, and strengthening community engagement in SES-related climate governance and planning actions is important for strengthening resilience of the vulnerable.
C1 [Asibey, Michael Osei; Haruna, Haruna Awudu] KNUST, Coll Art & Built Environm, Dept Planning, Kumasi, Ghana.
   [Appau, Pius Kwabena] Univ Miami, Dept Geog, Miami, FL USA.
   [Yeboah, Vivian] Univ Amsterdam, Inst Social Sci Res AISSR, Dept Geog Planning & Int Dev GPIO, Amsterdam, Netherlands.
C3 Kwame Nkrumah University Science & Technology; University of Miami;
   University of Amsterdam
RP Asibey, MO (corresponding author), KNUST, Coll Art & Built Environm, Dept Planning, Kumasi, Ghana.
EM asibeymichael@yahoo.com; harunaawuduharuna@gmail.com;
   kappau460@gmail.com; vyeboah93@gmail.com
RI Asibey, Michael/P-2396-2016; Haruna, Habila/L-8295-2018
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NR 61
TC 0
Z9 0
U1 3
U2 3
PU ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
PI LONDON
PA 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND
SN 0301-4797
EI 1095-8630
J9 J ENVIRON MANAGE
JI J. Environ. Manage.
PD FEB
PY 2025
VL 375
AR 124376
DI 10.1016/j.jenvman.2025.124376
EA FEB 2025
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA Y7E3G
UT WOS:001433704300001
PM 39904240
DA 2025-04-22
ER

PT J
AU Chen, FF
   Xu, HG
   Dai, SS
   Rao, Y
AF Chen, Fangfang
   Xu, Honggang
   Dai, Shanshan
   Rao, Yong
TI The resilience of coastal urban destinations to typhoons: insights from
   a system-agent-institution framework
SO JOURNAL OF SUSTAINABLE TOURISM
LA English
DT Article; Early Access
DE Urban destination; tourism resilience; disaster resilience; coastal
   destination; typhoon; Alexandra Coghlan
ID DISASTER VULNERABILITY; TOURISM; COMMUNITY; SUSTAINABILITY; MODEL
AB Despite the growth in research on tourism resilience and urban resilience, the resilience of urban tourist destinations remains underexplored. This is particularly concerning given the increasing disaster risks faced by these destinations. This article integrates a system-agent-institution resilience framework with disaster management cycles to examine the systemic structure, resilience qualities, and paths to resilience of urban tourist destinations. A qualitative approach is employed to investigate the resilience of a coastal urban destination to typhoons. Our findings reveal that: (1) the destination exhibited resilience qualities across the stages of preparation and mitigation, response and recovery, and adaptation and transformation; (2) urban destination resilience is driven by two stabilization paths and three innovative paths; and (3) the critical role of formal institutions, the integration of the tourism sector through multiple channels, and the combination of top-down management with bottom-up innovation are essential for urban destination resilience. This article extends existing discussions on tourism resilience by providing a comprehensive framework for urban destination resilience to disasters and identifying key elements that contribute to resilience. It also contributes to the broader resilience literature by rethinking resilience from an integrated bottom-up and top-down perspective.
C1 [Chen, Fangfang] Southeast Univ, Sch Humanity, Dept Tourism, Nanjing, Peoples R China.
   [Xu, Honggang; Rao, Yong] Sun Yat Sen Univ, Sch Tourism Management, Bldg 329, Guangzhou, Peoples R China.
   [Xu, Honggang] Minist Culture & Tourism China, Key Lab Sustainable Tourism Smart Assessment Techn, Beijing, Peoples R China.
   [Dai, Shanshan] China Univ Geosci, Sch Econ & Management, Wuhan, Peoples R China.
C3 Southeast University - China; Sun Yat Sen University; China University
   of Geosciences
RP Xu, HG (corresponding author), Sun Yat Sen Univ, Sch Tourism Management, Bldg 329, Guangzhou, Peoples R China.
EM xuhongg@mail.sysu.edu.cn
RI Xu, Honggang/LLK-0925-2024; Chen, Fangfang/P-2381-2016
FU National Natural Science Foundation of China [42271242, 42301271]
FX This work was supported by National Natural Science Foundation of China
   under Grant 42271242; 42301271.
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NR 65
TC 0
Z9 0
U1 17
U2 17
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0966-9582
EI 1747-7646
J9 J SUSTAIN TOUR
JI J. Sustain. Tour.
PD 2024 DEC 13
PY 2024
DI 10.1080/09669582.2024.2442619
EA DEC 2024
PG 22
WC Green & Sustainable Science & Technology; Hospitality, Leisure, Sport &
   Tourism
WE Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Social Sciences - Other Topics
GA P9S5M
UT WOS:001381215200001
DA 2025-04-22
ER

PT J
AU Zhai, GF
   Li, SS
   Chen, J
AF Zhai, Guofang
   Li, Shasha
   Chen, Jing
TI Reducing Urban Disaster Risk by Improving Resilience in China from a
   Planning Perspective
SO HUMAN AND ECOLOGICAL RISK ASSESSMENT
LA English
DT Article
DE China; planning perspective; urban resilience; disaster risk
ID COMMUNITY RESILIENCE; LESSONS
AB This article aims to examine the implications of improving urban resilience that emerge from Chinese practices for reducing urban disaster risk. First, the concept of urban resilience is discussed, the goal of which is to shape a "culture of resilience" to the largest extent possible in order to reduce urban risk. Urban resilience encompasses broad and diverse areas, and thus can be improved in many ways. This article primarily discusses the planning process. Second, the main focus of the discussion on planning process to improve urban resilience is that of the urban risk management planning of Shenzhen, China. This was the first local urban government project in China to have comprehensively and broadly assessed and reduced urban risk, and it is covered along with the Chinese legislation system and current urban resilience programs in China. The findings show that both the Chinese central government and local governments are paying more and more attention to urban resilience through various legislation and programs, even if they are not using the same terminology as other countries.
C1 [Zhai, Guofang; Chen, Jing] Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210093, Jiangsu, Peoples R China.
   [Li, Shasha] Nanjing Univ, Sch Geog & Oceanog Sci, Nanjing 210093, Jiangsu, Peoples R China.
C3 Nanjing University; Nanjing University
RP Zhai, GF (corresponding author), Nanjing Univ, Sch Architecture & Urban Planning, 22 Hankou Rd, Nanjing 210093, Jiangsu, Peoples R China.
EM guofang_zhai@nju.edu.cn
RI Zhai, Guofang/JJD-3299-2023
FU National Program on Key Basic Research Project of China (973)
   [2010CB428506]; Projects of National Natural Science Foundation of China
   [41071325, 51308280]
FX This research was co-supported by the National Program on Key Basic
   Research Project of China (973) under grant No. 2010CB428506 and
   Projects of National Natural Science Foundation of China under grant
   Nos. 41071325 and 51308280.
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NR 19
TC 30
Z9 34
U1 9
U2 191
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 1080-7039
EI 1549-7860
J9 HUM ECOL RISK ASSESS
JI Hum. Ecol. Risk Assess.
PD JUL 4
PY 2015
VL 21
IS 5
SI SI
BP 1206
EP 1217
DI 10.1080/10807039.2014.955385
PG 12
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA CA7DC
UT WOS:000349076700005
DA 2025-04-22
ER

PT J
AU Almulhim, AI
   Cobbinah, PB
AF Almulhim, Abdulaziz I.
   Cobbinah, Patrick Brandful
TI Framing resilience in Saudi Arabian cities: On climate change and urban
   policy
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban resilience; Urbanization; Climate change; Urban policy; Saudi
   Arabia
ID CHALLENGES; URBANIZATION; PRINCIPLES; STRATEGIES; MANAGEMENT; DISASTERS;
   SYSTEM; IMPACT; SMART; SPACE
AB While climate change has traditionally driven the search for appropriate urban policy responses, a recent trend in urban studies and planning in the Global South has been to argue for resilience. Considering this call seriously, this article draws on critical literature on urban resilience and secondary data, using Saudi Arabian cities to demonstrate that urban policy -based reflections on climate change are imperative in the pursuit of urban resilience. By laying the groundwork for the conceptualization of urban resilience within and beyond urban studies, we use multiple urban cases across Saudi Arabia to establish approaches towards climate resilience, arguing that an understanding of urban resilience in urban studies and planning is critical to analyzing and combating the impacts of climate change in cities in the Global South. This leads us to argue for the need to explore urban resilience in relation to climate vulnerability, precarity, and urbanization. We conclude by advancing a research agenda on urban resilience in the Global South that draws upon the urban planning ethics of responsibility for climate change management.
C1 [Almulhim, Abdulaziz I.] Imam Abdulrahman Bin Faisal Univ, Coll Architecture & Planning, Dept Urban & Reg Planning, POB 1982, Dammam 31451, Saudi Arabia.
   [Cobbinah, Patrick Brandful] Univ Melbourne, Fac Architecture Bldg & Planning, Parkville, Vic 3010, Australia.
   [Almulhim, Abdulaziz I.] POB 1982, Dammam 31451, Saudi Arabia.
C3 Imam Abdulrahman Bin Faisal University; University of Melbourne
RP Almulhim, AI (corresponding author), POB 1982, Dammam 31451, Saudi Arabia.
EM aialmulhim@iau.edu.sa
RI Almulhim, Abdulaziz I./ABE-4254-2021; Cobbinah, Patrick/ABH-9950-2020
OI Almulhim, Abdulaziz I./0000-0002-5384-7219
FU Dean-ship of Scientific Research at Imam Abdulrahman Bin Faisal
   University, Dammam, Saudi Arabia
FX The first author would like to acknowledge the support from Dean-ship of
   Scientific Research at Imam Abdulrahman Bin Faisal University, Dammam,
   Saudi Arabia.
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NR 131
TC 23
Z9 23
U1 98
U2 154
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD FEB
PY 2024
VL 101
AR 105172
DI 10.1016/j.scs.2024.105172
EA JAN 2024
PG 18
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA GS4L7
UT WOS:001154648300001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Aghaloo, K
   Sharifi, A
   Habibzadeh, N
   Ali, T
   Chiu, YR
AF Aghaloo, Kamaleddin
   Sharifi, Ayyoob
   Habibzadeh, Nader
   Ali, Tausif
   Chiu, Yie-Ru
TI How nature-based solutions can enhance urban resilience to flooding and
   climate change and provide other co-benefits: A systematic review and
   taxonomy
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Review
DE Nature -based solutions; Green infrastructure; Climate change adaptation
   and mitigation; Stormwater; Ecosystem services
ID MANAGEMENT-PRACTICES; WATER MANAGEMENT; STORMWATER; HYDROLOGY;
   FRAMEWORK; IMPACTS
AB Planning clean, livable, and resilient cities is challenging. This becomes even more complex when considering the rapid population growth and urban development. The development of nature-based solutions (NbS) is acknowledged as a viable strategy to address this issue. It has multiple human and environmental health benefits under both normal and extreme climatic scenarios. This study aimed to examine how different conditions and factors are linked to the development of NbS for urban climate change adaptation, with a specific focus on stormwater and flooding management. Through a systematic literature review, this study proposes a taxonomy of NbS to better understand the processes and hierarchies involved in developing NbS. The analysis covered multiple factors related to geographical focus and scale, sector, climatic conditions, adaptation and mitigation measures, ecosystem services, and co-benefits. These factors were linked to ten classified NbS approaches and 29 specific NbS interventions. An analysis of 582 empirical studies showed that Sustainable Urban Drainage Systems (SUDS) are the most dominant approaches of NbS for adaptation, followed by Low-Impact Development (LID), Green Infrastructure (GI), Sponge City (SC), and Blue-Green Infrastructure (BGI). Among the different interventions, green roofs play a significant role in providing multifunctional ecosystem services and adaptation benefits such as stormwater and climate regulation. Policymakers and developers aiming to expand the implementation of NbS can consider the taxonomy proposed in this study to choose the right types of NbS and obtain maximum co-benefits.
C1 [Aghaloo, Kamaleddin] Hiroshima Univ, Grad Sch Adv Sci & Engn, Urban Environm Sci Lab URBES, 1-5-1 Kagamiyama, Higashi, Hiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Lebanese Amer Univ, Sch Architecture & Design, Beirut, Lebanon.
   [Habibzadeh, Nader] Islamic Azad Univ, Dept Environm Sci, Tabriz Branch, Tabriz, Iran.
   [Ali, Tausif] Uttara Univ, Dept Elect & Elect Engn, Dhaka, Bangladesh.
   [Ali, Tausif] Daffodil Int Univ, Dept Dev Studies, Dhaka, Bangladesh.
   [Chiu, Yie-Ru] Tzu Chi Univ, Master Program Sustainabil & Disaster Management, 701 Zhongyang Rd,Sect 3, Hualien 97004, Taiwan.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashi, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashi, Hiroshima 7398529, Japan.
C3 Hiroshima University; Hiroshima University; Hiroshima University;
   Lebanese American University; Islamic Azad University; Uttara
   University; Daffodil International University; Tzu Chi University;
   Hiroshima University; Hiroshima University
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashi, Hiroshima 7398529, Japan.; Sharifi, A (corresponding author), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashi, Hiroshima 7398529, Japan.
EM sharifi@hiroshima-u.ac.jp
RI Ali, Tausif/GVS-7103-2022; Sharifi, Ayyoob/M-7584-2013; Habibzadeh,
   Nader/HKM-6682-2023; Aghaloo, Kamaleddin/AAS-4388-2020
OI Aghaloo, Kamaleddin/0000-0003-3644-4060; Chiu, Yie
   Ru/0000-0003-1892-5653
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NR 118
TC 15
Z9 15
U1 63
U2 107
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD MAY
PY 2024
VL 95
AR 128320
DI 10.1016/j.ufug.2024.128320
EA APR 2024
PG 15
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA QP5T1
UT WOS:001222094000001
DA 2025-04-22
ER

PT J
AU Liu, ZM
   Xiu, CL
   Song, W
AF Liu, Zhimin
   Xiu, Chunliang
   Song, Wei
TI Landscape-Based Assessment of Urban Resilience and Its Evolution: A Case
   Study of the Central City of Shenyang
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; quantitative assessment; landscape pattern; ecosystem
   services; social-ecological systems; human-nature interactions;
   resilience trade-offs; Shenyang
ID CLIMATE RESILIENCE; DISASTER RISK; SUSTAINABILITY; CITIES; INDICATORS;
   MANAGEMENT; ROTTERDAM; INSIGHTS; THINKING; ECOLOGY
AB Urban resilience is increasingly considered a useful approach to accommodate uncertainties while achieving sustainability in urban systems, especially in the context of rapid urbanization and global environmental change. However, current research on the quantitative assessment of urban resilience is limited. This study introduces four proxies of urban resilience, i.e., diversity, connectivity, decentralization, and self-sufficiency, and the perspective of the urban landscape for the measurement of urban resilience and further guidance on planning practices by establishing connections between resilience potential and landscape characteristics. Using multi-source data and employing landscape-based analysis methods, urban resilience is investigated from 1995 to 2015 in the central city of Shenyang. The results indicate that the composition and configuration of the urban landscape changed significantly during this period, which had a great influence on urban resilience. The temporal and spatial evolution of urban resilience showed obviously directional preferences and an evident distance effect. Overall, the resilience level increased slightly, while the internal differences experienced a declining trend. The four characteristics can be deployed as practical principles to shape urban resilience. The adjustment and trade-offs of these aspects to enhance responsive structures and simultaneously maintain sustainable ecosystem services can be effective ways to realize long-term resilience.
C1 [Liu, Zhimin] Northeast Normal Univ, Sch Geog Sci, Changchun 130024, Jilin, Peoples R China.
   [Xiu, Chunliang] Northeastern Univ, Jangho Architecture Coll, Shenyang 110169, Liaoning, Peoples R China.
   [Song, Wei] Univ Louisville, Dept Geog & Geosci, Louisville, KY 40292 USA.
C3 Northeast Normal University - China; Northeastern University - China;
   University of Louisville
RP Xiu, CL (corresponding author), Northeastern Univ, Jangho Architecture Coll, Shenyang 110169, Liaoning, Peoples R China.
EM liuzm291@nenu.edu.cn; xiuchunliang@mail.neu.edu.cn;
   wei.song@louisville.edu
OI SONG, WEI/0000-0001-6240-5706
FU National Natural Science Foundation of China [41871162, 41471141]
FX This study was funded by the National Natural Science Foundation of
   China (Grant No. 41871162 and No. 41471141).
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NR 58
TC 27
Z9 29
U1 15
U2 158
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
SN 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY 2
PY 2019
VL 11
IS 10
AR 2964
DI 10.3390/su11102964
PG 20
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA IC5LV
UT WOS:000471010300247
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Jiao, LD
   Wang, L
   Lu, H
   Fan, YW
   Zhang, Y
   Wu, Y
AF Jiao, Liudan
   Wang, Lvwen
   Lu, Hao
   Fan, Yiwei
   Zhang, Yu
   Wu, Ya
TI An assessment model for urban resilience based on the
   pressure-state-response framework and BP-GA neural network
SO URBAN CLIMATE
LA English
DT Article
DE Urban resilience; Assessment model; Pressure -state -response; BP neural
   network; Framework
ID ECOLOGICAL SECURITY ASSESSMENT; GENETIC ALGORITHM; PSR MODEL;
   PREDICTION; PROVINCE; FLOOD
AB It has been widely appreciated that urban resilience is one of the core goals of urban development. Various approaches for evaluating the level of urban resilience have been developed recently. However, previous urban resilience assessment studies have mainly concentrated on the economy, society, infrastructure, and ecological environment, with very few considering the characteristics of the urban resilience regression process. Therefore, this research proposes a new assessment framework for urban resilience from the perspective of "pressure-state-response" to address this issue. And then, the methods of the BP neural network, genetic algorithm, Moran's index and the center of gravity model are combined to establish the assessment model of urban resilience. 31 provinces in Mainland China are selected as a case study to demonstrate the application of the assessment model. The calculation results indicate that the urban resilience level of all provinces in China is rising, and the provincial urban resilience development shows the characteristics of fluctuation. The trend of urban resilience shifted from north to south from 2013 to 2019, consistent with China's economic center of gravity moving from north to south. This study develops a new angle for evaluating urban resilience and provides effective policies toward urban resilience.
C1 [Jiao, Liudan; Wang, Lvwen; Lu, Hao; Fan, Yiwei; Zhang, Yu] Chongqing Jiaotong Univ, Sch Econ & Management, Chongqing 400074, Peoples R China.
   [Wu, Ya] Southwest Univ, Coll Resources & Environm, Chongqing 400715, Peoples R China.
C3 Chongqing Jiaotong University; Southwest University - China
RP Lu, H (corresponding author), Chongqing Jiaotong Univ, Sch Econ & Management, Chongqing 400074, Peoples R China.
EM jld@cqjtu.edu.cn; luhao@cqjtu.edu.cn; 622210122044@mails.cqjtu.edu.cn;
   mswuya@swu.edu.cn
RI Jiao, Liudan/HIK-0853-2022; Fan, Yiwei/JVZ-9821-2024; lu,
   hao/L-8790-2019
FU National Social Science Foundation of China [22BJY219]; National Natural
   Science Foundation of China [71901043]; Chongqing Natural Science
   Foundation Project [CSTB2022NSCQ-MSX0390]
FX This paper is supported by the National Social Science Foundation of
   China (No. 22BJY219) , National Natural Science Foundation of China (No.
   71901043) and the Chongqing Natural Science Foundation Project (No.
   CSTB2022NSCQ-MSX0390) .
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NR 46
TC 46
Z9 49
U1 203
U2 481
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD MAY
PY 2023
VL 49
AR 101543
DI 10.1016/j.uclim.2023.101543
EA MAY 2023
PG 20
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA I3NQ4
UT WOS:001001883700001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Zhu, ZY
   Zheng, YH
   Xiang, PC
AF Zhu, Zhiyuan
   Zheng, Yuhan
   Xiang, Pengcheng
TI Deciphering the spatial and temporal evolution of urban anthropogenic
   resilience within the Yangtze River Delta urban agglomeration
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban resilience; Urban agglomeration; Spatiotemporal evolution;
   Regional synergetic development
ID FRAMEWORK; DISASTERS; ENHANCE
AB Urban agglomeration, a highly evolved spatial form of integrated cities, has developed more rapidly with the growing interconnections among the cities. While benefiting from its invigorating prosperity, cities also confront palpable risks. Urban resilience and regional synergy are currently enduring more serious challenges. However, compelling research on urban agglomeration resilience is insufficiently conducted. This study proposes a four-dimensional evaluation index system (economic, political, social, and infrastructure) with a prone emphasis on political resilience, making up for the previous deficiency in interrogating political dimension. A basis for revealing the spatiotemporal evolution of the urban agglomeration resilience in the Yangtze River Delta urban agglomeration (YRD) is provided. Research results indicate that: (1) Urban resilience in YRD has increased significantly and continues to grow, with regional differences narrowing; (2) the YRD's resilience suggests a polycentric cluster distribution with resilience declining from the centre cities to surrounding ones; (3) the urban resilience gradually decreased from the east to the west, from the coast to the interior; and (4) cities with high economic and political resilience may be inferior in other two aspects, necessitating complementary capabilities amongst the cities. Understanding the spatiotemporal evolution of resilience is expected to further induce resilience development and urban synergy.
C1 [Zhu, Zhiyuan; Zheng, Yuhan; Xiang, Pengcheng] Chongqing Univ, Sch Management Sci & Real Estate, Chongqing 400045, Peoples R China.
   [Xiang, Pengcheng] Chongqing Univ, Res Ctr Construct Econ & Management, Chongqing 400045, Peoples R China.
   [Xiang, Pengcheng] Chongqing Univ, Int Res Ctr Sustainable Built Environm, Chongqing 400045, Peoples R China.
C3 Chongqing University; Chongqing University; Chongqing University
RP Zheng, YH; Xiang, PC (corresponding author), Chongqing Univ, Sch Management Sci & Real Estate, Chongqing 400045, Peoples R China.
EM zhengyuhan05@gmail.com; pcxiang@cqu.edu.cn
RI zhu, zhiyuan/AAG-2125-2021
OI Zheng, Yuhan/0000-0002-4136-0673
FU Chongqing Social Science Foundation Project [2021ZDSC08]; Fundamental
   Research Funds for the Central Universities [2022CDJSKJC18]
FX The work described in this paper is fully supported by a joint grant
   from Chongqing Social Science Foundation Project (2021ZDSC08) and
   Fundamental Research Funds for the Central Universities (2022CDJSKJC18)
   .
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NR 48
TC 26
Z9 26
U1 45
U2 255
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JAN
PY 2023
VL 88
AR 104274
DI 10.1016/j.scs.2022.104274
EA NOV 2022
PG 13
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 8D0YY
UT WOS:000918027200004
DA 2025-04-22
ER

PT J
AU Li, GJ
   Kou, CH
   Wang, YS
   Yang, HT
AF Li, Guijun
   Kou, Chenhuan
   Wang, Yongsheng
   Yang, Hongtao
TI System dynamics modelling for improving urban resilience in Beijing,
   China
SO RESOURCES CONSERVATION AND RECYCLING
LA English
DT Article
DE Urban resilience; System Dynamics; Policy simulation
ID CLIMATE-CHANGE; INTEGRATED FRAMEWORK; CITIES; STRATEGIES; LESSONS;
   REGIONS
AB Resilience building has become increasingly important in the field of urban complexity and sustainable governance. For a better understanding of the adaptive capacity of an urban system, this paper integrated four types of sub-resilience across different domains into the comprehensive urban resilience. Then, a system dynamics (SD) model was established to clarify the causal feedback and dynamic interaction mechanism between the components of urban resilience. Taken the megacity of Beijing as the case, the improvement process of urban resilience was simulated by 2025, and four policy scenarios were set to improve the urban resilience effectively by adjusting endogenous variables. The results showed that the growth of urban resilience would undergo three periods: fast growth exceeded 10% in first two years, while slowed down afterwards in following five years, and finally increased again in the future. The sub-resilience that dominates the urban resilience growth changed from the material and energy resilience to the governance resilience, and then to the socioeconomic resilience. Scenarios analysis indicated that all subsystems were sensitive to the policy adjustment except for the socioeconomic component. The purpose of this paper is to build a comprehensive and informative resilience development tool for urban managers and planners to maintain the desired status of city operation, as well as respond positively to resilience crisis that might occur in the near future.
C1 [Li, Guijun; Kou, Chenhuan; Wang, Yongsheng] Cent Univ Finance & Econ, Sch Management Sci & Engn, Beijing, Peoples R China.
   [Li, Guijun; Kou, Chenhuan] Cent Univ Finance & Econ, Ctr Global Econ & Sustainable Dev CGESD, Beijing, Peoples R China.
   [Yang, Hongtao] East China Univ Sci & Technol, Sch Business, Shanghai, Peoples R China.
C3 Central University of Finance & Economics; Central University of Finance
   & Economics; East China University of Science & Technology
RP Wang, YS (corresponding author), Cent Univ Finance & Econ, Sch Management Sci & Engn, Beijing, Peoples R China.; Yang, HT (corresponding author), East China Univ Sci & Technol, Sch Business, Shanghai, Peoples R China.
EM wangys@email.cufe.edu.cn; yanght@ecust.edu.cn
RI Li, Guijun/AAZ-6202-2021
OI Wang, Yongsheng/0000-0003-1590-8022; Kou, Chenhuan/0000-0003-1271-9138;
   Yang, Hongtao/0000-0001-7391-6181; li, guijun/0000-0002-5720-8369
FU National Natural Science Foundation of China [71473285]; Philosophy and
   social science planning project of Heilongjiang Province [19GLC165];
   Graduate Research and Innovation Fund Project of Central University of
   Finance and Economics [201715]; Academy of Finland (AKA) [201715]
   Funding Source: Academy of Finland (AKA)
FX This work was supported by the National Natural Science Foundation of
   China [grant numbers 71473285]; the Philosophy and social science
   planning project of Heilongjiang Province [grant number 19GLC165], and
   the Graduate Research and Innovation Fund Project of Central University
   of Finance and Economics [grant number 201715].
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NR 61
TC 96
Z9 108
U1 56
U2 504
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0921-3449
EI 1879-0658
J9 RESOUR CONSERV RECY
JI Resour. Conserv. Recycl.
PD OCT
PY 2020
VL 161
AR 104954
DI 10.1016/j.resconrec.2020.104954
PG 10
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology
GA NO6PA
UT WOS:000569610400049
DA 2025-04-22
ER

PT J
AU Amador, L
   Mohammadi, A
   Abu-Samra, S
   Maghsoudi, R
AF Amador, Luis
   Mohammadi, Alireza
   Abu-Samra, Soliman
   Maghsoudi, Reza
TI Resilient storm pipes: a multi-stage decision support system
SO STRUCTURE AND INFRASTRUCTURE ENGINEERING
LA English
DT Article
DE Infrastructure planning; multi-objective; goal programming; resilience;
   storm pipes; asset management; climate change; urban dynamics;
   hydrologic modeling
ID MULTIOBJECTIVE OPTIMIZATION; MANAGEMENT; DRAINAGE; REHABILITATION;
   ALGORITHM; IMPACT; COST
AB North America's infrastructure, in general, and stormwater system, as a crucial component of our urban infrastructure, are in dire condition states that require attention and, in some cases, urgent intervention. According to the American Society of Civil Engineering (ASCE), the stormwater system received a condition state "D+". Even though existing management systems for storm pipes optimize the timing of maintenance and replacement aiming at improving the overall storm pipes' network condition, they ignored the effect of urban growth and climate change (i.e. intense and frequent rainfall cause flooding) on the pipes' deterioration. Thus, this paper presents a scheduling decision-making framework that opts at optimizing the pipes' replacement decisions to increase their resiliency while considering the annual expenditures, urban growth and its' future impact on the demand. To demonstrate the system's functionality, it was deployed on the storm pipes of Kindersley in Saskatchewan, Canada. The results showed that $300,000 a year was enough to meet the city's condition and flow demand-capacity goals, enhance their average condition from 33% to 63% and drop the flow demand-capacity to 64%. Furthermore, replacements' breakdown analysis indicated that longer analysis periods enhance the system's capability in capturing the long-term impact of the decisions.
C1 [Amador, Luis; Mohammadi, Alireza; Abu-Samra, Soliman; Maghsoudi, Reza] Concordia Univ, Dept Bldg Civil & Environm Engn, Montreal, PQ, Canada.
C3 Concordia University - Canada
RP Mohammadi, A (corresponding author), Concordia Univ, Dept Bldg Civil & Environm Engn, Montreal, PQ, Canada.
EM alireza.mohammadi@concordia.ca
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SN 1573-2479
EI 1744-8980
J9 STRUCT INFRASTRUCT E
JI Struct. Infrastruct. Eng.
PD MAY 3
PY 2020
VL 16
IS 5
BP 847
EP 859
DI 10.1080/15732479.2019.1671466
EA SEP 2019
PG 13
WC Engineering, Civil; Engineering, Mechanical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA MB2DN
UT WOS:000488190200001
DA 2025-04-22
ER

PT J
AU Jiang, CT
   Guan, X
   Zhu, JF
   Wang, ZY
   Song, FF
   Zhao, CH
AF Jiang, Chuntao
   Guan, Xin
   Zhu, Junfan
   Wang, Zeyu
   Song, Feifei
   Zhao, Changheng
TI Resilience of healthy cities in the post-pandemic era: Findings based on
   internet of things data and artificial intelligence algorithms
SO INTERNET OF THINGS
LA English
DT Article
DE Post-pandemic era; Internet of things; Healthy city; Artificial
   intelligence algorithm
ID URBAN RESILIENCE
AB This study aims to improve urban resilience in the face of public health emergencies. Therefore, based on the urban resilience development theory, a resilience evaluation index system for healthy cities is constructed. In addition, the Back Propagation Neural Network (BPNN) algorithm and entropy method are combined to empirically evaluate 7 representative cities in the Yangtze River Delta urban agglomeration. Linear regression analysis is carried out on the index weight of the evaluation system, relative proximity degree, and score of urban resilience. The results reveal that social environment and infrastructure are two important factors in the resilience evaluation of healthy cities. Nanjing and Shanghai have relatively good resilience, while Ma'anshan has the worst resilience. It is also found that economic status is the most critical factor affecting urban resilience. Thus, this study enriches the theories related to urban resilience, expands the evaluation system of urban resilience, and opens up a new approach to the quantitative evaluation of urban resilience.
C1 [Jiang, Chuntao] Foshan Univ, Sch Math & Big Data, Foshan 528000, Guangdong, Peoples R China.
   [Jiang, Chuntao] Tsinghua Univ, Dept Comp Sci & Technol, Beijing 100084, Peoples R China.
   [Guan, Xin] Guangzhou Xinhua Univ, Dongguan 523133, Guangdong, Peoples R China.
   [Zhu, Junfan] Guangdong Coll Finance & Commerce, Financial Investment Coll, Qingyuan 511500, Guangdong, Peoples R China.
   [Wang, Zeyu] Guangzhou Univ, Sch Publ Adm, Guangzhou 510006, Guangdong, Peoples R China.
   [Song, Feifei] Hubei Univ Econ, Sch Finance & Publ Adm, Wuhan 430205, Hubei, Peoples R China.
   [Zhao, Changheng] Lanzhou Univ, Sch Econ, Lanzhou 730000, Gansu, Peoples R China.
C3 Foshan University; Tsinghua University; Guangzhou University; Hubei
   University of Economics; Lanzhou University
RP Wang, ZY (corresponding author), Guangzhou Univ, Sch Publ Adm, Guangzhou 510006, Guangdong, Peoples R China.
EM Theowang@gzhu.edu.cn
RI Wang, Zeyu/HSG-5198-2023; GUAN, XIN/JFL-1115-2023
OI GUAN, XIN/0009-0001-8518-4560
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NR 26
TC 3
Z9 3
U1 15
U2 64
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2543-1536
EI 2542-6605
J9 INTERNET THINGS-NETH
JI Internet Things
PD OCT
PY 2023
VL 23
AR 100810
DI 10.1016/j.iot.2023.100810
EA JUN 2023
PG 13
WC Computer Science, Information Systems; Engineering, Electrical &
   Electronic; Telecommunications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering; Telecommunications
GA Q2PJ8
UT WOS:001055984500001
DA 2025-04-22
ER

PT J
AU Jiang, NN
   Jiang, W
AF Jiang, Nana
   Jiang, Wei
TI How does regional integration policy affect urban resilience? Evidence
   from urban agglomeration in China
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Review
DE Regional integration; Urban agglomeration plans; Industrial
   agglomeration; Urban innovation; Urban resilience
AB Urban agglomerations are seen as a new spatial pattern to address the problems encountered in urban development, with significant practical implications for enhancing the carrying capacity, adaptability to external environmental changes, and disaster resistance of urban systems. However, there is a scarcity of literature investigating the impact of urban agglomeration development on urban resilience. Exploiting the quasi-natural experiment of urban agglomeration plans in China, this study investigates the impact of regional integration policies (RIPs) on urban resilience across four dimensions: economic, social, ecological, and infrastructure. Our results indicate that: (1) RIPs have significantly improved urban resilience by 8.6%, as verified by various tests. (2) RIPs can improve economic resilience remarkably without any obvious effect on social and infrastructure resilience and even have a negative affect on ecological resilience. (3) Mechanism analysis indicates that RIPs enhance urban resilience by accelerating diversified agglomeration and specialized agglomeration, as well as promoting urban innovation. (4) Heterogeneity analysis shows that the policy-driven effect is more pronounced in core cities, non-resource-based cities, and cities with a high level of innovation. The aforementioned findings hold valuable implications in promoting simultaneous enhancement of urban agglomerations and urban resilience.
C1 [Jiang, Nana] Shandong Univ, Sch Econ, Jinan 250100, Peoples R China.
   [Jiang, Wei] Ocean Univ China, Sch Econ, Qingdao 266100, Peoples R China.
C3 Shandong University; Ocean University of China
RP Jiang, NN (corresponding author), Shandong Univ, Sch Econ, Jinan 250100, Peoples R China.; Jiang, W (corresponding author), Ocean Univ China, Sch Econ, Qingdao 266100, Peoples R China.
EM jiangnanasd1995@163.com; 17863811281@163.com
RI Jiang, Wei/JUV-3486-2023
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NR 84
TC 41
Z9 41
U1 106
U2 234
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 0195-9255
EI 1873-6432
J9 ENVIRON IMPACT ASSES
JI Environ. Impact Assess. Rev.
PD JAN
PY 2024
VL 104
AR 107298
DI 10.1016/j.eiar.2023.107298
EA OCT 2023
PG 15
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA ET0I7
UT WOS:001141055900001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Ma, XF
   Chen, XH
   Du, Y
   Zhu, X
   Dai, Y
   Li, X
   Zhang, R
   Wang, Y
AF Ma, Xuefei
   Chen, Xiaohong
   Du, Yue
   Zhu, Xuan
   Dai, Yue
   Li, Xin
   Zhang, Rui
   Wang, Ying
TI Evaluation of Urban Spatial Resilience and Its Influencing Factors: Case
   Study of the Harbin-Changchun Urban Agglomeration in China
SO SUSTAINABILITY
LA English
DT Article
DE scale-intensity-morphology-function-benefit; urban spatial resilience;
   spatio-temporal differentiation; influence factor; Harbin-Changchun
   urban agglomeration
ID GREEN INFRASTRUCTURE
AB This study constructs a framework for evaluating urban spatial resilience based on five dimensions: scale, intensity, morphology, function, and benefit. Likewise, it empirically analyzes the spatial differences and influencing factors of urban spatial resilience in the Harbin-Changchun urban agglomeration from 2000 to 2020. Overall, the spatial resilience of the Harbin-Changchun urban agglomeration declined from 2000 to 2019. In addition, its ability to resist external disturbances weakened. The five dimensions of spatial resilience declined. However, urban spatial morphological resilience slightly increased. The spatial diversity of the Harbin-Changchun urban agglomeration is obvious, implying that the spatial resilience of cities in the central region, mainly in Suihua and Songyuan, is higher than in peripheral areas of the urban agglomeration, mostly in the Yanbian Korean Autonomous Prefecture, Siping, and Qiqihar. The period between 2000 and 2019 was dominated by cities with fluctuating spatial resilience. Furthermore, urban spatial resilience is influenced by a combination of factors, with economic support being the primary one. The selection of the urban spatial resilience research index system in this study is more spatially oriented and more accurately reflects the urban spatial resilience situation, which, in turn, provides a new planning perspective for urban planning in China.
C1 [Ma, Xuefei; Chen, Xiaohong; Du, Yue; Zhu, Xuan; Dai, Yue; Li, Xin; Zhang, Rui; Wang, Ying] Harbin Normal Univ, Coll Geog Sci, Harbin 150025, Peoples R China.
C3 Harbin Normal University
RP Chen, XH; Wang, Y (corresponding author), Harbin Normal Univ, Coll Geog Sci, Harbin 150025, Peoples R China.
EM chenxh440@163.com; diliwangying@163.com
RI du, yue/LDE-7701-2024; wang, ying/GQY-5077-2022
FU Natural Science Foundation of Heilongjiang Province [LH2019D008]; Youth
   Fund for Humanities and Social Sciences of the Ministry of Education
   [19YJC630177]; Graduate innovation project of Harbin Normal University
   [HSDSSCX2021-101]; Innovative Youth Talent Cultivation Plan of
   Heilongjiang Provincial Universities [UNPYSCT-2018194]; Human
   Civilization and Social Science Supportive Program for Excellent Young
   Scholars of Harbin Normal University [SYQ2014-06]
FX FundingThis research was funded by the Natural Science Foundation of
   Heilongjiang Province (LH2019D008), Youth Fund for Humanities and Social
   Sciences of the Ministry of Education (19YJC630177), Graduate innovation
   project of Harbin Normal University (HSDSSCX2021-101), Innovative Youth
   Talent Cultivation Plan of Heilongjiang Provincial Universities
   (UNPYSCT-2018194), Human Civilization and Social Science Supportive
   Program for Excellent Young Scholars of Harbin Normal University
   (SYQ2014-06).
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NR 47
TC 16
Z9 17
U1 18
U2 173
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2022
VL 14
IS 5
AR 2899
DI 10.3390/su14052899
PG 17
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA ZS8YX
UT WOS:000768746700001
OA gold
DA 2025-04-22
ER

PT J
AU Marega, G
   Drake, J
   Meyer, DD
AF Marega, Gabrielle
   Drake, Jennifer
   Meyer, David D.
TI Climate-Resilient Sanitary Sewers through Minimized Inflow
SO JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT
LA English
DT Article
ID WATER MANAGEMENT; URBAN; STRATEGIES; OVERFLOWS; IMPACTS; RIVER
AB Expanding sanitary sewer networks is vital for meeting the Sustainable Development Goals (SDGs) for urban areas. Uncertain future design conditions threaten this infrastructure expansion; notably, climate change has been described as the biggest threat to achieving the SDGs. However, the literature on how climate change can affect sanitation is sparse, especially in low- and middle-income countries, where infrastructure is most needed. We created a simple hydraulic model that quantitatively examines how the uncertainty-induced threats related to urbanization, stormwater inflow, and climate change might affect designed sanitary sewers. Our sanitary sewer model allows a designer or operator to estimate how urban development (e.g., population growth, water consumption, and expansion of impervious areas), stormwater infow, or changing rainfall patterns (e.g., climate change scenarios) would affect the performance of a sanitary sewer network. We identified that the fraction of stormwater inflow entering the sanitary sewers is the most significant threat to urban sewers. Applying the model to three case studies in Brazil revealed that the fraction of stormwater inflow in sanitary sewers is at least 1.8 times more influential than the other considered uncertainties. Stormwater inflow collected in the sanitary system leaves the network vulnerable to extreme rainfall events, consequently leaving the design guidelines vulnerable to climate change, which may compromise their ability to achieve the SDGs. Our model quantitatively demonstrates the essential role that minimizing inflow must play in ensuring climate resilient sanitation and in maximizing the utilization of sanitary sewers.
   Safely managing human waste is critical to the health and well-being of humans, especially in cities. Investments in resilient sanitation infrastructure can generate a significant return on investment in health-related benefits. However, if not accounted for, climate change effects can compromise the ability to provide safe sanitation. While 3.5 billion people still need sanitation infrastructure today, methods of expanding sewer systems amid climate change are unclear. In this paper, we provided a simple model that gives a designer or operator insights into the implications of how various sources of uncertainty (urbanization, stormwater inflow, and climate change) can affect the performance of sanitary sewers. Applying the proposed model to three regional capital cities in Brazil, we demonstrated that the biggest threat to urban sewers, even compared to urbanization and climate change, is the fraction of stormwater entering a sanitary sewer. When building or expanding sanitary sewers, inaccurate estimates of how much stormwater will enter the sanitary system can lead to sewage overflow, which might result in health, environmental, and economic hazards. Minimizing the fraction of stormwater that enters the sanitary system would increase the resilience of the sewer network against extreme rainfall events that would increase due to climate change.
C1 [Marega, Gabrielle; Drake, Jennifer; Meyer, David D.] Univ Toronto, Dept Civil & Mineral Engn, Toronto, ON M5S 1A4, Canada.
   [Drake, Jennifer] Carleton Univ, Dept Civil & Environm Engn, Ottawa, ON K1S 5B6, Canada.
C3 University of Toronto; Carleton University
RP Meyer, DD (corresponding author), Univ Toronto, Dept Civil & Mineral Engn, Toronto, ON M5S 1A4, Canada.
EM gabrielle.marega@mail.utoronto.ca; jenniferdrake@cunet.carleton.ca;
   david.meyer@utoronto.ca
RI Drake, Jennifer/AFO-9374-2022
OI Meyer, David/0000-0003-0979-118X; Migliato Marega,
   Gabrielle/0009-0002-0406-5306
FU Natural Science and Engineering Research Council of Canada (NSERC)
   [RGPIN-2019-04969]; Government of Canada's New Frontiers in Research
   Fund (NFRF) [NFRFE-2018-01627]; University of Toronto's Centre for
   Global Engineering
FX Support for D. Meyer and G. Marega was provided in part by the Natural
   Science and Engineering Research Council of Canada (NSERC;
   RGPIN-2019-04969), the Government of Canada's New Frontiers in Research
   Fund (NFRF; NFRFE-2018-01627), and the University of Toronto's Centre
   for Global Engineering.
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NR 59
TC 0
Z9 0
U1 3
U2 3
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 0733-9496
EI 1943-5452
J9 J WATER RES PLAN MAN
JI J. Water Resour. Plan. Manage.-ASCE
PD NOV 1
PY 2024
VL 150
IS 11
AR 04024046
DI 10.1061/JWRMD5.WRENG-6411
PG 11
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA G0U1U
UT WOS:001313864500002
DA 2025-04-22
ER

PT J
AU Sharifi, A
   Allam, Z
   Bibri, SE
   Khavarian-Garmsir, AR
AF Sharifi, Ayyoob
   Allam, Zaheer
   Bibri, Simon Elias
   Khavarian-Garmsir, Amir Reza
TI Smart cities and sustainable development goals (SDGs): A systematic
   literature review of co-benefits and trade-offs
SO CITIES
LA English
DT Review
DE Smart city; Sustainable development goals; Urban resilience;
   Co-benefits; Trade-offs; Governance
ID CITY; PLATFORM
AB Despite the wealth of research on smart cities, there is a lack of studies examining interlinkages between smart cities and Sustainable Development Goals (SDGs). In other words, there is limited research on how implementing smart city solutions can lead to co-benefits and/or trade-offs for achieving SDGs. This systematic literature review was conducted to fill this gap. Results show that responsible development/implementation of smart city solutions and technologies could contribute to the progress toward SDGs. The literature is mainly focused on SDG 11 (Sustainable Cities and Communities), SDG 12 (Responsible Consumption and Production), SDG 7 (Affordable and Clean Energy), and SDG 6 (Clean Water and Sanitation). More work on other SDGs is needed. There is a bias toward reporting the benefits of smart cities. These include accelerating economic growth, improving efficiency, strengthening innovation, and raising citizen awareness. These benefits indicate that smart cities could catalyze the transition to sustainable development and address climate change challenges. However, this requires addressing trade-offs related to issues such as privacy and cyber security, costs of infrastructure upgrading, rebound effects associated with efficiency improvements, biased decision-making, reproduction of social biases, digital divide and lack of skills, misuse of AI, and limited legal setup. This review elaborates on these trade-offs and offers solutions to minimize them. Results show that the COVID-19 pandemic has increased attention to the interactions between smart cities and the SDGs, particularly those related to health and climate action. However, it has also cemented many new unethical practices. This review highlights governance/policy challenges that should be addressed to ensure smart cities can better contribute to the SDGs. It concludes that multi-scale and transparent governance mechanisms and regulatory frameworks are crucial for ensuring that smart city solutions support the transition toward sustainable and resilient cities.
C1 [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Lebanese Amer Univ, Sch Architecture & Design, Beirut, Lebanon.
   [Allam, Zaheer] Univ Paris 1 Pantheon Sorbonne, IAE Paris Sorbonne Business Sch, Chaire Entrepreneuriat Terr Innovat ETI, Paris, France.
   [Allam, Zaheer] Curtin Univ, Charles Telfair Campus, Moka, Mauritius.
   [Bibri, Simon Elias] Swiss Fed Inst Technol Lausanne EPFL, Inst Comp & Commun Sci IINFCOM, Sch Architecture Civil & Environm Engn ENAC, Media & Design Lab LDM, Lausanne, Switzerland.
   [Khavarian-Garmsir, Amir Reza] Univ Isfahan, Fac Geog Sci & Planning, Dept Geog & Urban Planning, Esfahan, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-3-1 Kagamiyama, Higashihiroshima, Hiroshima 7398530, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-3-1 Kagamiyama, Higashihiroshima, Hiroshima 7398530, Japan.
C3 Hiroshima University; Hiroshima University; Lebanese American
   University; Swiss Federal Institutes of Technology Domain; Ecole
   Polytechnique Federale de Lausanne; University of Isfahan; Hiroshima
   University; Hiroshima University
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, 1-3-1 Kagamiyama, Higashihiroshima, Hiroshima 7398530, Japan.; Sharifi, A (corresponding author), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-3-1 Kagamiyama, Higashihiroshima, Hiroshima 7398530, Japan.
EM sharifi@hiroshima-u.ac.jp
RI Khavarian-Garmsir, Amir/ABF-2234-2020; Sharifi, Ayyoob/M-7584-2013
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NR 150
TC 77
Z9 77
U1 195
U2 312
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD MAR
PY 2024
VL 146
AR 104659
DI 10.1016/j.cities.2023.104659
EA DEC 2023
PG 19
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA FK2F9
UT WOS:001145596600001
OA hybrid
HC Y
HP Y
DA 2025-04-22
ER

PT J
AU He, XN
   Lin, M
   Chen, TL
   Liu, BW
   Tseng, PC
   Cao, WZ
   Chiang, PC
AF He, Xiaoni
   Lin, Merrisa
   Chen, Tse-Lun
   Liu, Bowei
   Tseng, Po-Chih
   Cao, Wenzhi
   Chiang, Pen-Chi
TI Implementation Plan for Low-carbon Resilient City towards Sustainable
   Development Goals: Challenges and Perspectives
SO AEROSOL AND AIR QUALITY RESEARCH
LA English
DT Article
DE Low-carbon resilient city; Sustainable Development Goals (SDGs); Climate
   change
ID COMMUNITY RESILIENCE; LAND-USE; ADAPTIVE GOVERNANCE; CLIMATE-CHANGE;
   FRAMEWORK; POLLUTION; CITIES; STRATEGIES; EMISSIONS; AWARENESS
AB Mitigation and adaptation are two climate approaches for reducing risks and preparing for hazards caused by the climate change. The development of low-carbon resilient cities must integrates mitigation and adaptation, which has great potential in decarbonization and natural disaster prevention However, limited studies have focused on systematizing the low-carbon resilience approach. To address this problem, this study aims to develop an implementation plan of low-carbon resilient cities. A theoretical framework is designed to analyze integrated strategies and key performance indicators for low-carbon resilient cities. Two related schemes, the "SIEGE" scheme and "5P" scheme, are provided to assist in the planning and governance. Challenges for implementing a low-carbon resilience approach are discussed from institutional, regulatory, financial, technical and communication perspectives. Guided by the theoretical frameworks and practical strategies, cities will be able to move towards social equality, energy-efficiency, hazards preparedness, governing-effectiveness and innovation.
C1 [He, Xiaoni] Univ Melbourne, Grad Sch Humanities & Social Sci, Parkville, Vic 3052, Australia.
   [Lin, Merrisa] Chinese Univ Hong Kong, Fac Social Sci, Hong Kong, Peoples R China.
   [Chen, Tse-Lun; Tseng, Po-Chih; Chiang, Pen-Chi] Natl Taiwan Univ, Grad Inst Environm Engn, Taipei 10617, Taiwan.
   [Liu, Bowei] McMaster Univ, W Booth Sch Engn Practice & Technol, Hamilton, ON L8S 4L8, Canada.
   [Cao, Wenzhi] Xiamen Univ, Coll Environm & Ecol, Minist Educ Coastal Wetland Ecosyst, Key Lab, Xiamen 361102, Peoples R China.
C3 University of Melbourne; Chinese University of Hong Kong; National
   Taiwan University; McMaster University; Xiamen University
RP Chiang, PC (corresponding author), Natl Taiwan Univ, Grad Inst Environm Engn, Taipei 10617, Taiwan.
EM pcchiang@ntu.edu.tw
RI Cao, WQ/G-2994-2010; liu, bowei/HZK-8131-2023; Lin,
   Merrisa/JXN-0925-2024; Chen, Tse-Lun/GQH-0971-2022
OI Chen, Tse-Lun/0000-0001-9092-9064; Lin, Merrisa/0000-0002-6399-778X;
   Cao, Wenzhi/0000-0002-5603-3720
FU Ministry of Science and Technology (MOST) of Taiwan [MOST
   107-2221-E-002-009-MY3, MOST 108-2911-I-002-562]
FX High appreciation goes to the Ministry of Science and Technology (MOST)
   of Taiwan under Grant Number MOST 107-2221-E-002-009-MY3 and MOST
   108-2911-I-002-562 for the financial support.
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Z9 14
U1 28
U2 176
PU TAIWAN ASSOC AEROSOL RES-TAAR
PI TAICHUNG COUNTY
PA CHAOYANG UNIV TECH, DEPT ENV ENG & MGMT, PROD CTR AAQR, NO 168, JIFONG E
   RD, WUFONG TOWNSHIP, TAICHUNG COUNTY, 41349, TAIWAN
SN 1680-8584
EI 2071-1409
J9 AEROSOL AIR QUAL RES
JI Aerosol Air Qual. Res.
PD MAR
PY 2020
VL 20
IS 3
BP 444
EP 464
DI 10.4209/aaqr.2019.11.0568
PG 21
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA KS6CC
UT WOS:000518393800005
OA gold
DA 2025-04-22
ER

PT J
AU Zhang, JY
   Yang, XD
   Lu, DG
AF Zhang, Jiayu
   Yang, Xiaodong
   Lu, Dagang
TI Evaluation of Urban Resilience Based on Trio Spaces: An Empirical Study
   in Northeast China
SO BUILDINGS
LA English
DT Article
DE urban resilience; trio spaces; evaluation; Northeast China
ID SEISMIC RESILIENCE; FRAMEWORK; SYSTEMS; VULNERABILITY; URBANIZATION;
   ADAPTATION; CRISES; ERA
AB Realizing the building of urban resilience and improving urban resilience has become important contents of urban development. In view of this phenomenon, relying on the framework of trio spaces, which includes physical space, societal space, and cyberspace, the evaluation index system of urban resilience is established. The evaluation model of urban resilience is constructed by using CRITIC-entropy weight and the cloud evaluation method. Four sub-provincial cities in Northeast China, Harbin, Changchun, Shenyang, and Dalian, are selected as the analysis objects, and the resilience of each city is comprehensively evaluated and spatially evaluated. From the urban resilience comprehensive evaluation, this paper found the cities with the highest resilience levels in 2014, from 2015 to 2018, and from 2019 to 2020 are Dalian, Changchun, and Shenyang, respectively. The city with the lowest resilience level is Harbin. Although there are differences in resilience evaluation values of four cities, the resilience levels of these cities are all "qualified". From the urban resilience sub-space evaluation, this paper explored the shortcomings of the resilience of physical space, societal space, and cyberspace of each city through the comparison. Then, some suggestions about highlighting the enhancement of cyberspace resilience, emphasizing resilience-building balance, conducting resilience evaluation, and monitoring regularly, and local government policy support are proposed to help to promote urban resilience from the concept of trio spaces.
C1 [Zhang, Jiayu; Yang, Xiaodong; Lu, Dagang] Harbin Inst Technol, Sch Civil Engn, Harbin 150090, Peoples R China.
   [Zhang, Jiayu; Yang, Xiaodong; Lu, Dagang] Harbin Inst Technol, Minist Educ, Key Lab Struct Dynam Behav & Control, Harbin 150090, Peoples R China.
   [Zhang, Jiayu; Yang, Xiaodong; Lu, Dagang] Harbin Inst Technol, Key Lab Smart Prevent & Mitigat Civil Engn Disaste, Minist Ind & Informat Technol, Harbin 150090, Peoples R China.
C3 Harbin Institute of Technology; Harbin Institute of Technology; Harbin
   Institute of Technology
RP Yang, XD (corresponding author), Harbin Inst Technol, Sch Civil Engn, Harbin 150090, Peoples R China.; Yang, XD (corresponding author), Harbin Inst Technol, Minist Educ, Key Lab Struct Dynam Behav & Control, Harbin 150090, Peoples R China.; Yang, XD (corresponding author), Harbin Inst Technol, Key Lab Smart Prevent & Mitigat Civil Engn Disaste, Minist Ind & Informat Technol, Harbin 150090, Peoples R China.
EM zhangjiayu@hit.edu.cn; yangxd@hit.edu.cn; ludagang@hit.edu.cn
RI Zhang, Bo/JVD-9890-2024
OI Yang, Xiaodong/0000-0002-6974-0731
FU Natural Science Foundation of China [71974047]; Natural Science
   Foundation of Heilongjiang Province [LH2023G010]
FX This research was funded by the Natural Science Foundation of China
   (grant No. 71974047), Natural Science Foundation of Heilongjiang
   Province (grant No. LH2023G010).
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NR 66
TC 10
Z9 10
U1 30
U2 132
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD JUL
PY 2023
VL 13
IS 7
AR 1695
DI 10.3390/buildings13071695
PG 18
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA N2AM3
UT WOS:001035102400001
OA gold
DA 2025-04-22
ER

PT J
AU Chen, CK
   Xu, LL
   Zhao, DY
   Xu, T
   Lei, P
AF Chen, Changkun
   Xu, Lili
   Zhao, Dongyue
   Xu, Tong
   Lei, Peng
TI A new model for describing the urban resilience considering
   adaptability, resistance and recovery
SO SAFETY SCIENCE
LA English
DT Article; Proceedings Paper
CT Asia Pacific Symposium on Safety (APSS)
CY SEP 19-21, 2019
CL Dalian, PEOPLES R CHINA
DE Urban resilience; Resilience model; Adaptability; Resistance; Recovery
ID COMMUNITY RESILIENCE; DISASTER RESILIENCE; SYSTEM RESILIENCE; FRAMEWORK;
   CHENNAI
AB Due to the greater emphasis on cities' preparatory and recover ability for disaster, urban resilience is widely concerned, which is different from the traditional management mode of natural disaster and provides a new theoretical framework for urban security governance. In this paper, considering adaptability, resistance and recovery as the main characteristic factor of urban resilience, an urban resilience model was developed. This model could be used to simulate the resilience of a city under different disaster scenarios. Valid information was collected from Taiwan of China during the Morakot, and the urban resilience model was tested by the practical data, and then the resilience in Taiwan was analyzed by the constructed model. The results show that the model could reflect the resilience change of cities during disasters to some extent. Further, according to the disaster characteristics, five disaster scenarios were set to analyze various resilience characteristics. In addition, the critical parameters of the model were studied. We found that the greater intensity of disaster damage, the more serious damage of urban system function, and the earlier peak time of disaster damage intensity appears, the faster damage rate of urban system function will be. Furthermore, the larger coefficient of external disaster relief capability, the lower loss of urban system function and the better recovery capability. The higher coefficient of disaster experience, the richer the disaster response experience, the more perfect urban infrastructure of disaster response, and the smaller loss of urban system function. Based on our results, we analyze the characteristics of urban resilience and provide some optimal suggestions to efficiently improve urban resilience.
C1 [Chen, Changkun; Xu, Lili; Zhao, Dongyue; Xu, Tong; Lei, Peng] Cent South Univ, Inst Disaster Prevent Sci & Safety Technol, Changsha 410075, Hunan, Peoples R China.
C3 Central South University
RP Chen, CK; Zhao, DY (corresponding author), Cent South Univ, 22th South Shaoshan Rd,Railway Campus, Changsha 410075, Hunan, Peoples R China.
EM cckchen@csu.edu.cn; dongyue@csu.edu.cn
RI Xu, Lili/GYJ-8139-2022; Lei, Peng/AEE-7532-2022
FU National Natural Science Foundation of China (NSFC) [71790613]; National
   Key Research and Development Project of China [2016YFC0802500]
FX This work is financially supported by the National Natural Science
   Foundation of China (NSFC) [grant numbers 71790613]; National Key
   Research and Development Project of China [grant numbers
   2016YFC0802500].
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NR 41
TC 86
Z9 90
U1 43
U2 452
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29a, 1043 NX AMSTERDAM, NETHERLANDS
SN 0925-7535
EI 1879-1042
J9 SAFETY SCI
JI Saf. Sci.
PD AUG
PY 2020
VL 128
AR 104756
DI 10.1016/j.ssci.2020.104756
PG 9
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI); Conference Proceedings Citation Index - Science (CPCI-S)
SC Engineering; Operations Research & Management Science
GA LL9UL
UT WOS:000531901000020
DA 2025-04-22
ER

PT J
AU Wang, TT
   Yao, CY
   Wei, Q
AF Wang, Tingting
   Yao, Cuiyou
   Wei, Qing
TI Resilience Assessment and Influencing Factors of Chinese Megacities
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; megacities; influencing factors; China
ID POPULATION; URBAN
AB Urban resilience is one of the crucial components of sustainable urban development, yet challenges to sustainable urban development are created by the dangers of uncertainty in the context of global urbanization. Based on the perspective of the economic, social, ecological, infrastructural, and institutional components, this research constructs an indicator system to assess urban resilience. Using seven megacities in China as the research area, the evolution of the resilience level of China's megacities is investigated, and its influencing factors are examined. The findings demonstrate an upward trend from 2010 to 2021 in the resilience of China's seven megacities. Furthermore, the rising trend in the contribution of urban institutional resilience to overall resilience is most evident during the 2010-2021 period. Urban ecological resilience's contribution to overall resilience declines most noticeably between 2010 and 2021. The contribution of each megacity subsystem resilience to overall resilience varies in different cities. Industry structure, market capacity, and urban maintenance positively affect the overall resilience of cities. Additionally, this work offers a strong, practical theoretical foundation for sustainable urban development. The research contents and findings of this study can support the decision-making procedures in the development of megacities.
C1 [Wang, Tingting; Yao, Cuiyou; Wei, Qing] Capital Univ Econ & Business, Sch Management Engn, Beijing 100070, Peoples R China.
   [Wei, Qing] Henan Univ Econ & Law, Sch Comp & Informat Engn, Zhengzhou 450011, Peoples R China.
C3 Capital University of Economics & Business; Henan University of
   Economics & Law
RP Yao, CY (corresponding author), Capital Univ Econ & Business, Sch Management Engn, Beijing 100070, Peoples R China.
EM 15222705896@163.com; ycy@cued.edu.cn; weiqing@cueb.edu.cn
FU Beijing Education Science Planning Project: Study on Economic, Social
   and Demographic Characteristics and Education Supply Structure of
   Capital [BGEA22003]
FX This work was supported by the Beijing Education Science Planning
   Project: Study on Economic, Social and Demographic Characteristics and
   Education Supply Structure of Capital in 2030 [Priority focus topics:
   BGEA22003].
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NR 54
TC 2
Z9 2
U1 38
U2 147
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2023
VL 15
IS 8
AR 6770
DI 10.3390/su15086770
PG 22
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA F0PZ3
UT WOS:000979464900001
OA gold
DA 2025-04-22
ER

PT J
AU Liu, LN
   Lei, YL
   Zhuang, MH
   Ding, S
AF Liu, Lingna
   Lei, Yalin
   Zhuang, Minghao
   Ding, Shuang
TI The impact of climate change on urban resilience in the
   Beijing-Tianjin-Hebei region
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Climate change; Urban resilience; Beijing-Tianjin-Hebei region;
   Temperature
ID ADAPTIVE CAPACITY; ADAPTATION; PERSPECTIVE; ECONOMY; CITIES; MODEL
AB The increasing uncertainty related to disaster risk under climate change brings about new challenges for sustainable urban management. The emergence of the urban resilience concept can improve the ability and extent to which cities can absorb and resolve risks, providing insight into the sustainable development of cities and regions. Yet, to date, the impact of climate change on regional urban resilience is not well understood. 'this paper measures the changes in urban resilience of the Beijing-Tianjin-Hebei (BTH) region from 1998 to 2019, and then explores the contribution of climate influencing factors such as temperature, precipitation and wind speed to urban resilience using econometric models. Results demonstrate the following: (1) Urban resilience shows a large spatial heterogeneity in the BTH region. Overall, Beijing and Tianjin have better and more stable resilience than Hebei Province. (2) Regarding the static impact of climate change on urban resilience, a 1 unit increase in Ln temperature and Ln precipitation will respectively increase Ln resilience by 1.01 units and 0.54 units, indicating that it has a significant positive impact on urban resilience. Each 1 unit increase in Ln wind speed will decrease resilience by 1.65 units, representing a significant negative effect. (3) Regarding the dynamic impact of climate change on urban resilience, a positive 1 unit impact of climatic factors indicates that an increase in temperature will first increase and then decrease urban resilience, and an increase in precipitation and wind speed will initially support improvement in urban resilience. Based on these findings, this article offers policy recommendations to improve urban resilience.
C1 [Liu, Lingna; Lei, Yalin] China Univ Geosci, Sch Econ & Management, Beijing, Peoples R China.
   [Lei, Yalin] Beijing Univ Chem Technol, Beijing, Peoples R China.
   [Liu, Lingna; Lei, Yalin] Minist Land & Resources, Key Lab Carrying Capac Assessment Resource & Envi, Beijing, Peoples R China.
   [Liu, Lingna] Int Inst Appl Syst Anal, Risk & Resilience Program, Laxenburg, Austria.
   [Zhuang, Minghao] China Agr Univ, Natl Acad Agr Green Dev, Coll Resources & Environm Sci, Key Lab Plant Soil Interact,Minist Educ, Beijing 100193, Peoples R China.
   [Ding, Shuang] China Natl Inst Standardizat, Beijing, Peoples R China.
C3 China University of Geosciences; Beijing University of Chemical
   Technology; Ministry of Natural Resources of the People's Republic of
   China; International Institute for Applied Systems Analysis (IIASA);
   China Agricultural University; China National Institute of
   Standardization
RP Lei, YL (corresponding author), China Univ Geosci, Rm 206,4 Bldg, Beijing 100083, Peoples R China.
EM leiyalin@cugb.edu.cn
RI LIU, LINGNA/IUO-0244-2023
FU China Postdoctoral Science Foundation [2021M692999]; National Major
   Science and Technology Projects of China [2016ZX05016005-003]
FX The authors are grateful for financial support from China Postdoctoral
   Science Foundation under Grant No. 2021M692999, National Major Science
   and Technology Projects of China under Grant No. 2016ZX05016005-003.
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NR 49
TC 60
Z9 63
U1 39
U2 276
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0048-9697
EI 1879-1026
J9 SCI TOTAL ENVIRON
JI Sci. Total Environ.
PD JUN 25
PY 2022
VL 827
AR 154157
DI 10.1016/j.scitotenv.2022.154157
EA MAR 2022
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 1T1JJ
UT WOS:000804493700002
PM 35240175
DA 2025-04-22
ER

PT J
AU Chen, XS
   Quan, RS
AF Chen, Xiansheng
   Quan, Ruisong
TI A spatiotemporal analysis of urban resilience to the COVID-19 pandemic
   in the Yangtze River Delta
SO NATURAL HAZARDS
LA English
DT Article
DE COVID-19; Urban resilience; Temporal and spatial differentiation;
   Yangtze River Delta; China
ID MENTAL TOUGHNESS; CLIMATE-CHANGE; INFRASTRUCTURE; FRAMEWORK; DISASTER;
   SYSTEMS; ASSOCIATION; EFFICIENCY; RESOURCES; POLICY
AB The COVID-19 pandemic has severely affected the normal socioeconomic operation of countries worldwide, causing major economic losses and deaths and posing great challenges to the sustainable development of cities that play a leading role in national socioeconomic development. The strength of urban resilience determines the speed of urban social and economic recovery. This paper constructed a comprehensive evaluation index system for urban resilience under the COVID-19 pandemic scenario considering four dimensions-economy, ecology, infrastructure, and social systems-conducted a quantitative evaluation of urban resilience in the Yangtze River Delta of China, revealed its spatiotemporal differences and change trends, and proposed targeted strategies for improving urban resilience. The results show that (1) the Yangtze River Delta urban resilience system is growing stronger every year, but there are significant differences in the level of urban resilience, its spatial distribution and regional urban resilience. (2) In the Yangtze River Delta urban agglomeration, there is less distribution of areas with a higher resilience index, while those with high and medium resilience levels are more distributed. However, the resilience of most cities is low. (3) The resilience index of eastern coastal cities is significantly higher, and the resilience of cities under the COVID-19 scenario presents obvious east-west differentiation. (4) When constructing urban resilience, the individual situation of cities should be taken into account, measures adjusted according to local conditions, reasonable lessons drawn from effective international urban resilience construction, and reasonable planning policies formulated; it is important to give play to the relationship between the whole and the parts of resilience to achieve unified and coordinated development.
C1 [Chen, Xiansheng; Quan, Ruisong] East China Univ Polit Sci & Law, Sch Polit Sci & Publ Adm, 555 Longyuan Rd, Shanghai 201600, Peoples R China.
C3 East China University Political Science & Law
RP Quan, RS (corresponding author), East China Univ Polit Sci & Law, Sch Polit Sci & Publ Adm, 555 Longyuan Rd, Shanghai 201600, Peoples R China.
EM quanrs@yeah.net
RI Chen, Xiansheng/GWU-5160-2022
OI Chen, Xiansheng/0000-0002-5661-2407; quan, rui song/0000-0002-5731-3206
FU National Natural Science Foundation of China [41401600]
FX This research was funded by the National Natural Science Foundation of
   China (Grant Number: 41401600).
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NR 61
TC 59
Z9 60
U1 18
U2 305
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD MAR
PY 2021
VL 106
IS 1
BP 829
EP 854
DI 10.1007/s11069-020-04493-9
EA JAN 2021
PG 26
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA QK9MX
UT WOS:000604222800006
PM 33424119
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU You, XT
   Sun, YA
   Liu, JW
AF You, Xiaotong
   Sun, Yanan
   Liu, Jiawei
TI Evolution and analysis of urban resilience and its influencing factors:
   a case study of Jiangsu Province, China
SO NATURAL HAZARDS
LA English
DT Article
DE Jiangsu province; Spatial distribution; Spatial Durbin model; Urban
   resilience
ID SYSTEMS
AB This research uses panel data of cities in Jiangsu from 2009 to 2018 to construct a resilience framework that measures the level of urban resilience. A combination of the entropy method, Theil index, Moran sI, and the Spatial Durbin Model (SDM) is used to explore regional resilience development differences, the spatial correlation characteristics of urban resilience, and its influencing factors. The study finds that: (1) The spatial heterogeneity of regional resilience development is significant, as the overall level of resilience presents a spatial distribution pattern of descending from southern Jiangsu to central Jiangsu and to northern Jiangsu. (2) The total Theil index shows a wave-like downward trend during the study period. The differences between southern Jiangsu, central Jiangsu, and northern Jiangsu make up the main reason for the overall difference of urban resilience in Jiangsu Province. Among the three regions, the gap in resilience development level within southern Jiangsu is the largest. (3) There is a clear positive spatial correlation between urban resilience in the province and an obvious agglomeration trend of urban resilience levels. Among all subsystems, urban ecological resilience is the weakest and needs to be further improved. (4) Lastly, among the five factors affecting urban resilience, general public fiscal expenditure/GDP, which characterizes government factors, has the largest positive impact on urban resilience, while foreign trade has a negative impact. In the following studies, the theme of urban resilience should be constantly deepened, and more extensive data monitoring should be carried out for the urban system to improve the diversity of data sources, so as to assess urban resilience more accurately.
C1 [You, Xiaotong; Sun, Yanan; Liu, Jiawei] Nantong Univ, Sch Econ & Management, 9 Seyuan Rd, Nantong 226019, Jiangsu, Peoples R China.
C3 Nantong University
RP Liu, JW (corresponding author), Nantong Univ, Sch Econ & Management, 9 Seyuan Rd, Nantong 226019, Jiangsu, Peoples R China.
EM 2120514160@qq.com; sun.yn@ntu.edu.cn; 18361136675@163.com
RI Liu, Jiawei/HHN-2103-2022
OI Liu, Jiawei/0000-0002-9150-0304; Sun, Yanan/0000-0003-4940-3743
FU Major Projects of Philosophy and Social Science Research of Jiangsu
   Educational Committee [2020SJZDA055]; Social Science Foundation of
   Jiangsu Province [20EYD004]; Postgraduate Innovation Training Program of
   Jiangsu Province [KYCX20_2806]
FX This research was funded by Major Projects of Philosophy and Social
   Science Research of Jiangsu Educational Committee (No. 2020SJZDA055),
   Social Science Foundation of Jiangsu Province (No. 20EYD004), and
   Postgraduate Innovation Training Program of Jiangsu Province (No.
   KYCX20_2806).
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NR 49
TC 33
Z9 33
U1 28
U2 221
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD SEP
PY 2022
VL 113
IS 3
BP 1751
EP 1782
DI 10.1007/s11069-022-05368-x
EA MAY 2022
PG 32
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 4P7DM
UT WOS:000790611000001
PM 35528388
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Abduljaleel, Y
   Chikabvumbwa, SR
   Ul Haq, F
AF Abduljaleel, Yasir
   Chikabvumbwa, Sylvester Richard
   Ul Haq, Faraz
TI Assessing the efficacy of Permeable Interlocking Concrete Pavers (PICP)
   in managing stormwater runoff under climate change and land use
   scenarios
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Climate Change; Land Use; PICP; Urban Planning; Stormwater runoff
ID URBANIZATION; REDUCTION
AB The study examines Permeable Interlocking Concrete Pavers (PICP) systems in urban and suburban areas facing intensified stormwater challenges due to climate change and evolving land use patterns. It investigates various factors affecting PICP performance, including soil, topography, vegetation, and rainfall intensity, using advanced modeling techniques. The study's methodology integrates Personal Computer Storm Water Management Model (PCSWMM) model and Python scripting, utilizing historical and projected data to guide resilient PICP designs. Climate projections from 2030 to 2080 show a significant increase in stormwater runoff due to urbanization, emphasizing flood risk concerns. The findings indicated a substantial 43 % increase in runoff for the City of Renton-Cedar watershed in Washington from 2030 to 2069. Without PICP implementation, a notable 20.3 % surge in total runoff volume is anticipated. This highlights the crucial role of PICP and sustainable urban planning in mitigating urbanization's impact on hydrology. With PICP implementation, the results show that the total runoff may reduce to a range within 24 %-75 % for the three land use scenarios (15 %, 25 % and 35 %). The results also exhibited a significant (P < 0.05) and strong (R-2 > 0.8) direct relationship between clogging and PICP systems. Overall, the research underscores PICP systems' effectiveness in managing stormwater, emphasizing their importance in diverse urban settings, and advocating for green infrastructure adoption to enhance urban resilience amidst changing environmental dynamics.
C1 [Abduljaleel, Yasir] Washington State Univ, Dept Civil & Environm Engn, Richland, WA 99354 USA.
   [Chikabvumbwa, Sylvester Richard] Catholic Univ Malawi, Dept Geog & Environm Studies, Box 5452, Blantyre, Malawi.
   [Ul Haq, Faraz] Univ Memphis, Dept Civil Engn, Memphis, TN 38152 USA.
   [Ul Haq, Faraz] Univ Memphis, Ctr Appl Earth Sci & Engn Res, 1000 Wilder Tower,3675 Alumni Ave, Memphis, TN 38152 USA.
C3 Washington State University; University of Memphis; University of
   Memphis
RP Ul Haq, F (corresponding author), Univ Memphis, Ctr Appl Earth Sci & Engn Res, 1000 Wilder Tower,3675 Alumni Ave, Memphis, TN 38152 USA.
EM fuhaq@memphis.edu
RI Chikabvumbwa, Sylvester/ACT-9689-2022
OI Haq, Faraz Ul/0009-0005-9525-6125
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NR 40
TC 0
Z9 0
U1 11
U2 11
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0022-1694
EI 1879-2707
J9 J HYDROL
JI J. Hydrol.
PD JAN
PY 2025
VL 646
AR 132329
DI 10.1016/j.jhydrol.2024.132329
EA NOV 2024
PG 15
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA N0M8E
UT WOS:001361382600001
DA 2025-04-22
ER

PT J
AU Ma, F
   Wang, ZH
   Sun, QP
   Yuen, KF
   Zhang, YX
   Xue, HF
   Zhao, SM
AF Ma, Fei
   Wang, Zuohang
   Sun, Qipeng
   Yuen, Kum Fai
   Zhang, Yanxia
   Xue, Huifeng
   Zhao, Shumei
TI Spatial-Temporal Evolution of Urban Resilience and Its Influencing
   Factors: Evidence from the Guanzhong Plain Urban Agglomeration
SO SUSTAINABILITY
LA English
DT Article
DE urban agglomeration; urban resilience; extreme entropy method; grey
   correlation degree; spatial-temporal evolution
ID CLIMATE-CHANGE; COMMUNITY RESILIENCE; CITY; VULNERABILITY; SYSTEMS;
   ISSUES
AB Rapid urbanization places great pressure on the ecological environment and the carrying capacity of cities. Improving urban resilience has become an inherent requirement for the sustainable development of modern cities and urban agglomerations. This study constructed a comprehensive system to evaluate urban resilience from four perspectives: The ecological environment, economic level, social environment, and infrastructure services. As a case study, the extreme entropy method and panel data from about 16 cities from 2009 to 2016 were used to calculate resilience levels in the Guanzhong plain urban agglomeration (GPUA) in China. The spatial and temporal evolution of urban resilience characteristics in the GPUA were analyzed using ArcGIS. The influencing factors were further explored using a grey correlation analysis. The results showed that the urban resilience of GPUA experienced geographical differentiation in the "East-Central-Western" area and a "circle type" evolution process. Most urban resilience levels were low. The resilience of the infrastructure and the ecological environment significantly impacted the city and became its development weaknesses. Economic considerations have become one of the main factors influencing fluctuations in urban resilience. In summary, this study explored the differences in resilience in the GPUA and provided a reference for improving the urban resilience of other cities located in underdeveloped regions. The study also provided a useful theoretical basis for sustainable urban development.
C1 [Ma, Fei; Wang, Zuohang; Sun, Qipeng; Zhang, Yanxia; Xue, Huifeng; Zhao, Shumei] Changan Univ, Sch Econ & Management, Xian 710064, Peoples R China.
   [Yuen, Kum Fai] Nanyang Technol Univ, Sch Civil & Environm Engn, Singapore 639798, Singapore.
C3 Chang'an University; Nanyang Technological University
RP Wang, ZH (corresponding author), Changan Univ, Sch Econ & Management, Xian 710064, Peoples R China.
EM mafeixa@chd.edu.cn; 2019123027@chd.edu.cn; sunqip2003@163.com;
   kumfai.yuen@ntu.edu.sg; 2019123034@chd.edu.cn; 2019123030@chd.edu.cn;
   2019223017@chd.edu.cn
RI Ma（马飞）, Fei/J-9714-2019; Yuen, Kum/K-2994-2019; Wang,
   Zuohang/GYV-2199-2022; Yuen, Kum Fai/B-8244-2015
OI Yuen, Kum Fai/0000-0002-9199-6661
FU National Social Science Foundation of China [18BGL258]
FX This research was funded by the National Social Science Foundation of
   China, grant number [18BGL258].
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NR 59
TC 49
Z9 51
U1 26
U2 337
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2020
VL 12
IS 7
AR 2593
DI 10.3390/su12072593
PG 24
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA LL4WR
UT WOS:000531558100017
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Yang, HY
   Luo, QD
   Sun, XB
   Wang, Z
AF Yang, Haiyan
   Luo, Qingda
   Sun, Xiaobo
   Wang, Zhe
TI Comprehensive evaluation of urban waterlogging prevention resilience
   based on the fuzzy VIKOR method: a case study of the
   Beijing-Tianjin-Hebei urban agglomeration
SO ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
LA English
DT Article
DE Waterlogging; Resilience; Fuzzy VIKOR; Urban agglomeration
ID PERFORMANCE EVALUATION; SELECTION
AB The Beijing-Tianjin-Hebei urban agglomeration was used to construct a comprehensive evaluation index system for urban waterlogging prevention and control resilience from five aspects: social resilience, economic resilience, ecological resilience, infrastructure resilience, and institutional resilience. The fuzzy VIKOR method was used to evaluate urban waterlogging prevention and control resilience. The results were analyzed at temporal and spatial scales to reveal regional differences and constraints in urban waterlogging prevention toughness and efficiently locate vulnerable urban areas. The resilience level in most of the Beijing-Tianjin-Hebei region increased during 2015-2019, while that of Beijing, Tianjin, Qinhuangdao, and Handan slightly decreased, indicating that the capacity of these cities to manage waterlogging disasters needs strengthening. The spatial difference in urban waterlogging prevention toughness was significant: Beijing, Tianjin, Handan, Tangshan, Langfang, and Shijiazhuang showed medium and high levels of urban waterlogging prevention toughness; other cities showed low levels. How the expansion speed of the urban scale matches the construction speed of urban waterlogging prevention and control directly affects resilience at all levels. These results support urban waterlogging control and regional integration construction for Beijing-Tianjin-Hebei.
C1 [Yang, Haiyan; Luo, Qingda; Wang, Zhe] Beijing Univ Civil Engn & Architecture, SinoDutch R&D Ctr Future Wastewater Treatment Tec, Minist Educ, Key Lab Urban Stormwater Syst & Water Environm, Beijing 100044, Peoples R China.
   [Sun, Xiaobo] CAUPD Beijing Planning Design Consultants Co Ltd, Beijing 100044, Peoples R China.
C3 Beijing University of Civil Engineering & Architecture
RP Luo, QD (corresponding author), Beijing Univ Civil Engn & Architecture, SinoDutch R&D Ctr Future Wastewater Treatment Tec, Minist Educ, Key Lab Urban Stormwater Syst & Water Environm, Beijing 100044, Peoples R China.
EM 694034756@qq.com
FU National Key RD Plan of China [2021YFC3001400]; Fundamental Research
   Funds for Beijing University of Civil Engineering and Architecture
   [X20066]; BUCEA Post Graduate Innovation Project
FX This work was supported by National Key R&D Plan of China (Grant
   No.2021YFC3001400), the Fundamental Research Funds for Beijing
   University of Civil Engineering and Architecture, No. X20066, and BUCEA
   Post Graduate Innovation Project.
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TC 3
Z9 4
U1 36
U2 88
PU SPRINGER HEIDELBERG
PI HEIDELBERG
PA TIERGARTENSTRASSE 17, D-69121 HEIDELBERG, GERMANY
SN 0944-1344
EI 1614-7499
J9 ENVIRON SCI POLLUT R
JI Environ. Sci. Pollut. Res.
PD NOV
PY 2023
VL 30
IS 52
BP 112773
EP 112787
DI 10.1007/s11356-023-30326-w
EA OCT 2023
PG 15
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA FC2O3
UT WOS:001084745000007
PM 37840080
DA 2025-04-22
ER

PT J
AU Wang, L
AF Wang, Liang
TI Exploring a knowledge map for urban resilience to climate change
SO CITIES
LA English
DT Article
DE Urban resilience; Climate change; Knowledge map; Scientometric analysis;
   Knowledge body
ID FLOOD RISK-ASSESSMENT; COMMUNITY RESILIENCE; EXTREME-WEATHER;
   HEAT-ISLAND; CITIES; VULNERABILITY; ADAPTATION; CITY; DISASTER;
   MANAGEMENT
AB This study conducted a scientometric analysis of previous research on urban resilience to climate change from 1998 to 2021 through collaboration network, co-occurrence network, and co-citation network analyses. A total of 2819 articles were quantitatively analysed, and these articles visualised the academic communities, key research topics, and knowledge body of existing research. The results indicate that the academic communities of urban resilience to climate change consist of influential authors from the main academic institutions in the USA, England, China, Australia, and the Netherlands. The key research topics of urban resilience to climate change show evolutionary trends during different research periods. Furthermore, existing research on urban resilience to climate change is supported by 20 classical references with higher co-citation frequency, and the knowledge structure of urban resilience to climate change is divided into four significant co-citation clusters. Finally, three future research directions are predicted for the field of urban resilience to climate change: the comprehensive analysis of urban resilience to climate change, climate change vulnerability in urban systems, and multi-hazard coupling impacts on urban resilience. This study provides a comprehensive knowledge map of urban resilience to climate change to guide future academic collaborations and urban management practices.
C1 [Wang, Liang] Dalian Maritime Univ, Sch Maritime Econ & Management, 1 Linghai Rd, Dalian 116026, Peoples R China.
C3 Dalian Maritime University
RP Wang, L (corresponding author), Dalian Maritime Univ, Sch Maritime Econ & Management, 1 Linghai Rd, Dalian 116026, Peoples R China.
EM liangwang@dlmu.edu.cn
RI Wang, Liang/AAI-1031-2021
OI Wang, Liang/0000-0002-4063-6842
FU Humanities and Social Sciences Youth Foundation of Ministry of Education
   of China [22YJCZH172]; National Social Science Fund of China [18ZDA043];
   National Natural Science Foundation of China (NSFC) [72203029]; Natural
   Science Foundation of Liaoning Province [2021-BS-072]; Fundamental
   Research Funds of the Educational Department of Liaoning Province for
   the Colleges and Universities [LJKQR2021003]; Fundamental Research Funds
   for the Central Universities [3132022287]
FX This research was funded by the Humanities and Social Sciences Youth
   Foundation of Ministry of Education of China (No. 22YJCZH172). The work
   described in this paper was also supported by the National Social
   Science Fund of China (No. 18ZDA043), the National Natural Science
   Foundation of China (NSFC) (NO. 72203029), the Natural Science
   Foundation of Liaoning Province (No. 2021-BS-072), the Fundamental
   Research Funds of the Educational Department of Liaoning Province for
   the Colleges and Universities (No. LJKQR2021003), and the Fundamental
   Research Funds for the Central Universities (No. 3132022287).
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NR 151
TC 15
Z9 15
U1 42
U2 170
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2022
VL 131
DI 10.1016/j.cities.2022.104048
EA NOV 2022
PG 14
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 9Q0RC
UT WOS:000944680500002
DA 2025-04-22
ER

PT J
AU Du, R
   Liu, K
   Zhao, DR
   Fang, QY
AF Du, Ran
   Liu, Ke
   Zhao, Dangru
   Fang, Qiyun
TI Urban amenity and urban economic resilience: evidence from China
SO FRONTIERS IN PUBLIC HEALTH
LA English
DT Article
DE urban amenity; economic resilience; livable city; population
   agglomeration; sustainable development
ID OPPORTUNITIES; DETERMINANTS; MIGRATION; LABOR
AB Under the influence of multiple uncertain factors at home and abroad, urban amenities, as the underlying support for urban renewal activities, are of great significance in enhancing urban economic resilience. The panel data of Chinese cities from 2011 to 2019 is used in this study. Urban amenity is measured from artificial amenities and climate amenities, respectively. By using a two-way fixed effects model, we empirically test the impact of urban amenities on urban economic resilience. The key findings of this study are as follows. (1) Urban amenities can significantly enhance urban economic resilience. (2) Heterogeneity analysis shows that there are regional differences in the role of urban amenities in promoting urban economic resilience, with cities in the eastern region, strong environmental regulations, and high urbanization rates benefiting more. (3) We further find that urban amenities mainly enhance economic resilience by promoting population agglomeration, attracting labor migration, improving the quality of human capital, and stimulating urban innovation. Our conclusions recommend to rationally allocate and optimize urban amenity resources, strengthen urban planning and construction management, and create a more livable urban environment, thereby enhancing urban economic resilience.
C1 [Du, Ran; Zhao, Dangru; Fang, Qiyun] Huazhong Univ Sci & Technol, Sch Econ, Wuhan, Hubei, Peoples R China.
   [Liu, Ke] Shaanxi Normal Univ, Int Business Sch, Xian, Shaanxi, Peoples R China.
C3 Huazhong University of Science & Technology; Shaanxi Normal University
RP Liu, K (corresponding author), Shaanxi Normal Univ, Int Business Sch, Xian, Shaanxi, Peoples R China.
EM liuke7936@snnu.edu.cn
OI Zhao, Dangru/0009-0005-2667-1587
FU Fundamental Research Funds for the Central
   Universities10.13039/501100012226
FX No Statement Available
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NR 76
TC 0
Z9 0
U1 61
U2 106
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
EI 2296-2565
J9 FRONT PUBLIC HEALTH
JI Front. Public Health
PD MAY 9
PY 2024
VL 12
AR 1392908
DI 10.3389/fpubh.2024.1392908
PG 16
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA RR1C8
UT WOS:001229287400001
PM 38784582
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Tang, L
   Jiang, HF
   Zhang, ZL
   Hou, SS
   Liu, B
AF Tang, Liang
   Jiang, Haifeng
   Zhang, Zhenling
   Hou, Shanshan
   Liu, Bo
TI The Driving Path of China's Urban Resilience Enhancement in the Digital
   Economy Era
SO DISCRETE DYNAMICS IN NATURE AND SOCIETY
LA English
DT Article
ID CITY
AB Promoting the development of China's digital economy and the level of urban disaster reduction and governance is of great significance for accelerating the improvement of China's urban resilience and promoting the coordinated development of regional cities. This paper analyzed the spatial and temporal distribution characteristics and driving paths of urban resilience in 31 Chinese provinces, autonomous regions, and municipalities directly under the central government and proposed relevant measures to promote urban resilience. First, the urban resilience evaluation system was constructed and the entropy value method was applied to calculate the urban resilience index of each region. Second, the spatial distribution of urban resilience was explored based on the urban resilience index of each region. Finally, a qualitative comparative analysis method was used to explore the driving paths of urban resilience enhancement. The study showed that there were large regional differences in the urban resilience index, with an overall spatial pattern of "good in the east, middle in the center, and low in the west" and an overall trend of gradual increase. There are five configuration paths to generate a high urban resilience index, which can be specifically digital industry-driven path, technology factor-driven path, government input- and talent pool-driven path under market factors, technology factor- and government factor-driven path, and government investment- and infrastructure-driven path under market factors, and it is found that the digital industry-driven path is a more common path of digital economy-driven urban resilience improvement in China. The finding of this study reveals the nature of complex interactions among drivers in the process of urban resilience enhancement in China, which breaks through the limitations of traditional statistical analysis methods and provides a new perspective for the study of urban resilience issues.
C1 [Tang, Liang; Jiang, Haifeng; Zhang, Zhenling] Fuyang Normal Univ, Sch Business, Fuyang 236037, Peoples R China.
   [Hou, Shanshan] Fuyang Normal Univ, Sch Marxism, Fuyang 236037, Peoples R China.
   [Liu, Bo] Nanjing Normal Univ, Ginling Coll, Nanjing 210000, Peoples R China.
C3 Fuyang Normal University; Fuyang Normal University; Nanjing Normal
   University
RP Hou, SS (corresponding author), Fuyang Normal Univ, Sch Marxism, Fuyang 236037, Peoples R China.; Liu, B (corresponding author), Nanjing Normal Univ, Ginling Coll, Nanjing 210000, Peoples R China.
EM tangliang99@sohu.com; 201704001@fynu.edu.cn; fynutl@163.com;
   201708007@fynu.edu.cn; 45242@njnu.edu.cn
RI jiang, haifeng/F-1080-2011; Zhang, Zhenling/K-3411-2017
OI liu, bo/0000-0003-1228-8200
FU National Natural Science Foundation of China [71801130]; Scientific
   Research Projects of Colleges and Universities in Anhui Province
   [2022AH051269, 2022AH051274]; Training Program for Outstanding Young
   Teachers in Colleges and Universities in Anhui Province [gxgnfx2021004];
   Quality Engineering Project in Anhui Province [2021jyxm1106]; Ministry
   of Education Industry-University Cooperative Project [220904978265230]
FX AcknowledgmentsThis research was funded by the National Natural Science
   Foundation of China (Grant no. 71801130), Scientific Research Projects
   of Colleges and Universities in Anhui Province (Grant nos. 2022AH051269
   and 2022AH051274), Training Program for Outstanding Young Teachers in
   Colleges and Universities in Anhui Province (Grant no. gxgnfx2021004),
   Quality Engineering Project in Anhui Province (Grant no. 2021jyxm1106),
   and Ministry of Education Industry-University Cooperative Project (Grant
   no. 220904978265230).
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NR 47
TC 2
Z9 2
U1 15
U2 113
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1026-0226
EI 1607-887X
J9 DISCRETE DYN NAT SOC
JI Discrete Dyn. Nat. Soc.
PD APR 14
PY 2023
VL 2023
AR 9992474
DI 10.1155/2023/9992474
PG 16
WC Mathematics, Interdisciplinary Applications; Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Mathematics; Science & Technology - Other Topics
GA E1AR3
UT WOS:000972952400001
OA gold
DA 2025-04-22
ER

PT J
AU Zhao, ZL
   Hu, ZZ
   Han, X
   Chen, L
   Li, ZY
AF Zhao, Zhilong
   Hu, Zengzeng
   Han, Xu
   Chen, Lu
   Li, Zhiyong
TI Evaluation of Urban Resilience and Its Influencing Factors: A Case Study
   of the Yichang-Jingzhou-Jingmen-Enshi Urban Agglomeration in China
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; spatiotemporal differentiation; influencing factors;
   Yichang-Jingzhou-Jingmen-Enshi urban agglomeration; China
ID TEMPORAL EVOLUTION
AB With the increasing frequency of various uncertainties and disturbances faced by urban systems, urban resilience is one of the vital components of the sustainability of modern cities. An indicator system is constructed to measure the resilience levels of the Yichang-Jingzhou-Jingmen-Enshi (YJJE) urban agglomeration during 2010-2023 based on four domains-economy, ecology, society, and infrastructure. This paper analyzes the spatiotemporal differentiation of resilience in YJJE in conjunction with the entropy weight method, Getis-Ord Gi* model, and robustness testing. Then, the factor contribution model is used to discern key driving elements of urban resilience. Finally, the CA-Markov model is implemented to predict urban resilience in 2030. The results reveal that the values of resilience in YJJE increase at a rate of 3.25%/a and continue to rise, with the differences among cities narrowing over the examined period. Furthermore, the urban resilience exhibits a significant spatially heterogeneity distribution, with Xiling, Wujiagang, Xiaoting, Yidu, Zhijiang, Dianjun, Dangyang, Yuan'an, Yiling, and Duodao being the high-value agglomerations of urban resilience, and Hefeng, Jianli, Shishou, and Wufeng being the low-value agglomerations of urban resilience. The marked heterogeneity of resilience in the YJJE urban agglomeration reflects the disparity in economic progress across the study area. The total amount of urban social retail, financial expenditure per capita, GDP per capita, park green space area, urban disposable income per capita, and number of buses per 10,000 people surface as the key influencing factors in relation to urban resilience. Finally, the levels of resilience among cities within YJJE will reach the medium level or higher than medium level in 2030. Xiling, Wujiagang, Xiaoting, Zhijiang, Dianjun, Dangyang, and Yuan'an will remain significant hot spots of urban resilience, while Jianli will remain a significant cold spot. In a nutshell, this paper can provide scientific references and policy recommendations for policymakers, urban planners, and researchers on the aspects of urban resilience and sustainable city.
C1 [Zhao, Zhilong] China Three Gorges Univ, Coll Econ & Management, Yichang 443002, Peoples R China.
   [Zhao, Zhilong; Han, Xu; Chen, Lu; Li, Zhiyong] Hebei Normal Univ, Coll Home Econ, Shijiazhuang 050024, Peoples R China.
   [Hu, Zengzeng] Beijing Acad Sci & Technol, Beijing 100089, Peoples R China.
   [Hu, Zengzeng] Shijiazhuang Univ, Sch Econ & Management, Shijiazhuang 050035, Peoples R China.
C3 China Three Gorges University; Hebei Normal University; Beijing Academy
   of Science & Technology; Shijiazhuang University
RP Li, ZY (corresponding author), Hebei Normal Univ, Coll Home Econ, Shijiazhuang 050024, Peoples R China.; Hu, ZZ (corresponding author), Beijing Acad Sci & Technol, Beijing 100089, Peoples R China.; Hu, ZZ (corresponding author), Shijiazhuang Univ, Sch Econ & Management, Shijiazhuang 050035, Peoples R China.
EM zhaozhilong@bnu.edu.cn; huzengzeng@bjss.org.cn; hanxu@stu.hebtu.edu.cn;
   hbsd2022cl@stu.hebtu.edu.cn; lizy@hebtu.edu.cn
RI Zhao, Zhilong/ABH-1134-2021; li, zhiyong/B-3045-2015
OI Zhilong, Zhao/0000-0002-1606-1647
FU the Science and Technology Research Project of Department of Education
   of Hubei Province [Q20221207]; Science and Technology Research Project
   of Department of Education of Hubei Province [42101293]; National
   Natural Science Foundation of China [23CE-BGS-18]; Sprout Program of
   Beijing Academy of Sciences and Technology [11000024T000002829622];
   Special Program of Institute of Innovation for Development, Beijing
   Academy of Sciences and Technology
FX This research was funded by the Science and Technology Research Project
   of Department of Education of Hubei Province, grant number Q20221207,
   the National Natural Science Foundation of China, grant number 42101293,
   the Sprout Program of Beijing Academy of Sciences and Technology, grant
   number 23CE-BGS-18, and the Special Program of Institute of Innovation
   for Development, Beijing Academy of Sciences and Technology, grant
   number 11000024T000002829622.
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NR 61
TC 6
Z9 6
U1 15
U2 20
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2024
VL 16
IS 16
AR 7090
DI 10.3390/su16167090
PG 17
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA F1P8W
UT WOS:001307616700001
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Gao, MY
   Wang, ZM
   Yang, HB
AF Gao, Meiyan
   Wang, Zongmin
   Yang, Haibo
TI Review of Urban Flood Resilience: Insights from Scientometric and
   Systematic Analysis
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Review
DE urban flood; resilience; climate change; bibliometric; cite space
ID CLIMATE-CHANGE; DISASTER-RESILIENCE; COMMUNITY RESILIENCE; RISK; GREEN;
   CITY; MULTISCALE; NETWORK; HAZARDS; WEATHER
AB In recent decades, climate change is exacerbating meteorological disasters around the world, causing more serious urban flood disaster losses. Many solutions in related research have been proposed to enhance urban adaptation to climate change, including urban flooding simulations, risk reduction and urban flood-resistance capacity. In this paper we provide a thorough review of urban flood-resilience using scientometric and systematic analysis. Using Cite Space and VOS viewer, we conducted a scientometric analysis to quantitively analyze related papers from the Web of Science Core Collection from 1999 to 2021 with urban flood resilience as the keyword. We systematically summarize the relationship of urban flood resilience, including co-citation analysis of keywords, authors, research institutions, countries, and research trends. The scientometric results show that four stages can be distinguished to indicate the evolution of different keywords in urban flood management from 1999, and urban flood resilience has become a research hotspot with a significant increase globally since 2015. The research methods and progress of urban flood resilience in these four related fields are systematically analyzed, including climate change, urban planning, urban system adaptation and urban flood-simulation models. Climate change has been of high interest in urban flood-resilience research. Urban planning and the adaptation of urban systems differ in terms of human involvement and local policies, while more dynamic factors need to be jointly described. Models are mostly evaluated with indicators, and comprehensive resilience studies based on traditional models are needed for multi-level and higher performance models. Consequently, more studies about urban flood resilience based on local policies and dynamics within global urban areas combined with fine simulation are needed in the future, improving the concept of resilience as applied to urban flood-risk-management and assessment.
C1 [Gao, Meiyan; Wang, Zongmin; Yang, Haibo] Zhengzhou Univ, Yellow River Lab, Zhengzhou 450001, Peoples R China.
   [Gao, Meiyan; Wang, Zongmin; Yang, Haibo] Zhengzhou Univ, Sch Water Conservancy Engn, Zhengzhou 450001, Peoples R China.
C3 Zhengzhou University; Zhengzhou University
RP Yang, HB (corresponding author), Zhengzhou Univ, Yellow River Lab, Zhengzhou 450001, Peoples R China.; Yang, HB (corresponding author), Zhengzhou Univ, Sch Water Conservancy Engn, Zhengzhou 450001, Peoples R China.
EM gmeiyan123@163.com; zmwang@zzu.edu.cn; yanghb@zzu.edu.cn
OI , Haibo/0000-0001-8794-1476
FU National Key R&D Program of China [2021YFC3200205]; National Natural
   Science Foundation of China [51739009]
FX The study was supported by National Key R&D Program of China (grant
   number 2021YFC3200205) and National Natural Science Foundation of China
   (No: 51739009).
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NR 122
TC 22
Z9 23
U1 61
U2 332
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD JUL
PY 2022
VL 19
IS 14
AR 8837
DI 10.3390/ijerph19148837
PG 19
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 3H7GY
UT WOS:000832201600001
PM 35886688
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Moradpour, N
   Pourahmad, A
   Ziari, K
   Hataminejad, H
   Sharifi, A
AF Moradpour, Nabi
   Pourahmad, Ahmad
   Ziari, Keramatollah
   Hataminejad, Hossein
   Sharifi, Ayyoob
TI Downscaling urban resilience assessment: A spatiotemporal analysis of
   urban blocks using the fuzzy Delphi method and K-means clustering
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Urban resilience; Resilience assessment; Fuzzy Delphi method; Urban
   planning; Cities
ID COMMUNITY RESILIENCE; FORM; SELECTION; SYSTEM; TOOLS; SET
AB The spatiotemporal assessment of urban resilience is crucial for planning and policy-making toward addressing climate change and other societal challenges. However, our comprehension of urban resilience at smaller scales is limited. This study not only advances urban resilience research by developing an efficient measurement approach but also contributes to practice by evaluating resilience at the city block level, thereby informing targeted interventions. Our study aimed to downscale the unit of analysis for urban resilience assessment by focusing on the social, economic, housing and infrastructural, and environmental dimensions of blocks in the southern districts of Tehran between 2006 and 2016. The Fuzzy Delphi Method was utilized to determine the indicators for urban resilience assessment. The Analytic Hierarchy Process technique was employed to weigh these indicators. Subsequently, the PROMETHEE technique was applied to evaluate the resilience of urban blocks. Finally, the K-Means algorithm was utilized to cluster the urban blocks. The results indicate that from 2006 to 2016, the southern districts of Tehran saw a marked reduction in overall resilience. This decline affected 48 % of the urban blocks, encompassing 60 % of the area and 62 % of the population. The results of applying the K-means algorithm for urban block clustering did not align with the boundaries of the southern districts of Tehran. This finding highlights that assessing resilience on smaller scales could lead to more accurate conclusions.
C1 [Moradpour, Nabi; Pourahmad, Ahmad; Ziari, Keramatollah; Hataminejad, Hossein] Univ Tehran, Fac Geog, Dept Human Geog & Planning, Tehran, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Lebanese Amer Univ, Sch Architecture & Design, Beirut, Lebanon.
C3 University of Tehran; Hiroshima University; Lebanese American University
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, Higashihiroshima, Japan.
EM sharifi@hiroshima-u.ac.jp
RI Ziari, Keramatollah/A-1028-2019; Sharifi, Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613
FX Funding This research did not receive any specific grant from funding
   agencies in the public, commercial, or not-for-profit sectors.
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NR 150
TC 7
Z9 7
U1 56
U2 84
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0360-1323
EI 1873-684X
J9 BUILD ENVIRON
JI Build. Environ.
PD SEP 1
PY 2024
VL 263
AR 111898
DI 10.1016/j.buildenv.2024.111898
EA JUL 2024
PG 20
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA A9P6E
UT WOS:001285788600001
DA 2025-04-22
ER

PT J
AU Wang, X
   Wang, CX
   Shi, JL
AF Wang, Xuan
   Wang, Chengxin
   Shi, Jialu
TI Evaluation of urban resilience based on Service-Connectivity-
   Environment (SCE) model: A case study of Jinan city, China
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban resilience; Comprehensive evaluation; Service resilience;
   Connectivity resilience; Environment resilience; Jinan city
ID GREEN INFRASTRUCTURE; LANDSCAPE; SCALE
AB Resilience has become one of the main drivers for planning city future. However, there is cur-rently no universally accepted definition and measurement of urban resilience. This study intro-duces and demonstrates a Service-Connectivity-Environment (SCE) model to evaluate urban re-silience. First, this paper defines urban resilience based on existing research and presents a frame-work for urban resilience based on service, connectivity, and environment. Second, this study in-troduces a SCE model used to evaluate urban resilience. This paper presents an indicator system for urban resilience assessment with eight indicators. In contrast to previous urban resilience evaluation systems, the developed evaluation system is two-dimensional. One dimension is ser-vice, connectivity, and environment, and the other is basic and coordination. Service mainly refers to urban service facilities, connectivity mainly refers to transportation system, and environ-ment mainly refers to the landscape of green space and water bodies. Third, as an illustrative ex-ample, apply the SCE model to Jinan, Shandong Province, China. The study focuses on the tempo-ral and spatial characteristics of urban resilience in Jinan. The analysis provides initial evidence that the level of urban resilience in the SCE dimension of Jinan City varies, and the regional gap gradually increases during the study period. The SCE model provides a general and replicable ap-proach to resilience assessment that can be implemented for a broader range of applications.
C1 [Wang, Xuan; Wang, Chengxin] Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Peoples R China.
   [Shi, Jialu] Shandong Normal Univ, Coll Econ, Jinan 250358, Peoples R China.
   [Wang, Chengxin] Shandong Normal Univ, Coll Geog & Environm, 1 Daxue Rd, Jinan, Shandong, Peoples R China.
C3 Shandong Normal University; Shandong Normal University; Shandong Normal
   University
RP Wang, CX (corresponding author), Shandong Normal Univ, Coll Geog & Environm, 1 Daxue Rd, Jinan, Shandong, Peoples R China.
EM 1768479448@qq.com; 404122665@qq.com; 531701850@qq.com
RI Wang, Jiyang/AAE-7106-2019
FU Major Project of Key Research Bases for Humanities and Social Sciences -
   Ministry of Education of China [22JJD790015]
FX This research was supported by funding from the Major Project of Key
   Research Bases for Humanities and Social Sciences Funded by the Ministry
   of Education of China "Spatiotemporal evolution and development model of
   ecological civilization construction in the Yellow River Basin" (Grant
   No. 22JJD790015) .
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NR 60
TC 10
Z9 10
U1 25
U2 137
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD SEP
PY 2023
VL 95
AR 103828
DI 10.1016/j.ijdrr.2023.103828
EA JUL 2023
PG 14
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA P2AS2
UT WOS:001048725200001
DA 2025-04-22
ER

PT J
AU Wardekker, A
   Wilk, B
   Brown, V
   Uittenbroek, C
   Mees, H
   Driessen, P
   Wassen, M
   Molenaar, A
   Walda, J
   Runhaar, H
AF Wardekker, Arjan
   Wilk, Bettina
   Brown, Valerie
   Uittenbroek, Caroline
   Mees, Heleen
   Driessen, Peter
   Wassen, Martin
   Molenaar, Arnoud
   Walda, Jim
   Runhaar, Hens
TI A diagnostic tool for supporting policymaking on urban resilience
SO CITIES
LA English
DT Article
DE Urban resilience; Choices; Urban governance; Diagnostic tool
ID CLIMATE-CHANGE ADAPTATION; COMMUNITY RESILIENCE; PRINCIPLES; MANAGEMENT;
   FRAMEWORK; METAPHOR; POLITICS; THINKING
AB Urban resilience has become a popular notion among urban policymakers and scientists, as a way to deal with the many complex issues that cities face. While it has positive connotations and resonates with local urban agendas, it is not always clear what it means and what factors contribute to resilience. Additionally, critical literature observes that people's views on what resilience means can differ strongly and the many choices that are made in planning and implementing resilience are often left implicit. In this paper, we describe a diagnostic tool that tackles these issues by (1) distilling resilience principles and narratives that provide a comprehensive picture of the different pathways that resilience-building could take, and (2) making explicit and facilitating reflection on the choices embedded in planning for urban resilience. We illustrate the tool with an application on urban flood risk management in Rotterdam. We conclude that the Resilience Diagnostic Tool is useful to reflect on the local goals of resilience-building, to diagnose choices made in urban plans, and to reflect on their consequences. It supports policymakers in making deliberate, transparent and goal-oriented choices on urban resilience.
C1 [Wardekker, Arjan; Wilk, Bettina; Brown, Valerie; Uittenbroek, Caroline; Mees, Heleen; Driessen, Peter; Wassen, Martin; Runhaar, Hens] Univ Utrecht, Copernicus Inst Sustainable Dev, Utrecht, Netherlands.
   [Wardekker, Arjan] Univ Bergen, Ctr Study Sci & Humanities, Bergen, Norway.
   [Wilk, Bettina] ICLEI Local Govt Sustainabil, Freiburg, Germany.
   [Molenaar, Arnoud; Walda, Jim] Municipal Rotterdam, Rotterdam, Netherlands.
   [Runhaar, Hens] Wageningen Univ, Forest & Nat Conservat Policy Grp, Wageningen, Netherlands.
   [Runhaar, Hens] Res Ctr, Wageningen, Netherlands.
C3 Utrecht University; University of Bergen; Wageningen University &
   Research
RP Wardekker, A (corresponding author), Univ Utrecht, Copernicus Inst Sustainable Dev, Utrecht, Netherlands.
EM j.a.wardekker@uu.nl
RI Uittenbroek, Caroline/C-3186-2017; Wardekker, Arjan/U-8500-2019;
   Runhaar, Hens/L-5395-2013; Driessen, Peter/M-6751-2013; Wassen,
   Martin/L-9228-2013; Mees, Heleen/L-5394-2013
OI Wardekker, Arjan/0000-0001-7974-4835; Driessen,
   Peter/0000-0002-0724-6666; , Bettina Wilk/0009-0002-9134-0643; Wassen,
   Martin/0000-0002-9735-2103; Mees, Heleen/0000-0002-4401-6106
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NR 95
TC 66
Z9 67
U1 16
U2 131
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JUN
PY 2020
VL 101
AR 102691
DI 10.1016/j.cities.2020.102691
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA LN2VE
UT WOS:000532800700001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Yi, PT
   Wang, SN
   Li, WW
   Dong, QK
AF Yi, Pingtao
   Wang, Shengnan
   Li, Weiwei
   Dong, Qiankun
TI Urban resilience assessment based on ?window? data: The case of three
   major urban agglomerations in China
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban resilience; Resilience assessment; ?Window? data; K-means
   clustering; Random forest
ID DECISION-MAKING; K-MEANS; COMMUNITY RESILIENCE; SELECTION; CRITERIA;
   MACHINE; RISK; SET
AB Urban resilience is the key to comprehensively advancing China's urbanization process. Urban re-silience assessment is a necessary way to monitor the current state of urban resilience. This paper measured urban resilience performance of 48 cities in China's three major urban agglomerations of Beijing-Tianjin-Hebei (BTH), Yangtze River Delta (YRD) and Pearl River Delta (PRD). During the process, a type of data called "window" data that can be obtained in real-time was proposed. Considering the characteristics of data distribution, we completed the construction of indicator system based on k-means clustering and random forest algorithm. Then, the combination of fea-ture importance coefficient and entropy method was used to determine the indicator weight. And by analyzing urban resilience, it was found that the urban agglomeration PRD and the city Shang-hai had the best performance. There was a significant gap in resilience levels between cities. In addition, cities with poor overall performance tended to have more coordinated development, and the city's own resilience might be driven by surrounding high-level cities to a certain extent. Finally, we discussed the urban resilience assessment results and provided targeted practical sug-gestions for further growth in urban resilience.
C1 [Yi, Pingtao; Wang, Shengnan; Li, Weiwei; Dong, Qiankun] Northeastern Univ, Sch Business Adm, Shenyang, Peoples R China.
   [Wang, Shengnan] 195 Chuangxin Rd, Shenyang, Peoples R China.
C3 Northeastern University - China
RP Wang, SN (corresponding author), 195 Chuangxin Rd, Shenyang, Peoples R China.
EM ptyi@mail.neu.edu.cn; snwang951120@163.com; liww@mail.neu.edu.cn;
   dongqian_k@163.com
RI Dong, Qiankun/HGE-1385-2022
OI wang, shengnan/0000-0002-1042-4718; Li, Weiwei/0000-0002-5186-5608
FU National Natural Science Foundation of China [72171040, 72171041];
   Fundamental Research Funds for the Central Universities of China
   [N2006013]
FX Acknowledgements The work was supported by the National Natural Science
   Foundation of China (grant numbers: 72171040, 72171041) and the
   Fundamental Research Funds for the Central Universities of China (grant
   number: N2006013) . We also would like to thank the editors and
   anonymous reviewers for their valuable comments and suggestions.
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NR 86
TC 22
Z9 22
U1 35
U2 243
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD FEB 1
PY 2023
VL 85
AR 103528
DI 10.1016/j.ijdrr.2023.103528
EA NOV 2023
PG 19
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA E3MQ6
UT WOS:000974621700001
DA 2025-04-22
ER

PT J
AU Zhao, R
   Li, X
   Wang, Y
   Xu, ZC
   Xiong, MY
   Jia, Q
   Li, FT
AF Zhao, Rui
   Li, Xia
   Wang, Ying
   Xu, Zhenci
   Xiong, Meiyu
   Jia, Qian
   Li, Fengting
TI Assessing resilience of sustainability to climate change in China's
   cities
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Resilience; Sustainability; Climate change; China's cities
ID IMPACTS; WEATHER; SIMILARITIES; TEMPERATURE; ADAPTATION; MORTALITY;
   HEALTH
AB Achieving sustainability and coping with climate change are the greatest challenges to human survival and harmonious human-nature relationship. However, there is a lack of research on quantifying the resilience of sustainability to climate change over space and time. Here, a quantification method was developed to evaluate resilient performance of sustainability (includes economic, social, and environmental sub-resilient performance and resilient performance index) to climate change, and performed the first demonstration in China's 280 cities. It was found that resilient performance index of China's sustainability to climate change improved from 2005 to 2017, especially in Southwest China, but 6.8 % of cities showed a decreasing trend. With the improvement of the resilient performance index, the synergy degree among economic, social, and environmental sub-resilient performance scores increased. Economic development and sustainability improvement related to a higher but more disparity of the resilient performance index. This study encourages researchers and policymakers worldwide to focus on resilience of sustainability to climate change to help achieve sustained development and prosperity under climate change.
C1 [Zhao, Rui; Li, Xia; Wang, Ying; Xiong, Meiyu; Jia, Qian; Li, Fengting] Tongji Univ, Coll Environm Sci & Engn, State Key Lab Pollut Control & Resources Reuse, Shanghai 200000, Peoples R China.
   [Xu, Zhenci] Univ Hong Kong, Dept Geog, Hong Kong 999077, Peoples R China.
   [Li, Fengting] China Meteorol Adm, Shanghai Reg Climate Ctr, Mitigat & Adaptat Climate Change Shanghai, Shanghai 200000, Peoples R China.
C3 Tongji University; University of Hong Kong; China Meteorological
   Administration
RP Li, FT (corresponding author), Tongji Univ, Coll Environm Sci & Engn, State Key Lab Pollut Control & Resources Reuse, Shanghai 200000, Peoples R China.; Xu, ZC (corresponding author), Univ Hong Kong, Dept Geog, Hong Kong 999077, Peoples R China.
EM xuzhenci@hku.hk; fengting@tongji.edu.cn
OI Zhao, Rui/0000-0002-3204-4492
FU United Nations Environment Pro- gram Tongji University
   [S1-32PGL-000007]; National Natural Science Foundation of China
   [42101249]
FX This work was supported by the United Nations Environment Pro- gram
   Tongji University funds: Enhancing Knowledge and Capacity for Inclusive
   Green Economies (2021) #S1-32PGL-000007 (to F.L.) , and National Natural
   Science Foundation of China #42101249 (to Z.X.) . We are grateful to the
   editing service (Elsevier Language Editing Services) for improving the
   language of our manuscript.
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NR 68
TC 21
Z9 21
U1 38
U2 138
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0048-9697
EI 1879-1026
J9 SCI TOTAL ENVIRON
JI Sci. Total Environ.
PD NOV 10
PY 2023
VL 898
AR 165568
DI 10.1016/j.scitotenv.2023.165568
EA JUL 2023
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA P5RZ8
UT WOS:001051260900001
PM 37467992
DA 2025-04-22
ER

PT J
AU Yang, LJ
   Yang, HN
   Zhao, XY
   Yang, YC
AF Yang, Liangjie
   Yang, Hainan
   Zhao, Xueyan
   Yang, Yongchun
TI Study on Urban Resilience from the Perspective of the Complex Adaptive
   System Theory: A Case Study of the Lanzhou-Xining Urban Agglomeration
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE complex adaptive system theory; evolutionary resilience; adaptive cycle
   model; urban system; Lanzhou-Xining urban agglomeration
ID VULNERABILITY ASSESSMENT; EVOLUTIONARY RESILIENCE; SCALE; NETWORKS;
   CHINA
AB In the context of global environmental change and continuous urbanization, enhancing urban resilience is an important way to improve urban emergency management capacity and achieve sustainable development of urban systems. It is of great significance to clarify the mechanisms and effects of urban resilience and carry out resilience measurement to improve the level of urban system resilience and alleviate the pressure of environmental disturbances on the stable operation of urban systems. As an important part of the "Belt and Road" Initiative and one of the few leading economic regions in western China, promoting the high-quality development of the Lanzhou-Xining urban agglomeration is of profound significance for strengthening ethnic unity and stabilizing the northwest and southwest regions. Based on the complex adaptive system (CAS) theory and the adaptive cycle model, this study understands urban resilience as the comprehensive result of urban system stability, self-organization, learning adaptability and transformability, constructs a multi-level open index evaluation system, and analyzes the spatio-temporal evolution characteristics of urban resilience of the Lanzhou-Xining urban agglomeration from the proposed design to the formal planning in 2010-2017. The findings are as follows: (1) Research on the urban resilience of the Lanzhou-Xining urban agglomeration verifies the applicability of the evolutionary urban resilience analysis framework and makes preliminary findings on urban resilience based on CAS theory, which provide a certain theoretical reference for the research on the spatio-temporal evolution of urban resilience. (2) From 2010 to 2017, significant differences are observed between various urban attributes. Resilience exhibits an overall upward trend, and spatial evolution changes from a double core (Lanzhou and Xining) to three cores (Lanzhou, Xining and Haidong) and polycentric modes. (3) Based on urban resilience characteristics and an urban system adaptability cycle model, this paper divides the Lanzhou-Xining urban agglomeration cities into four types (exploitation-reorganization, conservation-release, conservation-exploitation and exploitation), and proposes corresponding adaptive management countermeasures. These could be adopted as a reference to promote the high-quality development of the Lanzhou-Xining urban agglomeration.
C1 [Yang, Liangjie; Zhao, Xueyan] Northwest Normal Univ, Coll Geog & Environm Sci, Lanzhou 730070, Peoples R China.
   [Yang, Liangjie] Key Lab Resource Environm & Sustainable Dev Oasis, Lanzhou 730070, Peoples R China.
   [Yang, Hainan; Yang, Yongchun] Lanzhou Univ, Coll Earth & Environm Sci, Lanzhou 730030, Peoples R China.
C3 Northwest Normal University - China; Lanzhou University
RP Yang, HN (corresponding author), Lanzhou Univ, Coll Earth & Environm Sci, Lanzhou 730030, Peoples R China.
EM 120220909931@lzu.edu.cn
RI zhao, xueyan/I-9434-2012
OI yang, hai nan/0000-0003-0287-0379; yang, liang jie/0000-0002-3798-941X
FU National Natural Science Foundation of China [41501176, 41961030,
   41971198]
FX This work was supported by projects of the National Natural Science
   Foundation of China (grant numbers: 41501176, 41961030, 41971198).
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Z9 7
U1 31
U2 234
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD OCT
PY 2022
VL 19
IS 20
AR 13667
DI 10.3390/ijerph192013667
PG 18
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 5P3XH
UT WOS:000873086800001
PM 36294255
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Shi, YJ
   Zhai, GF
   Xu, LH
   Zhou, ST
   Lu, YW
   Liu, HB
   Huang, W
AF Shi, Yijun
   Zhai, Guofang
   Xu, Lihua
   Zhou, Shutian
   Lu, Yuwen
   Liu, Hongbo
   Huang, Wei
TI Assessment methods of urban system resilience: From the perspective of
   complex adaptive system theory
SO CITIES
LA English
DT Article
DE Urban system; Complex adaptive systems (CAS); Theoretical framework;
   Resilience assessment method
ID ECONOMIC RESILIENCE; SEISMIC RESILIENCE; CITIES; MODEL; DISASTERS
AB With the continuous development of urbanization, and increasing uncertainties and risks, resilience has become an important criterion for urban safety. As a dynamic and open spatial system, the urban system presents typical complex features. Thus, the understanding of urban resilience from the perspective of complex systems theory is helpful to achieve a full understanding of the composition and functioning mechanism of urban systems, and to then improve the scientific nature of urban system cognition and research. In this article, the literature on urban resilience is first reviewed, and it is found that the related research on resilience assessment has yielded some assessment methods. Then, based on complex adaptive systems (CAS) theory and combined with its seven basic characteristics, the basic characteristics of complex urban systems are summarized from the perspective of the principle of the urban system action mechanism. On this basis, a framework of complex urban systems is constructed from three aspects, namely the system environment, system elements and system structure, and the assessment methods of the urban system resilience for each aspect are explored. This study not only expands the research on urban system resilience assessment, but also provides a reference for urban safety development and resilience improvement.
C1 [Shi, Yijun; Xu, Lihua] Zhejiang A&F Univ, Sch Landscape Architecture, Hangzhou 311300, Peoples R China.
   [Zhai, Guofang; Lu, Yuwen] Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210093, Peoples R China.
   [Zhou, Shutian] Nantong Univ, Sch Art, Nantong 226019, Peoples R China.
   [Liu, Hongbo] China Acad Urban Planning & Design, Beijing 100044, Peoples R China.
   [Huang, Wei] Urban & Rural Planning & Design Inst Zhejiang Pro, Hangzhou 310012, Peoples R China.
C3 Zhejiang A&F University; Nanjing University; Nantong University
RP Shi, YJ (corresponding author), Zhejiang A&F Univ, Sch Landscape Architecture, Hangzhou 311300, Peoples R China.
EM yijun_shi@zafu.edu.cn; guofang_zhai@nju.edu.cn; xulihua@zafu.edu.cn;
   shutian_zhou@ntu.edu.cn; yuwen_lu@smail.nju.edu.cn;
   hongboliu923@163.com; weihuangicy@163.com
RI Zhai, Guofang/JJD-3299-2023; Shi, Yijun/LUY-9496-2024; Huang,
   Wei/L-7090-2019; Xu, Lihua/P-8054-2019; 鲁, 钰雯/JDW-1571-2023
OI Lu, Yuwen/0000-0002-7449-829X
FU Zhejiang Province Natural Science Foundation of China [LQ20D010002];
   Zhejiang Province Social Science Planning Project of China
   [20NDQN300YB]; National Natural Science Foundation of China [41871216]
FX This research was funded by the Zhejiang Province Natural Science
   Foundation of China (grant number: LQ20D010002) , the Zhejiang Province
   Social Science Planning Project of China (grant number: 20NDQN300YB) and
   the National Natural Science Foundation of China (grant number:
   41871216) .
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NR 77
TC 122
Z9 129
U1 190
U2 789
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD MAY
PY 2021
VL 112
AR 103141
DI 10.1016/j.cities.2021.103141
EA FEB 2021
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA RF5KE
UT WOS:000634876400007
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Jin, Y
   Zhou, GL
   Sun, HR
   Fu, H
   Wu, HC
   Liu, YJ
AF Jin, Yu
   Zhou, Guolei
   Sun, Hongri
   Fu, Hui
   Wu, Hanchun
   Liu, Yanjun
TI Regrowth or smart decline? A policy response to shrinking cities based
   on a resilience perspective
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Shrinking cities; Urban resilience; Regrowth and smart decline; System
   dynamics; Response strategies
ID URBAN SHRINKAGE; TRAJECTORIES
AB Enhancing urban resilience is increasingly crucial for cities to achieve sustainable development. However, existing studies have a limited understanding of the resilience of shrinking cities and their response policies. Taking Yichun, a typical shrinking city in China, as an example, this study constructs a system dynamics model to assess urban resilience from a subsystem perspective and explores the relationship between the dynamic development of resilience and urban shrinkage from 2008 to 2028. Then, a smart decline response policy of Yichun is put forward. The findings indicate that the evolution curve of urban resilience shows a fluctuating growth trend as a whole and that the dominant subsystems of resilience are changing. The occurrence of urban shrinkage inhibits the dynamic development of urban resilience and has various effects on the subsystems of resilience. Compared with the regrowth strategy, the smart decline strategy can effectively improve the resilience and mitigate the adverse impact of urban shrinkage on the resilience under the condition of limited resources. Resilience can be proven to be a viable perspective to help formulate a response strategy of shrinking cities. These findings will enhance comprehension of the resilience of shrinking cities and provide a reference to address urban shrinkage and formulate corresponding governance strategies.
C1 [Jin, Yu; Sun, Hongri; Fu, Hui; Wu, Hanchun; Liu, Yanjun] Northeast Normal Univ, Sch Geog Sci, 5268 Renmin St, Changchun 130024, Peoples R China.
   [Zhou, Guolei] Chinese Acad Sci, Northeast Inst Geog & Agroecol, 4888 Shengbei St, Changchun 130102, Peoples R China.
C3 Northeast Normal University - China; Chinese Academy of Sciences;
   Northeast Institute of Geography & Agroecology, CAS
RP Liu, YJ (corresponding author), Northeast Normal Univ, Sch Geog Sci, 5268 Renmin St, Changchun 130024, Peoples R China.
EM jiny627@nenu.edu.cn; zhouguolei@iga.ac.cn; sunhr429@nenu.edu.cn;
   fuh247@nenu.edu.cn; wuhc003@nenu.edu.cn; liuyj323@nenu.edu.cn
RI Wu, Han-Chun/H-3124-2011; Zhou, Guolei/GVS-5186-2022
OI Zhou, Guolei/0000-0001-6726-8093
FU National Natural Science Foundation of China [42171191, 42201211,
   41771172]; Science and Technology Development Plan Project of Jilin
   Province, China [20220508025RC]
FX This work was supported by the National Natural Science Foundation of
   China [grant numbers 42171191, 42201211, 41771172] and Science and
   Technology Development Plan Project of Jilin Province, China [grant
   number 20220508025RC] .
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NR 64
TC 2
Z9 2
U1 46
U2 80
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD AUG 1
PY 2024
VL 108
AR 105431
DI 10.1016/j.scs.2024.105431
EA MAY 2024
PG 16
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA TF9I6
UT WOS:001239964600001
DA 2025-04-22
ER

PT J
AU Zhang, J
   Zhang, MY
   Li, G
AF Zhang, Juan
   Zhang, Mingyuan
   Li, Gang
TI Multi-stage composition of urban resilience and the influence of
   pre-disaster urban functionality on urban resilience
SO NATURAL HAZARDS
LA English
DT Article
DE Urban resilience; Multi-stage composition; Urban functionality;
   Assessment framework; Pre-disaster assessment; Improved strategy
ID POSTDISASTER RECONSTRUCTION; FRAMEWORK; VULNERABILITY; SYSTEMS; INDEX;
   TIME
AB The research of system resilience has a decision-making significance in mitigating disasters, containing the effects of disasters, and performing recovery activities. The pre-disaster preparation stage plays an important role in urban disaster response and disaster recovery. This study proposes a multi-level urban functionality assessment framework and a new multi-stage resilience assessment model comprising pre-disaster preparation, disaster response, and post-disaster recovery stages. The pre-disaster preparation stage of urban resilience containing three situations (steady rise, continued reduction, and dynamic change) is studied. The proposed functionality framework and the resilience assessment model are implemented to the urban resilience assessment. The feasibility and the applicability of the framework and the model are tested through a case study involving 31 cities in China. The results show that the functionalities of the 31 cities are in the average, fair, and poor levels. Most cities are in the dynamic change process instead of maintaining a constant level in the pre-disaster preparation stage. The curve slope of the dynamic change process of resilience can reflect the resilience change trend of the urban system in the life cycle and the difficulty of improving the urban resilience. Considering the case study, the authors put forward strategies for improving the resilience of some cities before disasters. In view of the obtained results, the proposed resilience model and framework can reflect the influence of pre-disaster urban functionality on the urban resilience. The improved strategy method can be a tool for policy makers to improve disaster response and post-disaster recover ability of the urban system.
C1 [Zhang, Juan; Zhang, Mingyuan] Dalian Univ Technol, Dept Construct Management, Dalian 116000, Peoples R China.
   [Li, Gang] Dalian Univ Technol, Sch Civil Engn, Dalian 116000, Peoples R China.
C3 Dalian University of Technology; Dalian University of Technology
RP Zhang, MY (corresponding author), Dalian Univ Technol, Dept Construct Management, Dalian 116000, Peoples R China.
EM myzhang@dlut.edu.cn
RI ZHANG, Mingyuan/AAJ-4616-2020; li, gang/MEP-6535-2025
FU Fundamental Research Funds for the Central Universities [DUT20ZD401];
   National Key R&D Program of China [2018YFD1100404]
FX The research reported in this paper was partially supported by the
   Fundamental Research Funds for the Central Universities (DUT20ZD401) and
   National Key R&D Program of China (2018YFD1100404).
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NR 62
TC 24
Z9 28
U1 35
U2 303
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD MAY
PY 2021
VL 107
IS 1
BP 447
EP 473
DI 10.1007/s11069-021-04590-3
EA FEB 2021
PG 27
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA RU5XK
UT WOS:000614333700003
DA 2025-04-22
ER

PT J
AU Torabi, E
   Dedekorkut-Howes, A
   Howes, M
AF Torabi, Elnaz
   Dedekorkut-Howes, Aysin
   Howes, Michael
TI A framework for using the concept of urban resilience in responding to
   climate-related disasters
SO URBAN RESEARCH & PRACTICE
LA English
DT Article
DE Urban resilience; political resilience; coastal cities; adaptation; Gold
   Coast; Sunshine Coast
ID SOCIAL-ECOLOGICAL RESILIENCE; ADAPTATION; CITIES; POLICY
AB Resilience is an important concept in planning/policy. The diversity of theoretical conceptualisations, lack of a clear definition, and ambiguity in application to cities have made urban resilience a difficult concept to pin-down. This paper explores the dimensions of urban resilience to conceptualise and operationalise resilience, connecting theory and practice using two Australian cases. The findings call for a reconsideration of the existing dimensions (infrastructural, ecological, social and community, economic, and institutional) and highlight urban political resilience, a new dimension essential for a transformative adaptation approach.
C1 [Torabi, Elnaz; Dedekorkut-Howes, Aysin; Howes, Michael] Griffith Univ, Cities Res Inst, Gold Coast, Australia.
   [Torabi, Elnaz; Dedekorkut-Howes, Aysin; Howes, Michael] Griffith Univ, Sch Environm & Sci, Gold Coast, Australia.
C3 Griffith University; Griffith University - Gold Coast Campus; Griffith
   University; Griffith University - Gold Coast Campus
RP Torabi, E (corresponding author), Griffith Univ, Cities Res Inst, Gold Coast, Australia.
EM e.torabi@griffith.edu.au
RI Torabi, Elnaz/AAA-3814-2020; Howes, Michael/S-2804-2019; Torabi,
   Elnaz/V-3585-2018; Dedekorkut-Howes, Aysin/V-5636-2018
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NR 86
TC 21
Z9 23
U1 13
U2 96
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1753-5069
EI 1753-5077
J9 URBAN RES PRACT
JI Urban Res. Pract.
PD AUG 8
PY 2022
VL 15
IS 4
BP 561
EP 583
DI 10.1080/17535069.2020.1846771
EA JAN 2021
PG 23
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 4W8QW
UT WOS:000607656000001
DA 2025-04-22
ER

PT J
AU Castro-Cosio, A
AF Castro-Cosio, Antonieta
TI 'Informal' Financial Practices in the South Bronx: Family,
   Compadres, and Acquaintances
SO JOURNAL OF FAMILY AND ECONOMIC ISSUES
LA English
DT Article
DE Financial services; Families; ROSCAS; Resilience; ROSCAs; Financial
   infrastructures
ID ROTATING CREDIT ASSOCIATION; RESILIENCE; ROSCAS; ADAPTABILITY;
   ECONOMICS; SAVINGS
AB This paper explores the role of 'informal' financial practices in shaping the resilience of immigrant urban communities, many of which are centered around families-nuclear, extended, and chosen. It looks at financial transactions and services, with particular attention to Rotating Credit and Savings Associations (ROSCAs), whose members are frequently related to each other through ties of kinship, especially in Hispanic circles. In a pioneering study documenting ROSCAs, they were defined as associations where members agree to make regular contributions of money to a fund that is given to each contributor in rotation. Because of their presence in various cultures and geographies, researchers from various disciplines have studied them, mostly in developing countries and immigrant communities within the United States. It is argued that such mechanisms substitute or complement formal financial services that do not fulfill their needs and play a key role in the infrastructures of immigrant communities to be resilient in the face of adverse circumstances. Findings from the present study's fieldwork, conducted in one neighborhood in New York City's South Bronx, show that these kinds of groups address the members' short-term safety and resilience needs. However, given their low returns and unclear procedures to address wrongdoings, they entail higher risks for long term planning and social mobility. Nevertheless, given their persistent and organic nature across cultures and borders, they provide important insights to address those gaps and shed light on the contributions of family dynamics to the public domain.
C1 [Castro-Cosio, Antonieta] Duke Univ, Ctr Adv Hindsight, Durham, NC 27708 USA.
C3 Duke University
RP Castro-Cosio, A (corresponding author), Duke Univ, Ctr Adv Hindsight, Durham, NC 27708 USA.
EM toni.castrocosio@duke.edu
OI Castro-Cosio, Antonieta/0000-0003-0160-364X
FU CONACYT; MDRC
FX Funding was provided by CONACYT (Grant no. Doctoral studies
   scholarship), MDRC (Judith Gueron Doctoral Research Doc-toral
   Fellowship).
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NR 52
TC 1
Z9 1
U1 0
U2 2
PU SPRINGER INT PUBL AG
PI CHAM
PA GEWERBESTRASSE 11, CHAM, CH-6330, SWITZERLAND
SN 1058-0476
EI 1573-3475
J9 J FAM ECON ISS
JI J. Fam. Econ. Iss.
PD JUN
PY 2024
VL 45
IS 2
SI SI
BP 327
EP 342
DI 10.1007/s10834-023-09912-0
EA JUN 2023
PG 16
WC Economics; Family Studies
WE Social Science Citation Index (SSCI)
SC Business & Economics; Family Studies
GA QM8K9
UT WOS:001010700100001
DA 2025-04-22
ER

PT J
AU Visvanathan, G
   Patil, K
   Suryawanshi, Y
   Meshram, V
   Jadhav, S
AF Visvanathan, Girish
   Patil, Kailas
   Suryawanshi, Yogesh
   Meshram, Vishal
   Jadhav, Shrikant
TI Mitigating urban heat island and enhancing indoor thermal comfort using
   terrace garden
SO SCIENTIFIC REPORTS
LA English
DT Article
AB The United Nations advocates for sustainable urban planning and design, emphasizing green infrastructure initiatives to mitigate urban heat island effects and enhance the resilience and livability of cities globally. To address urban heat challenges, a study was conducted in Chennai, India, from April to June 2023. The study focused on assessing temperature dynamics on a building's terrace by comparing a well-maintained garden area with an exposed region. Temperature and humidity sensors were deployed in both the garden and exposed areas of the terrace, as well as within rooms beneath it, to monitor hourly temperature fluctuations. The findings indicate a significant reduction in internal room temperatures in areas with rooftop gardens, ranging from 4 to 11 degrees C, depending on the time of year and sun's position, compared to rooms with fully exposed roof configurations. Additionally, simulation studies were performed to validate these findings, suggesting that optimizing the distribution of soil beds and plant density across the roof could yield an additional temperature reduction of 3-4 degrees C, resulting in an overall difference of up to 14-15 degrees C. The study highlights the efficacy of rooftop gardens in providing cooling effects during daylight hours and maintaining temperature parity post-sunset. Through analysis of sensor data, the research elucidates the intricate relationship between green infrastructure and thermal comfort, offering insights for energy-efficient building design and resilient urban planning. The findings underscore the potential of rooftop gardens in fostering a more comfortable, energy-efficient, and sustainable urban living environment.
C1 [Visvanathan, Girish; Patil, Kailas; Suryawanshi, Yogesh] Vishwakarma Univ, Pune 411048, India.
   [Meshram, Vishal] Vishwakarma Inst Informat Technol, Pune 411048, India.
   [Jadhav, Shrikant] San Jose State Univ, San Jose, CA 95192 USA.
C3 California State University System; San Jose State University
RP Patil, K (corresponding author), Vishwakarma Univ, Pune 411048, India.; Jadhav, S (corresponding author), San Jose State Univ, San Jose, CA 95192 USA.
EM kailas.patil@vupune.ac.in; shrikant.jadhav@sjsu.edu
RI Meshram, Vishal/HOH-8961-2023; Patil, Kailas/ABI-6917-2020; Suryawanshi,
   Yogesh/AGD-5018-2022
OI Meshram, Vishal/0000-0001-9950-584X; Suryawanshi,
   Yogesh/0000-0002-1068-267X
FU Department of Energy Minority Serving Institution Partnership Program
   (EM-MSIPP) [658893]
FX This work was supported by the Department of Energy Minority Serving
   Institution Partnership Program (EM-MSIPP) managed by the Savannah River
   National Laboratory under BSRA contract 658893. We would like to express
   our sincere gratitude to the Chennai Resilience Centre (CRC) for
   allowing us to perform this research work. Their support and cooperation
   have been instrumental in conducting this study on the impact of terrace
   gardens with grow bags on temperature reduction in buildings. We are
   grateful for their valuable resources, guidance, and encouragement
   throughout the research process.
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NR 27
TC 3
Z9 3
U1 7
U2 12
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD APR 27
PY 2024
VL 14
IS 1
AR 9697
DI 10.1038/s41598-024-60546-0
PG 14
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA PV4Z4
UT WOS:001216857900002
PM 38678098
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Zhang, WT
   Yun, YX
AF Zhang, Weitao
   Yun, Yingxia
TI Multi-scale accessibility performance of shelters types with diversity
   layout in coastal port cities: A case study in Nagoya City, Japan
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Coastal port city; Earthquake-tsunami disaster; Emergency shelter;
   Diversity; Accessibility; Responsibility
ID CLIMATE-CHANGE; URBAN MORPHOLOGY; EVACUATION; RESILIENCE; VULNERABILITY;
   INTEGRATION; DISASTERS; IMPACTS; POWERS; TESTS
AB Besides facing threats from both earthquakes and tsunami, comprehensive coastal port cities have particularly high exposure and sensitivity to disaster risks. This study examined Nagoya City in Japan, one of the most advanced earthquake-tsunami hazard-resilient cities in the world. It first suggests that a diversity layout of seismic and tsunami shelters, which refers to they are laid out in a mixing and even situation, is an important targeted way for coastal port cities to respond to the earthquake-tsunami hazard risk. To estimate it, a Pearson correlation test was used to assess the relationship between shelter layout diversity and earthquake-tsunami risk. Next, it was studied the responsibilities' coordination and distribution of each type of shelter with respect to a diversity layout, using an accessibility performance analysis. This was done because accessibility is key to a shelter's ability to fulfill its functional responsibilities; different responsibilities are associated with different accessibility requirements. Specifically, it was divided evacuation traffic patterns into three scale accessibilities, corresponding to three response stages in space-time evacuation routes during an earthquake-tsunami scenario. Then, changes in the accessibility performance for each shelter type, across different shelter layout diversity levels, were analyzed using a one-way Multivariate Analysis of Variance. Results show that some types of shelters adjust their responsibilities based on the scale of accessibility, due to closer cooperation with other types of shelters having a higher diversity layout. However, they may only maintain their baseline responsibilities without affecting by a higher diversity in other scales of accessibility.
C1 [Zhang, Weitao; Yun, Yingxia] Tianjin Univ, Sch Architecture, Weijin Rd 92, Tianjin 300072, Peoples R China.
C3 Tianjin University
RP Zhang, WT (corresponding author), Tianjin Univ, Sch Architecture, Weijin Rd 92, Tianjin 300072, Peoples R China.
EM zwt2018@tju.edu.cn; yunyx@126.com
OI Zhang, Weitao/0000-0001-5087-9971
FU Major Project of China National Social Science Fund (2013): Study on
   Comprehensive Disaster Prevention Measure and Safety Strategy of Coastal
   City Based on Intelligent Technology [13ZD162]
FX This work was supported by the Major Project of China National Social
   Science Fund (2013): Study on Comprehensive Disaster Prevention Measure
   and Safety Strategy of Coastal City Based on Intelligent Technology
   [grant numbers 13&ZD162].
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U2 75
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD JAN
PY 2019
VL 83
BP 55
EP 64
DI 10.1016/j.habitatint.2018.11.002
PG 10
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA HK3MN
UT WOS:000457820700006
DA 2025-04-22
ER

PT J
AU Zhou, Q
   Zhu, MK
   Qiao, YR
   Zhang, XL
   Chen, J
AF Zhou, Qian
   Zhu, Mengke
   Qiao, Yurong
   Zhang, Xiaoling
   Chen, Jie
TI Achieving resilience through smart cities? Evidence from China
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Smart city; Urban resilience; Distribution effect; Technological effect;
   Structural effect; China
ID ECONOMIC RESILIENCE; BIG DATA; PERFORMANCE; SECURITY; PATTERNS;
   INTERNET; PRIVACY
AB Studies of the resilience of smart cities can provide new insights for the sustainable development of cities, with important practical significance for improving their carrying capacity, disaster resistance, and development capacity. However, despite the recent large-scale development of smart cities in China, it is still uncertain whether smart cities could effectively promote urban resilience. Exploiting the quasi-experimental nature of smart city development in China, this paper uses DID and PSM-DID to determine their impact on urban resilience. Four aspects of urban resilience are analyzed: economic resilience, social resilience, ecological resilience, and infrastructure resilience. The results show that the development of smart cities can improve social resilience considerably without any obvious effect on economic and ecological resilience and even negatively affect infrastructure resilience; the distribution effect, technological effect, and structural effect are important mechanisms for smart cities to influence urban resilience; and smart cities that have a sound industrial structure, enough good-quality companies, large size, and a large pool of highly-skilled labor are much more likely to be associated with a high level of urban resilience. Policy suggestions are also provided to promote the simultaneous improvement of smart cities and urban resilience, and hence help establish a new 'urban resilience' model.
C1 [Zhou, Qian] Zhongnan Univ Econ & Law, Econ Coll, Nanhu Ave 182, Wuhan 430073, Hubei, Peoples R China.
   [Zhu, Mengke; Qiao, Yurong] Zhengzhou Univ Light Ind, Sch Econ & Management, Zhengzhou 450000, Henan, Peoples R China.
   [Zhang, Xiaoling] City Univ Hong Kong, Dept Publ Policy, Hong Kong, Peoples R China.
   [Zhang, Xiaoling] City Univ Hong Kong, Shenzhen Res Inst, Shenzhen 518057, Peoples R China.
   [Chen, Jie] Shanghai Jiao Tong Univ, Sch Int & Publ Affairs & China Inst Urban Governa, Shanghai 200240, Peoples R China.
C3 Zhongnan University of Economics & Law; Zhengzhou University of Light
   Industry; City University of Hong Kong; City University of Hong Kong;
   Shenzhen Research Institute, City University of Hong Kong; Shanghai Jiao
   Tong University
RP Zhang, XL (corresponding author), City Univ Hong Kong, Dept Publ Policy, Hong Kong, Peoples R China.; Chen, J (corresponding author), Shanghai Jiao Tong Univ, Sch Int & Publ Affairs & China Inst Urban Governa, Shanghai 200240, Peoples R China.
EM Z0005072@zuel.edu.cn; 1696847595@qq.com; qiaoyurong9@163.com;
   xiaoling.zhang@cityu.edu.hk; chenjie100@sjtu.edu.cn
RI Zhu, Mengke/LXW-3217-2024; Zhang, Xiaoling/AAT-4795-2020; Chen,
   Jie/D-5868-2018
OI Chen, Jie/0000-0002-9254-4413; Zhang, Xiaoling/0000-0002-6369-9424
FU National Natural Science Foundation of China [NSFC71974125,
   NSFC71834005, NSFC71673232, NSFC71573166]; NSFC-ESRC Joint Funding
   [NSFC71661137004]; Research Grant Council of Hong Kong, China
   [CityU11271716, CityU 11612620]; CityU Internal Funds [9680195, 9610386]
FX This research is supported by the National Natural Science Foundation of
   China (NSFC71974125, NSFC71834005, NSFC71673232, and NSFC71573166) , the
   NSFC-ESRC Joint Funding (NSFC71661137004) , the Research Grant Council
   of Hong Kong, China (CityU11271716; CityU 11612620) , and the CityU
   Internal Funds (9680195 and 9610386) .
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Z9 128
U1 122
U2 777
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD MAY
PY 2021
VL 111
AR 102348
DI 10.1016/j.habitatint.2021.102348
EA MAR 2021
PG 15
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA SA2EI
UT WOS:000649112800004
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Fu, HY
   Hong, NA
   Liao, C
AF Fu, Haiyue
   Hong, Nana
   Liao, Chuan
TI Spatio-temporal patterns of Chinese urban recovery and system resilience
   under the pandemic new normal
SO CITIES
LA English
DT Article
DE Urban resilience; Urban recovery; Spatio-temporal patterns; COVID-19;
   China
ID VULNERABILITY; INDICATORS; MANAGEMENT; GEOGRAPHY
AB Enhancing urban resilience is an important measure to improve preparedness to public health challenges; therefore, understanding the patterns and determinants of urban recovery is of great significance for sustainable urban development under the pandemic new normal. We first propose an analytical framework of urban recovery capacity, and then apply the geographical detector model and geographic weighted regression model to investigate the dynamic characteristics of urban resilience and urban recovery capacity under the impact of COVID-19 in China. The results show that the overall pattern of vitality recovery follows the U-curve; however, the impact of COVID-19 on each region is significantly different, with the highest degree of recovery in the Northwest and East, and the lowest in the Central and West. The geographical detector model reveals that urban resilience indicators can predominantly explain the variations of urban recovery across cities. The geographically weighted regression model shows that environmental resilience, infrastructure resilience, and social resilience are positively correlated with urban recovery capacity, while economic resilience cannot improve urban recovery capacity in the short term. We suggest promoting urban system diversity and redundancy across different dimensions to enhance urban resilience, but caution that linearly promoting systemic redundancy might harm the long-term sustainability of resource allocations.
C1 [Fu, Haiyue; Hong, Nana] Nanjing Agr Univ, Coll Publ Adm, Nanjing 210095, Peoples R China.
   [Liao, Chuan] Cornell Univ, Dept Global Dev, Ithaca, NY 14853 USA.
   [Fu, Haiyue] China Resources & Environm & Dev Acad, Nanjing 210095, Peoples R China.
   [Fu, Haiyue] Minist Nat Resources, Key Lab Urban Land Resources Monitoring & Simulat, Shenzhen 518034, Peoples R China.
C3 Nanjing Agricultural University; Cornell University; Ministry of Natural
   Resources of the People's Republic of China
RP Fu, HY (corresponding author), Nanjing Agr Univ, Coll Publ Adm, Nanjing 210095, Peoples R China.; Fu, HY (corresponding author), China Resources & Environm & Dev Acad, Nanjing 210095, Peoples R China.; Fu, HY (corresponding author), Minist Nat Resources, Key Lab Urban Land Resources Monitoring & Simulat, Shenzhen 518034, Peoples R China.
EM fuhaiyue@njau.edu.cn
FU National Natural Science Foun-dation of China [72061137072, 41871319];
   Open Fund of Key Laboratory of Urban Land Resources Monitoring and
   Simulation, Min-istry of Natural Resources [KF-2022-07-026]
FX Acknowledgments This research was supported by the National Natural
   Science Foun-dation of China (72061137072, 41871319) and the Open Fund
   of Key Laboratory of Urban Land Resources Monitoring and Simulation,
   Min-istry of Natural Resources (KF-2022-07-026) .
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NR 61
TC 19
Z9 19
U1 29
U2 118
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD SEP
PY 2023
VL 140
AR 104385
DI 10.1016/j.cities.2023.104385
EA JUN 2023
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA K6EQ3
UT WOS:001017355200001
DA 2025-04-22
ER

PT J
AU Du, MB
   Zhang, XL
   Wang, YH
   Tao, L
   Li, H
AF Du, Mengbing
   Zhang, Xiaoling
   Wang, Yuhua
   Tao, Li
   Li, Heng
TI An operationalizing model for measuring urban resilience on land
   expansion
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Sustainability; Urban resilience; Land expansion; Operational model;
   Land use management; Urban planning
ID SUSTAINABILITY INDICATORS; LANDSCAPE-URBANIZATION; COMMUNITY RESILIENCE;
   ECOSYSTEM; CITIES; CHALLENGES; RESPONSES; INSIGHTS; IMPACTS; TIANJIN
AB Urban resilience is increasingly considered a useful approach to accommodate uncertainties. As an important material basis of the urban system, the land is one of the most promising intermediaries to observe urban resilience and is useful to shape resilience potential through land use management. However, current research into the quantitative assessment of urban resilience on land is underexplored, leaving it largely unpracticed in contemporary planning and policy discourse. Here, we introduce an operational model for understanding citylevel resilience on land expansion that integrates economic, social and environmental dimensions of ecosystems. Using multi-source data and employing spatial analysis methods, urban resilience is assessed from 1995 to 2015 in Tianjin, China as an illustration following the phases of the operational model. The results indicate that land expansion has a great influence on urban resilience, given economic resilience increases but simultaneous social and environmental resilience decrease. The findings suggest (i) urban resilience should be incorporated into the planning process that helps to balance the multiple tradeoffs involved; (ii) land use regulations are necessary to manage land by controlling the quantity and quality of land uses; (iii) local governments should be involved to make tailor-made strategies to enhance a concerted action of successful practice.
C1 [Du, Mengbing; Zhang, Xiaoling] City Univ Hong Kong, Dept Publ Policy, Kowloon Tong, Hong Kong, Peoples R China.
   [Zhang, Xiaoling] City Univ Hong Kong, Shenzhen Res Inst, Shenzhen, Peoples R China.
   [Wang, Yuhua] China Agr Univ, Coll Water Conservancy & Civil Engn, Beijing 100083, Peoples R China.
   [Tao, Li] Shanghai Univ, Sch Management, 333 Nanchen Rd, Shanghai, Peoples R China.
   [Li, Heng] Hong Kong Polytech Univ, Hung Hom, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
C3 City University of Hong Kong; City University of Hong Kong; Shenzhen
   Research Institute, City University of Hong Kong; China Agricultural
   University; Shanghai University; Hong Kong Polytechnic University
RP Wang, YH (corresponding author), China Agr Univ, Coll Water Conservancy & Civil Engn, Beijing 100083, Peoples R China.; Zhang, XL (corresponding author), City Univ Hong Kong, Dept Publ Policy, Kowloon, Tat Chee Ave, Hong Kong, Peoples R China.
EM xiaoling.zhang@cityu.edu.hk; wangyuhua@cau.edu.cn
RI Zhang, Xiaoling/AAT-4795-2020; Tao, Li/AAX-8802-2021; Li,
   Heng/B-2821-2015
OI Zhang, Xiaoling/0000-0002-6369-9424; Du, Mengbing/0000-0001-5823-895X;
   Li, Heng/0000-0002-3187-9041
FU National Natural Science Foundation of China [71834005, 71673232,
   71804105]; Research Grant Council of Hong Kong, China [CityU 11271716,
   CityU 21209715]; Strategic Priority Research Program of Chinese Academy
   of Sciences, Pan-Third Pole Environment Study for a Green Silk Road
   (Pan-TPE) [XDA20040400]; Hong Kong CityU Internal Funds [9680195,
   9610386]
FX The work was supported by grants from National Natural Science
   Foundation of China [grant numbers 71834005, 71673232, 71804105]; the
   Research Grant Council of Hong Kong, China [grant numbers CityU
   11271716, CityU 21209715]; the Strategic Priority Research Program of
   Chinese Academy of Sciences, Pan-Third Pole Environment Study for a
   Green Silk Road (Pan-TPE) [grant number XDA20040400]; and Hong Kong
   CityU Internal Funds [grant numbers 9680195, 9610386].
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NR 70
TC 39
Z9 40
U1 18
U2 155
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD AUG
PY 2020
VL 102
AR 102206
DI 10.1016/j.habitatint.2020.102206
PG 11
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA NH2DX
UT WOS:000564487300002
DA 2025-04-22
ER

PT J
AU Zhang, YL
   Jiang, XM
   Zhang, F
AF Zhang, Yunlan
   Jiang, Xiaomin
   Zhang, Feng
TI Urban Flood Resilience Assessment of Zhengzhou Considering Social Equity
   and Human Awareness
SO LAND
LA English
DT Article
DE urban flood resilience; urban resilience; resilience assessment; flood
   disaster; social media data
ID DISASTER-RESILIENCE; CLIMATE-CHANGE; COMMUNITIES; PROVINCE; INDEX
AB Flooding is one of the world's most devastating natural disasters, and the effects of global climate change further intensify its impact. In the context of flood management, urban resilience emerges as a promising perspective. While existing urban resilience assessment systems predominantly encompass economic, social, ecological, and infrastructural factors, they often neglect crucial dimensions like social equity and human awareness. We aimed to assess urban flood resilience considering social equity and human awareness. We have developed an indicator system called the 3-Dimentional Disaster Urban Flood Resilience Index System (3D-UFRIS) to address the issue. We also introduced social media data to explore the use of big data in urban flood resilience assessment. Scrapy was used to collect data and AHP-EWM was used to calculate the results. Our findings reveal a layered distribution of urban flood resilience of Zhengzhou, categorized into five levels: highest, higher, medium, lower, and lowest resilience. Notably, the highest resilience areas, covering a mere 3.06% of the total area, were primarily situated in the Jinshui district, characterized by strong economic activity, high public awareness, and a history of waterlogging incidents. Conversely, the lowest resilience areas, encompassing the largest portion at 36%, were identified in Zhongmou County, Xinzheng, and Shangjie District, marked by lower public awareness and limited medical accessibility. This study presents a pioneering approach to comprehending urban disaster resilience, offering valuable insights into mitigating flood-related risks and enhancing urban planning strategies.
C1 [Zhang, Yunlan; Zhang, Feng] Zhejiang Univ, Sch Earth Sci, 866 Yuhangtang Rd, Hangzhou 310058, Peoples R China.
   [Zhang, Yunlan; Zhang, Feng] Zhejiang Prov Key Lab Geog Informat Sci, 866 Yuhangtang Rd, Hangzhou 310058, Peoples R China.
   [Jiang, Xiaomin] Zhejiang Univ Sci & Technol, Sch Civil Engn & Architecture, 318 Liuhe Rd, Hangzhou 310023, Peoples R China.
C3 Zhejiang University; Zhejiang University of Science & Technology
RP Zhang, YL (corresponding author), Zhejiang Univ, Sch Earth Sci, 866 Yuhangtang Rd, Hangzhou 310058, Peoples R China.; Zhang, YL (corresponding author), Zhejiang Prov Key Lab Geog Informat Sci, 866 Yuhangtang Rd, Hangzhou 310058, Peoples R China.; Jiang, XM (corresponding author), Zhejiang Univ Sci & Technol, Sch Civil Engn & Architecture, 318 Liuhe Rd, Hangzhou 310023, Peoples R China.
EM 22038040@zju.edu.cn; jiangxiaomin@zust.edu.cn; zfcarnation@zju.edu.cn
OI Zhang, Feng/0000-0003-1475-8480; Jiang, Xiaomin/0000-0002-8982-8116
FU National Key R&D Program of China
FX No Statement Available
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NR 50
TC 4
Z9 4
U1 37
U2 87
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD JAN
PY 2024
VL 13
IS 1
AR 53
DI 10.3390/land13010053
PG 22
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA GG1V6
UT WOS:001151429700001
OA gold
DA 2025-04-22
ER

PT J
AU Khatibi, H
   Wilkinson, S
   Eriwata, G
   Sweya, LN
   Baghersad, M
   Dianat, H
   Ghaedi, K
   Javanmardi, A
AF Khatibi, Hamed
   Wilkinson, Suzanne
   Eriwata, Graham
   Sweya, Lukuba N.
   Baghersad, Mostafa
   Dianat, Heiman
   Ghaedi, Khaled
   Javanmardi, Ahad
TI An integrated framework for assessment of smart city resilience
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article
DE Resilient smart city; assessment tool; framework; hypothetical water
   supply system; city governance
ID DISASTER RESILIENCE; INDICATORS; CITIES; PERFORMANCE; SYSTEMS; TOOLS
AB Cities are becoming smarter in their functions; however, they are not necessarily resilient and able to survive the impact of disasters. An integrated, smart and resilient city is a quest for today and future sustainability that has been scarcely studied. Therefore, this current paper develops a comprehensive framework for re-evaluating cities' smartness and assessing their resilience against unforeseen disruptive events. A top-down approach is adopted with an expert's validation process and evaluated in a hypothetical city's water supply system to demonstrate its workability. The study contributes towards a holistic framework that includes smartness re-evaluation and resilience assessment components that can be used to ensure the resiliency of smart cities from both developed and developing countries resisting disasters.
C1 [Khatibi, Hamed; Baghersad, Mostafa; Dianat, Heiman] Univ Auckland, Auckland, New Zealand.
   [Khatibi, Hamed; Eriwata, Graham] Aimecs Engn Ltd, Auckland, New Zealand.
   [Wilkinson, Suzanne] Massey Univ, Auckland, New Zealand.
   [Sweya, Lukuba N.] Ardhi Univ, Dar Es Salaam, Tanzania.
   [Ghaedi, Khaled] Univ Malaya, PASOFAL Engn Grp, Kuala Lumpur, Malaysia.
   Fuzhou Univ, Fuzhou, Fujian, Peoples R China.
   [Javanmardi, Ahad] PASOFAL Engn Grp, Kuala Lumpur, Malaysia.
C3 University of Auckland; Massey University; Universiti Malaya; Fuzhou
   University
RP Khatibi, H (corresponding author), Univ Auckland, Fac Engn, Dept Civil & Environm Engn, 20 Symonds St, Auckland 1010, New Zealand.
EM h.khatibi@auckland.ac.nz
RI Ghaedi, Khaled/J-3643-2015; Sweya, Lukuba/AAX-1478-2021; Javanmardi,
   Ahad/AAH-7594-2019; Khatibi, Hamed/AAS-5181-2021; Wilkinson,
   Suzanne/AAI-1922-2020
OI Khatibi, Hamed/0000-0002-4486-1342; Sweya, Lukuba/0000-0002-1799-9549;
   Javanmardi, Ahad/0000-0003-0678-5227
FU Ministry of Business, Innovation and Employment (MBIE), New Zealand
FX This study was carried out as part of the CanConstructNZ Program, which
   was funded by the Ministry of Business, Innovation and Employment
   (MBIE), New Zealand.
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NR 70
TC 12
Z9 13
U1 19
U2 139
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 2399-8083
EI 2399-8091
J9 ENVIRON PLAN B-URBAN
JI Env. Plan. B-Urban Anal. City Sci.
PD JUN
PY 2022
VL 49
IS 5
BP 1556
EP 1577
AR 23998083221092422
DI 10.1177/23998083221092422
EA APR 2022
PG 22
WC Environmental Studies; Geography; Regional & Urban Planning; Urban
   Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration;
   Urban Studies
GA 1R0PN
UT WOS:000787551500001
DA 2025-04-22
ER

PT J
AU Chen, M
   Zeng, LJ
   Deng, YJ
   Chen, S
   Gu, X
AF Chen, Min
   Zeng, Longji
   Deng, Yajuan
   Chen, Shan
   Gu, Xin
TI The Impact of Land Marketization on Urban Resilience: Empirical Evidence
   from Chinese Cities
SO LAND
LA English
DT Article
DE urban resilience; land marketization; resource allocation; industrial
   structure optimization; technological innovation
ID RESEARCH-AND-DEVELOPMENT; MARKET; INNOVATION; REDUCTION; EMISSIONS;
   FINANCE
AB Enhancing urban resilience (UR) is the pivotal strategy for achieving sustainable development. Given that land serves as the cornerstone of urban activities, it is imperative to examine the relationship between land marketization (LM) and urban resilience amidst the profound market-oriented land reforms in China. After establishing the conceptual framework of urban resilience, this paper assesses the temporal and spatial dynamics and empirically investigates the impact of land marketization on urban resilience, drawing on data from 282 cities across China, spanning from 2001 to 2021. Our findings reveal several important insights. First, due to its public bidding and competitive pricing mechanisms, land marketization is a powerful measure to foster urban resilience and enables cities to flexibly respond to various challenges and changes. Second, the indirect mechanisms, including optimizing resource allocation, upgrading industrial structure, and fostering technological innovation, are crucial pathways through which land marketization affects urban resilience. Finally, the impact of land marketization on urban resilience varies across regions and city size. Cities with better geographic locations, larger population sizes, and lower administrative levels are more significantly affected than others. These findings reveal the importance of land marketization in strengthening urban resilience, thereby providing theoretical guidance and empirical references for cities to enhance urban resilience through land marketization.
C1 [Chen, Min; Deng, Yajuan; Chen, Shan; Gu, Xin] Sichuan Univ, Sch Business, Chengdu 610064, Peoples R China.
   [Zeng, Longji] Hunan Univ Sci & Technol, Sch Business, Xiangtan 411201, Peoples R China.
C3 Sichuan University; Hunan University of Science & Technology
RP Gu, X (corresponding author), Sichuan Univ, Sch Business, Chengdu 610064, Peoples R China.
EM chenmin9505@stu.scu.edu.cn; zenglongji612@stu.scu.edu.cn;
   dengyajuan@stu.scu.edu.cn; chenshan@stu.scu.edu.cn; guxin@scu.edu.cn
FU the National Natural Science Foundation of China [71971146]; National
   Natural Science Foundation of China
FX This study was funded by the National Natural Science Foundation of
   China (grant number 71971146).
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NR 90
TC 0
Z9 0
U1 19
U2 19
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD SEP
PY 2024
VL 13
IS 9
AR 1385
DI 10.3390/land13091385
PG 24
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA H4G5T
UT WOS:001323044200001
OA gold
DA 2025-04-22
ER

PT J
AU Pan, Y
   Liu, J
   Cheng, C
AF Pan, Yue
   Liu, Jie
   Cheng, Chao
TI Research on Urban Resilience from the Perspective of Land Intensive Use:
   Indicator Measurement, Impact and Policy Implications
SO BUILDINGS
LA English
DT Article
DE land intensive use; urban resilience; spatial hierarchical factor model;
   impacts
ID INEQUALITY; CITIES
AB Land intensive use reflects the spatial structure, agglomeration characteristics, and internal mechanisms of urban economic, social, and ecological system development, significantly impacting urban resilience. Based on panel data from 287 cities in China from 2010 to 2020, this paper measures the levels of land intensive use and urban resilience, and empirically examines the impact mechanism of land intensive use on urban resilience through baseline regression and panel quantile regression. The results reveal that: (1) During the study period, China's urban land intensive use level has significantly improved. The land intensive use level shows a trend of "the strong become stronger, and the weak are always weak" and "high in the east and low in the west" spatial differentiation, while the urban resilience level showed a trend of accelerated "catching up" of low-resilience cities towards high-resilience cities and "high in the east and low in the west" spatial differentiation as well. (2) Land intensive use significantly promotes effect on urban resilience, and the effect depends on different conditions. (3) Among all dimensions of land intensive use, both land input intensity and land use benefits significantly promote urban resilience, while land use intensity shows an insignificant effect. (4) The impact of land intensive use on urban resilience demonstrates significant scale heterogeneity and geographic regional heterogeneity. Based on these findings, the paper proposes relevant policy suggestions for land intensive use aimed at improving urban resilience, offering guidance for promoting high-quality land use and sustainable urban resilience development.
C1 [Pan, Yue; Liu, Jie] Wuhan Inst Technol, Sch Civil Engn & Architecture, Wuhan 430070, Peoples R China.
   [Cheng, Chao] Wuhan Inst Technol, Sch Management, Wuhan 430205, Peoples R China.
C3 Wuhan Institute of Technology; Wuhan Institute of Technology
RP Cheng, C (corresponding author), Wuhan Inst Technol, Sch Management, Wuhan 430205, Peoples R China.
EM 16083101@wit.edu.cn; 22304010089@stu.wit.edu.cn; 18028106@wit.edu.cn
FU National Natural Science Foundation of China;  [52278076]
FX This research was funded by the National Natural Science Foundation of
   China (52278076).
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NR 66
TC 2
Z9 2
U1 36
U2 44
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD AUG
PY 2024
VL 14
IS 8
AR 2564
DI 10.3390/buildings14082564
PG 26
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA E7W9U
UT WOS:001305082700001
OA gold
DA 2025-04-22
ER

PT J
AU Wu, WP
   Wang, ZJ
   Wu, KX
   Chen, YH
   Wang, SG
   Niu, XJ
AF Wu, Weiping
   Wang, Zhenjun
   Wu, Kexing
   Chen, Yinhua
   Wang, Saige
   Niu, Xiaojian
TI Urban resilience framework: A network-based model to assess the physical
   system reaction and disaster prevention
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Article
DE Urban resilience; Operational system; Disaster defensive system; Welfare
   losses; Complex network
ID EARTHQUAKE RESILIENCE; CITIES; CHALLENGES; COMPLEX; RISK
AB Comprehensive resilience management schemes are vital to urban risk governance and sustainable development. In this study, we decompose the urban physical system into the built environment subsystem (BES), information subsystem (IS), and metabolic flow subsystem (MFS), then construct a microscopic mechanism model of the urban system to quantify urban resilience, characterize the dynamics of urban resilience, and analyze the effect of network topology on urban resilience with the complex network method. The results provide several points: (1) There is a tipping point of the system, which crashes at 104.74% times the observed shock intensity in the case of Typhoon Morakot, taking the model parameters unchanged; (2) The topology of resource allocation network has a significant effect on urban resilience; (3) The externality of subsystem varies with the losses caused by negative shocks; and (4) The effects of network topology are contingent on the levels of urban resilience; therefore, for emergency management, city managers need to select resource allocation strategies based on urban resilience, by balancing the functional levels of operational and defensive parts. This study proposes a set of integrated management solutions based on resource deployment relationships among subsystems that can help urban systems better cope with shocks and increase resilience.
C1 [Wu, Weiping; Wang, Zhenjun; Chen, Yinhua] Hunan Univ Technol & Business, Sch Econ & Trade, Changsha, Peoples R China.
   [Wu, Weiping] Hunan Univ, Sch Econ & Trade, Changsha, Peoples R China.
   [Wu, Kexing] Shanghai Lixin Univ Accounting & Finance, Sch Finance, Shanghai, Peoples R China.
   [Wang, Saige] Univ Sci & Technol Beijing, Sch Energy & Environm Engn, Beijing, Peoples R China.
   [Niu, Xiaojian] Fudan Univ, Sch Econ, Shanghai, Peoples R China.
   [Wu, Weiping] Krirk Univ, Bangkok, Thailand.
   [Wang, Saige] Int Inst Appl Syst Anal, Adv Syst Anal ASA Program, Laxenburg, Austria.
C3 Hunan University of Technology & Business; Hunan University; Shanghai
   Lixin University of Accounting & Finance; University of Science &
   Technology Beijing; Fudan University; Krirk University; International
   Institute for Applied Systems Analysis (IIASA)
RP Wu, KX (corresponding author), Shanghai Lixin Univ Accounting & Finance, Sch Finance, Shanghai, Peoples R China.; Wang, SG (corresponding author), Univ Sci & Technol Beijing, Sch Energy & Environm Engn, Beijing, Peoples R China.
EM wukexing2023@163.com; wsgbnu@163.com
FU National Natural Science Foundation of China [72091511, 71903056,
   72103022]; MOE (Ministry of Education in China) Project of Humanities
   and Social Sciences [23YJC790153]; National Science Foundation for
   Postdoctoral Scientists of China [2020M672464, 2021M700460]; Natural
   Science Foundation of Hunan Province in China [2024JJ5117]; Scientific
   Research Project of Hunan Education Department in China [23A0487];
   Philosophy and Social Sciences Planning Project of Changsha in China
   [2024CSSKKT119]
FX This research is supported by the National Natural Science Foundation of
   China (Project No. 72091511, 71903056, 72103022) , MOE (Ministry of
   Education in China) Project of Humanities and Social Sciences (Project
   No. 23YJC790153) , National Science Foundation for Postdoctoral
   Scientists of China (Project No. 2020M672464, 2021M700460) , Natural
   Science Foundation of Hunan Province in China (Project No. 2024JJ5117) ,
   Scientific Research Project of Hunan Education Department in China
   (Grant No. 23A0487) , Philosophy and Social Sciences Planning Project of
   Changsha in China (Grant No.2024CSSKKT119) .
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NR 71
TC 4
Z9 4
U1 51
U2 73
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 0195-9255
EI 1873-6432
J9 ENVIRON IMPACT ASSES
JI Environ. Impact Assess. Rev.
PD NOV
PY 2024
VL 109
AR 107619
DI 10.1016/j.eiar.2024.107619
EA AUG 2024
PG 19
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA D2C4Y
UT WOS:001294315300001
DA 2025-04-22
ER

PT J
AU Esteban, TAO
   Edelenbos, J
AF Esteban, Theresa Audrey O.
   Edelenbos, Jurian
TI The politics of urban flood resilience: The case of Malabon city
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban resilience; Flood infrastructures; Politics of resilience;
   Collective engagement; Community resilience; Collective engagement urban
   resilience framework; Drivers of resilience; Philippines; Martial law
ID LEVEL
AB Policy-making bodies such as the UNISDR have frequently emphasized the role of community re-silience in disaster risk management. However, this community-centered approach to enhancing a city's resilience may overlook other critical variables. Few studies have been conducted on the city's process of building urban resilience, as well as the factors that impede or accelerate the re-silience process. This article aims to add to the body of literature on urban resilience processes by analyzing the disaster experience and urban resilience of Malabon City, a flood-prone city in Metro Manila's northwestern region. The purpose of this article is to answer the questions, "How does the process of urban resilience occur?", "What factors impede or accelerate the process of ur-ban resilience?" and "Why such factors impede or accelerate the process of urban resilience?" Furthermore, the article adds to the debate about how shifting the responsibility for resilience building to society and the community reduces government and political accountability to the people it is supposed to serve. The article will critically assess the policy environment surround-ing the flood infrastructure development in Metro Manila and how it gravely affected Malabon City. The case analysis demonstrates that urban resilience does not follow a linear pattern or a single equilibrium, but rather multiple equilibria of resilience building. It highlights that urban resilience is complex and considers the connections between and among sectors and dimensions within the city. The article indicates resilience as a value-laden and politically charged concept.
C1 [Esteban, Theresa Audrey O.] Delft Univ Technol, Fac Architecture, Julianalaan 134, NL-2628 BL Delft, Netherlands.
   [Esteban, Theresa Audrey O.; Edelenbos, Jurian] Erasmus Univ, Mandeville Bldg Room T15 10 POB 1738, NL-3000 BR Rotterdam, Netherlands.
C3 Delft University of Technology; Erasmus University Rotterdam; Erasmus
   University Rotterdam - Excl Erasmus MC
RP Esteban, TAO (corresponding author), Delft Univ Technol, Fac Architecture, Julianalaan 134, NL-2628 BL Delft, Netherlands.
EM t.a.esteban@tudelft.nl; edelenbos@essb.eur.nl
OI Esteban, Theresa Audrey/0000-0003-0340-4986
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PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD APR 1
PY 2023
VL 88
AR 103604
DI 10.1016/j.ijdrr.2023.103604
EA MAR 2023
PG 17
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA A4NV4
UT WOS:000954919600001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Sun, HH
   Zhen, F
   Lobsang, T
   Li, ZR
AF Sun, Honghu
   Zhen, Feng
   Lobsang, Tashi
   Li, Zherui
TI Spatial characteristics of urban life resilience from the perspective of
   supply and demand: A case study of Nanjing, China
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Urban resilience; Daily life; Supply and demand; Spatial
   characteristics; Big data; China
ID LIVELIHOOD RESILIENCE; COMMUNITY RESILIENCE; SUSTAINABILITY; FRAMEWORK;
   OPPORTUNITIES; CHALLENGES; METAPHOR; TOOL
AB The study of urban life resilience from the perspective of supply and demand and supported by spatial big data is an innovative attempt to investigate traditional related research topics, ideas and methods. On the basis of interpreting the connotation of resilience behind the main contradictions and urban transformation in China at present and introducing the perspective of supply and demand to shape the analysis framework of urban life resilience, this study takes Nanjing as a typical case to study the spatial characteristics of urban life resilience and proposes pertinent adjustment strategies with support from spatial big data. Results show the following. (1) Spatial differentiation among urban livelihood, activity and comprehensive life resilience is significant and presents a 'centre-periphery' spatial structure with different gradients that show increasing and decreasing trends. (2) Urban livelihood and activity resilience mainly show low-high spatial negative autocorrelation characteristics. Residents in central urban areas are more likely than others to pursue activity resilience, due to agglomeration, whereas residents in towns outside central urban areas are not greatly affected by urban life resilience due to the low level of population agglomeration. (3) The agglomeration characteristics of coupling coordination level are not significant as the distribution of low-level coupling coordination areas is mixed, with only the coupling coordination level of peripheral towns being slightly high. The strategy of improving urban life resilience should focus on priority, pertinence, cross-regional dynamic guidance, coordinated governance of related urban problems and the impact of new science and technology and urban development concepts.
C1 [Sun, Honghu; Zhen, Feng; Lobsang, Tashi; Li, Zherui] Nanjing Univ, Sch Architecture & Urban Planning, Nanjing, Jiangsu, Peoples R China.
   [Sun, Honghu; Zhen, Feng; Lobsang, Tashi; Li, Zherui] Nanjing Univ, Prov Engn Lab Smart City Design Simulat & Visuali, Nanjing, Jiangsu, Peoples R China.
C3 Nanjing University; Nanjing University
RP Zhen, F (corresponding author), Nanjing Univ, Sch Architecture & Urban Planning, Nanjing, Jiangsu, Peoples R China.
EM zhenfeng@nju.edu.cn
RI zhen, Feng/ABD-6136-2021
FU National Natural Science Foundation of China [41571146]
FX The National Natural Science Foundation of China (Grant No. 41571146)
   supported this research. The authors would like to thank Professor Zhen
   Feng for his careful and patient direction for this paper. The authors
   would also like to thank the reviewers.
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NR 43
TC 18
Z9 20
U1 9
U2 136
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD JUN
PY 2019
VL 88
AR 101983
DI 10.1016/j.habitatint.2019.05.002
PG 10
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA IH4WL
UT WOS:000474492700004
DA 2025-04-22
ER

PT J
AU Yang, JN
   Zhou, KL
   Hu, R
AF Yang, Jingna
   Zhou, Kaile
   Hu, Rong
TI City-level resilience assessment of integrated energy systems in China
SO ENERGY POLICY
LA English
DT Article
DE Urban integrated energy system; Resilience evaluation; Robustness;
   Restorability; Adaptability
ID SECURITY; PERFORMANCE; INDICATOR; CITIES
AB Urban integrated energy system (IES) plays a crucial role in both urban operation and energy transition. Nevertheless, urban IES is extremely vulnerable to extreme events. Therefore, resilience evaluation and enhancement of urban IES will be key towards both climate adaptation and carbon neutrality. Here, we evaluate the IES resilience of 287 cities in China, in terms of robustness, restorability and adaptability, from 2010 to 2019. We find that the median city-level IES resilience in China showed a slight decrease followed by an upward trend. Cities with higher and lower IES resilience values are mainly located in the northeast and southwest China, respectively. We further investigate the IES resilience of five urban agglomerations in China, the results show that the Beijing-Tianjin-Hebei urban agglomeration has the highest level of IES resilience. To reveal the similarity pattern of urban IES resilience, we divided the 287 cities into three groups and predicted the evolutionary trend of their IES resilience under different scenarios. The findings are critical for the resilience enhancement of urban IES and the city as a whole.
C1 [Yang, Jingna; Zhou, Kaile; Hu, Rong] Hefei Univ Technol, Sch Management, Hefei 230009, Peoples R China.
   [Yang, Jingna; Zhou, Kaile; Hu, Rong] Hefei Univ Technol, Key Lab Proc Optimizat & Intelligent Decis Making, Minist Educ, Hefei 230009, Peoples R China.
   [Yang, Jingna; Zhou, Kaile; Hu, Rong] Hefei Univ Technol, Anhui Prov Key Lab Philosophy & Social Sci Smart M, Hefei 230009, Peoples R China.
C3 Hefei University of Technology; Hefei University of Technology; Hefei
   University of Technology
RP Zhou, KL (corresponding author), Hefei Univ Technol, Sch Management, Hefei 230009, Peoples R China.
EM zhoukaile@hfut.edu.cn
RI Zhou, Kaile/AAR-7395-2020
FU National Natural Science Foundation of China [72242103, 72271071];
   Funda-mental Research Funds for the Central Universities
   [JZ2022HGPB0305]
FX This work is partially supported by the National Natural Science
   Foundation of China (Nos. 72242103 and 72271071) , and the Funda-mental
   Research Funds for the Central Universities (No. JZ2022HGPB0305) .
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NR 67
TC 3
Z9 3
U1 100
U2 117
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0301-4215
EI 1873-6777
J9 ENERG POLICY
JI Energy Policy
PD OCT
PY 2024
VL 193
AR 114294
DI 10.1016/j.enpol.2024.114294
EA AUG 2024
PG 14
WC Economics; Energy & Fuels; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Energy & Fuels; Environmental Sciences & Ecology
GA D2Z9Z
UT WOS:001294932300001
DA 2025-04-22
ER

PT J
AU Osei-Kyei, R
   Ampratwum, G
   Tam, VWY
   Komac, U
   Narbaev, T
AF Osei-Kyei, Robert
   Ampratwum, Godslove
   Tam, Vivian W. Y.
   Komac, Ursa
   Narbaev, Timur
TI Building Urban Community Resilience against Hazards through
   Public-Private Partnerships: A Review of Critical Resilience Strategies
SO BUILDINGS
LA English
DT Review
DE urban community; resilience; PPP; resilience strategies; systematic
   review
ID CRITICAL SUCCESS FACTORS; DISASTER RESILIENCE; CONSTRUCTION;
   PERSPECTIVES; MANAGEMENT; INNOVATION; DIFFUSION; LESSONS
AB The need for governments and stakeholders to find urgent solutions to address the destructive effects of disasters in urban areas has led to the call for cross-sector collaborations such as public-private partnerships to assist with the development of urban community resilience in this modern era. This paper comprehensively reviews studies on the critical strategies in using public-private partnerships as a collaboration mechanism in building urban community resilience. Through a two-stage systematic literature review process, 83 publications related to PPPs and urban community resilience were retrieved for thorough content analysis. Based on an analysis of the literature, 35 critical resilience strategies for using PPPs in building urban community resilience were derived. These strategies were further categorized into nine major groupings. These groups include vulnerability and risks assessment, information gathering, database, legal, monitoring and evaluation, resilience capacity, communication and coordination, financial incentives, and business continuity. Furthermore, a theoretical framework was developed. These resilience strategies can be adopted by states and communities that intend to use the PPP concept to build the resilience of their urban communities. It also opens the international debate on the suitability of the PPP model for community resilience building.
C1 [Osei-Kyei, Robert; Ampratwum, Godslove; Tam, Vivian W. Y.; Komac, Ursa] Western Sydney Univ, Sch Engn Design & Built Environm, Sydney, NSW 2747, Australia.
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C3 Western Sydney University; Polytechnic University of Turin
RP Osei-Kyei, R (corresponding author), Western Sydney Univ, Sch Engn Design & Built Environm, Sydney, NSW 2747, Australia.
EM r.osei-kyei@westernsydney.edu.au; 19618845@student.westernsydney.edu.au;
   v.tam@westernsydney.edu.au; u.komac@westernsydney.edu.au;
   timur.narbaev@polito.it
RI Narbaev, Timur/F-4948-2015; AMPRATWUM, GODSLOVE/JZE-3678-2024; Komac,
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OI Tam, Vivian/0000-0002-1074-8018; KOMAC, Ursa/0000-0002-8355-7386
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NR 63
TC 1
Z9 1
U1 20
U2 29
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD JUL
PY 2024
VL 14
IS 7
AR 1947
DI 10.3390/buildings14071947
PG 20
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA ZP5W7
UT WOS:001276523400001
OA gold
DA 2025-04-22
ER

PT J
AU Chelleri, L
   Waters, JJ
   Olazabal, M
   Minucci, G
AF Chelleri, Lorenzo
   Waters, James J.
   Olazabal, Marta
   Minucci, Guido
TI Resilience trade-offs: addressing multiple scales and temporal aspects
   of urban resilience
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE climate change adaptation; resilience trade-offs; scales; sustainability
   transition; urban resilience
ID CLIMATE-CHANGE; GLOBAL CHANGE; ADAPTATION; WATER; GLOBALIZATION;
   VULNERABILITY; PERSPECTIVE; MANAGEMENT; TRANSITION; COMPLEXITY
AB The concept of urban resilience has so far been related mainly to climate change adaptation and disaster management perspectives. Here we aim to broaden the discussion by showing how the framework of urban resilience should be related to wider sustainability challenges, including i) climate change and natural hazard threats, ii) unsustainable urban metabolism patterns and iii) increasing social inequalities in cities. Using three case studies (flood risk management in the Dutch polders, urban-rural teleconnections driving the Bolivian quinoa market, and spatial diversity in the adaptive capacity of Kampala slums),((1)) we draw out significant insights related to scales and sustainability, which will push urban resilience research forward. The key move is to consider both spatial and temporal interactions, in order to shift from the mainstreaming of the resilience-building paradigm toward a critical understanding and management of resilience trade-offs. While urban resilience emerges not necessarily as a normatively positive concept anymore, we argue that addressing multi-scale and temporal aspects of urban resilience will allow greater understanding of global sustainability challenges.
C1 [Chelleri, Lorenzo] Gran Sasso Sci Inst, Urban Studies Unit, I-67100 Laquila, Italy.
   [Waters, James J.] Univ E Anglia, Norwich NR4 7TJ, Norfolk, England.
   [Olazabal, Marta] Basque Ctr Climate Change BC3, Bilbao, Spain.
   [Minucci, Guido] Politecn Milan, Milan, Italy.
C3 Gran Sasso Science Institute (GSSI); University of East Anglia; Basque
   Centre for Climate Change (BC3); Polytechnic University of Milan
RP Chelleri, L (corresponding author), Gran Sasso Sci Inst, Urban Studies Unit, Viale F Crispi 7, I-67100 Laquila, Italy.
EM Lorenzo.chelleri@gssi.infn.it; jjj.waters@gmail.com;
   marta.olazabal@bc3research.org; guido.minucci@polimi.it
RI Minucci, Guido/O-2018-2019; Olazabal, Marta/AFT-6957-2022; Olazabal,
   Marta/C-3027-2008; Minucci, Guido/G-1175-2016
OI Olazabal, Marta/0000-0002-3381-0654; Minucci, Guido/0000-0001-7195-0239;
   Waters, James/0000-0001-9821-8080; Chelleri, Lorenzo/0000-0003-0229-5028
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NR 84
TC 280
Z9 297
U1 110
U2 648
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0956-2478
EI 1746-0301
J9 ENVIRON URBAN
JI Environ. Urban.
PD APR
PY 2015
VL 27
IS 1
BP 181
EP 198
DI 10.1177/0956247814550780
PG 18
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA CG0SQ
UT WOS:000352979200012
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Wang, HH
   Peng, G
   Du, HM
AF Wang, Haohui
   Peng, Gang
   Du, Hongmei
TI Digital economy development boosts urban resilience-evidence from China
SO SCIENTIFIC REPORTS
LA English
DT Article
AB Focusing on the impact of the digital economy on urban resilience is beneficial to the sustainable development of cities. This paper empirically examines the impact of digital economic development on urban resilience and its mechanisms by measuring urban resilience and the level of urban digital economy with the entropy-weighted TOPSIS method using the data of 252 Chinese cities from 2011 to 2020. The findings show that digital economic development effectively promotes urban resilience at the 1% significance level, and this conclusion remains valid after a series of endogeneity and robustness tests. The channel mechanism suggests that the development of the digital economy can improve urban resilience by optimizing urban distributional effects and promoting the upgrading of urban industrial structures. This paper discusses the nonlinear relationship between the two using the MMQR model and the threshold model. The results show that urban resilience development level is in a higher quartile of cities, and digital economy development has a greater impact on urban resilience improvement. Meanwhile, there are two threshold values for the nonlinear impact of the digital economy on urban resilience, which are 0.026 and 0.082, respectively. Further, the spatial effect between the two is also verified. From the perspective of heterogeneity analysis, the digital economy development of high-class cities, key city clusters, and cities in eastern and western regions has a greater effect on urban resilience. This study can provide ideas and inspiration for countries to enhance urban resilience and promote sustainable urban development through the development of the digital economy.
C1 [Wang, Haohui; Peng, Gang] Southwestern Univ Finance & Econ, Sch Stat, Chengdu, Sichuan, Peoples R China.
   [Du, Hongmei] China Univ Geosci, Sch Publ Adm, Wuhan, Hubei, Peoples R China.
C3 Southwestern University of Finance & Economics - China; China University
   of Geosciences
RP Wang, HH (corresponding author), Southwestern Univ Finance & Econ, Sch Stat, Chengdu, Sichuan, Peoples R China.; Du, HM (corresponding author), China Univ Geosci, Sch Publ Adm, Wuhan, Hubei, Peoples R China.
EM 120020208002@smail.swufe.edu.cn; 1202221411@cug.edu.cn
FU Youth Project of National Social Science Fund [18CTJ005]; Youth Project
   of the National Social Science Fund of China
FX This research was funded by the Youth Project of the National Social
   Science Fund of China (18CTJ005).
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NR 73
TC 19
Z9 19
U1 56
U2 111
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD FEB 5
PY 2024
VL 14
IS 1
AR 2925
DI 10.1038/s41598-024-52191-4
PG 15
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA XO1T3
UT WOS:001262541100011
PM 38316874
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Wang, YT
   Meng, FL
   Liu, HX
   Zhang, C
   Fu, GT
AF Wang, Yuntao
   Meng, Fanlin
   Liu, Haixing
   Zhang, Chi
   Fu, Guangtao
TI Assessing catchment scale flood resilience of urban areas using a grid
   cell based metric
SO WATER RESEARCH
LA English
DT Article
DE Grid cell; Flood resilience; Flood severity; System performance; Urban
   surface flooding
ID FRAMEWORK; RISK; IMPACT; INDEX; MODEL
AB Urban flooding has become a global issue due to climate change, urbanization and limitation in the capacity of urban drainage infrastructures. To tackle the growing threats, it is crucial to understand urban surface flood resilience, i.e., how urban drainage catchments can resist against and recover from flooding. This study proposes a grid cell based resilience metric to assess urban surface flood resilience at the urban drainage catchment scale. The new metric is defined as the ratio of the number of unflooded grid cells to the total grid cell number in an urban drainage catchment. A two-dimensional Cellular Automata based model CADDIES is used to simulate urban surface flooding. This methodology is demonstrated using a case study in Dalian, China, which is divided into 31 urban drainage catchments for flood resilience analysis. Results show the high resolution resilience assessment identifies vulnerable catchments and helps develop effective adaptation strategies to enhance urban surface flood resilience. Comparison of the new metric with an existing metric reveals that new metric has the advantage of fully reflecting the changing process of system performance. Effectiveness of adaptation strategies for enhancing urban surface flood resilience is discussed for different catchments. This study provides a new way to characterize urban flood resilience and an in-depth understanding of flood resilience for urban drainage catchments of different characteristics, and thus help develop effective intervention strategies for sustainable sponge city development. (C) 2019 The Authors. Published by Elsevier Ltd.
C1 [Wang, Yuntao; Liu, Haixing; Zhang, Chi] Dalian Univ Technol, Sch Hydraul Engn, Dalian 116024, Peoples R China.
   [Wang, Yuntao; Meng, Fanlin; Fu, Guangtao] Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, North Pk Rd,Harrison Bldg, Exeter EX4 4QF, Devon, England.
C3 Dalian University of Technology; University of Exeter
RP Zhang, C (corresponding author), Dalian Univ Technol, Sch Hydraul Engn, Dalian 116024, Peoples R China.; Meng, FL (corresponding author), Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, North Pk Rd,Harrison Bldg, Exeter EX4 4QF, Devon, England.
EM M.Fanlin@exeter.ac.uk; czhang@dlut.edu.cn
RI Fu, Guangtao/ABE-3874-2021; Wang, Yuntao/ABI-6556-2022
OI Fu, Guangtao/0000-0003-1045-9125; Wang, Yuntao/0000-0002-6907-8645
FU UK Engineering and Physical Sciences Research Council under the Building
   Resilience into Risk Management project [EP/N010329/1]; China
   Scholarship Council; EPSRC [EP/H015736/1, EP/N010329/1] Funding Source:
   UKRI; NERC [NE/K008765/1] Funding Source: UKRI
FX This research was funded by the UK Engineering and Physical Sciences
   Research Council under the Building Resilience into Risk Management
   project (EP/N010329/1). The first author was funded by the China
   Scholarship Council.
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NR 43
TC 86
Z9 96
U1 30
U2 352
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0043-1354
J9 WATER RES
JI Water Res.
PD OCT 15
PY 2019
VL 163
AR 114852
DI 10.1016/j.watres.2019.114852
PG 12
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA IT6SZ
UT WOS:000483006400010
PM 31325702
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Kong, L
   Mu, XZ
   Hu, GW
   Zhang, Z
AF Kong, Li
   Mu, Xianzhong
   Hu, Guangwen
   Zhang, Zheng
TI The application of resilience theory in urban development: a literature
   review
SO ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
LA English
DT Review; Early Access
DE Resilience; Urban development; Sustainable development; Bibliometric
   analysis; Visualization analysis; Development tendency
ID CLIMATE-CHANGE; COMMUNITY RESILIENCE; DISASTER RESILIENCE; NETWORK
   RESILIENCE; SYSTEM RESILIENCE; RAIL TRANSIT; CITIES; FRAMEWORK; ENERGY;
   CITY
AB In the complex context of urbanization and climate change, how to improve the resilience of cities to deal with various uncertain and unpredictable threats is a new topic with both theoretical and practical challenges. In this paper, the researches on urban resilience are summarized using the bibliometric analysis combined with the visualization analysis. We provide a systematic and objective review of resilience applied to urban development focusing on its conceptual frameworks, research tendencies, and assessment methods. The analysis results demonstrate that an increasing attention has been given to urban resilience, especially in the field of climate change. The degree of research varies significantly in different countries, with the USA dominating in the number of publications, followed by the UK and China. Scholars' attention to urban resilience in different periods is closely related to the development background and disasters experienced by their countries, but there are also some commonalities. Meanwhile, the multi-dimensional research on urban resilience has been recognized by many scholars. Quantitative assessment tools such as simulation model and optimization model have been widely used to assess the level of urban resilience. Based on this, we put forward the future research trends in this field and provide a potential guide for future application of urban resilience.
C1 [Kong, Li; Mu, Xianzhong; Hu, Guangwen; Zhang, Zheng] Beijing Univ Technol, Fac Mat & Mfg, Pingle Garden 100, Beijing 100124, Peoples R China.
C3 Beijing University of Technology
RP Mu, XZ (corresponding author), Beijing Univ Technol, Fac Mat & Mfg, Pingle Garden 100, Beijing 100124, Peoples R China.
EM 1229505805@qq.com; mu_bjutredps@163.com; hugw@bjut.edu.cn;
   xxhwzz@sina.cn
RI Kong, Li/AAP-2608-2020
FU National Natural Science Foundation of China "Total Factor Energy
   Efficiency Improvement and Policy Simulation for Industrial &
   Residential Circular-linked System" [72174015]; China Postdoctoral
   Science Foundation "Simulation and Optimization for Energy
   output-oriented Cities under the Perspective of Metabolic Evolution"
   [2021M690273]; Beijing Postdoctoral Foundation "Simulation and
   Optimization for Beijing's green energy system under the Neutral-Carbon
   target''
FX This work was supported by the National Natural Science Foundation of
   China "Total Factor Energy Efficiency Improvement and Policy Simulation
   for Industrial & Residential Circular-linked System" (72174015); the
   China Postdoctoral Science Foundation "Simulation and Optimization for
   Energy output-oriented Cities under the Perspective of Metabolic
   Evolution" (2021M690273); and the Beijing Postdoctoral Foundation
   "Simulation and Optimization for Beijing's green energy system under the
   Neutral-Carbon target."
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NR 211
TC 33
Z9 34
U1 54
U2 342
PU SPRINGER HEIDELBERG
PI HEIDELBERG
PA TIERGARTENSTRASSE 17, D-69121 HEIDELBERG, GERMANY
SN 0944-1344
EI 1614-7499
J9 ENVIRON SCI POLLUT R
JI Environ. Sci. Pollut. Res.
PD 2022 MAY 23
PY 2022
DI 10.1007/s11356-022-20891-x
EA MAY 2022
PG 21
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 1N9TO
UT WOS:000800988800003
PM 35604608
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Su, QM
   Chang, HS
   Pai, SE
AF Su, Qingmu
   Chang, Hsueh-Sheng
   Pai, Shin-En
TI A Comparative Study of the Resilience of Urban and Rural Areas under
   Climate Change
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE resilience indicator; climate change; evaluation system; urban-rural
   differences; binary logistic regression
ID INDICATORS; VULNERABILITY
AB The impact of climate change in recent years has caused considerable risks to both urban and rural systems. How to mitigate the damage caused by extreme weather events has attracted much attention from countries in recent years. However, most of the previous studies on resilience focused on either urban areas or rural areas, and failed to clearly identify the difference between urban and rural resilience. In fact, the exploration of the difference between the resilience characteristics of cities and villages under climate change can help to improve the planning strategy and the allocation of resources. In this study, the indicators of resilience were firstly built through a literature review, and then a Principal Component Analysis was conducted to construct an evaluation system involving indicators such as "greenland resilience", "community age structure resilience", "traditional knowledge resilience", "infrastructure resilience" and "residents economic independence resilience". Then the analysis of Local Indicators of Spatial Association showed some resilience abilities are concentrated in either urban or rural. Binary logistic regression was performed, and the results showed urban areas have more prominent abilities in infrastructure resilience (the coefficient value is 1.339), community age structure resilience (0.694), and greenland resilience (0.3), while rural areas are more prominent in terms of the residents economic independence resilience (-0.398) and traditional knowledge resilience (-0.422). It can be seen that urban areas rely more on the resilience of the socio-economic structure, while rural areas are more dependent on their own knowledge and economic independence. This result can be used as a reference for developing strategies to improve urban and rural resilience.
C1 [Su, Qingmu] Fujian Univ Technol, Sch Architecture & Planning, Fuzhou 350118, Peoples R China.
   [Chang, Hsueh-Sheng; Pai, Shin-En] Natl Cheng Kung Univ, Dept Urban Planning, Tainan 70101, Taiwan.
C3 Fujian University of Technology; National Cheng Kung University
RP Chang, HS (corresponding author), Natl Cheng Kung Univ, Dept Urban Planning, Tainan 70101, Taiwan.
EM martain@foxmail.com; changhs@mail.ncku.edu.tw; p26074193@mail.ncku.edu
RI Su, Qingmu/AAH-8478-2021
OI Su, Qingmu/0000-0002-7020-8806
FU Fujian University of Technology [GY-Z22039]
FX The research start-up fund project of the Fujian University of
   Technology (No. GY-Z22039).
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NR 39
TC 16
Z9 18
U1 29
U2 162
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD AUG
PY 2022
VL 19
IS 15
AR 8911
DI 10.3390/ijerph19158911
PG 14
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 3R8JV
UT WOS:000839153200001
PM 35897290
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Li, HW
   Xu, EQ
   Zhang, HQ
AF Li, Hongwei
   Xu, Erqi
   Zhang, Hongqi
TI High-resolution assessment of urban disaster resilience: a case study of
   Futian District, Shenzhen, China
SO NATURAL HAZARDS
LA English
DT Article
DE High-resolution; Grid; Urban disaster resilience; Exponential decay
   function; Futian District of Shenzhen
ID ANALYTIC NETWORK PROCESS; COMMUNITY RESILIENCE; CLIMATE RESILIENCE;
   NATURAL DISASTERS; SOCIAL RESILIENCE; VULNERABILITY; RISK; FRAMEWORK;
   HAZARDS; MODEL
AB Quantifying urban disaster resilience is needed to strengthen the capacity of urban disaster prevention and mitigation strategies. In previous studies, the spatial unit used for urban disaster resilience assessment was coarse, which could easily cause local differences to be overlooked. To rectify the problem, this study integrated high spatial-resolution urban grid data and built an index system from economic, social, administrative, and technological dimensions. On this basis, both exponential decay function and spatial analysis techniques were applied to establish a high-precision evaluation method of urban disaster resilience. The results showed that the urban disaster resilience of Futian District (FTUDRI) had a certain spatial aggregation effect, with an average of 0.37 +/- 0.08, which was at a middle level. Areas with low and middle-low levels of FTUDRI which accounted for 27.28% were mainly located in the western, northern, and southern edges of Futian District, with undeveloped economy and inadequate emergency infrastructures. We considered the neighborhood impact of point indicators on urban disaster resilience and the results indicated if we neglected this there would be an underestimation of the urban disaster resilience assessment. Hospitals, administrations, and emergency material points were key driving indicators for improving FTUDRI. In conclusion, our results demonstrated the necessity of pursuing high-resolution urban disaster resilience assessments and the effectiveness of the newly proposed method. The results of this study can provide policymakers with a clear location of where a low level of urban disaster resilience occurs, providing a basis for urban disaster prevention and improvement measures.
C1 [Li, Hongwei; Xu, Erqi; Zhang, Hongqi] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Land Surface Pattern & Simulat, Beijing 100101, Peoples R China.
   [Li, Hongwei] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Geographic Sciences & Natural
   Resources Research, CAS; Chinese Academy of Sciences; University of
   Chinese Academy of Sciences, CAS
RP Xu, EQ; Zhang, HQ (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Land Surface Pattern & Simulat, Beijing 100101, Peoples R China.
EM xueq@igsnrr.ac.cn; zhanghq@igsnrr.ac.cn
RI Li, Hongwei/HPG-4378-2023
FU National Key R&D Program of China [2017YFC1503003, 2018YFC1508801]
FX This work was supported by the National Key R&D Program of China
   (2017YFC1503003, 2018YFC1508801).
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NR 81
TC 6
Z9 6
U1 16
U2 129
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD AUG
PY 2021
VL 108
IS 1
BP 1001
EP 1024
DI 10.1007/s11069-021-04717-6
EA APR 2021
PG 24
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA TQ9PP
UT WOS:000636172700003
DA 2025-04-22
ER

PT J
AU Shi, CC
   Zhu, XP
   Wu, HW
   Li, ZH
AF Shi, Chenchen
   Zhu, Xiaoping
   Wu, Haowei
   Li, Zhihui
TI Urbanization Impact on Regional Sustainable Development: Through the
   Lens of Urban-Rural Resilience
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE land use change; urbanization; urban-rural system; Beijing-Tianjin-Hebei
   urban agglomeration
ID FRAMEWORK; VULNERABILITY
AB The urban-rural system is an economically, socially, and environmentally interlinked space, which requires the integration of industry, space, and population. To achieve sustainable and coordinated development between urban and rural systems, dynamic land use change within the urban-rural system and the ecological and social consequences need to be clarified. This study uses system resilience to evaluate such an impact and explores the impact of land use change, especially land conversion induced by urbanization on regional development through the lens of urban-rural resilience. The empirical case is based on the Beijing-Tianjin-Hebei Urban Agglomeration (BTHUA) in China from 2000 to 2020 when there was rapid urbanization in this region. The results show that along with urbanization in the BTHUA, urban-rural resilience is high in urban core areas and low in peripheral areas. From the urban core to the rural outskirts, there is a general trend that comprehensive resilience decreases with decreased social resilience and increased ecological resilience in this region. Specifically, at the city level, comprehensive resilience decreases sharply from the urban center to its 3-5 km buffer zone and then remains relatively stable in the rural regions. A similar trend goes for social resilience at the city level, while ecological resilience increases sharply from the urban center to its 1-3 km buffer zone, and then remains relatively stable in the rural regions in this region, except for cities in the west and south of Hebei. This study contributes to the conceptualization and measurement of urban-rural resilience in the urban-rural system with empirical findings revealing the impact of rapid urbanization on urban-rural resilience over the last twenty years in the BTHUA in China. In addition, the spatial heterogeneity results could be used for policy reference to make targeted resilience strategies in the study region.
C1 [Shi, Chenchen] Capital Univ Econ & Business, Sch Urban Econ & Publ Adm, Beijing 100070, Peoples R China.
   [Shi, Chenchen; Wu, Haowei; Li, Zhihui] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Land Surface Pattern & Simulat, Beijing 100101, Peoples R China.
   [Shi, Chenchen] Capital Univ Econ & Business, Beijing Key Lab Megareg Sustainable Dev Modeling, Beijing 100070, Peoples R China.
   [Zhu, Xiaoping] Hebei Normal Univ Sci & Technol, Coll Agron & Biotechnol, Qinhuangdao 066104, Hebei, Peoples R China.
   [Wu, Haowei; Li, Zhihui] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Wu, Haowei] Beijing Forestry Univ, Sch Soil & Water Conservat, Beijing 100083, Peoples R China.
C3 Capital University of Economics & Business; Chinese Academy of Sciences;
   Institute of Geographic Sciences & Natural Resources Research, CAS;
   Capital University of Economics & Business; Hebei Normal University of
   Science & Technology; Chinese Academy of Sciences; University of Chinese
   Academy of Sciences, CAS; Beijing Forestry University
RP Shi, CC (corresponding author), Capital Univ Econ & Business, Sch Urban Econ & Publ Adm, Beijing 100070, Peoples R China.; Shi, CC; Li, ZH (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Land Surface Pattern & Simulat, Beijing 100101, Peoples R China.; Shi, CC (corresponding author), Capital Univ Econ & Business, Beijing Key Lab Megareg Sustainable Dev Modeling, Beijing 100070, Peoples R China.; Li, ZH (corresponding author), Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
EM ccshi@cueb.edu.cn; lizhihui@igsnrr.ac.cn
RI Wu, Haowei/JLL-8572-2023; zhu, xiaoping/A-3979-2013; li,
   zh/HII-5698-2022; Shi, Chenchen/JMC-4424-2023
OI Shi, Chenchen/0000-0002-8608-668X; Wu, Haowei/0000-0002-3235-6437; Li,
   Zhihui/0000-0002-3051-6580
FU National Natural Science Foundation of China [72104149]; Academy of
   Metropolis Economic and Social Development at Capital University of
   Economics and Business [ZSXM2021003]; Capital University of Economics
   and Business: The Fundamental Research Funds for Beijing Universities
   [XRZ2021048, QNTD202009]
FX This research was funded by the National Natural Science Foundation of
   China, grant number 72104149; Academy of Metropolis Economic and Social
   Development at Capital University of Economics and Business, grant
   number ZSXM2021003; Capital University of Economics and Business: The
   Fundamental Research Funds for Beijing Universities, grant numbers
   XRZ2021048 and QNTD202009.
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NR 62
TC 12
Z9 13
U1 16
U2 113
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD NOV
PY 2022
VL 19
IS 22
AR 15407
DI 10.3390/ijerph192215407
PG 17
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 6K2UO
UT WOS:000887364100001
PM 36430124
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Wang, HF
   Cao, Y
   Wu, XH
   Zhao, A
   Xie, Y
AF Wang, Hefeng
   Cao, Yuan
   Wu, Xiaohu
   Zhao, Ao
   Xie, Yi
TI Estimation and Potential Analysis of Land Population Carrying Capacity
   in Shanghai Metropolis
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE urban land carrying capacity; population estimation; land use space;
   potential analysis; Shanghai Metropolis
ID GROWTH; AREAS; CHINA; MODEL
AB It is of great practical significance to understand the current situation of urban land carrying capacity, explore its potential space, and continuously improve the economic adaptability and resilience and population carrying capacity of megacities. Based on the guiding principle of territorial spatial division and the concept of moderate-scale resilient cities, combined with GIS technology, this study aims to divide land spaces into three types and construct different index systems to evaluate the land carrying capacity of Shanghai in different spaces. Furthermore, we propose different schemes of estimating subspace land population carrying capacity, and the carrying potential of land population is analysed as well. The acquired results demonstrate three key points. Firstly, the total land population capacity of Shanghai is estimated at 25,476.61-32,047.27 people, with urban land space being the most dominant for the city's population carrying capacity. Furthermore, the inner suburbs carry the largest population, and the urban centre carries a larger population density than other areas. Secondly, there are significant spatial differences in land population carrying potential. Compared with the demographic data from 2017, Shanghai still has a population carrying potential of 1293.30-7863.97 people and a suitable population carrying potential of 4578.64 people. The population of the urban centre is near the upper limit of the estimated population carrying capacity, and the suburbs, especially the outer suburbs, have large population carrying potential. Thirdly, the estimation method adopted in this study can effectively reveal the spatial differences in population carrying capacity and the potential of different land spaces and different regions in Shanghai, with the estimation results being highly credible. The results will provide references for the improvement of the multi-scenario population planning strategy in Shanghai, as well as enrich the research span and methods currently employed in land carrying capacity.
C1 [Wang, Hefeng; Cao, Yuan; Wu, Xiaohu; Zhao, Ao; Xie, Yi] Hebei Univ Engn, Sch Min & Geomat Engn, Handan 056038, Peoples R China.
C3 Hebei University of Engineering
RP Cao, Y (corresponding author), Hebei Univ Engn, Sch Min & Geomat Engn, Handan 056038, Peoples R China.
EM wanghefeng@hebeu.edu.cn; caoyuanyusn86@163.com; wuxiaohu1027@163.com;
   18171895455@163.com; xieyihue@126.com
RI wu, xiaohu/KGK-3862-2024
OI wu, xiaohu/0000-0001-7705-2616; WANG, Hefeng/0000-0003-2713-0756
FU Humanities & Social Sciences Youth Fund of Ministry of Education of
   China [19YJCZH155]; Key Project of Educational Commission of Hebei
   Province of China [ZD2020312]
FX This research was funded by Humanities & Social Sciences Youth Fund of
   Ministry of Education of China (No. 19YJCZH155) and Key Project of
   Educational Commission of Hebei Province of China (No. ZD2020312).
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NR 47
TC 3
Z9 3
U1 10
U2 73
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD JUL
PY 2022
VL 19
IS 14
AR 8240
DI 10.3390/ijerph19148240
PG 20
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 3I0VJ
UT WOS:000832444200001
PM 35886094
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Qiao, H
   Pei, JJ
AF Qiao, Han
   Pei, Jingjing
TI Urban Stormwater Resilience Assessment Method Based on Cloud Model and
   TOPSIS
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE resilience; indicator; evaluation system; cloud model; TOPSIS
ID DISASTER RISK REDUCTION; COMMUNITY RESILIENCE; FLOOD RESILIENCE;
   DECISION-MAKING; CLIMATE-CHANGE; INDEX; STRATEGIES
AB To scientifically and quantitatively evaluate the degree of urban storm resilience and improve the level of urban stormwater resilience, based on the resilience theory, starting from the three attributes of resilience (resistance, recovery and adaptability), this paper establishes the framework of urban resilience evaluation indicator system under the background of stormwater disaster. Firstly, the weight of the indicator system is analyzed by the Delphi method and cloud model, and then the urban stormwater recilience evaluation model is constructed by using the cloud model and approximate ideal solution ranking method. Through the fuzzy description, the corresponding quantitative value is given to the qualitative indicator, so that the stormwater resilience of the city can be measured by accurate values. Finally, the feasibility of the model is verified by case analysis. The results show that the urban stormwater resilience evaluation theory and method based on cloud model and approximate ideal solution ranking method have important guiding significance to improve the level of urban stormwater resilience.
C1 [Qiao, Han; Pei, Jingjing] China Univ Geosci, Sch Engn & Technol, Beijing 100083, Peoples R China.
C3 China University of Geosciences
RP Pei, JJ (corresponding author), China Univ Geosci, Sch Engn & Technol, Beijing 100083, Peoples R China.
EM 2102200047@cugb.edu.cn; Peijj@cugb.edu.cn
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NR 28
TC 32
Z9 33
U1 22
U2 227
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD JAN
PY 2022
VL 19
IS 1
AR 38
DI 10.3390/ijerph19010038
PG 16
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA YE6SF
UT WOS:000741252200001
PM 35010306
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Mulligan, J
   Bukachi, V
   Clause, JC
   Jewell, R
   Kirimi, F
   Odbert, C
AF Mulligan, Joe
   Bukachi, Vera
   Clause, Jack Campbell
   Jewell, Rosie
   Kirimi, Franklin
   Odbert, Chelina
TI Hybrid infrastructures, hybrid governance: New evidence from Nairobi
   (Kenya) on green-blue-grey infrastructure in informal settlements "Urban
   hydroclimatic risks in the 21st century: Integrating engineering,
   natural, physical and social sciences to build resilience"
SO ANTHROPOCENE
LA English
DT Article
DE Green infrastructure; Urban drainage; Hybrid infrastructure; Governance;
   Participation; Climate vulnerability; Informal settlements; Community
   leadership
ID DAR-ES-SALAAM; ECOSYSTEM SERVICES; SMALL TOWNS; PARTICIPATION;
   ADAPTATION; LANDSCAPES; FRAMEWORK; AFRICA; CITIES
AB In expanding informal neighborhoods of cities in sub-Saharan Africa, sustainable management of storm and wastewater drainage is fundamental to improving living conditions. Planners debate the optimal combination between "green" or natural infrastructure, traditional "grey" infrastructure, and "blue" infrastructure, which mimics natural solutions using artificial materials. Many advocate for small-scale, niche experiments with these approaches in informal settings, in order to learn how to navigate the intrinsic constraints of space, contested land tenure, participation, and local maintenance. This paper reports the benefits and limitations of implementing and managing local green, blue and grey infrastructure solutions in an urban informal setting. We studied ten completed public space projects that featured urban drainage infrastructure in the informal neighborhood of Kibera, Nairobi. The analysis drew from ten surveys with project designers and seven semi-structured interviews with site managers. The studied spaces featured different combinations of green, grey, and blue drainage infrastructure that have evolved over years of operation, maintenance, and change in the settlement. All projects featured participation in design, mixed design methods, hybrid infrastructure, and community governance models with potential to interact successfully with municipal actors. Results show that involvement in the co-development of small-scale green infrastructure changed people's valuation, perception, and stewardship of nature-based systems and ecosystem services. These results have implications for the larger scale adoption, integration, and management of urban drainage infrastructure. They also suggest that hybrid systems of infrastructure and governance constitute a resilient approach to incremental and inclusive upgrading. (C) 2019 Elsevier Ltd. All rights reserved.
C1 [Mulligan, Joe] KTH Royal Inst Technol, Div Strateg Sustainabil Studies, Asogatan 198,Lgh 1002, S-11632 Stockholm, Sweden.
   [Mulligan, Joe] Kounkuey Design Initiat, Asogatan 198,Lgh 1002, S-11632 Stockholm, Sweden.
   [Bukachi, Vera; Clause, Jack Campbell; Kirimi, Franklin] Kounkuey Design Initiat, Maserah House, Nairobi, Kenya.
   [Jewell, Rosie; Odbert, Chelina] Kounkuey Design Initiat, 309 E 8th St,205, Los Angeles, CA 90014 USA.
C3 Royal Institute of Technology
RP Mulligan, J (corresponding author), KTH Royal Inst Technol, Div Strateg Sustainabil Studies, Asogatan 198,Lgh 1002, S-11632 Stockholm, Sweden.; Mulligan, J (corresponding author), Kounkuey Design Initiat, Asogatan 198,Lgh 1002, S-11632 Stockholm, Sweden.
EM joe@kounkuey.org; vera@kounkuey.org; jack@kounkuey.org;
   chelina@kounkuey.org; frank@kounkuey.org; chelina@kounkuey.org
OI Bukachi, Vera/0000-0003-0448-1983
FU Sida; Swedish Research Council
FX Collaboration on the paper was enabled under the Sida and Swedish
   Research Council funded "Community-Responsive Adaptation" research
   project in 2017-2019 with Stockholm University, KTH Royal Institute of
   Technology, Lund University, and KDI. The idea for this paper was
   sparked at the American Ecological Engineering Society's 2017 annual
   meeting in Athens, Georgia.
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NR 88
TC 56
Z9 56
U1 7
U2 100
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 2213-3054
J9 ANTHROPOCENE
JI Anthropocene
PD MAR
PY 2020
VL 29
AR 100227
DI 10.1016/j.ancene.2019.100227
PG 17
WC Environmental Sciences; Geography, Physical; Geosciences,
   Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Physical Geography; Geology
GA KU2YE
UT WOS:000519573000003
OA Green Published
DA 2025-04-22
ER

PT J
AU Liao, LP
   Du, MZ
   Huang, J
AF Liao, Liping
   Du, Minzhe
   Huang, Jie
TI The Effect of Urban Resilience on Residents' Subjective Happiness:
   Evidence from China
SO LAND
LA English
DT Article
DE urban resilience; principal component analysis; mechanism analysis;
   residents' subjective happiness
ID REGIONAL RESILIENCE; LIFE SATISFACTION; ECONOMIC RESILIENCE; HEALTH;
   RECESSION; CRISIS; IMPACT; INCOME; CITIES
AB This study aims to analyze the role of urban resilience in residents' subjective happiness in China. Results show that the overall urban resilience is a critical factor in improving residents' subjective happiness, and each sub-class resilience index of cities in the ecological, social, infrastructure, and economic aspects shows positive and significant correlations with residents' subjective happiness. Heterogeneous results show that the effect of urban resilience is greater for residents with higher education or living in cities with larger population size. The mechanism results show that four possible channels are confirmed. The rise of urban resilience raises residents' subjective happiness through increasing residents' income or consumption, improving their health status, and raising their social trust or social integration. The main conclusion drawn from the empirical analysis is that raising urban resilience is an effective strategy to strengthen residents' subjective happiness.
C1 [Liao, Liping] Guangdong Univ Finance & Econ, Sch Publ Finance & Taxat, Dept Asset Appraisal, Guangzhou 510320, Peoples R China.
   [Du, Minzhe] South China Normal Univ, Sch Econ & Management, Inst Econ & Management Res, Guangzhou 510006, Peoples R China.
   [Huang, Jie] Xinyang Normal Univ, Business Sch, Dept Econ, Xinyang 464000, Peoples R China.
C3 Guangdong University of Finance & Economics; South China Normal
   University; Xinyang Normal University
RP Du, MZ (corresponding author), South China Normal Univ, Sch Econ & Management, Inst Econ & Management Res, Guangzhou 510006, Peoples R China.
EM mzdu@m.scnu.edu.cn
RI Du, Minzhe/JOV-2399-2023
OI huang, jie/0009-0009-8230-1424
FU National Natural Science Foundation of China [72103048, 72003071,
   72203197]
FX This paper was supported by grants from the National Natural Science
   Foundation of China (72103048, 72003071, 72203197).
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NR 47
TC 11
Z9 12
U1 18
U2 84
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD NOV
PY 2022
VL 11
IS 11
AR 1896
DI 10.3390/land11111896
PG 19
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 6F2EK
UT WOS:000883880800001
OA gold
DA 2025-04-22
ER

PT J
AU Zhang, MM
   Chen, WG
   Cai, K
   Gao, X
   Zhang, XS
   Liu, JX
   Wang, ZY
   Li, DS
AF Zhang, Maomao
   Chen, Weigang
   Cai, Kui
   Gao, Xin
   Zhang, Xuesong
   Liu, Jinxiang
   Wang, Zhiyuan
   Li, Deshou
TI Analysis of the Spatial Distribution Characteristics of Urban Resilience
   and Its Influencing Factors: A Case Study of 56 Cities in China
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE urban resilience; spatial distribution; influencing factor; spatial
   regression model; 56 cities
ID HEAT-ISLAND; URBANIZATION; REGRESSION; SYSTEM; SUSTAINABILITY;
   VULNERABILITY; PREDICTION; EVOLUTION; NETWORKS; IMPACTS
AB The healthy development of the city has received widespread attention in the world, and urban resilience is an important issue in the study of urban development. In order to better provide a useful reference for urban resilience and urban health development, this paper takes 56 cities in China as the research object, and selects 29 indicators from urban infrastructure, economy, ecology and society. The combination weight method, exploratory spatial data analysis (ESDA) and spatial measurement model are used to explore the spatial distribution of urban resilience and its influencing factors. From 2006 to 2017, the urban resilience of prefecture-level cities in the four provinces showed a wave-like rise. During the study period, the urban resilience values, measured as Moran's Is, were greater than 0.3300, showing a significantly positive correlation in regard to their spatial distribution. Regarding the local spatial correlation, the urban resilience of the study area had spatial agglomeration characteristics within the province, with a significant distribution of "cold hot spots" in the spatial distribution. From the perspective of the factors that affected urban resilience, the proportion of the actual use of foreign capital in GDP and carbon emissions per 10,000 CNY of GDP had a negative impact and GDP per square kilometer, the proportion of urban pension insurance coverage, the proportion of the population with higher education, and expenditure to maintain and build cities had a positive impact. The development strategy of urban resilience must be combined with the actual situation of the region, and the rational resilience performance evaluation system and the top-level design of urban resilience improvement should be formulated to comprehensively improve urban resilience.
C1 [Zhang, Maomao; Zhang, Xuesong; Li, Deshou] Hubei Prov Key Lab Geog Proc Anal & Simulat, Wuhan 430079, Hubei, Peoples R China.
   [Zhang, Maomao; Zhang, Xuesong; Li, Deshou] Cent China Normal Univ, Coll Urban & Environm Sci, Wuhan 430079, Hubei, Peoples R China.
   [Chen, Weigang; Wang, Zhiyuan] Univ South China, Sch Architecture, Hengyang 421001, Peoples R China.
   [Cai, Kui] Hebei GEO Univ, Inst Geol Survey, Shijiazhuang 050031, Hebei, Peoples R China.
   [Gao, Xin] Hohai Univ, Business Sch, Nanjing 211100, Jiangsu, Peoples R China.
   [Liu, Jinxiang] Univ South China, Sch Civil Engn, Hengyang 421001, Peoples R China.
C3 Central China Normal University; University of South China; Hebei GEO
   University; Hohai University; University of South China
RP Zhang, XS (corresponding author), Hubei Prov Key Lab Geog Proc Anal & Simulat, Wuhan 430079, Hubei, Peoples R China.; Zhang, XS (corresponding author), Cent China Normal Univ, Coll Urban & Environm Sci, Wuhan 430079, Hubei, Peoples R China.; Liu, JX (corresponding author), Univ South China, Sch Civil Engn, Hengyang 421001, Peoples R China.
EM zhangxuesong@mail.ccnu.edu.cn; wennie@mails.ccnu.edu.cn
RI Zhang, Maomao/CAG-4615-2022
OI Zhang, Maomao/0000-0001-8075-7967; Wang, Zhiyuan/0009-0000-2747-4570
FU Open Fund Project for the Key Laboratory of the National Bureau of
   Surveying and Mapping Information and Geography of China [2014NGCM03]
FX This research was funded by Open Fund Project for the Key Laboratory of
   the National Bureau of Surveying and Mapping Information and Geography
   of China (2014NGCM03).
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NR 76
TC 54
Z9 54
U1 23
U2 277
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD NOV
PY 2019
VL 16
IS 22
AR 4442
DI 10.3390/ijerph16224442
PG 22
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA JV0KZ
UT WOS:000502057400139
PM 31726787
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Chen, N
   Tang, XL
   Liu, WH
AF Chen, Ning
   Tang, Xiaolin
   Liu, Weihui
TI Urban Disaster Risk Prevention and Mitigation Strategies from the
   Perspective of Climate Resilience
SO WIRELESS COMMUNICATIONS & MOBILE COMPUTING
LA English
DT Article
AB Enhancing urban climate resilience and innovating urban risk governance model are of great significance to promote the security development of cities. This paper discusses urban disaster risk prevention and mitigation strategies from the perspective of climate resilience. The urban climate resilience index system is constructed through text mining. The entropy weight TOPSIS (Technique for Order Preference by Similarity to an Ideal Solution) method and obstacle degree model are used to measure the climate resilience index and identify the main obstacle factors that affect the improvement of urban climate resilience. This provides a quantitative representation method for the analysis of urban climate resilience and clarifies the contribution of climate resilience to urban disaster risk prevention and mitigation, as well as the key and difficult points of urban disaster risk prevention and mitigation. Therefore, based on the quantitative analysis of climate resilience, this paper puts forward disaster risk prevention and mitigation strategies from five aspects: collaborative governance, urban planning, early warning system, scientific and technological empowerment, and disaster education. It is expected to provide a reference for the urban system to maintain green, low-carbon, and high-quality development under climate change.
C1 [Chen, Ning; Tang, Xiaolin; Liu, Weihui] Zhongnan Univ Econ & Law, Sch Informat & Safety Engn, Wuhan 430073, Hubei, Peoples R China.
   [Chen, Ning; Tang, Xiaolin] Zhongnan Univ Econ & Law, Inst Environm Management & Policy, Wuhan 430073, Hubei, Peoples R China.
C3 Zhongnan University of Economics & Law; Zhongnan University of Economics
   & Law
RP Chen, N (corresponding author), Zhongnan Univ Econ & Law, Sch Informat & Safety Engn, Wuhan 430073, Hubei, Peoples R China.; Chen, N (corresponding author), Zhongnan Univ Econ & Law, Inst Environm Management & Policy, Wuhan 430073, Hubei, Peoples R China.
EM safetychn@zuel.edu.cn
OI Chen, Ning/0000-0001-6607-1758; Liu, Weihui/0000-0002-0477-6645; Tang,
   Xiaolin/0000-0002-6469-6196
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NR 39
TC 1
Z9 1
U1 21
U2 126
PU WILEY-HINDAWI
PI LONDON
PA ADAM HOUSE, 3RD FL, 1 FITZROY SQ, LONDON, WIT 5HE, ENGLAND
SN 1530-8669
EI 1530-8677
J9 WIREL COMMUN MOB COM
JI Wirel. Commun. Mob. Comput.
PD AUG 21
PY 2022
VL 2022
AR 4907084
DI 10.1155/2022/4907084
PG 13
WC Computer Science, Information Systems; Engineering, Electrical &
   Electronic; Telecommunications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering; Telecommunications
GA 4L8QX
UT WOS:000852895700021
OA gold
DA 2025-04-22
ER

PT J
AU Jiao, YF
   Song, D
   Meng, QM
AF Jiao, Yafei
   Song, Dian
   Meng, Qiuming
TI The Impact of the National Civilized City Evaluation on Urban Resilience
   from the Perspective of Administrative Competition
SO SUSTAINABILITY
LA English
DT Article
DE national civilized city evaluation; urban resilience; digital economy;
   quasi-natural experiment; spatial spillover
ID CHALLENGE; MODEL
AB Resilience refers to a city's ability to withstand risks. Research into the impacts of Chinese urban governance models on urban resilience is limited; thus, in this study, we used a difference-in-differences approach and a spatial spillover model to examine the effects of the national civilized city evaluation on urban resilience based on data from 263 prefecture-level cities in China from 2009 to 2019. Data analysis results indicate that the national civilized city evaluation not only enhances urban resilience but also promotes the urban resilience levels of neighboring cities. Furthermore, a city's digital economy can strengthen the effects of the national civilized city evaluation on its urban resilience. Our conclusions suggest that the government should refine the national civilized city evaluation system, coordinate digital economic development, optimize the spatial layouts of cities, and better utilize the urban governance efficacy of the evaluation.
C1 [Jiao, Yafei] Nanjing Univ, Sch Philosophy, Nanjing 210093, Peoples R China.
   [Song, Dian; Meng, Qiuming] Soochow Univ, Sch Polit Sci & Publ Adm, Suzhou 215006, Peoples R China.
C3 Nanjing University; Soochow University - China
RP Meng, QM (corresponding author), Soochow Univ, Sch Polit Sci & Publ Adm, Suzhou 215006, Peoples R China.
EM jyfszwe@163.com; diansnow@suda.edu.cn; 20224202046@stu.suda.edu.cn
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   Zhu Z., 2021, Public Adm. Policy Rev, V10, P22
   Zou YH, 2024, PUBLIC ADMIN REV, V84, P637, DOI 10.1111/puar.13678
NR 63
TC 0
Z9 0
U1 7
U2 7
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB
PY 2025
VL 17
IS 4
AR 1763
DI 10.3390/su17041763
PG 21
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA Y4I8L
UT WOS:001431789300001
OA gold
DA 2025-04-22
ER

PT J
AU Lu, RC
   Yang, ZH
AF Lu, Ruocan
   Yang, Zhihui
TI Analysis on the structure and economic resilience capacity of China's
   regional economic network
SO APPLIED ECONOMICS
LA English
DT Article
DE Urban agglomeration; social network analysis; smart city; economic
   resilience
ID KNOWLEDGE NETWORKS; CITY
AB This paper analyzes the heterogeneous influence of economic networks on urban economic resilience capacity from different network characteristics, providing an innovative research perspective and theoretical framework for the economic resilience capacity of urban clusters. The urban economic elasticity is measured by multiple indicators and constructed economic network using night light data, the complex network approach was combined with spatial econometrics to analyse the contribution of economic network linkages and economic network locations to regional economic resilience capacity. The results show that: urban economic network linkage has a significant positive impact on urban economic resilience capacity, and the polycentric pattern of urban clusters has a driving effect on this impact; in contrast, the influence of urban network location on economic resilience capacity has an inverted u-shaped curve. Compared with non-smart cities, regions in smart cities are better able to promote urban economic resilience capacity through economic networks, and the impact of economic networks on regional economic resilience capacity has network external spillover effects beyond geographical distance, The results of the study infer that cities in urban agglomeration should rationalize network locations, and build a coordinated urban agglomeration network structure to enhance economic resilience capacity of the regional economy.
C1 [Lu, Ruocan; Yang, Zhihui] Anhui Univ Finance & Econ, Sch Stat & Appl Math, Bengbu, Anhui, Peoples R China.
   [Yang, Zhihui] Anhui Univ Finance & Econ, Anhui Prov Key Lab Econ Stat, Bengbu, Anhui, Peoples R China.
   [Yang, Zhihui] Anhui Univ Finance & Econ, Sch Stat & Appl Math, Bengbu 233030, Anhui, Peoples R China.
C3 Anhui University of Finance & Economics; Anhui University of Finance &
   Economics; Anhui University of Finance & Economics
RP Yang, ZH (corresponding author), Anhui Univ Finance & Econ, Sch Stat & Appl Math, Bengbu 233030, Anhui, Peoples R China.
EM zhi-hui-yang@163.com
FU National Natural Science Foundation of China [71974001]; SSF of Ministry
   of Education of China [21YJAZH081]; Top Talent Project in Anhui Province
   [gxyqZD2020087]; NSF of Anhui Province [2108085MA04]
FX The work was supported by the~National Natural Science Foundation of
   China [71974001]; The SSF of Ministry of Education of China
   [21YJAZH081]; The Top Talent Project in Anhui Province [gxyqZD2020087];
   The NSF of Anhui Province [2108085MA04]
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NR 59
TC 15
Z9 16
U1 69
U2 370
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0003-6846
EI 1466-4283
J9 APPL ECON
JI Appl. Econ.
PD JUL 8
PY 2024
VL 56
IS 32
BP 3920
EP 3938
DI 10.1080/00036846.2023.2208852
EA MAY 2023
PG 19
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA PZ5J3
UT WOS:000982585700001
DA 2025-04-22
ER

PT J
AU Carvalho, D
   Martins, H
   Marta-Almeida, M
   Rocha, A
   Borrego, C
AF Carvalho, D.
   Martins, H.
   Marta-Almeida, M.
   Rocha, A.
   Borrego, C.
TI Urban resilience to future urban heatwaves under a climate change
   scenario: A case study for Porto urban area (Portugal)
SO URBAN CLIMATE
LA English
DT Article
DE Heat resilience; Green roofs; White roofs; Urban parks; Urban atlas;
   CORINE land cover
ID HEAT-ISLAND; CANOPY MODEL; GREEN ROOF; LAYER; WRF; SIMULATIONS;
   TEMPERATURE; EXTREMES; QUALITY; EUROPE
AB This work aimed to assess the effectiveness of several resilience strategies to mitigate extreme urban heat episodes in Porto (Portugal). Different resilience scenarios were studied with the WRF urban modelling system, using as case-study a future heat wave occurring in Porto urban area. The resilience factors considered were the increase of urban green areas and the application of cool (green and white) roofs. The results showed that the most effective resilience strategies to mitigate high urban temperatures are the application of cool roofs. These resilience strategies produced the strongest reduction in the average and maximum surface temperatures over Porto urban area under a future heat wave. Considering that white roofs are considerably easier and cheaper to apply in urban areas than green roofs, this resilience strategy can be seen as the most viable, cost-effective and economically attractive approach for mitigating extreme urban temperatures. This study proposed several different urban resilience strategies to extreme temperature episodes for the first time for Porto urban area, proved their effectiveness and compared their ability to reduce urban heat. Such findings can be of great importance for Porto urban planning stakeholders given the expected increase in the heat waves frequency and intensity in future climate. (C) 2016 Elsevier B.V. All rights reserved.
C1 [Carvalho, D.; Martins, H.; Borrego, C.] Univ Aveiro, Dept Environm & Planning, CESAM, Campus Univ Santiago, P-3810193 Aveiro, Portugal.
   [Marta-Almeida, M.; Rocha, A.] Univ Aveiro, Dept Phys, CESAM, Campus Univ Santiago, P-3810193 Aveiro, Portugal.
   [Carvalho, D.] NASA, Goddard Space Flight Ctr, GMAO, Greenbelt, MD 20771 USA.
   [Carvalho, D.] Univ Space Res Assoc, Goddard Earth Sci Technol & Res, Columbia, MD 21046 USA.
C3 Universidade de Aveiro; Universidade de Aveiro; National Aeronautics &
   Space Administration (NASA); NASA Goddard Space Flight Center;
   Universities Space Research Association (USRA)
RP Carvalho, D (corresponding author), Univ Aveiro, Dept Environm & Planning, CESAM, Campus Univ Santiago, P-3810193 Aveiro, Portugal.; Carvalho, D (corresponding author), NASA, Goddard Space Flight Ctr, GMAO, Greenbelt, MD 20771 USA.; Carvalho, D (corresponding author), Univ Space Res Assoc, Goddard Earth Sci Technol & Res, Columbia, MD 21046 USA.
EM david.carvalho@ua.pt; hmartins@ua.pt; mma@ua.pt; alfredo.rocha@ua.pt;
   c.borrego@ua.pt
RI Carvalho, David/B-5299-2012; rocha, alfredo/E-1201-2011; Martins,
   Helena/J-4557-2013; Marta-Almeida, Martinho/C-1715-2008
OI Carvalho, David/0000-0001-9306-5142; rocha, alfredo/0000-0003-4940-6522;
   Martins, Helena/0000-0001-8430-0446; Marta-Almeida,
   Martinho/0000-0001-8214-3096
FU project CLICURB - Urban atmospheric quality, climate change and
   resilience [EXCL/AAG-MAA/0383/2012-FCOMP-027379]; European Regional
   Development Fund (ERDF) through programme COMPETE; Portuguese Foundation
   for Science and Technology (FCT); FCT [SFRH/BPD/ 66874/2009]; Fundação
   para a Ciência e a Tecnologia [SFRH/BPD/66874/2009] Funding Source: FCT
FX This work was supported by the project CLICURB - Urban atmospheric
   quality, climate change and resilience
   (EXCL/AAG-MAA/0383/2012-FCOMP-027379), funded by the European Regional
   Development Fund (ERDF) through the programme COMPETE and by the
   Portuguese Foundation for Science and Technology (FCT). The authors also
   wish to thank FCT for financing the post-doctoral grant of H. Martins
   (SFRH/BPD/ 66874/2009).
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NR 44
TC 78
Z9 87
U1 30
U2 196
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD JAN
PY 2017
VL 19
BP 1
EP 27
DI 10.1016/j.uclim.2016.11.005
PG 27
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA FF7HX
UT WOS:000409188200001
DA 2025-04-22
ER

PT J
AU Shi, YF
   Zhang, TL
   Jiang, YF
AF Shi, Yufang
   Zhang, Tianlun
   Jiang, Yufeng
TI Digital Economy, Technological Innovation and Urban Resilience
SO SUSTAINABILITY
LA English
DT Article
DE digital economy; technological innovation; urban resilience; spatial
   spillover
AB As an emerging economic form, the digital economy is a crucial force in promoting high-quality economic development, resolving regional development incoherence, and improving the level of urban resilience. In this paper, the urban resilience indicator system is composed of four dimensions: social resilience, economic resilience, infrastructure resilience, and ecological resilience. Meanwhile, the digital economy indicator system is composed of five dimensions: Internet penetration rate, number of Internet-related employees, Internet-related output, number of mobile Internet users, and digital financial inclusion development. The development level was measured using the entropy value method and principal component analysis. On this basis, the impact of the digital economy on the urban resilience of 185 prefecture-level cities in China from 2011 to 2019 was analyzed using a benchmark regression model, spatial econometric model, and mediating effect model. This study shows the following: (1) The development of the digital economy has a positive impact on improving urban resilience. (2) The digital economy affects urban resilience with positive spatial spillover effects, and the temporal heterogeneity and heterogeneity of external openness levels are significant, while the regional heterogeneity is not significant. (3) The digital economy can improve urban resilience through the intermediary role of technological innovation. In the future, we should strengthen digital construction, deeply integrate the relationship between the digital economy, technological innovation, and urban resilience, give full play to the engine role of the digital economy, and further promote the enhancement of sustainable urban development.
C1 [Shi, Yufang; Zhang, Tianlun; Jiang, Yufeng] Xian Univ Sci & Technol, Sch Management, Xian 710054, Peoples R China.
C3 Xi'an University of Science & Technology
RP Zhang, TL (corresponding author), Xian Univ Sci & Technol, Sch Management, Xian 710054, Peoples R China.
EM shiyufangguoguo@163.com; zhangtianlun985@163.com; jiangyf0219@163.com
RI Jiang, Yufeng/AAV-5669-2020
OI jiang, yu feng/0009-0004-9906-2216
FU National Natural Science Foundation of China (Youth Fund) Project
   [70901065]; Ministry of Education Humanities and Social Sciences
   Planning Fund Project [21YJA630078]; Soft Science Project of Science and
   Technology Department of Shaanxi Province [2021KPM149]; Xi'an Soft
   Science Project [21RKYJ0015]
FX This research was supported by the National Natural Science Foundation
   of China (Youth Fund) Project (grant number 70901065); the Ministry of
   Education Humanities and Social Sciences Planning Fund Project (grant
   number 21YJA630078); the Soft Science Project of Science and Technology
   Department of Shaanxi Province (grant number 2021KPM149); and the Xi'an
   Soft Science Project (grant number 21RKYJ0015).
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NR 47
TC 52
Z9 52
U1 175
U2 687
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2023
VL 15
IS 12
AR 9250
DI 10.3390/su15129250
PG 19
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA K3VZ4
UT WOS:001015762200001
OA gold
DA 2025-04-22
ER

PT J
AU Xu, H
   Li, Y
   Tan, YT
   Deng, NH
AF Xu, Hui
   Li, Yang
   Tan, Yongtao
   Deng, Ninghui
TI A Scientometric Review of Urban Disaster Resilience Research
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Review
DE urban disaster resilience; sustainable development; vulnerability;
   resilience assessment; keyword statistics
AB Natural disasters and human-made disasters are threatening urban areas globally. The resilience capacity of the urban system plays an important role in disaster risk response and recovery. Strengthening urban disaster resilience is also fundamental to ensuring sustainable development. Various practices and research for enhancing urban disaster resilience have been carried out worldwide but are yet to be reviewed. Accordingly, this paper gives a scientometric review of urban disaster resilience research by using CiteSpace. The time span (January 2001-January 2021) was selected and divided into three phases based on the number of publications. In addition, according to keyword statistics and clustering results, the collected articles are grouped into four hotspot topics: disaster risk reduction, specific disaster resilience research, resilience assessment, and combination research. The results show that most of the existing research is in the first two categories, and articles in the second and fourth categories both show a high growth rate and could be further research directions. The review indicates that urban disaster resilience is essential for a city's sustainable development. Moreover, the findings provide scholars a full picture of the existing urban disaster resilience research which can help them identify promising research directions. The findings can also help urban government officials and policymakers review current urban disaster management strategies and make further improvements.
C1 [Xu, Hui; Li, Yang; Deng, Ninghui] Chongqing Univ Posts & Telecommun, Sch Econ & Management, Chongqing 400065, Peoples R China.
   [Tan, Yongtao] RMIT Univ, Sch Engn, Melbourne, Vic 3001, Australia.
C3 Chongqing University of Posts & Telecommunications; Royal Melbourne
   Institute of Technology (RMIT)
RP Xu, H (corresponding author), Chongqing Univ Posts & Telecommun, Sch Econ & Management, Chongqing 400065, Peoples R China.
EM xuhui@cqupt.edu.cn; s180701025@stu.cqupt.edu.cn;
   yongtao.tan@rmit.edu.au; dengningh@163.com
RI Tan, Yongtao/J-6829-2014
OI Tan, Yongtao/0000-0001-7321-4251; Li, Yang/0000-0001-6127-1355; Xu,
   Hui/0000-0002-0744-3002
FU National Natural Science Foundation of China [71801026]; Science and
   Technology Research Program of Chongqing Municipal Education Commission
   [KJQN202000631]; Innovative Project of Chongqing Oversea Study
   Innovation Program [cx2020035]
FX This research was funded by the National Natural Science Foundation of
   China, grant number 71801026; the Science and Technology Research
   Program of Chongqing Municipal Education Commission, grant number
   KJQN202000631; and the Innovative Project of Chongqing Oversea Study
   Innovation Program, grant number cx2020035.
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NR 149
TC 19
Z9 21
U1 27
U2 205
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD APR
PY 2021
VL 18
IS 7
AR 3677
DI 10.3390/ijerph18073677
PG 27
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA RK8FD
UT WOS:000638524100001
PM 33916024
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Cutillas-Lozano, LG
   López, MS
   Velasco, AP
   Andrés-Doménech, I
   Olcina-Cantos, J
AF Cutillas-Lozano, Luis Gabino
   Lopez, Mario Santa Cruz
   Velasco, Antonio Perez
   Andres-Domenech, Ignacio
   Olcina-Cantos, Jorge
TI Local-scale regionalisation of climate change effects on rainfall
   pattern: application to Alicante City (Spain)
SO THEORETICAL AND APPLIED CLIMATOLOGY
LA English
DT Article
DE Climate projections; Urban resilience; Urban drainage; IDF curves
ID EXTREME RAINFALL; BIAS CORRECTION; PRECIPITATION; TEMPERATURE;
   DISAGGREGATION; FREQUENCY; SCENARIO; EVENTS; CURVES; IMPACT
AB Understanding the future patterns of precipitation behaviour in unique geographical areas, largely determined by their orography and local scale, can help lay the foundations for a new precipitation model for the design of the city's main urban drainage infrastructures (intensity-duration-frequency curves, mathematical functions that relate precipitation intensity to duration and frequency of occurrence, hereafter IDF, for the short-, medium- and long-term future). This will definitely contribute to the improvement of the city's resilience to the effects of climate change. In this paper, the projections of a subset of climate change models from both the sixth phase of the Coupled Model Intercomparison Project (CMIP6; with a total of 5 simulations) and Euro-CORDEX (for a set of 51 simulations) have been adjusted to the municipality of Alicante (in the southeast of Spain), using the Climadjust tool (). These projections contain different climatic variables. The rainfall variable has been used to derive a new framework of boundary conditions to help design more resilient infrastructure for torrential rainfall events and urban flooding. The projections corresponding to three climate change scenarios (CMIP6: SSP1-2.6, SSP2-4.5, SSP5-8.5; and Euro-CORDEX: RCP2.6, RCP4.5, RCP8.5) are considered with daily resolution and, by applying statistical techniques of temporal disaggregation (by means of a cascade model), hourly (and sub-hourly, reaching 30-min resolution) disaggregation. The results at hourly and 30-min resolutions are used to construct IDF curves of future climate, grouped into short-term (years 2015 to 2040), medium-term (years 2041 to 2070) and long-term (years 2071 to 2100) sub-scenarios. The selected future climate IDFs for an adverse climate change scenario (SSP2-4.5 and SSP5-8.5) show increases in rainfall intensities, higher the shorter the rainfall duration, for return periods greater than or equal to 25 years, whereas for return periods under 25 years the current IDFs can be representative of future scenarios. Current calculations and future projection of the torrentiality index for severe climate change scenarios, as well as the climate change factors, show an increase in the frequency and magnitude of the heaviest rainfall. This fact corroborates the hypotheses of greater general torrentiality in future rainfall in this specific area of the Spanish Mediterranean coast.
C1 [Cutillas-Lozano, Luis Gabino] Aguas Municipalizadas Alicante, Alicante, Spain.
   [Lopez, Mario Santa Cruz; Velasco, Antonio Perez] Predictia Intelligent Data Solut SL, Santander, Spain.
   [Andres-Domenech, Ignacio] Univ Politecn Valencia, Inst Ingn Agua & Medio Ambiente IIAMA, Valencia, Spain.
   [Olcina-Cantos, Jorge] Univ Alacant, Dept Reg Geog Anal & Phys Geog, Alicante, Spain.
C3 Universitat Politecnica de Valencia; Universitat d'Alacant
RP Cutillas-Lozano, LG (corresponding author), Aguas Municipalizadas Alicante, Alicante, Spain.
EM lgabino.cutillas@aguasdealicante.es; santacruzm@predictia.es;
   aperez@predictia.es; igando@hma.upv.es; jorge.olcina@ua.es
RI Andrés-Doménech, Ignacio/I-8760-2012; Olcina, Jorge/H-2447-2015
OI Santa Cruz Lopez, Mario/0000-0003-4446-2648
FU Agencia Valenciana de Innovacion (AVI); company Aguas Municipalizadas de
   Alicante
FX This research was supported in part by Agencia Valenciana de Innovacion
   (AVI) and the company Aguas Municipalizadas de Alicante.
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NR 52
TC 5
Z9 5
U1 0
U2 6
PU SPRINGER WIEN
PI Vienna
PA Prinz-Eugen-Strasse 8-10, A-1040 Vienna, AUSTRIA
SN 0177-798X
EI 1434-4483
J9 THEOR APPL CLIMATOL
JI Theor. Appl. Climatol.
PD OCT
PY 2023
VL 154
IS 1-2
BP 377
EP 402
DI 10.1007/s00704-023-04565-3
EA JUL 2023
PG 26
WC Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Meteorology & Atmospheric Sciences
GA Z9OM9
UT WOS:001040549200001
DA 2025-04-22
ER

PT J
AU Gao, YQ
   Xu, MQ
   Zheng, H
   Liu, YP
   Xu, J
AF Gao, Yuqin
   Xu, Mengqi
   Zheng, Hang
   Liu, Yunping
   Xu, Jing
TI Modeling and application of urban waterlogging resilience assessment
   based on PSR-NES framework and analysis of driving mechanisms
SO WATER SCIENCE AND TECHNOLOGY
LA English
DT Article
DE natural-economic-social; pressure-state-response; resilience assessment;
   urban waterlogging
AB Extreme weather events are escalating globally, intensifying urban waterlogging disasters and endangering inhabitants and assets while hindering socio-economic progress. This study explores factors hindering cities' waterlogging disaster mitigation using urban resilience theory. It introduces a pressure-state-response (PSR)-natural-economic-social (NES) assessment model to evaluate urban waterlogging resilience, focusing on Nanjing as a key city in flood control. Flood scenarios are simulated using the MIKE model for different rainstorm recurrence periods. Urban flooding resilience is assessed with a hybrid approach. Geodetector analysis identifies primary resilience drivers. Results validate the PSR-NES composite resilience index, showing complex resilience patterns across the study area. High-resilience areas are mainly in the east and southeast, while low-resilience areas cluster along roads and low-lying communities. Key resilience indicators include waterlogging duration, inundation depth, warning capacity, economic density, and road accessibility. These factors interact with nonlinear enhancements and synergies. The study's insights can identify urban management or flood defense infrastructure deficiencies, guiding tailored flood defense strategies for stakeholders.
C1 [Gao, Yuqin; Xu, Mengqi; Liu, Yunping] HoHai Univ, Coll Water Conservancy & Hydropower Engn, Nanjing 210098, Peoples R China.
   [Zheng, Hang] Yellow River Adm Bur Licheng Dist, Jinan 250100, Peoples R China.
   [Xu, Jing] Yangzhou Survey Design Res Inst Co Ltd, Yangzhou, Peoples R China.
C3 Hohai University
RP Gao, YQ (corresponding author), HoHai Univ, Coll Water Conservancy & Hydropower Engn, Nanjing 210098, Peoples R China.
EM yqgao@hhu.edu.cn
RI Xu, Mengqi/GWV-7943-2022
FU General Program of the National Natural Science Foundation of China
   [52079039]; National Key R&D Projects of China [2023YFC3006501-01,
   2021YFC3000104]; Water Conservancy Science and Technology Project of
   Jiangsu Province, China [2023009]
FX All authors are very grateful to the editor and anonymous reviewers for
   their valuable comments. This work was supported by grants from the
   General Program of the National Natural Science Foundation of China
   (52079039), the National Key R&D Projects of China (2021YFC3000104), the
   National Key R&D Projects of China (2023YFC3006501-01) and the Water
   Conservancy Science and Technology Project of Jiangsu Province, China
   (2023009).
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NR 32
TC 0
Z9 0
U1 47
U2 60
PU IWA PUBLISHING
PI LONDON
PA REPUBLIC-EXPORT BLDG, UNITS 1 04 & 1 05, 1 CLOVE CRESCENT, LONDON,
   ENGLAND
SN 0273-1223
EI 1996-9732
J9 WATER SCI TECHNOL
JI Water Sci. Technol.
PD SEP 1
PY 2024
VL 90
IS 5
BP 1589
EP 1614
DI 10.2166/wst.2024.295
EA AUG 2024
PG 26
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA F9X5J
UT WOS:001300337800001
OA gold
DA 2025-04-22
ER

PT J
AU Zhou, Y
   Wang, YW
   Fang, SH
   Tian, YX
   Zhu, YJ
   Han, LH
AF Zhou, Ying
   Wang, Yanwei
   Fang, Shuhong
   Tian, Yixi
   Zhu, Yujia
   Han, Lihong
TI The Synergistic Effect of Urban and Rural Ecological Resilience: Dynamic
   Trends and Drivers in Yunnan
SO SUSTAINABILITY
LA English
DT Article
DE urban-rural integration development; urban-rural ecological resilience;
   dynamic evolution; heterogeneity of driving forces
AB With the rapid development of the world economy, pollution of urban and rural ecological environments and the decline in anti-risk capabilities are becoming more serious. In order to promote sustainable improvement of urban and rural ecological resilience, based on previous independent research on urban and rural resilience, this paper combines the two to carry out collaborative development research. The dynamic evolution and driving force heterogeneity in the coordinated development level of urban and rural ecological resilience in Yunnan Province in China from 2013 to 2022 were studied using the coordination degree model of composite system and geographical detector. The results show the following: (1) The urban and rural ecological resilience levels in Yunnan Province increased annually, but urban ecological resilience (0.178) lagged behind that of rural areas (0.376). Compared to rural areas, the overall spatial difference in urban ecological resilience level is significant. (2) The overall level of urban-rural ecological resilience synergy in Yunnan Province has been increasing annually, from "no synergy" to "primary synergy". However, there are great differences between prefectures and cities. (3) The combination of urban and rural driving factors is more conducive to improving urban-rural ecological resilience. The interaction between the per capita water supply and fertilizer consumption is the primary and critical driving factor. In the future, we will continue to take the coordinated development of urban and rural ecological resilience as the theme, further expand the research field, and carry out future development trend prediction research. This study provides new ideas for the construction of ecological resilience in similar countries and regions worldwide.
C1 [Zhou, Ying; Wang, Yanwei; Tian, Yixi; Zhu, Yujia; Han, Lihong] Yunnan Agr Univ, Coll Architecture & Engn, Kunming 650201, Peoples R China.
   [Fang, Shuhong] Kunming Univ Sci & Technol, Oxbridge Coll, Kunming, Peoples R China.
C3 Yunnan Agricultural University; Kunming University of Science &
   Technology
RP Han, LH (corresponding author), Yunnan Agr Univ, Coll Architecture & Engn, Kunming 650201, Peoples R China.
EM 2022210538@stu.ynau.edu.cn; 2009030@ynau.edu.cn; 2004028@ynau.edu.cn;
   19988737086@163.com; myujiazhu@163.com; hanlihong@ynau.edu.cn
RI Wang, Yanwei/ABE-7238-2021; Tian, Yixi/LSK-6221-2024
FU National Natural Science Foundation [72261035]; National Natural Science
   Foundation of China [202101BD070001-061]; Yunnan Provincial Joint
   Project of Applied Basic Research on Agriculture [SYSX202202]; Yunnan
   Provincial Academy and Provincial School Education Cooperation
   Humanities and Social Sciences Project
FX This research was funded by National Natural Science Foundation of
   China, grant number 72261035; Yunnan Provincial Joint Project of Applied
   Basic Research on Agriculture, grant number 202101BD070001-061; and by
   Yunnan Provincial Academy and Provincial School Education Cooperation
   Humanities and Social Sciences Project, grant number SYSX202202.
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NR 47
TC 0
Z9 0
U1 50
U2 50
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2024
VL 16
IS 19
AR 8285
DI 10.3390/su16198285
PG 24
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA I8V2I
UT WOS:001332969700001
OA gold
DA 2025-04-22
ER

PT J
AU Giles-Corti, B
   Foster, S
   Lynch, B
   Lowe, M
AF Giles-Corti, Billie
   Foster, Sarah
   Lynch, Bella
   Lowe, Melanie
TI What are the lessons from COVID-19 for creating healthy, sustainable,
   resilient future cities?
SO NPJ URBAN SUSTAINABILITY
LA English
DT Review
ID BIODIVERSITY
AB The COVID-19 pandemic has disrupted lives and the economy, reminding the global community of the devastating health and economic impacts of uncontrolled infectious disease. It has affected how and where people live, work, shop, and play, and exposed our cities' vulnerabilities, leading to calls for a health lens to be applied in designing, approving, and evaluating city plans. Socioeconomic, spatial and health inequities have been amplified, particularly for those living in inadequate or poorly designed housing, neighbourhoods, and cities. Hence, city mayors have committed to 'build back better' with all daily living amenities within a 15-min walking or cycling trip. Designed well, these cities have the potential to be healthier, more sustainable, equitable, and resilient. Yet their delivery requires a rethink of city planning. Drawing on lessons from the COVID-19 pandemic, we argue that to reduce the risk of future pandemics, we must mitigate climate change, limit urban expansion, and use nature-based solutions to protect natural habitats and biodiversity. We then explore how healthy, sustainable, and resilient 15-minute cities could be planned to reduce emissions and ensure our cities are more resilient in the event of future crises. Given that higher density housing underpins the success of 15-minute cities, we also examine how to create more resilient housing stock, through well-implemented health-supportive apartment design standards. Finally, we argue that to achieve all this, cross-sector leadership and investment will be vital.
C1 [Giles-Corti, Billie; Foster, Sarah; Lynch, Bella; Lowe, Melanie] RMIT Univ, Ctr Urban Res, Hlth Liveable Cities Lab, Melbourne, Vic, Australia.
C3 Royal Melbourne Institute of Technology (RMIT)
RP Giles-Corti, B (corresponding author), RMIT Univ, Ctr Urban Res, Hlth Liveable Cities Lab, Melbourne, Vic, Australia.
EM billie.giles-corti@rmit.edu.au
RI Foster, Sarah/H-9213-2014
OI Foster, Sarah/0000-0002-8624-4908; Lynch, Isabella/0009-0004-9657-5833
FU RMIT University Vice Chancellor's Professorial Fellowship; National
   Health and Medical Research Council [APP1192788, GNT9100003]; ARC Future
   Fellowship [FT210100899]; RMIT University Vice-Chancellor's Senior
   Research Fellowship; AXA Research Fund Postdoctoral Fellowship;
   Australian Research Council [FT210100899] Funding Source: Australian
   Research Council
FX B.G.-C. is supported by an RMIT University Vice Chancellor's
   Professorial Fellowship and grants from the National Health and Medical
   Research Council APP1192788 and GNT9100003. S.F. is supported by an ARC
   Future Fellowship (FT210100899). M.L. is supported by an RMIT University
   Vice-Chancellor's Senior Research Fellowship; and has been awarded an
   AXA Research Fund Postdoctoral Fellowship.
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NR 62
TC 19
Z9 19
U1 14
U2 51
PU SPRINGERNATURE
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON, N1 9XW, ENGLAND
EI 2661-8001
J9 NPJ URBAN SUSTAIN
JI npj Urban Sustain.
PD JUN 2
PY 2023
VL 3
IS 1
AR 29
DI 10.1038/s42949-023-00107-y
PG 6
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I0SM2
UT WOS:000999961100001
PM 37305613
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Wang, YY
   Cai, YP
   Xie, YL
   Zhang, P
   Chen, L
AF Wang, Yongyang
   Cai, Yanpeng
   Xie, Yulei
   Zhang, Pan
   Chen, Lei
TI A quantitative framework to evaluate urban ecological resilience:
   broadening understanding through multi-attribute perspectives
SO FRONTIERS IN ECOLOGY AND EVOLUTION
LA English
DT Article
DE ecological resilience; quantitative framework; urbanization;
   spatialtemporal pattern evolution; urban agglomeration
ID ADAPTIVE CAPACITY; MANAGEMENT
AB Intensive human and economic activities in urban areas have had adverse effects on local resources and ecology, leading to a decline in ecological resilience. Enhancing ecological resilience is crucial for improving the urban ecosystem's ability to withstand and recover from external risks. However, quantitative research on urban ecological resilience remains somewhat ambiguous, with many studies lacking comprehensive assessment methods from multiple perspectives. In this study, we established a comprehensive framework to assess urban ecological resilience based on four regime attributes. The study's results indicated the following key findings: The average urban ecological resilience value exhibited a trend of initially declining and then recovering. Cities proposed different approaches when considering and managing social and ecological relationships during the development process. A significant correlation between urbanization levels and ecological resilience was observed, with urban ecological resilience increasing in areas with low urbanization levels and sharply decreasing in areas with high urbanization levels. The findings from this study provide a specific theoretical foundation for decision-makers involved in urban planning and development strategies.
C1 [Wang, Yongyang; Cai, Yanpeng; Xie, Yulei; Zhang, Pan] Guangdong Univ Technol, Inst Environm & Ecol Engn, Guangdong Prov Key Lab Water Qual Improvement & E, Guangzhou 510006, Peoples R China.
   [Chen, Lei] Chinese Acad Sci, Guangzhou Inst Energy Convers, Guangzhou, Peoples R China.
C3 Guangdong University of Technology; Chinese Academy of Sciences;
   Guangzhou Institute of Energy Conversion, CAS
RP Cai, YP (corresponding author), Guangdong Univ Technol, Inst Environm & Ecol Engn, Guangdong Prov Key Lab Water Qual Improvement & E, Guangzhou 510006, Peoples R China.
EM yanpeng.cai@gdut.edu.cn
RI yong yang, wang/KYQ-1257-2024; Chen, Xiang/JUF-0248-2023
FU This research was supported by the National Natural Science Foundation
   of China (U20A20117), the Key-Area Research and Development Program of
   Guangdong Province (2020B1111380003), and the Program for Guangdong
   Introducing Innovative and Entrepreneurial Tea [U20A20117]; National
   Natural Science Foundation of China [2020B1111380003]; Key-Area Research
   and Development Program of Guangdong Province [2021ZT090543]; Program
   for Guangdong Introducing Innovative and Entrepreneurial Teams
FX This research was supported by the National Natural Science Foundation
   of China (U20A20117), the Key-Area Research and Development Program of
   Guangdong Province (2020B1111380003), and the Program for Guangdong
   Introducing Innovative and Entrepreneurial Teams (2021ZT090543). The
   authors would also like to extend their gratitude to the reviewers and
   editors for their suggestions and comments, which were extremely helpful
   in improving the quality of the paper.
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NR 57
TC 7
Z9 7
U1 60
U2 171
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
SN 2296-701X
J9 FRONT ECOL EVOL
JI Front. Ecol. Evol.
PD NOV 2
PY 2023
VL 11
AR 1144244
DI 10.3389/fevo.2023.1144244
PG 15
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA Y0TE2
UT WOS:001102471000001
OA gold
DA 2025-04-22
ER

PT J
AU Chen, M
   Lu, YJ
   Peng, Y
   Chen, TT
   Zhang, YY
AF Chen, Min
   Lu, Yujie
   Peng, Yi
   Chen, Tingting
   Zhang, Yiye
TI Key Elements of Attentions for Enhancing Urban Resilience: A Comparison
   of Singapore, Hong Kong and Hangzhou
SO BUILDINGS
LA English
DT Article
DE urban resilience; elements of attentions; comparison; Asian cities
ID CLIMATE-CHANGE; SUSTAINABLE DEVELOPMENT; COMMUNITY RESILIENCE; CITIES;
   CHINA; MODEL; INFRASTRUCTURE; ADAPTATION; MANAGEMENT; SETTLEMENT
AB Urban resilience is an attractive concept among academies and governments with the increasing severity of climate change and relevant disasters in cities. Few studies have been conducted to compare the key elements of attentions for enhancing urban resilience among Asian cities, although resilience is context-dependent. This study aims to compare the key elements of attentions for enhancing urban resilience among Singapore, Hong Kong and Hangzhou. A comprehensive literature review and expert interview validation were used to solicit the preliminary elements of attentions for enhancing urban resilience. Planners and researchers in the field of urban planning were surveyed to assess the significance level of the preliminary elements in the three case cities, as professional knowledge is required in the survey. Statistics were used to identify the key elements of attentions in the three case cities. Results demonstrate that the three cities have various elements of attentions for enhancing urban resilience despite sharing many similarities, which also demonstrate the guidance limitation of the general urban resilience framework. It also provides a reference for other international comparisons.
C1 [Chen, Min] Nantong Univ, Sch Transportat & Civil Engn, Nantong 226019, Peoples R China.
   [Lu, Yujie] Tongji Univ, Coll Civil Engn, Dept Bldg Engn, Shanghai 200092, Peoples R China.
   [Lu, Yujie] Tongji Univ, Key Lab Performance Evolut & Control Engn Struct, Minist Educ, Shanghai 200092, Peoples R China.
   [Lu, Yujie] Tongji Univ, Shanghai Inst Intelligent Sci & Technol, Shanghai 200092, Peoples R China.
   [Peng, Yi; Zhang, Yiye] Zhejiang Univ Finance & Econ, Sch Publ Adm, Hangzhou 310018, Peoples R China.
   [Chen, Tingting] Sun Yat Sen Univ, Dept Urban & Reg Planning, Guangzhou 510275, Peoples R China.
C3 Nantong University; Tongji University; Tongji University; Tongji
   University; Zhejiang University of Finance & Economics; Sun Yat Sen
   University
RP Peng, Y (corresponding author), Zhejiang Univ Finance & Econ, Sch Publ Adm, Hangzhou 310018, Peoples R China.
EM chen.min@ntu.edu.cn; lu6@tongji.edu.cn; pengyihz@zufe.edu.cn;
   chentt53@mail.sysu.edu.cn; zhangyiye@zufe.edu.cn
RI MIN, CHEN/JCN-7106-2023; Lu, Yujie/AAF-1872-2020; Lu, Yujie/K-3003-2014
OI Chen, Min/0000-0002-6197-2159; Lu, Yujie/0000-0002-9585-0192
FU National Natural Science Foundation of China [52078374]; Shanghai
   Municipal Science and Technology Commission [19DZ1202803]; Urban
   Emergency Management Research Innovation Team of Zhejiang University of
   Finance and Economics; Innovation Research Team of Urban Governance and
   Public Policy of Zhejiang Province
FX The work described in this paper was jointly supported by the National
   Natural Science Foundation of China (52078374), the Shanghai Municipal
   Science and Technology Commission (19DZ1202803), the Urban Emergency
   Management Research Innovation Team of Zhejiang University of Finance
   and Economics, and the Innovation Research Team of Urban Governance and
   Public Policy of Zhejiang Province.
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NR 84
TC 11
Z9 11
U1 9
U2 88
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD MAR
PY 2022
VL 12
IS 3
AR 340
DI 10.3390/buildings12030340
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Engineering
GA 0D4XQ
UT WOS:000776000500001
OA gold
DA 2025-04-22
ER

PT J
AU Barrile, V
   La Foresta, F
   Calcagno, S
   Genovese, E
AF Barrile, Vincenzo
   La Foresta, Fabio
   Calcagno, Salvatore
   Genovese, Emanuela
TI Innovative System for BIM/GIS Integration in the Context of Urban
   Sustainability
SO APPLIED SCIENCES-BASEL
LA English
DT Article
DE urban sustainability; building information model; geographic information
   systems; virtual/augmented/mixed reality; digital twin; cesium platform;
   social issues and urban resilience strategies
ID BIM; GIS; CONSTRUCTION
AB In the context of urban sustainability and the development of resilient cities, the use of 4D geospatial data and the integration and association of building information with geographical information are of considerable interest. Achieving this integration is particularly significant in the scientific field from a technical standpoint but poses significant challenges due to the incompatibility between the two environments. This research proposes various methodologies for the effective integration of BIM/GIS data by analyzing their pros and cons and highlights the innovative aspects of the integration between these systems. Starting with the use of commercial software that has enabled the integration of a building's 3D model within a GIS environment (this system is particularly useful for its ease of management and the potential for practical applications), this study progresses to an experimental virtual/augmented/mixed reality app developed by the authors that allows for the virtual integration of a building with its territorial context. It concludes with an innovative methodology that, by using the customizable and extensible libraries of the Cesium platform, facilitates the integration of structural data within a 4D geospatial space. This study demonstrates the feasibility of integrating BIM and GIS data despite inherent incompatibilities. The innovative use of Cesium platform libraries further enhances this integration, providing a comprehensive solution for intelligent and sustainable urban planning. By addressing the challenges of incompatibility, the final solution offers critical insights for a deeper understanding of evolving urban landscapes and for monitoring urban expansion and its environmental impacts.
C1 [Barrile, Vincenzo; La Foresta, Fabio; Calcagno, Salvatore; Genovese, Emanuela] Mediterranea Univ Reggio Calabria, Dept Civil Engn Energy Environm & Mat DICEAM, Via Zehender Loc Feo Vito, I-89122 Reggio Di Calabria, Italy.
C3 Universita Mediterranea di Reggio Calabria
RP La Foresta, F (corresponding author), Mediterranea Univ Reggio Calabria, Dept Civil Engn Energy Environm & Mat DICEAM, Via Zehender Loc Feo Vito, I-89122 Reggio Di Calabria, Italy.
EM vincenzo.barrile@unirc.it; fabio.laforesta@unirc.it
OI CALCAGNO, Salvatore/0000-0001-7128-9663; Genovese,
   Emanuela/0009-0002-4657-4619; LA FORESTA, Fabio/0000-0002-8290-5019
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NR 56
TC 3
Z9 3
U1 22
U2 22
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2076-3417
J9 APPL SCI-BASEL
JI Appl. Sci.-Basel
PD OCT
PY 2024
VL 14
IS 19
AR 8704
DI 10.3390/app14198704
PG 19
WC Chemistry, Multidisciplinary; Engineering, Multidisciplinary; Materials
   Science, Multidisciplinary; Physics, Applied
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Chemistry; Engineering; Materials Science; Physics
GA I7Q4M
UT WOS:001332165500001
OA gold
DA 2025-04-22
ER

PT J
AU Bettini, Y
   Brown, RR
   de Haan, FJ
AF Bettini, Yvette
   Brown, Rebekah R.
   de Haan, Fjalar J.
TI Exploring institutional adaptive capacity in practice: examining water
   governance adaptation in Australia
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE adaptive capacity; institutions; resilience; transformation; water
   governance
ID ENVIRONMENTAL-CHANGE; CLIMATE-CHANGE; RESILIENCE; VULNERABILITY;
   MANAGEMENT; SCIENCE; TRANSITIONS; FRAMEWORK
AB Adaptive capacity is widely held as a key property of resilient and transformative social-ecological systems. However, current knowledge of the term does not yet address key questions of how to operationalize this system condition to address sustainability challenges through research and policy. This paper explores temporal and agency dimensions of adaptive capacity in practice to better understand how system conditions and attributes enable adaptation. An institutional dynamics lens is employed to systemically examine empirical cases of change in urban water management. Comparative analysis of two Australian cities' drought response is conducted using institutional analysis and qualitative system dynamics mapping techniques. The study finds that three forms of adaptive capacity appear critical: the ability to learn, decide, and act. The analytical approach developed provides insight into change dynamics and the agency mechanisms that generate them. The paper proposes a typology of adaptive capacity by characterizing these change dynamics and mechanisms for locked-in, crisis, reorganizing, and stabilizing systems. This set of propositions on institutional conditions and forms of adaptive capacity is offered to further advance research on the topic and help to operationalize adaptive capacity in practice.
C1 [Bettini, Yvette] Univ Queensland, Social Sci Res Inst, Brisbane, Qld 4072, Australia.
   [Bettini, Yvette] Monash Univ, Monash Water Liveabil Ctr, Cooperat Res Ctr Water Sensit Cities, Clayton, Vic 3800, Australia.
   [Brown, Rebekah R.; de Haan, Fjalar J.] Monash Univ, Monash Water Liveabil Ctr, Cooperat Res Ctr Water Sensit Cities, Sch Social Sci, Clayton, Vic 3800, Australia.
C3 University of Queensland; Monash University; Cooperative Research Centre
   for Water Sensitive Cities (CRCWSC); Monash University; Cooperative
   Research Centre for Water Sensitive Cities (CRCWSC)
RP Bettini, Y (corresponding author), Univ Queensland, Social Sci Res Inst, Brisbane, Qld 4072, Australia.
RI ; Bettini, Yvette/N-9591-2014
OI Brown, Rebekah/0000-0002-8689-7562; Bettini, Yvette/0000-0003-0280-6887
FU Western Australian Department of Water; Australian Research Council
   [LP120100683]; Australian Research Council [LP120100683] Funding Source:
   Australian Research Council
FX The authors wish to acknowledge the contribution of the interview
   participants from across Perth and Adelaide, and the funding and support
   provided by the Western Australian Department of Water. This research
   formed part of a broader doctoral research project conducted while the
   corresponding author was located at Monash University. Dr de Haan's
   contribution to the research was made possible in part through funding
   under the Australian Research Council's Linkage Projects Scheme (project
   number LP120100683), under which he is the recipient of an Australian
   Research Council Postdoctoral Fellowship Industry (APDI).
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NR 70
TC 50
Z9 59
U1 0
U2 85
PU RESILIENCE ALLIANCE
PI WOLFVILLE
PA ACADIA UNIV, BIOLOGY DEPT, WOLFVILLE, NS B0P 1X0, CANADA
SN 1708-3087
J9 ECOL SOC
JI Ecol. Soc.
PY 2015
VL 20
IS 1
AR 47
DI 10.5751/ES-07291-200147
PG 20
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA CG4XW
UT WOS:000353293900052
OA Green Submitted, Green Published, gold
DA 2025-04-22
ER

PT J
AU Mccloy, MWD
   Andringa, RK
   Maness, TJ
   Smith, JA
   Grace, JK
AF Mccloy, Michael W. D.
   Andringa, R. Keith
   Maness, Terri J.
   Smith, Jennifer A.
   Grace, Jacquelyn K.
TI Promoting urban ecological resilience through the lens of avian
   biodiversity
SO FRONTIERS IN ECOLOGY AND EVOLUTION
LA English
DT Review
DE bird; biodiversity; conservation; disturbance ecology; urban ecology;
   urban management
ID CAVITY-NESTING BIRDS; LAND-USE; EVOLUTIONARY UNIQUENESS; FUNCTIONAL
   DIVERSITY; SPECIES COMPOSITION; ARTIFICIAL-LIGHT; CITIZEN SCIENCE; FOOD
   RESOURCES; CLIMATE-CHANGE; HABITAT TYPE
AB The significance of urban landscapes in safeguarding biodiversity is often disregarded, even though a considerable amount of conservation focus is directed toward biodiversity hotspots where urban land conversion is happening at the fastest pace. Maintaining biodiversity in urban areas not only benefits the environment, but along with social, economic, and technological factors can increase the stability of urban systems to disturbance, a concept known as "urban resilience". In this synthesis paper, we explore the ecological dimension of urban resilience and specifically focus on avian biodiversity because birds are easy to observe, relatively abundant, and can serve as an indicator of the overall health of urban environments. We first examine the concept of ecological resilience and discuss the role of environmental stressors associated with urbanization in the ongoing avian biodiversity crisis. We then provide an overview of characteristics of the urban environment that may promote ecological resilience in birds, and associations between social and economic factors and urban ecological resilience. Finally, we provide recommendations on future research regarding strategies to improve urban ecological resilience and thus, urban resilience as a whole, at the intersections of urban ecology, ecosystem ecology, environmental justice, and urban planning. Since 68% of the world's population is projected to live in urban areas by 2050, it is imperative that scientists, urban planners, civil engineers, architects, and others consider urban ecological resilience as a dimension of both environmental health and the resilience of cities to future natural and anthropogenic stressors.
C1 [Mccloy, Michael W. D.; Andringa, R. Keith; Grace, Jacquelyn K.] Texas A&M Univ, Ecol & Evolutionary Biol Program, College Stn, TX USA.
   [Mccloy, Michael W. D.; Andringa, R. Keith; Grace, Jacquelyn K.] Texas A&M Univ, Dept Ecol & Conservat Biol, College Stn, TX USA.
   [Maness, Terri J.] Louisiana Tech Univ, Sch Biol Sci, Ruston, LA USA.
   [Smith, Jennifer A.] Univ Texas San Antonio, Dept Integrat Biol, San Antonio, TX 78249 USA.
C3 Texas A&M University System; Texas A&M University College Station; Texas
   A&M University System; Texas A&M University College Station; University
   of Louisiana System; Louisiana Technical University; University of Texas
   System; University of Texas at San Antonio (UTSA)
RP Smith, JA (corresponding author), Univ Texas San Antonio, Dept Integrat Biol, San Antonio, TX 78249 USA.
EM Jennifer.smith@utsa.edu
RI Grace, Jacquelyn/MIU-0825-2025; McCloy, Michael/IUQ-8223-2023
OI Maness, Terri/0000-0002-0337-1558
CR Ackerman JT, 2018, WATERBIRDS, V41, P384, DOI 10.1675/063.041.0402
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NR 216
TC 8
Z9 8
U1 41
U2 90
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
SN 2296-701X
J9 FRONT ECOL EVOL
JI Front. Ecol. Evol.
PD MAR 14
PY 2024
VL 12
AR 1302002
DI 10.3389/fevo.2024.1302002
PG 17
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA MF1Q1
UT WOS:001192123600001
OA gold
DA 2025-04-22
ER

PT J
AU Chen, Y
   Zhu, MK
   Zhou, Q
   Qiao, YR
AF Chen, Yu
   Zhu, Mengke
   Zhou, Qian
   Qiao, Yurong
TI Research on Spatiotemporal Differentiation and Influence Mechanism of
   Urban Resilience in China Based on MGWR Model
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE urban resilience; spatiotemporal differentiation; MGWR; spatial scale;
   factors of urban resilience
ID DISASTER-RESILIENCE; COMMUNITY
AB Urban resilience in the context of COVID-19 epidemic refers to the ability of an urban system to resist, absorb, adapt and recover from danger in time to hedge its impact when confronted with external shocks such as epidemic, which is also a capability that must be strengthened for urban development in the context of normal epidemic. Based on the multi-dimensional perspective, entropy method and exploratory spatial data analysis (ESDA) are used to analyze the spatiotemporal evolution characteristics of urban resilience of 281 cities of China from 2011 to 2018, and MGWR model is used to discuss the driving factors affecting the development of urban resilience. It is found that: (1) The urban resilience and sub-resilience show a continuous decline in time, with no obvious sign of convergence, while the spatial agglomeration effect shows an increasing trend year by year. (2) The spatial heterogeneity of urban resilience is significant, with obvious distribution characteristics of "high in east and low in west". Urban resilience in the east, the central and the west are quite different in terms of development structure and spatial correlation. The eastern region is dominated by the "three-core driving mode", and the urban resilience shows a significant positive spatial correlation; the central area is a "rectangular structure", which is also spatially positively correlated; The western region is a "pyramid structure" with significant negative spatial correlation. (3) The spatial heterogeneity of the driving factors is significant, and they have different impact scales on the urban resilience development. The market capacity is the largest impact intensity, while the infrastructure investment is the least impact intensity. On this basis, this paper explores the ways to improve urban resilience in China from different aspects, such as market, technology, finance and government.
C1 [Chen, Yu; Zhu, Mengke; Qiao, Yurong] Zhengzhou Univ Light Ind, Sch Econ & Management, Sci Ave 136, Zhengzhou 450000, Peoples R China.
   [Zhou, Qian] Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Peoples R China.
C3 Zhengzhou University of Light Industry; Zhongnan University of Economics
   & Law
RP Zhou, Q (corresponding author), Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Peoples R China.
EM 2012030@zzuli.edu.cn; 13939045355@163.com; qiaoyurong9@163.com;
   Z0005072@zuel.edu.cn
RI Zhu, Mengke/LXW-3217-2024
OI Zhou, Qian/0000-0002-2319-1095
FU National Social Science Foundation of China [16CJY045]; Philosophy and
   Social Science Innovation Team Building Program of Henan Universities
   [2021-CXTD-12]; Good Scholar in Philosophy and Social Sciences in Henan
   Institutions of Higher Learning [2019-YXXZ-20]; Support Plan for
   Scientific and Technological Innovation Talents in Henan Institutions of
   Higher Learning (humanities and social sciences) [2018-cx-012]
FX This work was supported by grants from National Social Science
   Foundation of China (16CJY045); Philosophy and Social Science Innovation
   Team Building Program of Henan Universities (2021-CXTD-12); Good Scholar
   in Philosophy and Social Sciences in Henan Institutions of Higher
   Learning (2019-YXXZ-20); Support Plan for Scientific and Technological
   Innovation Talents in Henan Institutions of Higher Learning (humanities
   and social sciences) (2018-cx-012).
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NR 31
TC 68
Z9 70
U1 31
U2 328
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD FEB
PY 2021
VL 18
IS 3
AR 1056
DI 10.3390/ijerph18031056
PG 26
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA QC9LY
UT WOS:000615153200001
PM 33504043
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Si, YN
   Liang, LZ
   Zhou, WG
AF Si, Yanning
   Liang, Lizhi
   Zhou, Wenguang
TI An Evaluation of Urban Resilience Using Structural Equation Modeling
   from Practitioners' Perspective: An Empirical Investigation in Huangshi
   City, China
SO SUSTAINABILITY
LA English
DT Article
DE structural equation model (SEM); urban resilience; practitioners;
   Huangshi City; Likert
AB As urbanization accelerates and climate change intensifies, cities are increasingly facing risks from natural disasters and human activities. Enhancing urban resilience and strengthening cities' ability to adapt and recover from disasters have become hot topics globally. Although urban resilience evaluation has been studied from different dimensions, the study of urban resilience from a practitioner's perspective has received less attention. In this study, based on 1464 valid samples of practitioners in Huangshi City, a structural equation model (SEM) was applied to evaluate urban resilience. The evaluation indicators framework was selected from the economy, ecology, society, and infrastructure dimensions. The findings show that (1) the SEM model provides a scientific basis for establishing an index system for the comprehensive evaluation of urban resilience, and the corresponding correlation coefficients help determine the relative contribution of each indicator. (2) Social resilience accounts for the largest proportion of the entire evaluation system, followed by infrastructure resilience, ecological resilience, and economic resilience. (3) Taking Huangshi City as an empirical research case, the results show that the resilience assessment method based on SEM is feasible, with the resilience of Huangshi City showing an upward trend from 2013 to 2022. Finally, some plausible measures to improve urban resilience based on the evaluation results are discussed.
C1 [Si, Yanning; Liang, Lizhi] Xiangtan Univ, Sch Publ Adm, Xiangtan 411100, Peoples R China.
   [Si, Yanning] Hubei Normal Univ, Sch Econ Management & Law, Huangshi 435002, Peoples R China.
   [Zhou, Wenguang] Northwest Univ, Sch Publ Adm, Sch Emergency Management, Xian 710127, Peoples R China.
C3 Xiangtan University; Hubei Normal University; Northwest University Xi'an
RP Liang, LZ (corresponding author), Xiangtan Univ, Sch Publ Adm, Xiangtan 411100, Peoples R China.
EM 202331100070@smail.xtu.edu.cn; lianglizhi@xtu.edu.cn;
   zhouwenguang0411@126.com
RI zhou, wenguang/W-4012-2019
FU Shaanxi Province Philosophy and Social Science Research Special Project,
   "Study on Strengthening the Emergency Management System and Capacity
   Building at the Grassroots Level";  [2023HZ1548]
FX This research was funded by the Shaanxi Province Philosophy and Social
   Science Research Special Project, "Study on Strengthening the Emergency
   Management System and Capacity Building at the Grassroots Level"
   (2023HZ1548).
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NR 73
TC 2
Z9 2
U1 25
U2 34
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2024
VL 16
IS 16
AR 7031
DI 10.3390/su16167031
PG 19
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA F1O2U
UT WOS:001307574600001
OA gold
DA 2025-04-22
ER

PT J
AU Schattman, RE
   Clark, P
   D'Amato, AW
   Ontl, T
   Littlefield, C
   North, E
AF Schattman, Rachel E.
   Clark, Peter
   D'Amato, Anthony W.
   Ontl, Todd
   Littlefield, Caitlin
   North, Eric
TI Forester interest in, and limitations to, adapting to climate change
   across the rural-to-urban gradient
SO CLIMATE RISK MANAGEMENT
LA English
DT Article
DE Adaptation; Forestry; Peer-to-peer learning; Risk perceptions;
   Resistance-resilience-transition
ID UNITED-STATES; EMAMECTIN BENZOATE; ASH TREES; ADAPTATION; STRATEGIES;
   REGENERATION; PERCEPTIONS; LANDSCAPES; MANAGEMENT; IMPACTS
AB Climate change-related challenges faced by forest managers are ecological, economic, and social in nature. While several past assessments have looked at the climate-related perceptions and needs of foresters working in rural contexts, urban foresters are not often included in these assessments. Examining foresters ' risk perceptions, adaptation interests and intentions, and need for information/support in rural and urban contexts side-by-side reveals unique opportunities for learning across the rural-to-urban gradient. Through two surveys targeting both rural and urban foresters, we have identified key learning opportunities that support climate-adaptive forest management. Our analysis shows that many foresters are seeking to maintain current forest conditions or restore forest conditions following a disruption or change, though some see value in transitioning forests to be more resistant and resilient to future climates. We also show a difference in confidence between urban and rural foresters when it comes to addressing climate change through specific adaptation strategies. Based on our findings, we propose facilitated learning opportunities across the rural-to-urban gradient. This would allow urban foresters to learn from rural foresters on topics such as establishment and maintenance of long-term, large, ecologically complex forested areas within cities. Rural foresters could gain insights from their urban counterparts on planting strategies and other approaches that are common in urban settings but novel in rural settings, including stock sourcing and species selection. To better enable foresters to implement climate adaptation strategies, we suggest: (1) facilitating learning across the rural-to-urban gradient, (2) public engagement trainings and opportunities targeting foresters, (3) workforce development programing, and (4) programs that limit the financial risk that foresters, landowners, and municipalities face when applying forest adaptation strategies to rural or urban lands.
C1 [Schattman, Rachel E.] Univ Maine, George J Mitchell Ctr Sustainabil Solut, Sch Food & Agr, Agroecol Lab, 5772 Deering Hall, Orono, ME 04469 USA.
   [Clark, Peter; D'Amato, Anthony W.] Univ Vermont, Rubenstein Sch Environm & Nat Resources, 81 Carrigan Dr, Burlington, VT 05405 USA.
   [Ontl, Todd] USDA, Forest Serv, Off Sustainabil & Climate, 271 Mast Rd, Durham, NH 03824 USA.
   [Littlefield, Caitlin] Conservat Sci Partners, 11050 Pioneer Trail,Suite 202, Truckee, CA 96161 USA.
   [North, Eric] Univ Nebraska Lincoln, Sch Nat Resources, 3310 Holdrege St, Lincoln, NE 68583 USA.
C3 University of Maine System; University of Maine Orono; University of
   Vermont; United States Department of Agriculture (USDA); United States
   Forest Service; University of Nebraska System; University of Nebraska
   Lincoln
RP Schattman, RE (corresponding author), Univ Maine, George J Mitchell Ctr Sustainabil Solut, Sch Food & Agr, Agroecol Lab, 5772 Deering Hall, Orono, ME 04469 USA.
EM rachel.schattman@maine.edu
RI Schattman, Rachel/AAX-4080-2020; D'Amato, Anthony/AAV-3245-2021
OI Clark, Peter W./0000-0001-8931-7271; Schattman,
   Rachel/0000-0001-7177-3914
FU USDA National Institute of Food and Agriculture (NIFA); McIntire Stennis
   Project [1020600]; USDA-NIFA Hatch Project through the Maine
   Agricultural & Forest Experiment Station [ME0-022332]; Department of
   Interior Northeast Climate Adaptation Science Center
FX This work was supported by the USDA National Institute of Food and
   Agriculture (NIFA) , McIntire Stennis Project number 1020600. The work
   was also supported by the USDA-NIFA Hatch Project number ME0-022332
   through the Maine Agricultural & Forest Experiment Station and the
   Department of Interior Northeast Climate Adaptation Science Center.
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NR 94
TC 1
Z9 1
U1 7
U2 11
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0963
J9 CLIM RISK MANAG
JI CLIM. RISK MANAG.
PY 2024
VL 45
AR 100624
DI 10.1016/j.crm.2024.100624
EA JUN 2024
PG 20
WC Environmental Sciences; Environmental Studies; Meteorology & Atmospheric
   Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA WW1R3
UT WOS:001257821900001
OA gold
DA 2025-04-22
ER

PT J
AU Darkwah, RM
   Cobbinah, PB
   Anokye, PA
AF Darkwah, Rhoda Mensah
   Cobbinah, Patrick Brandful
   Anokye, Prince Aboagye
TI Contextualising urban resilience in Ghana: Local perspectives and
   experiences
SO GEOFORUM
LA English
DT Article
DE Urban resilience; Climate change; Urban growth; Urban planning; Kumasi;
   Urban development
ID CLIMATE-CHANGE; CITIES
AB Climate change and unplanned urban growth remain two emerging environmental and health threats with widespread implications for poor countries. Yet, despite attempts by governments and international organisations at addressing these challenges, they remain unabated. Understanding the challenges through a resilience lens can support actions for addressing these impacts. Regardless of this potential, the application of urban resilience to sustainable urban environments remains a distant reality in areas most vulnerable to the impacts of these environmental and health threats. Understanding of the application of the resilience concept to urban development and its outcomes are limited in Ghana. This study fills this gap by focusing on: the extent of climate change in the city of Kumasi; local experiences of major unplanned urban growth challenges in Kumasi; local understanding of urban resilience; and efforts towards urban resilience. Using institutional interviews and household surveys, findings indicate a rising trend of temperature and unpredictable rainfall pattern in Kumasi. This situation is generating negative consequences such as flooding, destruction of ecologically sensitive areas, and related diseases such as malaria. Complicating matters further are the impacts of unplanned urban growth, including poor sanitation conditions, inadequate social services, and poor housing conditions. Unfortunately, despite these challenges, there is limited understanding of urban resilience in Kumasi, amongst both urban planning related institutions and local communities. As a consequence, institutional initiatives towards urban resilience are uncoordinated and incomprehensive.
C1 [Darkwah, Rhoda Mensah; Cobbinah, Patrick Brandful; Anokye, Prince Aboagye] Kwame Nkrumah Univ Sci & Technol, Coll Art & Built Environm, Dept Planning, Kumasi, Ghana.
   [Cobbinah, Patrick Brandful] Charles Sturt Univ, Inst Land Water & Soc, POB 789, Albury, NSW 2640, Australia.
C3 Kwame Nkrumah University Science & Technology; Charles Sturt University
RP Cobbinah, PB (corresponding author), Kwame Nkrumah Univ Sci & Technol, Coll Art & Built Environm, Dept Planning, Kumasi, Ghana.
EM pcobbinah@csu.edu.au
RI Cobbinah, Patrick/ABH-9950-2020
OI Cobbinah, Patrick Brandful/0000-0003-2522-9293; Darkwah, Rhoda
   Mensah/0000-0003-0335-7008
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NR 56
TC 26
Z9 27
U1 1
U2 35
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0016-7185
EI 1872-9398
J9 GEOFORUM
JI Geoforum
PD AUG
PY 2018
VL 94
BP 12
EP 23
DI 10.1016/j.geoforum.2018.05.023
PG 12
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA GN9QB
UT WOS:000439537900002
DA 2025-04-22
ER

PT J
AU Xie, WL
   Sun, C
   Lin, ZJ
AF Xie, Wenlong
   Sun, Cheng
   Lin, Zhongjie
TI Spatial-temporal evolution of urban form resilience to climate
   disturbance in adaptive cycle: A case study of Changchun city
SO URBAN CLIMATE
LA English
DT Article
DE Climate change; Climate disturbance; Urban resilience; Urban morphology;
   Adaptive cycle; Changchun
ID SOCIAL-ECOLOGICAL SYSTEMS; DISASTER RESILIENCE; PRINCIPLES; MORPHOLOGY;
   LANDSCAPE; INDICATORS; CITIES; DESIGN
AB In an era of global climate change, urban form has significant impacts on resilience and vulnerability to uncertain climate disturbances. However, spatially quantifying urban form resilience across different adaptive phases is still in the exploratory stage. This study presented a general framework to build a bridge between the analysis of urban form resilience and climate disturbances. After transforming this general framework into the specific framework for urban form resilience at the mesoscale to climate disturbances in winter city, an evaluation index system comprised of three dimensions of "Absorption-Adaptation-Recovery" was constructed to inves-tigate the evolution of urban form resilience to climate disturbances in Changchun city, which experienced a progression from exploitation (r) phase to conservation (k) phase over the past 100 years. The morphological region was adopted as the basic unit for resilience evaluation. The results showed that, from r to k, almost all urban form regions represented a significant decline in absorption capacity and a dramatic rise in recovery capacity. The adaption capacity also expe-rienced a decreasing trend, but it was not prevalent in every urban form region. The increase in resilience gained by the enhanced recovery capacity could not offset the decrease in resilience caused by the weakened absorption capacity and adaption capacity. In different periods, the emphases of resilience control for urban form regions were different. This study hopes to provide scientific guidance for resilience management in cities.
C1 [Xie, Wenlong; Sun, Cheng] Harbin Inst Technol, Sch Architecture, Harbin 150000, Peoples R China.
   [Xie, Wenlong; Sun, Cheng] Minist Ind & Informat Technol, Key Lab Cold Reg Urban & Rural Human Settlement En, Harbin 150000, Peoples R China.
   [Lin, Zhongjie] Univ Penn, Stuart Weitzman Sch Design, Philadelphia, PA 19104 USA.
   [Sun, Cheng] Harbin Inst Technol, 66 Xidazhi St, Harbin 150006, Peoples R China.
C3 Harbin Institute of Technology; University of Pennsylvania; Harbin
   Institute of Technology
RP Sun, C (corresponding author), Harbin Inst Technol, 66 Xidazhi St, Harbin 150006, Peoples R China.
EM suncheng@hit.edu.cn
RI Sun, Cheng/AAM-8626-2020
OI Sun, Cheng/0000-0003-1365-2780
FU National Natural Science Foundation of China [51938003]; Heilongjiang
   Provincial Natural Science Foundation of China [LH2020E051]; Young
   Scientist Studio of Harbin Institute of Technology
FX Funding This work was supported by the National Natural Science
   Foundation of China [grant number 51938003] ; the Heilongjiang
   Provincial Natural Science Foundation of China [grant number LH2020E051]
   ; and the Young Scientist Studio of Harbin Institute of Technology.
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NR 59
TC 7
Z9 10
U1 27
U2 123
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD MAY
PY 2023
VL 49
AR 101461
DI 10.1016/j.uclim.2023.101461
EA FEB 2023
PG 23
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA 9W9VE
UT WOS:000949424100001
DA 2025-04-22
ER

PT J
AU Cutter, SL
   Ash, KD
   Emrich, CT
AF Cutter, Susan L.
   Ash, Kevin D.
   Emrich, Christopher T.
TI Urban-Rural Differences in Disaster Resilience
SO ANNALS OF THE AMERICAN ASSOCIATION OF GEOGRAPHERS
LA English
DT Article
DE disaster resilience; rural; United States; urban
ID COMMUNITY RESILIENCE; NATURAL HAZARDS; INDICATORS; VULNERABILITY;
   ADJUSTMENT; LOSSES
AB The concept of disaster resilience has gained attention in political spheres and news outlets over the past few years, yet relatively few empirical measures of the concept exist. Furthermore, research into urban resilience has dwarfed our understanding of disaster resilience in rural places. This schism in what is known about the differences between urban and rural places becomes the topic of this article. Employing a suite of spatial and statistical techniques using an established measure of community resilience, the Baseline Resilience Indicators for Communities (BRIC), we focus on two key questions to better explain the resilience divide between urban and rural areas of the United States. Nonparametric rank analysis, analysis of variance, and logistic regression help describe the relationships between rurality and disaster resilience in contrast to resilience in urban areas. Pinpointing the driving factors, or characteristics, of resilience in rural America compared to metropolitan America, accomplished through binary logistic regression, revealed notable distinctions. Resilience in urban areas is primarily driven by economic capital, whereas community capital is the most important driver of disaster resilience in rural areas. Within rural areas there is considerable spatial variability in the components of disaster resilience. This suggests that attempts to enhance resilience cannot be approached using a one-size-fits-most strategy given the variability in the primary drivers of disaster resilience at county scales.
C1 [Cutter, Susan L.; Emrich, Christopher T.] Univ South Carolina, Dept Geog, Hazards & Vulnerabil Res Inst, Columbia, SC 29208 USA.
   [Ash, Kevin D.] Univ S Florida, Sch Geosci, Tampa, FL 33620 USA.
C3 University of South Carolina System; University of South Carolina
   Columbia; State University System of Florida; University of South
   Florida
RP Cutter, SL (corresponding author), Univ South Carolina, Dept Geog, Hazards & Vulnerabil Res Inst, Columbia, SC 29208 USA.
EM scutter@sc.edu; kevinash@usf.edu; emrich@mailbox.sc.edu
RI Ash, Kevin/V-6516-2019; Cutter, Susan/R-8849-2019
OI Ash, Kevin/0000-0002-4231-2112
FU National Science Foundation [SES-1132755]
FX This research was supported by the National Science Foundation under
   Grant SES-1132755.
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NR 54
TC 206
Z9 280
U1 75
U2 598
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 2469-4452
EI 2469-4460
J9 ANN AM ASSOC GEOGR
JI Ann. Am. Assoc. Geogr.
PY 2016
VL 106
IS 6
BP 1236
EP 1252
DI 10.1080/24694452.2016.1194740
PG 17
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA DY8RS
UT WOS:000385398600003
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Salizzoni, E
   Pérez-Campaña, R
   Alcalde-Rodríguez, F
   Talavera-Garcia, R
AF Salizzoni, Emma
   Perez-Campana, Rocio
   Alcalde-Rodriguez, Fernando
   Talavera-Garcia, Ruben
TI Local Planning Practice towards Resilience: Insights from the Adaptive
   Co-Management and Design of a Mediterranean Wetland
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; wetlands; adaptive co-management approach; planning
   policies
ID URBAN RESILIENCE; CLIMATE; LANDSCAPE; POLICY
AB Although widely, as well as recently explored, the concept of urban resilience still poses important issues in terms of its operationalization. For this reason, best practices that show how the resilience concept has been turned into planning practice are much needed. This article presents and discusses the case study of the Charca de Suarez Nature Concerted Reserve, an urban wetland situated along the Andalusian coast (Spain), to contribute to filling the gap on the operationalization of urban resilience at the local planning level. In the Charca, an adaptive co-management and design approach has been successfully put into practice to foster local urban resilience. Starting from some recent key studies on planning and management policies for urban resilience, we propose a framework to read, understand and evaluate the Charca experience, and more generally, resilience-based projects. The analysis highlighted the following crucial key aspects for urban resilience in the Charca case study: A collaborative governance model; and the building of community-capitals. The Charca de Suarez Nature Concerted Reserve can actually be acknowledged as an innovative planning practice, a source of inspiration for visions and experiments oriented to urban resilience.
C1 [Salizzoni, Emma] Politecn Torino, Dipartimento Interateneo Sci Progetto & Polit Ter, I-10125 Turin, Italy.
   [Perez-Campana, Rocio; Talavera-Garcia, Ruben] Univ Complutense Madrid, Dept Geog, Madrid 28040, Spain.
   [Alcalde-Rodriguez, Fernando] Buxus, Motril 18600, Spain.
C3 Polytechnic University of Turin; Complutense University of Madrid
RP Salizzoni, E (corresponding author), Politecn Torino, Dipartimento Interateneo Sci Progetto & Polit Ter, I-10125 Turin, Italy.
EM emma.salizzoni@polito.it; r.perez.campana@ucm.es;
   buxusasociacion@gmail.com; rtalaveragarcia@ucm.es
RI Talavera-Garcia, Ruben/AAC-8915-2021; Perez Campana, Rocio/K-4396-2016
OI Talavera-Garcia, Ruben/0000-0003-4749-3546; SALIZZONI, EMMA PAOLA
   GERMANA/0000-0001-7243-5060; Perez Campana, Rocio/0000-0002-1069-4590
FU Spanish Government [FJCI-2017-31662]
FX We thank all people involved in the Charca de Suarez. They have been an
   example for us and have actively collaborated to make this research
   possible. R.T. thanks to the Spanish Government for the Juan de la
   Cierva fellowship (Ref FJCI-2017-31662).
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NR 52
TC 6
Z9 8
U1 9
U2 51
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2020
VL 12
IS 7
AR 2900
DI 10.3390/su12072900
PG 17
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA LL4WR
UT WOS:000531558100325
OA Green Published, gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Qiu, D
   Lv, BL
   Chan, CML
AF Qiu, Dong
   Lv, Binglin
   Chan, Calvin M. L.
TI How Digital Platforms Enhance Urban Resilience
SO SUSTAINABILITY
LA English
DT Article
DE digital platforms; urban resilience; sustainable city; framework; case
   study; COVID-19
AB Throughout human history, natural and man-made disasters have devastated cities in unpredictable ways. Cities must therefore respond faster and better to minimize the risks posed by disasters. Nowadays, with the rapid development of communication technology, digital platforms are increasingly becoming an indispensable part of people's lives; hence, they could become a new force for urban resilience. However, there are few studies on how digital platforms enhance urban resilience, so this paper attempts to use the method of CiteSpace (V.5.8.R3, 64 bit) scientometrics analysis and literature analysis to study the dimensions and trends of urban resilience, the role of digital platforms in the dimensions of urban resilience, especially focusing on how digital platforms impact on urban resilience during COVID-19. The results showed that there is considerable literature on natural disasters and infrastructure, but few papers discuss urban governance, knowledge systems, and social media. Furthermore, it is also found that digital platforms contributed to the enhancement of urban resilience in China and Singapore during COVID-19. These suggests that enhancing urban resilience through digital platforms can be a viable approach.
C1 [Qiu, Dong; Lv, Binglin] Fujian Univ Technol, Sch Management, Fuzhou 350118, Peoples R China.
   [Chan, Calvin M. L.] Singapore Univ Social Sci, Sch Business, Singapore 599494, Singapore.
C3 Fujian University of Technology; Singapore University of Social Sciences
   (SUSS)
RP Chan, CML (corresponding author), Singapore Univ Social Sci, Sch Business, Singapore 599494, Singapore.
EM qiudong@fjut.edu.cn; lvbinglin@163.com; calvinchanml@suss.edu.sg
RI Chan, Calvin/AEP-8155-2022
OI Chan, Calvin M.L./0000-0003-0282-3716; Qiu, Dong/0000-0001-7870-3070
FU Innovative Methods Project of the Ministry of Science and Technology of
   the People's Republic of China [2020IM010200, 2017IM010200]
FX Innovative Methods Project of the Ministry of Science and Technology of
   the People's Republic of China (Project No. 2020IM010200, 2017IM010200).
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NR 58
TC 18
Z9 18
U1 19
U2 157
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB
PY 2022
VL 14
IS 3
AR 1285
DI 10.3390/su14031285
PG 17
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA ZA6KY
UT WOS:000756271600001
OA gold
DA 2025-04-22
ER

PT J
AU Lassandro, P
   Di Turi, S
AF Lassandro, Paola
   Di Turi, Silvia
TI Multi-criteria and multiscale assessment of building envelope
   response-ability to rising heat waves
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Heat waves mitigation strategies; Building and neighborhood response to
   heat waves; Building energy retrofit; EnergyPlus and ENVI_met
   co-simulation; Multi-criteria analysis
ID GREEN ROOFS; CLIMATE-CHANGE; ENERGY PERFORMANCE; THERMAL COMFORT;
   HIGH-ALBEDO; URBAN; RESILIENCE; TEMPERATURE; IMPACT; TECHNOLOGIES
AB Global warming increases the probability of extreme events and heat waves, intensified by Urban Heat Island phenomenon, triggering severe impacts on both human health and economy. The paper aims at developing a new methodological approach for the assessment of building ability to face rising temperatures, also considering the effects on the surrounding urban areas. It focuses on resilient retrofitting strategies need for building envelope according to three macro-categories: reliability, adaptability and mitigation ability. A set of indicators is defined to achieve a Response Index to cope with heat waves. The method is tested on reference building and its neighborhood. The selected strategies are investigated through an integrated and multilevel analysis with EnergyPlus and ENVI_met, in three different cities with increasing summer temperature. The final comparative analysis is carried out through a multi-criteria analysis according to the identified indicators. The best responsive solutions result the green ones combined with high albedo, but the research highlights also some controversial aspects. The method can be a valid tool to support the decisional process about heat waves mitigation in the roadmap towards a more responsive built environment.
C1 [Lassandro, Paola] Italian Natl Res Council CNR, Construct Technol Inst ITC, Via Paolo Lembo 38-B, I-70124 Bari, Italy.
   [Di Turi, Silvia] Italian Natl Agcy New Technol Energy & Sustainabl, Dept Energy Efficiency DUEE, Via Anguillarese 301, I-00123 Rome, Italy.
C3 Consiglio Nazionale delle Ricerche (CNR); Istituto di Neuroscienze
   (IN-CNR); Italian National Agency New Technical Energy & Sustainable
   Economics Development
RP Lassandro, P (corresponding author), Italian Natl Res Council CNR, Construct Technol Inst ITC, Via Paolo Lembo 38-B, I-70124 Bari, Italy.
EM paola.lassandro@itc.cnr.it; silvia.dituri@enea.it
RI Di Turi, Silvia/X-3789-2019; lassandro, Paola/AAX-8210-2020
OI Di Turi, Silvia/0000-0001-9213-672X; LASSANDRO,
   PAOLA/0000-0001-6611-2820
FU METROPOLIS research project [PON03PE_00093_4]
FX This study was carried out within the METROPOLIS research project
   (PON03PE_00093_4) and subsequent researches conducted in the
   Construction Technologies Institute -National Research Council of Italy
   (ITC-CNR). We would like to give special thanks to Antonio Occhiuzzi,
   the Director of ITC-CNR, for support. We would like also to thank the
   Journal's editor-in-chief, editors and reviewers whose useful comments
   helped us improve the quality of our paper. Author Contributions Paola
   Lassandro and Silvia Di Turi contributed equally to this paper.
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NR 81
TC 18
Z9 18
U1 4
U2 61
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD NOV
PY 2019
VL 51
AR 101755
DI 10.1016/j.scs.2019.101755
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA JI8WT
UT WOS:000493744700059
DA 2025-04-22
ER

PT J
AU Nelson, L
   Ahmadpoor, N
AF Nelson, Laura
   Ahmadpoor, Negar
TI An examination of flood resilience in London Borough of Southwark
SO URBAN CLIMATE
LA English
DT Article
DE Flood; Resilience; Urban planning; Flood resilience Index
ID CLIMATE-CHANGE; URBAN RESILIENCE; VULNERABILITY; IMPACTS; JUSTICE;
   FUTURE; RISKS
AB This paper examines the flooding resilience of the London Borough of Southwark, and the extent to which resilience concepts are incorporated into local flooding management practices. With climate change causing shifts in the global pattern of flood events combined with rapid urban population growth, the importance of cultivating urban resilience is widely recognized by researchers and practitioners alike. This study develops a Flood Resilience Index (FRI) inspired by the CORFU project, based on natural, physical, economic, social, and institutional attributes of the borough. Secondary data from the Legatum Institute Prosperity Index and the Thriving Places Index were used to allow for replicability and comparison with the rest of the UK. Results derived from the FRI revealed that Southwark's low levels of flooding resilience stem from a combination of natural vulnerabilities, compounded by urban challenges including housing poverty, lack of green space, and limited social capital. By locating the gaps in flood resilience and crossexamining these gaps in light of Southwark Council's flooding management strategy, this study contributes to the understanding of urban flood resilience and provides a framework for evaluating resilience in other urban areas.
C1 [Nelson, Laura; Ahmadpoor, Negar] Anglia Ruskin Univ, Dept Engn & Built Environm, London, England.
C3 Anglia Ruskin University
RP Ahmadpoor, N (corresponding author), Anglia Ruskin Univ, Dept Engn & Built Environm, London, England.
EM negar.ahmadpoor@aru.ac.uk
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NR 62
TC 3
Z9 3
U1 32
U2 59
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD NOV
PY 2023
VL 52
AR 101692
DI 10.1016/j.uclim.2023.101692
EA OCT 2023
PG 26
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA FU6E0
UT WOS:001148399300001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Shi, CC
   Zhu, XP
   Wu, HW
   Li, ZH
AF Shi, Chenchen
   Zhu, Xiaoping
   Wu, Haowei
   Li, Zhihui
TI Assessment of Urban Ecological Resilience and Its Influencing Factors: A
   Case Study of the Beijing-Tianjin-Hebei Urban Agglomeration of China
SO LAND
LA English
DT Article
DE urban resilience; land use; cover change; urbanization; carbon
   neutrality; Beijing-Tianjin-Hebei urban agglomeration
ID ECOSYSTEM RESILIENCE; COMPETITIVENESS; SURROGATES; FRAMEWORK
AB Climate change and rapid urbanization bring natural and anthropogenetic disturbance to the urban ecosystem, damaging the sustainability and resilience of cities. Evaluation of urban ecological resilience and an investigation of its impact mechanisms are of great importance to sustainable urban management. Therefore, taking the Beijing-Tianjin-Hebei Urban Agglomeration (BTHUA) region in China as a study area, this study builds an evaluation index to assess urban ecological resilience and its spatial patterns with the resilience surrogate of net primary production during 2000-2020. The evaluation index is constructed from two dimensions, including the sensitivity and adaptability of urban ecosystems, to capture the two key mechanisms of resilience, namely resistance and recovery. Resilience-influencing factors including biophysical and socio-economic variables are analyzed with the multiple linear regression model. The results show that during 2000-2020, the spatial pattern of urban ecological resilience in the BTHUA is characterized by high resilience in the northwest and relatively low resilience in the southeast. High resilience areas account for 40% of the whole region, mainly contributed by Zhangjiakou and Chengde city in Hebei Province, which is consistent with the function orientation of the BTH region in its coordinated development. Along with urbanization in this region, ecological resilience decreases with increased population and increases with GDP growth; this indicates that, although population expansion uses resources, causes pollution and reduces vegetation coverage, with economic growth and technological progress, the negative ecological impact could be mitigated, and the coordinated development of social economy and ecological environment could eventually be reached. Our findings are consistent with mainstream theories examining the ecological impact of socio-economic development such as the Environmental Kuznets Curve, Porter Hypothesis, and Ecological Modernization theories, and provide significant references for future urbanization, carbon neutrality, resilience building, and urban ecological management in China.
C1 [Shi, Chenchen] Capital Univ Econ & Business, Sch Urban Econ & Publ Adm, Beijing 100070, Peoples R China.
   [Shi, Chenchen; Li, Zhihui] Chinese Acad Sci, Key Lab Land Surface Pattern & Simulat, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Shi, Chenchen] Capital Univ Econ & Business, Beijing Key Lab Megareg Sustainable Dev Modeling, Beijing 100070, Peoples R China.
   [Zhu, Xiaoping] Hebei Normal Univ Sci & Technol, Coll Agron & Biotechnol, Qinhuangdao 066104, Hebei, Peoples R China.
   [Wu, Haowei] Beijing Forestry Univ, Sch Soil & Water Conservat, Beijing 100083, Peoples R China.
   [Li, Zhihui] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
C3 Capital University of Economics & Business; Chinese Academy of Sciences;
   Institute of Geographic Sciences & Natural Resources Research, CAS;
   Capital University of Economics & Business; Hebei Normal University of
   Science & Technology; Beijing Forestry University; Chinese Academy of
   Sciences; University of Chinese Academy of Sciences, CAS
RP Li, ZH (corresponding author), Chinese Acad Sci, Key Lab Land Surface Pattern & Simulat, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.; Li, ZH (corresponding author), Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
EM ccshi@cueb.edu.cn; zxp0593@hevttc.edu.cn; wuhaowei@bjfu.edu.cn;
   lizhihui@igsnrr.ac.cn
RI li, zh/HII-5698-2022; Shi, Chenchen/JMC-4424-2023; Wu,
   Haowei/JLL-8572-2023; zhu, xiaoping/A-3979-2013
OI Li, Zhihui/0000-0002-3051-6580; Wu, Haowei/0000-0002-3235-6437; Shi,
   Chenchen/0000-0002-8608-668X
FU National Natural Science Foundation of China [72104149]; Academy of
   Metropolis Economic and Social Development at Capital University of
   Economics and Business [ZSXM2021003]; Capital University of Economics
   and Business: The Fundamental Research Funds for Beijing Universities
   [XRZ2021048, QNTD202009]
FX This research was funded by the National Natural Science Foundation of
   China, grant number 72104149; Academy of Metropolis Economic and Social
   Development at Capital University of Economics and Business, grant
   number ZSXM2021003; Capital University of Economics and Business: The
   Fundamental Research Funds for Beijing Universities, grant number
   XRZ2021048 and QNTD202009.
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U1 141
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PU MDPI
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PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
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VL 11
IS 6
AR 921
DI 10.3390/land11060921
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WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 2J9HW
UT WOS:000815959600001
OA gold
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Halbac-Cotoara-Zamfir, R
   Cividino, S
   Egidi, G
   Salvati, L
AF Halbac-Cotoara-Zamfir, Rares
   Cividino, Sirio
   Egidi, Gianluca
   Salvati, Luca
TI BUILDING FOR LOCAL RESILIENCE AND THE LATENT NEXUS BETWEEN VULNERABILITY
   AND SUSTAINABILITY IN METROPOLITAN REGIONS
SO ENVIRONMENTAL ENGINEERING AND MANAGEMENT JOURNAL
LA English
DT Article
DE Europe; metropolitan hierarchy; public governance; resilience; urban
   management
ID WATER MANAGEMENT; CLIMATE-CHANGE; ECONOMIC RESILIENCE; LAND DEGRADATION;
   URBAN SPRAWL; CITY; TRANSITION; BARRIERS; CITIES; PERSPECTIVE
AB Providing a review of theoretical and empirical studies with a specific coverage on Europe, this paper focuses on the concept of 'metropolitan resilience' in light of public governance and regional planning, making some distinctions with the more general notion of 'urban resilience'. While discussing different approaches to 'engineering resilience' and 'evolutionary resilience' characteristic of transitioning urban systems, conceptual differences between the issues of `specific' and 'generic' resilience in metropolitan regions were outlined, distinguishing central cities from suburban locations and larger regions surrounding urban cores. Integrating multi-disciplinary frameworks to resilience science allows formulation of shared definitions and homogeneous frameworks evaluating resilience in different socioeconomic contexts at both local and regional scale.
C1 [Halbac-Cotoara-Zamfir, Rares] Politehn Univ Timisoara, Dept Overland Commun Ways Fdn & Cadastral Survey, I Curea 1A, Timisoara 300224, Romania.
   [Cividino, Sirio] Univ Udine, Dept Agr, I-33100 Udine, Italy.
   [Egidi, Gianluca] Univ Tuscia, Dept OfAgr & Forestry Sci DAFNE, I-01100 Viterbo, Italy.
   [Salvati, Luca] Univ Macerata, Dept Econ & Law, Via Armaroli 43, I-62100 Macerata, Italy.
C3 Universitatea Politehnica Timisoara; University of Udine; Tuscia
   University; University of Macerata
RP Halbac-Cotoara-Zamfir, R (corresponding author), Politehn Univ Timisoara, Dept Overland Commun Ways Fdn & Cadastral Survey, I Curea 1A, Timisoara 300224, Romania.
EM raresh_81@yahoo.com
RI Halbac-Cotoara-Zamfir, Rares/E-3429-2012; Salvati, Luca/AAS-6179-2021
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NR 140
TC 3
Z9 3
U1 0
U2 20
PU GH ASACHI TECHNICAL UNIV IASI
PI IASI
PA 71 MANGERON BLVD, IASI, 700050, ROMANIA
SN 1582-9596
EI 1843-3707
J9 ENVIRON ENG MANAG J
JI Environ. Eng. Manag. J.
PD JUL
PY 2021
VL 20
IS 7
BP 1065
EP 1076
PG 12
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA TP3GX
UT WOS:000677483000003
DA 2025-04-22
ER

PT J
AU Wang, G
   Zhang, KN
AF Wang, Gang
   Zhang, Kangning
TI Turning peril into opportunity: Construction and validation of a
   resilience assessment system for China's coastal megacities
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban resilience; Coastal megacity; Crisis management 4R; Assessment
   system
ID COMMUNITY RESILIENCE; SEISMIC RESILIENCE; CRISIS MANAGEMENT; URBAN
   RESILIENCE; CLIMATE-CHANGE; FRAMEWORK; RISK; VULNERABILITY; INDICATORS;
   MODEL
AB Enhancing urban resilience and strengthening risk resistance capacities have emerged as pivotal concerns in the construction and governance of contemporary urban landscapes globally. Given the uniqueness of coastal megacities in terms of geography and population, a more targeted and effective resilience assessment is urgently needed. This investigation develops a comprehensive, multidimensional index system to assess the resilience life cycle of China's coastal megacities. First, we creatively introduce the process perspective of the 4R model of crisis management into urban resilience assessment, revealing the preventive, defensive, recovery, and transformative resilience of China's coastal megacities. Second, we propose a spatio-temporal assessment matrix that integrates four processes of urban resilience and six representative subsystems in coastal megacities: social, economic, ecological, infrastructural, technological, and institutional. Third, we select 59 indicators to construct a threelevel assessment index system for China's coastal megacities. This index system is strictly screened and optimized through qualitative and quantitative methods. Fourth, we validate the assessment system using Qingdao's data by calculating an urban resilience index and analyzing trends. We find the most important improvement goals and resilience enhancement suggestions for Qingdao by analyzing the indicator sensitivity. This study contributes to the development of urban resilience theories and identifies weaknesses in different dimensions to strengthen and improve the resilience of coastal megacities.
C1 [Wang, Gang; Zhang, Kangning] Ocean Univ China, Sch Int Affairs & Publ Adm, 238 Songling Rd, Qingdao 266100, Shandong, Peoples R China.
C3 Ocean University of China
RP Zhang, KN (corresponding author), Ocean Univ China, Sch Int Affairs & Publ Adm, 238 Songling Rd, Qingdao 266100, Shandong, Peoples R China.
EM zkning01@163.com
FU National Social Science Foundation of China [21AZZ014]; Fundamental
   Research Funds for the Central Universities [202461099]
FX <BOLD>Funding</BOLD> This work was supported by the National Social
   Science Foundation of China (No. 21AZZ014) and the Fundamental Research
   Funds for the Central Universities (No. 202461099) .
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NR 122
TC 4
Z9 4
U1 64
U2 110
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT 1
PY 2024
VL 112
AR 105606
DI 10.1016/j.scs.2024.105606
EA JUL 2024
PG 17
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA YI5H7
UT WOS:001267869400001
DA 2025-04-22
ER

PT J
AU Liao, ZJ
   Zhang, LJ
AF Liao, Zhenjie
   Zhang, Lijuan
TI Spatio-temporal pattern evolution and dynamic simulation of urban
   ecological resilience in Guangdong Province, China
SO HELIYON
LA English
DT Article
DE Urban ecological resilience; Dynamic evolution; Obstacle factors; Back
   propagation neural network model; Guangdong province
ID IMPACT
AB Currently, in-depth analyses concerning the dynamic simulation of urban resilience and forecasting future development trends are lacking. To address urban vulnerability and promote regional balance and sustainable development, this study assessed the urban ecological resilience of Guangdong Province from 2000 to 2020 using the entropy weight TOPSIS method. Furthermore, we examined the spatial and temporal variations and evolution of urban ecological resilience through measures such as kernel density estimation, Theil index, and the center of gravity standard deviation ellipse. We employ obstacle degree and back -propagation (BP) neural network models to identify the primary barriers and conduct dynamic simulations. Our findings revealed that, from an evolutionary resilience perspective, urban ecological resilience is an inherent characteristic of urban ecosystems. It consistently possesses the dynamic ability to defend against disturbances, respond promptly when interference occurs, and continually learn and innovate, regardless of the urban ecology's state of disturbance. Urban ecological resilience in Guangdong Province has steadily improved with minimal fluctuations, establishing a trend characterized by low concentration and high convergence. Regarding barrier factors, the disposal rate of domestic waste, number of college students per 10,000 people, number of R&D personnel per 10,000 labor force, and per capita park green space area are the primary constraints on urban ecological resilience in Guangdong Province. Dynamic simulations from 2022 to 2030 suggest that urban resilience will experience gradual development with a decreasing overall resilience level. Areas with lower and median resilience values will predominate, while the number of cities with higher resilience levels will see a reduction. Future development trends indicate notable temporal and spatial variations. In the east and west directions, the urban resilience level forms a "U" shape, while in the north and south directions, it is higher in the south and lower in the north.
C1 [Liao, Zhenjie; Zhang, Lijuan] Guangzhou Huashang Coll, Sch Management, Guangzhou, Peoples R China.
RP Zhang, LJ (corresponding author), Guangzhou Huashang Coll, Sch Management, Guangzhou, Peoples R China.
EM 281746568@qq.com
RI ZHANG, LIJUAN/JYP-4629-2024
FU Guangzhou Huashang College [2022HSKT02, 2021HSXK10]; Philosophy and
   Social Sciences of Guangzhou in the 14th Five-year Period [2023GZGJ314]
FX This study received support from the following sources: a grant from the
   Guangzhou Huashang College (No.2022HSKT02) ; a grant from the Guangzhou
   Huashang College (No.2021HSXK10) ; the Philosophy and Social Sciences of
   Guangzhou in the 14th Five-year Period (2023GZGJ314) .
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Z9 3
U1 38
U2 80
PU CELL PRESS
PI CAMBRIDGE
PA 50 HAMPSHIRE ST, FLOOR 5, CAMBRIDGE, MA 02139 USA
EI 2405-8440
J9 HELIYON
JI Heliyon
PD FEB 15
PY 2024
VL 10
IS 3
AR e25127
DI 10.1016/j.heliyon.2024.e25127
EA FEB 2024
PG 16
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA KT0R3
UT WOS:001182103300001
PM 39668857
OA gold
DA 2025-04-22
ER

PT J
AU Ardebili, AA
   Ficarella, A
   Longo, A
   Khalil, A
   Khalil, S
AF Ardebili, Ali Aghazadeh
   Ficarella, Antonio
   Longo, Antonella
   Khalil, Adem
   Khalil, Sabri
TI Hybrid Turbo-Shaft Engine Digital Twinning for Autonomous Aircraft via
   AI and Synthetic Data Generation
SO AEROSPACE
LA English
DT Article
DE autonomous aircraft; urban air mobility; digital twins; unmanned
   aircraft systems; unmanned aircraft vehicles; synthetic data generation;
   data for resilience; transport complex systems; smart cities;
   digitalization
AB Autonomous aircraft are the key enablers of future urban services, such as postal and transportation systems. Digital twins (DTs) are promising cutting-edge technologies that can transform the future transport ecosystem into an autonomous and resilient system. However, since DT is a data-driven solution based on AI, proper data management is essential in implementing DT as a service (DTaaS). One of the challenges in DT development is the availability of real-life data, particularly for training algorithms and verifying the functionality of DT. The current article focuses on data augmentation through synthetic data generation. This approach can facilitate the development of DT in case the developers do not have enough data to train the machine learning (ML) algorithm. The current twinning approach provides a prospective ideal state of the engine used for proactive monitoring of the engine's health as an anomaly detection service. In line with the track of unmanned aircraft vehicles (UAVs) for urban air mobility in smart city applications, this paper focuses specifically on the common hybrid turbo-shaft in drones/helicopters. However, there is a significant gap in real-life similar synthetic data generation in the UAV domain literature. Therefore, rolling linear regression and Kalman filter algorithms were implemented on noise-added data, which simulate the data measured from the engine in a real-life operational life cycle. For both thermal and hybrid models, the corresponding DT model has shown high efficiency in noise filtration and a certain amount of predictions with a lower error rate on all engine parameters except the engine torque.
C1 [Ardebili, Ali Aghazadeh; Longo, Antonella] Univ Salento, Data Lab, Dipo Ingn Innovaz, I-73100 Lecce, Italy.
   [Ficarella, Antonio] Univ Salento, Green Engine Lab, I-73100 Lecce, Italy.
   [Khalil, Adem; Khalil, Sabri] Istanbul Gelisim Univ, Fac Engn & Architecture, TR-34520 Istanbul, Turkiye.
C3 University of Salento; University of Salento; Istanbul Gelisim
   University
RP Ardebili, AA; Longo, A (corresponding author), Univ Salento, Data Lab, Dipo Ingn Innovaz, I-73100 Lecce, Italy.; Ficarella, A (corresponding author), Univ Salento, Green Engine Lab, I-73100 Lecce, Italy.
EM ali.a.ardebili@unisalento.it; antonio.ficarella@unisalento.it;
   antonella.longo@unisalento.it; 190414137@ogr.gelisim.edu.tr;
   sabri.khalil@ogr.gelisim.edu.tr
RI Ardebili, Ali/AAN-7750-2020; Ficarella, Antonio/E-6532-2012; Longo,
   Antonella/A-5335-2009
OI Ficarella, Antonio/0000-0003-3206-4212; Longo,
   Antonella/0000-0002-6902-0160; KHALIL, Sabri/0009-0005-7227-1920;
   Khalil, Adem/0009-0001-9362-4992; aghazadeh ardebili,
   ali/0000-0002-3557-9986
FU Ph.D. school of the University of Salento [CUP F87G22000270002]
FX This research was supported by the Ph.D. school of the University of
   Salento, Department of Complex Systems Engineering-XXXVI cycle; and the
   RIPARTI regional project-dataEnrichment for Resilient UAS (assegni di
   RIcerca per riPARTire con le Imprese)-POC PUGLIA FESRTFSE 2014/2020, CUP
   F87G22000270002. We also like to express our heartfelt gratitude to
   Maria Pia Romano for English proofreading of the article.
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PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2226-4310
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JI Aerospace
PD AUG
PY 2023
VL 10
IS 8
AR 683
DI 10.3390/aerospace10080683
PG 17
WC Engineering, Aerospace
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA AN2T7
UT WOS:001119087000001
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Dhiman, R
   VishnuRadhan, R
   Inamdar, AB
   Eldho, I
AF Dhiman, Ravinder
   VishnuRadhan, Renjith
   Inamdar, Arun B.
   T I, Eldho
TI Web-GIS integrated open source mashup technology as a cue for integrated
   management in coastal megacities
SO JOURNAL OF COASTAL CONSERVATION
LA English
DT Article
DE Coastal cities; Web-GIS; Open source; Mumbai; Resource management
ID VULNERABILITY; FRAMEWORK; CLIMATE; URBAN; RESILIENCE; SCIENCE; MUMBAI
AB Coastal resource management is a significant component of the sustainable development alongside the dynamic coastal zone overlapping urban regions. The Stakeholder requirements for the strategic coastal resource planning prerequisite a systematic approach to fill the critical gap on the subject of information, knowledge, data and GIS (Geographical Information System) services in coastal cities. In order to facilitate this, we introduce an open source Web-GIS based decision support framework stated as the Coastal management information system (CMIS) which has been developed to integrate data and knowledge coupled with GIS services for the Mumbai megacity, developed using the open source platform based on PHP and Map Script. CMIS consists of three key components - Data Centre (houses different datasets for expert stakeholders), Knowledge Centre (developed for common stakeholders), and Web-GIS based online mapping tool called CMIS Online which enables a user-friendly assessment of coastal resources. The framework can serve as a dynamic mapping application for coastal features, incorporating advanced GIS functionalities. This paper further describes the methodology for the development and implementation of CMIS as a pilot initiative along the coastline. The initiative can strengthen the institutional framework between associated government agencies, coastal planners, managers, and researchers. The study also encourages the use of open source coupled GIS techniques, which can enhance the transparency in the allocations and utilization of coastal resources among various end users, and thereby the developed framework can curtail over-exploitation of resources to some extent and can aid in the progression towards a more sustainable and resilient urban environment.
C1 [Dhiman, Ravinder] Indian Inst Technol, Ctr Urban Sci & Engn, Mumbai 400076, Maharashtra, India.
   [VishnuRadhan, Renjith; T I, Eldho] Indian Inst Technol, Dept Civil Engn, Mumbai 400076, Maharashtra, India.
   [Inamdar, Arun B.] Indian Inst Technol, Ctr Studies Resources Engn, Mumbai 400076, Maharashtra, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Bombay; Indian Institute of Technology System (IIT
   System); Indian Institute of Technology (IIT) - Bombay; Indian Institute
   of Technology System (IIT System); Indian Institute of Technology (IIT)
   - Bombay
RP Dhiman, R (corresponding author), Indian Inst Technol, Ctr Urban Sci & Engn, Mumbai 400076, Maharashtra, India.
EM rdhiman@iitb.ac.in
RI Dhiman, Ravinder/AAH-6913-2019; VishnuRadhan, Renjith/AAI-4056-2020;
   Dhiman, Ravinder/N-1239-2017
OI Eldho, T.I./0000-0003-4883-3792; Dhiman, Ravinder/0000-0002-5906-8953;
   VishnuRadhan, Renjith/0000-0001-6442-824X
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NR 40
TC 1
Z9 1
U1 3
U2 16
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1400-0350
EI 1874-7841
J9 J COAST CONSERV
JI J. Coast. Conserv.
PD FEB 22
PY 2020
VL 24
IS 2
AR 18
DI 10.1007/s11852-020-00734-y
PG 12
WC Biodiversity Conservation; Environmental Sciences; Marine & Freshwater
   Biology; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Marine &
   Freshwater Biology; Water Resources
GA KS2DZ
UT WOS:000518121900001
DA 2025-04-22
ER

PT J
AU Zhang, MD
   Wu, QB
   Li, WL
   Sun, DQ
   Huang, F
AF Zhang, Mingdou
   Wu, Qingbang
   Li, Weilu
   Sun, Dongqi
   Huang, Fei
TI Intensifier of urban economic resilience: Specialized or diversified
   agglomeration?
SO PLOS ONE
LA English
DT Article
ID EMPLOYMENT GROWTH; RECESSION; VARIETY; INSIGHTS; SHOCKS
AB With increased uncertainty and instability worldwide, how to enhance the urban economy resilience effectively has become one main issue for urban economic development. Based on the measurement of the economic resilience of 241 cities at the prefecture level and above in China using the sensitive index method, we scrutinize the impact of industrial specialization agglomeration and diversification agglomeration on urban economic resilience. Results indicate that, during the impact resistance period, industrial diversification agglomeration, especially related industrial diversification agglomeration, can enhance urban economic resilience, whereas industrial specialization agglomeration has no positive effect. In contrast, during the period of recovery and adjustment, industrial specialization agglomeration can improve urban economic resilience, and industrial diversification agglomeration, especially related industrial diversification agglomeration, has no positive effect. Further analysis indicates that, under the interaction of specialization and diversification agglomerations, the effect of industrial agglomeration on urban economic resilience depends on the type of dual industrial agglomeration, showing remarkable heterogeneity. This study may provide useful references for policy makers concerned with urban resilience.
C1 [Zhang, Mingdou] Shanghai Univ Finance & Econ, Sch Reg & Urban Sci, Shanghai, Peoples R China.
   [Wu, Qingbang] Dongbei Univ Finance & Econ, Sch Econ, Dalian, Peoples R China.
   [Li, Weilu] Dongbei Univ Finance & Econ, Inst Econ & Social Dev, Dalian, Peoples R China.
   [Sun, Dongqi] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing, Peoples R China.
   [Huang, Fei] Shanghai Univ Finance & Econ, Sch Marxism, Shanghai, Peoples R China.
C3 Shanghai University of Finance & Economics; Dongbei University of
   Finance & Economics; Dongbei University of Finance & Economics; Chinese
   Academy of Sciences; Institute of Geographic Sciences & Natural
   Resources Research, CAS; Shanghai University of Finance & Economics
RP Huang, F (corresponding author), Shanghai Univ Finance & Econ, Sch Marxism, Shanghai, Peoples R China.
EM huang.fei@mail.shufe.edu.cn
FU National Natural Science Foundation of China [71804021]
FX MD Zhang (71804021):This work was supported by the National Natural
   Science Foundation of China. Yes-Specify the role played.
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NR 50
TC 29
Z9 31
U1 31
U2 239
PU PUBLIC LIBRARY SCIENCE
PI SAN FRANCISCO
PA 1160 BATTERY STREET, STE 100, SAN FRANCISCO, CA 94111 USA
SN 1932-6203
J9 PLOS ONE
JI PLoS One
PD NOV 29
PY 2021
VL 16
IS 11
AR e0260214
DI 10.1371/journal.pone.0260214
PG 21
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA YU5IH
UT WOS:000752076100052
PM 34843547
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Wu, BM
   Wang, ZR
   Tian, Y
   Zheng, SN
AF Wu, Bomeng
   Wang, Zhaoren
   Tian, Ye
   Zheng, Shuanning
TI The impact of industrial transformation and upgrading on fossil energy
   elasticity in China
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Fossil fuel dependence; Energy elasticity coefficient; Industrial
   transformation and upgrading; Energy-resilient city
ID CONSUMPTION; RESILIENCE; EFFICIENCY; TOURISM; SYSTEMS
AB This study aims to elucidate the profound implications of industrial transformation and upgrading in mitigating dependence on fossil fuels, which holds paramount significance in shaping energy transition strategies-an aspect that is currently missing in existing studies. Leveraging data spanning from 2000 to 2020, encompassing fossil energy consumption and economic development, this paper developed a second-order classification model as a new measure of energy elasticity. Comparing regional variations in fossil energy resilience, an in-depth analysis was conducted on four representative provinces to understand the evolution of their fossil energy consumption structures over time. Correlation analysis was employed to reveal the impact of industrial structures on the reduction of fossil energy dependence. The results indicate distinct spatial variations in the energy transition effect, with the southwest inland region retaining a pronounced reliance on fossil energy sources. However, approximately 80% of the provinces have made substantial progress in reducing fossil energy dependence from 2000 to 2020. Notably, the financial sector and the accommodation and catering industry contribute positively to mitigating fossil energy dependence, while the industrial sector exhibits the opposite effect. Urban agglomeration planning attributes the uneven regional energy transition to the delineation of urban industrial functions. Suggestions for narrowing the energy transition gap include measuring the sustainability of the industrial chain from a life-cycle perspective, avoiding the singular functional division of cities, and developing systematic policies. In the catering industry, adopting alternative cooking energy and implementing the conversion and recycling of catering waste can help prevent risks. This study underscores the positive role of the accommodation and catering industry in the energy transition, along with its potential risks. The study also makes efforts toward advancing the application of the widely used energy elasticity assessment method.
C1 [Wu, Bomeng; Wang, Zhaoren; Tian, Ye; Zheng, Shuanning] Chinese Acad Sci, Inst Urban Environm, Key Lab Urban Environm & Hlth, Xiamen 361021, Fujian, Peoples R China.
   [Zheng, Shuanning] 1799 Jimei Rd, Xiamen, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Urban Environment, CAS
RP Zheng, SN (corresponding author), 1799 Jimei Rd, Xiamen, Peoples R China.
EM snzheng@iue.ac.cn
RI Tian, Ye/AAJ-9782-2021
OI wu, bo meng/0000-0002-7585-7880
FU National Key R D Program [2022YFF1303202]; Strategic Priority Research
   Program (A) of the Chinese Academy of Sciences [XDA23030402]
FX This research was supported by National Key R & D Program
   [2022YFF1303202] ; the Strategic Priority Research Program (A) of the
   Chinese Academy of Sciences [XDA23030402] .
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   Zheng XY, 2023, LAND-BASEL, V12, DOI 10.3390/land12040795
   Zhou AH, 2023, J CLEAN PROD, V422, DOI 10.1016/j.jclepro.2023.138560
   Zhou YK, 2023, ENERG BUILDINGS, V279, DOI 10.1016/j.enbuild.2022.112649
NR 51
TC 14
Z9 14
U1 26
U2 49
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD JAN 1
PY 2024
VL 434
AR 140287
DI 10.1016/j.jclepro.2023.140287
EA DEC 2023
PG 12
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA FN9U5
UT WOS:001146643000001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ning, L
   Sheng, SQ
   Meng, Y
AF Ning, Lei
   Sheng, Shuangqing
   Meng, Yue
TI The interplay and synergistic relationship between urban land expansion
   and urban resilience across the three principal metropolitan regions of
   the Yangtze River Basin
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Yangtze River Basin; Urban clusters; Urban expansion; Urban resilience;
   Coupling coordination; China
ID DELTA
AB As global urbanization advances, the expansion of urban land has subjected cities to increasingly frequent and extensive external disturbances, often revealing limitations in disaster prevention and mitigation capacities, particularly in regions characterized by high urbanization, environmental degradation, and recurrent natural disasters. This study investigates the association between urban land expansion and urban resilience, developing a targeted analytical framework to assess their coupling and coordination. Leveraging remote sensing data on land use and socio-economic development indicators, we constructed a comprehensive evaluation index encompassing social, economic, ecological, and infrastructural dimensions. Examining three principal urban agglomerations in China's Yangtze River Basin, we analyzed the spatial-temporal dynamics and rates of change in urban land area and resilience levels from 2000 to 2020. A coupling coordination model was applied to assess the alignment between the rate of urban land expansion and resilience improvement, ultimately aiming to derive actionable policy recommendations. The results demonstrate that: (1) both the intensity and rate of urban land expansion across urban agglomerations in the Yangtze River Basin have declined, indicating a shift in urbanization focus from "land expansion" to "quality enhancement," with a slowdown in the conversion of agricultural to urban land. (2) Urban land expansion exhibits weak directionality, with land expansion occurring uniformly within the region. (3) On the whole, resilience levels in the Yangtze River Basin's urban agglomerations remain moderate or lower, although showing gradual improvement. (4) The coordination between urban land area and urban resilience across the basin is limited, with a declining alignment between urban land expansion and resilience enhancement rates, signaling an emerging imbalance. By assessing the coordination between urban land expansion and resilience, this study seeks to inform policy development on urban land management and resilience enhancement within the Yangtze River Basin's urban agglomerations.
C1 [Ning, Lei; Meng, Yue] Xichang Univ, Sch Tourism & Town & Country Planning, Xichang 615013, Peoples R China.
   [Sheng, Shuangqing] China Agr Univ, Coll Land Sci & Technol, Beijing 100083, Peoples R China.
C3 China Agricultural University
RP Meng, Y (corresponding author), Xichang Univ, Sch Tourism & Town & Country Planning, Xichang 615013, Peoples R China.; Sheng, SQ (corresponding author), China Agr Univ, Coll Land Sci & Technol, Beijing 100083, Peoples R China.
EM shengsq@cau.edu.cn; xbhmy@163.com
RI Ning, Lei/C-7063-2014
FU Tenth Social Science Planning Project of Ningbo, Zhejiang Province
   [G2023-10-2]; The "High-level Talent" Research Support Program of
   Xichang College [LGLS202207]
FX We appreciate the constructive feedback provided by the anonymous
   reviewers. This work was supported by the Tenth Social Science Planning
   Project of Ningbo, Zhejiang Province (Grant No. G2023-10-2), and the
   "High-level Talent" Research Support Program of Xichang College (Grant
   No. LGLS202207).
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NR 56
TC 0
Z9 0
U1 11
U2 11
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD DEC 30
PY 2024
VL 14
IS 1
AR 31868
DI 10.1038/s41598-024-83200-1
PG 19
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA Q7I6J
UT WOS:001386372100028
PM 39738487
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Ripp, M
   Egusquiza, A
   Lückerath, D
AF Ripp, Matthias
   Egusquiza, Aitziber
   Lueckerath, Daniel
TI Urban Heritage Resilience: An Integrated and Operationable Definition
   from the SHELTER and ARCH Projects
SO LAND
LA English
DT Article
DE urban heritage; resilience; urban planning; climate change; urban
   development; sustainable urban development
ID CLIMATE; VULNERABILITY; UNCERTAINTY; ADAPTATION; MANAGEMENT; GOVERNANCE;
   ROTTERDAM
AB Resilience, initially a concept rooted in psychology, has traversed disciplinary boundaries, finding application in fields such as urban planning and development since the 2010s. Despite its broad application, most definitions remain too abstract to allow their practical integration into urban planning and development contexts. Addressing this challenge, the European research projects SHELTER and ARCH offer a practicable integration of resilience with planning and development practices surrounding urban heritage. Following a systemic approach to resilience, both projects integrate perspectives from urban development, climate change adaptation, disaster risk management, and heritage management, supported with tools and guidance to anchor resilience in existing practices. This paper presents the results from both projects, including similarities and differences.
C1 [Ripp, Matthias] OWHC Org World Heritage Cities, Quebec City, PQ G1K 3Y2, Canada.
   [Egusquiza, Aitziber] TECNALIA, Basque Res & Technol Alliance BRTA, Parque Cientif & Tecnol Bizkaia, Derio 48170, Spain.
   [Lueckerath, Daniel] Fraunhofer Inst Intelligent Anal & Informat Syst I, D-53757 St Augustin, Germany.
RP Lückerath, D (corresponding author), Fraunhofer Inst Intelligent Anal & Informat Syst I, D-53757 St Augustin, Germany.
EM matthiasripp@posteo.de; aitziber.egusquiza@tecnalia.com;
   daniel.lueckerath@iais.fraunhofer.de
RI Ripp, Matthias/AAG-6876-2021; Egusquiza, Aitziber/ABB-6332-2021
OI Ripp, Matthias/0000-0001-9572-8376; Egusquiza,
   Aitziber/0000-0003-1051-6580; Luckerath, Daniel/0000-0002-4988-5511
FU ARCH [820,999, 821,282]; European Union
FX This paper has been partially supported by the framework of the European
   projects ARCH and SHELTER. These projects have received funding from the
   European Union's Horizon 2020 research and innovation program under
   grant agreement nos. 820,999 and 821,282.
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NR 93
TC 0
Z9 0
U1 8
U2 8
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD DEC
PY 2024
VL 13
IS 12
AR 2052
DI 10.3390/land13122052
PG 20
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA Q7Z3W
UT WOS:001386807600001
OA gold
DA 2025-04-22
ER

PT J
AU Li, DZ
   Zhu, XW
   Huang, GY
   Feng, HB
   Zhu, SY
   Li, X
AF Li, Dezhi
   Zhu, Xiongwei
   Huang, Guanying
   Feng, Haibo
   Zhu, Shiyao
   Li, Xin
TI A hybrid method for evaluating the resilience of urban road traffic
   network under flood disaster: An example of Nanjing, China
SO ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
LA English
DT Article
DE Urban road traffic network (URTN); Urban flood resilience; 4R theory;
   SWMM model
ID INDICATOR; CONTEXT; DRAINAGE
AB Urban road traffic network (URTN) plays an important role in city operation, while it is also suffered a lot from the urban flood disasters which caused negative impacts frequently, like traffic congestion, and road collapse. The function loss of URTN not only destroy normal urban life and work order, but also pose a serious threat to people's lives and properties. Therefore, it is urgent to quantitatively explore the flood resilience of URTN. The concept of resilience puts forward new ideas to help solve the problem of urban flooding disasters from a holistic view. Exploring the flood resilience of urban traffic network may help to mitigate urban flooding and improve the urban resilience. This paper developed a flood resilience evaluation model of URTN, which contains 26 indicators based on the 4R theory. A case study was conducted in southern China to validate the model with real data. It evaluated the urban flood resilience of road traffic network with a comparison of before and after reconstruction of the pipeline. The results demonstrated that the flood resilience of URTN is at a relatively low level in the study area, and the limitation of single traditional engineering measure to the flood resilience of URTN. Suggestions such as strengthening the citizen participation and enhancing the complementary capability of multiple engineering measures are proposed to further promote the flood resilience of the URTN.
C1 [Li, Dezhi; Zhu, Xiongwei; Huang, Guanying; Li, Xin] Southeast Univ, Sch Civil Engn, Dept Construct & Real Estate, Nanjing 210018, Peoples R China.
   [Feng, Haibo] Northumbria Univ, Dept Mech & Construct Engn, Newcastle Upon Tyne, Tyne & Wear, England.
   [Zhu, Shiyao] Nantong Univ, Sch Transportat & Civil Engn, Nanjing 226007, Peoples R China.
C3 Southeast University - China; Northumbria University; Nantong University
RP Li, DZ (corresponding author), Southeast Univ, Sch Civil Engn, Dept Construct & Real Estate, Nanjing 210018, Peoples R China.
EM njldz@seu.edu.cn
RI ZHU, SHIYAO/GZB-0532-2022
OI Li, Dezhi/0000-0001-7123-0493; Zhu, Shiyao/0000-0002-3738-2001; HUANG,
   Guanying/0000-0002-4445-0877; Feng, Haibo/0000-0002-3048-7169
FU National Social Science Fund of China [19BGL281]; National Key RAMP;D
   Program of China [2018YFD1100202]
FX This work was financially supported by the National Social Science Fund
   of China (No. 19BGL281) and the National Key R&D Program of China (No.
   2018YFD1100202).
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NR 76
TC 27
Z9 28
U1 32
U2 289
PU SPRINGER HEIDELBERG
PI HEIDELBERG
PA TIERGARTENSTRASSE 17, D-69121 HEIDELBERG, GERMANY
SN 0944-1344
EI 1614-7499
J9 ENVIRON SCI POLLUT R
JI Environ. Sci. Pollut. Res.
PD JUN
PY 2022
VL 29
IS 30
BP 46306
EP 46324
DI 10.1007/s11356-022-19142-w
EA FEB 2022
PG 19
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 2G8PK
UT WOS:000755429700005
PM 35167027
DA 2025-04-22
ER

PT J
AU Wang, YY
   Cai, YP
   Xie, YL
   Chen, L
   Zhang, P
AF Wang, Yongyang
   Cai, Yanpeng
   Xie, Yulei
   Chen, Lei
   Zhang, Pan
TI An integrated approach for evaluating dynamics of urban eco-resilience
   in urban agglomerations of China
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Ecological resilience; Ecological network; Dynamic change; Shock
   simulation; Urban agglomeration
ID ECOLOGICAL RISK-ASSESSMENT; NETWORK RESILIENCE; ECOSYSTEM SERVICES;
   CIRCUIT-THEORY; LAND-USE; SECURITY; CONNECTIVITY; SYSTEMS; PATTERN;
   DEMAND
AB The resilience of the urban ecological network is an indispensable aspect of reflecting the recovery capacity after the external risk shock. Improving the resilience of the ecological network is conducive to enhancing the ecological benefits. However, the current studies are lack of resilience evaluation from a comprehensive perspective. Thus, in this study, taking three typical urban agglomerations as cases, a comprehensive evaluation framework was proposed to assess ecological network resilience. First, we selected the comprehensive reserve as ecological sources and combined them with ecological corridors to construct the ecological network. Then we evaluated the resilience of ecological networks from the perspectives of robustness and redundancy. Finally, we analyzed the resilience of the network under different importance nodes failed. The results showed that (1) the average values of the comprehensive reserve value (CRV) in three urban agglomerations were over than 0.8. (2) the resilience of ecological networks in three urban agglomerations was blow the optimal value throughout during the period from 1985 to 2020. (3) the resilience change trends of multiple urban agglomerations were significant differences after removing certain important nodes, indicating the current ecological network is redundant. The research will help to improve the evaluation of urban ecological resilience and enhance the improvement of sustainable urban management and ecological restoration.
C1 [Wang, Yongyang; Cai, Yanpeng; Xie, Yulei; Zhang, Pan] Guangdong Univ Technol, Inst Environm & Ecol Engn, Guangdong Prov Key Lab Water Qual Improvement & Ec, Guangzhou 510006, Peoples R China.
   [Chen, Lei] Chinese Acad Sci, Guangzhou Inst Energy Convers, 2 Nengyuan Rd,Wushan, Guangzhou 510640, Peoples R China.
   [Cai, Yanpeng] GDUT, Sch Ecol Environm & Resources, Guangzhou, Peoples R China.
C3 Guangdong University of Technology; Chinese Academy of Sciences;
   Guangzhou Institute of Energy Conversion, CAS
RP Cai, YP (corresponding author), GDUT, Sch Ecol Environm & Resources, Guangzhou, Peoples R China.
EM yanpeng.cai@gdut.edu.cn
RI Chen, Xiang/JUF-0248-2023; yong yang, wang/KYQ-1257-2024
FU National Natural Science Foun-dation of China [U20A20117]; Key-Area
   Research and Development Program of Guangdong Province
   [2020B1111380003]; Program for Guangdong Introducing Innovative and
   Enterpreneurial Teams [2021ZT090543]
FX Acknowledgements This research was supported by the National Natural
   Science Foun-dation of China (U20A20117) , the Key-Area Research and
   Development Program of Guangdong Province (2020B1111380003) , and the
   Program for Guangdong Introducing Innovative and Enterpreneurial Teams
   (2021ZT090543) . The authors would also like to extend the gratitude to
   the anonymous reviewers and editors for their suggestions and com-ments
   that are extremely helpful in improving the quality of the paper.
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Z9 48
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U2 743
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD FEB
PY 2023
VL 146
AR 109859
DI 10.1016/j.ecolind.2023.109859
EA JAN 2023
PG 15
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA 7Z5FW
UT WOS:000915586000001
OA gold
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Busayo, ET
   Kalumba, AM
AF Busayo, Emmanuel Tolulope
   Kalumba, Ahmed Mukalazi
TI Recommendations for linking climate change adaptation and disaster risk
   reduction in urban coastal zones: Lessons from East London, South Africa
SO OCEAN & COASTAL MANAGEMENT
LA English
DT Article
DE Climate change adaptation; Disaster risk reduction; East london;
   Information dissemination; Local knowledge integration
ID INDIGENOUS KNOWLEDGE; SOCIAL VULNERABILITY; COMMUNITY RESILIENCE;
   ECOSYSTEM SERVICES; CHANGE IMPACTS; NEW-ZEALAND; CITIES; SCIENCE;
   VARIABILITY; GOVERNANCE
AB Climate-related disasters in coastal urban areas are intensifying with significant impacts on populaces, environments, and ecosystems. Hence, climate-related disaster preparedness is now acknowledged by climate change adaptation and disaster risk reduction experts. However, there is limited knowledge of communities and policymakers on the integration of climate change adaptation (CCA) and disaster risk reduction (DRR). This paper through the lens of resilience theory presents goals towards linking coastal climate change adaptation and disaster risk reduction from the case study of East London, coastal city in South Africa. This study gathered data through a semi-structured survey, aimed at defining salient public issues to improve CCA and DRR policies, public participation inclusion, and programmes. This study shows that the knowledge of CCA and DRR is relatively low in the study area, also the provision of disaster information by the local authority is quite low. Conversely, most of the respondents affirm that available disaster information is always in locally understood languages, this is important in understanding disaster early warning by local dwellers. Accordingly, in disaster information dissemination, the government should be proactive and responsive in spreading information that covers every people. Further work that respects the importance of indigenous knowledge for CCA and DRR integration is needed i.e. local participation in the framework of development endeavours, through the inclusion of indigenous people in policymaking at the sub-national, national and international levels, this would help them to participate in administrative processes that affect them; providing a resilient community, improved adaptive capacity and sustainable living. Effective flexibility, adaptability, interoperability among stakeholders at various levels are key ingredients to reaching these goals.
C1 [Busayo, Emmanuel Tolulope; Kalumba, Ahmed Mukalazi] Univ Ft Hare, Dept Geog & Environm Sci, Private Bag X1314, ZA-5700 Alice, Eastern Cape Pr, South Africa.
C3 University of Fort Hare
RP Busayo, ET (corresponding author), Univ Ft Hare, Dept Geog & Environm Sci, Private Bag X1314, ZA-5700 Alice, Eastern Cape Pr, South Africa.
EM etobusayo@yahoo.com; amkalumba@gmail.com
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NR 74
TC 18
Z9 19
U1 3
U2 27
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0964-5691
EI 1873-524X
J9 OCEAN COAST MANAGE
JI Ocean Coastal Manage.
PD APR 1
PY 2021
VL 203
AR 105454
DI 10.1016/j.ocecoaman.2020.105454
EA MAR 2021
PG 9
WC Oceanography; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Oceanography; Water Resources
GA UL3TX
UT WOS:000692578700003
DA 2025-04-22
ER

PT J
AU Liu, Y
   Han, LM
   Pei, ZB
   Jiang, YY
AF Liu, Yang
   Han, Limin
   Pei, Zhaobin
   Jiang, Yiying
TI Evolution of the coupling coordination between the marine economy and
   urban resilience of major coastal cities in China
SO MARINE POLICY
LA English
DT Article
DE Urban resilience; Coordination; Resilience policy; Marine economy; Urban
   planning; Urban management
ID EFFICIENCY; WORLD; ADAPTATION
AB Exploring the coordinated relationship between the marine economy and urban resilience can help improve urban resilience and the quality of the marine economy. Based on panel data from 2010 to 2019 in 20 major coastal cities in China, we adopted the entropy method, coupling harmonious degree model, and Theil index to measure and calculate the interval index differences in the marine economic quality and urban resilience level. Coordination between the marine economy and urban resilience was also calculated. First, we found that the quality level of the marine economy climbed in waves, forming a spatial distribution pattern that was highest in the Circum-Bohai Sea Region, followed by the Yangtze River Delta Region and the Pearl River Delta Region, and lowest in the Urban Agglomeration in the West Coast, and the gap between regions gradually narrowed. Second, the level of urban resilience gradually increased, and the regional differences varied greatly among cities, exhibiting a spatial distribution pattern that was high in the center and low in the surrounding area. Third, the coordination between the marine economy and urban resilience steadily increased, forming a spatial distribution pattern that was high in the Circum-Bohai Sea Region and Yangtze River Delta Region, and low in the Pearl River Delta Region and Urban Agglomeration in the West Coast. Fourth, the coordination gap between the regional and intra-regional marine economy and urban resilience was reduced, and the coordination between regional marine economy and urban resilience changed from two-level differentiation to diversification.
C1 [Liu, Yang; Han, Limin] Ocean Univ China, Sch management, Qingdao 266100, Shandong, Peoples R China.
   [Pei, Zhaobin] Dalian Ocean Univ, Sch marine law & humanities, Dalian 116023, Liaoning, Peoples R China.
   [Jiang, Yiying] Dalian Univ, Sch econ & management, Dalian, Liaoning, Peoples R China.
C3 Ocean University of China; Dalian Ocean University; Dalian University
RP Jiang, YY (corresponding author), Dalian Univ, Sch econ & management, Dalian, Liaoning, Peoples R China.
EM 64710186@qq.com; cnqdhlm@163.com; 407701160@qq.com; 187399567@qq.com
RI han, limin/LXW-2046-2024
FU Major Projects of National Social Science Foundation of China; 
   [21ZD100]
FX Acknowledgments This work was supported by the Major Projects of
   National Social Science Foundation of China (Grant No.21&ZD100) . We
   thank two anonymous reviewers for constructive comments that improved
   this manuscript. We also thank LetPub ( www.letpub.com ) for its
   linguisticassistance during the preparation of this manuscript.
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NR 56
TC 39
Z9 39
U1 12
U2 106
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0308-597X
EI 1872-9460
J9 MAR POLICY
JI Mar. Pol.
PD FEB
PY 2023
VL 148
AR 105456
DI 10.1016/j.marpol.2022.105456
EA DEC 2022
PG 17
WC Environmental Studies; International Relations
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; International Relations
GA 7S0HH
UT WOS:000910443500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Wang, Y
   Song, MF
   Zhu, SY
   Jiang, ZH
   Zhang, Z
AF Wang, Yue
   Song, Mengfei
   Zhu, Siyan
   Jiang, Zhihui
   Zhang, Zhen
TI Coupling study on ecological resilience and urban-rural integrated
   development in China
SO FRONTIERS IN ENVIRONMENTAL SCIENCE
LA English
DT Article
DE ecological resilience; urban-rural integrated development; coupling
   coordination degree; long short term memory network; panel vector
   autoregression
AB Scientific understanding of China's ecological resilience and urban-rural dynamics supports comprehensive environmental and socio-economic advancement. This research utilizes an integrated coupling coordination framework to examine the relationship among ecological resilience and rural-urban dynamics in 31 Chinese provinces from 2011 to 2022. The spatiotemporal dynamics of ecological resilience-urban-rural coupling are examined through kernel density estimation and complementary methods. An LSTM network is used to forecast trends (2023-2030) and identify underlying patterns. Panel VAR is applied to explore the dynamic interactions between ecological resilience and urban-rural dynamics. The findings reveal regional disparities, with urban-rural dynamics consistently outperforming ecological resilience across all regions, while exhibiting lower variability. The coordination between ecological resilience and urban-rural dynamics shows an upward trend with moderate concentration and distinct regional variations. Projections for 2023-2030 indicate fluctuating yet upward trends in provincial-level coordination. Provincial development transitions from near-imbalance and marginal coordination pre-2026 to primary and intermediate coordination phases post-2026. The coordination levels across the four regions are ranked in descending order as follows: the eastern part of China, followed by the western, midland, and northeast areas. Nationwide analysis reveals significant autocorrelation in ecological resilience (5% level) and urban-rural dynamics (1% level), with urban-rural dynamics exerting a stronger influence on ecological resilience (1% level). This study elucidates the ecological resilience-urban-rural nexus, offering empirical foundations for China's sustainable urban-rural development strategies.
C1 [Wang, Yue; Jiang, Zhihui] Tarim Univ, Coll Econ & Management, Aral, Peoples R China.
   [Song, Mengfei] Shihezi Univ, Sch Econ & Management, Shihezi, Peoples R China.
   [Zhu, Siyan] Heilongjiang Univ, Sch Mech & Elect Engn, Harbin, Peoples R China.
   [Zhang, Zhen] Ocean Univ China, Sch Int Affairs & Publ Adm, Qingdao, Peoples R China.
C3 Tarim University; Shihezi University; Heilongjiang University; Ocean
   University of China
RP Jiang, ZH (corresponding author), Tarim Univ, Coll Econ & Management, Aral, Peoples R China.
EM 1437956753@qq.com
RI song, mengfei/CAH-7679-2022
FU National Social Science Fund project [23BGL206]
FX The author(s) declare that financial support was received for the
   research, authorship, and/or publication of this article. This work is
   supported by the National Social Science Fund project (Grant Number:
   23BGL206).
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NR 63
TC 0
Z9 0
U1 4
U2 4
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
EI 2296-665X
J9 FRONT ENV SCI-SWITZ
JI Front. Environ. Sci.
PD MAR 17
PY 2025
VL 13
AR 1552533
DI 10.3389/fenvs.2025.1552533
PG 16
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 0SO9K
UT WOS:001455022500001
OA gold
DA 2025-04-22
ER

PT J
AU Bottero, M
   Datola, G
   De Angelis, E
AF Bottero, Marta
   Datola, Giulia
   De Angelis, Elena
TI A System Dynamics Model and Analytic Network Process: An Integrated
   Approach to Investigate Urban Resilience
SO LAND
LA English
DT Article
DE urban resilience; system dynamics model; decision-making; multi-criteria
   analysis; scenario simulation; strategic planning
ID CITIES; PRINCIPLES; STRATEGIES; HIERARCHY; THINKING; DESIGN; REDUCE
AB During the last decade, the concept of urban resilience has been increasingly implemented in urban planning, with the main aim to design urban development strategies. Urban resilience is a multi-dimensional and dynamic concept. When applied to urban planning, it consists of studying cities as complex socio-economic systems. Municipalities are currently working to undertake appropriate actions to enrich the resilience of cities. Moreover, several difficulties concern the evaluation of the impacts over time of the strategies designed to enhance urban resilience. The present paper proposes an integrated approach based on the System Dynamics Model (SDM) and the Analytic Network Process (ANP). The objective of this research is to describe the method and to illustrate its application to the area called Basse di Stura, located in the city of Turin, Italy. The method is applied to evaluate the possible impacts of two different urban scenarios in terms of the change of urban resilience performance over time. The final result is represented by an index that describes urban resilience performance.
C1 [Bottero, Marta; Datola, Giulia; De Angelis, Elena] Politecn Torino, Interuniv Dept Urban & Reg Studies & Planning, Viale Mattioli 39, I-10125 Turin, Italy.
C3 Polytechnic University of Turin
RP Datola, G (corresponding author), Politecn Torino, Interuniv Dept Urban & Reg Studies & Planning, Viale Mattioli 39, I-10125 Turin, Italy.
EM marta.bottero@polito.it; giulia.datola@polito.it;
   elena.deangelis@polito.it
RI ; Datola, Giulia/AAQ-9019-2020
OI Bottero, Marta/0000-0001-8983-2628; Datola, Giulia/0000-0002-5522-3573
FU Department of Regional Studies and Planning, DIST-Politecnico di Torin,
   within the research project VALIUM [60_RDI19BOM01]
FX This research was funded by Department of Regional Studies and Planning,
   DIST-Politecnico di Torin, within the research project VALIUM, grant
   number 60_RDI19BOM01.
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NR 95
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Z9 46
U1 15
U2 118
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD AUG
PY 2020
VL 9
IS 8
AR 242
DI 10.3390/land9080242
PG 26
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA OA5JP
UT WOS:000577821600001
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Lourenço, IB
   de Oliveira, AKB
   Marques, LS
   Barbosa, AAQ
   Veról, AP
   Magalhaes, PC
   Miguez, MG
AF Lourenco, Ianic Bigate
   Beleno de Oliveira, Antonio Krishnamurti
   Marques, Luisa Santana
   Quintanilha Barbosa, Amanda Andrade
   Verol, Aline Pires
   Magalhaes, Paulo Canedo
   Miguez, Marcelo Gomes
TI A framework to support flood prevention and mitigation in the landscape
   and urban planning process regarding water dynamics
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Sustainable urban drainage; Open space system; Mathematical modeling;
   Flood risk; Decision support; urban planning
ID ECOSYSTEM SERVICES; URBANIZATION; SPACE; PERFORMANCE; RESILIENCE;
   PATTERNS; VISITS; SPRAWL; IMPACT; INDEX
AB The urbanization process heavily changes the natural landscape, increasing built areas and impervious rates, consequently aggravating floods and suffering from the co-related degradation. Recent initiatives regarding sustainable drainage and river restoration seek a compromise solution between cities and nature. In this context, this research examines a possible analytical framework for urban planning and design of flood control alternatives, using a multifunctional open space system that incorporates water dynamics into current and future urban solutions. This framework starts with a diagnosis of the current situation, analyzing three main aspects: urban floods and their consequences; urban plans and legal environmental constraints; and available open spaces and multifunctional opportunities. Then, a set of guidelines is proposed to articulate urban needs with environmental limits, intending to help in the design of urban flood control alternatives, while increasing environmental value and retrofitting urban vicinity. These guidelines include multi-scale solutions in the watershed context, using sustainable urban drainage concepts in multifunctional open spaces, which can also act as environmental connections and protective fluvial parks. Next, the current situation is taken as reference and a hydrodynamic mathematical model is used to map the behavior of possible scenarios developed to represent future conditions driven by the proposed guidelines. This proposal is applied in an exploratory case study in the Rio de Janeiro Metropolitan Region to validate the proposed premises. The obtained results show that a multifunctional open space system, supported by an orderly and sustainable land use, was able to reduce significantly the water levels in the main river, diminishing flooded areas and responding in a more resilient and less risky way. (C) 2020 Elsevier Ltd. All rights reserved.
C1 [Lourenco, Ianic Bigate; Beleno de Oliveira, Antonio Krishnamurti; Marques, Luisa Santana; Verol, Aline Pires; Magalhaes, Paulo Canedo; Miguez, Marcelo Gomes] Univ Fed Rio de Janeiro, COPPE, Programa Engn Civil, Av Athos da Silveira Ramos 149,Ctr Tecnol Bloco 1, BR-21941909 Rio De Janeiro, RJ, Brazil.
   [Verol, Aline Pires] Univ Fed Rio de Janeiro, Programa Posgrad Arquitetura, Fac Arquitetura Urbanismo, Av Pedro Calmon 550,Sala 433 Cidade Univ, BR-21941485 Rio De Janeiro, RJ, Brazil.
   [Quintanilha Barbosa, Amanda Andrade] Univ Fed Rio de Janeiro, Fac Arquitetura & Urbanismo, Av Pedro Calmon,550 Cidade Univ, BR-21941485 Rio De Janeiro, RJ, Brazil.
   [Magalhaes, Paulo Canedo; Miguez, Marcelo Gomes] Univ Fed Rio de Janeiro, Escola Politecn, Programa Engn Ambiental, Av Athos da Silveira Ramos 149,Ctr Tecnol Bloco A, BR-21941909 Rio De Janeiro, RJ, Brazil.
   [Magalhaes, Paulo Canedo; Miguez, Marcelo Gomes] Univ Fed Rio de Janeiro, Escola Quim, Av Athos da Silveira Ramos 149,Ctr Tecnol Bloco A, BR-21941909 Rio De Janeiro, RJ, Brazil.
   [Miguez, Marcelo Gomes] Univ Fed Rio de Janeiro, Escola Politecn, Programa Engn Urbana, Av Athos da Silveira Ramos 149,Ctr Tecnol Bloco D, BR-21941909 Rio De Janeiro, RJ, Brazil.
C3 Universidade Federal do Rio de Janeiro; Universidade Federal do Rio de
   Janeiro; Universidade Federal do Rio de Janeiro; Universidade Federal do
   Rio de Janeiro; Universidade Federal do Rio de Janeiro; Universidade
   Federal do Rio de Janeiro
RP Lourenço, IB (corresponding author), Univ Fed Rio de Janeiro, COPPE, Programa Engn Civil, Av Athos da Silveira Ramos 149,Ctr Tecnol Bloco 1, BR-21941909 Rio De Janeiro, RJ, Brazil.
EM ianicbigate@coc.ufrj.br; krishnamurti@poli.ufrj.br;
   luisa.marques@engenharia.ufjf.br; amanda.aqb.fau@gmail.com;
   alinevernl@fau.ufrj.br; canedo@hidro.ufrj.br; marcelomiguez@poli.ufrj.br
RI Oliveira, Antonio/GRS-6118-2022; VERÓL, ALINE/R-2750-2017; Bigate
   Lourenco, Ianic/IWM-7174-2023; Miguez, Marcelo Gomes/A-3252-2013
OI Beleno de Oliveira, Antonio Krishnamurti/0000-0002-7334-1928; Bigate
   Lourenco, Ianic/0000-0002-3524-8191; Miguez, Marcelo
   Gomes/0000-0003-4206-4013
FU Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior-Brazil
   (CAPES) [001, 1526717]; Conselho Nacional de Desenvolvimento Cientifico
   e Tecnologico (CNPq) [303240/2017-2, 142284/2018-1]; Fundacao Carlos
   Chagas Filho de Amparo a Pesquisa do Estado do Rio de Janeiro (FAPERJ)
   [E-26/211.085/2015, 2017.00915.0]
FX We acknowledge the financial support provided by the Coordenacao de
   Aperfeicoamento de Pessoal de Nivel Superior-Brazil (CAPES) [Finance
   Code 001; 1526717], the Conselho Nacional de Desenvolvimento Cientifico
   e Tecnologico (CNPq) [303240/2017-2; 142284/2018-1] and the Fundacao
   Carlos Chagas Filho de Amparo a Pesquisa do Estado do Rio de Janeiro
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NR 46
TC 25
Z9 25
U1 5
U2 96
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD DEC 20
PY 2020
VL 277
AR 122983
DI 10.1016/j.jclepro.2020.122983
PG 17
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA ON8AX
UT WOS:000586917600027
DA 2025-04-22
ER

PT J
AU Zhao, SF
   Zeng, W
   Feng, D
AF Zhao, Shuangfei
   Zeng, Wei
   Feng, Da
TI Coupling Coordination of Urban Resilience and Urban Land Use Efficiency
   in Hunan Province, China
SO SUSTAINABILITY
LA English
DT Article
DE urban land use efficiency; urban resilience; coupling coordination;
   Super-SBM model; dynamic spatial-temporal evolution; Hunan
ID CITIES
AB Urban resilience and urban land use efficiency are inevitable topics in urban planning and development, and the coupling coordination between the two will contribute substantially to urban sustainability. With panel data from 14 cities in Hunan from 2010 to 2021 and by combining the entropy method, the Super-SBM model, and the coupling coordination degree model, this study analyzed the dynamic spatial-temporal evolution pattern of urban resilience and land utilization efficiency and their coupling coordination through a multi-dimensional evaluation index system in 14 cities in Hunan from 2010 to 2021. The main findings were as follows: overall, the urban resilience in Hunan stayed low over the years of the study. Temporally, the mean resilience increased gradually from 0.1962 to 0.3331, and spatially, the urban resilience was higher in the eastern region than in the western area of the province, with Changsha having the highest level of resilience. Second, the urban land use efficiency in Hunan rose with volatility from 0.7162 to 0.9299, and spatially, urban land use efficiency was higher in the northern region than in the southern region, with Zhangjiajie having the highest level of urban land use efficiency. Third, the province had a high coupling degree between urban resilience and urban land use efficiency, and the average coupling value was 0.8531, with higher coupling degrees observed in the southern area and the Chang-Zhu-Tan urban agglomeration in the province. Fourth, the coordination degree between urban resilience and urban land use efficiency stayed moderate across the province, rising from 0.5788 to 0.6453, from marginally coordinated to primarily coordinated, where the northern area had a higher coordination degree. All 14 cities were in a coordinated state by the mean coordination level. Changsha was in a highly coordinated state. The research here is expected to provide some references for urban administrators in Hunan and beyond to release policies that will achieve stronger urban resilience, higher urban land use efficiency, and better coupling coordination.
C1 [Zhao, Shuangfei] Cent South Univ Forestry & Technol, Coll Natl Pk & Tourism, Changsha 410004, Peoples R China.
   [Zeng, Wei] Changsha Univ Sci & Technol, Sch Design Arts, Changsha 410114, Peoples R China.
   [Feng, Da] Surveying & Mapping Technol Inst Hunan Prov, Changsha 410007, Peoples R China.
C3 Central South University of Forestry & Technology; Changsha University
   of Science & Technology
RP Zeng, W (corresponding author), Changsha Univ Sci & Technol, Sch Design Arts, Changsha 410114, Peoples R China.
EM t20041040@csuft.edu.cn; 004474@csust.edu.cn; fengd@sobds.com
OI , Shuangfei Zhao/0009-0005-3065-2231
FU Hunan Provincial Natural Science Foundation of China;  [2023JJ60558]
FX The research presented here is financially supported by Hunan Provincial
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NR 65
TC 0
Z9 0
U1 8
U2 8
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2024
VL 16
IS 24
AR 10860
DI 10.3390/su162410860
PG 31
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA Q9I1M
UT WOS:001387713600001
OA gold
DA 2025-04-22
ER

PT J
AU Zeng, P
   Zong, C
   Wei, X
AF Zeng, Peng
   Zong, Cheng
   Wei, Xu
TI Quantitative Analysis and Spatial Pattern Research of Built-Up
   Environments and Surface Urban Heat Island Effect in Beijing's Main
   Urban Area
SO JOURNAL OF URBAN PLANNING AND DEVELOPMENT
LA English
DT Article
DE Surface urban heat island (SUHI); Built-up environment; Local-scale
   model; Pearson coefficient; Multiple regression model; Green development
ID LOCAL CLIMATE ZONES; FORM; TEMPERATURE; IMPACT; MICROCLIMATE;
   MITIGATION; MANAGEMENT; MORPHOLOGY
AB The surface urban heat island (SUHI) phenomenon, predominantly influenced by factors associated with the built-up environment, is prominent in large metropolitan areas. To effectively mitigate the escalating thermal environment challenges arising during large cities' developmental planning, rigorously examining the spatial interdependencies between the built-up environment and the SUHI phenomenon is imperative. Employing Beijing's primary urban area as a case study, this research addresses the gap in the systematic analysis of spatial correlations between the built-up environment and SUHI within the urban heat island effect research domain. The study leverages Landsat-8 satellite data spanning 2016-2020, Sentinel-2 land-use classification data, and 2020 digital elevation model (DEM) data, integrating them with geospatial data processing techniques to probe the multifaceted associations between the built-up environment and SUHI in a 1 x 1-km grid-based local-scale model. This investigation is distinguished by developing a Comprehensive Built-up Environment System Index, synthesized through multisource data and multidimensional methodologies. The study culminates in the following key findings: (1) Between 2016 and 2020, Beijing's primary urban area manifested an ascending spiral trend in the SUHI effect, with the heat island morphology exhibiting nonuniformity across the four seasons. (2) In the historical summer heat island scenarios of Beijing's primary urban area, the architectural and roadway environments demonstrated a consistently positive correlation with the SUHI effect. (3) Excluding the average number of floors parameter, all remaining urban built-up environment parameters exhibited a significant association with SUHI fluctuations.
   This research provides valuable insights on the following aspects for urban planners, policymakers, and practitioners addressing the surface urban heat island effect in Beijing's main urban area. (1) Urban heat island mitigation: Influential urban parameters, like building density, road connectivity coefficient, and green space, significantly impact surface urban heat island (SUHI) intensity. Targeted strategies, such as increasing green spaces and implementing cool roofs, can mitigate the SUHI effect and improve urban thermal comfort. (2) Season-specific planning: Recognizing seasonal variations in SUHI intensity allows for season-specific urban planning. Implementing cooling strategies, like urban cooling parks and remarkable pavement technologies, during summer in heat-prone areas efficiently helps manage thermal environments. (3) Data-driven decision-making: Leveraging geospatial data and advanced analytics fosters data-driven urban planning. Policymakers can use the Comprehensive Built-up Environment System Index to assess the impact of urban parameters on SUHI intensity, facilitating evidence-based policy formulation and adaptive management. (4) Climate-resilient urban design: Integrating SUHI mitigation measures, such as green infrastructure, cool roofs, and reflective materials, helps enhance climate resilience. Urban designers can create sustainable and climate-resilient urban environments, promoting long-term urban sustainability and well-being.
C1 [Zeng, Peng] Guangxi Minzu Univ, Sch Ethnol & Sociol, Nanning 530006, Guangxi, Peoples R China.
   [Zong, Cheng] Guangxi Minzu Univ, Sch Econ, Nanning 530006, Guangxi, Peoples R China.
   [Wei, Xu] Guangxi Minzu Univ, Sch Management, Nanning 530006, Guangxi, Peoples R China.
C3 Guangxi Minzu University; Guangxi Minzu University; Guangxi Minzu
   University
RP Wei, X (corresponding author), Guangxi Minzu Univ, Sch Management, Nanning 530006, Guangxi, Peoples R China.
EM zengpengfast@163.com; zongcheng98@foxmail.com; weixufast@163.com
RI zong, cheng/HGU-3136-2022
OI Wei, Xu/0000-0001-9159-9714; Zong, Cheng/0000-0001-6682-4203
FU Guangxi Natural Science Foundation Program [2020GXNSFAA297228]; National
   Social Science Fund of China [20ZD157]
FX This research was supported by the Guangxi Natural Science Foundation
   Program (Grant No. 2020GXNSFAA297228) and the National Social Science
   Fund of China (No. 20&ZD157).
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NR 53
TC 6
Z9 6
U1 23
U2 64
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 0733-9488
EI 1943-5444
J9 J URBAN PLAN DEV
JI J. Urban Plan. Dev
PD JUN 1
PY 2024
VL 150
IS 2
AR 04024006
DI 10.1061/JUPDDM.UPENG-4706
PG 15
WC Engineering, Civil; Regional & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Public Administration; Urban Studies
GA NT2C0
UT WOS:001202629600007
DA 2025-04-22
ER

PT J
AU Cantatore, E
   Fatiguso, F
AF Cantatore, Elena
   Fatiguso, Fabio
TI An Energy-Resilient Retrofit Methodology to Climate Change for Historic
   Districts. Application in the Mediterranean Area
SO SUSTAINABILITY
LA English
DT Article
DE resilience; energy retrofit strategy; historic urban built environment;
   inherent adaptive behaviors; climate change in Mediterranean area; south
   of Italy
ID URBAN HEAT-ISLAND; GREEN ROOF; COOL ROOFS; RESIDENTIAL BUILDINGS;
   THERMAL COMFORT; PERFORMANCE; IMPROVE; CITIES; POTENTIALITIES;
   TEMPERATURES
AB Focusing on the uncertainties of climate change and its effects on the built environment, on the energy responsibilities of residential building stock and on the dichotomy between the transformation and preservation of cultural heritage with a long-term perspective, this paper proposes a detailed methodology aimed at managing energy retrofit transformations and preservation actions in historic districts following "resilience thinking." The proposed methodology pursues the traditional process of retrofitting for cultural heritage, and identifies-on building and component scales-a structural process aimed at: (i) recognizing and testing the adaptive qualities of traditional built constructions to climate change based upon the genius loci experience; (ii) diagnosing critical energy emergencies which occurred due to historical transformations or exposure to criticalities of climate change; (iii) identifying and managing improvement requirements according to priority levels of transformation (MUERI). The test on a representative case study in the south of Italy (Mediterranean area) highlighted some significant results: (i) the importance of compactness and of light-colored materials in fighting local microclimate alterations; (ii) the pivotal responsibility of roofs in current and future trends in energy consumption, promoting and testing both innovative and traditional solutions; (iii) the reduction into a limited number of buildings cases to assess, solving the complex and various combinations of features, with which suitable solutions and guidelines are associated.
C1 [Cantatore, Elena; Fatiguso, Fabio] Polytech Univ Bari, Dept Civil Environm Bldg Engn & Chem DICATECh, I-70126 Bari, Italy.
C3 Politecnico di Bari
RP Cantatore, E (corresponding author), Polytech Univ Bari, Dept Civil Environm Bldg Engn & Chem DICATECh, I-70126 Bari, Italy.
EM elena.cantatore@poliba.it; fabio.fatiguso@poliba.it
RI CANTATORE, Elena/T-3468-2019
OI CANTATORE, Elena/0000-0003-2294-6561; FATIGUSO,
   Fabio/0000-0003-4584-3776
FU AIM (Attraction and International Mobility) Program [AIM1871082-1];
   Italian Ministry of Education, University and Research (MUR)
FX This research is funded under the project "AIM1871082-1" of the AIM
   (Attraction and International Mobility) Program, financed by the Italian
   Ministry of Education, University and Research (MUR).
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NR 78
TC 13
Z9 13
U1 12
U2 46
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB
PY 2021
VL 13
IS 3
AR 1422
DI 10.3390/su13031422
PG 32
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA QD6NX
UT WOS:000615633400001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Yi, R
   Chen, YN
   Chen, A
AF Yi, Ran
   Chen, Yanan
   Chen, An
TI Evaluating urban climate resilience in the Yangtze River Delta urban
   agglomeration: A novel method integrating the DPSIR model and
   Sustainable Development Goals
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban climate resilience; DPSIR; Sustainable development goals; Climate
   policy concern; The Yangtze River Delta urban agglomeration
ID DISASTER RESILIENCE; ECOSYSTEM SERVICES; CO-BENEFITS; FRAMEWORK;
   EFFICIENCY; PROVINCE; SUPPORT; MARKET
AB The interplay between climate change and socio-economic activities has placed cities at the forefront of climaterelated threats. Evaluating and enhancing urban climate resilience are widely regarded as effective strategies for mitigating and adapting to climate change. This study aims to develop a more logical, comprehensive, and replicable urban climate resilience assessment framework to accurately evaluate and enhance urban climate resilience, thereby supporting urban growth and development in climate change. Specifically, the study focused on the Yangtze River Delta urban agglomeration (YRDUA), a region with typical climate risks, using the driverpressure-state-impact-response (DPSIR) model to construct an urban climate resilience assessment framework and selecting evaluation indicators based on the Sustainable Development Goals (SDGs), including a new index: government climate policy concern. Subsequently, spatial autocorrelation, geographically and temporally weighted regression model, the coupling and coordination degree model, and the super-SBM model were applied. This approach revealed the spatial and temporal evolution trends, driving factors, coupling coordination degree, and construction efficiency of urban climate resilience in the YRDUA from 2013 to 2021. The results show that: (1) Urban climate resilience levels exhibited significant regional disparities, with a mean resilience score of 0.256 and an average annual growth rate of 1.21%. (2) A notable spatial correlation was observed in urban climate resilience, with the radius of the High-High cluster area expanding, while the radius of the LowLow cluster area contracted. (3) The key factors driving urban climate resilience included water and forest coverage areas, climate policy concern, and investment in municipal public facilities construction. The impact of these factors displayed notable spatial heterogeneity. (4) The coupling coordination degree between resilience subsystems increased by 7.96%, yet remained on the verge of imbalance. Additionally, the average technical efficiency and scale efficiency of urban climate resilience construction rose by 7.43% and 5.44%, respectively, though significant room for improvement remains. Our research advocated for re-examining urban climate resilience through the lens of causality and sustainable development, offering valuable insights for policymakers in China and international initiatives.
C1 [Yi, Ran; Chen, Yanan; Chen, An] Chinese Acad Sci, Inst Sci & Dev, 15 North Article 1,Zhongguancun East Rd, Beijing 100190, Peoples R China.
   [Yi, Ran; Chen, Yanan] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
C3 Chinese Academy of Sciences; Chinese Academy of Sciences; University of
   Chinese Academy of Sciences, CAS
RP Chen, A (corresponding author), Chinese Acad Sci, Inst Sci & Dev, 15 North Article 1,Zhongguancun East Rd, Beijing 100190, Peoples R China.
EM yiran23@mails.ucas.ac.cn; chenyanan21@mails.ucas.ac.cn; anchen@casisd.cn
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NR 129
TC 0
Z9 0
U1 48
U2 48
PU ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
PI LONDON
PA 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND
SN 0301-4797
EI 1095-8630
J9 J ENVIRON MANAGE
JI J. Environ. Manage.
PD MAR
PY 2025
VL 376
AR 124517
DI 10.1016/j.jenvman.2025.124517
EA FEB 2025
PG 22
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA Y0Q1T
UT WOS:001429272500001
PM 39970661
DA 2025-04-22
ER

PT J
AU Feng, XH
   Xu, MH
   Zhong, YX
   Li, QY
   Loo, BPY
   Xiu, CL
AF Feng, Xinghua
   Xu, Meihai
   Zhong, Yexi
   Li, Qiyue
   Loo, Becky P. Y.
   Xiu, Chunliang
TI Urban resilience and panarchy: Insights from Nanchang City, China
SO CITIES
LA English
DT Article
DE Urban resilience; Panarchy; Landscape pattern; REDCAP model; Nanchang
ID ROTTERDAM
AB Under the influence of rapid urbanization, urban systems are faced with many potential risks that can seriously jeopardize the sustainable development of cities. Resilience has emerged as a novel path to enhance urban sustainability. This study constructs a comprehensive urban resilience assessment framework by integrating the urban structural dimensions with the resilience attributes. It then applies the concept of panarchy, notably the process of regional derivation and its cross-scale relationships, to identify different phases in the adaptive cycle of urban resilience and make resilience policy recommendations. Nanchang City, a typical water network city in southern China, has been chosen as a case study due to its ecological and political significance. The analysis suggests that the downtown and southern suburban areas are in the exploitation phase, where the regional derivation and cross-scale interactions are stable and singular. The peripheral ecological barrier area is in the conservation phase, where the regional derivation and cross-scale relationships are complex. The study demonstrates the unique value of the concept of panarchy and its practical implications in resilience planning, notably through the rapid identification of key areas for resilience governance, predictions of resilience development trends and detailed guidance for fostering urban resilience at the local level.
C1 [Feng, Xinghua; Xu, Meihai; Zhong, Yexi; Li, Qiyue; Loo, Becky P. Y.] Jiangxi Normal Univ, Sch Geog & Environm, Nanchang 330022, Peoples R China.
   [Loo, Becky P. Y.] Univ Hong Kong, Dept Geog, Hong Kong, Peoples R China.
   [Xiu, Chunliang] Northeastern Univ, Jangho Architecture Coll, Shenyang 110169, Peoples R China.
C3 Jiangxi Normal University; University of Hong Kong; Northeastern
   University - China
RP Feng, XH (corresponding author), Jiangxi Normal Univ, Sch Geog & Environm, Nanchang 330022, Peoples R China.
EM fengxinghua@jxnu.edu.cn; bpyloo@hku.hk; xiuchunliang@mail.neu.edu.cn
RI Loo, Becky/O-7394-2018
FU National Natural Science Foundation of China [42001189, 42361050];
   Ministry of Education, China; Jiangxi Normal University
FX This work was supported by National Natural Science Foundation of China
   (Grant number 42001189 & 42361050). Xinghua FENG is the grant holder/PI
   of 42001189. Yexi ZHONG is the grant holder/PI of 42361050. The authors
   would also like to express their gratitude for the Ministry of
   Education, China and Jiangxi Normal University for the Changjiang Chair
   Professorship of the corresponding author.
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NR 70
TC 0
Z9 0
U1 0
U2 0
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JUL
PY 2025
VL 162
AR 105934
DI 10.1016/j.cities.2025.105934
PG 14
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 1AM1T
UT WOS:001460382300001
DA 2025-04-22
ER

PT J
AU Li, W
   Jiang, RG
   Wu, H
   Xie, JC
   Zhao, Y
   Song, YX
   Li, FW
AF Li, Wen
   Jiang, Rengui
   Wu, Hao
   Xie, Jiancang
   Zhao, Yong
   Song, Yingxue
   Li, Fawen
TI A System Dynamics Model of Urban Rainstorm and Flood Resilience to
   Achieve the Sustainable Development Goals
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban rainstorm and flood disasters; System dynamics model; Rainstorm
   scenarios; Rainstorm and flood resilience assessment; Sustainable
   Development Goals
ID RISK; VULNERABILITY; CITY
AB The combined effects of climate change and accelerated urbanization have increased the risk of urban rainstorm and flood disasters, which seriously affects the achievement of the Sustainable Development Goals (SDGs) in cities. Improving urban flood resilience is one of main ways to deal with flooding. This study established an urban rainstorm and flood resilience model to sort out the behavioral mechanisms of multiple subjects (government, flood control department, residents and media) and the internal action mechanisms from different dimensions (economic, social, natural, infrastructure and information) of urban rainstorm and flood resilience using system dynamics approach, and to investigate the urban rainstorm and flood resilience in Xi'an city. The results show that the damage losses rate reduced by 44.44%, 10.8%, 9.48% and 3.37% by improving flood resilience, resident engagement, government attention degree and information construction level, respectively. The degree of improvement of urban rainstorm and flood resilience varied for six development scenarios when predict flood resilience. The development pattern can be divided into the beginning phase, preparation phase and development phase, and three improvement strategies are proposed based on the development pattern of flood resilience. This study helps to provide refined strategies for urban rainstorm and flood resilience assessment construction.
C1 [Li, Wen; Jiang, Rengui; Xie, Jiancang; Song, Yingxue] Xian Univ Technol, State Key Lab Ecohydraul Northwest Arid Reg China, Xian 710048, Peoples R China.
   [Wu, Hao] Xian Univ Technol, Sch Econ & Management, Xian 710054, Peoples R China.
   [Zhao, Yong] China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China.
   [Li, Fawen] Tianjin Univ, State Key Lab Hydraul Engn Simulat & Safety, Tianjin 300072, Peoples R China.
   [Jiang, Rengui] Xian Univ Technol, 5 South Jinhua Rd, Xian, Shaanxi, Peoples R China.
C3 Xi'an University of Technology; Xi'an University of Technology; China
   Institute of Water Resources & Hydropower Research; Tianjin University;
   Xi'an University of Technology
RP Jiang, RG (corresponding author), Xian Univ Technol, 5 South Jinhua Rd, Xian, Shaanxi, Peoples R China.
EM jrengui@163.com
RI jiang, rengui/AAF-1465-2019; Li, fawen/KFQ-3200-2024
FU National Key Research and Development Program of China [2016YFC0401409];
   National Natural Science Foundation of China [51979221]; Key Scientific
   Research Program of Shaanxi Provincial Education Department [21JT028]
FX Acknowledgement The authors acknowledge funding through the National Key
   Research and Development Program of China (Grant No. 2016YFC0401409) ,
   National Natural Science Foundation of China (Grant No. 51979221) , Key
   Scientific Research Program of Shaanxi Provincial Education Department
   (Grant No. 21JT028) . The data were obtained from
   http://tjj.xa.gov.cn/tjsj/tjsj/ndsj/1.html, http://tjj.sh
   aanxi.gov.cn/tjsj/ndsj/tjgb/qs_444/and
   http://tjj.xa.gov.cn/tjsj/tjgb/gmjjhshfzgb/1.html. We sincerely
   appreciate the editor and anony-mous reviewers.
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NR 64
TC 37
Z9 41
U1 88
U2 292
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD SEP
PY 2023
VL 96
AR 104631
DI 10.1016/j.scs.2023.104631
EA MAY 2023
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA I2TE2
UT WOS:001001350700001
DA 2025-04-22
ER

PT J
AU Du, Q
   Li, YX
   Li, Y
   Zhou, JJ
   Cui, XX
AF Du, Qiang
   Li, Yaxian
   Li, Yi
   Zhou, Jiajie
   Cui, Xinxin
TI Data mining of social media for urban resilience study: A case of
   rainstorm in Xi'an
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban resilience; Social media; Data mining; Public responses; Sentiment
   analysis
ID SENTIMENT; COMMUNICATION; TWITTER; IMPACTS; CITY
AB Disasters throughout the world have highlighted the urgent need for studies on urban resilience capacities. Individuals' collective responses to disasters provide significant insights into their capacity for catastrophes adaptation and an invaluable perspective for demonstrating urban resilience. Previous research on urban resilience has rarely assessed resilience on an urban scale based on individuals' collective responses. As social media data are both a personal expression of users and a subjective reflection of their surroundings, we developed a social media-based data mining method to reflect urban resilience. We examined the urban resilience with the case of a rainstorm in Xi'an on July 24, 2016. The temporal patterns of public behavioral and emotional dimensions were chosen to examine how the city tolerated the disruption and returned to normal conditions. The public's behavioral reactions peaked during the rainstorm and lasted for a long time, revealing a delayed and hysteretic response. After 33 h, the holistic sentiment index repaired from 0.412 to the baseline standard of 0.713, indicating relatively feeble urban resilience to such rainstorm disasters. Our research revealed the viability of using social media to quantify a city's resilience, which is significantly beneficial in supplementing previous research.
C1 [Du, Qiang; Zhou, Jiajie] Changan Univ, Ctr Green Engn & Sustainable Dev, Xian 710064, Shaanxi, Peoples R China.
   [Du, Qiang; Li, Yaxian; Zhou, Jiajie; Cui, Xinxin] Changan Univ, Sch Econ & Management, Middle Sect South Second Ring Rd, Xian 710064, Shaanxi, Peoples R China.
   [Li, Yi] Changan Univ, Coll Transportat Engn, Xian 710064, Shaanxi, Peoples R China.
   [Li, Yi] Changan Univ, Sch Transportat Engn, Middle Sect South Second Ring Rd, Xian 710064, Shaanxi, Peoples R China.
C3 Chang'an University; Chang'an University; Chang'an University; Chang'an
   University
RP Li, YX (corresponding author), Changan Univ, Sch Econ & Management, Middle Sect South Second Ring Rd, Xian 710064, Shaanxi, Peoples R China.; Li, Y (corresponding author), Changan Univ, Sch Transportat Engn, Middle Sect South Second Ring Rd, Xian 710064, Shaanxi, Peoples R China.
EM q.du@chd.edu.cn; liyaxian@chd.edu.cn; liyi@chd.edu.cn;
   zhoujiajie@chd.edu.cn; cuixinxin@chd.edu.cn
RI Li, Yi/AAX-1962-2020
FU Natural Science Foundation of Shaanxi province [2019JQ-500]; Social
   Science Foundation of Shaanxi province [2020R008]; Foundation for Youth
   Innovation Team of Shaanxi Universities [21JP010]; Science and
   Technology Foundation for Transportation of Shaanxi Province [21-01R];
   Funda-mental Research Funds for the Central Universities [300102231640];
   Youth Innovation Team of Shaanxi Universi-ties
FX Acknowledgements The research work was supported by the the Natural
   Science Foundation of Shaanxi province [Grant No. 2019JQ-500] , the
   Social Science Foundation of Shaanxi province [Grant No. 2020R008] , the
   Foundation for Youth Innovation Team of Shaanxi Universities [Grant No.
   21JP010] , the Science and Technology Foundation for Transportation of
   Shaanxi Province [Grant No. 21-01R] , the Funda-mental Research Funds
   for the Central Universities [Grant No. 300102231640] and the Youth
   Innovation Team of Shaanxi Universi-ties.
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NR 67
TC 13
Z9 14
U1 23
U2 89
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD SEP
PY 2023
VL 95
AR 103836
DI 10.1016/j.ijdrr.2023.103836
EA JUL 2023
PG 12
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA P1MA1
UT WOS:001048338800001
DA 2025-04-22
ER

PT J
AU Huang, GY
   Li, DZ
   Zhu, XW
   Zhu, J
AF Huang, Guanying
   Li, Dezhi
   Zhu, Xiongwei
   Zhu, Jin
TI Influencing factors and their influencing mechanisms on urban resilience
   in China
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban resilience; Influencing factor; Influencing mechanism; DEMATEL;
   ISM
ID NATURAL DISASTERS; CLIMATE-CHANGE; PREPAREDNESS; EXPERIENCE; CITIES;
   RISK
AB With an increase in disturbance in cities, improving urban resilience has become a global consensus in order to achieve sustainable urban development. As the largest developing country in the world, China must improve its urban resilience to withstand various threats during its rapid development. Therefore, it is critical to identify key influencing factors and their influencing mechanisms on urban resilience in China. To achieve this objective, this study identified 12 key influencing factors through literature review and Delphi method under a 4R (i.e., robustness, rapidity, redundancy, and resourcefulness) framework, and used the DEMATEL and ISM methods to investigate their influencing mechanisms. The results indicate that: 1) Policy system is the most important cause factor and resource allocation is the most important effect factor; 2) Factors of resourcefulness are fundamental factors influencing urban resilience. Factors of robustness and rapidity are direct factors influencing urban resilience; 3) There are five influencing paths of influencing factors among the 4R dimensions. Resourcefulness could directly influence robustness, redundancy and rapidity. Redundancy could directly influence robustness and rapidity. In the end, three implications are proposed, including improving the policy system, strengthening the assessment of urban resilience, and integrating resilience concept into the urban system.
C1 [Huang, Guanying; Li, Dezhi; Zhu, Xiongwei] Southeast Univ, Sch Civil Engn, Dept Construct & Real Estate, Nanjing 211189, Peoples R China.
   [Zhu, Jin] Univ Connecticut, Civil & Environm Engn Dept, Storrs, CT 06268 USA.
C3 Southeast University - China; University of Connecticut
RP Li, DZ (corresponding author), Southeast Univ, Sch Civil Engn, Dept Construct & Real Estate, Nanjing 211189, Peoples R China.
EM hgy@seu.edu.cn; njldz@seu.edu.cn; m15002523055_1@163.com; jzhu@uconn.edu
RI Zhu, Jin/GSI-6058-2022
OI Li, Dezhi/0000-0001-7123-0493; HUANG, Guanying/0000-0002-4445-0877
FU National Social Science Fund of China [19BGL281]; National Key Research
   and Development Program of China [2018YFD1100202]; Nanjing Soft Science
   Research Project [202001015]
FX This study was supported by the National Social Science Fund of China
   (no.19BGL281), the National Key Research and Development Program of
   China (no.2018YFD1100202), and the Nanjing Soft Science Research Project
   (no.202001015).
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NR 102
TC 131
Z9 136
U1 112
U2 612
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD NOV
PY 2021
VL 74
AR 103210
DI 10.1016/j.scs.2021.103210
EA AUG 2021
PG 11
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA XD7ON
UT WOS:000722894000003
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Lv, Y
   Sarker, MNI
AF Lv, Yang
   Sarker, Md Nazirul Islam
TI Integrative approaches to urban resilience: Evaluating the efficacy of
   resilience strategies in mitigating climate change vulnerabilities
SO HELIYON
LA English
DT Article
DE Climate change; Natural disasters; Adaptive capacity; Disaster
   resilience; Adaptation strategies
ID ECOSYSTEM-BASED ADAPTATION; DISASTER RESILIENCE; COMMUNITY RESILIENCE;
   CITIES; GOVERNANCE; MANAGEMENT; FRAMEWORK; POLICIES; LEVEL; GREEN
AB The successful implementation of urban resilience strategies is of utmost importance in order to reduce susceptibility and bolster resilience in the face of climate change consequences. The current understanding of the efficacy of different resilience strategies in mitigating vulnerability and bolstering urban resilience is lacking, despite its significance. This study assesses the efficacy of resilience strategies in mitigating vulnerability and enhancing urban resilience. We conducted a comprehensive analysis of scholarly literature published in English following PRISMA criteria from January 2001 to July 2023. Finally, 116 articles met the inclusion criteria and were selected for in-depth analysis. Results indicate that while resilience strategies have the potential to reduce susceptibility and enhance urban resilience, the effectiveness of resilience techniques is contingent upon various factors, such as the type of hazard, urban setting, and implementation process. The study also highlights the significance of stakeholder involvement, community participation, and adaptive management as essential components for effectively implementing resilience measures. Integrating physical, social, and institutional components in resilience practices demonstrated notable effectiveness. This study also reveals that improving the physical resilience of urban areas and strengthening their social and institutional capabilities to address and learn from disruptive events and pressures can decrease their vulnerability. The research also exposes those strategies focusing solely on mitigating a single issue, such as physical infrastructure, while neglecting social or institutional elements, which prove less effective. A comprehensive approach, incorporating institutional, social, and physical measures, should be designed to achieve maximal efficacy in mitigating vulnerability and strengthening urban resilience.
C1 [Lv, Yang] Chengdu Univ, Coll Teachers, Chengdu 610106, Peoples R China.
   [Sarker, Md Nazirul Islam] Int Univ Business Agr & Technol, Miyan Res Inst, Dhaka 1230, Bangladesh.
C3 Chengdu University; International University of Business Agriculture &
   Technology (IUBAT)
RP Sarker, MNI (corresponding author), Int Univ Business Agr & Technol, Miyan Res Inst, Dhaka 1230, Bangladesh.
EM lvyang@cdu.edu.cn; sarker.usm@yahoo.com
RI Sarker, Md Nazirul Islam/K-7928-2018
OI Sarker, Md Nazirul Islam/0000-0002-8887-521X; Sarker, M Nazirul
   Islam/0000-0003-1555-2468
FU National Education Science Program for Youth Project under National
   Social Science Fund, China [CFA220309]
FX <BOLD>Funding</BOLD> This study is funded by the National Education
   Science Program for Youth Project under National Social Science Fund,
   China (grant no. CFA220309) . The project title is " Research on the
   suitability evaluation and spatial optimization of the supply and demand
   of inclusive early childhood education resources in the county".
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NR 151
TC 3
Z9 3
U1 20
U2 32
PU CELL PRESS
PI CAMBRIDGE
PA 50 HAMPSHIRE ST, FLOOR 5, CAMBRIDGE, MA 02139 USA
EI 2405-8440
J9 HELIYON
JI Heliyon
PD MAR 30
PY 2024
VL 10
IS 6
AR e28191
DI 10.1016/j.heliyon.2024.e28191
EA MAR 2024
PG 18
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA UV7Y4
UT WOS:001250915000001
PM 38545232
OA gold
DA 2025-04-22
ER

PT J
AU Hegger, DLT
   Driessen, PPJ
   Dieperink, C
   Wiering, M
   Raadgever, GTT
   van Rijswick, HFMW
AF Hegger, Dries L. T.
   Driessen, Peter P. J.
   Dieperink, Carel
   Wiering, Mark
   Raadgever, G. T. Tom
   van Rijswick, Helena F. M. W.
TI Assessing Stability and Dynamics in Flood Risk Governance An Empirically
   Illustrated Research Approach
SO WATER RESOURCES MANAGEMENT
LA English
DT Article
DE Flood risk management strategies; Europe; Dordrecht; Resilience;
   Legitimacy; Efficiency; Effectiveness; Flood risk governance
   arrangements
ID POLICY ENTREPRENEURS; RIVER MANAGEMENT; CLIMATE-CHANGE; WATER;
   RESILIENCE; ADAPTATION; EUROPE; SHIFTS
AB European urban agglomerations face increasing flood risks due to urbanization and the effects of climate change. These risks are addressed at European, national and regional policy levels. A diversification and alignment of Flood Risk Management Strategies (FRMSs) can make vulnerable urban agglomerations more resilient to flooding, but this may require new Flood Risk Governance Arrangements (FRGAs) or changes in existing ones. While much technical knowledge on Flood Risk Management is available, scientific insights into the actual and/or necessary FRGAs so far are rather limited and fragmented. This article addresses this knowledge gap by presenting a research approach for assessing FRGAs. This approach allows for the integration of insights from policy scientists and legal scholars into one coherent framework that can be used to identify Flood Risk Management Strategies and analyse Flood Risk Governance Arrangements. In addition, approaches for explaining and evaluating (shifts in) FRGAs are introduced. The research approach is illustrated by referring to the rise of the Dutch risk-based approach called 'multi-layered safety' and more specifically its application in the city of Dordrecht. The article is concluded with an overview of potential next steps, including comparative analyses of FRGAs in different regions. Insights in these FRGAS are crucial to enable the identification of action perspectives for flood risk governance for actors at the level of the EU, its member states, regional authorities, and public-private partnerships.
C1 [Hegger, Dries L. T.; Driessen, Peter P. J.; Dieperink, Carel] Univ Utrecht, Copernicus Inst Sustainable Dev, NL-3508 TC Utrecht, Netherlands.
   [Wiering, Mark] Radboud Univ Nijmegen, Inst Management Res, Dept Geog Planning & Environm, Grp Polit Sci Environm, NL-6525 GD Nijmegen, Netherlands.
   [Raadgever, G. T. Tom] Grontmij Nederland BV, Dept Hydraul Construct, Div Transportat & Mobil, Team Coastal & Rivers, NL-3732 HM De Bilt, Netherlands.
   [van Rijswick, Helena F. M. W.] Utrecht Sch Law, Utrecht Ctr Water Oceans & Sustainabil Law, NL-3512 HT Utrecht, Netherlands.
C3 Utrecht University; Radboud University Nijmegen
RP Hegger, DLT (corresponding author), Univ Utrecht, Copernicus Inst Sustainable Dev, POB 80115, NL-3508 TC Utrecht, Netherlands.
EM d.l.t.hegger@uu.nl
RI Hegger, Dries/S-8727-2016; Wiering, Mark/AAD-8358-2022; Dieperink,
   Carel/M-4458-2013; Hegger, Dries/L-9301-2013; Driessen,
   Peter/M-6751-2013
OI Dieperink, Carel/0000-0002-1926-4642; Hegger, Dries/0000-0003-2721-3527;
   Driessen, Peter/0000-0002-0724-6666; van Rijswick,
   Helena/0000-0002-0492-1718
FU European Commission [308364]
FX This paper has been written in the framework of the European Union's
   Seventh Programme for Research, Technological Development and
   Demonstration within the STAR-FLOOD project. This research has received
   funding from the European Commission under grant agreement no. 308364.
   We would also like to thank the participants of the STAR-FLOOD
   consortium workshop in Amsterdam on 12 February 2013 which contributed
   to a refinement of the approach presented in this paper, Ellen Kelder
   and Berry Gersonius for their detailed insights on flood risk governance
   in Dordrecht, Ton Markus for producing the figure illustrating
   Dordrecht's vulnerability to flooding as well as Tina New stead for her
   language corrections.
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NR 47
TC 123
Z9 135
U1 5
U2 87
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0920-4741
EI 1573-1650
J9 WATER RESOUR MANAG
JI Water Resour. Manag.
PD SEP
PY 2014
VL 28
IS 12
BP 4127
EP 4142
DI 10.1007/s11269-014-0732-x
PG 16
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Water Resources
GA AN4BT
UT WOS:000340533300017
DA 2025-04-22
ER

PT J
AU Suárez, M
   Rieiro-Díaz, AM
   Alba, D
   Langemeyer, J
   Gómez-Baggethun, E
   Ametzaga-Arregi, I
AF Suarez, Marta
   Rieiro-Diaz, Amaya M.
   Alba, David
   Langemeyer, Johannes
   Gomez-Baggethun, Erik
   Ametzaga-Arregi, Ibone
TI Urban resilience through green infrastructure: A framework for policy
   analysis applied to Madrid, Spain
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Policy analysis; Social-ecological justice; Urban green infrastructure;
   Urban resilience index
ID ENVIRONMENTAL JUSTICE; ECOSYSTEM SERVICES; GENERAL RESILIENCE; RESPONSE
   DIVERSITY; CITIES; SPACE; ADAPTATION; PRINCIPLES; PROVISION; EUROPE
AB Urban resilience and how to assess it have become main policy objectives in the face of accelerated climate and other global environmental change. We develop a conceptual framework and an assessment tool to analyse how green infrastructure policies contribute to urban resilience and discuss barriers and opportunities for implementation. The conceptual framework is designed to analyse how resilience is fostered through six resilience factors: diversity, self-sufficiency and autonomy, polycentric governance, social cohesion, learning and innovation, and social-ecological justice. The assessment tool consists of a resilience index composed of 30 indicators. We use the capital city of Madrid, Spain, as a case study. Our results suggest that planning policies that focus on vulnerable neighbourhoods and include mechanisms for citizen engagement are the policies that most effectively foster urban resilience. We also identified that financing and political will are major barriers for the implementation of resilience policies. We assume that the proposed framework is suitable to assess to what extent local policies foster urban resilience and suggest further testing in other cities.
C1 [Suarez, Marta; Ametzaga-Arregi, Ibone] Univ Basque Country UPV EHU, UNESCO Chair Sustainable Dev & Environm Educ, Leioa, Spain.
   [Suarez, Marta] Univ Autonoma Madrid, Dept Ecol, Social Ecol Syst Lab, Madrid, Spain.
   [Rieiro-Diaz, Amaya M.] Univ Int Rioja, Logrona, Spain.
   [Alba, David] Asociac Ecol & Educ Ciudad Sostenible Transitando, Madrid, Spain.
   [Langemeyer, Johannes] Univ Autonoma Barcelona, Inst Environm Sci & Technol, Cerdanyola Del Valles, Spain.
   [Langemeyer, Johannes] Humboldt Univ, Dept Geog, Berlin, Germany.
   [Gomez-Baggethun, Erik] Norwegian Univ Life Sci, Dept Int Environm & Dev Studies, As, Norway.
   [Gomez-Baggethun, Erik] Norwegian Inst Nat Res, Oslo, Norway.
   [Suarez, Marta] Univ Basque Country UPV EHU, UNESCO Chair Sustainable Dev & Environm Educ, Barrio Sarriena S-N, Leioa 48940, Spain.
C3 University of Basque Country; Autonomous University of Madrid;
   Universidad Internacional de La Rioja (UNIR); Autonomous University of
   Barcelona; Humboldt University of Berlin; Norwegian University of Life
   Sciences; Norwegian Institute Nature Research; University of Basque
   Country
RP Suárez, M (corresponding author), Univ Basque Country UPV EHU, UNESCO Chair Sustainable Dev & Environm Educ, Barrio Sarriena S-N, Leioa 48940, Spain.
EM msuarez023@ikasle.ehu.eus
RI Gomez-Baggethun, Erik/LSL-9726-2024; Langemeyer, Johannes/AAH-7736-2020;
   AMETZAGA, IBONE/AAE-2152-2020
OI Langemeyer, Johannes/0000-0002-0558-8486; Alba-Hidalgo,
   David/0000-0003-1397-2231; AMETZAGA, IBONE/0000-0003-0683-1190
FU University of the Basque Countr
FX This research is part of the project "Evaluacion de la infraestructura
   verde de Madrid: Hacia una mejora de las politicas municipales para la
   resiliencia socio-ecologica" funded by Madrid City Council in 2018 with
   a budget of 35,088.17_ and carried out by Asociacion Ecologia y
   Educacion para una Ciudad Sostenible - Transitando. We thank Ayar
   Rodriguez de Castro and Ana Paula Garcia-Nieto for their support with
   GIS and Jorge Cerezal for his support with the policy review. We also
   thank the officials and policymakers of the City Council and the experts
   for their participation in the interviews and the consultation process.
   Open access funding provided by University of the Basque Country.
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NR 105
TC 15
Z9 15
U1 60
U2 163
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0169-2046
EI 1872-6062
J9 LANDSCAPE URBAN PLAN
JI Landsc. Urban Plan.
PD JAN
PY 2024
VL 241
AR 104923
DI 10.1016/j.landurbplan.2023.104923
EA OCT 2023
PG 15
WC Ecology; Environmental Studies; Geography; Geography, Physical; Regional
   & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA Y3JW5
UT WOS:001104275200001
OA hybrid, Green Submitted, Green Published
DA 2025-04-22
ER

PT J
AU Borie, M
   Pelling, M
   Ziervogel, G
   Hyams, K
AF Borie, Maud
   Pelling, Mark
   Ziervogel, Gina
   Hyams, Keith
TI Mapping narratives of urban resilience in the global south
SO GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Urban resilience; Narratives; Science-Policy; Manila; Cape Town; Nairobi
ID DISASTER RISK REDUCTION; CLIMATE-CHANGE; COMMUNITY RESILIENCE;
   ADAPTATION; GOVERNANCE; KNOWLEDGE; CITY; JUSTICE; DREAMS; POLICY
AB In the context of global environmental change much hope is placed in the ability of resilience thinking to help address environment-related risks. Numerous initiatives aim at incorporating resilience into urban planning practices. The purpose of this paper is to open up a conversation on urban resilience by unpacking how diverse science methods contribute to the production of different narratives of urban resilience mobilizing different experts and forms of evidence. A number of scholars have cautioned against uncritical approaches to resilience and asked what resilience means and for whom, also pointing out the normative dimension of the concept. Building on this emerging scholarship we use insights from science and technology studies (STS) and critical social sciences to look at the knowledge infrastructures and networks of actors involved in the development of resilience strategies. Drawing on fieldwork in Manila, Nairobi, and Cape Town, we map different narratives of urban resilience identifying the ways in which science serves to legitimate or alienate particular perspectives on what should be done. We discuss the multiple roles that science methods have for resilience planning. Whereas urban resilience is often portrayed as consensual, we show that a range of narratives, with diverse socio-material implications, exist at the city level. In this way we unearth the conflict that lies beneath an apparent consensus for resilience policy and outline future research directions for urban sustainability.
C1 [Borie, Maud; Pelling, Mark] Kings Coll London, Dept Geog, Bush House,North East Wing,30 Aldwych, London WC2B4G, England.
   [Ziervogel, Gina] Univ Cape Town, Dept Environm & Geog Sci, South Lane, ZA-7701 Cape Town, South Africa.
   [Ziervogel, Gina] Univ Cape Town, African Climate & Dev Initiat, South Lane, ZA-7701 Cape Town, South Africa.
   [Hyams, Keith] Univ Warwick, Dept Polit & Int Studies, Coventry CV4 7AL, W Midlands, England.
C3 University of Cape Town; University of Cape Town; University of Warwick
RP Borie, M; Pelling, M (corresponding author), Kings Coll London, Dept Geog, Bush House,North East Wing,30 Aldwych, London WC2B4G, England.
EM maud.borie@kcl.ac.uk; mark.pelling@kcl.ac.uk; gina@csag.uct.ac.za;
   k.d.hyams@warwick.ac.uk
RI Ziervogel, Gina/AAG-2945-2019; BORIE, MAUD/LNP-9311-2024
OI Ziervogel, Gina/0000-0003-4219-6809; Hyams, Keith/0000-0003-3755-646X;
   Borie, Maud/0000-0002-1538-8832; Pelling, Mark/0000-0002-6472-9875
FU UKRI Global Challenges Research Fund [NE/P01609X/1]; NERC [NE/P01609X/1]
   Funding Source: UKRI
FX This research emerges from the 'Why we disagree about resilience'
   (WhyDAR) project funded by UKRI Global Challenges Research Fund; grant
   number NE/P01609X/1. We would like to thank our partners and all the
   participants who accepted to share their insights by taking part in
   interviews as well as the reviewers. The views expressed in this paper
   are in the authors' personal capacity, and do not represent the views of
   their respective institutions. Any errors or omissions remain our own.
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NR 113
TC 100
Z9 107
U1 7
U2 112
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0959-3780
EI 1872-9495
J9 GLOBAL ENVIRON CHANG
JI Glob. Environ. Change-Human Policy Dimens.
PD JAN
PY 2019
VL 54
BP 203
EP 213
DI 10.1016/j.gloenvcha.2019.01.001
PG 11
WC Environmental Sciences; Environmental Studies; Geography
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA HL1OI
UT WOS:000458468400020
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Chen, Z
   Zhu, SY
   Feng, HB
   Zhang, HS
   Li, DZ
AF Chen, Zhang
   Zhu, Shiyao
   Feng, Haibo
   Zhang, Hongsheng
   Li, Dezhi
TI Coupling dynamics of urban flood resilience in china from 2012 to 2022:
   A network-based approach
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban resilience; Coupling network; Urban flooding; Synergy effects;
   Tradeoff effects
ID CLIMATE-CHANGE
AB Urban flooding presents a significant challenge in Chinese cities, necessitating a deeper understanding of the coupling effects of China's urban flood resilience for effective resilience planning. This study introduces a fourcomponent Environment-Institution-Infrastructure-Agent (EIFA) framework and utilizes an updated correlation network approach to analyze the temporal variation of coupling effects of urban flood resilience across 639 Chinese cities from 2012 to 2022. The findings indicate a decline in synergy and increased tradeoffs, primarily due to intensified competition within and between institutional and infrastructural sectors, marginal impacts of infrastructure investments, and socially excessive infrastructure. The study also highlights the agent component's strong internal and inter-component coupling effects, implying the effectiveness of China's people-centered resilience strategies, though risks of decoupling remain. Additionally, it notes a good match between societal urban flood resilience and natural flood risks, while natural vegetation loss due to urban expansion is noteworthy. The study further suggests that refining agent-focused deposit and insurance policies could coordinatively enhance urban flood resilience, as these elements are hubs within the network. The updated networkbased framework and its findings offer insights for informing and optimizing urban flood resilience planning in China.
C1 [Chen, Zhang; Zhang, Hongsheng] Univ Hong Kong, Dept Geog, Hong Kong, Peoples R China.
   [Zhu, Shiyao] Nantong Univ, Sch Transportat & Civil Engn, Nantong, Peoples R China.
   [Chen, Zhang; Zhu, Shiyao; Feng, Haibo] Univ British Columbia, Dept Wood Sci, Vancouver, BC, Canada.
   [Li, Dezhi] Southeast Univ, Sch Civil Engn, Nanjing, Peoples R China.
C3 University of Hong Kong; Nantong University; University of British
   Columbia; Southeast University - China
RP Zhu, SY (corresponding author), Nantong Univ, Sch Transportat & Civil Engn, Nantong, Peoples R China.; Zhu, SY (corresponding author), Univ British Columbia, Dept Wood Sci, Vancouver, BC, Canada.
EM syzhu@mail.ubc.ca
RI ZHU, SHIYAO/GZB-0532-2022; Zhang, Hongsheng/E-8908-2010
OI Li, Dezhi/0000-0001-7123-0493
FU National Natural Sci-ence Foundation of China [72204127]
FX This project is funded by the provided by the National Natural Sci-ence
   Foundation of China (Grant number: 72204127) . The contents of this
   paper reflect the views of the authors, who are responsible for the
   facts and accuracy of the data presented herein.
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NR 95
TC 1
Z9 1
U1 35
U2 35
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JAN
PY 2025
VL 118
AR 105996
DI 10.1016/j.scs.2024.105996
EA NOV 2024
PG 20
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA S1T2F
UT WOS:001396127700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Hecht, AA
   Biehl, E
   Buzogany, S
   Neff, RA
AF Hecht, Amelie A.
   Biehl, Erin
   Buzogany, Sarah
   Neff, Roni A.
TI Using a trauma-informed policy approach to create a resilient urban food
   system
SO PUBLIC HEALTH NUTRITION
LA English
DT Article
DE Food security; Resilience; Policy; Trauma
ID CHILDHOOD ADVERSITY; INSECURITY; HEALTH; INCOME; INSUFFICIENCY;
   DEPRESSION; PRINCIPLES; PRESCHOOL; FRAMEWORK; SECURITY
AB Objective: Food insecurity is associated with toxic stress and adverse long-term physical and mental health outcomes. It can be experienced chronically and also triggered or exacerbated by natural and human-made hazards that destabilize the food system. The Baltimore Food System Resilience Advisory Report was created to strengthen the resilience of the city's food system and improve short- and long-term food security. Recognizing food insecurity as a form of trauma, the report was developed using the principles of trauma-informed social policy. In the present paper, we examine how the report applied trauma-informed principles to policy development, discuss the challenges and benefits of using a trauma-informed approach, and provide recommendations for others seeking to create trauma-informed food policy.
   Design: Report recommendations were developed based on: semi-structured interviews with food system stakeholders; input from community members at outreach events; a literature review; Geographic Information System mapping; and other analyses. The present paper explores findings from the stakeholder interviews.
   Setting: Baltimore, Maryland, USA.
   Subjects: Baltimore food system stakeholders stratified by two informant categories: organizations focused on promoting food access (n 13) and community leaders (n 12).
   Results: Stakeholder interviews informed the recommendations included in the report and supported the idea that chronic and acute food insecurity are experienced as trauma in the Baltimore community.
   Conclusions: Applying a trauma-informed approach to the development of the Baltimore Food System Resilience Advisory Report contributed to policy recommendations that were community-informed and designed to lessen the traumatic impact of food insecurity.
C1 [Hecht, Amelie A.; Neff, Roni A.] Johns Hopkins Bloomberg Sch Publ Hlth, Dept Hlth Policy & Management, Baltimore, MD 21205 USA.
   [Hecht, Amelie A.; Biehl, Erin; Neff, Roni A.] Johns Hopkins Bloomberg Sch Publ Hlth, Ctr Livable Future, 615 N Wolfe St, Baltimore, MD 21205 USA.
   [Biehl, Erin; Neff, Roni A.] Johns Hopkins Bloomberg Sch Publ Hlth, Dept Environm Hlth & Engn, Baltimore, MD 21205 USA.
   [Buzogany, Sarah] Baltimore Off Sustainabil, Baltimore Food Policy Initiat, Baltimore, MD USA.
C3 Johns Hopkins University; Johns Hopkins Bloomberg School of Public
   Health; Johns Hopkins University; Johns Hopkins Bloomberg School of
   Public Health; Johns Hopkins University; Johns Hopkins Bloomberg School
   of Public Health
RP Neff, RA (corresponding author), Johns Hopkins Bloomberg Sch Publ Hlth, Dept Hlth Policy & Management, Baltimore, MD 21205 USA.; Neff, RA (corresponding author), Johns Hopkins Bloomberg Sch Publ Hlth, Ctr Livable Future, 615 N Wolfe St, Baltimore, MD 21205 USA.; Neff, RA (corresponding author), Johns Hopkins Bloomberg Sch Publ Hlth, Dept Environm Hlth & Engn, Baltimore, MD 21205 USA.
EM RNeff1@jhu.edu
OI Hecht, Amelie/0000-0002-4942-5574; Neff, Roni/0000-0002-0010-2635
FU Johns Hopkins Urban Health Institute Small Grants; Johns Hopkins 21st
   Century Cities Initiative; Johns Hopkins Center for a Livable Future
FX This research was supported by the Johns Hopkins Urban Health Institute
   Small Grants, the Johns Hopkins 21st Century Cities Initiative and the
   Johns Hopkins Center for a Livable Future with a gift from the GRACE
   Communications Foundation. The funders had no role in the design,
   analysis or writing of this article.
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NR 47
TC 35
Z9 41
U1 1
U2 16
PU CAMBRIDGE UNIV PRESS
PI CAMBRIDGE
PA EDINBURGH BLDG, SHAFTESBURY RD, CB2 8RU CAMBRIDGE, ENGLAND
SN 1368-9800
EI 1475-2727
J9 PUBLIC HEALTH NUTR
JI Public Health Nutr.
PD JUL
PY 2018
VL 21
IS 10
BP 1961
EP 1970
DI 10.1017/S1368980018000198
PG 10
WC Public, Environmental & Occupational Health; Nutrition & Dietetics
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Nutrition & Dietetics
GA HB4DF
UT WOS:000451002000019
PM 29458445
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Ma, HT
   Xu, XF
   Li, XZ
   Liu, JY
AF Ma, Haitao
   Xu, Xuanfang
   Li, Xiaozhen
   Liu, Jingyu
TI Towards innovation resilience through urban networks of co-invention: A
   case study of cities in China
SO FRONTIERS IN EARTH SCIENCE
LA English
DT Article
DE innovation resilience; network resilience; urban network; co-invention;
   patent; China
ID ORGANIZATIONAL RESILIENCE; REGIONAL RESILIENCE; KNOWLEDGE CREATION;
   FRAMEWORK; PERSPECTIVE; ADAPTATION; STRATEGIES; EMERGENCE; PIPELINES;
   CLUSTERS
AB The intensified competition for innovation among countries and the various risks that come with it have made innovation resilience a central concern of the international community in recent years. The concepts of resilience and innovation are inextricably intertwined; however, both theoretical discussions and case studies on innovation resilience are in the "embryonic " stage. This article attempts to integrate the system and nodes of network resilience, the potential and connectivity of city resilience, and the hierarchy and assortativity of urban network resilience to construct a theoretical analysis framework of intercity innovation network resilience and conduct a case study on the resilience of a patent cooperation network among 338 prefecture-level cities in China during 2017-2019. The results show that the systemic resilience of Chinese urban innovation networks exhibits relatively low hierarchical and yearly decreasing disassortative characteristics, and the node resilience shows a spatial pattern of being high in the southeast and low in the northwest, as well as higher innovation resilience in cities with higher administrative levels. The results provide insights into the overall systemic and internal structural characteristics of innovation resilience in Chinese urban networks and also expand the application of resilience concepts in the field of innovation research from the perspective of urban networks.
C1 [Ma, Haitao; Xu, Xuanfang] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Reg Sustainable Dev Modeling, Beijing, Peoples R China.
   [Li, Xiaozhen; Liu, Jingyu] Henan Univ, Coll Geog & Environm Sci, Res Ctr Reg Dev & Planning, Key Lab Geospatial Technol Middle & Lower Yellow R, Kaifeng, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Geographic Sciences & Natural
   Resources Research, CAS; Henan University
RP Ma, HT (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Reg Sustainable Dev Modeling, Beijing, Peoples R China.
EM maht@igsnrr.ac.cn
RI Liu, Jingyu/GRJ-3658-2022
FU National Natural Science Foundation of China; Third Xinjiang Scientific
   Expedition Program; Second Tibetan Plateau Scientific Expedition and
   Research Program (STEP);  [41971209];  [2021xjkk0900];  [2019QZKK1005]
FX Funding The author(s) disclosed receipt of the following financial
   support for the research, authorship and/or publication of this article:
   This work is supported by the National Natural Science Foundation of
   China (grant no. 41971209), the Third Xinjiang Scientific Expedition
   Program (grant no. 2021xjkk0900), and the Second Tibetan Plateau
   Scientific Expedition and Research Program (STEP) (grant no.
   2019QZKK1005).
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NR 98
TC 5
Z9 7
U1 56
U2 265
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
EI 2296-6463
J9 FRONT EARTH SC-SWITZ
JI Front. Earth Sci.
PD SEP 19
PY 2022
VL 10
AR 974219
DI 10.3389/feart.2022.974219
PG 15
WC Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology
GA 5H2AS
UT WOS:000867486900001
OA gold
DA 2025-04-22
ER

PT J
AU Amirzadeh, M
   Sobhaninia, S
   Sharifi, A
AF Amirzadeh, Melika
   Sobhaninia, Saeideh
   Sharifi, Ayyoob
TI Urban resilience: A vague or an evolutionary concept?
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Resilience thinking; Urban resilience; Evolutionary resilience;
   Resilience dimensions; Resilience phases; Resilience approaches
ID DISASTER RISK REDUCTION; COMMUNITY RESILIENCE; CLIMATE-CHANGE;
   SOCIAL-SYSTEMS; VULNERABILITY; ADAPTATION; CITIES; FRAMEWORK;
   MITIGATION; RECOVERY
AB Considering the rapid urbanization trends in many parts of the world and the increasing consequences of climate change, more and more cities are at risk of natural disasters and other environmental, socio-economic, and political disruptions. To address these issues, resilience thinking has attracted the attention of a wide range of stakeholders. However, despite considerable attention to this concept and its frequent usage, resilience remains ambiguous with diverse interpretations in policy discussions and academic debates about cities. Since such vague interpretations would lead to difficulties in theory and practice, the present study aims to clarify some of these concepts by providing a comprehensive review focused on resilience features and comparing different perspectives regarding urban resilience. The study results showed that the main reason behind such ambiguities is that resilience has undergone fundamental changes since its inception, and recent approaches to resilience are generally based on the non-equilibrium model of resilience. There are three main dimensions, including systems, agents, and institutions, as well as three main approaches to urban resilience, including recovery, adaptation, and transformation. This study's conceptual framework of urban resilience provides scholars and policymakers with a more transparent and comprehensive picture of urban resilience and helps them make better-informed decisions.
C1 [Amirzadeh, Melika] Univ Art, Fac Architecture & Urban Planning, 24 Arghavan Alley,Laleh St, Tehran, Iran.
   [Sobhaninia, Saeideh] Clemson Univ, Planning Design, 119 Cleveirvine Ave, Greenville, SC 29607 USA.
   [Sobhaninia, Saeideh] Clemson Univ, Built Environm Dept, 119 Cleveirvine Ave, Greenville, SC 29607 USA.
   [Sharifi, Ayyoob] Hiroshima Univ, Grad Sch Humanities & Social Sci, Hiroshima 7398511, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Hiroshima 7398511, Japan.
C3 Clemson University; Clemson University; Hiroshima University; Hiroshima
   University
RP Amirzadeh, M (corresponding author), Univ Art, Fac Architecture & Urban Planning, 24 Arghavan Alley,Laleh St, Tehran, Iran.
EM melika.amirzadeh@gmail.com
RI Sobhaninia, Saeideh/KFY-5918-2024; AMIRZADEH, MELIKA/HIR-9975-2022;
   Sharifi, Ayyoob/M-7584-2013
OI Amirzadeh, Melika/0000-0002-5223-818X; Sharifi,
   Ayyoob/0000-0002-8983-8613; Sobhaninia, Saeideh/0000-0003-1425-3060
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NR 135
TC 147
Z9 148
U1 143
U2 594
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JUN
PY 2022
VL 81
AR 103853
DI 10.1016/j.scs.2022.103853
EA MAR 2022
PG 12
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 0X3YI
UT WOS:000789645900003
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Yang, Y
   Fang, YP
   Xu, Y
   Zhang, YK
AF Yang, Yue
   Fang, Yi-ping
   Xu, Yun
   Zhang, Yike
TI Assessment of urban resilience based on the transformation of
   resourcebased cities: a case study of Panzhihua, China
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE adaptive cycle; resource-based cities; urban resilience; urban
   transformation
ID COMMUNITY RESILIENCE; BAYESIAN NETWORKS; CLIMATE-CHANGE; FRAMEWORK;
   EARTHQUAKE; RECOVERY
AB Long-term development of resource utilization has caused a series of economic, social, and ecological problems in resource-based cities (RBCs). Thus, in pursuit of sustainable urban development, many RBCs have begun seriously pursuing urban transformation and have achieved good results. However, the RBCs' urban resilience also exhibits evident stage characteristics throughout the processes of urban transformation. Herein, we constructed an evaluation index system to measure the urban resilience of Panzhihua, China and analyzed the resilience time-varying characteristics and influencing factors from 2000 to 2016. The results show that: (1) after undergoing urban transformation, changes in Panzhihua's resilience can be divided into three stages consisting of a slow rising period (2000-2005), a rapidly fluctuating rising period (2006-2010), and a stable development period (2011-2016). (2) Among the four divisions of urban resilience, the largest changes were found in the infrastructure and environment, and economic and social categories; only relatively small changes were observed in health and well-being, and government management capabilities. Nevertheless, all showed an upward trend. (3) Among the 12 indicators, transportation and communication, social security, education development, and comprehensive development ability were found to be closely linked to urban resilience. (4) Under the influence of urban transformation, RBCs' resilience greatly fluctuates, likely in response to actively transitioning the urban system from its previous state to its current state. Our study demonstrates that there is a high degree of correlation between the RBCs' life cycles and adaptation cycles.
C1 [Yang, Yue; Fang, Yi-ping; Xu, Yun; Zhang, Yike] Chinese Acad Sci, Inst Mt Hazards & Environm, Beijing, Peoples R China.
   [Yang, Yue; Zhang, Yike] Univ Chinese Acad Sci, Beijing, Peoples R China.
   [Fang, Yi-ping] Univ Chinese Acad Sci, Coll Resources & Environm, Beijing, Peoples R China.
   [Fang, Yi-ping] China Pakistan Joint Res Ctr Earth Sci, CAS HEC, Islamabad, Pakistan.
C3 Chinese Academy of Sciences; Institute of Mountain Hazards &
   Environment, CAS; Chinese Academy of Sciences; University of Chinese
   Academy of Sciences, CAS; Chinese Academy of Sciences; University of
   Chinese Academy of Sciences, CAS
RP Yang, Y (corresponding author), Chinese Acad Sci, Inst Mt Hazards & Environm, Beijing, Peoples R China.; Yang, Y (corresponding author), Univ Chinese Acad Sci, Beijing, Peoples R China.
FU National Natural Science Foundation of China [41571523, 41671152];
   NSFC-ICIMOD Joint Research Project [41661144038]
FX This work was supported by the National Natural Science Foundation of
   China (Grants No. 41571523, No. 41671152), and the NSFC-ICIMOD Joint
   Research Project (Grant No. 41661144038).
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NR 66
TC 26
Z9 27
U1 14
U2 181
PU Resilience Alliance
PI Dedham
PA 231 Bussey St., Beckwith and Brown, Dedham, Massachusetts, UNITED STATES
SN 1708-3087
J9 ECOL SOC
JI Ecol. Soc.
PD JUN
PY 2021
VL 26
IS 2
AR 20
DI 10.5751/ES-12280-260220
PG 16
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA TB8TT
UT WOS:000668219400013
OA gold
DA 2025-04-22
ER

PT J
AU Shi, T
   Qiao, YR
   Zhou, Q
AF Shi, Tao
   Qiao, Yurong
   Zhou, Qian
TI Spatiotemporal evolution and spatial relevance of urban resilience:
   Evidence from cities of China
SO GROWTH AND CHANGE
LA English
DT Article
AB Based on 2012-2017 panel data of 282 China's cities, this paper uses the entropy method to calculate an urban resilience index, uses spatial cold-hot spots model to explore spatial characteristics of urban resilience, uses revised the gravity model to construct urban resilience spatial network characteristics, and uses the social network analysis method to analyze spatial network characteristics of urban resilience. The results show that: (1) Urban resilience of China's cities has been gradually improved, and there is a geographical aggregation effect, with significant changes in hot spots and insignificant changes in cold spots. (2) Urban resilience has obvious spatial correlation and linkage effects and strong temporal fluctuation. The cities with higher degree centrality and closeness centrality are consistent in spatial distribution, mostly located in Bohai Rim, Pan-Yangtze River Delta, Pearl River Delta and some central regions. The centrality obviously shows non-equilibrium in spatial distribution. The cities with high centrality are mostly provincial capitals. (3) The "club effect" has not yet been reflected in the urban resilience spatial network, and the advantages of different regions are obviously different. Therefore, it is necessary to face up to the spatial difference of urban development and enhance the diversity and pertinence of urban resilience construction.
C1 [Shi, Tao] Henan Acad Social Sci, Econ Inst, Zhengzhou, Peoples R China.
   [Shi, Tao] Natl Sch Adm, CPC Cent Party Sch, Econ Teaching & Res Dept, Beijing, Peoples R China.
   [Qiao, Yurong] Zhengzhou Univ Light Ind, Sch Econ & Management, Zhengzhou, Peoples R China.
   [Zhou, Qian] Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Hubei, Peoples R China.
C3 Central Party School of the Chinese Communist Party; Zhengzhou
   University of Light Industry; Zhongnan University of Economics & Law
RP Zhou, Q (corresponding author), Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Hubei, Peoples R China.
EM zhouqian200912@163.com
OI Zhou, Qian/0000-0002-2319-1095; SHI, TAO/0000-0002-6556-4144
FU Good Scholar in Philosophy and Social Sciences in Henan Institutions of
   Higher Learning [2019-YXXZ-20]; Training Plan for Key Young Teachers in
   Henan Institutions of Higher Learning [2018GGJS094]; Support Plan for
   Scientific and Technological Innovation Talents in Henan Institutions of
   Higher Learning (humanities and social sciences) [2018-cx-012];
   Philosophy and Social Science Innovation Team Building Program of Henan
   Universities [2021-CXTD-12]; Basement Research foundation of Henan
   academy of social sciences [21E39]; National Social Science Foundation
   of China [16CJY045]; Major Projects of Philosophy and Social Science
   Research of Hubei Province [19ZD044]
FX Good Scholar in Philosophy and Social Sciences in Henan Institutions of
   Higher Learning, Grant/Award Number: 2019-YXXZ-20; Training Plan for Key
   Young Teachers in Henan Institutions of Higher Learning, Grant/Award
   Number: 2018GGJS094; Support Plan for Scientific and Technological
   Innovation Talents in Henan Institutions of Higher Learning (humanities
   and social sciences), Grant/Award Number: 2018-cx-012; Philosophy and
   Social Science Innovation Team Building Program of Henan Universities,
   Grant/Award Number: 2021-CXTD-12; Basement Research foundation of Henan
   academy of social sciences, Grant/Award Number: 21E39; National Social
   Science Foundation of China, Grant/Award Number: 16CJY045; The Major
   Projects of Philosophy and Social Science Research of Hubei Province,
   Grant/Award Number: 19ZD044
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NR 40
TC 47
Z9 49
U1 20
U2 128
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0017-4815
EI 1468-2257
J9 GROWTH CHANGE
JI Growth Change
PD DEC
PY 2021
VL 52
IS 4
BP 2364
EP 2390
DI 10.1111/grow.12554
EA SEP 2021
PG 27
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA XG6DK
UT WOS:000696404100001
DA 2025-04-22
ER

PT J
AU Zong, CC
   Ji, K
   Wen, RZ
   Bi, XR
   Ren, YF
   Zhang, XR
AF Zong, Chengcai
   Ji, Kun
   Wen, Ruizhi
   Bi, Xirong
   Ren, Yefei
   Zhang, Xiaorui
TI Seismic resilient three-stage enhancement for gas distribution network
   using computational optimization algorithms
SO SOIL DYNAMICS AND EARTHQUAKE ENGINEERING
LA English
DT Article
DE Seismic resilience; Gas distribution network; Enhancement; Performance
   function; Computational optimization algorithms
ID SYSTEMS RESILIENCE; KNN
AB A computer-simulation-based three-stage optimization strategy is proposed for the resilience enhancement of urban gas distribution networks (GDNs). In stage I (pre-earthquake stage), the Fixed Proportion and Direct Comparison Genetic Algorithm (FPDC-GA) is applied to select key pipelines need to be strenthened or replaced under limited funding in preparation for future potential earthquakes. In stage II (post-earthquake stage), pressure tests must be carried out according to the gas leakage situation reported by users or detected by devices. The Multi-Label K-Nearest-Neighbor (ML-KNN) algorithm is used to predict the corresponding failed pipelines and optimize the pipeline pressure test order. In stage III (repair stage), a strategy based on a greedy algorithm is applied to optimize the pipeline repair sequence. The proposed methods were applied to the GDN of a city in northern China. The following conclusions were drawn from the results: (1) The FPDC-GA enhanced the robustness and resourcefulness of the GDN system to the maximum level within the available funding budget. (2) The pipeline pressure test order calculated using the ML-KNN algorithm was significantly improved compared with a random pressure test order or one based on the empirical failure probability of pipelines. (3) After optimization using a greedy algorithm, the performance recovery curves under different earthquake conditions were shaped as an exponential function, which indicates that the performance of the GDNs recovered in the most efficient manner. The findings of this study could be useful as tools for the seismic resilience enhancement of GDNs in different stages. The proposed optimization algorithms can also be extended to the lifeline of other networks.
C1 [Zong, Chengcai; Ji, Kun; Wen, Ruizhi; Bi, Xirong; Ren, Yefei] China Earthquake Adm, Key Lab Earthquake Engn & Engn Vibrat, Inst Engn Mech, Harbin 150080, Peoples R China.
   [Bi, Xirong] Earthquake Adm Guangxi Zhuang Autonomous Reg, Nanning 530022, Peoples R China.
   [Zhang, Xiaorui] Beijing Gas & Heating Engn Design Inst Co Ltd, Beijing 100032, Peoples R China.
C3 China Earthquake Administration; Institute of Engineering Mechanics, CEA
RP Wen, RZ (corresponding author), China Earthquake Adm, Key Lab Earthquake Engn & Engn Vibrat, Inst Engn Mech, Harbin 150080, Peoples R China.
EM ruizhi@iem.net.cn
RI Kun, Ji/HTO-2889-2023; Ren, Yefei/C-2865-2013
OI Zong, Chengcai/0000-0002-1678-4263; Ren, Yefei/0000-0003-1097-8259;
   Zhang, Xiaorui/0000-0002-9996-9967; Kun, Ji/0000-0003-0314-5216
FU Heilongjiang Provincial Nat-ural Science Foundation of China
   [LH2020E022]; Chi-nese National Natural Science Fund [51908518,
   51778589]; Science Foundation of the Institute of Engineering
   Me-chanics, CEA [2019B09]
FX Acknowledgments This work was partially supported by Heilongjiang
   Provincial Nat-ural Science Foundation of China (Grant Numbers
   LH2020E022) ; Chi-nese National Natural Science Fund (grant number.
   51908518 and 51778589) ; Science Foundation of the Institute of
   Engineering Me-chanics, CEA (grant number. 2019B09) .
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NR 50
TC 6
Z9 6
U1 3
U2 41
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0267-7261
EI 1879-341X
J9 SOIL DYN EARTHQ ENG
JI Soil Dyn. Earthq. Eng.
PD JAN
PY 2022
VL 152
AR 107057
DI 10.1016/j.soildyn.2021.107057
PG 13
WC Engineering, Geological; Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology
GA 0J8NR
UT WOS:000780357600002
DA 2025-04-22
ER

PT J
AU Liu, LN
   Zhang, ZC
   Ding, SH
   Yang, F
   Fu, TR
AF Liu, Lingna
   Zhang, Zhicong
   Ding, Shaoheng
   Yang, Feng
   Fu, Tongrong
TI Combined effects of climate change on urban resilience in the Tibetan
   Plateau
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Article
DE Urban resilience; Climate change; Tibetan Plateau region; Ecological
   resilience
ID ADAPTATION; SYSTEM
AB Urban resilience refers to the ability of a city or region to adapt to changes and risks. However, the comprehensive impacts and mechanisms of adaptation and responses to climate change have not been sufficiently examined. Using the measured level of resilience of the Tibetan Plateau (TP) region from 1991 to 2020, the comprehensive static and dynamic effects of temperature and precipitation on urban resilience and the mechanisms thereof are discussed. The results are as follows: (1) The level of general urban resilience on the TP is rising in a fluctuating manner, and the regional differences are gradually increasing. (2) Temperature and precipitation factors play a significant role in increasing the level of resilience on the TP, and the degree of promotion shows regional heterogeneity. (3) Ecological resilience on the TP is most affected by temperature. Economic resilience is most affected by precipitation.
C1 [Liu, Lingna] Beijing Univ Chem Technol, Coll Humanities & Law, Beijing 100029, Peoples R China.
   [Zhang, Zhicong] China Univ Geosci, Sch Econ & Management, Beijing, Peoples R China.
   [Ding, Shaoheng] China Petr Planning & Engn Inst, Beijing, Peoples R China.
   [Yang, Feng] China Natl Inst Standardizat, Beijing 100191, Peoples R China.
   [Fu, Tongrong] Beijing Univ Chem Technol, Sch Econ & Management, Beijing, Peoples R China.
C3 Beijing University of Chemical Technology; China University of
   Geosciences; China National Institute of Standardization; Beijing
   University of Chemical Technology
RP Liu, LN (corresponding author), Beijing Univ Chem Technol, Coll Humanities & Law, Beijing 100029, Peoples R China.
EM daisyliu1993@163.com
RI LIU, LINGNA/IUO-0244-2023
FU National Natural Science Foundation of China [72203210]; Young Elite
   Sci-entists Sponsorship Program by CAST [2022QNRC001]; Fundamental
   Research Funds for the Central Universities [buctrc202313]
FX Acknowledgements The authors are grateful for financial support from the
   National Natural Science Foundation of China (No.72203210) , Young Elite
   Sci-entists Sponsorship Program by CAST (No.2022QNRC001) and the
   Fundamental Research Funds for the Central Universities (buctrc202313) .
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NR 47
TC 16
Z9 16
U1 18
U2 48
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 0195-9255
EI 1873-6432
J9 ENVIRON IMPACT ASSES
JI Environ. Impact Assess. Rev.
PD SEP
PY 2023
VL 102
AR 107186
DI 10.1016/j.eiar.2023.107186
EA JUN 2023
PG 11
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA M9TS5
UT WOS:001033571800001
DA 2025-04-22
ER

PT J
AU Rizzo, A
AF Rizzo, Agatino
TI Megaprojects and the limits of 'green resilience' in the global South:
   Two cases from Malaysia and Qatar
SO URBAN STUDIES
LA English
DT Article
DE global South; green resilience; green urbanism; megaprojects
ID URBAN; CITY; INFRASTRUCTURE; GLOBALIZATION; URBANIZATION; POLICY; WORLD
AB The emergence of the climate change discourse in urban planning emphasises resilience as a key concept to deal with issues such as climate mitigation and adaptation, and urban health. What we have termed in this article 'green resilience', the coalescence of technological solutions and resilience thinking to solve cities' ecological issues, is constantly gaining traction in urban planning research. However, green resilience often fails to take into account the socio-political and spatial processes that pertain to the exploitation of land for urban development particularly in the global South. Based on our latest research on two urban megaprojects, in Johor-Singapore (Malaysia) and Doha (Qatar), in this article we build a critique of green resilience and urbanism by leveraging research in the fields of environmental humanities and urban planning.
C1 [Rizzo, Agatino] Lulea Univ Technol, Architecture Res Grp, S-97187 Lulea, Sweden.
C3 Lulea University of Technology
RP Rizzo, A (corresponding author), Lulea Univ Technol, Architecture Res Grp, S-97187 Lulea, Sweden.
EM agatino.rizzo@ltu.se
RI Rizzo, Agatino/D-4708-2014
OI Rizzo, Agatino/0000-0001-6831-8857
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NR 60
TC 28
Z9 30
U1 7
U2 47
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD MAY
PY 2020
VL 57
IS 7
SI SI
BP 1520
EP 1535
DI 10.1177/0042098018812009
PG 16
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA LN4MU
UT WOS:000532914400010
DA 2025-04-22
ER

PT J
AU Dehghani, A
   Alidadi, M
   Sharifi, A
AF Dehghani, Alireza
   Alidadi, Mehdi
   Sharifi, Ayyoob
TI Compact Development Policy and Urban Resilience: A Critical Review
SO SUSTAINABILITY
LA English
DT Review
DE sustainable development; urban resilience; compact city; urban planning;
   urban density; climate change
ID TEHRAN METROPOLITAN REGION; MIXED LAND-USE; DEVELOPMENT PATTERNS;
   CLIMATE-CHANGE; HEAT-ISLAND; SUSTAINABILITY; CITY; DENSITY; FORM; CITIES
AB Sustainable development and urban resilience are dominant urban planning paradigms that have become buzzwords in urban planning and policy domains over the past 2-3 decades. While these two paradigms have been analyzed and scrutinized in different studies, the interconnection between them in policy realms is understudied. Compact development policy is expected to contribute to a variety of sustainability goals. However, these goals' alignment with the principles and goals of urban resilience is under question. This research tries to shed some light on this issue. A critical review method is employed to understand how compactness as a sustainable urban development policy relates to different principles and dimensions of urban resilience. First, the conceptual and theoretical relationship between urban resilience and compact city is established. Next, the resulting framework is used to critically analyze 124 articles to understand how the compact city policy relates to urban resilience from different dimensions and principles. Densification and intensification, mixed land use and diversity, and spatial connectivity and public transportation are identified as principles of the compact city. Finally, the interconnection between compact city policy and urban resilience dimensions and principles is explored and assessed through examining the selected literature. The results of the review show some alignments between compact city policy outcomes and urban resilience. However, the level of alignment may vary depending on the context, scale, or dimension. In other words, while compact city in one scale/dimension can increase urban resilience to a specific adverse event or stressor, it might increase vulnerability to others in another scale/dimension. From the policy perspective, compact development policy and urban resilience principles should clearly be defined a priori to reach favorable outcomes.
C1 [Dehghani, Alireza] Shiraz Univ, Fac Architecture, Shiraz 7194684334, Iran.
   [Alidadi, Mehdi] Hiroshima Univ, Grad Sch Adv Sci & Engn, Higashihiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Ctr Peaceful & Sustainable Future CEPEAS, IDEC Inst, Higashihiroshima 7398529, Japan.
C3 Shiraz University; Hiroshima University; Hiroshima University
RP Sharifi, A (corresponding author), Hiroshima Univ, Ctr Peaceful & Sustainable Future CEPEAS, IDEC Inst, Higashihiroshima 7398529, Japan.
EM sharifi@hiroshima-u.ac.jp
RI Alidadi, Mehdi/HJZ-0235-2023; Dehghani, Alireza/JGM-7136-2023; Sharifi,
   Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613; Dehghani,
   Alireza/0000-0001-9584-7228; Alidadi, Mehdi/0000-0001-5183-7829
FU JSPS KAKENHI [22K04493]; Toyota Foundation [D21-R-0040]
FX Ayyoob Sharifi and Mehdi Alidadi were supported by JSPS KAKENHI Grant
   Number 22K04493 and a grant from Toyota Foundation (Grant No.
   D21-R-0040).
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NR 150
TC 25
Z9 26
U1 9
U2 69
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2022
VL 14
IS 19
AR 11798
DI 10.3390/su141911798
PG 19
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 5G9FN
UT WOS:000867295900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Hu, JH
   Yang, MS
   Zhen, YZ
AF Hu, Junhong
   Yang, Mingshu
   Zhen, Yunzhu
TI A Review of Resilience Assessment and Recovery Strategies of Urban Rail
   Transit Networks
SO SUSTAINABILITY
LA English
DT Review
DE urban rail transit network; complex network theory; resilience
   assessment; recovery strategy; sustainability
ID TRANSPORT NETWORKS; INFRASTRUCTURE; OPTIMIZATION; FRAMEWORK; DESIGN;
   SUBWAY; METRO
AB Rail transit is an important means of ensuring the sustainable development of urban transportation, but disturbance events caused by natural disasters, human factors, and other influences can lead to disruptions in rail transit operations. To cope with the impact of disturbance events on urban rail transit networks, and to explore the changes in rail transit network performance and recovery strategies under the influence of disturbance events from a resilience perspective, this paper overviews the existing research on resilience assessment and recovery strategies for urban rail transit networks. Firstly, the characteristics of the urban rail transit network and the model construction method are analyzed. Secondly, on the basis of combing the connotation development of system resilience, urban rail transit network resilience is defined, while the existing resilience metrics and assessment indexes are classified and summarized. Finally, the failure scenarios and recovery strategies of urban rail transportation network are deeply studied and discussed. The research results show that urban rail transit network resilience has been widely concerned by scholars, and certain results have been achieved in three aspects of resilience connotation, resilience assessment and recovery strategy. Nevertheless, further research is needed on these aspects. We propose future research directions that involve exploring modeling methods aligned with actual network topologies, developing unified indexes for resilience assessment and focusing on resilience assessment and recovery strategies under uncertain disturbance events. The research results can provide an important reference for the resilient operation and sustainable construction of urban rail transit.
C1 [Hu, Junhong; Yang, Mingshu; Zhen, Yunzhu] Nanjing Tech Univ, Sch Transportat Engn, Nanjing 211816, Peoples R China.
C3 Nanjing Tech University
RP Hu, JH (corresponding author), Nanjing Tech Univ, Sch Transportat Engn, Nanjing 211816, Peoples R China.
EM happyjunhong@163.com; yangmingshu@njtech.edu.cn; zyz21132006@163.com
OI YANG, Mingshu/0009-0001-2572-5249
FU National Natural Science Fund [51878349]; Postgraduate Research &
   Practice Innovation Program of Jiangsu Province, China [SJCX24_0495]
FX The research and publication of this article was funded by the National
   Natural Science Fund (Grant no. 51878349) and the Postgraduate Research
   & Practice Innovation Program of Jiangsu Province, China (Grant no.
   SJCX24_0495).
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NR 86
TC 8
Z9 8
U1 120
U2 156
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2024
VL 16
IS 15
AR 6390
DI 10.3390/su16156390
PG 16
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA C1H6D
UT WOS:001286944700001
OA gold
DA 2025-04-22
ER

PT J
AU Yu, SK
   Wang, RL
   Zhang, XJ
   Miao, Y
   Wang, CX
AF Yu, Shangkun
   Wang, Ruili
   Zhang, Xuejie
   Miao, Yi
   Wang, Chengxin
TI Spatiotemporal Evolution of Urban Shrinkage and Its Impact on Urban
   Resilience in Three Provinces of Northeast China
SO LAND
LA English
DT Article
DE urban shrinkage; urban resilience; mediating effect; smart shrinkage;
   three provinces of Northeast China
ID CITIES
AB Currently, Chinese cities are experiencing both overall growth and localized shrinkage. Therefore, it becomes crucial to quantify urban shrinkage and explore the transformation and sustainable development of shrinking cities from the perspective of urban resilience. This study focuses on the three provinces of Northeast China, which are representative areas of urban shrinkage, as its research subjects. Employing the analytic hierarchy process, a comprehensive evaluation system for urban shrinkage is constructed based on three dimensions: population, economy, and space. Furthermore, urban resilience is scientifically measured from four aspects: economy, society, ecology, and infrastructure. The study analyzes the spatiotemporal evolution characteristics of urban shrinkage and urban resilience in the three northeastern provinces from 2012 to 2018. It also examines the impact of urban shrinkage on urban resilience through regression analysis and mediation models. The results indicate the following: (1) Half of the cities in the three northeastern provinces experienced shrinkage, although the extent of shrinkage decreased with the implementation of the Northeast China revitalization strategy. Population-related shrinkage was the most extensive and continued to expand, while economy-related shrinkage was the most severe, and space-related shrinkage was the least severe. (2) The resilience of shrinking cities was lower than the average level. Population-shrinking cities and economy-shrinking cities exhibited low levels of economic resilience, and the gap between them continued to widen. Space-shrinking cities generally had low infrastructure resilience. (3) The urban shrinkage index had a significant positive impact on the urban resilience index, mediated through intermediary variables, such as innovation capability and cultural development. Notably, both the direct and indirect effects of innovation capability were the greatest. Population-related shrinkage had the largest impact on urban resilience, while more intermediary variables of economy-related shrinkage passed the significance test.
C1 [Yu, Shangkun; Wang, Ruili; Zhang, Xuejie; Miao, Yi; Wang, Chengxin] Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Peoples R China.
   [Yu, Shangkun; Wang, Ruili; Zhang, Xuejie; Miao, Yi; Wang, Chengxin] Univ Shandong, Collaborat Innovat Ctr Human Nat & Green Dev, Jinan 250358, Peoples R China.
C3 Shandong Normal University; Shandong University
RP Miao, Y; Wang, CX (corresponding author), Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Peoples R China.; Miao, Y; Wang, CX (corresponding author), Univ Shandong, Collaborat Innovat Ctr Human Nat & Green Dev, Jinan 250358, Peoples R China.
EM 621203@sdnu.edu.cn; 110105@sdnu.edu.cn
RI Zhang, Xuejie/B-3433-2018
OI Miao, Yi/0000-0003-3829-9557
FU Major Project of Key Research Bases for Humanities and Social Science by
   the Ministry of Education of China [22JJD790015]; Key Research and
   Development Plan of Shandong Province (Soft Science Project)
   [2022RKY01014]; National Natural Science Foundation of China Youth
   Science Foundation Project [42201182]
FX This research was funded by the Major Project of Key Research Bases for
   Humanities and Social Sciences Funded by the Ministry of Education of
   China (Grant No. 22JJD790015), the Key Research and Development Plan of
   Shandong Province (Soft Science Project) (Grant No. 2022RKY01014) and
   the National Natural Science Foundation of China Youth Science
   Foundation Project (Grant No. 42201182).
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NR 57
TC 9
Z9 9
U1 25
U2 145
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD JUL
PY 2023
VL 12
IS 7
AR 1412
DI 10.3390/land12071412
PG 22
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA N7HN7
UT WOS:001038679300001
OA gold
DA 2025-04-22
ER

PT J
AU Qiao, D
   Shen, S
   Chen, JX
   Lu, WW
   Xu, C
   Su, MR
AF Qiao, Dan
   Shen, Shuo
   Chen, Jiaxuan
   Lu, Weiwei
   Xu, Chao
   Su, Meirong
TI Urban resilience assessment from the perspective of cross-media carbon
   metabolism
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Urban resilience; Carbon metabolism; Material flow analysis; Ecological
   network analysis
ID ECOLOGICAL NETWORK ANALYSIS; MATERIAL FLOW; CITIES; MODEL
AB With the accelerating pace of globalization, uncertainty and unknown risks within open and complex urban systems increase with the occurrence of problems such as the conflict between humans and natural land use, water scarcity, and the continuing loss of biodiversity. Thus, the improvement of urban resilience has emerged as an important issue in the context of global urbanization. However, a knowledge gap remains in its evaluation from the perspective of systematic resource/element metabolic processes. To understand the urban resilience response mechanism better and depict metabolic processes systematically, an urban resilience assessment framework of "robustness-adaptability-restorability-coordination" based on the cross-media carbon metabolism network model was established. Principles of material flow analysis and ecological network analysis were applied to examine the urban resilience of Guangzhou, China, from 2010 to 2020. Results showed the urban resilience level decreased from a carbon metabolism perspective during the study period. This was reflected in an overall decline in system robustness and restorability, relatively unchanged adaptability, and a non-beneficial coordination relationship. Recommendations such as regulating key sectors (e.g., agriculture and construction) were proposed to improve urban resilience. This research will bring a new insight into future urban resilience assessment and contribute the urban sustainable development.
C1 [Qiao, Dan; Chen, Jiaxuan; Lu, Weiwei] Qingdao Univ Sci & Technol, Coll Environm & Safety Engn, Qingdao 266042, Peoples R China.
   [Shen, Shuo] SunRui Marine Environm Engn Co Ltd, Qingdao 266101, Peoples R China.
   [Xu, Chao] Humboldt Univ, Inst Geog, D-12489 Berlin, Germany.
   [Su, Meirong] Guangdong Univ Technol, Sch Ecol Environm & Resources, Guangzhou 510006, Peoples R China.
C3 Qingdao University of Science & Technology; Humboldt University of
   Berlin; Guangdong University of Technology
RP Lu, WW (corresponding author), Qingdao Univ Sci & Technol, Coll Environm & Safety Engn, Qingdao 266042, Peoples R China.
EM lww0903@qust.edu.cn
RI Xu, Chao/GNP-5974-2022; wang, yunkun/IXD-1410-2023; Su,
   Meirong/A-7493-2012
FU National Science Foundation of China [2022YFC3202201]; Natural Science
   Foundation of Shandong Province [72122004, 52170178];  [ZR2021QE294]
FX <B>Acknowledgments</B> This work was financially supported by the
   National Key Research Program of China (Grant Nos. 2022YFF1301202 andr
   2022YFC3202201) , the National Science Foundation of China (Nos.
   72122004 and 52170178) , and the Natural Science Foundation of Shandong
   Province (No. ZR2021QE294) .
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NR 54
TC 5
Z9 5
U1 63
U2 130
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0959-6526
EI 1879-1786
J9 J CLEAN PROD
JI J. Clean Prod.
PD MAR 15
PY 2024
VL 445
AR 141383
DI 10.1016/j.jclepro.2024.141383
EA FEB 2024
PG 10
WC Green & Sustainable Science & Technology; Engineering, Environmental;
   Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering; Environmental Sciences
   & Ecology
GA MX4Y5
UT WOS:001196934400001
DA 2025-04-22
ER

PT J
AU Parizi, SM
   Taleai, M
   Sharifi, A
AF Parizi, Sedigheh Meimandi
   Taleai, Mohammad
   Sharifi, Ayyoob
TI A spatial evaluation framework of urban physical resilience considering
   different phases of disaster risk management
SO NATURAL HAZARDS
LA English
DT Article
DE ISM-ANP model; Natural hazards; Local climate zones; Urban resilience;
   Physical resilience; Earthquake
ID LOCAL CLIMATE ZONES; NEW-ZEALAND; FORM; CITIES; SPACE; AREAS;
   COMMUNITIES; SUITABILITY; EARTHQUAKE; MITIGATION
AB The physical structure of urban settlements has become increasingly vulnerable to hazards following the growing trends of natural hazards, including earthquakes. The concept of resilience has gained momentum to facilitate better planning and response to such hazards. This research seeks to develop a conceptual spatial framework considering different phases of disaster risk management to evaluate urban physical resilience. Twenty indicators that define urban structure are identified and included in an Interpretive Structural Modeling-Analytic Network Process (ISM-ANP) hybrid model for analysis. The model and the indicator weights are adjusted using statistical and optimization techniques. District 4 of Tehran has been selected as the study area, and the proposed evaluation framework is applied to several zones with different physical urban structures. According to the results, the most important indicators of urban structure are the Robustness of Buildings, Street Width, Building Density, and Aspect Ratio. Sensitivity analysis and scenario-making are performed to explore the desired state of urban physical resilience for each zone. The results of the case study indicate moderate levels of urban physical resilience. The study provides more clear and practical insights into the concept of resilience to help urban planners and decision-makers improve urban physical resilience.
C1 [Parizi, Sedigheh Meimandi] Sirjan Univ Technol, Civil Engn Dept, Sirjan, Iran.
   [Taleai, Mohammad] K N Toosi Univ Technol, Fac Geomat, GIS Dept, Tehran, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Hiroshima, Japan.
   [Sharifi, Ayyoob] Lebanese Amer Univ, Sch Architecture & Design, Beirut, Lebanon.
C3 K. N. Toosi University of Technology; Hiroshima University; Lebanese
   American University
RP Parizi, SM (corresponding author), Sirjan Univ Technol, Civil Engn Dept, Sirjan, Iran.; Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, Hiroshima, Japan.; Sharifi, A (corresponding author), Lebanese Amer Univ, Sch Architecture & Design, Beirut, Lebanon.
EM smparizi@gmail.com; sharifi@hiroshima-u.ac.jp
RI Taleai, Mohammad/Q-6109-2019; Sharifi, Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613
FU Hiroshima University
FX No Statement Available
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NR 98
TC 3
Z9 3
U1 16
U2 25
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD NOV
PY 2024
VL 120
IS 14
BP 13041
EP 13076
DI 10.1007/s11069-024-06703-0
EA JUN 2024
PG 36
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA N8Y2Z
UT WOS:001247275900002
OA hybrid
DA 2025-04-22
ER

PT J
AU Shamsipour, A
   Jahanshahi, S
   Mousavi, SS
   Shoja, F
   Golenji, RA
   Tayebi, S
   Alavi, SA
   Sharifi, A
AF Shamsipour, Aliakbar
   Jahanshahi, Shayesteh
   Mousavi, Seyed Sajad
   Shoja, Faeze
   Golenji, Roghayeh Ansari
   Tayebi, Safiyeh
   Alavi, Seyed Ali
   Sharifi, Ayyoob
TI Assessing and mapping urban ecological resilience using the loss-gain
   approach: A case study of Tehran, Iran
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Ecological resilience; Spatial assessment framework; Urban Ecological
   Resilience Mapping (UERM)
ID LAND-SURFACE TEMPERATURE; SYSTEM; FRAMEWORK
AB In the face of growing urban populations and their increasing demand for land and natural resources, the assessment of urban ecological resilience has emerged as an imperative aspect of sustainable urban governance. This study introduces an assessment framework with the potential to substantially augment urban management practices. It is focused on the formulation of a comprehensive framework for assessing ecological resilience, which is applied to Tehran, the capital of Iran. Our proposed Urban Ecological Resilience Mapping (UERM) framework adopts the Loss -Gain approach, encompassing both environmental risks and capacities related to Tehran's urban landscape. this framework incorporates an array of seven distinct indicators and twenty-five variables meticulously designed to gage the mettle of ecological resilience. The findings underscore that Tehran's central districts exhibit notably low ecological resilience, owing to high population density and the concentration of deteriorated and unstable areas. The localized nature of our assessment framework and its inherent ability to discern spatial dynamics and contributing factors to ecological resilience position it as an indispensable tool for informed urban planning and management decisions. the UERM framework not only facilitates the identification of areas requiring targeted interventions but also empowers urban stakeholders to foster a more resilient and sustainable urban landscape.
C1 [Shamsipour, Aliakbar; Shoja, Faeze; Golenji, Roghayeh Ansari] Univ Tehran, Fac Geog, Dept Phys Geog, Tehran, Iran.
   [Jahanshahi, Shayesteh] Univ Tehran, Fac Nat Resources, Dept Wood & Paper Ind, Tehran, Iran.
   [Mousavi, Seyed Sajad] Municipal Tehran, Dept Environm & sustainable Dev, Tehran, Iran.
   [Tayebi, Safiyeh] Rutgers State Univ, Dept Geog, New Brunswick, NJ 08854 USA.
   [Alavi, Seyed Ali] Katholieke Univ Leuven, Dept Geog, Leuven, Belgium.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashi Hiroshima City, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashi Hiroshima City, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Tehran Sewerage Co, Tehran 158755696, Iran.
C3 University of Tehran; University of Tehran; Rutgers University System;
   Rutgers University New Brunswick; KU Leuven; Hiroshima University;
   Hiroshima University
RP Tayebi, S (corresponding author), Rutgers State Univ, Dept Geog, New Brunswick, NJ 08854 USA.
EM safiyeh.tayebi@rutgers.edu
RI Shamsipour, Aliakbar/AAE-6605-2020; Sharifi, Ayyoob/M-7584-2013; Tayebi,
   Safiyeh/KHZ-8521-2024
OI Sharifi, Ayyoob/0000-0002-8983-8613; Tayebi, Safiyeh/0000-0003-2803-9989
FU Department of Environment and Sustainable Development of Tehran
   Municipality
FX The authors of this paper would like to express their gratitude to the
   Department of Environment and Sustainable Development of Tehran
   Municipality for their financial support in conducting this research.
   They would also like to acknowledge the Tehran Municipality ICT
   Organization for providing the necessary research data.
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NR 94
TC 18
Z9 18
U1 134
U2 199
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD APR
PY 2024
VL 103
AR 105252
DI 10.1016/j.scs.2024.105252
EA FEB 2024
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA LR1E4
UT WOS:001188429400001
OA hybrid, Green Published
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Serafeim, AV
   Kokosalakis, G
   Deidda, R
   Fourniotis, NT
   Langousis, A
AF Serafeim, Athanasios, V
   Kokosalakis, George
   Deidda, Roberto
   Fourniotis, Nikolaos Th
   Langousis, Andreas
TI Combining Statistical Clustering with Hydraulic Modeling for Resilient
   Reduction of Water Losses in Water Distribution Networks: Large Scale
   Application Study in the City of Patras in Western Greece
SO WATER
LA English
DT Article
DE statistical clustering; water networks partitioning; water distribution
   networks; water losses; leakage management; hydraulic resilience
ID DISTRICT METERED AREAS; SUPPLY NETWORK; LEAKAGE MINIMIZATION;
   DISTRIBUTION-SYSTEMS; PRESSURE CONTROL; OPTIMAL-DESIGN; TOTAL-COST;
   RELIABILITY; PERFORMANCE; MANAGEMENT
AB Partitioning of water distribution networks (WDNs) into pressure management areas (PMAs) or district metered areas (DMAs) is the most widely applied method for the efficient management and reduction of real losses (leakages). Although PMA partitioning is a crucial task, most clustering methods are strongly affected by user-defined weighting factors that heavily affect the final outcome while being associated with heavy computational loads, leading to time-consuming applications. In this work, we use hierarchical clustering enriched with topological proximity constraints to develop an approach for the optimal sizing and allocation of PMAs (or DMAs) in water distribution networks that seeks to minimize water leakages while maintaining a sufficient level of hydraulic resilience. To quantify the latter, we introduce a resilience index that accounts for water leakages and nodal heads in pressure-driven and mixed pressure-demand ways, respectively. The strong points of the introduced approach are that (1) it uses the original pipeline grid as a connectivity matrix in order to avoid unrealistic clustering outcomes; (2) it is statistically rigorous and user unbiased as it is based solely on statistical metrics, thus not relying on and/or being affected by user-defined weighting factors; and (3) it is easy and fast to implement, requiring minimal processing power. The effectiveness of the developed methodology is tested in a large-scale application study in four PMAs (namely Boud, Kentro, Panahaiki, and Prosfygika) of the city of Patras in western Greece, which cover the entire city center and the most important part of the urban fabric of Patras, consisting of approximately 202 km of pipeline and serving approximately 58,000 consumers. Due to its simplicity, minimal computational requirements, and objective selection criteria, the suggested clustering approach for WDN partitioning can serve as an important step toward developing useful decision-making frameworks for water experts and officials, allowing for improved management and reduction of real water losses.
C1 [Serafeim, Athanasios, V; Kokosalakis, George; Langousis, Andreas] Univ Patras, Dept Civil Engn, Patras 26504, Greece.
   [Kokosalakis, George] Amer Coll Greece, Sch Business & Econ Deree, Dept Maritime Transport & Logist, Athens 15342, Greece.
   [Deidda, Roberto] Univ Cagliari, Dipartimento Ingn Civile Ambientale & Architettur, I-09124 Cagliari, Italy.
   [Fourniotis, Nikolaos Th] Univ Peloponnese, Dept Civil Engn, Patras 26334, Greece.
C3 University of Patras; University of Cagliari
RP Langousis, A (corresponding author), Univ Patras, Dept Civil Engn, Patras 26504, Greece.
EM andlag@alum.mit.edu
RI FOURNIOTIS, NIKOLAOS/AAM-1964-2021; SERAFEIM, ATHANASIOS/LLK-5744-2024;
   DEIDDA, ROBERTO/J-2054-2017
OI SERAFEIM, ATHANASIOS/0000-0003-0207-0881; DEIDDA,
   ROBERTO/0000-0001-5469-0199; Langousis, Andreas/0000-0002-0643-2520;
   Kokosalakis, George/0000-0003-4161-7376; Fourniotis,
   Nikolaos/0000-0001-9622-9712
FU Hellenic Foundation for Research and Innovation [1162]
FX The research project was supported by the Hellenic Foundation for
   Research and Innovation (H.F.R.I.) under the "1st Call for H.F.R.I.
   Research Projects to support Faculty Members & Researchers and the
   procurement of high-cost research equipment grant" (Project Number:
   1162).
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NR 104
TC 2
Z9 2
U1 0
U2 13
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD NOV
PY 2022
VL 14
IS 21
AR 3493
DI 10.3390/w14213493
PG 18
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA 6F4IH
UT WOS:000884026200001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Nguyen, TMP
   Davidson, K
AF Nguyen, Thi Minh Phuong
   Davidson, Kathryn
TI Institutionalising 100 Resilient Cities governance experiments in cities
   with no metropolitan government: A case study of Living Melbourne
   (Resilient Melbourne), Australia
SO CITIES
LA English
DT Article
DE Sustainability transitions; Governance experiments; City networks;
   Metropolitan governance; Institutionalisation
ID SUSTAINABILITY TRANSITIONS; CLIMATE-CHANGE; URBAN; POLICY; INITIATIVES;
   ADAPTATION; NETWORKS; FUTURE
AB This paper investigates the institutionalisation of 100 Resilient Cities [100RC] governance experiments in cities that lack a metropolitan government. In examining this phenomenon, the research develops a novel analytical framework that builds upon the 'beyond experiments' literature and two conceptual foundations: the role of urban governance context, particularly cities lacking a metropolitan government, and the role of transnational city networks. The framework is then applied to review the case study of Living Melbourne (Resilient Melbourne) - a 100RC governance experiment implemented in Melbourne, Australia. Key findings show that the institutionalisation of 100RC governance experiments occurs in cities lacking a metropolitan government by generating new changes in governance, particularly around two key domains: ways of thinking and ways of organising. The study also reveals that most changes generated via institutionalisation are incremental and reformistic, rarely transformational adjustments that can directly bring about urban sustainability transitions. In addition, this research suggests that the extent of institutionalisation is influenced by three key factors: (1) existing metropolitan governance conditions, (2) internal conditions of governance experiments and (3) city networks (only to a limited extent).
C1 [Nguyen, Thi Minh Phuong; Davidson, Kathryn] Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Australia.
   [Nguyen, Thi Minh Phuong] Monash Univ, Sch Social Sci, Melbourne, Australia.
C3 University of Melbourne; Monash University
RP Nguyen, TMP (corresponding author), Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Australia.
EM thiminhphuon@student.unimelb.edu.au; davidson.k@unimelb.edu.au
RI ; Davidson, Kathryn/F-3769-2013
OI Nguyen, Thi Minh Phuong/0000-0003-3590-8695; Davidson,
   Kathryn/0000-0003-3521-3535
FU University of Melbourne
FX This research was supported by the University of Melbourne's Graduate
   Research Scholarship 2019. Any opinions, findings, and conclusions
   expressed in this material are those of the authors and do not
   necessarily reflect the views of the University of Melbourne.
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NR 78
TC 2
Z9 2
U1 19
U2 36
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD OCT
PY 2023
VL 141
AR 104500
DI 10.1016/j.cities.2023.104500
EA JUL 2023
PG 14
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA O8CC4
UT WOS:001046022300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Jiang, YL
   Arnold, H
AF Jiang, Yuliang
   Arnold, Hadley
TI Traditional Water Systems Informing Sustainable Contemporary Drylands
   Design: Documentation, Extraction, and Deployment
SO SUSTAINABILITY
LA English
DT Article
DE landscape architecture; climate change; research-by-design; atlas;
   social practices; resilience; adaptation; indigenous knowledge;
   infrastructure
AB Climate change has become a pressing issue in cities around the globe, especially those in dry regions. Despite these cities' cultural vitality, water shortages are among the central problems impacting society. The aim of this study was to recapture, record, and rethink the world's traditional water systems with two objectives. The first objective was to scrutinize the mechanics, social functions, and spatial organization of these systems. The second objective was to develop novel adaptations of these old technologies for new discourses and apply them to the water-stressed urban landscapes of Los Angeles. The intent was to build a greater capacity for resilient landscape and infrastructure design in a post-carbon world by constructing a more robust lexicon of pre-carbon drylands design. Notable similarities surfaced among the systems despite their distinct cultural backgrounds and historical origins, indicating commonalities across the evolution of water infrastructure in human history. The output of this study established the basis for a systematic drylands atlas as a resource for research-informed design of the built environment. The outcomes make fundamental water-centric climate change adaptation strategies accessible through visual communication techniques for professional practices and pedagogic purposes.
C1 [Jiang, Yuliang] Univ Southern Calif, Sch Architecture, Landscape Justice Initiat, 850 Bloom Walk, Los Angeles, CA 90089 USA.
   [Arnold, Hadley] Arid Lands Inst, 525 South Hewitt St, Los Angeles, CA 90013 USA.
   [Arnold, Hadley] DiviningLAB, 525 South Hewitt St, Los Angeles, CA 90013 USA.
C3 University of Southern California
RP Jiang, YL (corresponding author), Univ Southern Calif, Sch Architecture, Landscape Justice Initiat, 850 Bloom Walk, Los Angeles, CA 90089 USA.
EM yuliangj@usc.edu
RI Jiang, Yuliang/HLX-4528-2023
OI Jiang, Yuliang/0000-0003-2219-809X
FU Gesundheit Family/USC Architectural Guild Graduate Traveling Fellowship
   (2019); William and Neoma Timme Travelling Fellowship (2019); USC School
   of Architecture; Wright-Ingraham Foundation
FX The Gesundheit Family/USC Architectural Guild Graduate Traveling
   Fellowship (2019) and William and Neoma Timme Travelling Fellowship
   (2019) provided funding for Yuliang Jiang's and Yihe Wang's field
   research, respectively. Funding for the printed and digital outputs came
   from the USC School of Architecture and the Richard T. Parker Grant
   (2020) to the Arid Lands Institute from the Wright-Ingraham Foundation.
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NR 48
TC 1
Z9 1
U1 0
U2 2
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2023
VL 15
IS 14
AR 10966
DI 10.3390/su151410966
PG 20
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA N7VU8
UT WOS:001039053200001
OA gold
DA 2025-04-22
ER

PT J
AU Guo, ZH
   Li, ZJ
   Lu, C
   She, JJ
   Zhou, YL
AF Guo, Zihao
   Li, Zhijian
   Lu, Cong
   She, Jianjun
   Zhou, Yilun
TI Spatio-temporal evolution of resilience: The case of the
   Chengdu-Chongqing urban agglomeration in China
SO CITIES
LA English
DT Article
DE Complex adaptive system; Resilience evaluation; Urban agglomeration;
   Bayesian network; Spatio-temporal evolution; China
ID COMMUNITY RESILIENCE; HAZARDS
AB Cities, as complex systems, are increasingly vulnerable to a range of natural hazards and public safety risks, exacerbated by the rapid pace of global urbanization. Understanding these complex urban systems and developing sustainable development plans is crucial for policymakers, necessitating a precise evaluation of urban resilience. This study presents an innovative, data-driven approach to analyze urban resilience, integrating the Functional Resonance Analysis Method (FRAM), Modified K-shell (MKS) decomposition algorithm, and Bayesian Networks (BNs). Focusing on the Chengdu-Chongqing urban agglomeration, we utilize spatio-temporal analysis to uncover resilience evolution and patterns. The findings indicate: (1) The distribution of city resilience in the Chengdu-Chongqing urban agglomeration exhibits a remarkable two-headed structure; (2) a diminishing resilience variance among urban agglomerations over time, suggesting an alpha-convergence trend; (3) a negative correlation in spatial correlation analysis for the Chengdu-Chongqing urban agglomeration; (4) After considering the spatial correlation, the Chengdu-Chongqing urban agglomeration shows an obvious beta-convergence trend. These insights suggest urban planners should prioritize equitable resource distribution and adopt synergistic and integrated development strategies to mitigate negative spillovers and ensure balanced growth, aiding the development of core cities in a way that benefits their surrounding areas.
C1 [Guo, Zihao; Li, Zhijian; Lu, Cong; She, Jianjun] Nanjing Tech Univ, Coll Civil Engn, Nanjing 211816, Peoples R China.
   [Guo, Zihao; She, Jianjun] Nanjing Tech Univ, Smart City Res Ctr, Nanjing 211816, Peoples R China.
   [Zhou, Yilun] Nanjing China Construct Eighth Engn Div Intelligen, Nanjing 210022, Peoples R China.
C3 Nanjing Tech University; Nanjing Tech University
RP Guo, ZH; She, JJ (corresponding author), Nanjing Tech Univ, Coll Civil Engn, Nanjing 211816, Peoples R China.; Guo, ZH; She, JJ (corresponding author), Nanjing Tech Univ, Smart City Res Ctr, Nanjing 211816, Peoples R China.
EM guozihao@njtech.edu.cn; shejj1016@njtech.edu.cn
RI Li, Zhijian/MGU-6922-2025; guo, zihao/JPA-0767-2023
OI Zihao, Guo/0009-0000-2358-2339; Li, Zhijian/0009-0008-4489-6319
FU Special Project of the Ministry of Housing and Urban-Rural Development
   of The People's Republic of China [ZLAQ (2019) AQ-4]
FX This work was supported by the Special Project of the Ministry of
   Housing and Urban-Rural Development of The People's Republic of China
   (grant number: ZLAQ (2019) AQ-4).
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NR 80
TC 6
Z9 6
U1 85
U2 144
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD OCT
PY 2024
VL 153
AR 105226
DI 10.1016/j.cities.2024.105226
EA JUL 2024
PG 18
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA ZI4D7
UT WOS:001274644900001
DA 2025-04-22
ER

PT J
AU Zhang, XK
   Tang, TS
   Mo, ER
AF Zhang, Xiekui
   Tang, Tongsheng
   Mo, Erhang
TI Can urban e-commerce transformation improve economic resilience? a
   quasi-natural experiment from China
SO PLOS ONE
LA English
DT Article
ID GROWTH
AB The impact of urban e-commerce transformation on economic resilience can help a country improve its ability to resist risks and seize the initiative in economic development. This study examines the impact of the construction of the National E-commerce Demonstration City (NEDC) on economic resilience using the staggered different-in-differences approach using a sample of 282 Chinese cities from 2006 to 2020. The results show NEDC construction significantly strengthens urban economic resilience. This result remains robust after undergoing placebo test, exclusion of other policies interference, and examining endogeneity. Furthermore, noteworthy heterogeneity exists in the effect of NEDC construction on urban economic resilience, particularly in eastern, developed regions, and cities with high Internet penetration. The mechanisms analysis indicates that NEDC construction enhances urban economic resilience by expanding the scale of urban employment and enhancing market dynamism. Overall, this study refines the causal relationship between e-commerce development and urban economic resilience, providing empirical evidence and policy insights for China and other countries to enhance urban economic resilience and stabilize macroeconomic fluctuations.
C1 [Zhang, Xiekui; Mo, Erhang] Guangxi Univ, Sch Econ, Nanning, Peoples R China.
   [Zhang, Xiekui; Mo, Erhang] Guangxi Univ, China ASEAN Inst Financial Cooperat, Nanning, Peoples R China.
   [Zhang, Xiekui; Tang, Tongsheng] South China Univ Technol, Sch Business Adm, Guangzhou, Peoples R China.
   [Zhang, Xiekui] Res Base Humanity Spirit & Social Dev Revolutionar, Baise, Guangxi, Peoples R China.
C3 Guangxi University; Guangxi University; South China University of
   Technology
RP Mo, ER (corresponding author), Guangxi Univ, Sch Econ, Nanning, Peoples R China.; Mo, ER (corresponding author), Guangxi Univ, China ASEAN Inst Financial Cooperat, Nanning, Peoples R China.
EM 2230301045@st.gxu.edu.cn
FU Key Research Base of Humanities and Social Sciences of Universities in
   Guangxi Zhuang Autonomous Region "The Research Base for Humanity Spirit
   and Social Development of Revolutionary areas in Guizhou, Yunnan,
   Guangxi and Their Border Areas" [24DQGBZB03]
FX This research was funded by the Key Research Base of Humanities and
   Social Sciences of Universities in Guangxi Zhuang Autonomous Region "The
   Research Base for Humanity Spirit and Social Development of
   Revolutionary areas in Guizhou, Yunnan, Guangxi and Their Border Areas"
   (Grant NO.24DQGBZB03). The funders had no role in study design, data
   collection and analysis, decision to publish, or preparation of the
   manuscript.
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NR 72
TC 1
Z9 1
U1 27
U2 51
PU PUBLIC LIBRARY SCIENCE
PI SAN FRANCISCO
PA 1160 BATTERY STREET, STE 100, SAN FRANCISCO, CA 94111 USA
SN 1932-6203
J9 PLOS ONE
JI PLoS One
PD MAY 31
PY 2024
VL 19
IS 5
AR e0304014
DI 10.1371/journal.pone.0304014
PG 21
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA SV1B9
UT WOS:001237119600054
PM 38820417
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Dhar, TK
   Khirfan, L
AF Dhar, Tapan K.
   Khirfan, Luna
TI A multi-scale and multi-dimensional framework for enhancing the
   resilience of urban form to climate change
SO URBAN CLIMATE
LA English
DT Article
DE Climate change adaptation; Resilience; Urban form and design
ID CHANGE ADAPTATION; MORPHOLOGY; LESSONS; CITIES; DESIGN; BACK
AB Currently, both the planning and climate change literature highlight the concept of resilience to facilitate long-term adaptation strategies. Yet, decades before the onset of climate change science, uncertainty was dealt with in the urban planning and design literature since the latter half of the 20th century through various notions analogous to resilience. Through a review of these notions that presently remain isolated from the contemporary mainstream resilience and climate change discourses, this paper proposes an urban morphological theoretical framework that establishes theoretical and empirical links between urban form on the one hand, and climate change adaptation and resilience on the other. With urban morphology as its underpinning, the proposed theoretical framework identifies a set of variables that could potentially influence the resilience of urban form, hence, are proposed to measure its resilience to climate change. These variables underscore urban form's physical, spatial, and functional characteristics and their changes over time. (C) 2016 Elsevier B.V. All rights reserved.
C1 [Dhar, Tapan K.; Khirfan, Luna] Univ Waterloo, 200 Univ Ave West, Waterloo, ON N2L 3G1, Canada.
C3 University of Waterloo
RP Dhar, TK (corresponding author), Univ Waterloo, 200 Univ Ave West, Waterloo, ON N2L 3G1, Canada.
EM tkdhar@uwaterloo.ca; lkhirfan@uwaterloo.ca
RI Khirfan, Luna/AAU-3891-2020
OI Khirfan, Luna/0000-0003-4978-7521
FU Partnership for Canada-Caribbean Climate Change Adaptation (ParCA)
   [106372-006]; Academy of Finland (AKA) [106372] Funding Source: Academy
   of Finland (AKA)
FX This work was supported by the Partnership for Canada-Caribbean Climate
   Change Adaptation (ParCA) (106372-006), (http://parca.uwaterloo.ca/).
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NR 90
TC 82
Z9 91
U1 26
U2 214
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD JAN
PY 2017
VL 19
BP 72
EP 91
DI 10.1016/j.uclim.2016.12.004
PG 20
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA FF7HX
UT WOS:000409188200005
DA 2025-04-22
ER

PT J
AU Zhang, JM
   Wang, T
   Goh, YM
   He, PM
   Hua, L
AF Zhang, Jiaming
   Wang, Tao
   Goh, Yang Miang
   He, Peiming
   Hua, Lei
TI The effects of long-term policies on urban resilience: A dynamic
   assessment framework
SO CITIES
LA English
DT Article
DE Urban resilience; Resilience policy effects; Urban sustainable
   development; System dynamics; Text analysis; Environment carrying
   capacity theory
ID CLIMATE-CHANGE; REAL OPTIONS; SYSTEMS; CITY; DISASTERS; MODEL; RISK
AB With the increasing number of risk events derived from complex interactions among climate, environmental and socioeconomic dimensions of urban systems, it is imperative for cities' local governments to enhance urban resilience to cope with these complex risks. However, due to the inherent complexity and interconnectedness of urban systems, policymakers face challenges in assessing the impact of urban resilience policies and determining the most effective approach. With the constant flow of resources, capital, and information, it can be difficult to identify the most appropriate policy set to optimize urban resilience. Therefore, this paper proposes a multimethod model based on a composite index approach and system dynamics to assess the effects of resilience policies, which integrates the essential components of the environmental, land and natural resources, social and economic sectors in the urban system. In addition, text analysis is used to empirically analyze the policy adoption patterns of local governments of cities. The results indicate that policies related to culture, education, medical and health service can significantly enhance the resilience of the entire urban system, followed by environment policies such as reducing water demand and increasing sewage treatment capacity. Moreover, the synergies or trade-offs of different resilience policies are identified, and the optimal policy sets are listed. Not all policy sets have a synergistic effect on resilience improvement, the policies related to land use and transportation infrastructures might cause a decline in urban resilience, showing the resource conflicts of urban subsystems. The findings provide a reference for local government policymakers and enrich the theory of sustainable development and carrying capacity.
C1 [Zhang, Jiaming; Wang, Tao; He, Peiming; Hua, Lei] Chongqing Univ, Sch Publ Policy & Adm, Chongqing 400044, Peoples R China.
   [Goh, Yang Miang] Natl Univ Singapore, Coll Design & Engn, Dept Built Environm, 4 Architecture Dr, Singapore 117566, Singapore.
C3 Chongqing University; National University of Singapore
RP Wang, T (corresponding author), Chongqing Univ, Sch Publ Policy & Adm, Chongqing 400044, Peoples R China.
EM jemma1002@hotmail.com; wangtaothu@163.com; bdggym@nus.edu.sg;
   hepeiming0606@outlook.com; Leihua@cqu.edu.cn
RI He, Peiming/GPP-6895-2022; Zhang, Jiaming/GSD-8224-2022; Goh,
   Yang/B-9838-2015; Hua, Lei/GLS-7426-2022
OI Hua, Lei/0000-0002-0050-1599; He, Peiming/0000-0002-8755-9995
FU National Natural Science Foundation of China [72074034, 71871235,
   72134002, T2261129477]; Key Projects of Philosophy and Social Sciences
   Research, Ministry of Education of China [21JZD029]; Bayu Scholar
   Program [YS2020001]; Chongqing Talents Program [CQYC2021059075];
   Fundamental Research Funds for the Central Universities of China
   [2023CDJSKPT04, 2024CDJSKPT02]
FX This research was supported by the National Natural Science Foundation
   of China (No. 72074034, No. 71871235, No. 72134002, No. T2261129477) ,
   Key Projects of Philosophy and Social Sciences Research, Ministry of
   Education of China (No. 21JZD029) , Bayu Scholar Program (No. YS2020001)
   , Chongqing Talents Program (No. CQYC2021059075) , and Fundamental
   Research Funds for the Central Universities of China (No. 2023CDJSKPT04,
   No. 2024CDJSKPT02) .
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NR 84
TC 9
Z9 9
U1 60
U2 85
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD OCT
PY 2024
VL 153
AR 105294
DI 10.1016/j.cities.2024.105294
EA JUL 2024
PG 16
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA ZF0B4
UT WOS:001273752800001
DA 2025-04-22
ER

PT J
AU Zhang, XW
   Mao, F
   Gong, ZY
   Hannah, DM
   Cai, YN
   Wu, JS
AF Zhang, Xiwen
   Mao, Feng
   Gong, Zhaoya
   Hannah, David M.
   Cai, Yunnan
   Wu, Jiansheng
TI A disaster-damage-based framework for assessing urban resilience to
   intense rainfall-induced flooding
SO URBAN CLIMATE
LA English
DT Article
DE Resilience assessment; Urban resilience; Disaster; Urban flooding;
   Climate adaptation; Depth -damage curve
ID SYSTEM RESILIENCE; COMMUNITY RESILIENCE; SEISMIC RESILIENCE; BAYESIAN
   NETWORKS; INFRASTRUCTURE; ADAPTATION; MANAGEMENT; MODEL; RISKS
AB Resilience has been widely used as a concept to analyse, understand, and improve cities' coping capacities to disasters. However, it is still a challenge to operationalise and quantify resilience. This study proposes a framework for assessing resilience to disasters based on the relationship between disaster intensity and damage rate. We use intense (short-term heavy) rainfall-induced urban flooding in Shenzhen city, one of the largest cities in China, as an example to explore the main features and transferability of the proposed resilience assessment framework. In addition, we demonstrate the usability of the proposed framework by using it to assess and compare the effectiveness of two resilience-building strategies: (1) permeable pavement transformation and (2) land vulnerability reduction. This research makes an innovative contribution through its effective disaster-damage-based approach for quantitatively evaluating urban resilience to disasters, which can support building resilience and mitigating the impact of climate change.
C1 [Zhang, Xiwen; Cai, Yunnan] Guangdong Univ Technol, Sch Architecture & Urban Planning, Guangzhou 510090, Peoples R China.
   [Mao, Feng] Univ Warwick, Inst Global Sustainable Dev, Coventry CV4 7AL, England.
   [Gong, Zhaoya; Wu, Jiansheng] Peking Univ, Sch Urban Planning & Design, Shenzhen 518055, Peoples R China.
   [Gong, Zhaoya; Hannah, David M.] Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham B15 2TT, England.
C3 Guangdong University of Technology; University of Warwick; Peking
   University; University of Birmingham
RP Mao, F (corresponding author), Univ Warwick, Inst Global Sustainable Dev, Coventry CV4 7AL, England.
EM Feng.Mao@warwick.ac.uk
RI Gong, Zhaoya/AAQ-5282-2021; Wu, Jiansheng/GLS-1168-2022; Hannah,
   David/B-9221-2015
OI Hannah, David/0000-0003-1714-1240
FU National Natural Science Foundation of China Youth Science Fund
   [42101273]
FX Acknowledgements We acknowledge the support from the National Natural
   Science Foundation of China Youth Science Fund (42101273) .
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NR 120
TC 27
Z9 29
U1 53
U2 274
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD MAR
PY 2023
VL 48
AR 101402
DI 10.1016/j.uclim.2022.101402
EA JAN 2023
PG 14
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA 8K0IU
UT WOS:000922794700001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Yang, SS
   Lu, YG
   Wang, SY
AF Yang, Shasha
   Lu, Yugui
   Wang, Shuyue
TI Quantitative simulation and verification of the tourism economic
   resilience in urban agglomerations
SO SCIENTIFIC REPORTS
LA English
DT Article
ID DEMAND
AB The concept of tourism economic resilience emphasizes the sustainable development level of tourism economy under uncertainty and risk. Focusing on urban agglomerations, this study aims to describe how the tourism economic resilience is developing, explore whether the resilience level is enhanced with urban agglomerations and whether spatial elements affect resilience levels. With the combination of the aggregation and diffusion effects and crowding effects of regional development, the study uses a combination of dynamic evaluation method, spatial kernel density, and mathematical models of urban agglomeration development to quantitatively analyze the spatiotemporal dynamic evolution of tourism economic resilience from 2006 to 2019, simulates and verifies its development patterns. The conclusions show that: (1) The tourism economic resilience in urban agglomerations is closely related to regional development and prosperity; (2) The development of tourism economic resilience also follows the spatial economic development pattern which moves towards equilibrium in aggregation process; (3) The tourism economic resilience of urban agglomerations has a fluctuation climbing node, generally presents as a wave-like upward trend with fluctuations and stages; (4) The evolutionary trend of tourism economic resilience in urban agglomerations presents as a slight wave-like upward curve that changes with time and co-opetition.
C1 [Yang, Shasha; Wang, Shuyue] Guilin Tourism Univ, Sch Business, Guilin 541006, Peoples R China.
   [Lu, Yugui] Guangxi Vocat Normal Univ, Sch Econ & Trade, Nanning 530007, Guangxi, Peoples R China.
C3 Guilin Tourism University; Guangxi Vocational Normal University
RP Lu, YG (corresponding author), Guangxi Vocat Normal Univ, Sch Econ & Trade, Nanning 530007, Guangxi, Peoples R China.
EM 0301hailan@163.com
FU National Social Science Fund of China [20ZD157]; Guangxi Key Research
   and Development Program [2021AB43002]
FX National Social Science Fund of China, No.20 & ZD157, No.20 & ZD157,
   No.20 & ZD157, Guangxi Key Research and Development Program,
   2021AB43002, 2021AB43002, 2021AB43002.
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NR 56
TC 6
Z9 8
U1 41
U2 94
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD NOV 1
PY 2023
VL 13
IS 1
AR 18879
DI 10.1038/s41598-023-46166-0
PG 17
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA Y4PC3
UT WOS:001105087400074
PM 37914851
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Lin, CX
   Chen, RX
   Wang, BZ
   Li, XJ
AF Lin, Chengxin
   Chen, Rixin
   Wang, Beizhu
   Li, Xiaojuan
TI Evaluating resilience and enhancing strategies for old urban communities
   amidst epidemic challenges
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Old urban communities; Resilience; Epidemic; Resilience evaluation index
   system; Optimization strategy
ID GREEN INFRASTRUCTURE; DYNAMICS; COVID-19; CITIES; SUSTAINABILITY;
   PERSPECTIVE; LANDSCAPE; SYSTEMS; MODEL
AB Epidemic outbreaks pose significant risks to sustainable urban development, underscoring the critical need to bolster the resilience of old communities, key to urban epidemic prevention. This study introduces a resilience evaluation system tailored for these communities, employs a cloud model-based fuzzy comprehensive evaluation (FCE) method, and selects Fuzhou City for a case study. It evaluates the resilience of three communities, Qixingjing Xincun (A), the Provincial Forestry Department's dormitory (B), and Wufeng Lanting community (C) across five dimensions. By employing system dynamics (SD) model, the study examines the interplay and impact mechanisms of resilience indicators, predicts trends and future developments, and proposes strategies to enhance resilience. Results indicate that: (1) community B exhibits the highest resilience, followed by A and C, validating the FCE method's efficacy; (2) resilience across all dimensions is on the rise, with no signs of plateauing observed; (3) enhancements in resilience are notably impactful in facility (A3), spatial (A1), environmental (A2) and resident resilience (A5) are extremely close to each other in terms of their impacts, while governance resilience (A4) exhibits minimal changes. Offering insightful contributions to the resilience study of old urban communities, this study serves as a guide for future practice in improving public safety and promoting urban development, and insights into universal urban challenges and resilience strategies.
C1 [Lin, Chengxin; Chen, Rixin; Wang, Beizhu; Li, Xiaojuan] Fujian Agr & Forestry Univ, Coll Transportat & Civil Engn, Fuzhou 350108, Fujian, Peoples R China.
C3 Fujian Agriculture & Forestry University
RP Li, XJ (corresponding author), Fujian Agr & Forestry Univ, Coll Transportat & Civil Engn, Fuzhou 350108, Fujian, Peoples R China.
EM xiaojuanli@fafu.edu.cn
RI Lin, Chengxin/KDM-5347-2024; Chen, Rixin/GPW-6533-2022
OI Lin, Chengxin/0009-0001-9435-981X; Chen, Rixin/0009-0006-2556-5712
FU General projects of China National Social Science Foundation [22BGL237]
FX The authors are grateful for the research grants awarded by General
   projects of China National Social Science Foundation (22BGL237) for
   supporting this research and providing research facilities.
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NR 169
TC 7
Z9 7
U1 40
U2 40
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0197-3975
EI 1873-5428
J9 HABITAT INT
JI Habitat Int.
PD NOV
PY 2024
VL 153
AR 103187
DI 10.1016/j.habitatint.2024.103187
EA SEP 2024
PG 23
WC Development Studies; Environmental Studies; Regional & Urban Planning;
   Urban Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology; Public
   Administration; Urban Studies
GA I1D0I
UT WOS:001327719700001
DA 2025-04-22
ER

PT J
AU Chen, MX
   Liu, YZ
   Ye, Z
   Wang, SQ
   Zhang, WJ
AF Chen, Meixu
   Liu, Yunzhe
   Ye, Zi
   Wang, Siqin
   Zhang, Wenjing
TI Vivid London: Assessing the resilience of urban vibrancy during the
   COVID-19 pandemic using social media data
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban vibrancy; Urban resilience; Social media data; Crowdsourcing;
   Spatiotemporal clustering
AB Since COVID-19, the focus on urban resilience has intensified, particularly on cities' ability to adapt and recover while maintaining essential functions and liveability; however, few studies have examined the resilience of urban vibrancy during such health crises. This study investigates urban vibrancy resilience in Inner London during the COVID-19 pandemic using multi-sourced social media data (geo-tagged Twitter and Flickr). We propose an analytical framework based on space-time permutation scan statistics (STPSS) to identify spatiotemporal urban areas of interest (ST-AOIs), examining their spatial, temporal, and contextual characteristics. Our findings show that central neighbourhoods with transport hubs, educational and healthcare facilities, eateries, and financial centres exhibit greater resilience. These areas adapt by shifting active periods in response to disruptions. Additionally, we assess the varying resilience capacities of different types of points of interest. This research provides actionable insights for urban planners and policymakers by demonstrating how identifying characteristics of robust urban vibrancy can contribute to the resilience of cities and communities, particularly under normal conditions after COVID-19. The findings offer concrete strategies for integrating social media data into urban planning processes, enabling more responsive and adaptive governance that meets the dynamic needs of urban populations.
C1 [Chen, Meixu; Ye, Zi; Zhang, Wenjing] Univ Liverpool, Dept Geog & Planning, Liverpool, England.
   [Liu, Yunzhe] Imperial Coll London, MRC Ctr Environm & Hlth, Sch Publ Hlth, London, England.
   [Wang, Siqin] Univ Southern Calif, Spatial Sci Inst, Los Angeles, CA USA.
   [Wang, Siqin] Univ Queensland, Sch Environm, Brisbane, Qld, Australia.
   [Wang, Siqin] Royal Melbourne Inst Technol RMIT, Sch Sci, Melbourne, Australia.
C3 University of Liverpool; Imperial College London; University of Southern
   California; University of Queensland; Royal Melbourne Institute of
   Technology (RMIT)
RP Liu, YZ (corresponding author), Imperial Coll London, MRC Ctr Environm & Hlth, Sch Publ Hlth, London, England.
EM maychen@liverpool.ac.uk; yunzhe.liu@ic.ac.uk; zi.ye@liverpool.ac.uk;
   siqinwan@usc.edu; wenjing.zhang@liverpool.ac.uk
RI Zhang, Wenjing/LFS-4265-2024; Chen, Meixu/JXM-0636-2024
OI zhang, wenjing/0000-0003-2615-8976; Liu, Yunzhe/0000-0002-7189-3323;
   Chen, Meixu/0000-0003-2712-5551
FX agencies in the public, commercial, or not-for-profit sectors.
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NR 66
TC 2
Z9 2
U1 23
U2 29
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD NOV 15
PY 2024
VL 115
AR 105823
DI 10.1016/j.scs.2024.105823
EA SEP 2024
PG 13
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA G7D3R
UT WOS:001318195800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Zhai, CH
   Zhao, YG
   Wen, WP
   Qin, H
   Xie, LL
AF Zhai, Changhai
   Zhao, Yonggang
   Wen, WeiPing
   Qin, Hao
   Xie, LiLi
TI A novel urban seismic resilience assessment method considering the
   weighting of post-earthquake loss and recovery time
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Earthquake; Resilience assessment; Engineering system; Urban system
ID COMMUNITY RESILIENCE; DISASTER RESILIENCE; FRAMEWORK; ENHANCE; MODEL
AB Earthquakes impose substantial threats to the built environment of urban communities. To re-duce the catastrophic consequences of earthquakes, there is an urgent need to build seismic re-silient cites that can better resist seismic damage and enable a rapid post-disaster recovery. This paper gives the definition of urban seismic resilience, and establishes a seismic resilience assess-ment indicator system for urban built environment that integrates engineering systems, non -engineering systems and secondary disaster risk. A novel urban seismic resilience assessment method based on post-earthquake loss and recovery time is then developed to assess engineering system seismic resilience. Post-earthquake loss is divided into casualties and functionality loss. Adjustment coefficients are applied to account for the effects of non-engineering systems and sec-ondary disaster risks on urban seismic resilience. The analytical hierarchy process is employed to calculate the weights of individual engineering systems. In the end, a city located in southern China is taken as an example to illustrate the proposed method. The assessment results suggest that the urban seismic resilience grade is II, which means that the city can effectively resist possi-ble future earthquake disasters.
C1 [Zhai, Changhai; Zhao, Yonggang; Wen, WeiPing; Xie, LiLi] Harbin Inst Technol, Minist Educ, Key Lab Struct Dynam Behav & Control, Harbin 150090, Peoples R China.
   [Zhai, Changhai; Zhao, Yonggang; Wen, WeiPing; Xie, LiLi] Harbin Inst Technol, Minist Ind & Informat Technol, Key Lab Smart Prevent & Mitigat Civil Engn Disaste, Harbin 150090, Peoples R China.
   [Qin, Hao] Univ Newcastle, Sch Engn, Newcastle, Australia.
C3 Harbin Institute of Technology; Harbin Institute of Technology;
   University of Newcastle
RP Zhai, CH (corresponding author), Harbin Inst Technol, Minist Educ, Key Lab Struct Dynam Behav & Control, Harbin 150090, Peoples R China.
EM zch-hit@hit.edu.cn; 18b933053@stu.hit.edu.cn; wenweiping@hit.edu.cn;
   hao.qin@newcastle.edu.au; xll_hit@163.com
RI Wang, Xinyue/KLZ-4064-2024
OI QIN, Hao/0000-0001-5002-069X
FU National Natural Science Foundation of China [51825801, U1939210,
   71974047]; Cre-ative Research Groups of National Natural Science
   Foundation of China [51921006]
FX This work was supported by the National Natural Science Foundation of
   China (No. 51825801, U1939210, and 71974047) , Cre-ative Research Groups
   of National Natural Science Foundation of China (No. 51921006) . These
   supports are greatly appreciated.
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NR 39
TC 27
Z9 33
U1 40
U2 179
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD JAN
PY 2023
VL 84
AR 103453
DI 10.1016/j.ijdrr.2022.103453
EA DEC 2022
PG 15
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 8P9DI
UT WOS:000926816300005
DA 2025-04-22
ER

PT J
AU Li, YL
   Xiao, Y
AF Li, Yanling
   Xiao, Ya
TI How environmental awareness affects the spatial convergence of urban
   economic resilience: evidence from China
SO FRONTIERS IN ENVIRONMENTAL SCIENCE
LA English
DT Article
DE urban economic resilience; spatial convergence; environmental awareness;
   China; foreign investment (inward and outward FDI)
ID REGIONAL RESILIENCE; CITIES; RECESSIONS
AB This study utilizes a panel dataset covering 262 Chinese cities from 2012 to 2019 and employs spatial econometric convergence test models to investigate the impact of public environmental awareness on spatial convergence of urban economic resilience. Empirical results reveal a significant spatial convergence pattern in urban economic resilience, but environmental awareness hampers this convergence. Through a mediation analysis, we find that the role of environmental awareness in the spatial convergence of urban economic resilience is moderated by two critical factors: foreign investment and scientific expenditure. The development of foreign investment and an increase in the scale of scientific expenditure weaken the inhibitory effect of environmental awareness on the spatial convergence of urban economic resilience.
C1 [Li, Yanling] Henan Univ Anim Husb & Econ, Dept Finance & Accounting, Zhengzhou, Peoples R China.
   [Xiao, Ya] Cent South Univ, Sch Business, Changsha, Peoples R China.
C3 Henan University of Animal Husbandry & Economy; Central South University
RP Xiao, Y (corresponding author), Cent South Univ, Sch Business, Changsha, Peoples R China.
EM 2495806840@qq.com
FU National Social Science Foundation of China [:20BJY248]
FX The author(s) declare financial support was received for the research,
   authorship, and/or publication of this article. This study was funded by
   National Social Science Foundation of China (NO:20BJY248).
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NR 47
TC 1
Z9 1
U1 21
U2 52
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
EI 2296-665X
J9 FRONT ENV SCI-SWITZ
JI Front. Environ. Sci.
PD DEC 11
PY 2023
VL 11
AR 1326701
DI 10.3389/fenvs.2023.1326701
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA DA2M0
UT WOS:001129247300001
OA gold
DA 2025-04-22
ER

PT J
AU Yang, F
   Liu, ZH
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AF Yang, Fan
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   Zhou, Yi
   Wei, Lai
TI Urbanization weakens vegetation resilience in the Pearl River Delta,
   China
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Vegetation resilience; Urbanization effect; Urban-rural gradient;
   Lag-one autocorrelation
ID URBAN; CITIES; RESTORATION; ENHANCEMENT; LEVEL
AB Rapid urbanization has introduced increasingly complex social-ecological processes, intensifying the impacts on vegetation growth. Assessing urban vegetation resilience is critical to understanding urban vegetation growth. However, the current understanding of vegetation resilience in highly urbanized areas, especially regarding the influence of human activities, remains limited, constraining efforts toward sustainable urban vegetation management. In this study, we identified the spatiotemporal heterogeneity of urban vegetation resilience in the Pearl River Delta (PRD) using the lag-one autocorrelation coefficient (AC1) of the enhanced vegetation index (EVI) derived from Landsat imagery. Referring to the general conceptual framework for quantifying the impacts of urbanization on vegetation growth, we assessed the impacts of urbanization on vegetation resilience in the PRD urban agglomeration from 1998 to 2022. Results revealed that 21% of the urban area experienced one to five vegetation loss events, primarily lasting 1-2 years. Although vegetation growth was enhanced along the urbanization intensity gradient, a significant (p < 0.05) downward trend in vegetation resilience was observed, indicating that urbanization restricted the stability and sustainability of urban vegetation. By distinguishing between direct and indirect impacts, we found that the indirect impacts of urbanization on vegetation resilience gradually outweighed the direct impacts over time. Our findings further demonstrate that while intensive management can promote regreening in urban settings, maintaining the prevalent stability of urban vegetation remains challenging. These findings contribute to a better understanding of the human impact on vegetation resilience and offer significant implications for seeking directions to improve urban vegetation resilience.
C1 [Yang, Fan; Liu, Zhenhuan; Zhou, Yi; Wei, Lai] Sun Yat Sen Univ, Sch Geog & Planning, Guangzhou 510006, Peoples R China.
C3 Sun Yat Sen University
RP Liu, ZH (corresponding author), Sun Yat Sen Univ, Sch Geog & Planning, Guangzhou 510006, Peoples R China.
EM liuzhh39@mail.sysu.edu.cn
OI Liu, Zhenhuan/0000-0001-9932-9225; Zhou, Yi/0000-0001-7939-4353
FU National Natural Science Foun-dation of China [42371109]
FX This research was supported by the National Natural Science Foun-dation
   of China [42371109] . We appreciate three anonymous reviewers for
   constructive comments that have significantly improved this research.
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NR 75
TC 0
Z9 0
U1 24
U2 24
PU ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
PI LONDON
PA 24-28 OVAL RD, LONDON NW1 7DX, ENGLAND
SN 0301-4797
EI 1095-8630
J9 J ENVIRON MANAGE
JI J. Environ. Manage.
PD JAN
PY 2025
VL 373
AR 123756
DI 10.1016/j.jenvman.2024.123756
EA DEC 2024
PG 16
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA R9T0I
UT WOS:001394766400001
PM 39708689
DA 2025-04-22
ER

PT J
AU Yang, XD
   Li, HL
   Zhang, JY
   Niu, SY
   Miao, MM
AF Yang, Xiaodong
   Li, Huili
   Zhang, Jiayu
   Niu, Shuyi
   Miao, Mengmeng
TI Urban economic resilience within the Yangtze River Delta urban
   agglomeration: Exploring spatially correlated network and spatial
   heterogeneity
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban economic resilience; Spatially correlated network; Spatial
   heterogeneity; Urban agglomeration
ID REGIONS
AB As interconnectivity within urban agglomeration intensifies, enhancing inter-city economic linkages and resilience to uncertainty shocks has become imperative for economic sustainability. This study measured urban economic resilience, and then unveiled its spatial correlation and heterogeneity at urban agglomeration scale. Social network analysis revealed overall network characteristics and nodes' structural features of the delineated spatially correlated network of economic resilience. Factors driving spatial correlations were explored using QAP regression. Additionally, spatial heterogeneity of economic resilience was analysed, and GeoDetector was employed to determine the impacts of various factors and their interactions. The economic resilience of 26 cities within the Yangtze River Delta urban agglomeration was calculated. The spatially correlated network exhibits lower density and efficiency. Some cities play central, bridging, and connected roles, while others have limited connectivity, linked to factors like population mobility, spatial adjacency, economic development difference, and knowledge network. During regional integration strategy promotion, significant global spatial autocorrelation is observed, and local spatial autocorrelation reveals heterogeneity in economic resilience. It could be explained by various factors, with nonlinear enhancement effects of two-factor interactions. Recommendations are proposed for enhancing economic resilience by strengthening connections and coordinating despite differences, thus facilitating resilience shaping economic growth and advancing regional sustainability.
C1 [Yang, Xiaodong; Li, Huili; Zhang, Jiayu; Niu, Shuyi; Miao, Mengmeng] Harbin Inst Technol, Sch Civil Engn, 73,Huanghe Rd, Harbin 150001, Peoples R China.
C3 Harbin Institute of Technology
RP Li, HL (corresponding author), Harbin Inst Technol, Sch Civil Engn, 73,Huanghe Rd, Harbin 150001, Peoples R China.
EM lihl@hit.edu.cn
RI Zhang, Jiayu/GQB-0770-2022
FU National Natural Science Foundation of China [719740474]; Natural
   Science Foundation of Heilongjiang Province [LH2023G010]
FX <BOLD>Acknowledgements</BOLD> This work was supported by the National
   Natural Science Foundation of China [grant numbers 719740474] , and
   Natural Science Foundation of Heilongjiang Province [grant numbers
   LH2023G010] .
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U2 298
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD APR
PY 2024
VL 103
AR 105270
DI 10.1016/j.scs.2024.105270
EA FEB 2024
PG 16
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA LC4R2
UT WOS:001184571500001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Hayes, S
   Toner, J
   Desha, C
   Gibbs, M
AF Hayes, Samantha
   Toner, Jane
   Desha, Cheryl
   Gibbs, Mark
TI Enabling Biomimetic Place-Based Design at Scale
SO BIOMIMETICS
LA English
DT Article
DE biomimicry; built environment; design; place-based design; regenerative;
   urban development
ID SYSTEMS; BIOMIMICRY
AB Amidst the inter-related challenges of climate change, resource scarcity, and population growth, the built environment must be designed in a way that recognises its role in shaping and being shaped by complex social and ecological systems. This includes avoiding the degradation of living systems in the design and construction of buildings and infrastructure, as well as enhancing the built environment's resilience to disturbance by those systems. This paper explores the potential for biomimetic place-based design (BPD) to inform resilient and regenerative built environment outcomes by learning from local ecosystems. One recognised hurdle is the upfront resourcing required to establish the biomimetic knowledge base for each project. However, conducting BPD projects at-scale (i.e., city or region) can improve the method's value-proposition by better leveraging upfront research efforts, design concepts, and strategies. This research identifies existing barriers to the widespread adoption of BPD and presents an action framework for capability-building across industry, government, and academia to enable application at-scale. Drawing on findings from workshops in the USA and Australia, it creates a resource for colleagues looking to apply BPD in a city or region and offers next steps for research and development.
C1 [Hayes, Samantha; Desha, Cheryl] Griffith Univ, Cities Res Inst, Brisbane, Qld 4111, Australia.
   [Toner, Jane] Biomimicry Australia, Melbourne, Vic 3000, Australia.
   [Gibbs, Mark] Queensland Univ Technol, Inst Environm, Brisbane, Qld 4000, Australia.
C3 Griffith University; Queensland University of Technology (QUT)
RP Hayes, S (corresponding author), Griffith Univ, Cities Res Inst, Brisbane, Qld 4111, Australia.
EM samantha.hayes3@griffithuni.edu.au; jtoner8@gmail.com;
   c.desha@griffith.edu.au; mt.gibbs@qut.edu.au
RI ; Desha, Cheryl/J-1340-2012
OI Toner, Jane/0000-0002-2367-6076; Hayes, Samantha/0000-0002-3085-1215;
   Desha, Cheryl/0000-0002-4026-0830; Gibbs, Mark/0000-0002-9632-1567
FU Australian Government
FX The authors acknowledge the valuable contributions of Dayna Baumeister
   and colleagues at The Biomimicry Center at Arizona State University to
   this research. The authors also appreciate the collaboration
   opportunities enabled by the Australia-Awards Endeavour Fellowship
   provided to the lead author by the Australian Government.
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NR 43
TC 5
Z9 5
U1 2
U2 15
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2313-7673
J9 BIOMIMETICS-BASEL
JI Biomimetics
PD JUN
PY 2020
VL 5
IS 2
AR 21
DI 10.3390/biomimetics5020021
PG 15
WC Engineering, Multidisciplinary; Materials Science, Biomaterials
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Materials Science
GA MO0VO
UT WOS:000551255100005
PM 32443598
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Lv, J
   Zeng, H
   Liu, Z
AF Lv, Jia
   Zeng, Hao
   Liu, Zhi
TI The Impact of Green Innovation Capacity on Urban Economic Resilience:
   Evidence from China's Yangtze River Delta Region
SO SUSTAINABILITY
LA English
DT Article
DE green innovation; urban economic resilience; Yangtze River Delta (YRD)
ID SLACKS-BASED MEASURE; EFFICIENCY
AB Urban green innovation plays a crucial role in achieving sustainable urban economic development, and urban economic resilience is an important manifestation of urban economic development. This prese nt study aims to investigate how green innovation contributes to urban economies' resilience, which is essential for long-term urban agglomeration expansion and sustainable economic development. To decrease subjectivity and achieve comprehensive evaluation, this study first constructs an index system for evaluating green innovation capability on urban economic resilience, which contains 21 indicators in three areas, including innovation input, innovation output, and green innovation foundation, and the performs a scientific evaluation using the TOPSIS method. On this basis, using the Super-SBM model, the green innovation efficiency value of cities in the Yangtze River Delta (YRD) is calculated. Finally, ArcGIS 10.8 software is used to classify the economic resilience of the 26 cities in the YRD city cluster and analyze the spatial layout characteristics of urban economic resilience. The results show that: (1) the decision evaluation model used in this study is stable and effective, and it can effectively address the issues of subjective assessment processes and information redundancy; (2) green innovation capacity has a positive contribution to urban economic resilience, and its contribution is more significant for cities with strong economic strength; and (3) the green innovation capacity of the YRD city cluster is unevenly distributed, with Shanghai, Suzhou, Hangzhou, and Nanjing having high levels of green innovation capacity and strong urban economic resilience, thus forming the core area of cities radiating outward, showing a "core-edge" spatially. Finally, suggestions for improving the overall economic resilience of urban agglomerations are provided.
C1 [Lv, Jia; Zeng, Hao] Nantong Univ, Sch Econ & Management, Nantong 226019, Peoples R China.
   [Lv, Jia] Nantong Univ, Jiangsu Yangtze River Belt Res Inst, Nantong 226019, Peoples R China.
   [Liu, Zhi] Anhui Polytech Univ, Sch Econ & Management, Wuhu 241000, Peoples R China.
C3 Nantong University; Nantong University; Anhui Polytechnic University
RP Lv, J (corresponding author), Nantong Univ, Sch Econ & Management, Nantong 226019, Peoples R China.; Lv, J (corresponding author), Nantong Univ, Jiangsu Yangtze River Belt Res Inst, Nantong 226019, Peoples R China.
EM joylv@ntu.edu.cn; graysonzhao@stmail.ntu.edu.cn; liuzhi@nuaa.edu.cn
RI liu, zhi/AAM-8068-2021
OI Liu, Zhi/0000-0002-9624-3052
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NR 94
TC 6
Z9 6
U1 38
U2 96
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2023
VL 15
IS 21
AR 15235
DI 10.3390/su152115235
PG 28
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA X7TD4
UT WOS:001100420200001
OA gold
DA 2025-04-22
ER

PT J
AU Suna, RR
   Shia, SH
   Rehemana, YJ
   Lib, SM
AF Suna, Ruirui
   Shia, Shaohong
   Rehemana, Yimingjiang
   Lib, Songmin
TI Measurement of urban flood resilience using a quantitative model based
   on the correlation of vulnerability and resilience
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban flood; Resilience measurement; Correlation of
   vulnerability-resilience; Quantitative assessment; Recovery capability
ID CLIMATE-CHANGE; FRAMEWORK; ADAPTATION; RISK; CITY
AB With global climate change and increasing urbanization, extreme weather events such as urban floods are rapidly increasing. Flood resilience, the key to improving the ability of cities to cope with flood disasters, is highly related to flood vulnerability. Currently, most studies tend to assess flood resilience from economic, social and environmental dimensions, without quantitatively analyzing the feedback relationships between various elements of resilience. Some studies involving resilience models fail to completely reflect various time periods of resilience. Aim of this research is to develop a quantitative model from perspective of the correlation of vulnerability and resilience to achieve quantitative assessment of urban flood resilience. Firstly, multi-dimensional relationships between flood vulnerability and resilience was analyzed, and conceptual model was developed using an improved entity relationship diagram (E-R diagram), furtherly establishing a quantitative model of urban flood resilience that considers recovery capacity in post-disaster. Secondly, quantitative assessment of urban flood resilience of 16 districts in Beijing was implemented through the quantitative model and integrated weight method based on indicator system. The following results are obtained: the influence of different factors on flood resilience, the characteristics of elements of resilience and the characteristics of pre-disaster, mid-disaster and postdisaster reflected by them, as well as spatial variation in flood resilience. In addition, recovery capability plays an important role in flood resilience.
C1 [Suna, Ruirui; Shia, Shaohong; Rehemana, Yimingjiang] Beijing Univ Technol, Fac Architecture Civil & Transportat Engn, Beijing 100124, Peoples R China.
   [Lib, Songmin] Tianjin Agr Univ, Dept Water Conservancy Engn, Tianjin 300392, Peoples R China.
C3 Beijing University of Technology; Tianjin Agricultural University
RP Suna, RR (corresponding author), 100 Pingleyuan, Beijing 100124, Peoples R China.
EM sunrr@bjut.edu.cn
FU National Natural Science Foundation of China [52192671]; Open Research
   Fund Program of State Key Laboratory of Hydraulic Engineering Simulation
   and Safety [HESS-1908]
FX This work was supported by National Natural Science Foundation of China
   [grant number 52192671] and Open Research Fund Program of State Key
   Laboratory of Hydraulic Engineering Simulation and Safety [grant number
   HESS-1908].
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NR 73
TC 40
Z9 41
U1 75
U2 331
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD NOV
PY 2022
VL 82
AR 103344
DI 10.1016/j.ijdrr.2022.103344
EA OCT 2022
PG 22
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 5U3MK
UT WOS:000876455100009
DA 2025-04-22
ER

PT J
AU Zheng, Y
   Xie, XL
   Lin, CZ
   Wang, M
   He, XJ
AF Zheng Yan
   Xie Xin-Lu
   Lin Chen-Zhen
   Wang Mou
   He Xiao-Jia
TI Development as adaptation: Framing and measuring urban resilience in
   Beijing
SO ADVANCES IN CLIMATE CHANGE RESEARCH
LA English
DT Article
DE Climate change adaptation; Development; Urban resilience; Generic
   resilience; Mixed methods research
AB As part of their efforts to cope with climate change, many municipal governments have considered the improvement of urban resilience as an important strategy. In this study, we take the megacity of Beijing as an example and conduct a mixed-methods research using both qualitative and quantitative methods to explore linkage between resilience and development. First, based on expert consultation, we develop an analytical framework and propose reference indicators for measuring urban resilience. Second, we conduct an exploratory factor analysis to justify this analytical framework and rank the urban resilience index for 16 districts in Beijing. Results indicate that urban resilience at the district level is distinguished by the characteristics of the district's functional zones. This implies that the development focus of each district influences the driving factors of urban resilience. This article provides evidence that development and adaptation can be complementary. We showcase in Beijing that urban generic resilience is highly dependent on socio-economic development and urbanization, whereas specific resilience to climatic extremes can be attributed to natural endowment and environmental investment. In conclusion, using this study's findings as a guideline, mega-cities are urged to adopt development-oriented adaptation as a strategy of proactive risk planning in the context of rapid urbanization and global climate change in China.
C1 [Zheng Yan; Wang Mou] Chinese Acad Social Sci, Inst Urban & Environm Studies, Beijing 100028, Peoples R China.
   [Xie Xin-Lu] China Social Sci Press, Beijing 100720, Peoples R China.
   [Lin Chen-Zhen] Univ Chinese Acad Social Sci, Grad Sch, Beijing 100028, Peoples R China.
   [He Xiao-Jia] Adm Ctr Chinas Agenda 21, Beijing 100038, Peoples R China.
C3 Chinese Academy of Social Sciences; Chinese Academy of Social Sciences;
   University of Chinese Academy of Social Sciences
RP Zheng, Y (corresponding author), Chinese Acad Social Sci, Inst Urban & Environm Studies, Beijing 100028, Peoples R China.
EM zhengy_cass@163.com
FU National Social Science Fund of China [18BJY060]; Natural Resources and
   Environment Department of Beijing Development and Reform Commission
FX This research was supported by the National Social Science Fund of China
   (18BJY060). Thanks for the support on the social investigation from the
   Natural Resources and Environment Department of Beijing Development and
   Reform Commission.
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NR 19
TC 63
Z9 69
U1 14
U2 88
PU SCIENCE PRESS
PI BEIJING
PA 16 DONGHUANGCHENGGEN NORTH ST, BEIJING, 100717, PEOPLES R CHINA
SN 1674-9278
J9 ADV CLIM CHANG RES
JI Adv. Clim. Chang. Res.
PD DEC
PY 2018
VL 9
IS 4
BP 234
EP 242
DI 10.1016/j.accre.2018.12.002
PG 9
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA IR8FW
UT WOS:000481678200004
OA gold
DA 2025-04-22
ER

EF