﻿FN Clarivate Analytics Web of Science
VR 1.0
PT J
AU Corodescu-Rosca, E
   Hamdouch, A
   Iatu, C
AF Corodescu-Rosca, Ema
   Hamdouch, Abdelillah
   Iatu, Corneliu
TI Innovation in urban governance and economic resilience. The case of two
   Romanian regional metropolises: Timi?oara and Cluj Napoca
SO CITIES
LA English
DT Article
DE Path development; Post-socialist city; Governance innovation; Economic
   resilience; Urban actors
ID SOCIAL INNOVATION; PATH-DEVELOPMENT; INSTITUTIONS; SYSTEMS; POLICY;
   CITIES
AB This article aims to explain how innovations in urban governance contribute to economic resilience of post -socialist regional metropoles, by retracing the path development process of the local governance systems in two Romanian cities -Timisoara and Cluj-Napoca. Firstly, the paper brings analytical cross-fertilization between urban governance studies and the emerging field of path development, by proposing a combined framework based on four dimensions: structural features, actors, timing and spatiality of resources employed in the process of governance innovation. Secondly, it contributes to the path development literature with evidences from post -socialist regional metropoles, defined by a mix of central and peripheral attributes and therefore constituting a new category of spaces which has not been approached by this strand of literature to date. The methodology includes a comparative case study protocol based on the process tracing method, according to the proposed analytical framework and applied on various sources (interviews, planning documents, reports, newspaper ar-ticles). The results reveal an important role of structural inherited features in driving governance innovations, while the public actors and the external resources complement the process in different degrees. However, these tendencies diminish across time, as new actors and roles appear in the city landscape and new challenges arise.
C1 [Corodescu-Rosca, Ema; Iatu, Corneliu] Alexandru Ioan Cuza Univ, Iasi, Romania.
   [Corodescu-Rosca, Ema; Hamdouch, Abdelillah] Univ Tours, Tours, France.
C3 Alexandru Ioan Cuza University; Universite de Tours
RP Corodescu-Rosca, E (corresponding author), Alexandru Ioan Cuza Univ, Iasi, Romania.
EM ema.corodescu@uaic.ro; abdelillah.hamdouch@univ-tours.fr; ciatu@uaic.ro
RI Ema, Corodescu-Rosca/AGZ-5193-2022
OI Corodescu-Rosca, Ema/0000-0001-5156-5093
FU Romanian Ministry of Research, Innovation and Digitization
   [11PFE/30.12.2021]
FX Authors are thankful to Romanian Ministry of Research, Innovation and
   Digitization, within Program 1 - Development of the national RD system,
   Subprogram 1.2 - Institutional Performance - RDI excellence funding
   projects, Contract no.11PFE/30.12.2021, for financial support.
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NR 70
TC 20
Z9 20
U1 11
U2 65
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JAN
PY 2023
VL 132
AR 104090
DI 10.1016/j.cities.2022.104090
EA NOV 2022
PG 11
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 7E9YE
UT WOS:000901513800005
OA hybrid
DA 2025-04-22
ER

PT J
AU Russo, B
   Valentín, MG
   Tellez-Alvarez, J
AF Russo, Beniamino
   Valentin, Manuel Gomez
   Tellez-Alvarez, Jackson
TI The Relevance of Grated Inlets within Surface Drainage Systems in the
   Field of Urban Flood Resilience. A Review of Several Experimental and
   Numerical Simulation Approaches
SO SUSTAINABILITY
LA English
DT Review
DE pluvial floods; urban resilience; inlet systems; hydraulic efficiency;
   discharge coefficient; experimental campaigns; numerical studies
ID HYDRAULIC EFFICIENCY; CLIMATE-CHANGE; METHODOLOGY; BEHAVIOR; IMPACT;
   MODEL
AB Urban drainage networks should be designed and operated preferably under open channel flow conditions without flux return, backwater, or overflows. In the case of extreme storm events, urban pluvial flooding is generated by the excess of surface runoff that could not be conveyed by pressurized sewer pipes, due to its limited capacity or, many times, due to the poor efficiency of surface drainage systems to collect uncontrolled overland flow. Generally, the hydraulic design of sewer systems is addressed more for underground networks, neglecting the surface drainage system, although inadequate inlet spacings and locations can cause dangerous flooding with relevant socio-economic impacts and the interruption of critical services and urban activities. Several experimental and numerical studies carried out at the Technical University of Catalonia (UPC) and other research institutions demonstrated that the hydraulic efficiency of inlets can be very low under critical conditions (e.g., high circulating overland flow on steep areas). In these cases, the hydraulic efficiency of conventional grated inlets and continuous transverse elements can be around 10-20%. Their hydraulic capacity, expressed in terms of discharge coefficients, shows the same criticism with values quite far from those that are usually used in several project practice phases. The grate clogging phenomenon and more intense storm events produced by climate change could further reduce the inlets' performance. In this context, in order to improve the flood urban resilience of our cities, the relevance of the hydraulic behavior of surface drainage systems is clear.
C1 [Russo, Beniamino] Univ Zaragoza, Tech Coll La Almunia EUPLA, Grp Hydraul & Environm Engn GIHA, Zaragoza 50100, Spain.
   [Russo, Beniamino; Valentin, Manuel Gomez; Tellez-Alvarez, Jackson] Tech Univ Catalonia UPC, BarcelonaTECH, Dept Civil & Environm Engn DECA, FLUMEN Res Inst, Barcelona 08034, Spain.
   [Russo, Beniamino] AQUATEC SUEZ Grp, Zona Franca Ave 46-48, Barcelona 08038, Spain.
   [Tellez-Alvarez, Jackson] SAU, Consorci Besos Tordera, CCB Serv Mediambientals, Granollers 08403, Spain.
C3 University of Zaragoza; Universitat Politecnica de Catalunya
RP Russo, B (corresponding author), Univ Zaragoza, Tech Coll La Almunia EUPLA, Grp Hydraul & Environm Engn GIHA, Zaragoza 50100, Spain.; Russo, B (corresponding author), Tech Univ Catalonia UPC, BarcelonaTECH, Dept Civil & Environm Engn DECA, FLUMEN Res Inst, Barcelona 08034, Spain.; Russo, B (corresponding author), AQUATEC SUEZ Grp, Zona Franca Ave 46-48, Barcelona 08038, Spain.
EM brusso@unizar.es; manuel.gomez@upc.edu; jackson.david.tellez@upc.edu
RI GOMEZ, MANUEL/AAA-7854-2019; Tellez-Alvarez, Jackson/M-9152-2016; Russo,
   Beniamino/Z-6372-2019
OI GOMEZ, MANUEL/0000-0001-7042-5897; Tellez-Alvarez,
   Jackson/0000-0003-1428-9872; Russo, Beniamino/0000-0001-9437-0085
FU Spanish Ministry of Science and Innovation [CGL2011-26958]; project
   "Risk criteria for the design of surface drainage systems in urban
   areas" (2012-2014)
FX This research was funded by the project "Risk criteria for the design of
   surface drainage systems in urban areas" (2012-2014) funded by the
   Spanish Ministry of Science and Innovation (Id. code: CGL2011-26958).
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NR 66
TC 22
Z9 23
U1 11
U2 61
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2021
VL 13
IS 13
AR 7189
DI 10.3390/su13137189
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 TG0GQ
UT WOS:000671092000001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Gillespie-Marthaler, L
   Nelson, K
   Baroud, H
   Abkowitz, M
AF Gillespie-Marthaler, Leslie
   Nelson, Katherine
   Baroud, Hiba
   Abkowitz, Mark
TI Selecting Indicators for Assessing Community Sustainable Resilience
SO RISK ANALYSIS
LA English
DT Article
DE Communities; indicators; metrics; risk assessment; sustainable
   resilience
ID QUALITY-OF-LIFE; WORLD-HEALTH-ORGANIZATION; URBAN SUSTAINABILITY; SOCIAL
   VULNERABILITY; ADAPTIVE CAPACITY; ASSESSMENT WHOQOL; RISK; CHALLENGES;
   INDEX; FRAMEWORK
AB Communities are complex systems subject to a variety of hazards that can result in significant disruption to critical functions. Community resilience assessment is rapidly gaining popularity as a means to help communities better prepare for, respond to, and recover from disruption. Sustainable resilience, a recently developed concept, requires communities to assess system-wide capability to maintain desired performance levels while simultaneously evaluating impacts to resilience due to changes in hazards and vulnerability over extended periods of time. To enable assessment of community sustainable resilience, we review current literature, consolidate available indicators and metrics, and develop a classification scheme and organizational structure to aid in identification, selection, and application of indicators within a dynamic assessment framework. A nonduplicative set of community sustainable resilience indicators and metrics is provided that can be tailored to a community's needs, thereby enhancing the ability to operationalize the assessment process.
C1 [Gillespie-Marthaler, Leslie; Baroud, Hiba; Abkowitz, Mark] Vanderbilt Univ, Dept Civil & Environm Engn, 274 Featheringill Hall, Nashville, TN 37212 USA.
   [Nelson, Katherine] Kansas State Univ, Dept Geog, Manhattan, KS 66506 USA.
C3 Vanderbilt University; Kansas State University
RP Baroud, H (corresponding author), Vanderbilt Univ, Dept Civil & Environm Engn, 274 Featheringill Hall, Nashville, TN 37212 USA.
EM hiba.baroud@vanderbilt.edu
RI Nelson, Katherine/HLP-7433-2023
OI Nelson, Katherine/0000-0002-4240-5474; Baroud, Hiba/0000-0003-3641-6449;
   Gillespie-Marthaler, Leslie/0000-0002-8619-8606
FU Nashville Metro Water Services; National Science Foundation [1635717];
   U.S. Department of Transportation [69A3551747130]; U.S. Housing and
   Urban Development (HUD); Vanderbilt University Trans-institutional
   Partnerships; Directorate For Engineering; Div Of Civil, Mechanical, &
   Manufact Inn [1635717] Funding Source: National Science Foundation
FX This work was supported in part by Vanderbilt University
   Trans-institutional Partnerships, Nashville Metro Water Services, the
   National Science Foundation (grant no. 1635717), the U.S. Department of
   Transportation under Grant Award Number 69A3551747130, conducted through
   the Maritime Transportation Research and Education Center (MarTREC) at
   the University of Arkansas, and the U.S. Housing and Urban Development
   (HUD) award to the Tennessee Department of Economic and Community
   Development, as part of the National Disaster Resilience Competition.
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NR 120
TC 31
Z9 36
U1 20
U2 182
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 NOV
PY 2019
VL 39
IS 11
BP 2479
EP 2498
DI 10.1111/risa.13344
EA JUL 2019
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 JJ9PH
UT WOS:000477212800001
PM 31290175
DA 2025-04-22
ER

PT J
AU Mcevoy, D
   Tara, A
   Vahanvati, M
   Ho, SRE
   Gordon, K
   Trundle, A
   Rachman, C
   Qomariyah, Y
AF Mcevoy, Darryn
   Tara, Ata
   Vahanvati, Mittul
   Ho, Serene
   Gordon, Kim
   Trundle, Alexei
   Rachman, Cyril
   Qomariyah, Yuyun
TI Localized nature-based solutions for enhanced climate resilience and
   community wellbeing in urban informal settlements
SO CLIMATE AND DEVELOPMENT
LA English
DT Article
DE Nature-based solutions; ecosystem-based adaptation; disaster risk
   reduction; socio-ecological resilience; informal settlements; Pacific
AB Nature-based Solutions (NbS) are considered to hold promise for addressing the pressing and multi-faceted challenges of climate resilience. Addressing this contemporary agenda, this research paper explores the potential value of NbS in urban contexts based on the experience of implementing four NbS pilots to address climate adaptation and disaster risk reduction in an informal settlement in Honiara, Solomon Islands. The project, funded by the Swedish International Development Cooperation Agency (SIDA), employed an inclusive co-production approach, with the project team engaging closely with community members and local stakeholders throughout the planning, design and implementation stages. Findings reinforce the importance of long-term engagement and trust-building with members of the community and also underscore the value of empowering local partners in project design and implementation in Pacific Island Nations. The paper details the local processes that were involved and highlights the key insights and lessons learned from the proof-of-concept project which can usefully inform the scaling up of NbS initiatives to achieve multiple benefits in other similar urban contexts in the Global South.
C1 [Mcevoy, Darryn; Vahanvati, Mittul; Ho, Serene; Gordon, Kim] RMIT Univ, Melbourne, Australia.
   [Tara, Ata] RMIT Univ, Landscape Architecture, Melbourne, Australia.
   [Trundle, Alexei] Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Australia.
   [Rachman, Cyril] Solomon Isl Natl Univ, Honiara, Solomon Islands.
   [Qomariyah, Yuyun] PacSol Consultancy, Honiara, Solomon Islands.
C3 Royal Melbourne Institute of Technology (RMIT); Royal Melbourne
   Institute of Technology (RMIT); University of Melbourne
RP Mcevoy, D (corresponding author), RMIT Univ, Melbourne, Australia.
EM Darryn.mcevoy@rmit.edu.au
RI Vahanvati, Mittul/AAB-5546-2020; Trundle, Alexei/D-5762-2018; McEvoy,
   Darryn/K-8015-2017
OI Trundle, Alexei/0000-0002-7076-4626; Gordon, Kim/0000-0003-1890-8220;
   McEvoy, Darryn/0000-0003-4144-4137
FU The project was funded by SIDA through the 'Integration of nature-based
   solutions (NbS) in country-level operations of the Resilient Settlements
   of the Urban Poor (RISE UP)' programme and administered by UN-Habitat.
   The authors would also like to acknowled; SIDA through the 'Integration
   of nature-based solutions
FX The project was funded by SIDA through the 'Integration of nature-based
   solutions (NbS) in country-level operations of the Resilient Settlements
   of the Urban Poor (RISE UP)' programme and administered by UN-Habitat.
   The authors would also like to acknowledge the people of Koa Hill
   settlement whose time and enthusiasm contributed to the planning and
   delivery of the NbS actions.
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NR 34
TC 6
Z9 6
U1 11
U2 27
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1756-5529
EI 1756-5537
J9 CLIM DEV
JI Clim. Dev.
PD AUG 8
PY 2024
VL 16
IS 7
BP 600
EP 612
DI 10.1080/17565529.2023.2277248
EA NOV 2023
PG 13
WC Development Studies; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology
GA E3X0X
UT WOS:001097708800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Bucar, RCB
   Hayeri, YM
AF Bucar, Raif C. B.
   Hayeri, Yeganeh M.
TI Quantitative assessment of the impacts of disruptive precipitation on
   surface transportation
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Resilience; Surface transportation; Pluvial flooding
ID ROAD NETWORK; RESILIENCE; LINKS; VULNERABILITY; PERFORMANCE; ROBUSTNESS
AB This article addresses the impacts of flood events on urban street networks. Macro-traffic simulation techniques were used on disrupted and undisrupted scenarios to assess the increase on the network's mobility and accessibility. Local topographical aspects of the terrain were analyzed to identify portions of the network more prone to disruption. Flood maps were used to systematically remove links from the network, generating its disrupted state for different scenarios. The traffic assignment model generated routes using k-shortest path methods with link impedance penalty functions, selecting them based on user equilibrium assumption. Simulation results indicated the viability of the method to analyze the impacts of flood events of different severity and duration. The successful validation of this method indicated its viability as a tool for benefit cost analysis of urban improvement projects including resilience plans for high risk cities. The analysis was validated using the City of Hoboken, New Jersey's transportation network and flood models. Results can be applied to cities with a high chance of flooding and should help authorities to effectively review their infrastructure strategic plans as well as their short and long-term urban mobility plans.
C1 [Bucar, Raif C. B.; Hayeri, Yeganeh M.] Stevens Inst Technol, Hoboken, NJ 07030 USA.
C3 Stevens Institute of Technology
RP Hayeri, YM (corresponding author), Stevens Inst Technol, Hoboken, NJ 07030 USA.
EM rbucar@stevens.edu; yhayeri@stevens.edu
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NR 38
TC 28
Z9 29
U1 12
U2 76
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 NOV
PY 2020
VL 203
AR 107105
DI 10.1016/j.ress.2020.107105
PG 17
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 NM2DB
UT WOS:000567911600047
DA 2025-04-22
ER

PT J
AU Moore, L
   Steynor, A
   Waagsaether, KL
   Spires, M
   Marie, A
AF Moore, Luke
   Steynor, Anna
   Waagsaether, Katinka Lund
   Spires, Meggan
   Marie, Anais
TI Exploring the opportunities and constraints to the development of
   locally applicable water management technology in three sub-Saharan
   African cities
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Climate change adaptation; Opportunities; Constraints; Sub-Saharan
   Africa; Cities; Water supply management; Technology; IPCC
ID INTELLECTUAL PROPERTY-RIGHTS; QUALITATIVE RESEARCH; INNOVATION; SYSTEMS;
   GROWTH
AB This exploratory qualitative study utilised the IPCC categories of adaptation opportunities and constraints as a framework to understand the barriers and enablers to the development and uptake of contextually relevant climate-resilient water management technology in three sub-Saharan African cities. In-depth interviews were undertaken with key informants from the research, government, and civil society sectors to gain insight into perceived opportunities and constraints to the development, uptake and market dissemination of such technology in Blantyre, Harare and Gaborone. The majority of the identified opportunities and constraints aligned well with the global IPCC categories, while certain IPCC categories were found not to be relevant to the three city contexts of the study. Two new categories of adaptation opportunities and constraints were discovered (i.e. they did not fit within an IPCC category); they were an opportunity: 'climate change windows of opportunity', and a constraint: 'ethics and intellectual property'. Our results indicated that the nuances of the Global South context are often not well-considered in the design of climate-resilient water management technology, and that a number of constraints detract from the development, uptake and dissemination thereof. There are however, opportunities inherent to sub-Saharan African cities which could be used to stimulate the development, uptake and dissemination of locally designed or modified water technology. We discuss some implications of our finding and new frontiers for research on this topic by way of conclusion.
C1 [Moore, Luke; Spires, Meggan] ICLEI Local Govt Sustainabil Africa Secretariat, Cape Town, South Africa.
   [Steynor, Anna; Waagsaether, Katinka Lund; Marie, Anais] Univ Cape Town, Climate Syst Anal Grp, Cape Town, South Africa.
C3 University of Cape Town
RP Moore, L (corresponding author), ICLEI Local Govt Sustainabil Africa Secretariat, Cape Town, South Africa.
EM luke.moore.sa@gmail.com
RI Steynor, Anna/AAW-6906-2021; Moore, Luke/Q-1012-2018
OI Moore, Luke/0000-0001-8251-5486; Steynor, Anna/0000-0002-3675-2576
FU African Climate Technology and Finance Centre and Network (ACTFCN);
   Global Environment Facility Trust Fund (GEFTF); Special Climate Change
   Fund (SCCF, GEF Project) [4904]
FX This research was undertaken as part of ICLEI Africa's African Water
   Adaptation through Knowledge Empowerment (AWAKE) project, which was
   supported by the African Climate Technology and Finance Centre and
   Network (ACTFCN) which is hosted by the African DevelopmentBank (AfDB) .
   The ACTFN is in turn funded by the Global Environment Facility Trust
   Fund (GEFTF) and the Special Climate Change Fund (SCCF, GEF Project ID
   4904) .
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NR 43
TC 3
Z9 3
U1 1
U2 5
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 JUN
PY 2021
VL 120
BP 108
EP 117
DI 10.1016/j.envsci.2021.02.010
EA MAR 2021
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA SF4SE
UT WOS:000652746800012
DA 2025-04-22
ER

PT J
AU López-Estébanez, N
   Yacamán-Ochoa, C
   Mata-Olmo, R
AF Lopez-Estebanez, Nieves
   Yacaman-Ochoa, Carolina
   Mata-Olmo, Rafael
TI The Multifunctionality and Territoriality of Peri-Urban Agri-Food
   Systems: The Metropolitan Region of Madrid, Spain
SO LAND
LA English
DT Article
DE local agri-food systems; agri-food economies; peri-urban agriculture;
   agrarian heritage; food democracy; food security
ID AGRICULTURE; URBAN; SERVICES
AB This paper addresses the Multifunctional and Territorialised Agri-Food Systems (MTLAFS) in areas of direct urban influence, focusing on the metropolitan region of Madrid. MTLAFS are contextualised as alternatives to the hegemonic global model of mass production and consumption. They are created by combining two conceptual and theoretical bodies of knowledge that share many elements: the study of Local Agri-Food Systems (LAFS), a critical approach to agri-food economies and the re-territorialisation of agri-food systems. The paper analyses the factors that negatively affect the resilience of LAFS and it describes re-territorialisation strategies that enable MTLAFS to be built. By using a multi-criteria methodology to identify agri-environmental and food governance indicators, the research identifies and describes the characteristics that allow the case studies selected in the region of Madrid to be classified as MTLAFS. This has been carried out by gathering the main discussion points on the fractures and relocation strategies that accentuate the vulnerability or, on the contrary, enhance the resilience of the cases analysed. The paper concludes with some recommendations for strengthening the socio-ecological resilience of MTLAFS by using the systemic basis provided by the agro-urban project. This agro-urban project brings together different public policies, governance tools, territorial and food planning, as well as agrarian practices anchored to each specific territory. All these agrarian practices contribute to the configuration of an alternative territorial agri-food model that ensures food security and a shift towards the sustainable development of our planet.
C1 [Lopez-Estebanez, Nieves; Yacaman-Ochoa, Carolina; Mata-Olmo, Rafael] Univ Autonoma Madrid, Dept Geog, Madrid 28049, Spain.
C3 Autonomous University of Madrid
RP López-Estébanez, N (corresponding author), Univ Autonoma Madrid, Dept Geog, Madrid 28049, Spain.
EM nieves.lopez@uam.es; carolina.yacaman@uam.es; rafael.mata@uam.es
RI Yacaman, Carolina/AFG-5042-2022; LOPEZ-ESTEBANEZ, MARIA
   NIEVES/B-2168-2013; Yacaman Ochoa, Carolina/E-9646-2016
OI LOPEZ-ESTEBANEZ, MARIA NIEVES/0000-0002-4556-0314; MATA OLMO,
   RAFAEL/0000-0002-3495-5599; Yacaman Ochoa, Carolina/0000-0003-1258-0498
FU Ministry of Science and Innovation
   [ID2019-105711RB-C61/AEI/10.13039/501100011033]
FX This research was funded by the Ministry of Science and Innovation,
   National Project I+D+i 2019, "Multifunctional and territorialised
   agri-food systems in Spain. Conceptualisation and governance. Analysis
   of cases in Madrid and Castilla-La Mancha",
   ID2019-105711RB-C61/AEI/10.13039/501100011033.
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NR 75
TC 11
Z9 11
U1 2
U2 19
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD APR
PY 2022
VL 11
IS 4
AR 588
DI 10.3390/land11040588
PG 23
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 0R3WB
UT WOS:000785528500001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Barthel, S
   Isendahl, C
   Vis, BN
   Drescher, A
   Evans, DL
   van Timmeren, A
AF Barthel, Stephan
   Isendahl, Christian
   Vis, Benjamin N.
   Drescher, Axel
   Evans, Daniel L.
   van Timmeren, Arjan
TI Global urbanization and food production in direct competition for land:
   Leverage places to mitigate impacts on SDG2 and on the Earth System
SO ANTHROPOCENE REVIEW
LA English
DT Review
DE cropland; economic globalization; food security; Global South; global
   sustainability; human resilience; social-ecological teleconnection; soil
   health; urban and peri-urban agriculture; urbanization
ID AGRICULTURAL LAND; BIODIVERSITY CONSERVATION; TROPICAL FORESTS; URBAN
   EXPANSION; CULTIVATED LAND; SOIL; SECURITY; CITY; GLOBALIZATION;
   DISPLACEMENT
AB Global urbanization and food production are in direct competition for land. This paper carries out a critical review of how displacing crop production from urban and peri-urban land to other areas - because of issues related to soil quality - will demand a substantially larger proportion of the Earth's terrestrial land surface than the surface area lost to urban encroachment. Such relationships may trigger further distancing effects and unfair social-ecological teleconnections. It risks also setting in motion amplifying effects within the Earth System. In combination, such multiple stressors set the scene for food riots in cities of the Global South. Our review identifies viable leverage points on which to act in order to navigate urban expansion away from fertile croplands. We first elaborate on the political complexities in declaring urban and peri-urban lands with fertile soils as one global commons. We find that the combination of an advisory global policy aligned with regional policies enabling robust common properties rights for bottom-up actors and movements in urban and peri-urban agriculture (UPA) as multi-level leverage places to intervene. To substantiate the ability of aligning global advisory policy with regional planning, we review both past and contemporary examples where empowering local social-ecological UPA practices and circular economies have had a stimulating effect on urban resilience and helped preserve, restore, and maintain urban lands with healthy soils.
C1 [Barthel, Stephan] Univ Gavle, Gavle, Sweden.
   [Barthel, Stephan] Stockholm Univ, Stockholm, Sweden.
   [Isendahl, Christian] Univ Gothenburg, Gothenburg, Sweden.
   [Vis, Benjamin N.] Univ Kent, Canterbury, Kent, England.
   [Drescher, Axel] Univ Erlangen Nuernberg, Erlangen, Germany.
   [Evans, Daniel L.] Univ Lancaster, Lancaster, England.
   [van Timmeren, Arjan] Delft Univ Technol, Delft, Netherlands.
C3 University of Gavle; Stockholm University; University of Gothenburg;
   University of Kent; University of Erlangen Nuremberg; Lancaster
   University; Delft University of Technology
RP Barthel, S (corresponding author), Univ Gavle, Fac Engn & Sustainable Dev, Kungsbacksvagen 47, S-80176 Gavle, Sweden.
EM stephan.barthel@hig.se
RI Evans, Daniel/AAE-2326-2021; barthel, stephan/AAE-8367-2019
OI Evans, Daniel/0000-0002-4484-7874; Drescher, Axel/0000-0002-7246-7393;
   barthel, stephan/0000-0003-2637-2024
FU Arts & Humanities Research Council (AHRC; UK); Seed Box: A Mistra-Formas
   Environmental Humanities Collaboratory (Sweden); Visionary,
   Participatory Planning and Integrated Management for Resilient Cities;
   AHRC [AH/N006240/1] Funding Source: UKRI
FX The authors disclosed receipt of the following financial support for the
   research, authorship, and/or publication of this article: The paper was
   initiated as part of the project Pre-Columbian Tropical Urban Life:
   Placing the Past in Designs for Sustainable Urban Futures (TruLife),
   funded by an Arts & Humanities Research Council (AHRC; UK) grant to
   Benjamin Vis. It also gained further momentum from the project The
   Resilience of Cuban Urban and Peri-Urban Agriculture over the Longue
   Duree (CUPAL), funded by a grant from The Seed Box: A Mistra-Formas
   Environmental Humanities Collaboratory (Sweden) to Christian Isendahl.
   Barthel was also supported by Visionary, Participatory Planning and
   Integrated Management for Resilient Cities, CentralBaltic.eu.
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NR 195
TC 86
Z9 94
U1 11
U2 76
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 2053-0196
EI 2053-020X
J9 ANTHROPOCENE REV
JI Anthr. Rev.
PD APR
PY 2019
VL 6
IS 1-2
BP 71
EP 97
DI 10.1177/2053019619856672
PG 27
WC Environmental Sciences; Environmental Studies; Geosciences,
   Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geology
GA II0LM
UT WOS:000474897200005
OA Green Published, Green Accepted, Bronze
DA 2025-04-22
ER

PT J
AU Zhang, KY
   Liu, J
AF Zhang, Keyi
   Liu, Jia
TI Towards Sustainable Development of the Old City: Design Practice of
   Alleyway Integration in Old City Area Based on Heritage Corridor Theory
SO SUSTAINABILITY
LA English
DT Article
DE sustainable city; old city; heritage corridor theory; alleyway
   integration; SDG11
ID REVITALIZATION; CONSERVATION; LANDSCAPE; ROUTES
AB Urbanization has increasingly led to the overlapping of old and new spaces in historic city areas, creating challenges in preserving valuable urban heritage. To meet the requirements of the effective protection, utilization, and sustainable development of these historical spaces, this study introduces a comprehensive framework grounded in the theory of heritage corridors. The proposed framework subdivides and connects fragmented historical spatial resources through the "point-line-plane" dimensions, fostering sustainability across the environmental, ecological, and cultural domains. To validate the effectiveness of the framework, we apply it to the historic city center of Wuxi. This case study demonstrates that integrating spatial resources within the old city enhances the overall quality of urban living spaces in the historic district. The findings suggest that the heritage corridor framework is a feasible and systematic approach for the sustainable renewal of historic urban areas. Furthermore, this study offers valuable insights for advancing Sustainable Development Goal 11 (SDG 11), particularly in promoting inclusive, safe, resilient, and sustainable cities.
C1 [Zhang, Keyi; 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 6220306056@stu.jiangnan.edu.cn; liujia11231123@jiangnan.edu.cn
FU Art Project of the National Social Science Foundation of China;
   Postgraduate Research & Practice Innovation Program of Jiangsu Province
   [KYCX24_2498]; Fundamental Research Funds for the Central Universities; 
   [22BG124]
FX This research was funded by the Art Project of the National Social
   Science Foundation of China (Grant No. 22BG124), the Postgraduate
   Research & Practice Innovation Program of Jiangsu Province (Grant No.
   KYCX24_2498), and the Fundamental Research Funds for the Central
   Universities.
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NR 46
TC 3
Z9 3
U1 35
U2 35
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 18
AR 8158
DI 10.3390/su16188158
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 H5K4U
UT WOS:001323828400001
OA gold
DA 2025-04-22
ER

PT J
AU Iwaniec, DM
   Cook, EM
   Davidson, MJ
   Berbés-Blázquez, M
   Grimm, NB
AF Iwaniec, David M.
   Cook, Elizabeth M.
   Davidson, Melissa J.
   Berbes-Blazquez, Marta
   Grimm, Nancy B.
TI Integrating existing climate adaptation planning into future visions: A
   strategic scenario for the central Arizona-Phoenix region
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Content analysis; Urban planning; Future scenarios; Sustainability;
   Resilience
ID SUSTAINABILITY; CITIES; CHALLENGES; SERVICES; POLICY; STATE
AB Cities face a number of challenges to ensure that people's well-being and ecosystem integrity are not only maintained but improved for current and future generations. Urban planning must account for the diverse and changing interactions among the social, ecological, and technological systems (SETS) of a city. Cities struggle with long-range approaches to explore, anticipate, and plan for sustainability and resilience-and scenario development is one way to address this need. In this paper, we present the framework for developing what we call 'strategic' scenarios, which are scenarios or future visions created from governance documents expressing unrealized municipal priorities and goals. While scenario approaches vary based on diverse planning and decision-making objectives, only some offer tangible, systemic representations of existing plans and goals for the future that can be explored as an assessment and planning tool for sustainability and resilience. Indeed, the strategic scenarios approach presented here (1) emphasizes multi-sectoral and interdisciplinary interventions; (2) identifies systemic conflicts, tradeoffs, and synergies among existing planning goals; and (3) incorporates as yet unrealized goals and strategies representative of urban short-term planning initiatives. We present an example strategic scenario for the Central Arizona-Phoenix metropolitan region, and discuss the utility of the strategic scenario in long-term thinking for future sustainability and resilience in urban research and practice. This approach brings together diverse-sometimes competing-strategies and offers the opportunity to explore outcomes by comparing and contrasting their implications and tradeoffs, and evaluating the resulting strategic scenario against scenarios developed through alternative, participatory approaches.
C1 [Iwaniec, David M.] Georgia State Univ, Andrew Young Sch Policy Studies, Urban Studies Inst, Atlanta, GA 30303 USA.
   [Cook, Elizabeth M.] Barnard Coll, Environm Sci Dept, New York, NY USA.
   [Davidson, Melissa J.; Berbes-Blazquez, Marta; Grimm, Nancy B.] Arizona State Univ, Julie Ann Wrigley Global Inst Sustainabil, Tempe, AZ 85287 USA.
   [Davidson, Melissa J.; Berbes-Blazquez, Marta; Grimm, Nancy B.] Arizona State Univ, Sch Sustainabil, Tempe, AZ 85287 USA.
   [Berbes-Blazquez, Marta] Arizona State Univ, Sch Future Innovat Soc, Tempe, AZ 85287 USA.
   [Grimm, Nancy B.] Arizona State Univ, Sch Life Sci, Box 874501, Tempe, AZ 85287 USA.
C3 University System of Georgia; Georgia State University; Barnard College;
   Arizona State University; Arizona State University-Tempe; Arizona State
   University; Arizona State University-Tempe; Arizona State University;
   Arizona State University-Tempe; Arizona State University; Arizona State
   University-Tempe
RP Grimm, NB (corresponding author), Arizona State Univ, Sch Life Sci, Box 874501, Tempe, AZ 85287 USA.
EM diwaniec@gsu.edu; ecook@barnard.edu; melissa.j.davidson@asu.edu;
   mberbes@asu.edu; nbgrimm@asu.edu
RI Berbes, Marta/AAE-9374-2020; Grimm, Nancy/D-2840-2009; Iwaniec,
   David/M-7993-2014
OI Grimm, Nancy/0000-0001-9374-660X; Berbes-Blazquez,
   Marta/0000-0002-2685-873X; Cook, Elizabeth M./0000-0002-4290-7482;
   Iwaniec, David/0000-0002-0410-4152
FU United States National Science Foundation [1637590, 1444755, 1934933];
   Chilean CONICYT-FONDECYT (Science, Technology, Knowledge and Innovation
   Ministry of Chile) [3150290]; Division Of Environmental Biology; Direct
   For Biological Sciences [1637590] Funding Source: National Science
   Foundation
FX This research was funded by United States National Science Foundation
   grant numbers 1637590 (Central Arizona-Phoenix Long-Term Ecological
   Research Program), 1444755 (Urban Resilience to Extremes Sustainability
   Research Network), and 1934933 (SETS Convergence) and Chilean
   CONICYT-FONDECYT grant number 3150290 (Science, Technology, Knowledge
   and Innovation Ministry of Chile). We are grateful for the help from
   Xiaoxiao Li for land use land cover modeling and to Matt Boylan for
   place-based vignette renderings.
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Z9 30
U1 2
U2 44
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 AUG
PY 2020
VL 200
AR 103820
DI 10.1016/j.landurbplan.2020.103820
PG 8
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 LN0ZK
UT WOS:000532674300004
OA hybrid
DA 2025-04-22
ER

PT J
AU Trogrlic, RS
   Rijke, J
   Dolman, N
   Zevenbergen, C
AF Trogrlic, Robert Sakic
   Rijke, Jeroen
   Dolman, Nanco
   Zevenbergen, Chris
TI Rebuild by Design in Hoboken: A Design Competition as a Means for
   Achieving Flood Resilience of Urban Areas through the Implementation of
   Green Infrastructure
SO WATER
LA English
DT Article
DE urban resilience; flooding; governance; green infrastructure; Hoboken;
   Rebuild by Design
ID STORMWATER MANAGEMENT; CLIMATE-CHANGE; GOVERNANCE; IMPEDIMENTS;
   ADAPTATION; LESSONS
AB The Rebuild by Design (RBD) competition was launched after the devastating impact of Hurricane Sandy, and the winning designs have put a significant emphasis on green infrastructure (GI) as a means of achieving flood resilience in urban areas. Previous research in the field of urban stormwater management indicates that wide-spread implementation of GI remains a challenge, largely due to a lack of understanding of the required governance approaches. Therefore, by using a case study of Hoboken, for which the winning design was developed, this paper explores whether RBD provides governance structures and processes needed for the uptake of GI. Semi-structured interviews and desk study provided the data for an analysis of the presence of factors for supporting the transformative governance needed to facilitate the uptake of innovative solutions. Results indicate that RBD brought a greater change in terms of governance processes when compared to governance structures. In Hoboken, RBD created a narrative for long-term change, put GI as a preferred solution for tackling multiple challenges, and strengthened the local political buy-in. However, pitfalls were observed, such as limited funding provision, lack of regulatory compliance, economic justification and large investments required from public and private parties. The absence of these factors can hinder the overall uptake of the GI solution. Even though the design competition presents a novel approach to the field of resilience development, further steps should be made in understanding how the RBD methodology can be adjusted to provide results of equal quality in different settings (e.g., less developed regions, different governance contexts).
C1 [Trogrlic, Robert Sakic] Heriot Watt Univ, Inst Infrastruct & Environm, Sch Energy Geosci Infrastruct & Environm, Edinburgh EH14 4AS, Midlothian, Scotland.
   [Rijke, Jeroen] HAN Univ Appl Sci, Knowledge Ctr Engn & Soc, NL-6826 CC Arnhem, Netherlands.
   [Rijke, Jeroen] VHL Univ Appl Sci, Appl Res Ctr Delta Areas & Resources, 26a Larensteinselaan, NL-6882 CT Velp, Netherlands.
   [Dolman, Nanco] Royal HaskoningDHV, 47 Contactweg, NL-1090 GE Amsterdam, Netherlands.
   [Zevenbergen, Chris] IHE Delft Inst Water Educ, Water Sci & Engn Dept, 7 Westvest, NL-2611 AX Delft, Netherlands.
C3 Heriot Watt University; IHE Delft Institute for Water Education
RP Trogrlic, RS (corresponding author), Heriot Watt Univ, Inst Infrastruct & Environm, Sch Energy Geosci Infrastruct & Environm, Edinburgh EH14 4AS, Midlothian, Scotland.
EM RS36@HW.AC.UK; j.rijke@han.nl; nanco.dolman@rhdhv.com;
   c.zevenbergen@un-ihe.org
RI Dolman, Nanco/AGM-8983-2022
OI SAKIC TROGRLIC, ROBERT/0000-0002-6627-873X; Dolman,
   Nanco/0000-0002-8134-6307
FU Royal HaskoningDHV; CRC for Water Sensitive Cities; European Commission,
   as part of the Erasmus Mundus MSc Master Programme in Flood Risk
   Management
FX This research was financially supported by Royal HaskoningDHV, CRC for
   Water Sensitive Cities and the European Commission, as part of the
   Erasmus Mundus MSc Master Programme in Flood Risk Management, all of
   whom are hereby acknowledged. We thank the Rebuild by Design team, and
   particularly Tara Eisenberg for their review of a first draft of the
   paper. Further thanks are directed towards those who offered their
   precious time to be interviewed. Finally, we thank Annie Visser and
   Joanne Craven for proofreading the manuscript.
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IS 5
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DI 10.3390/w10050553
PG 15
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA GJ3LO
UT WOS:000435196700019
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Sun, XQ
   Wandelt, S
   Zhang, AM
AF Sun, Xiaoqian
   Wandelt, Sebastian
   Zhang, Anming
TI Resilience of cities towards airport disruptions at global scale
SO RESEARCH IN TRANSPORTATION BUSINESS AND MANAGEMENT
LA English
DT Article
DE Airport failure; City global resilience; Rerouteable passengers
ID CLIMATE-CHANGE; AIR TRANSPORT; NETWORK; VULNERABILITY; CONNECTIVITY;
   INVESTMENTS; COMPETITION; ADAPTATION; DISASTERS; EVOLUTION
AB Improving the efficiency and resilience of air transportation is one of the major challenges in the 21st century. Large cities are often in the catchment area of multiple airports. Accordingly, the services at these airports can be comple-mentary or competitive; an airport-specific view of resilience neglects the effects of such interactions. In this study, we analyze the resilience of cities in the presence of airport disruptions. The major research question we address is: How much would the air accessibility of complete cities lose under the outage of a single airport? We perform a study at the global level, comparing the resilience of 5000 largest cities. Two types of passenger-focused measures are proposed to quantify the impact of airport disruption on the air accessibility of cities: The unaffected passengers and the reroutable passengers. We find that some countries have resilient cities, while others are more vulnerable to air-port disruptions. Our study contributes to the literature by a unique combination of city-view, accurate airport-to-city aggregation with road driving distance, and presence of real passenger data.
C1 [Sun, Xiaoqian; Wandelt, Sebastian] Beihang Univ, Sch Elect & Informat Engn, Natl Key Lab CNS ATM, Beijing 100191, Peoples R China.
   [Sun, Xiaoqian; Wandelt, Sebastian] Integrated Transportat Big Data Ctr, Natl Engn Lab, Beijing 100191, Peoples R China.
   [Zhang, Anming] Univ British Columbia, Sauder Sch Business, Vancouver, BC, Canada.
C3 Beihang University; University of British Columbia
RP Wandelt, S (corresponding author), Beihang Univ, Sch Elect & Informat Engn, Natl Key Lab CNS ATM, Beijing 100191, Peoples R China.
EM sunxq@buaa.edu.cn; wandelt@informatik.hu-berlin.de;
   anming.zhang@sauder.ubc.ca
RI Wandelt, Sebastian/ISB-7340-2023
OI Zhang, Anming/0000-0002-9457-8414
FU National Natural Science Foundation of China [61861136005, 61851110763,
   61601013, 71731001]
FX This study is supported by the National Natural Science Foundation of
   China (Grants No. 61861136005, No. 61851110763, No. 61601013, No.
   71731001).
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TC 21
Z9 22
U1 3
U2 31
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-5395
EI 2210-5409
J9 RES TRANSP BUS MANAG
JI Res. Transp. Bus. Manag.
PD MAR
PY 2020
VL 34
SI SI
AR 100452
DI 10.1016/j.rtbm.2020.100452
PG 9
WC Business; Management; Transportation
WE Social Science Citation Index (SSCI)
SC Business & Economics; Transportation
GA ND7DH
UT WOS:000562062700014
DA 2025-04-22
ER

PT J
AU Nathan, M
AF Nathan, Max
TI The city and the virus
SO URBAN STUDIES
LA English
DT Article
DE cities; coronavirus; inequalities; labour markets; urban governance
ID POST-PANDEMIC CITY; WORKING; HOME; WILL
AB Cities around the world are the epicentres of the coronavirus pandemic: both in the first wave, as the disease spread from East Asia, and now, as many countries enter a third wave of infections. These spatial patterns are still far from properly understood, though there is no shortage of possible explanations. I set out the emerging theories about cities' role in the spread of coronavirus, testing these against existing studies and new analysis for English conurbations, cities and towns. Both reveal an urbanised public health crisis, in which vulnerabilities and health impacts track (a) urban structural inequalities, and (b) wider weaknesses in institutions, their capabilities and leaders. I then turn to 'post-pandemic' visions of future cities. I argue that this framing is unhelpful: even with mass vaccination, COVID-19 is likely to remain one of many globalised endemic diseases. Instead, 'pandemic-resilient' urban places will require improved economic, social and physical infrastructure, alongside better public policy. Describing such future cities is still highly speculative: I identify five zones of change.
C1 [Nathan, Max] UCL, London, England.
   [Nathan, Max] Ctr Econ Performance, London, England.
C3 University of London; University College London
RP Nathan, M (corresponding author), UCL, Bartlett Ctr Adv Spatial Anal, 90 Tottenham Court, London WC1E 6BT, England.
EM max.nathan@ucl.ac.uk
OI Nathan, Max/0000-0002-4617-4300
FU ESRC [ES/T014431/1] Funding Source: UKRI
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NR 95
TC 23
Z9 23
U1 0
U2 27
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 JUN
PY 2023
VL 60
IS 8
SI SI
BP 1346
EP 1364
DI 10.1177/00420980211058383
EA DEC 2021
PG 19
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA J0TO7
UT WOS:000736245200001
OA hybrid, Green Published, Green Accepted
DA 2025-04-22
ER

PT J
AU Shao, WW
   Su, X
   Lu, J
   Liu, JH
   Yang, ZY
   Mei, C
   Liu, C
   Lu, JH
AF Shao, Weiwei
   Su, Xin
   Lu, Jie
   Liu, Jiahong
   Yang, Zhiyong
   Mei, Chao
   Liu, Chuang
   Lu, Jiahui
TI Urban Resilience of Shenzhen City under Climate Change
SO ATMOSPHERE
LA English
DT Article
DE extreme precipitation; temporal change; CMIP6; prediction; urban
   resilience; sponge city
ID SPONGE CITY; WATER MANAGEMENT; EXTREME PRECIPITATION; CHINA;
   TEMPERATURE; MODELS; RISK; OPPORTUNITIES; CONSTRUCTION; STRATEGIES
AB The Chinese government attaches great importance to climate change adaptation and has issued relevant strategies and policies. Overall, China's action to adapt to climate change remains in its infancy, and relevant research needs to be further deepened. In this paper, we study the future adaptive countermeasures of Shenzhen city in the Pearl River Delta in terms of climate change, especially urban flood risk resilience. Based on the background investigation of urban flood risk in Shenzhen, this paper calculates the annual precipitation frequency of Shenzhen from 1953 to 2020, and uses the extreme precipitation index as a quantitative indicator to analyze the changes in historical precipitation and the impact of major flood disasters in Shenzhen city in previous decades. Based on the six kinds of model data of the scenario Model Inter-comparison Project (MIP) in the sixth phase of the Coupled Model Inter-comparison Project (CMIP6), uses the Taylor diagram and MR comprehensive evaluation method to evaluate the ability of different climate models to simulate extreme precipitation in Shenzhen, and the selected models are aggregated and averaged to predict the climate change trend of Shenzhen from 2020 to 2100. The prediction results show that Shenzhen will face more severe threats from rainstorms and floods in the future. Therefore, this paper proposes a resilience strategy for the city to cope with the threat of flood in the future, including constructing a smart water management system and promoting the development of a sponge city. Moreover, to a certain extent, it is necessary to realize risk transfer by promoting a flood insurance system.
C1 [Shao, Weiwei; Su, Xin; Liu, Jiahong; Yang, Zhiyong; Mei, Chao; Liu, Chuang; Lu, Jiahui] China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China.
   [Lu, Jie] Liaoning Normal Univ, Sch Geog Sci, Dalian 116029, Peoples R China.
C3 China Institute of Water Resources & Hydropower Research; Liaoning
   Normal University
RP Liu, JH (corresponding author), China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China.
EM shaoww@iwhr.com; suxin199109@gmail.com; lj895232175@gmail.com;
   liujh@iwhr.com; yangzy@iwhr.com; meichao@iwhr.com;
   liuchuang1619@gmail.com; lujiahui1215@gmail.com
RI Mei, Chao/Y-3225-2019; Shao, Weiwei/AAO-6848-2021; Liu,
   Jiahong/AAG-1319-2021
OI Shao, Weiwei/0000-0002-4421-6781
FU Chinese National Key Research and Development Program [2018YFC1508203];
   Chinese National Natural Science Foundation [51979285, 51739011,
   51879274]; GIZ (Deutsche Gesellschaft fur Internationale
   Zusammenarbeit); SDC (Swiss Agency for Development and Cooperation)
FX The researchers would like to extend their thanks to the Chinese
   National Key Research and Development Program (2018YFC1508203) and
   Chinese National Natural Science Foundation (Nos. 51979285, 51739011 and
   51879274). We also want to express the thanks to the Climate Risk and
   Resilience in China (CRR) project supported by GIZ (Deutsche
   Gesellschaft fur Internationale Zusammenarbeit) and SDC (Swiss Agency
   for Development and Cooperation). We also thank the anonymous reviewers
   and the Editor for their insightful comments and helpful suggestions to
   improve this manuscript. We also thank the help of World Climate
   Research Programme's Working Group on Coupled Modelling, which is
   responsible for CMIP.
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NR 80
TC 19
Z9 20
U1 27
U2 166
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4433
J9 ATMOSPHERE-BASEL
JI Atmosphere
PD MAY
PY 2021
VL 12
IS 5
AR 537
DI 10.3390/atmos12050537
PG 21
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA SG4TH
UT WOS:000653433400001
OA gold
DA 2025-04-22
ER

PT J
AU Simone, A
   Cesaro, A
   Del Giudice, G
   Di Cristo, C
   Fecarotta, O
AF Simone, A.
   Cesaro, A.
   Del Giudice, G.
   Di Cristo, C.
   Fecarotta, O.
TI Potentialities of Complex Network Theory Tools for Urban Drainage
   Networks Analysis
SO WATER RESOURCES RESEARCH
LA English
DT Article
DE urban drainage system; monitoring; complex network theory;
   vulnerability; contaminant
ID WASTE-WATER; VULNERABILITY; RESILIENCE; REHABILITATION; EPIDEMIOLOGY;
   POLLUTION; SYSTEMS; MODEL
AB Urban drainage networks (UDNs) represent important infrastructures to protect and maintain community health and safety. For these reasons, technicians and researcher are focusing more and more on topics related to vulnerability, resilience and monitoring for controlling illicit intrusions, contaminant and pathogenic spread. In the last years the complex network theory (CNT) is attracting attention as a new, useful and structured approach to analyze urban systems. The aim of this work is to evaluate potentialities of CNT approaches for UDNs vulnerability assessment and monitoring system planning. Limits and potentialities of applicability of CNT tools to UDNs are first provided evaluating the performances of standard centrality metrics. Then, it is proposed the use of tailored metrics embedding prior information, as intrinsic relevance of each node and pipe flow direction, which derive from the Horton's hierarchy and geometric data (pipe slope), respectively, without performing hydraulic simulations. The analysis is applied on two schematic literature networks of different complexity and to a real case-study. The results suggest that vulnerability/resilience, monitoring design, contaminant and pathogenic spreads can be effectively analyzed using tailored metrics. Therefore, the proposed approach represents a complementary tool respect the more complex and computationally expensive methodologies and it is particular useful for large complex networks.
C1 [Simone, A.; Cesaro, A.; Del Giudice, G.; Di Cristo, C.; Fecarotta, O.] Univ Napoli Federico II, Naples, Italy.
C3 University of Naples Federico II
RP Di Cristo, C (corresponding author), Univ Napoli Federico II, Naples, Italy.
EM cristiana.dicristo@unina.it
RI Simone, Antonietta/IWM-4623-2023; Fecarotta, Oreste/P-7250-2016; DEL
   GIUDICE, Giuseppe/K-6799-2013
OI Di Cristo, Cristiana/0000-0001-6578-4502; DEL GIUDICE,
   Giuseppe/0000-0002-4585-4590; Simone, Antonietta/0000-0001-8400-5201
FU University of Naples Federico II under the Project "Optimal Sewer system
   surveillance for Environmental and Epidemiologic Studies" (FRA2020)
FX The University of Naples Federico II supported this research under the
   Project "Optimal Sewer system surveillance for Environmental and
   Epidemiologic Studies" (FRA2020).
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NR 46
TC 11
Z9 11
U1 11
U2 42
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 AUG
PY 2022
VL 58
IS 8
AR e2022WR032277
DI 10.1029/2022WR032277
PG 18
WC Environmental Sciences; Limnology; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Marine & Freshwater Biology; Water
   Resources
GA 3Z1FK
UT WOS:000844165500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Selm, KR
   Hess, GR
   Peterson, MN
   Beck, SM
   McHale, MR
AF Selm, Kathryn R.
   Hess, George R.
   Peterson, M. Nils
   Beck, Scott M.
   McHale, Melissa R.
TI Developing an Instrument to Measure Autonomous Adaptive Capacity to
   Climate Change among Urban Households
SO FRONTIERS IN ECOLOGY AND EVOLUTION
LA English
DT Article
DE adaptive capacity; climate change; scale development; vulnerability;
   urbanization; resilience; capitals; livelihoods
ID ADAPTATION; VULNERABILITY; LEVEL; DETERMINANTS; FRAMEWORK; CAPITALS
AB The capacity of households in urban environments to adapt and react to climate change can affect the resilience of the whole community, and instruments for systematically measuring that capacity are needed. We used Raleigh, NC as a case study to explore the dimensions of autonomous adaptive capacity of urban households and to create a scale and associated survey instrument to measure them. Our approach was guided by four capitals that support human livelihoods: social, human, physical, and financial. We surveyed 200 households in Raleigh, NC, and used a principal components analysis to test the scale and survey instrument. Results suggest the scale is a useful and concise tool. Three major dimensions were present among the scale items: financial capital, political awareness, and access to resources. Together, these three dimensions can be used to measure adaptive capacity among different households. These findings are supported by similar work illustrating the value of income inequality and political awareness as indicators of adaptive capacity. Our results also demonstrate that complex relationships among the livelihood capitals may confound our ability to measure financial, physical, and human capitals separately. This framework for assessing adaptive capacity of households, with further refinement and testing, may be used in urban areas to evaluate programs designed to impact resilience to climate change.
C1 [Selm, Kathryn R.] North Carolina State Univ, Nat Resources Program, Dept Forestry & Environm Resources, Raleigh, NC 27695 USA.
   [Hess, George R.] North Carolina State Univ, Dept Forestry & Environm Resources, Raleigh, NC USA.
   [Peterson, M. Nils] North Carolina State Univ, Forestry & Environm Resources, Fisheries Wildlife & Conservat Biol Program, Raleigh, NC USA.
   [Beck, Scott M.; McHale, Melissa R.] Colorado State Univ, Nat Resources Ecol Lab, Dept Ecosyst Sci & Sustainabil, Ft Collins, CO 80523 USA.
C3 North Carolina State University; North Carolina State University; North
   Carolina State University; Colorado State University System; Colorado
   State University Fort Collins
RP Selm, KR (corresponding author), North Carolina State Univ, Nat Resources Program, Dept Forestry & Environm Resources, Raleigh, NC 27695 USA.
EM krselm@ncsu.edu
RI McHale, Melissa/AIA-0220-2022
OI Peterson, Nils/0000-0002-4246-1206
FU National Science Foundation through the Triangle, NC, Urban Long Term
   Research Area-Exploratory award [BCS-0948229]; US Environmental
   Protection Agency through the Triangle, NC, Urban Long Term Research
   Area-Exploratory award [BCS-0948229]
FX We thank the National Science Foundation, and the US Environmental
   Protection Agency through a supplemental award, for their support of
   this research through the Triangle, NC, Urban Long Term Research
   Area-Exploratory award (BCS-0948229).
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NR 73
TC 6
Z9 7
U1 0
U2 14
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 FEB 9
PY 2018
VL 6
AR 13
DI 10.3389/fevo.2018.00013
PG 7
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HC2GW
UT WOS:000451621300001
OA gold
DA 2025-04-22
ER

PT J
AU Hassani, MR
   Janbehsarayi, SFM
   Niksokhan, MH
   Sharma, A
AF Hassani, Mohammad Reza
   Janbehsarayi, Seyyed Farid Mousavi
   Niksokhan, Mohammad Hossein
   Sharma, Ashish
TI Intersecting social welfare with resilience to streamline urban flood
   management
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Green infrastructures (GI); Urban stormwater management; Resiliency
   analysis; Social welfare; Storm Water Management Model (SWMM); Urban
   hydrology
ID MODEL
AB Urban policymakers have long searched for stormwater management plans that incentivize stakeholders to adopt Green Infrastructure (GI) while effectively reducing the vulnerability of drainage systems. In this regard, our research introduces a novel framework to develop GI strategies that provide both hydrological resiliency and social acceptance. To achieve this, first, using a coupled Stormwater Management Model (SWMM) and Nondominated Sorting Genetic Algorithm-II (NSGA-II), optimal alternatives for GI planning were generated. In the optimization process, we used a novel Simple Urban Flood Resilience Index (SUFRI) to consider the internal performance of the system in identifying resilient plans. Derived management strategies warrant runoff volume reduction and resilience improvement up to 31.3% and 55.1%, respectively. In the next step, Utilitarian-based Social Welfare (USW) was employed to clarify the socio-economic behavior of management strategies. Results indicate that while financial incentives significantly motivate developers to implement GI, they cannot guarantee high social welfare, and achieving a sustainable solution requires evaluating both SUFRI and USW layers under different subsidy levels. Visualizing the SUFRI layer revealed a critical failure in the resiliency trend of solutions that cannot be detected by evaluating simpler metrics, such as runoff volume reduction. This highlights the importance of the SUFRI method in conducting deeper evaluations and preventing financial waste. Finally, we navigated the intersection of USW and SUFRI measures to reach an ideal management plan with optimal supporting level. Our findings showed that the selected solution with the highest social acceptability can improve the resiliency of the system by 29 %. This study is a novel combination of the hydrological and social aspects of stormwater management, enabling decision-makers to take significant steps towards sustainable urban development.
C1 [Hassani, Mohammad Reza; Janbehsarayi, Seyyed Farid Mousavi; Niksokhan, Mohammad Hossein] Univ Tehran, Fac Environm, Tehran, Iran.
   [Sharma, Ashish] Univ New South Wales, Sch Civil & Environm Engn, Sydney, Australia.
C3 University of Tehran; University of New South Wales Sydney
RP Niksokhan, MH (corresponding author), Univ Tehran, Fac Environm, Tehran, Iran.
EM mohassani74@ut.ac.ir; farid.mousavi@ut.ac.ir; niksokhan@ut.ac.ir;
   a.sharma@unsw.edu.au
RI Hassani, Mohammad/AAS-8872-2021; sharma, ashish/KQV-0194-2024;
   Niksokhan, Mohammad Hossein/S-4222-2018
OI Niksokhan, Mohammad Hossein/0000-0001-8172-696X; Mousavi Janbehsarayi,
   Seyyed Farid/0000-0002-5347-4176
CR Ahern J, 2011, LANDSCAPE URBAN PLAN, V100, P341, DOI 10.1016/j.landurbplan.2011.02.021
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NR 41
TC 0
Z9 0
U1 17
U2 17
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 1
PY 2024
VL 116
AR 105927
DI 10.1016/j.scs.2024.105927
EA OCT 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 L1M6L
UT WOS:001348436400001
DA 2025-04-22
ER

PT J
AU Yin, SG
   Zhou, YJ
   Zhang, CG
   Wu, NN
AF Yin, Shanggang
   Zhou, Yijing
   Zhang, Changgan
   Wu, Nannan
TI Impact of regional integration policy on urban ecological resilience: A
   case study of the Yangtze River Delta region, China
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Ecological resilience; Regional integration policy; Impact effect;
   Difference-in-differences method; Yangtze River Delta
ID INDUSTRIAL-POLICY; PERSPECTIVE; GROWTH
AB Regional integration is a key facet of economic globalization that facilitates the efficient movement and optimal distribution of resources. Although its economic and environmental impacts are well-documented, the implications for ecological resilience (ER) are not yet fully understood. This study examines China's Yangtze River Delta and introduces an ER metric that assesses resistance, adaptability, and recovery. The analysis revealed that regional integration policies have notably boosted urban ER by 2.73%, a result that is upheld by rigorous testing methods such as parallel trends and placebo assessments. Furthermore, the impact of these policies on ER was variable, with a slight reduction in influence as the economic scale and population size increase. Moreover, the results indicate that regional integration can bolster urban ER by refining industrial structures and advancing green technological innovations. Interestingly, the positive impact of green innovation on ER enhancement was more significant than that of industrial upgrading. These insights contribute to a deeper understanding of the ecological implications of regional integration, and offer practical guidance for enhancing ER in integrated regions.
C1 [Yin, Shanggang; Zhou, Yijing; Zhang, Changgan; Wu, Nannan] Zhejiang Normal Univ, Coll Geog & Environm Sci, Jinhua 321004, Peoples R China.
C3 Zhejiang Normal University
RP Yin, SG (corresponding author), Zhejiang Normal Univ, Coll Geog & Environm Sci, Jinhua 321004, Peoples R China.
EM yinshanggang@zjnu.edu.cn
FU National Natural Science Foundation of China [42301231]; Ministry of
   Education Humanities and Social Sciences Research Youth Fund Project
   [23YJCZH282]; Zhejiang Provincial Natural Science Foundation of China
   [ZCLQ24D0101]; Public Technology Application Research Project of Jinhua
   [2023-4-029]
FX This work was supported by the National Natural Science Foundation of
   China [Grant No. 42301231] ; the Ministry of Education Humanities and
   Social Sciences Research Youth Fund Project [Grant No. 23YJCZH282] ; the
   Zhejiang Provincial Natural Science Foundation of China [Grant No.
   ZCLQ24D0101] and the Public Technology Application Research Project of
   Jinhua [Grant No. 2023-4-029] .
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NR 88
TC 0
Z9 0
U1 28
U2 28
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 DEC 25
PY 2024
VL 485
AR 144375
DI 10.1016/j.jclepro.2024.144375
EA DEC 2024
PG 14
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 S5H1R
UT WOS:001398520700001
DA 2025-04-22
ER

PT J
AU Yang, GJ
   Wu, DX
   Mao, JB
   Du, YF
AF Yang, Guojun
   Wu, Dongxu
   Mao, Jianbo
   Du, Yongfeng
TI Comprehensive resilience assessment of bridge networks using ensemble
   learning method
SO ADVANCES IN ENGINEERING SOFTWARE
LA English
DT Article
DE Bridge network; Ensemble learning; Network characteristic; Network
   efficiency; Seismic resilience assessment
ID HIGHWAY BRIDGES; VULNERABILITY; CITIES
AB The assessment of seismic resilience in bridge networks holds significant importance for urban disaster prevention and mitigation efforts. Unlike individual bridges, there has been limited efficiency in assessing bridge networks. A seismic resilience assessment methodology for bridge networks using ensemble learning methods is proposed in this paper. Initially, a comprehensive resilience index is proposed, integrating both structural and functional aspects of bridge networks. Using 3 ensemble learning methods, 9 parameters related to network structure and traffic characteristics are chosen as input variables for predicting the seismic resilience index. Finite element models of 18 bridges are constructed and combined to generate 3500 sets of virtual bridge networks for model training. The predictive accuracy of models trained using the 3 ensemble methods exceeds 89%, and the expected values of peak ground acceleration (PGA) and functional loss rate are the most influential features. The methodology offers insights into the application of ensemble learning for bridge network seismic resilience assessment.
C1 [Yang, Guojun; Wu, Dongxu; Mao, Jianbo; Du, Yongfeng] Lanzhou Univ Technol, Sch Civil Engn, Lanzhou 730050, Peoples R China.
   [Yang, Guojun; Du, Yongfeng] Lanzhou Univ Technol, Western Engn Res Ctr Disaster Mitigat Civil Engn, Lanzhou 730050, Peoples R China.
C3 Lanzhou University of Technology; Lanzhou University of Technology
RP Yang, GJ (corresponding author), Lanzhou Univ Technol, Sch Civil Engn, Lanzhou 730050, Peoples R China.; Yang, GJ (corresponding author), Lanzhou Univ Technol, Western Engn Res Ctr Disaster Mitigat Civil Engn, Lanzhou 730050, Peoples R China.
EM yanggj403@163.com
OI Yang, Guojun/0000-0002-2203-3183
FU National Natural Science Foundation of China [52168042, 52468044]; Gansu
   Natural Science Foundation of China [22JR5RA250]; China Postdoctoral
   Science Foundation [2019M653897XB]
FX This paper is supported by the National Natural Science Foundation of
   China (52168042, 52468044) , Gansu Natural Science Foundation of China
   (22JR5RA250) , China Postdoctoral Science Foundation (2019M653897XB) .
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NR 49
TC 0
Z9 0
U1 19
U2 24
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0965-9978
EI 1873-5339
J9 ADV ENG SOFTW
JI Adv. Eng. Softw.
PD DEC
PY 2024
VL 198
AR 103774
DI 10.1016/j.advengsoft.2024.103774
EA SEP 2024
PG 17
WC Computer Science, Interdisciplinary Applications; Computer Science,
   Software Engineering; Engineering, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering
GA G3G9S
UT WOS:001315569400001
DA 2025-04-22
ER

PT J
AU Suzuki, T
AF Suzuki, Takeyasu
TI Building Up a Common Recognition of City Development in the Southern
   Part of Kofu Basin under the Initiative of Knowledge Brokers with the
   Cooperation of Experts
SO SUSTAINABILITY
LA English
DT Article
DE study group; resilient to floods; sustainable city; knowledge brokers;
   green infrastructure; Kofu Basin
AB Extreme weather caused by global warming has caused an increase in the number and intensity of heavy rain disasters. Almost half the area of the Kofu Basin, Yamanashi Prefecture, Japan, is expected to be flooded by the largest expected rainfall in the basin. Approximately 310,000 people live in the inundation area, and the formulation of a wide-area evacuation plan in the event of a flood is an urgent issue. In the southern part of this area, where the estimated inundation depth is 5-10 m, a new station of the Linear Chuo Shinkansen Line, which will start operation in 2027, is planned, and urban development centered on the station is expected. In order to build a sustainable city that is resilient to floods in such a flood hazard area, the author established a study group on urban development consisting of knowledge brokers-professors at University of Yamanashi-and experts with the participation of local government observers. The group has proposed a future image of sustainable Kofu Basin under the initiative of knowledge brokers with the cooperation of experts. The group attempted to put into practice the concept of sustainable cities presented by the author. As a result, by the unusual town development activities of the study group, perspective drawings that provide the participants a common recognition of the city development were successfully created.
C1 [Suzuki, Takeyasu] Univ Yamanashi, Disaster & Environmentally Sustainable Adm Res Ct, Kofu, Yamanashi 4008511, Japan.
C3 University of Yamanashi
RP Suzuki, T (corresponding author), Univ Yamanashi, Disaster & Environmentally Sustainable Adm Res Ct, Kofu, Yamanashi 4008511, Japan.
EM takeyasu@yamanashi.ac.jp
FU University of Yamanashi the 2019 Regional Promotion Project Research
   Grant
FX This research was funded by University of Yamanashi the 2019 Regional
   Promotion Project Research Grant.
CR [Anonymous], **NON-TRADITIONAL**
   [Anonymous], **NON-TRADITIONAL**
   [Anonymous], **NON-TRADITIONAL**
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NR 28
TC 2
Z9 2
U1 1
U2 7
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2020
VL 12
IS 16
AR 6316
DI 10.3390/su12166316
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 OC2BK
UT WOS:000578965400001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Onyima, BN
   Nwabueze, LN
   Nnadozie, CF
   Omovoh, GO
   Mmachaka, T
   Omovoh, BO
   Arimoro, FO
   Uku, JE
   Akamagwuna, FC
   Onyima, GO
   Odume, ON
AF Onyima, Blessing Nonye
   Nwabueze, Lydia Ngozichukwuka
   Nnadozie, Chika Felicitas
   Omovoh, Gift Ochonogor
   Mmachaka, Thandi
   Omovoh, Blessing Odafe
   Arimoro, Francis Ofurum
   Uku, Jude Edafe
   Akamagwuna, Frank Chuckwuzuoke
   Onyima, Gospel Ogochukwu
   Odume, Oghenekaro Nelson
TI Livelihood risks arising from urban river pollution in selected marginal
   communities in the Federal Capital Territory, Nigeria
SO URBAN ECOSYSTEMS
LA English
DT Article
DE Adaptation; Risk framework; River-dependent livelihoods; Urban River
   pollution; Vulnerability; Resilience
ID MANAGEMENT; ABUJA
AB Urban river pollution has become a critical sustainability challenge worldwide. In the studies of urban river pollution, very little research focus has gone into understanding pollution effects on main river-dependent livelihoods among marginal communities in urban centres. In this study, using a context-specific risk framework, we identify and analyze (i) urban river-dependent livelihoods (ii) pathways to community exposure to urban river pollution (iii) effects and consequences on urban river-dependent livelihoods (iv) potential intervention strategies. The study uses knowledge co-production workshops, and ethnographic methods involving participant observations, focus group discussions, in-depth interviews, and key informant interviews as a means of generating the needed data. Our findings indicate that degraded urban rivers have had profound negative effects on river-dependent livelihoods such as food processing, poultry, livestock farming and the small-scale brick industries for construction. Further, urban river pollution has also led to livelihood-related conflicts over access to limited, good-quality water resources. Intervention strategies to improve livelihood resilience are suggested at the institutional, communal and livelihood levels. Institutional interventions include strengthening environmental laws compliance and enforcement, inter-agency collaborations and extending sanitation and urban planning to marginal communities in cities. Communal interventions are sensitization campaigns, enforced sanitation practices and calls for behavioural and attitudinal change. Livelihoods-linked interventions aim to reduce livelihood strategies' contributions to river pollution. Such interventions include proper disposal of waste generated through livelihood strategies, and instituting practices that minimize run-off from wet industries.
C1 [Onyima, Blessing Nonye; Nwabueze, Lydia Ngozichukwuka] Nnamdi Azikiwe Univ, Dept Sociol Anthropol, Awka, Nigeria.
   [Nnadozie, Chika Felicitas; Akamagwuna, Frank Chuckwuzuoke; Odume, Oghenekaro Nelson] Rhodes Univ, Inst Water Res, POB 94, ZA-6140 Grahamstown, South Africa.
   [Omovoh, Gift Ochonogor] Fed Minist Environm, Environm Assessment Dept, Environm House,Independence Way South, Abuja, Nigeria.
   [Mmachaka, Thandi] Dept Water & Sanitat, Pretoria, South Africa.
   [Omovoh, Blessing Odafe] Fed Minist Environm, Dept Forestry, Fed Capital Terr, Plot 393-394 Augustus Aikhomu Way, Abuja, Nigeria.
   [Arimoro, Francis Ofurum; Uku, Jude Edafe] Fed Univ Technol, Dept Anim Biol, Appl Hydrobiol Unit, Minna, Nigeria.
   [Onyima, Gospel Ogochukwu] WHO Field Off Jerome Udorji State Secretariate, Awka, Anambra, Nigeria.
C3 Rhodes University
RP Onyima, BN (corresponding author), Nnamdi Azikiwe Univ, Dept Sociol Anthropol, Awka, Nigeria.
EM bn.onyima@unizik.edu.ng
RI Nnadozie, chika/JXN-3211-2024; Akamagwuna, Frank/HSH-8654-2023; Onyima,
   Blessing/AAO-9692-2020; Arimoro, Francis/AAV-2783-2020
OI Onyima, Blessing Nonye/0000-0001-8890-0422
FU Rhodes University; LIRA 2030 Africa programme; Network African Science
   Academies (NASAC); Swedish International Development Cooperation Agency
   (Sida) [2030-GR08/19]; LIRA
FX The authors wish to acknowledge the financial support from the LIRA 2030
   Africa programme, which is implemented by the International Science
   Council (ISC) in partnership with the Network African Science Academies
   (NASAC), with support from the Swedish International Development
   Cooperation Agency (Sida), Grant No. LIRA 2030-GR08/19.
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NR 68
TC 0
Z9 0
U1 4
U2 4
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 FEB
PY 2025
VL 28
IS 1
BP 1
EP 12
DI 10.1007/s11252-024-01646-7
PG 12
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA M6X9O
UT WOS:001358955800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Wu, CM
   Ren, HL
AF Wu, Chengmin
   Ren, Haili
TI Coupled Coordination and the Spatial Connection Network Analysis of New
   Urbanization and Ecological Resilience in the Urban Agglomeration of
   Central Guizhou, China
SO LAND
LA English
DT Article
DE new urbanization; ecological resilience; spatiotemporal evolution;
   spatial connection networks; modified coupled coordination degree model;
   social network analysis; modified gravity model
ID PANEL-DATA ANALYSIS; EMISSIONS; SUSTAINABILITY; QUALITY; SYSTEM; LEVEL
AB This study evaluates the new urbanization (NU) quality and the ecological resilience (ER) of 33 districts and counties in the Urban Agglomeration of Central Guizhou from 2010 to 2020. For this purpose, we used a modified coupled coordination degree (CCD) model, spatial autocorrelation analysis, and trend surface analysis to analyze the spatiotemporal evolutionary characteristics of the CCD of NU and ER. Meanwhile, we used a modified gravity model and social network analysis to investigate the spatial connection network (SCN) characteristics of the CCD of NU and ER. The results show that (1) the general NU quality has increased significantly in the Urban Agglomeration of Central Guizhou. There is, however, a downward trend in ER. (2) For the CCD of NU and ER in the Urban Agglomeration of Central Guizhou, there is coupling dissonance, with a double U-shaped arc, characterized by west > north > south > east > central. (3) The network density increases and then decreases. Network connectivity is 1, and network efficiency decreases and then increases. (4) During the study period, the SCN is characterized by significant core-edge characteristics; there are no "island nodes" in the SCN.
C1 [Wu, Chengmin; Ren, Haili] Guizhou Univ, Sch Publ Adm, Guiyang 550025, Peoples R China.
C3 Guizhou University
RP Ren, HL (corresponding author), Guizhou Univ, Sch Publ Adm, Guiyang 550025, Peoples R China.
EM gs.cmwu22@gzu.edu.cn; hlren@gzu.edu.cn
FU General Project of Humanities and Social Sciences Research of Guizhou
   University;  [GDYB2022023]
FX This research was funded by the General Project of Humanities and Social
   Sciences Research of Guizhou University, grant number GDYB2022023.
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NR 67
TC 3
Z9 3
U1 30
U2 38
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD AUG
PY 2024
VL 13
IS 8
AR 1256
DI 10.3390/land13081256
PG 25
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA F0M5X
UT WOS:001306850400001
OA gold
DA 2025-04-22
ER

PT J
AU Salata, S
   Ronchi, S
   Giaimo, C
   Arcidiacono, A
   Pantaloni, GG
AF Salata, Stefano
   Ronchi, Silvia
   Giaimo, Carolina
   Arcidiacono, Andrea
   Pantaloni, Giulio Gabriele
TI Performance-Based Planning to Reduce Flooding Vulnerability Insights
   from the Case of Turin (North-West Italy)
SO SUSTAINABILITY
LA English
DT Article
DE ecosystem services; resilience; performance-based urban planning;
   cloudburst; flooding
ID ECOSYSTEM SERVICES; CLIMATE-CHANGE; URBAN RESILIENCE; SURFACE RUNOFF;
   ENVIRONMENT; ADOPTION; GROWTH; COVER; GIS
AB Climate change impacts urban areas with greater frequency and exposes continental cities located on floodplains to extreme cloudbursts events. This scenario requires developing specific flooding vulnerability mitigation strategies that improve local knowledge of flood-prone areas at the urban scale and supersede the traditional hazard approach based on the classification of riverine buffers. Moreover, decision-makers need to adopt performance-based strategies for contrasting climate changes and increasing the resilience of the system. This research develops the recent Flooding Risk Mitigation model of InVEST (Integrated Evaluation of Ecosystem Services and Trade-off), where cloudburst vulnerability results from the soil's hydrological conductivity. It is based on the assumption that during cloudburst events, all saturated soils have the potential for flooding, regardless of the distance to rivers or channels, causing damage and, in the worst cases, victims. The model's output gives the run-off retention index evaluated in the catchment area of Turin (Italy) and its neighborhoods. We evaluated the outcome to gain specific insight into potential land use adaptation strategies. The index is the first experimental biophysical assessment developed in this area, and it could prove useful in the revision process of the general town plan underway.
C1 [Salata, Stefano] Izmir Inst Technol, Dept City & Reg Planning, Gulbahce Kampusu Urla, TR-35430 Izmir, Turkey.
   [Ronchi, Silvia; Arcidiacono, Andrea] Politecn Milan, Dept Architecture & Urban Studies, Via Bonardi 3, I-20133 Milan, Italy.
   [Giaimo, Carolina] Politecn Torino, Responsible Risk Resilience Ctr, Interuniv Dept Reg & Urban Studies & Planning, Viale Pier Andrea Mattioli 39, I-10125 Turin, Italy.
   [Pantaloni, Giulio Gabriele] Politecn Torino, Interuniv Dept Reg & Urban Studies & Planning, Viale Pier Andrea Mattioli 39, I-10125 Turin, Italy.
C3 Izmir Institute of Technology; Polytechnic University of Milan;
   Polytechnic University of Turin; Polytechnic University of Turin
RP Salata, S (corresponding author), Izmir Inst Technol, Dept City & Reg Planning, Gulbahce Kampusu Urla, TR-35430 Izmir, Turkey.
EM stefanosalata@iyte.edu.tr; silvia.ronchi@polimi.it;
   carolina.giaimo@polito.it; andrea.arcidiacono@polimi.it;
   giulio.pantaloni@polito.it
RI RONCHI, SILVIA/P-7072-2019; Giaimo, Carolina/GOH-0168-2022; Andrea,
   Arcidiacono/J-4580-2019; Salata, Stefano/B-9186-2018
OI Salata, Stefano/0000-0001-9342-9241; ARCIDIACONO,
   ANDREA/0000-0001-5068-076X; RONCHI, SILVIA/0000-0001-9793-0287
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NR 62
TC 20
Z9 20
U1 2
U2 26
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY
PY 2021
VL 13
IS 10
AR 5697
DI 10.3390/su13105697
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 ST5XG
UT WOS:000662515300001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Akallah, JA
   Hard, M
AF Akallah, Jethron Ayumbah
   Hard, Mikael
TI Under the Historian's Radar: Local Water Supply Practices in Nairobi,
   1940-1980
SO WATER ALTERNATIVES-AN INTERDISCIPLINARY JOURNAL ON WATER POLITICS AND
   DEVELOPMENT
LA English
DT Article
DE Water provision; large technological system; history of technology;
   Nairobi; urban resilience
ID NETWORKS
AB By presenting oral history material from two informal settlements in Nairobi, Kenya, the article illustrates how inhabitants during the period 1940 to 1980 acquired and used water on a daily basis. The authors' observations challenge established paradigms in the history of technology as well as Science and Technology Studies (STS), most notably the Large Technological System (LTS) model. To understand the realities of the supply situation in cities in both the Global North and Global South, we must look beyond such systems; historians must complement material from official archives, utilities, ministries and other authorities with further sources. Interviews with urban inhabitants can help us to modify standard LTS perspectives, and the experiences of ordinary citizens can enable us to develop an alternative view of 'urban resilience' as a concept. Rather than passively being supplied with the necessities of daily life by public or private providers, inhabitants themselves successfully acquired those necessities. Interviews indicate that, compared to customers with access to the centralised water system, so-called slum dwellers exhibited a relatively high level of resilience in terms of water provision.
C1 [Akallah, Jethron Ayumbah] Maseno Univ, Dept Hist & Archaeol, Maseno, Kenya.
   [Hard, Mikael] Tech Univ Darmstadt TU Darmstadt, Dept Hist, Darmstadt, Germany.
C3 Maseno University; Technical University of Darmstadt
RP Akallah, JA (corresponding author), Maseno Univ, Dept Hist & Archaeol, Maseno, Kenya.
EM ayumbajetty@yahoo.com; hard@ifs.tudarmstadt.de
FU German Hans-Bockler-Stiftung [PK039]; Technical University of Darmstadt;
   European Research Council [742631]; European Research Council (ERC)
   [742631] Funding Source: European Research Council (ERC)
FX The research for this article was supported by a fellowship, financed by
   the German Hans-Bockler-Stiftung (Grant PK039). The actual writing was
   made possible by the generous financial support of the Technical
   University of Darmstadt and the European Research Council (Horizon 2020:
   ERC Advanced Grant No. 742631).
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U2 3
PU WATER ALTERNATIVES ASSOC
PI MONTPELLIER
PA VILLA D ASSAS, 457 AVENUE DU PERE SOULAS, MONTPELLIER, 34090, FRANCE
SN 1965-0175
J9 WATER ALTERN
JI Water Altern.
PD OCT
PY 2020
VL 13
IS 3
SI SI
BP 886
EP 901
PG 16
WC Environmental Studies; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA OC3QD
UT WOS:000579072200021
DA 2025-04-22
ER

PT J
AU Teobaldelli, M
   Cona, F
   Stinca, A
   Saulino, L
   Anzano, E
   Giordano, D
   Migliozzi, A
   Bonanomi, G
   D'Urso, G
   Mazzoleni, S
   Saracino, A
AF Teobaldelli, Maurizio
   Cona, Francesco
   Stinca, Adriano
   Saulino, Luigi
   Anzano, Enrico
   Giordano, Daniele
   Migliozzi, Antonello
   Bonanomi, Giuliano
   D'Urso, Guido
   Mazzoleni, Stefano
   Saracino, Antonio
TI Improving resilience of an old-growth urban forest in Southern Italy:
   Lesson (s) from a stand-replacing windstorm
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Climate change; Disturbance regime; Forest restoration; Holm oak;
   Quercus ilex L.; Urban woodlands
ID ALIEN PLANT INVASIONS; EVOLUTIONARY RESILIENCE; SPECIES INVASION;
   VASCULAR FLORA; DISTURBANCE; BIODIVERSITY; ECOSYSTEMS; SUCCESSION;
   DIVERSITY; FRAMEWORK
AB There is a current concern that the capacity of urban forests to recover from the effects of climate change may be diminishing. New management options are needed so that they can continue to provide ecosystem services to local communities. After a windstorm occurred on June 2014 pre- and post-disturbance stand conditions (years 2010 and 2015, respectively) of the historical old-growth holm oak forest of Parco Gussone were analysed by combining ground- and satellite-based methodologies. Results highlighted that Parco Gussone was primarily valued for its historical importance and, despite the phytosanitary conditions of the trees, no silvicultural treatments were made since 1986, most probably due to conflicts arisen between different stakeholders. Therefore in 2014, the windstorm damaged 406 trees (8.1% of the total aboveground forest dry biomass) and it was stand-replacing on 1.53 ha (9.3 % of the total forest area). Windthrows, heterogeneously distributed and unequally sized (103 canopy gap ranging between similar to 6 to 1632 m(2)), caused, overall, a significant reduction of LAI (similar to 19%). The presence of large gaps promoted the invasion of non-native herbaceous species whereas native species of the shrubs and herbaceous layers were favoured when felled trees were left on the ground or removed mechanically during harvest, respectively. In this context, urban forests should be considered as 'complex adaptive systems', therefore natural processes can be simulated by applying a 'close-to-nature' silviculture (e.g. by opening small gaps), vulnerability assessed (e.g. using a tree-by-tree VTA), biodiversity and ecological resilience improved and short- and long term disturbance effects evaluated (e.g. analysis of disturbance attributes and stand dynamics) so that specific conservation goals can be adapted to a specific landscape and biotic community. By implementing and applying the proposed guidelines in urban forest planning, we are confident that the resilience of those Mediterranean urban forest ecosystems could be effectively restored and improved.
C1 [Teobaldelli, Maurizio; Cona, Francesco; Saulino, Luigi; Giordano, Daniele; Migliozzi, Antonello; Bonanomi, Giuliano; D'Urso, Guido; Mazzoleni, Stefano; Saracino, Antonio] Univ Naples Federico II, Dept Agr Sci, V Univ 100, I-80055 Naples, Italy.
   [Stinca, Adriano; Giordano, Daniele] Univ Campania Luigi Vanvitelli, Dept Environm Biol & Pharmaceut Sci & Technol, V Vivaldi 43, I-81100 Caserta, Italy.
   [Anzano, Enrico; Giordano, Daniele] Univ Naples Federico II, Spin Off Co, Ariespace Srl, Ctr Direz Is A-3, Naples, Italy.
C3 University of Naples Federico II; Universita della Campania Vanvitelli;
   University of Naples Federico II
RP Teobaldelli, M (corresponding author), Univ Naples Federico II, Dept Agr Sci, V Univ 100, I-80055 Naples, Italy.
EM maurizio.teobaldelli2@unina.it; francesco.cona@unina.it;
   adriano.stinca@unicampania.it; luigi.saulino@unina.it;
   enrico.anzano@gmail.com; dottforgiordano@gmail.com; migliozz@unina.it;
   giuliano.bonanomi@unina.it; durso@unina.it; stefano.mazzoleni@unina.it;
   a.saracino@unina.it
RI Saulino, Luigi/AAU-2258-2020; D'Urso, Guido/HLX-0400-2023; Saracino,
   Antonio/LYO-7516-2024
OI Migliozzi, Antonello/0000-0001-9799-2939; Saracino,
   Antonio/0000-0002-1499-2317; Stinca, Adriano/0000-0002-8275-0184;
   BONANOMI, Giuliano/0000-0002-1831-4361; Saulino,
   Luigi/0000-0003-4939-0583
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SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
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GA KE2LA
UT WOS:000508389000009
DA 2025-04-22
ER

PT J
AU Smith, G
   Nandwani, D
   Kankarla, V
AF Smith, George
   Nandwani, Dilip
   Kankarla, Vanaja
TI Facilitating resilient rural-to-urban sustainable agriculture and rural
   communities
SO INTERNATIONAL JOURNAL OF SUSTAINABLE DEVELOPMENT AND WORLD ECOLOGY
LA English
DT Article
DE Sustainable agriculture; rural community; urban agriculture/farming;
   organic agriculture rural; urban resilience
AB This article contributes to efforts to validate a common set of parameters and principles of sustainable agriculture. Comparisons between alternative forms of sustainable agriculture and rural-to-urban community resilience are investigated. Conclusions are drawn between multiple sustainable/alternative agriculture systems and evaluated. A set of common baseline parameters and principles is proposed as a method of evolving a common structural framework for strengthening sustainability of agriculture and rural contexts. Concepts of rural-to-urban community sustainability are proposed, supporting sustainable agriculture contexts as rural and urban. In the twenty-first century, agriculture is becoming more diversified and less typified as a rural occupation. Urban agriculture is expanding as the need for fresh, affordable, accessible agriculture produce increases in urban areas. Evidence supports symbiotic relationships between sustainable agriculture and rural/urban communities, although some claim this relationship has not been clearly defined.
   This article investigates sustainable agriculture from two perspectives. We ask what are common parameters and principles of the various forms of sustainable agriculture,' and why urban-to-rural context.' Organic agriculture parameters and principles are proposed as a conceptual framework toward establishing baseline parameters and principles for sustainable agriculture. Best management parameters of urban and rural sustainable agriculture in the United States and the United Kingdom are examined for their potential to develop a strengthening framework of parameters and principles of agriculture and rural-to-urban sustainability. These results are compared and evaluated for their effectiveness in redefining current sustainable agriculture practices, and their value in strengthening sustainable agriculture symbiosis with rural-to-urban community systems.
C1 [Smith, George; Nandwani, Dilip; Kankarla, Vanaja] Tennessee State Univ, Coll Agr, Dept Agr, Nashville, TN 37203 USA.
C3 Tennessee State University
RP Smith, G (corresponding author), Tennessee State Univ, Coll Agr, Dept Agr, Nashville, TN 37203 USA.
EM gsmith6@tnstate.edu
RI kankarla, vanaja/ABH-2708-2020
OI Kankarla, Vanaja/0000-0002-4435-4068
FU U.S. Department of Agriculture (USDA)/ National Institute of Food and
   Agriculture (NIFA) Capacity Building Grant [2013-38821-21460]
FX This work was supported by the U.S. Department of Agriculture (USDA)/
   National Institute of Food and Agriculture (NIFA) Capacity Building
   Grant [2013-38821-21460].
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NR 46
TC 15
Z9 15
U1 42
U2 306
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 1350-4509
EI 1745-2627
J9 INT J SUST DEV WORLD
JI Int. J. Sustain. Dev. World Ecol.
PY 2017
VL 24
IS 6
BP 485
EP 501
DI 10.1080/13504509.2016.1240723
PG 17
WC Green & Sustainable Science & Technology; Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA FH1QD
UT WOS:000410913600003
DA 2025-04-22
ER

PT J
AU Yin, JT
   Ren, XL
   Su, S
   Yan, F
   Tao, T
AF Yin, Jiateng
   Ren, Xianliang
   Su, Shuai
   Yan, Fei
   Tao, Tang
TI Resilience-Oriented Train Rescheduling Optimization in Railway Networks:
   A Mixed Integer Programming Approach
SO IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS
LA English
DT Article
DE Rails; Resilience; Rail transportation; Numerical models; Computational
   modeling; Optimization; Real-time systems; disruption management;
   mixed-integer linear programming
ID WAITING TIME; DEMAND; ALGORITHM; RECOVERY; MODELS
AB Due to the inventible disruptions caused by e.g., flood, hurricane and blizzard, metro managers in recent years have gradually shifted their attention from prevention of disruptions to ability to withstand and quick recovery from these disruptions, hence the need for enhancing the resilience of an urban rail system. In this paper, we propose a resilience-oriented train rescheduling framework, which helps the rail transit system recover to the normal state as soon as possible in case of disruptions, with the help of pre-allocated rolling stocks at the depots, side tracks and timetable rescheduling of grains. Specifically, we first construct an event-activity network for an urban rail line with multiple depots and side tracks, in which the arrival and departure of trains are modeled as a set of events. Several groups of decision variables and linear constraints are denoted to model the rescheduling of trains. Considering the use of short-turning train rescheduling strategy and pre-allocated rolling stocks, we then formulate the problem into a mixed-integer linear programming (MILP) model, where the objective is to maximize the resilience of the urban rail line against disruptions. Through the analysis of model properties, we develop a branch-and-cut algorithm by deriving a series of linear inequalities, which we prove are valid inequalities, to strength the tightness of the MILP model. Finally, numerical experiments based on real-world data of Beijing metro are conducted to verify the effectiveness of our approach.
C1 [Yin, Jiateng; Su, Shuai; Yan, Fei; Tao, Tang] Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing, Peoples R China.
   [Ren, Xianliang] CRSC Res & Design Inst Grp Co Ltd, Beijing, Peoples R China.
C3 Beijing Jiaotong University
RP Yan, F; Tao, T (corresponding author), Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing, Peoples R China.
EM fyan@bjtu.edu.cn; ttang@bjtu.edu.cn
OI Yan, Fei/0000-0001-9071-6210
FU National Science Foundation of China [71901016, 72288101]; State Key
   Laboratory of Rail Traffic Control and Safety [RCS2022ZZ003]; Beijing
   Municipal Natural Science Foundation [4222051]; Royal Academy of
   Engineering [U.K-CIAPP\286, TSPC1025]
FX This work was supported in part by the National Science Foundation of
   China under Grant 71901016 and Grant 72288101, in part by the State Key
   Laboratory of Rail Traffic Control and Safety under Grant RCS2022ZZ003,
   in part by the Beijing Municipal Natural Science Foundation under Grant
   4222051, and in part by the Royal Academy of Engineering through Newton
   Fund Project U.K-CIAPP\286 and Project TSPC1025.
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Z9 18
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U2 100
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 1524-9050
EI 1558-0016
J9 IEEE T INTELL TRANSP
JI IEEE Trans. Intell. Transp. Syst.
PD MAY
PY 2023
VL 24
IS 5
BP 4948
EP 4961
DI 10.1109/TITS.2023.3236004
EA JAN 2023
PG 14
WC Engineering, Civil; Engineering, Electrical & Electronic; Transportation
   Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA Q0CW9
UT WOS:000920542000001
DA 2025-04-22
ER

PT J
AU Marquez-Torres, A
   Kumar, S
   Aznarez, C
   Jenerette, GD
AF Marquez-Torres, Alba
   Kumar, Sudeshna
   Aznarez, Celina
   Jenerette, G. Darrel
TI Assessing the cooling potential of green and blue infrastructure from
   twelve US cities with contrasting climate conditions
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Surface Urban Heat Island (SUHI); Heat mitigation; Urban green spaces
   (UGS); Urban Sustainability; Generalized Linear Mixed Model (GLMM)
ID SURFACE TEMPERATURES; ECOSYSTEM SERVICES; LOS-ANGELES; URBAN; PHOENIX;
   SPACES; VEGETATION; PATTERNS; IMPACTS
AB Rapid urbanization, coupled with climate change, has intensified the need for effective urban heat mitigation strategies. Urban green and blue infrastructure (UGBI), including green spaces and water bodies, plays a key role in mitigating the urban heat island effect and promoting urban resilience. This study analyzed 4617 urban green spaces (UGS) across twelve U.S. cities, representing a range of Ko<spacing diaeresis>ppen climate zones, to explore the structural and functional attributes that contribute to urban cooling. Using GIS and Generalized Linear Mixed Models (GLMM), we examined the interactions between UGS and blue spaces to better understand their combined effect on local temperature regulation. Our findings underscore the importance of vegetation density, proximity to water, and park size in reducing land surface temperature (LST), with average LST reductions of up to 3 degrees C in parks with denser vegetation. Greener parks, located near water bodies, were strongly associated with cooler temperatures, emphasizing the synergistic cooling effect of UGBI. Larger parks, particularly those around 350 ha, were more effective at reducing LST. Interestingly, taller buildings adjacent to UGS showed a slight increase in LST until a height of approximately 20 m, after which the effect plateaued. Proximity to water showed a strong cooling effect within 4 kilometers, beyond which the effect diminished and eventually reversed. These findings provide actionable insights for urban planners and policymakers, illustrating how strategic UGBI interventions-especially in cities with high-density urban forms-could reduce local temperatures, mitigate heatrelated risks, and enhance urban resilience to climate change.
C1 [Marquez-Torres, Alba; Kumar, Sudeshna; Aznarez, Celina] Basque Ctr Climate Change BC3, Leioa, Spain.
   [Marquez-Torres, Alba] Forest Sci & Technol Ctr Catalonia CTFC, Solsona, Spain.
   [Marquez-Torres, Alba] Univ Lleida, Dept Agr & Forest Sci & Engn, Lleida 25003, Spain.
   [Aznarez, Celina] Aarhus Univ, Dept Biol, Sect Ecoinformat & Biodivers, DK-8000 Aarhus, Denmark.
   [Jenerette, G. Darrel] Univ Calif Riverside, Dept Bot & Plant Sci, Riverside, CA USA.
C3 Basque Centre for Climate Change (BC3); Universitat de Lleida; Aarhus
   University; University of California System; University of California
   Riverside
RP Marquez-Torres, A (corresponding author), Basque Ctr Climate Change BC3, Leioa, Spain.
EM alba.marquez@ctfc.cat
RI Aznarez, Celina/KSL-9758-2024
OI Aznarez, Celina/0000-0001-7807-1413
FU Maria de Maeztu Excellence Unit - MCIN/AEI [CEX2021-001201-M]; U.S.
   National Science Foundation [EAR-1923150]
FX This research is supported by Maria de Maeztu Excellence Unit 2023-2027
   Ref. CEX2021-001201-M, funded by MCIN/AEI/10.13039/501100011033.
   Jenerette was supported by the U.S. National Science Foundation
   (EAR-1923150) . Map data copyrighted by OpenStreetMap contributors and
   available from https:// www.openstreetmap.org. We also extend our
   gratitude to Nuria Irla Sala, architect and urban planner, for sharing
   her professional knowledge and insights, which greatly enriched this
   research, and Stefano Balbi and Ferdinando Villa for their support.
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NR 82
TC 0
Z9 0
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 FEB
PY 2025
VL 104
AR 128660
DI 10.1016/j.ufug.2024.128660
EA JAN 2025
PG 13
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 U4F5V
UT WOS:001411374900001
DA 2025-04-22
ER

PT J
AU LopezDeAsiain, M
   Bonaño, JMC
   Borrallo-Jiménez, M
   Esteban, RM
AF LopezDeAsiain, M.
   Bonano, J. M. Castro
   Borrallo-Jimenez, M.
   Esteban, R. Mora
TI Urban socio-ecosystem renewal: an ecosystem services assessment approach
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY
LA English
DT Article
DE Ecosystem services; Resilience; Urban regeneration; Sustainability;
   Socio-ecosystemic services; Socio-ecosystem
ID METABOLISM; SUSTAINABILITY; RESILIENCE; OPPORTUNITIES; PERSPECTIVE;
   CHALLENGES; ECOLOGY; CITIES
AB Using a novel approach based on the urban ecosystem services approach, this research explores the relation between socio-economic, architectonic and ecological factors in urban renewal processes. This deductive conceptual approach is based on the definition of an urban diagnosis and intervention model based on the concept of urban socio-ecosystemic services. This conceptual approach is applied to three research cases in Andalusia (Spain) neighbourhoods linked to participatory urban renewal processes. A model is inductively defined from these analysed case studies: the socio-ecosystemic services model, based on the conceptual frame, the development of particular instruments and the definition of a participatory methodological strategy. The results obtained in these urban workshops show that the socio-ecosystem model better integrates the relationships between the architectural, socio-economic and ecological dimensions in addressing the need for urban services and infrastructure and the quality of life in neighbourhoods. Citizens can formulate their needs and perceptions of the neighbourhood beyond traditional quantitative variables (i.e. number of car parks, average size of dwellings, population density, etc.), incorporating aspects such as urban landscape, air quality, urban noise, shaded rest areas and children's spaces. All these perceptions are collected and transformed into proposals for neighbourhood improvement, which are assessed and prioritized by the citizens. Together with participatory processes, this approach can be considered as the key to success in urban renewal strategies in neighbourhoods. However, it is necessary to develop indicators and metrics of the relationships between the socio-economic and ecological dimensions that allow a more integrated study of the model at different urban scales.
C1 [LopezDeAsiain, M.] Univ Seville, Escuela Tecn Super Arquitectura, Dept Hist Teoria & Compos Arquitecton, Avd Reina Mercedes 2, Seville 41012, Spain.
   [Bonano, J. M. Castro] Univ Malaga, Dept Estadist & Econometria, Malaga, Spain.
   [Borrallo-Jimenez, M.] Univ Seville, Escuela Tecn Super Arquitectura, Dept Construcc Arquitecton 1, Avd Reina Mercedes 2, Seville 41012, Spain.
   [Esteban, R. Mora] Univ Malaga, Dept Arte & Arquitectura, Malaga, Spain.
C3 University of Sevilla; Universidad de Malaga; University of Sevilla;
   Universidad de Malaga
RP Borrallo-Jiménez, M (corresponding author), Univ Seville, Escuela Tecn Super Arquitectura, Dept Construcc Arquitecton 1, Avd Reina Mercedes 2, Seville 41012, Spain.
EM mlasiain@us.es; mcastro@uma.es; borrallo@us.es; rubenmora@uma.es
RI LopezDeAsiain, Maria/K-3105-2018; LopezDeAsiain, Maria/U-2319-2018;
   Borrallo-Jimenez, Milagrosa/AAT-2481-2020
OI LopezDeAsiain, Maria/0000-0001-9422-394X; Castro Bonano, Juan
   Marcos/0000-0003-0880-4110; Mora Esteban, Ruben/0000-0001-5943-8822;
   Borrallo-Jimenez, Milagrosa/0000-0002-6818-071X
FU Ministry of Economy, Innovation, Science and Employment of the Junta de
   Andalucia; Seville City Council
FX The authors would like to acknowledge the work and contribution to all
   the team members that made up the EUObs project (Ecobarrios versus
   Rehabilitation of Neighbourhoods; A Research Project for the improvement
   of obsolete neighbourhoods from a sustainability approach), funded by
   the Ministry of Economy, Innovation, Science and Employment of the Junta
   de Andalucia in 2014-2016 and whose achievements, partly, support this
   research. In addition, the authors would like to thank the work and
   contribution to all the researchers involved in the GAUS research (Guide
   for a more Sustainable Architecture and Urbanism in Seville), which is
   also the basis of the present investigation. Our gratitude also to
   Seville City Council for promoting this research by signing the
   Framework Agreement for Collaboration between the University and the
   Seville City Council's Energy and Sustainability Agency.
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NR 81
TC 3
Z9 3
U1 20
U2 66
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 FEB
PY 2024
VL 21
IS 3
BP 2445
EP 2464
DI 10.1007/s13762-023-05117-y
EA AUG 2023
PG 20
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA HB0Q9
UT WOS:001042029500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Gimenez, R
   Labaka, L
   Hernantes, J
AF Gimenez, Raquel
   Labaka, Leire
   Hernantes, Josune
TI A maturity model for the involvement of stakeholders in the city
   resilience building process
SO TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE
LA English
DT Article
DE City resilience; Maturity model; Stakeholders; Policies;
   Multi-stakeholder collaboration
ID CLIMATE-CHANGE; MANAGEMENT; KNOWLEDGE
AB Recent efforts undertaken by international organizations and national governments to build cities' resilience illustrate the need to involve the different stakeholders of a city in the city resilience building process. Although there are studies that propose frameworks for building resilient cities, these studies do not provide detailed guidelines that include the sequential steps that local governments need to take to involve the different stakeholders in the city resilience building process. Given this gap, this paper presents a maturity model that provides an ideal sequence of maturity stages that can guide local government in how to involve the different city stakeholders in the city resilience building process. In addition, the maturity model provides a number of policies that local governments need to implement at each maturity stage in order to foster four principles (collaboration and networking, awareness and commitment, learning, and training and preparedness) that represent the foundation for involving stakeholders in the resilience building process. The maturity model was developed and validated as result of an iterative process that included semi-structured interviews with representatives from six different European cities. (C) 2016 Elsevier Inc. All rights reserved.
C1 [Gimenez, Raquel; Labaka, Leire; Hernantes, Josune] Univ Navarra, Tecnun, Paseo Manuel Lardizabal 13, San Sebastian 20018, Spain.
C3 University of Navarra
RP Gimenez, R (corresponding author), Univ Navarra, Tecnun, Paseo Manuel Lardizabal 13, San Sebastian 20018, Spain.
EM rgimenez@tecnun.es; llabaka@tecnun.es; jhernantes@tecnun.es
RI Hernantes, Josune/C-9247-2017; Labaka, Leire/H-9744-2014
OI Hernantes, Josune/0000-0002-9307-9787; Labaka, Leire/0000-0002-1721-0624
FU European Union's Horizon research and innovation programme [653569];
   H2020 Societal Challenges Programme [653569] Funding Source: H2020
   Societal Challenges Programme
FX The Smart Mature Resilience research project has received funding from
   the European Union's Horizon 2020 research and innovation programme
   under grant agreement no. 653569.
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NR 33
TC 37
Z9 41
U1 7
U2 74
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 0040-1625
EI 1873-5509
J9 TECHNOL FORECAST SOC
JI Technol. Forecast. Soc. Chang.
PD AUG
PY 2017
VL 121
BP 7
EP 16
DI 10.1016/j.techfore.2016.08.001
PG 10
WC Business; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Public Administration
GA EZ4UN
UT WOS:000404708100002
DA 2025-04-22
ER

PT J
AU Kahachi, HAH
   Abreu, M
   Ehsan, M
AF Kahachi, Hussaen A. H.
   Abreu, Maria
   Ehsan, Mufeed
TI Future cities' theories for sustainable future: A systematic literature
   review
SO FUTURES
LA English
DT Review
DE Future city theory; Maturity analysis; Sustainable urban development;
   Systematic literature review; Urban planning
ID ENTREPRENEURIAL CITY; CREATIVE CITIES; GLOBAL CITIES; SMART CITIES;
   URBAN INFRASTRUCTURE; INFORMATION CITIES; WASTE MANAGEMENT; COMPETITIVE
   CITY; CIVIL-SOCIETY; DIGITAL CITY
AB In recent decades, sustainability has surged as a pivotal topic in academic discourse, driven by heightened global awareness of its critical role in addressing climate change, biodiversity loss, and social inequities. Consequently, cities and local authorities are increasingly prioritizing sustainability integration into urban development strategies. However, the realization of the 2015 Sustainable Development Goals faces challenges, with only 12-15 % of targets estimated to be met by the 2030 deadline. Scholars attribute this under-performance to the absence of a comprehensive approach to sustainable urban development. This study investigates the framework and mechanisms of mature future cities' theories in achieving sustainability, focusing on sustainable urban development principles. Through a systematic review utilizing Natural Language Processing and statistical analysis of over 27,000 SCOPUS documents, the research evaluates 43 future cities' theories from 1900 to 2023. Criteria such as comprehensiveness, consistency, empirical support, and applicability to sustainable development are analyzed. The study identifies mature theories like Smart City, Resilient City, and Sustainable City as promising avenues for sustainable urban development, albeit requiring refinement. The findings offer valuable insights to guide research and practice towards achieving sustainable urban development in cities.
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   [Kahachi, Hussaen A. H.; Abreu, Maria] Univ Cambridge, Dept Land Econ, Cambridge, England.
C3 University of Technology- Iraq; University of Cambridge
RP Kahachi, HAH (corresponding author), Univ Technol Baghdad, Dept Architectural Engn, Baghdad, Iraq.
EM Hussaen.a.hasan@uotechnology.edu.iq
RI Kahachi, Hussaen/AFG-9017-2022
OI Kahachi, Hussaen/0000-0002-8374-7980
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PT J
AU Xu, CY
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   Kong, Fanbin
   He, Tao
TI Spatial-temporal variation, driving mechanism and management zoning of
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LA English
DT Article
DE Urban system; Ecological resilience; Driving mechanism; Ecological
   management zoning; RSEI; GEE
ID LAND-USE CHANGE; INDEX; URBANIZATION; POPULATION; SUSTAINABILITY;
   CLIMATE; CHINA
AB Urbanization results in drastic land use/cover change (LUCC) and ecological resilience (ER) issues, which has become an important and urgent question of regional sustainability. This study applied the remote sensing ecological index (RSEI) to represent the ER, and further combined ordinary least squares (OLS), and the Google Earth Engine (GEE) platform to analyze the spatiotemporal variations of ER and LUCC at the regional and city scales from 1990 to 2020 in Hangzhou Bay Metropolitan Area (HBMA), explore the relationship between ER and LUCC, and apply for urban resilience management zoning. The results demonstrated that the ER in HBMA showed a characteristic of "slightly worse overall and improved locally", the mean value of which decreased from 0.508 in 1990 to 0.502 in 2020. Specifically, the ER in Shanghai, Shaoxing, and Ningbo increased, and others decreased. ER exhibited a very obvious spatial aggregation feature of "high value in the southwest and low value in the northeast". The spatiotemporal dynamic feature of LUCC from 1990 to 2020 depicted that the expansion of construction land was at the expense of occupying cropland. The LUCC degree and population have significant negative effects on the ER. The ER management zoning of HBMA could be divided into five zones, namely the ecological core protection area, ecological monitoring area, ecological optimization area, ecological restoration area, and ecological potential governance area. Results of this study could provide a more comprehensive understanding of ER change in metropolitan areas and the implication of resilience management was provided to improve the adaptation and sustainable development of the coastal urban area.
C1 [Xu, Caiyao; Li, Bowei] Zhejiang A&F Univ, Res Acad Rural Revitalizat Zhejiang Prov, Hangzhou 311300, Peoples R China.
   [Xu, Caiyao; Li, Bowei] Zhejiang A&F Univ, Inst Ecol Civilizat, Hangzhou 311300, Peoples R China.
   [Kong, Fanbin] Nanjing Forestry Univ, Inst Digital Forestry & Green Dev, Nanjing 210037, Peoples R China.
   [He, Tao] Zhejiang A&F Univ, Coll Math & Comp Sci, Hangzhou 311300, Peoples R China.
C3 Zhejiang A&F University; Zhejiang A&F University; Nanjing Forestry
   University; Zhejiang A&F University
RP Kong, FB (corresponding author), Nanjing Forestry Univ, Inst Digital Forestry & Green Dev, Nanjing 210037, Peoples R China.; He, T (corresponding author), Zhejiang A&F Univ, Coll Math & Comp Sci, Hangzhou 311300, Peoples R China.
EM xucaiyao@zafu.edu.cn; lbw@zafu.edu.cn; kongfanbin@aliyun.com;
   hetao@zafu.edu.cn
OI He, Tao/0000-0001-5304-3010; Xu, Caiyao/0000-0002-5440-0531
FU National Natural Science Founda-tion of China [42301328]; Major Research
   Project of Hu-manities and Social Sciences in Colleges and Universities
   of Zhejiang Province [2021QN062]; Educational Science Planning Project
   of Zhejiang Province [GH2022009]; National Natural Science Foundation of
   China [42371294, 42071283]; Research Development Fund of Zhejiang A F
   University [2020FR066]
FX This research was funded by the National Natural Science Founda-tion of
   China (Grant No. 42301328) , Major Research Project of Hu-manities and
   Social Sciences in Colleges and Universities of Zhejiang Province (Grant
   No. 2021QN062) , Educational Science Planning Project of Zhejiang
   Province (Grant No. GH2022009) ,National Natural Science Foundation of
   China (Grant No. 42371294 and 42071283) , and Research Development Fund
   of Zhejiang A & F University (Grant No. 2020FR066) .
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NR 79
TC 25
Z9 25
U1 109
U2 203
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 111447
DI 10.1016/j.ecolind.2023.111447
EA JAN 2024
PG 17
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA GO5V1
UT WOS:001153632900001
OA gold
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Wakefield, S
AF Wakefield, Stephanie
TI Miami Beach forever? Urbanism in the back loop
SO GEOFORUM
LA English
DT Article
DE Miami; Experimentation; Resilience; Anthropocene; Urbanism; Government;
   Climate futures
ID POLITICAL-ECONOMY; RESILIENCE; PREPAREDNESS; RISK; ANTHROPOCENE;
   LABORATORIES; SECURITY; ECOLOGY; LIFE; CITY
AB In the Anthropocene, coastal cities are increasingly cast as climate change first responders: both "front lines" where uncertain futures are unfolding and "laboratories" in which experimental resilience infrastructures are being tested out. Engaged with anticipatory risk governance and urban climate experimentation literatures, this article critically examines recent resiliency infrastructure experiments in Miami Beach, Florida, a key climate change site known as ground zero for sea level rise in the United States. Using critical analysis of media and policy documents, site observation, and political and ecological theory, this article explores resilience experimentation in Miami Beach as a matter of transforming modes of anticipatory risk governance in the Anthropocene "back loop." Beyond mere technical innovations, what visions of urban life and futures are forwarded in these experiments, and how are they transforming the nature of urbanism? Rather than courageous, utopian attempts to positively transform the city, the paper argues, these projects seek to lock Miami Beach and its residents into a single, unitary vision of the future, one of high-end real estate and luxury lifestyles buttressed by an invisible background of service and other wage work. The paper further argues however that this dream of Miami Beach's static future may be undone by the city's own experimental efforts to secure it. To conclude the paper argues that Miami Beach's resilience experiments represent an emergent paradigm of "back loop urbanism," a form of urban governance devised amidst dislocation, made up of distinct experiments that fold in local trajectories in unique and sometimes conflicting ways.
C1 [Wakefield, Stephanie] Florida Int Univ, Dept Global & Sociocultural Studies, Sch Int & Profess Affairs, 11200 SW 8th St, Miami, FL 33199 USA.
C3 State University System of Florida; Florida International University
RP Wakefield, S (corresponding author), Florida Int Univ, Dept Global & Sociocultural Studies, Sch Int & Profess Affairs, 11200 SW 8th St, Miami, FL 33199 USA.
EM swakefie@fiu.edu
FU Urban Studies Foundation Postdoctoral Research Fellowship
FX This research was supported by an Urban Studies Foundation Postdoctoral
   Research Fellowship.
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NR 102
TC 25
Z9 30
U1 4
U2 32
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 2019
VL 107
BP 34
EP 44
DI 10.1016/j.geoforum.2019.10.016
PG 11
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA JW5KM
UT WOS:000503090800004
DA 2025-04-22
ER

PT J
AU Graça, MS
   Gonçalves, JF
   Alves, PJM
   Nowak, DJ
   Hoehn, R
   Ellis, A
   Farinha-Marques, P
   Cunha, M
AF Graca, Marisa S.
   Goncalves, Joao F.
   Alves, Paulo J. M.
   Nowak, David J.
   Hoehn, Robert
   Ellis, Alexis
   Farinha-Marques, Paulo
   Cunha, Mario
TI Assessing mismatches in ecosystem services proficiency across the urban
   fabric of Porto (Portugal): The influence of structural and
   socioeconomic variables
SO ECOSYSTEM SERVICES
LA English
DT Article
DE Urban ecosystem services; Regulating ecosystem services; Urban planning;
   Urban vegetation; Socioeconomic inequity
ID GENERALIZED ADDITIVE-MODELS; BEHAVIORAL ECOLOGY; MULTIMODEL INFERENCE;
   FUNCTIONAL DIVERSITY; GREEN SPACES; RESILIENCE; INEQUALITY; CHALLENGES;
   SELECTION; DYNAMICS
AB Knowledge regarding Ecosystem Services (ES) delivery and the socio-ecological factors that influence their proficiency is essential to allow cities to adopt policies that lead to resource-efficient planning and greater resilience. As one of the matrix elements of urban ecological structure, vegetation may play a major role in promoting ES proficiency through planting design. This research addresses the heterogeneity of ES delivered by the urban vegetation of Porto, a Portuguese city. A methodology is proposed to investigate associations between socioeconomic indicators and structural variables of the urban forest, and also which structural variables of the urban forest, if any, differ along a socioeconomic gradient. Our results reveal that before setting planning and management goals, it is crucial to understand local patterns of ES and their relationships with socioeconomic patterns, which can be affected by variables such as building age. This should be followed by the identification of structural variables of the urban forest that better explain the differences, in order to target these through planning and management goals. The conceptual framework adopted in this research can guide adaptation of our methodology to other cities, providing insights for planning and management suitable to site-specific conditions and directly usable by stakeholders.
C1 [Graca, Marisa S.; Goncalves, Joao F.; Alves, Paulo J. M.; Farinha-Marques, Paulo] Univ Porto, Res Ctr Biodivers & Genet Resources CIBIO InBIO, Campus Agr Vairao,Rua Padre Armando Quintas 7, P-4485661 Vairao, Portugal.
   [Graca, Marisa S.; Goncalves, Joao F.; Farinha-Marques, Paulo; Cunha, Mario] Univ Porto, Fac Sci, Rua Campo Alegre S-N, P-4169007 Oporto, Portugal.
   [Nowak, David J.; Hoehn, Robert] SUNY ESF, USDA Forest Serv, Northern Res Stn, Moon Lib 5, Syracuse, NY 13210 USA.
   [Ellis, Alexis] Davey Tree Expert Co, Davey Inst, 1500 N Mantua St,POB 5193, Kent, OH 44240 USA.
   [Cunha, Mario] Univ Porto, Dept Matemat, Geospace Sci Res Ctr CICGE, Rua Campo Alegre 687, P-4169007 Oporto, Portugal.
C3 Universidade do Porto; Universidade do Porto; United States Department
   of Agriculture (USDA); United States Forest Service; State University of
   New York (SUNY) System; State University of New York (SUNY) College of
   Environmental Science & Forestry; Universidade do Porto
RP Graça, MS (corresponding author), Univ Porto, Res Ctr Biodivers & Genet Resources CIBIO InBIO, Campus Agr Vairao,Rua Padre Armando Quintas 7, P-4485661 Vairao, Portugal.
EM graca.marisa@fc.up.pt
RI Alves, Paulo/AAH-9085-2021; Cunha, Mário/AFR-4812-2022; Goncalves,
   Joao/L-9383-2013; Alves, Paulo/J-1153-2014
OI Goncalves, Joao/0000-0002-6615-0218; /0000-0003-4454-7553; Cunha,
   Mario/0000-0002-8299-324X; Alves, Paulo/0000-0002-4931-0582; Graca,
   Marisa/0000-0002-2231-8752
FU Portuguese Agency for Science and Technology (FCT) [SFRH/BD/91028/2012,
   SFRH/BD/90112/2012]; Ministry for Science and Education; European Social
   Fund; Fundação para a Ciência e a Tecnologia [SFRH/BD/91028/2012]
   Funding Source: FCT
FX We are grateful to Nuno Rodrigues, Daniela Cunha, Vasco Silva and
   Patricia Monteiro for their assistance in the field work, and to Satoshi
   Hirabayashi and Daniel E. Crane, of the USDA Forest Service Northern
   Research Station, and Nuno Formigo, of the Faculty of Sciences of the
   University of Porto, for clarifications about calculation assumptions
   behind i-Tree Eco. We also thank the Institute of Earth Sciences
   (University of Porto) for providing precipitation data to run i-Tree
   Eco, and to the City Council of Porto for providing useful geographical
   information and data referring to existing tree surveys. This research
   was partially funded by the Portuguese Agency for Science and Technology
   (FCT) through PhD grant of M. Graca SFRH/BD/91028/2012 and PhD grant of
   J. Goncalves SFRH/BD/90112/2012, both financed by national funds of the
   Ministry for Science and Education and by the European Social Fund
   through POPH - QREN - Tipology 4.1 - Advanced Training.
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NR 67
TC 19
Z9 21
U1 5
U2 74
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0416
J9 ECOSYST SERV
JI Ecosyst. Serv.
PD FEB
PY 2017
VL 23
BP 82
EP 93
DI 10.1016/j.ecoser.2016.11.015
PG 12
WC Ecology; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA EO9CG
UT WOS:000396986200009
OA Bronze
DA 2025-04-22
ER

PT J
AU Zhou, JZ
   Hou, QH
AF Zhou, Jizhe
   Hou, Quanhua
TI Complex Network-Based Research on the Resilience of Rural Settlements in
   Sanshui Watershed
SO LAND
LA English
DT Article
DE small watershed; complex network; spatial resilience; resilience
   assessment; resilient planning
ID CONSERVATION
AB In the context of farmland afforestation and urbanization, it is necessary for the small watershed rural settlements in the hilly-gully Loess Plateau to coordinate spatiotemporal changes and take the path of resilience development. In the case of the Sanshui Watershed, this paper investigates the rural settlement systems based on complex networks, and develops a research framework of "spatial simulation-resilience evaluation-spatial planning ". The results include the evolution trends of settlement space from present to future, as well as its spatial resilience in static and dynamic states. In this study, a total of six central villages and six types of rural development are finalized, and the study area possesses a prolonged spatiotemporal resilience when 29 villages remain, thus forming an ideal spatial pattern of "rural corridor zones + characteristic towns ". The findings of this study can represent guidance for resilience development in small watershed villages and provide a basis for guiding the regional urban-rural integration, village layout, as well as resource allocation and construction.</p>
C1 [Zhou, Jizhe; Hou, Quanhua] Changan Univ, Sch Architecture, Xian 710061, Peoples R China.
C3 Chang'an University
RP Hou, QH (corresponding author), Changan Univ, Sch Architecture, Xian 710061, 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; Fundamental Research Funds for the Central Universities; 
   [2021ND0458];  [CHD 300102411608];  [51978058]
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 2021ND0458. Fundamental Research Funds
   for the Central Universities, CHD 300102411608.
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NR 48
TC 6
Z9 7
U1 7
U2 114
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD OCT
PY 2021
VL 10
IS 10
AR 1068
DI 10.3390/land10101068
PG 26
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA WQ4ZS
UT WOS:000713827000001
OA gold
DA 2025-04-22
ER

PT J
AU Brodsky, AE
   Welsh, E
   Carrillo, A
   Talwar, G
   Scheibler, J
   Butler, T
AF Brodsky, Anne E.
   Welsh, Elena
   Carrillo, Amy
   Talwar, Gitika
   Scheibler, Jill
   Butler, Tamra
TI Between Synergy and Conflict: Balancing the Processes of Organizational
   and Individual Resilience in an Afghan Women's Community
SO AMERICAN JOURNAL OF COMMUNITY PSYCHOLOGY
LA English
DT Article
DE Resilience; Qualitative; Organization; Afghanistan; Women
ID AFRICAN-AMERICAN; EMPOWERMENT; URBAN
AB This paper examines individual and organizational resilience processes among members of The Revolutionary Association of the Women of Afghanistan, (RAWA), an Afghan women's underground resistance organization located in Afghanistan and Pakistan. Since 1977, RAWA has used humanitarian and political means to educate, serve, and motivate women and to advocate for peace, secular democracy, and human rights. The authors analyzed 110 qualitative interviews, collected in Pakistan and Afghanistan between December 2001 and July 2002. An iterative coding framework identified processes of resilience and domain specific stressors (risks) and resources (protective factors) at the individual and organizational level. Further analysis found that these process codes clustered by function into components of an operational model of individual and organizational resilience. While individual and organizational resilience are described by the same model, these two levels of resilience were found to operate in synergy as well as in conflict. Although this paper explores a unique setting, we argue that a better understanding of resilience processes in general will come from increased attention to context.
C1 [Brodsky, Anne E.; Welsh, Elena; Talwar, Gitika; Scheibler, Jill; Butler, Tamra] Univ Maryland, Dept Psychol, UMBC, Baltimore, MD 21250 USA.
   [Carrillo, Amy] Amer Univ Cairo, AUC, Dept Sociol Anthropol Psychol & Egyptol, New Cairo 11835, Egypt.
C3 University System of Maryland; University of Maryland Baltimore County;
   University of Maryland Baltimore; Egyptian Knowledge Bank (EKB);
   American University Cairo
RP Brodsky, AE (corresponding author), Univ Maryland, Dept Psychol, UMBC, 1000 Hilltop Circle, Baltimore, MD 21250 USA.
EM brodsky@umbc.edu
OI Brodsky, Anne/0000-0001-7731-505X
CR Agar M.H., 1986, SPEAKING ETHNOGRAPHY
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NR 38
TC 37
Z9 54
U1 1
U2 47
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0091-0562
EI 1573-2770
J9 AM J COMMUN PSYCHOL
JI Am. J. Community Psychol.
PD JUN
PY 2011
VL 47
IS 3-4
BP 217
EP 235
DI 10.1007/s10464-010-9399-5
PG 19
WC Public, Environmental & Occupational Health; Psychology,
   Multidisciplinary; Social Work
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Psychology; Social Work
GA 732DR
UT WOS:000288165100001
PM 21203830
DA 2025-04-22
ER

PT J
AU Shade, C
   Kremer, P
   Rockwell, JS
   Henderson, KG
AF Shade, Charlotte
   Kremer, Peleg
   Rockwell, Julia S.
   Henderson, Keith G.
TI The effects of urban development and current green infrastructure policy
   on future climate change resilience
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE climate change resilience; cobenefits; green stormwater infrastructure;
   urban stormwater runoff; urban surface temperature
ID SURFACE-TEMPERATURE; CHANGE ADAPTATION
AB Governments around the world are beginning to plan for the effects of climate change. In Philadelphia, Pennsylvania, USA, the city is implementing a variety of green infrastructure practices through the program Green Cities, Clean Waters to meet state and federal stormwater regulations. Though not a current goal of the program, when implemented effectively, a cobenefit of green infrastructure is increased local resilience to potential ecosystem alterations, such as increasing summer temperatures and heavier precipitation, also defined as climate change adaptation. We analyzed the potential of the Green City, Clean Waters plan to increase the city's resilience to the future consequences of climate change. Three future landcover models of Philadelphia were used to analyze climate change adaptation through green infrastructure in the near term, midcentury, and end of century under two climate change scenarios. Green infrastructure was overall found to locally decrease runoff throughout Philadelphia over time. Green infrastructure impact on surface temperature showed mixed results. Impact on runoff and surface temperature differed between types of green infrastructure. As the city is forecasted to grow warmer, wetter, and more urbanized over the century, runoff and local temperatures will increase on average throughout the city, despite the planned growth in green infrastructure. If increased resilience is to keep pace with climate change, the city government will need to expand its green infrastructure plan and consider the cobenefit of climate change adaptation when planning new projects. Additionally, for true climate change resiliency to be achieved, green infrastructure implementation must be connected to citywide greening efforts, accelerate and continue beyond the near term for localities to function as they do today.
C1 [Shade, Charlotte; Kremer, Peleg; Henderson, Keith G.] Villanova Univ, Dept Geog & Environm, Villanova, PA 19085 USA.
   [Rockwell, Julia S.] Philadelphia Water Dept, Climate Change Adaptat Program, Off Watersheds, Philadelphia, PA USA.
C3 Villanova University
RP Shade, C (corresponding author), Villanova Univ, Dept Geog & Environm, Villanova, PA 19085 USA.
RI Kremer, Peleg/H-8373-2019
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NR 42
TC 18
Z9 21
U1 15
U2 132
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 DEC
PY 2020
VL 25
IS 4
AR 37
DI 10.5751/ES-12076-250437
PG 10
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA PM7SY
UT WOS:000603995100043
OA gold
DA 2025-04-22
ER

PT J
AU Juan-García, P
   Butler, D
   Comas, J
   Darch, G
   Sweetapple, C
   Thornton, A
   Corominas, L
AF Juan-Garcia, P.
   Butler, D.
   Comas, J.
   Darch, G.
   Sweetapple, C.
   Thornton, A.
   Corominas, Ll
TI Resilience theory incorporated into urban wastewater systems management.
   State of the art
SO WATER RESEARCH
LA English
DT Review
DE Management; Resilience; Sewer systems; Wastewater; WRRF
ID CLIMATE-CHANGE; INFRASTRUCTURE; FRAMEWORK
AB Government bodies, utilities, practitioners, and researchers have growing interest in the incorporation of resilience into wastewater management. Since resilience is a multidisciplinary term, it is important to review what has been achieved in the wastewater sector, and describe the future research directions for the forthcoming years. This work presents a critical review of studies that deal with resilience in the wastewater treatment sector, with a special focus on understanding how they addressed the key elements for assessing resilience, such as stressors, system properties, metrics and interventions to increase resilience. The results showed that only 17 peer-reviewed papers and 6 relevant reports, a small subset of the work in wastewater research, directly addressed resilience. The lack of consensus in the definition of resilience, and the elements of a resilience assessment, is hindering the implementation of resilience in wastewater management. To date, no framework for resilience assessment is complete, comprehensive or directly applicable to practitioners; current examples are lacking key elements (e.g. a comprehensive study of stressors, properties and metrics, examples of cases study, ability to benchmark interventions or connectivity with broader frameworks). Furthermore, resilience is seen as an additional cost or extra effort, instead of a means to overcome project uncertainty that could unlock new opportunities for investment. (C) 2017 The Authors. Published by Elsevier Ltd.
C1 [Juan-Garcia, P.; Darch, G.; Thornton, A.] Atkins, Hub 500 Pk Ave, Bristol BS32 4RZ, Avon, England.
   [Juan-Garcia, P.; Comas, J.; Corominas, Ll] Univ Girona, Catalan Inst Water Res ICRA, Sci & Technol Pk,Carrer Emili Grahit 101, E-17003 Girona, Spain.
   [Butler, D.; Sweetapple, C.] Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, Exeter, Devon, England.
   [Comas, J.] Univ Girona, Inst Environm, LEQUIA, Campus Montilivi,Carrer Maria Aurelia Capmany 69, E-17003 Girona, Catalonia, Spain.
C3 Institut Catala de Recerca de l'Aigua (ICRA); Universitat de Girona;
   University of Exeter; Universitat de Girona
RP Corominas, L (corresponding author), Univ Girona, Catalan Inst Water Res ICRA, Sci & Technol Pk,Carrer Emili Grahit 101, E-17003 Girona, Spain.
EM lcorominas@icra.cat
RI Sweetapple, Chris/GQQ-1426-2022; Comas, Joaquim/M-1548-2014; Butler,
   David/I-2991-2012; corominas, lluis/I-3484-2012
OI Comas, Joaquim/0000-0002-5692-0282; Butler, David/0000-0001-5515-3416;
   corominas, lluis/0000-0002-5050-2389
FU European Union [642904]; Ministry of Economy and competitiveness
   [RYC-2013-14595]; MINECO/FEDER, EU [CTM2015-66892-R]; UK Engineering &
   Physical Sciences Research Council [EP/K006924/1]; Marie Curie Actions
   (MSCA) [642904] Funding Source: Marie Curie Actions (MSCA); EPSRC
   [EP/K006924/1] Funding Source: UKRI
FX The authors thank the consultancy team in Water Research, Strategic
   Advisory Services Research in Atkins UK, and Corinne Trommsdorff from
   IWA, for their constructive comments and support. Their contribution is
   highly appreciated. This work has been supported by the European Union's
   Horizon 2020 research and innovation programme under the Marie
   Sklodowska-Curie grant agreement No 642904 - TreatRec ITN-EID project,
   and by the Ministry of Economy and competitiveness for the Ramon and
   Cajal grant from Lluis Corominas (RYC-2013-14595) and for the REaCH
   project (CTM2015-66892-R, MINECO/FEDER, EU). LEQUIA and ICRA were
   recognized as consolidated research groups by the Catalan Government
   with codes 2014-SGR-1168 and 2014-SGR-291, respectively. The second and
   fifth authors acknowledge support from the UK Engineering & Physical
   Sciences Research Council grant EP/K006924/1.
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NR 43
TC 105
Z9 122
U1 9
U2 107
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 MAY 15
PY 2017
VL 115
BP 149
EP 161
DI 10.1016/j.watres.2017.02.047
PG 13
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA ES9AL
UT WOS:000399848200015
PM 28279936
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Oukes, C
   Leendertse, W
   Arts, J
AF Oukes, Casper
   Leendertse, Wim
   Arts, Jos
TI Enhancing the Use of Flood Resilient Spatial Planning in Dutch Water
   Management. A Study of Barriers and Opportunities in Practice
SO PLANNING THEORY & PRACTICE
LA English
DT Article
DE Flood resilience; water management; adaptation; spatial planning;
   Multi-Layer Safety
ID CLIMATE-CHANGE; ADAPTATION; STRATEGIES; CITIES
AB Around the world, deltaic and coastal regions like the Netherlands are facing challenges from climate, change such as sea-level rise as well as more frequent and extreme natural events. Since 2009, the Dutch government has tried to mitigate flood vulnerability by deploying a balanced mix of flood protection measures, resilient spatial planning and crisis management (MultiLayer Safety). However, recent evaluations have concluded that resilient spatial planning is (too) limitedly applied in practice. This article aims to understand the barriers and opportunities for resilient spatial planning in flood risk management by comparing two cases where resilient spatial planning was opted for: Dordrecht and the Ussel-Vecht Delta. The study suggests a large gap between the wide array of possible measures, and those that are actually realized in practice. Three physical-spatial barriers were identified: maximum flood depths, lack of space, and rigidity of the existing built environment. Additionally, institutional-organizational barriers were found, including: a false, low or non-existent safety perception or risk awareness, and therefore a lack of urgency to act; a lack of political and societal support; a suboptimal collaboration between stakeholders; ambiguity regarding responsibilities; finances and a cost-benefit imbalance; and a lack of human capital. Subsequently, the article explores possibilities to overcome these barriers. Overcoming these barriers can pave pathways for flood resilient spatial planning. The institutional-organizational barriers appear surmountable, whereas the physical-spatial barriers prove to be more problematic and form the most important restrictive factor for resilient spatial planning in flood risk management.
C1 [Leendertse, Wim; Arts, Jos] Univ Groningen, Fac Spatial Sci, Groningen, Netherlands.
   [Leendertse, Wim] Minist Infrastruct & Water Management, Rijkswaterstaat, Utrecht, Netherlands.
C3 University of Groningen
RP Leendertse, W (corresponding author), Univ Groningen, Fac Spatial Sci, Groningen, Netherlands.; Leendertse, W (corresponding author), Minist Infrastruct & Water Management, Rijkswaterstaat, Utrecht, Netherlands.
EM w.l.leendertse@rug.nl
OI Arts, Jos/0000-0002-6896-3992; Leendertse, Willem/0000-0001-7706-1272
FU Rijkswaterstaat, the executive agency of the Ministry of Transport and
   Water Management in the Netherlands; University of Groningen, Faculty of
   Spatial Sciences
FX The research presented here was supported by Rijkswaterstaat, the
   executive agency of the Ministry of Transport and Water Management in
   the Netherlands and the University of Groningen, Faculty of Spatial
   Sciences.
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NR 50
TC 8
Z9 8
U1 6
U2 23
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1464-9357
EI 1470-000X
J9 PLAN THEORY PRACT
JI Plan. Theory Pract.
PD MAR 15
PY 2022
VL 23
IS 2
BP 212
EP 232
DI 10.1080/14649357.2022.2034921
EA FEB 2022
PG 21
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA 2T6RG
UT WOS:000763165000001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Ogawa, Y
   Sekimoto, Y
   Shibasaki, R
AF Ogawa, Yoshiki
   Sekimoto, Yoshihide
   Shibasaki, Ryosuke
TI Estimation of earthquake damage to urban environments using sparse
   modeling
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article
DE Big data; GIS; integrated damage estimation; resilience; sparse
   modeling; variable selection
AB For the establishment of precise disaster prevention measures in response to the Nankai megathrust earthquakes predicted to occur in the future, it is necessary to conduct numerous earthquake simulations and evaluate the vulnerability of the urban environment quantitatively. This vulnerability is evaluated on the basis of factors such as the extent of damage from earthquakes, as well as the attributes of residents, urban infrastructure, and systems in the environment. In this study, we propose a sparse modeling (SpM)-based technique for the evaluation of potential damage to urban environments due to Nankai megathrust earthquakes in Japan. As explanatory variables, any variables related to urban environments in Kochi Prefecture are considered. The results show that, unlike the so-called "complex disaster" events, the number of critical variables that characterize damage states when external disaster forces data (e.g. estimated seismic motion and tsunami height) and urban environment data are available is low, regardless of the magnitude of damage. In other words, urban system variables selected for damage states may be extracted as variables indicating vulnerability to earthquake damage. In addition, we evaluated the characteristics of different cities by visualizing the SpM results on a radar chart. The proposed technique is useful for gaining a deeper understanding of the influence of urban environment variables on earthquake damages. Furthermore, it is expected that measures for improving urban system resilience will be explored based on the proposed technique.
C1 [Ogawa, Yoshiki] Univ Tokyo, Ctr Spatial Informat Sci, Tokyo, Japan.
   [Sekimoto, Yoshihide; Shibasaki, Ryosuke] Univ Tokyo, Tokyo, Japan.
C3 University of Tokyo; University of Tokyo
RP Ogawa, Y (corresponding author), Univ Tokyo, Meguro Ku, Komaba 4-6-1, Tokyo 1538505, Japan.
EM ogawa@csis.u-tokyo.ac.jp
RI Sekimoto, Yoshihide/E-2106-2012
FU "Post-K computer priority issue application development" program
   (Priority issue 3: Construction of an integrated forecasting system for
   complex disasters based on earthquake and tsunami); Ministry of
   Education, Culture, Sports, Science, and Technology; Japan Science and
   Technology Agency (JST) [JPMJCR18Z6]; JSPS KAKENHI [JP17K12997, JP
   20K15001]; Grants-in-Aid for Scientific Research [20K15001] Funding
   Source: KAKEN
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: This study
   received funding support under the "Post-K computer priority issue
   application development" program (Priority issue 3: Construction of an
   integrated forecasting system for complex disasters based on earthquake
   and tsunami) sponsored by the Ministry of Education, Culture, Sports,
   Science, and Technology, and the Strategic Basic Research Program and
   AIP (Artificial Intelligence, Big Data, IoT, Cyber Security Integration
   Project) Network Public/Private R&D Investment Strategic Expansion
   Program (PRISM) [grant number JPMJCR18Z6] of the Japan Science and
   Technology Agency (JST) and JSPS KAKENHI [Grant Numbers JP17K12997 and
   JP 20K15001].
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NR 32
TC 2
Z9 2
U1 0
U2 9
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 1075
EP 1090
AR 2399808320986560
DI 10.1177/2399808320986560
EA JAN 2021
PG 16
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:000626697400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Zhang, X
   Dong, ZH
   Huangfu, FY
   Ye, YJ
   Strbac, G
   Kang, CQ
AF Zhang, Xi
   Dong, Zihang
   Huangfu, Fenyu
   Ye, Yujian
   Strbac, Goran
   Kang, Chongqing
TI Strategic dispatch of electric buses for resilience enhancement of urban
   energy systems
SO APPLIED ENERGY
LA English
DT Article
DE Power system resilience; Electric bus; Vehicle-to-grid; Dispatch
   optimisation
ID MICROGRIDS; RESTORATION; RESOURCE
AB The increasing frequency of the occurrence of high impact low probability (HILP) disruptive events has posed huge threats to the power system. Therefore, power system resilience improvement has drawn world-wide attention. Electric buses (EB) are equipped with a large capacity of batteries which could provide sufficient energy and capacity values to run islanded micro-grids (MG) for hours, with a particular focus on V2G, which will deliver system resilience during extreme operational conditions. In this paper, an innovative reciprocal transport-power system coordination scheme is proposed to simultaneously mitigate the adverse impacts on both systems. By using this economic incentive-free approach, EBs are endogenously motivated to provide resilience-oriented V2G service to the power system, while increasing the transport service survivability during HILP disruptive events. Additionally, a novel EB dispatch rescheduling method considering the trade-off of both the requirement of energy supply security and transport service fulfilment is proposed. By using this method, the essential load curtailment of local MGs can be further alleviated, while the impacts of reduced charging service on transport service can also be further mitigated. Through a series of case studies, we illustrate that EBs have significant potential to provide resilience enhancement to the urban energy system based on appropriate dispatch strategies. Meanwhile, the interests of the power system and the transport system can be well reconciled by using the proposed approach during HILP disruptive events.
C1 [Zhang, Xi] State Grid Smart Grid Res Inst Co Ltd, Beijing 102209, Peoples R China.
   [Zhang, Xi] Elect Power Wireless Commun Technol Lab, Beijing 102209, Peoples R China.
   [Dong, Zihang] Tongji Univ, Dept Elect Engn, Shanghai 201804, Peoples R China.
   [Huangfu, Fenyu] Peking Univ, Ordos Res Inst Energy, Ordos 100091, Peoples R China.
   [Ye, Yujian] Southeast Univ, Sch Elect Engn, Sipailou 2, Nanjing 210096, Peoples R China.
   [Strbac, Goran] Imperial Coll London, Dept Elect & Elect Engn, London SW7 2AZ, England.
   [Kang, Chongqing] Tsinghua Univ, Dept Elect Engn, Beijing 100084, Peoples R China.
C3 Tongji University; Peking University; Southeast University - China;
   Imperial College London; Tsinghua University
RP Ye, YJ (corresponding author), Southeast Univ, Sch Elect Engn, Sipailou 2, Nanjing 210096, Peoples R China.
EM yeyujian@seu.edu.cn
RI Zhang, Xi/ADI-7558-2022; Dong, Zihang/AFK-0995-2022; Kang,
   Chongqing/A-6601-2016; Ye, Yujian/AAE-4587-2019
OI DONG, ZIHANG/0000-0003-4541-7259; Ye, Yujian/0000-0002-9278-9218
FU National Natural Sci-ence Foundation of China [52207082]; Natural
   Science Foundation of Jiangsu Province [BK20220842]
FX <B>Acknowledgments</B> This work has been jointly supported by the
   National Natural Sci-ence Foundation of China under Grant 52207082 and
   the Natural Science Foundation of Jiangsu Province under Grant
   BK20220842.
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NR 43
TC 10
Z9 10
U1 29
U2 41
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 MAY 1
PY 2024
VL 361
AR 122897
DI 10.1016/j.apenergy.2024.122897
EA FEB 2024
PG 16
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA OB6P2
UT WOS:001204842300001
DA 2025-04-22
ER

PT J
AU Pita, GL
   de Schwarzkopf, MLA
AF Pita, Gonzalo L.
   de Schwarzkopf, Maria L. A.
TI Urban downburst vulnerability and damage assessment from a case study in
   Argentina
SO NATURAL HAZARDS
LA English
DT Article
DE Downburst; Microburst; Vulnerability; Resilience; Tornado; Gustnado
ID THUNDERSTORM; TORNADOES
AB This paper presents a study of the damage pattern caused by a severe storm consisting of a downburst, a type of gustnado, and a tornado on Bell Ville, Argentina. Two damage surveys were conducted, one involving around 4000 questionnaires, which afforded both quantitative and qualitative insights about the damage on infrastructure, building components, and trees. Key findings include the identification of the most vulnerable urban elements which represented a significant portion of overall damage. Damage interdependencies among urban elements were also identified. The findings gained in this study help to characterize the vulnerability of this and similar cities for the most frequent intensity of downbursts, and along with some general recommendations which are also presented, they can inform local building codes, land-use regulations, and community development ordinances for cities facing this type of hazard in order to increase resilience.
C1 [Pita, Gonzalo L.] Johns Hopkins Univ, Dept Civil Engn, Baltimore, MD 21218 USA.
   [de Schwarzkopf, Maria L. A.] MLAS Meteorol Consultants, RA-1088 Buenos Aires, DF, Argentina.
C3 Johns Hopkins University
RP Pita, GL (corresponding author), Johns Hopkins Univ, Dept Civil Engn, Baltimore, MD 21218 USA.
EM gpita1@jhu.edu; marialuisaaltinger@gmail.com
FU Ministry of Science and Technology of Argentina-Program RAICES [R.
   850/14]
FX The authors would like to acknowledge the 560 survey volunteers, and
   especially Julio Caballero, Adriana Gimenez (F. Ecosud), Daniel Tossen
   (F. Ecosud), Reinaldo Calvente (F. Ecosud), Cristian Gallo and the
   Volunteer Firemen of Bell Ville, Ruben Giustiniani and the Cordoba State
   Police, Sergio Marinhas, Orestes "Flaco'' Mori, Rebeca Quetglas (P.
   Tau), Agueda Menvielle (P. RAICES), Maria Teresa Borches (P. RAICES),
   Emilio Bunge, Matias Armanini, Martiel Peralta, Bonnie Wittstadt, and
   Jim Gillispie (GIS Office, Eisenhower Library, JHU), Ana De Marco,
   Osbaldo Costa, Marcos Pita. We also want to thank Daniel Wright and
   Harriette Stone for reading the manuscript and providing valuable
   suggestions. Their contributions are gratefully acknowledged. The
   support of the Ministry of Science and Technology of Argentina-Program
   RAICES (travel grant R. 850/14) to attend the 1st South American
   Symposium on Severe Storms in San Juan, Argentina, is greatly
   appreciated.
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NR 44
TC 8
Z9 8
U1 5
U2 21
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 2016
VL 83
IS 1
BP 445
EP 463
DI 10.1007/s11069-016-2323-z
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 DQ8ZU
UT WOS:000379501000022
DA 2025-04-22
ER

PT J
AU Kou, LB
   Zhao, HP
AF Kou, Longbin
   Zhao, Hanping
TI Regional resilience assessment based on city network risk propagation
   and cooperative recovery
SO CITIES
LA English
DT Article
DE Regional resilience; City network; Disaster attack; Risk propagation;
   Cooperative recovery
ID URBAN RESILIENCE; GOVERNANCE; FRAMEWORK; CITIES
AB With the rapid development of transportation systems and increased connectivity between cities, the capacity of regional cities to propagate risks and cooperate with each other has a great impact on regional resilience. Given that a region can be seen as a networked and multidimensional system with complex interactions of cities, it is necessary to assess regional resilience based on the complex network thinking. This paper views the region as a two-layer coupled city network with risk propagation and cooperative recovery and propose the regional resilience assessment framework. Then, a network of 337 prefecture-level cities in mainland China is used as the study area to assess the impact of different cities on the regional resilience after a sudden public health disaster. The results show that cities in western China have less impact on regional resilience, while cities in central and eastern China have more impact. In addition, we found that each indicator under the three dimensions of regional network resilience has different degrees of correlation with influencing factors. Meanwhile, the changes in the same influencing factor may cause indicators under different dimensions of resilience to increase or decrease. There is a trade-off between approaches to improve regional resilience under each dimension.
C1 Beijing Normal Univ, Fac Geog Sci, Key Lab Environm Change & Nat Disaster, Minist Educ, Beijing 100875, Peoples R China.
   Beijing Normal Univ, Fac Geog Sci, State Key Lab Earth Surface Proc & Resource Ecol, Beijing 100875, Peoples R China.
   Beijing Normal Univ, Fac Geog Sci, Beijing 100875, Peoples R China.
C3 Beijing Normal University; Beijing Normal University; Beijing Normal
   University
RP Zhao, HP (corresponding author), Beijing Normal Univ, Beijing, Peoples R China.
EM Zhaohanping@bnu.edu.cn
FU Second Tibetan Plateau Scientific Expedition and Research Project
   [2019QZKK0906]; State Key Laboratory of Earth Surface Processes and
   Resource Ecology
FX This research was supported by The Second Tibetan Plateau Scientific
   Expedition and Research Project (2019QZKK0906) and Project Supported by
   State Key Laboratory of Earth Surface Processes and Resource Ecology.
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NR 69
TC 7
Z9 8
U1 69
U2 120
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD APR
PY 2024
VL 147
AR 104856
DI 10.1016/j.cities.2024.104856
EA FEB 2024
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA KR1M7
UT WOS:001181602700001
DA 2025-04-22
ER

PT J
AU Rothe, D
AF Rothe, Delf
TI Green resilience: Securing life through vegetal being
SO POLITICAL GEOGRAPHY
LA English
DT Article
DE Anthropocene; Biopolitics; More-than-human agency; New York City;
   Resilience; Security compositions; Visuality
ID SURVIVOR TREES; POLITICS; GARDENS
AB This paper critically examines the concept of "green resilience" - the mobilization of gardens and urban green spaces for enhancing the resilience of communities and cities in the face of increasing uncertainty and risk. Drawing inspiration from seminal work in human-plant geographies, it explores the governmental functions and political implications of green resilience, arguing that these spaces serve as key forms of state rule and biopolitical power. The study employs the notion of green resilience as a "composition," emphasizing the assembling of diverse human and nonhuman actors in resilience projects. The developed compositional ontology highlights the importance of aesthetic and visual practices in green resilience projects and reveals how these are continuously decomposed and recomposed by the involved actors. The paper develops its arguments through a "paradigmatic case study" of various green resilience projects in New York City - including survivor trees, memorial groves, and community gardens. The study illuminates the multiplicity of green resilience initiatives and the underlying governmental logic by comparing these projects. Through its analysis, the paper contributes to the literature on resilience as an emerging governance paradigm. It reveals how green resilience projects embody a multiplicity of practices, uncovers the first comprehensive comparative analysis of various forms of green resilience, and offers a critique of resilience from within. The study concludes by identifying three tensions or contradictions of (green) resilience as a form of biopolitical government: visibility and invisibility, knowledge and ignorance, and control and emergence.
C1 [Rothe, Delf] Univ Hamburg, Inst Peace Res & Secur Policy, Beim Schlump 83, D-20144 Hamburg, Germany.
C3 University of Hamburg
RP Rothe, D (corresponding author), Univ Hamburg, Inst Peace Res & Secur Policy, Beim Schlump 83, D-20144 Hamburg, Germany.
EM rothe@ifsh.de
RI Rothe, Delf/ABD-9577-2020
OI Rothe, Delf/0000-0003-0425-262X
FU German Research Foundation/Deutsche Forschungsgemeinschaft (DFG)
   [EXC2037, 335616337]
FX <BOLD>Acknowledgements</BOLD> This research was funded by the German
   Research Foundation/Deutsche Forschungsgemeinschaft (DFG) under Grant
   numbers EXC2037 and 335616337. I would like to thank Ann-Kathrin Benner
   and Alina Viehoff for their support of the project.
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NR 67
TC 6
Z9 6
U1 9
U2 22
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0962-6298
EI 1873-5096
J9 POLIT GEOGR
JI Polit. Geogr.
PD MAR
PY 2024
VL 109
AR 103042
DI 10.1016/j.polgeo.2023.103042
EA JAN 2024
PG 12
WC Geography; Political Science
WE Social Science Citation Index (SSCI)
SC Geography; Government & Law
GA GU0Q0
UT WOS:001155071300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Qi, W
   Sha, MY
   Li, SL
AF Qi, Wei
   Sha, Mengyi
   Li, Shanling
TI When Shared Autonomous Electric Vehicles Meet Microgrids: Citywide
   Energy-Mobility Orchestration
SO M&SOM-MANUFACTURING & SERVICE OPERATIONS MANAGEMENT
LA English
DT Article
DE shared autonomous electric vehicles; solar-powered microgrids; smart
   city operations
ID SYSTEMS
AB Problem definition: We develop a crossdisciplinary analytics framework to understand citywide mobility-energy synergy. In particular, we investigate the potential of shared autonomous electric vehicles (SAEVs) for improving the self-sufficiency and resilience of solar-powered urban microgrids. Academic/practical relevance: Our work is motivated by the ever-increasing interconnection of energy and mobility service systems at the urban scale. We propose models and analytics to characterize the dynamics of the SAEV-microgrid service systems, which were largely overlooked by the literature on service operations and vehicle-grid integration (VGI) analysis. Methodology: We develop a space-time-energy network representation of SAEVs. Then, we formulate linear program models to incorporate an array of major operational decisions interconnecting the mobility and energy systems. To preventatively ensure microgrid resilience, we also propose an "N-1" resilience-constrained fleet dispatch problem to cope with microgrid outages. Results: Combining eight data sources of New York City, our results show that 80,000 SAEVs in place of the current ride-sharing mobility assets can improve the microgrid self-sufficiency by 1.45% (benchmarked against the case without grid support) mainly via the spatial transfer of electricity, which complements conventional VGI. Scaling up the SAEV fleet size to 500,000 increases the microgrid self-sufficiency by 8.85% mainly through temporal energy transfer, which substitutes conventional VGI. We also quantify the potential and trade-offs of SAEVs for peak electricity import reduction and ramping mitigation. In addition, microgrid resilience can be enhanced by SAEVs, but the actual resilience level varies by microgrids and by the hour when grid contingency occurs. The SAEV fleet operator can further maintain the resilience of pivotal microgrid areas at their maximum achievable level with no more than a 1% increase in the fleet repositioning trip length. Managerial implications: Our models and findings demonstrate the potential in deepening the integration of urban mobility and energy service systems toward a smart-city future.
C1 [Qi, Wei; Li, Shanling] McGill Univ, Desautels Fac Management, Montreal, PQ H3A 1G5, Canada.
   [Sha, Mengyi] McGill Univ, Dept Civil Engn, Montreal, PQ H3A 0C3, Canada.
C3 McGill University; McGill University
RP Qi, W (corresponding author), McGill Univ, Desautels Fac Management, Montreal, PQ H3A 1G5, Canada.; Sha, MY (corresponding author), McGill Univ, Dept Civil Engn, Montreal, PQ H3A 0C3, Canada.
EM wei.qi@mcgill.ca; mengyi.sha@mail.mcgill.ca; shanling.li@mcgill.ca
RI Qi, Wei/H-7565-2014
OI Qi, Wei/0000-0003-3948-835X
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NR 45
TC 9
Z9 9
U1 18
U2 84
PU INFORMS
PI CATONSVILLE
PA 5521 RESEARCH PARK DR, SUITE 200, CATONSVILLE, MD 21228 USA
SN 1523-4614
EI 1526-5498
J9 M&SOM-MANUF SERV OP
JI M&SOM-Manuf. Serv. Oper. Manag.
PD SEP-OCT
PY 2022
VL 24
IS 5
SI SI
BP 2370
EP 2387
DI 10.1287/msom.2021.1050
EA DEC 2021
PG 18
WC Management; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Operations Research & Management Science
GA 8N3PD
UT WOS:000738262500001
DA 2025-04-22
ER

PT J
AU Yenneti, K
   Tripathi, S
   Wei, YD
   Chen, W
   Joshi, G
AF Yenneti, Komali
   Tripathi, Sabyasachi
   Wei, Yehua Dennis
   Chen, Wen
   Joshi, Gaurav
TI The truly disadvantaged? Assessing social vulnerability to climate
   change in urban India
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Poverty; Inequality; Climate change; Urban; Social vulnerability; India
ID RESILIENCE; RISK
AB Vulnerability of marginalized groups has received significant attention in climate change and disaster literature, while there is much less academic interest on urban populations. There has also been limited consideration among policymakers and risk managers, who tend to concentrate on large-scale risk management. Drawing on the analysis of vulnerability of urban populations In India and its changes over three periods (2004-05, 2009-10, and 2011-12), this study contributes to filling these gaps as well as emerging discussion on urban risk management. For the purpose of our study, we have developed Composite Urban Vulnerability Index (CUVI) based on 13 indicators that shape the vulnerability of an urban society. The analysis reveals that at national level, social vulnerability has declined considerably over the study periods. There is clearly a heavy concentration of social vulnerability in central and eastern states, such as Madhya Pradesh, Chhattisgarh, Orissa, Jharkhand, and West Bengal, attributable to the high levels of poverty, inequality, and problems relating to unemployment, housing, and access to basic civic amenities like safe drinking water and sanitation. Only the urban populations in relatively prosperous Northern and Southern states are relatively less vulnerable to climate change. The results signify that while social communities in urban areas across India are, in general, developing resilience to climate change, large contrasts exist due to the socioeconomic and geographical differentiation among states. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Yenneti, Komali; Joshi, Gaurav] Chinese Acad Sci, Nanjing Inst Geog & Limnol, Nanjing 210008, Jiangsu, Peoples R China.
   [Tripathi, Sabyasachi] Lovely Profess Univ, Dept Econ, Phagwara 144411, Punjab, India.
   [Wei, Yehua Dennis] Henan Univ, Key Res Inst Yellow River Civilizat & Sustainable, Kaifeng 475001, Peoples R China.
   [Wei, Yehua Dennis] Henan Univ, Collaborat Innovat Ctr Yellow River Civilizat Hen, Kaifeng 475001, Peoples R China.
   [Wei, Yehua Dennis] Univ Utah, Dept Geog, Salt Lake City, UT 84112 USA.
   [Chen, Wen] Chinese Acad Sci, Nanjing Inst Geog & Limnol, Key Lab Watershed Geog Sci, Nanjing 210008, Jiangsu, Peoples R China.
   [Joshi, Gaurav] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
C3 Chinese Academy of Sciences; Nanjing Institute of Geography & Limnology,
   CAS; Lovely Professional University; Henan University; Henan University;
   Utah System of Higher Education; University of Utah; Chinese Academy of
   Sciences; Nanjing Institute of Geography & Limnology, CAS; Chinese
   Academy of Sciences; University of Chinese Academy of Sciences, CAS
RP Wei, YD (corresponding author), Univ Utah, Dept Geog, Salt Lake City, UT 84112 USA.
EM wei@geog.utah.edu
RI Wei, Yehua/A-7831-2009; Yenneti, Komali/ABB-6468-2021; Tripathi,
   Sabyasachi/G-2722-2016; JOSHI, GAURAV/N-4863-2014
OI Yenneti, Komali/0000-0002-0007-8663; Tripathi,
   Sabyasachi/0000-0003-1980-5477; Wei, Yehua Dennis/0000-0002-8510-388X
FU National Natural Science Foundation of China [41130750, 41329001,
   41550110226]
FX We would like to acknowledge the funding of the National Natural Science
   Foundation of China (41130750, 41329001, and 41550110226).
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NR 46
TC 43
Z9 45
U1 0
U2 80
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 2016
VL 56
BP 124
EP 135
DI 10.1016/j.habitatint.2016.05.001
PG 12
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 DR4QJ
UT WOS:000379887000013
DA 2025-04-22
ER

PT J
AU Chakraborty, P
AF Chakraborty, Proshant
TI Gendered violence, frontline workers, and intersections of space, care
   and agency in Dharavi, India
SO GENDER PLACE AND CULTURE
LA English
DT Article
DE Agency; care labour; Dharavi; gendered violence; frontline workers;
   urban poor neighbourhoods
ID SOCIAL-REPRODUCTION; URBAN; GOVERNMENTALITY; WOMEN; FIELD
AB The resilience and activism of marginalised urban populations have played an important role in imagining urban politics in Indian cities. Similarly, the issue of sexual violence against women in public spaces became a significant part of urban politics in the aftermath of the 2012 Delhi gang rape and murder case. However, subsequent activism and research have paid lesser attention to other pervasive experiences of intimate violence and structural inequalities that confront marginalised urban populations, particularly poor women and children. Drawing on participatory ethnographic research with frontline workers engaged in an NGO's violence prevention program in Dharavi, Mumbai, this paper re-inscribes 'gender' and 'violence' as experiential concepts into the urban framework. I use the term 'intersection' as a heuristic device to examine how frontline workers come to understand gender as a relationship of inequality that produces conditions of violence. I term this intersection 'gender/violence'. The second intersection, 'frontline', further underscores how negotiations of the public-private divide in urban spaces, women's caring labour in supporting survivors of violence and the resultant forms of gendered agency are interconnected. I argue that such a holistic understanding of women's everyday actions of resisting and negotiating structural and gendered violence contributes to recent urban scholarship on gender and violence and furthers our understandings of agency, solidarity and resilience.
C1 [Chakraborty, Proshant] SNEHA, Mumbai, Maharashtra, India.
RP Chakraborty, P (corresponding author), SNEHA, Mumbai, Maharashtra, India.
EM proshant.k.chakraborty@gmail.com
RI Chakraborty, Proshant/AAS-5554-2020
OI Chakraborty, Proshant/0000-0002-7302-2775
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NR 67
TC 7
Z9 7
U1 0
U2 7
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0966-369X
EI 1360-0524
J9 GENDER PLACE CULT
JI Gend. Place Cult.
PD MAY 4
PY 2021
VL 28
IS 5
BP 649
EP 679
DI 10.1080/0966369X.2020.1739004
EA MAR 2020
PG 31
WC Geography; Women's Studies
WE Social Science Citation Index (SSCI)
SC Geography; Women's Studies
GA RX0EA
UT WOS:000523328900001
DA 2025-04-22
ER

PT J
AU Hu, H
   Yan, KG
   Shi, Y
   Lv, TG
   Zhang, XM
   Wang, XY
AF Hu, Han
   Yan, Kegao
   Shi, Yang
   Lv, Tiangui
   Zhang, Xinmin
   Wang, Xinyue
TI Decrypting resilience: The spatiotemporal evolution and driving factors
   of ecological resilience in the Yangtze River Delta Urban Agglomeration
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Article
DE Ecological resilience; Heterogeneity; Spatiotemporal evolution; Driving
   factors
ID URBANIZATION; EFFICIENCY; FRAMEWORK
AB Can a system be reconstructed for greater resilience to complex disturbances? We provide answers to this question by demystifying ecological resilience (ER). We innovatively constructed a "resistant, absorptive, and restorative capacity" framework based on evolutionary resilience theory, the Dagum Gini coefficient, and the panel Tobit model to systematically determine what ER is and how to enhance it. The results indicate that during 2005-2021, minimal longitudinal changes with significant horizontal variations occurred in the ER of the Yangtze River Delta Urban Agglomeration (YRDUA). ER showed an "east strong, west weak" pattern, with average values from 0.124 to 0.665. The ER of Southern Jiangsu ranked high, while that of the seven cities in Anhui ranked low. The inequity of ER showed an initial increase followed by a fluctuating decreasing trend; the overall average Gini coefficient was 0.262. The intra-regional differences showed Zhejiang > Jiangsu > Anhui, with a contribution rate of 55.46%. Green patents and the proportion of cultivated land were the most significant positive and negative driving forces for ER, respectively. Additionally, when these factors worked together, they increased the explanatory power of ER, primarily via nonlinear enhancement. Urbanization rate and green patents enhanced the joint action of driving forces. The contribution of our study is to compensate for the lack of theoretical traceability in previous studies and provide an inspiring analytical framework for ER.
C1 [Hu, Han; Yan, Kegao; Shi, Yang; Wang, Xinyue] Hunan Univ, Sch Publ Adm, Changsha 410082, Peoples R China.
   [Lv, Tiangui] Jiangxi Univ Finance & Econ, Sch Publ Finance & Publ Adm, Nanchang 330013, Peoples R China.
   [Zhang, Xinmin] Jiangxi Univ Finance & Econ, Sch Appl Econ, Nanchang 330013, Peoples R China.
C3 Hunan University; Jiangxi University of Finance & Economics; Jiangxi
   University of Finance & Economics
RP Lv, TG (corresponding author), Jiangxi Univ Finance & Econ, Sch Publ Finance & Publ Adm, Nanchang 330013, Peoples R China.
EM lvtiangui@163.com
RI Lv, Tiangui/GWC-4432-2022; Han, Hu/KGL-1078-2024
FU National Natural Science Foundation of China [42261049]; Natural Science
   Foundation of Jiangxi Province [20232BAB203061, 20232BAA10026]
FX This study is supported by the National Natural Science Foundation of
   China (No. 42261049) , and the Natural Science Foundation of Jiangxi
   Province (No.20232BAB203061 & No.20232BAA10026) .
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NR 51
TC 23
Z9 23
U1 110
U2 132
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 MAY
PY 2024
VL 106
AR 107540
DI 10.1016/j.eiar.2024.107540
EA MAY 2024
PG 12
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA TJ9H1
UT WOS:001241008000002
HC Y
HP Y
DA 2025-04-22
ER

PT J
AU Carreño, ML
   Cardona, OD
   Barbat, AH
   Suarez, DC
   Perez, MD
   Narvaez, L
AF Liliana Carreno, Martha
   Cardona, Omar-Dario
   Barbat, Alex H.
   Catalina Suarez, Dora
   del Pilar Perez, Maria
   Narvaez, Lizardo
TI Holistic Disaster Risk Evaluation for the Urban Risk Management Plan of
   Manizales, Colombia
SO INTERNATIONAL JOURNAL OF DISASTER RISK SCIENCE
LA English
DT Article
DE Holistic risk assessment; Manizales (Colombia); Probabilistic risk
   assessment; Risk management plan; Urban disaster risk index; Urban
   resilience
ID SEISMIC RISK
AB Disaster risk depends on both the physical vulnerability and a wide range of social, economic, and environmental aspects of a society. For a better risk understanding, a holistic or integrated perspective was considered when risk was assessed for the city of Manizales, Colombia. This assessment accounts not only for the expected physical damage and loss, but also for the socioeconomic vulnerability factors that favor second-order effects in a disaster. This comprehensive approach allows the identification of different aspects related to physical vulnerability, social fragility, and lack of resilience that can be improved, thus enhancing integrated disaster risk management actions. The outcomes of this comprehensive assessment are currently being used as input to update the disaster risk management plan of Manizales.
C1 [Liliana Carreno, Martha; Barbat, Alex H.] Ctr Int Metodes Numer Engn, Barcelona 08034, Spain.
   [Liliana Carreno, Martha; Barbat, Alex H.] Univ Politecn Cataluna, ES-08034 Barcelona, Spain.
   [Cardona, Omar-Dario] Univ Nacl Colombia, Inst Estudios Ambientales IDEA, Manizales 170004, Colombia.
   [Cardona, Omar-Dario; Catalina Suarez, Dora; del Pilar Perez, Maria; Narvaez, Lizardo] INGENIAR Ltda, Bogota 110221, DC, Colombia.
C3 Universitat Politecnica de Catalunya; Centre Internacional de Metodes
   Numerics en Enginyeria (CIMNE); Universitat Politecnica de Catalunya;
   Universidad Nacional de Colombia
RP Carreño, ML (corresponding author), Ctr Int Metodes Numer Engn, Barcelona 08034, Spain.; Carreño, ML (corresponding author), Univ Politecn Cataluna, ES-08034 Barcelona, Spain.
EM liliana@cimne.upc.edu
RI CARDONA, OMAR/HOC-8271-2023; Suárez, Daniel/IRG-7298-2023; del Mar
   Romero Pérez, María/AAB-3405-2019; Barbat, Alex H./M-6206-2013; Carreno,
   Martha Liliana/C-8837-2015; Cardona, Omar D./H-7529-2015
OI Barbat, Alex H./0000-0002-3649-8053; Carreno, Martha
   Liliana/0000-0003-1914-2992; Cardona, Omar D./0000-0001-8233-5450
FU Ministry of Education and Science of Spain "Evaluacion de la
   Vulnerabilidad y el Riesgo de Zonas Urbanas Expuestas a Amenazas
   Naturales y Antropicas-EZUANA" [BIA2016-78544-R]
FX This work was carried out within the framework of the
   inter-institutional agreement between the Universidad Nacional de
   Colombia, Manizales headquarters, and the Corporacion Autonoma Regional
   de Caldas (CORPOCALDAS)-the regional environmental authority, to improve
   information systems for risk knowledge and understanding; monitoring of
   hazard events and warning systems; and mainstreaming risk into planning,
   and to improve risk awareness in the city of Manizales, Colombia. The
   authors also express their gratitude for the support of the Ministry of
   Education and Science of Spain "Evaluacion de la Vulnerabilidad y el
   Riesgo de Zonas Urbanas Expuestas a Amenazas Naturales y
   Antropicas-EZUANA" (BIA2016-78544-R).
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NR 35
TC 22
Z9 25
U1 2
U2 38
PU SPRINGEROPEN
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON, N1 9XW, ENGLAND
SN 2095-0055
EI 2192-6395
J9 INT J DISAST RISK SC
JI Int. J. Disaster Risk Sci.
PD SEP
PY 2017
VL 8
IS 3
SI SI
BP 258
EP 269
DI 10.1007/s13753-017-0136-7
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 FK9BZ
UT WOS:000413807300004
OA gold
DA 2025-04-22
ER

PT J
AU Xu, WP
   Du, WW
   Proverbs, D
   Cai, XY
AF Xu, Wenping
   Du, Wenwen
   Proverbs, David
   Cai, Xinyan
TI A Novel Modeling Approach to Quantify the Flood Resilience of Cities
SO WATER
LA English
DT Article
DE flood resilience; D-number theory; AHP; VIKOR method; disaster
   prevention and mitigation
AB In recent years, large-scale flood events have occurred more frequently, and the concept of resilience has become a prevalent approach to managing flood risk in many regions. This has led to an increased interest in how to effectively measure a city's flood resilience levels. This study proposes a novel modeling approach to quantify urban flood resilience by developing D-number theory and analytical hierarchy process (AHP) models, which are applied to three cities in China using the VIse Kriterijumski Optimizacioni Racun (VIKOR) method. The findings reveal that Hefei City has the most effective level of flood resilience, Hangzhou City was ranked second, while Zhengzhou City has the least effective level of flood resilience. This study provides a new scientific basis on how to quantify flood resilience at the city scale and provides a useful reference for these three specific cities. The methods and approaches developed in this study have the potential to be applied to other cities and in the related aspects of disaster prevention, recovery, and reconstruction.
C1 [Xu, Wenping; Du, Wenwen; Cai, Xinyan] Wuhan Univ Sci & Technol, Sch Management, Wuhan 430065, Peoples R China.
   [Xu, Wenping] Wuhan Huaxia Univ Technol, Sch Informat Engn, Wuhan 430073, Peoples R China.
   [Proverbs, David] De Montfort Univ, Enterprise & Business Innovat, Leicester LE1 9BH, England.
C3 Wuhan University of Science & Technology; Wuhan Huaxia University of
   Technology; De Montfort University
RP Proverbs, D (corresponding author), De Montfort Univ, Enterprise & Business Innovat, Leicester LE1 9BH, England.
EM xuwenping@wust.edu.cn; 15239375106@163.com; david.proverbs@dmu.ac.uk;
   g15515103316@163.com
RI Proverbs, David/AAL-1178-2020
OI Proverbs, David/0000-0002-3297-2205; du, wen wen/0009-0000-2536-1425;
   xu, wenping/0000-0003-4474-1583
FU Natural Science Foundation of Hubei Province
FX No Statement Available
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NR 54
TC 1
Z9 1
U1 8
U2 26
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD APR
PY 2024
VL 16
IS 7
AR 1066
DI 10.3390/w16071066
PG 23
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA NM4R9
UT WOS:001200862400001
OA gold
DA 2025-04-22
ER

PT J
AU Ndetei, D
   Mutiso, V
   Maraj, A
   Anderson, K
   Musyimi, C
   Musau, A
   Tele, A
   Gitonga, I
   McKenzie, K
AF Ndetei, David
   Mutiso, Victoria
   Maraj, Anika
   Anderson, Kelly
   Musyimi, Christine
   Musau, Abednego
   Tele, Albert
   Gitonga, Isaiah
   McKenzie, Kwame
TI Towards Understanding the Relationship Between Psychosocial Factors and
   Ego Resilience Among Primary School Children in a Kenyan Setting: A
   Pilot Feasibility Study
SO COMMUNITY MENTAL HEALTH JOURNAL
LA English
DT Article
DE Psychosocial factors; Ego resilience; School aged children
ID PUBLIC SECONDARY-SCHOOLS; YOUTH SELF-REPORT; POSITIVE EMOTIONS;
   BEHAVIORAL-PROBLEMS; PERSONALITY; CHILDHOOD; NAIROBI; GENDER;
   GENERALIZABILITY; ANXIETY
AB Ego resilience in childhood is linked to positive mental health outcomes but varies across cultures. Kenya presents a unique context in which children are vulnerable to adversity. We therefore hypothesized that Ego resilience traits are found in Kenya. We aimed to: (i) demonstrate Ego resilience in Kenya, (ii) determine associated social-demographic and psychological factors in a non-clinical population of primary school going children, (iii) contribute to the global data base with Kenyan dataand (iv) lay the grounds for informed future and more focused studies in Kenya. We used a socio-demographic questionnaire, Ego Resilience scale (ER-89) and the Youth Self Report (YSR). Multivariate analyses showed the only independent predictors of Ego resilience were female gender (p<0.001) and peri-urban region (p<0.001). We did not find any association between Ego resilience and YSR syndrome scores in this non-clinical population study. We achieved our aims.
C1 [Ndetei, David; Mutiso, Victoria; Musyimi, Christine; Musau, Abednego; Tele, Albert; Gitonga, Isaiah] Africa Mental Hlth Fdn, POB 48423-00100, Nairobi, Kenya.
   [Ndetei, David] Univ Nairobi, Dept Psychiat, Nairobi, Kenya.
   [Maraj, Anika; Anderson, Kelly; McKenzie, Kwame] CAMH, Toronto, ON, Canada.
   [Musyimi, Christine] Vrije Univ, Amsterdam, Netherlands.
   [McKenzie, Kwame] Univ Toronto, Dept Psychiat, Toronto, ON, Canada.
C3 University of Nairobi; University of Toronto; Centre for Addiction &
   Mental Health - Canada; Vrije Universiteit Amsterdam; University of
   Toronto
RP Ndetei, D (corresponding author), Africa Mental Hlth Fdn, POB 48423-00100, Nairobi, Kenya.; Ndetei, D (corresponding author), Univ Nairobi, Dept Psychiat, Nairobi, Kenya.
EM dmndetei@amhf.or.ke; vmutiso@amhf.or.ke; anika.maraj@mail.mcgrill.ca;
   kelly.anderson@schulich.uwo.ca; christine.musyimi@amhf.or.ke;
   abednego.musau@amhf.or.ke; albert.tele@amhf.or.ke;
   isaiah.gitonga@amhf.or.ke; Kwame.McKenzie@camh.ca
RI Musyimi, Christine/LDG-1872-2024; Anderson, Kelly/I-8979-2012; Gitonga,
   Isaiah/JXN-9719-2024
OI Anderson, Kelly/0000-0001-9843-404X; Tele, Albert/0000-0002-7586-7819;
   Musau, Abednego/0000-0001-5979-1191; Mutiso,
   Victoria/0000-0002-8395-6707; mckenzie, kwame/0000-0001-6419-8130;
   Gitonga, Isaiah/0000-0001-6938-7467
FU Grand Challenges Canada [0083-04]; Africa Mental Health Foundation
   (AMHF); CIHR [274885]
FX This study was funded by a Grant from Grand Challenges Canada (#0083-04)
   and was supported by the Africa Mental Health Foundation (AMHF). Kelly
   Anderson was supported by a Postdoctoral Fellowship Award from CIHR
   (#274885). We acknowledge Professor Jenelle R. Shanley from The
   Pennsylvania State University for critiquing the manuscript. Our
   appreciation to Ruth Ruhara, Darius Nyamai and Grace Mutevu of AMHF for
   their editorial inputs and the parents, teachers and children for their
   unreserved cooperation.
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NR 47
TC 10
Z9 11
U1 0
U2 9
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0010-3853
EI 1573-2789
J9 COMMUNITY MENT HLT J
JI Community Ment. Health J.
PD AUG
PY 2019
VL 55
IS 6
BP 1038
EP 1046
DI 10.1007/s10597-019-00425-5
PG 9
WC Health Policy & Services; Public, Environmental & Occupational Health;
   Psychiatry
WE Social Science Citation Index (SSCI)
SC Health Care Sciences & Services; Public, Environmental & Occupational
   Health; Psychiatry
GA IM0FY
UT WOS:000477663400014
PM 31177481
DA 2025-04-22
ER

PT J
AU Du, Q
   Zong, XY
   Li, Y
   Guo, XQ
   Ye, ZN
   Li, SS
   Bai, LB
AF Du, Qiang
   Zong, Xiaoyi
   Li, Yi
   Guo, Xiqian
   Ye, Zhongnan
   Li, Shasha
   Bai, Libiao
TI Resilience optimization of bus-metro double-layer network against
   extreme weather events
SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Resilience; Bus-metro system; Double-layer network; Recovery strategy;
   Genetic algorithm
ID RAIL TRANSIT; TRANSPORTATION; VULNERABILITY; SIMULATION; SYSTEMS
AB The resilience of bus and metro systems to extreme weather events is a critical concern in urban planning, given their growing complexity and interconnectivity. Traditional studies often simplify or overlook the interdependency between different transportation modes, focusing on recovery strategies for a single mode to enhance system resilience. This study proposes an integrated resilience assessment framework for bus and metro systems, conceptualized as a Bus-Metro Double-Layer Network (B-M DLN). The framework considers both network structure and system function to accurately evaluate the B-M DLN resilience. A resilience optimization model for BM DLN based on Genetic Algorithm (GA) is established to suggest the optimal recovery sequence of damaged stations, emphasizing the importance of station repair time, node strength, and node degree in recovery prioritization. Through a case analysis of Xi'an City, China, the B-M DLN shows significantly enhanced resilience when applying the optimal recovery strategy, especially in large-scale failure scenarios.
C1 [Du, Qiang; Bai, Libiao] Changan Univ, Ctr Green Engn & Sustainable Dev, Xian 710064, Shaanxi, Peoples R China.
   [Du, Qiang; Zong, Xiaoyi; Li, Shasha; Bai, Libiao] Changan Univ, Sch Econ & Management, Xian 710064, Shaanxi, Peoples R China.
   [Li, Yi; Guo, Xiqian] Changan Univ, Sch Transportat Engn, Middle Sect South Second Ring Rd, Xian 710064, Shaanxi, Peoples R China.
   [Ye, Zhongnan] Hong Kong Polytech Univ, Dept Civil & Environm Engn, Hong Kong 999077, Peoples R China.
C3 Chang'an University; Chang'an University; Chang'an University; Hong Kong
   Polytechnic University
RP 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; zongxiaoyi@chd.edu.cn; liyi@chd.edu.cn;
   xq.guo@chd.edu.cn; zhong-nan.ye@connect.polyu.hk; 2021123060@chd.edu.cn;
   lb.bai@chd.edu.cn
RI YE, ZHONGNAN/KYO-8927-2024; Li, Yi/AAX-1962-2020; bai,
   libiao/L-8511-2019
OI Ye, Zhongnan/0000-0002-4074-2477
FU National Natural Science Foundation of China [72171025]; Scientific
   Research Program Funded by Education Department of Shaanxi Provincial
   Government [21JP010]; Science and Technology Foundation for
   Transportation of Shaanxi Province [23-07R]; Soft Science Project of
   Xi'an City [24RKYJ0025]; Fundamental Research Funds for the Fundamental
   Research Funds for the Central Universities, CHD [300102233402,
   300102233602, 300102344103]
FX The research work was supported by the National Natural Science
   Foundation of China [Grant No. 72171025] , Scientific Research Program
   Funded by Education Department of Shaanxi Provincial Government [Grant
   No. 21JP010] , the Science and Technology Foundation for Transportation
   of Shaanxi Province [Grant No. 23-07R] , the Soft Science Project of
   Xi'an City [Grant No. 24RKYJ0025] , the the Fundamental Research Funds
   for the Fundamental Research Funds for the Central Universities, CHD
   [Grant No. 300102233402, No. 300102233602 and No.300102344103] .
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NR 54
TC 3
Z9 3
U1 77
U2 94
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 OCT
PY 2024
VL 135
AR 104378
DI 10.1016/j.trd.2024.104378
EA SEP 2024
PG 20
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 G1K1S
UT WOS:001314286200001
DA 2025-04-22
ER

PT J
AU Berardi, D
   Galuppi, M
   Libertà, A
   Lombardi, M
AF Berardi, Davide
   Galuppi, Marta
   Liberta, Angelo
   Lombardi, Mara
TI Forecasting of Wildfire Probability Occurrence: Case Study of a
   Mediterranean Island of Italy
SO LAND
LA English
DT Article
DE ignition points; wildfire forecasting; wildland-urban interface;
   vulnerability assessment; spatial distribution; fire resilience
AB The growing need to address natural and human-induced disasters while protecting territory remains a key focus for the scientific community. Effective emergency management, especially during wildfires, requires coordinated responses to safeguard lives and assets. This study develops hazard maps to aid emergency planning in Italy and estimate territorial resilience indicators. Focusing on wildfire ignition hazards in Ischia, the study uses a probabilistic model based on fifteen years of wildfire data (2009-2023). By analyzing ignition points and employing a Poisson distribution, it correlates ignition probabilities with vegetation types. The hazard maps reveal that wildfire risk is primarily influenced by the wildland-urban interface and vegetation characteristics, emphasizing the need to integrate territorial and urban factors into wildfire forecasting. The findings also suggest areas for refining the model to enhance risk mitigation strategies.
C1 [Berardi, Davide; Galuppi, Marta; Liberta, Angelo; Lombardi, Mara] Sapienza Univ Rome, Dept Chem Engn Mat Environm DICMA, Via Eudossiana 18, I-00184 Rome, Italy.
C3 Sapienza University Rome
RP Galuppi, M (corresponding author), Sapienza Univ Rome, Dept Chem Engn Mat Environm DICMA, Via Eudossiana 18, I-00184 Rome, Italy.
EM davide.berardi@uniroma1.it; marta.galuppi@uniroma1.it;
   angelo.liberta@uniroma1.it; mara.lombardi@uniroma1.it
RI Berardi, Davide/AAN-6643-2020; Galuppi, Marta/ITT-5895-2023; Lombardi,
   Mara/A-4157-2014
OI Berardi, Davide/0000-0002-3771-677X
FU European Union Next-GenerationEU (National Recovery and Resilience
   Plan-NRRP) [PE0000005]
FX This study was carried out within the RETURN Extended Partnership from
   the European Union Next-GenerationEU (National Recovery and Resilience
   Plan-NRRP, Mission 4,Component 2, Investment 1.3-D.D. 1243 2/8/2022,
   PE0000005).
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NR 42
TC 0
Z9 0
U1 6
U2 6
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 277
DI 10.3390/land14020277
PG 27
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA Y3D9L
UT WOS:001430984500001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Hidalgo, BD
AF Hidalgo, Blanca del Espino
TI Heritage Designation and Urban Territorial Balance in Andalusia (Spain):
   An Approach towards Collaborative Methods in Rural Areas
SO LAND
LA English
DT Article
DE urban territorial balance; heritage designation; collaborative mapping;
   documentation of cultural heritage; cultural heritage databases;
   territorial depopulation; local development; heritage-based development
ID NATURE CONSERVATION; POPULATION; RESILIENCE
AB Numerous studies suggest that cultural heritage can be a powerful resource for local development when managed from the principles of sustainability and resilience. This paper aims to make a significant contribution to the designation of heritage assets. The case of the Andalusian region of southern Spain presents both qualitative and quantitative differences when a comparative study is made between urban centers, medium-sized cities, small towns, and rural areas. Subsequently, the paper proposes diverse methodologies to improve heritage designation in vulnerable territories through the incorporation of collaborative methods and digital humanities. The final objective is to conclude how to improve cultural heritage location and information processes to maximize social impact in areas suffering from aging and depopulation problems.
C1 [Hidalgo, Blanca del Espino] Andalusian Inst Hist Heritage, Seville 41092, Spain.
RP Hidalgo, BD (corresponding author), Andalusian Inst Hist Heritage, Seville 41092, Spain.
EM blanca.espino@juntadeandalucia.es
RI Del Espino Hidalgo, Blanca/AAI-2675-2020; Del Espino Hidalgo,
   Blanca/H-9975-2015
OI Del Espino Hidalgo, Blanca/0000-0002-1442-7385
FU Plan Andaluz de Investigacion, Desarrollo e Innovacion 2020, Consejeria
   de Transformacion Economica, Industria, Conocimiento y Universidades de
   la Junta de Andalucia [PY20_00298]; Call CEIS 2020 [PYC20 RE 029 IAPH]
FX This research was funded by Plan Andaluz de Investigacion, Desarrollo e
   Innovacion 2020, Consejeria de Transformacion Economica, Industria,
   Conocimiento y Universidades de la Junta de Andalucia, Call 2020, grant
   number PY20_00298 as well as by Call CEIS 2020, grant number PYC20 RE
   029 IAPH. No APC was charged for this research.
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NR 40
TC 1
Z9 1
U1 2
U2 7
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD APR 27
PY 2023
VL 12
IS 5
AR 974
DI 10.3390/land12050974
PG 15
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA H7AI3
UT WOS:000997443100001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Kaltenbrunner, R
AF Kaltenbrunner, Robert
TI The City and Extreme Weather: How Cities Should Respond to Climate
   Change
SO ADVANCED SUSTAINABLE SYSTEMS
LA English
DT Article
DE climate-friendly cities; handling of uncertainties; urban resilience
AB The following essay focuses on the impacts of climate toward citiesand on the inherent restraints, which one has to deal with. There is today a necessity of strategies for urban resilience. These move away from the idea that space must be used in the most efficient way possible: instead, tolerances will be built in, buffers formed, which should lead at the same time to added spatially quantitative value. It is as right as it is necessary to develop a vision of climate-friendly and CO2-neutral cities and regions. On the one hand, one must ask how all of the uncertainties can be handled in the planning. On the other hand, one must engage oneself to anchormore precisely, to better anchorintegrated climate protection and adaptation strategies to everyday activities: not only for regional planning or urban development, but also among private builders and property owners.
C1 [Kaltenbrunner, Robert] Fed Inst Res Bldg Urban Affairs & Spatial Dev, Head Dept Bldg & Housing, Deichmanns Aue 31-37, D-53179 Bonn, Germany.
RP Kaltenbrunner, R (corresponding author), Fed Inst Res Bldg Urban Affairs & Spatial Dev, Head Dept Bldg & Housing, Deichmanns Aue 31-37, D-53179 Bonn, Germany.
EM Robert.Kaltenbrunner@bbr.bund.de
NR 1
TC 1
Z9 1
U1 3
U2 17
PU WILEY-V C H VERLAG GMBH
PI WEINHEIM
PA POSTFACH 101161, 69451 WEINHEIM, GERMANY
SN 2366-7486
J9 ADV SUSTAIN SYST
JI Adv. Sustain. Syst.
PD MAY
PY 2019
VL 3
IS 5
AR 1900002
DI 10.1002/adsu.201900002
PG 3
WC Green & Sustainable Science & Technology; Materials Science,
   Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Materials Science
GA ID6UP
UT WOS:000471815400003
DA 2025-04-22
ER

PT J
AU Marschütz, B
   Bremer, S
   Runhaar, H
   Hegger, D
   Mees, H
   Vervoort, J
   Wardekker, A
AF Marschutz, Benedikt
   Bremer, Scott
   Runhaar, Hens
   Hegger, Dries
   Mees, Heleen
   Vervoort, Joost
   Wardekker, Arjan
TI Local narratives of change as an entry point for building urban climate
   resilience
SO CLIMATE RISK MANAGEMENT
LA English
DT Article
DE Climate resilience; Narrative analysis; Citizen engagement; Flooding
ID CHANGE ADAPTATION; PUBLIC-PARTICIPATION; KNOWLEDGE; COPRODUCTION;
   SCIENCE; COSTS; RISK; PERCEPTION; CHALLENGES; STRATEGIES
AB Cities face increasing risks due to climate change, and many cities are actively working towards increasing their climate resilience. Climate change-induced risks and interventions to reduce these risks do not only impact urban risk management systems and infrastructures, but also people's daily lives. In order to build public support for climate adaptation and resilience-building and stimulate collaboration between authorities and citizens, it is necessary that adaptation and resilience-building are locally meaningful. Thus, interventions should be rooted in citizens' concerns and aspirations for their city. Urban policymakers and researchers have started the search for better citizen participation in adaptation. However, tools to connect the relatively strategic and long-term notions of adaptation to a gradually changing climate held by planners and scientists with how citizens experience today's climate and weather remain elusive. This paper investigates the use of 'narratives of change' as an approach to elicit perceptions of past, present and future weather, water, and climate, and how these relate to citizens' desired futures. We tested this by eliciting and comparing narratives of change from authorities and from citizens in the Dutch city of Dordrecht. Our analysis of the process showed that historical events, embedded in local memory and identity, have a surprisingly strong impact on how climate change is perceived and acted upon today. This contributes to an awareness and sense of urgency of some climate risks (e.g. flood risks). However, it also shifts attention away from other risks (e.g. intensified heat stress). The analysis highlighted commonalities, like shared concerns about climate change and desires to collaborate, but also differences in how climate change, impacts, and action are conceptualized. There are possibilities for collaboration and mutual learning, as well as areas of potential disagreement and conflict. We conclude that narratives are a useful tool to better connect the governance of climate adaptation with peoples' daily experience of climate risks and climate resilience, thereby potentially increasing public support for and participation in resilience-building.
C1 [Marschutz, Benedikt; Runhaar, Hens; Hegger, Dries; Mees, Heleen; Vervoort, Joost; Wardekker, Arjan] Univ Utrecht, Copernicus Inst Sustainable Dev, Utrecht, Netherlands.
   [Bremer, Scott; Wardekker, Arjan] Univ Bergen, Ctr Study Sci & Humanities, Bergen, Norway.
   [Runhaar, Hens] Wageningen Univ & Res, Forest & Nat Conservat Policy Grp, Wageningen, Netherlands.
C3 Utrecht University; University of Bergen; Wageningen University &
   Research
RP Wardekker, A (corresponding author), POB 80115, NL-3508 TC Utrecht, Netherlands.
EM J.A.Wardekker@uu.nl
RI Wardekker, Arjan/U-8500-2019; Runhaar, Hens/L-5395-2013; Bremer,
   Scott/Q-6524-2017; Hegger, Dries/S-8727-2016; Vervoort,
   Joost/R-1735-2016; Hegger, Dries/L-9301-2013; Mees, Heleen/L-5394-2013
OI Hegger, Dries/0000-0003-2721-3527; Wardekker, Arjan/0000-0001-7974-4835;
   Mees, Heleen/0000-0002-4401-6106
FU EU ERA4CS/JPI Climate project CoCliServ
FX This paper was funded through the EU ERA4CS/JPI Climate project
   CoCliServ "Co-development of place-based climate services for action".
   We thank Werner Krauss for providing comments & suggestions during the
   project.
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NR 141
TC 39
Z9 40
U1 7
U2 51
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0963
J9 CLIM RISK MANAG
JI CLIM. RISK MANAG.
PY 2020
VL 28
AR 100223
DI 10.1016/j.crm.2020.100223
PG 15
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 LL5OA
UT WOS:000531606200002
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Salazar-Galán, S
   Mascort-Albea, E
   Sánchez-Fuentes, D
AF Salazar-Galan, Sergio
   Mascort-Albea, Emilio
   Sanchez-Fuentes, Domingo
TI Post-COVID-19 territorial redefinition: resilience in the face of risks
   and imbalances in urban-rural patterns
SO EURE-REVISTA LATINOAMERICANA DE ESTUDIOS URBANO REGIONALES
LA Spanish
DT Article
DE countryside-city relationship; regionalization; socio-territorial
   transformations
ID CONSEQUENCES
AB The present Tribune reflects on the effects of the alteration of ecosystems and biodiversity on the increase of related health and environmental problems, as evidenced by the global crisis caused by covid-19. The generalization of densely populated and increasingly expanding urban models has led to environmental pollution and an increased risk of disease and flooding. Similarly, the industrialization of the food chain has favored the appearance of diseases such as diabetes and pathogens that cause infectious diseases. With globalization, the latter has been rapidly transmitted from rural areas to urban populations, allowing rapid expansion. Consequently, there is a call for a redefinition of the countryside-city relationship from a bioregional perspective and from a socio-ecological approach to maintain and restore the ecological support structure. This could strengthen territorial resilience through a modular, flexible, and polycentric configuration.
C1 [Salazar-Galan, Sergio; Mascort-Albea, Emilio; Sanchez-Fuentes, Domingo] Univ Seville, Seville, Spain.
C3 University of Sevilla
RP Salazar-Galán, S (corresponding author), Univ Seville, Seville, Spain.
EM ssgalan@us.es; emascort@us.es; dsanchez@us.es
RI Mascort-Albea, Emilio/K-4941-2015; Salazar-Galán, Sergio/Y-7484-2019
OI Salazar-Galan, Sergio/0000-0003-2463-1790
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NR 35
TC 4
Z9 4
U1 0
U2 9
PU PONTIFICIA UNIV CATOLICA CHILE, INST ESTUDIOS URBANOS TERRITORIALES
PI SANTIAGO
PA EL COMENDADOR 1916, SANTIAGO, 00000, CHILE
SN 0250-7161
EI 0717-6236
J9 EURE
JI Eure
PD JAN
PY 2022
VL 48
IS 143
DI 10.7764/eure.48.143.16
PG 9
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA XZ6DD
UT WOS:000737739500008
OA hybrid, Green Submitted, Green Published
DA 2025-04-22
ER

PT J
AU Cai, XM
   Song, YY
   Xue, DQ
   Ma, BB
   Liu, XF
   Zhang, LW
AF Cai, Xinmeng
   Song, Yongyong
   Xue, Dongqian
   Ma, Beibei
   Liu, Xianfeng
   Zhang, Liwei
TI Spatial and Temporal Changes in Ecological Resilience in the
   Shanxi-Shaanxi-Inner Mongolia Energy Zone with Multi-Scenario Simulation
SO LAND
LA English
DT Article
DE ecological resilience; PLUS model; multi-scenario simulation; land use
ID WORLDS ECOSYSTEM SERVICES; RESISTANCE; SYSTEMS; AREA; CITY
AB The energy-driven expansion of artificial surfaces has resulted in severe ecological problems. Scientific evaluation of regional ecological resilience under different scenarios is crucial for promoting ecological restoration. This study chose the Shanxi-Shaanxi-Inner Mongolia Energy Zone (SEZ) and modeled an ecological resilience evaluation based on resistance, adaptability, and recovery. Land-use change and ecological resilience from 1980 to 2020 were then analyzed. Moreover, the SEZ land-use patterns and ecological resilience in 2030 were simulated under business as usual (BAU), energy and mineral development (EMD), and ecological conservation and restoration (ECR) scenarios. The results showed that (1) the SEZ was dominated by cultivated land, grassland, and unused land. (2) Ecological resilience showed a changing trend of decreasing and then increasing, with high ecological resilience areas mainly located in the Yellow River Basin, whereas low ecological resilience areas spread outward from the central urban areas. (3) The ecological resilience level was the lowest under the EMD scenario and the highest under the ECR scenario. This study not only expands the analysis framework of ecological resilience research but also provides scientific support for ecological conservation in ecologically fragile areas with intensive human activity worldwide.
C1 [Cai, Xinmeng; Song, Yongyong; Xue, Dongqian; Ma, Beibei; Liu, Xianfeng; Zhang, Liwei] Shaanxi Normal Univ, Sch Geog & Tourism, Xian 710119, Peoples R China.
C3 Shaanxi Normal University
RP Song, YY (corresponding author), Shaanxi Normal Univ, Sch Geog & Tourism, Xian 710119, Peoples R China.
EM cxmdimon@snnu.edu.cn; syy2016@snnu.edu.cn; xuedq@snnu.edu.cn;
   mabb@snnu.edu.cn; liuxianfeng7987@163.com; zlw@snnu.edu.cn
RI Song, Yongyong/AAP-8518-2020; XIANFENG, LIU/N-6645-2014
OI XIANFENG, LIU/0000-0001-6576-0711; zhang, liwei/0000-0002-2195-1070
FU National Natural Science Foundation of China
FX No Statement Available
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IS 4
AR 425
DI 10.3390/land13040425
PG 21
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA OW4Q3
UT WOS:001210305500001
OA gold
DA 2025-04-22
ER

PT J
AU Ye, SS
   Qian, Z
AF Ye, Shanshan
   Qian, Zhu
TI The Economic Network Resilience of the Guanzhong Plain City Cluster,
   China: A network analysis from the evolutionary perspective
SO GROWTH AND CHANGE
LA English
DT Article
ID REGIONAL RESILIENCE; LOCK-IN; URBAN; TRANSPORTATION; LIFE
AB This article applies the network analysis to evaluate the resilience of economic network in Guanzhong Plain City Cluster (GPCC) and examine the impact of network structural properties on economic resilience, thus providing an innovative research perspective and a theoretical framework for evaluating the economic resilience of the city cluster. A modified gravity model is introduced to construct the economic network. Three structural properties of the network, hierarchy, assortativity, and cohesion, are used to evaluate the resilience of the GPCC from 2008 to 2018 and illustrate the characteristics of the resilience. The results show that the economic network of the GPCC is strongly hierarchical with a growing trend, a declining disassortativity, and a weak cohesion. Although the network has formed a core-peripheral structure, its hierarchy and disassortativity would result in low resilience and high vulnerability, at the risk of external shocks to the GPCC. The impact of the network structure on economic resilience is analyzed by using a regression model, which verifies the validity of applying the network theory to resilience analysis. The results suggest that improving the interactions and economic connections between core and peripheral cities will strengthen the resilience of the GPCC.
C1 [Ye, Shanshan] Northwest Univ, Coll Urban & Environm Sci, Xian 710127, Peoples R China.
   [Ye, Shanshan; Qian, Zhu] Univ Waterloo, Sch Planning, Waterloo, ON, Canada.
   [Ye, Shanshan] Res Ctr Shaanxi Prov Dev & Reform Commiss, Xian, Peoples R China.
C3 Northwest University Xi'an; University of Waterloo
RP Ye, SS (corresponding author), Northwest Univ, Coll Urban & Environm Sci, Xian 710127, Peoples R China.
EM 402880740@qq.com
OI Ye, Shanshan/0000-0003-4536-6623
FU program of China Scholarships Council [201906970029]
FX Financial support from the program of China Scholarships Council (No.
   201906970029).
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NR 49
TC 21
Z9 21
U1 12
U2 109
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 2391
EP 2411
DI 10.1111/grow.12530
EA AUG 2021
PG 21
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA XG6DK
UT WOS:000690686700001
DA 2025-04-22
ER

PT J
AU Berbés-Blázquez, M
   Cook, EM
   Grimm, NB
   Iwaniec, DM
   Mannetti, LM
   Muñoz-Erickson, TA
   Wahl, D
AF Berbes-Blazquez, Marta
   Cook, Elizabeth M.
   Grimm, Nancy B.
   Iwaniec, David M.
   Mannetti, Lelani M.
   Munoz-Erickson, Tischa A.
   Wahl, Darin
TI Assessing resilience, equity, and sustainability of future visions
   across two urban scales
SO SUSTAINABILITY SCIENCE
LA English
DT Article
DE Urban futures; Assessment; Scenarios; Social-ecological-technological
   systems; Phoenix (AZ)
ID ENVIRONMENTAL INJUSTICE; PATHWAYS; JUSTICE
AB Cities need to take swift action to deal with the impacts of extreme climate events. The co-production of positive visions offers the potential to not only imagine but also intervene in guiding change toward more desirable urban futures. While participatory visioning continues to be used as a tool for urban planning, there needs to be a way of comparing and evaluating future visions so that they can inform decision-making. Traditional tools for comparison tend to favor quantitative modeling, which is limited in its ability to capture nuances or normative elements of visions. In this paper, we offer a qualitative method to assess the resilience, equity, and sustainability of future urban visions and demonstrate its use by applying it to 11 visions from Phoenix, AZ. The visions were co-produced at two different governance scales: five visions were created at the village (or borough) scale, and six visions were created at the regional (or metropolitan) scale. Our analysis reveals different emphases in the mechanisms present in the visions to advance resilience, sustainability, and equity. In particular, we note that regional future visions align with a green sustainability agenda, whereas village visions focus on social issues and emphasize equity-driven approaches. The visions have implications for future trajectories, and the priorities that manifest at the two scales speak of the political nature of visioning and the need to explore how these processes may interact in complementary, synergistic, or antagonistic ways.
C1 [Berbes-Blazquez, Marta] Univ Waterloo, Fac Environm, Sch Planning, Waterloo, ON, Canada.
   [Cook, Elizabeth M.] Barnard Coll, Environm Sci Dept, New York, NY USA.
   [Grimm, Nancy B.] Arizona State Univ, Sch Life Sci, Tempe, AZ USA.
   [Iwaniec, David M.; Mannetti, Lelani M.] Georgia State Univ, Urban Studies Inst, Atlanta, GA USA.
   [Munoz-Erickson, Tischa A.] US Forest Serv, Int Urban Field Stn, Int Inst Trop Forestry, USDA, Rio Piedras, PR USA.
   [Wahl, Darin] Lund Univ, Ctr Sustainabil Studies, Lund, Sweden.
C3 University of Waterloo; Barnard College; Arizona State University;
   Arizona State University-Tempe; University System of Georgia; Georgia
   State University; United States Department of Agriculture (USDA); United
   States Forest Service; Lund University
RP Berbés-Blázquez, M (corresponding author), Univ Waterloo, Fac Environm, Sch Planning, Waterloo, ON, Canada.
EM mberbes@uwaterloo.ca
RI MunozErickson, Tischa/AAG-8476-2019; Wahl, Darin/AAL-5986-2020; Iwaniec,
   David/M-7993-2014; Grimm, Nancy/D-2840-2009; Berbes,
   Marta/AAE-9374-2020; Mannetti, Lelani/AAA-2003-2020
OI Cook, Elizabeth M./0000-0002-4290-7482; Berbes-Blazquez,
   Marta/0000-0002-2685-873X; Wahl, Darin/0000-0003-0396-8423
FU United States National Science Foundation [DEB-1832016, DEB-2224662,
   SES-1444755, GCR-1934933]
FX This research was funded by United States National Science Foundation
   under Grant nos. DEB-1832016 and DEB-2224662 (Central Arizona-Phoenix
   Long-Term Ecological Research Program), SES-1444755 (Urban Resilience to
   Extremes Sustainability Research Network), and GCR-1934933 (SETS
   Convergence Network).
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NR 58
TC 2
Z9 2
U1 11
U2 29
PU SPRINGER JAPAN KK
PI TOKYO
PA SHIROYAMA TRUST TOWER 5F, 4-3-1 TORANOMON, MINATO-KU, TOKYO, 105-6005,
   JAPAN
SN 1862-4065
EI 1862-4057
J9 SUSTAIN SCI
JI Sustain. Sci.
PD NOV
PY 2023
VL 18
IS 6
BP 2549
EP 2566
DI 10.1007/s11625-023-01396-z
EA AUG 2023
PG 18
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA W0JT0
UT WOS:001052045800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Webber, JL
   Fu, GT
   Butler, D
AF Webber, James L.
   Fu, Guangtao
   Butler, David
TI Rapid surface water intervention performance comparison for urban
   planning
SO WATER SCIENCE AND TECHNOLOGY
LA English
DT Article
DE decision support; green infrastructure; intervention performance
   comparison; resilience assessment; surface water flood management;
   sustainable drainage
ID MANAGEMENT; STORMWATER; OPTIONS; SUPPORT
AB Surface water flooding can be a significant source of damage and disruption in urban areas. The complexity of urban surfaces, the need for spatially disaggregated approaches and the multiplicity of interventions makes management challenging from a number of perspectives. This research responds to the challenge of selecting appropriate surface water management interventions by applying a fast assessment framework to generate evidence for comparing strategies at low resource cost during initial design. This is demonstrated by simulating flood dynamics and comparing damage costs in 144 flood scenarios. The main finding of this work is that a high-level quantitative assessment of large numbers of scenarios is capable of providing evidence to identify performance trends and consider resilience to extreme events at an early stage of planning.
C1 [Webber, James L.; Fu, Guangtao; Butler, David] Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, North Pk Rd, Exeter EX4 4QF, Devon, England.
C3 University of Exeter
RP Webber, JL (corresponding author), Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, North Pk Rd, Exeter EX4 4QF, Devon, England.
EM jw616@exeter.ac.uk
RI Webber, James/HQY-4347-2023; Fu, Guangtao/ABE-3874-2021;
   Gonzalez-Barrio, David/MHQ-7861-2025
OI Webber, James/0000-0002-1158-4895
FU UK Engineering & Physical Sciences Research Council through the Water
   Informatics Science and Engineering Centre for Doctoral Training
   [EP/L016214/1]; Safe & SuRe research fellowship [EP/K006924/1]; EPSRC
   [EP/K006924/1, EP/H015736/1] Funding Source: UKRI; NERC [NE/P011217/1,
   NE/K008765/1] Funding Source: UKRI
FX The authors would like to thank Mike Gibson and Albert Chen (University
   of Exeter) for their help applying the CADDIES model and damage cost
   tool. This research was supported by the UK Engineering & Physical
   Sciences Research Council through the Water Informatics Science and
   Engineering Centre for Doctoral Training (EP/L016214/1) and the Safe &
   SuRe research fellowship (EP/K006924/1).
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NR 39
TC 16
Z9 19
U1 4
U2 33
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 APR
PY 2018
VL 77
IS 8
BP 2084
EP 2092
DI 10.2166/wst.2018.122
PG 9
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA GJ8TH
UT WOS:000435663800013
PM 29722694
DA 2025-04-22
ER

PT J
AU Mao, Y
   Li, ZY
   Rui, S
   Wu, G
   Fu, X
   Tian, Y
   Zheng, SN
AF Mao, Yang
   Li, Zhengyan
   Rui, Sun
   Wu, Gang
   Fu, Xiao
   Tian, Ye
   Zheng, Shuanning
TI Changes and divergences of urban climate adaptability in Pearl River
   Delta: spatiotemporal patterns and driving forces
SO INTERNATIONAL JOURNAL OF SUSTAINABLE DEVELOPMENT AND WORLD ECOLOGY
LA English
DT Article
DE Climate adaptation assessment; spatiotemporal change; Pearl River Delta;
   driving factors; urban resilience
ID CHANGE VULNERABILITY; RESILIENCE; ADAPTATION; RISK; AGRICULTURE;
   STRATEGIES; EVOLUTION; IMPACTS; POVERTY; HEALTH
AB With global change and urban expansion, the city's vulnerable to climate-induced disasters is increasing significantly. Addressing this challenge has become a global priority and there is an urgent need to improve the resilience and adaptability. We focused on the climate adaptability of cities in the Pearl River Delta (PRD) in the southeastern China, and employed the entropy-weighting method and TOPSIS model to assess city's adaptability to climate in three levels, exposure, sensitivity, and adaptation. Then, we applied the Obstacle and Geodetector model to identify the challenges of the cities and elucidate the primary drivers of the changes in climate adaptability from 2000 to 2020. This study shows a significant increase in climate adaptation within the PRD region over the past two decades, especially for economy-prosperous cities such as Shenzhen and Guangzhou that show significant improvement. Spatially, central cities are more adaptable than western cities. The density of urban drainage pipes, doctors per 1000 people, and GDP per capita are the main obstacles. The explanatory power of the number of invention patents and fixed investments persists in surpassing that of the heat index and other factors. This interaction underscores the imperative for integrated strategies aimed at fostering both socio-economic development and climate adaptability. It emphasizes the need to tailor urban planning approaches to the specific characteristics of cities in different locations and stages of development, thereby enhancing their capacity to adapt to climate change.
C1 [Mao, Yang; Li, Zhengyan; Rui, Sun; Tian, Ye; Zheng, Shuanning] Chinese Acad Sci, Inst Urban Environm, 1799 Jimei Rd, Xiamen 361021, Fujian, Peoples R China.
   [Mao, Yang; Rui, Sun] Univ Chinese Acad Sci, Beijing, Peoples R China.
   [Li, Zhengyan] Fujian Agr & Forestry Univ, Coll JunCao Sci & Ecol, Coll Carbon Neutral, Fuzhou, Fujian, Peoples R China.
   [Wu, Gang; Fu, Xiao] Chinese Acad Sci, Res Ctr Ecoenvironm Sci, State Key Lab Urban & Reg Ecol, Beijing, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Urban Environment, CAS;
   Chinese Academy of Sciences; University of Chinese Academy of Sciences,
   CAS; Fujian Agriculture & Forestry University; Chinese Academy of
   Sciences; Research Center for Eco-Environmental Sciences (RCEES)
RP Zheng, SN (corresponding author), Chinese Acad Sci, Inst Urban Environm, 1799 Jimei Rd, Xiamen 361021, Fujian, Peoples R China.
EM snzheng@iue.ac.cn
RI wu, gang/JVZ-8330-2024; Li, Zhengyan/GSD-3935-2022; Rui,
   Sun/KHY-3780-2024
FU Strategic Priority Research Program (A) of the Chinese Academy of
   Sciences [XDA23030402]; National Key RD Programme [2022YFF1303202]
FX This work was supported by the Strategic Priority Research Program (A)
   of the Chinese Academy of Sciences XDA23030402; National Key R&D
   Programme 2022YFF1303202.
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NR 79
TC 0
Z9 0
U1 25
U2 36
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 1350-4509
EI 1745-2627
J9 INT J SUST DEV WORLD
JI Int. J. Sustain. Dev. World Ecol.
PD OCT 2
PY 2024
VL 31
IS 7
BP 912
EP 928
DI 10.1080/13504509.2024.2345222
EA APR 2024
PG 17
WC Green & Sustainable Science & Technology; Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA G7U4L
UT WOS:001209114000001
DA 2025-04-22
ER

PT J
AU Zhao, QS
   Li, ZQ
   Shah, DM
   Fischer, H
   Solls, P
   Wentz, E
AF Zhao, Qunshan
   Li, Ziqi
   Shah, Dhrumil
   Fischer, Heather
   Solls, Patricia
   Wentz, Elizabeth
TI Understanding the interaction between human activities and physical
   health under extreme heat environment in Phoenix, Arizona
SO HEALTH & PLACE
LA English
DT Article
DE Citizen science; Portable sensing; Urban heat; Community resilience
ID TECHNOLOGY USE; URBAN; EXPOSURE; PLATFORM; CROWD; APP
AB Long-term community resilience, which privileges a long view look at chronic issues influencing communities, has begun to draw more attention from city planners, researchers and policymakers. In Phoenix, resilience to heat is both a necessity and a way of life. In this paper, we attempt to understand how residents living in Phoenix experience and behave in an extreme heat environment. To achieve this goal, we introduced a smartphone application (ActivityLog) to study spatio-temporal dynamics of human interaction with urban environments. Compared with traditional paper activity log results we have in this study, the smartphone-based activity log has higher data quality in terms of total number of logs, response rates, accuracy, and connection with GPS and temperature sensors. The research results show that low-income residents in Phoenix mostly stay home during the summer but experience a relatively high indoor temperature due to the lack/low efficiency of air-conditioning (AC) equipment or lack of funds to run AC frequently. Middle-class residents have a better living experience in Phoenix with better mobility with automobiles and good quality of AC. The research results help us better understand user behaviors for daily log activities and how human activities interact with the urban thermal environment, informing further planning policy development. The ActivityLog smartphone application is also presented as an open-source prototype to design a similar urban climate citizen science program in the future.
C1 [Zhao, Qunshan] Univ Glasgow, Urban Big Data Ctr, Sch Social & Polit Sci, Glasgow City G12 8RZ, Scotland.
   [Li, Ziqi] Univ Glasgow, Sch Geog & Earth Sci, Glasgow City G12 8QQ, Scotland.
   [Shah, Dhrumil; Solls, Patricia; Wentz, Elizabeth] Arizona State Univ, Knowledge Exchange Resilience, Tempe, AZ 85287 USA.
   [Fischer, Heather] Oregon State Univ, Ctr Res Lifelong STEM Learning, Corvallis, OR 97331 USA.
C3 University of Glasgow; University of Glasgow; Arizona State University;
   Arizona State University-Tempe; Oregon State University
RP Zhao, QS (corresponding author), Univ Glasgow, Urban Big Data Ctr, Sch Social & Polit Sci, Glasgow City G12 8RZ, Scotland.
EM Qunshan.Zhao@glasgow.ac.uk; Ziqi.Li@glasgow.ac.uk; dpshah8@asu.edu;
   Heather.Fischer@oregonstate.edu; patricia.solis@asu.edu; wentz@asu.edu
RI Solis, Patricia/AAO-6537-2021; Zhao, Qunshan/I-2302-2019; Li,
   Ziqi/L-4326-2014
OI Solis, Patricia/0000-0003-1374-9400; Zhao, Qunshan/0000-0002-5549-9457;
   Li, Ziqi/0000-0002-6345-4347
FU Virginia G. Piper Charitable Trust; UK ESRC [ES/L011921/1, ES/S007105/1]
FX The ASU Knowledge Exchange for Resilience is supported by the Virginia
   G. Piper Charitable Trust. Piper Trust supports organizations that
   enrich health, well-being, and opportunity for the people of Maricopa
   County, Arizona. The conclusions, views and opinions expressed in this
   manuscript are those of the authors and do not necessarily reflect the
   official policy or position of the Virginia G. Piper Charitable Trust.
   Dr.Qunshan Zhao has received UK ESRC's on-going support for the Urban
   Big Data Centre (UBDC) [ES/L011921/1 and ES/S007105/1] . The authors
   would like to thank the Salvation Army Metro Phoenix, AZCEND, The Nature
   Conservancy, and American Express for help recruiting citizen science
   volunteers and organizing the events. We want to thank Mr. Ryan
   Reynolds, Mr. Sam Golla, and Mr. Maximus Caron for their data cleaning
   efforts on the paper activity logs, and Dr. Wei Luo?s help on activity
   log data visualization. We also want to thank all of the citizen
   scientists for providing us with relevant data and contributing to the
   intellectual development of this work from their lived experiences.
   Finally, all the insightful comments and suggestions on earlier versions
   of this manuscript from anonymous reviewers are greatly appreciated.
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NR 68
TC 11
Z9 11
U1 6
U2 29
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 1353-8292
EI 1873-2054
J9 HEALTH PLACE
JI Health Place
PD JAN
PY 2023
VL 79
AR 102691
DI 10.1016/j.healthplace.2021.102691
EA FEB 2023
PG 13
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA 9O8FU
UT WOS:000943833500001
PM 34656430
OA Green Accepted, hybrid, Green Submitted
DA 2025-04-22
ER

PT J
AU Thomas, V
   Wang, D
   Mullagh, L
   Dunn, N
AF Thomas, Vanessa
   Wang, Ding
   Mullagh, Louise
   Dunn, Nick
TI Where's Wally? In Search of Citizen Perspectives on the Smart City
SO SUSTAINABILITY
LA English
DT Article; Proceedings Paper
CT Sustainable Asia Conference (SAC)
CY SEP 20-21, 2015
CL Lanzhou, PEOPLES R CHINA
DE smart cities; local knowledge; participation; community-based
   development
ID CITIES; NETWORK
AB This paper builds upon an earlier conference publication by the authors, offering contributions based on a systematic literature review and qualitative study. The paper begins by drawing attention to the paucity of "citizen"-more appropriately, "situated"-perspectives on what a smart city should and could be. The paper then addresses that absence by detailing a research project that explored how people in London, Manchester, and Glasgow responded to the smart city concept. Participants were asked questions regarding their prior familiarity with the phrase "smart city", their thoughts relating to what it means for a city to be smart, and what a "true" smart city might mean to them. The paper analyses and offers a synthesis of the responses collected throughout the research with the dominant rhetoric about smart cities, as identified through a recent systematic literature review, thereby providing a critical assessment of the values underlying the smart city. It aims to explore and present some of the expectations that citizens hold for their cities' politicians, policy makers, planners, academics, and technology companies. We believe that these perspectives from citizens can be used to inform responsible development, spatially and socially inclusive technologies, and ultimately more resilient cities.
C1 [Thomas, Vanessa; Wang, Ding; Mullagh, Louise] Univ Lancaster, HighWire Ctr Doctoral Training, Bailrigg LA1 4YW, England.
   [Dunn, Nick] Univ Lancaster, LICA, ImaginationLancaster, Bailrigg LA1 4YW, England.
C3 Lancaster University; Lancaster University
RP Thomas, V (corresponding author), Univ Lancaster, HighWire Ctr Doctoral Training, Bailrigg LA1 4YW, England.
EM v.thomas1@lancaster.ac.uk; d.wang4@lancaster.ac.uk;
   l.mullagh@lancaster.ac.uk; nick.dunn@lancaster.ac.uk
RI Dunn, Nick/U-4665-2017
OI Dunn, Nick/0000-0001-6360-0204; Thomas, Vanessa/0000-0002-9588-7120;
   Mullagh, Louise/0000-0001-7506-9887
FU Digital Economy programme (RCUK) [EP/G037582/1]
FX This work is partially funded by the Digital Economy programme (RCUK
   Grant EP/G037582/1), which supports the HighWire Centre for Doctoral
   Training (highwire.lancs.ac.uk).
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NR 60
TC 51
Z9 52
U1 1
U2 54
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 207
DI 10.3390/su8030207
PG 13
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:000373800600041
OA Green Accepted, gold, Green Published, Green Submitted
DA 2025-04-22
ER

PT J
AU An, Y
   Liu, N
   Zhang, L
   Zheng, HH
AF An, Yao
   Liu, Ning
   Zhang, Lin
   Zheng, Huanhuan
TI Adapting to climate risks through cross-border investments: industrial
   vulnerability and smart city resilience
SO CLIMATIC CHANGE
LA English
DT Article
DE Climate risk; Cross-border investments; Business and the environment;
   Smart city; Resilient effect
ID ENVIRONMENTAL-REGULATION; PRODUCTIVITY; WEATHER; CITIES; TRADE;
   OPPORTUNITIES; URBANIZATION; EMISSIONS; ECONOMICS; GROWTH
AB Climate change entails potential risks for investors, and its effects on investment has spread beyond physical borders. This study investigates how multinational corporations (MNCs) incorporate climate risks into their decisions regarding foreign direct investments (FDIs). We find that large differences in the climate risks of home and host cities discourages FDI by increasing cross-border adaptation costs. Such impacts are particularly pronounced among environmentally sensitive industries that are more exposed to climate risks. Further analysis reveals that city-based smartness factors mitigate the negative impacts of climate risk differences on FDI by reducing adaptation costs and engendering new business opportunities. This study provides new evidence on the profound effects of climate risks on FDI and how smart cities can increase their resilience to climate risks in the context of international business.
C1 [An, Yao; Zhang, Lin] City Univ Hong Kong, Sch Energy & Environm, Kowloon, Hong Kong, Peoples R China.
   [An, Yao] Tsinghua Univ, Inst Energy Environm & Econ, Beijing, Peoples R China.
   [Liu, Ning; Zhang, Lin] City Univ Hong Kong, Dept Publ & Int Affairs, Kowloon, Hong Kong, Peoples R China.
   [Zheng, Huanhuan] Natl Univ Singapore, Lee Kuan Yew Sch Publ Policy, Singapore, Singapore.
   [Zhang, Lin] Ctr Ocean Res Hong Kong & Macau CORE, Hong Kong, Peoples R China.
C3 City University of Hong Kong; Tsinghua University; City University of
   Hong Kong; National University of Singapore
RP Zhang, L (corresponding author), City Univ Hong Kong, Sch Energy & Environm, Kowloon, Hong Kong, Peoples R China.; Zhang, L (corresponding author), City Univ Hong Kong, Dept Publ & Int Affairs, Kowloon, Hong Kong, Peoples R China.; Zhang, L (corresponding author), Ctr Ocean Res Hong Kong & Macau CORE, Hong Kong, Peoples R China.
EM l.zhang@cityu.edu.hk
RI Zheng, Huanhuan/ISV-0894-2023; Zhang, Lin/O-5851-2017
OI Zhang, Lin/0000-0002-5945-5451
FU National Natural Science Foundation of China [72140005]; Research Grants
   Council of the Hong Kong Special Administrative Region [CityU 21610019];
   Singapore MOE grant; CORE project grant
FX This work was supported by National Natural Science Foundation of China
   (Project No. 72140005), Research Grants Council of the Hong Kong Special
   Administrative Region (Project No. CityU 21610019), Singapore MOE grant,
   and CORE project grant. CORE is a joint research centre for ocean
   research between QNLM and HKUST.
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NR 58
TC 3
Z9 3
U1 10
U2 55
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0165-0009
EI 1573-1480
J9 CLIMATIC CHANGE
JI Clim. Change
PD SEP
PY 2022
VL 174
IS 1-2
AR 10
DI 10.1007/s10584-022-03431-x
PG 29
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA 4N3RQ
UT WOS:000853936500001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Bauer, M
   Sanchez, L
   Song, J
AF Bauer, Martin
   Sanchez, Luis
   Song, JaeSeung
TI IoT-Enabled Smart Cities: Evolution and Outlook
SO SENSORS
LA English
DT Review
DE IoT; Smart City; interoperability; artificial intelligence;
   standardization
ID SENSING PLATFORM; CITY; TECHNOLOGIES; CHALLENGES; INTERNET;
   EXPERIMENTATION; ARCHITECTURE; SECURITY; PRIVACY
AB For the last decade the Smart City concept has been under development, fostered by the growing urbanization of the world's population and the need to handle the challenges that such a scenario raises. During this time many Smart City projects have been executed-some as proof-of-concept, but a growing number resulting in permanent, production-level deployments, improving the operation of the city and the quality of life of its citizens. Thus, Smart Cities are still a highly relevant paradigm which needs further development before it reaches its full potential and provides robust and resilient solutions. In this paper, the focus is set on the Internet of Things (IoT) as an enabling technology for the Smart City. In this sense, the paper reviews the current landscape of IoT-enabled Smart Cities, surveying relevant experiences and city initiatives that have embedded IoT within their city services and how they have generated an impact. The paper discusses the key technologies that have been developed and how they are contributing to the realization of the Smart City. Moreover, it presents some challenges that remain open ahead of us and which are the initiatives and technologies that are under development to tackle them.
C1 [Bauer, Martin] NEC Labs Europe, D-69115 Heidelberg, Germany.
   [Sanchez, Luis] Univ Cantabria, Network Planning & Mobile Commun Lab, Santander 39005, Spain.
   [Song, JaeSeung] Sejong Univ, Dept Comp Secur & Convergence Engn Intelligent Dr, Seoul 05006, South Korea.
C3 NEC Corporation; Universidad de Cantabria; Sejong University
RP Sanchez, L (corresponding author), Univ Cantabria, Network Planning & Mobile Commun Lab, Santander 39005, Spain.
EM martin.bauer@neclab.eu; lsanchez@tlmat.unican.es; jssong@sejong.ac.kr
RI Sanchez, Luis/H-4370-2019; Song, JaeSeung/AAC-2587-2019; Bauer,
   Martin/AAE-7533-2019
OI Sanchez, Luis/0000-0003-0136-3420; Song, JaeSeung/0000-0002-2157-9651;
   Bauer, Martin/0000-0003-1987-0711
FU Spain State Research Agency (AEI) [RTI2018-093475-A-I00]; Smart City R&D
   project of the Korea Agency for Infrastructure Technology Advancement
   (KAIA) - Ministry of Land, Infrastructure and Transport (MOLIT),
   Ministry of Science and ICT (MSIT) [18NSPS-B149386-01]
FX This research was partially funded by Spain State Research Agency (AEI)
   by means of the project FIERCE: Future Internet Enabled Resilient CitiEs
   (RTI2018-093475-A-I00). Prof. Song was supported by Smart City R&D
   project of the Korea Agency for Infrastructure Technology Advancement
   (KAIA) grant funded by the Ministry of Land, Infrastructure and
   Transport (MOLIT), Ministry of Science and ICT (MSIT) (Grant
   18NSPS-B149386-01).
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   Zigbee Alliance WPAN Industry Group., IND GROUP RESP ZIGBE IND GROUP RESP ZIGBE
NR 79
TC 28
Z9 29
U1 7
U2 111
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1424-8220
J9 SENSORS-BASEL
JI Sensors
PD JUL
PY 2021
VL 21
IS 13
AR 4511
DI 10.3390/s21134511
PG 29
WC Chemistry, Analytical; Engineering, Electrical & Electronic; Instruments
   & Instrumentation
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Chemistry; Engineering; Instruments & Instrumentation
GA TG4KZ
UT WOS:000671377000001
PM 34209436
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Ciccaglione, R
AF Ciccaglione, Rita
TI Resilience and resisting resilience: ethnographies in neoliberal
   L'Aquila post-earthquake
SO DISASTER PREVENTION AND MANAGEMENT
LA English
DT Article
DE Urban planning; Adolescents; Earthquake; Disaster management; Emergency
   management policies; Resilience strategies; Socio-cultural resistance;
   Urban reconstruction
ID ANTHROPOLOGY
AB Purpose - The purpose of this paper is to analyze the relationships between neoliberal institutional management of the 2009 L'Aquila earthquake and the local dwelling practices, which consequently originated in the new urban layout.
   Design/methodology/approach - It presents itself as a post-catastrophe ethnography carried out from a specific approach, that is, the street ethnography that consists of collecting the practices and discourses of inhabitants, administrators, experts and commercial operators, which take place on or around the street.
   Findings - Illustrating the stages from the declaration of the state of emergency to the expertise-proposed reconstruction models, it shows the differences between resilient strategies and policies of urban management and resistant dwelling practices that are analyzed progressively focusing on a particular social group: the teenagers of the alleys.
   Research limitations/implications - Descending in the alleys means to take a micro-sight that ables to identify present living paths.
   Practical implications - Based on a long fieldwork, it bridges the gap between "theories" and practices, and it highlights those fields of action that despite being dominated by wide-ranging disaster management and urban planning logics bring out the work of social life in reweaving its threads in contexts of crisis.
   Social implications - Paying attention to a social portion that often escapes from ethnographic investigation, this study has the merit of dealing with teenagers in this kind of situation.
   Originality/value - Indeed, this part of society and its creative "culture" receive the focus of a few studies, especially in case of catastrophes.
C1 [Ciccaglione, Rita] Univ Roma La Sapienza, Dipartimento Storia Culture Relig, Rome, Italy.
C3 Sapienza University Rome
RP Ciccaglione, R (corresponding author), Univ Roma La Sapienza, Dipartimento Storia Culture Relig, Rome, Italy.
EM rita.ciccaglione@gmail.com
RI Ciccaglione, Rita/HHC-6981-2022
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NR 42
TC 3
Z9 3
U1 1
U2 5
PU EMERALD GROUP PUBLISHING LTD
PI BINGLEY
PA HOWARD HOUSE, WAGON LANE, BINGLEY BD16 1WA, W YORKSHIRE, ENGLAND
SN 0965-3562
EI 1758-6100
J9 DISASTER PREV MANAG
JI Disaster Prev. Manag.
PY 2019
VL 28
IS 4
SI SI
BP 501
EP 512
DI 10.1108/DPM-02-2018-0064
PG 12
WC Environmental Studies; Public, Environmental & Occupational Health;
   Management
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health; Business & Economics
GA JE7UL
UT WOS:000490895300008
DA 2025-04-22
ER

PT J
AU Yang, ZY
   Clemente, MF
   Laffrechine, K
   Heinzlef, C
   Serre, D
   Barroca, B
AF Yang, Zhuyu
   Clemente, Maria Fabrizia
   Laffrechine, Katia
   Heinzlef, Charlotte
   Serre, Damien
   Barroca, Bruno
TI Resilience of Social-Infrastructural Systems: Functional
   Interdependencies Analysis
SO SUSTAINABILITY
LA English
DT Article
DE social-infrastructural system; interdependencies; actor network theory;
   functional analysis; cascading dysfunction; failure mode analysis;
   critical infrastructures
ID URBAN RESILIENCE; SPATIAL-ANALYSIS; DISRUPTION; SIMULATION; CITIES;
   MODEL; CITY
AB Critical infrastructures serve human activities and play an essential role in societies. Infrastructural systems are not isolated but are interdependent with regard to social systems, including those of public health and economic and sustainable development. In recent years, both social and infrastructural systems have frequently been in dysfunction due to increasing natural or human-made disasters and due to the internal and external dependencies between system components. The interconnectedness between social-infrastructural systems (socio-economic systems and technical-infrastructural systems), implies that the damage to one single system can extend beyond its scope. For that reason, cascading dysfunction can occur and increase system vulnerability. This article aims to study the functional interdependencies between social-infrastructural systems and to propose a methodology to analyse and improve the resilience of these systems. Combining Actor Network Theory and the Functional Models approach, the social-infrastructural Interdependence Resilience (SIIR) framework was proposed. To assess the applicability of the approach, the framework was applied to study the interdependence of a social-infrastructural system in the Nantes Metropolis. The studied system was composed of the local Highway Infrastructure (an infrastructural system) and the Emergency Medical Service (a social system). The results (1) show the feasibility of SIIR for investigating the interdependencies of two urban systems, and (2) provide a guideline for decision-makers to improve the functional interdependencies of urban systems.
C1 [Yang, Zhuyu; Laffrechine, Katia; Barroca, Bruno] Univ Gustave Eiffel, Lab Urba, F-77420 Marne La Vallee, France.
   [Yang, Zhuyu] Univ Gustave Eiffel, LATTS, F-77420 Marne La Vallee, France.
   [Clemente, Maria Fabrizia] Univ Naples Federico II, Dept Architecture, I-80134 Campania, Italy.
   [Heinzlef, Charlotte] Univ Paris Saclay, Univ Versailles St Quentin En Yvelines, CEARC, F-78280 Avignon, France.
   [Serre, Damien] Avignon Univ, ESPACE, UMR 7300, F-84029 Provence, France.
   [Serre, Damien] Univ Montreal, Ecole Urbanisme & Architecture Paysage, Ariact, Montreal, PQ H3T, Canada.
C3 Universite Paris-Est-Creteil-Val-de-Marne (UPEC); Universite
   Gustave-Eiffel; Institut Polytechnique de Paris; Ecole des Ponts
   ParisTech; Centre National de la Recherche Scientifique (CNRS);
   Universite Gustave-Eiffel; University of Naples Federico II; Universite
   Paris Saclay; Centre National de la Recherche Scientifique (CNRS); CNRS
   - Institute for Humanities & Social Sciences (INSHS); Avignon
   Universite; Universite de Montreal
RP Yang, ZY (corresponding author), Univ Gustave Eiffel, Lab Urba, F-77420 Marne La Vallee, France.; Yang, ZY (corresponding author), Univ Gustave Eiffel, LATTS, F-77420 Marne La Vallee, France.
EM zhuyu.yang@univ-eiffel.fr; mariafabrizia.clemente@unina.it;
   katia.laffrechine@univ-eiffel.fr; charlotte.heinzlef@uvsq.fr;
   damien.serre@univ-avignon.fr; bruno.barroca@u-pem.fr
RI Barroca, Bruno/ABF-5436-2020
OI serre, damien/0000-0002-2902-2989; Clemente, Maria
   Fabrizia/0000-0001-6114-2502; Yang, Zhuyu/0000-0001-8342-4885; BARROCA,
   Bruno/0000-0001-6653-0803; Heinzlef, Charlotte/0000-0002-9984-1402
FU UrbaRiskLab (URL) project; French National Research Agency (ANR)
   [ANR-18-CE39-0018]; General Secretary of Defense; National Security
   (SGDSN); Agence Nationale de la Recherche (ANR) [ANR-18-CE39-0018]
   Funding Source: Agence Nationale de la Recherche (ANR)
FX The authors performed this work with funding from the UrbaRiskLab (URL)
   project (https://urbarisklab.org/fr/) and the RESIIST project
   (ANR-18-CE39-0018,
   https://research-gi.mines-albi.fr/display/resiist/RESIIST+Home (in
   French)) that is jointly funded by the French National Research Agency
   (ANR) and the General Secretary of Defense and National Security
   (SGDSN). The authors acknowledge these organizations for their support
   that helped improve the paper.
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NR 50
TC 11
Z9 11
U1 4
U2 27
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 2
AR 606
DI 10.3390/su14020606
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 YN7PG
UT WOS:000747445800001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Liu, FH
   Li, XM
AF Liu, Fenghua
   Li, Xiaoming
TI Integrating AI Deep Reinforcement Learning With Evolutionary Algorithms
   for Advanced Threat Detection in Smart City Energy Management
SO IEEE ACCESS
LA English
DT Article
DE Stochastic optimization; smart city energy; operations; evolutionary
   algorithms; energy efficiency; renewable energy integration; Stochastic
   optimization; smart city energy; operations; evolutionary algorithms;
   energy efficiency; renewable energy integration
ID OPTIMIZATION; SYSTEMS
AB The integration of Deep Reinforcement Learning (DRL) with Evolutionary Algorithms (EAs) represents a significant advancement in optimizing smart city energy operations, addressing the inherent uncertainties and dynamic conditions of urban environments. This study explores how the synergy between DRL and EAs, including Genetic Algorithms (GAs) and Differential Evolution (DE), can enhance the efficiency and sustainability of smart city energy systems. DRL, known for its adaptive learning capabilities in complex environments, is combined with EAs, which excel in exploring diverse solution spaces and managing multi-objective optimization problems. The proposed methodology leverages DRL's ability to learn optimal policies through interaction with the environment and EAs' robust search mechanisms to address stochastic elements in energy consumption and generation. This integration is applied to various components of smart city energy operations, such as demand response, energy storage management, and renewable energy integration. The results from simulated smart city environments demonstrate significant improvements in energy efficiency, cost reduction, and emission control. This study highlights the potential of combining DRL with EAs to provide a comprehensive approach to tackling the challenges of stochastic optimization, offering a promising solution for achieving adaptive and resilient urban energy management in the face of uncertainty. Application of this integrated approach to demand response, energy storage management, and renewable energy integration in simulated smart city environments resulted in a 15% improvement in energy efficiency, a 12% reduction in operational costs, and a 20% decrease in emissions. These numeric results underscore the effectiveness of combining DRL with EAs in achieving significant gains in energy management. The study highlights the potential of this integrated approach for addressing the challenges of stochastic optimization, offering a promising solution for adaptive and resilient urban energy systems in the face of uncertainty. This research paves the way for more sustainable and efficient smart city initiatives. The findings underscore the importance of this integrated approach for advancing smart city initiatives and fostering sustainable urban energy systems.
C1 [Liu, Fenghua] Huzhou Vocat & Tech Coll, Huzhou 313000, Peoples R China.
   [Liu, Fenghua] Huzhou Key Lab IoT Intelligent Syst Integrat Techn, Huzhou 313000, Peoples R China.
   [Li, Xiaoming] Zhejiang Yuexiu Univ, Sch Int Business, Shaoxing 312000, Peoples R China.
C3 Huzhou Vocational & Technical College; Zhejiang Yuexiu University
RP Li, XM (corresponding author), Zhejiang Yuexiu Univ, Sch Int Business, Shaoxing 312000, Peoples R China.
EM lxm_1980zjyx@sina.com
RI Liu, Fenghua/HPE-9877-2023
FU Huzhou Science and Technology Plan Project Research and Application of
   Multilevel Integration and Sharing of Big Data in the Elderly Care
   Industry Chain Under Multiple and Complex Scenarios [2022GZ57]
FX This work was supported by Huzhou Science and Technology Plan Project
   Research and Application of Multilevel Integration and Sharing of Big
   Data in the Elderly Care Industry Chain Under Multiple and Complex
   Scenarios under Grant 2022GZ57.
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NR 25
TC 0
Z9 0
U1 3
U2 3
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 2169-3536
J9 IEEE ACCESS
JI IEEE Access
PY 2024
VL 12
BP 177103
EP 177118
DI 10.1109/ACCESS.2024.3471076
PG 16
WC Computer Science, Information Systems; Engineering, Electrical &
   Electronic; Telecommunications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering; Telecommunications
GA O4D7L
UT WOS:001370660700016
OA gold
DA 2025-04-22
ER

PT J
AU Wang, QL
   Li, Y
   Li, YF
AF Wang, Quanli
   Li, Yi
   Li, Yangfan
TI Realizing a new resilience paradigm on the basis of
   land-water-biodiversity nexus in a coastal city
SO OCEAN & COASTAL MANAGEMENT
LA English
DT Article
DE Land-water-biodiversity nexus; Integrated coastal management;
   Catastrophe regime shifts; Resilience; Xiamen
ID ECOSYSTEM SERVICES; MANAGEMENT; FOOD; COMMUNITIES; GOVERNANCE; BENEFITS;
   HEALTH; XIAMEN
AB Coastal area is a typical, complex area interacted between terrestrial and ocean systems. Catastrophic regime shifts of coastal ecosystem may occur as a result of gradual changing forces exerted by external factors. In this study, we presented an indicator-based framework which includes the land-water-biodiversity (LWB) nexus indices of catastrophe analysis to emphasize resilience of Xiamen, a coastal city of China, associated with implementation of integrated coastal management (ICM). The results demonstrate the changes of equilibria in land, water, and biodiversity subsystems that were divided into three periods (1996-2000, 2000-2012, and 2012-2015). The implementation of several ICMs helped to preserve resilient coastal ecosystems since 1997, which indicates effective guidance of resilient coastal management on coastal land, water and biodiversity. Based on trends of indicator changes, we identified the main indicators controlling catastrophic transformation of the LWB nexus system state, which include built-up area and coastal reclaimed area in land subsystem, seawater quality in water subsystem, and all four biodiversity indices. The identified key drivers to catastrophic regime shifts can help to navigate decision making in resilient coastal ecosystem management. The Xiamen case study provides a systematic and quantitative framework for resilience assessment of integrated coastal management and sustainable development.
C1 [Wang, Quanli; Li, Yi; Li, Yangfan] Xiamen Univ, Coll Environm & Ecol, Key Lab Coastal & Wetland Ecosyst, Minist Educ, Xiamen 361102, Peoples R China.
   [Li, Yi; Li, Yangfan] Xiamen Univ, Fujian Prov Key Lab Coastal Ecol & Environm Studi, Xiamen 361102, Peoples R China.
C3 Xiamen University; Xiamen University
RP Li, YF (corresponding author), Xiamen Univ, Coll Environm & Ecol, Xiamen 361102, Peoples R China.
EM yangf@xmu.edu.cn
RI LI, Yangfan/AAD-9857-2022
OI Li, Yangfan/0000-0002-5419-7051; Li, Yi/0000-0002-7871-5351; Wang,
   Quanli/0000-0002-8400-5102
FU National Natural Science Foundation of China (NSFC) [41671084]; Xiamen
   Academy of Social Sciences Grant [2017-B02]; China Postdoctoral Science
   Foundation [2018T110646]
FX This work was supported by the National Natural Science Foundation of
   China (NSFC) (grant 41671084), Xiamen Academy of Social Sciences Grant
   (2017-B02), and China Postdoctoral Science Foundation (2018T110646).
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NR 32
TC 18
Z9 21
U1 9
U2 84
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 JUN 15
PY 2021
VL 207
AR 104603
DI 10.1016/j.ocecoaman.2018.09.004
EA MAY 2021
PG 8
WC Oceanography; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Oceanography; Water Resources
GA SU7WL
UT WOS:000663342600015
DA 2025-04-22
ER

PT J
AU Lindner, R
   Lückerath, D
   Milde, K
   Ullrich, O
   Maresch, S
   Peinhardt, K
   Latinos, V
   Hernantes, J
   Jaca, C
AF Lindner, Rene
   Lueckerath, Daniel
   Milde, Katharina
   Ullrich, Oliver
   Maresch, Saskia
   Peinhardt, Katherine
   Latinos, Vasileios
   Hernantes, Josune
   Jaca, Carmen
TI The Standardization Process as a Chance for Conceptual Refinement of a
   Disaster Risk Management Framework: The ARCH Project
SO SUSTAINABILITY
LA English
DT Article
DE standardization; city resilience; case study; historic areas; disaster
   risk management; research projects; culture heritage preservation;
   climate change adaptation; technology transfer
ID RESILIENCE; CITIES
AB Risks related to climate change and natural hazards increasingly affect urban areas such as historic towns, old urban quarters, villages, and hamlets. These, as well as historic landscapes, make up a significant part of an urban area's identity and cannot just be rebuilt or significantly changed without taking into account the historic value, cultural background, and prescribed regulations. Systematic resilience building for historic areas is becoming essential, and research supporting it will be in the spotlight. However, questions still exist concerning how to best transfer research results into practice at the community level. Standardization of resilience-enhancing methods and tools deriving from research projects is one option, chosen, e.g., for the EU-Horizon 2020 project ARCH. Within the project, a disaster risk management (DRM) framework has been composed and then transferred into a standard, supported by a co-creation approach involving relevant stakeholders. This article outlines the project's different standardization steps and its impact on the development of the ARCH DRM Framework. It highlights the systematic inclusion of project-external stakeholders who actively contribute to the validation and enhancement of the ARCH DRM framework to guarantee maximum applicability in historic areas, supporting them in their fight against the impacts of climate change and natural hazards.
C1 [Lindner, Rene; Maresch, Saskia] DIN German Inst Standardizat, D-10787 Berlin, Germany.
   [Lindner, Rene; Hernantes, Josune; Jaca, Carmen] Univ Navarra, TECNUN Escuela Ingn, San Sebastian 20018, Spain.
   [Lueckerath, Daniel; Milde, Katharina; Ullrich, Oliver] Fraunhofer Inst Intelligent Anal & Informat Syst, D-53757 St Augustin, Germany.
   [Peinhardt, Katherine; Latinos, Vasileios] ICLEI Local Governments Sustainabil, D-79098 Freiburg, Germany.
C3 University of Navarra; Fraunhofer Gesellschaft; Fraunhofer Germany;
   Fraunhofer Intelligent Analysis & Information Systems
RP Lindner, R (corresponding author), DIN German Inst Standardizat, D-10787 Berlin, Germany.; Lindner, R (corresponding author), Univ Navarra, TECNUN Escuela Ingn, San Sebastian 20018, Spain.
EM rene.lindner@din.de; daniel.lueckerath@iais.fraunhofer.de;
   katharina.milde@iais.fraunhofer.de; oliver.ullrich@iais.fraunhofer.de;
   saskia.maresch@din.de; katherine.peinhardt@iclei.org;
   vasileios.latinos@iclei.org; jhernantes@tecnun.es; cjaca@tecnun.es
RI Lindner, Rene/HLG-3762-2023; Hernantes, Josune/C-9247-2017; Jaca,
   Carmen/A-2667-2013
OI Lindner, Rene/0000-0002-6152-1390; Milde, Katharina/0000-0002-8140-0617;
   Ullrich, Oliver/0000-0002-5103-2059; Luckerath,
   Daniel/0000-0002-4988-5511
FU European Union [820999]; H2020 Societal Challenges Programme [820999]
   Funding Source: H2020 Societal Challenges Programme
FX This research within the ARCH project has received funding from the
   European Union's Horizon 2020 research and innovation programme under
   grant agreement number 820999. The sole responsibility for the content
   of this publication lies with the authors. It does not necessarily
   represent the opinion of the European Union. Neither the REA nor the
   European Commission is responsible for any use that may be made of the
   information contained therein.
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NR 63
TC 11
Z9 11
U1 6
U2 21
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2021
VL 13
IS 21
AR 12276
DI 10.3390/su132112276
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 2I9WG
UT WOS:000815320500001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Tlachac, M
   Greenwood, LL
   Schneider, JL
AF Tlachac, Madison
   Greenwood, Lisa L.
   Schneider, Jennifer L.
TI A Tale of Five Cities: Assessing Emergency Management for Future
   Disasters in the United States
SO SUSTAINABILITY
LA English
DT Article
DE resilience; natural hazards; emergency management; emergency response;
   emergency preparedness; 100 Resilient Cities; Resilience Maturity Model
ID COMMUNITY RESILIENCE; MODEL
AB Many cities across the United States (U.S.) face threats from natural hazards, and as climate change continues to worsen, cities will face increased risks. Emergency management helps cities to mitigate these risks and adapt to shifting threats. Based on the Rockefeller City Resilience Framework and City Resilience Index Driver 3, Indicator 3.4, the scope of this research was to develop an emergency management maturity model and explore emergency management capacity for future disasters based on an assessment of five cities across the U.S. With the resulting data, a city's score would serve as an evaluation of the emergency response indicator (Indicator 3.4) in order to eventually enter the City Resilience Index. The cities selected were Buffalo, New York; Honolulu, Hawaii; Memphis, Tennessee; New Orleans, Louisiana; and Saint Paul, Minnesota, based on their hazard/risk factors. It should be noted that these scores were intended to compare resilience in a city over time and identify unique areas in which the cities could improve emergency management and were not meant to rank the cities against each other. An interesting find was the overlap between the counties and cities regarding policy data, creating a new avenue for research in local level emergency management.
C1 [Tlachac, Madison; Greenwood, Lisa L.; Schneider, Jennifer L.] Rochester Inst Technol, Dept Civil Engn Technol Environm Management & Safe, Rochester, NY 14623 USA.
C3 Rochester Institute of Technology
RP Greenwood, LL (corresponding author), Rochester Inst Technol, Dept Civil Engn Technol Environm Management & Safe, Rochester, NY 14623 USA.
EM met7550@rit.edu; llgcem@rit.edu; jlwcem@rit.edu
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NR 56
TC 0
Z9 0
U1 21
U2 22
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 7419
DI 10.3390/su16177419
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 F7N7X
UT WOS:001311649500001
OA gold
DA 2025-04-22
ER

PT J
AU Wei, SM
   Pan, JH
AF Wei, Shimei
   Pan, Jinghu
TI Spatiotemporal Characteristics and Resilience of Urban Network Structure
   during the Spring Festival Travel Rush: A Case Study of Urban
   Agglomeration in the Middle Reaches of Yangtze River in China
SO COMPLEXITY
LA English
DT Article
ID MIGRATION; TRANSPORTATION; FRAMEWORK; CITIES
AB With the increasing trend of globalization, large-scale and diffuse population flow have become vital carriers characterizing users' spatial behaviors. Network analysis provides a new perspective to uncover the topology and evolution of the population flow and understand its influence on regional development. By gathering the Autonavi migration index during the Spring Festival travel rush (SFTR) in 2019, 2020, and 2021, the population flow networks among 31 cities of urban agglomeration in the middle reaches of the Yangtze River were constructed to analyze spatiotemporal dynamic characteristics and explore the structure resilience. Results show that although the changing trends of population flow during the 40-day SFTR of 2019, 2020, and 2021 are consistent, the population floating scale in 2020 and 2021 shows remarkable abnormalities before and after the Spring Festival due to the need for prevention and control of COVID-19. The intensity of population floating of the regional urban network in 2020 was the weakest, and Changsha became the focus of most population flow, while Wuhan was the most advantageous city in 2019 and 2021. As the third core city in the regional network, the siphon effect of Nanchang was still weak. A situation of tripartite confrontation in the region is formed. However, the higher intensity of population flow in 2021 increased the instability of the regional urban network, potentially exposing the region to higher risks and pressures. Therefore, it is necessary to pay more attention to the peripheral cities to improve regional resilience.
C1 [Wei, Shimei; Pan, Jinghu] Northwest Normal Univ, Coll Geog & Environm Sci, Lanzhou 730070, Peoples R China.
C3 Northwest Normal University - China
RP Pan, JH (corresponding author), Northwest Normal Univ, Coll Geog & Environm Sci, Lanzhou 730070, Peoples R China.
EM nwnuweism@126.com; panjh_nwnu@nwnu.edu.cn
FU National Natural Science Foundation of China [42071216, 41661025]
FX This study was funded by the National Natural Science Foundation of
   China (Nos. 42071216 and 41661025).
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NR 36
TC 4
Z9 4
U1 9
U2 73
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
PD SEP 28
PY 2021
VL 2021
AR 4923532
DI 10.1155/2021/4923532
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 XM9YK
UT WOS:000729172500004
OA gold
DA 2025-04-22
ER

PT J
AU Huang, X
AF Huang, Xi
TI Immigration and economic resilience in the Great Recession
SO URBAN STUDIES
LA English
DT Article
DE economic development; economic shock; Great Recession; immigration;
   resilience
ID LABOR-MARKET; INTEGRATION; GOVERNMENT; DIVERSITY; INFLOWS; REGIONS
AB The 2007-2009 financial crisis has caused economic disruption in many US cities and has drawn considerable academic attention. Despite abundant evidence of immigrants' economic and social value to urban areas, little research has examined the relationship between immigration and resilience. This article investigates whether immigration enhanced economic resilience to the Great Recession for metropolitan areas in the US. It uses ordinary least squares and instrumental variable regressions to test the immigration effects between 2007 and 2014. The findings indicate that immigration leads to employment and income resilience. On average, metropolitan areas with a larger immigrant population tended to better preserve their growth paths during the Great Recession and to experience greater levels of employment and per capita income growth following the recession.
C1 [Huang, Xi] Univ Cent Florida, Orlando, FL 32816 USA.
C3 State University System of Florida; University of Central Florida
RP Huang, X (corresponding author), Univ Cent Florida, Sch Publ Adm, 500 W Livingston St 448P, Orlando, FL 32801 USA.
EM xi.huang@ucf.edu
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NR 56
TC 8
Z9 8
U1 9
U2 61
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 2021
VL 58
IS 9
BP 1885
EP 1905
AR 0042098020925407
DI 10.1177/0042098020925407
EA JUN 2020
PG 21
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA SO7TH
UT WOS:000539911300001
DA 2025-04-22
ER

PT J
AU Marzana, D
   Damia, SM
   Atallah, D
   Martinez, ML
AF Marzana, Daniela
   Damia, Sara Martinez
   Atallah, Devin
   Loreto Martinez, Maria
TI The resilience of Peruvian immigrants through participation in
   community-based organizations in urban Chile
SO JOURNAL OF COMMUNITY PSYCHOLOGY
LA English
DT Article
DE community participation; Peruvian immigrants; resilience; situational
   analysis
ID ETHNIC-IDENTITY; PSYCHOLOGY; ENGAGEMENT; MIGRANTS; AMERICAN;
   ACCULTURATION; EMPOWERMENT; INTERGROUP; SANTIAGO; MAPUCHE
AB This study explores the situational elements related to the resilience of Peruvian immigrants in Santiago, Chile. Through extensive fieldwork with Santiago community-based organizations, in-depth semistructured interviews (N = 18) completed with Peruvian leaders, and an innovative grounded theory situational analysis, a critical psychopolitical framework of community participation of Peruvian immigrants was generated. More specifically, three main themes emerged from data analysis and describe resilience processes, including, negotiating historical narratives and multiple identities; navigating to resources; and resisting racism and dehumanization. Results describe how community participation plays a role in promoting resilience by transforming immigrants' conditions and contexts while increasing their sense of mattering, and their access to resources and human rights.
C1 [Marzana, Daniela; Damia, Sara Martinez] Catholic Univ Milan, Dept Psychol, I-20123 Milan, Italy.
   [Atallah, Devin] Univ Massachusetts Boston, Dept Psychol, Boston, MA USA.
   [Loreto Martinez, Maria] Pontificia Catholi Univ Chile, Sch Psychol, Santiago, Chile.
C3 Catholic University of the Sacred Heart; University of Massachusetts
   System; University of Massachusetts Boston
RP Marzana, D (corresponding author), Catholic Univ Milan, Dept Psychol, I-20123 Milan, Italy.
EM daniela.marzana@unicatt.it
RI Damia, Sara/R-9473-2019
OI Marzana, Daniela/0000-0002-8021-4476; Martinez Damia,
   Sara/0000-0003-3390-9547
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NR 70
TC 17
Z9 20
U1 2
U2 17
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0090-4392
EI 1520-6629
J9 J COMMUNITY PSYCHOL
JI J. Community Psychol.
PD JUL
PY 2020
VL 48
IS 5
BP 1327
EP 1346
DI 10.1002/jcop.22284
EA NOV 2019
PG 20
WC Public, Environmental & Occupational Health; Psychology,
   Multidisciplinary; Social Work
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Psychology; Social Work
GA MB1ZC
UT WOS:000499037900001
PM 31778587
DA 2025-04-22
ER

PT J
AU Wang, XY
   Cheng, YN
AF Wang, Xueyuan
   Cheng, Yuning
TI Urban Lake Health Assessment Based on the Synergistic Perspective of
   Water Environment and Social Service Functions
SO GLOBAL CHALLENGES
LA English
DT Article
DE social service function; synergistic development assessment model
   (SDAM); system health assessment; urban lakes; water environment
ID QUALITY ASSESSMENT; LIMITATIONS; EUTROPHICATION; MANAGEMENT; FLOODPLAIN;
   IMPACTS; SHALLOW; SYSTEM
AB Urban lakes serve as vital ecological and recreational anchors within built environments, essential for enhancing urban resilience. Evaluating lake health predominantly focuses on water quality, assessing indicators such as nutrient levels, toxicity, pH balance, and water clarity to monitor changes. This study proposes a comprehensive evaluation framework that systematically describes specific spatiotemporal manifestations and periodic exogenous regulation characteristics across five dimensions: physical structure, water quality, shoreline dynamics, external regulation, and social service. Furthermore, it introduces an urban lake health assessment model based on synergistic development to evaluate the integrated development and interaction between water environments and social services. This model is applied across urban lakes in various developmental stages in China. Key findings include: 1) Urban development often impacts lake health disparately, with varying degrees of synergy observed between water environments and social services across different urban lakes. However, shifts in urban ideologies and improvements in governance, along with protective policies and project implementations, have contributed to improving water quality to some extent. 2) Engineering interventions do not consistently correspond with improvements in water quality, and governance measures sometimes yield mixed outcomes, underscoring the necessity for systematic solutions to lake health. Restoring hydrological processes emerges as crucial for enhancing sustainability.
   Urban lakes are crucial ecological and recreational assets within urban areas, significantly enhancing urban resilience. This study introduces a comprehensive evaluation framework that delineates the specific spatiotemporal manifestations and periodic exogenous regulations of lake water environments. Furthermore, it proposes a synergistic development assessment model to evaluate the integrated growth and interactions between water environments and social services. image
C1 [Wang, Xueyuan; Cheng, Yuning] Southeast Univ, Nanjing 210000, Peoples R China.
C3 Southeast University - China
RP Cheng, YN (corresponding author), Southeast Univ, Nanjing 210000, Peoples R China.
EM 230208481@seu.edu.cn
RI Wang, Xueyuan/ABC-1168-2021
FU National Natural Science Foundation of China [51838003]
FX Supported by the National Natural Science Foundation of China under the
   "Theory and Methods of Urban Green Space Planning under Low Impact
   Development" (No. 51838003).
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NR 46
TC 0
Z9 0
U1 22
U2 23
PU WILEY-V C H VERLAG GMBH
PI WEINHEIM
PA POSTFACH 101161, 69451 WEINHEIM, GERMANY
EI 2056-6646
J9 GLOB CHALL
JI Glob. Chall.
PD OCT
PY 2024
VL 8
IS 10
DI 10.1002/gch2.202400144
EA SEP 2024
PG 15
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA J9Q1B
UT WOS:001302974800001
PM 39398525
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Chien, H
   Saito, O
AF Chien, Herlin
   Saito, Osamu
TI Evaluating social-ecological fit in urban stream management: The role of
   governing institutions in sustainable urban ecosystem service provision
SO ECOSYSTEM SERVICES
LA English
DT Article
DE Urban river; Social-ecological fit; Coupled infrastructure systems;
   Urban ecosystem service; Human-nature coevolution
ID RIVER RESTORATION; SOCIETAL PREFERENCES; ADAPTIVE GOVERNANCE; SYSTEMS;
   COMPLEX; INFRASTRUCTURE; PERFORMANCE; RESILIENCE; CHALLENGES; LESSONS
AB The ecosystem services provided by urban rivers are often severely degraded. Although studies have examined why rivers are degraded, little is known about the social and natural dimensions of rivers in urban settings from an integrative systems approach. Such an approach would improve our understanding of the interplay between humans and nature with regard to the sustainable management of urban rivers. To address this research gap, this study posed two questions: (1) What is the social-ecological fit in current urban river management settings? (2) What contextual attributes could promote a better social-ecological fit to enable the sustainable provision of ecosystem services from urban rivers? In this study, we used an integrative approach to devise proxy indicators of social-ecological fit, based on an empirical case study in Taiwan. Three recursive human-nature coevolutionary scenarios were identified based on key observations: (1) social-ecological temporal misfit scenario; (2) social-ecological functional fit scenario; and (3) ecosystem service trade-offs scenario. For each scenario, the corresponding contextual attributes were proposed to enable social-ecological systems sustainability, namely, (a) building social resilience; (b) the diversification of infrastructure investment; and (c) a comprehensive ecosystem service monitoring mechanism. The policy and practical implications of this study call for the building of an institutional environment to foster adaptive change and remind local governments and actors of their pivotal role in the governance of urban rivers.
C1 [Chien, Herlin] Natl Pingtung Univ Sci & Technol, 1 Shuefu Rd, Pingtung 912301, Taiwan.
   [Saito, Osamu] Inst Global Environm Strategies, Hayama, Kanagawa, Japan.
   [Chien, Herlin] United Nations Univ, Inst Adv Study Sustainabil, Tokyo, Japan.
C3 National Pingtung University Science & Technology; United Nations
   University
RP Chien, H (corresponding author), Natl Pingtung Univ Sci & Technol, 1 Shuefu Rd, Pingtung 912301, Taiwan.
EM hchien@mail.npust.edu.tw
RI Saito, Osamu/AAU-1495-2021; Chien, Herlin/D-7224-2015; Saito,
   Osamu/G-5133-2014
OI Chien, Herlin/0000-0001-6130-1761; Saito, Osamu/0000-0002-0697-9593
FU Environment Research and Technology Development Fund (S-15 "Predicting
   and Assessing Natural Capital and Ecosystem Services through an
   Integrated Social-Ecological Systems Approach'') of the Ministry of the
   Environment, Japan [JPMEERF16S11500]
FX This research was funded by the Environment Research and Technology
   Development Fund (S-15 "Predicting and Assessing Natural Capital and
   Ecosystem Services through an Integrated Social-Ecological Systems
   Approach'' (PANCES: JPMEERF16S11500) of the Ministry of the Environment,
   Japan.
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NR 93
TC 11
Z9 11
U1 4
U2 66
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0416
J9 ECOSYST SERV
JI Ecosyst. Serv.
PD JUN
PY 2021
VL 49
AR 101285
DI 10.1016/j.ecoser.2021.101285
EA MAY 2021
PG 15
WC Ecology; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA SM4XX
UT WOS:000657611500009
DA 2025-04-22
ER

PT J
AU Dubois, B
   Krasny, ME
AF Dubois, Bryce
   Krasny, Marianne E.
TI Educating with resilience in mind: Addressing climate change in
   post-Sandy New York City
SO JOURNAL OF ENVIRONMENTAL EDUCATION
LA English
DT Article
DE environmental education; urban; resilience; disaster; climate change,
   practice theory
ID ENVIRONMENTAL-EDUCATION; INNOVATION; CONTEXT; ECOLOGY
AB How educators adapt their programs following a climate related disturbance can provide insights into potential climate education practices. Therefore; we used semi-structured interviews to explore changes in environmental education practice in NYC following Hurricane Sandy. Educators adopted new language to reflect funding, opportunities and incorporated new practices and collaborations, including those focused on resilience. Educators' resilience practices reflected the psychological, community, ecological; and social-ecological systems resilience academic literature. Overall practice changes appeared to be adaptive, although some educators reflected more deeply about transforming their practice. Our findings point to the need for further exchange among practitioners facing climate-related disturbance, and between practitioners and researchers, to facilitate co-production of EE practice innovations that address climate change.
C1 [Dubois, Bryce; Krasny, Marianne E.] Cornell Univ, Ithaca, NY USA.
C3 Cornell University
RP Krasny, ME (corresponding author), Cornell Univ, Dept Nat Resources, Fernow Hall, Ithaca, NY 14853 USA.
EM mek2@cornell.edu
FU U.S. Department of Agriculture National Institute for Food and
   Agriculture [NYC-14745 MRP NYC-147859]
FX Funding for this research was contributed by the U.S. Department of
   Agriculture National Institute for Food and Agriculture administered
   through Cornell University NYC-14745 & MRP NYC-147859. The views
   expressed are solely those of the authors.
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NR 73
TC 29
Z9 34
U1 2
U2 30
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0095-8964
EI 1940-1892
J9 J ENVIRON EDUC
JI J. Environ. Educ.
PY 2016
VL 47
IS 4
BP 255
EP 270
DI 10.1080/00958964.2016.1167004
PG 16
WC Education & Educational Research; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Environmental Sciences & Ecology
GA DX3LP
UT WOS:000384274900001
OA hybrid
DA 2025-04-22
ER

PT J
AU Derdouri, A
   Satour, N
   Murayama, Y
   Morimoto, T
   Osaragi, T
   Salhi, A
AF Derdouri, Ahmed
   Satour, Narjiss
   Murayama, Yuji
   Morimoto, Takehiro
   Osaragi, Toshihiro
   Salhi, Adil
TI Coastal satellite urbanization in the global south: Dynamics,
   sustainability dilemmas, and pathways for Martil, Morocco
SO CITIES
LA English
DT Article
DE Satellite city; Sustainable urbanization; Coastal resilience; Informal
   settlement; Urban planning; Morocco
ID MARINE DEBRIS; TOURISM; CITIES; TOWNS; CITY; CHALLENGES; GROWTH; TURKEY;
   MERSIN; SPAIN
AB This paper presents an in-depth city profile analyzing Martil-an emerging coastal satellite urban center in northern Morocco. Situated within a rapidly urbanizing context, Martil exemplifies organic satellite city dynamics in the Global South. The analysis tracks Martil's demographic, spatial, economic, social, environmental, and planning transformations since the 1970s. Accelerated rural-urban migration fueled unstructured peripheral expansion, straining infrastructure and producing socioeconomic disparities. Unregulated construction encroached on floodplains and coastal habitats, increasing climate risks and environmental degradation. Recent urban development plans aim to balance growth priorities with sustainability concerns through zoning, partnerships, and critical projects. However, persisting governance gaps between ambitions and on-ground outcomes continue to hinder equitable development and ecological resilience. The study situates Martil locally and comparatively, underscoring mismatches between prevailing models and satellites' distinct realities. Satellite urbanism's complexities validate calls for fundamental paradigm shifts prioritizing social welfare, climate adaptation, economic diversity, and participatory planning essential for sustainable urban development. This multi-dimensional analysis of a rapidly evolving coastal satellite city on the Mediterranean contributes an original perspective to urban studies scholarship while offering integrated recommendations for practitioners and policymakers.
C1 [Derdouri, Ahmed; Murayama, Yuji; Morimoto, Takehiro] Univ Tsukuba, Inst Life & Environm Sci, 1-1-1 Tennodai, Tsukuba 3058572, Japan.
   [Satour, Narjiss] Mohammed V Univ, Fac Sci, Geosci Water & Environm Lab, Rabat, Morocco.
   [Osaragi, Toshihiro] Tokyo Inst Technol, Sch Environm & Soc, 2-12-1-M4-1 Ookayama, Meguro, Tokyo 1528550, Japan.
   [Salhi, Adil] Abdelmalek Essaadi Univ, Geog & Dev Grp, FLSH, Martil, Morocco.
C3 University of Tsukuba; Mohammed V University in Rabat; Institute of
   Science Tokyo; Tokyo Institute of Technology; Abdelmalek Essaadi
   University of Tetouan
RP Derdouri, A (corresponding author), Univ Tsukuba, Inst Life & Environm Sci, 1-1-1 Tennodai, Tsukuba 3058572, Japan.
EM derdouri.ahmed.gn@u.tsukuba.ac.jp
RI Osaragi, Toshihiro/B-9260-2015; Derdouri, Ahmed/AAA-7403-2019; Murayama,
   Yuji/B-3161-2014; Salhi, Adil/J-6172-2019
OI Salhi, Adil/0000-0001-8756-2484; Derdouri, Ahmed/0000-0002-4912-1474;
   MURAYAMA, Yuji/0000-0003-4397-6882
FU Japan Society for the Promotion of Science (JSPS) KAKENHI [22F22303,
   22KF0054]
FX There are no conflicts of interest to disclose related to this research.
   Acknowledgments: We are grateful for the editor and reviewers for their
   valuable comments. This study was funded by Japan Society for the
   Promotion of Science (JSPS) KAKENHI Grant Numbers 22F22303 and 22KF0054.
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NR 82
TC 6
Z9 6
U1 15
U2 20
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 2024
VL 149
AR 104981
DI 10.1016/j.cities.2024.104981
EA APR 2024
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA QA2Q7
UT WOS:001218099200001
DA 2025-04-22
ER

PT J
AU Luo, XR
   Liu, P
   Cheng, Q
   Liu, WB
   Zhou, CT
   Zheng, YL
   Wang, DC
   Cheng, L
AF Luo, Xinran
   Liu, Pan
   Cheng, Qian
   Liu, Weibo
   Zhou, Chutian
   Zheng, Yalian
   Wang, Dianchang
   Cheng, Lei
TI Reinforcing resilience for integrated design of green and grey
   infrastructure with real-time control rules by considering system
   failures
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Urban drainage systems; Green and grey infrastructure; Real-time
   control; Equipment and structural failures; Resilience
ID URBAN DRAINAGE SYSTEMS; PERFORMANCE; MANAGEMENT; MODEL
AB The mutual benefits of real-time control and green and grey infrastructure for urban drainage system (UDS) renovations have drawn great attention. However, risks emerged due to equipment and structural failures, and no studies considered such failures while optimizing the renovation scheme. To address this issue, this study proposed a multi -criteria optimization method for the integrated design of green and grey infrastructure with real-time control rules, where the economic cost and system performance under normal and exceptional conditions were optimized simultaneously. Failure probabilities of equipment and structure were quantified using homogeneous Poisson process models, and failure losses were estimated with the aid of a machine learning -based surrogate model. This approach was tested with a combined UDS in China. Results indicate that: (1) More investment does not necessarily increase system resilience to failures. Equipment and structural failures can significantly lower the effectiveness of grey infrastructure and real-time control. Therefore, solutions with more investments in grey infrastructure, which indicate higher costs, experience greater failure losses. (2) System resilience to failures can be significantly improved while maintaining other objectives when compared with the traditional design scheme. The proposed method allows for a new perspective in addition to the cost -andresilience two -objectives design of UDS renovations, especially for systems threatened by various failures.
C1 [Luo, Xinran; Liu, Pan; Cheng, Qian; Liu, Weibo; Zhou, Chutian; Zheng, Yalian; Cheng, Lei] Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.
   [Luo, Xinran; Liu, Pan; Cheng, Qian; Liu, Weibo; Zhou, Chutian; Zheng, Yalian; Cheng, Lei] Wuhan Univ, Hubei Prov Key Lab Water Syst Sci Sponge City Cons, Wuhan 430072, Peoples R China.
   [Luo, Xinran; Liu, Pan; Cheng, Qian; Liu, Weibo; Zhou, Chutian; Zheng, Yalian; Cheng, Lei] Wuhan Univ, Res Inst Water Secur RIWS, Wuhan 430072, Peoples R China.
   [Wang, Dianchang] Yangtze Ecol & Environm Co Ltd, Wuhan 430072, Peoples R China.
C3 Wuhan University; Wuhan University; Wuhan University
RP Liu, P (corresponding author), Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.; Liu, P (corresponding author), Wuhan Univ, Hubei Prov Key Lab Water Syst Sci Sponge City Cons, Wuhan 430072, Peoples R China.; Liu, P (corresponding author), Wuhan Univ, Res Inst Water Secur RIWS, Wuhan 430072, Peoples R China.
EM liupan@whu.edu.cn
RI QU, CHEN/JUV-5083-2023; Liu, Pan/E-9344-2011; Cheng, Lei/J-5552-2013
FU National Key R&D Program of China [2022YFC3202804]; National Science
   Fund for Distinguished Young Scholars of China [52225901]; Ministry of
   Water Resources of the People's Republic of China [SKS-2022014]
FX This study was supported by the National Key R&D Program of China (Grant
   No. 2022YFC3202804) , the National Science Fund for Distinguished Young
   Scholars of China (Grant No. 52225901) , and the Ministry of Water
   Resources of the People's Republic of China (SKS-2022014) . The
   numerical calculations in this paper have been done on the
   supercomputing system in the Supercomputing Center of Wuhan University.
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NR 52
TC 1
Z9 1
U1 16
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 JUL
PY 2024
VL 638
AR 131498
DI 10.1016/j.jhydrol.2024.131498
EA JUN 2024
PG 12
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA XJ5X3
UT WOS:001261340400001
DA 2025-04-22
ER

PT J
AU Zhang, YQ
   Sun, ZM
   Chen, XL
AF Zhang, Yuqing
   Sun, Zhimo
   Chen, Xiaolong
TI The Mechanism and Effects of the Digital Economy on Urban Resilience: An
   Empirical Test Based on 110 Cities in the Yangtze River Economic Belt
SO SUSTAINABILITY
LA English
DT Article
DE digital economy; energy restructuring; industrial restructuring; carbon
   reduction; urban resilience; impact mechanism
AB Cities encounter increasing risks and challenges under new development patterns, and digital economy (DE) can drive cities' improved resilience to natural and social uncertainties. Based on data collected on the Yangtze River Economic Belt from 2011 to 2021, the development situation of the regional DE and urban resilience (UR) was measured, and the impact mechanisms of the DE on UR were analysed theoretically and empirically using a benchmark regression model. The findings are as follows: The benchmark test revealed that the DE development contributed significantly to UR in the region. The mediating effect test revealed that the DE improved UR through two pathways: industrial structure upgradation and energy restructuring. The moderating effect test suggested that environmental pollutant emissions had a negative moderating effect between the impact mechanisms of the DE, industrial structure, and energy structure and between the effects of industrial structure, energy structure, and UR, whereas CO2 emissions had a positive moderating effect between the impact mechanisms of DE and industrial structure. Heterogeneity analysis indicated that the DE contributed positively to the UR except in the upstream region, where the coefficient of the DE was insignificant. Overall, this study highlights the crucial role of the DE in improving UR and elucidates the theoretical impact mechanisms of environmental pollution control and carbon reduction measures on UR.
C1 [Zhang, Yuqing; Sun, Zhimo; Chen, Xiaolong] Liaoning Normal Univ, Sch Geog Sci, Dalian 116029, Peoples R China.
C3 Liaoning Normal University
RP Chen, XL (corresponding author), Liaoning Normal Univ, Sch Geog Sci, Dalian 116029, Peoples R China.
EM zhangyuqing@lnnu.edu.cn; szm001204@163.com; chenxl0313@163.com
RI Chen, Xiaolong/P-3496-2018
OI Zhang, Yuqing/0000-0001-8503-2383; Chen, Xiaolong/0009-0005-7143-4169
FU School High-end Cultivation Project; General Project of Liaoning
   Provincial Department of Education [JYTMS20231062];  [24GDL004]
FX This article was funded by the School High-end Cultivation Project
   (24GDL004) and the General Project of Liaoning Provincial Department of
   Education (JYTMS20231062).
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NR 43
TC 1
Z9 1
U1 6
U2 6
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JAN
PY 2025
VL 17
IS 1
AR 30
DI 10.3390/su17010030
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 R8I9E
UT WOS:001393827400001
OA gold
DA 2025-04-22
ER

PT J
AU Li, QY
   Ge, JX
   Zhang, XM
   Wu, XY
   Fan, HB
   Yang, L
AF Li, Qiangyi
   Ge, Jiexiao
   Zhang, Xinmin
   Wu, Xiaoyu
   Fan, Houbao
   Yang, Lan
TI Assessment of the interaction between digital infrastructure and
   ecological resilience: Insights from Yangtze River Delta Urban
   Agglomeration in China
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Digital infrastructure; Ecological resilience; Interactive relationship;
   Driving factors
ID GROWTH
AB Exploring the interaction between digital infrastructure (DI) and ecological resilience (ER) is essential to understand whether urban development and the ecosystem have formed an integration trend. First, clarifying the interactive relationship and driving mechanism between DI and ER, the evaluation indicator systems are constructed based on the core connotation of DI and the theory of evolutionary resilience. Then, the study reveals the spatiotemporal evolution of DI, ER, and their interactive levels in the Yangtze River Delta Urban Agglomeration (YRDUA) from 2005 to 2021. Furthermore, we employ the optimal parameter-based geographical detector (OPGD) to identify the core driving factors. The results indicate that (1) The comprehensive levels of DI and ER show an upward trend, and both systems have significant spatial heterogeneity. (2) The interactive coercion model verifies a coercive effect and a constraining relationship between DI and ER; notably, the interaction between the two systems is still in its moderate stage. (3) The analysis of driving factors reveals that socioeconomic conditions are the key influencing factors. Additionally, the proportion of cases showing a bienhancement type account for 92%, suggesting that the interactive role of the two factors mainly exhibits a multiplier effect. The study provides empirical evidence for solidifying the foundation of digital development, establishing robust ecological security barriers, and promoting the deep integration of DI and ER, thereby facilitating high-quality regional development.
C1 [Li, Qiangyi; Ge, Jiexiao; Wu, Xiaoyu] Guangxi Normal Univ, Sch Econ & Management, Guilin 541006, Peoples R China.
   [Li, Qiangyi] Guangxi Normal Univ, Educ Dept Guangxi Zhuang Autonomous Reg, Key Lab Digital Empowerment Econ Dev, Guilin 541006, Peoples R China.
   [Zhang, Xinmin; Fan, Houbao] Jiangxi Univ Finance & Econ, Sch Appl Econ, Nanchang 330013, Peoples R China.
   [Yang, Lan] Zhongnan Univ Econ & Law, Sch Econ, Wuhan 430073, Peoples R China.
C3 Guangxi Normal University; Guangxi Normal University; Jiangxi University
   of Finance & Economics; Zhongnan University of Economics & Law
RP Zhang, XM (corresponding author), Jiangxi Univ Finance & Econ, Sch Appl Econ, Nanchang 330013, Peoples R China.
EM zhangxm1217@aliyun.com
RI Fan, houbao/GQZ-7022-2022
OI Fan, Houbao/0009-0003-5959-654X
FU Planning Research Project of Guangxi Philosophy and Social Science
   [21CYJ016]; Innovation Project of School of Economics and Management,
   Guangxi Normal University [JGYJS2024002]
FX This study was supported by the Planning Research Project of Guangxi
   Philosophy and Social Science (Grant No. 21CYJ016) and the Innovation
   Project of School of Economics and Management, Guangxi Normal University
   (Grant No. JGYJS2024002) .
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NR 59
TC 1
Z9 1
U1 7
U2 7
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 2025
VL 486
AR 144364
DI 10.1016/j.jclepro.2024.144364
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 Y0N8H
UT WOS:001429211500001
DA 2025-04-22
ER

PT J
AU Kraxner, F
   Aoki, K
   Kindermann, G
   Leduc, S
   Albrecht, F
   Liu, J
   Yamagata, Y
AF Kraxner, F.
   Aoki, K.
   Kindermann, G.
   Leduc, S.
   Albrecht, F.
   Liu, J.
   Yamagata, Y.
TI Bioenergy and the city - What can urban forests contribute?
SO APPLIED ENERGY
LA English
DT Article
DE Urban bioenergy; Urban energy resilience; Urban forest; Biomass
   potential; GIS analysis; Sustainable forest management
ID WOODY BIOMASS; ENERGY; GREENBELT
AB Bioenergy plays an important role in mitigating dangerous climate change and will therefore most likely have to further expand substantially. With 50% of the global population living in urban areas, cities are transforming into hotspots for future sustainable energy systems in the context of a low-carbon society. Bioenergy feedstock from urban forests could contribute substantially to low-carbon energy supply, yet urban ecosystems also provide other services that have to be balanced against future energy needs. This study conducts a geo-spatial analysis of urban forests with respect to its potential of increasing feedstock production for urban bioenergy generation. At the same time, social and environmental constraints are considered and co-benefits discussed. In order to test the wider applicability of the methodology, the Vienna Woods Biosphere Reserve is chosen as a case study to determine the feedstock potential for local bioenergy provided to Viennese households. The theoretical biomass potential is modeled using biophysical growth and yield tables for individual tree species and then compared to the existing production area using GIS tools. Results show that the biomass use within the biosphere reserve can be increased by about 60% without violating any national or international law that protects multiple ecosystem services provided by the reserve, nor sustainability criteria of forest management. This indicates a high potential of peri-urban forest ecosystems to contribute to urban resilience - i.e. with respect to energy security and emissions reduction. The study concludes that urban forests require sensible management in order to minimize conflicts of multiple environmental, economic and social uses of the area. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Kraxner, F.; Aoki, K.; Kindermann, G.; Leduc, S.; Liu, J.; Yamagata, Y.] Int Inst Appl Syst Anal, Ecosyst Serv & Management Program, Schlosspl 1, A-2361 Laxenburg, Austria.
   [Aoki, K.] Shinshu Univ, Cooperat Res Ctr, 4-17-1 Wakasato, Nagano 3808553, Japan.
   [Kindermann, G.] Fed Res & Training Ctr Forests Nat Hazards & Land, Seckendorff Gudent Weg 8, A-1131 Vienna, Austria.
   [Albrecht, F.] GeoVille Informat Syst GmbH, Sparkassenpl 2, A-6020 Innsbruck, Austria.
   [Liu, J.] Beijing Forestry Univ, Sch Nat Conservat, Qinghua East Rd 35, Beijing 100083, Peoples R China.
   [Yamagata, Y.] NIES, CGER, Onogawa 16-2, Tsukuba, Ibaraki 3058506, Japan.
C3 International Institute for Applied Systems Analysis (IIASA); Shinshu
   University; Beijing Forestry University; National Institute for
   Environmental Studies - Japan
RP Kraxner, F (corresponding author), Int Inst Appl Syst Anal, Ecosyst Serv & Management Program, Schlosspl 1, A-2361 Laxenburg, Austria.
EM kraxner@iiasa.ac.at
RI Leduc, Sylvain/LZG-9520-2025; Liu, Junguo/B-3021-2012; Yamagata,
   Yoshiki/T-6489-2019
OI Kraxner, Florian/0000-0003-3832-6236; Leduc,
   Sylvain/0000-0002-6923-7650; Kindermann, Georg
   Erich/0000-0003-4297-1318; Liu, Junguo/0000-0002-5745-6311
FU Research Program Future Forests - Swedish Foundation for Strategic
   Environmental Research; IIASA; National Natural Science Foundation of
   China [41161140353]
FX The research leading to these results received funding from the Research
   Program Future Forests, funded by the Swedish Foundation for Strategic
   Environmental Research. Furthermore, this study was jointly supported by
   IIASA and the National Natural Science Foundation of China
   (41161140353). The authors thank their research institutions, mainly
   IIASA, Shinshu University, BFW, Geo-Ville, and NIES. Special gratitude
   also goes to the International Research NGO Global Alpine Synergies
   (GAS) for its continuous support, to the participants of the
   International Conference of Applied Energy for the constructive
   discussion, and Vienna's MA49 for their help with the data. Finally, the
   authors acknowledge thankfully the valuable feedback from 4 anonymous
   reviewers that helped successfully completing the documentation of this
   study.
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NR 60
TC 24
Z9 29
U1 1
U2 63
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 2016
VL 165
BP 990
EP 1003
DI 10.1016/j.apenergy.2015.12.121
PG 14
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA DH3GV
UT WOS:000372676400080
DA 2025-04-22
ER

PT J
AU Abdul-Rahman, M
   Chan, EHW
   Wong, MS
   Irekponor, VE
   Abdul-Rahman, MO
AF Abdul-Rahman, Mohammed
   Chan, Edwin H. W.
   Wong, Man Sing
   Irekponor, Victor E.
   Abdul-Rahman, Maryam O.
TI A framework to simplify pre-processing location-based social media big
   data for sustainable urban planning and management
SO CITIES
LA English
DT Article
DE Big data; Community resilience; Internet of things; Natural language
   processing; Social media; Urban planning and management
ID CITIES
AB Over the last decade, 90% of Big Data has been generated by people living in urban areas. With the advent of Internet of Things (IoT) and the increased use of the internet, Social Media has become an integral part of people's daily lives. Millions of unstructured data are being sent to the cloud every second, providing opinions practically on any discourse. This makes microblogs such as Twitter, Instagram, WeChat, and Facebook smart instruments for urban planners to harvest 'big data' on socioeconomics, urban dynamics, transportation, land uses, resilience, etc. This study proposed a framework for social media big data mining and data analytics using Twitter. It demonstrated the functionalities of the framework on a case study using Natural Language Processing and Machine Learning techniques like Latent Dirichlet Allocation and VADER Sentiment Analysis to mine, clean, process, and validate the data. The validated results from the case study showed high accuracy that Social Media Big Data can be used to study the spatiotemporal dynamism of community challenges.
C1 [Abdul-Rahman, Mohammed; Chan, Edwin H. W.] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
   [Wong, Man Sing] Hong Kong Polytech Univ, Dept Land Surveying & Geoinformat, Hong Kong, Peoples R China.
   [Irekponor, Victor E.; Abdul-Rahman, Maryam O.] Al Africa Lab, Lagos, Nigeria.
C3 Hong Kong Polytechnic University; Hong Kong Polytechnic University
RP Abdul-Rahman, M (corresponding author), Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
EM 18042561r@connect.polyu.hk
RI Chan, Edwin Hon Wan/D-9630-2012; Abdul-Rahman, Mohammed/V-1227-2018
OI Chan, Edwin Hon Wan/0000-0003-4841-6956; Irekponor,
   Victor/0000-0002-4836-7923; Abdul-Rahman, Mohammed/0000-0002-0568-1744
FU Research Institute for Sustainable Development (RISUD) of the Hong Kong
   Polytechnic University; Department of Building and Real Estate, Hong
   Kong Polytechnic University
FX The authors are grateful to the editors and anonymous reviewers for
   their insightful comments and suggestions. The work described in this
   paper was supported by a Ph.D. studentship from the Research Institute
   for Sustainable Development (RISUD) of the Hong Kong Polytechnic
   University, with the Department of Building and Real Estate, Hong Kong
   Polytechnic University, and AI Africa Lab providing other resources.
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NR 58
TC 32
Z9 34
U1 13
U2 127
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 2021
VL 109
AR 102986
DI 10.1016/j.cities.2020.102986
EA JAN 2021
PG 16
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA PR9TU
UT WOS:000607573900012
DA 2025-04-22
ER

PT J
AU Lehmann, S
AF Lehmann, Steffen
TI Growing Biodiverse Urban Futures: Renaturalization and Rewilding as
   Strategies to Strengthen Urban Resilience
SO SUSTAINABILITY
LA English
DT Article
DE strategic planning for urban resilience; renaturalization; nature-based
   solutions; regreening and rewilding framework; health; air quality;
   urban sustainability
ID GREEN INFRASTRUCTURE; CLIMATE-CHANGE; AIR-QUALITY; BARRIERS; POLICY;
   AREAS
AB How are our cities using nature-based solutions to confront the challenges posed by a warming climate, the loss of biodiversity and major resource depletion? This article discusses the opportunities and benefits of applying the concepts of regreening and rewilding of cities. The article engages with key sources and summarizes the background and development of regreening and nature-based solutions and important policies, concerns and perspectives of international and national organizations. It introduces the integration of nature-based solutions (NBS) as a strategy in urban planning with the aim to strengthen urban resilience and to slow down the biodiversity decline. Rewilding areas in cities has become a powerful strategy to bring back butterflies, insects, birds, and wildlife. In contrast to highly managed parks and gardens, these rewilding initiatives are leaving allotted spaces mostly uncultivated and self-regulated. Contact to nature is essential for human existence, urban wellbeing, and good quality of life. Green spaces in cities-big or small-all contribute to the health and wellbeing of residents. However, many cities do not offer residents easy access to green space within the city. Improving the better distribution of and access to green spaces and extending gardens and parks is likely to deliver a large number of benefits, such as: ecosystem services, better water management for enhanced urban flood control, slowing down the biodiversity loss, contributing to food security, and restoring damaged ecosystems. Furthermore, additional green space and NBS help to keep cities cool during heatwaves and improve the urban microclimate. Rewilding has emerged as an important part of new public parks and gardens. The next step is to up-scale citywide climate intervention strategies deployed to keep cities cool. However, as the discussion of this article shows, it is essential that the design of these NBS strategies is fully integrated with other complementary planning interventions and seeks synergies across all sectors.
C1 [Lehmann, Steffen] Univ Nevada, Sch Architecture, Las Vegas, NV 89154 USA.
C3 Nevada System of Higher Education (NSHE); University of Nevada Las Vegas
RP Lehmann, S (corresponding author), Univ Nevada, Sch Architecture, Las Vegas, NV 89154 USA.
EM Steffen.Lehmann@unlv.edu
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NR 69
TC 48
Z9 53
U1 28
U2 210
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 2932
DI 10.3390/su13052932
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 QW4AB
UT WOS:000628593300001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Fu, Y
   Zhang, XL
AF Fu, Yang
   Zhang, Xiaoling
TI Trajectory of urban sustainability concepts: A 35-year bibliometric
   analysis
SO CITIES
LA English
DT Article
DE Urban sustainability; Sustainable city; Smart city; Co-word matrix;
   Clustering analysis
ID SMART CITIES; ECO-CITY; TECHNOLOGY
AB In recent decades, our cities are increasingly expected to become more sustainable urban forms, with many added determinants. A multitude of city concepts has therefore been contrived. The most time-honored and prominent concept is the "sustainable city," which is depicted as a model urban form and thereafter more city concepts have come into being. However, it is not clear for all the concepts, for instance, "eco-cities," "smart city," "sustainable city," and "resilient city," what are the underpinning building blocks within each concept and how these concepts correlate with each other. This bibliometric study organizes this in conducting a descriptive summary, a clustering analysis, and multidimensional scaling of major city concepts, by establishing a co-word matrix of high-frequency keywords occurring in the Science Citations Index (SCI) and Social Science Citations Index (SSCI) databases. In addition to summarizing the evolution of these concepts, it analyzes the composition of each city concept and the core issues addressed by each city type. Also investigated are the correlations between the city concepts with a statistical analysis of the clusters of literature in one concept that overlap or connect to other clusters in another. From this, it is shown that, under the two umbrella terms of "sustainable city" and "smart city," the "?-city" literature has developed in a variety of distinctive ways. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Fu, Yang; Zhang, Xiaoling] City Univ Hong Kong, Dept Publ Policy, Urban Res Grp, Hong Kong, Hong Kong, Peoples R China.
   [Zhang, Xiaoling] City Univ Hong Kong, Shenzhen Res Inst, Shenzhen, Peoples R China.
C3 City University of Hong Kong; City University of Hong Kong; Shenzhen
   Research Institute, City University of Hong Kong
RP Zhang, XL (corresponding author), City Univ Hong Kong, Dept Publ Policy, Urban Res Grp, Hong Kong, Hong Kong, Peoples R China.
EM yangfu6-c@my.cityu.edu.hk; xiaoling.zhang@cityu.edu.hk
RI Zhang, Xiaoling/AAT-4795-2020
OI Zhang, Xiaoling/0000-0002-6369-9424; Fu, Yang/0000-0002-6915-2972
FU National Natural Science Foundation [71303203]; Hong Kong Research grant
   council [9048039, 9042363]; Environment and Conservation Fund - HKSAR
   Depts [92110732]; College of Liberal Arts and Social Sciences, City
   University of Hong Kong [9618005]; Matching fund for NSFC [9680114,
   7004309]; Lincoln Institute of Land Policy Fundation project, (USA
   China) [R-IND6604]
FX This research is supported by the National Natural Science Foundation
   (Project No: 71303203), the Early Career Scheme of Hong Kong Research
   grant council (Project No: 9048039), the General Research Funding of
   Hong Kong Research grant council (Project No: 9042363), the Environment
   and Conservation Fund (Project No: 92110732) funded by HKSAR Depts, the
   Research Writing Grant from the College of Liberal Arts and Social
   Sciences, City University of Hong Kong (Project No: 9618005). The work
   described in this paper was also substantially supported by the Matching
   fund for NSFC (Project No: 9680114 and 7004309); and the Lincoln
   Institute of Land Policy Fundation project, (USA & China) (project no:
   R-IND6604).
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NR 49
TC 110
Z9 115
U1 4
U2 210
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 FEB
PY 2017
VL 60
BP 113
EP 123
DI 10.1016/j.cities.2016.08.003
PN A
PG 11
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA EG0RQ
UT WOS:000390740300011
DA 2025-04-22
ER

PT J
AU Doran, J
   Fingleton, B
AF Doran, Justin
   Fingleton, Bernard
TI Resilience from the micro perspective
SO CAMBRIDGE JOURNAL OF REGIONS ECONOMY AND SOCIETY
LA English
DT Article
DE counterfactual; New Economic Geography; resilience; USA; Urban
   Economics; J31; P48
ID LOCAL WAGE RATES; AGGLOMERATION ECONOMIES; INCREASING RETURNS;
   HYSTERESIS; GEOGRAPHY
AB Perhaps uniquely, we combine individual-level data from the American Community Survey 2005-2011 with aggregate data for small areas to examine the resilience of individuals' wages to the 2008 economic crisis. A Mincer-type wage equation, incorporating market potential and employment density, is estimated, leading to a measure of resilience based on actual wages in 2011 and on a counterfactual obtained from our wage equation. We find that individuals living in areas with a higher level of market potential are more resilient, controlling for individual-level characteristics such as education and ethnicity, indicating that both individual-specific and place-specific factors are important.
C1 [Doran, Justin] Univ Coll Cork, Sch Econ, Cork, Ireland.
   [Doran, Justin; Fingleton, Bernard] Univ Cambridge, Dept Land Econ, Cambridge CB3 9EP, England.
C3 University College Cork; University of Cambridge
RP Doran, J (corresponding author), Univ Coll Cork, Sch Econ, Western Rd, Cork, Ireland.
EM justin.doran@ucc.ie; bf100@cam.ac.uk
RI Fingleton, Bernard/GZA-5738-2022
OI Doran, Justin/0000-0002-9875-901X
FU ESRC [ES/L011921/1] Funding Source: UKRI
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NR 42
TC 18
Z9 20
U1 4
U2 38
PU OXFORD UNIV PRESS
PI OXFORD
PA GREAT CLARENDON ST, OXFORD OX2 6DP, ENGLAND
SN 1752-1378
EI 1752-1386
J9 CAMB J REG ECON SOC
JI Camb. J. Regions Econ. Soc.
PD JUL
PY 2015
VL 8
IS 2
BP 205
EP 223
DI 10.1093/cjres/rsv004
PG 19
WC Development Studies; Economics; Geography
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics; Geography
GA CM7KG
UT WOS:000357870300005
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Li, T
   Dong, YX
   Liu, ZH
AF Li, Ting
   Dong, Yuxiang
   Liu, Zhenhuan
TI A review of social-ecological system resilience: Mechanism, assessment
   and management
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Review
DE Resilience; Social-ecological system; Sustainability; Adaptation
   process; Regional management
ID EARLY WARNING SIGNALS; REGIME SHIFTS; CLIMATE-CHANGE; SPATIAL
   RESILIENCE; ECOSYSTEM SERVICES; URBAN LANDSCAPE; ADAPTATION;
   PERSPECTIVE; METABOLISM; INDICATORS
AB Social-ecological system (SES) resilience involves the large information and complex relationships of nature, society and economy. To promote multi-disciplinary integration to jointly balance current well-being and long-term sustainability, it is necessary to sort resilience studies on different perspectives into a comprehensive framework to establish interdisciplinary consensus. Based on literature analysis and review, this paper presents an analytical framework for resilience in regional management, and gives a review of SES resilience studies in terms of mechanism, assessment, and management. We outline the current state of resilience research, identify the remaining challenges, and make key recommendations for future research. Our recommendations include promoting interdisciplinary consensus, emphasising dynamic adaptation processes, synthesizing multiple systems and scales, building comprehensive databases, and using mixed methods approach. The paper offers a framework for researchers, practitioners and policy makers to have a more comprehensive understanding of resilience as a whole, and thus helps navigate more fully the challenge of adapting complex resource and environmental problems. (C) 2020 Elsevier B.V. All rights reserved.
C1 [Li, Ting; Dong, Yuxiang; Liu, Zhenhuan] Sun Yat Sen Univ, Sch Geog & Planning, Guangdong Prov Key Lab Urbanizat & Geosimulat, Guangzhou 510275, Peoples R China.
   [Dong, Yuxiang] Sun Yat Sen Univ, Dept Resources & Urban Planning, Guangzhou 510520, Peoples R China.
C3 Sun Yat Sen University; Sun Yat Sen University
RP Dong, YX (corresponding author), Sun Yat Sen Univ, Sch Geog & Planning, 135 Xingangxi Rd, Guangzhou 510275, Peoples R China.
EM eesdyx@mail.sysu.edu.cn
FU National Natural Science Foundation of China [41771096, 41571172]
FX This study funded by National Natural Science Foundation of China
   (41771096, 41571172). Warm thanks to Dr. Jing Li and Dr. Qian Xu for
   their continued and valuable advisement. Thoughtful comments of three
   anonymous reviewers greatly improved an earlier version of this
   manuscript.
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NR 110
TC 72
Z9 78
U1 47
U2 331
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 2020
VL 723
AR 138113
DI 10.1016/j.scitotenv.2020.138113
PG 12
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA LR1NO
UT WOS:000535462500018
PM 32224405
DA 2025-04-22
ER

PT J
AU Krasny, ME
   Silva, P
   Barr, C
   Golshani, Z
   Lee, E
   Ligas, R
   Mosher, E
   Reynosa, A
AF Krasny, Marianne E.
   Silva, Philip
   Barr, Cornelia
   Golshani, Zahra
   Lee, Eunju
   Ligas, Robert
   Mosher, Eve
   Reynosa, Andrea
TI Civic ecology practices: insights from practice theory
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE civic ecology; practice theory; stewardship; urban
ID ECOSYSTEM SERVICES; URBAN; CONSUMPTION; GARDENS; RESILIENCE; CYCLES;
   MEMORY
AB Our aim was to explore the use of practice theory as an approach to studying urban environmental stewardship. Urban environmental stewardship, or civic ecology practice, contributes to ecosystem services and community well-being and has been studied using social-ecological systems resilience, property rights, communities of practice, and governance frameworks. Practice theory, which previously has been applied in studies of consumer behaviors, adds a new perspective to urban stewardship research, focusing on how elements of a practice, such as competencies, meanings, and physical resource, together define the practice. We applied practice theory to eight different civic ecology practices, including oyster gardening in New York City, a civil society group engaged in litter cleanup in Iran, and village grove restoration in South Korea. Our analysis suggests that in applying practice theory to the civic ecology context, consideration should be given to social and communication competencies, how meanings can motivate volunteers and sustain practice, and the nature of the resource that is being stewarded. Future studies may want to focus on how practice elements interact within and vary across practices and may be used to more systematically analyze and share ideas among diverse civic ecology practices.
C1 [Krasny, Marianne E.; Silva, Philip; Lee, Eunju] Cornell Univ, Dept Nat Resources, Civ Ecol Lab, Ithaca, NY 14853 USA.
   [Barr, Cornelia] Gateway Environm Initiat, Winston Salem, NC USA.
   [Golshani, Zahra] Univ Illinois, Urbana, IL 61801 USA.
   [Ligas, Robert] Five Rivers MetroPk, Dayton, OH USA.
   [Reynosa, Andrea] Tusten Heritage Community Garden, Narrowsburg, NY USA.
C3 Cornell University; University of Illinois System; University of
   Illinois Urbana-Champaign
RP Krasny, ME (corresponding author), Cornell Univ, Dept Nat Resources, Civ Ecol Lab, Ithaca, NY 14853 USA.
FU U.S. Department of Agriculture National Institute for Food and
   Agriculture [NECC1011]; U.S. Environmental Protection Agency (EPA)
   [NT-83497401]
FX Funding for this research was contributed by the U.S. Department of
   Agriculture National Institute for Food and Agriculture administered
   through Cornell University, multistate project NECC1011. The Civic
   Ecology online course was developed under Assistance Agreement No.
   NT-83497401 awarded by the U.S. Environmental Protection Agency (EPA).
   It has not been formally reviewed by the EPA. The views expressed are
   solely those of the authors, and the EPA does not endorse any products
   or commercial services mentioned.
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NR 57
TC 29
Z9 33
U1 5
U2 71
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.
PY 2015
VL 20
IS 2
AR 12
DI 10.5751/ES-07345-200212
PG 12
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA CM3ZB
UT WOS:000357622800008
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Sundström, M
   Lundberg, C
   Ziakas, V
AF Sundstrom, Malin
   Lundberg, Christine
   Ziakas, Vassilios
TI Episodic Retail Settings: A Sustainable and Adaptive Strategy for City
   Centre Stores
SO SUSTAINABILITY
LA English
DT Article
DE retail; sustainability; servicescape design; dramaturgy; sociality;
   co-creation; urban resilience
ID CO-CREATION; CUSTOMER LOYALTY; EXPERIENCE; SERVICESCAPES; ENVIRONMENT;
   IMPACT; MODEL
AB The fact that an already damaged retail industry is being challenged by a pandemic makes the industry's survival a matter of urban resilience. Sustainable and adaptive strategies are needed to reverse the negative development of the retail sector, and in this conceptual paper, a new perspective is suggested based on episodic retail settings. Such a perspective can increase a physical store's attraction and may serve as a flexible operation strategy for urban retailers and give added value to urban consumers as they shape an ongoing dramatological discourse and facilitate social interaction in a way that traditional fixed-store formats are unable to compete with. By applying the scientific circle of enquiry (SCE), the authors develop an interdisciplinary perspective cutting across the sustainability, service science, and urban studies fields. On this ground, they present a set of conceptual premises and a tripartite conceptual framework delineating how to effectively design episodic retail settings that are adaptive and sustainable. The paper concludes with suggestions for research questions to further advance this field of study.
C1 [Sundstrom, Malin] Malmo Univ, Dept Urban Studies, S-21119 Malmo, Sweden.
   [Lundberg, Christine] Univ Stavanger, Norwegian Sch Hotel Management, N-4021 Stavanger, Norway.
C3 Malmo University; Universitetet i Stavanger
RP Sundström, M (corresponding author), Malmo Univ, Dept Urban Studies, S-21119 Malmo, Sweden.
EM malin.u.sundstrom@mau.se; christine.lundberg@uis.no;
   v_ziakas@yahoo.co.uk
RI Sundström, Malin/JPK-9268-2023; Sundstrom, Malin/I-6269-2018; Ziakas,
   Vassilios/P-7381-2019
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NR 101
TC 6
Z9 7
U1 2
U2 21
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 2482
DI 10.3390/su13052482
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 QW4BF
UT WOS:000628596300001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Leistner, P
   Kaufmann, A
   Koehler, M
   Würth, M
   Hofbauer, WK
   Dittrich, S
   Maier, S
   Gordt, A
   Jäger, M
AF Leistner, Philip
   Kaufmann, Andreas
   Koehler, Mark
   Wuerth, Michael
   Hofbauer, Wolfgang Karl
   Dittrich, Sebastian
   Maier, Stephanie
   Gordt, Antonia
   Jaeger, Michael
TI Building physics in towns
SO BAUPHYSIK
LA German
DT Article
DE urban surfaces; climate resilience; building physical potential of
   impact; hydroactive surface; facade greening
AB Structural-spatial form and urban land use are among the main transformative fields of action of cities. Quality of life and the environment, identity and individuality as well as participation in local society are significantly influenced by urban surfaces. Most urban surfaces have so far been designed for the long-term fulfilment of individual purposes, but offer greater scope for design in terms of functionality and adaptability, quality and efficiency. It therefore makes sense to develop, evaluate, technologically expand and test the potential of urban surfaces in terms of building physics as a whole. In view of growing stress on urban structures due to climate-induced influences, such as flooding, extreme weather conditions or heat islands, new possibilities, processes, systems or materials are needed to improve resilience. The article presents exemplary developments that can be supplemented and combined. Hydroactive surfaces buffer rainwater and release it with a time delay to reduce heat and flooding equally. Green facades improve city climate and air quality. Sound-absorbing facades reduce inner-city noise. Optimized cleaning of traffic and open spaces reduces maintenance costs. The assessment of management processes by means of a life cycle assessment shows the potential for optimizing municipal material flows.
C1 [Leistner, Philip; Kaufmann, Andreas; Koehler, Mark; Wuerth, Michael; Hofbauer, Wolfgang Karl; Dittrich, Sebastian] Inst Stuttgart, Fraunhofer Inst Bauphys IBP, Nobelstr 12, D-70569 Stuttgart, Germany.
   [Maier, Stephanie; Gordt, Antonia; Jaeger, Michael] Univ Stuttgart, Inst Akust & Bauphys, Pfaffenwaldring 7, D-70569 Stuttgart, Germany.
C3 Fraunhofer Gesellschaft; Fraunhofer Germany; University of Stuttgart
RP Kaufmann, A (corresponding author), Inst Stuttgart, Fraunhofer Inst Bauphys IBP, Nobelstr 12, D-70569 Stuttgart, Germany.
EM andreas.kaufmann@ibp.fraunhofer.de; mark.koehler@ibp.fraunhofer.de;
   michael.wuerth@ibp.fraunhofer.de; wolfgang.hofbauer@ibp.fraunhofer.de;
   sebastian.dittrich@ibp.fraunhofen.de;
   stephanie.maier@iabp.uni-stuttgart.de;
   antonia.gordt@iabp.uni-stuttgart.de;
   michael.jaeger@iabp.uni-stuttgart.de
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NR 31
TC 10
Z9 10
U1 0
U2 10
PU ERNST & SOHN
PI BERLIN
PA ROTHERSTRASSE 21, BERLIN, DEUTSCHLAND 10245, GERMANY
SN 0171-5445
EI 1437-0980
J9 BAUPHYSIK
JI Bauphysik
PD OCT
PY 2018
VL 40
IS 5
BP 358
EP 368
DI 10.1002/bapi.201800009
PG 11
WC Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology
GA GW5MO
UT WOS:000446979700020
DA 2025-04-22
ER

PT J
AU del Pozo, PB
   González, AL
   Trigo, JP
AF Benito del Pozo, Paz
   Lopez Gonzalez, Alejandro
   Prada Trigo, Jose
TI Interpretation of de-industrialized areas from the viewpoint of
   vulnerabilitty and resilience. Application to O Morrazo (Pontevedra)
SO BOLETIN DE LA ASOCIACION DE GEOGRAFOS ESPANOLES
LA Spanish
DT Article
DE vulnerability; de-industrialized areas; resilience; revitalization of
   the territory
ID LOCAL STRATEGIES; ECONOMIC-CRISIS; URBAN; GEOGRAPHIES; SHRINKAGE;
   NETWORKS; JUSTICE; REGIONS; GROWTH; OLD
AB Methodological approaches and recent contributions relating to the explanatory capacity of metaphors of vulnerability and resilience as applied to analyses of land use are reviewed. A new and original proposal is made in respect of their application to de-industrialized areas. The effectiveness of this focus is dependent upon a rigorous diagnosis of the problem of de-industrialization. This involves the availability of quantitative and qualitative indicators permitting characterization and assessment both of the situation of vulnerability caused by industrial crisis and of the responses indicating an area's capacity to adapt. The hypothesis adopted is that resilience constitutes a strategy taking concrete shape in actions creating new conditions suited to urban and local growth and revival. It cannot be hoped that de-industrialized areas will return to the same state in which they were prior to their crisis or decline. In order to check theory and practice, an empirical trial was carried out, taking as its reference the coastal district of O Morrazo in the Spanish Province of Pontevedra.
C1 [Benito del Pozo, Paz; Lopez Gonzalez, Alejandro] Univ Leon, Dept Geog & Geol, Leon, Spain.
   [Prada Trigo, Jose] Univ Concepcion, Dept Geog, Concepcion, Chile.
C3 Universidad de Leon; Universidad de Concepcion
RP del Pozo, PB (corresponding author), Univ Leon, Dept Geog & Geol, Leon, Spain.
EM paz.benito@unileon.es; alejandro.lopez@unileon.es; jprada@udec.cl
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NR 82
TC 2
Z9 2
U1 0
U2 7
PU ASOCIACION ESPANOLES DE GEOGRAFIA
PI MADRID
PA PINAR 25, MADRID, 28006, SPAIN
SN 0212-9426
EI 2605-3322
J9 B ASOC GEOGR ESP
JI Bol. Asoc. Geogr. Esp.
PY 2020
IS 85
AR 2933
DI 10.21138/bage.2933
PG 37
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA LZ3QJ
UT WOS:000541142900015
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Yabe, T
   Rao, PSC
   Ukkusuri, SV
AF Yabe, Takahiro
   Rao, P. Suresh C.
   Ukkusuri, Satish, V
TI Regional differences in resilience of social and physical systems: Case
   study of Puerto Rico after Hurricane Maria
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article
DE Resilience; disaster recovery; human mobility; urban socio-physical
   systems; interdependency; mobile phone data
AB Physical infrastructure networks in diverse urban settlements are designed to be robust and reliable, while the socio-economic systems offer the necessary adaptive capacity at household, city, and regional scales to recover from major service disruptions resulting from disasters. Here, our urban resilience analyses are based on exploring explicit links between the physical infrastructure/assets and the socio-economic systems. Increased availability of high-quality data from mobile devices allows quantification of diverse socio-economic metrics and thus enables tracking city- and regional-scale community recovery from disasters. Here, recovery trajectories for five regions within Puerto Rico island with differences in socio-economic status (e.g., median income) after Hurricanes Irma and Maria are analyzed using large-scale mobility data and are combined with earlier synthesis of seven global cities based on capital portfolio analysis. Systemic inequalities are manifested in highly variable ability to cope with chronic shocks and recovery from extreme events. Island urban communities face the geographic-isolation effect, legacy socioeconomic constraints, and chronic inefficiencies in governance, all of which delay recovery from disasters. Hurricane recovery efforts include two types of responses. First, in larger urban areas, households use their social ties and financial resources to evacuate to larger cities and return when damaged facilities and infrastructure are repaired. Second, smaller urban communities are already adapted to coping with inadequate critical services and experience disproportionate impacts of disasters. Lacking socio-economic resources, such communities self-organize to access local and external resources and actively engage in repairing and rebuilding damaged facilities. However, recovery is much slower than their counterparts in larger cities. Given the interdependencies of connected social and physical systems and cross-scale feedbacks, such inequalities must be addressed at both city and regional scales to continue progress in urban community preparedness for and recovery from disasters.
C1 [Yabe, Takahiro; Ukkusuri, Satish, V] Purdue Univ, Lyles Sch Civil Engn, 550 Stadium Mall Dr, W Lafayette, IN 47907 USA.
   [Rao, P. Suresh C.] Purdue Univ, Lyles Sch Civil Engn, Environm Engn, W Lafayette, IN 47907 USA.
C3 Purdue University System; Purdue University; Purdue University System;
   Purdue University
RP Ukkusuri, SV (corresponding author), Purdue Univ, Lyles Sch Civil Engn, 550 Stadium Mall Dr, W Lafayette, IN 47907 USA.
EM sukkusur@purdue.edu
RI Srinivasa Rao, Prof. P/ABG-1688-2021; Ukkusuri, Satish/JXM-5723-2024
OI Rao, P. Suresh C./0000-0002-5982-3736; Yabe,
   Takahiro/0000-0001-8967-1967
FU Purdue Systems Collaboratory, NSF [1638311]; Lee A. Rieth Endowment in
   Lyles School of Civil Engineering
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: Purdue
   Systems Collaboratory, NSF Grant No. 1638311 CRISP Type 2/Collaborative
   Research: Critical Transitions in the Resilience and Recovery of
   Interdependent Social and Physical Networks, and Lee A. Rieth Endowment
   in Lyles School of Civil Engineering.
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NR 43
TC 26
Z9 28
U1 3
U2 35
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 1042
EP 1057
AR 2399808320980744
DI 10.1177/2399808320980744
EA DEC 2020
PG 16
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:000626221100001
OA hybrid
DA 2025-04-22
ER

PT J
AU Okunola, OH
   Olawuni, PO
AF Okunola, Olasunkanmi Habeeb
   Olawuni, Peter Olabiyi
TI Determinants of household flood resilience strategies in Kaduna
   Metropolis, Nigeria
SO URBAN CLIMATE
LA English
DT Article
DE Resilience; Vulnerability; Adaptation; Household; Flood; Mitigation;
   Coping
ID CLIMATE-CHANGE; COMMUNITY RESILIENCE; VULNERABILITY; ADAPTATION;
   CHALLENGES; DISASTERS; PATHWAYS; RECOVERY; RISK
AB Recent increase in flood disaster is challenging the resilience of societies in many countries of the world. The realisation of these consequences has heightened scholarly inquiry into the method and strategies of flood resilience in cities of global south and north. This study therefore examines determinants of household resilience to floods in Kaduna metropolis, Nigeria. To achieve this, the study examined the socio-economic and housing attributes of households, identified various flood resilience strategies and evaluated determinants of household flood resilience in the study area. This is with a view to providing information that could enhance household resilience to flood in the study area. The metropolis was stratified into three residential zones: government reservation area, transition zone, and the sub-urban zone. Across the residential zones, questionnaires were administered on 357 households in the metropolis. Findings revealed that household flood resilience strategies in the study area were similar and reactive rather than anticipatory. High level of financial constraints, inaccessibility to numerous livelihood sources, services, infra-structure and lack of government supports were identified as the major factors influencing household flood resilience strategies in the study area. The study recommended that government support, as well as improvement in income level and educational level will increase individuals' and households' resilience against flood in the study area.
C1 [Okunola, Olasunkanmi Habeeb] Univ Witwatersrand, Global Change Inst GCI, Johannesburg, South Africa.
   [Olawuni, Peter Olabiyi] Obafemi Awolowo Univ, Dept Urban & Reg Planning, Private Bag 3, ZA-2050 Johannesburg, South Africa.
   [Okunola, Olasunkanmi Habeeb] Univ Witwa Tersrand, Sch Geog Archeol & Environm Studies, Dept Geog & Environm Studies, Johannesburg, South Africa.
   [Okunola, Olasunkanmi Habeeb] United Nations Univ, Inst Environm & Human Secur UNU EHS, Bonn, Germany.
   [Okunola, Olasunkanmi Habeeb] Fed Univ Technol Minna, Inst Land & Community Resilient, Minna, Nigeria.
C3 University of Witwatersrand
RP Okunola, OH (corresponding author), Univ Witwatersrand, Global Change Inst GCI, Johannesburg, South Africa.; Okunola, OH (corresponding author), Univ Witwa Tersrand, Sch Geog Archeol & Environm Studies, Dept Geog & Environm Studies, Johannesburg, South Africa.; Okunola, OH (corresponding author), United Nations Univ, Inst Environm & Human Secur UNU EHS, Bonn, Germany.; Okunola, OH (corresponding author), Fed Univ Technol Minna, Inst Land & Community Resilient, Minna, Nigeria.
EM olasunkanmi.okunola@wits.ac.za
RI Okunola, Olasunkanmi/AAG-2633-2021
OI OKUNOLA, Olasunkanmi/0000-0001-5855-8291
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NR 68
TC 8
Z9 8
U1 6
U2 19
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD JUL
PY 2022
VL 44
AR 101216
DI 10.1016/j.uclim.2022.101216
PG 13
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA 4Y1XV
UT WOS:000861326100001
DA 2025-04-22
ER

PT J
AU Rashidfarokhi, A
   Danivska, V
AF Rashidfarokhi, Anahita
   Danivska, Vitalija
TI Managing crises 'together': how can the built environment contribute to
   social resilience?
SO BUILDING RESEARCH AND INFORMATION
LA English
DT Article
DE Built environment; social resilience; social sustainability; wellbeing;
   crisis management
ID COMMUNITY RESILIENCE; PLACE ATTACHMENT; FINANCIAL CRISIS; REAL-ESTATE;
   DISASTER RESILIENCE; SUSTAINABILITY; SATISFACTION; FRAMEWORK; IMPACT;
   SENSE
AB The world is undergoing multiple crises that require resilience to withstand them. The built environment can significantly enhance or weaken society's (and individuals') resilience. However, understanding of resilience in the built environment is scattered and manifold - whilst the design of buildings primarily focuses on the restoration of buildings' physical characteristics, urban policies centre on the recovery of society. Scholars highlight the need for a holistic approach where different resilience concepts merge to improve the resilience of people and communities. For this, understanding the relationship between people and places is crucial. Thus, the aim of this paper is to deepen the understanding of the social resilience concept in relation to the built environment and how the built environment can enhance it. This is achieved through an extensive literature review, concept mapping and panel discussion. The built environment characteristics affecting individual and/or community resilience are identified, and a conceptual model is provided, attempting to visualize the relationship between the constructs. The paper's novelty lies in its multidisciplinary approach and integration of various social science knowledge in the context of the built environment. Furthermore, it emphasizes the built environment's role in supporting social resilience, which has been often overlooked previously.
C1 [Rashidfarokhi, Anahita] Aalto Univ, Sch Arts Design & Architecture, Dept Architecture, Espoo, Finland.
   [Danivska, Vitalija] Breda Univ Appl Sci, Acad Hotel & Facil, Breda, Netherlands.
C3 Aalto University; Breda University of Applied Sciences
RP Rashidfarokhi, A (corresponding author), Aalto Univ, Sch Arts Design & Architecture, Dept Architecture, Espoo, Finland.
EM anahita.rashidfarokhi@aalto.fi
RI Rashidfarokhi, Anahita/C-8793-2015; Danivska (prev. Petrulaitiene),
   Vitalija/AAI-8589-2020
OI Rashidfarokhi, Anahita/0000-0003-3851-1554; Danivska (prev.
   Petrulaitiene), Vitalija/0000-0001-9984-7487
FU Academy of Finland [339549]; Academy of Finland (AKA) [339549] Funding
   Source: Academy of Finland (AKA)
FX This work was supported by the Academy of Finland [grant number 339549].
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NR 139
TC 14
Z9 14
U1 14
U2 42
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 3
PY 2023
VL 51
IS 7
BP 747
EP 763
DI 10.1080/09613218.2023.2191922
EA APR 2023
PG 17
WC Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology
GA P1UM8
UT WOS:000970797900001
OA hybrid
DA 2025-04-22
ER

PT J
AU Xiao, S
   Zou, L
   Xia, J
   Dong, Y
   Yang, ZZ
   Yao, TC
AF Xiao, Shuai
   Zou, Lei
   Xia, Jun
   Dong, Yi
   Yang, Zhizhou
   Yao, Tianci
TI Assessment of the urban waterlogging resilience and identification of
   its driving factors: A case study of Wuhan City, China
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Urban waterlogging resilience; Pressure-State-Response framework;
   Spatial heterogeneity; Driving factors; Wuhan city
ID RISK-ASSESSMENT; URBANIZATION; AREA
AB With rapid urbanization and extreme rainstorm events associated with climate change, urban waterlogging has become one of the most frequent and severe disasters globally. In this study, a multi-dimensional and multi-process index system based on the Pressure-State-Response (PSR) framework was developed to measure the level of urban waterlogging resilience (UWR). The spatial distribution of UWR on a block scale was explored based on the entropy weight method with the natural breakpoint method (EWM-NBM) in the central district of Wuhan City, China. In addition, the effects of the runoff control facilities and early warning measures on UWR were also quantified. Further, the Geodetector was used to investigate the main driving factors of UWR and their interactions. Results showed that the constructed index system for UWR based on the PSR framework performed reasonably, and the EWM-NBM was validated to be effective in the integrated assessment. In terms of the validation results, 82.72 % of the recorded waterlogging points belonged to high and very-high risk levels. The spatial heterogeneity of UWR was significant in the study area where the higher-level UWR mainly appears in the areas near the undeveloped suburban and water bodies (lakes and rivers), and the lower-level UWR was concentrated in central urban areas with more impervious surfaces. There was a clear increasing trend in UWR after the implementation of runoff control facilities and early warning measures, but its spatial distribution remained almost invariant. Among all the indexes, the impervious surface percentage had the strongest (69.58 %) explanatory ability for the UWR, and mean annual precipitation (15.51 %), GDP (14.03 %), and population density (11.98 %) also demanded attention. Most driving factors of UWR showed nonlinear interactions. This research could provide a benchmark for urban planning to enhance UWR to mitigate the waterlogging within the main urban area.
C1 [Xiao, Shuai; Zou, Lei; Xia, Jun; Dong, Yi; Yang, Zhizhou] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Water Cycle & Related Land Surface Proc, Beijing 100101, Peoples R China.
   [Xiao, Shuai] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Xia, Jun] Wuhan Univ, State Key Lab Water Resources & Hydropower Engn Sc, Wuhan 430000, Peoples R China.
   [Yao, Tianci] Guangdong Acad Sci, Guangzhou Inst Geog, Guangzhou 510070, 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; Wuhan University; Guangdong Academy of
   Sciences; Guangzhou Institute of Geography, Guangdong Academy of
   Sciences
RP Zou, L (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Water Cycle & Related Land Surface Proc, Beijing 100101, Peoples R China.
EM zoulei@igsnrr.ac.cn
FU National Natural Science Foundation of China [41890823, 42101043];
   Strategic Priority Research Program of the Chinese Academy of Sciences
   [XDA23040304]
FX This study was supported by the National Natural Science Foundation of
   China (No. 41890823, 42101043) and the Strategic Priority Research Pro-
   gram of the Chinese Academy of Sciences (XDA23040304) . We are very
   grateful to the editors and the anonymous reviewers for their
   constructive suggestions that helped us to improve the manuscript.
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NR 82
TC 48
Z9 53
U1 75
U2 365
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 MAR 25
PY 2023
VL 866
AR 161321
DI 10.1016/j.scitotenv.2022.161321
EA JAN 2023
PG 13
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 8F3XC
UT WOS:000919598700001
PM 36603610
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Long, NV
   Le, TDN
   Nguyen, H
   Khanh, DV
   The, NTM
   Do, DT
   Cheng, YN
AF Nguyen Van Long
   Tu Dam Ngoc Le
   Ho Nguyen
   Duong Van Khanh
   Ngo Thi Minh The
   Duy Thinh Do
   Cheng, Yuning
TI From a Hard to Soft Approach for Flood Management in the Vietnamese
   Mekong Delta: Integrating Ecological Engineering for Urban
   Sustainability in My Tho City
SO WATER
LA English
DT Article
DE urban flood management; flood control infrastructure; Mekong Delta;
   flood resilience; ecological infrastructure; riverine ecosystem; urban
   ecology
ID CLIMATE-CHANGE; ECOSYSTEM SERVICES; INFRASTRUCTURE; IMPACTS;
   URBANIZATION; RESILIENCE; DYNAMICS; RIVER; CONSTRUCTION; NETWORK
AB Flooding is one of the leading challenges faced by delta cities in the world. Flood risk management using flood control infrastructure (FCI) is a popular solution to prevent flood damage; however, this is receiving enormous criticism due to its negative impacts on urban ecosystems. Recently, there have been new approaches to flood risk management that gradually shifted the focus away from FCI, such as ecological infrastructure (EI) based approaches. However, the conventional thinking that cities cannot be safe without FCI seems an immutable one, especially in developing countries. This study firstly assessed human-river interaction in direct relation to FCI and outlined the limitations of FCI. Then, an urban ecology research model was used to conduct a case study in the Vietnamese Mekong Delta (VMD), in which the interaction between factors, including riverine urbanization, FCI formation dynamics, the changing hydrological regime, flood risk, and riverine ecosystem degradation were evaluated. Due to the dynamism and complexity of the interactions between humans and rivers at the VMD, this study attempts to demonstrate that building the ability to adapt to flood risks based on EI will have a crucial role in enhancing the sustainability of delta cities. Through a case study in My Tho City (MTC) a flood resilience management scenario for a riverine urban area along the Mekong River was developed to discuss the role of EI in flood risk reduction and the restoration of riverine native ecosystems. The findings from this study suggests that EI should be considered as an effective and indispensable design tool for the conservation of riparian ecological corridors and public open spaces-which is a major challenge for urban areas in the context of increasing climate change impacts in the VMD.
C1 [Nguyen Van Long; Cheng, Yuning] Southeast Univ, Sch Architecture, Nanjing 210096, Peoples R China.
   [Nguyen Van Long; Ngo Thi Minh The] Ho Chi Minh City Univ Agr & Forestry, Fac Environm & Nat Resources, Ho Chi Minh City 700000, Vietnam.
   [Tu Dam Ngoc Le] MienTrung Univ Civil Engn, Fac Architecture, Tuy Hoa City 620000, Vietnam.
   [Ho Nguyen] Univ Munster, Inst Landscape Ecol, D-48149 Munster, Germany.
   [Ho Nguyen] Dong Thap Univ, Dept Land Management, Cao Lanh City 870000, Vietnam.
   [Duong Van Khanh] Dong Thap Univ, Dept Social Work, Cao Lanh City 870000, Vietnam.
   [Duong Van Khanh] East China Univ Sci & Technol, Sch Social & Publ Adm, Shanghai 200237, Peoples R China.
   [Duy Thinh Do] Univ Chicago, Dept Sociol, Chicago, IL 60637 USA.
C3 Southeast University - China; University of Munster; East China
   University of Science & Technology; University of Chicago
RP Cheng, YN (corresponding author), Southeast Univ, Sch Architecture, Nanjing 210096, Peoples R China.; Nguyen, H (corresponding author), Univ Munster, Inst Landscape Ecol, D-48149 Munster, Germany.; Nguyen, H (corresponding author), Dong Thap Univ, Dept Land Management, Cao Lanh City 870000, Vietnam.
EM lomanscape@outlook.com; ledamngoctu@muce.edu.vn; nguyenho@dthu.edu.vn;
   dvkhanh@dthu.edu.vn; ngominhthe22@gmail.com; doduythinh@gmail.com;
   cyn999@126.com
RI Long, Nguyen/KJL-2480-2024; Nguyen, Ho/KRO-9289-2024; DO,
   THINH/ABE-1546-2021; Le, Tu/JAC-0550-2023
OI Nguyen, Ho/0000-0002-2991-0011; , Duong Van Khanh/0009-0003-0507-9782;
   Le, Tu Dam Ngoc/0000-0002-7604-5374
FU National Key R&D Program of China [2019YFD1100405]; Open Access
   Publication Fund of the University of Muenster
FX This work was supported by the National Key R&D Program of China, grant
   number [2019YFD1100405]. We acknowledge support from the Open Access
   Publication Fund of the University of Muenster.
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NR 84
TC 2
Z9 2
U1 5
U2 36
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD APR
PY 2022
VL 14
IS 7
AR 1079
DI 10.3390/w14071079
PG 24
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA 0K1BG
UT WOS:000780530100001
OA gold
DA 2025-04-22
ER

PT J
AU van der Jagt, APN
   Smith, M
   Ambrose-Oji, B
   Konijnendijk, CC
   Giannico, V
   Haase, D
   Lafortezza, R
   Nastran, M
   Pintar, M
   Zeleznikar, S
   Cvejic, R
AF van der Jagt, Alexander P. N.
   Smith, Mike
   Ambrose-Oji, Bianca
   Konijnendijk, Cecil C.
   Giannico, Vincenzo
   Haase, Dagmar
   Lafortezza, Raffaele
   Nastran, Mojca
   Pintar, Marina
   Zeleznikar, Spela
   Cvejic, Rozalija
TI Co-creating urban green infrastructure connecting people and nature: A
   guiding framework and approach
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban green infrastructure; Adaptive co-management; Social-ecological
   systems; Stakeholder participation; Urban laboratories; Resilience
ID SOCIAL-ECOLOGICAL-SYSTEMS; STAKEHOLDER ANALYSIS;
   ENVIRONMENTAL-MANAGEMENT; ADAPTIVE COMANAGEMENT; ECOSYSTEM SERVICES;
   GOVERNANCE; RESILIENCE; CHALLENGES; PARTICIPATION; LABORATORIES
AB Urban green infrastructure (UGI) and nature-based solutions are increasingly recognized as instruments to address urban sustainability challenges, yet rely on a good understanding of complex social-ecological system (SES) to function adequately. Adaptive co-management (ACM), engaging a broad variety of stakeholders in collaborative learning, is an effective strategy to improve the resilience of a SES. However, ACM studies have been criticized for neglecting the urban context, while also offering little clarity on process objectives and outcomes. To address these knowledge gaps, while also drawing attention to the important issue of socially inclusive UGI development, we present a guiding framework and approach to encourage the ACM of UGI featuring two main components. Firstly, a Learning Alliance (LA) serves as an instrument for collaborative learning and experimentation across different scales. To facilitate upscaling, we propose to establish a complementary Urban Learning Lab (ULL) to facilitate a regular exchange between the LA and legitimate peripheral networks and stakeholders in the city region. Secondly, a stepwise approach to SES analysis serves to engage a representative group of stakeholders in the LAs and ULLs, and support the processes of setting LA objectives and monitoring of adaptive capacity. We illustrate our approach to the ACM of UGI with a case study of LivadaLAB in Ljubljana, Slovenia. Applying the framework and approach, we demonstrate increased adaptive capacity of the SES around UGI as indicated by: 1) improved overall stakeholder salience, in particular for previously disempowered actor groups, 2) increased number and strength of connections between stakeholders, and 3) the consideration of a broader range of sustainable development objectives by stakeholders in their daily practice.
C1 [van der Jagt, Alexander P. N.] Univ Utrecht, Copernicus Inst Sustainable Dev, Heidelberglaan 2, NL-3584 CS Utrecht, Netherlands.
   [Smith, Mike] EcoSol, Edinburgh, Midlothian, Scotland.
   [Ambrose-Oji, Bianca] Forest Res, Ctr Ecosyst Soc & Biosecur, Farnham, Surrey, England.
   [Konijnendijk, Cecil C.] Univ British Columbia, Dept Forest Resources Management, Vancouver, BC, Canada.
   [Giannico, Vincenzo; Lafortezza, Raffaele] Univ Bari, Dept Agr & Environm Sci, Bari, Italy.
   [Haase, Dagmar] Humboldt Univ, Dept Geog, Berlin, Germany.
   [Haase, Dagmar] UFZ Helmholtz Ctr Environm Res, Dept Computat Landscape Ecol, Leipzig, Germany.
   [Lafortezza, Raffaele] Michigan State Univ, Ctr Global Change & Earth Observat, E Lansing, MI 48824 USA.
   [Pintar, Marina; Zeleznikar, Spela; Cvejic, Rozalija] Univ Ljubljana, Dept Agron, Biotech Fac, Ljubljana, Slovenia.
   [Nastran, Mojca] Univ Ljubljana, Dept Forestry & Renewable Forest Resources, Biotech Fac, Ljubljana, Slovenia.
C3 Utrecht University; University of British Columbia; Universita degli
   Studi di Bari Aldo Moro; Humboldt University of Berlin; Helmholtz
   Association; Helmholtz Center for Environmental Research (UFZ); Michigan
   State University; University of Ljubljana; University of Ljubljana
RP van der Jagt, APN (corresponding author), Univ Utrecht, Copernicus Inst Sustainable Dev, Heidelberglaan 2, NL-3584 CS Utrecht, Netherlands.
EM a.p.n.vanderjagt@uu.nl
RI Železnikar, Špela/AAQ-9410-2020; van der Jagt, Alexander/AAW-5556-2021;
   Konijnendijk, Cecil/AAC-4439-2019; Cvejic, Rozalija/AAW-3617-2020;
   Nastran, Mojca/J-9500-2019; Lafortezza, Raffaele/G-2104-2018
OI van der Jagt, Alexander/0000-0002-1365-5765; Nastran,
   Mojca/0000-0001-6235-7652; Haase, Dagmar/0000-0003-4065-5194;
   Konijnendijk, Cecil/0000-0003-4000-0622; Giannico,
   Vincenzo/0000-0002-9907-3730; Lafortezza, Raffaele/0000-0003-4642-8435;
   Zeleznikar, Spela/0000-0002-0839-5305; Cvejic,
   Rozalija/0000-0003-3667-5192
FU European Commission Seventh Framework Program
   [FP7-ENV.2013.6.2-5-603567]; project ENABLE
FX We thank Barbara Anton and Alice Reil for coordinating the LA process
   and all participating research partners and local stakeholders in the
   five ULL cities. Funding: This work was supported by the European
   Commission Seventh Framework Program (grant number
   FP7-ENV.2013.6.2-5-603567) and participating partners in the GREEN SURGE
   research project. Dagmar Haase benefited from the project ENABLE, funded
   through the 2015-2016 BiodivERsA COFUND call for research proposals with
   the national hinder German aeronautics and space research centre.
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TC 75
Z9 78
U1 8
U2 103
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 1
PY 2019
VL 233
BP 757
EP 767
DI 10.1016/j.jenvman.2018.09.083
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HM5ON
UT WOS:000459525100076
PM 30314870
OA Green Published
DA 2025-04-22
ER

PT J
AU Salazar-Llano, L
   Rosas-Casals, M
   Ortego, MI
AF Salazar-Llano, Lorena
   Rosas-Casals, Marti
   Isabel Ortego, Maria
TI An Exploratory Multivariate Statistical Analysis to Assess Urban
   Diversity
SO SUSTAINABILITY
LA English
DT Article
DE urban diversity; urban resilience; urban sustainability; sustainability
   indicators; Principal Component Analysis (PCA); Multiple Factor Analysis
   (MFA); biplot; Barcelona
ID MULTIPLE FACTOR-ANALYSIS; SUSTAINABLE DEVELOPMENT; WORLD CITIES;
   RESILIENCE; METABOLISM; TYPOLOGY; ECOLOGY; CITY; SPECIALIZATION;
   REGENERATION
AB Understanding diversity in complex urban systems is fundamental in facing current and future sustainability challenges. In this article, we apply an exploratory multivariate statistical analysis (i.e., Principal Component Analysis (PCA) and Multiple Factor Analysis (MFA)) to an urban system's abstraction of the city's functioning. Specifically, we relate the environmental, economical, and social characters of the city in a multivariate system of indicators by collecting measurements of those variables at the district scale. Statistical methods are applied to reduce the dimensionality of the multivariate dataset, such that, hidden relationships between the districts of the city are exposed. The methodology has been mainly designed to display diversity, being understood as differentiated attributes of the districts in their dimensionally-reduced description, and to measure it with Euclidean distances. Differentiated characters and distinctive functions of districts are identifiable in the exploratory analysis of a case study of Barcelona (Spain). The distances allow for the identification of clustered districts, as well as those that are separated, exemplifying dissimilarity. Moreover, the temporal dependency of the dataset reveals information about the district's differentiation or homogenization trends between 2003 and 2015.
C1 [Salazar-Llano, Lorena; Rosas-Casals, Marti] Univ Politecn Cataluna, Barcelona Tech, Sustainabil Measurement & Modeling Lab, ESEIAAT, Campus Terrassa,Colom 1, Barcelona 08222, Spain.
   [Salazar-Llano, Lorena] CIAID, Bogota 111111, Colombia.
   [Rosas-Casals, Marti] Univ Pompeu Fabra GRIB, ICREA Complex Syst Lab, Barcelona 08003, Spain.
   [Isabel Ortego, Maria] Univ Politecn Cataluna, Barcelona Tech, Dept Civil & Environm Engn, ES-08034 Barcelona, Spain.
C3 Universitat Politecnica de Catalunya; Pompeu Fabra University; ICREA;
   Universitat Politecnica de Catalunya
RP Salazar-Llano, L (corresponding author), Univ Politecn Cataluna, Barcelona Tech, Sustainabil Measurement & Modeling Lab, ESEIAAT, Campus Terrassa,Colom 1, Barcelona 08222, Spain.; Salazar-Llano, L (corresponding author), CIAID, Bogota 111111, Colombia.
EM lorena.salazar.l@upc.edu
RI Rosas-Casals, Marti/M-2389-2014; Ortego, Maria Isabel/D-3908-2011;
   Salazar-Llano, Lorena/I-7484-2015
OI Ortego, Maria Isabel/0000-0001-9437-9354; Salazar-Llano,
   Lorena/0000-0003-3478-9575
FU Ministerio de Economia y Competitividad del Gobierno de Espana
   (MINECO/FEDER) [RTI2018-095518-B-C22]
FX This research has been partially funded by the Ministerio de Economia y
   Competitividad del Gobierno de Espana (MINECO/FEDER, Ref:
   RTI2018-095518-B-C22).
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NR 101
TC 4
Z9 4
U1 3
U2 19
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL 2
PY 2019
VL 11
IS 14
AR 3812
DI 10.3390/su11143812
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 IS6KX
UT WOS:000482261800057
OA Green Submitted, gold, Green Published
DA 2025-04-22
ER

PT J
AU Bellanova, J
   Calamita, G
   Catapano, I
   Ciucci, A
   Cornacchia, C
   Gennarelli, G
   Giocoli, A
   Fisangher, F
   Ludeno, G
   Morelli, G
   Perrone, A
   Piscitelli, S
   Soldovieri, F
   Lapenna, V
AF Bellanova, Jessica
   Calamita, Giuseppe
   Catapano, Ilaria
   Ciucci, Alessandro
   Cornacchia, Carmela
   Gennarelli, Gianluca
   Giocoli, Alessandro
   Fisangher, Federico
   Ludeno, Giovanni
   Morelli, Gianfranco
   Perrone, Angela
   Piscitelli, Sabatino
   Soldovieri, Francesco
   Lapenna, Vincenzo
TI GPR and ERT Investigations in Urban Areas: the Case-Study of Matera
   (Southern Italy)
SO REMOTE SENSING
LA English
DT Article
DE near-surface geophysics; electromagnetic sensing; 2D and 3D tomography;
   smart and resilient cities
ID MICROWAVE TOMOGRAPHY; BASILICATA; RESILIENT; CITIES; SASSI
AB This paper deals with a geophysical survey carried out in some critical urban areas of the historical city of Matera (Southern Italy). Matera has a very complex shallower stratigraphy characterized by both anthropic and natural "targets" and is affected by geological instability. Therefore, Matera represents an ideal and very challenging outdoor laboratory for testing novel approaches for near-surface explorations in urban areas. Here, we present the results of a near-surface survey carried out by jointly applying Ground Penetrating Radar (GPR) and Electrical Resistivity Tomography (ERT) methods. The survey was implemented in three different critical zones within the urban area of Matera (Piazza Duomo, Piazza San Giovanni, Villa dell'Unita d'Italia). These test sites are of great interest for archaeological and architectonical studies and are affected by ground instability phenomena due to the presence of voids, cavities and other anthropic structures. The effectiveness of the survey was enhanced by the exploitation of advanced 3D tomographic approaches, which allowed to achieve 3D representation of the investigated underground and obtain information in terms of both the location and the geometry of buried objects and structures and the characterization of shallow geological layers. The results of the surveys are now under study (or have attracted the interest) of the Municipality in order to support smart cities programs and activities for a better management of the underground space.
C1 [Bellanova, Jessica; Calamita, Giuseppe; Cornacchia, Carmela; Perrone, Angela; Piscitelli, Sabatino; Lapenna, Vincenzo] CNR, Ist Metodol Anal Ambientale, I-85050 Tito, PZ, Italy.
   [Catapano, Ilaria; Gennarelli, Gianluca; Ludeno, Giovanni; Soldovieri, Francesco] CNR, Ist Rilevamento Elettromagnet Ambiente, Via Diocleziano 328, I-80124 Naples, Italy.
   [Ciucci, Alessandro; Fisangher, Federico; Morelli, Gianfranco] Geostudi Astier Srl, Via Edda Fagni 31, I-57123 Livorno, Italy.
   [Giocoli, Alessandro] ENEA, Ctr Ric Trisaia, SS 106 Ionica,Km 419 500, I-75026 Rotondella, MT, Italy.
C3 Consiglio Nazionale delle Ricerche (CNR); Istituto di Metodologie per
   l'Analisi Ambientale (IMAA-CNR); Consiglio Nazionale delle Ricerche
   (CNR); Istituto Per Il Rilevamento Elettromagnetico Dell'Ambiente
   (IREA-CNR); Italian National Agency New Technical Energy & Sustainable
   Economics Development
RP Lapenna, V (corresponding author), CNR, Ist Metodol Anal Ambientale, I-85050 Tito, PZ, Italy.
EM jessica.bellanova@imaa.cnr.it; giuseppe.calamita@imaa.cnr.it;
   catapano.i@irea.cnr.it; ciucci@geostudiastier.com;
   carmela.cornacchia@imaa.cnr.it; gennarelli.g@irea.cnr.it;
   alessandro.giocoli@enea.it; fisangher@geostudiastier.com;
   ludeno.g@irea.cnr.it; morelli@geostudiastier.com;
   angela.perrone@imaa.cnr.it; sabatino.piscitelli@imaa.cnr.it;
   soldovieri.f@irea.cnr.it; vincenzo.lapenna@imaa.cnr.it
RI Piscitelli, Sabatino/O-3853-2018; Giocoli, Alessandro/AAR-1531-2021;
   Perrone, Angela/C-3029-2015; Bellanova, Jessica/ABC-8738-2020; Catapano,
   Ilaria/AAD-5008-2020; Gennarelli, Gianluca/LRV-0031-2024; Ludeno,
   Giovanni/Q-4711-2018; Calamita, Giuseppe/C-8999-2015
OI perrone, angela/0000-0002-1858-3828; Bellanova,
   Jessica/0000-0003-1968-8338; Giocoli, Alessandro/0000-0002-4040-3694;
   SOLDOVIERI, FRANCESCO/0000-0002-0377-3127; Ludeno,
   Giovanni/0000-0001-5672-2721; Calamita, Giuseppe/0000-0003-2032-9121;
   Gennarelli, Gianluca/0000-0002-3600-5327
FU Clara Project - MIUR (Smart Cities and Communities and Social Innovation
   Program, PON RS 2007-2013) [SCN_00451]
FX This work was supported by the Clara Project (SCN_00451) funded by MIUR
   (Smart Cities and Communities and Social Innovation Program, PON R&S
   2007-2013).
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NR 30
TC 15
Z9 16
U1 2
U2 21
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 11
AR 1879
DI 10.3390/rs12111879
PG 17
WC Environmental Sciences; Geosciences, Multidisciplinary; Remote Sensing;
   Imaging Science & Photographic Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Geology; Remote Sensing; Imaging
   Science & Photographic Technology
GA MC6LX
UT WOS:000543397000184
OA gold
DA 2025-04-22
ER

PT J
AU Rodriguez, M
   Fu, GT
   Butler, D
   Yuan, ZG
   Cook, L
AF Rodriguez, Mayra
   Fu, Guangtao
   Butler, David
   Yuan, Zhiguo
   Cook, Lauren
TI Global resilience analysis of combined sewer systems under continuous
   hydrologic simulation
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Green infrastructure; Resilience; Combined sewer overflows; Threat;
   Top-down approach; Stormwater
ID URBAN WATER MANAGEMENT; CLIMATE-CHANGE; INFRASTRUCTURE; FRAMEWORK;
   RAINFALL; SELECTION; QUALITY; DESIGN; GREEN; SAFE
AB Managing and reducing combined sewer overflow (CSO) discharges is crucial for enhancing the resilience of combined sewer systems (CSS). However, the absence of a standardised resilience analysis approach poses challenges in developing effective discharge reduction strategies. To address this, our study presents a top-down method that expands the existing Global Resilience Analysis to quantify resilience performance in CSS. This approach establishes a link between threats (e.g., rainfall) and impacts (e.g., CSOs) through continuous and longterm simulation, accommodating various rainfall patterns, including extreme events. We assess CSO discharge impacts from a resilience perspective by introducing eight new metrics. We conducted a case study in Fehraltorf, Switzerland, analysing the performance of three green infrastructure (GI) types (bioretention cells, green roofs, and permeable pavements) over 38 years. The results demonstrated that GI enhanced all resilience indices, with variations observed in individual CSO performance metrics and their system locations. Notably, in Fehraltorf, green roofs emerged as the most effective GI type for improving resilience, while the downstream outfall displayed the highest resilience enhancement. Overall, our proposed method enables a shift from event-based to continuous simulation analysis, providing a standardised approach for resilience assessment. This approach informs the development of strategies for CSO discharge reduction and the enhancement of CSS resilience.
C1 [Rodriguez, Mayra; Cook, Lauren] Swiss Fed Inst Aquat Sci & Technol, Dept Urban Water Management, Dubendorf, Switzerland.
   [Fu, Guangtao; Butler, David] Univ Exeter, Ctr Water Syst, Exeter, England.
   [Yuan, Zhiguo] City Univ Hong Kong, Hong Kong, Peoples R China.
C3 Swiss Federal Institutes of Technology Domain; Swiss Federal Institute
   of Aquatic Science & Technology (EAWAG); University of Exeter; City
   University of Hong Kong
RP Cook, L (corresponding author), Swiss Fed Inst Aquat Sci & Technol, Dept Urban Water Management, Dubendorf, Switzerland.
EM lauren.cook@eawag.ch
RI Gonzalez-Barrio, David/MHQ-7861-2025; Fu, Guangtao/ABE-3874-2021; yuan,
   zhiguo/C-4980-2013
OI Rodriguez, Mayra/0000-0002-0936-4201; Cook, Lauren/0000-0001-7790-1294;
   yuan, zhiguo/0000-0002-7566-1482
FU QUEX Institute; Eawag; Australian Centre for Water and Environmental
   Biotechnology
FX This research was funded by the QUEX Institute and Eawag. We kindly
   acknowledge the Australian Centre for Water and Environmental
   Biotechnology for their support during the development of this study.
   The authors would like to thank the Urban Water Observatory team at
   Eawag for providing the SWMM model, meteorological data and flow data of
   Fehraltorf. We would also like to thank the CSCS cluster and Stuart
   Dennis at Eawag for their help with parallel computing.
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NR 59
TC 14
Z9 14
U1 9
U2 34
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 118607
DI 10.1016/j.jenvman.2023.118607
EA JUL 2023
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA P3SP4
UT WOS:001049878600001
PM 37453297
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Wilson, MT
AF Wilson, Michael T.
TI Assessing voluntary resilience standards and impacts of flood risk
   information
SO BUILDING RESEARCH AND INFORMATION
LA English
DT Article
DE Floods; resilience; climate change; urban planning and design
ID CLIMATE; ADAPTATION
AB Voluntary resilience standards are an emerging tool for cities to incentivize developers to incorporate climate change adaptation strategies. Urban planners and researchers, however, are still assessing their relative impacts on the design of recent large-scale development projects. This paper answers the question of whether, and at what scale, anticipated changes to mapped flood risk are associated with mitigation actions to accommodate climate change. A case study of the Climate Change Preparedness and Resiliency Checklist in Boston, Massachusetts presents a database of 171 unique survey responses from 104 proposed projects. Comparing developments with documentation to an internal subset of 54 projects in the Boston Planning and Development Agency's projected Sea Level Rise - Flood Hazard Area (SLR-FHA), this paper finds projects impacted by updated Federal Emergency Management Agency (FEMA) Flood Insurance Rate Maps (FIRMs) are associated with different building uses, higher sea level rise assumptions and greater abilities to endure inundation. There are also neighbourhood-level differences in climate expertise and the projects' ability to withstand utility disruption. Both of these observed impacts may have important implications for the formulation and application of voluntary resilience standards in other coastal cities.
C1 [Wilson, Michael T.] RAND Corp, Boston, MA 02116 USA.
C3 RAND Corporation
RP Wilson, MT (corresponding author), RAND Corp, Boston, MA 02116 USA.
EM miwilson@rand.org
RI Wilson, Michael/MBG-4785-2025
OI Wilson, Mike/0000-0002-4907-1550
FU Boston Area Research Initiative Seed Grant; Massachusetts Institute of
   Technology's Department of Urban Studies and Planning (DUSP) Emerson
   Travel Grant; Lynne Sagalyn and Gary Hack DUSP Fund
FX This work was conducted as a Doctoral Candidate and supported by the
   Boston Area Research Initiative Seed Grant as well as the Massachusetts
   Institute of Technology's Department of Urban Studies and Planning
   (DUSP) Emerson Travel Grant and Lynne Sagalyn and Gary Hack DUSP Fund.
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NR 61
TC 3
Z9 5
U1 4
U2 32
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 JAN 2
PY 2020
VL 48
IS 1
BP 84
EP 100
DI 10.1080/09613218.2019.1642731
EA AUG 2019
PG 17
WC Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology
GA JB8AH
UT WOS:000479891700001
DA 2025-04-22
ER

PT J
AU Lei, HY
   Hua, XD
   Yu, WJ
   Zheng, YT
   Wang, W
AF Lei, Huiying
   Hua, Xuedong
   Yu, Weijie
   Zheng, Yongtao
   Wang, Wei
TI Analysis of Cascading Failure in Urban Metro Networks: A Dynamic
   Perspective Incorporating Changes in Travel Decisions
SO JOURNAL OF ADVANCED TRANSPORTATION
LA English
DT Article
DE cascading failure model; individual travel decision; operational
   incidents; subway network
ID RAIL TRANSIT; VULNERABILITY; MODEL; LOAD
AB Accidents in urban subway networks often exert substantial and enduring impacts on urban transportation, drawing widespread attention from researchers. However, prevailing studies predominantly employ static methodologies to scrutinize incidents in urban subway systems, frequently assuming constancy in network topology and individual travel plans. Nonetheless, alterations in subway passenger flow also wield influence over network resilience. The manifold fluctuations in post-accident traffic flow and their repercussions on elastic transportation demand have hitherto been inadequately explored in the extant literature. Moreover, existing cascading failure models often lack precise definitions of scenarios, as in actual scenarios, passenger overflow following station closures can lead to cascading failures in subway networks. To bridge this gap, this study meticulously defines the research scenario, demarcates potential post-accident travel decisions, and analyzes the multifaceted factors influencing cascading failures in urban subway networks. Specifically, the proposed cascading failure model takes into consideration both the static characteristics of network topology and the fluctuations in passenger volume, along with their interplay. Additionally, when assessing station importance and quantifying network resilience, multiple travel decisions under different fault durations are duly considered. The study's validation is conducted within the urban subway network of Nanjing, China. The findings suggest that accidents and fault stations of varied durations exert disparate impacts on passenger travel decisions, thereby influencing subway resilience. Notably, stations with integrated functionalities may hold more significant roles than those with singular functions. Furthermore, our results indicate a V-shaped effect concerning event duration-as the duration increases, the proportion of passengers canceling subway travel rises, thereby enhancing the likelihood of stabilizing the subway network. Consequently, this study, by incorporating realistic variations in travel decisions, furnishes a comprehensive understanding of the impact of events on urban subway networks. This dynamic perspective yields valuable insights for optimizing strategies in responding to events.
C1 [Lei, Huiying; Hua, Xuedong; Yu, Weijie; Zheng, Yongtao; Wang, Wei] Southeast Univ, Sch Transportat, 2 Southeast Univ Rd, Nanjing 211189, Peoples R China.
   [Lei, Huiying; Hua, Xuedong; Yu, Weijie; Zheng, Yongtao; Wang, Wei] Southeast Univ, Jiangsu Prov Collaborat Innovat Ctr Modern Urban T, 2 Southeast Univ Rd, Nanjing 211189, Peoples R China.
C3 Southeast University - China; Southeast University - China
RP Hua, XD (corresponding author), Southeast Univ, Sch Transportat, 2 Southeast Univ Rd, Nanjing 211189, Peoples R China.; Hua, XD (corresponding author), Southeast Univ, Jiangsu Prov Collaborat Innovat Ctr Modern Urban T, 2 Southeast Univ Rd, Nanjing 211189, Peoples R China.
EM huaxuedong@seu.edu.cn
FU National Natural Science Foundation of China
FX The authors confirm that no AI tools were used in the preparation of
   this manuscript.
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NR 38
TC 0
Z9 0
U1 0
U2 0
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0197-6729
EI 2042-3195
J9 J ADV TRANSPORT
JI J. Adv. Transp.
PY 2025
VL 2025
IS 1
AR 5576254
DI 10.1155/atr/5576254
PG 20
WC Engineering, Civil; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA 1JF5W
UT WOS:001466318400001
DA 2025-04-22
ER

PT J
AU Tang, Y
   Fu, H
   Xu, BG
AF Tang, Yun
   Fu, Hong
   Xu, Bingang
TI Advanced design of triboelectric nanogenerators for future eco-smart
   cities
SO ADVANCED COMPOSITES AND HYBRID MATERIALS
LA English
DT Review
DE Ecological cities; Intelligent cities; Triboelectric nanogenerators;
   Energy supplier; Self-powered sensors
ID WATER-WAVE; SYSTEM; SENSORS
AB Eco-smart cities follow the ecological principles, utilize smart information technologies (Internet of Things, artificial intelligence, cloud computing) to build an efficient, harmonious, resilient, and sustainable habitable environment in the form of informatization. Triboelectric nanogenerators (TENGs) offer the benefits of being self-powered, affordable, extremely customizable, and multi-scenario applications. The researches depict that TENGs are well positioned to support the digitization, intellectualization and sustainable urban services, since they have been repeatedly demonstrated as renewable power providers and self-powered sensors. In this assessment, the most recent applications of TENGs technology in eco-smart cities over the past two years in various categories are investigated, including renewable energy supply (water, wind, solar and raindrop energy, etc.), human-machine interaction, intelligent healthcare, intelligent transportation, intelligent agriculture, intelligent industry and intelligent environmental protection. There is additional sketch of the distinctions in TENG materials, architectures, working modes, and contact modes for serving diverse living usage scenarios of the eco-smart cities. This review will promote and popularize the utilization of TENG in smart ecological cities, as well as provide instruction of its construction for future smart cities and eco-cities.
C1 [Tang, Yun; Xu, Bingang] Hong Kong Polytech Univ, Nanotechnol Ctr, Sch Fash & Text, Hung Hom, Hong Kong, Peoples R China.
   [Tang, Yun] Wuhan Text Univ, Sch Bioengn & Hlth, Wuhan 430200, Peoples R China.
   [Fu, Hong] Educ Univ Hong Kong, Dept Math & Informat Technol, Hong Kong, Peoples R China.
C3 Hong Kong Polytechnic University; Wuhan Textile University; Education
   University of Hong Kong (EdUHK)
RP Xu, BG (corresponding author), Hong Kong Polytech Univ, Nanotechnol Ctr, Sch Fash & Text, Hung Hom, Hong Kong, Peoples R China.
EM tcxubg@polyu.edu.hk
RI Xu/D-1993-2015
OI fu, hong/0000-0003-2246-7552
FU Hong Kong Polytechnic University
FX No Statement Available
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NR 181
TC 13
Z9 13
U1 42
U2 69
PU SPRINGERNATURE
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON, N1 9XW, ENGLAND
SN 2522-0128
EI 2522-0136
J9 ADV COMPOS HYBRID MA
JI Adv. Compos. Hybrid Mater.
PD JUN
PY 2024
VL 7
IS 3
AR 102
DI 10.1007/s42114-024-00909-3
PG 47
WC Nanoscience & Nanotechnology; Materials Science, Composites
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Materials Science
GA TR2V7
UT WOS:001242930700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Teuber, S
   Schmidt, K
   Kühn, P
   Scholten, T
AF Teuber, Sandra
   Schmidt, Karsten
   Kuehn, Peter
   Scholten, Thomas
TI Engaging with urban green spaces - A comparison of urban and rural
   allotment gardens in Southwestern Germany
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Allotment gardens; Motivations; Social-ecological system; Soil knowledge
ID ECOSYSTEM SERVICES; COMMUNITY GARDENS; BIODIVERSITY; MANAGEMENT;
   MOTIVATIONS; RESILIENCE; CITIES; INFRASTRUCTURE; AGRICULTURE;
   STEWARDSHIP
AB Connecting society to the ecosystem is crucial for the resilience of social-ecological systems. On the local scale, some citizens actively engage with the ecosystem in urban green spaces such as gardens. Therefore, the study investigates allotment gardens in two regions in industrialized SW-Germany through a mixed method approach consisting of questionnaires and qualitative interviews. The comparison of the regions adds to our understanding of the gardening community in industrialized countries and provides information to city planners and practitioners concerning motivations and knowledge of people interacting with the ecosystem. It shows that recreation is an important motivation for gardening in both regions, but food production is less important in urban allotment gardens. The soil knowledge relies on experiences in the respective gardens and the variety of soil conservation measures shows that gardeners care for the soil in their allotment. New management practices, such as raised beds, are present. Policy makers, city planners and interest groups should consider the present research to devise programs that lead to an engagement with the ecosystem in urban green spaces.
C1 [Teuber, Sandra; Schmidt, Karsten; Kuehn, Peter; Scholten, Thomas] Soil Sci & Geomorphol, Rumelinstr 19-23, D-72076 Tubingen, Germany.
   [Teuber, Sandra; Schmidt, Karsten; Kuehn, Peter; Scholten, Thomas] Eberhard Karls Univ Tubingen, SFB 1070 RESOURCECULTURES, Tubingen, Germany.
   [Teuber, Sandra; Schmidt, Karsten; Kuehn, Peter; Scholten, Thomas] Eberhard Karls Univ Tubingen, Lab Soil Sci & Geoecol, Res Area Geog, Dept Geosci, Tubingen, Germany.
C3 Eberhard Karls University of Tubingen; Eberhard Karls University of
   Tubingen
RP Teuber, S (corresponding author), Soil Sci & Geomorphol, Rumelinstr 19-23, D-72076 Tubingen, Germany.
EM sandra.teuber@uni-tuebingen.de; karsten.schmidt@uni-tuebingen.de;
   peter.kuehn@uni-tuebingen.de; thomas.scholten@uni-tuebingen.de
RI Schmidt, Karsten/G-8190-2015; Scholten, Thomas/E-4024-2012; Kuhn,
   Peter/A-9146-2009
OI Schmidt, Karsten/0000-0003-0337-3024; Teuber,
   Sandra/0000-0002-0580-0723; Kuhn, Peter/0000-0002-4417-5633
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NR 72
TC 14
Z9 14
U1 7
U2 61
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 JUL
PY 2019
VL 43
AR 126381
DI 10.1016/j.ufug.2019.126381
PG 8
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 IW2BN
UT WOS:000484777600033
DA 2025-04-22
ER

PT J
AU Anderson, V
   Zgela, M
   Gough, WA
AF Anderson, Vidya
   Zgela, Matej
   Gough, William A.
TI Building Urban Resilience with Nature-Based Solutions: A Multi-Scale
   Case Study of the Atmospheric Cleansing Potential of Green
   Infrastructure in Southern Ontario, Canada
SO SUSTAINABILITY
LA English
DT Article
DE green roofs; green walls; urban vegetation; urban forestry; tree-based
   intercropping; air pollution; built environment; urban design
ID AIR-POLLUTION REMOVAL; NITROGEN-DIOXIDE; CARBON SEQUESTRATION;
   CLIMATE-CHANGE; SURFACE OZONE; HEAT-ISLAND; OPEN-ROAD; QUALITY;
   VEGETATION; ROOF
AB Green infrastructure is a nature-based solution that supports sustainable development and restores urban, suburban, and peri-urban environments. Using a multi-scale evaluation, this study explores the impact of the application of green infrastructure, as a form of atmospheric cleansing, on tropospheric nitrogen dioxide. The impacts are not limited to specific green infrastructure treatments nor geographic location and land use type. Using both site-specific stationary air monitoring and coarser resolution satellite derived remote sensing, this study demonstrates the nature-based remediation effect of green infrastructure on nitrogen dioxide concentrations in Southern Ontario, Canada. At these scales, remote sensing and stationary air monitoring observations support the hypothesis that green infrastructure can cleanse the atmosphere by reducing nitrogen dioxide through scavenging by trees and dense vegetation at the neighbourhood level, consistent with the findings from microscale field campaigns. The study showed a clear link between compact, built-up, industrialized areas and higher nitrogen dioxide levels at the mesoscale, particularly notable to the west of the city of Toronto. Nature-based solutions provide an opportunity to address the impacts of urbanization, increase climate resilience, and support healthy urban environments.
C1 [Anderson, Vidya; Gough, William A.] Univ Toronto Scarborough, Dept Phys & Environm Sci, Climate Lab, Toronto, ON M1C 1A4, Canada.
   [Zgela, Matej] Univ Zagreb, Fac Sci, Dept Geophys, Horvatovac 95, Zagreb 10000, Croatia.
C3 University of Toronto; University Toronto Scarborough; University of
   Zagreb
RP Anderson, V (corresponding author), Univ Toronto Scarborough, Dept Phys & Environm Sci, Climate Lab, Toronto, ON M1C 1A4, Canada.
EM vidya.anderson@utoronto.ca; matej.zgela@gfz.hr;
   william.gough@utoronto.ca
RI Gough, William/L-5231-2013
OI Zgela, Matej/0000-0002-5459-0099; Anderson, Vidya/0000-0001-6784-4046
FU The authors wish to express their appreciation to Next Level Storm Water
   Management, Mountain Equipment Co-op, the Seeds of Hope Foundation, and
   the University of Guelph Agroforestry Research Station for providing
   site access.; Mountain Equipment Co-op; Seeds of Hope Foundation;
   University of Guelph Agroforestry Research Station
FX The authors wish to express their appreciation to Next Level Storm Water
   Management, Mountain Equipment Co-op, the Seeds of Hope Foundation, and
   the University of Guelph Agroforestry Research Station for providing
   site access.
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NR 85
TC 3
Z9 3
U1 18
U2 34
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 14146
DI 10.3390/su151914146
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 FK3G9
UT WOS:001145627300001
OA gold
DA 2025-04-22
ER

PT J
AU Lindner, R
   Jaca, C
   Hernantes, J
AF Lindner, Rene
   Jaca, Carmen
   Hernantes, Josune
TI A Good Practice for Integrating Stakeholders through Standardization-The
   Case of the Smart Mature Resilience Project
SO SUSTAINABILITY
LA English
DT Article
DE standardization; city resilience; case study; stakeholder engagement;
   research projects; lessons learned
ID MANAGEMENT; INNOVATION
AB A priority must be made on making cities more resilient against crises such as the COVID-19 pandemic to help plan for an uncertain future. However, due to the insufficient transfer of knowledge from, among others, research projects to cities, they are often unaware of the resilience tools available as well as possible standardization activities to foster the integration of relevant stakeholders. To address this issue, this paper analyzes the use of standards and the contribution to standardization in a multi-case study of nine European Framework Program projects and with the Smart Mature Resilience (SMR) project, a more in-depth case study. SMR integrated several European cities in its co-creative approach for developing city resilience tools and the related standards series CWA 17300 on 'City Resilience Development'. Furthermore, the paper defines five steps for integrating standardization in research projects with a focus on (city) resilience and shows the benefits of the standardization process for fostering the engagement of relevant stakeholders.
C1 [Lindner, Rene; Jaca, Carmen; Hernantes, Josune] Univ Navarra, Sch Engn, TECNUN, Paseo Manuel de Lardizabal 13, San Sebastian 20018, Spain.
C3 University of Navarra
RP Lindner, R (corresponding author), Univ Navarra, Sch Engn, TECNUN, Paseo Manuel de Lardizabal 13, San Sebastian 20018, Spain.
EM rlindner@alumni.unav.es; cjaca@tecnun.es; jhernantes@tecnun.es
RI Lindner, Rene/HLG-3762-2023; Jaca, Carmen/A-2667-2013; Hernantes,
   Josune/C-9247-2017
OI Lindner, Rene/0000-0002-6152-1390
FU European Union's Horizon 2020 Research and Innovation Program [653569];
   H2020 Societal Challenges Programme [653569] Funding Source: H2020
   Societal Challenges Programme
FX The Smart Mature Resilience research project has received funding from
   the European Union's Horizon 2020 Research and Innovation Program under
   Grant Agreement no. 653569.
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NR 84
TC 5
Z9 5
U1 0
U2 30
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 9000
DI 10.3390/su13169000
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 UH5QN
UT WOS:000689985300001
OA gold
DA 2025-04-22
ER

PT J
AU Ao, X
   Li, QW
   Schwanen, T
   Wójcik, D
AF Ao, Xiang
   Li, Qianwen
   Schwanen, Tim
   Wojcik, Dariusz
TI Does polycentric regional development promote economic resilience?
   Empirical evidence from urban agglomerations in China
SO JOURNAL OF ECONOMIC GEOGRAPHY
LA English
DT Article; Early Access
DE polycentric regional development; economic resilience; entrepreneurship;
   China
ID CRISIS; EUROPE; COVID-19; NETWORK; CITIES; IMPACT
AB While the role of movement and exchanges (of goods, people, etc.) between economies, or flows, is underexplored in economic resilience literature, we introduce a flow-based framework incorporating effects of polycentricity and use it to analyse development in China during the coronavirus disease 2019 pandemic. We use individuals' travel and enterprise registration data to gauge polycentricity and economic resilience, and apply regression models to explore their relationship across pandemic waves. The results demonstrate positive, yet, diminishing and even adverse effects of polycentricity on the regional scale as shocks progress. Policy makers should thus consider implementing targeted polycentricity-related actions aligned with different shock phases.
C1 [Ao, Xiang; Schwanen, Tim] Univ Oxford, Sch Geog & Environm, Transport Studies Unit, South Parks Rd, Oxford OX1 3QY, England.
   [Li, Qianwen] Katholieke Univ Leuven, Div Geog & Tourism, Celestijnenlaan 200E, B-3001 Heverlee, Belgium.
   [Wojcik, Dariusz] Natl Univ Singapore, Dept Geog, 1 Arts Link, Kent Ridge 117568, Singapore, Singapore.
C3 University of Oxford; KU Leuven; National University of Singapore
RP Ao, X (corresponding author), Univ Oxford, Sch Geog & Environm, Transport Studies Unit, South Parks Rd, Oxford OX1 3QY, England.
EM xiang.ao@ouce.ox.ac.uk
RI LI, QIANWEN/ADI-9067-2022; Schwanen, Tim/ABE-6070-2021; Wojcik,
   Dariusz/KYQ-9370-2024
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NR 60
TC 0
Z9 0
U1 2
U2 2
PU OXFORD UNIV PRESS
PI OXFORD
PA GREAT CLARENDON ST, OXFORD OX2 6DP, ENGLAND
SN 1468-2702
EI 1468-2710
J9 J ECON GEOGR
JI J. Econ. Geogr.
PD 2025 APR 1
PY 2025
DI 10.1093/jeg/lbaf015
EA APR 2025
PG 22
WC Economics; Geography
WE Social Science Citation Index (SSCI)
SC Business & Economics; Geography
GA 0VE0A
UT WOS:001456774800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Chen, SY
   van de Ven, FHM
   Zevenbergen, C
   Verbeeck, S
   Ye, QH
   Zhang, WJ
   Wei, L
AF Chen, Shiyang
   van de Ven, Frans H. M.
   Zevenbergen, Chris
   Verbeeck, Simon
   Ye, Qinghua
   Zhang, Weijun
   Wei, Liang
TI Revisiting China's Sponge City Planning Approach: Lessons From a Case
   Study on Qinhuai District, Nanjing
SO FRONTIERS IN ENVIRONMENTAL SCIENCE
LA English
DT Article
DE Sponge City; water management; urban planning; comprehensive approach;
   co-design
ID FLOOD RISK-MANAGEMENT; WATER MANAGEMENT; CLIMATE-CHANGE; ADAPTATION;
   TOOLS
AB Integrating sustainable urban water management into the urban planning process is essential for developing water-resilient cities. To this end, the central government of the People's Republic of China initiated the "Sponge City" programme. However, challenges and gaps exist in current urban planning practice. The operationalizable planning approach to realise the multiple objectives of Sponge City is missing in the existing guidelines. Using a local example of Sponge City planning in Nanjing City as a case study, this paper outlines the current Sponge City approach from the perspectives of planning content and planning process. A qualitative comparative analysis between Nanjing's Sponge City planning and Auckland Water Sensitive Design, as well as an evaluation of the Sponge City approach through the lens of Dutch urban water management, identified key missing elements that would enhance the current Sponge City planning approach. Examples include targets for pluvial flood protection, a strategy for planning interventions, and tools for interdisciplinary cooperation in the planning process. This enhanced approach was successfully applied in the Sponge City planning for Qinhuai District, Nanjing City. Nevertheless, challenges on data availability and the decision-makers' mindsets called for more efforts on the interface of research and policy development for upscaling the Sponge City approach.
C1 [Chen, Shiyang; van de Ven, Frans H. M.] Delft Univ Technol, Fac Civil Engn & Geosci, Dept Water Management, Delft, Netherlands.
   [Chen, Shiyang; van de Ven, Frans H. M.; Ye, Qinghua] Deltares, Delft, Netherlands.
   [Zevenbergen, Chris; Ye, Qinghua] Delft Univ Technol, Fac Civil Engn & Geosci, Dept Hydraul Engn, Delft, Netherlands.
   [Zevenbergen, Chris] IHE Delft Inst Water Educ, Delft, Netherlands.
   [Verbeeck, Simon] LOLA Landscape Architects, Rotterdam, Netherlands.
   [Zhang, Weijun] Ewaters, Shanghai, Peoples R China.
   [Wei, Liang] Achterboschzantman Int, Leeuwarden, Netherlands.
C3 Delft University of Technology; Deltares; Delft University of
   Technology; IHE Delft Institute for Water Education
RP Chen, SY; van de Ven, FHM (corresponding author), Delft Univ Technol, Fac Civil Engn & Geosci, Dept Water Management, Delft, Netherlands.; Chen, SY; van de Ven, FHM (corresponding author), Deltares, Delft, Netherlands.
EM shiyang.chen07@gmail.com; f.h.m.vandeven@tudelft.nl
RI Chen, Shiyang/KHT-1794-2024
OI Chen, Shiyang/0009-0005-2609-0096
FU Delft University of Technology; China Europe Water Platform
FX The research for this paper was supported by Delft University of
   Technology, Deltares, and China Europe Water Platform (CEWP). The
   Qinhuai case study could not be conducted without help from Nanjing
   Municipal Government, Qinhuai District Government, and Nanjing Hydraulic
   Research Institute (NHRI). Thanks to China Academy of Urban Planning and
   Design (CAUPD) for the collaboration in CEWP and for sharing their
   insights into Sponge City policy development, planning, and practice.
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NR 53
TC 16
Z9 16
U1 25
U2 210
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 SEP 28
PY 2021
VL 9
AR 748231
DI 10.3389/fenvs.2021.748231
PG 17
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA WF6VX
UT WOS:000706442000001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Zhang, L
   Huang, QX
   He, CY
   Yue, HB
   Zhao, QB
AF Zhang, Ling
   Huang, Qinxu
   He, Chunyang
   Yue, Huanbi
   Zhao, Quanbo
TI Assessing the dynamics of sustainability for social-ecological systems
   based on the adaptive cycle framework: A case study in the
   Beijing-Tianjin-Hebei urban agglomeration
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Resilience; Human and environmental systems; Jing-Jin-Ji urban cluster;
   Sustainability assessment; Urban sustainability
ID RESILIENCE; REGION; CHINA; ECOSYSTEMS; IMPACT; SHIFTS; SPACE; FIT
AB Evaluating the dynamics of sustainability for social-ecological systems (SESs) is fundamental for guaranteeing human well-being and achieving sustainable development goals (SDGs). Here, we develop a method to quantify and analyze the dynamics of sustainability for SESs based on the adaptive cycle framework and catastrophe theory. This method can effectively identify the important time points and areas that affect the dynamics of sustainability and is flexible for assessing various SESs. We applied this method to a typical SES, the Beijing-Tianjin-Hebei urban agglomeration (BTHUA). The results showed that the BTHUA experienced an overall rise in sustainability from 2000 to 2017. It has exhibited two adaptive cycles, among which 2006 and 2012 marked the release phases (i.e., the decrease in sustainability). The decline in the environmental subsystem and the increase in pollution from resource-based cities were major factors affecting the dynamics of sustainability in the BTHUA. Therefore, implementing place-based measures is encouraged to promote the sustainability of this urban agglomeration.
C1 [Zhang, Ling; Huang, Qinxu; He, Chunyang; Yue, Huanbi; Zhao, Quanbo] Beijing Normal Univ, Ctr Human Environm Syst Sustainabil CHESS, State Key Lab Earth Surface Proc & Resource Ecol, Beijing 100875, Peoples R China.
   [Zhang, Ling; Huang, Qinxu; He, Chunyang; Yue, Huanbi; Zhao, Quanbo] Beijing Normal Univ, Sch Nat Resources, Fac Geog Sci, Beijing 100875, Peoples R China.
C3 Beijing Normal University; Beijing Normal University
RP Huang, QX (corresponding author), Beijing Normal Univ, State Key Lab Earth Surface Proc & Resource Ecol, 19 Xinjiekouwai St, Beijing 100875, Peoples R China.
EM LingZhang@mail.bnu.edu.cn; qxhuang@bnu.edu.cn; hcy@bnu.edu.cn;
   yuehuanbi@mail.bnu.edu.cn; 201811051146@mail.bnu.edu.cn
RI Huang, Qingxu/R-8956-2019; Zhao, Quanbo/LNP-5824-2024
OI Zhao, Quanbo/0000-0001-9396-6530; Yue, Huanbi/0000-0003-3214-815X;
   Zhang, Ling/0000-0001-5260-3151; Zhang, Ling/0009-0003-1201-4880
FU National Natural Science Foundation of China [41971225]; Beijing
   Municipal Natural Science Fund [8192027]; Beijing Nova Program
   [Z181100006218049]
FX We express our gratitude to the anonymous reviewers and editors for
   their insightful and critical comments, which have improved the quality
   of the manuscript. This research was supported in part by the National
   Natural Science Foundation of China [Grant No. 41971225], the Beijing
   Municipal Natural Science Fund [Grant No. 8192027] and the Beijing Nova
   Program [Grant No. Z181100006218049].
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Z9 37
U1 12
U2 160
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 2021
VL 70
AR 102899
DI 10.1016/j.scs.2021.102899
EA APR 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 SM6AW
UT WOS:000657686800008
DA 2025-04-22
ER

PT J
AU Cui, XF
   Huang, LY
AF Cui, Xufeng
   Huang, Liuyi
TI Integrating ecosystem services and ecological risks for urban ecological
   zoning: a case study of Wuhan City, China
SO HUMAN AND ECOLOGICAL RISK ASSESSMENT
LA English
DT Article
DE urban ecology; CA-Markov model; spatial distribution; risk prediction;
   resilient cities
ID LAND; MODEL
AB The global ecosystem is facing a severe situation, with increasing ecological risks threatening ecosystem protection. The research is conducted based on land use data and socio-economic data of Wuhan during the three periods of 2000, 2010, and 2020. Various models including the ecosystem service value model, ecosystem risk model, bivariate spatial autocorrelation model, and CA-Markov model are employed to calculate the spatial and temporal evolution as well as the correlation of ecosystem service values and ecological risks in Wuhan City over the past 20 years. Moreover, the study aims to predict the ecosystem service values and ecological risks for the year 2030 and establish an ecological zoning framework accordingly. The results show that: (1) The value of Wuhan's ecosystem services show a trend of first decreasing and then increasing in the past 20 years. (2) The ecological risks of Wuhan show an overall upward trend, and the ecological risks in the study area are generally characterized by "high in the middle and low around". (3) There is a significant positive spatial correlation between the value of ecosystem services and ecological risks in Wuhan. The overall ecological risk in the study area in 2030 is relatively alleviated compared with the previous two periods, and the ecological zones with a larger proportion are "low-low" and "low-high" zones. This study can provide critical information for building resilient cities.
C1 [Cui, Xufeng; Huang, Liuyi] Zhongnan Univ Econ & Law, Sch Business Adm, Wuhan, Peoples R China.
   [Cui, Xufeng] Zhongnan Univ Econ & Law, Sch Business Adm, Land Management Teaching & Res Off, 182 Nanhu Ave, Wuhan 430073, Peoples R China.
C3 Zhongnan University of Economics & Law; Zhongnan University of Economics
   & Law
RP Cui, XF (corresponding author), Zhongnan Univ Econ & Law, Sch Business Adm, Land Management Teaching & Res Off, 182 Nanhu Ave, Wuhan 430073, Peoples R China.
EM cxf@zuel.edu.cn
RI Xufeng, Cui/GMX-2978-2022
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PU TAYLOR & FRANCIS INC
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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 NOV 26
PY 2023
VL 29
IS 9-10
BP 1299
EP 1317
DI 10.1080/10807039.2023.2265990
EA SEP 2023
PG 19
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA AJ1C9
UT WOS:001080718100001
DA 2025-04-22
ER

PT J
AU Amirzadeh, M
   Sharifi, A
AF Amirzadeh, Melika
   Sharifi, Ayyoob
TI The evolutionary path of place making: From late twentieth century to
   post-pandemic cities
SO LAND USE POLICY
LA English
DT Article
DE Placemaking evolution; Urban design; Public space; Model of place;
   Quality of place; Urban space
ID IT-YOURSELF URBANISM; CREATIVE PLACEMAKING; DIGITAL PLACEMAKING;
   INDIGENOUS PLACE; HERITAGE; GENTRIFICATION; GOVERNANCE; DESIGN; SENSE;
   CITY
AB Since its emergence in the latter half of the 20th century, the concept of place making has undergone substantial evolution. To fully comprehend how this concept has transformed and encountered diverse trajectories, it is beneficial to examine its evolutionary path over time. Therefore, this paper aims to conduct a thorough review of the literature surrounding the expanding matrix of place making through a combination of bibliometric analysis and selective review. The paper seeks to undertake a comprehensive evaluation of nine interrelated paradigms of place making as a subfield of urban planning and design. These are, namely, late 20th century place making, sustainable place making, digital place making, democratic place making, creative place making, strategic place making, healthy place making, resilient place making, and post-pandemic place making. Results reveal that there has been a transition toward community-based participation and a stronger emphasis on social and environmental elements. Also, there has been a shift from emphasizing functional spaces to promoting community building, social connectivity, healthy, and resilient environments via long-term strategies as well as the deployment of smart city and digital technologies.
C1 [Amirzadeh, Melika] Univ Art, Fac Architecture & Urban Planning, Tehran, Iran.
   [Sharifi, Ayyoob] 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 Lebanese American University
RP Amirzadeh, M (corresponding author), Univ Art, Fac Architecture & Urban Planning, Tehran, Iran.
EM melika.amirzadeh@gmail.com
RI Sharifi, Ayyoob/M-7584-2013; AMIRZADEH, MELIKA/HIR-9975-2022
OI Amirzadeh, Melika/0000-0002-5223-818X
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NR 224
TC 9
Z9 9
U1 17
U2 40
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 JUN
PY 2024
VL 141
AR 107124
DI 10.1016/j.landusepol.2024.107124
EA MAR 2024
PG 24
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA QB6S3
UT WOS:001218465100001
DA 2025-04-22
ER

PT J
AU Yu, SY
   Lei, KL
   Li, DY
   Kim, YJ
   Nemoto, M
   Gatson, S
   Yokohari, M
   Brown, R
AF Yu, Siyu
   Lei, Kin Long
   Li, Dongying
   Kim, You Joung
   Nemoto, Mio
   Gatson, Sarah
   Yokohari, Makoto
   Brown, Robert
TI Plan integration for urban extreme heat: Evaluating the impacts of plans
   at multiple scales in Tokyo, Japan
SO URBAN CLIMATE
LA English
DT Article
DE Urban extreme heat; Heat vulnerability; Plan integration; Resilience
   planning; Climate adaptation
ID CLIMATE-CHANGE; THERMAL COMFORT; VULNERABILITY; EVENTS; TEMPERATURE;
   INDICATORS; GROWTH
AB Urban extreme heat is an increasingly prevalent hazard in many parts of the world. Its impact can be amplified when community land use plans fail to work together to reduce vulnerability. It is important for planners to track plan integration with respect to urban extreme heat, but scholarship is currently limited. We address this knowledge gap by extending the Plan Integration for Resilience Scorecard TM ( PIRS TM ) method to evaluate extreme heat hazards in Tokyo, Japan. We analyze the integration of Tokyo's network of plans in addressing heat vulnerability, and whether it targets the communities most exposed to urban extreme heat. This study expands the PIRS TM methodology by (1) accounting for multiple tiers of plans, (2) adapting it beyond the EuroAmerican context, and (3) widening its thematic focus from flooding to urban extreme heat. This approach reveals that plans in Tokyo are generally integrated in supporting heat vulnerability reduction and that policies related to preserving and creating green -blue networks, environmental performance, and directly addressing hazards play a critical role in vulnerability reduction. However, a mismatch exists between policy attention and exposure, as many vulnerability -reducing policies fail to benefit the communities most exposed to urban extreme heat.
C1 [Yu, Siyu; Lei, Kin Long; Li, Dongying; Kim, You Joung; Brown, Robert] Texas A&M Univ, Dept Landscape Architecture & Urban Planning, College Stn, TX USA.
   [Nemoto, Mio; Yokohari, Makoto] Univ Tokyo, Sch Engn, Tokyo, Japan.
   [Gatson, Sarah] Texas A&M Univ, Dept Sociol, College Stn, TX USA.
   [Yu, Siyu] Room 104,Scoates Hall,3137 TAMU, College Stn, TX 77843 USA.
C3 Texas A&M University System; Texas A&M University College Station;
   University of Tokyo; Texas A&M University System; Texas A&M University
   College Station
RP Yu, SY (corresponding author), Room 104,Scoates Hall,3137 TAMU, College Stn, TX 77843 USA.
EM syu@arch.tamu.edu
RI Brown, Robert/HPG-5711-2023
OI Kim, YouJoung/0000-0001-6281-4884; Brown, Robert/0000-0001-6955-910X
FU U.S. Department of Homeland Security [2015-ST- 061-ND0001-01]; National
   Academies of Sciences, Engineering, and Medicine, Gulf Research Program
   [SCON-10000640]; Global Engagement Research Program; Institute for
   Pacific Asia at Texas A M University
FX This material is based upon work supported by the U.S. Department of
   Homeland Security under Grant Award Number 2015-ST- 061-ND0001-01. The
   views and conclusions contained herein are those of the authors and
   should not be interpreted as necessarily representing the official
   policies, either expressed or implied, of the U.S Department of Homeland
   Security. This material is based upon work supported by the National
   Academies of Sciences, Engineering, and Medicine, Gulf Research Program
   under Grant Award Number SCON-10000640. The views and conclusions
   contained in the document are those of the authors and should not be
   interpreted as necessarily representing the offical policies of the
   National Academies of Sciences, Engineering, and Medicine. This material
   is based upon work supported by the Global Engagement Research Program,
   the Institute for Pacific Asia at Texas A & M University. The findings
   and conclusions in the document are those of the authors and do not
   necessarily represent the official position of the Texas A & M
   University
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NR 125
TC 2
Z9 2
U1 7
U2 15
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD MAY
PY 2024
VL 55
AR 101888
DI 10.1016/j.uclim.2024.101888
EA APR 2024
PG 18
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA RQ4Y6
UT WOS:001229124700001
DA 2025-04-22
ER

PT J
AU Lauermann, J
AF Lauermann, John
TI Municipal statecraft: Revisiting the geographies of the entrepreneurial
   city
SO PROGRESS IN HUMAN GEOGRAPHY
LA English
DT Article
DE entrepreneurial city; growth coalition; growth machine; local state;
   urban regime
ID POLITICAL-ECONOMY; URBAN GOVERNANCE; POLICY MOBILITIES; OLYMPIC CITIES;
   GROWTH MACHINE; SMART CITY; NEOLIBERALISM; URBANIZATION; STRATEGIES;
   MANAGERIALISM
AB The entrepreneurial city is no longer (only) a growth machine: recession and austerity, new forms of financialization, and diverse experiments in urban policy have diluted local elites' focus on growth. But entrepreneurial urban governance remains remarkably resilient despite its inability to deliver growth. Indeed, in many cities entrepreneurial tactics - e.g. municipal speculation, place branding, and inter-urban competition - are simply standard operating procedure. Recent scholarship on entrepreneurial urban governance demonstrates a need for re-theorizing the assumed interdependence between entrepreneurial practices and growth politics. This calls into question the nature of the entrepreneurs' of the entrepreneurial city, that is, the nature of municipal states. They increasingly (i) apply entrepreneurial practices to multiple governance agendas in parallel to growth, (ii) evaluate their portfolios in both speculative and more broadly experimental ways, and (iii) challenge top-down narratives about inter-urban competition through inter-urban diplomacy. Each of these characteristics shows the disruptive potential of interventionist forms of municipal statecraft.
C1 [Lauermann, John] Texas A&M Univ, College Stn, TX 77843 USA.
C3 Texas A&M University System; Texas A&M University College Station
RP Lauermann, J (corresponding author), Texas A&M Univ, Dept Geog, College Stn, TX 77843 USA.
EM jlauermann@tamu.edu
RI Lauermann, John/ABE-7219-2020
OI Lauermann, John/0000-0001-9114-3864
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U1 15
U2 119
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0309-1325
EI 1477-0288
J9 PROG HUM GEOG
JI Prog. Hum. Geogr.
PD APR
PY 2018
VL 42
IS 2
BP 205
EP 224
DI 10.1177/0309132516673240
PG 20
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA GC6RP
UT WOS:000429920000003
HC Y
HP N
DA 2025-04-22
ER

PT J
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AF Gilderbloom, John Hans
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LA English
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ID HOUSING MARKETS; AIR-POLLUTION; WALKABLE NEIGHBORHOODS; BUILT
   ENVIRONMENT; RESILIENT; COMPACT; QUALITY; EQUITY
AB The purpose of this study is to better understand the factors that shape variations in rent across midsize cities in the U.S. We empirically test several theories (economic, sociological, and green theory) to discover what is explaining these differences. Our approach compares 146 semi-isolated, medium-sized U.S. cities and regresses economic, green and social characteristics on the monthly median contract rent. Our results show weaknesses in the economic and sociological explanations with green characteristics adding greater explanatory power to what shapes inter-city rent differentials. Our results indicate that cities that are considered walkable and have lower pollution levels tend to have statistically significant higher rents-a finding which has implications for understanding rent variations and for planners and citizen groups who pursue more livable places. During an era of the great pandemic/COVID-19 health crisis, we believe that citizens will pay more rent for cities that are more walkable and have less pollution.
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RP Gilderbloom, JH (corresponding author), Neighborhood Associates Corp, Washington, DC 20007 USA.; Gilderbloom, JH (corresponding author), Ctr Sustainable Urban Neighborhoods, Washington, DC 20002 USA.; Gilderbloom, JH (corresponding author), Univ Louisville, 426 West Bloom St, Louisville, KY 40208 USA.
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NR 98
TC 5
Z9 5
U1 1
U2 17
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 SEP 14
PY 2022
VL 44
IS 8
BP 1059
EP 1075
DI 10.1080/07352166.2020.1803751
EA OCT 2020
PG 17
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 4M5CG
UT WOS:000575233100001
DA 2025-04-22
ER

PT J
AU Kalantidou, E
AF Kalantidou, Eleni
TI The historic centre of Athens: a tale of decomposition and resilience
SO URBAN DESIGN INTERNATIONAL
LA English
DT Article
DE crisis; gentrification; urban re-development; cultural heritage;
   resilience
ID CULTURAL ECONOMY
AB Athens is full of contradictions; it is formed by incoherence, an anarchic way of doing things and a constant negotiation between communal life and personal survival. This paper focusses on Athens' fate by exploring the recent history and current state of its historic centre, a space designated as a cultural heritage site that has survived the test of time but is currently facing a multitude of challenges. Five sub-areas and their physical and social transformation are investigated based on bibliographical information including studies and legal frameworks, depicting the impact of gentrification and the hybrid neighborhoods generated by it, while issues of extreme austerity, inconsistent governance, immigrant influx and sprouting forms of resilience are also discussed. The closing part of the paper is dedicated to suggestions for an urban autopoiesis, a condition with the potential to enable the residents of the historic centre to develop their own functional mechanisms of living and well-being and achieve social resilience so as to redirect its doomed prospects. This illustrates one possible scenario out of a few presented in this section regarding Athens' destiny and its impact on the rest of the world.
C1 [Kalantidou, Eleni] Griffith Univ, 226 Grey St, Brisbane, Qld 4101, Australia.
C3 Griffith University
RP Kalantidou, E (corresponding author), Griffith Univ, 226 Grey St, Brisbane, Qld 4101, Australia.
EM e.kalantidou@griffith.edu.au
OI Kalantidou, Eleni/0000-0002-2535-7730
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NR 23
TC 0
Z9 0
U1 1
U2 25
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 FEB
PY 2018
VL 23
IS 1
BP 22
EP 33
DI 10.1057/s41289-017-0046-8
PG 12
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 GB9GZ
UT WOS:000429383600003
DA 2025-04-22
ER

PT J
AU Zhang, JW
   Wang, SY
   Zhang, M
   Sun, YP
   Wang, HW
AF Zhang, Jianwei
   Wang, Siyuan
   Zhang, Man
   Sun, Yuping
   Wang, Hongwei
TI Hysteresis performance of earthquake-damaged resilient RAC shear walls
   retrofitted with CFRP strips and steel plates
SO STEEL AND COMPOSITE STRUCTURES
LA English
DT Article
DE carbon-fiber0reinforced polymers; damage assessment; hysteresis
   performance; resilient shear walls; retrofit
ID SEISMIC PERFORMANCE; AGGREGATE CONCRETE; BEHAVIOR; IMPACT; CITY
AB In this paper, weakly bonded ultra-high-strength steel bars (DHSS) were used as longitudinal reinforcement in recycled aggregate concrete shear walls to achieve resilient performance. The study evaluated the repairability and hysteresis performance of shear walls before and after retrofitting. Quasi-static tests were performed on recycled aggregate concrete (RAC) and steel fiber reinforced recycled aggregate concrete (FRAC) shear walls to investigate the reparability of resilient shear walls when loaded to 1% drift ratio. Results showed that shear walls exhibited drift-hardening properties. The maximum residual drift ratio and residual crack width at 1% drift ratio were 0.107% and 0.01mm, respectively, which were within the repairable limits. Subsequently, shear walls were retrofitted with bonded X-shaped CFRP strips and steel plates wrapped at the bottom and retested. Except for a slight reduction in initial stiffness, earthquake-damaged resilient shear walls retrofitted with a composite method still had satisfactory hysteresis performance. A revised damage assessment index D, has been proposed to assess of damage degree. Moreover, finite-element analysis for the shear wall before and after retrofit retrofitting was established in OpenSees and verified with experimental results. The finite element results and test results were in good agreement. Finally, parametric analysis was performed.
C1 [Zhang, Jianwei; Wang, Siyuan; Zhang, Man; Wang, Hongwei] Beijing Univ Technol, Key Lab Urban Secur & Disaster Engn, Minist Educ, Beijing 100124, Peoples R China.
   [Sun, Yuping] Kobe Univ, Grad Sch Engn, Dept Architecture, Kobe 6578501, Japan.
C3 Beijing University of Technology; Kobe University
RP Zhang, JW; Wang, SY (corresponding author), Beijing Univ Technol, Key Lab Urban Secur & Disaster Engn, Minist Educ, Beijing 100124, Peoples R China.
EM zhangjw@bjut.edu.cn; wangsiyuan@emails.bjut.edu.cn
RI Wang, Hongwei/HSE-8775-2023; Sun, Yuping/M-4842-2016
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NR 62
TC 1
Z9 1
U1 5
U2 14
PU TECHNO-PRESS
PI DAEJEON
PA PO BOX 33, YUSEONG, DAEJEON 305-600, SOUTH KOREA
SN 1229-9367
EI 1598-6233
J9 STEEL COMPOS STRUCT
JI Steel Compos. Struct.
PD AUG 10
PY 2024
VL 52
IS 3
BP 357
EP 376
DI 10.12989/scs.2024.52.3.357
PG 20
WC Construction & Building Technology; Engineering, Civil; Materials
   Science, Composites
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering; Materials Science
GA C2C9C
UT WOS:001287498700007
DA 2025-04-22
ER

PT J
AU Tan, XY
   Mao, XH
   Xu, T
   Xu, HJ
   Wang, YX
   Bao, EZ
AF Tan, Xiaoyan
   Mao, Xinhua
   Xu, Ting
   Xu, Huijia
   Wang, Yixuan
   Bao, Enze
TI Resilience-based joint optimization of heterogeneous multi-crew
   scheduling and routing in urban road network recovery
SO STRUCTURE AND INFRASTRUCTURE ENGINEERING
LA English
DT Article; Early Access
DE Bi-level programming; heterogeneity; homogeneity; resilience; road
   network recovery; scheduling and routing; user equilibrium
ID REPAIR CREW; ALGORITHM; LINKS; ACCESSIBILITY; ROBUSTNESS
AB Effective recovery strategies are necessary for road network resilience enhancement after disruptive events. Since urban road networks affected by small-scale disruptive events have a loss of capacity but still serve users, traffic flow evolves during the road network recovery process. This study addresses the joint optimization of multi-crew scheduling and routing considering the evolution of traffic flow from the perspective of road network resilience. We incorporate the heterogeneity of crews into the recovery process and introduce a bi-level programming model to simulate the joint optimization problem. Furthermore, an intertwined double-layer heuristic algorithm integrating the enhanced genetic algorithm, the Frank-Wolfe algorithm, and Dijkstra's algorithm is designed to solve the bi-level programming model. Finally, numerical experiments are utilized to validate the effectiveness of our proposed method. Additionally, the discussions regarding the impact of traffic flow evolution and heterogeneity on the recovery effect, as well as the sensitivity analysis of the number of crews, offer significant insights for decision-makers.
C1 [Tan, Xiaoyan; Mao, Xinhua; Xu, Ting] Changan Univ, Sch Transportat Engn, Xian, Peoples R China.
   [Tan, Xiaoyan; Mao, Xinhua] Engn Res Ctr Digital Construct & Management Transp, Xian, Peoples R China.
   [Xu, Huijia; Wang, Yixuan; Bao, Enze] Changan Univ, Changan Dublin Int Coll Transportat, Xian, Peoples R China.
C3 Chang'an University; Chang'an University
RP Mao, XH (corresponding author), Changan Univ, Sch Transportat Engn, Xian, Peoples R China.; Mao, XH (corresponding author), Engn Res Ctr Digital Construct & Management Transp, Xian, Peoples R China.
EM maoxinhua@chd.edu.cn
FU National Natural Science Foundation of China [52102374]; Natural Science
   Foundation of Ningbo Municipality [2023J028]; Natural Science Research
   Program of Shaanxi Province [2020JQ-360]; Transportation Science and
   Technology Research Project of Hebei Province [JX-202006]; Fundamental
   Research Funds for the Central Universities, CHD [300102343203,
   300102343205]
FX This work was supported by the National Natural Science Foundation of
   China [grant number 52102374]; Natural Science Foundation of Ningbo
   Municipality [grant number 2023J028]; Natural Science Research Program
   of Shaanxi Province (grant number 2020JQ-360); Transportation Science
   and Technology Research Project of Hebei Province [grant number
   JX-202006]; and Fundamental Research Funds for the Central Universities,
   CHD [grant numbers 300102343203 and 300102343205].
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NR 47
TC 0
Z9 0
U1 9
U2 9
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1573-2479
EI 1744-8980
J9 STRUCT INFRASTRUCT E
JI Struct. Infrastruct. Eng.
PD 2025 JAN 30
PY 2025
DI 10.1080/15732479.2025.2460481
EA JAN 2025
PG 18
WC Engineering, Civil; Engineering, Mechanical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA W2T7L
UT WOS:001417170400001
DA 2025-04-22
ER

PT J
AU Hosseini, Y
   Mohammadi, RK
   Yang, TY
AF Hosseini, Yaser
   Mohammadi, Reza Karami
   Yang, Tony Y.
TI A comprehensive approach in post-earthquake blockage prediction of urban
   road network and emergency resilience optimization
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Disaster management; Earthquake; Emergency response; Network recovery;
   Resilience; Road blockage; paths).
ID SEISMIC RESILIENCE; GROUND-MOTION; REPAIR CREW; RISK; MODEL
AB This study presents a probabilistic method for predicting urban road blockages due to the collapse of roadside buildings and develops network restoration planning through resilience optimization. Resilience analysis of a blocked network has faced two challenges: (1) blocked paths opening time estimation; and (2) network timevarying functionality evaluation. Probabilistic models, including earthquake magnitude, fault rupture location, seismic intensity, damage, debris, blockage, and debris evacuation models are utilized to determine the probability distribution of blocked paths opening time considering relevant uncertainties. A generalized network functionality metric is developed to evaluate network performance considering emergency multi-nodes such as medical centers. The optimization algorithm based on Simulated Annealing is extended for network restoration by assuming multi-location for resources pre-positioning. Three restoration scenarios are defined to identify required resources for network recovery with different restoration objectives. The proposed methodology is implemented in Region 2 of the Tehran metropolis. The results demonstrate that scenario (II) gives the highest number of required resources, so it is suitable where adequate resources are available. Scenario (III) predicts the least number of required resources; hence, it is appropriate where sufficient resources are not accessible. Subsequently, scenario (I) is an intermediate approach to determine the required resources with the lowest computational effort.
C1 [Hosseini, Yaser; Mohammadi, Reza Karami] KN Toosi Univ Technol, Dept Civil Engn, Tehran, Iran.
   [Yang, Tony Y.] Univ British Columbia, Dept Civil Engn, Vancouver, BC, Canada.
C3 K. N. Toosi University of Technology; University of British Columbia
RP Mohammadi, RK (corresponding author), KN Toosi Univ Technol, Dept Civil Engn, Tehran, Iran.
EM rkarami@kntu.ac.ir
RI Mohammadi, Reza/I-3421-2019; hoseini, yaser/AAD-8918-2022
OI Karami Mohammadi, Reza/0000-0003-0077-6434
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NR 76
TC 8
Z9 8
U1 17
U2 44
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 APR
PY 2024
VL 244
AR 109887
DI 10.1016/j.ress.2023.109887
EA JAN 2024
PG 27
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA GT1E8
UT WOS:001154823500001
DA 2025-04-22
ER

PT J
AU Abduljabbar, RL
   Liyanage, S
   Dia, H
AF Abduljabbar, Rusul L.
   Liyanage, Sohani
   Dia, Hussein
TI A systematic review of the impacts of the coronavirus crisis on urban
   transport: Key lessons learned and prospects for future cities
SO CITIES
LA English
DT Article
DE COVID-19; Urban transport; Travel behavior; Resilient cities; Public
   transport; Environment
ID PUBLIC TRANSPORT; COVID-19; RISK; WILL
AB The COVID-19 pandemic continues to have a significant impact on the transport sector worldwide. Lockdown and physical distancing requirements continue to be enforced in many cities leading to severe travel restrictions and travel demand reduction to limit the spread of the disease. This article provides bibliometric evidence-based insights into how the pandemic has exposed the vulnerability of established public transport systems and shared mobility solutions. It shows how some transport interventions can accelerate the shift to sustainable urban mobility practices such as micro-mobility and active transport. To accomplish this, the article examines recent studies (244 publications) from the Scopus database using a rigorous systematic literature review approach covering the period from January 2020 to February 2021. Importantly, the mapping of bibliographic coupling and co-citation analysis showed four heterogeneous clusters representing research efforts into "environment", "travel behavior and mode choice", "public transport", and "interventions". Inductive reasoning is used to analyze the disruptions that cities have encountered worldwide, the rapid interventions that were put in place, the aftershocks and the short and long-term impacts. Finally, the paper summarizes the lessons learned and opportunities ahead, and the challenges that must be overcome. The article also outlines pathways to build on the momentum of sustainable practices as part of a holistic approach for enabling resilient transport solutions for the new urban world.
C1 [Abduljabbar, Rusul L.; Liyanage, Sohani; Dia, Hussein] Swinburne Univ Technol, Melbourne, Australia.
C3 Swinburne University of Technology
RP Abduljabbar, RL (corresponding author), Swinburne Univ Technol, Melbourne, Australia.
EM rabduljabbar@swin.edu.au
RI Dia, Hussein/B-1542-2008; Liyanage, Sohani/Q-6258-2019; abduljabbar,
   rusul/AAO-1128-2020
OI Liyanage, Sohani/0000-0002-1875-5300
FU Iraqi Government; Swinburne University of Technology
FX Rusul Abduljabbar and Sohani Liyanage acknowledge their PhD
   scholarships. Rusul acknowledges the financial support provided to her
   by both the Iraqi Government and Swinburne University of Technology.
   Sohani acknowledges the financial support provided to her by Swinburne
   University of Technology.
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NR 175
TC 28
Z9 28
U1 13
U2 51
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD AUG
PY 2022
VL 127
AR 103770
DI 10.1016/j.cities.2022.103770
EA MAY 2022
PG 19
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 1X9IQ
UT WOS:000807762800005
PM 35663145
DA 2025-04-22
ER

PT J
AU Quijano, A
   Hernández, JL
   Nouaille, P
   Virtanen, M
   Sánchez-Sarachu, B
   Pardo-Bosch, F
   Knieilng, J
AF Quijano, Ana
   Hernandez, Jose L.
   Nouaille, Pierre
   Virtanen, Mikko
   Sanchez-Sarachu, Beatriz
   Pardo-Bosch, Francesc
   Knieilng, Joerg
TI Towards Sustainable and Smart Cities: Replicable and KPI-Driven
   Evaluation Framework
SO BUILDINGS
LA English
DT Article
DE sustainable cities; evaluation framework; indicator; smart city; energy
   efficiency; renewable solutions; electromobility
ID PERFORMANCE INDICATORS
AB Sustainability is pivotal in the urban transformation strategy in order to reach more resource-efficient, resilient and smarter cities. The goal of being a sustainable city should drive the decisions for city interventions, and measuring city progress is a key step for this process. There are many initiatives aiming at defining indicators and assessment procedures, but there is no convergence in the definition of terms and application methodologies, making their real implementation complex. Within mySMARTLife project (GA#731297), a KPI-driven evaluation framework has been defined with the aim of covering the multiple pillars of a smart and sustainable city (i.e., environment, energy, mobility, ICT, citizens, economy, governance) in a holistic way. This methodology also defines the concepts and terms to guide urban planners and/or experts at the time of implementing the framework for any specific city. The evaluation framework has been deployed in the cities of Nantes, Hamburg and Helsinki, and some lessons have been learned, such as the necessity of providing a definition of measurement boundary to avoid biased interpretations. Due to a co-creation strategy, the main issues from the cities have been taken into consideration in order to increase the replicability of the results.
C1 [Quijano, Ana; Hernandez, Jose L.] Fdn CARTIF, Parque Tecnol Boecillo 205, Boecillo 47151, Spain.
   [Nouaille, Pierre] CEREMA, Direct Terr Ouest, MAN, Rue Rene Viviani, F-44000 Nantes, France.
   [Virtanen, Mikko] VTT Tech Res Ctr Finland Ltd, POB 1000, Espoo 02044, Finland.
   [Sanchez-Sarachu, Beatriz] TECNALIA, Parque Cient & Tecnol Bizkaia 700, Derio 48160, Spain.
   [Pardo-Bosch, Francesc] Univ Ramon Llull, ESADE, Ctr Publ Governance ESADEgov, Pedralbes 60,62, Barcelona 08034, Spain.
   [Pardo-Bosch, Francesc] Univ Politecn Cataluna, BarcelonaTech, Dept Project & Construct Engn, Jordi Girona 1-3, Barcelona 08034, Spain.
   [Knieilng, Joerg] HafenCity Univ Hamburg, Dept Urban Planning, Henning Voscherau Pl 1, D-20457 Hamburg, Germany.
C3 CEREMA; VTT Technical Research Center Finland; Universitat Ramon Llull;
   Escuela Superior de Administracion y Direccion de Empresas (ESADE);
   Universitat Politecnica de Catalunya
RP Quijano, A; Hernández, JL (corresponding author), Fdn CARTIF, Parque Tecnol Boecillo 205, Boecillo 47151, Spain.; Nouaille, P (corresponding author), CEREMA, Direct Terr Ouest, MAN, Rue Rene Viviani, F-44000 Nantes, France.; Virtanen, M (corresponding author), VTT Tech Res Ctr Finland Ltd, POB 1000, Espoo 02044, Finland.; Sánchez-Sarachu, B (corresponding author), TECNALIA, Parque Cient & Tecnol Bizkaia 700, Derio 48160, Spain.; Pardo-Bosch, F (corresponding author), Univ Ramon Llull, ESADE, Ctr Publ Governance ESADEgov, Pedralbes 60,62, Barcelona 08034, Spain.; Pardo-Bosch, F (corresponding author), Univ Politecn Cataluna, BarcelonaTech, Dept Project & Construct Engn, Jordi Girona 1-3, Barcelona 08034, Spain.; Knieilng, J (corresponding author), HafenCity Univ Hamburg, Dept Urban Planning, Henning Voscherau Pl 1, D-20457 Hamburg, Germany.
EM anaqui@cartif.es; josher@cartif.es; pierre.nouaille@cerema.fr;
   mikko.virtanen@vtt.fi; beatriz.sanchez@tecnalia.com;
   francesc.pardo@upc.edu; joerg.knieling@hcu-hamburg.de
RI Knieling, Jörg/AAM-7877-2020; Hernandez, Jose/AAY-3398-2021; Pardo
   Bosch, Francesc/ABG-7269-2020
OI Quijano, Ana Quijano/0000-0002-0366-7375; Pardo Bosch,
   Francesc/0000-0001-9532-8508; Hernandez, Jose L./0000-0002-7621-2937;
   Knieling, Jorg/0000-0003-1555-5458
FU EC [731297]
FX FundingThe work presented in this paper is the result of the EU-funded
   project mySMARTLife, under the H2020 programme with grant agreement no.
   731297.
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NR 20
TC 24
Z9 24
U1 12
U2 53
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD FEB
PY 2022
VL 12
IS 2
AR 233
DI 10.3390/buildings12020233
PG 12
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA ZQ0ZO
UT WOS:000766842900001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Dell'Isola, M
   Ficco, G
   Lavalle, L
   Moretti, L
   Tofani, A
   Zuena, F
AF Dell'Isola, M.
   Ficco, G.
   Lavalle, L.
   Moretti, L.
   Tofani, A.
   Zuena, F.
TI A resilience assessment simulation tool for distribution gas networks
SO JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING
LA English
DT Article
DE Natural gas; Distribution networks; Fault management; Resilience;
   Failure; Pipeline
ID NATURAL-GAS; FLOW; PERFORMANCE; METERS; RISK
AB Energy networks, especially the ones of natural gas, electric energy and district heating, are crucial infrastructures for the everyday life of our countries and cities. Thus, resilience and security of networks are becoming increasingly critical issues due to: a) the vulnerability of the territories, b) the effects of climate change (e.g. landslides, floods) and/or natural events (e.g. heartquakes) and c) cyber and terrorist attacks. In recent years, more attention has been paid to transmission networks rather than to urban distribution ones, although important consequences in terms of economic and public health damages can arise for urban distribution networks too.
   In this paper, the authors propose a resilience assessment methodology for natural gas distribution networks. The methodology allows simulating fault conditions in the network leading to quality of service issues (e.g. methane dispersion in the atmosphere, prolonged service interruption) and to disservices (e.g. disrupted final users). In such way, it could be possible to define effective operational management strategies to reduce the risk of service disruption and to increase the network resilience evaluating structural network improvement measures. The proposed methodology has been experimented in a case study of a real distribution network and the results show it is possible to avoid or minimize the risk of service.
C1 [Dell'Isola, M.; Ficco, G.; Moretti, L.; Zuena, F.] Univ Cassino & Southern Lazio, Dept Civil & Mech Engn, Via G Marconi 10, I-03043 Cassino, FR, Italy.
   [Lavalle, L.; Tofani, A.] ENEA, Tech Unit Anal & Protect Crit Infrastruct APIC, Via Anguillarese 301, I-00123 Rome, Italy.
C3 University of Cassino; Italian National Agency New Technical Energy &
   Sustainable Economics Development
RP Zuena, F (corresponding author), Univ Cassino & Southern Lazio, Dept Civil & Mech Engn, Via G Marconi 10, I-03043 Cassino, FR, Italy.
EM fabrizio.zuena@unicas.it
RI Tofani, Alberto/AGI-5259-2022
OI FICCO, Giorgio/0000-0003-0119-0013; Dell'Isola,
   Marco/0000-0001-7976-5484; Moretti, Linda/0000-0003-2288-8648
FU European Commission, EU [700581]
FX This work has been developed under the project ATENA, "Advanced tools to
   assess and mitigate the criticalities of ICT components and their
   dependencies over critical infrastructures" (European Commission, EU,
   Grant Agreement 700581 Horizon 2020). The authors wish to thank Eng.
   Alfredo Castaldi of Salerno Energia Distribuzione for the useful
   discussions and for the technical support during the on field case
   study.
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PG 14
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA PB8VW
UT WOS:000596593100004
DA 2025-04-22
ER

PT J
AU Young, JC
AF Young, Jason C.
TI Rural digital geographies and new landscapes of social resilience
SO JOURNAL OF RURAL STUDIES
LA English
DT Article
DE Digital geographies; Rural-urban divides; Rural economies; Indigenous
   studies
ID BROAD-BAND; COMMUNITY RESILIENCE; KNOWLEDGE POLITICS; CLIMATE-CHANGE;
   INUIT; VULNERABILITY; CRITIQUE; NUNAVUT; AGENDA; FUTURE
AB Over the past decade there has been an explosion of social science research on smart cities, with focuses ranging from governance and activism to surveillance and place-based discrimination. As a result theories of digital appropriation, empowerment, and politics overrepresent urban experiences, producing a gap in our understanding of rural digital politics. Not only is rural information and communication technology (ICT) literature sparse, but it is also overly focused on technical issues of digital divides. This restrictive framing of rural ICT use reinforces the normalization of highly technocratic approaches to development in rural areas, thereby reinforcing neoliberal market forces and obscuring the innovative ways in which rural communities are appropriating digital technologies to build alternate social and economic practices. In response to this gap, this paper offers a case study of how the rural, indigenous community of Igloolik, Canada is using digital platforms to shape their resilience.
C1 [Young, Jason C.] Univ Washington, Informat Sch, Technol & Social Change Grp, Seattle, WA 98115 USA.
C3 University of Washington; University of Washington Seattle
RP Young, JC (corresponding author), Univ Washington, Informat Sch, Technol & Social Change Grp, Seattle, WA 98115 USA.
EM youngjc2@uw.edu
RI Young, Jason/JAX-9467-2023
FU NSF [1535142]; Division Of Behavioral and Cognitive Sci; Direct For
   Social, Behav & Economic Scie [1535142] Funding Source: National Science
   Foundation
FX I would like to recognize the people that made this research possible,
   including interview participants Christine Quassa, Isaiah Patterk,
   Abraham Ivalu, Cindy Qamukaq, Sandy Qamukaq, Leonard, Peter, Bruce
   Haulli, Toby Otak, Francis Piugattuk, Elijah Evaluarjuk, Zacharias
   Kunuk, Johnny Airut, Micah Arreak, Justine Paniaq Qamukaq, Eva Qattalik,
   and five confidential participants. I would also like to thank Alexina
   Kublu, Rachel Qitsualik, Mick Mallon, and Sarah Elwood for their support
   and guidance. This project was funded by NSF Award #1535142.
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NR 76
TC 46
Z9 54
U1 28
U2 212
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0743-0167
J9 J RURAL STUD
JI J. Rural Stud.
PD AUG
PY 2019
VL 70
BP 66
EP 74
DI 10.1016/j.jrurstud.2019.07.001
PG 9
WC Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Geography; Public Administration
GA JA9AK
UT WOS:000488142200008
DA 2025-04-22
ER

PT J
AU Hordijk, M
   Sara, LM
   Sutherland, C
AF Hordijk, Michaela
   Miranda Sara, Liliana
   Sutherland, Catherine
TI Resilience, transition or transformation? A comparative analysis of
   changing water governance systems in four southern cities
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE transformation; urban water governance; transition; water governance;
   resilience; social learning
AB Delegating state responsibilities for the management of water resources to regional bodies and the provision of drinking water and sanitation to local governments has led to new configurations in urban water governance. Drawing on case studies from four cities in the global South (Guarulhos, Arequipa, Lima and Durban), this article analyzes recent changes in these configurations, with particular attention to the role and power of the municipality in this process. This paper explores to what extent these new configurations reveal a move towards resilience, transition or even transformation. It concludes that there are clear indications of transition in all cases, and in Guarulhos and Durban even some signs of transformation. Given that transformative changes in the legal and institutional framework, and even in values and attitudes, have not yet affected the existing power structures, the question is to what extent these signs of transformation will reach their full potential.
C1 [Hordijk, Michaela; Miranda Sara, Liliana] Univ Amsterdam, Dept Geog Planning & Int Dev Studies, NL-1012 WX Amsterdam, Netherlands.
   [Miranda Sara, Liliana] Cities Life Forum, Lima, Peru.
C3 University of Amsterdam
RP Hordijk, M (corresponding author), Room 2-25,Plantage Muidergracht 14, NL-1018 TV Amsterdam, Netherlands.
EM m.a.hordijk@uva.nl; lmiranda@ciudad.org.pe; Sutherlandc@ukzn.ac.za
RI Miranda Sara, Liliana Raquel/JXL-2744-2024
OI Miranda Sara, Liliana Raquel/0000-0001-5555-931X
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NR 36
TC 42
Z9 44
U1 0
U2 56
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 2014
VL 26
IS 1
BP 130
EP 146
DI 10.1177/0956247813519044
PG 17
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA AG8FC
UT WOS:000335653200008
OA Bronze
DA 2025-04-22
ER

PT J
AU Grove, K
   Reid, G
   Molinari, S
   Falcon, J
   Mehta-Kroll, A
   El Fakih, ES
   Sepulveda-Reyes, A
   Ortiz, D
AF Grove, Kevin
   Reid, Genevieve
   Molinari, Sarah
   Falcon, Joshua
   Mehta-Kroll, Aarti
   El Fakih, Edurne Sosa
   Sepulveda-Reyes, Alejandra
   Ortiz, David
TI Absurd geographies of resilience and justice
SO CLIMATE AND DEVELOPMENT
LA English
DT Article
DE Resilience; justice; racial capitalism; absurdism; biopolitics
ID URBAN RESILIENCE; CLIMATE JUSTICE; RECOGNITION
AB This paper problematizes how scholars understand the relation between resilience and justice. Critical and applied scholarship tends to dismiss resilience as a neoliberal barrier to justice, or assume it necessarily advances justice outcomes. Instead, drawing on collaborative fieldwork with Miami-based social and climate justice organizers, we explore how resilience is mobilized in contextually-specific struggles against racialized vulnerability and insecurity. Reading across literatures in political geography, cultural geography, and Black geographies, we highlight absurd and inconsistent expressions of resilience in our collaborators' justice advocacy work. A focus on the absurd directs attention to the way diverse practices of resilience emerge from 'spaces out of joint,' where modernity's universalizing promises of betterment run aground against long histories of racial violence that secure White futurity. Our community collaborators ironically mobilize and reject resilience in strategic ways that reflect their struggles to create and defend place against the racialized extraction of value, disinvestment, and displacement. This creates a variegated geography of resilience and justice that is irreducible to predetermined critical or applied analytical frameworks. Instead, we emphasize the need to embrace the absurd destabilization of conventional analytical categories, in order to open space for new problems and responses for collaborative research.
C1 [Grove, Kevin; Reid, Genevieve; Molinari, Sarah; Falcon, Joshua; Mehta-Kroll, Aarti; El Fakih, Edurne Sosa; Sepulveda-Reyes, Alejandra; Ortiz, David] Florida Int Univ, Miami, FL USA.
   [Grove, Kevin] Dept Global & Sociocultural Studies, SIPA 311,11200 SW 8th St, Miami, FL 33199 USA.
C3 State University System of Florida; Florida International University
RP Grove, K (corresponding author), Dept Global & Sociocultural Studies, SIPA 311,11200 SW 8th St, Miami, FL 33199 USA.
EM kgrove@fiu.edu
RI Reid, Genevieve/AAN-8710-2020; Ortiz, David/Y-5669-2019
OI Grove, Kevin/0000-0001-9114-5050; Reid, Genevieve/0000-0001-5847-8662
FU The authors would like to thank Kimberley Thomas, Kevon Rhiney, and two
   anonymous reviewers for helpful comments and feedback. Kevin Grove
   dedicates this article to Smuckers, the best writing buddy an author
   could have.
FX The authors would like to thank Kimberley Thomas, Kevon Rhiney, and two
   anonymous reviewers for helpful comments and feedback. Kevin Grove
   dedicates this article to Smuckers, the best writing buddy an author
   could have.
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NR 76
TC 4
Z9 4
U1 0
U2 3
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1756-5529
EI 1756-5537
J9 CLIM DEV
JI Clim. Dev.
PD OCT 20
PY 2024
VL 16
IS 9
SI SI
BP 739
EP 750
DI 10.1080/17565529.2023.2255566
EA OCT 2023
PG 12
WC Development Studies; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology
GA X5W0X
UT WOS:001090914700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Khavarian-Garmsir, AR
   Sharifi, A
   Abadi, MHH
   Moradi, Z
AF Khavarian-Garmsir, Amir Reza
   Sharifi, Ayyoob
   Abadi, Mohammad Hajian Hossein
   Moradi, Zahra
TI From Garden City to 15-Minute City: A Historical Perspective and
   Critical Assessment
SO LAND
LA English
DT Review
DE 15-minute city; neighborhood planning; garden city; neighborhood unit;
   modernism; post-modern urbanism; new urbanism; eco-urbanism;
   post-pandemic city
ID ECO-CITY; URBAN; TRAVEL; NEIGHBORHOODS; POLICY
AB The 15-minute city concept was introduced as a post-COVID strategy to support more sustainable recovery from the pandemic and develop complete, climate-sensitive, and resilient neighborhoods. This review examines key neighborhood planning movements to identify the origins of the 15-minute city concept. These include the garden city, neighborhood unit plan, modernist urbanism, post-modern urbanism, and eco-urbanism, which have emerged since the late 19th century. The results of the study show that the concept of the 15-minute city has ten basic characteristics: proximity, density, diversity, mixed-use, modularity, adaptability, flexibility, human-scale design, connectivity, and digitalization. The concept has been successful in advancing theoretical debates on sustainable urbanism. However, some criticisms of past planning movements also apply to the 15-minute city. Similar to the neighborhood unit and modernist urbanism, the concept follows a philosophy of physical determinism, setting goals without specifying how or by what means they will be achieved. At this point, one can only speculate about the future of the concept. A more detailed study of the real-world applications of the concept is needed before one can thoroughly discuss its strengths and weaknesses.
C1 [Khavarian-Garmsir, Amir Reza] Univ Isfahan, Fac Geog Sci & Planning, Dept Geog & Urban Planning, Esfahan 8174673441, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Higashihiroshima, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Hiroshima 7398529, Japan.
   [Abadi, Mohammad Hajian Hossein; Moradi, Zahra] Univ Tehran, Fac Geog, Dept Human Geog, Tehran 1417935840, Iran.
C3 University of Isfahan; Hiroshima University; Hiroshima University;
   University of Tehran
RP Khavarian-Garmsir, AR (corresponding author), Univ Isfahan, Fac Geog Sci & Planning, Dept Geog & Urban Planning, Esfahan 8174673441, Iran.; Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, Higashihiroshima, Hiroshima 7398529, Japan.; Sharifi, A (corresponding author), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, Higashihiroshima, Hiroshima 7398529, Japan.
EM a.khavarian@geo.ui.ac.ir; sharifi@hiroshima-u.ac.jp
RI Abadi, Mohammad/AAD-1228-2019; Moradi, Zahra/Q-1239-2019;
   Khavarian-Garmsir, Amir/ABF-2234-2020; Sharifi, Ayyoob/M-7584-2013
OI Moradi, Zahra/0000-0003-3865-5363; Hajian Hossein Abadi,
   Mohammad/0009-0008-3819-8944; Sharifi, Ayyoob/0000-0002-8983-8613;
   Khavarian-Garmsir, Amir Reza/0000-0001-8609-1748
FU JSPS KAKENHI [22K04493]; Toyota Foundation [D21-R-0040]; Grants-in-Aid
   for Scientific Research [22K04493] Funding Source: KAKEN
FX This study was supported by JSPS KAKENHI Grant Number 22K04493 and a
   grant from Toyota Foundation (Grant No. D21-R-0040).
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NR 79
TC 37
Z9 37
U1 46
U2 158
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD FEB
PY 2023
VL 12
IS 2
AR 512
DI 10.3390/land12020512
PG 15
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 9J7OV
UT WOS:000940372200001
OA gold
HC Y
HP N
DA 2025-04-22
ER

PT J
AU McPhearson, T
   Kremer, P
   Hamstead, ZA
AF McPhearson, Timon
   Kremer, Peleg
   Hamstead, Zoe A.
TI Mapping ecosystem services in New York City: Applying a
   social-ecological approach in urban vacant land
SO ECOSYSTEM SERVICES
LA English
DT Article
DE Ecosystem services; Stacking; Social-ecological; Urban; New York City;
   Vacant land
ID SAFE OPERATING SPACE; CARBON STORAGE; CONSERVATION; RESILIENCE;
   VEGETATION; BIODIVERSITY; SYSTEMS; SEQUESTRATION; OPPORTUNITIES;
   BALTIMORE
AB As urbanization expands city planners and policymakers need to consider how ecological resources can be strategically developed and managed sustainably to meet the needs of urban populations. The ecosystem services (ES) approach provides a useful framework for assessing the status quo, setting goals, identifying benchmarks and prioritizing approaches to improving ecological functioning for urban sustainability and resilience. However, new tools are required for comprehensively evaluating urban ES for ecosystem management and to understand how local and regional trends and plans may affect ES provisioning. We develop an ES assessment methodology that can be used to assess multiple ES of urban green space and integrate them with social conditions in urban neighborhoods. Our approach considers social-ecological conditions and their spatial patterns across the urban landscape. Our analysis focuses on vacant land in New York City. Results suggest that a combined social-ecological approach to ES assessment yields new tools for monitoring and stacking ES. We find that clusters of vacant lots in areas with overlapping low ecological value (e.g. low concentration of green space) and high social need for ES (e.g. high population density) are primarily concentrated in three areas of the city - East Harlem, South Bronx and Central Brooklyn. (C) 2013 Elsevier B.V. All rights reserved.
C1 [McPhearson, Timon; Kremer, Peleg] New Sch, Tishman Environm & Design Ctr, New York, NY 10003 USA.
   [Hamstead, Zoe A.] New Sch, Milano Sch Int Affairs Management & Urban Policy, Environm Policy & Sustainabil Management, New York, NY 10011 USA.
C3 The New School; The New School
RP McPhearson, T (corresponding author), New Sch, Tishman Environm & Design Ctr, 79 Fifth Ave 16th Floor, New York, NY 10003 USA.
EM mcphearp@newschool.edu
RI Kremer, Peleg/H-8373-2019; McPhearson, Timon/JOZ-3799-2023
OI McPhearson, Timon/0000-0002-9499-0791; kremer,
   peleg/0000-0001-6844-5557; Hamstead, Zoe/0000-0003-4104-2373
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NR 84
TC 134
Z9 168
U1 9
U2 168
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 2212-0416
J9 ECOSYST SERV
JI Ecosyst. Serv.
PD SEP
PY 2013
VL 5
BP E11
EP E26
DI 10.1016/j.ecoser.2013.06.005
PG 16
WC Ecology; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA V41BD
UT WOS:000209520800003
DA 2025-04-22
ER

PT J
AU Rathnayaka, B
   Robert, D
   Adikariwattage, V
   Siriwardana, C
   Meegahapola, L
   Setunge, S
   Amaratunga, D
AF Rathnayaka, Bawantha
   Robert, Dilan
   Adikariwattage, Varuna
   Siriwardana, Chandana
   Meegahapola, Lasantha
   Setunge, Sujeeva
   Amaratunga, Dilanthi
TI A unified framework for evaluating the resilience of critical
   infrastructure: Delphi survey approach
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Critical infrastructure; Resilience; Capacity; Resilience attributes;
   Resilience assessment; Delphi survey
ID DISASTER RESILIENCE; NATURAL DISASTERS; URBAN RESILIENCE; SYSTEM;
   INDICATORS; SIMULATION; METRICS; TOOLS; RISK
AB This study advocates establishing an indicator system for Critical Infrastructure (CI) resilience assessment to ensure consistency and comparability in future endeavors. Resilience has emerged as a fundamental framework for effectively managing the performance of CIs in response to the challenges posed by disaster events. However, it is evident that a lack of uniformity exists in the choice and standardization of resilience assessment across the identified frameworks. This paper proposes key attributes for facilitating resilience assessment of CIs using an in-depth literature survey for identification and two rounds of Delphi survey in the Sri Lankan context for their verification. The literature survey has analyzed the resilience assessment attributes under four types of capacities: planning (anticipative), absorptive, restorative, and adaptive. Twenty-seven resilience attributes (Planning: 6; Absorptive: 12; Restorative: 6; Adaptive: 3) under different capacities were identified, including sub-indicators for evaluating each resilience attribute. Outcomes of the Delphi survey were analyzed through descriptive statistics. The proposed attributes received high levels of agreement from the experts, indicating their suitability and applicability for assessing the resilience of the CIs. The mean ratings of the attributes varied from 4.0 to 5.0, with the majority exceeding 4.5 out of 5. The evaluation of these attributes will be useful for assessing the resilience capacity of the CIs and thereby to model the overall resilience of the CIs. The results of this study will provide a solid basis for formulating hypotheses in future research aimed at assessing CI resilience.
C1 [Rathnayaka, Bawantha; Robert, Dilan; Setunge, Sujeeva] Royal Melbourne Inst Technol RMIT Univ, Sch Engn, Civil Engn Dept, Melbourne, Vic 3001, Australia.
   [Adikariwattage, Varuna] Univ Moratuwa, Dept Civil Engn, Moratuwa 10400, Sri Lanka.
   [Siriwardana, Chandana] Massey Univ, Sch Built Environm, Auckland 0632, New Zealand.
   [Meegahapola, Lasantha] Royal Melbourne Inst Technol RMIT Univ, Sch Engn, Elect Engn Dept, Melbourne, Vic 3001, Australia.
   [Amaratunga, Dilanthi] Univ Huddersfield, Global Disaster Resilience Ctr, Huddersfield HD1 3DH, England.
C3 Royal Melbourne Institute of Technology (RMIT); University Moratuwa;
   Massey University; Royal Melbourne Institute of Technology (RMIT);
   University of Huddersfield
RP Robert, D (corresponding author), Royal Melbourne Inst Technol RMIT Univ, Sch Engn, Civil Engn Dept, Melbourne, Vic 3001, Australia.
EM s3915574@student.rmit.edu.au; dilan.robert@rmit.edu.au; varunaa@uom.lk;
   C.Siriwardana@massey.ac.nz; lasantha.meegahapola@rmit.edu.au;
   sujeeva.setunge@rmit.edu.au; D.Amaratunga@hud.ac.uk
RI Rathnayaka, Bawantha/IUP-1456-2023; Setunge, Sujeeva/J-8063-2016;
   Siriwardana, Chandana/AAU-5878-2020; Meegahapola, Lasantha/G-4650-2012
OI Rathnayaka, Bawantha/0000-0001-7859-2921; Amaratunga,
   Dilanthi/0000-0002-1682-5301; Setunge, Sujeeva/0000-0001-5958-2189;
   Siriwardana, Chandana/0000-0002-0258-9328; Meegahapola,
   Lasantha/0000-0003-4471-8471; Adikariwattage, Varuna/0000-0002-4781-3530
FU School of Engineering, RMIT University
FX <B>Acknowledgement</B> Authors acknowledge the financial support
   provided by the School of Engineering, RMIT University and Faculty of
   Engineering, University of Moratuwa. Further we wish to acknowledge all
   the respondents who participated in this study and contributed to
   building the knowledge in the research domain.
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NR 135
TC 6
Z9 6
U1 15
U2 32
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 AUG
PY 2024
VL 110
AR 104598
DI 10.1016/j.ijdrr.2024.104598
EA JUN 2024
PG 25
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA XI9Z9
UT WOS:001261186600001
OA hybrid
DA 2025-04-22
ER

PT J
AU Wang, Z
   Hao, Y
AF Wang, Zhen
   Hao, Yu
TI Can smart cities improve energy resilience? Evidence from 229 cities in
   China
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Smart city; Energy resilience; Difference-in-difference model;
   Propensity score matching
ID INDUSTRIAL-STRUCTURE; SYSTEMS; INNOVATION; INTENSITY; FUTURE; TRENDS;
   IMPACT
AB Energy security is a crucial component of national economic stability and growth. Given current technological limitations, improving management strategies is essential for safeguarding energy resources. Digital technologies play a pivotal role in enhancing management efficiency, thus contributing to energy security. As a key element of modernization, smart cities leverage digital solutions to drive urban development and have the potential to catalyze an energy revolution. Nevertheless, the relationship between energy security and smart cities remains underexplored, creating gaps in policy-making and implementation. This study, leveraging the smart city pilot policies enacted in 2012, 2013, and 2015, utilizes a sample of 229 prefecture-level cities covering the period from 2010 to 2020. Employing the Propensity Score Matched Difference-in-Differences (PSM-DID) model, the research assesses smart city policies' impact on energy resilience. The results show that smart city policies significantly enhance energy resilience through three separate pathways: optimizing resource allocation, upgrading industrial structure, and promoting technological progress. Notably, smart city polices have more beneficial effects on the city characterized by low fiscal expenditure, being populous, resource-based, having high human capital, and being located in eastern region. This study aids in the improvement and promotion of smart city policies, thereby enhancing energy resilience and achieving sustainable urban development.
C1 [Hao, Yu] Tarim Univ, Sch Econ & Management, Alar Shehri 843300, Peoples R China.
   [Wang, Zhen; Hao, Yu] Beijing Inst Technol, Sch Econ, 5 Zhongguancun South St, Beijing 100081, Peoples R China.
   [Wang, Zhen] Nankai Univ, Sch Stat & Data Sci, Tianjin 300071, Peoples R China.
   [Hao, Yu] North Univ China, Sch Econ & Management, Taiyuan 030051, Peoples R China.
   [Hao, Yu] Shenzhen MSU BIT Univ, Fac Econ, Shenzhen 518172, Peoples R China.
C3 Tarim University; Beijing Institute of Technology; Nankai University;
   North University of China; Shenzhen MSU-BIT University
RP Hao, Y (corresponding author), Beijing Inst Technol, Sch Econ, 5 Zhongguancun South St, Beijing 100081, Peoples R China.
EM 2120230173@mail.nankai.edu.cn; haoyuking@bit.edu.cn
RI Hao, Yu/ABF-4628-2021
FU National Nat-ural Science Foundation of China [72073010, 72321002];
   Technology Innovation Program of Beijing Institute of Technology
   [2022CX01013, 2023CX13028]
FX The authors acknowledge financial support from the National Nat-ural
   Science Foundation of China (72073010, 72321002) , and the Technology
   Innovation Program of Beijing Institute of Technology (2022CX01013,
   2023CX13028) . The authors are also very grateful to three anonymous
   reviewers and Editor-in-Chief Prof. Dr. Fariborz HAGHIGHAT for their
   insightful comments that helped us sufficiently improve the quality of
   this paper. The usual disclaimer applies.
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TC 1
Z9 1
U1 76
U2 76
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 15
PY 2024
VL 117
AR 105971
DI 10.1016/j.scs.2024.105971
EA NOV 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 N0I4C
UT WOS:001361268000001
DA 2025-04-22
ER

PT J
AU Joshi, N
   Wende, W
AF Joshi, Neelakshi
   Wende, Wolfgang
TI Physically apart but socially connected: Lessons in social resilience
   from community gardening during the COVID-19 pandemic
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Community gardens; COVID-19; Urban; Social resilience
ID GRASS-ROOTS INNOVATIONS; INITIATIVES; PERSPECTIVE; REFUGES; CRISIS
AB Urban green spaces, like community gardens, received increased attention during the COVID-19 pandemic. Drawing from an ethnographic study on participating in community garden activities in Edmonton, Canada and inputs from 194 gardeners and 21 garden coordinators, this paper captures the experiences of creating community during a pandemic. Garden coordinators had to rethink and rework their operating styles in keeping participants physically apart but socially connected. Participants confirmed that garden activities provided respite from the pandemic restrictions. Findings also indicate that some participants missed group activities like work bees and potlucks while others were able to re-create community in digital spaces and in chanced and informal interactions. This study draws from and subsequently contributes to the existing literature on social resilience provided by community gardens during and after a crisis event. It also provides policy recommendations on how the city administration can help facilitate garden activities during times of disruptions.
C1 [Joshi, Neelakshi; Wende, Wolfgang] Leibniz Inst Ecol Urban & Reg Dev, Weberpl 1, D-01217 Dresden, Germany.
   [Wende, Wolfgang] Tech Univ Dresden, Fac Architecture, Zellescher Weg 17, D-01062 Dresden, Germany.
C3 Leibniz Institut fur okologische Raumentwicklung; Technische Universitat
   Dresden
RP Joshi, N (corresponding author), Leibniz Inst Ecol Urban & Reg Dev, Weberpl 1, D-01217 Dresden, Germany.
EM n.joshi@ioer.de; w.wende@ioer.de
OI Wende, Wolfgang/0000-0002-1421-4654; Joshi,
   Neelakshi/0000-0001-8947-1893
FU Leibniz Institute of Ecological Urban and Regional Development, Dresden
FX We thank the Steering Committee of the Strathcona Rail Community Garden,
   Edmonton for allowing us to conduct this research as well as Sustainable
   Food Edmonton for sharing part of the 2020 Gardeners' Survey. The
   research design was approved by the Research Ethics Office, University
   of Alberta, Canada. We acknowledge the financial and in-tellectual
   support provided by the Leibniz Institute of Ecological Urban and
   Regional Development, Dresden for publishing this research.
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NR 58
TC 29
Z9 29
U1 8
U2 57
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 JUL
PY 2022
VL 223
AR 104418
DI 10.1016/j.landurbplan.2022.104418
EA MAR 2022
PG 9
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 2S4TQ
UT WOS:000821786600008
PM 36540856
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Qiu, T
   Chen, XS
   Su, D
AF Qiu, Tong
   Chen, Xiangsheng
   Su, Dong
TI Emergency Restorability of Underground Engineering Environment after
   Disasters by Utilizing Prefabrication and Assembly Technology
SO NATURAL HAZARDS REVIEW
LA English
DT Article
DE Underground engineering environment (UEE); Emergency restorability;
   Prefabricated component; Prefabricated underground structures; Local
   assembly capacity; Adaptive scheme
ID SUBWAY STATION; RESTORATION; RESILIENCE; CONSTRUCTION; MECHANISM; TUNNEL
AB Urban development is promoting aboveground-underground city integration. Underground engineering and surrounding buildings and infrastructure form an underground engineering environment (UEE). In critical disasters, damage to the UEE not only causes chain damage to the surroundings but also aggravates urban resilience. Few studies have focused on UEE resilience and its disaster reduction. This study investigated the emergency restorability of the UEE to fill this research gap. First, we classified the restoration levels based on UEE damage patterns. Second, we performed subregion optimization based on cast-in-situ (CIS) restoration, and technical optimization by utilizing prefabrication and assembly technology (PAT). Third, the CIS/PAT UEE emergency restorability functions were constructed based on these optimizations and the local assembly capacity. Finally, the performance of the CIS/PAT restoration, optimization effect, and local assembly capacity were analyzed using a case study. The results indicated that (1) meticulous subregion optimization significantly reduced environmental work with a 13.5% speed up; (2) technical optimization incorporating PAT had the highest efficiency for improving UEE emergency restorability; (3) PAT restoration enhanced the structural resilience and functional resilience of the UEE by at least 28.34% and 62.27% over CIS restoration, respectively; (4) upper and lower thresholds exist for assembly speed in PAT restoration; (5) there exist three types of assembly capacity in PAT restoration: ring-quantity-sensitive, ring-weight-sensitive, and insensitive; and (6) the adaptive schemes maximized the performance of different local assembly capacities in PAT restoration. The UEE emergency restorability function provides a quantitative assessment tool for the resilience of UEE and a resilience enhancement scheme for disaster reduction.
C1 [Qiu, Tong; Chen, Xiangsheng; Su, Dong] Shenzhen Univ, Coll Civil & Transportat Engn, Shenzhen 518060, Peoples R China.
   [Qiu, Tong; Chen, Xiangsheng; Su, Dong] Shenzhen Key Lab Green, Efficient & Intelligent Construct Underground Metr, Shenzhen 518060, Peoples R China.
   [Qiu, Tong; Chen, Xiangsheng; Su, Dong] Shenzhen Univ, Coll Civil & Transportat Engn, Key Lab Resilient Infrastruct Coastal Cities MOE, Shenzhen 518060, Peoples R China.
C3 Shenzhen University; Shenzhen University
RP Qiu, T (corresponding author), Shenzhen Univ, Coll Civil & Transportat Engn, Shenzhen 518060, Peoples R China.; Qiu, T (corresponding author), Shenzhen Key Lab Green, Efficient & Intelligent Construct Underground Metr, Shenzhen 518060, Peoples R China.; Qiu, T (corresponding author), Shenzhen Univ, Coll Civil & Transportat Engn, Key Lab Resilient Infrastruct Coastal Cities MOE, Shenzhen 518060, Peoples R China.
EM tongqiuszu@qq.com; xschen@szu.edu.cn; sudong@szu.edu.cn
RI Chen, Xiangsheng/GLU-5124-2022; Qiu, Tong/KIB-3242-2024
OI Chen, Xiangsheng/0000-0002-0880-579X; Qiu, Tong/0000-0002-8443-509X
FU National Natural Science Foundation of China (NSFC) [52090084]
FX AcknowledgmentsThis study was supported by the National Natural Science
   Foundation of China (NSFC) (Project No. 52090084).
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PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1527-6988
EI 1527-6996
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PD AUG 1
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IS 3
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DI 10.1061/NHREFO.NHENG-1745
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WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology; Geology; Meteorology &
   Atmospheric Sciences; Water Resources
GA J6YC6
UT WOS:001011046300008
DA 2025-04-22
ER

PT J
AU Wang, W
   He, YF
   Wang, HB
   Chen, HZ
   Xiong, XF
AF Wang, Wei
   He, Yufei
   Wang, Hongbin
   Chen, Hongzhou
   Xiong, Xiaofu
TI Improving interdependent urban power and gas distribution systems
   resilience through optimal scheduling of mobile emergency supply and
   repair resources
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Interdependent power and gas distribution; system; Restoration and
   resilience; Mobile emergency resources; Fuel supply; Repair crews
ID RECONFIGURATION; RESTORATION; EXTREME
AB Urban electric power and natural gas systems, serving as the most critical facilities that provide fundamental support to people's daily life, have been increasingly interdependent in their operation over the past decades. This growing interdependency presents great challenges and demands for enhancing the resilience of the interdependent systems, particularly driven by the recent cold weather events. In this paper, we propose a comprehensive strategy for scheduling various types of emergency resources, including mobile and stationary generators, repair crews, and fuel tankers, with the goal of enhancing the resilience of interdependent power and gas distribution systems in the aftermath of disasters. In particular, the strategy incorporates the routing of mobile resources to orchestrate their dynamic moving behaviors. Fuel supply issue for mobile and stationary distributed generators is also addressed through modeling the fuel exchange processes among generators, fuel tankers, and locations. Furthermore, we present a model of repair process to fully capture the real-world repair activities, allowing varying numbers of repair crews to work in a cooperative way. The proposed strategy is formulated into a tractable mixed-integer second-order cone problem. Finally, case studies are carried out to demonstrate the effectiveness of the strategy in enhancing the resilience of the interdependent power and gas distribution systems.
C1 [Wang, Wei] Southwest Jiaotong Univ, Sch Elect Engn, Chengdu 611756, Peoples R China.
   [Wang, Wei; Wang, Hongbin] State Grid Chongqing Elect Power Co, Elect Power Res Inst, Chongqing 401123, Peoples R China.
   [He, Yufei] State Grid Chongqing Elect Power Co, Shinan Power Supply Branch, Chongqing 400060, Peoples R China.
   [Chen, Hongzhou; Xiong, Xiaofu] Chongqing Univ, State Key Lab Power Transmiss Equipment & Syst Sec, Chongqing 400044, Peoples R China.
C3 Southwest Jiaotong University; State Grid Corporation of China; State
   Grid Corporation of China; Chongqing University
RP He, YF (corresponding author), State Grid Chongqing Elect Power Co, Shinan Power Supply Branch, Chongqing 400060, Peoples R China.
EM heyufei1015@163.com
RI Wang, Wei/GVS-5140-2022
OI Wang, Wei/0000-0003-1669-840X
FU Natural Science Foundation of Chongqing, China [CSTB2022NSCQ-BHX0729]
FX This work was supported by the Natural Science Foundation of Chongqing,
   China. (Grant number CSTB2022NSCQ-BHX0729) .
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NR 52
TC 0
Z9 0
U1 19
U2 29
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 2024
VL 250
AR 110303
DI 10.1016/j.ress.2024.110303
EA JUN 2024
PG 14
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA YE4O5
UT WOS:001266798400001
DA 2025-04-22
ER

PT J
AU Gollagher, P
   Fastenrath, S
AF Gollagher, Peter
   Fastenrath, Sebastian
TI Transformative climate resilience and sport mega-events - The case of
   the Australian Open
SO ENVIRONMENTAL INNOVATION AND SOCIETAL TRANSITIONS
LA English
DT Article
DE Climate resilience; Sustainability transitions; Transformative capacity;
   Place-based transformation; Climate change; Sport mega-events
ID OLYMPIC GAMES; URBAN; SUSTAINABILITY; TRANSITIONS; FRAMEWORK; IMPACTS;
   FIELD; PERSPECTIVE; ADAPTATION; CAPACITY
AB Adapting to extreme weather events and mitigating greenhouse gases have become critical challenges for sport mega-events. It is clear it is increasingly difficult to host large summer and winter sporting events due to weather extremes such as heat waves, storms or droughts. Extreme heat, in particular, makes events - and event management - less predictable and can have a significant impact on the health of athletes, spectators and staff. International organisations such as the United Nations have called for a rethink, and climate action in sport. At the same time, event organisers are beginning to adapt to the new conditions and develop strategies and measures to reduce event-related greenhouse gases. This paper examines whether sport events can act and function as catalysts for sustainability transitions towards a reduced climate impact. Drawing on the literature on mega-events, urban climate resilience and sustainability transitions, this paper introduces the framework of transformative climate resilience to analyse the climate adaptation and mitigation actions of sport mega-events. Using, as an example, the Australian Open - one of the four largest tennis tournaments in the world - valuable insights are provided into the event's different stakeholders, approaches to climate action, and challenges in building transformative climate resilience.
C1 [Gollagher, Peter] AECOM, Sustainabil & Resilience, Fortitude Valley, Qld 4006, Australia.
   [Fastenrath, Sebastian] Univ Vienna, Dept Geog & Reg Res, A-1010 Vienna, Austria.
   [Fastenrath, Sebastian] Univ Melbourne, Melbourne Ctr Cities, Parkville, Vic 3010, Australia.
C3 University of Vienna; University of Melbourne
RP Fastenrath, S (corresponding author), Univ Vienna, Dept Geog & Reg Res, A-1010 Vienna, Austria.
EM sebastian.fastenrath@univie.ac.at
RI Fastenrath, Sebastian/P-1603-2018
OI Fastenrath, Sebastian/0000-0001-5621-8082
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NR 79
TC 7
Z9 7
U1 12
U2 35
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-4224
EI 2210-4232
J9 ENVIRON INNOV SOC TR
JI Environ. Innov. Soc. Trans.
PD SEP
PY 2023
VL 48
AR 100762
DI 10.1016/j.eist.2023.100762
EA AUG 2023
PG 14
WC Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA S1QT1
UT WOS:001068994100001
OA hybrid
DA 2025-04-22
ER

PT J
AU Larimian, T
   Sadeghi, A
   Palaiologou, G
   Schmidt, R 
AF Larimian, Taimaz
   Sadeghi, Arash
   Palaiologou, Garyfalia
   Schmidt, Robert, III
TI Neighbourhood Social Resilience (NSR): Definition, Conceptualisation,
   and Measurement Scale Development
SO SUSTAINABILITY
LA English
DT Article
DE social resilience; neighbourhood scale; social network; adaptive
   capacity; measurement model
ID COMMUNITY RESILIENCE; DISASTER RECOVERY; PLACE; SUSTAINABILITY;
   ADAPTATION; POLITICS; RISK; PARTICIPATION; PERSPECTIVES; ATTACHMENT
AB The literature on social resilience lacks a precise definition of this concept and a clear guideline on how to measure it. Particularly, social resilience at the neighbourhood scale has received remarkably little scholarly attention. This study contributes toward filling these gaps in the literature by developing and empirically testing the neighbourhood social resilience (NSR) model as a robust and reliable measurement instrument that integrates various aspects of this complex concept into one coherent and fine-grained psychometric model. The reliability and validity of the NSR model are empirically tested using questionnaire data collected from 234 respondents in five neighbourhoods of Dunedin city, New Zealand. Furthermore, a more nuanced definition for neighbourhood social resilience is provided. Results indicate that social resilience is a second-order and multidimensional concept incorporating eight dimensions. Each of these dimensions captures a distinct piece in the jigsaw of social resilience; therefore, failure to incorporate all dimensions may provide an incomplete picture of this complex phenomenon. Our research bridges the gap between top-down approach of stakeholders and policymakers and bottom-up perceptions and expectations of residents about social resilience of their urban neighbourhood.
C1 [Larimian, Taimaz; Palaiologou, Garyfalia; Schmidt, Robert, III] Loughborough Univ, Sch Architecture Bldg & Civil Engn, Loughborough LE11 3UE, Leics, England.
   [Sadeghi, Arash] Aston Univ, Aston Business Sch, Dept Econ Finance & Entrepreneurship, Birmingham B4 7ER, W Midlands, England.
C3 Loughborough University; Aston University
RP Larimian, T (corresponding author), Loughborough Univ, Sch Architecture Bldg & Civil Engn, Loughborough LE11 3UE, Leics, England.
EM t.larimian@lboro.ac.uk; a.sadeghi1@aston.ac.uk;
   g.palaiologou@lboro.ac.uk
RI Palaiologou, Garyfalia/H-4894-2017
OI Sadeghi, Arash/0000-0002-5022-0883; Larimian, Taimaz/0000-0001-5346-2303
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NR 102
TC 4
Z9 4
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 AUG
PY 2020
VL 12
IS 16
AR 6363
DI 10.3390/su12166363
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 OC2BR
UT WOS:000578966100001
OA Green Published, Green Accepted, gold
DA 2025-04-22
ER

PT J
AU Lu, PJ
   Sun, YM
   Steffen, N
AF Lu, Peijun
   Sun, Yimin
   Steffen, Nijhuis
TI Scenario-based performance assessment of green-grey-blue infrastructure
   for flood-resilient spatial solution: A case study of Pazhou, Guangzhou,
   greater Bay area
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Flood resilience; Green -grey -blue infrastructure systems; Performance
   assessment; Inundation model; TOPSIS
ID OPTIMIZATION; MITIGATION; REDUCTION; ENTROPY; TOPSIS
AB Flood resilience has aroused significant interest in coastal areas dealing with a growing frequency of severe rainstorms caused by climate change and urbanisation. At the core of flood resilience is the development of a resilient green-grey-blue infrastructure system that can resist, absorb, and recover from floods in a timely manner. Current flood resilience research, however, is limited to evaluating single infrastructure systems, failing to examine the dynamic process or find ideal spatial infrastructure designs for decision-makers. This research proposes a scenario-based assessment framework for integrated green-grey-blue infrastructure systems to improve flood resilience during urban design decision-making. Rainfall-runoff, drainage networks, and river system models are interlinked to provide quantitative simulation evaluations of water quantity and urban impact in various spatial organisations of infrastructure design. A dynamic, multi-criteria decision-making process is used to reveal the importance of five temporal indicators and rank design alternatives. In Guangzhou, China, the efficiency of this architecture is demonstrated on Pazhou Island, a typical river network area. Given the limited water and green space available, the results demonstrate that submerged areas exert a greater influence during peak rainfall, and blue infrastructure storage becomes an essential factor following rainfall. Furthermore, from a spatial perspective, the looped network of green-blue infrastructure enhances flood resilience, and downstream waterway connections and green space-aligned waterways boost the water storage capacity of green-grey-blue infrastructure. This paradigm can improve flood resilience in the Greater Bay Area in the future, especially in response to heavy rainstorms and river floods.
C1 [Lu, Peijun; Sun, Yimin] South China Univ Technol, Sch Architecture, State Key Lab Subtrop Bldg Sci, Guangzhou, Peoples R China.
   [Lu, Peijun; Steffen, Nijhuis] Delft Univ Technol, Fac Architecture & Built Environm, Dept Urbanism, Delft, Netherlands.
C3 South China University of Technology; Delft University of Technology
RP Sun, YM (corresponding author), South China Univ Technol, Sch Architecture, State Key Lab Subtrop Bldg Sci, Guangzhou, Peoples R China.
EM scutlupj@gmail.com; arymsun@scut.edu.cn; s.nijhuis@tudelft.nl
RI lu, peijun/GSD-7799-2022
OI Nijhuis, Steffen/0000-0001-6066-822X; Peijun, Lu/0000-0001-7079-3403
FU National Natural Science Foundation of China [51761135025, 51778233];
   Dutch Research Council [ALWSD 2016.013]; Guangdong Science and
   Technology Department [2020B1010010002]
FX This work was financially supported by the National Natural Science
   Foundation of China (grant numbers: 51761135025, 51778233) , the Dutch
   Research Council (grant number: ALWSD 2016.013) , and Guangdong Science
   and Technology Department (grant numbers: 2020B1010010002) . The authors
   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 62
TC 17
Z9 18
U1 65
U2 221
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 2023
VL 238
AR 104804
DI 10.1016/j.landurbplan.2023.104804
EA JUN 2023
PG 13
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 L3RI6
UT WOS:001022460900001
OA Green Published
DA 2025-04-22
ER

PT J
AU García, I
   Martínez-Román, L
AF Garcia, Ivis
   Martinez-Roman, Leslie
TI Participatory Land Planning, Community Land Trusts, and Managed Retreat:
   Transforming Informality and Building Resilience to Flood Risk in Puerto
   Rico's Caño Martín Peña
SO LAND
LA English
DT Article
DE participatory land planning; community land trusts; managed retreat;
   resilience to flood risk; urban informality; climate adaptation;
   equitable development; land tenure security
ID ADVOCACY
AB El Ca & ntilde;o Mart & iacute;n Pe & ntilde;a (CMP), a cluster of eight historically informal neighborhoods in San Juan, Puerto Rico, faces long-standing challenges of inadequate infrastructure, persistent flooding, and displacement pressures. In response, the G8 collective-a coalition representing these communities-and the Mart & iacute;n Pe & ntilde;a Canal Community Land Trust (CLT) establishment have developed a participatory planning model prioritizing resilience and housing security. This unique and exemplary model of a participatory planning case study, grounded in document analysis and participant observation, explores how the G8 and CLT have driven transformative improvements in CMP, addressing informality, mitigating flood risks, and preventing displacement. Findings highlight how community-driven governance fosters trust and enhances long-term sustainability, offering valuable insights for equitable urban development and spatial justice.
C1 [Garcia, Ivis; Martinez-Roman, Leslie] Texas A&M Univ, Dept Landscape Architecture & Urban Planning, College Stn, TX 77843 USA.
C3 Texas A&M University System; Texas A&M University College Station
RP García, I (corresponding author), Texas A&M Univ, Dept Landscape Architecture & Urban Planning, College Stn, TX 77843 USA.
EM ivis.garcia@tamu.edu; lmartinezroman@tamu.edu
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NR 68
TC 0
Z9 0
U1 1
U2 1
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD FEB 26
PY 2025
VL 14
IS 3
AR 485
DI 10.3390/land14030485
PG 25
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 0PV4G
UT WOS:001453152900001
OA gold
DA 2025-04-22
ER

PT J
AU Liu, ZW
   Chen, JK
AF Liu, Zewei
   Chen, Ji-Kang
TI Socioeconomic Determinants and Health Outcomes of Financial Resilience
   Patterns
SO FAMILY & COMMUNITY HEALTH
LA English
DT Article
DE family practice; financial management; mental health; psychological;
   resilience; socioeconomic disparities in health
ID ASSOCIATION
AB Background and Objectives:Financial resilience describes an actionable financial capability to cope with emergencies and adversities. However, little is known about whether financial resilience patterns impact holistic health outcomes.Methods:This study conducted a 3-step latent profile analysis using an urban community sample (n = 3710) from a nationally representative database in China. A multinomial logistic regression model and multiple linear regression models were estimated to examine the proposed argument guided by social determinants of health and resilience theory.Results:Three latent subgroups were identified to differentiate population heterogeneity with high, moderate, and low financial resilience. Younger generations with lower employment participation, education, income, and assets were significantly less likely to be in moderate and high financial resilience subgroups. After controlling demographics and conventional socioeconomic covariates, financial resilience patterns were significantly negatively associated with mental illness, while positively associated with physical health, subjective happiness, and life satisfaction.Conclusion:Financial resilience could be a strength-based and actionable socioeconomic determinant of health. Research and practical implications are provided for addressing health inequalities. A new target in community health and social welfare is to enhance financial resilience among marginalized populations through family asset-building, financial inclusion policy, financial literacy education, and social capital investment.
C1 [Liu, Zewei; Chen, Ji-Kang] Chinese Univ Hong Kong, Dept Social Work, Shatin, Hong Kong, Peoples R China.
C3 Chinese University of Hong Kong
RP Liu, ZW (corresponding author), Chinese Univ Hong Kong, Dept Social Work, Shatin, Hong Kong, Peoples R China.
EM zwliu@link.cuhk.edu.hk; jkchen@swk.cuhk.edu.hk
RI Liu, Zewei/KYP-7946-2024
OI Liu, Zewei/0000-0001-6916-751X
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NR 39
TC 1
Z9 1
U1 2
U2 2
PU LIPPINCOTT WILLIAMS & WILKINS
PI PHILADELPHIA
PA TWO COMMERCE SQ, 2001 MARKET ST, PHILADELPHIA, PA 19103 USA
SN 0160-6379
EI 1550-5057
J9 FAM COMMUNITY HEALTH
JI Fam. Community Health
PD APR-JUN
PY 2025
VL 48
IS 2
BP 97
EP 107
DI 10.1097/FCH.0000000000000426
PG 11
WC Family Studies; Public, Environmental & Occupational Health
WE Social Science Citation Index (SSCI)
SC Family Studies; Public, Environmental & Occupational Health
GA X2C7J
UT WOS:001423500000007
PM 39774658
DA 2025-04-22
ER

PT J
AU Fomba, M
   Osunde, ZD
   Traore, SS
   Okhimamhe, A
   Kleemann, J
   Fürst, C
AF Fomba, Mohamed
   Osunde, Zinash Delebo
   Traore, Souleymane Sidi
   Okhimamhe, Appollonia
   Kleemann, Janina
   Fuerst, Christine
TI Urban Green Spaces in Bamako and Sikasso, Mali: Land Use Changes and
   Perceptions
SO LAND
LA English
DT Article
DE public space; green area; ecosystems services; land cover; urbanization;
   Africa
ID ENVIRONMENTAL JUSTICE; ECOSYSTEM SERVICES; HEALTH; HEAT; RESIDENTS;
   QUALITY; AREA
AB Increasing land use and land cover change and climate change have considerable impacts on urban green spaces and their ecosystem services. These impacts result in a loss of urban green space and particularly weaken the climate resilience of urban populations. Landsat imagery data from 1990 to 2020 were used to track the spatio-temporal dynamics of urban sprawl and its influence on the loss of urban green space in Bamako and Sikasso in Mali. Furthermore, a survey of local stakeholders was conducted to capture the perceptions of the status of urban green space. The results of the land use/land cover analysis of the cities between 1990 and 2020 showed that most of the vegetation classes, mainly urban green spaces, have been converted into built-up and bare land in both cities during the last 30 years. In Bamako, built-up land has risen from 5421 hectares in 1990 to 13,350 hectares in 2020, and in Sikasso, from 929 hectares in 1990 to 2213 hectares in 2020. Respondents mentioned street trees as the prevalent type of urban green spaces in both cities (20% of the respondents in Bamako and 24% in Sikasso). In addition, the majority of respondents perceived urban green spaces in Sikasso as having a good status and in Bamako as having a good or moderate status. This study recommends improving the number and quality of urban green spaces, which are crucial for the provision of ecosystem services and for the resilience of cities against climate change.
C1 [Fomba, Mohamed; Okhimamhe, Appollonia] Fed Univ Technol, West African Sci Serv Ctr Climate Change & Adapted, Doctoral Res Program Climate Change & Human Habita, Minna PMB 65, Gaga, Niger, Nigeria.
   [Fomba, Mohamed; Kleemann, Janina; Fuerst, Christine] Martin Luther Univ Halle Wittenberg, Inst Geosci & Geog, Dept Sustainable Landscape Dev, Von Seckendorff Pl 4, D-06120 Halle, Germany.
   [Osunde, Zinash Delebo] Fed Univ Technol, Dept Agr & Bioresources Engn, PMB 65, Minna, Niger, Nigeria.
   [Traore, Souleymane Sidi] Univ Social Sci & Management Bamako, Fac Hist & Geog, Dept Geog, BP 2575, Bamako, Mali.
   [Traore, Souleymane Sidi] Inst Rural Econ, Soil Plant & Water Lab, BP 262, Bamako, Mali.
   [Okhimamhe, Appollonia] Fed Univ Technol, Dept Geog, PMB 65, Minna, Niger, Nigeria.
   [Kleemann, Janina; Fuerst, Christine] German Ctr Integrat Biodivers Res iDiv, Puschstr 4, D-04103 Leipzig, Germany.
C3 Martin Luther University Halle Wittenberg
RP Fomba, M (corresponding author), Fed Univ Technol, West African Sci Serv Ctr Climate Change & Adapted, Doctoral Res Program Climate Change & Human Habita, Minna PMB 65, Gaga, Niger, Nigeria.; Fomba, M (corresponding author), Martin Luther Univ Halle Wittenberg, Inst Geosci & Geog, Dept Sustainable Landscape Dev, Von Seckendorff Pl 4, D-06120 Halle, Germany.
EM fonbamohamed@gmail.com; zinash.osunde@futminna.edu.ng;
   sstraore@cerrd.org; aaokhimamhe@futminna.edu.ng
RI Kleemann, Janina/AAN-7171-2020; Fürst, Christine/H-8682-2012
OI TRAORE, Souleymane S./0000-0002-8373-7205; Kleemann,
   Janina/0000-0001-6316-6209; Furst, Christine/0000-0002-2801-0601
FU Federal Ministry of Education and Research (BMBF); WASCAL (West African
   Science Service Centre on Climate Change and Adapted Land Use); Federal
   University of Technology, Minna (Niger-State, Nigeria); Institute for
   Geosciences and Geography, Department of Sustainable Landscape
   Development; Open Access Publication Fund of the Martin Luther
   University Halle-Wittenberg
FX The authors are grateful to Federal Ministry of Education and Research
   (BMBF) and WASCAL (West African Science Service Centre on Climate Change
   and Adapted Land Use) through the CC&HH Doctoral program, Federal
   University of Technology, Minna (Niger-State, Nigeria) for sponsoring
   this study. We acknowledge the technical contributions of the Institute
   for Geosciences and Geography, Department of Sustainable Landscape
   Development, Martin Luther University Halle-Wittenberg Germany and the
   Soil Plant and Water Laboratory, Institute for Rural Economy (IER),
   Bamako, Mali. We also acknowledge the financial support of the Open
   Access Publication Fund of the Martin Luther University
   Halle-Wittenberg. Our thanks go to all the stakeholders who invested
   their time and shared their experiences, and anonymous reviewers for
   their stringent reading and comments of this manuscript.
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NR 83
TC 4
Z9 4
U1 8
U2 24
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 59
DI 10.3390/land13010059
PG 20
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA GF4W3
UT WOS:001151247400001
OA gold
DA 2025-04-22
ER

PT J
AU Francke, M
   Korevaar, M
AF Francke, Marc
   Korevaar, Matthijs
TI Housing markets in a pandemic: Evidence from historical outbreaks
SO JOURNAL OF URBAN ECONOMICS
LA English
DT Article
DE Pandemics; Housing markets; Asset prices; Mortality; Urban shocks
ID LONG-RUN IMPACT; RISK-AVERSION; DECLINE; PLAGUE; SALES; TIME; CITY;
   IMMIGRATION; MORTALITY; EPIDEMIC
AB How do pandemics affect urban housing markets? This paper studies historical outbreaks of the plague in 17th-century Amsterdam and cholera in 19th-century Paris to answer this question. Based on micro-level transaction data, we show outbreaks resulted in large declines in house prices, and smaller declines in rent prices. We find particularly large reductions in house prices during the first six months of an epidemic, and in heavily-affected areas. However, these price shocks were only transitory, and both cities quickly reverted to their initial price paths. Our findings suggest these two cities were very resilient to major shocks originating from epidemics.
C1 [Francke, Marc] Univ Amsterdam, Amsterdam Business Sch, Plantage Muidergracht 12, NL-1018 TV Amsterdam, Netherlands.
   [Francke, Marc] Ortec Finance, Naritaweg 51, NL-1043 BP Amsterdam, Netherlands.
   [Korevaar, Matthijs] Erasmus Univ, Erasmus Sch Econ, Burgemeester Oudlaan 50, NL-3062 PA Amsterdam, Netherlands.
C3 University of Amsterdam; Erasmus University Rotterdam; Erasmus
   University Rotterdam - Excl Erasmus MC
RP Francke, M (corresponding author), Univ Amsterdam, Amsterdam Business Sch, Plantage Muidergracht 12, NL-1018 TV Amsterdam, Netherlands.; Francke, M (corresponding author), Ortec Finance, Naritaweg 51, NL-1043 BP Amsterdam, Netherlands.
EM m.k.francke@uva.nl; korevaar@ese.eur.nl
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   Marc/0000-0002-7239-4868
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NR 70
TC 66
Z9 68
U1 5
U2 57
PU ACADEMIC PRESS INC ELSEVIER SCIENCE
PI SAN DIEGO
PA 525 B ST, STE 1900, SAN DIEGO, CA 92101-4495 USA
SN 0094-1190
EI 1095-9068
J9 J URBAN ECON
JI J. Urban Econ.
PD MAY
PY 2021
VL 123
AR 103333
DI 10.1016/j.jue.2021.103333
EA MAR 2021
PG 12
WC Economics; Urban Studies
WE Social Science Citation Index (SSCI)
SC Business & Economics; Urban Studies
GA SD8IV
UT WOS:000651620000007
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Tidball, K
   Stedman, R
AF Tidball, Keith
   Stedman, Richard
TI Positive dependency and virtuous cycles: From resource dependence to
   resilience in urban social-ecological systems
SO ECOLOGICAL ECONOMICS
LA English
DT Article
DE Positive dependency; Ecological identity; Urban social-ecological system
   resilience; Virtuous cycles; Civic ecology; Resource dependence
ID NATURAL-RESOURCES; FOREST DEPENDENCE; PLACE; LANDSCAPES; TIMBER; SENSE;
   SUSTAINABILITY; CONSTRUCTION; ECONOMICS; ATTITUDE
AB We argue that purely deficit-based perspectives regarding urban social-ecological systems (SES) and the human populations within them represent barriers to these systems' ability to move from undesirable system states into more desirable, sustainable ones. We characterize issues such as individual ecological identity, human exemptionalism, anthropocentrism, and resource dependence. We examine notions found in the resource dependency literature, where we trace the roots of ideas about dependency. We use this literature as a spring board into the possibilities of an antipodal notion of resource dependency potentially applicable in urban contexts, what we call positive dependency. Next we describe two possible sources of positive dependency in urban SES, urgent biophilia and restorative topophilia, followed by a brief discussion applying positive dependence to urban systems challenges and management. We conclude with the importance of recognition of positive dependency as a precursor to the development of a heightened sense of ecological self and sense of ecological place in urban SES, and provide insights and suggestions for further research into civic ecology practices that may enhance positive dependency on and investment in ecological assets that contribute to positive ecological senses of self and place, and the importance of these to achieving sustainable, resilient urban futures. (C) 2012 Elsevier B.V. All rights reserved.
C1 [Tidball, Keith; Stedman, Richard] Cornell Univ, Ithaca, NY 14853 USA.
C3 Cornell University
RP Tidball, K (corresponding author), Cornell Univ, 115A Bruckner Hall, Ithaca, NY 14853 USA.
EM kgtidball@cornell.edu
RI Tidball, Keith/P-7229-2018; Stedman, Richard/ACN-8032-2022
OI Tidball, Keith/0000-0002-9856-8731
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NR 125
TC 71
Z9 78
U1 3
U2 117
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 292
EP 299
DI 10.1016/j.ecolecon.2012.10.004
PG 8
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:000317803500035
DA 2025-04-22
ER

PT J
AU Yang, SJ
   Lu, WX
   Wan, LQ
AF Yang, Shijuan
   Lu, Weixue
   Wan, Liangqi
TI The heterogeneous effect of digital economy on ecological resilience:
   considering the mediating role of technological innovation
SO ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY
LA English
DT Article; Early Access
DE Digital economy; Heterogeneity; Ecological resilience; Bayesian
   non-parametric generalized additive quantile; Technological innovation
ID QUANTILE REGRESSION-ANALYSIS; GENERALIZED ADDITIVE-MODELS; URBAN
   RESILIENCE; IMPACT; TRANSFORMATION; SENSITIVITY; POPULATION; MANAGEMENT;
   INFERENCE; ENERGY
AB Considering the high priority given to the digital economy and ecological resilience, it is crucial to study the heterogeneous impacts of the digital economy on ecological resilience for enhancing environmental protection and environmental policy design. This paper explores the heterogeneous impacts of the digital economy on ecological resilience and the nonlinear relationship between them using Bayesian non-parametric generalized quantile regression based on panel data from 2011 to 2020 for 30 provinces (municipalities and autonomous regions) in China. Moreover, the moderating effect of technological innovation is examined. The findings suggest that the digital economy exerts a notably heterogeneous effect on ecological resilience. Specifically, there is a decreasing and then increasing trend between them. At 0.3, 0.5, and 0.7 quantiles of ecological resilience, the elasticity coefficients of the digital economy follow similar trends, with smaller variations. At the 0.1 quantiles of the ecological resilience, the utility of the digital economy is not significant. At the 0.9 quantiles of the ecological resilience level, the elasticity coefficient has a large fluctuation. Lower and higher digital economy can effectively promote ecological resilience. However, medium digital economy inhibits ecological resilience. Moreover, the digital economy mainly affects ecological resilience through technological innovation. Finally, policy recommendations are given to promote environmental protection and environmental governance.
C1 [Yang, Shijuan] Anhui Univ, Sch Econ, Hefei 230601, Peoples R China.
   [Yang, Shijuan] Anhui Univ, Sch Business, Hefei 230601, Peoples R China.
   [Lu, Weixue] Anhui Agr Univ, Sch Informat & Artificial Intelligence, Hefei 230036, Peoples R China.
   [Wan, Liangqi] Nanjing Univ Finance & Econ, Sch Management Sci & Engn, Nanjing 210023, Peoples R China.
C3 Anhui University; Anhui University; Anhui Agricultural University;
   Nanjing University of Finance & Economics
RP Lu, WX (corresponding author), Anhui Agr Univ, Sch Informat & Artificial Intelligence, Hefei 230036, Peoples R China.
EM yang3025594252@163.com; luwx1989@163.com; Wanliangqi@nufe.edu.cn
RI lu, weixue/GXF-5597-2022; Wan, Liangqi/LRU-4218-2024
FU Humanities and Social Science Fund of Ministry of Education of China
   [23YJC630126]; MOE (Ministry of Education in China) Project of
   Humanities and Social Science [72301002, 71872001, 72272001]; National
   Natural Science Foundation of China [2024AH052426]; Key Projects of
   Humanities and Social Sciences in Universities of Anhui Province; Talent
   Introduction Project of Anhui Agricultural University
FX This research was supported in part by grants from the MOE (Ministry of
   Education in China) Project of Humanities and Social Science (Grant No.
   23YJC630126); National Natural Science Foundation of China (Grant Nos.
   72301002, 71872001, 72272001); Key Projects of Humanities and Social
   Sciences in Universities of Anhui Province (Grant No. 2024AH052426); The
   Talent Introduction Project of Anhui Agricultural University (Grant No.
   rc382305).
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NR 111
TC 0
Z9 0
U1 31
U2 31
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 2025 JAN 5
PY 2025
DI 10.1007/s10668-024-05932-4
EA JAN 2025
PG 27
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA R1Q6F
UT WOS:001389285900001
DA 2025-04-22
ER

PT J
AU Feldmeyer, D
   Nowak, W
   Jamshed, A
   Birkmann, J
AF Feldmeyer, Daniel
   Nowak, Wolfgang
   Jamshed, Ali
   Birkmann, Joern
TI An open resilience index: Crowdsourced indicators empirically developed
   from natural hazard and climatic event data
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Resilience; Natural hazard; Indicator development; Validation; Big data;
   Countries
ID SOCIAL VULNERABILITY; COMPOSITE INDICATORS; COMMUNITY RESILIENCE;
   DISASTER RESILIENCE; BIG DATA; URBAN; MANAGEMENT; FRAMEWORK; EXPOSURE
AB The climate resilience of nations is imperative for a sustainable future. The way that nations respond to climate change needs to adapt from a reactive and backward-focused disaster management approach, to become more proactive and to anticipate what is yet to come. Two key challenges restrict climate resilience. First, the social as-pects are relevant to resilience, yet many such aspects are not adequately reflected by available statistics. Second, validating indicators of climate resilience is demanding in terms of data availability and methodology. To over-come these challenges, we develop an Empirical Evidence Resilience Index (EERI) based on the Emergency Event Data Base (EM-DAT) to measure resilience. However, just the measurement of resilience does not provide the explanation necessary to determine planning strategies. Therefore, to understand resilience better, we also use statistics from OpenStreetMap (OSM) to predict the EERI and deduce explanatory elements. This step is achieved with a random forest method. We call the resulting prediction of resilience (EERI) from OSM data the Open Resilience Index (ORI). The used explanatory elements from OSM not only cover the physical characteris-tics of infrastructures, but also include country-level socio-economic information. The results show the relevance of social cohesion (identity & mobility; religion); human development (leisure & recreation, social fabric); econ-omy (economic status; material supply); sustainable infrastructure (available infrastructure; spatial develop-ment); and nature conservation for resilience. (C) 2021 Elsevier B.V. All rights reserved.
C1 [Feldmeyer, Daniel; Jamshed, Ali; Birkmann, Joern] Univ Stuttgart, Inst Spatial & Reg Planning, Pfaffenwaldring 7, D-70569 Stuttgart, Germany.
   [Nowak, Wolfgang] Univ Stuttgart, Inst Modelling Hydraul & Environm Syst, Pfaffenwaldring 5a, D-70569 Stuttgart, Germany.
C3 University of Stuttgart; University of Stuttgart
RP Feldmeyer, D (corresponding author), Univ Stuttgart, Inst Spatial & Reg Planning, Pfaffenwaldring 7, D-70569 Stuttgart, Germany.
EM daniel.feldmeyer@ireus.uni-stuttgart.de
RI Birkmann, Joern/J-5736-2015; Feldmeyer, Dirk/H-5940-2013; Nowak,
   Wolfgang/C-6487-2011; Jamshed, Ali/AAF-6809-2020
OI Jamshed, Ali/0000-0003-4802-1225
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NR 93
TC 32
Z9 32
U1 8
U2 63
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 20
PY 2021
VL 774
AR 145734
DI 10.1016/j.scitotenv.2021.145734
EA FEB 2021
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA RO6NX
UT WOS:000641161200010
DA 2025-04-22
ER

PT J
AU Lopes, HS
   Vidal, DG
   Cherif, N
   Silva, L
   Remoaldo, PC
AF Lopes, Helder Silva
   Vidal, Diogo Guedes
   Cherif, Nadhima
   Silva, Ligia
   Remoaldo, Paula C.
TI Green infrastructure and its influence on urban heat island, heat risk,
   and air pollution: A case study of Porto (Portugal)
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban heat island; Green infrastructure deprivation; Heat risk index;
   Air pollution; Urban resilience; Environmental justice
ID ECOSYSTEM; HEALTH; CITIES; WATER; TEMPERATURES; MANAGEMENT; FRAMEWORK;
   QUALITY; SPACES; AREAS
AB Green infrastructure plays a fundamental role in mitigating the effects of urban heat island. Vegetation may trap particulates and absorb pollutants like ozone, thus improving air quality. Understanding how green infrastructure reduces urban heat island and air pollution within specific urban zones can provide valuable insights for better urban design, improved environmental quality, and increased resident well-being. This study addresses the impact of green infrastructure deprivation on urban heat island effects, air pollution, and heat-related health risks in Porto, Portugal. The study employs a monitoring network to analyse the spatial distribution of air temperature and humidity throughout the city, although with specific gaps in coverage. With a focus on the role of urban green infrastructure in mitigating air urban heat island effects, this paper uses the data from Porto Digital's monitoring network between 2019 and 2022. Heat risk index assesses vulnerability to heat-related health risks by integrating land surface temperature, land cover, and demographic data through remote sensing. Green infrastructure mapping is conducted to quantify the spatial distribution of vegetation elements in the study area. The data analysis from 2019 to 2022 reveals that urban heat island intensity is more pronounced during the summer and at night. Approximately 32.6% of Porto is in areas with a high heat risk index, indicating increased vulnerability to heat-related health risks. The study finds that limited green infrastructure exacerbates this vulnerability, particularly in socioeconomically disadvantaged areas. Additionally, persistent air pollution hotspots, including elevated levels of ozone and particulate matter, contribute to the intensity of urban heat island. These findings underscore the need for integrating green infrastructure into urban planning to mitigate urban heat island and air pollution, improve urban resilience, and promote environmental justice.
C1 [Lopes, Helder Silva; Silva, Ligia; Remoaldo, Paula C.] Univ Minho, IN2PAST, Landscape Heritage & Terr Lab Lab2PT, ICS,Dept Geog, Guimaraes, Portugal.
   [Lopes, Helder Silva] Univ Barcelona, Dept Geog, IdRA Climatol Grp, FGH, Barcelona, Spain.
   [Lopes, Helder Silva; Vidal, Diogo Guedes] Higher Sch Educ Paula Frassinetti ESEPF, Porto, Portugal.
   [Vidal, Diogo Guedes] Univ Coimbra, Ctr Funct Ecol Sci People & Planet CFE, Dept Life Sci DCV, Associate Lab TERRA, Coimbra, Portugal.
   [Cherif, Nadhima] Higher Agron Inst Chott Meriem, Lab Management & Control Anim & Environm Resources, Sousse, Tunisia.
   [Cherif, Nadhima; Silva, Ligia] Univ Minho, Ctr Terr Environm & Construction CTAC, Sch Engn, Guimaraes, Portugal.
C3 Universidade do Minho; University of Barcelona; Universidade de Coimbra;
   Universidade do Minho
RP Lopes, HS (corresponding author), Univ Minho, IN2PAST, Landscape Heritage & Terr Lab Lab2PT, ICS,Dept Geog, Guimaraes, Portugal.
EM helderlopes@geografia.uminho.pt; diogo.vidal@uc.pt;
   cherif.nadhima2019@gmail.com; lsilva@civil.uminho.pt;
   premoaldo@geografia.uminho.pt
RI Remoaldo, Paula/M-2800-2017; Silva, Ligia/M-8035-2013; Guedes Vidal,
   Diogo/U-1156-2017
OI Silva, Ligia/0000-0002-0199-8664; Guedes Vidal,
   Diogo/0000-0002-2777-2372
FU Multiannual Funding of the Laboratory of Landscapes, Heritage and
   Territory (Lab2PT) by FCT/Q3 MCTES [UIP/04509/2020]
FX This publication was supported by the Multiannual Funding of the
   Laboratory of Landscapes, Heritage and Territory (Lab2PT), Ref.
   UIP/04509/2020, financed by national funds (PIDDAC) through FCT/Q3
   MCTES.
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NR 104
TC 1
Z9 1
U1 34
U2 34
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 124446
DI 10.1016/j.jenvman.2025.124446
EA FEB 2025
PG 17
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA X4X5D
UT WOS:001425397300001
PM 39921953
OA hybrid
DA 2025-04-22
ER

PT J
AU Aboagye, PD
   Sharifi, A
AF Aboagye, Prince Dacosta
   Sharifi, Ayyoob
TI Pathways for future climate action planning in urban Ghana
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Urban climate action planning; Climate resilience; Global south;
   Adaptation and mitigation; Climate change; Urban planning
ID PERSPECTIVES; MILLENNIALS; ADAPTATION; CITIES
AB In the face of rapid urbanization and urban climate vulnerabilities in the Global South, developing effective and suitable climate action plans have become imperative. Recent literature has critically examined climate action planning approaches in the Global South. In Ghana, the existing top-down approach to urban climate action planning is criticized as ineffective, unsustainable, and reactionary, emphasizing the need to continuously explore alternative effective context-based approaches. This study adopts a backcasting and participatory approach to explore prospective pathways for Ghana's urban climate action planning. We contextualize the pathways in two-fold; climate action pathways and social network pathways. The approach identified seven climate actions and distinct networks for collaboration, resource sharing, and knowledge/information flow relevant to Ghana's future urban climate action planning. The actions include three pro-adaptation actions, one pro-mitigation action, and three actions to achieve synergies from simultaneously implementing both adaptation and mitigation. It further reveals that aligning to a particular climate action can be influenced by an individual's age group (or generational cohort) or level of experience in climate planning. Lessons are drawn from the pathways to propose a conceptual framework to guide Ghana's future urban climate action planning. To achieve climate resilience in the cities of Africa and other Global South countries, our study provides evidence of a multistakeholder approach in prioritizing actions and enhancing social networks and interrelationships for climate action planning.
C1 [Aboagye, Prince Dacosta] Hiroshima Univ, Grad Sch Humanities & Social Sci, Urban Environm Sci Lab URBES, Higashihiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
C3 Hiroshima University; Hiroshima University
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.; Sharifi, A (corresponding author), NERPS, 1-5-1 Kagamiyama, Higashi Hiroshima City, Hiroshima 7398529, Japan.
EM d214421@hiroshima-u.ac.jp; sharifi@hiroshima-u.ac.jp
RI Aboagye, Prince Dacosta/IQS-1353-2023; Sharifi, Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613; Aboagye, Prince
   Dacosta/0000-0002-0310-8610
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NR 141
TC 0
Z9 0
U1 7
U2 8
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 103186
DI 10.1016/j.habitatint.2024.103186
EA SEP 2024
PG 22
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 H7M7O
UT WOS:001325252700001
DA 2025-04-22
ER

PT J
AU Pablo, Z
   London, K
AF Pablo, Zelinna
   London, Kerry
TI Sustainability through Resilient Collaborative Housing Networks: A Case
   Study of an Australian Pop-Up Shelter
SO SUSTAINABILITY
LA English
DT Article
DE actor-network theory; adaptive reuse; collaboration; digital
   collaboration; pop-up shelter; resilience
ID ACTOR-NETWORK; INNOVATION
AB The UN Sustainable Development Goal "Sustainable Cities and Communities" foregrounds access to adequate, safe, and affordable housing. However, housing as a sector has faced significant sustainability challenges. Countries such as Australia face unaffordable house prices, bottlenecks in social housing supply, and escalating homelessness. To address these challenges, the sector has turned to traditional government-led interventions meant to influence supply and demand. We argue that alongside these traditional approaches, there is a need for multi-stakeholder collaboration in resilient networks that create novel niche solutions, one being pop-up shelters or dwellings established in vacant structures. This study's main aim is to identify key elements of these resilient, collaborative actor-networks. We mobilise actor-network theory concepts in a qualitative case study involving one of Australia's first pop-up shelters. Findings from semi-structured interviews suggest that resilient networks exhibit distributed leadership, the ability to selectively interrogate entrenched routines, and the ability to mobilise differentiated levels of convergence. Such resilient networks play an important role in the development of environmentally and socially sustainable housing solutions. While often ad hoc, these networks can be made systematic through the selective use of digital technologies which do not compromise the more contingent, adaptive features of networks which are critical to resilience.
C1 [Pablo, Zelinna; London, Kerry] Torrens Univ Australia, Off Res & Innovat, Sydney, NSW 2000, Australia.
C3 Torrens University Australia
RP Pablo, Z (corresponding author), Torrens Univ Australia, Off Res & Innovat, Sydney, NSW 2000, Australia.
EM Zelinna.pablo@torrens.edu.au; Kerry.london@torrens.edu.au
RI London, Kerry/ADJ-5722-2022
OI London, Kerry/0000-0003-4470-1282; Pablo, Zelinna/0000-0003-0640-4834
FU Australian Research Council through the ARC [DP180101178]
FX FundingThis research was funded by the Australian Research Council
   through the ARC Discovery Project DP180101178.
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NR 55
TC 4
Z9 4
U1 4
U2 18
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB
PY 2022
VL 14
IS 3
AR 1271
DI 10.3390/su14031271
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 ZG2QH
UT WOS:000760105000001
OA gold
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 Dissecting ecosystem services distribution and inequality of typical
   cities in China
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Ecosystem services; Emergy; Inequality; Non -monetary accounting; Urban
   agglomeration
ID INCOME INEQUALITY; HOUSEHOLD INCOME; LAND-USE; HEALTH; GREEN;
   MANAGEMENT; PROVISION; FRAMEWORK; POLICIES; EQUITY
AB Conserving and restoring ecosystem services in urban areas is an efficient measure to deal with increasing ecological challenges for cities while enhancing urban ecological resilience. However, rising inequalities threaten to improve critical environmental justice, public health and urban ecological resilience. This study proposed a non-monetary framework for accounting for urban ecosystem services and explored the inequality of ecosystem services using the Gini coefficient. Further, a regression-based decomposition method was used to identify primary socioeconomic factors that contributed to inequality. The results showed that the total ecosystem service in the urban areas presented a trend of first growing rapidly and then fluctuating steadily from 6.78 x 1022 sej in 1985 to 1.14 x 10(23 )sej in 2020 the percentage of existing services in the total ecosystem services was over 50%. The Gini coefficient of 1985 was more extensive than that of other years, which is 0.461. The runoff regulation service and the temperature mitigation service were the primary contributors for the inequality. Meanwhile, such income per capita, nonfarm rate and industrial production provided over 70% contribution rate to the inequality. This study assessed the inequality of urban ecosystem services and analyzed the driving factors, emphasizing the importance of reducing inequality, and providing a specific reference basis and theoretical support for decisionmakers 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 & Ec, Guangzhou 510006, Peoples R China.
   [Chen, Lei] Chinese Acad Sci, Guangzhou Inst Energy Convers, 2 Nengyuan Rd, Guangzhou 510640, 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 & Ec, Guangzhou 510006, Peoples R China.
EM yanpeng.cai@gdut.edu.cn
RI Chen, Xiang/JUF-0248-2023; yong yang, wang/KYQ-1257-2024
OI Wang, Yongyang/0000-0002-8578-5884
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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NR 54
TC 7
Z9 7
U1 14
U2 91
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 AUG 20
PY 2023
VL 415
AR 137800
DI 10.1016/j.jclepro.2023.137800
EA JUN 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 M7CX2
UT WOS:001031768400001
DA 2025-04-22
ER

PT J
AU Ahmed, F
   Khan, MSA
   Warner, J
   Moors, E
   Van Scheltinga, CT
AF Ahmed, Farhana
   Khan, M. Shah Alam
   Warner, Jeroen
   Moors, Eddy
   Van Scheltinga, Catharien Terwisscha
TI Integrated Adaptation Tipping Points (IATPs) for urban flood resilience
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE Adaptation Tipping Point; Dhaka; flood risk management; modelling;
   resilience; social tipping point
ID CLIMATE-CHANGE; SEA-LEVEL; RISK; MANAGEMENT; SYSTEMS
AB This paper applies an Adaptation Tipping Point (ATP) approach for the assessment of vulnerability to flooding in the city of Dhaka, Bangladesh. A series of rigorous modelling exercises for fluvial and pluvial flooding was conducted to identify the critical ATPs of the physical system, under both existing and proposed flood risk management strategies, for different urban and climate change scenarios. But a standalone assessment of the physical system's ATPs is insufficient to gain a complete understanding of flood risks; community resilience also depends on people's adaptability and the acceptance of risks by the community in question. Through participatory public consultations, this study determines the critical ATPs for community risk acceptance. The concept of the "Integrated Adaptation Tipping Point (IATP)", introduced here, combines the accepted level of risk to the community with the ATPs for physical systems. This approach reveals that the assessed vulnerability to flooding increases when social tipping points are considered.
C1 [Ahmed, Farhana] Vrije Univ Amsterdam, Amsterdam, Netherlands.
   [Ahmed, Farhana] CEGIS, Matlab, Bangladesh.
   [Khan, M. Shah Alam] Bangladesh Univ Engn & Technol, Inst Water & Flood Management, Dhaka, Bangladesh.
   [Warner, Jeroen] WUR, Disaster Studies, Social Sci Grp, Wageningen, Netherlands.
   [Moors, Eddy] Vrije Univ Amsterdam, Water & Climate, Amsterdam, Netherlands.
   [Moors, Eddy] IHE Delft Inst Water Educ, Delft, Netherlands.
   [Van Scheltinga, Catharien Terwisscha] WUR, Climate Change & Adapt Land & Water Management, Wageningen, Netherlands.
C3 Vrije Universiteit Amsterdam; Bangladesh University of Engineering &
   Technology (BUET); Wageningen University & Research; Vrije Universiteit
   Amsterdam; IHE Delft Institute for Water Education; Wageningen
   University & Research
RP Moors, E (corresponding author), Vrije Univ Amsterdam, Fac Sci Earth & Climatem, Room E-346,Math & Phys Bldg,Boelelaan 1105, NL-1081 Amsterdam, Netherlands.
EM farhana.ahmd@gmail.com; msalamkhan@iwfm.buet.ac.bd;
   jeroen.warner@wur.nl; e.j.moors@vu.nl; catharien.terwisscha@wur.nl
OI Terwisscha van Scheltinga, Catharien/0000-0002-1590-9941
FU NWO-WOTRO grant [W 01.65.339.00]
FX Funding for this research was provided under NWO-WOTRO grant W
   01.65.339.00 for the integrated programme "Communities and institutions
   for flood resilience: enhancing knowledge and capacity to manage flood
   risk in the Bangladeshi and Dutch Deltas".
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NR 49
TC 19
Z9 21
U1 7
U2 46
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 OCT
PY 2018
VL 30
IS 2
BP 575
EP 596
DI 10.1177/0956247818776510
PG 22
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA GX9WV
UT WOS:000448160300013
OA hybrid
DA 2025-04-22
ER

PT J
AU Beck, D
   Mitkiewicz, J
AF Beck, Donizete
   Mitkiewicz, Juliana
TI A systematic literature review of citizen science in urban studies and
   regional urban planning: policy, practical, and research implications
SO URBAN ECOSYSTEMS
LA English
DT Review
DE Community Scien; Urban governance; Urban resilience; Participatory
   research; Community engagement; Sustainable development
ID SMART CITY; BIODIVERSITY; URBANIZATION; POPULATIONS; INSIGHTS; PROJECTS;
   QUALITY; GARDENS; DESIGN; IMPACT
AB Citizen Science (CS) has been useful in research development and policymaking, where laypeople contribute to collecting and/or analyzing data. With the technological advancement of smart cities and data analysis techniques, CS helps foster efficient/sustainable cities and data-driven decision-making. However, more effort is needed to make CS more accessible for urban scholars and practitioners. Thus, we provided a comprehensive overview of CS in Urban Studies and Regional Urban Planning (USRUP) by revealing the main thematic/method approaches, stakeholder roles, socioeconomic/environmental/policy impacts, limitations, best practices, and cases. Thus, we performed a Systematic Literature Review on CS in USRUP using the PRISMA Guidelines of 94 studies collected from the Web of Science Core Collection, published by 2023. Our key findings underscore the practical uses of diverse methodologies and approaches employed in CS projects, emphasizing their potential to enhance urban research and policymaking. The core socioeconomic impacts of CS projects are fostering community empowerment, engagement, and educational opportunities. The main environmental impacts are enhancing monitoring capabilities, improving ecosystem service assessments, and supporting adaptive management practices. As for urban planning and policies, CS projects can foster data-driven planning, urban sustainability, urban resilience, healthier cities, and social equity. CS challenges include data quality and consistency, the digital divide, and the need for sustained funding. Best practices have included clear communication, standardized protocols, and strong community engagement. Further developments should involve citizens in more analytical roles (rather than merely instrumental ones, like data collection) in CS projects and explore CS in social urbanism for transforming vulnerable communities.
C1 [Beck, Donizete; Mitkiewicz, Juliana] Insper, Ctr Estudos Cidades, Lab Arq Futuro, Sao Paulo, SP, Brazil.
C3 Insper
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EM donizetefb@insper.edu.br
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OI Ferreira Beck, Donizete/0000-0002-0510-5325
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NR 118
TC 1
Z9 1
U1 6
U2 6
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 85
DI 10.1007/s11252-025-01693-8
PG 21
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA X9C5J
UT WOS:001428238000002
DA 2025-04-22
ER

PT J
AU Logan, TM
   Guikema, SD
AF Logan, Tom M.
   Guikema, Seth D.
TI Reframing Resilience: Equitable Access to Essential Services
SO RISK ANALYSIS
LA English
DT Article
DE Climate change; community resilience; natural hazards; social justice;
   spatial planning
ID COMMUNITY RESILIENCE; URBAN RESILIENCE; DISASTER RESILIENCE; PLANNING
   RECOVERY; DEFINITION; FRAMEWORK; SYSTEMS; INFRASTRUCTURE;
   SUSTAINABILITY; ACCESSIBILITY
AB We urgently need to put the concept of resilience into practice if we are to prepare our communities for climate change and exacerbated natural hazards. Yet, despite the extensive discussion surrounding community resilience, operationalizing the concept remains challenging. The dominant approaches for assessing resilience focus on either evaluating community characteristics or infrastructure functionality. While both remain useful, they have several limitations to their ability to provide actionable insight. More importantly, the current conceptualizations do not consider essential services or how access is impaired by hazards. We argue that people need access to services such as food, education, health care, and cultural amenities, in addition to water, power, sanitation, and communications, to get back some semblance of normal life. Providing equitable access to these types of services and quickly restoring that access following a disruption are paramount to community resilience. We propose a new conceptualization of community resilience that is based on access to essential services. This reframing of resilience facilitates a new measure of resilience that is spatially explicit and operational. Using two illustrative examples from the impacts of Hurricanes Florence and Michael, we demonstrate how decisionmakers and planners can use this framework to visualize the effect of a hazard and quantify resilience-enhancing interventions. This "equitable access to essentials" approach to community resilience integrates with spatial planning, and will enable communities not only to "bounce back" from a disruption, but to "bound forward" and improve the resilience and quality of life for all residents.
C1 [Logan, Tom M.] Univ Canterbury, Civil & Nat Resources Engn, Canterbury, New Zealand.
   [Guikema, Seth D.] Univ Michigan, Ind & Operat Engn, Ann Arbor, MI 48109 USA.
C3 University of Canterbury; University of Michigan System; University of
   Michigan
RP Logan, TM (corresponding author), Univ Canterbury, Civil & Nat Resources Engn, Canterbury, New Zealand.
EM tom.logan@canterbury.ac.nz
RI Logan, Tom/J-7609-2019
OI Logan, Thomas/0000-0002-9209-3018
FU Rackham PreDoctoral Fellowship; U.S. National Science Foundation
   [1638197]; One Concern Inc.; Directorate For Engineering [1638197]
   Funding Source: National Science Foundation; Div Of Civil, Mechanical, &
   Manufact Inn [1638197] Funding Source: National Science Foundation
FX TML conducted themajority of this research as a graduate student at the
   University of Michigan with the support of a Rackham PreDoctoral
   Fellowship. We would also like to recognize support from the U.S.
   National Science Foundation (Grant 1638197) and One Concern Inc.
   (through a grant to the University of Michigan). Thank you to S. Meerow,
   T. Williams, T. Swanson, and the anonymous reviewers for their time and
   valuable suggestions when reviewing the article. Additionally, we
   acknowledge the editorial assistance of K Miller. All opinions expressed
   in this article are our own.
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Z9 75
U1 6
U2 73
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 AUG
PY 2020
VL 40
IS 8
BP 1538
EP 1553
DI 10.1111/risa.13492
EA MAY 2020
PG 16
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 NB9XE
UT WOS:000531910700001
PM 32402139
OA Green Published
DA 2025-04-22
ER

PT J
AU Yabe, T
   Bueno, BGB
   Frank, MR
   Pentland, A
   Moro, E
AF Yabe, Takahiro
   Bueno, Bernardo Garcia Bulle
   Frank, Morgan R.
   Pentland, Alex
   Moro, Esteban
TI Behaviour-based dependency networks between places shape urban economic
   resilience
SO NATURE HUMAN BEHAVIOUR
LA English
DT Article
ID MULTIPLE STORE PATRONAGE
AB Disruptions, such as closures of businesses during pandemics, not only affect businesses and amenities directly but also influence how people move, spreading the impact to other businesses and increasing the overall economic shock. However, it is unclear how much businesses depend on each other during disruptions. Leveraging human mobility data and same-day visits in five US cities, we quantify dependencies between points of interest encompassing businesses, stores and amenities. We find that dependency networks computed from human mobility exhibit significantly higher rates of long-distance connections and biases towards specific pairs of point-of-interest categories. We show that using behaviour-based dependency relationships improves the predictability of business resilience during shocks by around 40% compared with distance-based models, and that neglecting behaviour-based dependencies can lead to underestimation of the spatial cascades of disruptions. Our findings underscore the importance of measuring complex relationships in patterns of human mobility to foster urban economic resilience to shocks.
C1 [Yabe, Takahiro; Bueno, Bernardo Garcia Bulle; Pentland, Alex; Moro, Esteban] MIT, Inst Data Syst & Soc, Cambridge, MA 02139 USA.
   [Yabe, Takahiro] NYU, Ctr Urban Sci & Progress Cusp, Tandon Sch Engn, Brooklyn, NY 10012 USA.
   [Yabe, Takahiro] NYU, Tandon Sch Engn, Dept Technol Management & Innovat, Brooklyn, NY 11201 USA.
   [Frank, Morgan R.] Univ Pittsburgh, Dept Informat & Networked Syst, Pittsburgh, PA USA.
   [Frank, Morgan R.] Stanford Univ, Inst Human Ctr AI, Digital Econ Lab, Stanford, CA USA.
   [Frank, Morgan R.; Pentland, Alex; Moro, Esteban] MIT, Media Lab, Cambridge, MA 02139 USA.
   [Moro, Esteban] Northeastern Univ, Dept Phys, Network Sci Inst, Boston, MA 02115 USA.
C3 Massachusetts Institute of Technology (MIT); New York University; New
   York University Tandon School of Engineering; New York University; New
   York University Tandon School of Engineering; Pennsylvania Commonwealth
   System of Higher Education (PCSHE); University of Pittsburgh; Stanford
   University; Massachusetts Institute of Technology (MIT); Northeastern
   University
RP Yabe, T; Moro, E (corresponding author), MIT, Inst Data Syst & Soc, Cambridge, MA 02139 USA.; Yabe, T (corresponding author), NYU, Ctr Urban Sci & Progress Cusp, Tandon Sch Engn, Brooklyn, NY 10012 USA.; Yabe, T (corresponding author), NYU, Tandon Sch Engn, Dept Technol Management & Innovat, Brooklyn, NY 11201 USA.; Moro, E (corresponding author), MIT, Media Lab, Cambridge, MA 02139 USA.; Moro, E (corresponding author), Northeastern Univ, Dept Phys, Network Sci Inst, Boston, MA 02115 USA.
EM takahiroyabe@nyu.edu; esteban.moroegido@gmail.com
OI /0000-0001-9487-9359; MORO, ESTEBAN/0000-0003-2894-1024; Yabe,
   Takahiro/0000-0001-8967-1967; Pentland, Alex/0000-0002-8053-9983
FU National Science Foundation [2425021, 2420945]; Ministerio de Ciencia e
   Innovacion/Agencia Espanola de Investigacion (MCIN/AEI)
   [PID2019-106811GB-C32];  [2218748]
FX We thank Spectus, who kindly provided us with the mobility data set for
   this research through their Data for Good programme. T.Y. acknowledges
   support by the National Science Foundation under grant number 2425021.
   E.M. acknowledges support by Ministerio de Ciencia e Innovacion/Agencia
   Espanola de Investigacion (MCIN/AEI/10.13039/501100011033) through grant
   PID2019-106811GB-C32 and the National Science Foundation under grants
   2218748 and 2420945. The funders had no role in study design, data
   collection and analysis, decision to publish or preparation of the
   manuscript.
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Z9 1
U1 26
U2 26
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2397-3374
J9 NAT HUM BEHAV
JI Nat. Hum. Behav.
PD MAR
PY 2025
VL 9
IS 3
DI 10.1038/s41562-024-02072-7
EA DEC 2024
PG 14
WC Psychology, Biological; Multidisciplinary Sciences; Neurosciences;
   Psychology, Experimental
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Psychology; Science & Technology - Other Topics; Neurosciences &
   Neurology
GA 0OC0E
UT WOS:001381897800001
PM 39715878
OA hybrid
DA 2025-04-22
ER

PT J
AU Amin, A
AF Amin, Ash
TI Surviving the turbulent future
SO ENVIRONMENT AND PLANNING D-SOCIETY & SPACE
LA English
DT Article
DE resilience; risk; cities; catastrophism; welfarism
AB In neoliberal societies, the future is increasingly being cast as unpredictable and dangerous, reason to fashion new ways of managing hazard and risk. In the process, a culture based on providing comprehensive risk avoidance and protection from an authorised centre is being displaced by one in which the authorities, experts, and publics are expected to work in concert to do the best they can to resist adversity. Two emerging keywords are preparedness and resilience, intended to strengthen the human capacity to anticipate, resist, and recover from adversity. Building on an earlier critique of the neoliberal calculus of risk mitigation, this paper turns to the machinery of urban maintenance and to the trysts of embedded welfare democracy to propose a counterposition. In recognising the entanglements between humans and nonhumans in the management of urban unpredictability and emergency, and also the settlements of social contract between state and citizen in social democracies such as Sweden, the paper both redefines and displaces ideas of risk management through human resilience.
C1 Univ Cambridge, Dept Geog, Cambridge CB2 3EN, England.
C3 University of Cambridge
RP Amin, A (corresponding author), Univ Cambridge, Dept Geog, Downing Pl, Cambridge CB2 3EN, England.
EM aha2g@cam.ac.uk
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PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
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EI 1472-3433
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BP 140
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PG 17
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA 111GF
UT WOS:000316509100008
DA 2025-04-22
ER

PT J
AU Wirastri, MV
   Morrison, N
   Paine, G
AF Wirastri, Maria Vika
   Morrison, Nicky
   Paine, Greg
TI The connection between slums and COVID-19 cases in Jakarta, Indonesia: A
   case study of Kapuk Urban Village
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Slums; COVID-19; Community resilience; Urban acupuncture; Indonesia;
   Jakarta
AB COVID-19 has spread world-wide, and with multiple health, social, and economic ramifications. These present a formidable challenge for those belonging to vulnerable communities, such as those living in slums. There is now a growing literature urging attention to this challenge. However, few studies have examined the actual lived realities within these areas using direct, observational research, notwithstanding commentary elsewhere that such close attention is necessary to ensure effective action. This study took this approach in relation to a particular case-study, Kapuk Urban Village, in Jakarta, Indonesia. Drawing on an existing schema involving three spatial scales of slum areas (environs, settlement, and object), the research confirms how different built and socio-economic features can exacerbate vulnerability, and COVID-19 transmission. We also add to the body of knowledge by contributing a dimension of 'ground-level' research engagement. We conclude by discussing related ideas around ensuring community resilience and effective policy implementation, and recommend an "urban acupuncture" approach to encourage government regulations and actions better tailored to such communities.
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   [Morrison, Nicky] Locked Bag 1797, Penrith, NSW 2751, Australia.
C3 Western Sydney University
RP Morrison, N (corresponding author), Locked Bag 1797, Penrith, NSW 2751, Australia.
EM mariavika97@gmail.com; Nicky.Morrison@westernsydney.edu.au;
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NR 83
TC 6
Z9 6
U1 4
U2 21
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 2023
VL 134
AR 102765
DI 10.1016/j.habitatint.2023.102765
EA MAR 2023
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 D0QL3
UT WOS:000965857700001
PM 36883042
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Greenhalgh, P
   King, H
AF Greenhalgh, Paul
   King, Helen
TI Developing an Indicator of Property Market Resilience-Investigating the
   Potential of GIS to Analyse Business Occupier Displacement and Property
   Market Filtering: A Case Study of Tyne and Wear
SO URBAN STUDIES
LA English
DT Article
AB The research investigates the potential of a geographical information system to analyse the recorded displacement of office and industrial occupiers in Tyne and Wear, England. The paper demonstrates that a GIS provides an effective tool with which to illustrate, analyse and model occupier displacement and market filtering. The research goes on to develop and test an indicator with which to identify urban areas that may be most vulnerable to property occupier displacement. The correlation of rateable value and VAT registration datasets, with the origin of occupiers of new office and industrial developments and the location of vacant chain-end property, was tested. The strongest correlation is with new VAT registrations within a three-year period. A property market resilience indicator is developed, with which to classify urban areas in terms of their resilience or vulnerability to business occupier displacement generated by commercial property development.
C1 [Greenhalgh, Paul; King, Helen] Northumbria Univ, Sch Built & Nat Environm, Newcastle Upon Tyne NE1 8ST, Tyne & Wear, England.
C3 Northumbria University
RP Greenhalgh, P (corresponding author), Northumbria Univ, Sch Built & Nat Environm, Ellison Bldg,Ellison Pl, Newcastle Upon Tyne NE1 8ST, Tyne & Wear, England.
EM paul.greenhalgh@northumbria.ac.uk; helen.m.king@northumbria.ac.uk
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OI Greenhalgh, Paul/0000-0002-6705-9950
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NR 36
TC 6
Z9 9
U1 0
U2 26
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 2013
VL 50
IS 2
BP 372
EP 390
DI 10.1177/0042098012453860
PG 19
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA 064FS
UT WOS:000313058600009
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Copeland, S
   Comes, T
   Bach, S
   Nagenborg, M
   Schulte, Y
   Doorn, N
AF Copeland, Samantha
   Comes, Tina
   Bach, Sylvia
   Nagenborg, Michael
   Schulte, Yannic
   Doorn, Neelke
TI Measuring social resilience: Trade-offs, challenges and opportunities
   for indicator models in transforming societies
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Social resilience; Indicators; Normativity; Transformation; Adaptation;
   Decision-making
ID COMMUNITY RESILIENCE; URBAN RESILIENCE; FRAMEWORK; DISASTERS; RECOVERY;
   HAZARDS
AB More than any other facet of resilience, social resilience raises the inherent tension within the concept between identity or persistence, and transformation. Is a community the people who make it up, or the geography or physical infrastructure they share? What about the resilience of communities that transform, as a result of a sudden disaster or over time? In this paper, we explore the impact of this tension on how social resilience indicators can be developed and used. Beginning with a close look at the ways in which our concepts of resilience and our use of indicators interact, several points are raised. First, that how we identify a community and frame its resilience conveys particular conceptualisations of resilience, which in turn have normative implications for the communities themselves. In part, this is because of the difficulty in capturing important adaptations and transformative actions within and by those communities. Further, measuring and comparing the resilience of communities, and aspects of quantification that go along with selecting, aggregating and comparing indicator values, ensure that the decisions made about how indicators ought to be used carry normative weight. Through this exploration, we identify several normative implications of choices in indicator design and application. We conclude with recommendations for moving forward with greater transparency and responsibility toward those communities whose social resilience we hope to measure in order to improve.
C1 [Copeland, Samantha; Comes, Tina; Doorn, Neelke] Delft Univ Technol, Fac Technol Policy & Management, Jaffalaan 5, NL-2628 BX Delft, Netherlands.
   [Bach, Sylvia; Schulte, Yannic] Univ Wuppertal, Inst Publ Safety & Emergency Management, Gaussstr 20, D-42119 Wuppertal, Germany.
   [Nagenborg, Michael] Univ Twente, Dept Philosophy, Postbus 217, NL-7500 AE Enschede, Netherlands.
C3 Delft University of Technology; University of Wuppertal
RP Copeland, S (corresponding author), Delft Univ Technol, Fac Technol Policy & Management, Jaffalaan 5, NL-2628 BX Delft, Netherlands.
EM s.m.copeland@tudelft.nl; T.Comes@tudelft.nl; sbach@uni-wuppertal.de;
   m.h.nagenborg@utwente.nl; yschulte@uni-wuppertal.de; N.Doorn@tudelft.nl
RI Comes, Tina/AAM-2361-2020; Comes, Tina/G-2076-2016
OI Bach, Sylvia/0009-0000-8673-5929; Comes, Tina/0000-0002-8721-8314;
   Copeland, Samantha/0000-0002-6946-7165; Schulte,
   Yannic/0000-0002-5577-5618; Nagenborg, Michael/0000-0001-8271-5883
FU European Union [700621]; German Science Foundation ("INCA") [DFG-FI
   2139/3-1]
FX The research presented in this paper was partially funded by the
   European Union (H2020 project "SmartResilience", grant agreement No.
   700621) and the German Science Foundation ("INCA", DFG-FI 2139/3-1).
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NR 94
TC 46
Z9 53
U1 8
U2 51
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 2020
VL 51
AR 101799
DI 10.1016/j.ijdrr.2020.101799
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 PG4MU
UT WOS:000599711800011
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Deng, GQ
   Si, JB
   Zhao, XJ
   Han, Q
   Chen, H
AF Deng, Guoqu
   Si, Jianbin
   Zhao, Xiaojing
   Han, Qian
   Chen, Hu
TI Evaluation of Community Disaster Resilience (CDR): Taking Luoyang
   Community as an Example
SO MATHEMATICAL PROBLEMS IN ENGINEERING
LA English
DT Article
ID NATURAL HAZARDS; FRAMEWORK; SELECTION; TOPSIS; MODEL; AREA
AB The evaluation of community disaster resilience is of great practical importance for building low-risk, sustainable, and disaster-resistant cities. With 12 communities in Luoyang as the objects, this paper adopts entropy weight TOPSIS and obstacle diagnosis to study the community disaster resilience of Luoyang from seven dimensions, such as demographic characteristics, economic development, and infrastructure. The results of the study are as follows: (1) the community disaster resilience of Luoyang (0.48) is at a medium level. Community capital is the main influencing factor of community disaster resilience. Government governance, community capacity, and community intelligence are the components that need attention in the construction of Luoyang's community disaster resilience. (2) The community disaster resilience of Luoyang presents a decreasing trend from rural to urban areas. Moreover, communities with high disaster resilience are less than communities with low disaster resilience. (3) The obstacle to community disaster resilience of Luoyang focuses on population, economic development, and infrastructure. In addition, community trust, community dependence, popularization and intellectualization of disaster prevention information, and disaster information sharing also significantly restrict the construction of Luoyang community disaster resilience. (4) According to the results of sensitivity analysis, the entropy weight TOPSIS evaluation results are less sensitive. Moreover, changing the weight value, weight method, and evaluation method will not lead to major changes in the rankings.
C1 [Deng, Guoqu; Si, Jianbin; Zhao, Xiaojing; Han, Qian; Chen, Hu] Henan Univ Sci & Technol, Management Sch, Luoyang 471023, Peoples R China.
C3 Henan University of Science & Technology
RP Deng, GQ (corresponding author), Henan Univ Sci & Technol, Management Sch, Luoyang 471023, Peoples R China.
EM dengguoqu@haust.edu.cn; 190319190574@stu.haust.edu.cn;
   zhaoxj198603@163.com; hanqian0705@163.com; 200320190877@stu.haust.edu.cn
OI CHEN, Hu/0000-0002-7799-4328
FU National Social Science Fund of China [15AGL013]; China Earthquake
   Administration's major policy theory and practice problem research topic
   [CEAZY2019JZ09]; Henan Provincial Social Science Planning Project
   [2019BJJ030]; Henan Higher Education Philosophical Social Science Basic
   Research Major Project [2021JCZD04]; Research on the Construction of
   Disaster Prevention and Mitigation Support System in Large and Medium
   Cities in Henan Province [222400410001]
FX AcknowledgmentsThis research was funded by National Social Science Fund
   of China, grant no. 15AGL013; China Earthquake Administration's major
   policy theory and practice problem research topic, grant no.
   CEAZY2019JZ09; Henan Provincial Social Science Planning Project, grant
   no. 2019BJJ030; Henan Higher Education Philosophical Social Science
   Basic Research Major Project, grant no. 2021JCZD04; and Research on the
   Construction of Disaster Prevention and Mitigation Support System in
   Large and Medium Cities in Henan Province, grant no. 222400410001.
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NR 100
TC 8
Z9 8
U1 13
U2 134
PU HINDAWI LTD
PI LONDON
PA ADAM HOUSE, 3RD FLR, 1 FITZROY SQ, LONDON, W1T 5HF, ENGLAND
SN 1024-123X
EI 1563-5147
J9 MATH PROBL ENG
JI Math. Probl. Eng.
PD OCT 13
PY 2022
VL 2022
AR 5177379
DI 10.1155/2022/5177379
PG 21
WC Engineering, Multidisciplinary; Mathematics, Interdisciplinary
   Applications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Mathematics
GA 5U3DD
UT WOS:000876431000010
OA gold
DA 2025-04-22
ER

PT J
AU Sheergojri, IA
   Rashid, I
   Aneaus, S
   Rashid, I
   Qureshi, AA
   Rehman, IU
AF Sheergojri, Ishfaq Ahmad
   Rashid, Irfan
   Aneaus, Shiekh
   Rashid, Irfan
   Qureshi, Aijaz Ahmad
   Rehman, Ishfaq ul
TI Enhancing the social-ecological resilience of an urban lake for
   sustainable management
SO ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY
LA English
DT Article
DE Social-ecological resilience; Adaptive management; Dal Lake; Kashmir
   Himalaya
ID DAL LAKE; KASHMIR HIMALAYA; REGIME SHIFTS; SRINAGAR CITY; STAKEHOLDER;
   DIVERSITY; ENVIRONS; CLIMATE; INDIA; WATER
AB Lake ecosystems are complex social-ecological systems facing ecological, economic, and social challenges influenced by natural and social factors. The Dal Lake is an urban lake in the Kashmir Himalaya that serves as a prime example of such a complex system, highlighting the intricate connections between the socio-economic activities and the natural environment. Using a case study of the Dal Lake, this study employs remote sensing tools, ecological and socio-economic data, along with stakeholder perceptions, to evaluate the driving forces, pressures, and potential strategies for enhancing the lake's social-ecological resilience. The study highlights the significant challenges faced by the Dal Lake social-ecological system in its ecological, economic, social, and cultural domains, rendering it vulnerable to current and future disruptions. Population expansion, rapid urbanization, pollution, agriculture expansion, invasive species, settlements, and inadequate management have disrupted the ecological integrity and the socio-economic dynamics of the lake. To enhance social-ecological resilience, adaptive management of the lake ecosystem is recommended as a crucial tool for sustainable management. The multidisciplinary approach employed in this study provides an integrated understanding of the state, challenges, and opportunities for developing social-ecological resilience in the Dal Lake, enabling informed decision-making for its future restoration and sustainable management.
C1 [Sheergojri, Ishfaq Ahmad; Rashid, Irfan; Rehman, Ishfaq ul] Univ Kashmir, Dept Bot, Srinagar 190006, Jammu & Kashmir, India.
   [Qureshi, Aijaz Ahmad] Islamic Univ Sci & Technol, Mantaqi Ctr Sci & Soc, Univ Ave, Awantipora 192122, Jammu & Kashmir, India.
   [Aneaus, Shiekh; Rashid, Irfan] Univ Kashmir, Dept Geoinformat, Srinagar, India.
C3 University of Kashmir; University of Kashmir
RP Rashid, I (corresponding author), Univ Kashmir, Dept Bot, Srinagar 190006, Jammu & Kashmir, India.
EM ishfaqa898@gmail.com; irfanrashid@uok.edu.in; sheikh.aneaus19@gmail.com;
   irfangis@gmail.com; draijazphd@gmail.com; ishfaqbotany56@gmail.com
RI Rashid, Irfan/T-3685-2019; Qureshi, Aijaz/ABU-9461-2022; Rashid,
   Irfan/HJH-9395-2023; Rashid, Irfan/B-6621-2012; Rashid,
   Irfan/T-9544-2017
OI Rashid, Irfan/0000-0002-9304-228X
FU We express our sincere gratitude to the editor of EDS and the anonymous
   reviewers for their valuable comments and suggestions on the earlier
   draft of this manuscript, which significantly improved the quality of
   our research. Additionally, we would like to; Council of Scientific and
   Industrial Research (CSIR), India
FX We express our sincere gratitude to the editor of EDS and the anonymous
   reviewers for their valuable comments and suggestions on the earlier
   draft of this manuscript, which significantly improved the quality of
   our research. Additionally, we would like to acknowledge the
   contributions of Seema Purushothaman, Soubadra Devy, Ankila Hiremath,
   and Vishwesha Guttal in the drafting of this research article. We would
   also like to acknowledge the financial support received from the Council
   of Scientific and Industrial Research (CSIR), India, in favor of the
   first author. Our heartfelt thanks go to all the interviewees in the
   study area for their time and willingness to participate in the study,
   without which this research would not have been possible.
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NR 87
TC 5
Z9 5
U1 21
U2 46
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 MAR
PY 2025
VL 27
IS 3
BP 8085
EP 8110
DI 10.1007/s10668-023-04125-9
EA NOV 2023
PG 26
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA Z5P3T
UT WOS:001101418800002
DA 2025-04-22
ER

PT J
AU Olivier, DW
AF Olivier, David W.
TI Urban agriculture promotes sustainable livelihoods in Cape Town
SO DEVELOPMENT SOUTHERN AFRICA
LA English
DT Article
DE Urban agriculture; sustainable livelihoods; resilience; NGOs; Cape Town
ID FOOD; SECURITY; FLATS
AB Urban agriculture has long been endorsed as a means to promote food security and economic wellbeing in African cities. However, the South African context presents mixed results. In order to establish the contributions of urban agriculture to sustainable livelihoods, the sustainable livelihoods framework is applied to a case study on cultivators from Cape Town's Cape Flats. This study contributes to the empirical literature on urban agriculture by providing a deeper understanding of the benefits cultivators themselves attribute to urban agriculture. The key finding is that cultivators use urban agriculture in highly complex ways to build sustainable livelihoods. NGOs are central to this process. Distrust, crime and a lack of resources are, however, limiting factors. The paper concludes with policy recommendations to support pro-poor urban agriculture in African urban centres.
C1 [Olivier, David W.] GCSRI, Dev Southern Africa, Private Bag 3, ZA-2050 Johannesburg, South Africa.
RP Olivier, DW (corresponding author), GCSRI, Dev Southern Africa, Private Bag 3, ZA-2050 Johannesburg, South Africa.
EM david.olivier2@wits.ac.za
OI Olivier, David/0000-0002-6037-9150
FU National Research Foundation [78647]
FX This work is based upon research supported by the National Research
   Foundation [grant number 78647]. Any opinion, findings and conclusions
   or recommendations expressed in this material are those of the author(s)
   and therefore the NRF do not accept any liability in regard thereto.
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NR 47
TC 24
Z9 27
U1 2
U2 52
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0376-835X
EI 1470-3637
J9 DEV SO AFR
JI Dev. South. Afr.
PD JAN 2
PY 2019
VL 36
IS 1
BP 17
EP 32
DI 10.1080/0376835X.2018.1456907
PG 16
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA HC1WY
UT WOS:000451595200002
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 The impact of urban form on physical change: A quantitative and
   diachronic analysis of urban form evolution in Midtown Manhattan
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article; Early Access
DE Morphology; urban form; physical change; urban morphometrics; diachronic
   analysis
ID RESILIENCE
AB The importance of urban form as a key factor affecting future development and transformation patterns is well-recognised in urban morphology. However, despite the need for a diachronic approach to rigorously understand the form-change relationship, studies utilising longitudinal datasets remain scarce, and only a small fraction employs quantitative methodologies and morphometric approaches. This paper aims to quantitatively examine how the character of urban form elements and their spatial arrangements influence patterns of physical change, and to assess the performance of geometric and configurational urban form measures of plots, buildings, and streets in explaining physical change patterns over time. We hypothesise that configurational measures, being more sensitive to the relations between urban form elements, can better explain physical changes compared to conventional geometric measures predominantly adopted thus far. To test this hypothesis, we present a diachronic and quantitative methodology to measure urban form conditions and the patterns of physical change in Midtown Manhattan through four time frames (1890, 1920, 1956, and 2021), using a longitudinal geospatial database generated from historical cartographic resources and recent digital datasets. The association between urban form and physical change is demonstrated through statistical analysis. The findings prove that while the prevailing hypotheses emphasising the effect of geometric measures, such as size and shape, are often off the mark, configurational and access-based measures of plots and streets can accurately describe the dynamic relationships between form and change. The character of urban form patterns and structures measured by configurational variables is more reliable than the individual and geometric quality of urban form elements in explaining the dynamics of physical change and persistence. Our empirical findings add to the rapidly expanding fields of urban morphometrics and provide data-informed insights to improve the resilience and adaptive capacity of urban spaces.
C1 [Tumturk, Onur] Univ Melbourne, Urban Design, Melbourne, Australia.
   [Karakiewicz, Justyna] Univ Melbourne, Architecture & Urban Design, Melbourne, Australia.
   [de Haan, Fjalar J.] Univ Melbourne, Sch Comp & Informat Syst, Melbourne, Australia.
   [de Haan, Fjalar J.] Univ Melbourne, Melbourne Ctr Data Sci, Melbourne, Australia.
C3 University of Melbourne; University of Melbourne; 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
RI Tumturk, Onur/MCI-7287-2025
OI Tumturk, Onur/0000-0003-1202-3675
FU University of Melbourne's Doctoral Research Scholarship
FX The authors disclosed receipt of the following financial support for the
   research, authorship, and/or publication of this article: The research
   presented in this paper was conducted at the University of Melbourne,
   Faculty of Architecture, Building and Planning and funded by the
   University of Melbourne's Doctoral Research Scholarship (Melbourne
   Research Scholarship) from July 2019 to May 2023
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NR 60
TC 1
Z9 1
U1 14
U2 24
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 2024 AUG 30
PY 2024
DI 10.1177/23998083241272096
EA AUG 2024
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 E4A4N
UT WOS:001302444200001
OA hybrid
DA 2025-04-22
ER

PT J
AU Alawi, M
   Chu, DZ
   Hammad, S
AF Alawi, Mohsen
   Chu, Dongzhu
   Hammad, Seba
TI Resilience of Public Open Spaces to Earthquakes: A Case Study of
   Chongqing, China
SO SUSTAINABILITY
LA English
DT Article
DE disaster; earthquake; planning; preparedness; public open space;
   resilience; response
ID TEMPORARY SHELTER AREAS; EMERGENCY SHELTER; URBAN MORPHOLOGY;
   DECISION-MAKING; GIS; SUITABILITY; DISASTERS; CITIES; CAPACITY; SYSTEMS
AB Public open spaces (POSs) can be crucial during earthquakes, serving as essential places for recovery and mitigation. However, the ability of POSs to respond to earthquakes varies based on their degree of resilience. Resilience plays a significant role in ensuring effective responsiveness to earthquakes in POSs, in addition to enhancing their daily use in normal times. By exploring and examining the earthquake resilience criteria that can be incorporated into the planning and design of POSs, this study aims to determine and enhance the ability of POSs to provide an effective response during earthquakes. Four main criteria consisting of twelve sub-criteria of earthquake resilience are investigated. The resilience criteria are applied and compared in 169 POSs in three different areas in Chongqing municipality in China. A geographic information system (GIS) is used to study the earthquake-resilience criteria of the POSs. The analytic hierarchy process (AHP) is used to weight the resilience criteria. Weighted overlay analysis (OWA) is used to determine the degrees of earthquake resilience of POSs. The results show the different potentials for earthquake resilience in POSs according to the area characteristics and POS type. The results also show that the current resilience degree of POSs is insufficient to respond effectively to earthquakes, especially severe ones. This study provides a valuable source for enhancing cities' resilience against earthquake disasters.
C1 [Alawi, Mohsen; Chu, Dongzhu; Hammad, Seba] Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400044, Peoples R China.
   [Chu, Dongzhu] Chongqing Architectural Design Inst Co Ltd, Chongqing 400044, Peoples R China.
C3 Chongqing University
RP Alawi, M (corresponding author), Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400044, Peoples R China.
EM dr.mohsen.alawi@gmail.com
RI ALAWI, MOHSEN/ACT-5689-2022
OI Alawi, Mohsen/0000-0002-2601-2224
FU National Natural Science Foundation of China [52078070]
FX This research was funded by National Natural Science Foundation of
   China, grant number 52078070.
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NR 89
TC 8
Z9 10
U1 10
U2 42
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 1092
DI 10.3390/su15021092
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 7Z7AD
UT WOS:000915706900001
OA gold
DA 2025-04-22
ER

PT J
AU Andrés-Doménech, I
   Montanari, A
   Marco, JB
AF Andres-Domenech, I.
   Montanari, A.
   Marco, J. B.
TI Efficiency of Storm Detention Tanks for Urban Drainage Systems under
   Climate Variability
SO JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT
LA English
DT Article
DE Climate change; Combined sewers; Simulation models; Stochastic models;
   Storage tanks
ID GENERALIZED PARETO DISTRIBUTION; RECTANGULAR PULSES MODEL;
   PARAMETER-ESTIMATION; IDENTIFICATION; ADAPTATION; ENTROPY
AB Climate change effects on combined sewer systems efficiency is a great matter of concern. In fact, changes in rainfall regime could significantly affect combined sewer overflows (CSOs) into receiving water bodies. Given that CSOs are a significant source of pollution, a better understanding and modeling of climate change effects on urban drainage systems is a compelling requirement to support design of adaptation strategies. This paper aims at studying the resilience of storm water detention tanks efficiency with respect to changes in rainfall forcing. In detail, an analytical probabilistic model is proposed to assess overflow reduction efficiency and volumetric efficiency of detention tanks depending on behaviors of climate and urban catchment. Sensitivity of tank efficiencies is evaluated under assigned changes in rainfall forcing. Results show that resilience of storm tanks benefits from filtering of climate change effects operated by the urban catchment. DOI:10.1061/(ASCE)WR.1943-5452.0000144. (C) 2012 American Society of Civil Engineers.
C1 [Andres-Domenech, I.; Marco, J. B.] Univ Politecn Valencia, Inst Ingn Agua & Medio Ambiente, Valencia 46022, Spain.
   [Montanari, A.] Univ Bologna, Fac Ingn, I-40136 Bologna, Italy.
C3 Universitat Politecnica de Valencia; University of Bologna
RP Andrés-Doménech, I (corresponding author), Univ Politecn Valencia, Inst Ingn Agua & Medio Ambiente, Camino Vera S-N, Valencia 46022, Spain.
EM igando@hma.upv.es; alberto.montanari@unibo.it; jbmarco@hma.upv.es
RI Andres-Domenech, Ignacio/I-8760-2012; Montanari, Alberto/B-5427-2009
OI Andres-Domenech, Ignacio/0000-0003-4237-4863; Montanari,
   Alberto/0000-0001-7428-0410
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NR 43
TC 36
Z9 40
U1 1
U2 54
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-FEB
PY 2012
VL 138
IS 1
BP 36
EP 46
DI 10.1061/(ASCE)WR.1943-5452.0000144
PG 11
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA 894QJ
UT WOS:000300441400005
DA 2025-04-22
ER

PT J
AU Gunderson, L
AF Gunderson, Lance
TI Ecological and Human Community Resilience in Response to Natural
   Disasters
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE ecological resilience; surprises; urban recovery
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   HURRICANE-KATRINA; BIODIVERSITY; MANAGEMENT; ECOSYSTEMS; DIVERSITY;
   SYSTEMS; PRODUCTIVITY
AB Ecological resilience, adaptive cycles, and panarchy are all concepts that have been developed to explain abrupt and often surprising changes in complex socio-ecological systems that are prone to disturbances. These types of changes involve qualitative and quantitative alterations in systems' structures and processes. This paper uses the concepts of ecological resilience, adaptive cycles, and panarchies to compare ecological and human community systems. At least five important findings emerge from this comparison. 1) Both systems demonstrate the multiple meanings of resilience-both in terms of recovery time from disturbances and the capacity to absorb them. 2) Both systems recognize the role of diversity in contributing to resilience. 3) The comparison highlights the role of different forms of capital and 4) the importance of cross-scale interactions. 5) The comparison reveals the need for experimentation and learning to build adaptive capacities. All of these ideas have broad implications for attempting to manage complex systems with human and ecological components in the face of recurring natural disasters.
C1 Emory Univ, Dept Environm Studies, Atlanta, GA 30322 USA.
C3 Emory University
RP Gunderson, L (corresponding author), Emory Univ, Dept Environm Studies, Atlanta, GA 30322 USA.
FU Community and Regional Resilience Initiative (CARRI), Oak Ridge National
   Laboratory, Oak Ridge TN
FX Some of this work was done under a grant from the Community and Regional
   Resilience Initiative (CARRI), Oak Ridge National Laboratory, Oak Ridge
   TN. This is the CARRI Research Report 5.
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NR 79
TC 156
Z9 203
U1 11
U2 137
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 2010
VL 15
IS 2
AR 18
PG 11
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 625BL
UT WOS:000279866400019
DA 2025-04-22
ER

PT J
AU Rodina, L
AF Rodina, Lucy
TI Defining "water resilience": Debates, concepts, approaches, and gaps
SO WILEY INTERDISCIPLINARY REVIEWS-WATER
LA English
DT Review
DE systematic scoping review; water governance; water resilience; water
   resource management; water systems
ID CLIMATE-CHANGE; URBAN RESILIENCE; RESOURCE SYSTEM; GLOBAL CHANGE;
   GOVERNANCE; ANTHROPOCENE; VULNERABILITY; PRINCIPLES; MANAGEMENT; SCIENCE
AB Resilience is increasingly applied the context of water systems, and water governance more broadly, in response to climate change impacts, hydrologic variability and uncertainty associated with various dimensions of global environmental change. However, the meanings, applications and implications of resilience as it relates to water governance are still poorly understood. Drawing on a systematic scoping review of the peer-reviewed academic literature, this paper addresses the questions: how is resilience framed in relation to water systems and water governance, how are diverse resilience framings (re)shaping ideas and trends in water management, and what are the associated implications? The analysis found that the resilience-informed water governance literature remains fragmented and predominantly centered on conventional approaches and framings of water planning, with a predominant focus on engineering resilience in water supply infrastructure. A recently emerging engagement with resilience in the water governance literature, however, draws on more diverse framings and theories and calls for a shift towards more integrative and ecologically-centered thinking in water governance. Despite this, significant empirical and conceptual gaps remain, particularly around the integration of the various subsectors of water governance and, more importantly, around the institutional and governance dimensions of building water resilience. This article is categorized under: Engineering Water > Planning Water Human Water > Water Governance
C1 [Rodina, Lucy] Univ British Columbia, Inst Resources Environm & Sustainabil, Vancouver, BC, Canada.
C3 University of British Columbia
RP Rodina, L (corresponding author), Univ British Columbia, Inst Resources Environm & Sustainabil, Vancouver, BC, Canada.
EM l.rodina@alumni.ubc.ca
OI Rodina, Lucy/0000-0001-5470-9005
FU University of British Columbia; Social Science and Humanities Research
   Council of Canada
FX University of British Columbia; Social Science and Humanities Research
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PU WILEY
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VL 6
IS 2
AR e1334
DI 10.1002/wat2.1334
PG 18
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA HL7UV
UT WOS:000458947400009
DA 2025-04-22
ER

PT J
AU Rodina, L
   Baker, LA
   Galvin, M
   Goldin, J
   Harris, LM
   Manungufala, T
   Musemwa, M
   Sutherland, C
   Ziervogel, G
AF Rodina, Lucy
   Baker, Lawrence A.
   Galvin, Mary
   Goldin, Jaqueline
   Harris, Leila M.
   Manungufala, Thomani
   Musemwa, Muchaparara
   Sutherland, Catherine
   Ziervogel, Gina
TI Water, equity and resilience in Southern Africa: future directions for
   research and practice
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Review
ID GLOBAL ENVIRONMENTAL-CHANGE; SUSTAINABLE DEVELOPMENT; URBAN RESILIENCE;
   CLIMATE-CHANGE; GOVERNANCE; ADAPTATION; COMPLEXITY; MANAGEMENT;
   POLITICS; POLICY
AB Drawing from the proceedings of an expert workshop with academics, researchers, government and NGO participants working in diverse countries in southern Africa and beyond, this paper reviews the discourse on resilience, both conceptually and in practice. We highlight opportunities to develop and apply a more situated, equity-sensitive and context-relevant understanding of resilience, particularly in the water sector. To pursue more just and resilient water futures in highly unequal and water stressed regions, we propose that researchers and practitioners (1) place greater emphasis on the transformative potential of resilience, (2) broaden the social dimensions of resilience to account more fully for intangible and other social factors, (3) engage critically with the decision-making processes and practices of building resilience, (4) contribute to the development of indicators and guidelines for building just and resilient water futures, (5) strengthen the role of situated knowledges, (6) critically engage with scale and boundaries in complex adaptive systems, and (7) strengthen the policy-science-civil society interface.
C1 [Rodina, Lucy; Harris, Leila M.] Univ British Columbia, Inst Resources Environm & Sustainabil, 2202 Main Mall, Vancouver, BC V6T 1Z4, Canada.
   [Baker, Lawrence A.] Univ Minnesota, Dept Bioprod & Biosyst Engn, Minneapolis, MN 55455 USA.
   [Galvin, Mary] Univ Johannesburg, Anthropol & Dev Studies, Johannesburg, South Africa.
   [Goldin, Jaqueline] Univ Western Cape, Extraordinary Associate Anthropol & Water Sci, Ctr UNESCO Chair Groundwater, Fac Nat Sci, Cape Town, South Africa.
   [Manungufala, Thomani] Portfolio Comm Water & Sanitat, Parliament Republ South Africa, Res Unit, ZA-8000 Cape Town, South Africa.
   [Musemwa, Muchaparara] Univ Witwatersrand, Hist, ZA-2050 Johannesburg, South Africa.
   [Sutherland, Catherine] Univ KwaZulu Natal, Sch Built Environm & Dev Studies, ZA-4041 Durban, South Africa.
   [Ziervogel, Gina] Univ Cape Town, Dept Environm & Geog Sci, ZA-7700 Cape Town, South Africa.
   [Ziervogel, Gina] Univ Cape Town, African Climate & Dev Initiat, ZA-7700 Cape Town, South Africa.
   [Harris, Leila M.] Stellenbosch Inst Adv Studies, ZA-7600 Stellenbosch, South Africa.
   [Harris, Leila M.] Univ British Columbia, Inst Gender Race Sexual & Social Justice, 1873 East Mall, Vancouver, BC V6T 1Z1, Canada.
C3 University of British Columbia; University of Minnesota System;
   University of Minnesota Twin Cities; University of Johannesburg;
   University of the Western Cape; University of Witwatersrand; University
   of Kwazulu Natal; University of Cape Town; University of Cape Town;
   University of British Columbia
RP Rodina, L (corresponding author), Univ British Columbia, Inst Resources Environm & Sustainabil, 2202 Main Mall, Vancouver, BC V6T 1Z4, Canada.
EM l.rodina@alumni.ubc.ca
RI Manungufala, Thomani/JXY-4613-2024; Musemwa, Muchaparara/ABI-7084-2020;
   Ziervogel, Gina/AAG-2945-2019; Harris, Leila/C-7156-2013
OI Rodina, Lucy/0000-0001-5470-9005; Ziervogel, Gina/0000-0003-4219-6809;
   Harris, Leila/0000-0002-1700-1902; Musemwa,
   Muchaparara/0000-0002-9715-4457
FU Peter Wall Institute for Advanced Studies (UBC); Stellenbosch Institute
   for Advanced Study; Social Sciences and Humanities Research Council of
   Canada [22R73504]; Hampton Fund (UBC); South Africa Water Research
   Commission; NEPAD Water Centers for Excellence; University of the
   Western Cape; Programme on Water Governance (UBC)
FX This paper is the product of many minds, and especially those who
   participated in the International WaTERS Workshop (see full participant
   list at www.waterequity.pwias.ubc.ca). We would like to acknowledge our
   workshop funders:Peter Wall Institute for Advanced Studies (UBC), the
   Stellenbosch Institute for Advanced Study, the Social Sciences and
   Humanities Research Council of Canada (Grant #22R73504), the Hampton
   Fund (UBC), the South Africa Water Research Commission, the NEPAD Water
   Centers for Excellence, the University of the Western Cape, and the
   Programme on Water Governance (UBC) for their contribution to workshop
   organization and implementation. We would also like to acknowledge
   Everisto Mapedza and Willem De Clercq for their insightful comments on
   the draft.
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NR 69
TC 22
Z9 23
U1 1
U2 32
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 JUN
PY 2017
VL 26-27
BP 143
EP 151
DI 10.1016/j.cosust.2017.09.001
PN 2
PG 9
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 FP1QX
UT WOS:000417390100021
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Gaisie, E
   Adu-Gyamfi, A
   Owusu-Ansah, JK
AF Gaisie, Eric
   Adu-Gyamfi, Albert
   Owusu-Ansah, Justice Kufour
TI Gender and household resilience to flooding in informal settlements in
   Accra, Ghana
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article
DE disaster resilience; gender; informal settlements; flooding; Accra
ID CLIMATE-CHANGE; DISASTER RISK; URBAN-POOR; VULNERABILITY; COMMUNITIES;
   IMPACTS; KUMASI; INFRASTRUCTURE; PERSPECTIVES; GEOGRAPHIES
AB A growing body of literature indicates that the impacts of natural disasters and resilience vary among individuals and groups, with gender becoming a critical defining factor. However, the influences of gender on resilience at the household level remain largely unexplored. Using data gathered from households in informal settlements in Accra, Ghana, this paper examines the varying effects of flooding on male and female-headed households, gendered differences in resilience, as well as factors influencing these gendered differences. The research revealed that female-headed households had reduced capacities to prepare, cope and recover from the impacts of flooding due to their expected gender roles, relatively larger family sizes, care responsibilities, lower levels of employment, and limited access to resources. These findings show that gender sensitivity to recovery and resilience are key to disaster planning and management programmes, and so the driving forces should be considered in policymaking.
C1 [Gaisie, Eric] Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Vic, Australia.
   [Adu-Gyamfi, Albert; Owusu-Ansah, Justice Kufour] Kwame Nkrumah Univ Sci & Technol, Coll Arts & Built Environm, Dept Planning, Kumasi, Ghana.
C3 University of Melbourne; Kwame Nkrumah University Science & Technology
RP Gaisie, E (corresponding author), Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Vic, Australia.
EM eric.gaisie@unimelb.edu.au
RI Gaisie, Eric/AAV-9152-2020; OWUSU-ANSAH, JUSTICE/AAN-7220-2021
OI OWUSU-ANSAH, JUSTICE KUFOUR/0000-0002-8903-042X; Gaisie,
   Eric/0000-0002-0816-4048
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NR 90
TC 10
Z9 10
U1 2
U2 19
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 JUL 3
PY 2022
VL 65
IS 8
BP 1390
EP 1413
DI 10.1080/09640568.2021.1930522
EA MAY 2021
PG 24
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA 0U4CC
UT WOS:000662801100001
DA 2025-04-22
ER

PT J
AU García, JH
   Garmestani, AS
   Karunanithi, AT
AF Garcia, Jorge H.
   Garmestani, Ahjond S.
   Karunanithi, Arunprakash T.
TI Threshold transitions in a regional urban system
SO JOURNAL OF ECONOMIC BEHAVIOR & ORGANIZATION
LA English
DT Article
DE Urban systems; Complex systems; City size distributions; Resilience
ID CITY SIZE DISTRIBUTIONS; ECONOMIC-GEOGRAPHY; DISCONTINUITIES; LANDSCAPE;
   EMERGENCE; GROWTH
AB In this paper we analyze the evolution of city size distributions over time in a regional urban system. This urban complex system is in constant flux with changing groups and city migration across existing and newly created groups. Using group formation as an emergent property, transition probabilities across the different groups were calculated. While short-term transition appears chaotic in the intermediate and lower rank groups, long-term transition across all rank groups reveals striking system structure over time. Published by Elsevier B.V.
C1 [Garmestani, Ahjond S.] US EPA, Off Res & Dev, Natl Risk Management Res Lab, Cincinnati, OH 45268 USA.
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C3 United States Environmental Protection Agency; Pontificia Universidad
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RP Garmestani, AS (corresponding author), US EPA, Off Res & Dev, Natl Risk Management Res Lab, 26W Martin Luther King Dr, Cincinnati, OH 45268 USA.
EM jgarcia-1@javeriana.edu.co; garmestani.ahjond@epa.gov;
   arunprakash.karunanithi@ucdenver.edu
RI Garmestani, Ahjond/AAJ-3695-2020
OI Garmestani, Ahjond/0000-0001-5678-7293
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NR 38
TC 11
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PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 0167-2681
J9 J ECON BEHAV ORGAN
JI J. Econ. Behav. Organ.
PD APR
PY 2011
VL 78
IS 1-2
BP 152
EP 159
DI 10.1016/j.jebo.2010.12.015
PG 8
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA 761SE
UT WOS:000290420200013
DA 2025-04-22
ER

PT J
AU Kim, Y
   Newman, G
   Berke, P
   Lee, JKY
   Malecha, M
   Yu, SY
AF Kim, Youjung
   Newman, Galen
   Berke, Philip
   Lee, Jaekyung
   Malecha, Matthew
   Yu, Siyu
TI How Plans Prepare for Future Uncertainty: Integrating Land Change
   Modeling and the Plan Integration for Resilience Scorecard™
SO JOURNAL OF PLANNING EDUCATION AND RESEARCH
LA English
DT Article; Early Access
DE scenario planning; land change modeling; flood vulnerability; policy
   interactions
ID CLIMATE-CHANGE ADAPTATION; NETWORKS; SYSTEM; RISK
AB This study integrates Land Change Modeling with the Plan Integration for Resilience Scorecard (TM) methodology to assess coastal communities' preparedness for uncertain future urban growth and flood hazards. Findings indicate that, under static climate conditions, the network of plans in Tampa is well prepared across all urban growth scenarios, but less so in the face of a changing climate. Specifically, scenario outputs that consider climate change suggest the need for more resilient growth to reduce flood vulnerability compared with the current land use plan. Notably, some existing policies are likely to lead to counterproductive outcomes in a future with more extensive flooding.
C1 [Kim, Youjung] Univ S Florida, Tampa, FL USA.
   [Newman, Galen; Malecha, Matthew; Yu, Siyu] Texas A&M Univ, College Stn, TX USA.
   [Berke, Philip] Univ North Carolina Chapel Hill, Chapel Hill, NC USA.
   [Lee, Jaekyung] Hongik Univ, Seoul, South Korea.
C3 State University System of Florida; University of South Florida; Texas
   A&M University System; Texas A&M University College Station; University
   of North Carolina School of Medicine; University of North Carolina;
   University of North Carolina Chapel Hill; Hongik University
RP Kim, Y (corresponding author), Univ S Florida, Sch Publ Affairs, 4202 E Fowler Ave,SOC 107, Tampa, FL 33620 USA.
EM yk2247@gmail.com
OI Kim, You Jung/0000-0002-1617-3956
FX The authors express their gratitude to the anonymous reviewers for their
   constructive comments and helpful suggestions. Additionally, we extend
   our appreciation to the session participants of the 2023 JPER Writing
   Workshop for Early Career Planning Scholars, led by the faculty of the
   Department of Landscape Architecture and Urban Planning at Texas A&M
   University.
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NR 62
TC 0
Z9 0
U1 3
U2 3
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 AUG 24
PY 2024
DI 10.1177/0739456X241268779
EA AUG 2024
PG 15
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA D5Z5H
UT WOS:001296959600001
DA 2025-04-22
ER

PT J
AU Cai, YJ
AF Cai, Yanjun
TI Climate resilience and resistance in Myanmar: transcripts from voiceless
   women
SO CLIMATE AND DEVELOPMENT
LA English
DT Article
DE Gender; resilience; resistance; Myanmar; climate justice; voiceless
   women
ID GENDERED DISCOURSE; ADAPTATION; VULNERABILITY; TRANSITION; COMMUNITY;
   EQUALITY; POLITICS; JUSTICE; POLICY; RIGHTS
AB This research manifests the voices of women in Myanmar tackling climate hazards. Facing an unpredictable climatic future, the disadvantaged populations, such as women from the informal settlements, are considered to be exposed to higher risks, whereas their resilience-building efforts are usually overlooked in academia and policymaking. This work highlights the gendered climate resilience in Dala Township, a peri-urban community of Yangon, through participant observations and semi-structured interviews. This research reveals the gendered vulnerability, virtue, and everyday resistance towards resilience, emphasizing the local lens of affected disadvantaged women who are often not heard. Notably, it demonstrates alternative realities, knowledge-making, and practices of climate resilience, giving voices to the voiceless. Situated in Myanmar, findings call for a more gender-sensitive approach to build a just and resilient climatic future for all, with tremendous potential for broader application in the disadvantaged communities worldwide tackling intersectional injustice.
C1 [Cai, Yanjun] Sun Yat Sen Univ, Sch Int Relat, Inst Southeast Asian Studies, Guangzhou 510275, Peoples R China.
   [Cai, Yanjun] Univ Toronto, Munk Sch Global Affairs & Publ Policy, Toronto, ON, Canada.
C3 Sun Yat Sen University; University of Toronto
RP Cai, YJ (corresponding author), Sun Yat Sen Univ, Sch Int Relat, Inst Southeast Asian Studies, Guangzhou 510275, Peoples R China.; Cai, YJ (corresponding author), Univ Toronto, Munk Sch Global Affairs & Publ Policy, Toronto, ON, Canada.
EM caiyj36@mail.sysu.edu.cn
FU Urban Climate Resilience in Southeast Asia Partnership, under the
   International Partnership for Sustainable Societies (IPaSS, IDRC)
   [107776]
FX This work was supported by Urban Climate Resilience in Southeast Asia
   Partnership, under the International Partnership for Sustainable
   Societies (IPaSS, IDRC Grant Number: 107776).
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NR 99
TC 2
Z9 2
U1 2
U2 22
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1756-5529
EI 1756-5537
J9 CLIM DEV
JI Clim. Dev.
PD MAY 28
PY 2023
VL 15
IS 5
BP 456
EP 465
DI 10.1080/17565529.2022.2097162
EA JUL 2022
PG 10
WC Development Studies; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology
GA L0NF0
UT WOS:000823402200001
DA 2025-04-22
ER

PT J
AU Xia, Q
   Quan, MQ
   Li, HR
   Hao, XR
AF Xia, Qing
   Quan, Mengqi
   Li, Haoran
   Hao, Xiaoru
TI Is environmental regulation works on improving industrial resilience of
   China? Learning from a provincial perspective
SO ENERGY REPORTS
LA English
DT Article
DE Environmental regulation; Industrial resilience; Spatial spillover
   effect
ID REGIONAL ECONOMIC RESILIENCE; URBAN RESILIENCE; POLLUTION
AB This paper explores the impact of environmental regulation in the perspective of industrial resilience. By introducing and defining the concept of industrial resilience, an index system is constructed and the value of industrial resilience of China is evaluated based on the panel data of 30 provinces in China from 2005 to 2018. Considering the intensity of environmental regulation we make a discussion on the relationship of environmental regulation and industrial development, and build a spatial panel model to make a further investigation on the direct and spatial effects of environmental regulation on industrial resilience. The results showed that :(1) There was an inverted U-shaped relationship between environmental regulation and resilience, and environmental regulation had a positive effect on resilience except for Beijing and Shanghai. The intensity of environmental regulation on industrial resilience in eastern is higher than that in the whole region. (2) The spatial spillover effect also present an inverted U-shaped relationship, with positive spillover effects except for Beijing, Tianjin and Shanghai. Therefore, it is necessary to formulate environmental policies according to local conditions, moderately reduce the intensity of environmental regulation in Shanghai and Beijing, and strengthen the intensity of environmental regulation in other areas. (C) 2022 Published by Elsevier Ltd.
C1 [Xia, Qing; Quan, Mengqi; Li, Haoran; Hao, Xiaoru] China Univ Min & Technol, Xuzhou 221116, Jiangsu, Peoples R China.
C3 China University of Mining & Technology
RP Xia, Q (corresponding author), China Univ Min & Technol, Xuzhou 221116, Jiangsu, Peoples R China.
EM xqxz.js@cumt.edu.cn
FU National Social Sicence Fund of China [16CJL027]
FX Funding This research was supported by the National Social Sicence Fund
   of China (Grant No. 16CJL027) .
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NR 58
TC 13
Z9 14
U1 9
U2 95
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2352-4847
J9 ENERGY REP
JI Energy Rep.
PD NOV
PY 2022
VL 8
BP 4695
EP 4705
DI 10.1016/j.egyr.2022.03.168
EA APR 2022
PG 11
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Energy & Fuels
GA 1C1JW
UT WOS:000792885200010
OA gold
DA 2025-04-22
ER

PT J
AU He, M
   Xiao, W
   Zhao, LL
   Xu, YL
AF He, Miao
   Xiao, Wei
   Zhao, Lingling
   Xu, Yuanlu
TI Spatiotemporal evolution pattern and heterogeneity of resource-based
   city resilience in China
SO STRUCTURAL CHANGE AND ECONOMIC DYNAMICS
LA English
DT Article
DE Resource-based city; Urban resilience; Spatial difference; Dynamic
   evolution characteristics; Regional convergence; Spatial Markov chain
ID CONVERGENCE; CITIES
AB Resource-based cities (RBCs) encompass the east, middle, and west of China, covering an important economic hinterland. The improvement of RBC resilience can significantly impact the overall resilience of cities in China. This study analyzes the spatial characteristics and overall evolution trend of four types of RBCs based on regional differences and convergence theory. The results vivid showed sustainable development positively influenced growing-type RBCs also showed that the overall RBC resilience coupling coordination degree improved throughout the study period (2009-2019), and that the evolution of RBC resilience demonstrated good convergence characteristics. Furthermore, a distinct gap is evident between high resilience-level growing RBCs and relatively low-level regenerative RBCs. All RBCs will eventually converge to the third level with a higher level of coupling coordination. However, compared with the traditional Markov chain, the transition probability of the spatial Markov chain is reduced due to the influence of surrounding cities. Thus, policies are given.
C1 [He, Miao; Xiao, Wei; Zhao, Lingling; Xu, Yuanlu] Hebei Univ, Sch Econ, Baoding 071002, Peoples R China.
   [He, Miao] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing, Peoples R China.
   [He, Miao] Heibei Univ, Res Ctr Resource Utilizat & Environm Protect, Baoding 071002, Peoples R China.
   [He, Miao] Baoding Key Lab Carbon Neutralicat & Data Sci, Baoding 071002, Heibei, Peoples R China.
C3 Hebei University; Chinese Academy of Sciences; Institute of Geographic
   Sciences & Natural Resources Research, CAS; Hebei University
RP He, M (corresponding author), Hebei Univ, Sch Econ, Baoding 071002, Peoples R China.
EM miaohewendy@126.com
RI Yuanlu, Xu/W-6921-2019; He, Miao/HKE-0548-2023
OI He, Miao/0000-0003-3921-2505
FU Open Project of Key Laboratory of Carrying Capacity Assessment for
   Resource and Environment, Ministry of Natural Resources [CCA2019.20];
   Surface Project of National Natural Science Foundation of China
   [41771566, 42071281]; Humanities and Social Science Research Project of
   Hebei Province (Basic Research Key Cultivation Special Project)
   [JCZX2024012]; The 2022 Social Science General Cultivation Program of
   Hebei University [2022HPY030]; High-level Talent Introduction Project of
   Hebei University [521000981365]
FX This paper was supported by: Open Project of Key Laboratory of Carrying
   Capacity Assessment for Resource and Environment, Ministry of Natural
   Resources (No: CCA2019.20); Surface Project of National Natural Science
   Foundation of China (No.41771566; No.42071281); Humanities and Social
   Science Research Project of Hebei Province (Basic Research Key
   Cultivation Special Project; No:JCZX2024012; The 2022 Social Science
   General Cultivation Program of Hebei University (No:2022HPY030);
   High-level Talent Introduction Project of Hebei University (No.
   521000981365).
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NR 55
TC 1
Z9 1
U1 27
U2 32
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 417
EP 429
DI 10.1016/j.strueco.2024.08.013
EA AUG 2024
PG 13
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA E8J0I
UT WOS:001305396100001
DA 2025-04-22
ER

PT J
AU Liu, Y
   Gu, TT
   Li, LZ
   Cui, P
   Liu, Y
AF Liu, Yi
   Gu, Tiantian
   Li, Lingzhi
   Cui, Peng
   Liu, Yan
TI Measuring the Urban Resilience Abased on Geographically Weighted
   Regression (GWR) Model in the Post-Pandemic Era: A Case Study of Jiangsu
   Province, China
SO LAND
LA English
DT Article
DE post-pandemic era; resilience quantification; GWR
ID SEISMIC RESILIENCE; FLOOD EXPERIENCE; SYSTEM
AB Since China declared that the post-epidemic era would begin in April 2020, the prevention and control of epidemics have become routine. The capacity of cities to respond to future public health emergencies will be enhanced if the resilience of cities is accurately measured and an emphasis is placed on improving resilience levels. Under the 4R framework, this study quantifies and analyzes the level of resilience of the cities in Jiangsu Province from both subjective and objective perspectives. By selecting explanatory variables and developing a GWR model, the spatial distribution characteristics of the quantified scores of resilience and the spatial characteristics of the influencing factors are analyzed. The results indicate that cities in southern Jiangsu should invest more in economic development and medical resources in the post-epidemic period. Northern Jiangsu should prioritize boosting the health and social work sector's gross domestic product. Coastal cities must enhance their capacity for innocuous waste treatment.
C1 [Liu, Yi; Cui, Peng] Nanjing Forestry Univ, Sch Civil Engn, Dept Engn Management, Nanjing 210037, Peoples R China.
   [Gu, Tiantian] China Univ Min & Technol, Sch Mech & Civil Engn, Dept Engn Management, Xuzhou 221116, Peoples R China.
   [Li, Lingzhi] Nanjing Tech Univ, Sch Civil Engn, Dept Intelligent Construct & Management, Nanjing 211816, Peoples R China.
   [Liu, Yan] Nanjing Univ, Sch Management & Engn, Dept Complex Engn Management, Nanjing 210008, Peoples R China.
C3 Nanjing Forestry University; China University of Mining & Technology;
   Nanjing Tech University; Nanjing University
RP Cui, P (corresponding author), Nanjing Forestry Univ, Sch Civil Engn, Dept Engn Management, Nanjing 210037, Peoples R China.
EM liuyi0519@njfu.edu.cn; 6072@cumt.edu.cn; 6370@njtech.edu.cn;
   cui@njfu.edu.cn; ly@nju.edu.cn
RI Li, Lingzhi/K-9055-2016; Liu, Yan/H-4315-2019; Gu,
   Tiantian/HKM-6673-2023
OI Liu, Yan/0000-0001-8706-6712; Cui, Peng/0000-0003-2019-8336
FU National Natural Science Foundation of China [72204113, 72104233];
   Humanities and Social Sciences Fund of the Ministry of education
   [21YJC630017]; Jiangsu Social Science Fund [21GLC001]
FX This research is sponsored by the National Natural Science Foundation of
   China (Grant No. 72204113, 72104233), Humanities and Social Sciences
   Fund of the Ministry of education (Grant No. 21YJC630017), and Jiangsu
   Social Science Fund (Grant No. 21GLC001).
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NR 76
TC 7
Z9 7
U1 9
U2 54
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 1453
DI 10.3390/land12071453
PG 19
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA N3EV6
UT WOS:001035895400001
OA gold
DA 2025-04-22
ER

PT J
AU Zaheer, A
AF Zaheer, Allam
TI SUSTAINABILITY AND RESILIENCE IN MEGACITIES THROUGH ENERGY
   DIVERSIFICATION, LAND FRAGMENTATION AND FISCAL MECHANISMS
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Renewable Energy; Economics; Megacity; Urban Planning; Sustainability;
   Resilience
ID RENEWABLE ENERGY; URBAN CONCENTRATION; ENVIRONMENTAL-IMPACT;
   POWER-SYSTEMS; SOLAR POWER; ELECTRICITY; FUTURE; INTEGRATION;
   TRANSITION; BARRIERS
AB A rapid urbanisation rate, coupled with an increasing global population, equates to a surge in energy demand; threatening sustainable transitions from fossil fuel. However, faced with the impacts of climate change and increasing geopolitical accords, cities are turning towards Renewable Energy sources to meet this demand, but this is a complex matter in Megacities where land availability is scarce for the construction of new, or larger, power plants. As the number of Megacities is expected to increase in the near future, the need for decentralised and sustainable solutions that are technically and economically viable for both the state and the private sector need to be sought. This paper dwells into an extensive review of literature studying energy generation in the case of Megacities, and highlight the dimensions required for them to achieve increased sustainability and resilience. A model, inspired from urban complexity theories, aimed at generating decentralised grid networks -based on the dimensions of Energy Diversification, Land Fragmentation and Fiscal Mechanisms, is proposed with a new way at looking at energy grids from a geometrical and morphological perspective while supporting economic dimensions that will encourage its implementation at both policy and project level. This paper is aimed towards Urban and Energy Planners and Policy Makers looking at how to power Megacities as well as cities facing rapid urbanisation.
C1 [Zaheer, Allam] Curtin Univ, Sustainabil Policy Inst, Perth, WA, Australia.
C3 Curtin University
RP Zaheer, A (corresponding author), Curtin Univ, Sustainabil Policy Inst, Perth, WA, Australia.
EM zaheerallam@gmail.com
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PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
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EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD FEB
PY 2020
VL 53
AR 101841
DI 10.1016/j.scs.2019.101841
PG 13
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 KE2AT
UT WOS:000508361800088
DA 2025-04-22
ER

PT J
AU Wagner, J
AF Wagner, Jacob
TI Rethinking the politics of vulnerability: neighborhood empowerment in
   Kansas City Missouri (USA)
SO BOLETIN DE LA ASOCIACION DE GEOGRAFOS ESPANOLES
LA English
DT Article
DE vulnerability; resilience; adaptive capacity; racialization
AB The paper provides evidence for the racialization of urban neighborhoods in Kansas City Missouri, USA and the ways in which voluntary associations of citizens work to resist and reduce conditions of urban vulnerability. The paper presents data from historical patterns of racially-biased real estate practices, including redlining, and demonstrates how these patterns continue to shape the politics of vulnerability in the region today. Three neighborhood profiles provide evidence of the ways in which local neighborhood associations are organized to respond to both social and spatial conditions of vulnerability. In contrast to the estimates of low community resilience in these neighborhoods, the author demonstrates that neighborhood empowerment is an important counterpoint to concentrated vulnerabilities.
C1 [Wagner, Jacob] Univ Missouri, Dept Architecture Urban Planning & Design, Kansas City, MO 64110 USA.
C3 University of Missouri System; University of Missouri Kansas City
RP Wagner, J (corresponding author), Univ Missouri, Dept Architecture Urban Planning & Design, Kansas City, MO 64110 USA.
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J9 B ASOC GEOGR ESP
JI Bol. Asoc. Geogr. Esp.
PY 2020
IS 87
DI 10.21138/bage.3056
PG 35
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA PV3KG
UT WOS:000609889200011
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Chu, EK
   Cannon, CEB
AF Chu, Eric K.
   Cannon, Clare E. B.
TI Equity, inclusion, and justice as criteria for decision-making on
   climate adaptation in cities
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID ENVIRONMENTAL JUSTICE; URBAN RESILIENCE; POLICY; COMMUNITY;
   GENTRIFICATION; IMPLEMENTATION; VULNERABILITY; GOVERNANCE; DISCOURSE;
   PATHWAYS
AB This paper explores how criteria for socially just climate change adaptation and resilience-building are articulated and embedded within urban planning and decision-making. We assess recent evidence from the ten largest cities in the United States through a narrative review of key planning documents. Our results show that cities are variably operationalizing equity, inclusion, and justice criteria across four key decision-making stages: designing institutional arrangements, participatory practices, policy integration, and strategic implementation processes. Although cities are beginning to address differential vulnerability and adaptive capacity, more work is required to tackle unequal socioeconomic structures and their contributions to underlying drivers of climate injustice.
C1 [Chu, Eric K.; Cannon, Clare E. B.] Univ Calif Davis, Dept Human Ecol, Davis, CA 95616 USA.
C3 University of California System; University of California Davis
RP Chu, EK (corresponding author), Univ Calif Davis, Dept Human Ecol, Davis, CA 95616 USA.
EM ekch@ucdavis.edu
RI Cannon, Clare/M-4494-2019; Chu, Eric/O-6464-2015
OI Chu, Eric/0000-0002-5648-6615; Cannon, Clare E. B./0000-0002-5507-5312
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NR 74
TC 77
Z9 80
U1 3
U2 40
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 AUG
PY 2021
VL 51
BP 85
EP 94
DI 10.1016/j.cosust.2021.02.009
EA APR 2021
PG 10
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 UK2WA
UT WOS:000691834100011
DA 2025-04-22
ER

PT J
AU Eisenhauer, E
   Maxwell, K
   Kiessling, B
   Henson, S
   Matsler, M
   Nee, R
   Shacklette, M
   Fry, M
   Julius, S
AF Eisenhauer, Emily
   Maxwell, Keely
   Kiessling, Brittany
   Henson, Siena
   Matsler, Marissa
   Nee, Raven
   Shacklette, Maureen
   Fry, Meridith
   Julius, Susan
TI Inclusive engagement for equitable resilience: community case study
   insights
SO ENVIRONMENTAL RESEARCH COMMUNICATIONS
LA English
DT Article
DE resilience; equity; climate change; community engagement; social
   science; vulnerability
ID CLIMATE ADAPTATION; JUSTICE; NETWORKS; DISASTER
AB Incorporating equity into climate resilience planning, especially through participatory processes, is important to adequately address social vulnerability and avoid reproducing inequities. Recent analyses of resilience and adaptation plans in the United States suggest that there is increasing attention on equity and justice, but a wide variation in how it is being incorporated and implemented. Available studies of resilience planning are limited by their focus on larger urban areas and on plan contents. This research contributes a qualitative analysis of participatory engagement for resilience planning in smaller cities and rural areas. It presents findings from community case studies used as part of human-centered design research to develop an equitable resilience planning tool. Materials from the tool were used to conduct participatory engagement activities including storytelling, mapping, and brainstorming actions that elicited community members' experiences with hazards and disasters and ideas for equitable resilience actions. Themes that emerged from the qualitative analysis of the workshop discussions were: community members' include both environmental and social concerns in addressing resilience, challenges associated with social vulnerability framing, the underlying social systems that perpetuate inequities, recognizing different types of trauma, the power of convening, and challenges with sustaining engagement without dedicated resources. This article provides insights that inform efforts to better incorporate equity into resilience planning and advance the study of equitable resilience.
C1 [Eisenhauer, Emily; Maxwell, Keely; Shacklette, Maureen; Fry, Meridith; Julius, Susan] US EPA, Off Res & Dev, Washington, DC 20004 USA.
   [Kiessling, Brittany] US EPA, Off Res & Dev, Res Triangle Pk, NC USA.
   [Henson, Siena; Nee, Raven] US EPA, Oak Ridge Inst Sci & Educ Res Participant, Off Res & Dev, Washington, DC USA.
   [Matsler, Marissa] US EPA, Off Res & Dev, Corvallis, OR USA.
C3 United States Environmental Protection Agency; United States
   Environmental Protection Agency; United States Environmental Protection
   Agency; Oak Ridge Associated Universities; United States Department of
   Energy (DOE); Oak Ridge Institute for Science & Education; United States
   Environmental Protection Agency
RP Eisenhauer, E (corresponding author), US EPA, Off Res & Dev, Washington, DC 20004 USA.
EM Eisenhauer.emily@epa.gov
RI Matsler, Marissa/LRC-4139-2024; Matsler, Marissa/AAU-9436-2020;
   Eisenhauer, Emily/J-2982-2014
OI Henson, Siena/0009-0005-1482-3045; Matsler, Marissa/0000-0003-3294-1991;
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   Brittany/0000-0003-3124-7375
FU EPA; New York State, and Shannon McLachlan of the Federal Emergency
   Management Agency
FX The authors would like to thank partner organizations Lower Grand River
   Organization of Watersheds (LGROW), with Wendy Ogilvie and Cara Decker,
   the Imani Group with Reverend Jenkins-Boseman, and Groundworks Buffalo
   with Rachel Tarapacki and community members and leaders from who
   convened and participated in the workshops. We also thank EPA staff
   Jeanine Finley, Rabi Kieber, Kyle Bryant, Schenine Mitchell, and Terry
   Wesley; Paul Beyer from New York State, and Shannon McLachlan of the
   Federal Emergency Management Agency for supporting the case study
   workshops. EPA ORISE fellows Kelli Roemer contributed to data collection
   and Ian Reilly contributed to data analysis. We are grateful for the
   expertise and assistance of Climate Resilience Consulting team with
   Adaptation International and Kim Lundgren Associates: Joyce Coffee, T.
   Jonathan Lee, Sascha Peterson, Teal Harrison, Kim Lundgren and Kate
   Galbo for planning, coordinating and facilitating the workshops. The
   Institute for Diversity and Inclusion in Emergency Management provided
   the training on trauma informed approaches. We thank the EPA colleagues
   Meghan Klasic and Emily Walpole who contributed support and constructive
   review that helped improve the quality of this paper, and the anonymous
   journal reviewers for comments that strengthened the paper.
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NR 72
TC 0
Z9 0
U1 8
U2 8
PU IOP Publishing Ltd
PI BRISTOL
PA TEMPLE CIRCUS, TEMPLE WAY, BRISTOL BS1 6BE, ENGLAND
SN 2515-7620
J9 ENVIRON RES COMMUN
JI Environ. Res. Commun.
PD DEC 1
PY 2024
VL 6
IS 12
AR 125012
DI 10.1088/2515-7620/ad9242
PG 15
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA P5E3M
UT WOS:001378133100001
PM 40212803
OA gold
DA 2025-04-22
ER

PT J
AU Karimi, A
   Moreno-Rangel, D
   García-Martínez, A
AF Karimi, Alireza
   Moreno-Rangel, David
   Garcia-Martinez, Antonio
TI Granular mapping of UHI and heatwave effects: Implications for building
   performance and urban resilience
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Urban Heat Island (UHI); Climate adaptation strategies; Green
   infrastructure effectiveness; Multi-Criteria Decision Analysis (MCDA);
   Interactive climate data visualization
ID STOCHASTIC WEATHER GENERATOR; CLIMATE-CHANGE; EXTREME WEATHER; FUTURE
   CLIMATE; EURO-CORDEX; DATA SETS; SIMULATION; SYSTEMS
AB This study presents a comprehensive framework for addressing the growing challenges posed by the Urban Heat Island (UHI) effect on heatwave (HW) phases in urban environments. By generating customized, high-resolution weather datasets (EPW) that capture both spatial and temporal variations of UHI across different periods, this framework is applied to the Canillas neighbourhood in Madrid, providing valuable insights into the UHI-HW interactions specific to this urban area. Through the analysis of historical, mid-term, and future climate scenarios, the findings reveal a concerning trend: While the frequency of HW events may decrease, their duration and intensity are projected to increase significantly. Future climate scenarios suggest the possibility of up to 30 heatwaves occurring annually, with a combined total duration of 102 days. Moreover, UHI within an urban cell exhibits varying intensities and sizes depending on the region and measurement time. The use of Multi-Criteria Decision Analysis (MCDA) sheds light on how factors such as building density, road infrastructure, and building height amplify UHI effects, driving temperatures in densely developed areas above 37 degrees C during HW. Depending on the urban geometry, there is a difference between the amount of heat and the time it takes to release that heat. While urban vegetation has a cooling effect, its ability to mitigate extreme temperatures during intense HW is limited, emphasizing the need for green infrastructure as a foundational, though inadequate, solution when applied alone. Additionally, analyses using the Normalized Difference Vegetation Index (NDVI) reveal a strong inverse relationship between vegetation and temperature, particularly during historical periods. However, this effect is expected to diminish in the future, underscoring the need for innovative resilience strategies such as: such as cool roofs, reflective surfaces, or green rooftops, as traditional approaches may no longer suffice in the face of intensifying climate change. Therefore, this study offers crucial insights to bolster urban resilience, emphasizing the need for the strategic integration of green infrastructure, innovative cooling solutions, and balanced urban density to mitigate the combined effects of the UHI phenomenon and HW in cities experiencing rapid warming.
C1 [Karimi, Alireza; Moreno-Rangel, David; Garcia-Martinez, Antonio] Univ Seville, Inst Univ Arquitectura & Ciencias Construcc, Escuela Tecn Super Arquitectura, Seville 41012, Spain.
C3 University of Sevilla
RP Karimi, A (corresponding author), Univ Seville, Inst Univ Arquitectura & Ciencias Construcc, Escuela Tecn Super Arquitectura, Seville 41012, Spain.
EM alikar1@alum.us.es
RI Garcia-Martinez, Antonio/I-3578-2015; Moreno-Rangel, David/K-3924-2014;
   karimi, Alireza/AFI-4076-2022
OI Karimi, Alireza/0000-0002-6296-9496
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NR 72
TC 0
Z9 0
U1 5
U2 5
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 APR 1
PY 2025
VL 273
AR 112705
DI 10.1016/j.buildenv.2025.112705
EA FEB 2025
PG 18
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA Y0T6E
UT WOS:001429362700001
DA 2025-04-22
ER

PT J
AU Hatala, AR
   Pearl, T
   Bird-Naytowhow, K
   Judge, A
   Sjoblom, E
   Liebenberg, L
AF Hatala, Andrew R.
   Pearl, Tamara
   Bird-Naytowhow, Kelley
   Judge, Andrew
   Sjoblom, Erynne
   Liebenberg, Linda
TI "I Have Strong Hopes for the Future": Time Orientations and Resilience
   Among Canadian Indigenous Youth
SO QUALITATIVE HEALTH RESEARCH
LA English
DT Article
DE resilience; future time orientation; Indigenous youth; belonging;
   self-mastery; cultural continuity; grounded theory; Indigenous
   methodologies; Saskatchewan; Canada
ID CULTURE; PERSPECTIVE; PART; EXPECTATIONS; IMPULSIVITY; EXPERIENCES;
   BEHAVIORS
AB In this article, we demonstrate how concepts of time and the future inform processes of resilience among Indigenous adolescents within an urban Canadian context. This study employed a modified grounded theory methodology by conducting 38 qualitative interviews with 28 Indigenous youth (ages 15-25) over the course of 1 year. The analysis revealed complex processes of and navigations between moments of distress and strategies for resilience. The distressing contexts in which Indigenous youth often find themselves can impact the development of their concepts of time and limit their abilities to conceptualize a future. A future time orientation (FTO) emerged as central to processes of resilience and was supported by (a) nurturing a sense of belonging, (b) developing self-mastery, and (c) fostering cultural continuity.
C1 [Hatala, Andrew R.; Sjoblom, Erynne] Univ Manitoba, Dept Community Hlth Sci, Room S108J Med Serv Bldg,750 Bannatyne Ave, Winnipeg, MB R3E 0W3, Canada.
   [Pearl, Tamara] Univ Saskatchewan, Coll Law, Law, Saskatoon, SK, Canada.
   [Bird-Naytowhow, Kelley] Univ Saskatchewan, Saskatoon, SK, Canada.
   [Bird-Naytowhow, Kelley] First Nations Univ Canada, Regina, SK, Canada.
   [Judge, Andrew] Western Univ, Fac Educ, London, ON, Canada.
   [Liebenberg, Linda] Dalhousie Univ, Halifax, NS, Canada.
C3 University of Manitoba; University of Saskatchewan; University of
   Saskatchewan; University of Regina; First Nations University of Canada;
   Western University (University of Western Ontario); Dalhousie University
RP Hatala, AR (corresponding author), Univ Manitoba, Dept Community Hlth Sci, Room S108J Med Serv Bldg,750 Bannatyne Ave, Winnipeg, MB R3E 0W3, Canada.
EM andrew.hatala@umanitoba.ca
RI Hatala, Andrew/AAO-5364-2020; Liebenberg, Linda/L-8346-2019
OI Liebenberg, Linda/0000-0001-5309-6745; Hatala,
   Andrew/0000-0002-8063-5852
FU Urban Aboriginal Knowledge Network and Social Sciences and Humanities
   Research Council Partnership Grant [895-2011-1001]; Canadian Institutes
   of Health Research [FRN 130797]; Saskatchewan Prevention Institute;
   Department of Community Health and Epidemiology at the University of
   Saskatchewan
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: Funding
   for this project was provided by the Urban Aboriginal Knowledge Network
   and Social Sciences and Humanities Research Council Partnership Grant
   (895-2011-1001), Canadian Institutes of Health Research (FRN 130797),
   Saskatchewan Prevention Institute, and the Department of Community
   Health and Epidemiology at the University of Saskatchewan.
CR Andersson Neil, 2008, Pimatisiwin, V6, P65
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   [Anonymous], INT J QUALITATIVE ME
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NR 59
TC 38
Z9 44
U1 2
U2 31
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 1049-7323
EI 1552-7557
J9 QUAL HEALTH RES
JI Qual. Health Res.
PD JUL
PY 2017
VL 27
IS 9
SI SI
BP 1330
EP 1344
AR 1049732317712489
DI 10.1177/1049732317712489
PG 15
WC Public, Environmental & Occupational Health; Information Science &
   Library Science; Social Sciences, Interdisciplinary; Social Sciences,
   Biomedical
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Information Science &
   Library Science; Social Sciences - Other Topics; Biomedical Social
   Sciences
GA EX8CK
UT WOS:000403476100006
PM 28682711
DA 2025-04-22
ER

PT J
AU Zhang, ZH
   Zhou, KL
   Yang, SL
AF Zhang, Zenghui
   Zhou, Kaile
   Yang, Shanlin
TI A post-disaster load supply restoration model for urban integrated
   energy systems based on multi-energy coordination
SO ENERGY
LA English
DT Article
DE Urban integrated energy system; Resilience; Energy storage; Load supply
   recovery; Extreme event
ID FRAMEWORK
AB Urban integrated energy systems (UIES) have emerged as a promising solution to address the challenges of urban energy supply and consumption. However, UIES are vulnerable to extreme disasters, such as earthquakes, hurricanes, or floods, which can disrupt the energy infrastructure and lead to power outages and energy shortages. This study introduces a novel approach aimed at enhancing the resilience and load recovery capabilities of UIES in the face of extreme events. The proposed approach encompasses several key innovations, including the comprehensive coordination of local energy sources, prioritized restoration of critical loads, and a node-based modeling approach for gas and heat networks. Firstly, by fully integrating electricity, gas, and heat sources, the overall resilience of UIES is significantly improved, ensuring higher levels of load recovery even in the event of energy supply shortages. Secondly, the critical load recovery is prioritized by load classification, and the weights set can fully consider the connection status and load level of nodes to ensure priority provisioning of important node loads. In addition, the node-based modeling approach allows for accurate consideration of the flow of gas and heat in the pipe during modeling of the pipe energy storage. Finally, the case study section conducts simulation experiments with the UIES E33-G20-H6 test system to verify the effectiveness of the proposed approach and to demonstrate its potential in enhancing the post-disaster load recovery capability of UIES.
C1 [Zhang, Zenghui; Zhou, Kaile; Yang, Shanlin] Hefei Univ Technol, Sch Management, Hefei 230009, Peoples R China.
   [Zhang, Zenghui] Kings Coll London, Sch Engn, London WC2R 2LS, England.
   [Zhang, Zenghui; Zhou, Kaile; Yang, Shanlin] Hefei Univ Technol, Key Lab Proc Optimizat & Intelligent Decis Making, Minist Educ, Hefei 230009, Peoples R China.
   [Zhou, Kaile] Hefei Univ Technol, Lab Automot Intelligence & Electrificat, Hefei 230009, Peoples R China.
C3 Hefei University of Technology; University of London; King's College
   London; 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
OI Zhang, Zenghui/0000-0002-6546-4418
FU National Natural Science Foundation of China [72242103, 72271071];
   Funda- mental Research Funds for the Central Universities
   [JZ2022HGPB0305]
FX This work was supported in part 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 47
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PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0360-5442
EI 1873-6785
J9 ENERGY
JI Energy
PD SEP 15
PY 2024
VL 303
AR 132008
DI 10.1016/j.energy.2024.132008
EA JUN 2024
PG 13
WC Thermodynamics; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Thermodynamics; Energy & Fuels
GA WF4T6
UT WOS:001253449800001
DA 2025-04-22
ER

PT J
AU Laurien, F
   Hochrainer-Stigler, S
   Keating, A
   Campbell, K
   Mechler, R
   Czajkowski, J
AF Laurien, Finn
   Hochrainer-Stigler, Stefan
   Keating, Adriana
   Campbell, Karen
   Mechler, Reinhard
   Czajkowski, Jeffrey
TI A typology of community flood resilience
SO REGIONAL ENVIRONMENTAL CHANGE
LA English
DT Article
DE Community; Disaster resilience; Measurement; Standardized metric; Data
   collection; Cluster analysis
ID DISASTER RESILIENCE; VULNERABILITY
AB Flood risk is increasing worldwide and there is a growing need to better understand the co-benefits of investments in disaster resilience. Utilizing a multinational community flood resilience dataset, this paper takes a systems approach to understanding community-level flood resilience. Using a cluster analysis and bivariate correlation methods, we develop a typology of community flood resilience capacity based on community characteristics and five capitals (human, financial, natural, physical, and social). Our results reinforce the importance of context-specific policymaking and give recommendations of four distinct clusters to investigate the relationship between flood resilience and prevailing development conditions. We especially find that communities with higher interactions between their capital capacities tend to have higher flood resilience levels. Additionally, there are indications that stronger interactions between community capacities can help to induce multiple co-benefits when investing in disaster resilience. Our results also have important policy implications on the individual community level. For example, based on our results, we suggest that communities with lower flood resilience capacities and interactions can best build resilience on leveraging their relatively higher human capital capacities to strengthen the financial and social capitals. Negative effects might happen for urban communities when co-benefits of natural and physical capital are not fully integrated. The highest flood resilience capacity is found in communities with a well-balanced household income distribution which is likely a contributing factor to the importance of financial capital for this cluster. Our results emphasize the importance of an integrative approach to management when implementing systematic flood disaster resilience metrics and development measures.
C1 [Laurien, Finn; Hochrainer-Stigler, Stefan; Keating, Adriana; Mechler, Reinhard] Int Inst Appl Syst Anal, Risk & Resilience Program, Schlosspl 1, A-2361 Laxenburg, Austria.
   [Campbell, Karen] IHS Markit Global, Div Econ & Country Risk, 4th Floor,Ropemaker Pl,25 Ropemaker St, London EC2Y 9LY, England.
   [Czajkowski, Jeffrey] Natl Assoc Insurance Commissioners, Ctr Insurance Policy & Res, Kansas City, MO 64106 USA.
C3 International Institute for Applied Systems Analysis (IIASA)
RP Laurien, F (corresponding author), Int Inst Appl Syst Anal, Risk & Resilience Program, Schlosspl 1, A-2361 Laxenburg, Austria.
EM laurien@iiasa.ac.at; hochrain@iiasa.ac.at; keatinga@iiasa.ac.at;
   karen.Campbell@ihsmarkit.com; mechler@iiasa.ac.at; jczajkowski@naic.org
RI Keating, Adriana/GSE-5451-2022
OI /0000-0003-2239-1578; Hochrainer-Stigler, Stefan/0000-0002-9929-8171
FU International Institute for Applied Systems Analysis (IIASA)
FX Open access funding provided by International Institute for Applied
   Systems Analysis (IIASA).
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NR 68
TC 48
Z9 51
U1 10
U2 85
PU SPRINGER HEIDELBERG
PI HEIDELBERG
PA TIERGARTENSTRASSE 17, D-69121 HEIDELBERG, GERMANY
SN 1436-3798
EI 1436-378X
J9 REG ENVIRON CHANGE
JI Reg. Envir. Chang.
PD FEB 17
PY 2020
VL 20
IS 1
AR 24
DI 10.1007/s10113-020-01593-x
PG 14
WC Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA KQ7VR
UT WOS:000517129100005
OA hybrid
DA 2025-04-22
ER

PT J
AU Canesi, R
   Marella, G
AF Canesi, Rubina
   Marella, Giuliano
TI Towards European Transitions: Indicators for the Development of Marginal
   Urban Regions
SO LAND
LA English
DT Article
DE marginal areas; sustainable planning; urban sustainability; digital and
   green transitions; urban sustainability indicators
ID SUSTAINABILITY INDICATORS; DIGITALIZATION; ECOLOGY; SCIENCE; INDEXES;
   SYSTEM
AB Urban transitions and urban-scape have been heavily impacted by the COVID-19 pandemic and will likely be affected by the current Ukrainian-Russian conflict. These two major events have affected European urban regions and especially marginal regions. Indeed, these regions are mostly struggling with inequality, lack of optionality, interoperability, and resilience due to their energy dependency and digital asymmetries. The continuous demand for a green and digital transition to strengthen social and economic resilience sought and targeted by the European Community has driven the policy of recent years to new European Guidelines. Nevertheless, the digital transition will require sustainability targets in the urban context, changing economic, social, and ecological relationships and balances. In this context, faced with these new transitions, marginal urban regions must plan, design, build, and manage future urban planning choices in a new digital-hybrid space. Therefore, it is crucial to support these transitions with a multi-dimensional sustainability concept through economic, environmental, social, and digital measurements. Urban sustainability indicators (USIs) play an essential role in supporting urban choices and planning. The current study analyzes recent literature and European standards to verify if and how they have changed in embracing the European Policy Pillar under a new and different sustainability profile, which needs to include digital sustainability. As a matter of fact, even if the concept of digitization has been recognized as a pillar of ongoing transitions, the literature and even European indicators struggle to recognize it as a tangible and measurable indicator of sustainability. Seeking to bridge the gap between European requirements and urban practice, the aim of this study is to identify and suggest new key indicators of digitalization to enable the digital sustainability of urban planning to be measured. These indicators can be used to implement a new valuation tool capable of supporting marginal regions by promoting sustainable urban investments in this new hybrid space.
C1 [Canesi, Rubina; Marella, Giuliano] Univ Padua, Dept Civil Environm & Architectural Engn DICEA, Via Venezia 1, I-30151 Padua, Italy.
C3 University of Padua
RP Canesi, R (corresponding author), Univ Padua, Dept Civil Environm & Architectural Engn DICEA, Via Venezia 1, I-30151 Padua, Italy.
EM rubina.canesi@unipd.it
OI Canesi, Rubina/0000-0002-5399-3582
FU European Social Fund REACT EU-PON "Research and Innovation" 2014-2020;
   Ministero dell'Universita e della Ricerca; Sinloc SpA (Sistemi
   Iniziative Locali);  [MUR-DM 1062/2021]
FX This paper is based upon research funded by European Social Fund REACT
   EU-PON "Research and Innovation" 2014-2020, Ministero dell'Universita e
   della Ricerca MUR-DM 1062/2021, and Sinloc SpA (Sistemi Iniziative
   Locali), gratefully acknowledged by the authors.
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NR 84
TC 4
Z9 4
U1 1
U2 27
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 27
DI 10.3390/land12010027
PG 20
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 8C5NY
UT WOS:000917656100001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Yu, G
   Xie, JY
   Sugumaran, V
AF Yu, Gang
   Xie, Jiayi
   Sugumaran, Vijayan
TI Dynamic Evaluation of Road Network Resilience to Traffic Accidents: An
   Emergency Management Perspective for Sustainable Cities in China
SO SUSTAINABILITY
LA English
DT Article
DE dynamic evaluation; road network resilience; traffic accidents;
   emergency management; sustainable cities
ID FRAMEWORK
AB When assessing road network resilience, emergency management behavior should be considered, as this represents the road network's capacity to adapt to and recover from traffic accidents. Given the timeliness and variability of emergency management behavior, deterministic approaches seem inadequate to represent real road network performance. Thus, this paper innovatively designs an emergency management perspective-based dynamic evaluation method of road network resilience to traffic accidents. Firstly, based on four stages of emergency management, a road network resilience evaluation index system encompassing resilience capabilities, resilience attributes and traffic accident emergency management ability indicators is constructed. Afterwards, the gray relational technique for order preference by similarity to the ideal solution (GRA-TOPSIS) evaluation method based on combination weighting, which integrates factor analysis with hesitant intuitionistic fuzzy expert scoring, is designed to quantify resilience. Finally, the obstacle degree model is utilized for identifying resilience constraints as the input of a long short-term memory (LSTM) model to predict the resilience variation trend. The fast road network of Shanghai in China is adopted as a case study, and the results indicate that road network resilience embodies significant spatial distribution characteristics. Road length, number of tractors, perception and response and disposal time of traffic accidents cast notable effects on resilience. Additionally, some roads are forecast to show descending resilience. The proposed method is valuable for helping policymakers identify current and potential vulnerable roads and to formulate proposals to effectively improve the resilience of urban agglomerations and promote sustainable cities.
C1 [Yu, Gang; Xie, Jiayi] Shanghai Univ, SILC Business Sch, Shanghai 201800, Peoples R China.
   [Yu, Gang; Xie, Jiayi] Shanghai Univ, Shanghai Urban Construct Grp Res Ctr Bldg Industri, Shanghai 200072, Peoples R China.
   [Sugumaran, Vijayan] Oakland Univ, Ctr Data Sci & Big Data Analyt, Rochester, MI 48309 USA.
   [Sugumaran, Vijayan] Oakland Univ, Sch Business Adm, Dept Decis & Informat Sci, Rochester, MI 48309 USA.
C3 Shanghai University; Shanghai University; Oakland University; Oakland
   University
RP Xie, JY (corresponding author), Shanghai Univ, SILC Business Sch, Shanghai 201800, Peoples R China.; Xie, JY (corresponding author), Shanghai Univ, Shanghai Urban Construct Grp Res Ctr Bldg Industri, Shanghai 200072, Peoples R China.
EM gyu@shu.edu.cn; 18124378@shu.edu.cn; sugumara@oakland.edu
RI Xie, Jiayi/LFU-8122-2024
OI Sugumaran, Vijayan/0000-0003-2557-3182; Yu, Gang/0000-0003-1376-7959
FU Natural Science Foundation of Shanghai Municipality;  [21ZR1423800]
FX This research was funded by Natural Science Foundation of Shanghai
   Municipality, grant number 21ZR1423800.
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NR 53
TC 0
Z9 0
U1 21
U2 29
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 7385
DI 10.3390/su16177385
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 F7S7U
UT WOS:001311779200001
OA gold
DA 2025-04-22
ER

PT J
AU Samarakkody, A
   Amaratunga, D
   Haigh, R
AF Samarakkody, Aravindi
   Amaratunga, Dilanthi
   Haigh, Richard
TI Technological Innovations for Enhancing Disaster Resilience in Smart
   Cities: A Comprehensive Urban Scholar's Analysis
SO SUSTAINABILITY
LA English
DT Article
DE disruptive technologies; emerging technologies; smart city; urban (city)
   resilience
ID CITY; MANAGEMENT; INTERNET; THINGS; ARCHITECTURE; METHODOLOGY;
   ANALYTICS; SYSTEM; MODEL
AB Despite advancements, Smart Cities encounter hazards. Smart Cities' higher reliance on interconnected systems and networks makes them susceptible to risks beyond conventional ones, leading to cascading effects. Hence, the effective use of technological innovations is vital. This effective use involves understanding the existing use of technology innovations for resilience making in Smart Cities and the wise utilisation of them as suitable for different contexts. However, there is a research gap for a fundamental study that synthesises the emerging and disruptive technologies that are being used to improve the disaster resilience in Smart Cities and how they can be classified. Therefore, this research aimed to address that need, so that a Smart City evaluating the technologies/tools for disaster resilience could wisely utilise the available resources and prioritise the most suitable for their context-specific needs. Following a comprehensive literature review, the study identified 24 technologies and/or tools for creating, sustaining, and enhancing the resilience within Smart Cities. In doing so, they should collect and manage citywide geodata and foster public participation. While the wise utilisation of the most suitable and feasible tools and technologies is a measure of smartness in a Smart City, the findings suggested four key factors with which these technologies could be assessed. These four factors included impact on society, the adoption speed by Smart Cities, the maturity of the technology, and the capabilities offered to the community.
C1 [Samarakkody, Aravindi; Amaratunga, Dilanthi; Haigh, Richard] Univ Huddersfield, Global Disaster Resilience Ctr, Huddersfield HD1 3DH, England.
C3 University of Huddersfield
RP Samarakkody, A (corresponding author), Univ Huddersfield, Global Disaster Resilience Ctr, Huddersfield HD1 3DH, England.
EM aravindi.samarakkody@hud.ac.uk; d.amaratunga@hud.ac.uk;
   r.haigh@hud.ac.uk
RI ; Haigh, Richard/H-7455-2016
OI Amaratunga, Dilanthi/0000-0002-1682-5301; Haigh,
   Richard/0000-0001-7347-7043; Samarakkody, Aravindi/0000-0002-7594-4036
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NR 152
TC 16
Z9 17
U1 12
U2 42
PU MDPI
PI BASEL
PA Gross-peteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2023
VL 15
IS 15
AR 12036
DI 10.3390/su151512036
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 O7RK1
UT WOS:001045736600001
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Ro, B
   Garfin, G
AF Ro, Bokjin
   Garfin, Gregg
TI Building urban flood resilience through institutional adaptive capacity:
   A case study of Seoul, South Korea
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Institutional system; Adaptive capacity; Resilience; Flood risk
   management; Urban flood risk; LADPOs; local autonomous disaster
   prevention organizations; LNRs; local neighborhood representatives
ID RISK; VULNERABILITY; ADAPTATION; INDEX; TRUST
AB Building resilience has been a critical agenda for disaster risk management, but how to build and what to build tend to remain abstract. Our analysis offers insights on practices deployed by the Seoul Metropolitan Government to increase the city's resilience to floods. By specifically choosing two districts in the city, we interviewed key informants involved in flood risk management (FRM) and reviewed documents on FRM at the city and local levels. We manually coded the qualitative data by matching the content with 22 institutional adaptive capacity criteria developed by Gupta and colleagues. We found that the deployment of formal local public organizations, supported by South Korea's city and local level institutional arrangements, augmented human resources and enhanced flood resilience through constructive redundancy in flood risk monitoring and neighborhood-level outreach to community members. We also found that long-term (e.g., 10 -year) risk management plans may possibly become a barrier to exploratory and reflexive social learning processes (i.e., double-loop learning), unless there is an effort to regularly examine and reframe risk in the plans. Seoul can further enhance resilience to floods by increasing citizens' abilities to act (i.e., strengthening their capacity for autonomous actions); this can most effec-tively be done by providing individuals with plans and detailed scripts for action in the face of flood risk.
C1 [Ro, Bokjin] Univ Arizona, Sch Geog Dev & Environm, Tucson, AZ 85721 USA.
   [Ro, Bokjin] Sungkyunkwan Univ, Interdisciplinary Program Disaster Crisis & Risk M, Suwon 16419, Gyeonggi Do, South Korea.
   [Garfin, Gregg] Univ Arizona, Sch Nat Resources & Environm, Tucson, AZ 85721 USA.
C3 University of Arizona; Sungkyunkwan University (SKKU); University of
   Arizona
RP Ro, B (corresponding author), Univ Arizona, Sch Geog Dev & Environm, Tucson, AZ 85721 USA.
EM bokjinnoh@gmail.com
OI Garfin, Gregg/0000-0002-2760-132X
FU University of Arizona's: School of Geography, Development & Environment,
   Graduate and Professional Student Council; University of Arizona's:
   School of Geography, Development & Environment, Graduate and
   Professional Student Council; Global Change Graduate Interdisciplinary
   Program; Global Change Graduate Interdisciplinary Program; University of
   Arizona's: School of Geography, Development & Environment, Graduate and
   Professional Student Council; Global Change Graduate Interdisciplinary
   Program
FX This work was conducted as part of Bokjin Ro's dissertation research. We
   thank Ashley Coles (Texas Christian University), Christopher Scott (Penn
   State University), Prof. Connie Woodhouse, and Prof. Diana Liverman
   (both at University of Arizona) for their constructive feedback on this
   research project. We thank Prof. Deok-Hyo Bae (Sejong University) for
   providing us with the contacts and support that helped to initiate this
   research in Seoul. We especially thank officials with the Seoul
   Metropolitan Government, Guro-gu and Gwangjin-gu Local Government
   Offices, and sub-district offices, who participated in interviews as
   well as provided data, and all interviewees with Local Public
   Organizations who participated in this research. Funding for this study
   was provided by the University of Arizona's: School of Geography,
   Development & Environment, Graduate and Professional Student Council,
   and Global Change Graduate Interdisciplinary Program.
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NR 85
TC 19
Z9 20
U1 7
U2 30
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 103474
DI 10.1016/j.ijdrr.2022.103474
EA DEC 2022
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 8J1MD
UT WOS:000922186500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Frantzeskaki, N
AF Frantzeskaki, Niki
TI Seven lessons for planning nature-based solutions in cities
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Nature-based solutions; Cities; Climate adaptation; Urban resilience;
   Experiments; Co-creation
ID CLIMATE-CHANGE ADAPTATION; URBAN GREEN SPACES; ECOSYSTEM-BASED
   ADAPTATION; COLLABORATIVE GOVERNANCE; FOREST MANAGEMENT; SERVICES;
   SUSTAINABILITY; RESILIENCE; ROTTERDAM; FRAMEWORK
AB Nature-based solutions are proliferating in European cities over the past years as viable solutions to urban challenges such as climate change, urban degeneration and aging infrastructures. With evidence amounting about nature-based solutions, there is a need to translate knowledge about nature-based solutions to future policy and planning. In this paper, we analysed fifteen cases of nature-based solutions' experiments across 11 European cities. What makes our case studies stand out is the balanced focus between ecosystem and social benefits in contrast to many published cases on nature-based solutions that have a weighted focus on the climate benefits. From a cross-case comparative analysis we draw seven overarching lessons related to all stages of proof-of-concept and implementation of nature-based solutions in cities: (a) nature-based solutions need to be aesthetically appealing to citizens, (b) nature-based solutions create new green urban commons, (c) experimenting with nature-based solutions requires trust in the local government and in experimentation process itself, (d) co-creation of nature-based solutions requires diversity and learning from social innovation, (e) nature-based solutions require collaborative governance, (f) an inclusive narrative of mission for nature-based solutions can enable integration to many urban agendas and (g) design nature-based solutions so as to learn and replicate them on the long-term. The lessons we draw show that nature-based solutions require multiple disciplines for their design, diversity (of settings) for co-creation and recognition of the place-based transformative potential of nature-based solutions as 'superior' to grey infrastructure. We further discern that urban planners need to have an open approach to collaborative governance of nature-based solutions that allows learning with and about new appealing designs, perceptions and images of nature from different urban actors, allows forming of new institutions for operating and maintaining nature-based solutions to ensure inclusivity, livability and resilience.
C1 [Frantzeskaki, Niki] Erasmus Univ, Fac Social & Behav Sci, Dutch Res Inst Transit, Rotterdam, Netherlands.
C3 Erasmus University Rotterdam - Excl Erasmus MC; Erasmus University
   Rotterdam
RP Frantzeskaki, N (corresponding author), Erasmus Univ, Fac Social & Behav Sci, Dutch Res Inst Transit, Rotterdam, Netherlands.
EM n.frantzeskaki@drift.eur.nl
RI Frantzeskaki, Niki/AAN-1044-2021
OI Frantzeskaki, Niki/0000-0002-6983-448X
FU European Union URBACT Secretariat program III
FX We are grateful for all the cities of Resilient Europe project who
   participated in the four years of the project, the stakeholders in all
   the transition management arenas and learning webinars as well as the
   citizens of all 11 cities of Resilient Europe who have been contacted
   throughout the project to participate, debate and consult the project
   expert and city project teams. Resilient Europe project was funded by
   the European Union URBACT Secretariat program III, and lasted from
   2015-2018. Special thanks to Rieke Hansen and Cleo Pouw from the
   Municipality of Rotterdam, The Netherlands for comments and feedback on
   previous versions of this work.
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NR 65
TC 393
Z9 421
U1 129
U2 1001
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 MAR
PY 2019
VL 93
BP 101
EP 111
DI 10.1016/j.envsci.2018.12.033
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HJ9GX
UT WOS:000457508000011
OA hybrid
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Sui, XX
   Yang, ZL
   Shepherd, M
   Niyogi, D
AF Sui, Xinxin
   Yang, Zong - Liang
   Shepherd, Marshall
   Niyogi, Dev
TI Global scale assessment of urban precipitation anomalies
SO PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF
   AMERICA
LA English
DT Article
DE urban sustainability; global change; rainfall extremes; cities
ID CLIMATE; URBANIZATION; RAINFALL; IMPACTS
AB Urbanization has accelerated dramatically across the world over the past decades. in climatological datasets. Although prior research has investigated urban influences on precipitation for specific cities or selected thunderstorm cases, a comprehensive examination of urban precipitation anomalies on a global scale remains limited. This research is a global analysis of urban precipitation anomalies for over one thousand cities worldwide. We find that more than 60% of the global cities and their downwind regions are receiving more precipitation than the surrounding rural areas. Moreover, the magnitude of these urban wet islands has nearly doubled in the past 20 y. Urban precipitation anomalies exhibit variations across different continents and climates, with cities in Africa, for example, exhibiting the largest urban annual and extreme precipitation anomalies. Cities are more prone to substantial urban precipitation anomalies under warm and humid climates compared to cold and dry climates. Cities with larger populations, pronounced urban heat island effects, and higher global urban rainfall hotspots, establishing a foundation for the consideration of urban rainfall corrections in climatology datasets. This advancement holds promise for projecting extreme precipitation and fostering the development of more resilient cities in the future.
C1 [Sui, Xinxin; Niyogi, Dev] Univ Texas Austin, Cockrell Sch Engn, Maseeh Dept Civil Architectural & Environm Engn, Austin, TX 78712 USA.
   [Yang, Zong - Liang; Niyogi, Dev] Univ Texas Austin, Jackson Sch Geosci, Dept Earth & Planetary Sci, Austin, TX 78712 USA.
   [Shepherd, Marshall] Univ Georgia, Dept Geog, Athens, GA 30602 USA.
C3 University of Texas System; University of Texas Austin; University of
   Texas System; University of Texas Austin; University System of Georgia;
   University of Georgia
RP Sui, XX (corresponding author), Univ Texas Austin, Cockrell Sch Engn, Maseeh Dept Civil Architectural & Environm Engn, Austin, TX 78712 USA.
EM happy1@utexas.edu
RI Yang, Zong-Liang/IZE-2309-2023; Shepherd, James/KJM-7829-2024; Yang,
   Zong-Liang/B-4916-2011; Niyogi, Dev/H-6326-2013
OI Yang, Zong-Liang/0000-0003-3030-0330; Sui, Xinxin/0000-0002-7527-8141;
   Shepherd, Marshall/0000-0002-7607-3332; Niyogi, Dev/0000-0002-1848-5080
FU NASA Interdisciplinary Science (IDS) [80NSSC20K1262, 80NSSC20K1268]; DOE
   Advanced Scientific Computing Research Program [DE-SC002221]; US
   National Science Foundation [2413827]; DOE Urban Integrated Field Lab
   (CROCUS) [DE-SC0023243]; Future Investigators in NASA Earth and Space
   Science and Technology (FINESST) Fellowship; U.S. Department of Energy
   (DOE) [DE-SC0023243] Funding Source: U.S. Department of Energy (DOE)
FX This work benefitted from the NASA Interdisciplinary Science (IDS)
   Grants 80NSSC20K1262 and 80NSSC20K1268; DOE Advanced Scientific
   Computing Research Program under Grant No. DE-SC002221; US National
   Science Foundation grant 2413827; and DOE Urban Integrated Field Lab
   (CROCUS) Grant No. DE-SC0023243. Xinxin Sui is supported by the Future
   Investigators in NASA Earth and Space Science and Technology (FINESST)
   Fellowship.
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NR 37
TC 4
Z9 4
U1 19
U2 28
PU NATL ACAD SCIENCES
PI WASHINGTON
PA 2101 CONSTITUTION AVE NW, WASHINGTON, DC 20418 USA
SN 0027-8424
EI 1091-6490
J9 P NATL ACAD SCI USA
JI Proc. Natl. Acad. Sci. U. S. A.
PD SEP 17
PY 2024
VL 121
IS 38
AR e2311496121
DI 10.1073/pnas.2311496121
PG 8
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA O2G8X
UT WOS:001369388000008
PM 39250669
OA hybrid
DA 2025-04-22
ER

PT J
AU Li, HP
   Wang, Y
   Ping, LY
   Li, N
   Zhao, P
AF Li, Huipan
   Wang, Yuan
   Ping, Liying
   Li, Na
   Zhao, Peng
TI Comprehensive Zoning Strategies for Flood Disasters in China
SO WATER
LA English
DT Article
DE flood disaster; zoning mechanisms; intensity of exposure; exposure risk
ID RISK-ASSESSMENT; REDUCTION; EUROPE
AB The frequency of global floods has increased, posing significant threats to economic development and human safety. Existing flood risk zoning studies in disaster prevention lack integration of the natural-economic-social chain and urban resilience factors. This study addresses this gap by constructing flood disaster risk and intensity indices using data from 31 provinces and 295 prefectural-level cities in China from 2011 to 2022. These indices incorporate natural (rainfall), economic (GDP), and social (population, built-up area) indicators to assess the flood likelihood and loss degree, providing comprehensive risk and intensity ratings. The study also examines the impact of resilience factors-environmental (green space), infrastructural (rainwater pipeline density), and natural resource (watershed areas)-on flood intensity. Findings reveal that high-risk regions are mainly in the Yangtze River Basin and southern regions, while high-intensity regions are primarily in the middle and lower Yangtze River and certain northwestern cities. Increasing rainwater pipeline density mitigates flood impacts in high-risk, high-intensity areas, while expanding green spaces and pipelines are effective in high-risk, low-intensity regions. This paper proposes a comprehensive flood hazard zoning mechanism integrating natural, economic, and social factors with urban resilience, offering insights and a scientific basis for urban flood management.
C1 [Li, Huipan; Wang, Yuan; Ping, Liying; Li, Na; Zhao, Peng] Tianjin Univ, Sch Environm Sci & Engn, Tianjin 300350, Peoples R China.
C3 Tianjin University
RP Ping, LY; Zhao, P (corresponding author), Tianjin Univ, Sch Environm Sci & Engn, Tianjin 300350, Peoples R China.
EM lihuipan@tju.edu.cn; wyuan@tju.edu.cn; pingly45_@tju.edu.cn;
   lna0822@tju.edu.cn; zhpeng@tju.edu.cn
RI li, na/MIK-8798-2025
OI HUIPAN, LI/0009-0002-4446-6518; Zhao, Peng/0000-0002-1357-9280
FU National Key Research and Development Program of China; Postgraduate
   Arts and Sciences Top-notch Innovation Award Program for 2023 of Tianjin
   University [C1-2023-002, 2022-YRUC-01-0401, 2022-YRUC-01-0404]; 
   [2021YFC3001405]
FX This research was supported by the National Key Research and Development
   Program of China (Grant No. 2021YFC3001405), the Postgraduate Arts and
   Sciences Top-notch Innovation Award Program for 2023 of Tianjin
   University (Grant No. C1-2023-002) and the Joint research project on
   ecological protection and high-quality development in the Yellow River
   Basin (2022-YRUC-01-0401, 2022-YRUC-01-0404). All figures and tables in
   this paper were created by the authors.
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NR 48
TC 0
Z9 0
U1 13
U2 20
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD SEP
PY 2024
VL 16
IS 17
AR 2546
DI 10.3390/w16172546
PG 20
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA F7O1N
UT WOS:001311658900001
OA gold
DA 2025-04-22
ER

PT J
AU Yan, ZR
   Wang, DY
   Li, WB
   Tong, ZM
   Zhu, YL
   Shen, F
AF Yan, Zhuoran
   Wang, Dongyan
   Li, Wenbo
   Tong, Zhaomin
   Zhu, Yuanli
   Shen, Feng
TI Treat and halt: Occurrence of spatially heterogeneous cropland
   degradation in the peri-urban area
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Article
DE Land degradation; Peri-urban cropland conservation; Peri-urban
   agriculture; Urban resilience; Non-linear effects
ID CULTIVATED LAND; URBAN EXPANSION; FOOD SYSTEMS; ABC ANALYSIS;
   AGRICULTURE; FARMLAND; SOIL; URBANIZATION; INSIGHTS; CITIES
AB Globally, city region food systems (CRFS) are suffering from constant disruption of supply chains by the ongoing shocks of weather, disease, and geopolitical crisis. Prioritizing the development of peri-urban agriculture (PUA) is widely perceived as a pathway to enhancing the resilience of CRFS. However, PUA is often plagued by persistent and complex land degradation threats. There has been little research on how to combat these threats. In order to bridge this knowledge gap, we selected a representative peri-urban area in northeast China and identified the mechanisms underlying spatially heterogeneous cropland degradation using geographic detector and gradient boosting decision tree statistical tools. The results indicate that the croplands under threat of contamination and fragmentation were clustered mainly at the urban periphery. Although industrialization and the construction of infrastructure were identified as factors contributing to degradation, their negative impacts may be offset by density control, as restrictions of the density of both industrial agglomeration (<0.125/km(2)) and road network (<3 km/km(2)) were found to be instrumental. Soil fertility was affected by both trickle-down and siphonic effects in the peri-urban area, exhibiting contradictory trends under different urban growth rates. Soil fertility benefits from proper agricultural intensification, but overuse of agrochemicals not only reduces the effect but inhibits the provision of other ecological functions. Unfortunately, zoning controls fail to prevent these degradation threats, especially in areas situated within 7 km of the urban periphery. This implies that landsparing strategies in the peri-urban area are not sufficient, and only by building a symbiotic interface that includes nature and agriculture as urban elements can the urban-rural dichotomy be overturned. Our findings support the global sustainable development of PUA.
C1 [Yan, Zhuoran; Wang, Dongyan; Shen, Feng] Jilin Univ, Coll Earth Sci, Changchun 130061, Peoples R China.
   [Li, Wenbo] Northeastern Univ, Sch Humanities & Law, Shenyang 110169, Peoples R China.
   [Tong, Zhaomin] Wuhan Univ, Sch Resource & Environm Sci, Wuhan 430079, Peoples R China.
   [Zhu, Yuanli] China Univ Min & Technol, Sch Publ Policy & Management, Xuzhou 221116, Peoples R China.
C3 Jilin University; Northeastern University - China; Wuhan University;
   China University of Mining & Technology
RP Li, WB (corresponding author), Northeastern Univ, Sch Humanities & Law, Shenyang 110169, Peoples R China.
EM yanzr21@mails.jlu.edu.cn; wang_dy@jlu.edu.cn; liwb@wfxy.neu.edu.cn;
   tongzm2215@126.com; 6268@cumt.edu.cn; shenfeng19@mails.jlu.edu.cn
RI Shen, Feng/GSD-2508-2022; li, zhongkai/AAD-8372-2021; li,
   wenbo/AAF-3106-2019; tong, zhaomin/KWT-8897-2024
OI Tong, Zhaomin/0009-0001-4506-3238
FU National Natural Science Foundation of China [42001223]
FX This study was financed by National Natural Science Foundation of China
   (42001223) .
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NR 77
TC 4
Z9 5
U1 19
U2 61
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 107366
DI 10.1016/j.eiar.2023.107366
EA NOV 2023
PG 14
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA CQ5M6
UT WOS:001126722800001
DA 2025-04-22
ER

PT J
AU Kimms, A
   Maiwald, M
AF Kimms, A.
   Maiwald, M.
TI Bi-objective safe and resilient urban evacuation planning
SO EUROPEAN JOURNAL OF OPERATIONAL RESEARCH
LA English
DT Article
DE Humanitarian logistics; OR in disaster relief; Urban evacuation
   planning; Cell-transmission model; Resilience
ID CELL TRANSMISSION MODEL; HEURISTIC APPROACH; TRAFFIC FLOW; OPTIMIZATION;
   SYSTEM; WAVES
AB We consider an urban evacuation scenario with the objective to minimize the overall hazard under various restrictions, e.g. rescuing all evacuees. The relevant parameters are generally assumed as deterministic, although such a situation is characterized by uniqueness and is subject to many uncertainties. We thus take uncertainties with respect to street capacities into account and introduce the aspect of resilience in the context of evacuation planning. This resilience aspect is implemented by utilizing the available street capacities in a more balanced way. For balancing the utilization of the street capacities, we accept a predetermined increase in the minimum hazard level. We present a new bi-objective path-based evacuation model based on the assumptions of the Cell-Transmission Model (CTM). We deal with the two conflicting objective functions by applying the e-Constraint Method. Furthermore, we present a special path algorithm that generates the evacuation path in line with our special requirements. We verify the meaningfulness of our proposed idea of resilient evacuation planning in a computational study. Additionally, the study shows some interesting revelations e.g., the more street capacities are blocked, the greater the benefit of the new approach. (C) 2018 Elsevier B.V. All rights reserved.
C1 [Kimms, A.; Maiwald, M.] Univ Duisburg Essen, Mercator Sch Management, Logist & Operat Res, Lotharstr 65, D-47048 Duisburg, Germany.
C3 University of Duisburg Essen
RP Kimms, A (corresponding author), Univ Duisburg Essen, Mercator Sch Management, Logist & Operat Res, Lotharstr 65, D-47048 Duisburg, Germany.
EM alf.kimms@uni-due.de
FU Stiftung Zukunft NRW
FX This work was financially supported by the Stiftung Zukunft NRW.
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NR 55
TC 28
Z9 32
U1 6
U2 83
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 0377-2217
EI 1872-6860
J9 EUR J OPER RES
JI Eur. J. Oper. Res.
PD SEP 16
PY 2018
VL 269
IS 3
BP 1122
EP 1136
DI 10.1016/j.ejor.2018.02.050
PG 15
WC Management; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Operations Research & Management Science
GA GG5XI
UT WOS:000432768700023
DA 2025-04-22
ER

PT J
AU Pugh, TAM
   MacKenzie, AR
   Davies, G
   Whyatt, JD
   Barnes, M
   Hewitt, CN
AF Pugh, Thomas A. M.
   MacKenzie, A. Robert
   Davies, Gemma
   Whyatt, J. Duncan
   Barnes, Matthew
   Hewitt, C. Nicholas
TI A futures-based analysis for urban air quality remediation
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-ENGINEERING
   SUSTAINABILITY
LA English
DT Article
DE pollution; sustainability; urban regeneration
ID HEAT-ISLAND; MORTALITY; DISPERSION; POLLUTION; EXPOSURE; IMPACT; OZONE;
   TREES; SUSTAINABILITY; PROTECTION
AB Strong sustainability credentials are now considered an important aspect of any new urban development. However, actions to improve sustainability (described here as solutions) must not only perform under present conditions but must also continue to deliver their benefits however the future develops. This paper examines sustainability with respect to air quality (AQ) for a 6.6 ha case study in Lancaster, UK. The impacts of the proposed development on concentrations of the pollutants nitrogen dioxide, ozone and particulate matter and on air temperature are considered. The aspects of the development designed to enhance its sustainability for AQ, either explicitly or implicitly, include making the development permeable to non-motorised transport, providing new and appropriate bus routes, and minimising car parking space. Further important aspects of the design are highlighted, including tree planting, building form and albedo. The resilience of these solutions to future change is assessed using a scenarios-based futures analysis and the future resilience of many of the proposed solutions is shown to be uncertain. This is particularly the case for those solutions that rely on policy or maintenance to maintain their efficacy. The importance of developing cross-disciplinary sustainability solutions to enhance resilience is highlighted.
C1 [Pugh, Thomas A. M.; MacKenzie, A. Robert; Davies, Gemma; Whyatt, J. Duncan; Barnes, Matthew; Hewitt, C. Nicholas] Univ Lancaster, Lancaster Environm Ctr, Lancaster, England.
   [MacKenzie, A. Robert] Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham, W Midlands, England.
C3 Lancaster University; University of Birmingham
RP Pugh, TAM (corresponding author), Univ Lancaster, Lancaster Environm Ctr, Lancaster, England.
RI Hewitt, Charles/ABF-9429-2020; Barnes, Matthew/B-5090-2014; MacKenzie,
   Angus/ISS-0362-2023; Whyatt, James/D-8123-2014; Pugh,
   Thomas/A-3790-2010; MacKenzie, Angus Robert/B-1704-2009; Hewitt, Charles
   Nicholas/B-1219-2009
OI Pugh, Thomas/0000-0002-6242-7371; MacKenzie, Angus
   Robert/0000-0002-8227-742X; Davies, Gemma/0000-0002-7420-2479; Hewitt,
   Charles Nicholas/0000-0001-7973-2666
FU UK Engineering and Physical Sciences Research Council (ESPRC); EPSRC
   [EP/F007426/1]; EPSRC [EP/F007426/1] Funding Source: UKRI
FX The authors thank Lancaster City Council for their helpful and
   comprehensive assistance in providing details of, and discussions
   relating to, the Luneside East case study. The authors also thank all
   the members of the UK Engineering and Physical Sciences Research Council
   (ESPRC) funded urban futures team and associated expert panelists who
   helped formulate and develop both this paper and the ideas underpinning
   it. This project was funded by EPSRC (grant no. EP/F007426/1) as part of
   the Sustainable Urban Environments (SUE) programme.
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NR 82
TC 17
Z9 18
U1 0
U2 50
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.
PD MAR
PY 2012
VL 165
IS 1
BP 21
EP 36
DI 10.1680/ensu.2012.165.1.21
PG 16
WC Green & Sustainable Science & Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Engineering
GA 917UF
UT WOS:000302203400003
DA 2025-04-22
ER

PT J
AU Chen, Y
   Irwin, EG
   Jayaprakash, C
AF Chen, Yong
   Irwin, Elena G.
   Jayaprakash, Ciriyam
TI Dynamic modeling of environmental amenity-driven migration with
   ecological feedbacks
SO ECOLOGICAL ECONOMICS
LA English
DT Article
DE Human-environment interactions; Coupled human-natural systems; Natural
   amenities; Urbanization; Resilience; Regional growth
ID LAND-USE; SYSTEMS; EUTROPHICATION; RESILIENCE; RANGELANDS; SUBJECT; SLOW
AB Environmental amenity-driven migration presents a double-edged sword to policy makers concerned with both economic and ecological sustainability. Clearly the protection of environmental amenities is important, but what is the right balance between ecosystem protection and regional economic processes that simultaneously respond to and degrade ecological resources? We consider this question in the context of households that are attracted to a region by urban and lake amenities and a lake ecosystem that becomes degraded by land development. An analytical expression for the time evolution of population is derived from households' and firms' optimizing behaviors. Numerical methods with phase plane diagrams are used to study the steady state and transient dynamics of the resulting population-phosphorus coupled system. The system is found to be bi-stable under a range of parameter values with one attractor corresponding to a desired "balanced" economy-ecology state and the other to a very small population base with fully restored ecology. We examine the dynamics and quantify the resilience of the system in and away from the balanced steady state using phase plane diagrams that demarcate the two domains of attraction. Economic-ecological interactions fundamentally alter regional economic dynamics and influence the resilience of the balanced domain of attraction, For example, a one percent increase in the loadings coefficient associated with residential land development generates a three percent decline in the resilience of the balanced state. We find that economic feedbacks often increase system resilience. Initial increases in the attraction of urban amenities spur greater population growth that increases the resilience of the balanced state. In addition, price feedbacks that arise from capitalized (dis)amenities increase the resilience of the system to bad ecological shocks. (C) 2009 Elsevier B.V. All rights reserved.
C1 [Chen, Yong; Irwin, Elena G.] Ohio State Univ, Dept Agr Environm & Dev Econ, Columbus, OH 43210 USA.
   [Jayaprakash, Ciriyam] Ohio State Univ, Dept Phys, Columbus, OH 43210 USA.
C3 University System of Ohio; Ohio State University; University System of
   Ohio; Ohio State University
RP Irwin, EG (corresponding author), Ohio State Univ, Dept Agr Environm & Dev Econ, 2120 Fyffe Rd, Columbus, OH 43210 USA.
EM irwin.78@osu.edu
OI Irwin, Elena/0000-0001-7908-5964
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NR 29
TC 23
Z9 27
U1 3
U2 43
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 AUG 15
PY 2009
VL 68
IS 10
BP 2498
EP 2510
DI 10.1016/j.ecolecon.2009.01.012
PG 13
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 475SX
UT WOS:000268382400005
DA 2025-04-22
ER

PT J
AU Kolotouchkina, O
   Barroso, CL
   Sánchez, JLM
AF Kolotouchkina, Olga
   Llorente Barroso, Carmen
   Sanchez, Juan Luis Manfredi
TI Smart cities, the digital divide, and people with disabilities
SO CITIES
LA English
DT Article
DE Cities; Digital divide; Digital accessibility; Disability; Digital
   inclusion; Urban governance; Barrier-free digital urban logic
AB Urban development that is both smart and sustainable is intrinsically linked to digital innovation in city management, as well as to the transition toward digital urban governance and the practice of digital citizenship. Cities on a global scale continuously launch new digital services and smart solutions in order to become places that are more resilient, efficient, and attractive. While digitally-driven urban development has become a new paradigm for cities, the digital divide is emerging as a serious concern when it comes to the goal of making cities accessible and inclusive for everyone, especially the most vulnerable. Issues such as digital inclusion and access to key urban services, information, and experiences by people with disabilities (PwD) are critical areas in which cities face important challenges related to ethical and responsible governance. The aim of this paper is to provide conceptual and empirical insights into the culture of digital accessibility of PwD on an urban scale. It argues that leadership in digital accessibility can inspire transformative change, allowing cities to be envisioned from the standpoint of digital inclusion and equity, thereby fostering a barrier-free, digital urban logic.
C1 [Kolotouchkina, Olga; Llorente Barroso, Carmen] Univ Complutense Madrid, Fac Informat Sci, Av Complutense,3 Ciudad Univ, Madrid 28040, Spain.
   [Sanchez, Juan Luis Manfredi] Georgetown Univ, Sch Foreign Serv, 37th & O St NW, Washington, DC 20057 USA.
C3 Complutense University of Madrid; Georgetown University
RP Kolotouchkina, O (corresponding author), Univ Complutense Madrid, Fac Informat Sci, Av Complutense,3 Ciudad Univ, Madrid 28040, Spain.
EM olga.kolotouchkina@ucm.es; carmenllorente@ucm.es;
   juan.manfredi@georgetown.edu
RI KOLOTOUCHKINA SHVEDOVA, OLGA/M-4728-2017; Llorente-Barroso,
   Carmen/ABH-3280-2022; Manfredi-Sánchez, Juan-Luis/HKP-1606-2023
OI KOLOTOUCHKINA, OLGA/0000-0002-8348-8544
FU (Ministry for Science and Innovation, Spain) [RTI2018-096733-B-I00]
FX This research has been supported by the project: Public Diplomacy of
   Ibero-American global cities: communication strategies and soft power to
   influence global environmental legislation (Grant Agreement:
   RTI2018-096733-B-I00, The Ministry for Science and Innovation, Spain).
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NR 32
TC 45
Z9 45
U1 21
U2 177
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 APR
PY 2022
VL 123
AR 103613
DI 10.1016/j.cities.2022.103613
EA FEB 2022
PG 4
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA YW8HV
UT WOS:000753655000002
OA hybrid
DA 2025-04-22
ER

PT J
AU Mroczkowski, AL
   Sanchez, B
AF Mroczkowski, Alison L.
   Sanchez, Bernadette
TI The Role of Racial Discrimination in the Economic Value of Education
   Among Urban, Low-Income Latina/o Youth: Ethnic Identity and Gender as
   Moderators
SO AMERICAN JOURNAL OF COMMUNITY PSYCHOLOGY
LA English
DT Article
DE Latina/o youth; Racial discrimination; Ethnic identity; Gender; Economic
   value of education; Academic achievement
ID ASIAN-AMERICAN; AFRICAN-AMERICAN; MENTAL-HEALTH; ADOLESCENTS;
   TRAJECTORIES; ACHIEVEMENT; EXPERIENCES; RESILIENCE; PREDICTORS; BLACK
AB The present study used resilience theory to explore relationships among perceived racial discrimination, ethnic identity, gender, and economic value of education (EVE) among urban, low-income, Latina/o youth. It was expected that racial discrimination would predict poorer perceptions of the EVE among Latina/o adolescents. Ethnic identity was hypothesized to buffer the negative effect of racial discrimination on Latina/o students' EVE. The participants in this study were 396 urban, low-income Latina/o high school students from a large, Midwestern city who completed surveys in both 9th- and 10th-grade. Structural equation modeling was used to test the relationships among racial discrimination, ethnic identity, and EVE. Results supported a protective model of resilience. Specifically, ethnic identity served as a protective factor by buffering the negative effect of perceived racial discrimination on EVE for male participants. The present study is the first to examine ethnic identity as a buffer of racial discrimination on EVE among Latina/o high school students. Future directions and implications are discussed.
C1 [Mroczkowski, Alison L.; Sanchez, Bernadette] Depaul Univ, Dept Psychol, Chicago, IL 60614 USA.
C3 DePaul University
RP Mroczkowski, AL (corresponding author), Depaul Univ, Dept Psychol, 2219 N Kenmore, Chicago, IL 60614 USA.
EM amroczk2@depaul.edu
FU National Institute of Child Health and Human Development
   [1R03HD057343-01A2]
FX This research was funded by a Grant awarded to the second author from
   the National Institute of Child Health and Human Development
   (1R03HD057343-01A2). The authors would like to thank the Project UNO
   team members who helped collect the data analyzed in the present study,
   as well as Dr. Yan Li for her support in the preparation of this
   manuscript.
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NR 35
TC 22
Z9 46
U1 1
U2 39
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0091-0562
EI 1573-2770
J9 AM J COMMUN PSYCHOL
JI Am. J. Community Psychol.
PD SEP
PY 2015
VL 56
IS 1-2
BP 1
EP 11
DI 10.1007/s10464-015-9728-9
PG 11
WC Public, Environmental & Occupational Health; Psychology,
   Multidisciplinary; Social Work
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Psychology; Social Work
GA CN4AK
UT WOS:000358370200001
PM 25908637
DA 2025-04-22
ER

PT J
AU Daffara, P
AF Daffara, Philip
TI Rethinking tomorrow's cities: Emerging issues on city foresight
SO FUTURES
LA English
DT Article
AB Rethinking tomorrow's cities now, builds our capacity to act with foresight and create resilient and liveable places. I use methods from the futures studies field, particularly macrohistory, to provoke our current patterns of city making. From macrohistory, the grand patterns of social change reveal some of the key systems dynamics influencing the rise and fall of cities in civilisation. The key urban system dynamics in the broadest sense provide a meta-framework of emerging issues shaping new urban challenges or opportunities for our towns and cities. The hope drawn from the past and present is to focus our urban interventions in the key areas to create future cities of wonder and purpose. The implications of the emerging issues (critical focus areas of city foresight) that arise from the macrohistorical analysis are discussed using the case study of the Maroochy 2025 community visioning project.
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C1 Futuresense, Mt Creek 4557, Australia.
RP Daffara, P (corresponding author), Futuresense, 17 Satinwood Pl, Mt Creek 4557, Australia.
EM p.daffara@futuresense.com.au
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Z9 25
U1 0
U2 26
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0016-3287
EI 1873-6378
J9 FUTURES
JI Futures
PD SEP
PY 2011
VL 43
IS 7
SI SI
BP 680
EP 689
DI 10.1016/j.futures.2011.05.009
PG 10
WC Economics; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Public Administration
GA 807UX
UT WOS:000293929100006
DA 2025-04-22
ER

PT J
AU Chambers, P
   Andrews, T
AF Chambers, Peter
   Andrews, Tom
TI Never mind the bollards: The politics of policing car attacks through
   the securitisation of crowded urban places
SO ENVIRONMENT AND PLANNING D-SOCIETY & SPACE
LA English
DT Article
DE Security bollards; car attacks; crowded urban places; risk and
   insurance; terror and resilience; securitisation
ID RISK; SECURITY; RESILIENCE; CITIES
AB This paper follows an example of security bollarding in response to car attacks, now widely offered as a solution to the 'new normal' use of motor vehicles as weapons for terrorist attacks in crowded urban places. We examine the relations between the specificities of an attack in Melbourne in 2017, where bollards were presented as regrettable but necessary. We explore how improvisations softened the political impact of this target hardening through an aesthetic harm reduction called bollart, and we give attention to how bollarding is aligned with global logistics, governing social complexity by securing circulation. Finally, we analyse how the bollard minded the concerns of its publics by establishing an agentic relay of responsibilisation. In policing car attacks by securitising, the dream of security and the nightmare of catastrophe were patiently translated back into 'business as usual' through a set of measures that deflected risks and costs: by hedging, through building resilience, by absorbing semiotic flak and preventing responsibility from resting with any 'one'. The bollard provided a way to govern complexity by policing terror in public spaces - in the absence of the police, or a shared vision of justice.
C1 [Chambers, Peter] RMIT Univ, Melbourne, Vic, Australia.
   [Andrews, Tom] Univ Melbourne, Melbourne, Vic, Australia.
C3 Royal Melbourne Institute of Technology (RMIT); University of Melbourne
RP Chambers, P (corresponding author), RMIT Univ, Sch Global Studies, Melbourne, Vic, Australia.
EM peter.chambers@rmit.edu.au
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TC 15
Z9 17
U1 0
U2 7
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0263-7758
EI 1472-3433
J9 ENVIRON PLANN D
JI Environ. Plan. D-Soc. Space
PD DEC
PY 2019
VL 37
IS 6
BP 1025
EP 1044
DI 10.1177/0263775818824343
PG 20
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA JL4BC
UT WOS:000495475000005
DA 2025-04-22
ER

PT J
AU Wang, J
   Fu, MJ
AF Wang, Jun
   Fu, Man-Jun
TI Study on the Distribution of Fresh Food Support System-An Example of
   Shanghai during the Epidemic Closure of 2022
SO SUSTAINABILITY
LA English
DT Article
DE sustainability; urban resilience; basic material supply system; epidemic
   closure
AB One of the key indicators to measure the sustainability and resilience of a city during a public health crisis is how well it can meet the daily needs of its residents. During the COVID-19 lockdown in Shanghai in 2022, e-commerce shopping and delivery became the most important method for ensuring the city's material supplies. This article uses the distribution data of a fresh e-commerce platform's pre-warehouse and static population distribution data to establish a basic material supply system evaluation model for the city and explore its resilience potential. Focusing on the central urban area of Shanghai, this study uses a population heat map with geographic coordinates to reflect the static distribution of residents and obtains the distribution data of the e-commerce pre-warehouses. Using kernel density analysis, the relationship between the pre-warehouses and the residents' needs is established. Through analysis, it was found that the supply capacity of fresh food in different areas of Shanghai during the lockdown could be categorized as insufficient, adequate, or excessive. Based on these three categories, improvement strategies were proposed. Finally, this article suggests establishing a scientific supply security system to promote urban sustainability and prepare for future challenges.
C1 [Wang, Jun; Fu, Man-Jun] East China Univ Sci & Technol, Sch Art Design & Media, 130 Meilong Rd, Shanghai 200237, Peoples R China.
C3 East China University of Science & Technology
RP Wang, J (corresponding author), East China Univ Sci & Technol, Sch Art Design & Media, 130 Meilong Rd, Shanghai 200237, Peoples R China.
EM wangjun81@ecust.edu.cn
OI , denief/0000-0003-0687-6911
FU China National Social Science Fund [19BJY063]
FX This research was funded by China National Social Science Fund (No.
   19BJY063).
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Z9 5
U1 2
U2 17
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR 24
PY 2023
VL 15
IS 9
AR 7107
DI 10.3390/su15097107
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 G2GL8
UT WOS:000987404500001
OA gold
DA 2025-04-22
ER

PT J
AU Appau, PK
   Asibey, MO
   Grant, R
AF Appau, Pius Kwabena
   Asibey, Michael Osei
   Grant, Richard
TI Enabling asset-based community development solutions: Pro-poor urban
   climate resilience in Kumasi, Ghana
SO CITIES
LA English
DT Article
DE ABCD approach; Community assets; Climate change; Resilience;
   Vulnerability
ID DISASTER; ADAPTATION; VULNERABILITY; INTEGRATION
AB Cities of the Global South, such as Kumasi, Ghana, face elevated risks from climate change, and current adaptation efforts are failing. Ghanaian cities are beset by weak urban planning capacities and inadequate finance to contend with climate risks, with the poor being swept aside. Given that the urban poor are excluded from official climate interventions, coupled with the fact that weak institutional and stakeholder coordination presently exists, community-led approaches to climate change are critical in providing a minimum localised climate-specific capacity. A preliminary investigation of two largely established informal settlements in Kumasi assessed residents' and local planning authorities' sensitivities for community-led approaches to climate risks. Our research: (i) investigated perceptions of the nature and evidence of climate change; (ii) examined respective knowledge on the asset-based community development approach (ABCD); (iii) identified and examined the influence of the ABCD approach in building resilience to climate change impacts; and (iv) probed the challenges with its implementation in informal settlements. We surveyed 367 households, six governmental agencies and conducted focus group discussions for relevant data. Respondents demonstrated a good understanding of the most salient manifestations of climate change: flooding, heat, and drought events. The absence of formally recognised associations and the challenges associated with utilising community assets and households' high expectations for government aid impede ABCD pathways. We conclude that mainstreaming ABCD within urban planning and governance systems can be enhanced by emphasising the co-benefits, better alignment with a shared vision of climate adaptation and transitioning towards an inclusive urban planning future.
C1 [Appau, Pius Kwabena] Univ Miami, Dept Geog, Miami, FL USA.
   [Asibey, Michael Osei] KNUST, Coll Art & Built Environm, Dept Planning, Kumasi, Ghana.
   [Grant, Richard] Univ Miami, Dept Geog & Sustainable Dev, Coral Gables, FL USA.
C3 University of Miami; Kwame Nkrumah University Science & Technology;
   University of Miami
RP Asibey, MO (corresponding author), KNUST, Coll Art & Built Environm, Dept Planning, Kumasi, Ghana.
EM appaupk@miamioh.edu; asibeymichael@yahoo.com; rgrant@miami.edu
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NR 77
TC 14
Z9 14
U1 6
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 FEB
PY 2024
VL 145
AR 104723
DI 10.1016/j.cities.2023.104723
EA DEC 2023
PG 14
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA EO5F7
UT WOS:001139873900001
DA 2025-04-22
ER

PT J
AU Xu, JR
   Ji, CH
   Yang, LH
   Liu, Y
   Xie, ZQ
   Fu, XF
   Jiang, FS
   Liao, MF
   Zhao, L
AF Xu, Jiarui
   Ji, Chunhou
   Yang, Lihong
   Liu, Yun
   Xie, Zhiqiang
   Fu, Xingfeng
   Jiang, Fengshan
   Liao, Mengfan
   Zhao, Lei
TI Urban natural gas pipeline operational vulnerability under the influence
   of a social spatial distribution structure: A case study of the safety
   risk patterns in Kunming, China
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Urban pipelines; Pipeline risk; Infrastructure resilience; Natural gas
   pipeline safety; Vulnerability; Social spatial impact
ID OIL; NETWORK; MODEL
AB Frequent urban natural gas pipeline accidents pose a serious threat to the safety of people and property in surrounding areas. However, current research on natural gas pipeline risks primarily focuses on evaluating the pipelines themselves, with no established method for assessing the impact of pipeline disasters on surrounding areas. This paper proposes an urban natural gas pipeline risk assessment method that integrates the physical attributes of the pipelines with an analysis of social vulnerability based on urban social spatial distribution. Using urban Point of Interest (POI) data, a social spatial distribution model for potential natural gas pipeline accidents is constructed. The risk of pipeline failure is assessed based on physical vulnerability, while the consequences of failure are evaluated through social vulnerability. This method combines the analysis of physical and social vulnerabilities to achieve a comprehensive urban natural gas pipeline risk assessment. The results identified 68 out of 6148 pipelines in the study area as "double high" pipelines, characterized by high physical vulnerability (relatively high risk pipelines) and high social vulnerability (involving level IV areas). The high risk communities identified in the study area are the Cuihu West Road Community and the Daguan Commercial City Community, highlighting the characteristics of risk distribution. The findings suggest that this study contributes to improving urban resilience to natural gas pipeline incidents, reducing potential economic losses and public impacts, and enhancing urban public safety. It also provides new insights into natural gas pipeline risk assessment and urban public safety research.
C1 [Xu, Jiarui; Ji, Chunhou] Yunnan Univ, Inst Int Rivers & Ecosecur, Kunming 650504, Peoples R China.
   [Yang, Lihong; Liu, Yun; Xie, Zhiqiang; Fu, Xingfeng; Jiang, Fengshan; Liao, Mengfan] Yunnan Univ, Sch Earth Sci, Kunming 650504, Peoples R China.
   [Zhao, Lei] Kunming Surveying & Mapping Management Ctr, Kunming 650504, Peoples R China.
C3 Yunnan University; Yunnan University
RP Xie, ZQ (corresponding author), Univ Town East Outer Ring South, Kunming 650504, Peoples R China.
EM xzq_2019@ynu.edu.cn
RI Zhao, Lei/F-4258-2018; Fu, Xingfeng/LNP-5549-2024
FU National Natural Science Foundation of China [72361035]; Yunnan
   Fundamental Research Projects [202401BF070001-026]; The 2022 Yunnan
   University Professional Degree Graduate Practice Innovation Fund Project
   [ZC-22221192]; Yunnan Province industry-education integration graduate
   joint training base construction project; Kunming Surveying and Mapping
   Institute; Kunming Branch of Yunnan PetroChina Kunlun Gas Co., Ltd.
FX This work was supported by the National Natural Science Foundation of
   China (Grant No.72361035) ; Yunnan Fundamental Research Projects (Grant
   No. 202401BF070001-026) ; 2022 Yunnan University Professional Degree
   Graduate Practice Innovation Fund Project (ZC-22221192) ; Yunnan
   Province industry-education integration graduate joint training base
   construction project. We thank the Kunming Surveying and Mapping
   Institute and Kunming Branch of Yunnan PetroChina Kunlun Gas Co., Ltd.
   for their support and help.
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NR 60
TC 2
Z9 2
U1 24
U2 24
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 FEB
PY 2025
VL 254
AR 110593
DI 10.1016/j.ress.2024.110593
EA OCT 2024
PN A
PG 15
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA L1X5Z
UT WOS:001348722300001
DA 2025-04-22
ER

PT J
AU Mariano, C
   Marino, M
   Pisacane, G
   Sannino, G
AF Mariano, Carmela
   Marino, Marsia
   Pisacane, Giovanna
   Sannino, Gianmaria
TI Sea Level Rise and Coastal Impacts: Innovation and Improvement of the
   Local Urban Plan for a Climate-Proof Adaptation Strategy
SO SUSTAINABILITY
LA English
DT Article
DE climate change; sea level rise; coastal flooding; risk; SLR projections;
   urban planning; urban resilience; Local Urban Plan; local adaptation
   strategy; sustainability
ID MEDITERRANEAN SEA; MASS COMPONENTS; ROBUST; SCENARIOS; RELEVANCE;
   PATHWAYS; SCIENCE; EUROPE; PART
AB In recent years, the territorial impacts connected to sea level rise have prompted a reflection on the responsibilities of policy makers in transposing these issues into urban agendas. The need also emerged to both broaden and update the skills of urban planners and to improve territorial governance tools, with the aim of developing feasible regeneration and resilience strategies to face climate change. In this paper, a methodology for the production of Flood Risk Maps is presented, as applied to the Municipality of Ravenna, Italy, by only considering the static component of inundation hazard, i.e., the projected Mean Sea Level Rise, as a first step towards increased preparedness. The resulting Flood Risk Maps represent, in fact, an innovation with respect to the current cognitive framework that supports local urban planning, by providing information on a potential risk that has so far been overlooked. The method combines sea level rise projections under the pessimistic RCP8.5 scenario with georeferenced territorial data, aiming to identify the physical consistency of the urban-structure components which are potentially at risk. For successive time horizons (2030, 2050 and 2100), our results show the progressive impairment and potential degradation of extensive urban areas that are disregarded in the urban planning regulations currently in force. This preliminary evaluation phase is aimed at prompting and supporting the necessary updating of the planning tools and regulations adopted by the public bodies responsible for territorial governance, by identifying priority areas for intervention, and helping define mitigation and adaptation actions.
C1 [Mariano, Carmela; Marino, Marsia] Sapienza Univ Rome, Planning Design & Architecture Technol Dept PDTA, I-00196 Rome, Italy.
   [Pisacane, Giovanna; Sannino, Gianmaria] ENEA Casaccia Res Ctr, Climate Modeling & Impacts Lab, I-00123 Rome, Italy.
C3 Sapienza University Rome; Italian National Agency New Technical Energy &
   Sustainable Economics Development
RP Mariano, C (corresponding author), Sapienza Univ Rome, Planning Design & Architecture Technol Dept PDTA, I-00196 Rome, Italy.
EM carmela.mariano@uniroma1.it; marsia.marino@uniroma1.it;
   giovanna.pisacane@enea.it; gianmaria.sannino@enea.it
RI Pisacane, Giovanna/AAX-7244-2021; Sannino, Gianmaria/AAL-8402-2021;
   Marino, Marsia/HKO-9350-2023; MARIANO, Carmela/ABB-3654-2022
OI MARIANO, Carmela/0000-0002-0981-0312; Pisacane,
   Giovanna/0000-0003-2619-2664; Marino, Marsia/0000-0002-2425-9872
FU PDTA Department of Sapienza-University of Rome; SOCLIMPACT project of
   European Union's Horizon 2020 research and innovation programme
   [776661]; H2020 Societal Challenges Programme [776661] Funding Source:
   H2020 Societal Challenges Programme
FX The APC was funded by the PDTA Department of Sapienza-University of
   Rome, research 2020 "Strategie di rigenerazione urbana per territori
   climate proof. Strumenti e metodi per la valutazione della vulnerabilita
   e per l'individuazione di tattiche di resilienza degli ambiti urbani
   costieri soggetti a sea level rise", under the scientific coordination
   of Prof. Carmela Mariano. The ENEA contribution was supported by the
   SOCLIMPACT project of European Union's Horizon 2020 research and
   innovation programme under grant agreement number 776661. The full name
   of the project is "DownScaling CLImate ImPACTs and decarbonisation
   pathways in EU islands, and enhancing socioeconomic and non-market
   evaluation of Climate Change for Europe, for 2050 and Beyond".
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NR 84
TC 10
Z9 10
U1 4
U2 36
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 1565
DI 10.3390/su13031565
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 QD6OY
UT WOS:000615636100001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Mariano, C
   Rossi, F
AF Mariano, Carmela
   Rossi, Francesca
TI RivEr/Generation_LAB-Linking Resilience with Inclusiveness in the
   Urban-Built Environment of Rome
SO SUSTAINABILITY
LA English
DT Article
DE resilience; climate change; vulnerability; water management and urban
   planning; environmental technological design; nature-based solutions
AB The impact of metropolization processes and climate change effects on natural and anthropic environments, together with energy waste, the excessive consumption of agricultural and natural soils and their progressive waterproofing and a reduction in vegetation cover, highlights the need for sustainable management of existing resources, in terms of equitable and ethical development, towards sustainable and inclusive communities able to adapt to the negative effects of emergency phenomena. This contribution presents the results of the activities conducted in the RivEr/Generation_LAB, a project organized by three CIVIS members (Sapienza University of Rome, Universite libre de Bruxelles, Universidad Autonoma de Madrid) as a part of the CIVIS Project "RivEr/Generation_LAB. Linking resilience with inclusiveness in the urban built environment of Rome, Brussels, and Madrid", financed by the Hub4 Cities, Territories & Mobilities' Call for proposals 2021. The project proposes a methodology of intervention in the Flaminio district, in particular in the Olympic Village and its relationship with the Tiber River, in line with the Sustainable Development Goals, the Millennium Ecosystem Assessment and the New European Bauhaus, to establish new relationships between cities and the natural environment, favoring sustainable and inclusive public spaces.
C1 [Mariano, Carmela; Rossi, Francesca] Sapienza Univ Rome, Dept Planning, Design, Architecture Technol, I-00185 Rome, Italy.
C3 Sapienza University Rome
RP Mariano, C (corresponding author), Sapienza Univ Rome, Dept Planning, Design, Architecture Technol, I-00185 Rome, Italy.
EM carmela.mariano@uniroma1.it
RI MARIANO, Carmela/ABB-3654-2022
OI MARIANO, Carmela/0000-0002-0981-0312
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NR 49
TC 2
Z9 2
U1 3
U2 10
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2023
VL 15
IS 6
AR 4774
DI 10.3390/su15064774
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 A9VM2
UT WOS:000958521100001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Salvati, L
   Serra, P
AF Salvati, Luca
   Serra, Pere
TI Estimating Rapidity of Change in Complex Urban Systems: A
   Multidimensional, Local-Scale Approach
SO GEOGRAPHICAL ANALYSIS
LA English
DT Article
ID FACTORIAL ECOLOGY; LAND-USE; GROWTH; CITY; DYNAMICS; ECONOMY;
   URBANIZATION; RESILIENCE; EVOLUTION; DISTANCE
AB This study illustrates an exploratory approach based on a Multiway Factor Analysis (MFA) to estimate rapidity of change in complex urban systems, based on fast and slow variables. The proposed methodology was applied to 18 socioeconomic indicators of long-term (1960-2010) transformations in 115 municipalities of Athens' metropolitan area (Greece), including demography, land-use/planning, and urban form and functions. Athens was regarded as a dynamic urban area with diversified structures and functions at the local scale, expanding through a self-organized pattern rather than a centralized planning strategy. Athens' urban system was described using nine supplementary (topographic and territorial) variables and 30 independent indicators assessing the local context in recent times. Exploratory data analysis found an increasing connectedness and redundancy among socioeconomic indicators during the phase of largest urban expansion (1960-1990). Only the rate of population growth was classified as a fast variable for all five decades investigated. The overall rapidity of change was higher in 1960-1970, 1980-1990, and 2000-2010, decades that coincided with specific phases of urban expansion driven by migration inflow, second-home suburbanization, and Olympic games, respectively. Rapidity of change was high for functional indicators during all five decades studied, while demography indicators changed more rapidly in the first three decades and land-use/planning indicators in the last two decades. Rapidity of change was highest in peri-urban municipalities with a highly diversified economic structure dominated by industry. Our methodology provides a comprehensive overview of the transformations of a complex urban system, quantifying low-level indicators that are rarely assessed in the mainstream literature on urban studies. These results may contribute to design policies addressing complexity and promoting resilience in expanding metropolitan areas.
C1 [Salvati, Luca] Italian Council Agr Res & Econ CREA, Via Navicella 2-4, I-00184 Rome, Italy.
   [Serra, Pere] Univ Autonoma Barcelona, Grumets Res Grp, Dept Geog, Bellaterra, Spain.
C3 Consiglio per la Ricerca in Agricoltura e L'analisi Dell'economia
   Agraria (CREA); Autonomous University of Barcelona
RP Salvati, L (corresponding author), Italian Council Agr Res & Econ CREA, Via Navicella 2-4, I-00184 Rome, Italy.
EM luca.salvati@uniroma1.it
RI Salvati, Luca/AAS-6179-2021; Serra, Pere/N-4755-2015
OI Serra, Pere/0000-0003-1023-5586
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NR 70
TC 147
Z9 149
U1 2
U2 52
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0016-7363
EI 1538-4632
J9 GEOGR ANAL
JI Geogr. Anal.
PD APR
PY 2016
VL 48
IS 2
BP 132
EP 156
DI 10.1111/gean.12093
PG 25
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA DK1SV
UT WOS:000374695500002
OA Bronze, Green Submitted
DA 2025-04-22
ER

PT J
AU Clark, J
   Huang, HI
   Walsh, JP
AF Clark, Jennifer
   Huang, Hsin-I
   Walsh, John P.
TI A typology of 'innovation districts': what it means for regional
   resilience
SO CAMBRIDGE JOURNAL OF REGIONS ECONOMY AND SOCIETY
LA English
DT Article
DE regions; resilience; industrial districts; innovation systems; small
   firms
ID ECONOMIC-GEOGRAPHY; SCIENCE POLICY; SILICON VALLEY; KNOWLEDGE; FIRMS;
   SPILLOVERS; NETWORKS; INSTITUTIONS; GOVERNANCE; INVESTMENT
AB In this article, we engage the question of regional resilience theoretically and empirically. Our theoretical approach merges discussions of regional development in evolutionary economic geography (primarily UK based) with regional resilience in urban planning (primarily US based) using Markusen's industrial districts as a framework for analysis (1996). We use data on 'triadic' patents (USA, Japan and Europe) to measure regional innovation, both per capita by region and categorized by firm size for regions in the USA. We then use this data to create a 'typology of innovation districts'. Our analysis suggests that policies encouraging small-firm innovation have broad benefits for regional economies.
C1 [Clark, Jennifer; Huang, Hsin-I; Walsh, John P.] Georgia Inst Technol, Sch Publ Policy, Atlanta, GA 30332 USA.
C3 University System of Georgia; Georgia Institute of Technology
RP Clark, J (corresponding author), Georgia Inst Technol, Sch Publ Policy, 685 Cherry St, Atlanta, GA 30332 USA.
EM jennifer.clark@gatech.edu; connie.huang@gatech.edu;
   john.walsh@pubpolicy.gatech.edu
RI Huang, Hsini/AAO-5396-2020
OI Huang, Hsini/0000-0001-7546-1096; Clark, Jennifer/0000-0001-7908-032X
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NR 59
TC 103
Z9 115
U1 11
U2 150
PU OXFORD UNIV PRESS
PI OXFORD
PA GREAT CLARENDON ST, OXFORD OX2 6DP, ENGLAND
SN 1752-1378
EI 1752-1386
J9 CAMB J REG ECON SOC
JI Camb. J. Regions Econ. Soc.
PD MAR
PY 2010
VL 3
IS 1
BP 121
EP 137
DI 10.1093/cjres/rsp034
PG 17
WC Development Studies; Economics; Geography
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics; Geography
GA 784JQ
UT WOS:000292153800009
DA 2025-04-22
ER

PT J
AU Haque, AN
AF Haque, Anika Nasra
TI Climate risk responses and the urban poor in the global South: the case
   of Dhaka's flood risk in the low-income settlements
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Household adaptation; Communal adaptation; Flood risk; Urban poor;
   Dhaka; Low-income urban settlement
ID CHANGE ADAPTATION; RESILIENCE
AB The impacts of climatic hazards pose disproportionate risks on the poorer groups who are often the least able to adapt. The low-income urban settlements1 present the extreme cases where the vulnerability to climate risks increases manifold due to pre-existing socio-economic vulnerabilities (e.g. developed through lack of basic services). Despite wide acknowledgement of Dhaka's growing vulnerability to climate change, there is hardly any recent documentation on the existing micro-level adaptation practices, particularly on the most vulnerable lowincome communities who are the hardest hit and often lacks the pre-conditions for successful adaptation. Due to the lack of data the understanding of the ongoing phenomenon in Dhaka is not clear and this study attempts to fill the gap by identifying the ways in which Dhaka's low-income population respond to their flood risk. The study adopts mixed-methods (questionnaire survey, focus group discussions, transect walks) to collect required data covering different scales, i.e. household and community. The results show despite being challenged by numerous pre-existing conditions, the vulnerable communities show great resilience to climatic risks based on their limited resources, local knowledge and skills. The study also reveals that the urban poor does not respond to the physical risk itself, rather they respond to what that risk means to their livelihood. Based on the analysis of the existing adaptation responses, the study identifies ways in which the macro-level efforts can be integrated with the micro-level responses to achieve meaningful longer-term resilience.
C1 [Haque, Anika Nasra] Univ Cambridge, Dept Geog, Downing Pl, Cambridge CB2 3EN, England.
C3 University of Cambridge
RP Haque, AN (corresponding author), Univ Cambridge, Dept Geog, Downing Pl, Cambridge CB2 3EN, England.
EM anikanasra@gmail.com
RI Haque, Anika/HPF-4453-2023
OI Haque, Anika/0000-0002-0717-376X
FU Schlumberger Foundation; University of Cambridge
FX The material presented in this manuscript is based on the work funded by
   the Schlumberger Foundation and the University of Cambridge.
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NR 72
TC 7
Z9 7
U1 5
U2 13
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
PY 2021
VL 64
AR 102534
DI 10.1016/j.ijdrr.2021.102534
EA AUG 2021
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 UY8ZU
UT WOS:000701806200003
DA 2025-04-22
ER

PT J
AU Crowley, K
   Elliott, JR
AF Crowley (Nee Donovan), K.
   Elliott, J. R.
TI Earthquake disasters and resilience in the global North: lessons from
   New Zealand and Japan
SO GEOGRAPHICAL JOURNAL
LA English
DT Article
DE earthquakes; resilience; disaster
ID VULNERABILITY; IMPACTS; HAZARDS
AB In 2011 two significant earthquakes tested the world's most seismically resilient communities: the Christchurch earthquake in New Zealand and the Tohoku earthquake in Japan. These events challenged some of the best enforced, high-quality seismic building codes in the world and shocked two resilient communities. Although both countries coped extremely well, the concern lies with the many seismically vulnerable countries that are becoming rapidly industrial and urban centric. This commentary briefly examines the Christchurch and Tohuku earthquakes and considers what makes a community resilient and what can be learnt about resilience from disasters in the global North.
C1 [Elliott, J. R.] Univ Oxford, Dept Earth Sci, COMET, Oxford OX1 3AN, England.
C3 University of Oxford
RP Crowley, K (corresponding author), Catholic Agcy Overseas Dev CAFOD, Romero House,55 Westminster Bridge Rd, London SE1 7JB, England.
EM kcrowley@cafod.org.uk; john.elliott@earth.ox.ac.uk
RI Elliott, J./AAD-5242-2020
OI Donovan, Katherine/0000-0002-7360-4556; Elliott,
   John/0000-0003-2957-4596
FU NERC [come20001] Funding Source: UKRI
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EI 1475-4959
J9 GEOGR J
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VL 178
BP 208
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PG 8
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA 982AC
UT WOS:000307013100003
DA 2025-04-22
ER

PT J
AU Kremer, P
   Hamstead, Z
   Haase, D
   McPhearson, T
   Frantzeskaki, N
   Andersson, E
   Kabisch, N
   Larondelle, N
   Rall, EL
   Voigt, A
   Baró, F
   Bertram, C
   Gómez-Baggethun, E
   Hansen, R
   Kaczorowska, A
   Kain, JH
   Kronenberg, J
   Langemeyer, J
   Pauleit, S
   Rehdanz, K
   Schewenius, M
   van Ham, C
   Wurster, D
   Elmqvist, T
AF Kremer, Peleg
   Hamstead, Zoe
   Haase, Dagmar
   McPhearson, Timon
   Frantzeskaki, Niki
   Andersson, Erik
   Kabisch, Nadja
   Larondelle, Neele
   Rall, Emily L.
   Voigt, Annette
   Baro, Francesc
   Bertram, Christine
   Gomez-Baggethun, Erik
   Hansen, Rieke
   Kaczorowska, Anna
   Kain, Jaan-Henrik
   Kronenberg, Jakub
   Langemeyer, Johannes
   Pauleit, Stephan
   Rehdanz, Katrin
   Schewenius, Maria
   van Ham, Chantal
   Wurster, Daniel
   Elmqvist, Thomas
TI Key insights for the future of urban ecosystem services research
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE biodiversity; social-ecological systems; urban ecology; urban ecosystem
   services; urban green infrastructure; urban liveability; urban planning
ID GREEN INFRASTRUCTURE; CONCEPTUAL-FRAMEWORK; SCALE MISMATCHES;
   GOVERNANCE; RESILIENCE; DIVERSITY; MANAGEMENT; ROTTERDAM; BARCELONA;
   DYNAMICS
AB Understanding the dynamics of urban ecosystem services is a necessary requirement for adequate planning, management, and governance of urban green infrastructure. Through the three-year Urban Biodiversity and Ecosystem Services (URBES) research project, we conducted case study and comparative research on urban biodiversity and ecosystem services across seven cities in Europe and the United States. Reviewing >50 peer-reviewed publications from the project, we present and discuss seven key insights that reflect cumulative findings from the project as well as the state-of-the-art knowledge in urban ecosystem services research. The insights from our review indicate that cross-sectoral, multiscale, interdisciplinary research is beginning to provide a solid scientific foundation for applying the ecosystem services framework in urban areas and land management. Our review offers a foundation for seeking novel, nature-based solutions to emerging urban challenges such as wicked environmental change issues.
C1 [Kremer, Peleg] Villanova Univ, Dept Geog & Environm, Villanova, PA 19085 USA.
   [Kremer, Peleg] New Sch, Tishman Environm & Design Ctr, New York, NY USA.
   [Hamstead, Zoe] New Sch, Milano Sch Int Affairs Management & Urban Policy, New York, NY USA.
   [Haase, Dagmar; Kabisch, Nadja; Larondelle, Neele] Humboldt Univ, Dept Geog, Berlin, Germany.
   [Haase, Dagmar] UFZ Helmholtz Ctr Environm Res, Dept Computat Landscape Ecol, Munich, Germany.
   [McPhearson, Timon] New Sch, Environm Studies Program, Urban Ecol Lab, New York, NY USA.
   [Frantzeskaki, Niki] Erasmus Univ, Fac Social Sci, DRIFT, NL-3000 DR Rotterdam, Netherlands.
   [Andersson, Erik; Schewenius, Maria; Elmqvist, Thomas] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [Kabisch, Nadja] UFZ Helmholtz Ctr Environm Res, Dept Ecosyst Serv, Munich, Germany.
   [Kabisch, Nadja] German Ctr Integrat Biodivers Res iDiv, Leipzig, Germany.
   [Larondelle, Neele] Potsdam Inst Climate Impact Res, Potsdam, Germany.
   [Rall, Emily L.; Hansen, Rieke; Pauleit, Stephan] Tech Univ Munich, Chair Strateg Landscape Planning & Management, Munich, Germany.
   [Voigt, Annette] Alpen Adria Univ, Dept Geog & Reg Studies, Klagenfurt, Austria.
   [Baro, Francesc; Langemeyer, Johannes] Univ Autonoma Barcelona, Inst Environm Sci & Technol ICTA, Barcelona, Spain.
   [Bertram, Christine; Rehdanz, Katrin] Kiel Inst World Econ, Res Area Environm & Nat Resources, Kiel, Germany.
   [Gomez-Baggethun, Erik] Norwegian Inst Nat Res NINA, Trondheim, Norway.
   [Gomez-Baggethun, Erik] Norwegian Univ Life Sci NMBU, Dept Int Environm & Dev Studies Noragric, Trondheim, Norway.
   [Kaczorowska, Anna; Kain, Jaan-Henrik] Chalmers Univ Technol, Dept Architecture, Gothenburg, Sweden.
   [Kronenberg, Jakub] Univ Lodz, Dept Int Econ, Lodz, Poland.
   [Rehdanz, Katrin] Univ Kiel, Dept Econ, Kiel, Germany.
   [van Ham, Chantal] IUCN, Gland, Switzerland.
C3 Villanova University; The New School; The New School; Humboldt
   University of Berlin; Helmholtz Association; Helmholtz Center for
   Environmental Research (UFZ); The New School; Erasmus University
   Rotterdam - Excl Erasmus MC; Erasmus University Rotterdam; Stockholm
   University; Helmholtz Association; Helmholtz Center for Environmental
   Research (UFZ); Potsdam Institut fur Klimafolgenforschung; Technical
   University of Munich; University of Klagenfurt; Autonomous University of
   Barcelona; Leibniz Association; Institut fur Weltwirtschaft an der
   Universitat Kiel (IFW); Norwegian Institute Nature Research; Norwegian
   University of Life Sciences; Chalmers University of Technology;
   University of Lodz; University of Kiel
RP Kremer, P (corresponding author), Villanova Univ, Dept Geog & Environm, Villanova, PA 19085 USA.
RI Kabisch, Nadja/ABE-6198-2020; Kremer, Peleg/H-8373-2019; Kronenberg,
   Jakub/ABD-9941-2021; Frantzeskaki, Niki/AAN-1044-2021; Gomez-Baggethun,
   Erik/LSL-9726-2024; Kain, Jaan-Henrik/P-4805-2015; Langemeyer,
   Johannes/AAY-6252-2020; Andersson, Erik/AAE-9771-2019; Elmqvist,
   Thomas/AAY-6344-2021; Voigt, Annette/AAK-3239-2020; Baro,
   Francesc/C-1564-2019; Langemeyer, Johannes/AAH-7736-2020; McPhearson,
   Timon/JOZ-3799-2023; Kaczorowska, Anna Teresa/U-2502-2018; Kaczorowska,
   Anna/V-5710-2017; Pauleit, Stephan/ISV-4685-2023
OI Hamstead, Zoe/0000-0003-4104-2373; Hansen, Rieke/0000-0002-4230-1579;
   Baro, Francesc/0000-0002-0145-6320; Bertram,
   Christine/0000-0002-8186-5617; Kabisch, Nadja/0000-0002-8925-4423;
   Rehdanz, Katrin/0000-0002-5336-0582; Elmqvist,
   Thomas/0000-0002-4617-6197; kremer, peleg/0000-0001-6844-5557; Haase,
   Dagmar/0000-0003-4065-5194; Langemeyer, Johannes/0000-0002-0558-8486;
   Kronenberg, Jakub/0000-0003-4903-2401; McPhearson,
   Timon/0000-0002-9499-0791; Larondelle, Neele/0000-0003-2064-1713; Voigt,
   Annette/0000-0003-4434-1758; Frantzeskaki, Niki/0000-0002-6983-448X;
   Kaczorowska, Anna Teresa/0000-0003-4372-5637; Andersson,
   Erik/0000-0003-2716-5502; Kaczorowska, Anna/0000-0002-8993-9553;
   Schewenius, Maria/0000-0002-7122-6790; Pauleit,
   Stephan/0000-0002-0056-6720
FU ERA-Net BiodivERsA as part of the URBES project; ERANET fund; Division
   Of Behavioral and Cognitive Sci; Direct For Social, Behav & Economic
   Scie [1444755] Funding Source: National Science Foundation
FX This research was funded by the ERA-Net BiodivERsA as part of the URBES
   project (2011-2014), and the national funding bodies contributing to the
   ERANET fund.
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NR 64
TC 155
Z9 174
U1 27
U2 375
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 2016
VL 21
IS 2
AR 29
DI 10.5751/ES-08445-210229
PG 11
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA DR6ZF
UT WOS:000380049100033
OA Green Published, gold
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Qin, YF
   Guo, JK
   Liang, MX
   Feng, TQ
AF Qin, Yafeng
   Guo, Jianke
   Liang, Muxin
   Feng, Tianqi
TI Resilience characteristics of port nodes from the perspective of
   shipping network: Empirical evidence from China
SO OCEAN & COASTAL MANAGEMENT
LA English
DT Article
DE Shipping network; Port node; Node resilience; Structure -function
   -location; China
ID FLOWS
AB Ports are both the start and end points of shipping, they are connected by shipping routes, thereby forming a port shipping network that connects global industries and supply chains. Each port node has specific functions within the network, while its capacity to resist interference differs from that of other ports; consequently, when encountering external shocks, ports are not affected equally. Therefore, this paper proposes the concept of port node resilience from the perspective of the shipping network. This is achieved by analyzing the literature on regional, urban, and network resilience. Thereafter, by fully considering the complexity of port nodes' linkages, as well as their attributes vis-`a-vis the shipping network, a three-dimensional (structure, function, and location) econometric model of port-node resilience is constructed. By examining data from China's container ports for the years 2008 and 2018, this study analyzes port nodes' resilience characteristics and the differences in space. The results indicate that the studied port nodes' resilience index presents the characteristic of clustering. Further, the average resilience index increased from 0.25 (low) to 0.43 (medium). The differences in port nodes' regional resilience narrowed, while their absorption and transformation capacity improved when facing external interference.
C1 [Qin, Yafeng; Guo, Jianke; Feng, Tianqi] Liaoning Normal Univ, Ctr Studies Marine Econ & Sustainable Dev, Key Res Base Humanities & Social Sci, Minist Educ, Dalian 116029, Liaoning, Peoples R China.
   [Guo, Jianke] Nanjing Univ, Inst Int Relat, Nanjing 210046, Jiangsu, Peoples R China.
   [Qin, Yafeng] Liaoning Normal Univ, Sch Geog, Dalian 116029, Liaoning, Peoples R China.
   [Liang, Muxin] Guangzhou Inst Geog, Guangzhou 510070, Guangdong, Peoples R China.
C3 Liaoning Normal University; Nanjing University; Liaoning Normal
   University; Guangdong Academy of Sciences; Guangzhou Institute of
   Geography, Guangdong Academy of Sciences
RP Guo, JK (corresponding author), Liaoning Normal Univ, Ctr Studies Marine Econ & Sustainable Dev, Key Res Base Humanities & Social Sci, Minist Educ, Dalian 116029, Liaoning, Peoples R China.
EM qinyafeng8295@163.com; gjianke98@126.com; mxl151102@163.com;
   hebftq@163.com
OI qin, yafeng/0000-0002-0517-8348
FU National Natural Science Foundation of China [41871112]; Key Program of
   Humanities and Social Sciences of Ministry of Education [22JJD790028];
   LiaoNing Revitalization Talents Program [XLYC2007174]
FX Acknowledgements This work was supported by the National Natural Science
   Foundation of China [grant number 41871112] ; and Key Program of
   Humanities and Social Sciences of Ministry of Education [grant number
   22JJD790028] ; and the LiaoNing Revitalization Talents Program [grant
   number XLYC2007174] .
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NR 46
TC 34
Z9 36
U1 46
U2 207
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 APR 15
PY 2023
VL 237
AR 106531
DI 10.1016/j.ocecoaman.2023.106531
EA FEB 2023
PG 10
WC Oceanography; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Oceanography; Water Resources
GA 9W2OC
UT WOS:000948917900001
DA 2025-04-22
ER

PT J
AU Su, F
   Luo, JQ
   Liu, H
   Tong, L
   Li, Y
AF Su, Fei
   Luo, Jiaqi
   Liu, Hang
   Tong, Lei
   Li, Yuan
TI Assessment and Promotion Strategy of Rural Resilience in Yangtze River
   Delta Region, China
SO SUSTAINABILITY
LA English
DT Article
DE rural vitalization; rural resilience; spatio-temporal evolution;
   clustering analysis; Yangtze River Delta
ID COMMUNITY RESILIENCE
AB The Yangtze River Delta region is the most economically active and open region in China. It is also the region with the most prominent contradictions between urban and rural development. Therefore, it is necessary to strengthen the resilience of the rural areas in this region so that they can develop further with resources and opportunities after sustaining shocks. This study used a weighted TOPSIS method to measure the rural resilience of 153 research units from 2000 to 2019 and then applied the ESDA method to measure the spatial agglomeration or heterogeneity characteristics. The results show that: (1) The rural resilience of this region is higher in the east and lower in the west; (2) rural resilience has obvious spatial agglomeration characteristics, which have undergone a process of shifting from strong to weak before becoming strong again; and (3) the hotspots of rural resilience gradually shifted from Jiangsu to Zhejiang, while the coldspots gradually shifted from Zhejiang to Anhui. Finally, the K-means clustering algorithm was applied to divide all research units into five types: natural capital-dominated areas, productive capital-dominated areas, human capital-dominated areas, social-financial capital-dominated areas and general development areas. Then, the strategies for resilience promotion were proposed accordingly.
C1 [Su, Fei; Luo, Jiaqi; Liu, Hang; Tong, Lei; Li, Yuan] Zhejiang Gongshang Univ, Sch Tourism & Urban Rural Planning, Hangzhou 310018, Peoples R China.
C3 Zhejiang Gongshang University
RP Luo, JQ; Tong, L (corresponding author), Zhejiang Gongshang Univ, Sch Tourism & Urban Rural Planning, Hangzhou 310018, Peoples R China.
EM suf910@163.com; eilu_ute@163.com; liuhang0611@126.com;
   zjutonglei@126.com; liyuan@mail.zjgsu.edu.cn
RI liu, hang/JFA-1530-2023
OI Li, Yuan/0000-0003-0381-2605; LIU, HANG/0000-0002-3501-6016
FU National Natural Science Foundation of China [42071159, 51908498,
   41901202]
FX This research was funded by the National Natural Science Foundation of
   China, grant number 42071159, 51908498, 41901202.
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NR 73
TC 6
Z9 6
U1 14
U2 107
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY
PY 2022
VL 14
IS 9
AR 5382
DI 10.3390/su14095382
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 1G9GS
UT WOS:000796156700001
OA gold
DA 2025-04-22
ER

PT J
AU Shiwomeh, DN
   Kantoush, SA
   Sumi, T
   Nguyen, BQ
   Abdrabo, KI
AF Shiwomeh, Desmond N.
   Kantoush, Sameh A.
   Sumi, Tetsuya
   Nguyen, Binh Quang
   Abdrabo, Karim I.
TI Holistic mapping of flood vulnerability in slums areas of Yaounde city,
   Cameroon through household and institutional surveys
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Flood vulnerability index (FVI); Risk communication; Urban slums;
   Resilience; Household surveys
ID RISK-ASSESSMENT; SETTLEMENTS; COMMUNITIES; ADAPTATION; STRATEGIES;
   RESILIENCE; FRAMEWORK; LAGOS
AB Urbanization in major cities has resulted in increasing urban slum expansion. This, together with increased climate-change-driven hazards, and deplorable slum characteristics has led to considerably higher flood impacts in slum settlements. As such, there is a need for specialized flood vulnerability assessment tools that integrate features specific to the urban slums. Studies have consecrated efforts to integrated and multidimensional flood vulnerability studies. However, assessments that include social, economic, structural, and institutional realities of the slum settlements are rare in developing countries. This study comprehensively assessed the flood vulnerability in urban slums. It offers a simplified perspective of vulnerability in urban slums, capturing data from slum inhabitants, local councils, experts, and local NGOs since they often have profound insights into essential service availability, access, and quality within the study area. Utilizing data encompassing 40 indicators (exposure, susceptibility, and resilience), we assess the physical/structural, social, and economic/psychological vulnerability indices for slum households and the institutional vulnerability of 41 entities. Despite significant challenges of poor infrastructure and lack of basic disaster management tools, slum residents have developed recognizable strategies to overcome flooding. Institutions carrying out intervention activities in the slums were largely incompetent and plagued with challenges ranging from lack of technical know-how to access to funds and coordination. Finally, a significant gap exists between state efforts and the impacts of these efforts on the residents of these slums. These findings complement household-level data and provide an expanded understanding of vulnerability patterns, thus informing policymakers about interventions.
C1 [Shiwomeh, Desmond N.] Kyoto Univ, Grad Sch Engn, Dept Urban Management, Kyoto 6128133, Japan.
   [Kantoush, Sameh A.; Sumi, Tetsuya; Nguyen, Binh Quang] Kyoto Univ, Disaster Prevent Res Inst DPRI, Water Resources Res Ctr, Kyoto 6110011, Japan.
   [Nguyen, Binh Quang] Univ Danang, Univ Sci & Technol, 54 Nguyen Luong Bang, Danang, Vietnam.
   [Abdrabo, Karim I.] Cairo Univ, Fac Urban & Reg Planning, Giza 12613, Egypt.
C3 Kyoto University; Kyoto University; University of Danang; Egyptian
   Knowledge Bank (EKB); Cairo University
RP Shiwomeh, DN (corresponding author), Kyoto Univ, Grad Sch Engn, Dept Urban Management, Kyoto 6128133, Japan.
EM shiwomeh_desmond@yahoo.com; kantoush.samehahmed.2n@kyoto-u.ac.jp;
   sumi.tetsuya.2s@kyoto-u.ac.jp; nqbinh@dut.udn.vn;
   m.karim.ibrahim@cu.edu.eg
RI Sumi, Tetsuya/I-2848-2019; abdrabo, karim/AAL-6139-2020
OI Desmond Ndre, Shiwomeh/0009-0008-6786-2760; KANTOUSH, Sameh
   Ahmed/0000-0003-0919-5097
FU Japan-ASEAN Science, Technology, and Innovation Platform (JASTIP);
   Research Unit for Realization of Sustainable Society (RURSS) at Kyoto
   University; JSPS Core-to-Core Program [JPJSCCB20220004]; JSPS
   Postdoctoral Fellowships Program [P24064]
FX This work was supported by the Japan-ASEAN Science, Technology, and
   Innovation Platform (JASTIP) , the Research Unit for Realization of
   Sustainable Society (RURSS) at Kyoto University, and the JSPS
   Core-to-Core Program (Grant Number: JPJSCCB20220004) . Binh Quang Nguyen
   is supported by the JSPS Postdoctoral Fellowships Program (Fellowship
   ID: P24064) .
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NR 71
TC 0
Z9 0
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 NOV
PY 2024
VL 114
AR 104947
DI 10.1016/j.ijdrr.2024.104947
EA NOV 2024
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 M1L3E
UT WOS:001355220500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Yang, ZH
   Cui, XH
   Dong, YL
   Guan, JW
   Wang, J
   Xi, ZL
   Li, CX
AF Yang, Zhiheng
   Cui, Xuehua
   Dong, Yanling
   Guan, Jiawei
   Wang, Jing
   Xi, Zenglei
   Li, Chenxi
TI Spatio-temporal heterogeneity and influencing factors in the synergistic
   enhancement of urban ecological resilience: Evidence from the Yellow
   River Basin of China
SO APPLIED GEOGRAPHY
LA English
DT Article
DE Urban ecological resilience; Spatiotemporal heterogeneity; Modified
   gravity model; Multiscale geographically weighted regression
ID ECOSYSTEM SERVICES; SUSTAINABILITY; URBANIZATION
AB Urban ecological resilience (UER) reflects the ability of cities to adapt to environmental changes and cope with natural disasters. Further, UER is an important perspective for understanding human-land relations in the Yellow River Basin (YRB). We constructed a novel system of UER evaluation indicators from the perspective of synergistic enhancement, with 99 cities in the YRB as objects for the research conducted from 2011 to 2021. The spatiotemporal heterogeneity and network pattern of UER were measured using the Theil index and modified gravity model. The factors influencing UER in the YRB were analysed using a multiscale geographically weighted regression model. The results show that (1) regarding time-series analysis, the UER in the YRB shows a fluctuating upward trend from 20.89 in 2011 to 26.23 in 2021, with the contribution of ecological image being the largest. The UER at different reaches, urban agglomerations, and cities varied considerably. (2) Regarding spatial analysis, the UER has a 'center-periphery' spatial distribution pattern dominated by provincial capital cities. The spatial network shows a 'TL'-shaped distribution pattern similar to the YRB mainstream distribution. Regarding UER connectivity, the ability for cross-regional joint development has improved. (3) The main influencing factors were urbanisation rate, education level, Normalized Difference Vegetation Index, and upgrading of the industrial structure, which represent urban development progress and geographical ecological characteristics. This study expands UER measurement and provides a basis and reference for synergistic enhancement of UER in the YRB.
C1 [Yang, Zhiheng; Dong, Yanling; Guan, Jiawei; Wang, Jing] Shandong Univ Finance & Econ, Inst Reg Econ, Jinan 250014, Peoples R China.
   [Cui, Xuehua; Xi, Zenglei] Hebei Univ, Sch Econ, Baoding 071002, Peoples R China.
   [Li, Chenxi] Xian Univ Architecture & Technol, Sch Publ Adm, Xian 710311, Peoples R China.
C3 Shandong University of Finance & Economics; Hebei University; Xi'an
   University of Architecture & Technology
RP Li, CX (corresponding author), Xian Univ Architecture & Technol, Sch Publ Adm, Xian 710311, Peoples R China.
EM lichenxi@xauat.edu.cn
RI dong, yanling/GRX-9175-2022
OI Cui, Xuehua/0009-0004-7956-0218; yang, zhiheng/0000-0001-9127-2690
FU Research results of Shandong Province Social Science Planning Project
   [20CCXJ10]; Nation Social Science Foundation of China [22BJY206];
   National Regional Major Strategic Project "Ecological Soft Power
   Construction of Cities in the Yellow River Basin"and Humanities and
   Social Science Research General Project of the Ministry of Education
   [23YJC630076]
FX This work was supported by Research results of Shandong Province Social
   Science Planning Project (20CCXJ10) ; Nation Social Science Foundation
   of China (22BJY206) ; National Regional Major Strategic Project
   "Ecological Soft Power Construction of Cities in the Yellow River
   Basin"and Humanities and Social Science Research General Project of the
   Ministry of Education (23YJC630076) .
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NR 47
TC 3
Z9 3
U1 56
U2 56
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 DEC
PY 2024
VL 173
AR 103459
DI 10.1016/j.apgeog.2024.103459
EA NOV 2024
PG 14
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA L8A2W
UT WOS:001352889000001
DA 2025-04-22
ER

PT J
AU Mohammadi, S
   De Angeli, S
   Boni, G
   Pirlone, F
   Cattari, S
AF Mohammadi, Soheil
   De Angeli, Silvia
   Boni, Giorgio
   Pirlone, Francesca
   Cattari, Serena
TI Review article: Current approaches and critical issues in multi-risk
   recovery planning of urban areas exposed to natural hazards
SO NATURAL HAZARDS AND EARTH SYSTEM SCIENCES
LA English
DT Review
ID POSTDISASTER HOUSING RECONSTRUCTION; LONG-TERM RECOVERY; DISASTER
   RECOVERY; INTERDEPENDENT INFRASTRUCTURE; COMMUNITY PARTICIPATION; RISK
   PRIORITIZATION; NEW-ORLEANS; RESILIENCE; EARTHQUAKE; FRAMEWORK
AB Post-disaster recovery has been addressed in the literature by different sectoral perspectives and scientific communities. Nevertheless, studies providing holistic approaches to recovery, integrating reconstruction procedures and socio-economic impacts, are still lacking. Additionally, there is a gap in disaster recovery research addressing the additional challenges posed by the effect of complex, multiple, and interacting risks on highly interconnected urban areas. Furthermore, recovery has only been marginally explored from a pre-disaster perspective in terms of planning and actions to increase urban resilience and recoverability. This paper provides a critical review of existing literature and guidelines on multi-risk disaster recovery with the twofold aim of identifying current gaps and providing the layout to address multi-risk recovery planning tools for decision-making. The literature on disaster recovery is investigated in the paper by focusing on the definition of the recovery phase and its separation or overlapping with other disaster risk management phases, the different destinations and goals that an urban system follows through recovery pathways, the requirements to implement a holistic resilience-based recovery roadmap, the challenges for shifting from single-risk to multi-risk recovery approaches, and the available tools for optimal decision-making in the recovery planning. Finally, the current challenges in multi-risk recovery planning are summarized and discussed. This review can be a ground basis for new research directions in the field of multi-risk recovery planning to help stakeholders in decision-making and optimize their pre-disaster investments to improve the urban system's recoverability.
C1 [Mohammadi, Soheil; De Angeli, Silvia; Boni, Giorgio; Pirlone, Francesca; Cattari, Serena] Univ Genoa, Dept Civil Chem & Environm Engn, I-16145 Genoa, Italy.
C3 University of Genoa
RP Mohammadi, S (corresponding author), Univ Genoa, Dept Civil Chem & Environm Engn, I-16145 Genoa, Italy.
EM soheil.mohammadi@edu.unige.it
RI Cattari, Serena/AAD-6007-2021; Pirlone, Francesca/GOV-4485-2022; Boni,
   Giorgio/AAD-6133-2021; De Angeli, Silvia/ABI-7570-2020
OI Boni, Giorgio/0000-0002-8255-9312; mohammadi,
   soheil/0000-0002-7180-1433; De Angeli, Silvia/0000-0001-8293-9502
FU Dipartimento della Protezione Civile, Presidenza del Consiglio dei
   Ministri
FX No Statement Available
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TC 6
Z9 7
U1 12
U2 28
PU COPERNICUS GESELLSCHAFT MBH
PI GOTTINGEN
PA BAHNHOFSALLEE 1E, GOTTINGEN, 37081, GERMANY
SN 1561-8633
EI 1684-9981
J9 NAT HAZARD EARTH SYS
JI Nat. Hazards Earth Syst. Sci.
PD JAN 17
PY 2024
VL 24
IS 1
BP 79
EP 107
DI 10.5194/nhess-24-79-2024
PG 29
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA IU6J5
UT WOS:001168886900001
OA gold
DA 2025-04-22
ER

PT J
AU Prashar, S
   Shaw, R
   Takeuchi, Y
AF Prashar, Sunil
   Shaw, Rajib
   Takeuchi, Yukiko
TI Community action planning in East Delhi: a participatory approach to
   build urban disaster resilience
SO MITIGATION AND ADAPTATION STRATEGIES FOR GLOBAL CHANGE
LA English
DT Article
DE Community action planning; Delhi (India); Disaster risk reduction;
   Participatory approach; Resilience; Urban community
ID ADAPTIVE CAPACITY; RISK REDUCTION; CLIMATE
AB The paper addresses disaster risk of an urban community in a mega city, which experiences high risk to natural hazards. The Community Action Planning (CAP) tool is used in this case. It has been developed from five resilience dimensions (physical, social, economic, institutional, and natural), 25 parameters and 75 actions. A detailed CAP structured questionnaire survey was conducted with 89 Residential and Welfare Associations (RWAs) in East Delhi, India situated in three types of settlements: planned Delhi Development Authority (DDA) housing and societies, colonies, and urban villages. The result identifies and prioritizes 32 actions as important for all three settlements. The result shows both consistent and inconsistent responses from RWAs. To give some examples, parameter S3 is "tasks to reduce number of people suffer from water borne diseases after a disaster". In response to this parameter, approximately 80% of total respondents prioritized action (A1), "promoting people to take preventive measures after a disaster". It shows consistent response from all three settlements. However, parameter S5 is "tasks to improve the awareness and knowledge about threat and impact of disasters". Approximately 40% of total respondents prioritized A1, "organizing training program for awareness and knowledge building". This action was prioritized in planned DDA housing and societies (56%) as well as in colonies (52%). However, none of the respondents from urban villages prioritized this action. These responses show inconsistency in response to specific action. In addition, the study shows the potential impact of CAP process for other communities in cities that are experiencing disaster risks and impact of climate change.
C1 [Prashar, Sunil; Shaw, Rajib; Takeuchi, Yukiko] Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Kyoto 6068501, Japan.
C3 Kyoto University
RP Prashar, S (corresponding author), Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Yoshida Honmachi, Kyoto 6068501, Japan.
EM sunilparashar111@gmail.com; shaw@global.mbox.media.kyoto-u.ac.jp;
   y.takeuchi@fw7.ecs.kyoto-u.ac.jp
RI Shaw, Rajib/AAI-4834-2020
OI Prashar, Sunil/0000-0002-5838-8445; Shaw, Rajib/0000-0003-3153-1800
FU Japanese Government (Monbukagakusho: MEXT); Kyoto University's
   Environmental Management Leadership Program (EML); Global Center of
   Excellence (GCOE) program "Human Security Engineering for Asian
   Megacities"
FX The first author acknowledges the support of the Japanese Government
   (Monbukagakusho: MEXT) for its scholarship and Kyoto University's
   Environmental Management Leadership Program (EML). Support from Global
   Center of Excellence (GCOE) program "Human Security Engineering for
   Asian Megacities" is also acknowledged. Cooperation from the Bhagidhari
   Cell of Delhi Government, Residential and Welfare Associations (RWAs),
   and SEEDS India is highly appreciated.
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NR 46
TC 17
Z9 19
U1 6
U2 87
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 APR
PY 2013
VL 18
IS 4
BP 429
EP 448
DI 10.1007/s11027-012-9368-4
PG 20
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 106CP
UT WOS:000316119400002
DA 2025-04-22
ER

PT J
AU Fernández, CG
   Peek, D
AF Fernandez, Cristina Garcia
   Peek, Daniel
TI Connecting the Smart Village: A Switch towards Smart and Sustainable
   Rural-Urban Linkages in Spain
SO LAND
LA English
DT Article
DE smart villages; smart cities; rural depopulation; adaptation to climate
   change; digital transformation; sustainable development
ID CITIES
AB This research focuses on the dimensions of the Smart Village concept to understand to what extent smart development in the countryside could contribute to reducing disparities between rural and urban realities. Population imbalances and intensifying climate impacts are prime challenges for rural areas, which also need to counter diminishing infrastructure and the lack of digital competencies to enhance their attractiveness. Cities, in turn, face their own set of challenges, such as contamination, natural resources exploitation, and high population densities. Local governments have been embracing the Smart City approach to accomplish sustainable development, which might also benefit the revitalization of rural areas if conducted through a tailored regional approach. Enhanced connectivity between rural and urban realities through smartness is, therefore, becoming an important element for the shaping of adaptive, energy-efficient, and resilient communities.
C1 [Fernandez, Cristina Garcia; Peek, Daniel] Univ Complutense Madrid UCM, Fac Polit Sci & Sociol, Publ Econ & Polit Econ, Madrid 28223, Spain.
C3 Complutense University of Madrid
RP Fernández, CG (corresponding author), Univ Complutense Madrid UCM, Fac Polit Sci & Sociol, Publ Econ & Polit Econ, Madrid 28223, Spain.
EM cgarciaf@ucm.es
RI ; GARCIA FERNANDEZ, CRISTINA/ABC-9531-2021
OI Peek, Daniel/0000-0003-0882-885X; GARCIA FERNANDEZ,
   CRISTINA/0000-0001-9573-4805
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NR 52
TC 7
Z9 7
U1 18
U2 85
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD APR
PY 2023
VL 12
IS 4
AR 822
DI 10.3390/land12040822
PG 16
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA F6AK3
UT WOS:000983149300001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Seeliger, L
   Turok, I
AF Seeliger, Leanne
   Turok, Ivan
TI Towards Sustainable Cities: Extending Resilience with Insights from
   Vulnerability and Transition Theory
SO SUSTAINABILITY
LA English
DT Article
DE resilience; vulnerability; transition; socio-ecological system;
   adaptability; transformation; sustainable cities
ID REGIONAL RESILIENCE; POLITICS; THINKING
AB Cities at all stages of development need to provide jobs, food and services for their people. There is no formula that can unilaterally be applied in all urban environments to achieve this. The complex interaction of social, economic and ecological cycles within cities makes it impossible to predict outcomes. Resilience theory, with its engineering, multi-equilibria and socio-ecological approaches, provides some of the foundations for understanding the full range of the complex social and ecological interactions that underpin sustainable cities. It is proposed that these insights could be extended by a sharper focus on the social and technological innovation that has traditionally been the emphasis of vulnerability and transition theories respectively.
C1 [Seeliger, Leanne; Turok, Ivan] Human Sci Res Council, ZA-8000 Cape Town, South Africa.
C3 Human Sciences Research Council-South Africa
RP Seeliger, L (corresponding author), Human Sci Res Council, Private Bag X9182, ZA-8000 Cape Town, South Africa.
EM lseeliger@hsrc.ac.za; iturok@hsrc.ac.za
RI Turok, Ivan/X-6120-2019
OI Seeliger, Leanne/0000-0003-4157-3035; Turok, Ivan/0000-0001-5520-2492
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NR 53
TC 75
Z9 86
U1 1
U2 67
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY
PY 2013
VL 5
IS 5
BP 2108
EP 2128
DI 10.3390/su5052108
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 213IG
UT WOS:000324048800019
OA gold
DA 2025-04-22
ER

PT J
AU Wijesinghe, A
   Thorn, JPR
AF Wijesinghe, Amayaa
   Thorn, Jessica P. R.
TI Governance of Urban Green Infrastructure in Informal Settlements of
   Windhoek, Namibia
SO SUSTAINABILITY
LA English
DT Article
DE green space; inclusive city; informality; local stewardship;
   participation; peri-urban settlements; policy instruments;
   self-governance; sub-Saharan Africa; right to the city
ID SUSTAINABLE DEVELOPMENT GOALS; CLIMATE-CHANGE; ECOSYSTEM SERVICES;
   CITIES; FRAMEWORK; AFRICA; REFLECTIONS; ADAPTATION; MANAGEMENT;
   UNPACKING
AB Facing increased rural-urban migration, population growth, climate change impacts, and cascading natural, security, and health hazards, many municipalities in sub-Saharan Africa are beginning to consider the benefits of urban green infrastructure for improving the resilience and wellbeing of residents living in informal settlements. However, present governance systems are often ill-equipped to deliver the scale of planning needed. Integration of urban green infrastructure into local government mandates, spatial planning and targeted action plans remains limited, further inhibited by scarce empirical research on the topic in Africa. Taking Windhoek, Namibia, and specifically Moses parallel to Garoeb, Samora Machel, and Tobias Hainyeko constituencies as a case study, we fitted key informant interview (n = 23), focus group (n = 20), and participant observation data into existing governance theory to investigate (a) benefits and trade-offs of present urban green infrastructure in Windhoek's informal settlements; (b) urban green infrastructure governance in terms of institutional frameworks, actors and coalitions, resources, and processes; and (c) the key desirable pathways for future urban green infrastructure governance in informal settlements. To this end, we used five green infrastructure initiatives to dissect governance intricacies and found diverse opportunities for innovative governance mechanisms. The urgent need for climate resilience in Namibia offers a policy and practice window to adopt context-specific approaches for multifunctional urban green infrastructure. However, for these initiatives to succeed, collaborative governance platforms and clearly delineated mandates are necessary, with explicit integration of urban green infrastructure into strategies for in-situ informal settlements upgrading and green job growth.
C1 [Wijesinghe, Amayaa; Thorn, Jessica P. R.] Univ Cape Town, African Climate & Dev Initiat, ZA-7700 Cape Town, South Africa.
   [Wijesinghe, Amayaa] UN Environm Programme World Conservat Monitoring, Cambridge CB3 0DL, England.
   [Thorn, Jessica P. R.] Univ York, Dept Geog & Environm, York Inst Trop Ecosyst, Heslington YO10 5DD, England.
C3 University of Cape Town; University of York - UK
RP Wijesinghe, A (corresponding author), Univ Cape Town, African Climate & Dev Initiat, ZA-7700 Cape Town, South Africa.; Wijesinghe, A (corresponding author), UN Environm Programme World Conservat Monitoring, Cambridge CB3 0DL, England.
EM amayaawijesinghe@gmail.com; jessica.thorn@york.ac.uk
OI Thorn, Jessica/0000-0003-2108-2554; Wijesinghe,
   Amayaa/0000-0003-2168-3376
FU School of Geography and the Environment, University of Oxford; Linacre
   College, Oxford; UK Research and Innovation's Global Challenges Research
   Fund (UKRI GCRF) [ES/P011500/1]; African Women in Climate Change Science
   Fellowship of the African Institute of Mathematical Sciences; Next
   Einstein Forum; Climate Research for Development (CR4D) Postdoctoral
   Fellowship [CR4D-19-21]; United Kingdom's Department for International
   Development (DfID); Weather and Climate Information Services for Africa
   (WISER) Programme; African Climate Policy Centre (ACPC) of the United
   Nations Economic Commission for Africa (UNECA); GCRF [ES/P011500/1]
   Funding Source: UKRI
FX We acknowledge funding from the School of Geography and the Environment,
   University of Oxford, and Linacre College, Oxford, and from UK Research
   and Innovation's Global Challenges Research Fund (UKRI GCRF) through the
   Development Corridors Partnership project (project number:
   ES/P011500/1). This work was also supported through the African Women in
   Climate Change Science Fellowship of the African Institute of
   Mathematical Sciences and the Next Einstein Forum and the Climate
   Research for Development (CR4D) Postdoctoral Fellowship CR4D-19-21
   implemented by the African Academy of Sciences (AAS) in partnership with
   the United Kingdom's Department for International Development (DfID),
   theWeather and Climate Information Services for Africa (WISER)
   Programme, and the African Climate Policy Centre (ACPC) of the United
   Nations Economic Commission for Africa (UNECA). Statements made and
   views expressed in this work are solely the responsibility of the
   authors.
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NR 99
TC 27
Z9 27
U1 4
U2 49
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 8937
DI 10.3390/su13168937
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 UH2ST
UT WOS:000689788300001
OA Green Published, gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Yigitcanlar, T
   Han, H
   Kamruzzaman, M
   Ioppolo, G
   Sabatini-Marques, J
AF Yigitcanlar, Tan
   Han, Hoon
   Kamruzzaman, Md
   Ioppolo, Giuseppe
   Sabatini-Marques, Jamile
TI The making of smart cities: Are Songdo, Masdar, Amsterdam, San Francisco
   and Brisbane the best we could build?
SO LAND USE POLICY
LA English
DT Article
DE Smart cities; Smart urbanism; Smart urban technology; Sustainable urban
   development; Sustainable urbanism; Urban policymaking; Climate emergency
ID RENEWABLE ENERGY; CITY POLICIES; BIG DATA; INNOVATION; KNOWLEDGE;
   SUSTAINABILITY; LESSONS; PLACE; MODEL; JAPAN
AB Transforming urban areas into prosperous, liveable, and sustainable settlements is a longstanding goal for local governments. Today, countless urban settlements across the globe have jumped into the so-called 'smart city' bandwagon to achieve this goal. Under the smart city agenda, presently, many government agencies are attempting to engineer an urban transformation to tackle urban prosperity, liveability, and sustainability issues mostly through the means of technology solutions. Nonetheless, the notion of smart cities is ambiguous, and there are limited conceptual frameworks to assist cities and their administrations in understanding the big picture view of this urban development paradigm. The aim of this paper is to generate a clear understanding on the making of successful smart city practices. This is done by elaborating the smart cities notion through a multidimensional conceptual framework, examining smart city best practices across the globe-i.e., Songdo, Masdar, Amsterdam, San Francisco, Brisbane-, and providing insights of smart city approaches from these cases. The findings of the study disclose the need for a comprehensive smart city conceptualisation to inform policymaking and consequently the practice. This will help in the formation of a much-needed smart urbanism model for the resilient settlements of the climate emergency era.
C1 [Yigitcanlar, Tan] Queensland Univ Technol, Sch Civil Engn & Built Environm, 2 George St, Brisbane, Qld 4000, Australia.
   [Han, Hoon] Univ New South Wales, Fac Built Environm, UNSW Sydney, Sydney, NSW 2052, Australia.
   [Kamruzzaman, Md] Monash Univ, Monash Art Design & Architecture, 900 Dandenong Rd, Caulfield, Vic 3145, Australia.
   [Ioppolo, Giuseppe] Univ Study Messina, Dept Econ, Piazza Pugliatti 1, I-98122 Messina, Italy.
   [Sabatini-Marques, Jamile] Univ Sao Paulo, Inst Adv Studies, Rua Anfiteatro 513, Butanta, SP, Brazil.
C3 Queensland University of Technology (QUT); University of New South Wales
   Sydney; Monash University; Universidade de Sao Paulo
RP Yigitcanlar, T (corresponding author), Queensland Univ Technol, Sch Civil Engn & Built Environm, 2 George St, Brisbane, Qld 4000, Australia.
EM tan.yigitcanlar@qut.edu.au; h.han@unsw.edu.au;
   md.kamruzzaman@monash.edu; giuseppe.ioppolo@unime.it;
   jamilesabatini@usp.br
RI Kamruzzaman, Liton/AAG-5909-2020; Han, Hoon/ABC-7783-2022; Yigitcanlar,
   Tan/J-1142-2012
OI Han, Hoon/0000-0003-3200-7728; Sabatini Marques,
   Jamile/0000-0003-3734-4459; Kamruzzaman, Md./0000-0001-7113-942X;
   Yigitcanlar, Tan/0000-0001-7262-7118
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NR 115
TC 130
Z9 133
U1 14
U2 171
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 NOV
PY 2019
VL 88
AR 104187
DI 10.1016/j.landusepol.2019.104187
PG 11
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA JK5MF
UT WOS:000494886800074
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Fung, CKW
   Jim, CY
AF Fung, Charmaine K. W.
   Jim, C. Y.
TI Microclimatic resilience of subtropical woodlands and urban-forest
   benefits
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Climate change resilience; Summer cooling amplification; Urban green
   infrastructure; Urban woodland benefits; Urban heat island mitigation;
   Woodland microclimate regulation
ID GREEN-SPACE; SHADE TREES; HEAT-ISLAND; HOT SUMMER; IMPACT; CANOPY;
   PARKS; PERFORMANCE; PERCEPTION; ROOF
AB With compact development mode and subtropical climate, urban Hong Kong suffers from the urban heat island exacerbated by climate change. In recent years, record-high summer air temperatures (T-a) and heat stress were recorded, which discourage outdoor exercise and nature-based enjoyment. The thermal overload could be mitigated by urban woodlands that bring effective cooling through evapotranspiration and shading by diverse species composition, growth forms and biomass structure. This study measured microclimatic parameters over 12 months at four experimental plots in a pert-urban golf course, including simple woodland with limited species and single-layer structure, complex woodland with diverse species and multiple-tier structure, unshaded lawn, and bare-concrete serving as control. Woodland cooling was most prominent on summer and sunny days, and weaker in winter and cloudy conditions. Daytime T-a in woodlands was cooler, whereas nighttime warming was observed mainly at the simple woodland. Despite seasonal variations of cooling strengths, T-a was consistently suppressed on cloudy day vis-a-vis sunny day. On summer sunny day, concrete and lawn plots registered scorching air and surface temperatures (T-s), whereas woodland plots demonstrated summer cooling amplification with maximum - 4.1 degrees C T-a depression versus concrete and - 3.9 degrees C versus lawn. Comprehensive evaluations and comparisons were made between the magnitude and variations of the woodland cooling effect in different seasons and weather conditions. The benefits and feasibility of creating urban woodland patches in Hong Kong to improve urban climate and thermal comfort were discussed.
C1 [Fung, Charmaine K. W.] Univ Hong Kong, Fac Educ, Pokfulam Rd, Hong Kong, Peoples R China.
   [Jim, C. Y.] Educ Univ Hong Kong, Dept Social Sci, Tai Po, Lo Ping Rd, Hong Kong, Peoples R China.
C3 University of Hong Kong; Education University of Hong Kong (EdUHK)
RP Jim, CY (corresponding author), Educ Univ Hong Kong, Dept Social Sci, Tai Po, Lo Ping Rd, Hong Kong, Peoples R China.
EM fungc@hku.hk; cyjim@eduhk.hk
RI Jim, CY/O-1025-2019
OI Jim, C.Y./0000-0003-4052-8363
FU Hong Kong Golf Club
FX We are grateful to the Hong Kong Golf Club for research grants,
   permission to conduct microclimatic monitoring at its Fan Ling site,
   assistance in instrument installation and data collection. The field
   work support kindly provided by Jeannette Liu and Wing Yiu Wong is
   appreciated.
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NR 56
TC 42
Z9 46
U1 9
U2 124
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 JUN
PY 2019
VL 42
BP 100
EP 112
DI 10.1016/j.ufug.2019.05.014
PG 13
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 IB2QW
UT WOS:000470114800010
DA 2025-04-22
ER

PT J
AU Lambrou, N
AF Lambrou, Nicole
TI Resilience Design: Myths of Participation and Stewardship
SO JOURNAL OF PLANNING LITERATURE
LA English
DT Article
DE environment; urban design; environmental attitudes/awareness/values
ID PLACE
AB Design proposals that aim to increase resilience to future extreme weather events increasingly center on equity concerns. The question of the implementation and ongoing maintenance of resilient landscapes, however, receives scant attention in planning literature despite the abundance of stewardship references in resilience proposals. Stewardship, as both concept and act, implicates equity because it is a form of adaptation labor that is invisible and unpaid. Here, I discuss California's Resilient by Design project to show that when the labor involved in stewardship projects is not acknowledged, claims for an equitable and resilient future espoused by planning proposals are diminished.
C1 [Lambrou, Nicole] Calif State Polytech Univ Pomona, Pomona, CA USA.
   [Lambrou, Nicole] Calif State Polytech Univ Pomona, 3801 W Temple Ave, Pomona, CA 91768 USA.
C3 California State University System; California State Polytechnic
   University Pomona; California State University System; California State
   Polytechnic University Pomona
RP Lambrou, N (corresponding author), Calif State Polytech Univ Pomona, 3801 W Temple Ave, Pomona, CA 91768 USA.
EM nlambrou@cpp.edu
OI Lambrou, Nicole/0000-0002-8321-4498
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NR 20
TC 0
Z9 0
U1 1
U2 2
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0885-4122
EI 1552-6593
J9 J PLAN LIT
JI J. Plan. Lit.
PD MAY
PY 2024
VL 39
IS 2
BP 218
EP 222
DI 10.1177/08854122231217684
EA NOV 2023
PG 5
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA PN2S5
UT WOS:001111823900001
DA 2025-04-22
ER

PT J
AU Goh, K
AF Goh, Kian
TI Urbanising climate justice: constructing scales and politicising
   difference
SO CAMBRIDGE JOURNAL OF REGIONS ECONOMY AND SOCIETY
LA English
DT Article
DE climate change; urbanisation; social justice; spatial politics; urban
   theory
ID ENVIRONMENTAL JUSTICE; CHANGE ADAPTATION; RESILIENCE; MOVEMENTS; CITIES;
   GOVERNANCE; ECOLOGY; HISTORY; CITY
AB Central debates in urban studies often appear to neglect the most urgent issues confronting cities and regions. Discourses on generalised urban processes, historical difference and planetary urbanisaf rarely take, as a primary object of analysis, intertwined global climate change and urban change. Climate change is often considered generalised, affecting everyone everywhere. But its impacts are unevenly distributed and experienced. It links generalised processes and particular impacts and actions with implications for urban theory. This article builds on theories of multiscalar research and the politics of location to develop a conceptual framework of urban change through the lens of climate justice.
C1 [Goh, Kian] Univ Calif Los Angeles, Dept Urban Planning, Los Angeles, CA 90095 USA.
C3 University of California System; University of California Los Angeles
RP Goh, K (corresponding author), Univ Calif Los Angeles, Dept Urban Planning, Los Angeles, CA 90095 USA.
EM kiangoh@ucla.edu
OI /0000-0003-1830-2392
FU Aga Khan Program for Islamic Architecture (Massachusetts Institute of
   Technology); William Emerson Travel Fund (Massachusetts Institute of
   Technology); Harold Horowitz Research Fund (Massachusetts Institute of
   Technology); Northeastern University Tier-1 grant; University of
   California, Los Angeles Faculty Career Development Award
FX I thank the Cambridge Journal of Regions, Economy and Society special
   issue editors and the three anonymous reviewers for their comments and
   suggestions. I also thank my informants and collaborators in the USA,
   Indonesia and the Netherlands, whose vision, courage and commitment to
   climate justice inspire my research. The research referenced in this
   article was funded in part by, the Aga Khan Program for Islamic
   Architecture, the William Emerson Travel Fund and the Harold Horowitz
   Research Fund (all at the Massachusetts Institute of Technology), a
   Northeastern University Tier-1 grant, and a University of California,
   Los Angeles Faculty Career Development Award.
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NR 77
TC 18
Z9 19
U1 2
U2 28
PU OXFORD UNIV PRESS
PI OXFORD
PA GREAT CLARENDON ST, OXFORD OX2 6DP, ENGLAND
SN 1752-1378
EI 1752-1386
J9 CAMB J REG ECON SOC
JI Camb. J. Regions Econ. Soc.
PD NOV
PY 2020
VL 13
IS 3
SI SI
BP 559
EP 574
DI 10.1093/cjres/rsaa010
PG 16
WC Development Studies; Economics; Geography
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics; Geography
GA PQ0VX
UT WOS:000606269800009
DA 2025-04-22
ER

PT J
AU Hu, M
   Ghorbany, S
   Yao, SY
   Wang, CL
AF Hu, Ming
   Ghorbany, Siavash
   Yao, Siyuan
   Wang, Chaoli
TI Micro-Urban Heatmapping: A Multi-Modal and Multi-Temporal Data
   Collection Framework
SO BUILDINGS
LA English
DT Article
DE micro-urban; urban heat island; data; roof sensors; pedestrian data
ID HEAT-ISLAND; IMPACT; WAVES
AB Monitoring microclimate variables within cities with high resolution and accuracy is crucial for enhancing urban resilience to climate change. Assessing intra-urban characteristics is essential for ensuring satisfactory living standards. This paper presents a comprehensive methodology for studying urban heat islands (UHIs) on a university campus, emphasizing the importance of multi-modal and multi-temporal data collection. The methodology integrates mobile surveys, stationary sensor networks, and drone-based thermal imaging, providing a detailed analysis of temperature variations within urban microenvironments. The preliminary findings confirm the presence of a UHI on the campus and identify several hotspots. This comprehensive approach enhances the accuracy and reliability of UHI assessments, offering a cost-effective, fine-resolution approach that facilitates more effective urban planning and heat mitigation strategies.
C1 [Hu, Ming] Univ Notre Dame, Sch Architecture Notre Dame, Notre Dame, IN 46556 USA.
   [Ghorbany, Siavash] Univ Notre Dame, Dept Civil & Environm Engn & Earth Sci, Notre Dame, IN 46556 USA.
   [Yao, Siyuan; Wang, Chaoli] Univ Notre Dame, Dept Comp Sci, Notre Dame, IN 46556 USA.
C3 University of Notre Dame; University of Notre Dame; University of Notre
   Dame
RP Hu, M (corresponding author), Univ Notre Dame, Sch Architecture Notre Dame, Notre Dame, IN 46556 USA.
EM mhu1@nd.edu; sghorban@nd.edu; syao2@nd.edu; chaoli.wang@nd.edu
RI Hu, Ming/I-4311-2019; Ghorbany, Siavash/JNS-0385-2023; Wang,
   Chaoli/AAJ-5173-2020
OI Yao, Siyuan/0000-0002-4093-193X; Hu, Ming/0000-0003-2583-1161; Ghorbany,
   Siavash/0000-0002-9588-0527; Wang, Chaoli/0000-0002-0859-3619
FU Office of Sustainability, University of Notre Dame
FX This research project was funded by the Office of Sustainability,
   University of Notre Dame.
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NR 40
TC 0
Z9 0
U1 5
U2 5
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD SEP
PY 2024
VL 14
IS 9
AR 2751
DI 10.3390/buildings14092751
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA H4D8N
UT WOS:001322973400001
OA gold
DA 2025-04-22
ER

PT J
AU Wang, CC
   Ren, ZB
   Guo, YJ
   Zhang, P
   Hong, SY
   Ma, ZJ
   Hong, WH
   Wang, XY
AF Wang, Chengcong
   Ren, Zhibin
   Guo, Yujie
   Zhang, Peng
   Hong, Shengyang
   Ma, Zijun
   Hong, Wenhai
   Wang, Xinyu
TI Assessing urban population exposure risk to extreme heat: Patterns,
   trends, and implications for climate resilience in China (2000-2020)
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban extreme heat exposure risks (UEHER); Population exposed to extreme
   heat; Heat and health; Urban vulnerability; Spatio-temporal
   heterogeneity
ID POLLUTION; AREA
AB Urban residents face serious thermal health risks from extreme heat owing to the cumulative effects of urbanization and climate warming. However, the patterns of urban populations exposed to extreme heat and urban extreme heat exposure risks (UEHER) require clarification in China. We determined urban extreme heat and the exposed populations for land surface temperature (LST) in 320 cities from 2000 to 2020 by setting thresholds and assessed the UEHER in China through the "Hazard-Exposure-Vulnerability" framework. Our findings indicated an average extreme LST threshold of 35.24 degrees C, varying from 29.32 degrees C to 47.79 degrees C. Higher extreme LST thresholds were mainly concentrated in Northwest China and developed cities. From 2000 to 2020, the extreme heatexposed areas have increased by approximately 27.8 km(2), equivalent to an average of approximately 321.3 soccer fields per year. The urban population exposed to extreme heat (UPEEH) in China has increased by approximately 115 million in the past 20 years, mainly in more developed cities, especially in eastern and northern China. Notably, the proportion of the UPEEH has decreased more rapidly in the east region. The UEHER index increased 52.5 % over 20 years, with 97.19 % of the cities having a worsening trend. Medium-developed and high-population density regions faced the dual risk of a high UEHER and more rapid increase in extreme heat. In contrast, less-developed regions faced the dual problems of high UEHER and low gross domestic product (GDP). Understanding vulnerable and prioritized areas of urban heat exposure will provide information for the development of adaptive policies that enhance urban climate resilience.
C1 [Wang, Chengcong; Ren, Zhibin; Guo, Yujie; Zhang, Peng; Hong, Shengyang; Ma, Zijun; Hong, Wenhai; Wang, Xinyu] Chinese Acad Sci, Northeast Inst Geog & Agroecol, Key Lab Wetland Ecol & Environm, Changchun 130102, Peoples R China.
   [Ren, Zhibin] Key Lab Trop Isl Land Surface Proc & Environm Chan, Haikou 571158, Peoples R China.
   [Wang, Chengcong; Ren, Zhibin; Guo, Yujie; Zhang, Peng; Ma, Zijun; Hong, Wenhai; Wang, Xinyu] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Hong, Shengyang] Jilin Normal Univ, Siping 134000, Peoples R China.
C3 Chinese Academy of Sciences; Northeast Institute of Geography &
   Agroecology, CAS; Chinese Academy of Sciences; University of Chinese
   Academy of Sciences, CAS; Jilin Normal University
RP Ren, ZB (corresponding author), Chinese Acad Sci, Northeast Inst Geog & Agroecol, Key Lab Wetland Ecol & Environm, Changchun 130102, Peoples R China.
EM renzhibin@iga.ac.cn
RI Guo, Yujie/ISV-1522-2023
FU National Natural Science Foundation of China [42171109, 32130068]; Youth
   Innovation Promotion Association of Chinese Academy of Sciences
   [2020237]; National Key R & D Program of China [2023YFF1304604]
FX <BOLD>Acknowledgements</BOLD> This work was supported by the National
   Natural Science Foundation of China [grant number 42171109, 32130068] ,
   the Youth Innovation Promotion Association of Chinese Academy of
   Sciences [grant number 2020237] , the National Key R & D Program of
   China [grant number 2023YFF1304604] .
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NR 70
TC 30
Z9 30
U1 149
U2 201
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 105260
DI 10.1016/j.scs.2024.105260
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 KY0Q6
UT WOS:001183413400001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Iturriza, M
   Hernantes, J
   Labaka, L
AF Iturriza, Marta
   Hernantes, Josune
   Labaka, Leire
TI Coming to Action: Operationalizing City Resilience
SO SUSTAINABILITY
LA English
DT Article
DE city resilience; maturity model; serious game; operationalization;
   decision-makers
ID MATURITY MODEL; SERIOUS GAMES; SUSTAINABILITY; MANAGEMENT
AB There is an urgent need to build city resilience in order to face upcoming foreseen and unforeseen disasters more holistically, economically and collaboratively. Population trends mean that people are moving to urban areas and the traditional approach to crisis management is becoming obsolete as it is no longer able to deal with the new challenges that are emerging such as social dynamics or climate change. In this context, there are numerous studies and strategies that define how to build city resilience and consequently sustainable cities. However, decision-makers have trouble putting the knowledge in the studies and strategies into practice, as they find this information to be too abstract or far from their daily activities. More practical tools are needed to facilitate the operationalization of city resilience and familiarize decision makers with the concept. To that end, this paper presents both a qualitative and quantitative toolkit that enables decision makers to study, understand and train themselves to operationalize city resilience properly. This toolkit is composed of two complementary tools, namely the Resilience Maturity Model (RMM) and a serious game called City Resilience Dynamics (CRD). The paper also discusses the key points that led to a useful, trustworthy and flexible toolkit that decision-makers can use in building city resilience.
C1 [Iturriza, Marta; Hernantes, Josune; Labaka, Leire] Univ Navarra, Escuela Ingenieros, TECNUN, San Sebastian 20018, Spain.
C3 University of Navarra
RP Iturriza, M (corresponding author), Univ Navarra, Escuela Ingenieros, TECNUN, San Sebastian 20018, Spain.
EM miturriza@tecnun.es; jhernantes@tecnun.es; llabaka@tecnun.es
RI ; Labaka, Leire/H-9744-2014; Hernantes, Josune/C-9247-2017
OI ITURRIZA, MARTA/0000-0002-1645-7385; Labaka, Leire/0000-0002-1721-0624;
   Hernantes, Josune/0000-0002-9307-9787
FU European Union [653569]; H2020 Societal Challenges Programme [653569]
   Funding Source: H2020 Societal Challenges Programme
FX This research was funded as part of the project Smart Mature Resilience
   by the European Union's Horizon 2020 research and innovation program
   under grant agreement no. 653569.
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TC 9
Z9 9
U1 8
U2 37
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN 1
PY 2019
VL 11
IS 11
AR 3054
DI 10.3390/su11113054
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
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ER

PT J
AU Fragkias, M
   Boone, CG
AF Fragkias, Michail
   Boone, Christopher G.
TI Modern political economy, global environmental change and urban
   sustainability transitions
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID CLIMATE-CHANGE ADAPTATION; RESILIENCE; DESIGN; CITIES; VULNERABILITY;
   URBANIZATION; PERSPECTIVES; GOVERNANCE; CHALLENGES; FRAMEWORK
AB Our paper has two major aims: to argue that lessons from modern political economy are critical for urban transitions to sustainability and to position relevant urban sustainability transitions literature within distinct focus areas of modern political economy-in particular, endogenous institutions. We address those aims by providing examples of recent scholarship on institutional change and modern urban political economy that has significant implications for the understanding of urban transitions to sustainability. Furthermore, we explore the relevance of endogenous institutions for global environmental change and urban sustainability transitions; we utilize three relevant conceptual areas: (i) the choice of institutions and institutional change; (ii) the maintenance of institutions and institutional robustness; (iii) effective or ` good' urban governance and government failures.
C1 [Fragkias, Michail] Boise State Univ, Coll Business & Econ COBE, Dept Econ, 1910 Univ Dr, Boise, ID 83725 USA.
   [Boone, Christopher G.] Arizona State Univ, Sch Sustainabil, POB 875502, Tempe, AZ 85287 USA.
C3 Boise State University; Arizona State University; Arizona State
   University-Tempe
RP Fragkias, M (corresponding author), Boise State Univ, Coll Business & Econ COBE, Dept Econ, 1910 Univ Dr, Boise, ID 83725 USA.
EM mfragkias@gmail.com
RI Fragkias, Michail/B-5785-2008
OI Fragkias, Michail/0000-0001-5185-3159; Boone,
   Christopher/0000-0001-7643-0806
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NR 63
TC 9
Z9 10
U1 0
U2 11
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 63
EP 68
DI 10.1016/j.cosust.2017.04.007
PG 6
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:000416098300010
DA 2025-04-22
ER

PT J
AU Wang, YT
   Wu, CB
   Wu, BL
   Zhao, JL
   Wang, HY
AF Wang, Yuetao
   Wu, Chengbin
   Wu, Binglu
   Zhao, Jilong
   Wang, Hanyang
TI Evaluation of Spatial Structure Resilience in Coastal Traditional
   Villages Using Complex Network Analysis: Case Study of Rongcheng City,
   Shandong Province
SO LAND
LA English
DT Article
DE coastal zone; traditional rural settlement; spatial network structure;
   resilience assessment
ID URBAN; GRAVITY; GIS
AB Coastal traditional rural settlements face increasing challenges from human activities and natural disasters driven by global climate change and rapid urbanization. Ensuring their spatial stability is essential for ecological security, economic development, and social sustainability. This study addresses the lack of unified methodologies for assessing the resilience of regional traditional village clusters by proposing a "network construction-spatial simulation-resilience assessment" framework based on complex network theory. Using the Haicao housing village cluster in Rongcheng City, China, as a case study, a spatial network model was constructed, and resilience was evaluated under both current and future scenarios using eight resilience indicators. The results show that the current spatial network structure exhibits clustering with weak interconnections among subgroups. Key nodes significantly influence network metrics, resulting in low overall resilience. In future scenarios, protective measures targeting the top 15% of villages with high development potential enhanced social connections, reduced reliance on key nodes, and improved network resilience. This study provides a quantitative method for assessing the resilience of traditional village clusters and identifies critical pathways and nodes to optimize regional spatial structures. The findings offer new perspectives for guiding the preservation and sustainable development of traditional villages.
C1 [Wang, Yuetao; Wu, Chengbin; Wu, Binglu; Zhao, Jilong; Wang, Hanyang] Shandong Jianzhu Univ, Sch Architecture & Urban Planning, Jinan 250101, Peoples R China.
C3 Shandong Jianzhu University
RP Wu, BL (corresponding author), Shandong Jianzhu Univ, Sch Architecture & Urban Planning, Jinan 250101, Peoples R China.
EM wangyuetao@sdjzu.edu.cn; 2022055233@stu.sdjzu.edu.cn;
   12990@sdjzu.edu.cn; zlll0w@sdjzu.edu.cn; 24426@sdjzu.edu.cn
FU National Key Research and Development Program of China; Natural Science
   Foundation of Shandong Province of China [ZR2023ME229]; Support Plan for
   Youth Entrepreneurship and Technology in Colleges and Universities of
   Shandong Province, China [2022KJ202]; Shandong Provincial Key RD Program
   [2024RKY0604];  [2019YFD1100803]
FX This research was supported by the National Key Research and Development
   Program of China (No. 2019YFD1100803), the Natural Science Foundation of
   Shandong Province of China (No. ZR2020ME213), the Support Plan for Youth
   Entrepreneurship and Technology in Colleges and Universities of Shandong
   Province, China (No. 2022KJ202), the Natural Science Foundation of
   Shandong Province of China (No. ZR2023ME229), and the Shandong
   Provincial Key R&D Program (No. 2024RKY0604).
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NR 65
TC 0
Z9 0
U1 3
U2 3
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD FEB 28
PY 2025
VL 14
IS 3
AR 505
DI 10.3390/land14030505
PG 29
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 0QB3K
UT WOS:001453307500001
OA gold
DA 2025-04-22
ER

PT J
AU Parvin, GA
   Ahsan, SMR
   Yusop, AYBM
   Gordon, JA
   Abedin, MA
   Ahmad, MH
AF Parvin, Gulsan Ara
   Ahsan, S. M. Reasul
   Yusop, Azalia Yusop bt Mohd.
   Gordon, Jessica A.
   Abedin, Md Anwarul
   Ahmad, Mohd Hamdan
TI Kampung (village) flood resilience: an empirical analysis in Malaysia
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Flood; resilience; variation; kampung; Temerloh; Malaysia
AB Due to differences in the location, topography and socio-economic characteristics, flood risk and resilience are not the same for all communities. This study analysed flood resilience and its variations in different parts of the Temerloh Municipal Council area, Malaysia. Due to its location in the Pahang River basin, this town is highly vulnerable to flooding. The huge losses and damage caused by a devastating flood in 2014 illustrated the lack of resilience in different parts of the town. Therefore, this study sought answers to the following questions: (1) What methodological approach should be used to develop a Flood Resilience Index (FRI) of kampungs (villages located within an urban setting)? (2) How does the flood resilience of different kampungs vary across different dimensions? (3) What are the principal factors in determining the flood resilience of different kampungs? and (4) What are the policy implications for enhancing the flood resilience? This research formulated an FRI for 10 different kampungs within Temerloh. The results indicated that as each community's strengths and problems varied across kampungs, the FRI also varied. Therefore, despite covering small areas, this type of FRI should usefully form the base of flood risk management policy and actions, both here and probably elsewhere.
C1 [Parvin, Gulsan Ara] Kyoto Univ, Lab Rural Planning & Sustainable Rural Dev, Yoshida Campus, Kyoto 6068107, Japan.
   [Ahsan, S. M. Reasul] Univ Utah, Urban Ecol, Incheon, South Korea.
   [Yusop, Azalia Yusop bt Mohd.; Ahmad, Mohd Hamdan] Univ Technol Malaysia, Urban & Reg Planning, Skudai, Malaysia.
   [Gordon, Jessica A.] MIT, Dept Urban Studies & Planning, Cambridge, MA 02139 USA.
   [Abedin, Md Anwarul] Bangladesh Agr Univ, Dept Soil Sci, Mymensingh, Bangladesh.
C3 Kyoto University; Universiti Teknologi Malaysia; Massachusetts Institute
   of Technology (MIT); Bangladesh Agricultural University (BAU)
RP Parvin, GA (corresponding author), Kyoto Univ, Lab Rural Planning & Sustainable Rural Dev, Yoshida Campus, Kyoto 6068107, Japan.
EM niruurp@yahoo.com
RI Bin Haji Ahmad, Mohd/J-2621-2016
OI Abedin, Md Anwarul/0000-0001-6885-4967
FU Malaysia Sustainable Cities Program (MSCP) (2013-2018) - faculty at the
   Massachusetts Institute of Technology (MIT); Universiti Teknologi
   Malaysia (UTM); Malaysia's Ministry of Education
FX The authors are grateful to the Malaysia Sustainable Cities Program
   (MSCP) which was a five-year effort (2013-2018), initiated and run by
   the faculty at the Massachusetts Institute of Technology (MIT) and
   Universiti Teknologi Malaysia (UTM), for their support as well as the
   generous support from Malaysia's Ministry of Education. This research
   was conducted while one of the authors was a visiting MCSP scholar. The
   kind cooperation and hospitality of the Temerloh Municipal Council and
   all the study's village heads and their teams are very much appreciated.
   The authors are thankful to Professor Hamdan of UTM and Professor
   Lawrence Susskind of MIT for their guidance.
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NR 32
TC 2
Z9 3
U1 2
U2 26
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 OCT 20
PY 2021
VL 20
IS 5
BP 550
EP 574
DI 10.1080/17477891.2021.1887800
EA FEB 2021
PG 25
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA XU6CB
UT WOS:000620053000001
DA 2025-04-22
ER

PT J
AU Garcia, A
   Gonda, N
   Atkins, E
   Godden, NJ
   Henrique, KP
   Parsons, M
   Tschakert, P
   Ziervogel, G
AF Garcia, Alicea
   Gonda, Noemi
   Atkins, Ed
   Godden, Naomi Joy
   Henrique, Karen Paiva
   Parsons, Meg
   Tschakert, Petra
   Ziervogel, Gina
TI Power in resilience and resilience's power in climate change scholarship
SO WILEY INTERDISCIPLINARY REVIEWS-CLIMATE CHANGE
LA English
DT Review
DE knowledge; power; resilience; scale; subject making
ID FEMINIST POLITICAL ECOLOGY; DISASTER RISK-MANAGEMENT; CHANGE ADAPTATION;
   KNOWLEDGE SYSTEMS; URBAN RESILIENCE; GENDERED SUBJECTIVITIES; SITUATED
   KNOWLEDGES; PROCEDURAL JUSTICE; VULNERABILITY; SUSTAINABILITY
AB Resilience thinking has undergone profound theoretical developments in recent decades, moving to characterize resilience as a socio-natural process that requires constant negotiation between a range of actors and institutions. Fundamental to this understanding has been a growing acknowledgment of the role of power in shaping resilience capacities and politics across cultural and geographic contexts. This review article draws on a critical content analysis, applied to a systematic review of recent resilience literature to examine how scholarship has embraced nuanced conceptualizations of how power operates in resilience efforts, to move away from framings that risk reinforcing patterns of marginalization. Advancing a framework inspired by feminist theory and feminist political ecology, we analyze how recent work has presented, documented, and conceptualized how resilience intersects with patterns of inequity. In doing so, we illuminate the importance of knowledge, scale, and subject-making in understanding the complex ways in which power and resilience become interlinked. We illustrate how overlooking such complexity may have serious consequences for how socio-natural challenges and solutions are framed in resilience scholarship and, in turn, how resilience is planned and enacted in practice. Finally, we highlight how recent scholarship is advancing the understandings necessary to make sense of the shifting, contested, and power-laden nature of resilience. Paying attention to, and building on, such complexity will allow scholarly work to illuminate the ways in which resilience is negotiated within inequitable processes and to address the marginalization of those continuing to bear the brunt of the climate crisis. This article is categorized under: Climate and Development > Social Justice and the Politics of Development
C1 [Garcia, Alicea; Tschakert, Petra] Univ Western Australia, Sch Social Sci, Dept Geog & Planning, Perth, Australia.
   [Gonda, Noemi] Swedish Univ Agr Sci, Dept Urban & Rural Dev, Uppsala, Sweden.
   [Atkins, Ed] Univ Bristol, Sch Geog Sci, Bristol, Avon, England.
   [Godden, Naomi Joy] Edith Cowan Univ, Sch Arts & Human, Social Work Program, Bunbury, Australia.
   [Henrique, Karen Paiva] Univ Amsterdam, Dept Geog Planning & Int Dev, Amsterdam, Netherlands.
   [Parsons, Meg] Univ Auckland, Sch Environm, Auckland, New Zealand.
   [Ziervogel, Gina] Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
C3 University of Western Australia; Swedish University of Agricultural
   Sciences; University of Bristol; Edith Cowan University; University of
   Amsterdam; University of Auckland; University of Cape Town
RP Garcia, A (corresponding author), Univ Western Australia, Sch Social Sci, Dept Geog & Planning, Perth, Australia.
EM alicea.garcia@research.uwa.edu.au
RI Ziervogel, Gina/AAG-2945-2019; Gonda, Noémi/ADV-4464-2022; Parsons,
   Meg/C-2405-2019
OI Godden, Naomi/0000-0001-9881-3365; Henrique, Karen
   Paiva/0000-0002-2163-2854; Tschakert, Petra/0000-0002-4268-3378;
   Parsons, Meg/0000-0001-8721-659X; Gonda, Noemi/0000-0002-1261-8380;
   Ziervogel, Gina/0000-0003-4219-6809; Garcia, Alicea/0000-0002-1980-264X
FU University of Western Australia (UWA) Research Collaboration Award
   (RCA); Worldwide Universities Network (WUN) Research Development Fund
   (RDF) grant; Swedish Research Council (VR-Vetenskapradet) [2018-05866];
   Swedish Research Council [2018-05866] Funding Source: Swedish Research
   Council
FX This study was supported by The University of Western Australia (UWA)
   Research Collaboration Award (RCA), a Worldwide Universities Network
   (WUN) Research Development Fund (RDF) grant, and funding from the
   Swedish Research Council (VR-Vetenskapradet; No. 2018-05866).
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NR 172
TC 18
Z9 20
U1 4
U2 53
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 MAY
PY 2022
VL 13
IS 3
AR e762
DI 10.1002/wcc.762
EA JAN 2022
PG 21
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 2I2UI
UT WOS:000744871000001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Debrieu-Levrat, C
   Paraboschi, V
   Masfrand, S
   Brun, A
AF Debrieu-Levrat, Celine
   Paraboschi, Valerie
   Masfrand, Severine
   Brun, Alexandre
TI Territorial resilience: challenges, actors and strategies in the
   Dordogne girondine
SO HOUILLE BLANCHE-REVUE INTERNATIONALE DE L EAU
LA French
DT Article
DE resilience; flood; Gironde; experimentation; urban area; natural area;
   farmland; Dordogne; urban planning
AB The paper presents the main results of a study on territorial resilience in the Dordogne girondine. This sector is multifarious because it is densely urbanized and subject to the risks of flooding by stream overflow and by marine submersion. After a theoretical detour on the notion of resilience applied to "territories", the communication presents in turn the stakes, the actors and finally the new strategies that deserve to be tested at the end of the study. The Departemental Council of Gironde wishes to develop, within the framework of territorial solidarity, localized actions in order to promote the competitiveness and attractiveness of territories undergoing major changes in the Dordogne girondine. In this perspective, the Amenag'eau team - which combines different skills within the Departemental Council - has given priority to a methodological study that puts a key place to the history of the territories. It is based on a triptych ranging from the exploitation of archives to the collection of testimonies and passing through the diachronic analysis of the evolution of land use. The goal of Amenag'eau is to draw on the corpus of the individual and collective strategies implemented in the 19th and early 20th centuries both in terms of localization and the organization of men and activities at the local level, in terms of architectural processes, materials or technical networks at the local level, in order to influence constructively communities that are often poor and yet in charge of drawing up urban planning documents and territorial planning.
C1 [Debrieu-Levrat, Celine; Paraboschi, Valerie; Masfrand, Severine] Conseil Dept Gironde, CS 71223, 1 Esplanade Charles de Gaulle, Bordeaux, France.
   [Brun, Alexandre] Univ Paul Valery Montpellier 3, Route Mende, F-34099 Montpellier, France.
C3 Universite Paul-Valery
RP Debrieu-Levrat, C (corresponding author), Conseil Dept Gironde, CS 71223, 1 Esplanade Charles de Gaulle, Bordeaux, France.
EM c.debrieu-levrat@gironde.fr; v.paraboschi@gironde.fr;
   s.masfrand@gironde.fr; alexandre.brun@univ-montp3.fr
CR ALEXANDRE BRUN, 2015, ACT IS RIV 2 C INT R
   ALEXANDRE BRUN, 2013, VERTIGO REV ELECT SC
   Alexandre Brun, 2011, CYBERGEO EUROPEAN J
   BRUNO BARROCA, 2012, VERTIGO REV ELECT SC, V12
   DAMIENS SERRE, 2011, VILLE RESILIENTE INO
   David Mangin, 2002, SEM EAVT 2002 RECH P
   DREAL AQUITAINE, 2014, MIS OEUVR DIR IN RAP
   EPIDOR, 2010, EV VULN PAL CRUE CEN
   LABORATOIRE LIGERIEN, 2015, HAB EAU CARN PROJ
   LAURENT GATINEAU, 2001, SUD-OUEST EUR, V12, P21
   MAGALI REGHEZZA, 2012, CYBERGEO EUROPEAN J
   OLIVIER SONNET, 2017, RAPPORT
   RATEAU MICHEL A, 2009, AKHEIA
NR 13
TC 0
Z9 0
U1 0
U2 7
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 APR
PY 2018
IS 2
BP 22
EP 28
DI 10.1051/lhb/2018017
PG 7
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA GI6QQ
UT WOS:000434516400003
DA 2025-04-22
ER

PT J
AU Glaas, E
   Hjerpe, M
   Storbjörk, S
   Neset, TS
   Bohman, A
   Muthumanickam, P
   Johansson, J
AF Glaas, Erik
   Hjerpe, Mattias
   Storbjork, Sofie
   Neset, Tina-Simone
   Bohman, Anna
   Muthumanickam, Prithiviraj
   Johansson, Jimmy
TI Developing transformative capacity through systematic assessments and
   visualization of urban climate transitions
SO AMBIO
LA English
DT Article
DE Assessment; Climate change; Governance; Transformative capacity; Urban
   Climate Transition; Visualization
ID SUSTAINABILITY; CARBON; INDICATORS; ADAPTATION; MANAGEMENT; LESSONS;
   CITIES; CITY
AB Transforming cities into low-carbon, resilient, and sustainable places will require action encompassing most segments of society. However, local governments struggle to overview and assess all ongoing climate activities in a city, constraining well-informed decision-making and transformative capacity. This paper proposes and tests an assessment framework developed to visualize the implementation of urban climate transition (UCT). Integrating key transition activities and process progression, the framework was applied to three Swedish cities. Climate coordinators and municipal councillors evaluated the visual UCT representations. Results indicate that their understanding of UCT actions and implementation bottlenecks became clearer, making transition more governable. To facilitate UCT, involving external actors and shifting priorities between areas were found to be key. The visual UCT representations improved system awareness and memory, building local transformative capacity. The study recommends systematic assessment and visualization of process progression as a promising method to facilitate UCT governance, but potentially also broader sustainability transitions.
C1 [Glaas, Erik; Hjerpe, Mattias; Storbjork, Sofie; Neset, Tina-Simone; Bohman, Anna] Linkoping Univ, Ctr Climate Sci & Policy Res, Dept Themat Studies Environm Change, S-58183 Linkoping, Sweden.
   [Muthumanickam, Prithiviraj; Johansson, Jimmy] Linkoping Univ, Dept Sci & Technol Media & Informat Technol, S-60174 Norrkoping, Sweden.
C3 Linkoping University; Linkoping University
RP Glaas, E (corresponding author), Linkoping Univ, Ctr Climate Sci & Policy Res, Dept Themat Studies Environm Change, S-58183 Linkoping, Sweden.
EM erik.glaas@liu.se
OI Glaas, Erik/0000-0002-5126-3973; Neset, Tina-Simone/0000-0003-1151-9943
FU Norrkoping Research and Development Foundation; Swedish Research Council
   Formas [942-2015-106]
FX This research was supported by the Norrkoping Research and Development
   Foundation and the Swedish Research Council Formas under Grant No.
   942-2015-106. The authors wish to thank the anonymous reviewers and the
   special issue editors for valuable comments on earlier versions of this
   paper, and the interviewees for participating in the study.
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NR 42
TC 21
Z9 22
U1 3
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 MAY
PY 2019
VL 48
IS 5
SI SI
BP 515
EP 528
DI 10.1007/s13280-018-1109-9
PG 14
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology
GA HT6ZI
UT WOS:000464713200007
PM 30392034
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Yuan, Y
   Bai, ZK
   Zhang, JN
   Xu, CC
AF Yuan, Yuan
   Bai, Zhongke
   Zhang, Jianan
   Xu, Caicai
TI Increasing urban ecological resilience based on ecological security
   pattern: A case study in a resource-based city
SO ECOLOGICAL ENGINEERING
LA English
DT Article
DE Ecological resilience; Resource-based cities; Ecological sources;
   Ecological corridors; Ecological nodes; Ecological security pattern
ID ECOSYSTEM SERVICES; CLIMATE-CHANGE; SYSTEMS; SURROGATES; EMERGENCE;
   FUTURE
AB High-intensity mineral resource exploitation has resulted in numerous ecological problems that seriously threaten the sustainability of resource-based cities. Resilience is considered as the key to maintaining regional sustainability. Therefore, this study established an index framework that affected the resilience of resource-based cities. We selected Changzhi in China as the study area and determined its current distribution of resilience. The ecological security pattern (ESP) can guide regional sustainability by effectively coordinating economic development and ecosystem protection, and play an important role in improving resilience. This study identified ecological sources through ecosystem services and applied circuit theory to extract ecological corridors. Combining the ESP with resilience, this study evaluated the resilience of ESP by constructing an index system of two scales of ESP elements (ecological sources, ecological corridors, and ecological nodes) and grid units; and the raster overlay operation of the results of the two scales was divided into five levels. Then, we proposed the corresponding recommendation for optimization. In general, this study provides a method to improve the spatial resilience that of high importance for regional development planning, ecological protection, and reasonable regulation of mining activities.
C1 [Yuan, Yuan; Bai, Zhongke; Zhang, Jianan] China Univ Geosci, Sch Land Sci & Technol, Beijing 100083, Peoples R China.
   [Bai, Zhongke] Minist Nat Resources, Key Lab Land Consolidat & Rehabil, Beijing 100035, Peoples R China.
   [Bai, Zhongke] Minist Nat Resources, Technol Innovat Ctr Ecol Restorat Engn Min Area, Beijing 100035, Peoples R China.
   [Xu, Caicai] Huazhong Agr Univ, Coll Publ Adm, Shizishan Rd, Wuhan 430070, Hubei, Peoples R China.
   [Bai, Zhongke; Zhang, Jianan] China Univ Geosci Beijing, Sch Land Sci & Technol, 29 Xueyuan Rd, Beijing 100083, Peoples R China.
C3 China University of Geosciences; Ministry of Natural Resources of the
   People's Republic of China; Ministry of Natural Resources of the
   People's Republic of China; Huazhong Agricultural University; China
   University of Geosciences
RP Bai, ZK (corresponding author), China Univ Geosci, Sch Land Sci & Technol, Beijing 100083, Peoples R China.; Bai, ZK (corresponding author), Minist Nat Resources, Key Lab Land Consolidat & Rehabil, Beijing 100035, Peoples R China.; Bai, ZK (corresponding author), Minist Nat Resources, Technol Innovat Ctr Ecol Restorat Engn Min Area, Beijing 100035, Peoples R China.; Bai, ZK (corresponding author), China Univ Geosci Beijing, Sch Land Sci & Technol, 29 Xueyuan Rd, Beijing 100083, Peoples R China.
EM baizk@cugb.edu.cn
FU National Key Research and Development Program of China [2017YFF0206802]
FX This research was supported by the National Key Research and Development
   Program of China (2017YFF0206802) and the Project authorized by the
   Department of Land and Space Ecological Restoration of the Ministry of
   Natural Resources: The implementation plan of the ecological protection
   and restoration project of mountains, rivers, forests, fields, lakes and
   grasses. The authors are grateful to the editors and the anonymous
   reviewers for their insightful comments and suggestions.
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NR 59
TC 78
Z9 84
U1 93
U2 568
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0925-8574
EI 1872-6992
J9 ECOL ENG
JI Ecol. Eng.
PD FEB
PY 2022
VL 175
AR 106486
DI 10.1016/j.ecoleng.2021.106486
EA NOV 2021
PG 12
WC Ecology; Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Engineering
GA XO3VM
UT WOS:000730116200001
DA 2025-04-22
ER

PT J
AU Wang, P
   Deng, XZ
   Zhou, HM
   Qi, W
AF Wang, Pei
   Deng, Xiangzheng
   Zhou, Huimin
   Qi, Wei
TI Responses of urban ecosystem health to precipitation extreme: A case
   study in Beijing and Tianjin
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Climate change; Precipitation extreme; Urban ecosystem health; Emergy
   analysis; Difference-in-Difference
ID CHINA; CLIMATE; CITIES; EMERGY
AB Our research explores the relationship between precipitation extreme and urban ecosystem health by using emergy analysis based on urban ecosystem health assessment and Difference-in-Difference approach. In the case study area of Beijing and Tianjin, their urban ecosystem are getting healthier with the average growth rate of the key index, urban ecosystem health, are 0.23 and 0.12 respectively, simultaneously the overall index of Beijing is a little higher than that of Tianjin. Meanwhile, urban ecosystem seemingly has nothing to do with precipitation extreme, and the health of its urban sub-ecosystem performs significantly to the precipitation extreme except the sub-ecosystems, resilience, public services and human health. Vigor, one of the urban sub-ecosystems, its ecosystem health negatively associated with precipitation extreme. And urban sub-ecosystem health of vigor will reduce 14.42 if a precipitation extreme happens. The precipitation extreme has a positive effect on organization and emergies. And urban sub-ecosystem health of organization and emergies will increase 44.11, 12.02 respectively if a precipitation extreme happens. In addition, it is apparently nonsignificant to the sub-ecosystems, resilience, public services and human health. Moreover, the extreme precipitation consumes more emergies for the city, it seems beneficial for emergy flow for that precipitation extreme negatively affects emergyidollar ratio, environmental loading rate and positively affects total emergy. But the extreme precipitation also negatively influences emergy yield ratio. Thus, urban ecosystem health associates with precipitation extreme in a complex way, both positively and negatively. Government measures for recovering urban ecosystem health should emphasize the sub-ecosystem vigor of the city, like constructing more public facilities. And policy makers may pay more attention on environmental loading rate, like advocating improving energy use efficiency. (C) 2017 Elsevier Ltd. All rights reserved.
C1 [Wang, Pei; Deng, Xiangzheng; Qi, Wei] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Wang, Pei; Deng, Xiangzheng] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Wang, Pei; Deng, Xiangzheng; Qi, Wei] Chinese Acad Sci, Ctr Chinese Agr Policy, Beijing 100101, Peoples R China.
   [Zhou, Huimin] Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Shandong, 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; Chinese Academy of Sciences; Shandong
   Normal University
RP Deng, XZ (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
EM wangpei@igsnrr.ac.cn; dengxz.ccap@igsnrr.ac.cn; zhouhm_simlab@163.com;
   qiw@igsnrr.ac.cn
RI Qi, Wei/S-7651-2017; Wang, Pei/E-7485-2013; Deng, Xiangzheng/N-1335-2018
FU National Key Research and Development Program of China [2016YFA0602502];
   National Natural Science Funds of China [71533004]
FX This research was financially supported by the National Key Research and
   Development Program of China (Grant No. 2016YFA0602502) and National
   Natural Science Funds of China (Grant No. 71533004).
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NR 20
TC 39
Z9 41
U1 5
U2 111
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 MAR 10
PY 2018
VL 177
BP 124
EP 133
DI 10.1016/j.jclepro.2017.12.125
PG 10
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 FU9OY
UT WOS:000424186600012
DA 2025-04-22
ER

PT J
AU Sadr, SMK
   Casal-Campos, A
   Fu, GT
   Farmani, R
   Ward, S
   Butler, D
AF Sadr, Seyed M. K.
   Casal-Campos, Arturo
   Fu, Guangtao
   Farmani, Raziyeh
   Ward, Sarah
   Butler, David
TI Strategic planning of the integrated urban wastewater system using
   adaptation pathways
SO WATER RESEARCH
LA English
DT Article
DE Adaptation pathways; Green strategies; Hybrid strategies; Resilience;
   Sustainability; Urban wastewater systems
ID CLIMATE-CHANGE; DEEP UNCERTAINTY; REAL OPTIONS; MANAGEMENT;
   OPTIMIZATION; RESILIENCE; FRAMEWORK; POINTS; DESIGN; FUTURE
AB Emerging threats such as climate change and urbanisation pose an unprecedented challenge to the integrated management of urban wastewater systems, which are expected to function in a reliable, resilient and sustainable manner regardless of future conditions. Traditional long term planning is rather limited in developing no-regret strategies that avoid maladaptive lock-ins in the near term and allow for flexibility in the long term. In this study, a novel adaptation pathways approach for urban wastewater management is developed in order to explore the compliance and adaptability potential of intervention strategies in a long term operational period, accounting for different future scenarios and multiple performance objectives in terms of reliability, resilience and sustainability. This multi-criteria multi-scenario approach implements a regret-based method to assess the relative performance of two types of adaptation strategies: (I) standalone strategies (i.e. green or grey strategies only); and (II) hybrid strategies (i.e. combined green and grey strategies). A number of adaptation thresholds (i.e. the points at which the current strategy can no longer meet defined objectives) are defined to identify compliant domains (i.e. periods of time in a future scenario when the performance of a strategy can meet the targets). The results obtained from a case study illustrate the trade-off between adapting to short term pressures and addressing long term challenges. Green strategies show the highest performance in simultaneously meeting near and long term needs, while grey strategies are found less adaptable to changing circumstances. In contrast, hybrid strategies are effective in delivering both short term compliance and long term adaptability. It is also shown that the proposed adaption pathways method can contribute to the identification of adaptation strategies that are developed as future conditions unfold, allowing for more flexibility and avoiding long term commitment to strategies that may cause maladaptation. This provides insights into the near term and long term planning of ensuring the reliability, resilience and sustainability of integrated urban drainage systems. (C) 2020 The Authors. Published by Elsevier Ltd.
C1 [Sadr, Seyed M. K.; Casal-Campos, Arturo; Fu, Guangtao; Farmani, Raziyeh; Ward, Sarah; Butler, David] Univ Exeter, Ctr Water Syst, Coll Engn Math & Phys Sci, North Pk Rd,Harrison Bldg, Exeter EX4 4QF, Devon, England.
C3 University of Exeter
RP Sadr, SMK; Casal-Campos, A (corresponding author), Univ Exeter, Ctr Water Syst, Coll Engn Math & Phys Sci, North Pk Rd,Harrison Bldg, Exeter EX4 4QF, Devon, England.
EM s.m.k.sadr@exeter.ac.uk; a.casal@mail.com
RI Fu, Guangtao/ABE-3874-2021; Gonzalez-Barrio, David/MHQ-7861-2025;
   Farmani, Raziyeh/D-3457-2012
OI Sadr, Seyed M K/0000-0001-5679-2287; Farmani,
   Raziyeh/0000-0001-8148-0488
FU UK Engineering & Physical Sciences Research Council through the STREAM
   Engineering Doctorate [EP/G037094/1]; Northumbrian Water Limited; BRIM
   [EP/N010329/1, EP/K006924/1]
FX This study was funded by the UK Engineering & Physical Sciences Research
   Council through the STREAM Engineering Doctorate (EP/G037094/1) with
   Northumbrian Water Limited, BRIM (EP/N010329/1) and the final author's
   fellowship Safe & SuRe (EP/K006924/1).
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NR 61
TC 21
Z9 22
U1 5
U2 56
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 SEP 1
PY 2020
VL 182
AR 116013
DI 10.1016/j.watres.2020.116013
PG 14
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA NO0CN
UT WOS:000569155400008
PM 32682104
OA hybrid
DA 2025-04-22
ER

PT J
AU Angourakis, A
   Bates, J
   Baudouin, JP
   Giesche, A
   Ustunkaya, MC
   Wright, N
   Singh, RN
   Petrie, CA
AF Angourakis, Andreas
   Bates, Jennifer
   Baudouin, Jean-Philippe
   Giesche, Alena
   Ustunkaya, M. Cemre
   Wright, Nathan
   Singh, Ravindra N.
   Petrie, Cameron A.
TI How to 'downsize' a complex society: an agent-based modelling approach
   to assess the resilience of Indus Civilisation settlements to past
   climate change
SO ENVIRONMENTAL RESEARCH LETTERS
LA English
DT Article
DE agent-based modelling; agriculture; Bronze Age; climate change; Indus
   Civilisation; modelling and simulation; resilience
ID VARIABLE ENVIRONMENTS; SUMMER MONSOON; SOUTH-ASIA; SIMULATION;
   ADAPTATION; MILLETS; GROWTH; WINTER; LAND
AB The development, floruit and decline of the urban phase of the Indus Civilisation (c.2600/2500-1900 BC) provide an ideal opportunity to investigate social resilience and transformation in relation to a variable climate. The Indus Civilisation extended over most of the Indus River Basin, which includes a mix of diverse environments conditioned, among other factors, by partially overlapping patterns of winter and summer precipitation. These patterns likely changed towards the end of the urban phase (4.2 ka BP event), increasing aridity. The impact of this change appears to have varied at different cities and between urban and rural contexts. We present a simulation approach using agent-based modelling to address the potential diversity of agricultural strategies adopted by Indus settlements in different socio-ecological scenarios in Haryana, NW India. This is an ongoing initiative that consists of creating a modular model, Indus Village, that assesses the implications of trends in cropping strategies for the sustainability of settlements and the resilience of such strategies under different regimes of precipitation. The model aims to simulate rural settlements structured into farming households, with sub-models representing weather and land systems, food economy, demography, and land use. This model building is being carried out as part of the multi-disciplinary TwoRains project. It brings together research on material culture, settlement distribution, food production and consumption, vegetation and paleoenvironmental conditions.
C1 [Angourakis, Andreas; Ustunkaya, M. Cemre; Wright, Nathan; Petrie, Cameron A.] Univ Cambridge, McDonald Inst Archaeol Res, Cambridge CB2 3DZ, Cambs, England.
   [Bates, Jennifer] Univ Penn, Dept Anthropol, Philadelphia, PA 19104 USA.
   [Baudouin, Jean-Philippe] Univ Cambridge, Dept Geog, Cambridge CB2 3EN, Cambs, England.
   [Baudouin, Jean-Philippe] Heidelberg Univ, Inst Environm Phys, D-69117 Heidelberg, Germany.
   [Baudouin, Jean-Philippe; Giesche, Alena] Univ Cambridge, Dept Earth Sci, Cambridge CB2 3EQ, Cambs, England.
   [Wright, Nathan] Univ Queensland, Sch Social Sci, Brisbane, Qld 4072, Australia.
   [Singh, Ravindra N.] Banaras Hindu Univ, Dept AIHC & Archaeol, Varanasi 221005, Uttar Pradesh, India.
   Univ Cambridge, Dept Archaeol, Cambridge CB2 3DZ, Cambs, England.
C3 University of Cambridge; University of Pennsylvania; University of
   Cambridge; Ruprecht Karls University Heidelberg; University of
   Cambridge; University of Queensland; Banaras Hindu University (BHU);
   University of Cambridge
RP Angourakis, A (corresponding author), Univ Cambridge, McDonald Inst Archaeol Res, Cambridge CB2 3DZ, Cambs, England.
EM aa2112@cam.ac.uk
RI Petrie, Cameron/ABB-8528-2021; Angourakis, Andreas/ABC-4886-2020; Singh,
   Ravindra/AAO-2784-2020; Wright, Nathan/Q-2455-2016
OI Singh, Ravindra Nath/0000-0002-1102-4839; Giesche,
   Alena/0000-0003-3673-7269; Ustunkaya, Meltem/0000-0003-4217-1695;
   Baudouin, Jean-Philippe/0000-0002-0219-8634; Wright,
   Nathan/0000-0002-2482-2661; Angourakis, Andreas/0000-0002-9946-8142;
   Bates, Jennifer/0000-0002-7100-4741; Petrie, Cameron/0000-0002-2926-7230
FU European Research Council (ERC) under the European Union's Horizon 2020
   research and innovation programme [648609]; DST-UKIERI programme;
   McDonald Institute for Archaeological Research; NASA Earth
   Science/Applied Science Program; UKRI [BB/P027970/1] Funding Source:
   UKRI
FX This paper was made possible thanks to funding from the European
   Research Council (ERC) under the European Union's Horizon 2020 research
   and innovation programme (grant agreement no 648609) for the TwoRains
   project (www.arch.cam.ac.uk/research/projects/tworains).TwoRains is a
   collaboration between researchers at the University of Cambridge and
   Banaras Hindu University in Varanasi that was begun as the Land, Water
   and Settlement project
   (www.arch.cam.ac.uk/research/projects/landwater-settlement/).We would
   also like to acknowledge funding from the DST-UKIERI programme and the
   McDonald Institute for Archaeological Research. Meteorological data used
   in figure 3 were obtained from the NASA Langley Research Center (LaRC)
   POWER Project funded through the NASA Earth Science/Applied Science
   Program (https://power.larc.nasa.gov/).The attributions regarding
   graphic assets used in figure 4 are as follows: all emojis are by
   Twemoji licensed under CC-BY 4.0 (https://github.com/twitter/twemoji);
   cube representing land units is by OpenClipartVectors (pixabay.com)
   under Creative Commons Zero License for Public Domain, available at
   www.needpix.com/photo/100634/block-grass-earthland-green-grass-free-vect
   or-graphics-free-pictures-free-photos-free-images; icon depicting a
   mother with an infant is by the CDC (U.S. federal government) and is in
   the public domain (available at
   https://commons.wikimedia.org/wiki/File:Mother_ wtih_infant_icon.svg);
   pottery icons are under Creative Commons Zero License for Public Domain
   and were obtained at svgsilh.com; 'people' icon by Fahmihorizon under
   CC-BY 3.0 obtained at https://thenounproject.com/icon/1426355/; the
   central 3D scene was created by A. Angourakis. All remaining graphic
   assets used in figure 4 are in the public domain. Certain images in this
   publication have been obtained by the author(s) from the
   Wikipedia/Wikimedia website, where they were made available under a
   Creative Commons licence or stated to be in the public domain. Please
   see individual figure captions in this publication for details. To the
   extent that the law allows, IOP Publishing [and full partner name (if
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NR 76
TC 3
Z9 3
U1 7
U2 42
PU IOP Publishing Ltd
PI BRISTOL
PA TEMPLE CIRCUS, TEMPLE WAY, BRISTOL BS1 6BE, ENGLAND
SN 1748-9326
J9 ENVIRON RES LETT
JI Environ. Res. Lett.
PD NOV
PY 2020
VL 15
IS 11
AR 115004
DI 10.1088/1748-9326/abacf9
PG 17
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA OG7QO
UT WOS:000582074100001
OA gold
DA 2025-04-22
ER

PT J
AU Simon, S
   Randalls, S
AF Simon, Stephanie
   Randalls, Samuel
TI Geography, ontological politics and the resilient future
SO DIALOGUES IN HUMAN GEOGRAPHY
LA English
DT Article
DE post-political; psychology; resilience; security; socioecological
   systems
ID COMMUNITY RESILIENCE; ECOLOGY; TECHNOLOGIES; BIOPOLITICS
AB Applications of resilience' have stretched it to the point of breaking, yet it still maintains a remarkable capacity to organize relations in diverse fields of geographical concern such as ecological management, development, security, psychology and urban preparedness. Critical takes on resilience have emphasized its neo-liberal roots and utility. Whilst we do not disagree with this stance, our critical intervention argues that there are multiple resiliences invoking differing spatialities, temporalities and political implications and that this multiplicity is an important part of the work that resilience can do. We explore diverse mobilizations of resilience thinking across a wide array of empirical domains drawing out the differing ontological bases of resiliences and the interventions meant to promote them, particularly given the tension between a desire for open, non-linearity on the one hand and a mission to control and manage on the other. Rather than take resilience to be a determinedly new shift in policymaking, we explore how the post-political qualities of resilience multiple' can enable changes in behaviours and practices that slide between conflicting and contestable visions of the good life and desirable futures. We argue that the only way to critically interrogate resilience is to force the question of particulars in its diverse articulations, and, thus, geographers should engage in debating the ontological politics of resilience multiple.
C1 [Simon, Stephanie] Univ Amsterdam, NL-1012 WX Amsterdam, Netherlands.
   [Randalls, Samuel] UCL, London WC1E 6BT, England.
C3 University of Amsterdam; University of London; University College London
RP Simon, S (corresponding author), Univ Amsterdam, Dept Polit Sci, NL-1012 WX Amsterdam, Netherlands.
EM simon@uva.nl
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NR 72
TC 65
Z9 71
U1 0
U2 38
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 2043-8206
EI 2043-8214
J9 DIALOGUES HUM GEOGR
JI Dialogues Hum. Geogr.
PD MAR
PY 2016
VL 6
IS 1
BP 3
EP 18
DI 10.1177/2043820615624047
PG 16
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA DH6LJ
UT WOS:000372901800001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Tomko, B
   Nittrouer, CL
   Sanchez-Vila, X
   Sawyer, AH
AF Tomko, Brianna
   Nittrouer, Christine L.
   Sanchez-Vila, Xavier
   Sawyer, Audrey H.
TI Winter Storm Uri: Public Drinking Water System Resilience in Texas
SO JOURNAL AWWA
LA English
DT Article
DE boil water advisory; Texas water; water system resilience; Winter Storm
   Uri
AB Water service providers need to prepare for more extreme weather events in a changing climate.A geospatial analysis found that differences in boil-water advisory lengths issued during 2021's Winter Storm Uri were based on the population served and rural or urban location.A cross-sectional survey showed that many individuals were unaware of or confused about the advisories that were (or were not) issued.
C1 [Tomko, Brianna] Univ Florida, Gainesville, FL 32611 USA.
   [Nittrouer, Christine L.] Texas Tech Univ, Rawls Coll Business, Lubbock, TX USA.
   [Sanchez-Vila, Xavier] Univ Politecn Cataluna, Barcelona, Spain.
   [Sawyer, Audrey H.] Ohio State Univ, Columbus, OH USA.
C3 State University System of Florida; University of Florida; Texas Tech
   University System; Texas Tech University; Universitat Politecnica de
   Catalunya; University System of Ohio; Ohio State University
RP Tomko, B (corresponding author), Univ Florida, Gainesville, FL 32611 USA.
EM b.tomko@ufl.edu
RI Sawyer, Audrey/W-3729-2017
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NR 9
TC 0
Z9 0
U1 7
U2 8
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0003-150X
EI 1551-8833
J9 J AWWA
JI J. AWWA
PD MAY
PY 2024
VL 116
IS 4
BP 10
EP 20
DI 10.1002/awwa.2261
PG 11
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA NS1K2
UT WOS:001202348700011
DA 2025-04-22
ER

PT J
AU Patterson, J
   Soininen, N
   Collier, M
   Raymond, CM
AF Patterson, James
   Soininen, Niko
   Collier, Marcus
   Raymond, Christopher M. M.
TI Finding feasible action towards urban transformations
SO NPJ URBAN SUSTAINABILITY
LA English
DT Article
ID CLIMATE-CHANGE; SUSTAINABLE DEVELOPMENT; POLITICAL FEASIBILITY; GREEN
   INFRASTRUCTURE; RESILIENCE; TRANSITIONS; GOVERNANCE; POLICY; CITY;
   CITIES
AB While innovative approaches to urban transformations are increasingly proposed, scholars often overlook challenges faced by endogenous actors (e.g. urban planners) tasked with taking action within non-ideal, real-world settings. Here we argue that an 'inside' view of transformations (focused on judgment in practice) is needed to complement existing 'outside' views (focused on assessment), where the feasibility of action becomes a central concern. This recasts urban transformations in a discretised perspective. It suggests a view of transformation pathways as both directed and stochastic, and emergent from an unfolding series of 'fuzzy action moments'. Principles for bridging urban science and planning are derived.
C1 [Patterson, James] Univ Utrecht, Copernicus Inst Sustainable Dev, Fac Geosci, Utrecht, Netherlands.
   [Soininen, Niko] Univ Eastern Finland, Ctr Climate Change Energy & Environm Law CCEEL, Law Sch, Joensuu, Finland.
   [Collier, Marcus] Trinity Coll Dublin, Sch Nat Sci, Dublin, Ireland.
   [Raymond, Christopher M. M.] Univ Helsinki, Helsinki Inst Sustainabil Sci HELSUS, Helsinki, Finland.
   [Raymond, Christopher M. M.] Univ Helsinki, Fac Biol & Environm Sci, Ecosyst & Environm Res Program, Helsinki, Finland.
   [Raymond, Christopher M. M.] Univ Helsinki, Fac Agr & Forestry, Dept Econ & Management, Helsinki, Finland.
   [Raymond, Christopher M. M.] Swedish Univ Agr Sci, Dept Landscape Architecture Planning & Management, SLU, Uppsala, Sweden.
C3 Utrecht University; University of Eastern Finland; Trinity College
   Dublin; University of Helsinki; University of Helsinki; University of
   Helsinki; Swedish University of Agricultural Sciences
RP Patterson, J (corresponding author), Univ Utrecht, Copernicus Inst Sustainable Dev, Fac Geosci, Utrecht, Netherlands.
EM j.j.patterson@uu.nl
RI Raymond, Christopher/ABP-6324-2022; Collier, Marcus/G-3557-2010;
   Soininen, Niko/AAM-9814-2020; Raymond, Christopher/G-2712-2010
OI Collier, Marcus/0000-0002-6853-9980; Soininen, Niko/0000-0003-0941-0594;
   Raymond, Christopher/0000-0002-7165-885X
FU European Research Council [804051]; Strategic Research Council of
   Finland [312652, 312747]; UEF Water Research Programme; Formas [730222];
   European Community [101002440]; European Research Council Consolidator
   Grant [2018-00175]; VIVA-PLAN; European Research Council (ERC) [804051,
   101002440] Funding Source: European Research Council (ERC); Academy of
   Finland (AKA) [312652, 312747] Funding Source: Academy of Finland (AKA)
FX We thank two anonymous reviewers for insightful comments which helped to
   improve this paper. J.P. received funding from the European Research
   Council as a collaborator on the project LO-ACT (Grant Agreement No
   804051). N.S. received funding from Strategic Research Council of
   Finland funded project BlueAdapt (decisions 312652 and 312747) and UEF
   Water Research Programme. C.R. received funding from Formas funded
   project VIVA-PLAN (grant no. 2018-00175). M.C. is supported by funding
   from the European Community's Framework Program Horizon 2020 for the
   Connecting Nature Project (grant agreement no. 730222) and the European
   Research Council Consolidator Grant (grant agreement no. 101002440).
   Open access funding is provided by VIVA-PLAN (grant no. 2018-00175).
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NR 96
TC 19
Z9 19
U1 4
U2 8
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 28
PY 2021
VL 1
IS 1
AR 28
DI 10.1038/s42949-021-00029-7
PG 8
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I3AI3
UT WOS:001001537300002
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Kern, K
   Irmisch, J
   Odermatt, C
   Haupt, W
   Kissling-Näf, I
AF Kern, Kristine
   Irmisch, Janne
   Odermatt, Colette
   Haupt, Wolfgang
   Kissling-Naef, Ingrid
TI Cultural Heritage, Sustainable Development, and Climate Policy:
   Comparing the UNESCO World Heritage Cities of Potsdam and Bern
SO SUSTAINABILITY
LA English
DT Article
DE climate policy; sustainable development; governance; UNESCO World
   Heritage; (urban) heritage management; historical cities; forerunner
   cities; matching cities; city of Potsdam; city of Bern
ID GOVERNANCE; CITY; INITIATIVES; MITIGATION; ADOPTION; LEADERS; LEVEL
AB Developing sustainable, carbon-neutral, and climate-resilient districts seems to be particularly challenging with respect to historic city centers. However, barriers posed by legal requirements for historical buildings are counterbalanced by opportunities because historic cities have not undergone urban modernization and did not embrace the concept of functional cities, which nowadays impedes urban sustainability transformations. Thus, this paper focuses on the relationship between cultural heritage, urban sustainable development, and climate policy. We study continuity and change in the mid-sized UNESCO World Heritage cities Potsdam (Germany) and Bern (Switzerland). These matching forerunner cities share many characteristics, which enables them to transfer policies and jointly create new solutions for common problems. We find that national context matters, but we also identify functional equivalents like referenda and active citizen participation. Despite many similarities, Potsdam is ahead of Bern with respect to the institutionalization and integration of climate mitigation and adaptation. The comparative analysis (interviews and document analysis) identifies innovations that can be transferred between the two cities (e.g., Potsdam's integrative climate policy or Bern's efforts to become a role model for stakeholders and citizens). Moreover, the challenge to coordinate heritage management and climate governance offers chances for cooperation between matching cities like Bern and Potsdam.
C1 [Kern, Kristine; Irmisch, Janne; Haupt, Wolfgang] Leibniz Inst Res Soc & Space IRS, Res Dept Inst Change & Reg Publ Goods, D-15537 Erkner, Germany.
   [Kern, Kristine] Abo Akad Univ AAU, Fac Social Sci Business & Econ, Turku 20500, Finland.
   [Odermatt, Colette; Kissling-Naef, Ingrid] Bern Univ Appl Sci BFH, Inst Sustainable Business, CH-3005 Bern, Switzerland.
C3 Leibniz Association; Leibniz Institut fur Raumbezogene Sozialforschung
   (IRS)
RP Kern, K (corresponding author), Leibniz Inst Res Soc & Space IRS, Res Dept Inst Change & Reg Publ Goods, D-15537 Erkner, Germany.; Kern, K (corresponding author), Abo Akad Univ AAU, Fac Social Sci Business & Econ, Turku 20500, Finland.
EM kristine.kern@leibniz-irs.de; janne.irmisch@leibniz-irs.de;
   colette.odermatt@bfh.ch; wolfgang.haupt@leibniz-irs.de;
   ingrid.kissling@bfh.ch
RI Haupt, Wolfgang/AET-1139-2022
OI Kern, Kristine/0000-0001-9923-4621; Haupt, Wolfgang/0000-0002-1042-2106
FU Germany's Federal Ministry of Education and Research (BMBF) [FKZ
   01LR1709B, FKZ 01LR1709B1]
FX This study was partially funded by the research project "Urban
   resilience against extreme weather events-typologies and transfer of
   adaptation strategies in small metropolises and medium-sized cities"
   (ExTrass), funded by Germany's Federal Ministry of Education and
   Research (BMBF), grant numbers: FKZ 01LR1709B and FKZ 01LR1709B1).
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NR 59
TC 11
Z9 11
U1 8
U2 49
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 9131
DI 10.3390/su13169131
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 UH8TM
UT WOS:000690195800001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Siebeneck, L
   Arlikatti, S
   Andrew, SA
AF Siebeneck, Laura
   Arlikatti, Sudha
   Andrew, Simon A.
TI Using provincial baseline indicators to model geographic variations of
   disaster resilience in Thailand
SO NATURAL HAZARDS
LA English
DT Article
DE Resilience; Thailand; Flood; Disaster
ID SOCIAL VULNERABILITY; COMMUNITY RESILIENCE; NATURAL DISASTERS; FLOOD;
   SPIRITUALITY; RECOVERY; TSUNAMI; RETURN; PLACE
AB Understanding a community's capacity for responding to and recovering from natural disasters has been an emphasis of recent disaster research. In particular, scholars have called for the development of methodologies for measuring a location's resilience to disasters. While several studies propose methodologies and frameworks for measuring disaster resilience in the USA, few studies examine and measure resilience in international settings. This study applies Cutter et al.'s (Glob Environ Change 18:598-606, 2008) Disaster Resilience of Place (DROP) model in order to examine disaster resilience at the provincial level in Thailand. Guided by the DROP model, 25 variables were selected from the 2000 and 2010 Thai Census and 2005-2006 Statistical Yearbook that served as indicators of resilience. Using a principal component analysis, a set of baseline metrics reflecting dimensions of community capacities that influence disaster resilience was created. This analysis resulted in four dimensions describing resilience: household assets, economic assets, community/response assets, and institutional assets. Using the derived index, a correlation analysis was then conducted to examine differences in rural and urban disaster resilience. While the results of the model suggest that disaster resilience is generally higher in the more urbanized areas, we also note that communities located in rural areas in Thailand may not necessarily be less resilient to the impacts of disasters and call for studies conducted at both the macrolevel (provincial level) and at microlevel (village or neighborhood level) to get a nuanced understanding of community resiliency.
C1 [Siebeneck, Laura; Arlikatti, Sudha; Andrew, Simon A.] Univ N Texas, Dept Publ Adm, Denton, TX 76203 USA.
C3 University of North Texas System; University of North Texas Denton
RP Siebeneck, L (corresponding author), Univ N Texas, Dept Publ Adm, 1155 Union Circle 310617, Denton, TX 76203 USA.
EM Laura.Siebeneck@unt.edu
RI Arlikatti, Sudha/J-3209-2019
OI Arlikatti, Sudha/0000-0002-1214-1500
FU National Science Foundation under NSF RAPID [1242004]; Directorate For
   Engineering; Div Of Civil, Mechanical, & Manufact Inn [1242004] Funding
   Source: National Science Foundation
FX This work was supported by a grant from the National Science Foundation
   under NSF RAPID Award 1242004. Any opinions, findings, and conclusions
   or recommendations expressed in this paper are those of the authors and
   do not necessarily reflect the views of the National Science Foundation.
   The authors wish to thank Dr. Kanappa Pongponrat, Thamassat University,
   Thailand, and Kraiwuth Jaikampan doctoral student at the University of
   North Texas for help with data collection. The authors are indebted to
   all the organizational contacts who responded to our survey in Thailand.
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NR 66
TC 45
Z9 49
U1 5
U2 73
PU SPRINGER
PI NEW YORK
PA 233 SPRING ST, NEW YORK, NY 10013 USA
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD NOV
PY 2015
VL 79
IS 2
BP 955
EP 975
DI 10.1007/s11069-015-1886-4
PG 21
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 CT6BE
UT WOS:000362894600015
DA 2025-04-22
ER

PT J
AU Srivastava, N
   Shaw, R
AF Srivastava, Nitin
   Shaw, Rajib
TI Occupational resilience to floods across the urban-rural domain in
   Greater Ahmedabad, India
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Occupational resilience; Vulnerable occupations; Ahmedabad; Urban-rural
   linkages; Floods
ID ENVIRONMENTAL HAZARDS; INDUCED MIGRATION; VULNERABILITY; PERSPECTIVE;
   DISASTER
AB Identifying and acting on the consequences of smaller hazards can strengthen the communities to face the greater events of the future. These hazards disrupt the everyday lives of the majority of the population who rely on daily wages or are engaged in informal economic opportunities. This paper explores the potential the post-disaster employment opportunities have in recovery from disasters across urban, pen-urban and rural areas of Greater Ahmedabad in India through a household survey conducted in flood hit areas in February-March 2013. It adopts an approach where occupations vulnerable to a disaster are identified and their related characteristics are established. Through the combination of descriptive and explanatory statistical analyses of quantitative data the paper concludes that for the surveyed segment of population: (i) there is insignificant help from within the communities or community based organizations for economic recovery of affected population, and government is seen as the primary stakeholder for recovery (ii) for a low income household the concepts of disaster and unemployment are interchangeably used (iii) the rural areas have been traditionally dependent on the urban areas post-disaster, but in this case the urban population also rely on their assets and social network in the rural areas in case of both unemployment and disasters. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Srivastava, Nitin; Shaw, Rajib] Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Kyoto 6068501, Japan.
C3 Kyoto University
RP Srivastava, N (corresponding author), Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Kyoto 6068501, Japan.
EM imnitin@gmail.com; shaw.rajib.5u@kyoto-u.ac.jp
RI Shaw, Rajib/AAI-4834-2020
OI Shaw, Rajib/0000-0003-3153-1800
FU Ministry of Education, Culture, Sports, Science, and Technology (MEXT)
   of Japan; Global Center of Excellence (GCOE)
FX The first author acknowledges the support from the Ministry of
   Education, Culture, Sports, Science, and Technology (MEXT) of Japan; and
   the Global Center of Excellence (GCOE) Program entitled 'Global Center
   for Education and Research on Human Security Engineering (HSE) for Asian
   Megacities' of Kyoto University. The authors would also like to thank
   the respondents in Greater Ahmedabad area for providing their responses
   and time.
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NR 38
TC 9
Z9 9
U1 0
U2 31
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 2015
VL 12
BP 81
EP 92
DI 10.1016/j.ijdrr.2014.12.003
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 CM5NM
UT WOS:000357735000008
OA Green Published
DA 2025-04-22
ER

PT J
AU Liu, Y
   Bu, SY
   Zhang, SM
   Xu, C
AF Liu, Yu
   Bu, Shiyun
   Zhang, Sumeng
   Xu, Chan
TI Research on the Socio-Spatial Resilience Evaluation and Evolution of the
   Central Area of Beijing in Transitional China
SO SUSTAINABILITY
LA English
DT Article
DE social space; resilience; transition; Beijing city
ID SET PAIR ANALYSIS; URBAN RESILIENCE; COMMUNITY RESILIENCE; POLICY; MODEL
AB In recent decades, the increasing threats of global climate change, natural disasters, and epidemics have brought extensive attention to resilience theory. However, most studies focus on the physical aspects of cities, overlooking the significance of the social perspective. This study addresses this gap by using social areas as the core spatial unit for analysis. By constructing a scientific indicator system and employing the set pair analysis method, this study comprehensively evaluates the multidimensional resilience levels of Beijing's central area during its transitional period (1990-2020). The findings reveal that socio-spatial divisions, which emphasize the network structure of social relations and the dynamic changes in social spaces, are more suitable than traditional administrative divisions as fundamental units for resilience assessment. During Beijing's transitional period, the comprehensive resilience of the central area and all social areas steadily increased, although social capital resilience faced the challenges of loss and slow recovery. Social areas with a unique internal connection, such as those based on ethnicity, exhibited more positive social capital resilience development. Additionally, social areas with lower population diversity and greater homogeneity tended to have higher comprehensive resilience and a more positive trend in social capital resilience development, whereas highly heterogeneous social areas faced significant constraints in resilience development. These findings may provide valuable insights for cities and communities to enhance their capacity to address future uncertainties and assist policymakers in making informed governance decisions.
C1 [Liu, Yu; Bu, Shiyun; Xu, Chan] Sichuan Normal Univ, Key Lab Evaluat & Monitoring Southwest Land Resour, Minist Educ, Chengdu 610068, Peoples R China.
   [Liu, Yu; Bu, Shiyun; Xu, Chan] Sichuan Normal Univ, Fac Geog & Resource Sci, Chengdu 610101, Peoples R China.
   [Zhang, Sumeng] Nanjing Normal Univ, Sch Geog, Nanjing 210023, Peoples R China.
C3 Sichuan Normal University; Sichuan Normal University; Nanjing Normal
   University
RP Xu, C (corresponding author), Sichuan Normal Univ, Key Lab Evaluat & Monitoring Southwest Land Resour, Minist Educ, Chengdu 610068, Peoples R China.; Xu, C (corresponding author), Sichuan Normal Univ, Fac Geog & Resource Sci, Chengdu 610101, Peoples R China.
EM liuyu0512@stu.sicnu.edu.cn; bushiyun@stu.sicnu.edu.cn;
   zhangsumeng@nnu.edu.cn; xuchan@sicnu.edu.cn
FU College Students' innovation and entrepreneurship training program; 
   [X202410636259]
FX This research was funded by the College Students' innovation and
   entrepreneurship training program (X202410636259).
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NR 86
TC 0
Z9 0
U1 7
U2 12
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 7098
DI 10.3390/su16167098
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 F1Q4J
UT WOS:001307631000001
OA gold
DA 2025-04-22
ER

PT J
AU Deng, ZT
   Chen, YH
   Jiang, FS
   Zhang, YB
   Xie, ZQ
   Zhang, YN
   Zhao, L
AF Deng, Zhanting
   Chen, Yuhan
   Jiang, Fengshan
   Zhang, Yangbin
   Xie, Zhiqiang
   Zhang, Yuning
   Zhao, Lei
TI Spatio-temporal study on coupling coordination between urbanization and
   eco-resilience in the Erhai Lake Basin
SO ALL EARTH
LA English
DT Article
DE Plateau lake; urbanisation; ecological environment; coupling and
   coordination; eco-resilience model
ID ECOLOGICAL RESILIENCE; LANDSCAPE METRICS; SHENZHEN CITY; URBAN;
   ENVIRONMENT; SURROGATES; DYNAMICS; LINKING; MODEL; LAND
AB Amidst the rapid urbanisation, the ecological environment of plateau lake basins faces significant challenges. To better coordinate the relationship between urbanisation development and ecological environment construction, this paper conducts an analysis and assessment of the ecological resilience and urbanisation coupling coordination in Dali Prefecture based on socio-geographical spatial data. Initially, an assessment model for ecological resilience is established using resilience theory. Subsequently, the urbanisation development level is evaluated based on panel data. Finally, a coupling coordination model is employed to calculate the coupling coordination between the two aspects. The results indicate: (1) a rapid increase in basin urbanisation from 2010 to 2019, particularly between 2010 and 2015; (2) a continuous expansion of low-value ecological resilience areas across the entire basin, with a predominance of townships experiencing fluctuating decreases or stagnation, leading to an overall negative trend in ecological resilience indices; (3) evident spatial and temporal disparities in coupling coordination between the two systems in the basin's villages and towns, primarily reflected in differences in coupling coordination types, with a few towns consistently exhibiting environmental lag. This study introduces a customised ecological resilience model for the Erhai Basin, enhancing comprehension of urbanisation-ecological resilience dynamics in plateau lake basins.
C1 [Deng, Zhanting; Jiang, Fengshan; Xie, Zhiqiang] Yunnan Univ, Sch Earth Sci, Kunming, Peoples R China.
   [Chen, Yuhan] West Yunnan Univ Appl Sci, Sch Continuing Educ, 1 Haiyue St, Dali 671000, Peoples R China.
   [Zhang, Yangbin; Zhao, Lei] Yunnan Univ, Inst Int Rivers & Ecosecur, Kunming, Peoples R China.
   [Zhang, Yuning] Kunming Univ Sci & Technol, Sch Land & Resources Engn, Kunming, Peoples R China.
   [Zhao, Lei] Kunming Surveying & Mapping Management Ctr, Surveying & Mapping Management Off, Kunming, Peoples R China.
C3 Yunnan University; West Yunnan University of Applied Sciences; Yunnan
   University; Kunming University of Science & Technology
RP Chen, YH (corresponding author), West Yunnan Univ Appl Sci, Sch Continuing Educ, 1 Haiyue St, Dali 671000, Peoples R China.
EM chenyuhan001@126.com
RI Zhang, Xitian/AAX-5010-2021
FU West Yunnan University of Applied Sciences Talent Introduction
   Scientific Research Initiation Project; Guangzhou Southern Surveying and
   Mapping Technology Co., Ltd. (SOUTH)
FX Thanks are due to Liu for assistance with the experiments and valuable
   discussion. Thanks to Guangzhou Southern Surveying and Mapping
   Technology Co., Ltd. (SOUTH) for its support. The authors would also
   like to thank the anonymous reviewers for their constructive suggestions
   that improved this study significantly.
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NR 68
TC 4
Z9 4
U1 37
U2 112
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
EI 2766-9645
J9 ALL EARTH
JI All Earth
PD DEC 31
PY 2024
VL 36
IS 1
BP 1
EP 20
DI 10.1080/27669645.2024.2317053
PG 20
WC Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology
GA JL7O5
UT WOS:001173391100001
OA gold
DA 2025-04-22
ER

PT J
AU Miyajima, M
AF Miyajima, M.
TI Resilient water supply system for earthquake and tsunami
SO JOURNAL OF WATER SUPPLY RESEARCH AND TECHNOLOGY-AQUA
LA English
DT Article
DE earthquake; earthquake-resistant pipe; seismic guideline; tsunami; water
   supply system
AB This paper focuses on a resilient water supply system for earthquake and tsunami. The 2011 off the Pacific coast of Tohoku earthquake generated not only strong ground vibration but also a tremendous tsunami. Although some of the water supply system suffered damage and water suspension occurred extensively, earthquake-resistant pipes survived and a quick recovery of water delivery was achieved. We must learn many lessons from the earthquake and tsunami disasters and exchange these lessons internationally. In this paper, earthquake performance of the water supply pipeline during the earthquake and tsunami is summarized first. Next, the paper introduces an application of Japan's earthquake-resistant technology in the city of Los Angeles.
C1 Kanazawa Univ, Sch Environm Design, Kanazawa, Ishikawa 9201192, Japan.
C3 Kanazawa University
RP Miyajima, M (corresponding author), Kanazawa Univ, Sch Environm Design, Kakuma Machi, Kanazawa, Ishikawa 9201192, Japan.
EM miyajima@se.kanazawa-u.ac.jp
FU Ministry of Education, Culture, Sports, Science and Technology
   [25289139]; Grants-in-Aid for Scientific Research [25289139] Funding
   Source: KAKEN
FX The work described in this paper was supported by the Ministry of
   Education, Culture, Sports, Science and Technology with Grant-in-Aid for
   Scientific Research (B), No. 25289139. Staff of the waterworks of
   Kurihara, Osaki and Tome Cities and Wakuya Town, Ishinomaki district
   water supply authority, and Japan Ductile Pipe Association are
   gratefully acknowledged for supplying pipeline data and damage caused.
CR [Anonymous], 2012, QUIQUAKE
   Davis C., 2012, LADWP EARTHQUAKE RES
   Japan Water Works Association, 1997, GUID EARTHQ RES DES
   National Research Institute for Earth Science and Disaster Prevention, 2012, J SHIS GEOM SURF GRO
NR 4
TC 1
Z9 1
U1 1
U2 20
PU IWA PUBLISHING
PI LONDON
PA ALLIANCE HOUSE, 12 CAXTON ST, LONDON SW1H0QS, ENGLAND
SN 0003-7214
EI 1365-2087
J9 J WATER SUPPLY RES T
JI J. Water Supply Res Technol.-Aqua
PY 2014
VL 63
IS 2
BP 86
EP 94
DI 10.2166/aqua.2013.003
PG 9
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA AE0YA
UT WOS:000333691000002
DA 2025-04-22
ER

PT J
AU Currie, CL
   Wild, TC
   Schopflocher, DP
   Laing, L
   Veugelers, P
AF Currie, Cheryl L.
   Wild, T. Cameron
   Schopflocher, Donald P.
   Laing, Lory
   Veugelers, Paul
TI Illicit and prescription drug problems among urban Aboriginal adults in
   Canada: The role of traditional culture in protection and resilience
SO SOCIAL SCIENCE & MEDICINE
LA English
DT Article
DE Canada; Aboriginal; Urban; Enculturation; Illicit drugs; Prescription
   drugs; Resilience
ID NATIONAL EPIDEMIOLOGIC SURVEY; RACIAL-DISCRIMINATION;
   UNIVERSITY-STUDENTS; ALCOHOL; ABUSE; ACCULTURATION; EXPERIENCES; YOUTH;
   IDENTIFICATION; RELIABILITY
AB Illicit and prescription drug use disorders are two to four times more prevalent among Aboriginal peoples in North America than the general population. Research suggests Aboriginal cultural participation may be protective against substance use problems in rural and remote Aboriginal communities. As Aboriginal peoples continue to urbanize rapidly around the globe, the role traditional Aboriginal beliefs and practices may play in reducing or even preventing substance use problems in cities is becoming increasingly relevant, and is the focus of the present study. Mainstream acculturation was also examined. Data were collected via in-person surveys with a community-based sample of Aboriginal adults living in a mid-sized city in western Canada (N = 381) in 2010. Associations were analysed using two sets of bootstrapped linear regression models adjusted for confounders with continuous illicit and prescription drug problem scores as outcomes. Psychological mechanisms that may explain why traditional culture is protective for Aboriginal peoples were examined using the cross-products of coefficients mediation method. The extent to which culture served as a resilience factor was examined via interaction testing. Results indicate Aboriginal enculturation was a protective factor associated with reduced 12-month illicit drug problems and 12-month prescription drug problems among Aboriginal adults in an urban setting. Increased self-esteem partially explained why cultural participation was protective. Cultural participation also promoted resilience by reducing the effects of high school incompletion on drug problems. In contrast, mainstream acculturation was not associated with illicit drug problems and served as a risk factor for prescription drug problems in this urban sample. Findings encourage the growth of programs and services that support Aboriginal peoples who strive to maintain their cultural traditions within cities, and further studies that examine how Aboriginal cultural practices and beliefs may promote and protect Aboriginal health in an urban environment. (C) 2013 Elsevier Ltd. All rights reserved.
C1 [Currie, Cheryl L.] Univ Lethbridge, Fac Hlth Sci, Lethbridge, AB T1K 3M4, Canada.
   [Wild, T. Cameron; Schopflocher, Donald P.; Laing, Lory; Veugelers, Paul] Univ Alberta, Sch Publ Hlth, Edmonton, AB T6G 2M7, Canada.
C3 University of Lethbridge; University of Alberta
RP Currie, CL (corresponding author), Univ Lethbridge, Fac Hlth Sci, M3083 Markin Hall, Lethbridge, AB T1K 3M4, Canada.
EM cheryl.currie@uleth.ca
RI Currie, Cheryl/C-6725-2014
OI Veugelers, Paul/0000-0001-8996-0822; Currie, Cheryl/0000-0001-5366-0641
FU Alberta Gambling Research Institute; Alberta Centre for Child, Family
   and Communities; Alberta Innovates: Health Solutions; Alberta Centre for
   Child, Family and Community
FX This study was funded by the Alberta Gambling Research Institute and the
   Alberta Centre for Child, Family and Communities. Dr. Currie was
   supported by awards from Alberta Innovates: Health Solutions, the
   Alberta Centre for Child, Family and Community, and the Alberta Gambling
   Research Institute during the course of this research. Dr. Wild was
   supported by an award from Alberta Innovates: Health Solutions. We
   gratefully acknowledge the guidance of Dean Brown, Leona Carter,
   Jacqueline Fiala, Elena Jacobs, Miranda Jimmy, Patti LaBoucane-Benson,
   Donald Langford, Norman McCallum, and Hazel McKennitt who served as
   members of the urban Aboriginal Advisory Committee for this study; Alex
   Baloukov who was a research assistant for this study; Dr. Brenda Parlee
   and Dr. Sherry Stewart who provided feedback on a preliminary version of
   this paper; and the Aboriginal participants who shared their valuable
   time and information.
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NR 58
TC 52
Z9 62
U1 0
U2 39
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 JUL
PY 2013
VL 88
BP 1
EP 9
DI 10.1016/j.socscimed.2013.03.032
PG 9
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 165IU
UT WOS:000320477900001
PM 23702204
DA 2025-04-22
ER

PT J
AU Cheng, ZH
   Nitoslawski, S
   van den Bosch, CK
   Sheppard, S
   Nesbitt, L
   Girling, C
AF Cheng, Zhaohua
   Nitoslawski, Sophie
   van den Bosch, Cecil Konijnendijk
   Sheppard, Stephen
   Nesbitt, Lorien
   Girling, Cynthia
TI Alignment of municipal climate change and urban forestry policies: A
   Canadian perspective
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Canadian cities; Climate change; Mitigation; Municipal policies; Urban
   forestry; Urban resilience
ID CHANGE ADAPTATION; VALUES; STRATEGIES; MANAGEMENT; RESIDENTS; CITIES;
   PLANS
AB While being major greenhouse gas (GHG) emitters, cities also suffer some of the most severe climate change impacts. Urban forests have gained increasing recognition as nature-based solutions to climate change via the various benefits they provide, such as carbon sequestration and temperature regulation. Many cities have developed climate change and/or urban forest policies to enhance climate resilience and support urban livability. However, it is still unclear whether these policies consider and address potential alignment between climate action and urban forest planning and management. This study explored whether and to what extent urban forest and climate change policies are mutually supportive and reinforcing, by conducting a review of climate change and urban forest policies in the largest 20 Canadian cities. Results suggest significant gaps and discrepancies between these policies, across and within study cities, indicating potential weaknesses related to stakeholder/ actor engagement, policy integration, departmental collaboration and communication, and cohesive management priorities and practices. Only three (15 %) of the cities have developed climate change and urban forest policies that align to some extent. Furthermore, despite some commonalities, most cities defined their urban forests differently, highlighting locally-specific understanding and needs in addition to a lack of cohesion across Canadian municipalities concerning urban forest planning and management. Across most cities, both types of policies included general and locally-relevant information related to impacts of climate change. However, gaps and inconsistencies found between and within many municipalities' policies may present a major barrier to effective policy implementation and mutually-reinforcing management actions. Areas for improvement are suggested for policy planning and implementation to ensure alignment between urban forest and climate change policies, which should also prove useful for municipalities outside of the study scope.
C1 [Cheng, Zhaohua; Nitoslawski, Sophie; van den Bosch, Cecil Konijnendijk; Sheppard, Stephen; Nesbitt, Lorien] Univ British Columbia, Dept Forest Resources Management, Fac Forestry, 2424 Main Mall, Vancouver, BC V6T 1Z4, Canada.
   [Girling, Cynthia] Univ British Columbia, Sch Architecture & Landscape Architecture, Fac Sci Appl, 3143 2260 West Mall, Vancouver, BC V6T 1Z4, Canada.
C3 University of British Columbia; University of British Columbia
RP Cheng, ZH (corresponding author), Univ British Columbia, Dept Forest Resources Management, Fac Forestry, 2424 Main Mall, Vancouver, BC V6T 1Z4, Canada.
EM zhaohua.cheng@ubc.ca; s.nitoslawski@ubc.ca; cecil.konijnendijk@ubc.ca;
   stephen.sheppard@ubc.ca; lorien.nesbitt@ubc.ca; cgirling@sala.ubc.ca
RI Nesbitt, Lorien/GZK-6527-2022; Nitoslawski, Sophie/AAK-9916-2021;
   Konijnendijk, Cecil/AAC-4439-2019
OI Nitoslawski, Sophie/0000-0002-3754-6344; Nesbitt,
   Lorien/0000-0002-4018-1825; Cheng, Zhaohua/0000-0002-6948-4010;
   Konijnendijk, Cecil/0000-0003-4000-0622
FU Four Year Doctoral Fellowships of the University of British Columbia
   [6456]; Social Science and Humanities Research Council (SSHRC)
   [75220202118, 43520200544]
FX This work was supported by the Four Year Doctoral Fellowships of the
   University of British Columbia [#6456] and the Social Science and
   Humanities Research Council (SSHRC) [Doctoral Fellowship #75220202118
   and Insight Grant #43520200544] .
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NR 33
TC 20
Z9 24
U1 6
U2 59
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 AUG
PY 2021
VL 122
BP 14
EP 24
DI 10.1016/j.envsci.2021.04.005
EA APR 2021
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA SF4ST
UT WOS:000652748300002
DA 2025-04-22
ER

PT J
AU Zhao, XY
   Duan, DT
   Fu, X
   Wang, XH
AF Zhao, Xinyi
   Duan, Dantong
   Fu, Xin
   Wang, Xinhao
TI Vulnerability Analysis of Urban Residents in Response to COVID-19: An
   Educational Related Analysis
SO JOURNAL OF URBAN PLANNING AND DEVELOPMENT
LA English
DT Article
ID SOCIAL VULNERABILITY; CLIMATE-CHANGE; RESILIENCE; EPIDEMIC; HEALTH
AB The COVID-19 pandemic that began 2019, as a worldwide public health crisis, has deeply affected and changed the daily life of many people. Urban residents were vulnerable and fragile in this pandemic, because high population density areas are at higher risk of infection and fatality. Vulnerability analysis has focused on infectious disease exposure, public health facilities and resources, and regional vulnerability assessment. It is regarded as an important part of a comprehensive risk management, which can help communities and families be resilient from this kind of public health emergency. However, current vulnerability analysis research lacks personal adaptive behaviors, social medical security, and individual attitudes toward regular pandemic prevention and control policies based on the cognition and experience of urban residents. This study proposes a comprehensive vulnerability analysis framework to analyze the three factors of vulnerability: exposure, sensitivity, and adaptive capacity for residents with different educational levels. A questionnaire was designed based on the framework for a survey conducted in Yangling, Shaanxi, China. Results show that exposure and sensitivity exhibit a downward trend with the increase of educational level, while adaptive capacity is not greatly affected by education. This study also supports finding limitations in planning for urban risk management to reduce the vulnerability of urban residents and to improve urban resilience.
C1 [Zhao, Xinyi; Duan, Dantong; Fu, Xin] Northwest A&F Univ, Coll Landscape Architecture & Arts, Yangling 712100, Shaanxi, Peoples R China.
   [Wang, Xinhao] Univ Cincinnati, Sch Planning, Cincinnati, OH USA.
C3 Northwest A&F University - China; University System of Ohio; University
   of Cincinnati
RP Fu, X (corresponding author), Northwest A&F Univ, Coll Landscape Architecture & Arts, Yangling 712100, Shaanxi, Peoples R China.
EM lep5prince@163.com; 2451562354@11.com; fuxinuc@outlook.com;
   xinhao.wang@uc.edu
RI Xinyi, Zhao/HMP-4553-2023; xinhao, wang/AAD-6547-2020
OI Fu, Xin/0000-0001-6155-0549
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NR 46
TC 0
Z9 0
U1 15
U2 28
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 MAR 1
PY 2024
VL 150
IS 1
AR 05023050
DI 10.1061/JUPDDM.UPENG-4392
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 FC7O2
UT WOS:001143617200007
DA 2025-04-22
ER

PT J
AU Zendeli, D
   Colaninno, N
   Maiullari, D
   van Esch, M
   van Timmeren, A
   Marconi, G
   Bonora, R
   Morello, E
AF Zendeli, Doruntina
   Colaninno, Nicola
   Maiullari, Daniela
   van Esch, Marjolein
   van Timmeren, Arjan
   Marconi, Gianluca
   Bonora, Rodolfo
   Morello, Eugenio
TI From heatwaves to 'healthwaves': A spatial study on the impact of urban
   heat on cardiovascular and respiratory emergency calls in the city of
   Milan
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Heat stress resilience; Climate adaptation; Urban health; Health equity;
   Urban morphologies
ID THERMAL CLIMATE INDEX; LAND-SURFACE TEMPERATURE; MEAN RADIANT
   TEMPERATURE; EXTREME HEAT; MORTALITY; WAVE; UTCI; RISK; SUMMER; STRESS
AB In recent decades, the increasing frequency, intensity, and duration of heatwaves generated by climate change has posed significant challenges to public health, particularly in urban areas. Despite extensive research on the impacts of heatwaves on human health, there is still a need for enhanced understanding of how, and to what extent, the spatial attributes of urban environments exacerbate these effects at the very local scale. This research addresses this gap and emphasises the importance of analysing the relationship among urban form, climate and health through high resolution geo-spatial data. By investigating the spatial correlations between geolocated cardiovascular and respiratory emergency calls, the modelled universal thermal climate index (UTCI) and selected socio-demographic factors during the summer of 2022 in Milan, this study aims to enhance our understanding of the complex interaction among heat, the built environment, and specific health outcomes. The findings identify geographical locations where emergency calls occur more frequently and where health concerns emerge during hot spells. Morphological and socio-demographic factors both play a critical role in determining vulnerability to heat stress. The results provide valuable insights for identifying high-risk areas, where tailored interventions in terms of planning, governance and urban design may be implemented to address heat-resilience and health-equity in cities.
C1 [Zendeli, Doruntina; Colaninno, Nicola; Morello, Eugenio] Politecn Milan, Dept Architecture & Urban Studies, Milan, Italy.
   [Zendeli, Doruntina; Maiullari, Daniela; van Esch, Marjolein; van Timmeren, Arjan] Delft Univ Technol, Dept Urbanism, Delft, Netherlands.
   [Marconi, Gianluca; Bonora, Rodolfo] Agenzia Reg Emergenza Urgenza AREU, Milan, Italy.
C3 Polytechnic University of Milan; Delft University of Technology
RP Zendeli, D (corresponding author), Politecn Milan, Dept Architecture & Urban Studies, Milan, Italy.
EM doruntina.zendeli@polimi.it
RI MORELLO, Eugenio/AAF-5294-2020
FU Italian Ministry of University and Research for the PhD Fellowship
   "PON-Research and Innovation 2014-2020, FSE REACT-EU, Action V.5";
   European Union [101028035]
FX The authors would like to thank the funding provided by the Italian
   Ministry of University and Research for the PhD Fellowship "PON-Research
   and Innovation 2014-2020, FSE REACT-EU, Action V.5". We are also
   indebted to the Urban Simulation Laboratory Fausto Curti, at
   DAStU-Polimi, the IDEA League Grant, and the Section of Environmental,
   Technology and Design, Department of Urbanism, TU Delft. Likewise, this
   research was also supported by the project "MultiCAST-Multiscale
   Thermal-related Urban Climate Analysis and Simulation Tool", which has
   received funding from the European Union's Horizon 2020 research and
   innovation programme under the Marie Sklodowska-Curie grant agreement
   101028035. Lastly, we sincerely thank the Agenzia Regionale Emergenza
   Urgenza (AREU) of the Lombardy Region for their invaluable support in
   providing the emergency calls dataset.
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NR 112
TC 0
Z9 0
U1 0
U2 0
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 15
PY 2025
VL 124
AR 106181
DI 10.1016/j.scs.2025.106181
PG 19
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 0TJ1A
UT WOS:001455550700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Yan, JY
   Lu, QC
   Li, N
   Chen, L
   Pitt, M
AF Yan, Jiayi
   Lu, Qiuchen
   Li, Nan
   Chen, Long
   Pitt, Michael
TI Common data environment for digital twins from building to city levels
SO AUTOMATION IN CONSTRUCTION
LA English
DT Article
DE Digital twin (DT); City-level digital twin (CDT); Common data
   environment (CDE); Data sources; Data management; Stakeholder; Data
   ecosystem
ID DATA-MANAGEMENT; IOT; DESIGN; BIM; FRAMEWORK; SYSTEM
AB Digital twin (DT) technology is pivotal for advancing sustainable, liveable, and resilient smart cities. As DTs scale from building to infrastructure and city levels, data management remains a key challenge due to increasing data heterogeneity. This paper addresses this gap by defining a common data environment (CDE) that connects physical and virtual spaces with three enablers: data sources, data management with functional components (FCs), and data consumers. A systematic literature review (SLR) of 264 papers (from 14,532) analyses these enablers, identifying knowledge gaps and future directions. A prospective DT data ecosystem model is proposed to support city-level DTs (CDT) and federated sub-DTs, integrating informational, technological, functional, organisational, and user-centred features. The paper highlights the immaturity of current data environments in managing heterogeneous data for comprehensive DT applications. It provides state-of-the-art insights and practical recommendations to researchers, practitioners, and policymakers to enhance data management in diverse smart city scenarios.
C1 [Yan, Jiayi; Lu, Qiuchen; Pitt, Michael] UCL, Bartlett Sch Sustainable Construct, 1-19 Torrington Pl, London WC1E 6BT, England.
   [Li, Nan] Tsinghua Univ, Dept Construct Management, Beijing 100084, Peoples R China.
   [Chen, Long] Dept Architecture & Civil Engn, Kowloon, Tat Chee Ave, Hong Kong, Peoples R China.
C3 University of London; University College London; Tsinghua University
RP Lu, QC (corresponding author), UCL, Bartlett Sch Sustainable Construct, 1-19 Torrington Pl, London WC1E 6BT, England.
EM j.yan.21@ucl.ac.uk; qiuchen.lu@ucl.ac.uk; nanli@tsinghua.edu.cn;
   longchen@cityu.edu.hk; michael.pitt@ucl.ac.uk
RI Yan, Jiayi/AEU-9364-2022
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NR 144
TC 0
Z9 0
U1 1
U2 1
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0926-5805
EI 1872-7891
J9 AUTOMAT CONSTR
JI Autom. Constr.
PD JUN
PY 2025
VL 174
AR 106131
DI 10.1016/j.autcon.2025.106131
PG 20
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA 0PV3W
UT WOS:001453151900001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ma, YC
   Ning, X
   Jiang, Y
AF Ma, Yongchi
   Ning, Xue
   Jiang, Yong
TI China's Sponge City Development: Global Position, Governance, and
   Potential Enhancement with Ecosystem Services
SO JOURNAL OF URBAN TECHNOLOGY
LA English
DT Article
DE flooding; sponge city; water resilience; climate adaptation; spatial
   planning; low impact development; ecosystem service (ES)
ID BLUE-GREEN INFRASTRUCTURE; URBAN WATER MANAGEMENT; TRADE-OFFS;
   CHALLENGES; STRATEGY; URBANIZATION; CITIES; OPPORTUNITIES; ALTERNATIVES;
   RESTORATION
AB China has been implementing a policy initiative termed sponge city development (SCD) since 2014 to address complex, interlinked water challenges, particularly flooding and runoff pollution, faced by urban development under climate change. Pilot implementation of the initiative in 30 selected cities provides an opportunity for learning and enhancement relevant to global practice in general and SCD expansion in particular. This article reviews China's SCD, synthesizing: (1) SCD position in global practices for urban stormwater management; (2) governance and implementation; (3) challenges and issues in planning and management; and 4) potential enhancement with ecosystem service (ES). The article shares that: (1) China's SCD differs from, while sharing some similarity with, global practices for urban stormwater management, particularly marked by engineering dominated implementation; (2) the policy implementation exhibits sophisticated governance in supporting the initiative; (3) there are challenges and issues concerning particularly planning and management, characterized by a lack of a systematic approach linking physical projects, ecosystem functions, societal impact, and urban development goals; and (4) an ES-based framework can deliver a systematic approach enhancing SCD beyond water resilience toward urban green transition and sustainability. This article contributes to learning about ecosystem-based integrated stormwater management during urbanization and climate change.
C1 [Ma, Yongchi; Ning, Xue] Shandong Univ, Sch Polit Sci & Publ Adm, Qingdao 266237, Peoples R China.
   [Jiang, Yong] IHE Delft Inst Water Educ, NL-2611 AX Delft, South Holland, Netherlands.
C3 Shandong University; IHE Delft Institute for Water Education
RP Jiang, Y (corresponding author), IHE Delft Inst Water Educ, NL-2611 AX Delft, South Holland, Netherlands.
EM yongjiang1013@gmail.com
RI Ma, Yongchi/GRR-5230-2022; jiang, yong/M-4318-2013
OI jiang, yong/0000-0001-6192-8206
FU Humanities and Social Science Fund of the Ministry of Education of China
   [21YJA630070]; Natural Science Foundation of Shandong Province of China
   [ZR2022MG006]; Social Risk Governance Research of Huangdao Second
   Jiaozhou Bay Tunnel Construction [SK210471]
FX This work was supported by the Humanities and Social Science Fund of the
   Ministry of Education of China (Grant No. 21YJA630070), the Natural
   Science Foundation of Shandong Province of China (Grant No.
   ZR2022MG006), and the Social Risk Governance Research of Huangdao Second
   Jiaozhou Bay Tunnel Construction (SK210471). All opinions are the
   responsibility of the authors alone.
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NR 107
TC 0
Z9 0
U1 17
U2 26
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1063-0732
EI 1466-1853
J9 J URBAN TECHNOL
JI J. Urban Technol.
PD MAY 26
PY 2024
VL 31
IS 3
BP 83
EP 106
DI 10.1080/10630732.2024.2381181
EA AUG 2024
PG 24
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA K2L1I
UT WOS:001293925700001
DA 2025-04-22
ER

PT J
AU Lv, Y
   Sarker, MNI
   Firdaus, RBR
AF Lv, Yang
   Sarker, Md Nazirul Islam
   Firdaus, R. B. Radin
TI Disaster resilience in climate-vulnerable community context: Conceptual
   analysis
SO ECOLOGICAL INDICATORS
LA English
DT Review
DE Adaptive capacity; Vulnerability; Natural disasters; Adaptive
   governance; Adaptability
ID URBAN RESILIENCE; LIVELIHOOD RESILIENCE; RURAL COMMUNITIES; ADAPTATION;
   RISK; FRAMEWORK; PATHWAYS; METAPHOR; LESSONS; HAZARDS
AB Resilience is a prior term of debate in vulnerability research irrespective of discipline. Nowadays the resilience concept has been used abnormally in many cases without realizing its intended meaning. Therefore, this study clarifies the resilience concept in the context of climate vulnerability. An integrated review of the literature has been done by the PRISMA approach to identify the most relevant documents. Besides Walker and Avant Method has been used to analyze the concept of resilience. The use of concept in different disciplines, historical perspectives, dimensions, attributes, consequences, and relationship with vulnerability and adaptability have been reviewed to clarify it. This study also provides a theoretical and workable definition of resilience from the perspective of climate change and natural hazards. A conceptual framework has been developed with concept mapping, contributing to the existing debate on resilience study. A case analysis has been done by focusing on a climate-vulnerable community living in the riverine islands in Bangladesh. This article shows that socioecological systems approach to defining small island disaster resilience has shortcomings. Additionally, the research-policy divide in resilience studies is exacerbated by the paucity of studies that use the participatory approach to identify disaster resilience indicators. The study makes a compelling case for further research on how to turn academic discoveries into a resource that might benefit local people, particularly those on small islands. The study suggests that social community-based resilience should be developed to protect geographically isolated communities.
C1 [Lv, Yang] Chengdu Univ, Coll Teachers, Chengdu 610106, Peoples R China.
   [Sarker, Md Nazirul Islam; Firdaus, R. B. Radin] Univ Sains Malaysia, Sch Social Sci, Palau Pinang 11800, Malaysia.
   [Sarker, Md Nazirul Islam] Daffodil Int Univ, Dept Dev Studies, Dhaka 1216, Bangladesh.
C3 Chengdu University; Universiti Sains Malaysia; Daffodil International
   University
RP Sarker, MNI (corresponding author), Univ Sains Malaysia, Sch Social Sci, Palau Pinang 11800, Malaysia.; Sarker, MNI (corresponding author), Daffodil Int Univ, Dept Dev Studies, Dhaka 1216, Bangladesh.
EM lvyang@cdu.edu.cn; sarker.usm@yahoo.com; radin@usm.my
RI Firdaus, R.B./U-2067-2017; Sarker, Md Nazirul Islam/K-7928-2018
OI Sarker, Md Nazirul Islam/0000-0002-8887-521X
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NR 100
TC 7
Z9 7
U1 20
U2 66
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 111527
DI 10.1016/j.ecolind.2023.111527
EA JAN 2024
PG 13
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA GN6I8
UT WOS:001153384000001
OA gold
DA 2025-04-22
ER

PT J
AU Ricks, JS
AF Ricks, Judith S.
TI Firms, fires, and firebreaks: The impact of the 1906 San Francisco
   disaster on business agglomeration
SO REGIONAL SCIENCE AND URBAN ECONOMICS
LA English
DT Article
DE Agglomeration; Disaster; Firms; Localization; San Francisco
ID GEOGRAPHIC CONCENTRATION; MULTIPLE EQUILIBRIA; ECONOMIC-ACTIVITIES;
   NATURAL DISASTERS; GROWTH; CITY; CITIES; INDUSTRIES; EARTHQUAKE; SHOCKS
AB Is the spatial distribution of urban business establishments sensitive to large, temporary shocks? This paper studies the impact of the 1906 San Francisco earthquake and fire on the agglomeration of 71 industries in the city. The disaster reset location patterns as firms moved after the destruction of thousands of buildings. Using addresses gathered from city business directories between 1900 and 1930, this study asks whether industry agglomeration in San Francisco was permanently affected by the shock. While firms had dispersed after the disaster, industries largely recovered their previous clustering patterns by 1915. The distribution of firms across city blocks, however, was susceptible to the shock as many industries?particularly in manufacturing?had permanently relocated in the wake of the disaster. Industry clustering is thus resilient to shocks, even if ties to certain areas of a city are not. Together, these outcomes suggest that agglomeration economies and other dynamic forces, more than fixed local characteristics, determine firm locations at a microscale.
C1 [Ricks, Judith S.] Colby Coll, Dept Econ, Waterville, ME 04901 USA.
C3 Colby College
RP Ricks, JS (corresponding author), Colby Coll, Dept Econ, Waterville, ME 04901 USA.
EM jrsiodla@colby.edu
OI Siodla, James/0000-0002-5270-4697
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NR 61
TC 4
Z9 4
U1 1
U2 19
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0166-0462
EI 1879-2308
J9 REG SCI URBAN ECON
JI Reg. Sci. Urban Econ.
PD MAY
PY 2021
VL 88
AR 103659
DI 10.1016/j.regsciurbeco.2021.103659
EA MAR 2021
PG 14
WC Economics; Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Business & Economics; Environmental Sciences & Ecology; Urban Studies
GA RV2PT
UT WOS:000645681400005
DA 2025-04-22
ER

PT J
AU Han, KH
   Zhai, ZY
   Chen, XS
   Zhang, CP
   Ju, JWW
   Bao, XH
   Wang, SY
   Hou, BB
AF Han, Kaihang
   Zhai, Zhiyuan
   Chen, Xiangsheng
   Zhang, Chengping
   Ju, Jiann-Wen Woody
   Bao, Xiaohua
   Wang, Shuying
   Hou, Beibei
TI A methodology for evaluating the safety resilience of the existing
   tunnels induced by foundation pit excavation
SO TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY
LA English
DT Article
DE Safety resilience; Resilience assessment; Foundation pit excavation;
   Approaching construction; Resilience index system
ID METRO; VULNERABILITY; NETWORK
AB The development of multifunctional and three-dimensional underground spaces is an effective approach to expanding human activity spaces in future megacities. It significantly enhances urban carrying capacity, disaster resilience, and robustness, reduces carbon emissions, and promotes harmonious coexistence between humans and nature. A methodology for evaluating the safety resilience of the existing tunnels induced by foundation pit excavation is proposed in this paper. Considering the technological and management factors, a detailed resilience index system is suggested. The composite performance Q of the studied system is consistently calculated by virtue of the combined weight method and the TOPSIS method. Specifically, the proposed Q is determined by the combination of QA (existing underground structures), QB (stratum), and QC (adjacent construction disturbance), each with different weights. Furthermore, a comprehensive assessment of resilience R is proposed from the perspective of maximal and cumulative damage in Q. The evaluation method was conducted on an engineering project, and the effects of the three-dimensional component of Q and the deformation limits of existing structures on the evaluation results are analyzed emphatically. The results indicate that as the deformation limits of existing structures become more strict, the Q and R decrease. The methodology proposed in this paper provides essential information for the safety resilience assessment and resilience enhancement of underground structures.
C1 [Han, Kaihang; Zhai, Zhiyuan; Chen, Xiangsheng; Bao, Xiaohua; Wang, Shuying] Shenzhen Univ, State Key Lab Intelligent Geotech & Tunnelling, Shenzhen 518060, Peoples R China.
   [Han, Kaihang; Zhai, Zhiyuan; Chen, Xiangsheng; Bao, Xiaohua; Wang, Shuying] Shenzhen Univ, Key Lab Coastal Urban Resilient Infrastructures, Minist Educ, Shenzhen 518060, Guangdong, Peoples R China.
   [Han, Kaihang; Zhai, Zhiyuan; Chen, Xiangsheng; Bao, Xiaohua; Wang, Shuying] Shenzhen Key Lab Green Efficient & Intelligent Con, Shenzhen 518060, Guangdong, Peoples R China.
   [Zhang, Chengping] Beijing Jiaotong Univ, Key Lab Urban Underground Engn, Educ Minist, Beijing 100044, Peoples R China.
   [Ju, Jiann-Wen Woody] Univ Calif Los Angeles, Dept Civil & Environm Engn, Los Angeles, CA 90095 USA.
   [Hou, Beibei] Cent Res Inst Bldg & Construct Shenzhen Co Ltd, MCC Grp, Shenzhen 518055, Peoples R China.
C3 Shenzhen University; Shenzhen University; Beijing Jiaotong University;
   University of California System; University of California Los Angeles;
   MCC Capital Engineering & Research Incorporation Limited
RP Chen, XS (corresponding author), Shenzhen Univ, State Key Lab Intelligent Geotech & Tunnelling, Shenzhen 518060, Peoples R China.; Chen, XS (corresponding author), Shenzhen Univ, Key Lab Coastal Urban Resilient Infrastructures, Minist Educ, Shenzhen 518060, Guangdong, Peoples R China.; Chen, XS (corresponding author), Shenzhen Key Lab Green Efficient & Intelligent Con, Shenzhen 518060, Guangdong, Peoples R China.
EM hankaihang@szu.edu.cn; 2300471044@email.szu.edu.cn; xschen@szu.edu.cn;
   chpzhang@bjtu.edu.cn; juj@ucla.edu; bxh@szu.edu.cn; sywang@csu.edu.cn;
   houbeibei0311@hotmail.com
RI Chen, Xiangsheng/GLU-5124-2022; zhai, zhiyuan/ISU-9595-2023; Wang,
   Shuying/JNT-3694-2023; bao, xiaohua/AGE-5023-2022; Han,
   Kaihang/U-9966-2019
FU Major Program of National Natural Science Foundation of China
   [52090084]; National Key Research and Development Program of China
   [2022YFC3800905]; State Key Program of National Natural Science
   Foundation of China [51938008]; Strategic Research and Consulting
   Project of Chinese Academy of Engineering [2022-JB-02, 2022-JB-06, 2023-
   149- 13]
FX The authors acknowledge the financial support provided by the Major
   Program of National Natural Science Foundation of China (Grant No.
   52090084) , the National Key Research and Development Program of China
   (No. 2022YFC3800905) , State Key Program of National Natural Science
   Foundation of China (Grant No. 51938008) and Strategic Research and
   Consulting Project of Chinese Academy of Engineering (Grant No.
   2022-JB-02, 2022-JB-06, 2023- 149- 13) .
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NR 34
TC 0
Z9 0
U1 32
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 APR
PY 2025
VL 158
AR 106362
DI 10.1016/j.tust.2024.106362
EA JAN 2025
PG 20
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA T0Y0S
UT WOS:001402358000001
DA 2025-04-22
ER

PT J
AU Mpandeli, S
   Nhamo, L
   Hlahla, S
   Naidoo, D
   Liphadzi, S
   Modi, AT
   Mabhaudhi, T
AF Mpandeli, Sylvester
   Nhamo, Luxon
   Hlahla, Sithabile
   Naidoo, Dhesigen
   Liphadzi, Stanley
   Modi, Albert Thembinkosi
   Mabhaudhi, Tafadzwanashe
TI Migration under Climate Change in Southern Africa: A Nexus Planning
   Perspective
SO SUSTAINABILITY
LA English
DT Article
DE adaptation; resilience; climate change; sustainability; livelihoods;
   vulnerability
ID ENERGY-FOOD NEXUS; SUSTAINABLE DEVELOPMENT; URBAN-DEVELOPMENT;
   GLOBALIZATION; CITIES; HEALTH; IMPACT; AGE
AB Population increase is exacerbating resource insecurities due to increased demand for already depleted resources. Coupled with climate change, they are the main drivers of both intra- (rural-urban and urban-urban) and inter-migration (from one country to the other). We carried out a systematic review of literature, focusing on available options to ensure water and food security, as well as improve the socio-economic environment, highlighting the drivers of migration in southern Africa. The aim was to develop informed adaptation strategies and build resilience in the advent of accelerated migration. We developed a migration conceptual framework based on the nexus between water, food and socio-economic interlinkages. Urban areas in southern Africa are under immense pressure to accommodate climate refugees from resource stressed rural areas, a situation that is impacting on agricultural production. Most urban areas are exceeding their ecological thresholds to support the built environment, causing some socio-ecological challenges. Nexus planning can inform adaptation planning on permissible migration that are aligned with regional goals such as regional integration, poverty reduction and improved livelihoods. This would also contribute to the region's achievements of the Sustainable Development Goals. Furthermore, through the identification of synergies and trade-offs, nexus planning can inform regional adaptation strategies for positively managing migration leading to sustainable outcomes.
C1 [Mpandeli, Sylvester; Nhamo, Luxon; Naidoo, Dhesigen; Liphadzi, Stanley] Water Res Commiss WRC, ZA-0081 Pretoria, South Africa.
   [Mpandeli, Sylvester] Univ Venda, Sch Environm Sci, ZA-0950 Thohoyandou, South Africa.
   [Nhamo, Luxon; Hlahla, Sithabile; Modi, Albert Thembinkosi; Mabhaudhi, Tafadzwanashe] Univ KwaZulu Natal, Sch Agr Earth & Environm Sci, Ctr Transformat Agr & Food Syst CTAFS, ZA-3209 Pietermaritzburg, South Africa.
C3 University of Venda; University of Kwazulu Natal
RP Nhamo, L (corresponding author), Water Res Commiss WRC, ZA-0081 Pretoria, South Africa.; Nhamo, L (corresponding author), Univ KwaZulu Natal, Sch Agr Earth & Environm Sci, Ctr Transformat Agr & Food Syst CTAFS, ZA-3209 Pietermaritzburg, South Africa.
EM sylvesterm@wrc.org.za; luxonn@wrc.org.za; HlahlaS@ukzn.ac.za;
   dhesn@wrc.org.za; stanleyl@wrc.org.za; ModiAT@ukzn.ac.za;
   Mabhaudhi@ukzn.ac.za
RI Mpandeli, Sylvester/KDP-0391-2024; Nhamo, Luxon/H-4000-2019; Mabhaudhi,
   Tafadzwanashe/AAF-2418-2019
OI Nhamo, Luxon/0000-0003-2944-1769; Mabhaudhi,
   Tafadzwanashe/0000-0002-9323-8127; Modi, Albert/0000-0002-6887-1721
FU Water Research Commission (WRC); Wellcome Trust's Our Planet, Our Health
   program [205200/Z/16/Z]; WRC's Research Development Branch
FX This research was funded byWater Research Commission (WRC). The
   Sustainable and Healthy Food Systems (SHEFS) programme supported by
   theWellcome Trust's Our Planet, Our Health program [Grant Number:
   205200/Z/16/Z] is acknowledged for supporting S.H., A.T.M. and T.M. The
   APC was funded by WRC's Research Development Branch.
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NR 69
TC 28
Z9 29
U1 4
U2 46
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2020
VL 12
IS 11
AR 4722
DI 10.3390/su12114722
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 MC6JX
UT WOS:000543391800385
PM 39035707
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Cowles, J
   Templeton, L
   Battles, JJ
   Edmunds, PJ
   Carpenter, RC
   Carpenter, SR
   Nelson, MP
   Cleavitt, NL
   Fahey, TJ
   Groffman, PM
   Sullivan, JH
   Neel, MC
   Hansen, GJA
   Hobbie, S
   Holbrook, SJ
   Kazanski, CE
   Seabloom, EW
   Schmitt, RJ
   Stanley, EH
   Tepley, AJ
   van Doorn, NS
   Vander Zanden, JM
AF Cowles, Jane
   Templeton, Laura
   Battles, John J.
   Edmunds, Peter J.
   Carpenter, Robert C.
   Carpenter, Stephen R.
   Paul Nelson, Michael
   Cleavitt, Natalie L.
   Fahey, Timothy J.
   Groffman, Peter M.
   Sullivan, Joe H.
   Neel, Maile C.
   Hansen, Gretchen J. A.
   Hobbie, Sarah
   Holbrook, Sally J.
   Kazanski, Clare E.
   Seabloom, Eric W.
   Schmitt, Russell J.
   Stanley, Emily H.
   Tepley, Alan J.
   van Doorn, Natalie S.
   Vander Zanden, Jake M.
TI Resilience: insights from the US LongTerm Ecological Research Network
SO ECOSPHERE
LA English
DT Article
DE coral reefs; experimental manipulations; grasslands; northern hardwood
   forest; rain forest; Special Feature: Forecasting Earth's Ecosystems
   with Long-term Ecological Research; temperature; urban forest
ID REEF-BUILDING CORALS; CLIMATE-CHANGE; ICE COVER; RECREATIONAL FISHERIES;
   BIOTIC HOMOGENIZATION; ECOSYSTEM STABILITY; OCEAN ACIDIFICATION;
   FUNCTIONAL-GROUPS; BIODIVERSITY LOSS; LARGEMOUTH BASS
AB Ecosystems are changing in complex and unpredictable ways, and analysis of these changes is facilitated by coordinated, long-term research. Meeting diverse societal needs requires an understanding of what populations and communities will be dominant in 20, 50, and 100 yr. This paper is a product of a synthesis effort of the U.S. National Science Foundation funded Long-Term Ecological Research (LTER) network addressing the LTER core research area of populations and communities. This analysis revealed that each LTER site had at least one compelling story about what their site would look like in 50 or 100 yr. As the stories were prepared, themes emerged, and the stories were grouped into papers along five themes for this special issue: state change, connectivity, resilience, time lags, and cascading effects. This paper addresses the resilience theme and includes stories from the Baltimore (urban), Hubbard Brook (northern hardwood forest), Andrews (temperate rain forest), Moorea (coral reef), Cedar Creek (grassland), and North Temperate Lakes (lakes) sites. The concept of resilience (the capacity of a system to maintain structure and processes in the face of disturbance) is an old topic that has seen a resurgence of interest as the nature and extent of global environmental change have intensified. The stories we present here show the power of long-term manipulation experiments (Cedar Creek), the value of long-term monitoring of forests in both natural (Andrews, Hubbard Brook) and urban settings (Baltimore), and insights that can be gained from modeling and/or experimental approaches paired with long-term observations (North Temperate Lakes, Moorea). Three main conclusions emerge from the analysis: (1) Resilience research has matured over the past 40 yr of the LTER program; (2) there are many examples of high resilience among the ecosystems in the LTER network; (3) there are also many warning signs of declining resilience of the ecosystems we study. These stories highlight the need for long-term studies to address this complex topic and show how the diversity of sites within the LTER network facilitates the emergence of overarching concepts about this important driver of ecosystem structure, function, services, and futures.
C1 [Cowles, Jane; Hobbie, Sarah; Kazanski, Clare E.; Seabloom, Eric W.] Univ Minnesota, Dept Ecol Evolut & Behav, St Paul, MN 55108 USA.
   [Templeton, Laura; Sullivan, Joe H.; Neel, Maile C.] Univ Maryland, Dept Plant Sci & Landscape Architecture, College Pk, MD 20742 USA.
   [Templeton, Laura; Groffman, Peter M.] CUNY, Adv Sci Res Ctr, Grad Ctr, New York, NY 10031 USA.
   [Battles, John J.] Univ Calif Berkeley, Dept Environm Sci Policy & Management, Berkeley, CA 94720 USA.
   [Edmunds, Peter J.; Carpenter, Robert C.] Calif State Univ Northridge, Dept Biol, Northridge, CA 91330 USA.
   [Carpenter, Stephen R.; Stanley, Emily H.; Vander Zanden, Jake M.] Univ Wisconsin Madison, Ctr Limnol, Madison, WI 53706 USA.
   [Paul Nelson, Michael; Fahey, Timothy J.] Oregon State Univ, Dept Forest Ecosyst & Soc, Corvallis, OR 97331 USA.
   [Cleavitt, Natalie L.] Cornell Univ, Dept Nat Resources, Ithaca, NY 14853 USA.
   [Groffman, Peter M.] Cary Inst Ecosyst Studies, 2801 Sharon Turnpike, Millbrook, NY 12545 USA.
   [Hansen, Gretchen J. A.] Univ Minnesota, Dept Fisheries Wildlife & Conservat Biol, St Paul, MN 55108 USA.
   [Holbrook, Sally J.; Schmitt, Russell J.] Univ Calif Santa Barbara, Dept Ecol Evolut & Marine Biol, Santa Barbara, CA 93106 USA.
   [Holbrook, Sally J.; Schmitt, Russell J.] Univ Calif Santa Barbara, Marine Sci Inst, Santa Barbara, CA 93106 USA.
   [Tepley, Alan J.] Smithsonian Conservat Biol Inst, Front Royal, VA 22630 USA.
   [van Doorn, Natalie S.] USDA, Forest Serv, Pacific Southwest Res Stn, Urban Ecosyst & Social Dynam Program, Albany, CA 94710 USA.
C3 University of Minnesota System; University of Minnesota Twin Cities;
   University System of Maryland; University of Maryland College Park; City
   University of New York (CUNY) System; University of California System;
   University of California Berkeley; California State University System;
   California State University Northridge; University of Wisconsin System;
   University of Wisconsin Madison; Oregon State University; Cornell
   University; Cary Institute of Ecosystem Studies; University of Minnesota
   System; University of Minnesota Twin Cities; University of California
   System; University of California Santa Barbara; University of California
   System; University of California Santa Barbara; Smithsonian Institution;
   Smithsonian National Zoological Park & Conservation Biology Institute;
   United States Department of Agriculture (USDA); United States Forest
   Service
RP Groffman, PM (corresponding author), CUNY, Adv Sci Res Ctr, Grad Ctr, New York, NY 10031 USA.; Groffman, PM (corresponding author), Cary Inst Ecosyst Studies, 2801 Sharon Turnpike, Millbrook, NY 12545 USA.
EM Steve.Carpenter@wisc.edu; pgroffman@gc.cuny.edu; ghansen@umn.edu;
   EHStanley@wisc.edu; jmvanderzand@wisc.edu
RI Solomonoff, Natalie/C-3785-2009; Hansen, Gretchen/ABE-3860-2022; Tepley,
   Alan/ABC-1765-2020; Sullivan, Joseph/AAC-2195-2020; Seabloom,
   Eric/AFT-3729-2022; Battles, John J./G-8233-2012
OI Tepley, Alan/0000-0002-5701-9613; Battles, John J./0000-0001-7124-7893;
   Hansen, Gretchen/0000-0003-0241-7048
FU National Science Foundation Long term Ecological Research program grants
   [DEB 1027188, DEB 1234162, 1637396, DEB 1114804, DEB 0217533, DEB
   1440297, 1440409]; Directorate For Geosciences [1637396] Funding Source:
   National Science Foundation; Division Of Environmental Biology; Direct
   For Biological Sciences [1440409] Funding Source: National Science
   Foundation; Division Of Ocean Sciences [1637396] Funding Source:
   National Science Foundation
FX This research was supported by the National Science Foundation Long term
   Ecological Research program grants to the Baltimore (Grant DEB 1027188),
   Cedar Creek (DEB 1234162), Moorea (1637396), Hubbard Brook (DEB
   1114804), North Temperate Lakes (DEB 0217533 and DEB 1440297), and
   Andrews (1440409) LTER sites. The authors thank Matt Gillespie and
   Maribeth Rubenstein for help with editing and compiling the diverse
   components of the manuscript.
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NR 155
TC 15
Z9 16
U1 6
U2 52
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 2150-8925
J9 ECOSPHERE
JI Ecosphere
PD MAY
PY 2021
VL 12
IS 5
AR e03434
DI 10.1002/ecs2.3434
PG 31
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA SJ4AN
UT WOS:000655473800040
OA gold
DA 2025-04-22
ER

PT J
AU Gren, Å
   Colding, J
   Berghauser-Pont, M
   Marcus, L
AF Gren, Asa
   Colding, Johan
   Berghauser-Pont, Meta
   Marcus, Lars
TI How smart is smart growth? Examining the environmental validation behind
   city compaction
SO AMBIO
LA English
DT Review
DE City compaction; City densification; Environmentally friendly urban
   development; Smart growth; Sustainable urban development
ID LAND-USE; PHYSICAL-ACTIVITY; URBAN SPRAWL; HEAT-ISLAND; DENSITY;
   IMPACTS; DESIGN; CITIES; TRAVEL; FORM
AB Smart growth (SG) is widely adopted by planners and policy makers as an environmentally friendly way of building cities. In this paper, we analyze the environmental validity of the SG-approach based on a review of the scientific literature. We found a lack of proof of environmental gains, in combination with a great inconsistency in the measurements of different SG attributes. We found that a surprisingly limited number of studies have actually examined the environmental rationales behind SG, with 34% of those studies displaying negative environmental outcomes of SG. Based on the insights from the review, we propose that research within this context must first be founded in more advanced and consistent knowledge of geographic and spatial analyses. Second, it needs to a greater degree be based on a system's understanding of urban processes. Third, it needs to aim at making cities more resilient, e.g., against climate-change effects.
C1 [Gren, Asa; Colding, Johan] Royal Swedish Acad Sci, Beijer Inst Ecol Econ, Lilla Frescativagen 4, S-10405 Stockholm, Sweden.
   [Colding, Johan] Stockholm Univ, Stockholm Resilience Ctr, S-10691 Stockholm, Sweden.
   [Colding, Johan] Univ Gavle, Dept Bldg Energy & Environm Engn, S-80176 Gavle, Sweden.
   [Berghauser-Pont, Meta; Marcus, Lars] Chalmers Univ Technol, S-41296 Gothenburg, Sweden.
C3 Royal Swedish Academy of Sciences; Beijer Institute of Ecological
   Economics; Stockholm University; University of Gavle; Chalmers
   University of Technology
RP Gren, Å (corresponding author), Royal Swedish Acad Sci, Beijer Inst Ecol Econ, Lilla Frescativagen 4, S-10405 Stockholm, Sweden.
EM asa.gren@beijer.kva.se; johan.colding@su.se;
   meta.berghauserpont@chalmers.su; lars.marcus@chalmers.su
RI Colding, Johan/AAB-7047-2019
OI Gren, Asa/0000-0002-9021-1033; Berghauser Pont,
   Meta/0000-0002-4000-9064; Colding, Johan/0000-0001-7644-7448
FU Stockholm County Council, Sweden; Stockholm University, Sweden; FORMAS
   project: "Analysing city-densification from an ecological resilience
   perspective"
FX This work was funded by The Stockholm County Council and Stockholm
   University, Sweden, and the FORMAS project: "Analysing
   city-densification from an ecological resilience perspective."
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NR 64
TC 42
Z9 42
U1 3
U2 53
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0044-7447
EI 1654-7209
J9 AMBIO
JI Ambio
PD JUN
PY 2019
VL 48
IS 6
BP 580
EP 589
DI 10.1007/s13280-018-1087-y
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 HV7SR
UT WOS:000466181400004
PM 30171568
OA Green Published
DA 2025-04-22
ER

PT J
AU Wang, C
AF Wang, Chuan
TI Urban village on a global scale: Diverse interpretations of one label
SO URBAN GEOGRAPHY
LA English
DT Article
DE Urban village; global scale; linguistic studies; discourse analysis;
   conceptual multiplicity
ID SEMANTIC TRANSPARENCY; RURAL MIGRANTS; CHINA; CITY; URBANIZATION;
   COMMUNITY; STATE; REVITALIZATION; NEIGHBORHOODS; RESILIENCE
AB In recent years, "urban village" has become a heated topic in urban research on informal settlements in the Global South, particularly in the Chinese context. However, this critical review uncovers that at least three different interpretations of urban village exist in the literature: ethnic enclaves in American metropolises, new models of community development in the Anglosphere, and informal settlements within the rapidly expanding metropolises in the Global South. In tackling the complexity of the urban village discourse, this study employs fundamental linguistic knowledge to probe the urban village in cross-disciplinary, cross-cultural, and cross-linguistic contexts. The resulting argument is that urban village is a label that denotes diverse ideas. This work expands the discussion on the flexibility and mutability of popular keywords in the contemporary discourse on urban research.
C1 [Wang, Chuan] Southeast Univ, Sch Architecture, Nanjing 210096, Peoples R China.
C3 Southeast University - China
RP Wang, C (corresponding author), Southeast Univ, Sch Architecture, Nanjing 210096, Peoples R China.
EM chuanwang@seu.edu.cn
RI Wang, Chuan/JWO-9837-2024
FU China Scholarship Council [201306210041]; Priority Academic Program
   Development of Jiangsu Higher Education Institutions [1101007005]
FX This work was supported by the China Scholarship Council [201306210041]
   and the Priority Academic Program Development of Jiangsu Higher
   Education Institutions [1101007005].
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   1989, VISION BRITAIN PERSO
NR 129
TC 15
Z9 16
U1 18
U2 78
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0272-3638
EI 1938-2847
J9 URBAN GEOGR
JI Urban Geogr.
PD FEB 7
PY 2022
VL 43
IS 2
BP 184
EP 205
DI 10.1080/02723638.2020.1842097
EA NOV 2020
PG 22
WC Geography; Urban Studies
WE Social Science Citation Index (SSCI)
SC Geography; Urban Studies
GA 0Y7UP
UT WOS:000593084100001
DA 2025-04-22
ER

PT J
AU Lo Piccolo, E
   Ceccanti, C
   Lauria, G
   Santonocito, G
   Rosellini, I
   Pezzarossa, B
   Guidi, L
   Laudicina, VA
   Baglieri, A
   Remorini, D
   Massai, R
   Landi, M
AF Lo Piccolo, Ermes
   Ceccanti, Costanza
   Lauria, Giulia
   Santonocito, Gianluca
   Rosellini, Irene
   Pezzarossa, Beatrice
   Guidi, Lucia
   Laudicina, Vito Armando
   Baglieri, Andrea
   Remorini, Damiano
   Massai, Rossano
   Landi, Marco
TI From lava to leaf: Physiological responses and trace element mobility
   in Tilia cordata L. trees grown in volcanic ash amended
   urban soil
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Inorganic amendment; Photosynthesis; Soil conditioner; Urban pollution;
   Urban greening; Water stress
ID NEEDLE MORPHOLOGY; HEAVY-METAL; PHOTOSYNTHESIS; DROUGHT; PERFORMANCE;
   LIMITATIONS; LEAVES; AREAS; SHOOT
AB This study investigates the potential of utilizing volcanic ash (VA), classified as special waste, as an inorganic soil amendment to enhance tree growth and resilience in urban areas near volcanic regions. Lime trees were transplanted into pots filled with urban soil (Cnt) or amended with 10 % VA. Tree's physiological traits were monitored over the growing season. Notably, VA-treated trees showed improved net CO2 2 assimilation (Pn) n ) and stomatal conductance (gs) s ) during the leaf senescent stage. The analysis of ash, and Cnt and VA soils, showed low concentrations of trace elements. In addition, trace element accumulation in the leaves of VA trees was not observed. In summer, during a 12-day drought stress test, VA-stressed trees exhibited enhanced water absorption, reduced lipid peroxidation, and higher Pnand n and gs s values in the initial days compared to control-stressed trees. Importantly, the VA also promoted a 33 % larger tree root system, potentially enhancing drought resilience. This could offer an important advantage for trees, especially during the tree's critical establishment phase. Thus, VA could be a promising amendment for urban soils to bolster tree tolerance to drought.
C1 [Lo Piccolo, Ermes] Univ Florence, Dept Agr Food Environm & Forestry, Florence, Italy.
   [Lo Piccolo, Ermes] Natl Biodivers Future Ctr, NBFC, Palermo, Italy.
   [Ceccanti, Costanza; Lauria, Giulia; Santonocito, Gianluca; Guidi, Lucia; Remorini, Damiano; Massai, Rossano; Landi, Marco] Univ Pisa, Dept Agr Food & Environm, Pisa, Italy.
   [Rosellini, Irene; Pezzarossa, Beatrice] Natl Res Council CNR, Res Inst Terr Ecosyst, Pisa, Italy.
   [Guidi, Lucia; Remorini, Damiano; Massai, Rossano; Landi, Marco] Univ Pisa, Ctr Climate Change Impact, CIRSEC, Pisa, Italy.
   [Laudicina, Vito Armando] Univ Palermo, Dept Agr Food & Forestry Sci, Palermo, Italy.
   [Baglieri, Andrea] Univ Catania, Dipartimento Agr Alimentaz & Ambiente Di3A, Catania, Italy.
C3 University of Florence; National Biodiversity Future Center; University
   of Pisa; Consiglio Nazionale delle Ricerche (CNR); Istituto di Ricerca
   sugli Ecosistemi Terrestri (IRET); University of Pisa; University of
   Palermo; University of Catania
RP Lo Piccolo, E (corresponding author), Univ Florence, Dept Agr Food Environm & Forestry, Florence, Italy.
EM ermes.lopiccolo@unifi.it
RI LANDI, MARCO/KFQ-4112-2024; Lo Piccolo, Ermes/AAC-9087-2020; guidi,
   lucia/ABZ-9443-2022; Laudicina, Vito/F-8187-2015; Lauria,
   Giulia/JXL-6155-2024; Remorini, Damiano/AAS-4258-2020; CECCANTI,
   COSTANZA/AAA-3974-2021; MASSAI, ROSSANO/A-7497-2018
OI MASSAI, ROSSANO/0000-0002-0182-957X; , Irene
   Rosellini/0000-0002-5366-9387; , BEATRICE/0000-0002-5611-5152; Lo
   Piccolo, Ermes/0000-0001-9789-2524
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 50
TC 1
Z9 1
U1 1
U2 1
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 SEP
PY 2024
VL 99
AR 128458
DI 10.1016/j.ufug.2024.128458
EA AUG 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 C3B9R
UT WOS:001288150700001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Xu, F
   Wang, H
   Chi, GQ
AF Xu, Feng
   Wang, Huan
   Chi, Guangqing
TI Does market-oriented land conveyance affect regional economic
   resilience? A spatial and mediation analysis based on 287 Chinese cities
SO LAND USE POLICY
LA English
DT Article
DE Land conveyance; Regional resilience; Mediation effects; Marketization
   level; China
ID ROTTERDAM; SYSTEM
AB Urban land is owned and managed by governments in China, which makes the land conveyance strategy an important policy tool for local governments to sustain a healthy economy. To understand the resource-based capacity of cities to withstand potential economic shocks, it is critically important to explore the impacts of land conveyance on economic resilience from the perspective of marketization. In this study, we measured economic resilience and market-oriented land conveyance in 287 Chinese cities using the unemployment rate and the proportion of the land conveyed in the form of tender, auction, and listing, separately. We employed static and dynamic panel models, the spatial Durbin model, and the mediation model to investigate the direct, spatial, and indirect impacts of land conveyance on regional economic resilience. Our results indicate that market-oriented land conveyance exerts a positive impact on employment-induced resilience. However, the impacts from neighboring cities reverse to negative impacts on local resilience. Specifically, land conveyance positively influences economic resilience indirectly through a variety of channels, including secondary industry and capital markets. This study provides city-level evidence on the impacts of a land use policy on employment- induced resilience and sheds light on policy implications for promoting economic resilience in a period of frequent shocks.
C1 [Xu, Feng] China Univ Geosci, Dept Land Resource Management, Wuhan 430074, Peoples R China.
   [Wang, Huan] Beijing Technol & Business Univ, Sch Econ, Higher Educ Garden, 307 South Bldg, Liangxiang 102488, Beijing, Peoples R China.
   [Chi, Guangqing] Penn State Univ, Populat Res Inst, Dept Agr Econ Sociol & Educ, University Pk, PA 16802 USA.
   [Chi, Guangqing] Penn State Univ, Social Sci Res Inst, University Pk, PA 16802 USA.
C3 China University of Geosciences; Beijing Technology & Business
   University; Pennsylvania Commonwealth System of Higher Education
   (PCSHE); Pennsylvania State University; Pennsylvania State University -
   University Park; Penn State Behrend; Pennsylvania Commonwealth System of
   Higher Education (PCSHE); Pennsylvania State University; Pennsylvania
   State University - University Park; Penn State Behrend
RP Wang, H (corresponding author), Beijing Technol & Business Univ, Sch Econ, Higher Educ Garden, 307 South Bldg, Liangxiang 102488, Beijing, Peoples R China.
EM whcugxf@cug.edu.cn; huanwang@btbu.edu.cn; gchi@psu.edu
RI Chi, Guangqing/A-6989-2009; Xu, Feng/ACT-0759-2022
FU National Natural Science Foundation of China [42371286, 42001206];
   National Social Science Foundation of China [22CJY041]; Key Laboratory
   of Law and Government, Ministry of Natural Resources of China
   [CUGFP-1904]
FX This research was supported by the National Natural Science Foundation
   of China (Grant No. 42371286 & 42001206) , the National Social Science
   Foundation of China (Grant No. 22CJY041) , the Key Laboratory of Law and
   Government, Ministry of Natural Resources of China (Grant No.
   CUGFP-1904) .
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NR 69
TC 0
Z9 0
U1 12
U2 12
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 MAR
PY 2025
VL 150
AR 107457
DI 10.1016/j.landusepol.2024.107457
EA DEC 2024
PG 11
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA S1N3P
UT WOS:001395975000001
DA 2025-04-22
ER

PT J
AU Drosou, N
   Soetanto, R
   Hermawan, F
   Chmutina, K
   Bosher, L
   Hatmoko, JUD
AF Drosou, Nafsika
   Soetanto, Robby
   Hermawan, Ferry
   Chmutina, Ksenia
   Bosher, Lee
   Hatmoko, Jati Utomo Dwi
TI Key Factors Influencing Wider Adoption of Blue-Green Infrastructure in
   Developing Cities
SO WATER
LA English
DT Article
DE flood risk management; Blue-Green Infrastructure; urban landscape; urban
   planning policy
ID URBAN; CITY
AB Numerous fast-growing coastal cities in the Global South are exposed to coastal, fluvial and pluvial floods, as a consequence of decades-long rapid urbanisation and weak enforcement of planning regulations. Integrating Blue-Green Infrastructure (BGI) concepts into the development of the urban landscape has the potential to increase flood resilience and offer broader environmental benefits. BGI is an innovative approach that combines water management and green infrastructure to maintain natural water cycles and enhance environmental and urban renewal. This paper identifies socio-economic, cultural and political challenges influencing BGI adoption in Semarang city in Indonesia. Data was collected from residents of three communities through interviews (n=30), questionnaires (n=180) and focus groups with policymakers and community representatives. The combined quantitative and qualitative data provide an understanding of the specific socio-economic, cultural and political issues at play and reveal flood experience as well as perceptions of community members regarding flood management. Challenges are presented from the point of view of residents and local policymakers and are based on a framework for facilitating local BGI adoption, setting the principles of inclusive, appropriate and proactive as pre-conditions for enhancing community resilience to flooding.
C1 [Drosou, Nafsika; Soetanto, Robby; Chmutina, Ksenia; Bosher, Lee] Loughborough Univ, Sch Architecture Bldg & Civil Engn, Loughborough LE11 3TU, Leics, England.
   [Hermawan, Ferry; Hatmoko, Jati Utomo Dwi] Diponegoro Univ, Dept Civil Engn, Semarang 50275, Indonesia.
C3 Loughborough University; Diponegoro University
RP Drosou, N (corresponding author), Loughborough Univ, Sch Architecture Bldg & Civil Engn, Loughborough LE11 3TU, Leics, England.
EM n.c.drosou@lboro.ac.uk; r.soetanto@lboro.ac.uk;
   ferry.hermawan@live.undip.ac.id; k.chmutina@lboro.ac.uk;
   l.bosher@lboro.ac.uk; jati.hatmoko@ft.undip.ac.id
RI Chmutina, Ksenia/C-7600-2014; Hatmoko, Jati/AAH-5064-2020; Soetanto,
   Robby/K-8670-2013; Hermawan, Ferry/AAW-7511-2021
OI Hermawan, Ferry/0000-0001-6113-4836; Drosou, Nafsika
   C/0000-0001-6744-0594; Hatmoko, Jati Utomo Dwi/0000-0002-0795-4531;
   Soetanto, Robby/0000-0002-9731-7869
FU Newton Institutional Links/INSINAS-KLN scheme [GA261682033,
   397-05/UN7.5.1/PG/2017, 101-59/UN7.P4.3/PP/2018]; Ministry of Research,
   Technology and Higher Education of the Republic of Indonesia; British
   Council of the Republic of Indonesia
FX This research was undertaken as part of the Newton Institutional
   Links/INSINAS-KLN scheme (grant reference: GA261682033;
   397-05/UN7.5.1/PG/2017; 101-59/UN7.P4.3/PP/2018) and was jointly funded
   by the British Council and Ministry of Research, Technology and Higher
   Education of the Republic of Indonesia.
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NR 54
TC 44
Z9 45
U1 6
U2 58
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD JUN
PY 2019
VL 11
IS 6
AR 1234
DI 10.3390/w11061234
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 II7BC
UT WOS:000475346300122
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Moghayedi, A
   Mehmood, A
   Michell, K
   Ekpo, CO
AF Moghayedi, Alireza
   Mehmood, Abid
   Michell, Kathy
   Ekpo, Christiana Okobi
TI Modeling the Neighborhood Wellbeing of Townships in South Africa
SO SUSTAINABILITY
LA English
DT Article
DE housing; neighborhood; township; socioeconomic; wellbeing; South Africa;
   resilience
ID URBAN RESILIENCE; CITIES
AB Townships in South Africa are characterized by underdeveloped urban neighborhoods on the periphery of cities, where their inhabitants suffer from a poor quality of life. Given the relative lack of empirical research on the wellbeing of people living in townships in South Africa, this study attempts to fill the gap by understanding and modeling the relationships between household socioeconomic characteristics, housing and neighborhood conditions, and individual and community wellbeing to develop and empirically validate a neighborhood wellbeing framework. The hypothesized associations from the wellbeing framework were tested using 389 household interviews of the three largest townships in South Africa. The findings identify the challenges associated with adequate housing and lack of infrastructure in townships and how these affect the wellbeing of individuals and communities. The conclusion demonstrates how the neighborhood wellbeing framework, as an interdisciplinary approach, can improve the quality of life of inhabitants and communities in urban neighborhoods in general.
C1 [Moghayedi, Alireza] Univ West England, Dept Architecture & Environm, Bristol BS16 1QY, England.
   [Mehmood, Abid] Cardiff Univ, Sch Geog & Planning, Cardiff CF10 3WA, Wales.
   [Michell, Kathy; Ekpo, Christiana Okobi] Univ Cape Town, Dept Construct Econ & Management, ZA-7700 Cape Town, South Africa.
C3 University of West England; Cardiff University; University of Cape Town
RP Moghayedi, A (corresponding author), Univ West England, Dept Architecture & Environm, Bristol BS16 1QY, England.
EM alireza.moghayedi@uwe.ac.uk
RI Michell, Kathy/S-6904-2019; Moghayedi, Alireza/AAW-1267-2020
OI Mehmood, Abid/0000-0003-3719-6388; Moghayedi,
   Alireza/0000-0002-4165-0777; Michell, Kathy/0000-0002-3907-7393
FU Royal Academy of Engineering, U.K [TSP 1352, 2021\100339, FoE2021\9\9]
FX This research was funded by the Royal Academy of Engineering, U.K, grant
   numbers TSP 1352, 2021\100339 and FoE2021\9\9.
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NR 56
TC 3
Z9 3
U1 0
U2 7
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY 24
PY 2023
VL 15
IS 11
AR 8542
DI 10.3390/su15118542
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 I7LM9
UT WOS:001004565500001
OA gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Schibuola, L
   Tambani, C
AF Schibuola, Luigi
   Tambani, Chiara
TI Environmental impact and energy performance of groundwater heat pumps in
   urban retrofit
SO ENERGY AND BUILDINGS
LA English
DT Article
DE Groundwater heat pump; Urban heat island; 5GDHC network; Urban weather
   model; City resilience; Decarbonisation actions
ID ISLAND; MODEL; CALIBRATION; CLIMATE; EUROPE
AB Increasing efforts are addressed to improve heating, ventilation and air conditioning systems to achieve the decarbonization goal also in the building sector. But less attention is actually devoted to their impact on the urban heat island (UHI) phenomenon. Starting from the UHI assessment and its impact on building heating and cooling demand, a performance comparison is presented between groundwater heat pumps (GWHP) supplied by a district network and air source heat pumps (ASHP_1). Hybrid systems with small ASHPs and condensing boilers (ASHP_2) are also considered. An urban area, network and heat pumps were modeled for this study. In summer, the removal from the urban area of the heat dissipated by condensers thanks to GWHPs reduces the average UHI intensity with ASHPs by 45% and the relative cooling demand increment by 42.6%. A more favorable temperature of the groundwater than outside air permits a net superiority of the GWHP efficiency. At annual level, the GWHP provides energy savings of 27% and 34.5% and CO2 emission reductions of 27% and 39.5% compared to ASHP_1 and ASHP_2 respectively. The UHI mitigation to improve comfort and resilience in urban areas is an important added value for the contribution to decarbonization that a GWHP network can provide.(C) 2022 Elsevier B.V. All rights reserved.
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 Schibuola, Luigi/R-4961-2018; Tambani, Chiara/AAG-3578-2020
OI Tambani, Chiara/0000-0003-1869-2917
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NR 90
TC 8
Z9 8
U1 0
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 APR 15
PY 2022
VL 261
AR 111964
DI 10.1016/j.enbuild.2022.111964
EA FEB 2022
PG 14
WC Construction & Building Technology; Energy & Fuels; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Energy & Fuels; Engineering
GA 1N1KV
UT WOS:000800422900011
DA 2025-04-22
ER

PT J
AU Li, XF
   Erpicum, S
   Mignot, E
   Archambeau, P
   Pirotton, M
   Dewals, B
AF Li, Xuefang
   Erpicum, Sebastien
   Mignot, Emmanuel
   Archambeau, Pierre
   Pirotton, Michel
   Dewals, Benjamin
TI Influence of urban forms on long-duration urban flooding: Laboratory
   experiments and computational analysis
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Urban flooding; Urban forms; Flood-resilience; Laboratory model;
   Numerical modelling
ID PARTICLE IMAGE VELOCIMETRY; RAINFALL-RUNOFF; FLOW; SURFACE; RISK;
   MODELS; DAMAGE; LSPIV; PROPAGATION; VELOCITIES
AB Water-sensitive urban design is an integral part of flood risk management. Based on computational modelling, we investigated the influence of various urban forms on flooding severity at the level of an urban block and for the case of long-duration urban flooding. The upstream flow depths, downstream discharge partition and flow exchange through the urban forms were examined. The results indicate that one urban characteristic has an overwhelming influence on the flow variables: the conveyance porosity in the main flow direction is by far more influential than the conveyance porosity in the normal direction or the number of streets. Such anisotropic effect was not pointed in recent similar studies, and it hints at practical guidelines for sustainable urban planning in practice. Moreover, the computational model was verified against laboratory observations, which constitute a novel valuable dataset for the validation of other urban flooding models.
C1 [Li, Xuefang; Erpicum, Sebastien; Archambeau, Pierre; Pirotton, Michel; Dewals, Benjamin] Univ Liege ULiege, Hydraul Environm & Civil Engn HECE, Liege, Belgium.
   [Mignot, Emmanuel] Univ Claude Bernard Lyon 1, CNRS, Ecole Cent Lyon, INSA Lyon,Univ Lyon,LMFA, Lyon, France.
C3 Institut National de la Sante et de la Recherche Medicale (Inserm);
   Centre National de la Recherche Scientifique (CNRS); Ecole Centrale de
   Lyon; Institut National des Sciences Appliquees de Lyon - INSA Lyon;
   Universite Claude Bernard Lyon 1; Universite Jean Monnet
RP Li, XF (corresponding author), Univ Liege ULiege, Hydraul Environm & Civil Engn HECE, Liege, Belgium.
EM xuefang.li@uliege.be
RI Dewals, Benjamin/B-8922-2009; Archambeau, Pierre/B-8917-2009; Li,
   Xuefang/Q-3379-2019; Mignot, Emmanuel/F-8180-2011
FU "Fonds pour la formation `a la Recherche dans l'Industrie et
   l'Agriculture" (FRIA, Belgium); "Fonds Speciaux de la Recherche" (FSR)
   of the University of Liege; French National Research Agency (ANR)
   [ANR-18-CE01-0020]; Agence Nationale de la Recherche (ANR)
   [ANR-18-CE01-0020] Funding Source: Agence Nationale de la Recherche
   (ANR)
FX This research was funded by a fellowship from the "Fonds pour la
   formation `a la Recherche dans l'Industrie et l'Agriculture" (FRIA,
   Belgium), as well as by a grant from "Fonds Speciaux de la Recherche"
   (FSR) of the University of Liege. The support from the French National
   Research Agency (ANR) for the project DEUFI (ANR-18-CE01-0020) is also
   acknowledged. The authors gratefully acknowledge Miguel Angel
   Mejia-Morales for his insightful suggestions for LSPIV set-up and Prof.
   Jerome Le Coz for his support of Fudaa-LSPIV. The authors are also
   grateful to the technical stuff of the laboratory, Maxime Mathieu,
   Gregory Thonard and Claude Lhermerout.
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NR 65
TC 42
Z9 46
U1 18
U2 117
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0022-1694
EI 1879-2707
J9 J HYDROL
JI J. Hydrol.
PD DEC
PY 2021
VL 603
AR 127034
DI 10.1016/j.jhydrol.2021.127034
EA OCT 2021
PN C
PG 16
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA WM3YO
UT WOS:000711024300012
OA Green Published
DA 2025-04-22
ER

PT J
AU McDonnell, MJ
   Hahs, AK
AF McDonnell, Mark J.
   Hahs, Amy K.
TI The future of urban biodiversity research: Moving beyond the
   'low-hanging fruit'
SO URBAN ECOSYSTEMS
LA English
DT Article
ID URBANIZATION; ECOLOGY; GRADIENT; CONSERVATION; PREDATION; BIOLOGY;
   TRAITS; GROWTH
AB In this era of rapidly urbanising human populations, urban practitioners are under increasing pressure to create resilient and sustainable cities and towns. Urban ecologists currently have a unique opportunity to apply solid, evidence-based research to help create biodiversity-rich and sustainable cities and towns for the future. Unfortunately, there is currently a mismatch between the questions planners, designers and decision-makers are asking urban ecologists that would allow them to improve the biodiversity outcomes in urban areas, and the questions urban ecologists must ask to contribute to the development and application of the science of urban ecology. For a number of reasons, urban ecologists over the past 25 years have primarily focused on describing the patterns of biodiversity in cities and towns using broad, aggregate predictor variables (e.g., distance to city center, land-use, percent cover of impermeable surfaces and vegetation, etc.). We refer to these results as 'low-hanging fruit'. If the discipline of urban ecology is going to provide the necessary information to inform actions to preserve and enhance urban biodiversity, we need to move beyond place-based research, and work towards the development of confirmed generalizations regarding the relationship between the structure and function of urban ecosystems and biodiversity. We propose three essential strategies for achieving this refined understanding: 1) defining the study window to place the study into a broader global context, 2) collecting and using more explicit question-driven measures of the urban condition in order to improve our understanding of urban ecological drivers, as well as recording more detailed ecological responses to provide insights into the ecological mechanisms underlying an observed response, and 3) expanding studies to include multiple cities, regions and countries. These strategies will help to expedite the ability of urban ecology to contribute to the creation of biodiversity-rich, healthy, resilient cities and towns.
RP McDonnell, MJ (corresponding author), Univ Melbourne, Australian Res Ctr Urban Ecol, Royal Bot Gardens Melbourne, Sch Bot, Melbourne, Vic 3010, Australia.
EM markmc@unimelb.edu.au; hahsa@unimelb.edu.au
RI McDonnell, Mark/LDF-3388-2024; Hahs, Amy/H-4478-2019
OI Hahs, Amy/0000-0003-0163-6732; McDonnell, Mark J./0000-0002-7937-6566
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NR 68
TC 127
Z9 149
U1 0
U2 228
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 SEP
PY 2013
VL 16
IS 3
BP 397
EP 409
DI 10.1007/s11252-013-0315-2
PG 13
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA 202MK
UT WOS:000323220800001
DA 2025-04-22
ER

PT J
AU Miao, Y
   Yang, L
   Chen, F
   Chen, JW
AF Miao, Yang
   Yang, Le
   Chen, Feng
   Chen, Jiawei
TI Mapping the Landscape of Carbon-Neutral City Research: Dynamic Evolution
   and Emerging Frontiers
SO SUSTAINABILITY
LA English
DT Review
DE carbon-neutral city; CiteSpace; knowledge graph; bibliometrics
ID DEVELOPMENT STRATEGIES; POLICY; CITIES; EMISSIONS; GOVERNANCE;
   MITIGATION; TRANSITIONS; KNOWLEDGE; POLITICS; SECTOR
AB Carbon-neutral city research has attracted widespread attention. However, a comprehensive review of this research has not been conducted, and it is unclear how the various perspectives have evolved. In this study, CNKI and Web of Science were used as data sources. By summarizing the research results of carbon-neutral cities in recent years, the dynamics evolution trend is revealed, and the frontiers are explored. We found that: (1) the themes and contents of carbon-neutral city research were diverse and intersecting and mainly focused on energy, industrial structure, transportation, and building. (2) The knowledge map of author cooperation did not show many aggregates, which indicated that the cooperation and exchanges between relevant researchers are insufficient. (3) Chinese research on carbon-neutral cities was extensive and fruitful, taking the lead in the research in this field. Based on the current situation and trends, we provided a scientific reference for the development of carbon-neutral cities. Current research foci and cutting-edge findings will help to make cities more climate resilient, sustainable and livable. Understanding and magnifying these foci is what will help countries achieve their climate mitigation and carbon neutrality goals sooner rather than later.
C1 [Miao, Yang; Yang, Le; Chen, Feng] Zhejiang Univ Technol, Sch Publ Adm, Hangzhou 310023, Peoples R China.
   [Miao, Yang] Zhejiang Univ Technol, Sch Management, Hangzhou 310023, Peoples R China.
   [Chen, Jiawei] Jiangnan Univ, Sch Business, 1800 Lihu Ave, Wuxi 214122, Peoples R China.
C3 Zhejiang University of Technology; Zhejiang University of Technology;
   Jiangnan University
RP Chen, JW (corresponding author), Jiangnan Univ, Sch Business, 1800 Lihu Ave, Wuxi 214122, Peoples R China.
EM miao@zjut.edu.cn; ylee55@163.com; chenfeng@zjut.edu.cn;
   jiaweichen@stu.jiangnan.edu.cn
RI miao, yang/GYE-2378-2022
FU National Social Science Foundation of China; MOE (Ministry of Education
   in China) Youth Foundation Project of Humanities and Social Sciences
   [21YJC630100]; Hangzhou Social Sciences Planning Program [Z24JC039]; 
   [22AZD127]
FX This research was financially supported by the National Social Science
   Foundation of China [Grant No. 22AZD127], an MOE (Ministry of Education
   in China) Youth Foundation Project of Humanities and Social Sciences
   [Grant No. 21YJC630100], Hangzhou Social Sciences Planning Program
   [Grant No. Z24JC039].
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NR 126
TC 0
Z9 0
U1 31
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 2024
VL 16
IS 16
AR 6733
DI 10.3390/su16166733
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 E7K6M
UT WOS:001304761000001
OA gold
DA 2025-04-22
ER

PT J
AU Basaglia, A
   Aprile, A
   Spacone, E
   Pelà, L
AF Basaglia, Alberto
   Aprile, Alessandra
   Spacone, Enrico
   Pela, Luca
TI Assessing community resilience, housing recovery and impact of
   mitigation strategies at the urban scale: a case study after the 2012
   Northern Italy Earthquake
SO BULLETIN OF EARTHQUAKE ENGINEERING
LA English
DT Article
DE Community resilience; Housing recovery; Seismic risk; Risk assessment;
   Risk mitigation
ID SEISMIC RISK-ASSESSMENT; DAMAGE DATA; BUILDINGS; VULNERABILITY;
   PERFORMANCE; FRAGILITY; RC; COLUMNS; FRAMES; PLACE
AB In this paper, the reconstruction process of a town affected by the 2012 Northern Italy Earthquake is analysed using information published on the town journal. Relevant aspects are highlighted, and the housing recovery is compared with that of a nearby city. Then, a what-if scenario is considered, by proposing a set of seismic mitigation strategies. These strategies are applied to a small sub-system of the city and the variation of the buildings' vulnerability and expected damage is evaluated using a recently introduced methodology for risk assessments at the urban scale. Finally, a cost-benefit analysis is performed to assess the effectiveness of the proposed strategies. The analysis highlights a significant reduction in the expected damage and socioeconomic impact, as well as an increase in the overall performance of the urban system.
C1 [Basaglia, Alberto; Spacone, Enrico] Univ G dAnnunzio, Dept Engn & Geol, Viale Pindaro 42, I-65127 Pescara, Italy.
   [Aprile, Alessandra] Univ Ferrara, Dept Engn, Ferrara, Italy.
   [Pela, Luca] Univ Politecn Catalunya UPC BarcelonaTech, Dept Civil & Environm Engn, Barcelona, Spain.
C3 G d'Annunzio University of Chieti-Pescara; University of Ferrara;
   Universitat Politecnica de Catalunya
RP Basaglia, A (corresponding author), Univ G dAnnunzio, Dept Engn & Geol, Viale Pindaro 42, I-65127 Pescara, Italy.
EM alberto.basaglia@unich.it
RI Basaglia, Alberto/AAE-3869-2019; Pelà, Luca/H-9938-2012; APRILE,
   ALESSANDRA/V-4953-2019
OI APRILE, ALESSANDRA/0000-0002-2109-7396; Basaglia,
   Alberto/0000-0001-7730-6305; SPACONE, ENRICO/0000-0002-8304-7028
FU Universita degli Studi G. D'Annunzio Chieti Pescara within the CRUI-CARE
   Agreement; FAR funding of the University of Ferrara, 2015, "Historical
   Centers Livable and Sustainable" (HC-LIVE)"; University "G. D'Annunzio"
   Chieti-Pescara, 2019, "Risk Assessment of the Built Heritage at the
   Urban Scale" [0002299]; European Regional Development Fund (ERDF)
   through the SEVERUS project [RTI2018-099589-B-I00]
FX Open access funding provided by Universita degli Studi G. D'Annunzio
   Chieti Pescara within the CRUI-CARE Agreement. This work was supported
   by the FAR funding of the University of Ferrara, 2015, "Historical
   Centers Livable and Sustainable" (HC-LIVE)" and by the scholarship of
   the University "G. D'Annunzio" Chieti-Pescara, 2019, "Risk Assessment of
   the Built Heritage at the Urban Scale" (Ref. Num. 0002299). The fourth
   Author would like to acknowledge the Ministry of Science, Innovation and
   Universities (MCIU) of the Spanish Government, the State Agency of
   Research (AEI), and the European Regional Development Fund (ERDF)
   through the SEVERUS project (Multilevel evaluation of seismic
   vulnerability and risk mitigation of masonry buildings in resilient
   historical urban centres, Ref. Num. RTI2018-099589-B-I00).
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NR 97
TC 27
Z9 28
U1 1
U2 28
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1570-761X
EI 1573-1456
J9 B EARTHQ ENG
JI Bull. Earthq. Eng.
PD OCT
PY 2020
VL 18
IS 13
BP 6039
EP 6074
DI 10.1007/s10518-020-00919-8
EA AUG 2020
PG 36
WC Engineering, Geological; Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Geology
GA NR1IU
UT WOS:000558129600003
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Sun, CH
   Rao, QY
   Xiong, ZH
   Liu, M
   Liu, YL
   Fan, CL
   Li, JJ
   Tan, SK
   Wang, M
   Zhang, DQ
AF Sun, Chuanhao
   Rao, Qiuyi
   Xiong, Ziheng
   Liu, Ming
   Liu, Yulu
   Fan, Chengliang
   Li, Jianjun
   Tan, Soon Keat
   Wang, Mo
   Zhang, Dongqing
TI Optimized resilience coupled with cost-effectiveness for grey and green
   infrastructure: A case study in a historical and cultural area,
   Guangzhou, China
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Urban stormwater management; Green infrastructure; Coupled grey-green
   infrastructure; Spatial allocation; Life cycle cost; Resilience
ID URBAN DRAINAGE; PERFORMANCE; MANAGEMENT; SYSTEM
AB Coupled grey and green infrastructure (CGGI) is increasingly recognized as a viable approach to sustainable urban stormwater management. This study evaluates CGGI and grey infrastructure (GREI)-only schemes with various degree of centralization of the layout (DCL) in addressing urban flood and drainage issues in a historical and cultural district (HCD) which typically consists of high impervious surfaces, dense urban structures, and fragile heritage buildings. Yongqing Fang Community in Guangzhou, China, was selected as a case study in which the performance of the Grey-only and CGGI schemes are evaluated and compared. The results obtained indicated that the CGGI scheme was more advantageous in terms of cost-effectiveness and scalability, yielding potential savings of $30,500 to $163,400. Moreover, the fully decentralized layout of the two schemes could result in cost savings of 29.0% and 29.6%, respectively, over the fully centralized layout. However, CGGI shows marginally lower adaptability in response to extreme rainfall events compared to that of GREI-only solutions. Technical resilience (Tech-R) of GREI-only scored higher by 0.1% to 0.8%, 0.5% to 3.5%, and 0.7% to 4.8% for 10-year, 50-year, and 100-year rainfall scenarios, respectively. Nonetheless, CGGI schemes demonstrated superior adaptability in structural failure scenarios, and reduced surface overflow by 22.6%, 19.0%, and 18.4% compared to GREI for the same scenarios. In both the CGGI and GREI-only schemes, decentralized layouts are likely to outperform centralized layouts in both extreme rainfall events and in failure scenarios. These findings underscore the importance of decentralized layout of the drainage infrastructure which could enhance the hydrological performance of integrated drainage infrastructures, offering insights for due considerations in designing multi-objective infrastructures for urban flood mitigation in HCDs.
C1 [Sun, Chuanhao; Xiong, Ziheng; Fan, Chengliang; Li, Jianjun; Wang, Mo] Guangzhou Univ, Coll Architecture & Urban Planning, Guangzhou 510006, Peoples R China.
   [Rao, Qiuyi; Li, Jianjun; Wang, Mo] Guangzhou Univ, Architectural Design & Res Inst, Guangzhou 510091, Peoples R China.
   [Liu, Ming] South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510641, Peoples R China.
   [Liu, Yulu] Sichuan Univ, Coll Architecture & Environm, Chengdu 510641, Sichuan, Peoples R China.
   [Tan, Soon Keat] Nanyang Technol Univ, Sch Civil & Environm Engn, Singapore 639798, Singapore.
   [Zhang, Dongqing] Guangdong Univ Petrochem Technol, Sch Environm Sci & Engn, Guangdong Prov Key Lab Petrochemcial Pollut Proc &, Maoming 525000, Guangdong, Peoples R China.
C3 Guangzhou University; Guangzhou University; South China University of
   Technology; Sichuan University; Nanyang Technological University;
   Guangdong University of Petrochemical Technology
RP Fan, CL; Wang, M (corresponding author), Guangzhou Univ, Coll Architecture & Urban Planning, Guangzhou 510006, Peoples R China.; Wang, M (corresponding author), Guangzhou Univ, Architectural Design & Res Inst, Guangzhou 510091, Peoples R China.; Zhang, DQ (corresponding author), Guangdong Univ Petrochem Technol, Sch Environm Sci & Engn, Guangdong Prov Key Lab Petrochemcial Pollut Proc &, Maoming 525000, Guangdong, Peoples R China.
EM sunch1110@outlook.com; chewy0917@outlook.com; xiongzihengla@outlook.com;
   MingL6371@outlook.com; luluco1@outlook.com; fanchengliang@outlook.com;
   Lijianjun@gzhu.edu.cn; ctansk@ntu.edu.sg; landwangmo@outlook.com;
   dqzhang3377@outlook.com
RI Fan, Chengliang/AAV-7014-2020; Sun, Chuanhao/KVZ-1899-2024; Wang,
   Mo/ABC-9345-2020
OI Wang, Mo/0000-0001-8752-6256
FU Guangdong Basic and Applied Basic Research Foundation, China
   [2023A1515030158]; Guangzhou City School (Institute) Enterprise Joint
   Funding Project, China [2024A03J0317]; Graduate Student Innova-tion
   Ability Training Funding Program of Guangzhou University [2023GDJC]
FX This work was supported by Guangdong Basic and Applied Basic Research
   Foundation, China [grant number 2023A1515030158] , Guangzhou City School
   (Institute) Enterprise Joint Funding Project, China [grant number
   2024A03J0317] , and Graduate Student Innova-tion Ability Training
   Funding Program of Guangzhou University, grant number 2023GDJC.
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NR 69
TC 1
Z9 1
U1 61
U2 61
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD OCT
PY 2024
VL 167
AR 112684
DI 10.1016/j.ecolind.2024.112684
EA OCT 2024
PG 16
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA I7H1Q
UT WOS:001331923200001
OA gold
DA 2025-04-22
ER

PT J
AU Lippera, MC
   Khurelbaatar, G
   Despot, D
   Kouyi, GL
   Rizzo, A
   Friesen, J
AF Lippera, Maria Chiara
   Khurelbaatar, Ganbaatar
   Despot, Daneish
   Kouyi, Gislain Lipeme
   Rizzo, Anacleto
   Friesen, Jan
TI Spatial-economic scenarios to increase resilience to urban flooding
SO WATER RESEARCH X
LA English
DT Article
DE Combined sewer overflow; LID; NBS; Planning scenarios; Urban stormwater
   management
ID CLIMATE-CHANGE; SYSTEMS; GREEN
AB Due to accelerating climate change and the need for new development to accommodate population growth, adaptation of urban drainage systems has become a pressing issue in cities. Questions arise whether decentralised urban drainage systems are a better alternative to centralised systems, and whether Nature Based Solutions' (NBS) multifunctionality also brings economic benefits. This research aims to develop spatio-economic scenarios to support cities in increasing their resilience to urban flooding with NBS. The novelty of our work lies in the automated routines to assess the potential for decentralised NBS within the existing urban catchment. The identification of locations and dimensioning is based on open, publicly available geospatial data. Moreover, a block-based decentralization potential metric is developed to indicate stormwater mitigation potential in any urban setting. The Ecully catchment, Lyon metropolitan area (France), is presented as a case study to achieve zero combined sewer overflow (CSO) for specific design storm events. This planning workflow enables project cost savings through the most suitable allocation of distributed interventions, with cost functions also incorporating scaling effects. By reducing the number of decentralised NBS sites compared to smaller, wide- distributed interventions up to 34 % of project costs are saved when planning for a 5-year design storm and up to 7 % for a 100-year design storm. When the decentralised NBS scenario is analysed alongside other urban stormwater management practices, the centralised constructed wetland for CSO results to be the most economical solution due to the higher retention capacity and scaling effect, significantly outperforming the grey alternatives.
C1 [Lippera, Maria Chiara; Khurelbaatar, Ganbaatar; Despot, Daneish; Friesen, Jan] UFZ, Helmholtz Ctr Environm Res, Dept Syst Environm Biotechnol, Permoserstr 15, D-04318 Leipzig, Germany.
   [Kouyi, Gislain Lipeme] INSA Lyon, DEEP, UR7429, F-69621 Villeurbanne, France.
   [Rizzo, Anacleto] IRIDRA Srl, Via Alfonso Marmora 51, I-50121 Florence, Italy.
C3 Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Institut National des Sciences Appliquees de Lyon - INSA Lyon
RP Lippera, MC (corresponding author), UFZ, Helmholtz Ctr Environm Res, Dept Syst Environm Biotechnol, Permoserstr 15, D-04318 Leipzig, Germany.
EM maria-chiara.lippera@ufz.de
RI Friesen, Jan/G-5669-2014; LIPEME KOUYI, Gislain/LRT-6672-2024
OI LIPEME KOUYI, Gislain/0000-0002-0513-9496; Khurelbaatar,
   Ganbaatar/0000-0002-2430-1612; Friesen, Jan/0000-0003-0454-0437
FU European Union [101060922, 101003527]; Horizon Europe - Pillar II
   [101060922] Funding Source: Horizon Europe - Pillar II
FX This work was supported by the European Union's Horizon H2020 innovation
   action programme within the MULTISOURCE project under grant agreement
   101003527 (https://doi.org/10.3030/101003527) . Further support was
   given by the WATERUN project, which has received funding from the
   European Union's Horizon H2020 program under grant agreement 101060922.
   We would like to thank Eloise Lenormand for her valuable assistance in
   data preparation and exchange among INSA and UFZ within the MULTISOURCE
   project.
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NR 43
TC 0
Z9 0
U1 10
U2 10
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
EI 2589-9147
J9 WATER RES X
JI Water Res. X
PD JAN 1
PY 2025
VL 26
AR 100284
DI 10.1016/j.wroa.2024.100284
PG 9
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA O8S8K
UT WOS:001373767900001
PM 39717822
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Xiang, CY
   Liu, JH
   Shao, WW
   Mei, C
   Zhou, JJ
AF Xiang, Chenyao
   Liu, Jiahong
   Shao, Weiwei
   Mei, Chao
   Zhou, Jinjun
TI Sponge city construction in China: policy and implementation experiences
SO WATER POLICY
LA English
DT Article
DE Funding source; Low Impact Development (LID); Sponge city; Urban design;
   Urban rainwater management
ID URBAN CATCHMENT; URBANIZATION; IMPACT; MANAGEMENT; RUNOFF
AB To deal with the three universal urban water problems - namely storm floods, water pollution and water shortage - China has implemented a comprehensive solution: the Sponge City Construction Project. Sponge cities aim to reduce runoff and pollution, and also to restore downstream ecologies. They combine low impact development methods with grey infrastructures, large-scale flood control projects and rehabilitation. This paper describes Chinese experiences of construction and financing for implementation of sponge cities, which could provide references to other countries for building sustainable, climate-resilient cities and urban water management systems. It illustrates the objectives and methods of the sponge city design and demonstrates the differences in configuration and funding structures in cities of different climates and economic conditions. The total construction area involved in the pilot cities covers 449 km(2). The configurations are distinct due to different economic conditions, climates and land forms: a humid district inclines to drainage-efficient approaches and pollution control devices, while a semi-humid district prefers green infrastructures and rainwater reuse facilities. The Chinese government plays an important role in the funding of sponge cities: Chinese central government provided CNY (sic)20.7 billion for the construction of 16 cities during 2015-2017, while the rest came from local governments and non-governmental investors.
C1 [Xiang, Chenyao; Liu, Jiahong; Shao, Weiwei; Mei, Chao; Zhou, Jinjun] China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China.
   [Liu, Jiahong] Minist Water Resources, Engn & Technol Res Ctr Water Resources & Hydroeco, Beijing 100038, Peoples R China.
C3 China Institute of Water Resources & Hydropower Research; Ministry of
   Water Resources; China Institute of Water Resources & Hydropower
   Research
RP Liu, JH (corresponding author), China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China.; Liu, JH (corresponding author), Minist Water Resources, Engn & Technol Res Ctr Water Resources & Hydroeco, Beijing 100038, Peoples R China.
EM liujh@iwhr.com
RI Shao, Weiwei/AAO-6848-2021; Mei, Chao/Y-3225-2019; ZHOU,
   JINJUN/KYR-0330-2024; Liu, Jiahong/AAG-1319-2021
OI Shao, Weiwei/0000-0002-4421-6781
FU Chinese National Natural Science Foundation [51522907, 51279208];
   National Key Research and Development Program of China [2016YFC0401401];
   Research Fund of the State Key Laboratory of Simulation and Regulation
   of Water Cycle in River Basin, China Institute of Water Resources and
   Hydropower Research [2016ZY02]
FX The authors would like to extend their thanks to the Chinese National
   Natural Science Foundation (No. 51522907, No. 51279208) and National Key
   Research and Development Program of China (2016YFC0401401). The study
   was also supported by the Research Fund of the State Key Laboratory of
   Simulation and Regulation of Water Cycle in River Basin, China Institute
   of Water Resources and Hydropower Research (No. 2016ZY02).
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NR 30
TC 31
Z9 34
U1 9
U2 196
PU IWA PUBLISHING
PI LONDON
PA ALLIANCE HOUSE, 12 CAXTON ST, LONDON SW1H0QS, ENGLAND
SN 1366-7017
J9 WATER POLICY
JI Water Policy
PD FEB
PY 2019
VL 21
IS 1
BP 19
EP 37
DI 10.2166/wp.2018.021
PG 19
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA HN4MU
UT WOS:000460158800002
OA Bronze
DA 2025-04-22
ER

PT J
AU Qi, YF
   Chan, FKS
   Griffiths, J
   Feng, ML
   Sang, YF
   O'Donnell, E
   Hutchins, M
   Thadani, DR
   Li, G
   Shao, MQ
   Xie, LJ
   Liu, ST
   Zhang, CG
   Li, XA
   Liu, LY
   Zhong, M
AF Qi, Yunfei
   Shun Chan, Faith Ka
   Griffiths, James
   Feng, Meili
   Sang, Yanfang
   O'Donnell, Emily
   Hutchins, Michael
   Thadani, Dimple R.
   Li, Gang
   Shao, Mengqi
   Xie, Linjun
   Liu, Sitong
   Zhang, Chunguang
   Li, Xinan
   Liu, Lingyun
   Zhong, Ming
TI Sponge City Program (SCP) and Urban Flood Management (UFM)-The Case of
   Guiyang, SW China
SO WATER
LA English
DT Article
DE catchment flood management plan (CFMP); urban flood management (UFM);
   natural flood management (NFM); Sponge City Program (SCP); urban flood
   resilience; Guiyang
ID CONSTRUCTION; LESSONS
AB Flood management is a complex issue in Chinese cities that exhibit high populations and have undergone rapid urbanization. Urban flood management (UFM) approaches can be used to mitigate urban flood risk. To address urban issues of poor water quality and urban surface flooding, the Sponge City Program (SCP) was initiated in 2013 in China. The SCP aims to provide an opportunity for Chinese cities to improve their current UFM practices. This study looks at Guiyang (a pilot sponge city located in SW China) as a case study to identify the challenges and opportunities of UFM in China. Guiyang is a valley city surrounded by a hilly landscape. Using interview records and flood data, we illustrate that the primary type of flood in Guiyang is fluvial rather than surface water flooding. In Guiyang, the current function and targets of the SCP have yet to engage with the catchment level flood management, instead mainly focusing on the site-specific context (i.e., community level). Catchment flood management planning (CFMP) and natural flood management (NFM) both address this problem and may be a more suitable approach to manage flood discharge from the upper and middle catchments in Guiyang. In addition, it is suggested that a mixed option combining "hard " infrastructure (e.g., reservoirs and floodwalls) with "soft " flood management measures (e.g., improving people awareness and participation) may improve urban flood resilience in Chinese cities.</p>
C1 [Qi, Yunfei; Shun Chan, Faith Ka; Feng, Meili; Liu, Sitong] Univ Nottingham Ningbo China, Sch Geog Sci, Ningbo 315100, Peoples R China.
   [Qi, Yunfei; Zhang, Chunguang; Li, Xinan; Liu, Lingyun; Zhong, Ming] Design Inst Co Ltd, Guizhou Water & Power Survey, Guiyang 550002, Peoples R China.
   [Shun Chan, Faith Ka] Univ Leeds, Sch Geog, Leeds LS2 9JT, W Yorkshire, England.
   [Shun Chan, Faith Ka] Univ Leeds, Water Leeds Res Inst, Leeds LS2 9JT, W Yorkshire, England.
   [Griffiths, James] Natl Inst Water & Atmospher Res NIWA, Christchurch 8602, New Zealand.
   [Sang, Yanfang] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Water Cycle & Related Land Surface Proces, Beijing 100101, Peoples R China.
   [O'Donnell, Emily] Univ Nottingham, Sch Geog, Nottingham NG7 2RD, England.
   [Hutchins, Michael] UK Ctr Ecol & Hydrol, Maclean Bldg,Benson Lane, Wallingford OX10 8BB, Oxon, England.
   [Thadani, Dimple R.] Univ Nottingham Ningbo China, Sch Business, Ningbo 315100, Peoples R China.
   [Li, Gang] Chinese Acad Sci, Inst Urban Environm, Xiamen 361021, Peoples R China.
   [Shao, Mengqi] Univ Nottingham Ningbo China, Fac Humanities & Social Sci FHSS, Ningbo 315100, Peoples R China.
   [Xie, Linjun] Univ Nottingham Ningbo China, Dept Architecture & Built Environm, Ningbo 315100, Peoples R China.
C3 University of Nottingham Ningbo China; University of Leeds; University
   of Leeds; National Institute of Water & Atmospheric Research (NIWA) -
   New Zealand; Chinese Academy of Sciences; Institute of Geographic
   Sciences & Natural Resources Research, CAS; University of Nottingham; UK
   Centre for Ecology & Hydrology (UKCEH); University of Nottingham Ningbo
   China; Chinese Academy of Sciences; Institute of Urban Environment, CAS;
   University of Nottingham Ningbo China; University of Nottingham Ningbo
   China
RP Qi, YF; Chan, FKS; Feng, ML (corresponding author), Univ Nottingham Ningbo China, Sch Geog Sci, Ningbo 315100, Peoples R China.; Qi, YF; Chan, FKS; Liu, LY (corresponding author), Design Inst Co Ltd, Guizhou Water & Power Survey, Guiyang 550002, Peoples R China.; Chan, FKS (corresponding author), Univ Leeds, Sch Geog, Leeds LS2 9JT, W Yorkshire, England.; Chan, FKS (corresponding author), Univ Leeds, Water Leeds Res Inst, Leeds LS2 9JT, W Yorkshire, England.; Griffiths, J (corresponding author), Natl Inst Water & Atmospher Res NIWA, Christchurch 8602, New Zealand.
EM yunfei.qi@nottingham.edu.cn; faith.chan@nottingham.edu.cn;
   James.Griffiths@niwa.co.nz; meili.feng@nottingham.edu.cn;
   sangyf@igsnrr.ac.cn; emily.o'donnell@nottingham.ac.uk; mihu@ceh.ac.uk;
   Dimple.Thadani@nottingham.edu.cn; gli@iue.ac.cn;
   Mengqi.Shao@nottingham.edu.cn; Linjun-xie@nottingham.edu.cn;
   Liu.Sitong@nottingham.edu.cn; gyzcg116@126.com; lixinan1985@126.com;
   liulingyun901023@126.com; zhongminghhu@163.com
RI Xie, Linjun/AAD-8176-2019; Li, Gang/H-3179-2012; griffiths,
   james/L-1926-2019; Hutchins, Michael/K-3370-2012; Chan, Faith Ka
   Shun/H-1541-2017; Sang, Yan-Fang/I-8277-2016
OI Shao, Mengqi/0000-0001-5996-7783; Li, Gang/0000-0002-1674-4587; Thadani,
   Dimple R./0000-0002-5195-2541; Feng, Meili/0000-0002-2305-6934;
   Hutchins, Michael/0000-0003-3764-5331; O'Donnell,
   Emily/0000-0003-4303-4705; Xie, Linjun/0000-0002-9169-8744; Chan, Faith
   Ka Shun/0000-0001-6091-6596; Griffiths, James
   Andrew/0000-0002-6769-8998; Sang, Yan-Fang/0000-0001-6770-9311; Qi,
   Yunfei/0000-0003-4505-1314
FU National Natural Science Foundation of China (NSFC) [41850410497,
   51909126]; National Key R&D Program of China [2019YFC1510400];
   University of Nottingham (UNUK) [E01200500006]; Institute of Asia
   Pacific Studies Research; Cultural and Creative Industries Research
   Priority Areas; Faculty of Science and Engineering (FoSE) Postgraduate
   Research Scholarship of University of Nottingham Ningbo China; Guizhou
   Science and Technology Planning of Project [2019 2879]
FX This research was funded by National Natural Science Foundation of China
   (NSFC) (Grant number: 41850410497); National Key R&D Program of China
   (Grant number: 2019YFC1510400); National Natural Science Foundation of
   China (NSFC) Youth Project (Grant number: 51909126); University of
   Nottingham (UNUK) project (Grant number: E01200500006); Institute of
   Asia Pacific Studies Research Funded for the Environmental Security and
   Sustainability; Cultural and Creative Industries Research Priority
   Areas; Faculty of Science and Engineering (FoSE) Postgraduate Research
   Scholarship of University of Nottingham Ningbo China; and Guizhou
   Science and Technology Planning of Project (Grant number: 2019 2879).
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NR 49
TC 11
Z9 11
U1 9
U2 73
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 2784
DI 10.3390/w13192784
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 WI0BP
UT WOS:000708033400001
OA Green Published, Green Accepted, gold
DA 2025-04-22
ER

PT J
AU Xiao, LS
   Li, XH
   Wang, R
AF Xiao, Lishan
   Li, Xinhu
   Wang, Run
TI Integrating climate change adaptation and mitigation into sustainable
   development planning for Lijiang City
SO INTERNATIONAL JOURNAL OF SUSTAINABLE DEVELOPMENT AND WORLD ECOLOGY
LA English
DT Article
DE climate change; adaptation; mitigation; city planning
ID HURST EXPONENT; IMPACTS; GLACIER; ENERGY
AB Cities are facing considerable challenges resulting from imminent climate change impacts. Urban planning to minimise adverse impacts of climate change at the city level can establish a climate-resilient city. Mitigation strategies to reduce CO2 emissions would lead to a climate-friendly city. Integrating climate change adaptation and mitigation into sustainable city planning should not be merely added as a single level of sustainable city planning, but requires a wide range of multi-level cooperation. Lijiang City has experienced climatic change during the last half century, and its CO2 emissions have increased faster than the GDP growth. Nearby glaciers on Yulong Snow Mountain have been retreating and losing mass since the early twentieth century. In this paper, we identify economic sectors that are vulnerable to climate change, including tourism, agriculture and water supply, and propose mitigation and adaptation strategies to cope with climate change in this tourism city. As energy use is the largest source of greenhouse gas (GHG) emissions, renewable energy has enormous CO2 reduction potential. Land use practices, a sectoral approach and public participation are all considered adaptive in climate planning. The proposals outlined are valuable as they provide an understanding of how to implement integrated climate planning and integrate climate change mitigation and adaptation into sustainable city planning.
C1 [Xiao, Lishan; Li, Xinhu; Wang, Run] Chinese Acad Sci, Inst Urban Environm, Key Lab Urban Environm & Hlth, Xiamen, Peoples R China.
   [Xiao, Lishan; Li, Xinhu; Wang, Run] Xiamen Key Lab Urban Metab, Xiamen, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Urban Environment, CAS
RP Wang, R (corresponding author), Chinese Acad Sci, Inst Urban Environm, Key Lab Urban Environm & Hlth, Xiamen, Peoples R China.
EM rwang@iue.ac.cn
RI Li, Xinhu/A-1479-2011; Wang, Run/GXZ-5369-2022
OI , Run/0000-0002-7054-5650; Xiao, Lishan/0000-0001-7090-4599
FU Chinese Academy of Sciences [08I4071D10, D-2009-02, KZCX2-YW-450-1]
FX This research was supported by One Hundred Talents Program and
   Innovation Projects of Chinese Academy of Sciences (08I4071D10;
   D-2009-02; KZCX2-YW-450-1). We thank Jonathan Vause and Xuanqi Li for
   their helpful advice on this research.
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NR 36
TC 12
Z9 13
U1 7
U2 80
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 1350-4509
EI 1745-2627
J9 INT J SUST DEV WORLD
JI Int. J. Sustain. Dev. World Ecol.
PY 2011
VL 18
IS 6
SI SI
BP 515
EP 522
DI 10.1080/13504509.2011.603761
PG 8
WC Green & Sustainable Science & Technology; Ecology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 856KL
UT WOS:000297638700009
DA 2025-04-22
ER

PT J
AU Zhao, CL
   Chen, JG
   Su, GF
   Yuan, HY
AF Zhao, Chunli
   Chen, Jianguo
   Su, Guofeng
   Yuan, Hongyong
TI Assessment of the climate change adaptation capacity of urban
   agglomerations in China
SO MITIGATION AND ADAPTATION STRATEGIES FOR GLOBAL CHANGE
LA English
DT Article
DE Climate change; Adaptation capacity; Set pair analysis (SPA); Urban
   agglomeration (UA)
ID TEMPERATURE; IMPACTS; PRECIPITATION
AB Complex urban ecosystems are relatively fragile in the context of climate change. Given this fragility and the large numbers of urban inhabitants, it is important for researchers and government regulators to assess the adaptation capacity of urban areas with respect to climate change. Currently, there are few studies that have evaluated such adaptation capacity across different regions and periods. In this study, a framework and method are established to assess the adaptation capacity of Chinese cities and urban agglomerations (UAs) with respect to climate change by integrating an SPRR (Source, Pathway, Receptor, Response) model with the Intergovernmental Panel on Climate Change (IPCC) assessment framework. We develop an indicator system for exposure, sensitivity, and resilience and use the set pair analysis (SPA) method to evaluate the adaptation capacity of 12 typical UAs in China. Results show that (1) adaptation capacity levels show wide variation across China, with the majority of cities and UAs having either high or low levels of capacity and a minority having a moderate level of capacity; (2) inland UAs have low adaptation capacity because of low resilience and sensitivity, whereas eastern coastal UAs have high adaptation capacity, for their high resilience and sensitivity; and (3) higher climate change exposures are distributed predominantly in central China. A pronounced economic disparity exists between western inland regions and eastern regions, with the latter having higher levels of economic development and superior infrastructure. The regional economic inequalities and spatial variation in climate variability observed in China are also characteristics shared by many other countries and regions, suggesting that our results may be generalised to other countries and regions. We propose that underdeveloped regions should seek to improve infrastructure and funding directed towards improving adaptation capacity, whereas developed regions should improve their ability to monitor climate change and its impacts.
C1 [Zhao, Chunli; Chen, Jianguo; Su, Guofeng; Yuan, Hongyong] Tsinghua Univ, Dept Engn Phys, Beijing 100084, Peoples R China.
   [Zhao, Chunli; Chen, Jianguo; Su, Guofeng; Yuan, Hongyong] Tsinghua Univ, Inst Publ Safety Res, Beijing 100084, Peoples R China.
   [Zhao, Chunli; Chen, Jianguo] Beijing Key Lab City Integrated Emergency Respons, Beijing 100084, Peoples R China.
C3 Tsinghua University; Tsinghua University
RP Chen, JG (corresponding author), Tsinghua Univ, Dept Engn Phys, Beijing 100084, Peoples R China.; Chen, JG (corresponding author), Tsinghua Univ, Inst Publ Safety Res, Beijing 100084, Peoples R China.; Chen, JG (corresponding author), Beijing Key Lab City Integrated Emergency Respons, Beijing 100084, Peoples R China.
EM zhaochunli@mail.tsinghua.edu.cn; chenjianguo@tsinghua.edu.cn;
   sugf@tsinghua.edu.cn; hy-yuan@tsinghua.edu.cn
RI Su, Guofeng/K-6798-2015
OI Su, Guofeng/0000-0003-0795-7676
FU National Key Research and Development Program of China [2018YFC0806900];
   National Natural Science Foundation of China [71790613]; China
   Postdoctoral Science Foundation [2019M650631]
FX This research was supported by the National Key Research and Development
   Program of China (Grant No. 2018YFC0806900), the Major Program of the
   National Natural Science Foundation of China (Grant No.71790613), and
   the China Postdoctoral Science Foundation (Grant No. 2019M650631).
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NR 53
TC 7
Z9 8
U1 11
U2 62
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 2020
VL 25
IS 2
BP 221
EP 236
DI 10.1007/s11027-019-09874-5
PG 16
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA LQ4FW
UT WOS:000534960900005
DA 2025-04-22
ER

PT J
AU Wang, Y
   Wu, W
   Boelens, L
AF Wang, Yan
   Wu, Wei
   Boelens, Luuk
TI City profile: Suzhou, China-The interaction of water and city
SO CITIES
LA English
DT Article
DE City profile; Suzhou; Water urban history; Urban morphology; Urban
   governance; Sustainability
AB Urban development has always been related to water systems throughout history. Suzhou is a city with a proud past that is mostly built out of Chinese ingenuity in making water management a development factor. Its parallel pattern of land and water not only gave rise to the first water city model that displays the unique features of the south of Yangtze River Delta, but is also an active reflection of the planning and management of ancient Chinese cities when dealing with natural, urban development and human activities. The paper tells Suzhou?s story about the interaction of water and city from urban morphology and urban governance perspectives. Through remapping, it will go into the distinguished periods to explore how the specific urban features (distinguished in natural and artificial waterways) have influenced urban development. Along with the prosperity of the watercities, massive urban construction and environmental issues are enormous challenges in human process. In the rapid urbanization today, how to balance the historical city conservation and sustainable development? Learning from successful historical experiences, the paper sets the scene for more resilient approaches, to integrate and renovate resources for future developments, enhancing the adaptability and sustainability of cities in response to development-conservation challenges.
C1 [Wang, Yan] Southeast Univ, Sch Architecture, Nanjing, Peoples R China.
   [Wang, Yan; Boelens, Luuk] Univ Ghent, Ctr Mobil & Spatial Planning, Ghent, Belgium.
   [Wu, Wei] Jiangsu Inst Urban Planning & Design, Nanjing, Peoples R China.
C3 Southeast University - China; Ghent University
RP Wang, Y (corresponding author), Southeast Univ, Sch Architecture, Nanjing, Peoples R China.; Wang, Y (corresponding author), Univ Ghent, Ctr Mobil & Spatial Planning, Ghent, Belgium.; Wu, W (corresponding author), Jiangsu Inst Urban Planning & Design, Nanjing, Peoples R China.
EM yan.linda.wang@hotmail.com; 3635382@qq.com
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NR 18
TC 11
Z9 11
U1 6
U2 75
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 103119
DI 10.1016/j.cities.2021.103119
EA FEB 2021
PG 19
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA RE4SO
UT WOS:000634146200002
DA 2025-04-22
ER

PT J
AU Meerow, S
AF Meerow, Sara
TI A green infrastructure spatial planning model for evaluating ecosystem
   service tradeoffs and synergies across three coastal megacities
SO ENVIRONMENTAL RESEARCH LETTERS
LA English
DT Article
DE green infrastructure; ecosystem services; megacities; urban
   sustainability; spatial planning; urban resilience
ID SOCIAL VULNERABILITY; HUMAN HEALTH; URBAN; FRAMEWORK; EQUITY; AIR;
   STORMWATER; RESILIENCE; VEGETATION; EMISSIONS
AB A growing number of cities are investing in green infrastructure to foster urban resilience and sustainability. While these nature-based solutions are often promoted on the basis of their multifunctionality, in practice, most studies and plans focus on a single benefit, such as stormwater management. This represents a missed opportunity to strategically site green infrastructure to leverage social and ecological co-benefits. To address this gap, this paper builds on existing modeling approaches for green infrastructure planning to create a more generalizable tool for comparing spatial tradeoffs and synergistic 'hotspots' for multiple desired benefits. I apply the model to three diverse coastal megacities: New York City, Los Angeles (United States), and Manila (Philippines), enabling cross-city comparisons for the first time. Spatial multi-criteria evaluation is used to examine how strategic areas for green infrastructure development across the cities change depending on which benefit is prioritized. GIS layers corresponding to six planning priorities (managing stormwater, reducing social vulnerability, increasing access to green space, improving air quality, reducing the urban heat island effect, and increasing landscape connectivity) are mapped and spatial tradeoffs assessed. Criteria are also weighted to reflect local stakeholders' desired outcomes as determined through surveys and stakeholder meetings and combined to identify high priority areas for green infrastructure development. To extend the model's utility as a decision-support tool, an interactive web-based application is developed that allows any user to change the criteria weights and visualize the resulting hotspots in real time. The model empirically illustrates the complexities of planning green infrastructure in different urban contexts, while also demonstrating a flexible approach for more participatory, strategic, and multifunctional planning of green infrastructure in cities around the world.
C1 [Meerow, Sara] Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ 85287 USA.
C3 Arizona State University; Arizona State University-Tempe
RP Meerow, S (corresponding author), Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ 85287 USA.
EM sara.meerow@asu.edu
RI Meerow, Sara/J-8037-2019
OI Meerow, Sara/0000-0002-6935-1832
FU Human Dimensions of Global Change Specialty Group of the American
   Association of Geographers; Horace H Rackham School of Graduate Studies
   at the University of Michigan; Menakka and Essel Bailey Graduate
   Fellowship at the University of Michigan; National Science Foundation
   [CBET-1444745]
FX Many people assisted with this study. I would like to thank Richard
   Schuster for his help in developing the original R Shiny App, and
   Srinivas Vallabhaneni for additional assistance. I am grateful to Tom
   Logan for providing the park access data, Christopher Emrich for the
   social vulnerability indices, Ryan Reynolds for processing the remote
   sensing data, Zhenzhen Zhang for assisting with the landscape
   connectivity analysis, and the UCLA Institute for Environment and
   Sustainability, the Science of the Living City program of the NYC Urban
   Field Station, and Ateneo de Manila University for making the
   stakeholder meetings and surveys possible, as well as all the
   participants. This study benefitted from helpful feedback I received
   from Joshua Newell and Daniel Brown, researchers at a number of
   conferences and workshops, and the three anonymous reviewers. This
   research was supported by the Human Dimensions of Global Change
   Specialty Group of the American Association of Geographers, The Horace H
   Rackham School of Graduate Studies at the University of Michigan, the
   Menakka and Essel Bailey Graduate Fellowship at the University of
   Michigan, and the National Science Foundation (Award # CBET-1444745).
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NR 66
TC 70
Z9 75
U1 15
U2 193
PU IOP PUBLISHING LTD
PI BRISTOL
PA TEMPLE CIRCUS, TEMPLE WAY, BRISTOL BS1 6BE, ENGLAND
SN 1748-9326
J9 ENVIRON RES LETT
JI Environ. Res. Lett.
PD DEC
PY 2019
VL 14
IS 12
AR 125011
DI 10.1088/1748-9326/ab502c
PG 14
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA KN4UP
UT WOS:000514834300007
OA gold
DA 2025-04-22
ER

PT J
AU Alnaser, AA
   Maxi, M
   Elmousalami, H
AF Alnaser, Aljawharah A.
   Maxi, Mina
   Elmousalami, Haytham
TI AI-Powered Digital Twins and Internet of Things for Smart Cities and
   Sustainable Building Environment
SO APPLIED SCIENCES-BASEL
LA English
DT Review
DE smart cities; artificial intelligence; digital twins; building
   environment; sustainability; Internet of Things
ID ARTIFICIAL-INTELLIGENCE
AB This systematic literature review explores the intersection of AI-driven digital twins and IoT in creating a sustainable building environment. A comprehensive analysis of 125 papers focuses on four major themes. First, digital twins are examined in construction, facility management, and their role in fostering sustainability and smart cities. The integration of IoT and AI with digital twins and energy optimization for zero-energy buildings is discussed. Second, the application of AI and automation in manufacturing, particularly in Industry 4.0 and cyber-physical systems, is evaluated. Third, emerging technologies in urban development, including blockchain, cybersecurity, and EEG-driven systems for sustainable buildings, are highlighted. The study underscores the role of data-driven approaches in flood resilience and urban digital ecosystems. This review contributes to sustainability by identifying how digital technologies and AI can optimize energy use and enhance resilience in both urban and industrial contexts.
C1 [Alnaser, Aljawharah A.] King Saud Univ, Dept Architecture & Bldg Sci, Coll Architecture & Planning, Riyadh 11574, Saudi Arabia.
   [Maxi, Mina] Norwegian Univ Sci & Technol NTNU, Ind Ecol Energy & Proc Engn, N-7034 Trondheim, Norway.
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C3 King Saud University; Norwegian University of Science & Technology
   (NTNU); University of Melbourne
RP Alnaser, AA (corresponding author), King Saud Univ, Dept Architecture & Bldg Sci, Coll Architecture & Planning, Riyadh 11574, Saudi Arabia.
EM aaalnaser@ksu.edu.sa; mina.m.i.maxy@ntnu.no;
   helmousalami@student.unimelb.edu.au
RI Maxi, Mina/AFB-7896-2022; Elmousalami, Haytham/AAS-5312-2020; Alnaser,
   Aljawharah/HMV-2544-2023
OI Maxi, Mina/0000-0001-8013-5287
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NR 101
TC 5
Z9 5
U1 41
U2 41
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 DEC
PY 2024
VL 14
IS 24
AR 12056
DI 10.3390/app142412056
PG 28
WC Chemistry, Multidisciplinary; Engineering, Multidisciplinary; Materials
   Science, Multidisciplinary; Physics, Applied
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Chemistry; Engineering; Materials Science; Physics
GA Q7U6S
UT WOS:001386685000001
OA gold
DA 2025-04-22
ER

PT J
AU Bi, XR
   Wu, JX
   Sun, C
   Ji, K
AF Bi, Xirong
   Wu, Jingxian
   Sun, Cheng
   Ji, Kun
TI Resilience-Based Repair Strategy for Gas Network System and Water
   Network System in Urban City
SO SUSTAINABILITY
LA English
DT Article
DE water network system; gas network system; seismic resilience; parallel
   repair; quantitative evaluation of resilience; repair efficiency
ID INFRASTRUCTURE SYSTEMS; SEISMIC RESILIENCE; FAILURE RISK; VULNERABILITY;
   MODELS
AB In resilience-based frameworks, optimizing the repair strategy and approaches is important for the recovery of the function of gas network systems (GNS) and water network systems (WNS). According to the resilience quantification results of GNS and WNS for a real example urban city in China, the potential impact of utilizing different repair sequences and repair/replacement approaches was investigated. First, a Monte Carlo simulation-based method was proposed to search for the optimal repair sequence according to the skew of the recovery trajectory (SRT). Under high seismic intensity conditions, the significant difference between the repair sequence corresponding to maximum SRT and minimum SRT indicates that choosing the optimal repair sequence is important in the enhancement of repair efficiency, especially when the pipelines have experienced serious damage. We also discussed the parallel repair strategy, which is more consistent with the practice, and can greatly improve the recovery efficiency compared with the single pipeline repair strategy under large damage conditions; however, under minor damage levels, the parallel repair strategy may result in a certain degree of redundancy. Next, three different repair approaches were thoroughly compared, including the point-by-point repair approach, whole pipeline replacement, and hybrid repair approach. At the condition of high seismic intensity (e.g., macroseismic intensity IX), the resilience curves for the hybrid repair approach and the pipeline replacement approach are overall similar and take less time and economic cost than the point-by-point repair approach. However, when the seismic intensity is low, the point-by-point repair approach is most efficient and has the shortest recovery time. Therefore, the choice of repair approach should be determined by stakeholders based on the specific pipeline's damage situation. Finally, we calculated the joint resilience curves by allocating different weight factors to GNS and WNS, to represent the proportion of water and gas supply that contributes to community resilience.
C1 [Bi, Xirong] 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.
   [Wu, Jingxian] Univ Shanghai Sci & Technol, Business Sch, Dept Transportat Engn, Shanghai 200093, Peoples R China.
   [Sun, Cheng] Guangxi Univ Nationalities, Coll Civil Engn & Architecture, Nanning 530006, Peoples R China.
   [Ji, Kun] Hohai Univ, Coll Civil & Transportat Engn, Nanjing 211124, Peoples R China.
C3 China Earthquake Administration; Institute of Engineering Mechanics,
   CEA; University of Shanghai for Science & Technology; Guangxi Minzu
   University; Hohai University
RP Ji, K (corresponding author), Hohai Univ, Coll Civil & Transportat Engn, Nanjing 211124, Peoples R China.
EM bixirong2017@163.com; wujingxian321@gmail.com; suncheng007@126.com;
   jikun@iem.ac.cn
RI Kun, Ji/HTO-2889-2023
OI Kun, Ji/0000-0003-0314-5216
FU Scientific Research Fund of Institute of Engineering Mechanics, China
   Earthquake Administration [2020D23]; Science Foundation of the Institute
   of Engineering Mechanics, CEA [2019B09]; Heilongjiang Provincial Natural
   Science Foundation of China [LH2020E022]; Preferential funding for
   returned overseas Chinese Scholars in Heilongjiang; University of
   Guangxi young and middle-aged teachers scientific research basic ability
   improvement project [2022KY0155]; Shandong Co-innovation Center for
   Disaster Prevention and Mitigation of Civil Structures [xtz201901]
FX This research was funded by Scientific Research Fund of Institute of
   Engineering Mechanics, China Earthquake Administration, Grant Number.
   2020D23; Science Foundation of the Institute of Engineering Mechanics,
   CEA, Grant Number. 2019B09; Heilongjiang Provincial Natural Science
   Foundation of China, Grant Number. LH2020E022; Preferential funding for
   returned overseas Chinese Scholars in Heilongjiang; and University of
   Guangxi young and middle-aged teachers scientific research basic ability
   improvement project, Grant Number. 2022KY0155. Shandong Co-innovation
   Center for Disaster Prevention and Mitigation of Civil Structures. Grant
   Number. xtz201901.
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NR 32
TC 4
Z9 4
U1 8
U2 55
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 6
AR 3344
DI 10.3390/su14063344
PG 15
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 0A9QV
UT WOS:000774281400001
OA gold
DA 2025-04-22
ER

PT J
AU Zhang, SY
   Yuan, C
   Chen, TH
   Ma, BN
   Liu, NX
AF Zhang, Shuyang
   Yuan, Chao
   Chen, Taihan
   Ma, Beini
   Liu, Nianxiong
TI A cross-scale indicator framework for the study of annual stability of
   land surface temperature in different land uses
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Land surface temperature; Annual LST stability; Sustainability; Urban
   climate resilience design; Land use; Cross-scale
ID URBAN HEAT-ISLAND; THERMAL COMFORT; TREES; AREAS; MODEL; INDEX; ZONES;
   CYCLE
AB Urban Land Surface Temperature (LST) is crucial in surface urban heat island (SUHI) and microclimate studies. Currently, research has focused on seasonal LST differences across land uses, but annual LST fluctuations (Delta LST) within the same land use and their drivers remain underexplored. To explore the impact of land characteristics and urban elements on seasonal LST differences, we propose annual LST stability. We constructed a new indicator framework based on Land Use and Land Cover (LULC), supplemented by Land Morphology (LM) and Land Properties (LP), for cross-scale Delta LST research. We identified land use ratios and key characteristics of urban plots with high stability. The results show an interactive effect of the green land ratio to other land on Delta LST. For residential and office land, the green space ratio (GSR) is key to annual LST stability. Residential land needs a GSR of more than 24 %. The floor area ratio (FAR) for residential and office land has a significant nonlinear effect on annual LST stability, with FARs of 1.8 for residential land and 1.5 for office land being most detrimental to the LST stability. For practical implications, we conducted cluster analyses on residential, office, and green lands, providing strategies to improve stability. These conclusions help balance land economic benefits with urban climate resilience and guide urban planning and design to address the challenges of heat and cold waves.
C1 [Zhang, Shuyang; Ma, Beini; Liu, Nianxiong] Tsinghua Univ, Sch Architecture, Room 207, Beijing 100084, Peoples R China.
   [Zhang, Shuyang; Yuan, Chao; Chen, Taihan] Natl Univ Singapore, Dept Architecture, Singapore, Singapore.
   [Liu, Nianxiong] Tsinghua Univ, Key Lab Eco Planning & Green Bldg, Minist Educ, Beijing, Peoples R China.
   [Yuan, Chao] Natl Univ Singapore, NUS Cities, Singapore, Singapore.
   [Zhang, Shuyang] Xiamen Univ, Fujian Prov Univ Key Lab Intelligent & Low carbon, Xiamen, Peoples R China.
C3 Tsinghua University; National University of Singapore; Tsinghua
   University; National University of Singapore; Xiamen University
RP Liu, NX (corresponding author), Tsinghua Univ, Sch Architecture, Room 207, Beijing 100084, Peoples R China.
EM zhangshu20@mails.tsinghua.edu.cn; phlnx@tsinghua.edu.cn
RI YUAN, Chao/AAX-2623-2021
OI Zhang, Shuyang/0000-0002-3677-1363
FU National Key R & D Program of China [2022YFC3803801, 2022YFC3803800];
   China Scholarship Council [202306210331]; Beijing Natural Science
   Foundation [8232030]; Postdoctoral Fellowship Program of CPSF
   [GZB20230733]; National Natural Science Foundation of China [52130803]
FX This work was funded by the National Key R & D Program of China
   [2022YFC3803801 in 2022YFC3803800] , the China Scholarship Council
   [grant No. 202306210331] , Beijing Natural Science Foundation [grant
   No.8232030] , the Postdoctoral Fellowship Program of CPSF [grant No.
   GZB20230733] , and the National Natural Science Foundation of China
   [grant No. 52130803] .
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NR 127
TC 2
Z9 2
U1 32
U2 32
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 1
PY 2024
VL 116
AR 105936
DI 10.1016/j.scs.2024.105936
EA OCT 2024
PG 22
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 L1N0A
UT WOS:001348445700001
DA 2025-04-22
ER

PT J
AU Tansar, H
   Duan, HF
   Mark, O
AF Tansar, Husnain
   Duan, Huan-Feng
   Mark, Ole
TI A multi-objective decision-making framework for implementing green-grey
   infrastructures to enhance urban drainage system resilience
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Green -grey infrastructures; Flood damage reduction; Resilience;
   Optimization; Decision -making
ID LOW IMPACT DEVELOPMENT; WATER MANAGEMENT; OPTIMIZATION; DESIGN; SAFE;
   TANK
AB Green-grey infrastructures implementation for addressing urban flood damages and urban drainage system' (UDS) resilience (respectively) needs comprehensive evaluation under various planning and design influencing factors. In this paper, a multi-objective decision-making framework is developed for the optimization of greengrey infrastructures to understand the trade-off between benefits and retrofit costs under various design configurations, rainfall intensities, and system performance indicators. In the developed framework, the grey infrastructure locations are optimally determined by using Analytic Hierarchy Process (AHP) method with three defined indicators (e.g., flood volume and flood duration of flooding nodes, sensitivity of flooding nodes) and maximum percentage of each type of green infrastructure (GI) in each sub-catchment based on land-use analysis as a preliminary step of the multi-objective optimization process, followed by decision-making procedure. The application results reveal that optimal designs of grey infrastructure are more cost-effective and may have a significant influence on the reduction of flood damages and outlet peak flow compared to GI from their individual evaluations, while GI improves UDS' functionality performance indicators (e.g., resilience, reliability, and sustainability) better than grey infrastructure. However, a combined implementation of both infrastructures boosts their advantages because of the synchronization effect compared to individual scenarios, providing the most cost-effective optimal UDS designs. Moreover, the cost-effectiveness of coupled green-grey infrastructures designs could be enhanced from lower to higher design storms because of higher rate of utilization of stormwater infiltration and storage capacities of both infrastructures. The framework presented in this study can be conveniently generalized to other case-studies for optimal implementation of green-grey infrastructures as long as including their local economic parameters, climatic patterns, urban development plans and green-grey infrastructures design guidelines.
C1 [Tansar, Husnain; Duan, Huan-Feng] Hong Kong Polytech Univ, Dept Civil & Environm Engn, Hung Hom, Kowloon, Hong Kong 999077, Peoples R China.
   [Duan, Huan-Feng] Hong Kong Polytech Univ, Res Inst Land & Space RILS, Hung Hom, Kowloon, Hong Kong 999077, Peoples R China.
   [Mark, Ole] Kruger AS, Innovat Urban Drainage, Gladsaxevej 363, Soborg, Denmark.
C3 Hong Kong Polytechnic University; Hong Kong Polytechnic University
RP Duan, HF (corresponding author), Hong Kong Polytech Univ, Dept Civil & Environm Engn, Hung Hom, Kowloon, Hong Kong 999077, Peoples R China.
EM hf.duan@polyu.edu.hk
RI Tansar, Husnain/IYJ-1712-2023; Duan, H.F./A-1369-2014
OI Duan, H.F./0000-0002-9200-904X; Mark, Ole/0000-0002-7218-3606; TANSAR,
   HUSNAIN/0000-0001-6817-8436
FU Hong Kong Polytechnic University [4-ZZNF, 1-ZVWM]
FX Acknowledgments This work was partially supported by the research
   projects from the Hong Kong Polytechnic University (4-ZZNF and 1-ZVWM) .
   The authors are thankful to Computational Hydraulics International (CHI)
   for providing the license of PCSWMM to conduct this research. We also
   appreciate comments and suggestions given by anonymous reviewers for the
   improvement of this manuscript.
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NR 57
TC 41
Z9 42
U1 37
U2 144
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 2023
VL 620
AR 129381
DI 10.1016/j.jhydrol.2023.129381
EA MAR 2023
PN A
PG 13
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA H1KC0
UT WOS:000993610200001
DA 2025-04-22
ER

PT J
AU Wang, SS
   Palazzo, E
AF Wang, Sisi
   Palazzo, Elisa
TI Sponge City and social equity: Impact assessment of urban stormwater
   management in Baicheng City, China
SO URBAN CLIMATE
LA English
DT Article
DE Social equity; Sponge City; Multi-criteria approach; Indicators
   assessment; Stormwater management; China
ID ENVIRONMENTAL JUSTICE; WATER; CONSTRUCTION; CITIES; SYSTEM; INDEX
AB Cities around the world vulnerable to floods have developed new approaches to urban stormwater management with the aim to increase urban resilience. However, flood risk responses often overlook a broader concept of "resilience" able to address environmental equity issues, including the recognition and participation of communities in urban planning processes.
   To bridge the gap, this research aims at increasing understanding about the social effects produced by stormwater management projects by assessing how Sponge City programs in China perform from a social equity perspective. Building on a tripartite framework which includes the equitable access to services and opportunities, the acknowledgement of minorities and vulnerable groups and the equitable participation in decision-making processes (distributional, recognitional, and procedural equity), this paper develops an assessment methodology and related indicators that are customized to the Sponge City program. This tripartite framework adapted to the Chinese context also suggests a roadmap for achieving social equity objectives in future urban development initiatives.
   The results show that the Sponge City program in Baicheng has enhanced distributional equity significantly. However, recognitional equity and procedural equity still need to be improved, and mechanisms to support public participation enhanced.
C1 [Wang, Sisi] Beijing Univ Civil Engn & Architecture, Key Lab Urban Stormwater Syst & Water Environm, Minist Educ, 1 Zhanlanguan Rd, Beijing 100044, Peoples R China.
   [Palazzo, Elisa] UNSW Sydney, Sch Built Environm, Sydney, NSW 2052, Australia.
C3 Beijing University of Civil Engineering & Architecture; University of
   New South Wales Sydney
RP Wang, SS (corresponding author), Beijing Univ Civil Engn & Architecture, Key Lab Urban Stormwater Syst & Water Environm, Minist Educ, 1 Zhanlanguan Rd, Beijing 100044, Peoples R China.
EM wangsisi@bucea.edu.cn; elisa.palazzo@unsw.edu.au
RI palazzo, elisa/AAM-5061-2020
OI Wang, Sisi/0000-0002-4193-3179; palazzo, elisa/0000-0001-6189-8692
FU National Natural Science Foundation of China [31870704]; UNSW Sydney
   School of Built Environment
FX This work was funded by the National Natural Science Foundation of China
   [grant number 31870704] and supported by UNSW Sydney School of Built
   Environment.
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NR 47
TC 39
Z9 42
U1 11
U2 92
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD MAY
PY 2021
VL 37
AR 100829
DI 10.1016/j.uclim.2021.100829
EA APR 2021
PG 13
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA SU8FR
UT WOS:000663367100008
DA 2025-04-22
ER

PT J
AU House-Peters, LA
   Chang, H
AF House-Peters, Lily A.
   Chang, Heejun
TI Urban water demand modeling: Review of concepts, methods, and organizing
   principles
SO WATER RESOURCES RESEARCH
LA English
DT Article
ID AGENT-BASED MODEL; COUPLED HUMAN; RESOURCE-MANAGEMENT; RESIDENTIAL
   DEMAND; SCALE MISMATCHES; PRICE ELASTICITY; NEURAL-NETWORKS;
   CLIMATE-CHANGE; LAND-USE; CONSUMPTION
AB In this paper, we use a theoretical framework of coupled human and natural systems to review the methodological advances in urban water demand modeling over the past 3 decades. The goal of this review is to quantify the capacity of increasingly complex modeling techniques to account for complex human and natural processes, uncertainty, and resilience across spatial and temporal scales. This review begins with coupled human and natural systems theory and situates urban water demand within this framework. The second section reviews urban water demand literature and summarizes methodological advances in relation to four central themes: (1) interactions within and across multiple spatial and temporal scales, (2) acknowledgment and quantification of uncertainty, (3) identification of thresholds, nonlinear system response, and the consequences for resilience, and (4) the transition from simple statistical modeling to fully integrated dynamic modeling. This review will show that increasingly effective models have resulted from technological advances in spatial science and innovations in statistical methods. These models provide unbiased, accurate estimates of the determinants of urban water demand at increasingly fine spatial and temporal resolution. Dynamic models capable of incorporating alternative future scenarios and local stochastic analysis are leading a trend away from deterministic prediction.
C1 [House-Peters, Lily A.; Chang, Heejun] Portland State Univ, Dept Geog, Portland, OR 97207 USA.
C3 Portland State University
RP House-Peters, LA (corresponding author), Portland State Univ, Dept Geog, POB 751, Portland, OR 97207 USA.
EM lilleehp@gmail.com; changh@pdx.edu
RI Chang, Heejun/AGF-1404-2022
OI House-Peters, Lily/0000-0002-9136-5325
FU Climate Program Office of the U.S. Department of Commerce, NOAA
   [NA09OAR4310140]; National Science Foundation [1015610]; James F. and
   Marion L. Miller Foundation; Division Of Environmental Biology; Direct
   For Biological Sciences [1010495] Funding Source: National Science
   Foundation; Office Of The Director; Office Of Internatl Science
   &Engineering [1015610] Funding Source: National Science Foundation
FX Financial assistance for this Sector Applications Research Program
   (SARP) project was provided by the Climate Program Office of the U.S.
   Department of Commerce, NOAA, pursuant to NOAA award NA09OAR4310140.
   Additional financial support was provided by the National Science
   Foundation under grant 1015610 and the James F. and Marion L. Miller
   Foundation sustainability grant. The statements, findings, conclusions,
   and recommendations expressed in this material are those of the research
   team and do not necessarily reflect the views of NOAA, the U. S.
   Department of Commerce, the National Science Foundation, or the U. S.
   government. The authors acknowledge constructive comments and
   suggestions from three anonymous reviewers and the editors that helped
   improve an earlier version of this manuscript. Lorna Stickel and Hossein
   Parandvash of the Portland Water Bureau also provided insightful
   comments on a revised version of the manuscript.
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NR 126
TC 298
Z9 350
U1 2
U2 176
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 MAY 28
PY 2011
VL 47
AR W05401
DI 10.1029/2010WR009624
PG 15
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 770TJ
UT WOS:000291111100008
OA Bronze
DA 2025-04-22
ER

PT J
AU Egerer, M
   Fouch, N
   Anderson, EC
   Clarke, M
AF Egerer, Monika
   Fouch, Nakisha
   Anderson, Elsa C.
   Clarke, Mysha
TI Socio-ecological connectivity differs in magnitude and direction across
   urban landscapes
SO SCIENTIFIC REPORTS
LA English
DT Article
ID ECOSYSTEM SERVICES; COMMUNITY GARDENS; NEW-YORK; BIODIVERSITY
   CONSERVATION; NEIGHBORHOOD STABILITY; SPATIAL HETEROGENEITY; GREEN
   INFRASTRUCTURE; SOCIOECONOMIC-STATUS; ECOLOGICAL-SYSTEMS; POLITICAL
   ECOLOGY
AB Connectivity of social-ecological systems promotes resilience across urban landscapes. Community gardens are social-ecological systems that support food production, social interactions, and biodiversity conservation. We investigate how these hubs of ecosystem services facilitate socio-ecological connectivity and service flows as a network across complex urban landscapes. In three US cities (Baltimore, Chicago, New York City), we use community garden networks as a model system to demonstrate how biophysical and social features of urban landscapes control the pattern and magnitude of ecosystem service flows through these systems. We show that community gardens within a city are connected through biological and social mechanisms, and connectivity levels and spatial arrangement differ across cities. We found that biophysical connectivity was higher than social connectivity in one case study, while they were nearly equal in the other two. This higher social connectivity can be attributed to clustered distributions of gardens within neighborhoods (network modularity), which promotes neighborhood-scale connectivity hotspots, but produces landscape-scale connectivity coldspots. The particular patterns illustrate how urban form and social amenities largely shape ecosystem service flows among garden networks. Such socio-ecological analyses can be applied to enhance and stabilize landscape connectedness to improve life and resilience in cities.
C1 [Egerer, Monika] Univ Calif Santa Cruz, Dept Environm Studies, Santa Cruz, CA 95064 USA.
   [Egerer, Monika] Tech Univ Berlin, Dept Ecol Ecosyst Sci Plant Ecol, Rothenburgstr 12, D-12165 Berlin, Germany.
   [Fouch, Nakisha] Clemson Univ, Dept Wildlife & Fisheries Biol, Clemson, SC USA.
   [Anderson, Elsa C.] Univ Illinois, Dept Biol Sci, Chicago, IL 60680 USA.
   [Anderson, Elsa C.] Cary Inst Ecosyst Studies, Millbrook, NY USA.
   [Clarke, Mysha] Villanova Univ, Dept Geog & Environm, Villanova, PA 19085 USA.
   [Clarke, Mysha] Univ Florida, Sch Forest Resources & Conservat, Gainesville, FL 32611 USA.
C3 University of California System; University of California Santa Cruz;
   Technical University of Berlin; Clemson University; University of
   Illinois System; University of Illinois Chicago; University of Illinois
   Chicago Hospital; Cary Institute of Ecosystem Studies; Villanova
   University; State University System of Florida; University of Florida
RP Egerer, M (corresponding author), Univ Calif Santa Cruz, Dept Environm Studies, Santa Cruz, CA 95064 USA.; Egerer, M (corresponding author), Tech Univ Berlin, Dept Ecol Ecosyst Sci Plant Ecol, Rothenburgstr 12, D-12165 Berlin, Germany.
EM monika.egerer@tu-berlin.de
RI Egerer, Monika/AAV-6902-2021
OI Clarke, Mysha/0000-0003-2185-3769; Fouch, Nakisha/0000-0001-5456-9161
FU National Socio-Environmental Synthesis Center (SESYNC); National Science
   Foundation [DBI-1052875]
FX This work was supported by the National Socio-Environmental Synthesis
   Center (SESYNC) under funding received from the National Science
   Foundation DBI-1052875. Special thanks to NYC's Green Thumb, Chicago's
   NeighborSpace and Baltimore Green Space for sharing data sets and
   imparting insight into our analysis. The analysis was facilitated by the
   analytical support of the Clemson University supercomputer ("Palmetto
   Cluster"). We thank Melissa Davidson, Morgan Grove, Paul Leonard, Dexter
   Locke, and Benoit Parmentier for feedback that significantly improved
   the analysis and manuscript. We thank two reviewers and journal Editor
   for providing helpful comments on the paper.
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NR 137
TC 35
Z9 36
U1 10
U2 115
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD MAR 6
PY 2020
VL 10
IS 1
AR 4252
DI 10.1038/s41598-020-61230-9
PG 16
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics
GA NA8XO
UT WOS:000560102000020
PM 32144391
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Dai, LP
   van Rijswick, HFMW
   Driessen, PPJ
   Keessen, AM
AF Dai, Liping
   van Rijswick, Helena F. M. W.
   Driessen, Peter P. J.
   Keessen, Andrea M.
TI Governance of the Sponge City Programme in China with Wuhan as a case
   study
SO INTERNATIONAL JOURNAL OF WATER RESOURCES DEVELOPMENT
LA English
DT Article
DE Governance; Sponge City Programme; urban flooding; China; adaptation;
   climate change
ID CLIMATE-CHANGE; PUBLIC-PARTICIPATION; IMPACT ASSESSMENT
AB In 2015, China's national government initiated a Sponge City Programme to address its urban flood issues. A sponge city is a city built around the concept of managing water in an ecologically sustainable way. The intention is to improve urban resilience through rainwater capture, storage and use. This article applies a four-mode governance framework to analyze the programme. It identifies the strengths and weaknesses of the programme implementation and provides recommendations.
C1 [Dai, Liping] Hubei Univ Econ, Sch Law, Wuhan, Hubei, Peoples R China.
   [Dai, Liping; van Rijswick, Helena F. M. W.; Keessen, Andrea M.] Univ Utrecht, Utrecht Ctr Water Oceans & Sustainabil Law, Fac Law, Econ & Governance, Utrecht, Netherlands.
   [Driessen, Peter P. J.] Univ Utrecht, Copernicus Inst Sustainable Dev, Fac Geosci, Utrecht, Netherlands.
C3 Hubei University of Economics; Utrecht University; Utrecht University
RP Dai, LP (corresponding author), Hubei Univ Econ, Sch Law, Wuhan, Hubei, Peoples R China.; Dai, LP (corresponding author), Univ Utrecht, Utrecht Ctr Water Oceans & Sustainabil Law, Fac Law, Econ & Governance, Utrecht, Netherlands.
EM l.dai@uu.nl
RI Dai, Liping/E-6089-2013; Driessen, Peter/M-6751-2013
OI Driessen, Peter/0000-0002-0724-6666; van Rijswick,
   Helena/0000-0002-0492-1718
FU Koninklijke Nederlandse Akademie Van Wetenschappen of the China Exchange
   Programme [530-6CDI01]; Future Deltas of Utrecht University, under WBS
   [WA.147101.2.707]
FX This work was supported by the Koninklijke Nederlandse Akademie Van
   Wetenschappen (Royal Netherlands Academy of Arts and Sciences) [grant
   number 530-6CDI01] of the China Exchange Programme; Future Deltas of
   Utrecht University, under WBS no. WA.147101.2.707, and Institutions-Seed
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NR 67
TC 78
Z9 83
U1 16
U2 146
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0790-0627
EI 1360-0648
J9 INT J WATER RESOUR D
JI Int. J. Water Resour. Dev.
PY 2018
VL 34
IS 4
SI SI
BP 578
EP 596
DI 10.1080/07900627.2017.1373637
PG 19
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Water Resources
GA GI4IG
UT WOS:000434334100009
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Zhang, SY
   Yuan, C
   Ma, BN
   Liu, NX
   Li, WW
AF Zhang, Shuyang
   Yuan, Chao
   Ma, Beini
   Liu, Nianxiong
   Li, Wenwen
TI Coupling effects of building-vegetation-land on seasonal land surface
   temperature on street-level: A study from a campus in Beijing
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Seasonal LST; Land surface temperature; Street spatial type; Urban
   climate resilience; Climate change adaptation
ID URBAN MORPHOLOGY; AIR-TEMPERATURE; VIEW-FACTORS; SKY; TRANSFORMATION;
   VARIABILITY; MORTALITY; RUNOFF; CYCLE
AB The land surface temperature (LST) of urban streets is significantly influenced by the surrounding urban environment. In the cold areas of northern China, this influence exhibits a seasonal pattern. Currently, in areas with noticeable seasonal variations, the coupling effects of urban elements on the annual stability of street LST remain unclear. This study developed a new metric, Normalized Winter-Summer Land Surface Temperature Difference, to measure the year-round LST stability of campus streets. Three key urban elements affecting street-level LST in winter and summer were identified: building, vegetation, and land. The influencing characteristics for winter and summer LST were quantified and ranked respectively. The study reveals that the green space ratio dominates summer LST, while fraction vegetation coverage, leaf area index and average building height dominate winter LST. We found that morphological characteristics of buildings and vegetation cannot fully explain the impact of the urban physical environment on street-level LST. For winter street LST studies, greater emphasis should be placed on non-morphological characteristics and land. Based on the impact mechanisms and critical thresholds of key features in winter and summer, this study establishes an interpretable spatial classification method. By assigning seasonal weights to influencing features, it provides comprehensive design strategies that consider both winter and summer features to enhance annual LST stability and climate resilience in urban spaces facing extreme meteorological conditions.
C1 [Zhang, Shuyang; Ma, Beini; Liu, Nianxiong; Li, Wenwen] Tsinghua Univ, Sch Architecture, Room 207, Beijing 100084, Peoples R China.
   [Zhang, Shuyang; Yuan, Chao] Natl Univ Singapore, Dept Architecture, Singapore, Singapore.
   [Liu, Nianxiong] Tsinghua Univ, Key Lab Eco Planning & Green Bldg, Minist Educ, Beijing, Peoples R China.
   [Yuan, Chao] Natl Univ Singapore, NUS Cities, Singapore, Singapore.
C3 Tsinghua University; National University of Singapore; Tsinghua
   University; National University of Singapore
RP Liu, NX (corresponding author), Tsinghua Univ, Sch Architecture, Room 207, Beijing 100084, Peoples R China.
EM phlnx@tsinghua.edu.cn
RI YUAN, Chao/AAX-2623-2021; Li, Wenwen/I-8671-2016
OI Zhang, Shuyang/0000-0002-3677-1363
FU National Key R & D Program of China [2022YFC3803801, 2022YFC3803800];
   China Scholarship Council [202306210331]; Postdoctoral Fellowship
   Program of CPSF [GZB20230733]; National Natural Science Foundation of
   China [52130803]
FX This work was funded by the National Key R & D Program of China
   [2022YFC3803801 in 2022YFC3803800], the China Scholarship Council [grant
   No. 202306210331], the Postdoctoral Fellowship Program of CPSF [grant
   No. GZB20230733], and the National Natural Science Foundation of China
   [grant No. 52130803].
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NR 102
TC 7
Z9 7
U1 20
U2 29
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 15
PY 2024
VL 262
AR 111790
DI 10.1016/j.buildenv.2024.111790
EA JUL 2024
PG 19
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA YA1K7
UT WOS:001265671000001
DA 2025-04-22
ER

PT J
AU Liddle, S
   Russo, A
AF Liddle, Sasha
   Russo, Alessio
TI Beyond stormwater management: Exploring the social aspects of
   retrofitting raingardens for deprivation alleviation in Gloucestershire,
   UK
SO LAND USE POLICY
LA English
DT Article
DE SuDS; Raingardens; Urban deprivation; Bioretention; Quality of life;
   Amenity value
ID SUSTAINABLE DRAINAGE; CLIMATE-CHANGE; PUBLIC-HEALTH; URBAN; PRINCIPLES;
   RESILIENCE; SYSTEMS; CITIES; CITY
AB In the face of climate change, Sustainable Urban Drainage Systems (SuDS) emerge as key components of urban resilience. These systems offer a multifunctional and holistic approach, aiming to address both environmental and socioeconomic priorities concurrently. While the environmental benefits are clear, the impact of SuDS on socioeconomic disparities is a nascent area of inquiry. This paper aims to address this gap by evaluating the extent to which raingarden (bioretention) retrofit - as a flexible SuDS solution - may alleviate areas of urban deprivation through the host of amenity benefits they afford. Thematic and statistical analysis of survey data completed by residents of Gloucestershire reveals that the dual benefits of enhanced neighbourhood aesthetics combined with flood risk mitigation is most valued. Although there is limited scope to address physical health and crime deprivation, the perceived benefit to wellbeing through the mitigation of anxieties relating to flood risk is poignant. Matters of maintenance and distrust in the systems and authorities responsible for their upkeep are the most apparent obstacle to support for raingardens which must be addressed for the success of retrofit projects.
C1 [Liddle, Sasha] Univ Gloucestershire, Sch Arts, Cheltenham, England.
   [Russo, Alessio] Queensland Univ Technol, Fac Engn, Sch Architecture & Built Environm, Brisbane, Australia.
C3 University of Gloucestershire; Queensland University of Technology (QUT)
RP Russo, A (corresponding author), Queensland Univ Technol, Fac Engn, Sch Architecture & Built Environm, Brisbane, Australia.
EM alessio.russo@qut.edu.au
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NR 84
TC 0
Z9 0
U1 2
U2 2
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 APR
PY 2025
VL 151
AR 107489
DI 10.1016/j.landusepol.2025.107489
EA JAN 2025
PG 12
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA W8X5A
UT WOS:001421331500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Whitman, B
   Iannone, BV 
   Kruse, JK
   Unruh, JB
   Dale, AG
AF Whitman, Brianna
   Iannone, Basil V., III
   Kruse, Jason K.
   Unruh, J. Bryan
   Dale, Adam G.
TI Cultivar blends: A strategy for creating more resilient warm season
   turfgrass lawns
SO URBAN ECOSYSTEMS
LA English
DT Article
DE Resilience; Biotic resistance; Intraspecific diversity; Sustainable
   landscaping; Urban ecology; Integrated pest management
ID PLANT GENOTYPIC DIVERSITY; CHINCH BUG HEMIPTERA; BENEFICIAL
   INVERTEBRATES; ASSOCIATIONAL RESISTANCE; VEGETATIONAL DIVERSITY;
   PEST-MANAGEMENT; URBAN LAWNS; PESTICIDE; COMMUNITIES; PERFORMANCE
AB Turfgrass lawns are synonymous with plant selection in the built environment. Plants in urban landscapes are largely selected to enhance aesthetic quality and comply with social norms. Warm season turfgrasses are produced and planted as intraspecific cultivar monocultures to preserve heritable traits that meet aesthetic standards. Monocultures are less resilient to biotic and abiotic stress than more diverse plantings, which increases reliance on pesticides and resource-intensive maintenance and presents unintended environmental risks. Increasing interspecific plant diversity may provide the greatest resilience benefits, but it introduces production, maintenance, and marketing barriers that can inhibit industry and consumer acceptance. Intraspecific cultivar blends may provide plant diversity resilience benefits without compromising industry and consumer values. Using a four-year field experiment we determined the effects of mixing warm season turfgrass cultivars on lawn resilience and aesthetic quality. We find that mixing turfgrass cultivars increases quality compared to cultivar monocultures, but primarily when a poorly performing cultivar is present. Mixtures of four cultivars containing the poorly performing cultivar averaged 42% greater plant cover and 33% greater aesthetic quality than monocultures of that cultivar, indicating that the other cultivars compensated for the loss of one from the stand. Three years after planting, perceived aesthetic quality of lawns by turfgrass industry professionals was above the minimum aesthetic threshold only for plots containing blends of four cultivars. Thus, our results suggest that mixing warm season turfgrass cultivars extends the longevity of turfgrass coverage and quality compared to conventional cultivar monocultures. Such benefits can reduce monetary, natural resource, and pesticide inputs without conflicting with social aesthetic norms and may be a ready-made approach to more sustainable lawns in urban greenspaces.
C1 [Whitman, Brianna; Dale, Adam G.] Univ Florida, Dept Entomol & Nematol, Gainesville, FL 32611 USA.
   [Iannone, Basil V., III] Univ Florida, Sch Forest Fisheries & Geomat Sci, Gainesville, FL USA.
   [Kruse, Jason K.] Univ Florida, Dept Environm Hort, Gainesville, FL 32611 USA.
   [Unruh, J. Bryan] Univ Florida, Dept Environm Hort, West Florida Res & Educ Ctr, Jay, FL 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; State University System of
   Florida; University of Florida
RP Dale, AG (corresponding author), Univ Florida, Dept Entomol & Nematol, Gainesville, FL 32611 USA.
EM bwhitman@ufl.edu; jkk@ufl.edu; jbu@ufl.edu; agdale@ufl.edu
OI Kruse, Jason/0000-0002-7383-9224; Iannone, Basil/0000-0002-2477-7573
FU Florida Nursery Growers and Landscape Association; University of Florida
   IFAS Experiment Station; USDA-NIFA [2018-70006-28931]
FX This work was funded by grants from the Florida Nursery Growers and
   Landscape Association to AGD and JKK, the University of Florida IFAS
   Experiment Station to AGD and BVI, and USDA-NIFA award 2018-70006-28931
   to AGD, BVI, and JBU.
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NR 76
TC 8
Z9 10
U1 0
U2 16
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 JUN
PY 2022
VL 25
IS 3
BP 797
EP 810
DI 10.1007/s11252-021-01195-3
EA JAN 2022
PG 14
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA 1F4SG
UT WOS:000741965300001
DA 2025-04-22
ER

PT J
AU McMillen, H
   Campbell, LK
   Svendsen, ES
AF McMillen, Heather
   Campbell, Lindsay K.
   Svendsen, Erika S.
TI Weighing values and risks of beloved invasive species: The case of the
   survivor tree and conflict management in urban green infrastructure
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Invasive trees; Living memorial; Callery pear; Pyrus calleryana Decne;
   Resilience; Urban social-ecological system
ID ORNAMENTAL CALLERY PEAR; BIOCULTURAL DIVERSITY; ECOSYSTEM SERVICES;
   BIOLOGICAL INVASIONS; LIVING MEMORIALS; ALIEN; PLANT; PERCEPTIONS;
   BENEFITS; DEBATE
AB A critical aspect of urban green infrastructure management hinges on the treatment of native and invasive species. Invasive species are widely seen as a major threat, yet the context-specific values people have for some of these species pose challenges for their management. Here, we offer a case study of the 9/11 survivor tree, a Gallery pear (Pyres calleryana Decne.) that survived the terrorist attack on September 11, 2001 at the World Trade Center in New York City and has since become a symbol of resilience. That individual tree and its progeny are beloved and they are also characterized as invasive. As part of the longitudinal research of the US Forest Service Living Memorials Project, we report findings from semi-structured interviews conducted with eight stewards from six living memorial sites that have survivor trees and with five individuals who have expert knowledge of the survivor tree, its propagation and dissemination. We find that some people see the tree primarily as a heroic symbol of hope and resilience, others see it primarily a threat to personal property, safety, and to biodiversity, which overshadow its social value. We conclude that Gallery pears are associated with multiple, conflicting values, having the power to both unite and divide around issues of recovery and resilience in social and ecological spheres. Whereas managers and policy makers tend to have absolute views of invasive species as negative, living memorial stewards and others affected by tragedies have personal relationships that significantly influence their attitudes and practices toward a line of Gallery pears. We conclude that urban green infrastructure management might best be seen as a highly contingent and value-driven practice, and that understanding these social meanings may lead to better stewardship of the whole social-ecological system.
C1 [McMillen, Heather; Campbell, Lindsay K.; Svendsen, Erika S.] US Forest Serv, USDA, Northern Res Stn, 431 Walter Reed Rd, Bayside, NY 11359 USA.
   [McMillen, Heather] State Hawaii Dept Land & Nat Resources, Div Forestry & Wildlife, Urban & Community Forestry Program, 1151 Punchbowl St 325, Honolulu, HI 96813 USA.
C3 United States Department of Agriculture (USDA); United States Forest
   Service
RP McMillen, H (corresponding author), US Forest Serv, USDA, Northern Res Stn, 431 Walter Reed Rd, Bayside, NY 11359 USA.
EM heather.l.mcmillen@hawaii.gov
OI McMillen, Heather/0000-0002-5835-8879; Campbell,
   Lindsay/0000-0002-7065-8997
FU NRS of the USFS
FX The NRS of the USFS supported this work. We thank those who participated
   in the research and graciously shared their experiences and insights. We
   also thank those who advanced our thinking through discussions and
   reviews of the paper, especially Theresa Culley, Keith Nislow, and two
   anonymous reviewers. Thank you to Sheila Harrington for the generous use
   of her illustration. The findings in this study reflect the analysis and
   sole opinions of the writers, and do not reflect the institutional
   perspectives of the National September 11 Memorial & Museum.
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NR 59
TC 8
Z9 9
U1 1
U2 53
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD APR
PY 2019
VL 40
SI SI
BP 44
EP 52
DI 10.1016/j.ufug.2018.06.023
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 HX2ZR
UT WOS:000467261400006
DA 2025-04-22
ER

PT J
AU Zavar, EM
   Schumann, RL
AF Zavar, Elyse M.
   Schumann, Ronald L.
TI Post-disaster communalism: land use, ownership, and the shifting
   'publicness' of urban space in recovery
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Buyouts; disaster resilience; long-term recovery; public space; urban
   land use
ID VULNERABILITY; POLITICS; LANDSCAPE; PLACE
AB Disasters disrupt the functions and meanings of urban spaces, often prompting changes in their ownership, management, and use. This study examines two such disaster events: riverine flooding in Lexington, Kentucky, and Hurricane Katrina in coastal Mississippi. After each event, we observe the emergence of quasi-public spaces during long-term recovery, where residents generally perceive an increase in the 'publicness' of formerly exclusive spaces. This trend more closely mirrors public-private hybrid spaces discussed in urban geographic literature rather than strict privatisation as observed in most post-disaster studies. Terming this shift from private to greater public use post-disaster communalism, we employ data from open-ended surveys, photovoice, and resident interviews to describe the phenomenon. Using discourse analysis and grounded theory, we explore residents' perceptions of access and belonging in these quasi-public urban spaces. Findings show how different policy instruments (public buyouts versus insurance rate changes) contribute to similar land uses and perceptions of access. Building upon previous human geography research, we discuss five broad mechanisms that collectively generate communalism in our study sites. Finally, we consider the competing implications of post-disaster communalism for promoting both ideals of public space and of community resilience to future disasters.
C1 [Zavar, Elyse M.; Schumann, Ronald L.] Univ North Texas, Dept Emergency Management & Disaster Sci, 1155 Union Circle 310637, Denton, TX 76203 USA.
C3 University of North Texas System; University of North Texas Denton
RP Zavar, EM (corresponding author), Univ North Texas, Dept Emergency Management & Disaster Sci, 1155 Union Circle 310637, Denton, TX 76203 USA.
EM elyse.zavar@unt.edu
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NR 53
TC 6
Z9 7
U1 2
U2 31
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 AUG 7
PY 2020
VL 19
IS 4
BP 398
EP 416
DI 10.1080/17477891.2019.1690969
EA NOV 2019
PG 19
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA MN6GQ
UT WOS:000496310900001
DA 2025-04-22
ER

PT J
AU Kim, ES
   Yun, SH
   Kim, JY
   Thorne, JH
   Hyun, JH
   Lee, DK
AF Kim, Eun Sub
   Yun, Seok Hwan
   Kim, Ji Yeon
   Thorne, James H.
   Hyun, Jung Hee
   Lee, Dong Kun
TI Sequential action-based dynamic decision-support model for urban
   ecological planning
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Decision-making; Ecological resilience; NSGA-II; Restoration; Sequential
   planning; Sustainable development
ID CONNECTIVITY; RESILIENCE; MANAGEMENT; FRAMEWORK; RISK
AB Decision-makers often encounter the challenge of efficient long-term ecological planning to consider economic and environmental trade-offs. This challenge becomes particularly complex while addressing dynamic ecological responses to ongoing urban development. Thus, we developed a sequential action-based dynamic decision -making model to simulate sequential action mitigation measures over time, while considering the dynamic ecological responses that emerge with urban development. We used a multi-objective optimization algorithm to identify optimal plans that maximize landscape connectivity and edge density, while minimizing the imple-mentation costs per action. We focused on utilizing ecological corridors and habitat creation as mitigation measures from 1980s to 2010s. The results show that the initial low-investment strategy adopted in 1980s and sequential planning led to significantly improved ecological benefits beyond the 2000s when compared to the single-action planning approach implemented in 2010s. In contrast, an initial high-cost investment in the 1980s gradual declined the ecological benefits starting from 1995. We have demonstrated that adopting sequential planning provides valuable insights into effective urban ecological planning, especially when analyzing time -series data. This sequential approach enables decision-makers to make informed choices, thereby ultimately facilitating sustainable urban and regional planning.
C1 [Kim, Eun Sub; Yun, Seok Hwan; Kim, Ji Yeon; Lee, Dong Kun] Seoul Natl Univ, Interdisciplinary Program Landscape Architecture, Seoul 08826, South Korea.
   [Kim, Eun Sub; Yun, Seok Hwan; Kim, Ji Yeon] Seoul Natl Univ, Integrated Major Smart City Global Convergence Pro, Seoul 08826, South Korea.
   [Kim, Eun Sub; Kim, Ji Yeon] Seoul Natl Univ, Specialized Grad Sch Intelligent Ecosci, Dept Landscape Architecture 4, Seoul 08826, South Korea.
   [Kim, Ji Yeon] SK forest, Smart Green Solut Team, Seoul 03161, South Korea.
   [Thorne, James H.] Univ Calif Davis, Dept Environm Sci & Policy, One Shields Ave, Davis, CA 95616 USA.
   [Hyun, Jung Hee] Int Inst Appl Syst Anal, Syst Risk & Resilience Res Grp Adv Syst Anal, Laxenburg, Austria.
   [Lee, Dong Kun] Seoul Natl Univ, Dept Landscape Architecture & Rural Syst Engn, Seoul 08826, South Korea.
   [Lee, Dong Kun] Seoul Natl Univ, Dept Landscape Architecture & Rural Syst Engn, Interdisciplinary Program Landscape Architecture, Seoul 08826, South Korea.
C3 Seoul National University (SNU); Seoul National University (SNU); Seoul
   National University (SNU); SK Group; University of California System;
   University of California Davis; International Institute for Applied
   Systems Analysis (IIASA); Seoul National University (SNU); Seoul
   National University (SNU)
RP Lee, DK (corresponding author), Seoul Natl Univ, Dept Landscape Architecture & Rural Syst Engn, Interdisciplinary Program Landscape Architecture, Seoul 08826, South Korea.
OI Hyun, Jung Hee/0000-0001-6960-9277; Kim, Ji Yeon/0000-0003-4566-4794
FU Korea Environment Industry & Technology Institute (KEITI) through The
   Decision -Support System Development Project for Environmental Impact
   Assessment - Korea Ministry of Environment (MOE) [2021003360002]
FX This work was supported by a grant from the Korea Environment Industry &
   Technology Institute (KEITI) through The Decision -Support System
   Development Project for Environmental Impact Assessment funded by the
   Korea Ministry of Environment (MOE) [grant number 2021003360002] .
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NR 64
TC 1
Z9 1
U1 16
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 FEB
PY 2024
VL 101
AR 105092
DI 10.1016/j.scs.2023.105092
EA DEC 2023
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 EK3Q9
UT WOS:001138785100001
DA 2025-04-22
ER

PT J
AU Assarkhaniki, Z
   Rajabifard, A
   Sabri, S
AF Assarkhaniki, Zahra
   Rajabifard, Abbas
   Sabri, Soheil
TI The conceptualisation of resilience dimensions and comprehensive
   quantification of the associated indicators: A systematic approach
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Review
DE Sustainable development goals (SDGs); Resilience dimension; Quantitative
   measurement; Objective indicator
ID MEASURING FLOOD RESILIENCE; COMMUNITY RESILIENCE; URBAN RESILIENCE;
   CLIMATE-CHANGE; INTEGRATED ASSESSMENT; VULNERABILITY INDEX; COASTAL
   COMMUNITIES; FRAMEWORK; TOOL; HAZARDS
AB Sustainable Development Goals (SDGs) were adopted by the United Nations in 2015 as a framework comprising 231 indicators to assess the level of sustainable development in all countries. However, the framework is criticised for lacking an inclusive evaluation of resilience despite accepting it as a component of sustainability. Many resilience indicators have been proposed in the literature with the potential to be introduced in SDGs. Yet, the initial challenge is the lack of an agreement on resilience dimensions and a common framework of indicators to measure them. In this review, key resilience dimensions (KDs), as well as the related objective indicators, are defined through the review of the resilience literature, from 1970 to the present day. Here, 21 different resilience dimensions, along with the indicators to assess them, have been extracted. Conducting the framework analysis method, the indicators related to each dimension have been coded based on variables (that categorise indicators due to the measured features) and sub-domains (that classify variables in overall themes). Later, similarity matrices are developed to define the strength of the codes' co-occurrence among 21 dimensions. Consequently, five KDs were conceptualised social, economic, institutional, infrastructural, and environmental. The KDs have been later utilised as a context on which indicators to measure resilience have been formulated in a comprehensive framework. This framework, as well as resolving the disagreement on resilience dimensions and their proliferation, supports the refinement of future indicators and enhancement of resilience measurement in SDGs.
C1 [Assarkhaniki, Zahra] Univ Melbourne, Ctr Disaster Management & Publ Safety CDMPS, Ctr Spatial Data Infrastruct & Land Adm CSDILA, Melbourne Sch Engn MSE,Dept Infrastruct Engn, Melbourne, Vic 3010, Australia.
   [Rajabifard, Abbas; Sabri, Soheil] Univ Melbourne, Ctr Spatial Data Infrastruct & Land Adm CSDILA, Melbourne Sch Engn MSE, Dept Infrastruct Engn, Melbourne, Vic 3010, Australia.
C3 University of Melbourne; University of Melbourne
RP Assarkhaniki, Z (corresponding author), Univ Melbourne, Ctr Disaster Management & Publ Safety CDMPS, Ctr Spatial Data Infrastruct & Land Adm CSDILA, Melbourne Sch Engn MSE,Dept Infrastruct Engn, Melbourne, Vic 3010, Australia.
EM zassarkhanik@student.unimelb.edu.au; abbas.r@unimelb.edu.au;
   soheil.sabri@unimelb.edu.au
RI Rajabifard, Abbas/D-1818-2015; Sabri, Soheil/A-1702-2013; Assarkhaniki,
   Zahra/GXW-0667-2022
OI Assarkhaniki, Zahra/0000-0001-9769-0404
FU Land Equity International (LEI); Centre for Spatial Data Infrastructures
   and Land Administration (CSDILA); Centre for Disaster Management and
   Public Safety (CDMPS)
FX The authors thank Land Equity International (LEI), the Centre for
   Spatial Data Infrastructures and Land Administration (CSDILA), and the
   Centre for Disaster Management and Public Safety (CDMPS) for their
   financial support, input, and valuable feedback.
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NR 86
TC 38
Z9 40
U1 15
U2 140
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 2020
VL 51
AR 101840
DI 10.1016/j.ijdrr.2020.101840
PG 18
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 PG4PJ
UT WOS:000599718600005
DA 2025-04-22
ER

PT J
AU Fratini, CF
   Geldof, GD
   Kluck, J
   Mikkelsen, PS
AF Fratini, C. F.
   Geldof, G. D.
   Kluck, J.
   Mikkelsen, P. S.
TI Three Points Approach (3PA) for urban flood risk management: A tool to
   support climate change adaptation through transdisciplinarity and
   multifunctionality
SO URBAN WATER JOURNAL
LA English
DT Article
DE complexity; decision making; resilience; spatial planning; process
   management; water aspects; social values
ID DRAINAGE; VULNERABILITY; SYSTEM; 21ST-CENTURY; HAZARD
AB Urban flood risk is increasing as a consequence of climate change and growing impervious surfaces. Increasing complexity of the urban context, gradual loss of tacit knowledge and decreasing social awareness are at the same time leading to inadequate choices with respect to urban flood risk management (UFRM). The European Flood Risk Directive emphasises the need for non-structural measures aimed at urban resilience and social preparedness. The Three Points Approach (3PA) provides a structure facilitating the decision making processes dealing with UFRM. It helps to accept the complexity of the urban context and promotes transdisciplinarity and multifunctionality. The 3PA introduces three domains wherein water professionals may act and where aspects valued by different stakeholders come into play: (1) technical optimisation, dealing with standards and guidelines for urban drainage systems; (2) spatial planning, making the urban area more resilient to future changing conditions; and (3) day-to-day values, enhancing awareness, acceptance and participation among stakeholders. Based on in-depth interviews conducted in The Netherlands and Denmark, we describe the complexity of decision making in practical UFRM and explain how the 3PA can be used when organising participatory processes. We introduce a theoretical framework characterising the large range of aspects involved in decision making related to UFRM and evaluate the usefulness of the 3PA in dealing with it. We conclude that the 3PA offers water managers and operators an efficient communication tool and thinking system, which helps to reduce complexity to a level suitable when organising strategy plans for UFRM and urban adaptation to climate change.
C1 [Fratini, C. F.; Geldof, G. D.; Mikkelsen, P. S.] Tech Univ Denmark, Dept Environm Engn, DTU Environm, DK-2800 Lyngby, Denmark.
   [Fratini, C. F.] Tech Univ Denmark, Dept Engn Management, DTU Management, DK-2800 Lyngby, Denmark.
   [Geldof, G. D.] Geldof Cs, Holprijp, Tzum, Netherlands.
   [Kluck, J.] Tauw Bv, Water Dept, Deventer, Netherlands.
C3 Technical University of Denmark; Technical University of Denmark
RP Fratini, CF (corresponding author), Tech Univ Denmark, Dept Environm Engn, DTU Environm, DK-2800 Lyngby, Denmark.
EM chif@man.dtu.dk
RI Fratini, Chiara/ABC-8832-2021; Mikkelsen, Peter Steen/D-9691-2011
OI Fratini, Chiara/0000-0002-8242-7977; Mikkelsen, Peter
   Steen/0000-0003-3799-0493
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NR 55
TC 106
Z9 114
U1 6
U2 101
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.
PY 2012
VL 9
IS 5
BP 317
EP 331
DI 10.1080/1573062X.2012.668913
PG 15
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Water Resources
GA 010VU
UT WOS:000309123400003
OA Green Submitted, Bronze
DA 2025-04-22
ER

PT J
AU Endo, T
AF Endo, Takahiro
TI Adaptive governance and evolution of a groundwater-based resilient city:
   a case study of Kure City, Japan
SO WATER INTERNATIONAL
LA English
DT Article; Early Access
DE Adaptive governance; disaster; disaster risk reduction; emergency;
   groundwater; resilience; water supply; Japan
ID DISASTER RISK; INFRASTRUCTURE; INSTITUTIONS; ADAPTATION
AB Discussion on adaptive governance is criticized for being overly conceptual and limited in application beyond environmental issues. To fill this gap, this paper examines how adaptive governance functions in specific contexts, such as addressing post-disaster water supply cut-offs. In Kure City, Japan, different levels of government and NGOs helped local well owners emerge as informal water suppliers after the 2018 flood. This research identifies four elements of adaptive governance (polycentricity, participation, self-organization, social learning) underpinning this initiative. Furthermore, it reveals the importance of financial incentives for well owners and pre-registration of local wells as policy lessons for emergent groundwater utilization.
C1 [Endo, Takahiro] Osaka Metropolitan Univ, Coll Sustainable Syst Sci, Sakai, Japan.
C3 Osaka Metropolitan University
RP Endo, T (corresponding author), Osaka Metropolitan Univ, Coll Sustainable Syst Sci, Sakai, Japan.
EM endo@omu.ac.jp
FU National Research Institute for Earth Science and Disaster Resilience;
   Japan Society for the Promotion of Science (JSPS) [20H04392, 22K12498];
   Asahi Glass Foundation
FX This work is supported by the National Research Institute for Earth
   Science and Disaster Resilience; The Japan Society for the Promotion of
   Science (JSPS) Grants-in-Aid for Scientific Research [20H04392 and
   22K12498]; and the Asahi Glass Foundation.
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NR 63
TC 0
Z9 0
U1 2
U2 2
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0250-8060
EI 1941-1707
J9 WATER INT
JI Water Int.
PD 2024 NOV 10
PY 2024
DI 10.1080/02508060.2024.2423451
EA NOV 2024
PG 20
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA L4R6C
UT WOS:001350608400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Zhu, W
   Ding, YH
AF Zhu, Wei
   Ding, Yuhui
TI Integrating Decision Tools for Environmental Impact Reduction in
   Sustainable Urban Planning
SO IEEE ACCESS
LA English
DT Article
DE Sustainable urban planning; environmental impact reduction; T-spherical
   fuzzy sets (T-SFS); T-spherical fuzzy sets (T-SFS); urban development;
   urban development; energy efficiency; energy efficiency; land use
   optimization; land use optimization; CRADIS method; CRADIS method;
   LOPCOW; LOPCOW; decision-making techniques; decision-making techniques;
   fuzzy logic; fuzzy logic; sustainable urban growth; sustainable urban
   growth; resilient cities; resilient cities; eco-friendly strategies;
   eco-friendly strategies; eco-friendly strategies
ID FUZZY; CRADIS
AB Environmental impact reduction is crucial for sustainable urban planning, as it mitigates the harmful effects of urbanization on ecosystems, climate, and public health. As cities expand, minimizing environmental degradation through well-planned strategies becomes essential to ensuring long-term sustainability. This paper integrates T-Spherical Fuzzy Sets (T-SFS) to address the inherent uncertainty in evaluating urban development alternatives. T-SFS enables more accurate assessments by capturing expert judgment variability, particularly for complex criteria such as energy efficiency, biodiversity, and land use optimization. In addition, the study employs the CRADIS method alongside the Logarithmic Percentage Change-Driven Objective Weighting (LOPCOW) technique to assign precise weights to evaluation criteria. This integrated approach ensures that each criterion's significance is accurately represented, supporting robust decision-making. The results provide a comparative analysis of five urban development alternatives, helping urban planners prioritize sustainable options that balance environmental, social, and economic factors. By incorporating fuzzy logic and advanced decision-making techniques, this study offers a comprehensive tool for policymakers to make informed decisions that contribute to sustainable urban growth, ultimately fostering cities that are more resilient, eco-friendly, and beneficial to society.
C1 [Zhu, Wei; Ding, Yuhui] Sichuan Agr Univ, Coll Architecture & Urban Rural Planning, Chengdu 611830, Peoples R China.
C3 Sichuan Agricultural University
RP Ding, YH (corresponding author), Sichuan Agr Univ, Coll Architecture & Urban Rural Planning, Chengdu 611830, Peoples R China.
EM dingyh840811@163.com
RI Ding, Yuhui/JVO-4210-2024
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NR 67
TC 0
Z9 0
U1 2
U2 2
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 2169-3536
J9 IEEE ACCESS
JI IEEE Access
PY 2025
VL 13
BP 30212
EP 30234
DI 10.1109/ACCESS.2025.3540140
PG 23
WC Computer Science, Information Systems; Engineering, Electrical &
   Electronic; Telecommunications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering; Telecommunications
GA X5P9C
UT WOS:001425877100014
OA gold
DA 2025-04-22
ER

PT J
AU Sun, H
   Li, MX
   Jiang, H
   Ruan, XJ
   Shou, WC
AF Sun, Hai
   Li, Meixin
   Jiang, Hui
   Ruan, Xuejing
   Shou, Wenchi
TI Inundation Resilience Analysis of Metro-Network from a Complex System
   Perspective Using the Grid Hydrodynamic Model and FBWM Approach: A Case
   Study of Wuhan
SO REMOTE SENSING
LA English
DT Article
DE resilience analysis; metro network; flood simulation; dynamic breakdown;
   FBWM
ID FLOOD RISK-ASSESSMENT; CLIMATE-CHANGE; URBAN; MANAGEMENT; PERFORMANCE;
   SHANGHAI; IMPACTS; LOSSES; REGION; CITY
AB The upward trend of metro flooding disasters inevitably brings new challenges to urban underground flood management. It is essential to evaluate the resilience of metro systems so that efficient flood disaster plans for preparation, emergency response, and timely mitigation may be developed. Traditional response solutions merged multiple sources of data and knowledge to support decision-making. An obvious drawback is that original data sources for evaluations are often stationary, inaccurate, and subjective, owing to the complexity and uncertainty of the metro station's actual physical environment. Meanwhile, the flood propagation path inside the whole metro station network was prone to be neglected. This paper presents a comprehensive approach to analyzing the resilience of metro networks to solve these problems. Firstly, we designed a simplified weighted and directed metro network module containing six characteristics by a topological approach while considering the slope direction between sites. Subsequently, to estimate the devastating effects and details of the flood hazard on the metro system, a 100-year rainfall-flood scenario simulation was conducted using high-precision DEM and a grid hydrodynamic model to identify the initially above-ground inundated stations (nodes). We developed a dynamic node breakdown algorithm to calculate the inundation sequence of the nodes in the weighted and directed network of the metro. Finally, we analyzed the resilience of the metro network in terms of toughness strength and organization recovery capacity, respectively. The fuzzy best-worst method (FBWM) was developed to obtain the weight of each assessment metric and determine the toughness strength of each node and the entire network. The results were as follows. (1) A simplified three-dimensional metro network based on a complex system perspective was established through a topological approach to explore the resilience of urban subways. (2) A grid hydrodynamic model was developed to accurately and efficiently identify the initially flooded nodes, and a dynamic breakdown algorithm realistically performed the flooding process of the subway network. (3) The node toughness strength was obtained automatically by a nonlinear FBWM method under the constraint of the minimum error to sustain the resilience assessment of the metro network. The research has considerable implications for managing underground flooding and enhancing the resilience of the metro network.
C1 [Sun, Hai; Li, Meixin] Ocean Univ China, Coll Engn, Qingdao 266100, Peoples R China.
   [Sun, Hai] Ocean Univ China, Key Lab Marine Environm & Ecol, Minist Educ, Qingdao 266100, Peoples R China.
   [Jiang, Hui] Guangdong Prov Seismol Bur, Guangzhou 510070, Peoples R China.
   [Ruan, Xuejing] Qingdao Agr Univ, Coll Civil Engn & Architecture, Qingdao 266109, Peoples R China.
   [Shou, Wenchi] Deakin Univ, Sch Architecture & Built Environm, Melbourne, NSW 2751, Australia.
C3 Ocean University of China; Ocean University of China; Qingdao
   Agricultural University; Deakin University
RP Ruan, XJ (corresponding author), Qingdao Agr Univ, Coll Civil Engn & Architecture, Qingdao 266109, Peoples R China.
EM sunhai@ouc.edu.cn; 21200911126@stu.ouc.edu.cn; jianghui@cea-igp.ac.cn;
   201301034@qau.edu.cn; w.shou@westernsydney.edu.au
RI Shou, Wenchi/HDN-6017-2022; Sun, Haixin/G-4628-2010
OI sun, hai/0000-0003-4548-1197; Shou, Wenchi/0000-0001-8724-8807
FU National Natural Science Foundation of China [41906185, 52071307,
   U1901602]; Key R&D projects of Shandong Province [2020CXGC010702]
FX This research was funded by the National Natural Science Foundation of
   China, grant numbers 41906185, 52071307, U1901602, and the Key R&D
   projects of Shandong Province, grant numbers 2020CXGC010702.
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NR 63
TC 10
Z9 10
U1 13
U2 142
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2072-4292
J9 REMOTE SENS-BASEL
JI Remote Sens.
PD JUL
PY 2022
VL 14
IS 14
AR 3451
DI 10.3390/rs14143451
PG 28
WC Environmental Sciences; Geosciences, Multidisciplinary; Remote Sensing;
   Imaging Science & Photographic Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Geology; Remote Sensing; Imaging
   Science & Photographic Technology
GA 3J0QA
UT WOS:000833108500001
OA gold
DA 2025-04-22
ER

PT J
AU Croese, S
   Dominique, M
   Raimundo, IM
AF Croese, Sylvia
   Dominique, Massamba
   Raimundo, Ines Macamo
TI Co-producing urban knowledge in Angola and Mozambique: towards meeting
   SDG 11
SO NPJ URBAN SUSTAINABILITY
LA English
DT Article
ID SUSTAINABLE DEVELOPMENT GOALS; INDICATORS; CITY; IMPLEMENTATION;
   POLITICS
AB The need to make cities in Africa more inclusive, safe, resilient and sustainable (Sustainable Development Goal 11) is undisputed as rapid urban growth rates are set to make the African region a key hub in the global transition to a predominantly urban world. This perspective presents findings from a research project conducted in the cities of Luanda, Angola and Maputo, Mozambique, which used citizen science to generate data on selected indicators of the urban Sustainable Development Goal and use this data to inform more inclusive, sustainable and participatory urban planning and policymaking. Based on the research, we argue that meeting SDG 11 will ultimately depend on the spaces and mechanisms for knowledge co-production and sharing that are produced in the process.
C1 [Croese, Sylvia] Univ Cape Town, African Ctr Cities, Cape Town, South Africa.
   [Dominique, Massamba] Dev Workshop, Luanda, Angola.
   [Raimundo, Ines Macamo] Eduardo Mondlane Univ, Ctr Policy Anal CAP, Maputo, Mozambique.
C3 University of Cape Town; Eduardo Mondlane University
RP Croese, S (corresponding author), Univ Cape Town, African Ctr Cities, Cape Town, South Africa.
EM sylviacroese@gmail.com
OI Croese, Sylvia/0000-0003-3197-1363
FU LIRA 2030 Africa Programme; Network of African Science Academies
   (NASAC); Swedish International Development Cooperation Agency (Sida);
   PEAK Urban programme - UK Research and Innovation Global Challenges
   Research Fund [ES/P011055/1]; GCRF [ES/P011055/1] Funding Source: UKRI
FX The authors thank all members of the local research teams in Luanda and
   Maputo and all of those who participated in and contributed to the
   various meetings, workshops and trainings throughout this project. A
   special thanks to Joao Domingos at Development Workshop Angola, Danilo
   Alane at CAP, Pedro Laice at ANAMM and Isabel Emerson in Maputo. Sarah
   Meny-Gibert insightfully assisted with data cross-tabulation and
   analysis. The research was supported by the LIRA 2030 Africa Programme,
   implemented by the International Science Council (ISC) in partnership
   with the Network of African Science Academies (NASAC) with support from
   the Swedish International Development Cooperation Agency (Sida).
   Material support is acknowledged from the Social Sciences and Humanities
   Research Council (SSHRC) and the International Development Research
   Centre (IDRC) under the International Partnerships for Sustainable
   Societies (IPaSS) Programme for the use of the tablets that were
   provided under this collaboration in Maputo. The corresponding author
   also acknowledges support from the PEAK Urban programme, funded by the
   UK Research and Innovation Global Challenges Research Fund, grant
   reference ES/P011055/1. The views expressed herein do not necessarily
   represent those of the funders.
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NR 56
TC 16
Z9 16
U1 1
U2 13
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 23
PY 2021
VL 1
IS 1
AR 8
DI 10.1038/s42949-020-00006-6
PG 10
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I3DL4
UT WOS:001001618400010
OA gold
DA 2025-04-22
ER

PT J
AU Ouyang, M
   Dueñas-Osorio, L
   Min, X
AF Ouyang, Min
   Duenas-Osorio, Leonardo
   Min, Xing
TI A three-stage resilience analysis framework for urban infrastructure
   systems
SO STRUCTURAL SAFETY
LA English
DT Article
DE Infrastructure systems; Multiple hazards; Expected annual resilience;
   Power systems
ID SEISMIC RESILIENCE; INOPERABILITY; NETWORK; MODEL
AB This paper proposes a new multi-stage framework to analyze infrastructure resilience. For each stage, a series of resilience-based improvement strategies are highlighted and appropriate correlates of resilience identified, to then be combined for establishing an expected annual resilience metric adequate for both single hazards and concurrent multiple hazard types. Taking the power transmission grid in Harris County, Texas, USA, as a case study, this paper compares an original power grid model with several hypothetical resilience-improved models to quantify their effectiveness at different stages of their response evolution to random hazards and hurricane hazards. Results show that the expected annual resilience is mainly compromised by random hazards due to their higher frequency of occurrence relative to hurricane hazards. In addition, under limited resources, recovery sequences play a crucial role in resilience improvement, while under sufficient availability of resources, deploying redundancy, hardening critical components and ensuring rapid recovery are all effective responses regardless of their ordering. The expected annual resilience of the power grid with all three stage improvements increases 0.034% compared to the original grid. Although the improvement is small in absolute magnitude due to the high reliability of real power grids, it can still save millions of dollars per year as assessed by energy experts. This framework can provide insights to design, maintain, and retrofit resilient infrastructure systems in practice. (C) 2011 Elsevier Ltd. All rights reserved.
C1 [Ouyang, Min; Duenas-Osorio, Leonardo; Min, Xing] Rice Univ, Dept Civil & Environm Engn, Houston, TX 77005 USA.
   [Ouyang, Min] Huazhong Univ Sci & Technol, Dept Control Sci & Engn, Wuhan 430074, Peoples R China.
C3 Rice University; Huazhong University of Science & Technology
RP Ouyang, M (corresponding author), Rice Univ, Dept Civil & Environm Engn, 6100 Main St,MS-318, Houston, TX 77005 USA.
EM min.ouyang@rice.edu; leonardo.duenas-osorio@rice.edu; xing.min@rice.edu
RI Ouyang, Min/L-3347-2019; Ouyang, Min/J-3214-2013
OI Duenas-Osorio, Leonardo/0000-0002-7138-7746; Ouyang,
   Min/0000-0002-3190-4390
FU National Science Foundation [CMMI-0728040, CMMI-0748231]; Rice
   University; Office of Public Safety and Homeland Security of the City of
   Houston; Div Of Civil, Mechanical, & Manufact Inn; Directorate For
   Engineering [0748231] Funding Source: National Science Foundation
FX This material is based upon work supported in part by the National
   Science Foundation under Grants CMMI-0728040 and CMMI-0748231. 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. The authors also wish to thank
   Rice University and the Office of Public Safety and Homeland Security of
   the City of Houston for their support.
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NR 41
TC 593
Z9 730
U1 56
U2 677
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0167-4730
EI 1879-3355
J9 STRUCT SAF
JI Struct. Saf.
PY 2012
VL 36-37
BP 23
EP 31
DI 10.1016/j.strusafe.2011.12.004
PG 9
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA 937BB
UT WOS:000303632900003
DA 2025-04-22
ER

PT J
AU Khan, A
   Vasilakopoulou, K
   Santamouris, M
AF Khan, Ansar
   Vasilakopoulou, Konstantina
   Santamouris, Mattheos
TI Exploring the potential impacts of anthropogenic heating on urban
   climate during heatwaves
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Urbanization effects; Anthropogenic heating; Overheating of cities;
   Urban climate; Mesoscale modeling
ID PARAMETERIZATION; MODEL; TURBULENCE
AB This study modeled the impact of anthropogenic heat (AH) on urban climates, focusing on Sydney during 2017's heightened temperatures. The motivation behind this study stems from the increasing significance of understanding urban heat dynamics as cities globally grapple with regional climate change, necessitating targeted strategies for effective climate resilience cities. By investigating how varying levels of AH influence local urban climate conditions, this study addresses a critical gap in current urban climate study, particularly in the context of Sydney, an area that has not yet been extensively explored. Utilizing the weather research and forecasting (WRF) model coupled with building effect parameterization (BEP) and building energy model (BEM), i.e., the WRF/BEP + BEM model, four AH release scenarios were analyzed. Higher AH levels, especially at 14:00 LT, exhibited significant peaks: 266.5 W m-2 for sensible heat and 35.3 W m-2 for latent heat compared to the control scenario. This increase corresponded to a notable rise in ambient temperatures by 2.1 degrees C, with surface temperatures surging by 8.1 degrees C. Wind speeds notably increased by 4.6 m s-1 during higher AH release periods, affecting city airflow patterns. Moreover, elevated AH levels amplified the convective planetary boundary layer (PBL) height by 2013.7 m at 14:00 LT, potentially impacting pollutant dispersion and atmospheric quality. Notably, heightened AH profiles intensified sea breeze circulations, particularly impacting densely populated urban areas. These findings demonstrate a direct link between AH, exacerbated local urban warming, altered boundary layer dynamics, and intensified sea breeze circulations. This study emphasizes the urgent need to comprehend and manage AH for sustainable urban development and effective climate resilience strategies in Sydney and similar urban environments. By shedding light on these relationships, this study aims to contribute to the formulation of policies that mitigate urban overheating and enhance the livability of urban areas.
C1 [Khan, Ansar] Univ Calcutta, Lalbaba Coll, Dept Geog, Kolkata, India.
   [Vasilakopoulou, Konstantina; Santamouris, Mattheos] Univ New South Wales, Fac Arts Design & Architecture, Sch Built Environm, Sydney, Australia.
C3 University of Calcutta; University of New South Wales Sydney
RP Khan, A (corresponding author), Univ Calcutta, Lalbaba Coll, Dept Geog, Kolkata, India.
EM khanansargeo@gmail.com
RI Vasilakopoulou, Konstantina/MVU-7134-2025
FU Department of Industry, Science, Energy and Resources (DISER) of the
   Australian Government
FX The authors are thankful to the Department of Industry, Science, Energy
   and Resources (DISER) of the Australian Government provided funding for
   this work.
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NR 52
TC 0
Z9 0
U1 3
U2 3
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD JAN 31
PY 2025
VL 15
IS 1
AR 3908
DI 10.1038/s41598-024-83918-y
PG 14
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA U5Y6P
UT WOS:001412550000015
PM 39890829
OA gold
DA 2025-04-22
ER

PT J
AU Battisti, A
AF Battisti, Alessandra
TI Bioclimatic Architecture and Urban Morphology. Studies on Intermediate
   Urban Open Spaces
SO ENERGIES
LA English
DT Article
DE resilience; urban regeneration; adapting to change; climate performance;
   innovative technologies
ID HEAT-STRESS; HIGH-ALBEDO; THERMAL COMFORT; MITIGATION; RESILIENCE;
   COATINGS; AREAS; TREES; MICROCLIMATE; BUILDINGS
AB This paper deals with the interactions between biophysical and microclimatic factors on the one hand with, on the other, the urban morphology of intermediate urban open spaces, the relationship between environmental and bioclimatic thermal comfort, and the implementation of innovative materials and the use of greenery, aimed at the users' well-being. In particular, the thermal comfort of the open spaces of the consolidated fabrics of the city of Rome is studied, by carrying out simulations of cooling strategies relating to two scenarios applied to Piazza Bainsizza. The first scenario involves the use of cool materials for roofs, cladding surfaces, and pavement, while the second scenario, in addition to the cool materials employed in the first scenario, also includes the use of greenery and permeable green surfaces. The research was performed using summer and winter microclimatic simulations of the CFD (ENVI-met v. 3.1) type, in order to determine the different influences of the materials with cold colors, trees, and vegetated surfaces on the thermal comfort of the urban morphology itself. Meanwhile, the comfort assessment was determined through the physiological equivalent temperature (PET) calculated with the RayMan program. The first scenario, with the use of cool materials, improves summer conditions and reduces the urban heat island effect but does not eliminate thermal discomfort due to the lack of shaded surfaces and vegetation. The second scenario, where material renovations is matched with vegetation improvements, has a slightly bad effect on winter conditions but drastically ameliorates the summer situation, both for direct users and, thanks to the strong reduction of the urban heat island effect, to urban inhabitants as a whole.
C1 [Battisti, Alessandra] Sapienza Univ Rome, Dept Planning Design & Technol Architecture, Via Flaminia 72, I-00196 Rome, Italy.
C3 Sapienza University Rome
RP Battisti, A (corresponding author), Sapienza Univ Rome, Dept Planning Design & Technol Architecture, Via Flaminia 72, I-00196 Rome, Italy.
EM alessandra.battisti@uniroma1.it
RI Battisti, Alessandra/AAL-9653-2020
OI BATTISTI, Alessandra/0000-0002-3288-9321
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NR 57
TC 12
Z9 13
U1 5
U2 41
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD NOV
PY 2020
VL 13
IS 21
AR 5819
DI 10.3390/en13215819
PG 20
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Energy & Fuels
GA OQ8QS
UT WOS:000589041300001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Schraven, D
   Joss, S
   de Jong, M
AF Schraven, Daan
   Joss, Simon
   de Jong, Martin
TI Past, present, future: Engagement with sustainable urban development
   through 35 city labels in the scientific literature 1990-2019
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE City label; Sustainable development; Cities; Bibliometrics; Sustainable
   city; Smart city
ID TIANJIN ECO-CITY; SMART-CITY; BIBLIOMETRIC ANALYSIS; 2 DECADES; CITIES;
   CHINA; PERSPECTIVE; DYNAMICS; MODEL
AB SDG 11 -'making cities and human settlements inclusive, safe, resilient and sustainable' -draws attention to the criticality of urban governance in the quest for sustainable development. Reflecting this, diverse city labels, such as 'sustainable city' and 'smart city', have been mobilized by urban actors and scholars to consider cities' responses to various challenges of urban transformation. Consequently, this study interrogates: (1) the growing use of city labels in the scientific literature over three decades; (2) the conceptual dimensions of individual city labels and their mutual interdependencies; and (3) likely future trajectories. This is accomplished through a comprehensive bibliometric analysis of 35 city labels: we examine their (co-)occurrences during 1990-2019 based on 11337 articles harvested in Scopus; analyse their conceptual associations drawing on a corpus of 22820 author keywords; and make a future forecast based on logistic growth modelling (the underlying datasets are available through open access). The findings significantly take forward recent bibliometric research by demonstrating: the rapid growth in scientific outputs; the diversification of city labels beyond 'smart' and 'sustainable'; and the evolution of an intricate conceptual field made up of different constellations of city labels. The findings have implications for urban policy and practice: regarding ongoing concerns about how to achieve synergies, rather than trade-offs, between SDGs, the conceptual field points to possible ways for relating SDG 11 to other dimensions of sustainable development. More broadly, the clarification of individual city labels' conceptual underpinnings should help policymakers and practitioners make considered choices when mobilizing city labels in support of urban transformation efforts.
   (c) 2021 Elsevier Ltd. All rights reserved.
C1 [Schraven, Daan] Delft Univ Technol, Fac Civil Engn & Geosci, Dept Mat Mech Management & Design 3Md, Sect Infrastruct Design & Management, Postbus 5048, NL-2600 GA Delft, Netherlands.
   [Joss, Simon] Univ Glasgow, Sch Social & Polit Sci, Urban Studies, 25 Bute Gardens, Glasgow G12 8RS, Lanark, Scotland.
   [de Jong, Martin] Erasmus Univ, Erasmus Sch Law, POB 1738-3000, Rotterdam, Netherlands.
   [de Jong, Martin] Rotterdam Sch Management, POB 1738-3000, Rotterdam, Netherlands.
   [de Jong, Martin] Fudan Univ, Inst Global Publ Policy, 220 Handan Rd, Shanghai 200433, Peoples R China.
C3 Delft University of Technology; University of Glasgow; Erasmus
   University Rotterdam; Erasmus University Rotterdam - Excl Erasmus MC;
   Erasmus University Rotterdam - Excl Erasmus MC; Erasmus University
   Rotterdam; Fudan University
RP Joss, S (corresponding author), Univ Glasgow, Sch Social & Polit Sci, Urban Studies, 25 Bute Gardens, Glasgow G12 8RS, Lanark, Scotland.
EM simon.joss@glasgow.ac.uk
OI Schraven, Daan/0000-0003-0647-1172; Joss, Simon/0000-0003-2856-4695
FU ESRC [ES/S007105/1]; NWO/NSFC [482.19.608]; ESRC [ES/S007105/1] Funding
   Source: UKRI
FX (1) ESRC; grant no. ES/S007105/1 and (2) NWO/NSFC; grant no. 482.19.608
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NR 60
TC 57
Z9 57
U1 6
U2 121
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 APR 10
PY 2021
VL 292
AR 125924
DI 10.1016/j.jclepro.2021.125924
EA JAN 2021
PG 16
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 RH3LO
UT WOS:000636124800011
OA Green Published, Green Accepted
DA 2025-04-22
ER

PT J
AU Seidu, S
   Chan, DWM
   Debrah, C
AF Seidu, Sakibu
   Chan, Daniel W. M.
   Debrah, Caleb
TI A novel climate resilience implementation model for the construction
   industry: An international perspective
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Climate resilience; Building adaptations; Energy efficiency; Carbon
   emissions reduction; Structural equation modelling; Construction
   industry
ID ENERGY EFFICIENCY; RENEWABLE ENERGY; GREEN; EMISSIONS; SYSTEMS
AB Although climate resilience is crucial in the construction industry (CI), its multidimensional and dynamic nature impedes global efforts. Existing studies and the Building Resilience Index (BRI) primarily focus on evaluating either the adaptive capacity of buildings or climate mitigation measures. Consequently, the CI lacks an integrated climate resilience implementation model for building practitioners. To address this gap, the current study investigates multidimensional climate resilience considerations in the CI. Through expert validation and linear modelling, the study found that urban heat islands considerations (UHI) ((3 = 0.327, p < 0.003), energy resilience (ER) ((3 = 0.325, p < 0.001), and stakeholder resilience (SR) ((3 = 0.183, p < 0.006) significantly and positively impact carbon reduction (CR) (mitigation). The model corroborates existing theories on the relationship between ER and CR. Additionally, it extends the theory to other climate resilience dimensions. The results highlight the critical role of thermal resilience (building envelope) on ER ((3 = 0.391, p < 0.000). Biodiversity resilience (BD) significantly affects ER ((3 = 0.308, p < 0.002) and has profound effects on SR ((3 = 0.529, p < 0.000) and UHI ((3 = 0.474, p < 0.000). The model also shows that water resilience significantly impacts UHI resilience ((3 = 0.321, p <0.000) and moderately affects SR ((3 = 0.287, p < 0.001). This study proposes an integrated climate resilience approach, addressing both mitigation through carbon reduction and adaptability to climate change impacts. The dynamic model integrates diverse proactive measures, offering a full contextual understanding and practical implementation guidelines for policymakers and construction practitioners.
C1 [Seidu, Sakibu; Chan, Daniel W. M.; Debrah, Caleb] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hung Hom, Kowloon, Hong Kong, Peoples R China.
C3 Hong Kong Polytechnic University
RP Seidu, S (corresponding author), Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hung Hom, Kowloon, Hong Kong, Peoples R China.
EM sakibu.seidu@connect.polyu.hk; daniel.w.m.chan@polyu.edu.hk;
   caleb.debrah@connect.polyu.hk
RI CHAN, Professor Dr Daniel/O-2825-2014; Debrah, Caleb/IAO-2572-2023;
   Seidu, Sakibu/HTP-0061-2023
OI Seidu, Sakibu/0000-0001-7782-5586
FU Department of Building and Real Estate; Hong Kong Polytechnic
   University, Hong Kong
FX This study is fully supported by a full-time PhD research scholarship
   under the auspice of the Department of Building and Real Estate, The
   Hong Kong Polytechnic University, Hong Kong.
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NR 76
TC 0
Z9 0
U1 4
U2 4
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 APR 15
PY 2025
VL 274
AR 112793
DI 10.1016/j.buildenv.2025.112793
EA MAR 2025
PG 16
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA Z4U6T
UT WOS:001438881700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Liu, M
   Zhang, DS
   Pietzarka, U
   Roloff, A
AF Liu, Ming
   Zhang, Deshun
   Pietzarka, Ulrich
   Roloff, Andreas
TI Assessing the adaptability of urban tree species to climate change
   impacts: A case study in Shanghai
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Stress tolerance; Urban tree species selection; Urban forest management;
   Urban ecosystem resilience
ID ENVELOPE MODELS; HEAT ISLANDS; FOREST; DROUGHT; ADAPTATION; TOLERANCE;
   GROWTH; URBANIZATION; TEMPERATE; INCREASES
AB Urban forests and trees are affected by potential biotic and abiotic climate change impacts. To enhance urban forest adaptability and resilience to climate change impacts, tree species with high local climate adaptability and robust stress tolerance should be identified and selected. Climate events in the Shanghai area, such as late frost, chilling, heat waves, drought, typhoons, waterlogging, soil salinization, pests, and disease, directly or indirectly impact urban forests and trees. For urban tree species selection in the context of climate change, an assessment framework was proposed and applied to assess the climate change adaptability of 65 urban tree species in Shanghai using a method combined with quantitative data and qualitative descriptions. In this study, the climate types of tree species were divided into four groups according to annual mean temperature (AMT) and annual precipitation (AP): temperate, cool subtropical, warm subtropical, and moist subtropical species. The results showed that hardness, heat tolerance, chilling requirement, and drought tolerance were categorized as climaterelated tolerances, while other tolerances were categorized as non-climate-related tolerances. The tree species' optimal AMT and AP were significantly correlated with climate-related tolerances, but they did not respond to the non-climate-related tolerances. The warm subtropical species had higher stress tolerances than other climate types in the Shanghai area; therefore, the warm subtropical species with high tolerances were the most suitable alternatives for urban tree species selection with regards to Shanghai's climate change impacts. This study also found that the AMT optimum is a better index to reflect tree species' climate-related tolerances rather than the AP optimum. Finally, the adaptability assessment framework of climate change impact will offer guidance for future-oriented urban forest management and urban tree species selection in Shanghai.
C1 [Liu, Ming; Pietzarka, Ulrich; Roloff, Andreas] Tech Univ Dresden, Inst Forest Bot & Forest Zool, Pienner Str 7, D-01737 Tharandt, Germany.
   [Liu, Ming; Zhang, Deshun] Tongji Univ, Coll Urban Planning & Architecture, Siping Rd 1239, Shanghai 200092, Peoples R China.
C3 Technische Universitat Dresden; Tongji University
RP Liu, M (corresponding author), Tech Univ Dresden, Inst Forest Bot & Forest Zool, Pienner Str 7, D-01737 Tharandt, Germany.; Liu, M (corresponding author), Tongji Univ, Coll Urban Planning & Architecture, Siping Rd 1239, Shanghai 200092, Peoples R China.
EM mingliu@forst.tu-dresden.de; zds@tongji.edu.cn;
   ulrich.pietzarka@tu-dresden.de; roloff@forst.tu-dresden.de
RI Liu, Ming/A-1489-2013
OI , Ulrich/0000-0003-2835-4989
FU SinoGerman (CSC-DAAD) Postdoc Scholarship Program 2019 [2019181];
   Dresden Junior Fellowship 2021 [F0100007021H23440100]
FX Funding for this work was provided by SinoGerman (CSC-DAAD) Postdoc
   Scholarship Program 2019 (2019181) and Dresden Junior Fellowship 2021
   (F0100007021H23440100) . We gratefully thank the anonymous reviewers'
   comments for improving the previous manuscript.
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NR 104
TC 19
Z9 19
U1 24
U2 160
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 JUL
PY 2021
VL 62
AR 127186
DI 10.1016/j.ufug.2021.127186
EA MAY 2021
PG 17
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 SV3OA
UT WOS:000663730600001
DA 2025-04-22
ER

PT J
AU Kenawy, I
   Elkadi, H
AF Kenawy, Inji
   Elkadi, Hisham
TI Effects of cultural diversity and climatic background on outdoor thermal
   perception in Melbourne city, Australia
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Outdoor thermal comfort; Cultural diversity; Thermal comfort benchmarks;
   Thermal adaptation; Physiological equivalent temperature
ID URBAN SPACES; ENVIRONMENTAL ATTITUDE; COMFORT; HOT; TEMPERATURE;
   ADAPTATION; SENSATION; SUMMER; SQUARE; IMPACT
AB Making cities and human settlements inclusive, safe, resilient and sustainable is one of the UN Sustainable Development Goals (SDG). This goal is particularly important in global cities where public places are shared with diverse communities. The successful design of shared, sustainable, and comfortable public places is, therefore, key to an inclusive and resilient urban future. Thermal comfort levels have proven to be a pre-requisite to the successful usage of public places, given their significant effect on their users? experience. However, in global multicultural cities, providing thermally comfortable public places is challenged by the diversity of their users. This paper aims to identify the effect of cultural diversity and climatic background of urban places? users on both their thermal perceptions and comfort levels. Field measurements were conducted in parallel to structured questionnaire and observations to interlink the empirical micrometeorological data with the subjective human assessments. The field empirical measurements took place during summer and winter alongside a total of 2123 valid questionnaires and observations at two selected case studies in Melbourne, Australia. Statistically significant variations in thermal sensation votes and thermal adaptation factors were found to be related to the users? cultural and climatic backgrounds. These findings showed the effect of the users? cultural and climatic background on their thermal sensation votes, and, thus that it is crucial for these parameters to be taken into consideration while designing urban places within multicultural communities.
C1 [Kenawy, Inji; Elkadi, Hisham] Univ Salford, Sch Sci Engn & Environm, Salford, Lancs, England.
C3 University of Salford
RP Kenawy, I (corresponding author), Univ Salford, Sch Sci Engn & Environm, Salford, Lancs, England.
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NR 63
TC 18
Z9 18
U1 0
U2 36
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 2021
VL 195
AR 107746
DI 10.1016/j.buildenv.2021.107746
EA MAR 2021
PG 12
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA RL7OI
UT WOS:000639157200002
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Alawi, M
   Chu, DZ
AF Alawi, Mohsen
   Chu, Dongzhu
TI Assessing and enhancing public space resilience to pandemics and
   earthquakes: a case study of Chongqing, China
SO NATURAL HAZARDS
LA English
DT Article
DE Disaster response; Earthquake; Pandemic; Preparedness; Public space;
   Resilience
ID TEMPORARY SHELTER AREAS; EMERGENCY SHELTER; DECISION-MAKING; DISASTERS;
   GIS; CAPACITY; SYSTEMS; CITIES; PARKS
AB Recently, our cities have been exposed to various fatal emergencies, specifically pandemics and earthquakes, resulting in significant losses of life and property. In this context, resilient public spaces are crucial in improving the response to pandemics and earthquakes and in reducing their effects. This study examines the resilience of public spaces to ensure their effective use in the event of a pandemic or an earthquake. Four primary criteria with 20 sub-criteria for the resilience of public spaces to pandemics (such as the Coronavirus disease 2019 pandemic) and earthquakes were developed and used to assess 169 public spaces across three distinct regions in Chongqing, China. Data collection was carried out through remote sensing, site visits, interviews, official documents analysis, and surveys. The study used a geographic information system (GIS) to study and assess the pandemic and earthquake resilience criteria. The analytic hierarchy process (AHP) and weighted overlay analysis (WOA) were used to evaluate the resilience level. Results indicate that the current resilience levels in Chongqing public spaces are insufficient to enable an effective response to pandemics and earthquakes. However, the levels of resilience vary among regions based on their characteristics. This study is a fundamental resource for enhancing preparedness for pandemics and earthquakes, effectively contributing to building resilient cities.
C1 [Alawi, Mohsen; Chu, Dongzhu] Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400044, Peoples R China.
   [Chu, Dongzhu] Chongqing Architectural Design Inst Co LTD, Chongqing, Peoples R China.
C3 Chongqing University
RP Chu, DZ (corresponding author), Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400044, Peoples R China.; Chu, DZ (corresponding author), Chongqing Architectural Design Inst Co LTD, Chongqing, Peoples R China.
EM c.dz@vip.163.com
RI ALAWI, MOHSEN/ACT-5689-2022
OI Alawi, Mohsen/0000-0002-2601-2224
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NR 84
TC 0
Z9 0
U1 11
U2 14
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 JAN
PY 2025
VL 121
IS 2
BP 2023
EP 2052
DI 10.1007/s11069-024-06801-z
EA AUG 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 U3D4Z
UT WOS:001302275000004
DA 2025-04-22
ER

PT J
AU Knopp, JM
   Levin, G
   Banzhaf, E
AF Knopp, Julius M.
   Levin, Gregor
   Banzhaf, Ellen
TI Aerial Data Analysis for Integration Into a Green Cadastre-An Example
   From Aarhus, Denmark
SO IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE
   SENSING
LA English
DT Article
DE Climate change; Image processing; Urban areas; Rural areas; Vegetation
   mapping; Urban planning; Surface treatment; Spatial resolution;
   Semantics; Resilience; Laser radar; Data models; Data mining; Cadastre;
   digital orthophotos (DOP); object-based image analysis (OBIA);
   structural biodiversity; urban-rural fringe
ID ACCURACY ASSESSMENT; SHRUB; COVER; TREE
AB Fostering urban resilience and adaptation to climate change pose new demands on the knowledge of land use and land cover (LULC) in heterogeneous urban spaces. High-resolution urban mapping is a valuable tool, which serves to map detailed categories. Such semantic data are integrated in national and regional administration as public goods. In the light of many countries around the globe making their data publicly available, we present a method to map urban areas based on multitemporal orthophotos and LiDAR-derived digital surface model, and extract information about vegetation in an automated processing chain. This approach is threshold driven and relies on an automatic generation of spectral thresholds and existing real-world-based classifications. We included cadastral data to add land-use information for specific categories, such as agricultural land use and to assess the product's accuracy. Adding these data creates an LULC product and makes a seamless integration into urban planning routines possible. The results of the study provide a detailed LULC map for the municipality of Aarhus in 2015 with a spatial resolution of 20 cm and ten thematic classes. Depending on the reference data, we achieved thematic overall accuracies of 34% and 64% using a polygon-based approach. Our study has found that utilizing both multitemporal orthophotos and elevation data can enhance the LC mapping of urban landscapes. The methodology could be transferred to other areas in Denmark or to countries providing similar datasets, and lends itself to a repeatable LULC mapping with minimal user interaction.
C1 [Knopp, Julius M.; Banzhaf, Ellen] UFZ Helmholtz Ctr Environm Res, D-04318 Leipzig, Germany.
   [Levin, Gregor] Aarhus Univ, Dept Environm Sci, DK-4000 Roskilde, Denmark.
C3 Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Aarhus University
RP Knopp, JM (corresponding author), UFZ Helmholtz Ctr Environm Res, D-04318 Leipzig, Germany.
EM julius.knopp@ufz.de; gl@envs.au.dk; ellen.banzhaf@ufz.de
OI Knopp, Julius Matthias/0000-0002-3474-6367; Banzhaf,
   Ellen/0000-0002-4740-1202; Levin, Gregor/0000-0002-5223-914X
FU European Union's Horizon 2020 research and innovation programme through
   EC REGREEN-project Nature-Based Solutions in Europe and China towards
   Equitable, Green, and Healthy Cities [821016]
FX This work was supported by the European Union's Horizon 2020 research
   and innovation programme through EC REGREEN-project Nature-Based
   Solutions in Europe and China towards Equitable, Green, and Healthy
   Cities under Grant 821016.& nbsp;
CR Aarhus Municipality, TREE DAT
   Aarhus Municipality, AARH TAL
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NR 58
TC 2
Z9 2
U1 1
U2 9
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 2023
VL 16
BP 6545
EP 6555
DI 10.1109/JSTARS.2023.3289218
PG 11
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 N6BF3
UT WOS:001037835600002
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Liu, K
   Liu, YM
   Kou, YY
AF Liu, Kai
   Liu, Yuming
   Kou, Yuanyuan
TI Study on construction safety management in megaprojects from the
   perspective of resilient governance
SO SAFETY SCIENCE
LA English
DT Article
DE Construction safety; Megaprojects; Resilient governance; Dynamic system
ID HEALTH; COMMUNITY; CLIMATE; CITIES; SYSTEM; DELAY
AB The interior and exterior environments of megaprojects are extremely complex and construction safety has long been a concern. However, effective prevention, response and adaptation of construction safety incidents remains difficult. Therefore, this study uses the construction safety accident process as an entry point to construct an indicator system of construction safety impact factors for megaprojects based on a resilient governance perspective. The entropy-weighted TOPSIS method is used to assign weights to the influence factors, and a system dynamics model for building safety for megaprojects is developed. Moreover, the Vensim software was used to simulate the pattern of the influence of different factors on construction safety under different conditions. The findings suggest that optimizing and enhancing institutional resilience, organizational resilience, engineering resilience, technological resilience, and infrastructural resilience in megaprojects can improve the ability to prevent, respond to, and adapt to construction safety incidents. Engineering resilience (27.28%) and technological resilience (21.72%) are the most important and have the strongest effect on preventing and controlling construction safety risks. Moreover, degrading the complexity of construction safety risks and real-time adjustment of safety risk control strategies through resilient means can reduce risk management delays and effectively improve the efficiency of construction safety management.
C1 [Liu, Kai; Liu, Yuming] Beijing Jiaotong Univ, Sch Econ & Management, Beijing, Peoples R China.
   [Kou, Yuanyuan] Shandong Univ Sci & Technol, Coll Econ & Management, Qingdao, Peoples R China.
C3 Beijing Jiaotong University; Shandong University of Science & Technology
RP Liu, K (corresponding author), Beijing Jiaotong Univ, Sch Econ & Management, Beijing, Peoples R China.
EM kailiuyy@bjtu.edu.cn
OI Liu, Kai/0000-0002-2477-7506
FU Fundamental Research Funds for the Central Universities [2022YJS050];
   State Key Laboratory for Track Technology of High-speed Railway
   [2021YJ111]; China Academy of Railway Sciences
FX This work was supported by Fundamental Research Funds for the Central
   Universities: [Grant Number 2022YJS050] ; State Key Laboratory for Track
   Technology of High-speed Railway: [Grant Number 2021YJ111] , China
   Academy of Railway Sciences.
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NR 51
TC 14
Z9 14
U1 57
U2 130
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0925-7535
EI 1879-1042
J9 SAFETY SCI
JI Saf. Sci.
PD MAY
PY 2024
VL 173
AR 106442
DI 10.1016/j.ssci.2024.106442
EA FEB 2024
PG 13
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA KG8T5
UT WOS:001178903900001
DA 2025-04-22
ER

PT J
AU Zheng, JX
   Huang, GR
AF Zheng, Jiaxuan
   Huang, Guoru
TI Towards flood risk reduction: Commonalities and differences between
   urban flood resilience and risk based on a case study in the Pearl River
   Delta
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Flood resilience; Flood risk; PSR model; Extension catastrophe
   progression method; Pearl River Delta
ID VULNERABILITY; METHODOLOGY; EXPANSION; DYNAMICS; HAZARD; SYSTEM; INDEX;
   CHINA; MODEL
AB Despite traditional measures to prevent disasters, climate change and urbanization increase flood risk. Thus, flood resilience has attracted increased global concern. Understanding the commonali-ties and differences between flood resilience and risk is arguably important for flood risk reduc-tion. However, these factors have been seldom reported in previous studies, and discussions on the role of flood resilience in flood risk analysis, assessment, and management are lacking. In this study, the association between flood resilience and risk is discussed using a case study in the Pearl River Delta. Flood resilience is quantified using a pressure-state-response (PSR) model, while flood risk is assessed based on the hazard-vulnerability framework and the extension catastrophe progression method. The implications of considering flood resilience in flood risk analysis, assess-ment, and management are proposed. The results suggest that the overall flood resilience (risk) in the study area is greater (lower) than that in the highly urbanized areas, and areas with low (high) flood resilience (risk) are mainly concentrated within the highly urbanized areas. Indices extracted from human society and highly related to human activities have the same attributes in both frameworks, while indices associated with climate and geography contribute to the two con-cepts differently. Flood resilience supplements the concept of flood risk, and can be incorporated into risk assessment as an index. Moreover, pre-disruption (post-disaster) measures should follow flood risk (resilience) assessment, and strategies that foster flood resilience should be included in flood risk management. This study provides references for flood resilience improvement and risk mitigation.
C1 [Zheng, Jiaxuan; Huang, Guoru] South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China.
   [Huang, Guoru] South China Univ Technol, State Key Lab Subtrop Bldg Sci, Guangzhou 510640, Peoples R China.
   [Huang, Guoru] Guangdong Engn Technol Res Ctr Safety & Greenizat, Guangzhou 510640, Peoples R China.
C3 South China University of Technology; South China University of
   Technology
RP Huang, GR (corresponding author), South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China.; Huang, GR (corresponding author), South China Univ Technol, State Key Lab Subtrop Bldg Sci, Guangzhou 510640, Peoples R China.; Huang, GR (corresponding author), Guangdong Engn Technol Res Ctr Safety & Greenizat, Guangzhou 510640, Peoples R China.
EM huanggr@scut.edu.cn
RI Zheng, Jiaxuan/LZI-0921-2025
OI Zheng, Jiaxuan/0000-0003-1836-6249
FU National Natural Science Foundation of China [51879108, 52279015];
   Guangzhou Science and Technology Program [202201010271]
FX This work was supported by the National Natural Science Foundation of
   China [grant numbers 51879108, 52279015] ; and Guangzhou Science and
   Technology Program [grant number 202201010271] .
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NR 58
TC 43
Z9 45
U1 143
U2 470
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 15
PY 2023
VL 86
AR 103568
DI 10.1016/j.ijdrr.2023.103568
EA FEB 2023
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 8T6HL
UT WOS:000929360300001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Bevilacqua, C
   Pizzimenti, P
   Hamdy, N
   Mangiulli, F
AF Bevilacqua, Carmelina
   Pizzimenti, Pasquale
   Hamdy, Nourhan
   Mangiulli, Federica
TI From Deinstitutionalization to Community-Based Urban Development:
   Investigating Accessibility of Urban Systems in Calabria through Network
   Analytics
SO SUSTAINABILITY
LA English
DT Article
DE data-driven approach; community-based urban development; urban
   accessibility
ID INTELLECTUAL DISABILITY; ECONOMIC-GEOGRAPHY; EVOLUTION; SPECIALIZATION;
   OUTCOMES; PEOPLE; CITY
AB Community-based urban development is an inclusive approach for local service provision and management centered on the proactive partnerships between urban communities and local governments. Rooted in the deinstitutionalization of public services, the European Union and national policy effort is pushing towards the organization of community-based alternatives in response to the evolving needs of local communities. As the pandemic has shown, service accessibility has proven to be a key concern element that needs to be addressed to increase communities' and cities' resilience. In this direction, the paper aims to propose data-driven alternative approaches to assess urban systems' accessibility and connectivity as an element of leveraging the resilience-oriented planning process and facilitating community-based development. The methodological approach focuses on the case of the Calabria region, where community-based alternatives for the provision of public services found difficulties to be operationalized through an integrated planning approach. The case study is explored by experimenting on the spatial connections of two purposefully selected clusters to assess the accessibility and connectivity of urban systems within the region through network analysis visualization tools: health and social-related services and transportation and logistics. The analytical approach outlines the accessibility level of urban systems in the region examined, proving its relevance in detecting social, economic, and environmental dynamics. This approach shows how using non-traditional data-driven perspectives can detect development dynamics-which affect local community's needs-and their limitations in the organization of community-based development alternatives.
C1 [Bevilacqua, Carmelina; Pizzimenti, Pasquale; Hamdy, Nourhan; Mangiulli, Federica] Univ Mediterranea Reggio Calabria, PAU Dept, CLUDsLab, I-89124 Reggio Di Calabria, Italy.
C3 Universita Mediterranea di Reggio Calabria
RP Pizzimenti, P (corresponding author), Univ Mediterranea Reggio Calabria, PAU Dept, CLUDsLab, I-89124 Reggio Di Calabria, Italy.
EM cbevilac@unirc.it; pasquale.pizzimenti@unirc.it; nourhan.hamdy@unirc.it;
   federica.mangiulli@unirc.it
RI Bevilacqua, Carmelina/JGM-0993-2023; Hamdy, Nourhan/MCJ-7210-2025;
   Bevilacqua, Carmelina/O-6886-2015
OI Bevilacqua, Carmelina/0000-0002-8433-0773; PIZZIMENTI,
   Pasquale/0000-0003-0186-1307; Hamdy, Nourhan/0000-0002-2209-084X
FU European Union's Horizon 2020 research and innovation programme under
   the Marie Sklodowska-Curie grant [823952, 846144]; SOUND (Smart Open
   Urban-rural iNnovation Data) Project [2017JMHK4F]; Marie Curie Actions
   (MSCA) [846144, 823952] Funding Source: Marie Curie Actions (MSCA)
FX This research work is the result of the synergetic activity of the TREnD
   (Transition with Resilience for Evolutionary Development) and ZES
   (opportunity Zones for innovation EcosystemS governance) Projects, which
   have received funding from the European Union's Horizon 2020 research
   and innovation programme under the Marie Sklodowska-Curie grant
   agreements No. 823952 (TREND) an No. 846144 (ZES), and the SOUND (Smart
   Open Urban-rural iNnovation Data) Project that has received funding from
   the Italian Minister of University and Research (MIUR) under the
   PRIN-Progetti di Ricerca di Rilevante Interesse Nazionale Bando 2017
   grant no. 2017JMHK4F.
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NR 49
TC 5
Z9 5
U1 4
U2 30
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 1348
DI 10.3390/su14031348
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 ZC1SH
UT WOS:000757308100001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Shen, LY
   Shu, TH
   Liao, X
   Yang, N
   Ren, YT
   Zhu, MC
   Cheng, GY
   Wang, JH
AF Shen, Liyin
   Shu, Tianheng
   Liao, Xia
   Yang, Nan
   Ren, Yitian
   Zhu, Mengcheng
   Cheng, Guangyu
   Wang, Jinhuan
TI A new method to evaluate urban resources environment carrying capacity
   from the load-and-carrier perspective
SO RESOURCES CONSERVATION AND RECYCLING
LA English
DT Article
DE Urban resources environment carrying capacity; Urban loads; Urban
   carriers; URECC-LC; Sustainable urban development
ID DECISION-SUPPORT-SYSTEM; WATER-RESOURCES; ECOLOGICAL FOOTPRINT;
   ECOSYSTEM SERVICES; LAND-USE; COMPREHENSIVE EVALUATION; ASSESSMENT
   MODEL; CLIMATE-CHANGE; CITIES; SUSTAINABILITY
AB Urban resources environment carrying capacity (URECC) is considered as a significant yardstick for guiding the practice towards sustainable urban development. It helps measure the interaction between human activities and urban resources environment system. Although existing studies on URECC have made great progress, there is still no consensus on the definition and evaluation method for URECC. In line with this background, this study proposes a theoretical method named URECC-LC from the load-and-carrier innovative perspective. In developing this method, urban resources environment is considered as a system, and the novel concepts of urban loads (UL) and urban carriers (UC) are introduced. Subsequently, the measurement of URECC is built up by incorporating both urban loads and carriers. This new method can be applied to evaluate effectively and properly the state of URECC. Several novel insights for this innovative method are highlighted as: (a) sustainable development based URECC assessment; (b) extension of URECC implication to urban resilience; (c) virtual threshold for measuring the limitation of URECC. Taking urban water resources environment as an example, a case demonstration with reference to cities Beijing, Tianjin, Shanghai and Chongqing in China is conducted, and the case results shows: (1) Beijing, Shanghai and Tianjin represents a URECC deficit state for water resources environment almost every year (2004-2017) and Chongqing shows a URECC surplus state during the whole surveyed period; (2) the resilience of urban water resources environment is differing between the four case cities; (3) Shanghai has the highest possibility (risk) for water resources environment carrying capacity to be overloaded, and the water resources environment carrying capacity in Chongqing has been less utilized. The demonstration conducted proves that the introduced URECC-LC method is applicable and effective in evaluating URECC. And this new method provides significant theoretical basis for studying urban resources environments.
C1 [Shen, Liyin; Shu, Tianheng; Liao, Xia; Yang, Nan; Zhu, Mengcheng; Cheng, Guangyu; Wang, Jinhuan] Chongqing Univ, Sch Management Sci & Real Estate, Chongqing, Peoples R China.
   [Shen, Liyin; Shu, Tianheng; Liao, Xia; Yang, Nan; Zhu, Mengcheng; Cheng, Guangyu; Wang, Jinhuan] Chongqing Univ, Int Res Ctr Sustainable Built Environm, Chongqing, Peoples R China.
   [Ren, Yitian] Univ Manchester, Dept Planning & Environm Management, Oxford Rd, Manchester M13 9PL, Lancs, England.
C3 Chongqing University; Chongqing University; University of Manchester
RP Shu, TH (corresponding author), Chongqing Univ, Sch Management Sci & Real Estate, Chongqing, Peoples R China.; Shu, TH (corresponding author), Chongqing Univ, Int Res Ctr Sustainable Built Environm, Chongqing, Peoples R China.
EM shenliyincqu@163.com; sthcqu@163.com; xialiao@cqu.edu.cn;
   yangnanyn@cqu.edu.cn; yitian.ren@postgrad.manchester.ac.uk;
   283287360@qq.com; 452049537@qq.com; wangjinhuan99@qq.com
RI Cheng, Guangyu/GQY-9261-2022; Liao, Xia/GLU-9067-2022; Ren,
   Yitian/AAH-1243-2019; Shen, Liyin/ABD-5171-2021; Shu,
   Tianheng/ABE-6778-2021
OI Liao, Xia/0000-0001-6258-9293; Ren, Yitian/0000-0003-1638-5534; Shu,
   Tianheng/0000-0001-7149-2063
FU National Social Science Foundation of China [17ZDA062, 15BJY038];
   Chongqing Federation of Social Science [2019CDJSK03PT06]
FX This paper was supported by the National Social Science Foundation of
   China (Grant No. "17ZDA062" Grant No. "15BJY038") and Chongqing
   Federation of Social Science (Nos. "2019CDJSK03PT06")
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NR 143
TC 110
Z9 115
U1 18
U2 242
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 MAR
PY 2020
VL 154
AR 104616
DI 10.1016/j.resconrec.2019.104616
PG 16
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology
GA LY5FB
UT WOS:000540553600006
DA 2025-04-22
ER

PT J
AU Collier, MJ
   Connop, S
   Foley, K
   Nedovic-Budic, Z
   Newport, D
   Corcoran, A
   Crowe, P
   Dunne, L
   de Moel, H
   Kampelmann, S
   McQuaid, S
   von Raumer, HGS
   Slaev, A
   Stumpp, EM
   Van den Abeele, P
   Vandergert, P
AF Collier, Marcus J.
   Connop, Stuart
   Foley, Karen
   Nedovic-Budic, Zorica
   Newport, Darryl
   Corcoran, Aoife
   Crowe, Philip
   Dunne, Louise
   de Moel, Hans
   Kampelmann, Stephan
   McQuaid, Siobhan
   von Raumer, Hans-Georg Schwarz
   Slaev, Aleksander
   Stumpp, Eva-Maria
   Van den Abeele, Patrick
   Vandergert, Paula
TI Urban transformation with TURAS open innovations; opportunities for
   transitioning through transdisciplinarity
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID ECOSYSTEM SERVICES; CO-CREATION; LAND-USE; SUSTAINABILITY; COPRODUCTION;
   GOVERNANCE; KNOWLEDGE; FRAMEWORK; RESILIENCE; CITIZEN
AB Transitioning is a unidirectional process of mainstreaming sustainability within normative societal behaviour, which communities hope will build resilience, reduce our dependence on distant resources and lead to the transformation towards more sustainable living as an end product. Throughout Europe there are numerous examples and pilot or demonstration projects that illustrate tools, practices, mechanisms, pathways and policies for how transitioning can be guided and a transformation can be achieved. This paper draws on the experience of the TURAS project by illustrating some of the diverse open innovation opportunities that have been derived using novel transdisciplinary approaches. The paper concludes with identifying possible ways forward by utilising the TURAS innovations to enable the transformation of urban communities.
C1 [Collier, Marcus J.] Trinity Coll Dublin, Sch Nat Sci, Dublin, Ireland.
   [Connop, Stuart; Newport, Darryl; Vandergert, Paula] Univ East London, SRI, Docklands Campus,4-6 Univ Way, London E16 2RD, England.
   [Foley, Karen; Nedovic-Budic, Zorica; Corcoran, Aoife; Crowe, Philip; Dunne, Louise] Univ Coll Dublin, UCD Sch Architecture Planning & Environm Policy, Dublin 4, Ireland.
   [de Moel, Hans] Vrije Univ Amsterdam, Inst Environm Studies IVM, Amsterdam, Netherlands.
   [Kampelmann, Stephan; von Raumer, Hans-Georg Schwarz; Stumpp, Eva-Maria] Univ Stuttgart, Fac Architecture & Urban Planning, ILPOE Inst Landscape Planning & Ecol, Keplerstr 11, D-70174 Stuttgart, Germany.
   [McQuaid, Siobhan] Trinity Coll Dublin, TCD Sch Business & Innovat, Coll Green, Dublin 2, Ireland.
   [Slaev, Aleksander] Varna Free Univ, Varna, Bulgaria.
   [Van den Abeele, Patrick] Bruxelles Environm Brussel Leefmilieu, Ave Port 86c, B-1000 Brussels, Belgium.
C3 Trinity College Dublin; University of East London; University College
   Dublin; Vrije Universiteit Amsterdam; University of Stuttgart; Trinity
   College Dublin; Varna Free University
RP Collier, MJ (corresponding author), Trinity Coll Dublin, Sch Nat Sci, Dublin, Ireland.
EM marcus.collier@tcd.ie
RI Collier, Marcus/G-3557-2010; de Moel, Hans/L-1311-2013; Slaev,
   Aleksandar/CAH-3574-2022; Slaev, Aleksandar D./P-7698-2016
OI de Moel, Hans/0000-0002-6826-1974; Connop, Stuart/0000-0003-3050-7649;
   Newport, Darryl/0000-0003-3942-9747; Collier,
   Marcus/0000-0002-6853-9980; Slaev, Aleksandar D./0000-0001-9172-5776;
   Schwarz-v.Raumer, Hans-Georg/0000-0001-5007-994X; Crowe,
   Philip/0000-0001-6686-8222; Vandergert, Paula/0000-0003-2239-5309
FU European Union [282834, FP7-ENV.2011.2.1.5-1]
FX The authors acknowledge the financial support by the European Union
   FP7-ENV.2011.2.1.5-1 (TURAS Project) Grant Agreement no. 282834. This
   section will be completed after the review process.
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NR 34
TC 11
Z9 11
U1 0
U2 11
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 57
EP 62
DI 10.1016/j.cosust.2017.04.005
PG 6
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:000416098300009
OA Green Submitted, Green Accepted
DA 2025-04-22
ER

PT J
AU Sani, DS
   Heidari, MT
   Mogaddam, HT
   Shorabeh, SN
   Yousefvand, S
   Karmpour, A
   Arsanjani, JJ
AF Shahpari Sani, Davoud
   Heidari, Mohammad Taghi
   Tahmasebi Mogaddam, Hossein
   Nadizadeh Shorabeh, Saman
   Yousefvand, Saman
   Karmpour, Anahita
   Jokar Arsanjani, Jamal
TI An Assessment of Social Resilience against Natural Hazards through
   Multi-Criteria Decision Making in Geographical Setting: A Case Study of
   Sarpol-e Zahab, Iran
SO SUSTAINABILITY
LA English
DT Article
DE social resilience; natural hazards; locative multi-criteria
   decision-making (MCDM) model; Sarpol-e Zahab
ID COMMUNITY RESILIENCE; CLIMATE-CHANGE; URBAN RESILIENCE; CAPACITY; GIS;
   STRATEGIES; SELECTION; POVERTY; MODEL; WLC
AB The aim of this study was to propose an approach for assessing the social resilience of citizens, using a locative multi-criteria decision-making (MCDM) model for an exemplary case study of Sarpol-e Zahab city, Iran. To do so, a set of 10 variables and 28 criteria affecting social resilience were used and their weights were measured using the Analytical Hierarchy Process, which was then inserted into the Weighted Linear Combination (WLC) model for mapping social resilience across our case study. Finally, the accuracy of the generated social resilience map, the correlation coefficient between the results of the WLC model and the accuracy level of the social resilience map were assessed, based on in-situ data collection after conducting a survey. The outcomes revealed that more than 60% of the study area falls into the low social resilience category, categorized as the most vulnerable areas. The correlation coefficient between the WLC model and the social resilience level was 79%, which proves the acceptability of our approach for mapping social resilience of citizens across cities vulnerable to diverse risks. The proposed methodological approach, which focuses on chosen data and presented discussions, borne from this study can be beneficial to a wide range of stakeholders and decision makers in prioritizing resources and efforts to benefit more vulnerable areas and inhabitants.
C1 [Shahpari Sani, Davoud] Univ Tehran, Dept Demog, Fac Social Sci, Tehran 1417935840, Iran.
   [Heidari, Mohammad Taghi; Tahmasebi Mogaddam, Hossein] Univ Zanjan, Dept Geog, Fac Humanities, Zanjan 3879145371, Iran.
   [Nadizadeh Shorabeh, Saman] Univ Tehran, Fac Geog, Dept Remote Sensing & GIS, Tehran 1417935840, Iran.
   [Yousefvand, Saman] Univ Tehran, Dept Sociol, Fac Social Sci, Tehran 1417935840, Iran.
   [Karmpour, Anahita] Free Univ Berlin, Inst Sociol, Dept Polit & Social Sci, D-14195 Berlin, Germany.
   [Jokar Arsanjani, Jamal] Aalborg Univ, Geoinformat Res Grp, Dept Planning & Dev, AC Meyers Vaenge 15, DK-2450 Copenhagen, Denmark.
C3 University of Tehran; University Zanjan; University of Tehran;
   University of Tehran; Free University of Berlin; Aalborg University
RP Arsanjani, JJ (corresponding author), Aalborg Univ, Geoinformat Res Grp, Dept Planning & Dev, AC Meyers Vaenge 15, DK-2450 Copenhagen, Denmark.
EM dshahpari@ut.ac.ir; mt.heydari@znu.ac.ir; tahmasebihossein@znu.ac.ir;
   saman.nadizadeh@ut.ac.ir; samanyousefvand@ut.ac.ir;
   anahita1366@zedat.fu-berlin.de; jja@plan.aau.dk
RI heydari, Mohamad/AEW-3042-2022; Moghaddam, Hossein/ACT-4482-2022;
   yousefvand, saman/HMW-0387-2023
OI Nadizadeh Shorabeh, Saman/0000-0001-6032-1963; Tahmasebi Moghaddam,
   Hossein/0000-0002-7753-5762; heydari, mohamad taghi/0000-0003-4359-8850;
   Shahpari Sani, Davoud/0000-0002-1727-8792; karampour,
   anahita/0000-0001-9933-2440
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NR 96
TC 13
Z9 13
U1 4
U2 26
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 8304
DI 10.3390/su14148304
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 3G9YU
UT WOS:000831702400001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Wai, KM
   Xiao, L
   Tan, TZ
AF Wai, Ka-Ming
   Xiao, Lei
   Tan, Tanya Zheng
TI Improvement of the Outdoor Thermal Comfort by Water Spraying in a
   High-Density Urban Environment under the Influence of a Future (2050)
   Climate
SO SUSTAINABILITY
LA English
DT Article
DE urban climate; adaptation measures; outdoor thermal comfort; city
   resilience; sustainable cities
ID RIVER DELTA REGION; ENERGY-CONSUMPTION; COOL ISLAND; HEAT-ISLAND;
   MICROCLIMATE; TEMPERATURE; IMPACT; MODEL; PARAMETERIZATION; VARIABILITY
AB Adaptation to prepare for adverse climate change impacts in the context of urban heat islands and outdoor thermal comfort (OTC) is receiving growing concern. However, knowledge of quantitative microclimatic conditions within the urban boundary layer in the future is still lacking, such that the introduction of adequate adaptation measures to increase OTC is challenging. To investigate the cooling performance of a water spraying system in a sub-tropical compact and high-rise built environment in summer under the influence of future (2050) climatic conditions, results from two validated models (Weather Research and Forecast (WRF) and ENVI-met models) have been used and analyzed. Our results indicate that the spraying system provides cooling of 2-3 degrees C for ambient air temperature at the pedestrian-level of the urban canyons considered here, which benefits pedestrians. However, improvement of the OTC in terms of the physiological equivalent temperature (PET-a better indicator of human thermal sensation) was noticeable (e.g., <42 degrees C or from very hot to hot) when the urban canyon was orientated parallel to the prevailing wind direction only. This implies that in order to improve city resilience in terms of heat stress, more holistic adaptation measures in urban planning are needed. This includes the introduction of more breezeways and building disposition to facilitate the urban ventilation, as well as urban tree arrangement and sunshades to reduce direct solar radiation to plan for the impact of future climate change.
C1 [Wai, Ka-Ming; Xiao, Lei] Shantou Univ, Dept Civil & Environm Engn, Shantou 515063, Peoples R China.
   [Tan, Tanya Zheng] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
C3 Shantou University; Hong Kong Polytechnic University
RP Wai, KM (corresponding author), Shantou Univ, Dept Civil & Environm Engn, Shantou 515063, Peoples R China.
EM jmwei@stu.edu.cn; 191xiao@stmedu.cn; tanya.tan@polyu.edu.hk
OI Tan, Zheng/0000-0001-6478-5538
FU Shantou University's Initiation of Scientific Research Fund
   [140/09419015]
FX This research was partially supported by the Shantou University's
   Initiation of Scientific Research Fund (Number: 140/09419015).
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Z9 12
U1 4
U2 58
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2021
VL 13
IS 14
AR 7811
DI 10.3390/su13147811
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 TO5OL
UT WOS:000676960600001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Grasham, CF
   Korzenevica, M
   Charles, KJ
AF Grasham, Catherine F.
   Korzenevica, Marina
   Charles, Katrina J.
TI On considering climate resilience in urban water security: A review of
   the vulnerability of the urban poor in sub-Saharan Africa
SO WILEY INTERDISCIPLINARY REVIEWS-WATER
LA English
DT Review
DE children; cholera; climate; drought; flood; gender; poor; urban
ID DISASTER RISK; FLOOD RISK; CHOLERA; GOVERNANCE; SANITATION; MANAGEMENT;
   POLITICS; SERVICES; POVERTY; GENDER
AB Climate shock-related water insecurity has a significant impact on poverty, and vice versa, with poor people adversely impacted by different hazards. Many studies have focused on rural communities resulting in a lack of evidence on the vulnerability of urban dwellers. In this review, we explore the literature on the vulnerability of the urban poor to floods, droughts, and cholera in Sub-Saharan Africa. We particularly highlight the structural challenges and systemic inequalities that are increasing the vulnerability of the urban poor including the differential experiences of women and children. We conclude that poor people have: unequal opportunities to cope with shocks, being deprived from access to water services that wealthier households have; their needs are inequitably ignored; and cumulative vulnerability that reverberates climate shocks into smaller consequences that can have dramatic effects. Therefore, the pathways out of poverty are limited for the urban poor. This is not only due to factors of political economy such as the location and construction materials of houses, but also legacies of discrimination and their reproduction. Individual vulnerabilities are frequently increased due to the roles and responsibilities assigned to people of particular genders and/or ages. We find that these differential vulnerabilities are crucial yet poorly researched. There is also a lack of evidence for the manifold effects of drought on the urban poor. Building on the urban climate resilience literature we argue that policy makers and practitioners must consider who water security is for. This article is categorized under: Human Water > Rights to Water Human Water > Water Governance Science of Water > Water Extremes
C1 [Grasham, Catherine F.; Korzenevica, Marina; Charles, Katrina J.] Univ Oxford, Sch Geog & Environm, Oxford OX1 3QY, England.
C3 University of Oxford
RP Charles, KJ (corresponding author), Univ Oxford, Sch Geog & Environm, Oxford OX1 3QY, England.
EM katrina.charles@ouce.ox.ac.uk
RI Charles, Katrina/D-1948-2009; Korzenevica, Marina/D-9122-2015
OI Charles, Katrina/0000-0002-2236-7589; Korzenevica,
   Marina/0000-0003-0900-4326
FU UK Department for International Development (DFID) [201880]
FX UK Aid from the UK Department for International Development (DFID),
   Grant/Award Number: 201880
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NR 109
TC 53
Z9 57
U1 1
U2 59
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 MAY
PY 2019
VL 6
IS 3
AR e1344
DI 10.1002/wat2.1344
PG 11
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA HU0UU
UT WOS:000464987900001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Saha, M
   Eckelman, MJ
AF Saha, Mithun
   Eckelman, Matthew J.
TI Geospatial assessment of potential bioenergy crop production on urban
   marginal land
SO APPLIED ENERGY
LA English
DT Article
DE Urban marginal land; Bioenergy; Urban metabolism; Urban sustainability;
   Energy resilience
ID RENEWABLE ENERGY-SYSTEMS; BIOFUEL PRODUCTION; UNITED-STATES; BIOMASS;
   DEFINITIONS; INTEGRATION; AREAS; CHINA; YIELD; HEAT
AB Urban marginal land can be used for growing high yield bioenergy crops such as miscanthus and poplar. Here, a GIS-based modeling framework was created to assess potential urban marginal lands in Boston that include vacant lands and under-utilized public and private areas with adequate soil quality and sunlight. Using ArcGIS model builder as a spatial analysis tool, land parcels were screened for typical urban features such as buildings, driveways, parking lots, water and protected areas. The resultant layer was subjected to bio-geophysical modeling that includes soil quality, slope analysis and finally shadow analysis. Approximately 2660 ha of potential marginal land was identified as suitable, representing 24% of total land area in Boston. Using crop yield information, it was estimated that this marginal land could be used to produce up to a total of nearly 42,130 tons of high yield short rotation poplar biomass in a regular growing season. Also, bioenergy potential calculation revealed that for short rotation poplar, this amount of biomass can potentially yield up to 745 TJ (LHV) to 830 (HHV) TJ of yearly primary energy for the city of Boston that can be used for heat or electricity production, particularly for microgrid or district heating applications. This is equivalent to similar to 0.6% of Massachusetts primary energy demand for 2012. Ongoing work will explore other urban regions of Massachusetts and the Eastern US that might be able to fulfill part of their energy demand locally while providing benefits in environmental quality, economic development, and urban resilience. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Saha, Mithun; Eckelman, Matthew J.] Northeastern Univ, Dept Civil & Environm Engn, Boston, MA 02115 USA.
C3 Northeastern University
RP Eckelman, MJ (corresponding author), Northeastern Univ, Dept Civil & Environm Engn, 360 Huntington Ave, Boston, MA 02115 USA.
EM m.eckelman@neu.edu
OI Saha, Mithun/0000-0002-9046-0427
FU Northeastern University Provost's Office
FX The authors would like to acknowledge a seed grant from the Northeastern
   University Provost's Office. Thanks go to James Connolly, School of
   Public Policy and Urban Affairs, Northeastern University for assisting
   in data acquisition and Ms. Lauren Martin, communication specialist,
   Office of Sustainability, Tufts University for assisting in GIS
   analysis.
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NR 42
TC 45
Z9 50
U1 6
U2 81
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 DEC 1
PY 2015
VL 159
BP 540
EP 547
DI 10.1016/j.apenergy.2015.09.021
PG 8
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA CW3GV
UT WOS:000364880900048
DA 2025-04-22
ER

PT J
AU Neuman, M
   Chelleri, L
   Schuetze, T
AF Neuman, Michael
   Chelleri, Lorenzo
   Schuetze, Thorsten
TI Post-Pandemic Urbanism: Criteria for a New Normal
SO SUSTAINABILITY
LA English
DT Article
DE pandemic urbanism; COVID-19; new normal; urban resilience; pandemic
   resilience; urban sustainability; healthy cities
AB Globalization, tourism, virtuality, climate change, and the explosive growth of cities have generated a wide range of stressors, pollutants, and toxins that have been ravaging populations. This, coupled with viral, bacterial, and other pandemics, is rapidly creating a new reality that requires public health factors to be integrated more thoroughly into the planning and design of city regions. This prompts a questioning of the role and form of city centers as well as the distribution of people and activities in city regions. This goes beyond more outdoor spaces, places, and activities and new criteria for indoor events. Moreover, public transport, mobility, and infrastructure in general need to be retooled to deal with these emergent circumstances.
C1 [Neuman, Michael] Univ Westminster, Sch Architecture & Cities, London NW1 5LS, England.
   [Chelleri, Lorenzo] Univ Internac Catalunya UIC Barcelona, Sch Architecture, Barcelona 08017, Spain.
   [Chelleri, Lorenzo] BIST Barcelona, Barcelona Inst Technol, Barcelona 08017, Spain.
   [Schuetze, Thorsten] Sungkyunkwan Univ, Dept Architecture, Suwon 16419, South Korea.
C3 University of Westminster; Sungkyunkwan University (SKKU)
RP Neuman, M (corresponding author), Univ Westminster, Sch Architecture & Cities, London NW1 5LS, England.; Chelleri, L (corresponding author), Univ Internac Catalunya UIC Barcelona, Sch Architecture, Barcelona 08017, Spain.; Chelleri, L (corresponding author), BIST Barcelona, Barcelona Inst Technol, Barcelona 08017, Spain.; Schuetze, T (corresponding author), Sungkyunkwan Univ, Dept Architecture, Suwon 16419, South Korea.
EM m.neuman@westminster.ac.uk; Lchelleri@uic.es; t.schuetze@skku.edu
RI Schuetze, Thorsten/ABA-5119-2021
OI Schuetze, Thorsten/0000-0001-7849-2330
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NR 32
TC 7
Z9 7
U1 3
U2 28
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 10600
DI 10.3390/su131910600
PG 6
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 WG8FN
UT WOS:000707228900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Foster, S
AF Foster, Stephen
TI The key role for groundwater in urban water-supply security
SO JOURNAL OF WATER AND CLIMATE CHANGE
LA English
DT Article
DE urban climate-change adaptation; urban groundwater resources; urban
   water-supply security
ID AFRICA
AB Groundwater provides nearly 50% of urban water supply, and probably a higher proportion at times of water stress. Groundwater systems generally exhibit exceptional resilience to drought and are well positioned to enhance water security for a wide range of users, provided they are adequately managed and protected to play the role sustainably. The serious urban water-supply crises of recent years, such as those experienced by Cape Town, Sao Paulo, and Chennai, have highlighted the vulnerability of major cities to surface water drought and a failure to incorporate groundwater as a key element to enhance water-supply security. But some progress has been made worldwide in adaptive sustainable management of groundwater for urban water supply, and this is illustrated by the cases of Hamburg, Lima, and Bangkok.
C1 [Foster, Stephen] UCL, Dept Geog, WC1, London, England.
   [Foster, Stephen] IWA Groundwater Management Grp Chair, London, England.
C3 University of London; University College London
RP Foster, S (corresponding author), UCL, Dept Geog, WC1, London, England.; Foster, S (corresponding author), IWA Groundwater Management Grp Chair, London, England.
EM DrStephenFoster@aol.com
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NR 29
TC 7
Z9 7
U1 4
U2 22
PU IWA PUBLISHING
PI LONDON
PA REPUBLIC-EXPORT BLDG, UNITS 1 04 & 1 05, 1 CLOVE CRESCENT, LONDON,
   ENGLAND
SN 2040-2244
EI 2408-9354
J9 J WATER CLIM CHANGE
JI J. Water Clim. Chang.
PD OCT
PY 2022
VL 13
IS 10
BP 3566
EP 3577
DI 10.2166/wcc.2022.174
PG 12
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA 5T3AN
UT WOS:000875744100004
OA gold
DA 2025-04-22
ER

PT J
AU Walsh, LE
   Mead, BR
   Hardman, CA
   Evans, D
   Liu, LX
   Falagán, N
   Kourmpetli, S
   Davies, J
AF Walsh, Lael E.
   Mead, Bethan R.
   Hardman, Charlotte A.
   Evans, Daniel
   Liu, Lingxuan
   Falagan, Natalia
   Kourmpetli, Sofia
   Davies, Jess
TI Potential of urban green spaces for supporting horticultural production:
   a national scale analysis
SO ENVIRONMENTAL RESEARCH LETTERS
LA English
DT Article
DE resilience; food sovereignty; urban agriculture; green spaces;
   horticultural production potential; towns and cities
ID FOOD SECURITY; URBANIZATION; BARRIERS
AB As urban areas and land-use constraints grow, there is increasing interest in utilizing urban spaces for food production. Several studies have uncovered significant potential for urban growing to supplement production of fruit and vegetables, focusing on one or two cities as case studies, whilst others have assessed the global scale potential. Here, we provide a national-scale analysis of the horticultural production potential of urban green spaces, which is a relevant scale for agri-food and urban development policy making using Great Britain (GB) as a case study. Urban green spaces available for horticultural production across GB are identified and potential yields quantified based on three production options. The distribution of urban green spaces within 26 urban towns and cities across GB are then examined to understand the productive potential compared to their total extent and populations. Urban green spaces in GB, at their upper limit, have the capacity to support production that is 8x greater than current domestic production of fruit and vegetables. This amounts to 38% of current domestic production and imports combined, or >400% if exotic fruits and vegetables less suited to GB growing conditions are excluded. Most urban green spaces nationally are found to fall within a small number of categories, with private residential gardens and amenity spaces making up the majority of space. By examining towns and cities across GB in further detail, we find that the area of green space does not vary greatly between urban conurbations of different sizes, and all are found to have substantial potential to meet the dietary needs of the local urban population. This study highlights that national policies can be suitably developed to support urban agriculture and that making use of urban green spaces for food production could help to enhance the resilience of the national-scale food system to shocks in import pathways, or disruptions to domestic production and distribution.
C1 [Walsh, Lael E.; Liu, Lingxuan; Davies, Jess] Univ Lancaster, Ctr Global Ecoinnovat, Lancaster Environm Ctr, Cranfield LA1 4YX, Beds, England.
   [Mead, Bethan R.; Hardman, Charlotte A.] Univ Liverpool, Dept Psychol Sci, Liverpool L69 3BX, Merseyside, England.
   [Falagan, Natalia; Kourmpetli, Sofia] Cranfield Univ, Plant Sci Lab, Cranfield MK43 0AL, Beds, England.
   [Walsh, Lael E.] Teagasc Ashtown Res Ctr, Hort Dev Dept, Dublin 15, Ireland.
   [Evans, Daniel] Cranfield Univ, Sch Water Energy & Environm, Cranfield MK43 0AL, Beds, England.
C3 Lancaster University; University of Liverpool; Cranfield University;
   Teagasc; Cranfield University
RP Walsh, LE; Davies, J (corresponding author), Univ Lancaster, Ctr Global Ecoinnovat, Lancaster Environm Ctr, Cranfield LA1 4YX, Beds, England.; Walsh, LE (corresponding author), Teagasc Ashtown Res Ctr, Hort Dev Dept, Dublin 15, Ireland.
EM lael.walsh@teagasc.ie; jess.davies@lancaster.ac.uk
RI Mead, Bethan/AAR-1046-2020; Walsh, Lael/ABC-8755-2021; Kourmpetli,
   Sofia/AAW-2042-2020; Falagan, Natalia/AAA-1523-2020; Evans,
   Daniel/AAE-2326-2021
OI Walsh, Lael/0000-0002-4163-171X; Evans, Daniel/0000-0002-4484-7874;
   Kourmpetli, Sofia/0000-0002-5717-316X; Davies,
   Jessica/0000-0001-9832-7412; Falagan, Natalia/0000-0002-7672-9565
FU Global Food Security's 'Resilience of the UK Food System Programme';
   BBSRC; ESRC; NERC; Scottish Government as part of the Rurban Revolution
   project [BB/S01425X/1]; BBSRC [BB/S01425X/1] Funding Source: UKRI; ESRC
   [ES/T000252/1] Funding Source: UKRI
FX Thanks are extended to Professor Tim Hess and Chloe Sutcliffe for
   assistance with processes of DEFRA domestic production and import data.
   We also thank Robert Ellis and Kevin Walsh for their help in merging,
   cleaning and storing the data in a MySQL database. This research was
   funded through the Global Food Security's 'Resilience of the UK Food
   System Programme', with support from BBSRC, ESRC, NERC and Scottish
   Government as part of the Rurban Revolution project (BB/S01425X/1).
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NR 69
TC 22
Z9 23
U1 5
U2 45
PU IOP Publishing Ltd
PI BRISTOL
PA TEMPLE CIRCUS, TEMPLE WAY, BRISTOL BS1 6BE, ENGLAND
SN 1748-9326
J9 ENVIRON RES LETT
JI Environ. Res. Lett.
PD JAN 1
PY 2022
VL 17
IS 1
AR 014052
DI 10.1088/1748-9326/ac4730
PG 14
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA YG4MP
UT WOS:000742465200001
OA gold
DA 2025-04-22
ER

PT J
AU Pandit, A
   Minné, EA
   Li, F
   Brown, H
   Jeong, H
   James, JAC
   Newell, JP
   Weissburg, M
   Chang, ME
   Xu, M
   Yang, P
   Wang, RS
   Thomas, VM
   Yu, XW
   Lu, ZM
   Crittenden, JC
AF Pandit, Arka
   Minne, Elizabeth A.
   Li, Feng
   Brown, Hillary
   Jeong, Hyunju
   James, Jean-Ann C.
   Newell, Joshua P.
   Weissburg, Marc
   Chang, Michael E.
   Xu, Ming
   Yang, Perry
   Wang, Rusong
   Thomas, Valerie M.
   Yu, Xuewei
   Lu, Zhongming
   Crittenden, John C.
TI Infrastructure ecology: an evolving paradigm for sustainable urban
   development
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Infrastructure ecology; lnfrastructural symbiosis; Integrated urban
   infrastructure systems; Complex-adaptive systems; Sustainable urban
   infrastructure systems
ID SCALING LAWS; METABOLISM; ECOSYSTEM; CITIES; ENERGY; ORIGIN; MODEL;
   SIZE; LIFE
AB Increasing urbanization places cities at the forefront of achieving global sustainability. For cities to become more sustainable, however, the infrastructure on which they rely must also become more productive, efficient and resilient. Unfortunately the current paradigm of urban infrastructure development is fragmented in approach lacking a systems perspective. Urban infrastructure systems are analogous to ecological systems because they are interconnected, complex and adaptive components that exchange material, information and energy among themselves and to and from the environment, and exhibit characteristic scaling properties that can be expressed by Zipfs Law. Analyzing them together as a whole, as one would do for an ecological system, provides a better understanding about their dynamics and interactions, and enables system-level optimization. The adoption of this "infrastructure ecology" approach will result in urban (re)development that requires lower investment of financial and natural resources to build and maintain, is more sustainable (e.g. uses less materials and energy and generates less waste) and resilient, and enables a greater and more equitable opportunities for the creation of wealth and comfort. The 12 guiding principles of infrastructure ecology will provide a set of goals for urban planners, engineers and other decision-makers in an urban system for urban (re) development. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Pandit, Arka; Minne, Elizabeth A.; Jeong, Hyunju; James, Jean-Ann C.; Chang, Michael E.; Yu, Xuewei; Lu, Zhongming; Crittenden, John C.] Georgia Inst Technol, Brook Byers Inst Sustainable Syst, 828 W Peachtree St NW,Suite 320, Atlanta, GA 30332 USA.
   [Pandit, Arka; Minne, Elizabeth A.; Jeong, Hyunju; James, Jean-Ann C.; Yu, Xuewei; Lu, Zhongming; Crittenden, John C.] Georgia Inst Technol, Sch Civil & Environm Engn, Atlanta, GA 30332 USA.
   [Weissburg, Marc] Georgia Inst Technol, Sch Biol, Atlanta, GA 30332 USA.
   [Thomas, Valerie M.] Georgia Inst Technol, Sch Publ Policy, Atlanta, GA 30332 USA.
   [Newell, Joshua P.; Xu, Ming] Univ Michigan, Sch Nat Resources & Environm, Ann Arbor, MI 48109 USA.
   [Yang, Perry] Georgia Inst Technol, Sch City & Reg Planning, Atlanta, GA 30332 USA.
   [Brown, Hillary] CUNY City Coll, Spitzer Sch Architecture, New York, NY 10031 USA.
   [Li, Feng; Wang, Rusong] Chinese Acad Sci, Res Ctr Ecoenvironm Sci, Beijing 100085, Peoples R China.
   [Thomas, Valerie M.] Georgia Inst Technol, H Milton Stewart Sch Ind & Syst Engn, Atlanta, GA 30332 USA.
C3 University System of Georgia; Georgia Institute of Technology;
   University System of Georgia; Georgia Institute of Technology;
   University System of Georgia; Georgia Institute of Technology;
   University System of Georgia; Georgia Institute of Technology;
   University of Michigan System; University of Michigan; University System
   of Georgia; Georgia Institute of Technology; City University of New York
   (CUNY) System; City College of New York (CUNY); Chinese Academy of
   Sciences; Research Center for Eco-Environmental Sciences (RCEES);
   University System of Georgia; Georgia Institute of Technology
RP Pandit, A (corresponding author), Georgia Inst Technol, Brook Byers Inst Sustainable Syst, 828 W Peachtree St NW,Suite 320, Atlanta, GA 30332 USA.
EM arka.pandit@gatech.edu
RI LI, feng/HIR-1703-2022; Thomas, Valerie/U-4531-2019; Xu,
   Ming/F-3653-2010; lu, zhongming/S-2757-2019; Newell, Joshua/J-6665-2016
OI Xu, Ming/0000-0002-7106-8390; Weissburg, Marc/0000-0001-7278-5765; lu,
   zhongming/0000-0002-4151-5065; Li, Feng/0009-0002-4302-462X; Thomas,
   Valerie/0000-0002-0968-8863; Brown, Hillary/0000-0002-5753-456X; Yang,
   Perry Pei-Ju/0000-0003-0809-8922; Newell, Joshua/0000-0002-1440-8715
FU Brook Byers Institute for Sustainable Systems; Hightower Chair; Georgia
   Research Alliance at the Georgia Institute of Technology; National
   Science Foundation program for Emerging Frontiers in Research and
   Innovation (EFRI) [0836046]; Directorate For Engineering; Emerging
   Frontiers & Multidisciplinary Activities [1441208] Funding Source:
   National Science Foundation; Emerging Frontiers & Multidisciplinary
   Activities; Directorate For Engineering [0836046] Funding Source:
   National Science Foundation
FX This research was supported by the Brook Byers Institute for Sustainable
   Systems, Hightower Chair, and the Georgia Research Alliance at the
   Georgia Institute of Technology. The authors are thankful for a grant
   (#0836046) from the National Science Foundation program for Emerging
   Frontiers in Research and Innovation (EFRI). The views and ideas
   expressed herein are solely of the authors and do not represent the
   ideas of the funding agencies in any form.
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NR 62
TC 81
Z9 92
U1 5
U2 102
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 OCT 1
PY 2017
VL 163
SU S
BP S19
EP S27
DI 10.1016/j.jclepro.2015.09.010
PG 9
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 FN8UE
UT WOS:000416300200003
OA Bronze
DA 2025-04-22
ER

PT J
AU Nateghi, R
AF Nateghi, Roshanak
TI Multi-Dimensional Infrastructure Resilience Modeling: An Application to
   Hurricane-Prone Electric Power Distribution Systems
SO IEEE ACCESS
LA English
DT Article
DE Infrastructure resilience analytics; hurricane-induced outages;
   multi-dimensional resilience modeling; multivariate resilience
ID ROBUST DECISION-MAKING; PARAMETRIC REPRESENTATION; DISASTER RESILIENCE;
   RISK ANALYSIS; OUTAGE; RESTORATION; FRAMEWORK; MANAGEMENT; ACCURACY;
   VORTEX
AB Despite the scientific consensus on the multivariate nature of resilience, the majority of the existing approaches either focus on modeling a single dimension of resilience, or model its various dimensions separately. In this paper, we propose leveraging one of the most recent advances in statistical machine learning to characterize the multivariate inoperability of an electric power distribution system as a non-linear function of the system's topology, hurricane hazard characteristics, and the service area's climate and topography. The model can then be used as a predictive tool to assess various investment strategies for enhancing the multivariate resilience of the system. The results established the number of customers served, tree-trimming frequency, hurricane intensity, land-cover types, and soil moisture as the key predictors of the distribution system's multivariate inoperability. The variable influence heat-map helped identify the clusters of predictors that jointly influence one or more measures of inoperability. Moreover, the partial dependence plots were leveraged to examine the non-linear relationships between the focal predictors and the various measures of hurricane impact. The estimated multivariate inoperability model was then used to assess resilience enhancement strategies. The proposed approach can help infrastructure managers and urban planners to approximate the multivariate resilience of infrastructure holistically, predict the system's resilience under various stochastic perturbation regimes, and identify effective strategies to improve the overall resilience of the system.
C1 [Nateghi, Roshanak] Purdue Univ, Sch Ind Engn, Div Environm & Ecol Engn, W Lafayette, IN 47906 USA.
C3 Purdue University System; Purdue University
RP Nateghi, R (corresponding author), Purdue Univ, Sch Ind Engn, Div Environm & Ecol Engn, W Lafayette, IN 47906 USA.
EM rnateghi@purdue.edu
RI Nateghi, Roshanak/AAQ-2425-2020
OI Nateghi, Roshanak (Roshi)/0000-0003-4569-9233
FU NSF [1555582, 1728209]; Directorate For Engineering; Div Of Chem,
   Bioeng, Env, & Transp Sys [1555582] Funding Source: National Science
   Foundation; Directorate For Engineering; Div Of Civil, Mechanical, &
   Manufact Inn [1728209] Funding Source: National Science Foundation
FX This work was supported by NSF under Grant SEES 1555582 and Grant HDBE
   1728209.
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NR 84
TC 63
Z9 70
U1 2
U2 42
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 2169-3536
J9 IEEE ACCESS
JI IEEE Access
PY 2018
VL 6
BP 13478
EP 13489
DI 10.1109/ACCESS.2018.2792680
PG 12
WC Computer Science, Information Systems; Engineering, Electrical &
   Electronic; Telecommunications
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Computer Science; Engineering; Telecommunications
GA GB6JF
UT WOS:000429174700001
OA gold
DA 2025-04-22
ER

PT J
AU Westman, L
   Patterson, J
   Macrorie, R
   Orr, CJ
   Ashcraft, CM
   Broto, VC
   Dolan, D
   Gupta, M
   van der Heijden, J
   Hickmann, T
   Hobbins, R
   Papin, M
   Robin, E
   Rosan, C
   Torrens, J
   Webb, R
AF Westman, Linda
   Patterson, James
   Macrorie, Rachel
   Orr, Christopher J.
   Ashcraft, Catherine M.
   Broto, Vanesa Castan
   Dolan, Dana
   Gupta, Mukesh
   van der Heijden, Jeroen
   Hickmann, Thomas
   Hobbins, Robert
   Papin, Marielle
   Robin, Enora
   Rosan, Christina
   Torrens, Jonas
   Webb, Robert
TI Compound urban crises
SO AMBIO
LA English
DT Article
DE Cities; Complex adaptive systems; Compound urban crises; Critical urban
   studies; Governance
ID COMPLEX ADAPTIVE SYSTEMS; CLIMATE RESILIENCE; POLITICS; JUSTICE;
   FRAMEWORK; THINKING; POVERTY; POLICY; RISK; CITY
AB The crises that cities face-such as climate change, pandemics, economic downturn, and racism-are tightly interlinked and cannot be addressed in isolation. This paper addresses compound urban crises as a unique type of problem, in which discrete solutions that tackle each crisis independently are insufficient. Few scholarly debates address compound urban crises and there is, to date, a lack of interdisciplinary insights to inform urban governance responses. Combining ideas from complex adaptive systems and critical urban studies, we develop a set of boundary concepts (unsettlement, unevenness, and unbounding) to understand the complexities of compound urban crises from an interdisciplinary perspective. We employ these concepts to set a research agenda on compound urban crises, highlighting multiple interconnections between urban politics and global dynamics. We conclude by suggesting how these entry points provide a theoretical anchor to develop practical insights to inform and reform urban governance.
C1 [Westman, Linda; Broto, Vanesa Castan; Robin, Enora] Univ Sheffield, Urban Inst, 419 Portobello, Sheffield S14 DP, S Yorkshire, England.
   [Patterson, James] Fac Geosci, Copernicus Inst Sustainable Dev, Vening Meineszgebouw A,Princetonlaan 8A, NL-3585 CB Utrecht, Netherlands.
   [Macrorie, Rachel] Univ Utrecht, Human Geog & Spatial Planning Dept, Transforming Cities Hub, Princetonlaan 8a, NL-3584 CB Utrecht, Netherlands.
   [Orr, Christopher J.] Univ Waterloo, Sustainabil Policy Res Urban Transformat Lab, 200 Univ Ave, Waterloo, ON N2L 3G1, Canada.
   [Ashcraft, Catherine M.] Univ New Hampshire, Dept Nat Resources & Environm, 134 James Hall,56 Coll Rd, Durham, NH 03824 USA.
   [Dolan, Dana] George Mason Univ, Schar Sch Policy & Govt, 3351 Fairfax Dr, Arlington, VA 22201 USA.
   [Gupta, Mukesh] Asian Univ Women, Dept Environm Sci, 20-A M M Ali Rd, Chattogram 4000, Bangladesh.
   [van der Heijden, Jeroen] Victoria Univ Wellington, Wellington Sch Business & Govt, Rutherford House,Pipitea Campus, Wellington 6011, New Zealand.
   [Hickmann, Thomas] Lund Univ, Fac Social Sci, Dept Polit Sci, Allhelgona Kyrkogata 14, S-22100 Lund, Sweden.
   [Hobbins, Robert] Georgia State Univ, Urban Studies Inst, 55 Pk Pl NE, Atlanta, GA 30303 USA.
   [Papin, Marielle] McGill Univ, Dept Geog, 805 Rue Ouest, Sherbrooke, PQ H3A 0B9, Canada.
   [Rosan, Christina] Temple Univ, Dept Geog & Urban Studies, 320 Gladfelter Hall,1115 Polett Walk, Philadelphia, PA 19122 USA.
   [Torrens, Jonas] Eindhoven Univ Technol, Dept Ind Engn & Innovat Sci, POB 513, NL-5600 MB Eindhoven, Netherlands.
   [Webb, Robert] Australian Natl Univ, Inst Climate Energy & Disaster Solut, Canberra, ACT 2600, Australia.
   [Webb, Robert] Australian Natl Univ, Fenner Sch Environm & Soc, Canberra, ACT 2600, Australia.
C3 University of Sheffield; Utrecht University; University of Waterloo;
   University System Of New Hampshire; University of New Hampshire; George
   Mason University; Asian University for Women; Victoria University
   Wellington; Lund University; University System of Georgia; Georgia State
   University; McGill University; Pennsylvania Commonwealth System of
   Higher Education (PCSHE); Temple University; Eindhoven University of
   Technology; Australian National University; Australian National
   University
RP Westman, L (corresponding author), Univ Sheffield, Urban Inst, 419 Portobello, Sheffield S14 DP, S Yorkshire, England.
EM linda.westman@sheffield.ac.uk; j.j.patterson@uu.nl; r.m.macrorie@uu.nl;
   christopher.orr@mail.mcgill.ca; catherine.ashcraft@unh.edu;
   v.castanbroto@sheffield.ac.uk; ddolan1@gmu.edu; mukesh.gupta@auw.edu.bd;
   jeroen.vanderheijden@vuw.ac.nz; thomas.hickmann@svet.lu.se;
   rhobbins@gsu.edu; marielle.papin@mail.mcgill.ca;
   e.robin@sheffield.ac.uk; cdrosan@temple.edu; j.colenladeiatorrens@uu.nl;
   bob.webb@anu.edu.au
RI Broto, Vanesa/AAF-4485-2021; Dolan, Dana/ADQ-9553-2022; Webb,
   Robert/AGG-5084-2022; Papin, Marielle/ABH-3397-2020; van der Heijden,
   Jeroen/AAG-7582-2020; Hobbins, Robert/AAH-4736-2019; Colen Ladeia
   Torrens, Jonas/E-8541-2010; Hickmann, Thomas/AFY-8157-2022
OI Macrorie, Rachel/0000-0002-4148-7463; Dolan, Dana/0000-0002-4851-0240;
   Colen Ladeia Torrens, Jonas/0000-0002-9991-7980; Rosan,
   Christina/0000-0002-7744-449X; Hobbins, Robert/0000-0001-9882-665X;
   Ashcraft, Catherine/0000-0001-9706-1042; Webb,
   Robert/0000-0001-7832-3035; Papin, Marielle Diane/0000-0002-0674-6503;
   Castan Broto, Vanesa/0000-0002-3175-9859; Hickmann,
   Thomas/0000-0001-5072-7855; Orr, Christopher/0000-0003-2406-209X;
   Westman, Linda/0000-0003-4599-4996
FU project Low Carbon Action in Ordinary Cities (LO-ACT) from the European
   Research Council (ERC) under the European Union's Horizon 2020 research
   and innovation programme [804051]
FX We appreciate the support of the Earth System Governance network and
   their assistance in arranging the inaugural meeting of the ESG Urban
   Working Group at the 2020 Earth System Governance. The contributions of
   Linda Westman, James Patterson and Vanesa Casta ' n Broto have been
   funded by the project Low Carbon Action in Ordinary Cities (LO-ACT),
   that has received funding from the European Research Council (ERC) under
   the European Union's Horizon 2020 research and innovation programme
   Grant Agreement No 804051 -LO-ACT -ERC-2018-STG (PI: Casta ' n Broto).
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TC 24
Z9 26
U1 2
U2 36
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0044-7447
EI 1654-7209
J9 AMBIO
JI Ambio
PD JUN
PY 2022
VL 51
IS 6
BP 1402
EP 1415
DI 10.1007/s13280-021-01697-6
EA FEB 2022
PG 14
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology
GA 0M2EM
UT WOS:000756349100001
PM 35157255
OA Green Accepted, hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Balaian, SK
   Sanders, BF
   Qomi, MJA
AF Balaian, Sarah K.
   Sanders, Brett F.
   Qomi, Mohammad Javad Abdolhosseini
TI How urban form impacts flooding
SO NATURE COMMUNICATIONS
LA English
DT Article
ID WATER; MODEL; FLOW; MAP
AB Urbanization and climate change are contributing to severe flooding globally, damaging infrastructure, disrupting economies, and undermining human well-being. Approaches to make cities more resilient to floods are emerging, notably with the design of flood-resilient structures, but relatively little is known about the role of urban form and its complexity in the concentration of flooding. We leverage statistical mechanics to reduce the complexity of urban flooding and develop a mean-flow theory that relates flood hazards to urban form characterized by the ground slope, urban porosity, and the Mermin order parameter which measures symmetry in building arrangements. The mean-flow theory presents a dimensionless flood depth that scales linearly with the urban porosity and the order parameter, with different scaling for disordered square- and hexagon-like forms. A universal scaling is obtained by introducing an effective mean chord length representative of the unobstructed downslope travel distance for flood water, yielding an analytical model for neighborhood-scale flood hazards globally. The proposed mean-flow theory is applied to probe city-to-city variations in flood hazards, and shows promising results linking recorded flood losses to urban form and observed rainfall extremes.
   A statistical mechanics approach unveils how urban layout influences flood hazards linking flood risk to factors like ground slope, porosity, building arrangement symmetry, and chord length, offering a scalable model applicable worldwide.
C1 [Balaian, Sarah K.; Sanders, Brett F.; Qomi, Mohammad Javad Abdolhosseini] Univ Calif Irvine, Dept Civil & Environm Engn, Irvine, CA 92697 USA.
   [Sanders, Brett F.] Univ Calif Irvine, Dept Urban Planning & Publ Policy, Irvine, CA 92697 USA.
   [Qomi, Mohammad Javad Abdolhosseini] Univ Calif Irvine, Dept Mat Sci & Engn, Irvine, CA 92697 USA.
C3 University of California System; University of California Irvine;
   University of California System; University of California Irvine;
   University of California System; University of California Irvine
RP Sanders, BF; Qomi, MJA (corresponding author), Univ Calif Irvine, Dept Civil & Environm Engn, Irvine, CA 92697 USA.; Sanders, BF (corresponding author), Univ Calif Irvine, Dept Urban Planning & Publ Policy, Irvine, CA 92697 USA.; Qomi, MJA (corresponding author), Univ Calif Irvine, Dept Mat Sci & Engn, Irvine, CA 92697 USA.
EM bsanders@uci.edu; mjaq@uci.edu
RI Sanders, Brett/K-7153-2012; qomi, mahnaz/B-6509-2019
OI Sanders, Brett/0000-0002-1592-5204; Abdolhosseini Qomi, Mohammad
   Javad/0000-0001-6911-0994
FU NSF CAREER Award [2145537]; NSF [2031535]; GAANN Fellow through the UCI
   Civil and Environmental Engineering GAANN - US Department of Education
   [P200A210077]; Bridge Fellowship from UCI's Henry Samueli School of
   Engineering
FX M.J.A.Q. was partly supported by NSF CAREER Award No. 2145537 and NSF
   Award No. 2103125. B.F.S. was supported by NSF Award No. 2031535. S.B.
   was supported as a GAANN Fellow through the UCI Civil and Environmental
   Engineering GAANN grant funded by the US Department of Education
   (P200A210077). S.B. also gratefully acknowledges the Bridge Fellowship
   from UCI's Henry Samueli School of Engineering.
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NR 55
TC 9
Z9 9
U1 79
U2 107
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
EI 2041-1723
J9 NAT COMMUN
JI Nat. Commun.
PD AUG 19
PY 2024
VL 15
IS 1
AR 6911
DI 10.1038/s41467-024-50347-4
PG 10
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA D1X6P
UT WOS:001294188500001
PM 39160176
OA gold
DA 2025-04-22
ER

PT J
AU Haiqi, Z
AF Haiqi, Zhang
TI Analysis of Spatiotemporal Evolution and Influencing Factors of Water
   Poverty and Ecological Resilience Coupling Coordination in Chinese
SO ECOHYDROLOGY
LA English
DT Article
DE coupling coordination model; megacities; spatiotemporal evolution;
   Sustainable Development Goals; water poverty and ecological resilience
AB This study advances the understanding of urban sustainability by examining the interplay between water poverty and ecological resilience in China's megacities-a critical yet underexplored domain. Spanning a decade from 2013 to 2022, we leverage unique data sets from 10 megacities and introduce a pioneering coupling coordination model. This model is the cornerstone of our methodological innovation, allowing for an integrated analysis of the coupling relationship and spatiotemporal evolution of water poverty and ecological resilience. Our first innovation lies in applying this novel model, which provides a nuanced perspective on the dynamic linkages between water scarcity and ecosystem robustness. We reveal that from 2013 to 2022, there has been a significant upward trend in the comprehensive evaluation indices, with water poverty and ecological resilience witnessing a 166.13% and 204.29% increase, respectively. This underscores the substantial improvements achieved in these critical areas. Secondly, our research innovates by offering a detailed spatiotemporal analysis, highlighting the strengthening coupling and coordination degree between water poverty and ecological resilience over the observed period. The case of Wuhan, with a remarkable coupling coordination index of 9.305 in 2022, exemplifies a city that has reached a highly coordinated status, marking a significant advancement in urban environmental synergy. Lastly, our use of the Tobit model to explore the main influencing factors offers new insights into the drivers of the coupling and coordination level. We find that economic development, industrial structure and technological innovation positively influence this level, whereas population density and urbanization exert negative pressures.
C1 [Haiqi, Zhang] Natl Acad Governance, Party Sch Cent Comm CPC, Beijing, Peoples R China.
C3 Central Party School of the Chinese Communist Party
RP Haiqi, Z (corresponding author), Natl Acad Governance, Party Sch Cent Comm CPC, Beijing, Peoples R China.
EM haiqiera@163.com
OI zhang, haiqi/0009-0006-5308-8060
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NR 35
TC 0
Z9 0
U1 3
U2 3
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1936-0584
EI 1936-0592
J9 ECOHYDROLOGY
JI Ecohydrology
PD MAR
PY 2025
VL 18
IS 2
DI 10.1002/eco.2732
EA OCT 2024
PG 16
WC Ecology; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA 0FF4W
UT WOS:001339798600001
DA 2025-04-22
ER

PT J
AU Zhu, DM
   Chang, YJ
AF Zhu, Demi
   Chang, Ya-Ju
TI Urban water security assessment in the context of sustainability and
   urban water management transitions: An empirical study in Shanghai
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Urban water security; Urban water management transitions; Sustainable
   development; The CRITIC method
ID INDICATORS; FRAMEWORK; SEPARATE; RISK
AB Despite the relevance of urban water security in protecting water resources and supporting sustainable urban development, the literature seldom addresses sustainability and the features of urban water management practices in the assessment. Hence, based on the four sustainability dimensions (environment, society, economy and institution) and the cumulative objectives of urban water management transitions (from facilitating water supply, sewage, drainage, pollution treatment, water utilization, to resilience), this study analyzed the water security condition in Shanghai during 2011-2017 and examined the progress of the sequence of the Three-Year Action Plan on Environmental Protection and Construction implemented in Shanghai. Besides, the Criteria Importance Through Intercriteria Correlation (CRITIC) method was performed to determine indicator weights without integration of value choices. The results showed that the water security condition in Shanghai has gently variated during 2011-2013 and distinctly improved from 2013 (the single score as 0.270) to 2017 (the single score as 0.859). The condition of abrupt environmental events, water use, river quality, and pollution discharge has significantly fluctuated during the investigated period. Policy analysis pointed out that river quality improvement, pollutant control, and wastewater treatment advancement have been the focus throughout the urban water policy measures in Shanghai. However, unstable water resource availability leads to a risk of water security deterioration in Shanghai in the long term and sewage infrastructure planning shall be refined to facilitate sufficient sewage collection. Furthermore, Shanghai shall notice incorporating water use and disaster management into water policy planning to better support water utilization efficiency and urban resilience. This study contributes to the framework development and comparative assessment practices in urban water security studies. The application of the suggested framework and assessment approach can allow policymakers to analyze the improvement needs of urban water security and favor policy design. (C) 2020 Elsevier Ltd. All rights reserved.
C1 [Zhu, Demi; Chang, Ya-Ju] Shanghai Jiao Tong Univ, Sch Int & Publ Affairs, 1954 Huashan Rd, Shanghai 200030, Peoples R China.
   [Zhu, Demi] Shanghai Jiao Tong Univ, China Inst Urban Governance, 1954 Huashan Rd, Shanghai 200030, Peoples R China.
C3 Shanghai Jiao Tong University; Shanghai Jiao Tong University
RP Chang, YJ (corresponding author), Shanghai Jiao Tong Univ, Sch Int & Publ Affairs, 1954 Huashan Rd, Shanghai 200030, Peoples R China.
EM zhudemi@sjtu.edu.cn; yaju.chang@sjtu.edu.cn
RI Chang, Ya-Ju/M-6531-2018
FU National Social Science Fund of China [13ZD176]; China Postdoctoral
   Science Foundation [2019M661536]
FX This work was supported by The National Social Science Fund of China
   [grant number 13&ZD176] and China Postdoctoral Science Foundation [grant
   number 2019M661536].
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NR 60
TC 39
Z9 39
U1 7
U2 104
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 1
PY 2020
VL 275
AR 122968
DI 10.1016/j.jclepro.2020.122968
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 OC9SK
UT WOS:000579495100067
DA 2025-04-22
ER

PT J
AU Li, JY
   Liu, Z
   Han, GZ
   Demian, P
   Osmani, M
AF Li, Jinyi
   Liu, Zhen
   Han, Guizhong
   Demian, Peter
   Osmani, Mohamed
TI The Relationship Between Artificial Intelligence (AI) and Building
   Information Modeling (BIM) Technologies for Sustainable Building in the
   Context of Smart Cities
SO SUSTAINABILITY
LA English
DT Review
DE building information modeling (BIM); artificial intelligence (AI);
   sustainable; smart cities; city information modeling (CIM)
ID LIFE-CYCLE ASSESSMENT; GENETIC-ALGORITHM; BIBLIOMETRIC ANALYSIS; ENERGY
   EFFICIENCY; DEVELOPMENT GOALS; DECISION-MAKING; NEURAL-NETWORK; IOT
   DEVICES; CONSTRUCTION; OPTIMIZATION
AB The development of information technologies has been exponentially applied to the architecture, engineering, and construction (AEC) industries. The extent of the literature reveals that the two most pertinent technologies are building information modeling (BIM) and artificial intelligence (AI) technologies. The radical digitization of the AEC industry, enabled by BIM and AI, has contributed to the emergence of "smart cities", which uses information technology to improve urban operational and sustainable efficiency. Few studies have investigated the roles of AI and BIM in AEC from the perspective of sustainable buildings in assisting designers to make sustainable decisions at building and city levels. Therefore, the purpose of this paper is to explore the research status and future development trends in the relationship between AI and BIM-aided sustainable building in the context of the smart city to provide researchers, designers, and technology developers with potential research directions. This paper adopted a macro and micro bibliographic method, which is used to map out the general research landscape. This is followed by a more in-depth analysis of the fields of sustainable design, sustainable construction, sustainable development, and life cycle assessment (LCA). The results show that the combination of AI and BIM helps to make optimal decisions on materials, cost, energy, construction scheduling, and monitoring and promotes the development of sustainable buildings in both technical and human aspects so to achieve Sustainable Development Goals 7 (ensuring access to affordable, reliable, and sustainable modern energy for all), 9 (building resilient infrastructure, promote inclusive and sustainable industries, and foster innovation), 11 (building inclusive, safe, risk-resilient, and sustainable cities and human settlements), and 12 (ensuring sustainable consumption and production patterns). In addition, the combination of AI, BIM, and LCA technologies offers great potential to improve building performance, and the future development of AI and BIM integration should not only consider the sustainability of buildings but also consider the human-centered design concept and the health, safety, and comfort of stakeholders as one of the goals to realize the multidimensional development of smart city based on city information model.
C1 [Li, Jinyi; Liu, Zhen; Han, Guizhong] South China Univ Technol, Sch Design, Guangzhou 510006, Peoples R China.
   [Liu, Zhen] Gen Univ Guangdong Prov, Digital Intelligence Enhanced Design Innovat Lab, Key Lab Philosophy Social Sci, Guangzhou 510006, Peoples R China.
   [Demian, Peter; Osmani, Mohamed] Loughborough Univ, Sch Architecture Bldg & Civil Engn, Loughborough LE11 3TU, England.
C3 South China University of Technology; Loughborough University
RP Liu, Z; Han, GZ (corresponding author), South China Univ Technol, Sch Design, Guangzhou 510006, Peoples R China.; Liu, Z (corresponding author), Gen Univ Guangdong Prov, Digital Intelligence Enhanced Design Innovat Lab, Key Lab Philosophy Social Sci, Guangzhou 510006, Peoples R China.
EM 202230670064@mail.scut.edu.cn; liuzjames@scut.edu.cn;
   202020155854@mail.scut.edu.cn; p.demian@lboro.ac.uk;
   m.osmani@lboro.ac.uk
RI Osmani, Mohamed/S-3392-2016; Li, JinYi/GYQ-9267-2022; Demian,
   Peter/M-6456-2014
OI Demian, Peter/0000-0001-8391-8690; Liu, Zhen/0000-0001-6548-4403
FU "Digital Intelligence Enhanced Design Innovation Laboratory"; Key
   Laboratory of Philosophy and Social Science in General Universities of
   Guangdong Province, China
FX This research was funded by the "Digital Intelligence Enhanced Design
   Innovation Laboratory", Key Laboratory of Philosophy and Social Science
   in General Universities of Guangdong Province, China.
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NR 235
TC 1
Z9 1
U1 61
U2 61
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 24
AR 10848
DI 10.3390/su162410848
PG 38
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 Q8A8X
UT WOS:001386846700001
OA gold
DA 2025-04-22
ER

PT J
AU Roach, EL
   Al-Saidi, M
AF Roach, Emma Lauren
   Al-Saidi, Mohammad
TI Rethinking infrastructure rehabilitation: Conflict resilience of urban
   water and energy supply in the Middle East and South Sudan
SO ENERGY RESEARCH & SOCIAL SCIENCE
LA English
DT Article
DE Conflict resilience; Urban infrastructure; Infrastructure
   rehabilitation; Post-conflict reconstruction; Middle East; South Sudan
ID SUSTAINABLE DEVELOPMENT; VULNERABILITY; SECURITY; GOALS
AB Protracted armed conflicts in the Middle East and Africa are heavily impacting the infrastructure of basic services such as water, energy, healthcare, and education. People adapt to these persistent conditions through self-organization, private sector-driven services and the reliance on international aid. In rehabilitating infrastructure damaged by conflicts, there is a rift between the perspectives of emergency aid and development cooperation. In fragile states, aid often fails to capture the temporal aspects of infrastructure in terms of its vulnerability to recurrent breakouts of conflicts and infrastructure's long-term resilience. Besides, the issue of conflict resilience of basic infrastructure is lacking academic attention in terms of determining factors and best practices. In this paper, three examples of promising adaptation efforts are analyzed: the construction of water kiosks in South Sudan, self-organized markets for solar energy applications in Yemen, and the integration of schools with basic services in Syria. Using a comprehensive assessment framework of micro-level vulnerability (a system-unit risk perspective) and macro-level resilience (a whole-system strategy perspective), this paper highlights critical areas for enhancing conflict resilience in the case studies. It shows the importance of rethinking aspects of infrastructure development such as interconnectivity, mobility, centralization, or missing baselines. Infrastructure reconstruction efforts need to find a balance between highly integrated infrastructure systems and community-level production and delivery options. Further, for improving long-term infrastructure performance in conflict-ridden areas, softer issues need to be addressed, e.g., local capacities, institutional development, community trust, and the mobilization of reuse options or locally available resources.
C1 [Roach, Emma Lauren] Univ Appl Sci, TH Koln, Inst Technol & Resources Management Trop & Subtro, Betzdorfer Str 2, D-50679 Cologne, Germany.
   [Al-Saidi, Mohammad] Qatar Univ, Coll Arts & Sci, Ctr Sustainable Dev, POB 2713, Boha, Qatar.
C3 Qatar University
RP Al-Saidi, M (corresponding author), Qatar Univ, Coll Arts & Sci, Ctr Sustainable Dev, POB 2713, Boha, Qatar.
EM malsaidi@qu.edu.qa
RI Al-Saidi, Mohammad/JDC-7723-2023
OI Al-Saidi, Mohammad/0000-0002-1091-7475
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NR 75
TC 14
Z9 15
U1 6
U2 20
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2214-6296
EI 2214-6326
J9 ENERGY RES SOC SCI
JI Energy Res. Soc. Sci.
PD JUN
PY 2021
VL 76
AR 102052
DI 10.1016/j.erss.2021.102052
EA APR 2021
PG 12
WC Green & Sustainable Science & Technology; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA SK7OT
UT WOS:000656406400010
DA 2025-04-22
ER

PT J
AU Zollet, S
   Colombo, L
   De Meo, P
   Marino, D
   McGreevy, SR
   McKeon, N
   Tarra, S
AF Zollet, Simona
   Colombo, Luca
   De Meo, Paola
   Marino, Davide
   McGreevy, Steven R.
   McKeon, Nora
   Tarra, Simona
TI Towards Territorially Embedded, Equitable and Resilient Food Systems?
   Insights from Grassroots Responses to COVID-19 in Italy and the City
   Region of Rome
SO SUSTAINABILITY
LA English
DT Article
DE local food systems; alternative food networks; COVID-19; food policy;
   city region food system; organic farming; small-scale farming; food
   security; resilience
ID CLIMATE-CHANGE; PERSPECTIVES; CONSUMPTION; NETWORKS; POLITICS; BEHAVIOR
AB The negative impacts of the COVID-19 pandemic have further exposed and exacerbated the structural weaknesses and inequalities embedded in the global industrial agri-food system. While the mainstream narrative continues to emphasise the importance of ensuring the uninterrupted functioning of global supply chains to counter COVID-related disruptions, the pandemic has also highlighted the resilience of small-scale, sustainable family farming and of spatially and socially embedded food systems. Based on a quantitative and qualitative analysis of three surveys, this study examines organic and agroecological farmers' responses to the first COVID-related lockdown (March-May 2020) in Italy, as well as the responses of grassroots alternative food networks (AFN) in the city region of Rome. The results show how local grassroots action played a significant role in ensuring food access, provisioning, and distribution, often in the face of delayed or insufficient action of mainstream food system actors and institutions. These grassroots responses identify opportunities and barriers for agri-food system transformation away from neoliberal, market-based interventions and towards policies that support food sovereignty and democracy in the context of localised, agroecology-based and more resilient agri-food systems.
C1 [Zollet, Simona] Hiroshima Univ, Grad Sch Int Dev & Cooperat, Hiroshima 7398529, Japan.
   [Colombo, Luca] Italian Fdn Res Organ & Biodynam Agr FIRAB, I-00159 Rome, Italy.
   [De Meo, Paola] Terra Nuova, Viale Liegi 10, I-00198 Rome, Italy.
   [Marino, Davide; Tarra, Simona] Univ Molise, Dept Biosci & Terr, I-86090 Pesche, Italy.
   [McGreevy, Steven R.] Res Inst Humanity & Nat, Res Dept, Kyoto 6038047, Japan.
   [McKeon, Nora] Univ Roma Tre, Int Univ Coll, Dept Econ, I-00153 Rome, Italy.
C3 Hiroshima University; University of Molise; Research Institute for
   Humanity & Nature (RIHN); Roma Tre University
RP Zollet, S (corresponding author), Hiroshima Univ, Grad Sch Int Dev & Cooperat, Hiroshima 7398529, Japan.
EM simona.zollet@gmail.com; l.colombo@firab.it;
   demeoterranuovaorg@gmail.com; dmarino@unimol.it; srmcgreevy@gmail.com;
   nora.mckeon@fastwebnet.it; simonatarra@gmail.com
RI MARINO, DAVIDE/AAS-7246-2020
OI MARINO, DAVIDE/0000-0003-2471-6612; Zollet, Simona/0000-0002-9269-6804;
   McGreevy, Steven/0000-0002-3708-424X
FU Research Institute for Humanity and Nature (RIHN) [14200116]
FX Part of this research was supported by the FEAST Project (No.14200116),
   Research Institute for Humanity and Nature (RIHN).
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NR 86
TC 37
Z9 38
U1 3
U2 49
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR
PY 2021
VL 13
IS 5
AR 2425
DI 10.3390/su13052425
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 QW3NE
UT WOS:000628559800001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Thoyyib, VM
   Islam, KMB
   Guha, A
AF Thoyyib, V. M.
   Islam, K. M. Baharul
   Guha, Atulan
TI Exploring sustainable urban governance: Evolving dynamics, transitions,
   and ambiguities
SO JOURNAL OF URBAN AFFAIRS
LA English
DT Article; Early Access
DE Sustainable urban governance; bibliometric literature review;
   sustainability transition
ID CLIMATE-CHANGE ADAPTATION; CIVIL-SOCIETY; SMART CITIES; ECO-CITIES;
   PARTICIPATION; POLITICS; POLICY; CITY; INSTITUTIONS; ENVIRONMENT
AB In the context of rapid urbanization and urban sprawl, growing concerns about sustainability in urban governance have come to the forefront. The study employed exploratory bibliometric analysis to examine the literature on sustainable urban governance and critically investigate how sustainability is complexly woven into urban governance as a multidimensional phenomenon. The paper addresses the existing literature gaps, including contextual challenges and inadequate theoretical-methodological underpinnings, by analyzing 2,194 scholarly outputs. We propose a "sustainable urban governance framework" that rationalizes contextual justifications (at the macro-meso-micro and interlevel) by synthesizing the concept of good urban governance, interlinks of sustainability dimensions, and multilevel governance systems. Sustainable urban governance is defined in this study as a process and system that creates harmonious coexistence among urban settings' ecological and social strata through integrating rationalized contextual justifications, collective sustainability objectives, and inclusive urban resilience plans.
C1 [Thoyyib, V. M.; Islam, K. M. Baharul; Guha, Atulan] Indian Inst Management Kashipur, Publ Policy & Govt, IIM Kashipur Campus, Kashaipur 244713, India.
C3 Indian Institute of Management (IIM System); Indian Institute of
   Management Kashipur
RP Thoyyib, VM (corresponding author), Indian Inst Management Kashipur, Publ Policy & Govt, IIM Kashipur Campus, Kashaipur 244713, India.
EM muhammad.phdp2107@iimkashipur.ac.in
RI Thoyyib, V. M./HJI-2943-2023; Islam, K M Baharul/C-3959-2018; Guha,
   Atulan/ACC-0259-2022
OI , V.M. Thoyyib/0009-0001-8761-2717; Islam, K M
   Baharul/0000-0002-0858-7198; Guha, Atulan/0000-0002-9177-4225
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NR 101
TC 0
Z9 0
U1 6
U2 19
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 APR 22
PY 2024
DI 10.1080/07352166.2024.2340553
EA APR 2024
PG 23
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA OJ4N8
UT WOS:001206891300001
DA 2025-04-22
ER

PT J
AU Mkasimongwa, SW
   Fakour, H
   Hassani, HJ
   Sultan, BA
   Lai, HC
AF Mkasimongwa, Simon William
   Fakour, Hoda
   Hassani, Hussein Juma
   Sultan, Basma Abdulla
   Lai, Hsin-Chih
TI Assessment of Dar es Salaam's resilience to climate change disasters
   using the Climate Disaster Resilience Index (CDRI)
SO SINGAPORE JOURNAL OF TROPICAL GEOGRAPHY
LA English
DT Article
DE climate change; resilience; flooding; weather trends
ID CHANGE ADAPTATION; EXTREME WEATHER; CITY; RAINFALL; EVENTS
AB Climate change is becoming an increasingly significant issue in Africa, and the need for climate resilience assessment has intensified. Dar es Salam is one of Africa's emerging megacities. With a population of over seven million, which continues to grow, there is an urgent need to understand the city's ability to deal with natural disasters. The Climate Disaster Resilience Index (CDRI) was used in this study to assess the city's ability to withstand and cope with climatic hazards. The Index was quantified using sets of dimensions (social, physical, economic, natural, and institutional), with various parameters indicating the city's abilities, strengths, and vulnerabilities to potential climate-related disasters. Despite being moderately resilient to climate change disasters, the results of our study indicate that the city's economic and institutional features obtained the lowest scores and the least resilience level. The study's findings provide a perspective on aspects of the city management sectors in terms of resilience and which should be given greater consideration in order to strengthen the city's current and future resilience.
C1 [Mkasimongwa, Simon William] Chang Jung Christian Univ, Master Degree Program Safety & Hlth Sci, Tainan, Taiwan.
   [Fakour, Hoda; Hassani, Hussein Juma] Chang Jung Christian Univ, Int Coll Practice & Educ Environm, Int Program Sustainable Dev, Tainan, Taiwan.
   [Sultan, Basma Abdulla] Natl Taiwan Univ, Grad Inst Environm Engn, Taipei, Taiwan.
   [Lai, Hsin-Chih] Chang Jung Christian Univ, Dept Green Energy & Environm Resources, Tainan, Taiwan.
   [Mkasimongwa, Simon William] Univ Melbourne, Sch Geog Earth & Atmospher Sci, Parkville, Vic, Australia.
   [Fakour, Hoda] Natl Taiwan Normal Univ, Grad Inst Sustainabil Management & Environm Educ, Coll Sci, Taipei, Taiwan.
C3 Chang Jung Christian University; Chang Jung Christian University;
   National Taiwan University; Chang Jung Christian University; University
   of Melbourne; National Taiwan Normal University
RP Fakour, H (corresponding author), Chang Jung Christian Univ, Int Coll Practice & Educ Environm, Int Program Sustainable Dev, Tainan, Taiwan.
EM hfakour@ntnu.edu.tw
RI Fakour, Hoda/AAF-4675-2021; Mkasimongwa, Simon William/HWP-5833-2023
OI Fakour, Hoda/0000-0002-0778-005X; HASSANI, HUSSEIN/0009-0007-1752-642X;
   Mkasimongwa, Simon William/0000-0002-4719-6878
FU National Science and Technology Council [111-2621-M-002-012,
   112-2410-H-003-184]; National Science and Technology Council (NSTC) of
   Taiwan
FX This work was financially supported by the National Science and
   Technology Council (NSTC) of Taiwan via grant numbers
   111-2621-M-002-012-, and 112-2410-H-003-184-. We would like to extend
   our heartfelt appreciation to the reviewers whose constructive feedback,
   comments, and invaluable suggestions enhanced this paper.
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Z9 0
U1 9
U2 15
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0129-7619
EI 1467-9493
J9 SINGAPORE J TROP GEO
JI Singap. J. Trop. Geogr.
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PY 2024
VL 45
IS 3
BP 475
EP 497
DI 10.1111/sjtg.12546
EA MAY 2024
PG 23
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA H0E2U
UT WOS:001219353700001
DA 2025-04-22
ER

PT J
AU Smit, W
   Parnell, S
AF Smit, Warren
   Parnell, Susan
TI Urban sustainability and human health: an African perspective
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID WASTE E-WASTE; CLIMATE-CHANGE; FOOD SECURITY; ENVIRONMENTAL-CHANGE;
   WATER/HEALTH NEXUS; CITIES; IMPACT; POOR; VULNERABILITY; URBANIZATION
AB Unsustainable urban development has a negative impact on human health. African cities already face huge demands with regard to human health and urban sustainability, and global environmental change will increase these challenges, making it even more imperative that human health and urban sustainability are simultaneously addressed in locally appropriate ways. Key areas of intersection include increased temperatures, drought, flooding, the decreased ability of ecosystems to provide health-enhancing services (clean air, water and soil) and increasing urban food insecurity. There are a range or strategies that can be used to improve urban resilience and sustainability while simultaneously improving human health. The key challenge, however, is transforming African urban governance systems, so that objectives such as sustainability and improved health can be met.
C1 [Smit, Warren] Univ Cape Town, African Ctr Cities, ZA-7701 Rondebosch, South Africa.
   [Parnell, Susan] Univ Cape Town, Environm & Geog Sci Dept, ZA-7701 Rondebosch, South Africa.
C3 University of Cape Town; University of Cape Town
RP Smit, W (corresponding author), Univ Cape Town, African Ctr Cities, Private Bag X3, ZA-7701 Rondebosch, South Africa.
EM warren.smit@uct.ac.za
RI Parnell, Susan/Q-9963-2018; Smit, Warren/AAJ-3927-2021
OI Smit, Warren/0000-0003-4757-168X
FU Mistra Urban Futures network (Mistra the Foundation for Strategic
   Environmental Research); Mistra Urban Futures network (Swedish
   International Development Cooperation Agency); Provincial Government of
   the Western Cape (Department of Human Settlements); City of Cape Town;
   South African National Research Foundation
FX The authors would like to thank the editors of this issue for the
   invitation to submit a paper and the three anonymous reviewers for their
   extremely useful comments on the draft paper. The authors would also
   like to thank the funders of the African Centre for Cities' CityLab
   programme, who include: the Mistra Urban Futures network (funded by
   Mistra the Foundation for Strategic Environmental Research and the
   Swedish International Development Cooperation Agency), the Provincial
   Government of the Western Cape (Department of Human Settlements) and the
   City of Cape Town. In addition, Susan Parnell is partially funded by the
   South African National Research Foundation.
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TC 30
Z9 31
U1 0
U2 86
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 2012
VL 4
IS 4
BP 443
EP 450
DI 10.1016/j.cosust.2012.07.004
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 033BD
UT WOS:000310766600012
DA 2025-04-22
ER

PT J
AU Qi, L
   Najam, H
   Oskenbayev, Y
   Alisher, S
   Hairis, K
AF Qi, Lei
   Najam, Hina
   Oskenbayev, Yessengali
   Alisher, Sansyzbaev
   Hairis, Kamla
TI Impact of rapid urban construction land expansion on spatial
   inequalities of ecosystem health in China: Evidence from national,
   economic regional, and urban agglomeration perspectives
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Urban Agglomeration; Spatial Inequalities; Land Expansion; Ecological
   governance
AB Balancing urban construction land expansion (UCE) with ecosystem health (EHI) is critical for sustainable management. This study evaluates how UCE impacts EHI across China's cities, economic subregions, and urban agglomerations using multivariate satellite remote sensing data and spatial econometric models. Findings reveal a consistent decline in EHI, with an average annual decrease of 2.012 % between 2000 and 2023, correlating with UCE growth. Declining EHI clusters were concentrated in major urban agglomerations, notably BTH, GBA, and YRD. The analysis highlights a strong negative spatial dependency, with mature urban agglomerations experiencing significant spillover effects, while emerging regions faced more direct impacts. The research underscores the need for cross-regional ecological governance and tailored strategies to enhance ecological resilience in urban development.
C1 [Qi, Lei] Univ Malaya, Fac Built Enviroment, Kuala Lumpur 50603, Malaysia.
   [Qi, Lei] Hebei Agr Univ, Architectural Design Inst, Baoding 071000, Peoples R China.
   [Najam, Hina] Air Univ, Dept Business Studies, Islamabad, Pakistan.
   [Oskenbayev, Yessengali; Alisher, Sansyzbaev] Narxoz Univ, Sch Econ & Management, Zhandossov Str 55, Alma Ata, Kazakhstan.
   [Hairis, Kamla] Chengdu Normal Univ, Dept Ecol & Management, Chengdu, Peoples R China.
C3 Universiti Malaya; Hebei Agricultural University; Air University
   Islamabad; Narxoz University; Chengdu Normal University
RP Qi, L (corresponding author), Univ Malaya, Fac Built Enviroment, Kuala Lumpur 50603, Malaysia.; Qi, L (corresponding author), Hebei Agr Univ, Architectural Design Inst, Baoding 071000, Peoples R China.
EM 13663322298@163.com; Hinanajam786@yahoo.com;
   yessengali.oskenbayev@narxoz.kz; alisher.sansyzbaev@narxoz.kz
RI Najam, Hina/HHN-5675-2022; Oskenbayev, Yessengali/AFV-7578-2022
FU Committee of Science of the Ministry of Science and Higher Education of
   the Republic of Kazakhstan [AP23488084]
FX This research is support by the Committee of Science of the Ministry of
   Science and Higher Education of the Republic of Kazakhstan (Grant No.
   AP23488084) .
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NR 44
TC 0
Z9 0
U1 18
U2 18
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD MAR
PY 2025
VL 172
AR 113196
DI 10.1016/j.ecolind.2025.113196
EA MAR 2025
PG 16
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA Y7A5A
UT WOS:001433604700001
OA gold
DA 2025-04-22
ER

PT J
AU Yang, YF
   Jiang, MC
   Li, XQ
   Chen, YJ
AF Yang, Yaofeng
   Jiang, Mingchun
   Li, Xiuqing
   Chen, Yajuan
TI Energy poverty and household development resilience: Household level
   evidence from China
SO ENERGY
LA English
DT Article
DE Energy poverty; Household development resilience; Clean energy;
   Sustainable development
ID EMPIRICAL-EVIDENCE; INTERNET; IMPACTS
AB Energy poverty is a significant challenge facing sustainable human development and a key constraining factor for household development. Based on theoretical analysis, this study utilizes data from the Chinese Family Panel Studies (CFPS) conducted from 2012 to 2020 to analyze the impact of energy poverty on household development resilience and explore its underlying mechanisms through the Bootstrap method. The findings reveal the following: Firstly, energy poverty significantly reduces household development resilience, and this conclusion remains robust after addressing endogeneity issues and conducting a series of robustness tests. Secondly, energy poverty restricts household development by compromising health, educational levels, and internet access. Thirdly, the constraining effect of energy poverty on household development resilience exhibits heterogeneity, with a stronger impact in urban areas than rural areas and in eastern regions than central and western regions. Fourthly, further analysis suggests that the use of solid fuels significantly reduces household development resilience, whereas the utilization of clean energy facilitates the enhancement of household development resilience. This study provides important policy implications for addressing energy poverty and promoting long-term household development, serving as a reference for other developing countries.
C1 [Yang, Yaofeng; Jiang, Mingchun; Li, Xiuqing; Chen, Yajuan] Shaanxi Normal Univ, Northwest Inst Hist Environm & Socio Econ Dev, 620 West Changan Ave, Xian 710119, Shaanxi, Peoples R China.
C3 Shaanxi Normal University
RP Jiang, MC (corresponding author), Shaanxi Normal Univ, Northwest Inst Hist Environm & Socio Econ Dev, 620 West Changan Ave, Xian 710119, Shaanxi, Peoples R China.
EM jiangmingchun@snnu.edu.cn
RI Chen, Yajuan/AAT-6036-2021; Yang, Yaofeng/ABF-6171-2020
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NR 62
TC 1
Z9 1
U1 32
U2 39
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0360-5442
EI 1873-6785
J9 ENERGY
JI Energy
PD NOV 15
PY 2024
VL 309
AR 133003
DI 10.1016/j.energy.2024.133003
EA SEP 2024
PG 12
WC Thermodynamics; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Thermodynamics; Energy & Fuels
GA F7L5U
UT WOS:001311592000001
DA 2025-04-22
ER

PT J
AU Kaim, A
   Geva, K
   Siman-Tov, M
   Scholder, N
   Kimhi, S
   Bankauskaite, D
   Baran, M
   Baran, T
   Cosciug, A
   Eshel, Y
   Dumbadze, S
   Gabashvili, M
   Jiglau, G
   Kaniasty, K
   Koubova, A
   Marciano, H
   Matkeviciene, R
   Matichescu, M
   Teperik, D
   Adini, B
AF Kaim, Arielle
   Geva, Kristina
   Siman-Tov, Maya
   Scholder, Naomi
   Kimhi, Shaul
   Bankauskaite, Dalia
   Baran, Maria
   Baran, Tomasz
   Cosciug, Anatolie
   Eshel, Yohannan
   Dumbadze, Salome
   Gabashvili, Manana
   Jiglau, George
   Kaniasty, Krzysztof
   Koubova, Alice
   Marciano, Hadas
   Matkeviciene, Renata
   Matichescu, Marius
   Teperik, Dmitri
   Adini, Bruria
TI Mapping societal resilience across eight European nations in the context
   of multifaceted associations with global indices: An ecological study
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE societal resilience; Global indicators; Ecological study; National;
   Development
ID EMERGENCY
AB Facing global challenges like economic crises, political unrest, and public health issues, societies must be resilient. Societal Resilience is the collective capacity to endure and bounce back from such adversities. This study delves into its complexity and its ties to economic, social, healthcare, and political domains, offering insights for decision-makers and academics. A Societal Resilience questionnaire was distributed across eight nations (Czech Republic, Estonia, Georgia, Lithuania, Poland, Romania, Slovakia and Ukraine) in late 2022 and early 2023, with the results compared to international data. Statistical methods revealed significant links between Societal Resilience and four global indicators: urban population and immigrant stock share (both positively correlated), and population growth (negative), as well as perceiving climate change as a major threat (negative). Excluding Ukraine, twelve significant connections emerged, including gender equality and corruption perception. The research underscores the importance of multifaceted, informed approaches to bolster Societal Resilience, providing a policy and practice framework to navigate a complex global landscape. Further studies should expand the country sample to examine more relationships, like those between financial factors and Societal Resilience.
C1 [Kaim, Arielle; Geva, Kristina; Scholder, Naomi; Kimhi, Shaul; Adini, Bruria] Tel Aviv Univ, ResWell Res Collaborat, Tel Aviv, Israel.
   [Kaim, Arielle; Geva, Kristina; Siman-Tov, Maya; Adini, Bruria] Tel Aviv Univ, Sackler Fac Med, Sch Publ Hlth, Dept Emergency & Disaster Management, Tel Aviv, Israel.
   [Kimhi, Shaul; Eshel, Yohannan; Marciano, Hadas] Tel Hai Coll, Stress & Resilience Res Ctr, Tel Hai, Israel.
   [Bankauskaite, Dalia; Matkeviciene, Renata] Vilnius Univ, Fac Commun, Vilnius, Lithuania.
   [Baran, Maria] SWPS Univ, Fac Psychol, Warsaw, Poland.
   [Baran, Tomasz] Univ Warsaw, Fac Psychol, Warsaw, Poland.
   [Cosciug, Anatolie] Lucian Blaga Univ Sibiu, Sibiu, Romania.
   [Eshel, Yohannan] Univ Haifa, Dept Psychol, Haifa, Israel.
   [Dumbadze, Salome; Gabashvili, Manana] Georgian Inst Publ Affairs, Social Sci, Tbilisi, Georgia.
   [Jiglau, George] Univ Babes Bolyai din Cluj Napoca, Cluj Napoca, Romania.
   [Kaniasty, Krzysztof] Indiana Univ Penn, Dept Psychol, Philadelphia, PA USA.
   [Kaniasty, Krzysztof] Polish Acad Sci, Inst Psychol, Warsaw, Poland.
   [Koubova, Alice] Czech Acad Sci, Inst Philosophy, Prague, Czech Republic.
   [Koubova, Alice; Teperik, Dmitri] Syst Risk Inst, Prague, Czech Republic.
   [Marciano, Hadas; Matichescu, Marius] Univ Haifa, Inst Informat Proc & Decis Making, Haifa, Israel.
   [Matichescu, Marius] West Univ Timisoara, Timisoara, Romania.
C3 Tel Aviv University; Tel Aviv University; Sackler Faculty of Medicine;
   Tel Hai Academic College; Vilnius University; SWPS University of Social
   Sciences & Humanities; University of Warsaw; Lucian Blaga University of
   Sibiu; University of Haifa; Pennsylvania State System of Higher
   Education (PASSHE); Indiana University of Pennsylvania; Polish Academy
   of Sciences; Institute of Psychology of the Polish Academy of Sciences;
   Czech Academy of Sciences; Institute of Philosophy of the Czech Academy
   of Sciences; University of Haifa; West University of Timisoara
RP Kaim, A; Geva, K (corresponding author), Tel Aviv Univ, ResWell Res Collaborat, Tel Aviv, Israel.; Kaim, A (corresponding author), Tel Aviv Univ, Fac Med, Sch Publ Hlth, Dept Emergency & Disaster Management, POB 39040, IL-6139001 Tel Aviv, Israel.
EM akaim@tauex.tau.ac.il; krisgev@tauex.tau.ac.il
RI Marciano, Hadas/GLN-7540-2022; Jiglau, George/AAZ-5480-2020; MATICHESCU,
   Marius Lupsa/AAS-4052-2020; Kaim, Arielle/IQU-6183-2023; Adini,
   Bruria/AAW-4717-2020; Koubova, Alice/I-2829-2014; Cosciug,
   Anatolie/AAM-9999-2020
OI Dumbadze, Salome/0000-0002-0783-293X; Kaim, Arielle/0000-0003-1251-3551;
   Jiglau, George/0000-0002-1782-5899; Cosciug,
   Anatolie/0000-0003-3872-9879; Baran, Maria/0000-0003-3130-0244
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NR 54
TC 1
Z9 1
U1 4
U2 4
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 2024
VL 108
AR 104562
DI 10.1016/j.ijdrr.2024.104562
EA MAY 2024
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 E6Z4O
UT WOS:001304467500001
DA 2025-04-22
ER

PT J
AU McEwen, L
   Holmes, A
   Quinn, N
   Cobbing, P
AF McEwen, Lindsey
   Holmes, Andrew
   Quinn, Nevil
   Cobbing, Paul
TI 'Learning for resilience': Developing community capital through flood
   action groups in urban flood risk settings with lower social capital
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Civil agency; Flood group; Activism; Flood risk management;
   Participatory processes; Resilience; Social learning
ID GROUP PARTICIPATION; MANAGEMENT; DISASTER; KNOWLEDGE; FRAMEWORK;
   GOVERNANCE; CHALLENGES; HOUSEHOLDS; REDUCTION; EDUCATION
AB The role of civil agency in preparing and adapting to changing risk is an increasingly critical element within devolved local flood risk management. However, effective civil agency for flood resilience needs to draw on, and if necessary develop, community capital. Community Action Groups form one model for local resilience building for flood risk, and one actively supported by some governments. This research evaluates the participatory model of flood group development involving horizontal support rather than top-down or bottom-up generation. The process involved nascent groups working with an NGO facilitator in the implementation of a set of processes framed in the context of 'learning for resilience' that supported flood group development in a situation of challenged social capital (lower socio-economic status; health issues, lack of previous flood experience) in the UK. The methodology involved repeat semi-structured interviews with flood group members and flood risk management (FRM) agencies who worked with them through the process, as well as observation of flood group meetings. Results outline how groups emerge from transient and disconnected communities, the value of local knowledge, evolving communication skills and agency, normalisation of group members within participatory processes, frustrations within these processes, group sustainability and FRM agency perspectives. Discussion then critiques the co-working/partnership model and assesses its implications for social 'learning for resilience' within challenged flood groups with variable social capital. The authors propose a framework ('The 6Ss') for anticipating concerns or barriers within such participatory processes as a guide to future local urban DRR practice.
C1 [McEwen, Lindsey; Holmes, Andrew; Quinn, Nevil] Univ West England, Ctr Floods Communities & Resilience, Frenchay Campus,Coldharbour Lane, Bristol BS16 1QY, Avon, England.
   [Cobbing, Paul] Natl Flood Forum, Snuff Mill Warehouse, Bewdley DY12 2EL, Worcs, England.
C3 University of West England
RP McEwen, L (corresponding author), Univ West England, Ctr Floods Communities & Resilience, Frenchay Campus,Coldharbour Lane, Bristol BS16 1QY, Avon, England.
EM Lindsey.McEwen@uwe.ac.uk
OI Quinn, Nevil Wyndham/0000-0001-6510-3041
FU DEFRA Community Pathfinder project
FX The original research was funded through the DEFRA Community Pathfinder
   project. The authors would like to thank all participants.
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NR 63
TC 60
Z9 65
U1 3
U2 102
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 2018
VL 27
BP 329
EP 342
DI 10.1016/j.ijdrr.2017.10.018
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 FS0WC
UT WOS:000419493400030
DA 2025-04-22
ER

PT J
AU Harris, E
   Franz, A
   O'Hara, S
AF Harris, Eric
   Franz, Anna
   O'Hara, Sabine
TI Promoting Social Equity and Building Resilience through Value-Inclusive
   Design
SO BUILDINGS
LA English
DT Article
DE social equity; urban resilience; value-inclusive design
AB Urban design and architecture have inadvertently contributed to the bifurcation of societies divided into haves and have-nots, thus undermining social equity, restricting opportunity, and resulting in poverty next to overabundance and waste. Global population growth and urban migration pressures compound the problem. The call for social equity and justice is, therefore, urgent from a social perspective and an environmental one. This study explores a concept we call 'value-inclusive design' and its potential for transformation toward 'judicial equity'. Our value-inclusive design method proposes neighborhood interactions and co-design as a way to create welcoming spaces that preserve natural resources, support economic sustainability, and improve architectural design to foster health and wellbeing for people and the environment. This article discusses the potential of our value-inclusive design model in contributing to judicial equity by applying it to an international student competition called the 'Global Greenhouse Challenge #3', launched by Wageningen University and Research. By viewing the results of the Global Greenhouse challenge through the lens of value-inclusive design, we find that the model has merit and provides a useful theoretical framework for promoting social equity in urban planning and design. We conclude that by applying the model, its constructs can enhance design approaches that seek to improve the quality of life of residents while building resilience and shifting agency through co-design. The model can, thus, be a means for driving continuous improvement in architectural design and applying it in an educational setting such as the Global Greenhouse Challenge student competition.
C1 [Harris, Eric; Franz, Anna; O'Hara, Sabine] Univ Dist Columbia UDC, Coll Agr Urban Sustainabil & Environm Sci CAUSES, Dept Architecture & Urban Sustainabil DAUS, 4200 Connecticut Ave NW, Washington, DC 20008 USA.
RP Harris, E; Franz, A (corresponding author), Univ Dist Columbia UDC, Coll Agr Urban Sustainabil & Environm Sci CAUSES, Dept Architecture & Urban Sustainabil DAUS, 4200 Connecticut Ave NW, Washington, DC 20008 USA.
EM eric.harris@udc.edu; anna.franz@udc.edu; sabine.ohara@udc.edu
FU The authors gratefully acknowledge the inspirations so generously
   offered by their colleagues and friends, Rio Pals, Marta Eggers, and
   Marian Stuiver from Wageningen University and Research (WUR),
   Netherlands. Your partnership in the Urban Greenhouse Chall; Wageningen
   University and Research (WUR), Netherlands
FX The authors gratefully acknowledge the inspirations so generously
   offered by their colleagues and friends, Rio Pals, Marta Eggers, and
   Marian Stuiver from Wageningen University and Research (WUR),
   Netherlands. Your partnership in the Urban Greenhouse Challenge has been
   an enrichening experience for UDC, the communities of Ward 7, students,
   and the design teams. Furthermore, the authors specially thank Antawan
   Holmes, Jimell Sanders of Washington, DC, and Marianne Vaes for their
   amazing contributions to promote the success of the UGC #3. Lastly, our
   congratulations to all the participating teams in the UGC#3 competition.
   The culminating award ceremony was a fitting event to acknowledge the
   hard work of all the teams, it can be viewed here: Urban Greenhouse
   Challenge Awards.
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NR 67
TC 7
Z9 8
U1 12
U2 49
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 2023
VL 13
IS 8
AR 2081
DI 10.3390/buildings13082081
PG 31
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA Q3CX9
UT WOS:001056337800001
OA gold
DA 2025-04-22
ER

PT J
AU Shi, CY
   Xia, Y
   Qiu, H
   Wang, XY
   Zhou, Y
   Li, Y
   Liu, G
   Li, SW
   Gao, WJ
   Xu, TY
   Hu, JN
AF Shi, Chunyan
   Xia, Yueqiu
   Qiu, Hong
   Wang, Xiaoyang
   Zhou, Yue
   Li, You
   Liu, Gen
   Li, Siwen
   Gao, Weijun
   Xu, Tongyu
   Hu, Jianing
TI Exploring public attitudes toward implementing green infrastructure for
   sponge city stormwater management
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Sponge city stormwater management; Sponge city green infrastructure;
   Ecosystem service benefits; Willingness to invest; Perception survey
ID WILLINGNESS-TO-PAY; WATER REUSE; URBAN; PERCEPTIONS; POLLUTION; CHINA
AB Sponge city stormwater management (SCSM) strategy in China aims for sustainable stormwater handling. While many studies have examined the technical aspects of sponge city green infrastructure (SCGI), few have explored public perspectives. This study sought to understand public perceptions, the perceived value of SCGI's ecosystem service benefits, and the potential for diverse financial compensation methods in sponge city construction. A survey conducted in five Northeastern Chinese cities, involving 1,534 participants, was analyzed using descriptive statistics and logistic regression. The findings reveal no significant correlation between socio-demographic factors and understanding of stormwater management, indicating the concept's broad accessibility. Public valuation of ecosystem services showed clear priorities, and factors like homeownership and flood experiences significantly impacted the valuation of specific services. Moreover, the study identified a generally positive public attitude towards investing in SCSM, particularly through stormwater fees, underscoring the viability of diverse funding mechanisms. These insights are pivotal for policymakers and urban planners in formulating sustainable and resilient urban water management strategies.
C1 [Shi, Chunyan] Jilin Jianzhu Univ, Sch Municipal & Environm Engn, Changchun 130118, Peoples R China.
   [Shi, Chunyan; Xia, Yueqiu; Wang, Xiaoyang; Zhou, Yue; Gao, Weijun; Xu, Tongyu; Hu, Jianing] Univ Kitakyushu, Fac Environm Engn, Kitakyushu 8080135, Japan.
   [Qiu, Hong] China Railway Eryuan Engn Grp Co Ltd, Chengdu 610031, Peoples R China.
   [Hu, Jianing] Zhejiang Shuren Univ, Sch Management, Hangzhou 310015, Peoples R China.
   [Li, You] Ritsumeikan Univ, Asia Japan Res Inst, Ibaraki 5678570, Japan.
   [Liu, Gen; Li, Siwen] Northeast Normal Univ, Sch Environm, Changchun 130117, Peoples R China.
C3 Jilin Jianzhu University; University of Kitakyushu; Zhejiang Shuren
   University; Ritsumeikan University; Northeast Normal University - China
RP Xu, TY (corresponding author), Univ Kitakyushu, Fac Environm Engn, Kitakyushu 8080135, Japan.
EM xutongyu0409@outlook.com
RI Gao, Weijun/AAH-5061-2020; Xu, Tongyu/JHT-6002-2023; ZHOU,
   YUE/LTY-5953-2024
OI ZHOU, YUE/0009-0005-4610-5021
FU Jilin Province Foreign Expert Program, "Research on Rainwater Management
   in the Northeast Region Considering Ecosystem Service Benefits and
   Public Acceptance"; University of Kitakyushu
FX Acknowledgements We would like to express our gratitude to the editor
   and anonymous reviewers for their valuable comments on enhancing the
   manuscript. Additionally, we would like to thank Professor Weijun Gao,
   an academician of the Japan Academy of Engineering, along with
   Professors FUKUDA Hiroatsu and Bart Julien Dewancker from the University
   of Kitakyushu, for their guidance and support throughout this research.
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NR 64
TC 0
Z9 0
U1 13
U2 13
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD OCT 16
PY 2024
VL 14
IS 1
AR 24252
DI 10.1038/s41598-024-74343-2
PG 16
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA J4G7H
UT WOS:001336670300064
PM 39414841
OA gold
DA 2025-04-22
ER

PT J
AU Voghera, A
AF Voghera, Angioletta
TI The River agreement in Italy. Resilient planning for the co-evolution of
   communities and landscapes
SO LAND USE POLICY
LA English
DT Article
DE River agreement; Territorial system; Governance tool; Action plan;
   Co-evolution
ID FRAMEWORK; WATER
AB According to the "evolutionary" approach (Davoudi & Al., 2012), urban resilience implies that urban systems have capacity to react to several external disturbances - economic, social, environmental - regarding all components of urban governance and transforming itself in a new development model.
   River basins are considered an interesting space for experimental workshop on resilience, as a driver of territorial policy, for ordinary communities and landscapes, where the relationship between the sustainable use of territorial resources could led to new territorial strategies, as well as "promote managements synergies" at different levels of regional and local planning.
   River Agreements (RA) appear as an innovative governance method which can help in the drafting of potential plans and practices for the development of resilience in fluvial territories. It is a form of negotiated planning, that helps to involve social actors in order to: improve people's knowledge of current territorial conditions and the effects of human activities; increase social awareness; include society in the identification and implementation of solutions; to encourage innovative changes in planning objectives and urban and architectural design, starting with the legal and planning framework of an Action Plan. Starting from the '80 s, RA were experimentally tested in Belgium and France and currently widespread also in Italy. In Piedmont Region (Italy), it is recognized as a successful territorial governance tool used to define shared strategies, measures, rules and projects. We will present the case study of the Sangone River Agreement as the first participate planning and design experience in Piedmont signed by local actors.
C1 [Voghera, Angioletta] Politecn Torino, Interuniv Dept Reg & Urban Studies & Planning, Responsible Risk Resilience Ctr, Urban & Reg Planning Sci Board, Turin, Italy.
C3 Polytechnic University of Turin
RP Voghera, A (corresponding author), Politecn Torino, Interuniv Dept Reg & Urban Studies & Planning, Responsible Risk Resilience Ctr, Urban & Reg Planning Sci Board, Turin, Italy.
EM angioletta.voghera@polito.it
RI Voghera, Angioletta/IYT-3424-2023
FU international organization Recycling the City Network (RECNET) within
   the framework of the International Program on Urban Resilience (RESURBE)
FX A first version, developed with the collaboration of Dafne Regis, was
   awarded the 2016 RESURBE AWARD by the international organization
   Recycling the City Network (RECNET), within the framework of the
   International Program on Urban Resilience (RESURBE).
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NR 42
TC 14
Z9 14
U1 0
U2 21
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 FEB
PY 2020
VL 91
AR 104377
DI 10.1016/j.landusepol.2019.104377
PG 9
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA KH9GX
UT WOS:000510958200077
DA 2025-04-22
ER

PT J
AU Hayward, BM
AF Hayward, Bronwyn Mary
TI Rethinking Resilience: Reflections on the Earthquakes in Christchurch,
   New Zealand, 2010 and 2011
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE citizenship; earthquake; political agency; resilience; social justice
ID SOCIAL-ECOLOGICAL SYSTEMS
AB Resilience has emerged as a policy response in an era of public concern about disasters and risks that include fear of terrorism and environmental or economic catastrophe. Resilience is both a refreshing and a problematic concept. It is refreshing in that it creates new opportunities for interdisciplinary research and vividly reminds us that the material world matters in our social lives, political economy, and urban planning. However, the concept of resilience is also problematic. Widespread, uncritical calls for greater resilience in response to environmental, economic, and social challenges often obscure significant questions of political power. In particular, we may ask, resilience of what, and for whom? My reflection here was written in the context of the ongoing grief, disruption, and community protest in my home city of Christchurch, New Zealand, a city that experienced 59 earthquakes of magnitude 5 or more, and over 3800 aftershocks of magnitude 3 or greater between September 2010 and September 2012. From this perspective, I call for expanding our political imagination about resilience, to include ideas of compassion and political resistance. In my observation, both compassion, expressed as shared vulnerability, and resistance, experienced as community mobilization against perceived injustice, have been vital elements of grassroots community recovery.
C1 [Hayward, Bronwyn Mary] Univ Canterbury, Sch Social & Polit Sci, Canterbury, New Zealand.
   [Hayward, Bronwyn Mary] Univ Surrey, Sustainable Lifestyles Res Grp, Guildford GU2 5XH, Surrey, England.
   [Hayward, Bronwyn Mary] Univ Oslo, Voices Future, N-0316 Oslo, Norway.
C3 University of Canterbury; University of Surrey; University of Oslo
RP Hayward, BM (corresponding author), Univ Canterbury, Sch Social & Polit Sci, Canterbury, New Zealand.
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NR 36
TC 86
Z9 92
U1 0
U2 57
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 2013
VL 18
IS 4
AR 37
DI 10.5751/ES-05947-180437
PG 6
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 285YS
UT WOS:000329431700037
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Wang, Y
   Zheng, ZX
   Duan, XY
   Li, MS
   Li, Y
AF Wang, Yue
   Zheng, Zexin
   Duan, Xiaoyi
   Li, Mengsha
   Li, Ying
TI The Relationship between Mindfulness and Social Adaptation among Migrant
   Children in China: The Sequential Mediating Effect of Self-Esteem and
   Resilience
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE migrant children; mindfulness; self-esteem; resilience; social
   adaptation
ID SUPPORT; ADOLESCENTS; DEPRESSION; STRESS; HEALTH; SCALE
AB Social adaptation of migrant children is not only related to the physical and mental health and development of individuals, but also reflects the level of urban social integration and stable development. Mindfulness has a protective effect on individual social adaptation. Self-esteem and resilience were found to be positively associated with mindfulness and social adaptation. Based on the Positive Youth Development Perspective, this study aimed to explore whether self-esteem and resilience sequentially mediated the associations among mindfulness and social adaptation. A total of 526 migrant children were assessed with the questionnaires regarding mindfulness, self-esteem, resilience, and social adaptation. The results indicated that mindfulness was positively associated with social adaptation of migrant children. Self-esteem and resilience played the sequential mediating roles between mindfulness and social adaptation. The present study revealed the influence and mechanism of mindfulness on social adaptation and provided some guidance for the intervention programs to promote migrant children's adaptability.
C1 [Wang, Yue; Zheng, Zexin; Duan, Xiaoyi; Li, Mengsha; Li, Ying] Zhengzhou Univ, Sch Educ, Zhengzhou 450001, Peoples R China.
C3 Zhengzhou University
RP Li, Y (corresponding author), Zhengzhou Univ, Sch Educ, Zhengzhou 450001, Peoples R China.
EM liying@zzu.edu.cn
OI Zheng, Zexin/0000-0002-1017-5707; li, ying/0000-0002-6012-7615
FU Key Project of Educational Science Planning in Henan Province; 
   [2022JKZD32]
FX This work was supported by Key Project of Educational Science Planning
   in Henan Province, 2022JKZD32.
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NR 62
TC 4
Z9 4
U1 13
U2 89
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 DEC
PY 2022
VL 19
IS 23
AR 16241
DI 10.3390/ijerph192316241
PG 12
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 6X7AI
UT WOS:000896561700001
PM 36498315
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Matyas, D
AF Matyas, David
TI Towards a legal toolkit for disaster resilience and transformation
SO DISASTERS
LA English
DT Article
DE adaptation; class action; climate change; disaster; disaster risk
   management; disaster risk reduction; emergency power; human rights; law;
   litigation; regulatory action; resilience; rule of law; standing;
   statutory immunity; toolkit; torts; transformation
ID CLIMATE-CHANGE; URBAN RESILIENCE; ADAPTATION; MANAGEMENT; HAZARDS; DEAD;
   LAW
AB Law is acknowledged as playing an important role in the growing field of disaster resilience. Still, a detailed inquiry into the possible relationships between law and disaster resilience remains largely absent from the discourse. This paper explores how legal thinking, approaches, and instruments can act as 'tools' in altering the nature and conditions of disaster risks. It looks at how state institutions can wield them and non-state actors employ them to participate in processes of change. Moving beyond a resilience literature that has tended to focus on law in terms of statutes, regulations, and human rights, this paper examines the ways in which legal reasoning, procedure, and substantive law can be instrumentalised to resist shocks, provoke incremental adjustments, or even foment transformational shifts in underlying risk conditions. It concludes by suggesting that law can offer both a breadth of insights for reconceptualising how power influences resilience and a number of instruments for challenging these power structures.
C1 [Matyas, David] Univ Cambridge, Kings Coll, Fac Law, Cambridge CB2 1ST, England.
C3 University of Cambridge
RP Matyas, D (corresponding author), Univ Cambridge, Kings Coll, Fac Law, Cambridge CB2 1ST, England.
EM dgm53@cam.ac.uk
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NR 86
TC 7
Z9 7
U1 7
U2 26
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0361-3666
EI 1467-7717
J9 DISASTERS
JI Disasters
PD APR
PY 2021
VL 45
IS 2
BP 453
EP 476
DI 10.1111/disa.12430
EA NOV 2020
PG 24
WC Environmental Studies; Social Sciences, Interdisciplinary
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Social Sciences - Other Topics
GA RA0QF
UT WOS:000583532100001
PM 31943304
DA 2025-04-22
ER

PT J
AU Dubey, S
   Sahoo, KC
   Dash, GC
   Sahay, MR
   Mahapatra, P
   Bhattacharya, D
   del Barrio, MO
   Pati, S
AF Dubey, Shubhankar
   Sahoo, Krushna Chandra
   Dash, Girish Chandra
   Sahay, Mili Roopchand
   Mahapatra, Pranab
   Bhattacharya, Debdutta
   del Barrio, Mariam Otmani
   Pati, Sanghamitra
TI Housing-related challenges during COVID-19 pandemic among urban poor in
   low- and middle-income countries: A systematic review and gap analysis
SO FRONTIERS IN PUBLIC HEALTH
LA English
DT Review
DE housing; urban poor; opportunities; challenges; COVID-19; LMIC
ID RESILIENCE
AB The abysmal health of the urban poor or slum dwellers was attributed to structural inequities such as inadequate housing, water, and sanitation. This review aimed to assess housing-related opportunities and challenges during the COVID-19 pandemic among urban poor in low-and middle-income countries. For study identification, a comprehensive search was performed in 11 databases that yielded 22 potential studies. The inadequate housing infrastructure makes the lives of the urban poor more precarious during COVID-19. Typically, the houses lacked lighting, ventilation, and overcrowding. This review reflected that it is crucial to reimagine housing policy for the urban poor with an emphasis on pandemic/epidemic guidelines.
C1 [Dubey, Shubhankar; Sahoo, Krushna Chandra; Dash, Girish Chandra; Sahay, Mili Roopchand; Mahapatra, Pranab; Bhattacharya, Debdutta; Pati, Sanghamitra] ICMR, Reg Med Res Ctr, Hlth Technol Assessment India, Bhubaneswar, India.
   [Mahapatra, Pranab] Kalinga Inst Med Sci, Dept Psychiat, Bhubaneswar, India.
   [del Barrio, Mariam Otmani] WHO, UNDP World Bank, UNICEF, Special Programme Res & Training Trop Dis TDR, Geneva, Switzerland.
C3 Indian Council of Medical Research (ICMR); ICMR - Regional Medical
   Research Centre (RMRC), Bhubaneswar; Kalinga Institute of Industrial
   Technology (KIIT); The World Bank; World Health Organization; Special
   Programme for Research & Training in Tropical Diseases (TDR)
RP Sahoo, KC; Pati, S (corresponding author), ICMR, Reg Med Res Ctr, Hlth Technol Assessment India, Bhubaneswar, India.
EM sahookrushna@yahoo.com; drsanghamitra12@gmail.com
RI Sahoo, Krushna Chandra/KJM-4413-2024; BHATTACHARYA, DEBDUTTA/K-4709-2015
OI BHATTACHARYA, DEBDUTTA/0000-0001-5199-5288; DUBEY,
   SHUBHANKAR/0000-0002-6184-6662; Otmani del Barrio,
   Mariam/0000-0002-1990-8735
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NR 44
TC 9
Z9 10
U1 3
U2 13
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 SEP 23
PY 2022
VL 10
AR 1029394
DI 10.3389/fpubh.2022.1029394
PG 10
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA 5O5ZV
UT WOS:000872552000001
PM 36211702
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Glückler, J
   Panitz, R
AF Glueckler, Johannes
   Panitz, Robert
TI Live Music in the Time of Corona: On the Resilience and Impact of a
   Philharmonic Orchestra on the Urban Economy
SO SUSTAINABILITY
LA English
DT Article
DE creative industries; cultural industries; philharmonic orchestra;
   regional economic impact; urban economy; economic geography; Germany
ID UNIVERSITIES
AB During the COVID-19 pandemic, many governments enforced epidemic policies of social distancing, restrictions of professional practice, and the prohibition of cultural live performances. Because such policies dried up important sources of income in the cultural and tourism industries, this paper examines how cultural institutions coped with this crisis. Drawing on the case of the Mannheim Philharmonic Orchestra in Germany, we collected original data and employed a regional economic impact analysis to determine both the financial resilience of the Orchestra and its impact on the urban economy. Because the Orchestra could not reduce costs during the COVID-19 pandemic, public subsidies were crucial to fill the income gap of missed live concerts. In turn, the regional impact analysis suggests that the Orchestra maintained its positive effect on the economic demand for goods and services in the urban economy. When balancing the city's subsidies with the rental (city concert halls) and tax incomes generated by the Orchestra's local impact, the Orchestra managed to induce surplus revenue for the city's treasury.
C1 [Glueckler, Johannes; Panitz, Robert] Heidelberg Univ, Inst Geog, Econ Geog Grp, D-69120 Heidelberg, Germany.
C3 Ruprecht Karls University Heidelberg
RP Glückler, J (corresponding author), Heidelberg Univ, Inst Geog, Econ Geog Grp, D-69120 Heidelberg, Germany.
EM glueckler@uni-heidelberg.de
RI Glückler, Johannes/K-3807-2018; Panitz, Robert/ABC-4230-2021
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NR 45
TC 0
Z9 0
U1 10
U2 30
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 3611
DI 10.3390/su15043611
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 9L3GZ
UT WOS:000941442100001
OA gold
DA 2025-04-22
ER

PT J
AU MacAskill, K
   Guthrie, P
AF MacAskill, Kristen
   Guthrie, Peter
TI A hierarchy of measures for infrastructure resilience - learning from
   post-disaster reconstruction in Christchurch, New Zealand
SO CIVIL ENGINEERING AND ENVIRONMENTAL SYSTEMS
LA English
DT Article
DE disaster risk reduction; infrastructure resilience; post-disaster
   reconstruction
ID SYSTEMS; FRAMEWORK; DISASTER; CITIES; RISK
AB Recent research into the concept of resilience has shown that it helps key players in urban development to assess and set priorities for resistance and recovery for disaster risk management. However, a competing issue within post-disaster recovery is managing the trade-offs between quickly restoring infrastructure services versus taking time to consider and consult on alternative options. Through an examination of the post-earthquake reconstruction in Christchurch, New Zealand, this paper considers infrastructure resilience by using a hierarchy of measures. This hierarchy shows how infrastructure resilience needs to be considered as a series of interventions in response to different levels of damage. It elucidates the varying nature of resilience measures, the decision-making processes required to implement them and constraints, chiefly in funding, that prevent wider application of such measures. This is an important consideration for defining and acting upon the opportunity for change created by a disaster. Furthermore, a broader examination of resilience in disaster risk management highlights that clarification is needed over what constitutes an appropriate response for community involvement in post-disaster infrastructure reconstruction.
C1 [MacAskill, Kristen; Guthrie, Peter] Univ Cambridge, Dept Engn, Ctr Sustainable Dev, Cambridge CB2 1PZ, England.
C3 University of Cambridge
RP MacAskill, K (corresponding author), Univ Cambridge, Dept Engn, Ctr Sustainable Dev, Cambridge CB2 1PZ, England.
EM kam71@cam.ac.uk
OI Guthrie, Peter/0000-0002-9523-3733
FU Cambridge Commonwealth, European & International Trust; Earthquake
   Commission of New Zealand [13/U657]
FX This work was supported by the Cambridge Commonwealth, European &
   International Trust. Supplementary funding was provided by the
   Earthquake Commission of New Zealand [Project No. 13/U657].
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   The Rockefeller Foundation, WHAT IS RES
NR 16
TC 18
Z9 21
U1 4
U2 83
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1028-6608
EI 1029-0249
J9 CIV ENG ENVIRON SYST
JI Civ. Eng. Environ. Syst.
PD APR 3
PY 2015
VL 32
IS 1-2
SI SI
BP 130
EP 142
DI 10.1080/10286608.2015.1022728
PG 13
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA CF5WA
UT WOS:000352626800012
DA 2025-04-22
ER

PT J
AU Fan, C
   Jiang, XQ
   Mostafavi, A
AF Fan, Chao
   Jiang, Xiangqi
   Mostafavi, Ali
TI Evaluating crisis perturbations on urban mobility using adaptive
   reinforcement learning
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Adaptive reinforcement learning; Urban mobility; Resilience; Crisis;
   Simulation
ID DEMAND; PREDICTABILITY; SIMULATION
AB The objective of this study is to propose and test an adaptive reinforcement learning model that can learn the patterns of human mobility in a normal context and simulate the mobility during perturbations caused by crises, such as flooding, wildfire, and hurricanes. Understanding and evaluating human mobility patterns, such as destination and trajectory selection, can inform emerging congestion and road closures raised by disruptions in emergencies. Data related to human movement trajectories are scarce, especially in the context of emergencies, which places a limitation on applications of existing urban mobility models learned from empirical data. Models with the capability of learning the mobility patterns from data generated in normal situations and which can adapt to emergency situations are needed to inform emergency response and urban resilience assessments. To address this gap, this study creates and tests an adaptive reinforcement learning model that can predict the destinations of movements, estimate the trajectory for each origin and destination pair, and examine the impact of perturbations on humans' decisions related to destinations and movement trajectories. Employing millions of trajectory data from INRIX, the application of the proposed model is shown in the context of Houston and the flooding scenario caused by Hurricane Harvey in August 2017. The results show that the model can achieve more than 76% precision and recall at the model learning stage. The mean percentage error of the travel distance in predicted trajectories is 4.29%, compared to the travel distances in empirical data. In addition, predicted density of vehicles in grid cells are negatively associated with the traffic speed on road segments and inundation intensity in grid cells during the flooding. The results from the simulation further show that the model could predict traffic patterns and congestion resulting from urban flooding. The outcomes of the analysis demonstrate the capabilities of the model for analyzing urban mobility during crises, which can inform the public and decision-makers about the response strategies and resilience planning to reduce the impacts of crises on urban mobility.
C1 [Fan, Chao; Mostafavi, Ali] Texas A&M Univ, Zachry Dept Civil & Environm Engn, College Stn, TX 77843 USA.
   [Jiang, Xiangqi] Texas A&M Univ, Dept Comp Sci & Engn, College Stn, TX 77843 USA.
C3 Texas A&M University System; Texas A&M University College Station; Texas
   A&M University System; Texas A&M University College Station
RP Fan, C; Mostafavi, A (corresponding author), Texas A&M Univ, Zachry Dept Civil & Environm Engn, College Stn, TX 77843 USA.
EM chfan@tamu.edu; amostafavi@civil.tamu.edu
RI Mostafavi, Ali/R-2133-2018; Jiang, Xiangqi/KHD-0396-2024; Fan,
   Chao/AAM-2182-2020
FU National Science Foundation [CMMI-1846069, CMMI-1832662]; National
   Academies' Gulf Research Program Early-Career Research Fellowship;
   Amazon Web Services (AWS) Machine Learning Award
FX This material is based in part upon work supported by the National
   Science Foundation under Grant Number CMMI-1846069 (CAREER) ,
   CMMI-1832662 (CRISP 2.0 Type 2) , the National Academies' Gulf Research
   Program Early-Career Research Fellowship, the Amazon Web Services (AWS)
   Machine Learning Award. The authors also would like to thank INRIX for
   providing the data for this research. Jan Gerston pro-vided editorial
   services. 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, Amazon
   Web Services, Gulf Research Progream and INRIX.
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NR 59
TC 16
Z9 16
U1 6
U2 55
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 2021
VL 75
AR 103367
DI 10.1016/j.scs.2021.103367
EA SEP 2021
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 WN9EA
UT WOS:000712067400001
OA Bronze
DA 2025-04-22
ER

PT J
AU Xu, GD
   Tong, XX
AF Xu, Guang-Da
   Tong, Xiao-Xiao
TI Research on design strategies for wellness towns from the perspective of
   spatial resilience
SO JOURNAL OF ASIAN ARCHITECTURE AND BUILDING ENGINEERING
LA English
DT Article; Early Access
DE Spatial resilience; wellness town; spatial diversity; AHP(Analytic
   Hierarchy Process)
ID URBAN RESILIENCE; ECOLOGY
AB Based on spatial resilience theory, this paper explores strategies for enhancing the design of wellness towns. With the intensification of population aging in China, the wellness industry has experienced significant development opportunities, leading to rapid advancements in wellness town construction. However, the planning and development of wellness towns are currently hindered by issues such as severe homogeneity, limited disturbance resistance, and inadequate functionality, which contribute to increased spatial vulnerability. To address these challenges, this study incorporates spatial resilience theory to establish a spatial resilience evaluation system for wellness towns and proposes corresponding design enhancement strategies. Using the Analytic Hierarchy Process, the spatial resilience evaluation system for wellness towns is constructed, encompassing three dimensions: environment, facilities, and society. Design improvement strategies are proposed in three key areas: enhancing spatial stability, fostering spatial diversity, and establishing spatial recovery capacity. This research provides theoretical guidance for the design and construction of wellness towns, and the proposed spatial resilience evaluation system and design strategies offer practical value. However, given the inherent complexity of spatial planning in wellness towns, future studies should further refine the evaluation index system to enhance the scientific rigor and practical applicability of the research.
C1 [Xu, Guang-Da; Tong, Xiao-Xiao] China Univ Min & Technol, Sch Architecture & Design, Xuzhou 221116, Peoples R China.
C3 China University of Mining & Technology
RP Tong, XX (corresponding author), China Univ Min & Technol, Sch Architecture & Design, Xuzhou 221116, Peoples R China.
EM m15162217169_1@163.com
FU Social Science Foundation of Jiangsu Province [23YSB012]
FX This research was funded by Social Science Foundation of Jiangsu
   Province "Research project number for the inheritance of local
   architectural culture in northern Jiangsu and the construction of shared
   space in healthy towns and towns" (23YSB012).
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NR 26
TC 0
Z9 0
U1 4
U2 4
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1346-7581
EI 1347-2852
J9 J ASIAN ARCHIT BUILD
JI J. Asian Archit. Build. Eng.
PD 2025 JAN 31
PY 2025
DI 10.1080/13467581.2025.2455040
EA JAN 2025
PG 16
WC Architecture; Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Arts &amp; Humanities Citation Index (A&amp;HCI)
SC Architecture; Construction & Building Technology
GA U0I2C
UT WOS:001408726800001
OA gold
DA 2025-04-22
ER

PT J
AU Beery, T
AF Beery, Thomas
TI Exploring the Role of Outdoor Recreation to Contribute to Urban Climate
   Resilience
SO SUSTAINABILITY
LA English
DT Article
DE climate adaptation; climate resilience; multifunctional green
   infrastructure; nature-based tourism; outdoor recreation; sustainability
ID CHANGE ADAPTATION; IMPACTS; SUSTAINABILITY; SIMILARITIES; PRINCIPLES;
   TOURISM
AB Climate resilience is an important mix of climate mitigation and climate adaptation designed to minimize current and future disruption while promoting opportunity. Given the importance of the regional and local arena for consideration of impacts of climate change trends and needs for climate action, climate resilience in one community, Duluth, Minnesota, is considered. At the core of this project is the climate resilience question: what can we currently be doing in our communities to prepare for projected climate change while simultaneously improving life for current residents and visitors? Given the growing importance of outdoor recreation and nature-based tourism in Duluth, the role this sector may be able to play in climate resilience is considered. Using action research methodology, the research process of adjusting, presenting, and conducting follow-up from a National Oceanic and Atmospheric Administration Climate Adaptation for Coastal Communities workshop is presented. The study takes a unique look at one workshop outcome, a Duluth Parks and Recreation planning tool. Specifically, a resilience checklist is presented as a useful sample outcome of the overall process. Beyond the study community, the role of outdoor recreation to serve climate resilience is explored and affirmed.
C1 [Beery, Thomas] Kristianstad Univ, Fac Educ, SE-29188 Kristianstad, Sweden.
C3 Kristianstad University
RP Beery, T (corresponding author), Kristianstad Univ, Fac Educ, SE-29188 Kristianstad, Sweden.
EM thomas.beery@hkr.se
OI Beery, Thomas/0000-0002-2774-3731
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NR 74
TC 9
Z9 10
U1 2
U2 42
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2019
VL 11
IS 22
AR 6268
DI 10.3390/su11226268
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 JW8DR
UT WOS:000503277900081
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Balland, PA
   Rigby, D
   Boschma, R
AF Balland, Pierre-Alexandre
   Rigby, David
   Boschma, Ron
TI The technological resilience of US cities
SO CAMBRIDGE JOURNAL OF REGIONS ECONOMY AND SOCIETY
LA English
DT Article
DE urban resilience; technological crisis; related knowledge structure;
   institutions; inter-city networks; D83; L65; O33; R11
ID REGIONAL RESILIENCE; KNOWLEDGE; INNOVATION; RELATEDNESS; EMERGENCE;
   EVOLUTION; DISTRICTS; PIPELINES; NETWORKS; DYNAMICS
AB We study the resilience of cities by analysing the relative capacity to sustain their production of technological knowledge in the face of adverse events. Using patent applications in 366 Metropolitan Statistical Areas in the USA from 1975 to 2002, we analyse the vulnerability and response of cities to technological crises, defined as periods of sustained negative growth in patenting activity. We find that the frequency, intensity and duration of technological crises vary considerably across American cities. Econometric analysis suggests that cities with knowledge bases that are diverse, flexible and proximate to technologies in which they do not currently possess comparative advantage tend to avoid technological crises, have limited downturns in patent production and recover faster from crisis events.
C1 [Balland, Pierre-Alexandre; Boschma, Ron] Univ Utrecht, Dept Econ Geog, NL-3508 TC Utrecht, Netherlands.
   [Balland, Pierre-Alexandre; Boschma, Ron] Lund Univ, CIRCLE, S-22100 Lund, Sweden.
   [Rigby, David] Univ Calif Los Angeles, Dept Geog, Los Angeles, CA 90024 USA.
   [Rigby, David] Univ Calif Los Angeles, Dept Stat, Los Angeles, CA USA.
C3 Utrecht University; Lund University; University of California System;
   University of California Los Angeles; University of California System;
   University of California Los Angeles
RP Balland, PA (corresponding author), Univ Utrecht, Dept Econ Geog, Heidelberglaan 2, NL-3508 TC Utrecht, Netherlands.
EM p.balland@uu.nl; rigby@geog.ucla.edu; ron.boschma@circle.lu.se
RI Balland, Pierre-Alexandre/F-9402-2018; Boschma, Ron/HCI-9710-2022
OI Balland, Pierre-Alexandre/0000-0003-2787-4376
FU NWO (Netherlands); ANR (France); ESRC (UK); DFG (Germany)
FX This work is part of a project granted under the Open Research Area in
   Europe for the Social Sciences (ORA): 'Territories and technologies in
   an unstable knowledge economy: An evolutionary framework of regional
   resilience'. We would like to thank the NWO (Netherlands), ANR (France),
   ESRC (UK) and DFG (Germany) for funding this project.
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NR 76
TC 103
Z9 118
U1 13
U2 135
PU OXFORD UNIV PRESS
PI OXFORD
PA GREAT CLARENDON ST, OXFORD OX2 6DP, ENGLAND
SN 1752-1378
EI 1752-1386
J9 CAMB J REG ECON SOC
JI Camb. J. Regions Econ. Soc.
PD JUL
PY 2015
VL 8
IS 2
BP 167
EP 184
DI 10.1093/cjres/rsv007
PG 18
WC Development Studies; Economics; Geography
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics; Geography
GA CM7KG
UT WOS:000357870300003
OA Green Submitted, Green Published
DA 2025-04-22
ER

PT J
AU Shirzadi, N
   Rasoulian, H
   Nasiri, F
   Eicker, U
AF Shirzadi, Navid
   Rasoulian, Hadise
   Nasiri, Fuzhan
   Eicker, Ursula
TI Resilience Enhancement of an Urban Microgrid during Off-Grid Mode
   Operation Using Critical Load Indicators
SO ENERGIES
LA English
DT Article
DE microgrids; resilience; renewable energy systems; operation management
ID POWER
AB Microgrids (MGs) can be used as a solution to ensure resilience against power supply failures in electricity grids caused by extreme weather conditions, unavailability of generation capacities, and problems with transmission components. The literature is rich in research focusing on strengthening the planning of microgrids based on overall load demand. In this study, a critical load demand indicator will be calculated and used to identify optimum operation strategies of microgrids in a power failure mode. An urban microgrid with a large educational building is selected for the case study. Operation dispatch scenarios are developed to reinforce the system's resiliency in severe conditions. A mixed-integer linear programming (MILP) approach is employed to identify global optimum dispatch solutions based on a next 48 h plan for different seasons to formulate a whole-year operational model. The results show that the loss of power supply probability (LPSP), as an indicator of resiliency, could be lowered to near zero while minimizing operational cost.
C1 [Shirzadi, Navid; Rasoulian, Hadise; Nasiri, Fuzhan; Eicker, Ursula] Concordia Univ, Gina Cody Sch Engn & Comp Sci, 1455 Blvd Maisonneuve, Montreal, PQ H3G 1M8, Canada.
C3 Concordia University - Canada
RP Eicker, U (corresponding author), Concordia Univ, Gina Cody Sch Engn & Comp Sci, 1455 Blvd Maisonneuve, Montreal, PQ H3G 1M8, Canada.
EM ursula.eicker@concordia.ca
RI Nasiri, Fuzhan/JPL-6869-2023
OI Nasiri, Fuzhan/0000-0002-7423-0621; Shirzadi, Navid/0000-0003-1239-488X
FU NSERC [RGPIN-2016-06727]; Canada Excellence Research Chair in Smart,
   Sustainable and Resilient Communities and Cities - Tri-Agency
   Institutional Program Secretariat
FX This research was funded by [NSERC Discovery grant] grant number
   [RGPIN-2016-06727] and also the [Canada Excellence Research Chair in
   Smart, Sustainable and Resilient Communities and Cities] funded by
   [Tri-Agency Institutional Program Secretariat].
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NR 29
TC 1
Z9 1
U1 0
U2 6
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD OCT
PY 2022
VL 15
IS 20
AR 7669
DI 10.3390/en15207669
PG 15
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA 5O9GF
UT WOS:000872771600001
OA gold
DA 2025-04-22
ER

PT J
AU Lu, ZYF
   Li, W
   Zhou, SY
AF Lu, Zhouyangfan
   Li, Wei
   Zhou, Siyang
TI Constructing a resilient ecological network by considering source
   stability in the largest Chinese urban agglomeration
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Ecological networks; Source identification; Dynamic stability; Ecosystem
   services; Resilience; Urbanization
ID ECOSYSTEM SERVICES; LAND-USE; CONSERVATION; PATTERNS; IMPACTS; SYSTEMS;
   BASIN; FLOW
AB The dynamics of ecological sources and their impact on the resilience of ecological networks (ENs) have attracted increasing attention from both researchers and managers. Although a couple of studies have recognized the source-loss effects on network resilience, there is a knowledge gap in integrating spatiotemporal changes of the sources while constructing resilient ENs. Here, we propose the concept of dynamic stability (DS) to explore the sources' changes over a certain period and improve source identification by grading the DS in the largest urban agglomeration located in the middle reaches of the Yangtze River in China. An investigation of the five selected ecosystem service (ES) indicators in 2000, 2010, and 2018 identified 49, 54, and 68 preliminary sources, respectively, from which 11, 14, and three sources were extracted, respectively, with high, moderate, and low levels of DS, respectively. A three-tier EN was constructed by considering both the ESs and DSs of the extracted sources. The constructed network was scale-free and featured in small world in topology analysis. Moreover, a carefully designed attack test found that this EN was of good resilience as the three critical nodes that might cause a marked decay of resilience were in high or moderate DSs and were preferentially protected by the Ecological Conservation Red Line policy in China. In conclusion, the improved approach of considering the DSs of sources may help to precisely identify and protect the critical nodes threatening network resilience, which is highly desired in constructing ENs facing various rapid changes, especially in large-scale urbanized areas.
C1 [Lu, Zhouyangfan; Li, Wei; Zhou, Siyang] Beijing Normal Univ, Sch Environm, State Key Lab Water Environm Simulat, 19 Xinjiekouwai St, Beijing 100875, Peoples R China.
C3 Beijing Normal University
RP Li, W (corresponding author), Beijing Normal Univ, Sch Environm, State Key Lab Water Environm Simulat, 19 Xinjiekouwai St, Beijing 100875, Peoples R China.
EM weili@bnu.edu.cn
RI Lu, Zhouyangfan/MSY-3070-2025
FU National Natural Science Foundation of China; Second Tibetan Plateau
   Sci-entific Expedition and Research Program;  [72050001]; 
   [2019QZKK0307]
FX Acknowledgments This work was supported by the National Natural Science
   Foundation of China (Grant No. 72050001) , and the Second Tibetan
   Plateau Sci-entific Expedition and Research Program (Grant No.
   2019QZKK0307) .
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NR 57
TC 17
Z9 18
U1 11
U2 91
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 15
PY 2023
VL 328
AR 116989
DI 10.1016/j.jenvman.2022.116989
EA DEC 2022
PG 12
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 7E9DR
UT WOS:000901459900004
PM 36502702
DA 2025-04-22
ER

PT J
AU Ruszczyk, HA
   Broto, VC
   McFarlane, C
AF Ruszczyk, Hanna A.
   Broto, Vanesa Castan
   McFarlane, Colin
TI Urban health challenges: Lessons from COVID-19 responses
SO GEOFORUM
LA English
DT Article
DE Urban health; COVID-19; Climate change; Urbanization; Local government;
   Scales
ID CLIMATE-CHANGE; CITIES; RESILIENCE; SANITATION; POVERTY; HISTORY;
   KERALA; INDIA; POOR; CITY
AB The COVID-19 pandemic has forced a re-examination of our societies and in particular urban health. We argue that urban health needs to address three inter-related challenge areas - the unequal impacts of climate change, changing patterns of urbanization, and the changing role of the local government - across multiple spatial scales: from individual, households to neighbourhoods, cities, and urban hinterlands. Urban health calls for nimble institutions to provide a range of responses while adapting to crisis situations, and which operate beyond any one spatial scale. We illustrate our argument by drawing on South and Southeast Asian examples where responses to the pandemic have confronted these challenges across scales. A multiscalar definition of urban health offers an opportunity to challenge dominant approaches to urban health in research, policy, and practice.
C1 [Ruszczyk, Hanna A.; McFarlane, Colin] Univ Durham, Dept Geog, South Rd, Durham DH1 3LE, England.
   [Broto, Vanesa Castan] Univ Sheffield, Urban Inst, Climate Urbanism, ICOSS, 219 Portobello, Sheffield S1 4DP, S Yorkshire, England.
C3 Durham University; University of Sheffield
RP Ruszczyk, HA (corresponding author), Univ Durham, Dept Geog, South Rd, Durham DH1 3LE, England.
EM h.a.ruszczyk@durham.ac.uk; v.castanbroto@sheffield.co.uk;
   colin.mcfarlane@durham.ac.uk
RI Broto, Vanesa/AAF-4485-2021
OI Castan Broto, Vanesa/0000-0002-3175-9859
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NR 111
TC 12
Z9 14
U1 1
U2 10
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 MAY
PY 2022
VL 131
BP 105
EP 115
DI 10.1016/j.geoforum.2022.03.003
EA MAR 2022
PG 11
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA 2Q5CI
UT WOS:000820439800012
PM 35291575
OA Green Accepted, hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Wuijts, S
   Friederichs, L
   Hin, JA
   Schets, FM
   Van Rijswick, HFMW
   Driessen, PPJ
AF Wuijts, Susanne
   Friederichs, Lieke
   Hin, Judith A.
   Schets, Franciska M.
   Van Rijswick, Helena F. M. W.
   Driessen, Peter P. J.
TI Governance conditions to overcome the challenges of realizing safe urban
   bathing water sites
SO INTERNATIONAL JOURNAL OF WATER RESOURCES DEVELOPMENT
LA English
DT Article
DE Urban bathing water; connectivity; Bathing Water Directive; governance
   conditions; policy effectiveness; Water Framework Directive
ID CLIMATE-CHANGE; RISK; SUSTAINABILITY; CONNECTIVITY; EXPOSURE; GREEN
AB This study aims to identify governance conditions to realize urban bathing water sites using case study material from two cities in the Netherlands. Urban waters in Europe are increasingly considered an attractive feature for bathing, but research on the realization of urban bathing water sites has been limited. We find that it is important to account for the connectivity between water systems characteristics and governance conditions to increase effectiveness in the realization of urban bathing water sites. Ambitions regarding urban bathing water sites should be addressed in a wider policy context to create co-benefits, like other ambitions related to water quality, resilience and health. An analytical framework has been developed that could be used to support development and evaluation of future urban bathing water initiatives.
C1 [Wuijts, Susanne; Friederichs, Lieke; Hin, Judith A.; Schets, Franciska M.] Natl Inst Publ Hlth & Environm RIVM, Bilthoven, Netherlands.
   [Wuijts, Susanne; Driessen, Peter P. J.] Univ Utrecht, Copernicus Inst Sustainable Dev, Utrecht, Netherlands.
   [Van Rijswick, Helena F. M. W.] Univ Utrecht, Utrecht Ctr Water Oceans & Sustainabil Law, Utrecht, Netherlands.
C3 Netherlands National Institute for Public Health & the Environment;
   Utrecht University; Utrecht University
RP Wuijts, S (corresponding author), Natl Inst Publ Hlth & Environm RIVM, Bilthoven, Netherlands.; Wuijts, S (corresponding author), Univ Utrecht, Copernicus Inst Sustainable Dev, Utrecht, Netherlands.
EM susanne.wuijts@rivm.nl
RI Driessen, Peter/M-6751-2013
OI Driessen, Peter/0000-0002-0724-6666; van Rijswick,
   Helena/0000-0002-0492-1718
FU European Union's Horizon 2020 research and innovation programme
   [666773]; H2020 Societal Challenges Programme [666773] Funding Source:
   H2020 Societal Challenges Programme
FX This work was carried out under the H2020 BlueHealth project, funded by
   the European Union's Horizon 2020 research and innovation programme
   under grant agreement No. 666773. BlueHealth aims to understand the
   relationships between exposure to blue space and human health and
   wellbeing. The impact on public health of changes to both natural blue
   spaces and associated urban infrastructure in Europe is in the process
   of being investigated (www.bluehealth2020.eu).
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   ,, 2017, EEA Report
NR 59
TC 14
Z9 14
U1 0
U2 16
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0790-0627
EI 1360-0648
J9 INT J WATER RESOUR D
JI Int. J. Water Resour. Dev.
PD JUL 4
PY 2022
VL 38
IS 4
SI SI
BP 554
EP 578
DI 10.1080/07900627.2020.1755617
EA JUN 2020
PG 25
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA 1J3GE
UT WOS:000542020400001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Kim, S
   Andrew, SA
   de la Cruz, ER
   Kim, WJ
   Feiock, RC
AF Kim, Soyoung
   Andrew, Simon A.
   de la Cruz, Edgar Ramirez
   Kim, Woo-Je
   Feiock, Richard Clark
TI Impacts of Local Government Perceptions of Disaster Risks on Land
   Resilience Planning Implementation
SO LAND
LA English
DT Article
DE local government; land use; climate adaptation; urban resilience;
   municipal managers; urban sustainability; implementation
ID CLIMATE-CHANGE ADAPTATION; POLITICAL-INSTITUTIONS; COMMUNITY RESILIENCE;
   CITIES; POLICY; INFRASTRUCTURE; VULNERABILITY; CONSEQUENCES;
   EXPLANATION; INSTRUMENT
AB Local government managers play a critical role in sustainability and climate adaptation planning, and in relation to land-use policy, but little is known about how managers' hazard risk concerns influence the implementation of resilience policy or how this relationship may vary across different landscapes and types of hazards. Linking managers' disaster concerns to their planning choices is particularly relevant to resilience planning for adaptation to climate change, since greenhouse gas emissions are global but the harms produced by climate change are local. Moreover, climate adaptation planning encompasses risks from multiple hazards. For a sample of cities in the state of Florida, USA, we report the findings of empirical analysis of the relationships between local government managers' hazard-specific climate-related disaster concerns and their resilience-planning priorities for four types of hazards: river flooding, sea-level rise, storm surge and hurricane/tornado winds. Drawing on data from a survey of local disaster managers and policy data on the implementation of adaptation-planning actions, the link between managers' concerns and plan implementation is identified and compared across communities and across types of hazards. The pooled logit regression results reveal that the differences observed among these hazards persist even after controlling for objective risks and relevant community characteristics. We discuss the nature of the differences across four hazards and explore the implications of the findings for the literature on land use and climate adaptation and for the education of local government managers.
C1 [Kim, Soyoung] Seoul Natl Univ Sci & Technol, Sch Liberal Arts, 172 Gongreung dong, Seoul 01811, South Korea.
   [Andrew, Simon A.] Univ North Texas, Dept Publ Adm, Denton, TX 76203 USA.
   [de la Cruz, Edgar Ramirez] Univ Nevada Las Vegas, Dept Publ Policy & Leadership, Las Vegas, NV 89154 USA.
   [Kim, Woo-Je] Seoul Natl Univ Sci & Technol, Coll Business & Technol, Seoul 01811, South Korea.
   [Feiock, Richard Clark] Local Governance Res Lab, Tallahassee, FL 32303 USA.
C3 Seoul National University of Science & Technology; University of North
   Texas System; University of North Texas Denton; Nevada System of Higher
   Education (NSHE); University of Nevada Las Vegas; Seoul National
   University of Science & Technology
RP Feiock, RC (corresponding author), Local Governance Res Lab, Tallahassee, FL 32303 USA.
EM soyoung.kim@seoultech.ac.kr; simon.andrew@unt.edu;
   edgar.ramirez@unlv.edu; wjkim@seoultech.ac.kr; rcfeiock@lgresearch.org
OI KIM, WOO JE/0000-0002-1638-645X; Ramirez de la Cruz, Edgar
   Eugenio/0000-0002-7134-7613
FU Ministry of Education of the Republic of Korea; National Research
   Foundation of Korea [NRF-2020S1A5A2A03046573]
FX This work was supported by the Ministry of Education of the Republic of
   Korea and the National Research Foundation of Korea
   (NRF-2020S1A5A2A03046573).
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NR 94
TC 1
Z9 1
U1 7
U2 11
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 1085
DI 10.3390/land13071085
PG 14
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA ZU2Q2
UT WOS:001277740200001
OA gold
DA 2025-04-22
ER

PT J
AU Castellanos, LA
   Versini, PA
   Bonin, O
   Tchiguirinskaia, I
AF Castellanos, Leydy Alejandra
   Versini, Pierre-Antoine
   Bonin, Olivier
   Tchiguirinskaia, Ioulia
TI A Text-Mining Approach to Compare Impacts and Benefits of Nature-Based
   Solutions in Europe
SO SUSTAINABILITY
LA English
DT Article
DE text-mining analysis; European project; nature-based solutions; urban
   resilience
ID GREEN; VEGETATION; CITIES; SPACE; BLUE
AB Worldwide, a large set of initiatives have been carried out aiming to understand the benefits offered by Nature-Based Solutions (NBS) in urban areas. The European Commission (EC) has founded different projects that have performed scientific literature reviews regarding this topic. To objectively compare their results and consolidate the consensus about the impacts and benefits of NBS, we performed a text mining analysis. This methodology coupled with a visual representation of the data allowed to convert the EC funding projects reports (corpus) into a meaningful structured analysis. This method demonstrated that despite the different literature review methodologies of each report, there are common trends exhibited by the results, e.g., the NBS installation as a strategy of urban resilience, the recognition of ecosystem services (ESS) delivered by nature in urban spaces, or the importance of the EC's supporting role in the promotion of NBS. In addition, some network specific trends have also emerged and complemented the analysis: the assessment of the NBS performance with indicators, the participatory planning approach to NBS (involving citizen and local communities) and the economic value of their services.
C1 [Castellanos, Leydy Alejandra; Versini, Pierre-Antoine; Tchiguirinskaia, Ioulia] Ecole Ponts ParisTech, HM & Co Lab, F-77455 Champs Sur Marne, France.
   [Bonin, Olivier] Univ Gustave Eiffel, Ecole Ponts ParisTech, LVMT, F-77455 Champs Sur Marne, France.
C3 Institut Polytechnique de Paris; Ecole des Ponts ParisTech; Institut
   Polytechnique de Paris; Ecole des Ponts ParisTech; Universite
   Gustave-Eiffel
RP Castellanos, LA (corresponding author), Ecole Ponts ParisTech, HM & Co Lab, F-77455 Champs Sur Marne, France.
EM leydy.castellanos@enpc.fr; pierre-antoine.versini@enpc.fr;
   olivier.bonin@univ-eiffel.fr; ioulia.tchiguirinskaia@enpc.fr
RI Castellanos, Alejandra/MXM-1911-2025; Tchiguirinskaia,
   Ioulia/JZM-0994-2024
OI CASTELLANOS DIAZ, Leydy Alejandra/0000-0002-6200-7676; Bonin,
   Olivier/0000-0002-1487-2323
FU Chair "Hydrology for Resilient Cities" by Veolia group
FX This research is developed in the framework of the ANR EVNATURB project
   aiming to evaluate the ecosystem performances for renaturing urban
   environments. Additionally, partial financial support of the Chair
   "Hydrology for Resilient Cities" endowed by Veolia group is gratefully
   acknowledged.
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NR 33
TC 7
Z9 7
U1 1
U2 40
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2020
VL 12
IS 18
AR 7799
DI 10.3390/su12187799
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 OK2JS
UT WOS:000584477500001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Bin Wee, X
   Herrera, M
   Hadjidemetriou, GM
   Parlikad, AK
AF Bin Wee, Xian
   Herrera, Manuel
   Hadjidemetriou, Georgios M.
   Parlikad, Ajith Kumar
TI Simulation and Criticality Assessment of Urban Rail and Interdependent
   Infrastructure Networks
SO TRANSPORTATION RESEARCH RECORD
LA English
DT Article; Early Access
DE data and data science; modeling; infrastructure; infrastructure
   management and system preservation; tactical asset management;
   infrastructure condition assessment; sustainability and resilience;
   transportation infrastructure protection and preparedness; resilience
   and risk management
ID RESILIENCE; VULNERABILITY; SYSTEMS; LOAD
AB The role of urban infrastructure is becoming increasingly interdependent, resulting in new sources of vulnerability. Infrastructural asset failure can propagate between rail transportation and other infrastructure networks. There remains a lack of academic research focusing on the dynamic simulation of city-wide infrastructure using real-life data to quantify and cross-compare the criticality of assets. This paper aims to bridge this gap by developing a modeling methodology for interdependent urban infrastructure using complex network theory, which serves as a basis for investigating asset criticality and failure propagation. This modeling framework comprises the distribution of resource supply and demand, the topological representation and skeletonization of the infrastructure network, as well as modeling the propagation of asset failures. The framework is thereafter applied to a case study of the exposure of Greater London's rail transportation network to failures from electricity infrastructure, selected as a representative example of interdependent infrastructures within a large-scale urban metropolitan area. Two time-based criticality metrics are also proposed to measure the topological extent of infrastructural failures and economic impacts resulting from the failure propagation of given initial failure scenarios. The results of the case study demonstrate that these proposed criticality metrics are effective in capturing the dynamics of failure propagation, and that topological metrics in criticality assessment do not always reflect the resulting economic damages of infrastructural failures.
C1 [Bin Wee, Xian; Herrera, Manuel; Hadjidemetriou, Georgios M.; Parlikad, Ajith Kumar] Univ Cambridge, Dept Engn, Cambridge, England.
C3 University of Cambridge
RP Herrera, M (corresponding author), Univ Cambridge, Dept Engn, Cambridge, England.
EM amh226@cam.ac.uk
RI Hadjidemetriou, Georgios/AAK-3980-2020; Parlikad, Ajith
   Kumar/A-5269-2010; Herrera Fernandez, Antonio Manuel/J-2097-2015
OI Hadjidemetriou, Georgios M./0000-0002-6368-7976; Parlikad, Ajith
   Kumar/0000-0001-6214-1739; Herrera Fernandez, Antonio
   Manuel/0000-0001-9662-0017; Wee, Xian Bin/0000-0003-0553-811X
FU European Community [769255]; EPSRC [EP/N021614/1, EP/V056441/1] Funding
   Source: UKRI
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 European Community's H2020 Programme MG7-1-2017
   Resilience to Extreme (Natural and Man-made) Events, under Grant no.
   769255, ``GIS-based infrastructure management system for optimized
   response to extreme events of terrestrial transport networks
   (SAFEWAY)''.
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NR 54
TC 8
Z9 8
U1 2
U2 29
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0361-1981
EI 2169-4052
J9 TRANSPORT RES REC
JI Transp. Res. Record
PD 2022 JUN 30
PY 2022
DI 10.1177/03611981221103594
EA JUN 2022
PG 16
WC Engineering, Civil; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA 2W8CY
UT WOS:000824747400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Herreros-Cantis, P
   McPhearson, T
AF Herreros-Cantis, Pablo
   McPhearson, Timon
TI Mapping supply of and demand for ecosystem services to assess
   environmental justice in New York City
SO ECOLOGICAL APPLICATIONS
LA English
DT Article
DE cities; climate change adaptation; regulating ecosystem services;
   resilience; spatial analysis; urban ecosystem services
ID CLIMATE-CHANGE; AIR-QUALITY; GREEN SPACES; URBAN; LANDSCAPE; HEALTH;
   HAZARDS; EQUITY; VULNERABILITY; VEGETATION
AB Livability, resilience, and justice in cities are challenged by climate change and the historical legacies that together create disproportionate impacts on human communities. Urban green infrastructure has emerged as an important tool for climate change adaptation and resilience given their capacity to provide ecosystem services such as local temperature regulation, stormwater mitigation, and air purification. However, realizing the benefits of ecosystem services for climate adaptation depend on where they are locally supplied. Few studies have examined the potential spatial mismatches in supply and demand of urban ecosystem services, and even fewer have examined supply-demand mismatches as a potential environmental justice issue, such as when supply-demand mismatches disproportionately overlap with certain socio-demographic groups. We spatially analyzed demand for ecosystem services relevant for climate change adaptation and combined results with recent analysis of the supply of ecosystem services in New York City (NYC). By quantifying the relative mismatch between supply and demand of ecosystem services across the city we were able to identify spatial hot- and coldspots of supply-demand mismatch. Hotspots are spatial clusters of census blocks with a higher mismatch and coldspots are clusters with lower mismatch values than their surrounding blocks. The distribution of mismatch hot- and coldspots was then compared to the spatial distribution of socio-demographic groups. Results reveal distributional environmental injustice of access to the climate-regulating benefits of ecosystem services provided by urban green infrastructure in NYC. Analyses show that areas with lower supply-demand mismatch tend to be populated by a larger proportion of white residents with higher median incomes, and areas with high mismatch values have lower incomes and a higher proportion of people of color. We suggest that urban policy and planning should ensure that investments in "nature-based" solutions such as through urban green infrastructure for climate change adaptation do not reinforce or exacerbate potentially existing environmental injustices.
C1 [Herreros-Cantis, Pablo; McPhearson, Timon] New Sch, Urban Syst Lab, 79 5th Ave 16, New York, NY 10003 USA.
   [McPhearson, Timon] Cary Inst Ecosyst Studies, Box AB, Millbrook, NY 12545 USA.
   [McPhearson, Timon] Stockholm Univ, Stockholm Resilience Ctr, Kraftriket 2B, S-11419 Stockholm, Sweden.
C3 The New School; Cary Institute of Ecosystem Studies; Stockholm
   University
RP Herreros-Cantis, P (corresponding author), New Sch, Urban Syst Lab, 79 5th Ave 16, New York, NY 10003 USA.
EM herrerop@newschool.edu
RI McPhearson, Timon/JOZ-3799-2023
OI McPhearson, Timon/0000-0002-9499-0791; Herreros Cantis,
   Pablo/0000-0002-2278-0648
FU U.S. National Science Foundation (NSF) through the Urban Resilience to
   Extreme Weather-Related Events Sustainability Research Network
   [1444755]; U.S. NSF Accel-Net program NATURA [1927167]; U.S. NSF
   Convergence program [1934933]; BiodivERsA COFUND; Swedish Research
   Council for Environment, Agricultural Sciences, and Spatial Planning;
   Swedish Environmental Protection Agency; German Aerospace Center;
   National Science Centre; Research Council of Norway; Spanish Ministry of
   Economy and Competitiveness; SMARTer Greener Cities project through the
   Nordforsk Sustainable Urban Development and Smart Cities grant program
FX Research was supported by the U.S. National Science Foundation (NSF)
   through the Urban Resilience to Extreme Weather-Related Events
   Sustainability Research Network (NSF grant SES 1444755), the U.S. NSF
   Accel-Net program NATURA (grant 1927167), and U.S. NSF Convergence
   program (grant 1934933). Research was also partially funded through the
   2015-2016 BiodivERsA COFUND call for research proposals, with the
   national funders the Swedish Research Council for Environment,
   Agricultural Sciences, and Spatial Planning; the Swedish Environmental
   Protection Agency; the German Aerospace Center; the National Science
   Centre; the Research Council of Norway; the Spanish Ministry of Economy
   and Competitiveness; and the SMARTer Greener Cities project through the
   Nordforsk Sustainable Urban Development and Smart Cities grant program.
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NR 118
TC 72
Z9 76
U1 30
U2 302
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1051-0761
EI 1939-5582
J9 ECOL APPL
JI Ecol. Appl.
PD SEP
PY 2021
VL 31
IS 6
AR e02390
DI 10.1002/eap.2390
EA JUL 2021
PG 21
WC Ecology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA UK2NO
UT WOS:000678867200001
PM 34142407
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Mo, YQ
   Audrito, G
   Dasgupta, S
   Beal, J
AF Mo, Yuanqiu
   Audrito, Giorgio
   Dasgupta, Soura
   Beal, Jacob
TI Near-optimal knowledge-free resilient leader election
SO AUTOMATICA
LA English
DT Article
DE Leader election; Multiagent system; Resilience; Aggregate computing;
   Nonlinear feedback control; Global stability
AB Leader election, is a fundamental coordination problem in distributed systems. It has been addressed in many ways for different systems. Among these approaches, resilient leader election algorithms are of particular interest due to the ongoing emergence of open, complex distributed systems such as smart cities and the Internet of Things. However, previous algorithms attaining the optimal scaling of O(diameter) stabilization time complexity either assume some prior knowledge of the network or else that very large messages can be sent. In this paper, we present a resilient leader election algorithm with O(diameter) stabilization time, small messages, and no prior knowledge of the network. This algorithm is based on aggregate computing, which provides a layered approach to algorithm development based on composition of resilient algorithmic "building blocks."With our algorithm, a key design function g(center dot) defines important performance attributes: a fast-growing g(center dot) will delay discarding of obsolete data, while a slow-growing g(center dot) will slow down convergence to a single leader. We prove that the root best asymptotic behavior for g(x) is (1 + root 2)x +o(x), guaranteeing a near-optimal time complexity of (2 + 2 2) diameter + o(diameter) rounds for stabilization. (c) 2022 Elsevier Ltd. All rights reserved.
C1 [Mo, Yuanqiu] Southeast Univ, Nanjing 211189, Peoples R China.
   [Audrito, Giorgio] Univ Turin, I-10149 Turin, TO, Italy.
   [Dasgupta, Soura] Univ Iowa, Iowa City, IA 52242 USA.
   [Beal, Jacob] Raytheon BBN Technol, Cambridge, MA 02138 USA.
C3 Southeast University - China; University of Turin; University of Iowa;
   RTX Corporation; Raytheon BBN Technologies
RP Dasgupta, S (corresponding author), Univ Iowa, Iowa City, IA 52242 USA.
EM moyuanqiu@gmail.com; giorgio.audrito@unito.it; soura-dasgupta@uiowa.edu;
   jakebeal@ieee.org
RI Audrito, Giorgio/S-4613-2018; Mo, Yuanqiu/AAE-3807-2022; Elçin,
   Evrim/U-9718-2019
OI Mo, Yuanqiu/0000-0002-0500-5201
FU Defense Advanced Research Projects Agency (DARPA);  [HR001117C0049]
FX ?Work supported by the Defense Advanced Research Projects Agency (DARPA)
   under contract HR001117C0049. The views, opinions, and/or findings
   expressed are those of the author (s) and should not be interpreted as
   represent-ing official views or policies of the Department of Defense or
   U.S. Government. This document does not contain technology or technical
   data controlled under either U.S. International Traffic in Arms
   Regulation or U.S. Export Administration Regulations. Approved for
   public release, distribution unlimited (DARPA DISTAR case 32981, 6/4/20)
   . The material in this paper was partially presented at the 21st IFAC
   World Congress (IFAC 2020) , July 12-17, 2020, Berlin, Germany. This
   paper was recommended for publication in revised form by Associate
   Editor Julien M. Hendrickx under the direction of Editor Christos G.
   Cassandras.
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NR 28
TC 6
Z9 6
U1 0
U2 7
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0005-1098
EI 1873-2836
J9 AUTOMATICA
JI Automatica
PD DEC
PY 2022
VL 146
AR 110583
DI 10.1016/j.automatica.2022.110583
EA SEP 2022
PG 13
WC Automation & Control Systems; Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Automation & Control Systems; Engineering
GA 5A5UX
UT WOS:000862953600007
OA Bronze
DA 2025-04-22
ER

PT J
AU Gibson, MJ
   Chen, AS
   Khoury, M
   Vamyakeridou-Lyroudia, LS
   Stewart, D
   Wood, M
   Savic, DA
   Djordjevic, S
AF Gibson, M. J.
   Chen, A. S.
   Khoury, M.
   Vamyakeridou-Lyroudia, L. S.
   Stewart, D.
   Wood, M.
   Savic, D. A.
   Djordjevic, S.
TI Case study of the cascading effects on critical infrastructure in Torbay
   coastal/pluvial flooding with climate change and 3D visualisation
SO JOURNAL OF HYDROINFORMATICS
LA English
DT Article; Proceedings Paper
CT 13th International Conference on Hydroinformatics (HIC)
CY 2018
CL Palermo, ITALY
DE cellular-automaton; climate; coastal; critical-infrastructure; hazard;
   pluvial
ID HAZARD; URBAN; RESILIENCE; FRAMEWORK
AB Critical infrastructures (CIs) are commonly designed, built and maintained based on rigorous standards in order to withstand the climate and weather-related pressures. However, shifts in climate characteristics may result in increases of the magnitude and frequency of potential risks, or expose specific CI to new or increased risks not previously considered. As vital components of the normal functioning of modern societies, their resilience encompasses the operational elements, their structural integrity and the capacity to maximise business output under climate stressors. In this work, we apply an integrated and participatory methodological approach to assess the risk and enhance the resilience of interconnected CIs to urban flooding under climate change. The proposed methodology has been applied to an extended case study in Torbay to extend previous works, which seeks to protect coastal communities from future events through using the proposed methodology to justify future investment in coastal defences, as a part of the validation of EU-CIRCLE projects developed methodologies.
C1 [Gibson, M. J.; Chen, A. S.; Khoury, M.; Vamyakeridou-Lyroudia, L. S.; Savic, D. A.; Djordjevic, S.] Univ Exeter, Ctr Water Syst, Harrison Bldg,North Pk Rd, Exeter EX4 4QF, Devon, England.
   [Stewart, D.; Wood, M.] Torbay Council, Town Hall, Torquay TQ1 3DR, England.
   [Savic, D. A.] KWR Water Cycle Res Inst, Nieuwegein, Netherlands.
C3 University of Exeter; KWR Watercycle Research Institute
RP Gibson, MJ (corresponding author), Univ Exeter, Ctr Water Syst, Harrison Bldg,North Pk Rd, Exeter EX4 4QF, Devon, England.
EM m.j.gibson@exeter.ac.uk
RI Djordjevic, Slobodan/P-8853-2015; Chen, Albert/E-2735-2010; Savic,
   Dragan/G-2071-2012
OI Chen, Albert S./0000-0003-3708-3332; Savic, Dragan/0000-0001-9567-9041
FU EC H2020 EU-CIRCLE project [GA 653824]; UK NERC FFIR/SINATRA project
   [NE/K008765/1]; UK Royal Academy of Engineering ESPRIT project
   [UUFRIP/100024]; UK Engineering and Physical Sciences Research Council
   [EP/H015736/1]; EU [GA 603663, GA 244047]; EPSRC [EP/M018865/1,
   EP/H015736/1] Funding Source: UKRI
FX The work presented in this paper was partially funded by the ongoing EC
   H2020 EU-CIRCLE (GA 653824), the UK NERC FFIR/SINATRA (grant
   NE/K008765/1), and the UK Royal Academy of Engineering ESPRIT (grant
   UUFRIP/100024) projects. The development of CADDIES model was funded by
   the UK Engineering and Physical Sciences Research Council, grant
   EP/H015736/1 (Simplified Dual-Drainage Modelling for Flood Risk
   Assessment in Urban Areas). The impact assessment tools were built upon
   the outcomes from the EU FP7 PEARL (GA 603663) and CORFU (GA 244047)
   projects. The authors would like to thank the Environment Agency,
   Ordnance Survey (GB), and Torbay Council for the provision of data. The
   support of Infoworks ICM license from Innovyze is also appreciated. The
   authors would also like to thank the Environment Agency, Ordnance Survey
   (GB), and Torbay Council for the provision of data.
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NR 31
TC 7
Z9 8
U1 4
U2 20
PU IWA PUBLISHING
PI LONDON
PA ALLIANCE HOUSE, 12 CAXTON ST, LONDON SW1H0QS, ENGLAND
SN 1464-7141
EI 1465-1734
J9 J HYDROINFORM
JI J. Hydroinform.
PD JAN
PY 2020
VL 22
IS 1
SI SI
BP 77
EP 92
DI 10.2166/hydro.2019.032
PG 16
WC Computer Science, Interdisciplinary Applications; Engineering, Civil;
   Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Conference Proceedings Citation Index - Science (CPCI-S)
SC Computer Science; Engineering; Environmental Sciences & Ecology; Water
   Resources
GA KF9JZ
UT WOS:000509558500007
OA hybrid
DA 2025-04-22
ER

PT J
AU Flora, A
   Cardone, D
   Vona, M
   Perrone, G
AF Flora, Amedeo
   Cardone, Donatello
   Vona, Marco
   Perrone, Giuseppe
TI A Simplified Approach for the Seismic Loss Assessment of RC Buildings at
   Urban Scale: The Case Study of Potenza (Italy)
SO BUILDINGS
LA English
DT Article
DE seismic performance assessment; direct and indirect losses; RC frame
   buildings; seismic resilience; socio-economic impacts of seismic
   scenarios
ID VULNERABILITY ASSESSMENT; STRENGTH; RISK
AB Comprehensive methodologies based on a fully probabilistic approach (i.e., the performance-based earthquake engineering approach, PBEE), represent a refined and accurate tool for the seismic performance assessment of structures. However, those procedures are suitable for building-specific evaluations, appearing extremely time-consuming if applied at the urban scale. In the proposed contribution, simplified loss assessment procedure will be applied at the urban scale with reference to the residential building stock of the center of Potenza. After the identification of the main reinforced concrete (RC) structural typologies and the definition of specific archetype building numerical models, the direct estimation of expected annual loss (DEAL) methodology will be applied to derive the EAL (i.e., expected annual loss) of RC buildings, deriving information on the effectively seismic quality (or seismic resilience) of the aforementioned built heritage at urban scale. Similarly, the monetary losses associated with downtime are evaluated. Preliminary considerations on the socio-economic effects of seismic scenarios on the territorial scale are also proposed.
C1 [Flora, Amedeo; Cardone, Donatello; Vona, Marco; Perrone, Giuseppe] Univ Basilicata, Sch Engn, Viale Ateneo Lucano 10, I-85100 Potenza, Italy.
C3 University of Basilicata
RP Flora, A (corresponding author), Univ Basilicata, Sch Engn, Viale Ateneo Lucano 10, I-85100 Potenza, Italy.
EM amedeo.flora@unibas.it; donatello.cardone@unibas.it;
   marco.vona@unibas.it; giuseppe.perrone@alice.it
RI Cardone, Donatello/AAG-8218-2020; flora, amedeo/AHC-3150-2022
OI Vona, Marco/0000-0002-7989-8559; Flora, Amedeo/0000-0002-8698-1852
FU PON-AIM 2014-2020 project - Italian Ministry of University and Public
   Instruction
FX This research was funded by the PON-AIM 2014-2020 project supported by
   the Italian Ministry of University and Public Instruction.
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NR 48
TC 4
Z9 4
U1 0
U2 10
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD APR
PY 2021
VL 11
IS 4
AR 142
DI 10.3390/buildings11040142
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA RR0DG
UT WOS:000642779300001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Takwin, B
   de Jong, E
   Setiawan, T
   Stavrou, C
AF Takwin, Bagus
   de Jong, Edwin
   Setiawan, Tery
   Stavrou, Christina
TI Rethinking the interaction between resilience and well-being through
   place attachment: A case study of flood-prone urban communities in
   Indonesia
SO JOURNAL OF URBAN AFFAIRS
LA English
DT Article; Early Access
DE Household resilience; place attachment; wealth portfolio; subjective
   material well-being; risk perception
ID RISK PERCEPTION; VARIABLES
AB This study investigates the extent to which risk perception regarding disasters among individuals living in slum areas interrelates with their material well-being in determining their place attachment, which may affect their household resilience. To assess this, we take relevant measures from previous studies and run a confirmatory factor analysis to test their validity. All the measures are shown to have a good fit with the data. Our findings reveal a significant mediational relationship between measures of material well-being and household resilience through place attachment although, counterintuitively, the mediated relationship between subjective material well-being and household resilience was negative. The mediated relationship is only valid for the subjective material well-being predictor and among those with a high level of risk perception. These findings suggest that risk perception determines the way an individual's subjective material well-being predicts their attachment to their living place, which relates to their household resilience.
C1 [Takwin, Bagus] Univ Indonesia, Depok, Indonesia.
   [de Jong, Edwin; Setiawan, Tery; Stavrou, Christina] Radboud Univ Nijmegen, Nijmegen, Netherlands.
   [Setiawan, Tery] Univ Kristen Maranatha, Bandung, Indonesia.
   [Takwin, Bagus] Univ Indonesia, Fac Psychol, Jl Lkr Kampus Raya,Pondok Cina, Kota Depok 16424, Jawa Barat, Indonesia.
C3 University of Indonesia; Radboud University Nijmegen; Universitas
   Kristen Maranatha; University of Indonesia
RP Takwin, B (corresponding author), Univ Indonesia, Fac Psychol, Jl Lkr Kampus Raya,Pondok Cina, Kota Depok 16424, Jawa Barat, Indonesia.
EM bagus-t@ui.ac.id
RI de Jong, Edwin/D-6176-2012; Setn, Tery/AAC-3701-2021; Takwin,
   Bagus/R-3517-2018
OI Setiawan, Tery/0000-0003-1813-9097
FU Indonesian Ministry of Education, Culture, Research and Technology
   (Kemdikbudristek); Dutch Research Council (Nederlandse Organisatie voor
   Wetenschappelijk Onderzoek, NWO)
FX The writing of this article was made possible by a grant from The
   Indonesian Ministry of Education, Culture, Research and Technology
   (Kemdikbudristek) and the Dutch Research Council (Nederlandse
   Organisatie voor Wetenschappelijk Onderzoek, NWO)
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NR 86
TC 1
Z9 1
U1 4
U2 19
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 2023 NOV 30
PY 2023
DI 10.1080/07352166.2023.2279593
EA NOV 2023
PG 26
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA Y9WD5
UT WOS:001108682000001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Lu, QL
   Sun, WZ
   Dai, JN
   Schmoecker, JD
   Antoniou, C
AF Lu, Qing-Long
   Sun, Wenzhe
   Dai, Jiannan
   Schmoecker, Jan -Dirk
   Antoniou, Constantinos
TI Traffic resilience quantification based on macroscopic fundamental
   diagrams and analysis using topological attributes
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Traffic resilience; Macroscopic fundamental diagram; Infrastructure
   disruption; Traffic simulation; Network topology
ID NETWORK; LINK
AB Transportation system disruptions significantly impair transportation efficiency. This paper proposes new indicators derived from the Macroscopic Fundamental Diagram (MFD) dynamics before and after a disruption to evaluate its impact on traffic resilience. Considering that MFD is an intrinsic property of a homogeneously congested transportation network, the resilience losses due to congestion and network disruption are measured separately. The resilience loss is defined as the reduction in trip completion rate, comparing congested cases to uncongested cases or disrupted cases to undisrupted cases. The resilience loss hence also exists for an undisrupted network and is measurable by the proposed method. A Simulation of Urban MObility (SUMO) model is calibrated by real origin-destination patterns, to allow for experiments in scenarios of different demand variations and supply disruptions. Case studies are conducted in Munich, Germany and Kyoto, Japan to test the usefulness of the newly proposed indicators. We furthermore explore the relationship between resilience loss and network topological attributes such as centrality and connectivity from a variety of synthetic disruption experiments in Munich and Kyoto. We find that the resilience loss in a grid -like network as in Kyoto is less dependent on the degradation of network connectivity than in a ring -like network as in Munich.
C1 [Lu, Qing-Long; Antoniou, Constantinos] Tech Univ Munich, Chair Transportat Syst Engn, Munich, Germany.
   [Sun, Wenzhe; Dai, Jiannan; Schmoecker, Jan -Dirk] Kyoto Univ, Dept Urban Management, Kyoto, Japan.
C3 Technical University of Munich; Kyoto University
RP Sun, WZ (corresponding author), Kyoto Univ, Dept Urban Management, Kyoto, Japan.
EM qinglong.lu@tum.de; wz.sun@trans.kuciv.kyoto-u.ac.jp;
   dai@trans.kuciv.kyoto-u.ac.jp; schmoecker@trans.kuciv.kyoto-u.ac.jp;
   c.antoniou@tum.de
RI LU, Qing-Long/HMO-9148-2023; Antoniou, Constantinos/K-4980-2019; Sun,
   Wenzhe/AAY-7002-2020
OI Schmocker, Jan Dirk/0000-0003-2219-9447; LU,
   Qinglong/0000-0002-6087-8670; Dai, Jiannan/0000-0002-4186-0088; Sun,
   Wenzhe/0000-0002-7305-8671; Antoniou, Constantinos/0000-0003-0203-9542
FU CONCERT-Japan DARUMA project; German Federal Ministry of Education and
   Research (BMBF) [01DR21010]; Strategic International Collaborative
   Research Program (SICORP) of Japan Science and Technology Agency (JST)
   [JPMJSC20C4]; DAAD-Kyoto University Partnership Program [57664680]
FX This research was supported by the CONCERT-Japan DARUMA project, funded
   by the German Federal Ministry of Education and Research (BMBF) under
   Grant Number 01DR21010 and the Strategic International Collaborative
   Research Program (SICORP) of Japan Science and Technology Agency (JST)
   under Grant Number JPMJSC20C4. This research was also partially funded
   by the DAAD-Kyoto University Partnership Program under Grant Number
   57664680.
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NR 78
TC 11
Z9 11
U1 16
U2 31
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 JUL
PY 2024
VL 247
AR 110095
DI 10.1016/j.ress.2024.110095
EA APR 2024
PG 17
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA QR9N9
UT WOS:001222716800001
DA 2025-04-22
ER

PT J
AU Yang, BF
   Zhang, L
   Zhang, B
   Wang, WF
   Zhang, ML
AF Yang, Bofan
   Zhang, Lin
   Zhang, Bo
   Wang, Wenfeng
   Zhang, Minglinag
TI Resilience Metric of Equipment System: Theory, Measurement and
   Sensitivity Analysis
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Resilience; metric; reliability engineering; boundary analysis;
   sensitivity analysis
ID SEISMIC RESILIENCE; FRAMEWORK; DEFINITIONS; DESIGN; URBAN
AB This paper analyzes the equipment system resilience metric by employing reliability engineering parameters. It proposes a hybrid resilience metric by analyzing the applicability of two existing methods -- deterministic metric and probabilistic metric. Boundary analysis verifies the correctness under special circumstances. Based on the reliability engineering parameters of equipment, the concrete representation of hybrid measurement method is displayed in the usual "fault - repair" mode of equipment system. Then, under the given fault mode and repair strategy, and according to the diversity of fault and repair situation of complex equipment system after disturbance, the resilience metric of complex equipment system is proposed to represent the inherent properties of equipment. Moreover, the influence of reliability engineering parameters on the resilience metric of the equipment system is given in the sensitivity analysis. No matter in equipment design or improvement stage, the failure rate is a parameter which is far more important than the others, and importance of the others is related to the specific system. This study provides quantitative indexes for the performance of the whole resilience process from fault to repair after disturbance, which can offer the support for optimizations of equipment design and improvement.
C1 [Yang, Bofan; Zhang, Lin; Zhang, Bo; Wang, Wenfeng; Zhang, Minglinag] Air Engn Univ, Air Def & Antimissile Sch, Xian, Peoples R China.
RP Zhang, B (corresponding author), Air Engn Univ, Air Def & Antimissile Sch, Xian, Peoples R China.
EM zhb8706@163.com
FU Shaanxi Provincial Natural Science Basic Research Program "Simulation
   Research on Risk Identification and Propagation of Equipment Supply
   Chain Based on Behavioral Decision Theory [2019JQ-708]
FX Thanks are due to B. Zhang for the support of Shaanxi Provincial Natural
   Science Basic Research Program "Simulation Research on Risk
   Identification and Propagation of Equipment Supply Chain Based on
   Behavioral Decision Theory (2019JQ-708)", L. Zhao and X.Y. Zou for
   assistance with the language service.
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NR 51
TC 17
Z9 17
U1 4
U2 47
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 NOV
PY 2021
VL 215
AR 107889
DI 10.1016/j.ress.2021.107889
EA JUL 2021
PG 10
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA UI0BI
UT WOS:000690283800075
DA 2025-04-22
ER

PT J
AU Carreño, ML
   Cardona, O
   Barbat, AH
AF Carreno, Martha L.
   Cardona, Omar D.
   Barbat, Alex H.
TI New methodology for urban seismic risk assessment from a holistic
   perspective
SO BULLETIN OF EARTHQUAKE ENGINEERING
LA English
DT Article
DE Holistic approach; Risk evaluation; Seismic risk; Urban risk;
   Socio-economic vulnerability; Fuzzy sets
ID VULNERABILITY; PERFORMANCE
AB The seismic risk evaluation usually works with a fragmented concept of risk, which depends on the scientific discipline in charge of the assessment. To achieve an effective performance of the risk management, it is necessary to define risk as the potential economic, social and environmental consequences due to a hazardous phenomenon in a period of time. This article presents a methodology which evaluates the seismic risk from a holistic perspective, which means, it takes into account the expected physical damage and also the conditions related to social fragility and lack of resilience, which favour the second order effects when a hazard event strikes an urban centre. This seeks to obtain results which are useful in the decision making process for risk reduction. The proposed method for urban seismic risk evaluation uses the fuzzy sets theory in order to handle qualitative concepts and variables involved in the assessment, the physical risk level and aggravation level, related to the social fragility and the lack of resilience, are evaluated and finally a total risk level is determinate.
C1 [Carreno, Martha L.; Barbat, Alex H.] CIMNE, Barcelona, Spain.
   [Cardona, Omar D.] Univ Nacl Colombia, Manizales, Colombia.
   [Carreno, Martha L.; Barbat, Alex H.] Tech Univ Catalonia, Barcelona, Spain.
C3 Universitat Politecnica de Catalunya; Centre Internacional de Metodes
   Numerics en Enginyeria (CIMNE); Universidad Nacional de Colombia;
   Universitat Politecnica de Catalunya
RP Carreño, ML (corresponding author), CIMNE, Barcelona, Spain.
EM liliana@cimne.upc.edu
RI Cardona, Omar D./H-7529-2015; Carreno, Martha Liliana/C-8837-2015;
   Barbat, Alex H./M-6206-2013
OI Cardona, Omar D./0000-0001-8233-5450; Carreno, Martha
   Liliana/0000-0003-1914-2992; Barbat, Alex H./0000-0002-3649-8053
FU Universities and Research Commissionate of the Generalitat de Catalunya;
   Spanish Ministry of Education and Science [CSD2006-00060]; European
   Commission [FP7-ENV-2007-1-211590, INTERREG: POCTEFA 2007-2013/ 73/08]
FX This work has been partially sponsored by the Universities and Research
   Commissionate of the Generalitat de Catalunya (Beatriu de Pinos grants
   proggrame) and by the Spanish Ministry of Education and Science
   (SEDUREC, CONSOLIDER CSD2006-00060) by the European Commission (project
   Methods for the Improvement of Vulnerability Assessment in Europe, MOVE,
   FP7-ENV-2007-1-211590) and INTERREG: POCTEFA 2007-2013/ 73/08.
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NR 23
TC 73
Z9 74
U1 1
U2 27
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1570-761X
EI 1573-1456
J9 B EARTHQ ENG
JI Bull. Earthq. Eng.
PD APR
PY 2012
VL 10
IS 2
BP 547
EP 565
DI 10.1007/s10518-011-9302-2
PG 19
WC Engineering, Geological; Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology
GA 899XO
UT WOS:000300850200009
DA 2025-04-22
ER

PT J
AU Xu, JJ
   Gai, M
   Yan, XL
   Xu, YM
   Yue, P
AF Xu, Jingjing
   Gai, Mei
   Yan, Xiaolu
   Xu, Yumei
   Yue, Peng
TI Contradictions in human-nature relationships threaten coastal resilience
   and sustainability in the Bohai Rim Region, China
SO ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
LA English
DT Article; Early Access
DE Coastal resilience; Sustainable development; Human-nature relationships;
   Bohai Rim region
ID OCEAN
AB Under the challenge of global environmental change and rapid development, tremendous risks brought about by natural disasters and human activities have increased environmental pressures for sustainable development. How to improve coastal resilience in the process of urban development has become an important topic in academia. In this study, a variable fuzzy recognition model was used to measure the level of coastal resilience in 17 cities in the Bohai Rim region, and then the kernel density, thiel index, and random forest model were used to explore the spatiotemporal characteristics and influencing factors of coastal resilience. The results show that (1) The overall resilience level of the Bohai Rim region is increasing over time, but at a relatively slow rate. (2) Coastal resilience has significant spatial unevenness, with high-level cities dominated by Tianjin, Qingdao, Yantai, etc. and low-level cities dominated by Cangzhou, Panjin, Yingkou, Binzhou, etc. (3) The influence of economic development, infrastructure, innovation ability, technology investment, and government regulation on coastal resilience decreases in order. Based on the research findings, the study can not only make suggestions for the actual regulation strategy but also provide empirical and theoretical experience for other coastal countries.
C1 [Xu, Jingjing; Gai, Mei; Yan, Xiaolu; Yue, Peng] Liaoning Normal Univ, Minist Educ, Inst Marine Sustainable Dev, Key Res Base Humanities & Social Sci, Dalian 116029, Liaoning, Peoples R China.
   [Xu, Jingjing; Gai, Mei; Yan, Xiaolu; Yue, Peng] Univ Collaborat Innovat Ctr Marine Econ High Qual, Dalian 116029, Liaoning, Peoples R China.
   [Xu, Yumei] Liaoning Normal Univ, Sch Geog Sci, Dalian 116029, Liaoning, Peoples R China.
C3 Liaoning Normal University; Liaoning Normal University
RP Gai, M (corresponding author), Liaoning Normal Univ, Minist Educ, Inst Marine Sustainable Dev, Key Res Base Humanities & Social Sci, Dalian 116029, Liaoning, Peoples R China.; Gai, M (corresponding author), Univ Collaborat Innovat Ctr Marine Econ High Qual, Dalian 116029, Liaoning, Peoples R China.
EM gaimei71@lnnu.edu.cn
RI Xiaolu, Yan/GPP-2114-2022
FU National Natural Science Foundation of China [42276231]; Social Science
   Foundation of Liaoning Province [2023lsljdybkt-018]; Major Project of
   the Key Research Base for Humanities and Social Sciences of Ministry of
   Education [22JJD790028]
FX This research was financially supported by National Natural Science
   Foundation of China (No. 42276231), Social Science Foundation of
   Liaoning Province (2023lsljdybkt-018), Major Project of the Key Research
   Base for Humanities and Social Sciences of Ministry of Education
   (22JJD790028).
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NR 53
TC 1
Z9 1
U1 10
U2 27
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 2024 FEB 28
PY 2024
DI 10.1007/s11356-024-32485-w
EA FEB 2024
PG 17
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA JL1G7
UT WOS:001173224500001
PM 38418783
DA 2025-04-22
ER

PT J
AU Rodriquez, C
   Monteiro, R
   Ceresa, P
AF Rodriquez, Carlotta
   Monteiro, Ricardo
   Ceresa, Paola
TI Assessing Seismic Social Vulnerability in Urban Centers - the Case-Study
   of Nablus, Palestine
SO INTERNATIONAL JOURNAL OF ARCHITECTURAL HERITAGE
LA English
DT Article
DE Palestine; resilience; scorecards; seismic risk; social indicators;
   social vulnerability
ID RISK-EVALUATION; MODEL; EARTHQUAKE
AB Seismic risk depends on three factors: seismic hazard, exposure of assets and communities, and vulnerability-physical and social. Whereas hazard and exposure are harder to act upon, vulnerability can be significantly reduced, if properly characterized for each asset, population, or society in general. This article assesses the social vulnerability and resilience level of the city of Nablus, an important urban center in Palestine. The region, considerably exposed to seismic hazard, features, from the in-built view point, very recent or very old historical buildings, without seismic design provisions. On the socio-economic side, the well-known political conflicts and societal challenges are key vulnerability factors. The method employed was based on Social Vulnerability Indicators (SoVI) extracted from census data, integrated with the more recent SCORECARD approach, which was applied to the urban community of Nablus. The goal was both to obtain an overall vulnerability score for the city and to characterize internal differences among its main areas, connected to its historical urban expansion and patterns. The results show that both physical and social vulnerability can be related and that the city development patterns can mirror the relative social vulnerability.
C1 [Rodriquez, Carlotta; Monteiro, Ricardo] Scuola Univ Super IUSS Pavia, Piazza Vittoria 15, I-27100 Pavia, Italy.
   [Ceresa, Paola] RED Risk Engn Design, Pavia, Italy.
C3 IUSS PAVIA
RP Monteiro, R (corresponding author), Scuola Univ Super IUSS Pavia, Piazza Vittoria 15, I-27100 Pavia, Italy.
EM ricardo.monteiro@iusspavia.it
RI Monteiro, Ricardo/H-1936-2018
OI Monteiro, Ricardo/0000-0002-2505-2996
FU Support Action for Strengthening Palestine capabilities for seismic Risk
   Mitigation - 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.
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NR 63
TC 6
Z9 6
U1 6
U2 34
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 1558-3058
EI 1558-3066
J9 INT J ARCHIT HERIT
JI Int. J. Archit. Herit.
PY 2018
VL 12
IS 7-8
SI SI
BP 1216
EP 1230
DI 10.1080/15583058.2018.1503369
PG 15
WC Architecture; Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Arts &amp; Humanities Citation Index (A&amp;HCI)
SC Architecture; Construction & Building Technology; Engineering
GA GV4ZQ
UT WOS:000446110900010
DA 2025-04-22
ER

PT J
AU Fransen, J
   Hati, B
   Simon, HK
   van Stapele, N
AF Fransen, Jan
   Hati, Beatrice
   Simon, Harrison Kioko
   van Stapele, Naomi
TI Adaptive governance by community based organisations: Community
   resilience initiatives during Covid-19 in Mathare, Nairobi
SO SUSTAINABLE DEVELOPMENT
LA English
DT Article
DE adaptive governance; community resilience; community-based
   organisations; Covid-19; Kenya; Nairobi; sustainability
ID BUILDING RESILIENCE; CLIMATE-CHANGE; TRANSFORMATION; COPRODUCTION;
   SETTLEMENTS; ADAPTATION
AB Adaptive governance describes the purposeful collective actions to resist, adapt, or transform when faced with shocks. As governments are reluctant to intervene in informal settlements, community based organisations (CBOs) self-organize and take the lead. This study explores under what conditions CBOs in Mathare informal settlement, Nairobi initiate and sustain resilience activities during Covid-19. Study findings show that CBOs engage in multiple resilience activities, varying from maladaptive and unsustainable to adaptive, and transformative. Two conditions enable CBOs to initiate resilience activities: bonding within the community and coordination with other actors. To sustain these activities over 2.5 years of Covid-19, CBOs also require leadership, resources, organisational capacity, and network capacity. The same conditions appear to enable CBOs to engage in transformative activities. However, CBOs cannot transform urban systems on their own. An additional condition, not met in Mathare, is that governments, NGOs, and donor agencies facilitate, support, and build community capacities.
C1 [Fransen, Jan] Erasmus Univ, Inst Housing Urban Dev Studies IHS, Rotterdam, Netherlands.
   [Fransen, Jan] Erasmus Univ, Vital Cities & Citizens VCC, Rotterdam, Netherlands.
   [Hati, Beatrice] Erasmus Univ, Int Inst Social Studies ISS, Rotterdam, Netherlands.
   [Simon, Harrison Kioko] Int Ctr Frugal Innovat ICFI, Urban Dev Domain, Kenya Hub, Nairobi, Kenya.
   [van Stapele, Naomi] Hague Univ Appl Sci, Ctr Expertise Global & Inclus Learning, The Hague, Netherlands.
   [Fransen, Jan] Erasmus Univ, Inst Housing & Urban Dev Studies IHS, Orfeo 6, Capelle IJsel, NL-2907 JE Rotterdam, Netherlands.
   [Fransen, Jan] Erasmus Univ, Vital Cities & Citizens VCC, Orfeo 6, Capelle IJsel, NL-2907 JE Rotterdam, Netherlands.
C3 Erasmus University Rotterdam; Erasmus University Rotterdam - Excl
   Erasmus MC; Erasmus University Rotterdam; Erasmus University Rotterdam -
   Excl Erasmus MC; Erasmus University Rotterdam; Erasmus University
   Rotterdam - Excl Erasmus MC; Erasmus University Rotterdam; Erasmus
   University Rotterdam - Excl Erasmus MC; Erasmus University Rotterdam;
   Erasmus University Rotterdam - Excl Erasmus MC
RP Fransen, J (corresponding author), Erasmus Univ, Inst Housing & Urban Dev Studies IHS, Orfeo 6, Capelle IJsel, NL-2907 JE Rotterdam, Netherlands.; Fransen, J (corresponding author), Erasmus Univ, Vital Cities & Citizens VCC, Orfeo 6, Capelle IJsel, NL-2907 JE Rotterdam, Netherlands.
EM j.fransen@ihs.nl
RI Fransen, Jan/AGZ-8534-2022
OI Fransen, Jan/0000-0003-1127-7307
FU We are grateful for the financial support of the Vital Cities and
   Citizens initiative and the Institute of Social Studies, both of Erasmus
   University Rotterdam. The study was done jointly with Ghetto Foundation,
   Mathare, Kenya, and the International Centre; Vital Cities and Citizens
   initiative; Institute of Social Studies; Erasmus University Rotterdam;
   Ghetto Foundation, Mathare, Kenya; International Centre of Frugal
   Innovation (ICFI)
FX We are grateful for the financial support of the Vital Cities and
   Citizens initiative and the Institute of Social Studies, both of Erasmus
   University Rotterdam. The study was done jointly with Ghetto Foundation,
   Mathare, Kenya, and the International Centre of Frugal Innovation
   (ICFI). It would have been impossible without their support. Finally, we
   acknowledge the pleasant discussions with the community leaders and
   residents we spoke to.
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NR 38
TC 7
Z9 7
U1 7
U2 27
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0968-0802
EI 1099-1719
J9 SUSTAIN DEV
JI Sustain. Dev.
PD APR
PY 2024
VL 32
IS 2
SI SI
BP 1471
EP 1482
DI 10.1002/sd.2682
EA AUG 2023
PG 12
WC Development Studies; Green & Sustainable Science & Technology; Regional
   & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Science & Technology - Other Topics; Public
   Administration
GA MP4G9
UT WOS:001063438200001
OA hybrid
DA 2025-04-22
ER

PT J
AU Cheng, LS
   Shah, SAA
AF Cheng Longsheng
   Shah, Syed Ahsan Ali
TI Smarter and Greener Cities After COVID-19: An Integrated Decision-Making
   Framework to Prioritize Investment Alternatives
SO ADVANCED SUSTAINABLE SYSTEMS
LA English
DT Article
DE ANP; COVID-19; green recovery; smarter cities; sustainable cities;
   sustainable energy; VIKOR
ID POVERTY; IMPACT
AB Locking down cities to curb the transmission of coronavirus brought the global economy to a grinding halt Cities are like engines of growth; when they stop, so does the growth. Therefore, it becomes paramount to build cities that continue to function and do not collapse amidst any crisis. Since economic recovery is underway, this paper examines priority areas for investment to expedite recovery and build back stronger cities. These areas are evaluated based on their contribution to revitalizing public health, economic, social, energy, and environmental sectors. For the analysis, analytical network process (ANP) and fuzzy-VIKOR are applied. ANP obtains the relative importance of sectors and their respective critical factors after solving a complex relationship among them. The economic sector has the highest weight of 25.8% among the five sectors, while job creation has the highest weight of 10.3% among the fifteen factors. Fuzzy-VIKOR is used to evaluate different areas and it is found that renewable energy has a greater contribution to the sustainable recovery of major sectors and the longterm aim of building indusive green and resilient cities. These insights shall contribute to the conversations already ongoing among city governments, urban planners, civil society organizations, and city dwellers seeking practical solutions to unprecedented challenges posed by the pandemic.
C1 [Cheng Longsheng; Shah, Syed Ahsan Ali] Nanjing Univ Sci & Technol, Sch Econ & Management, Nanjing 210094, Peoples R China.
C3 Nanjing University of Science & Technology
RP Cheng, LS; Shah, SAA (corresponding author), Nanjing Univ Sci & Technol, Sch Econ & Management, Nanjing 210094, Peoples R China.
EM cheng_longsheng@njust.edu.cn; ahsan.shah1@hotmail.com
OI Shah, Syed Ahsan Ali/0000-0001-8488-3047
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NR 86
TC 6
Z9 6
U1 0
U2 13
PU WILEY-V C H VERLAG GMBH
PI WEINHEIM
PA POSTFACH 101161, 69451 WEINHEIM, GERMANY
SN 2366-7486
J9 ADV SUSTAIN SYST
JI Adv. Sustain. Syst.
PD SEP
PY 2022
VL 6
IS 9
AR 2200166
DI 10.1002/adsu.202200166
EA JUL 2022
PG 12
WC Green & Sustainable Science & Technology; Materials Science,
   Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Materials Science
GA 4O7UP
UT WOS:000829208900001
PM 35942083
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Gravagnuolo, A
   Angrisano, M
AF Gravagnuolo, Antonia
   Angrisano, Mariarosaria
TI Assessment of Urban Attractiveness of Port Cities in Southern Italy-A
   Case Study of Torre Annunziata
SO SUSTAINABILITY
LA English
DT Article
DE port cities; waterfront regeneration; resilience; sustainable
   development; creativity; post-industrial city; urban competition
AB The aim of this paper is to assess the strength and weakness factors of post-industrial cities located in the Gulf of Naples in order to propose the most effective regeneration strategies towards a sustainable development of the urban coastline. This paper focuses on the city of Torre Annunziata and in particular on its industrial port area and waterfront. The analysis suggests that a sustainable development would be possible through the redesign and new functionalization of the waterfront and port area, improving resilience and creativity in order to integrate economic growth, ecological preservation and social opportunities. Thus, this paper is a proposal for a participative approach to the regeneration of the urban waterfront, enhancing the creative potential of the city and developing a new image for the waterfront that could become the strategic vision for a future economic, environmental and cultural development. A comparison between the waterfronts of Torre Annunziata and La Spezia has been carried out in order to assess what are the most effective choices for the future of Torre Annunziata, followed by an applicative process based on interviews.
C1 [Gravagnuolo, Antonia; Angrisano, Mariarosaria] Univ Naples Federico II, Dept Architecture, I-80132 Naples, Italy.
C3 University of Naples Federico II
RP Gravagnuolo, A (corresponding author), Univ Naples Federico II, Dept Architecture, Via Toledo 402, I-80132 Naples, Italy.
EM antonia.gravagnuolo2@unina.it; angrisano.arch@virgilio.it
RI Angrisano, Mariarosaria/AAF-2706-2019; GRAVAGNUOLO, ANTONIA/H-6395-2017
OI Angrisano, Mariarosaria/0000-0002-8415-2866; GRAVAGNUOLO,
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NR 28
TC 5
Z9 7
U1 4
U2 28
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2013
VL 5
IS 9
BP 3906
EP 3925
DI 10.3390/su5093906
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 226FW
UT WOS:000325021000017
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Chong, RMB
   Tangunan, DN
   Toyado, DM
   Elegado, AFK
AF Chong, Reina Mae B.
   Tangunan, Deborah N.
   Toyado, Dexter M.
   Elegado, Aljon Francis Koji
TI Evolving disaster resilience in the Philippines: Insights from the 2021
   and 2023 World Risk Poll on socio-economic, regional, and systemic
   factors
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Resilience; Disasters; Hazards; Risk perception; Pacific region
ID CLIMATE-CHANGE; COMMUNITY RESILIENCE; PERCEPTION
AB The Philippines is consistently one of the world's most at-risk countries due to its location within the Pacific Ring of Fire and the "typhoon belt". However, resilience at national and regional levels remains understudied, particularly in relation to socio-economic inequalities, gender dynamics, and governance. This study addresses this gap by analyzing resilience trends from the 2021 and 2023 World Risk Poll (WRP) Philippines dataset, focusing on the influence of gender, urbanicity, and income across individuals, households, communities, and society, using statistical and data analysis tools. Results reveal a general decline in scores, with sharp drops in Region 4B (MIMAROPA-highest resilience) and Region 7 (Central Visayas-mid-range). Conversely, Region 13 (Caraga-lowest) and Region 5 (Bicol-mid-range) improved, reflecting the success of communitybased disaster risk reduction initiatives and governance. Gender disparities narrowed, with women scoring higher in household and societal resilience, while men excelled in community resilience. Urbanicity showed no significant association, although urban areas had higher individual and household resilience, while rural areas demonstrated stronger societal resilience. Income disparities persisted, with higher-income groups consistently achieving greater resilience, particularly at individual and household levels, due to better access to resources and opportunities. These findings emphasize the need for targeted, evidence-based strategies to build resilience in vulnerable regions in the Philippines, informing inclusive policies, equitable resource distribution, and governance collaboration. While the WRP provides valuable insights, reliance on self-reported perceptions highlights the need for further mixed method and longitudinal studies. Lessons from the Philippines thus offer globally relevant strategies for building resilience in disaster-prone regions.
C1 [Chong, Reina Mae B.; Toyado, Dexter M.; Elegado, Aljon Francis Koji] Catanduanes State Univ, Ctr Isl Climate Change Solut, Virac, Catanduanes, Philippines.
   [Tangunan, Deborah N.] UCL, Dept Earth Sci, Gower Pl, London, England.
   [Toyado, Dexter M.] Catanduanes State Univ, Coll Engn & Architecture, Virac, Catanduanes, Philippines.
   [Elegado, Aljon Francis Koji] Catanduanes State Univ, Coll Sci, Virac, Catanduanes, Philippines.
C3 Catanduanes State University; University of London; University College
   London; Catanduanes State University; Catanduanes State University
RP Tangunan, DN (corresponding author), UCL, Dept Earth Sci, Gower Pl, London, England.
EM d.tangunan@ucl.ac.uk
FU Lloyd's Register Foundation [TWRP\100017]; Philippines Department of
   Science and Technology
FX This work is funded by the Lloyd's Register Foundation under the grant
   Turning the World Risk Poll into Action 2 (Grant number TWRP\100017)
   awarded to D.M.T., A.F.K.E., and D.N.T.We would also like to acknowledge
   funding from the Philippines Department of Science and Technology.
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NR 55
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 15
PY 2025
VL 121
AR 105415
DI 10.1016/j.ijdrr.2025.105415
PG 16
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 0NS2N
UT WOS:001451716800001
DA 2025-04-22
ER

PT J
AU Jiao, LD
   Zhu, YH
   Huo, XS
   Wu, Y
   Zhang, Y
AF Jiao, Liudan
   Zhu, Yinghan
   Huo, Xiaosen
   Wu, Ya
   Zhang, Yu
TI Resilience assessment of metro stations against rainstorm disaster based
   on cloud model: a case study in Chongqing, China
SO NATURAL HAZARDS
LA English
DT Article
DE Rainstorm disaster; Resilience; Metro stations; Assessment; Cloud model
ID FLOOD RISK-ASSESSMENT; RAIL TRANSIT; INFRASTRUCTURE; SYSTEMS;
   MANAGEMENT; PROJECTS
AB Extremely heavy rainfall has posed a significant hazard to urban growth as the most common and disaster-prone natural calamity. Due to its unique geographical location, the metro system is more vulnerable to waterlogging caused by rainstorm disaster. Research on resilience to natural disasters has attracted extensive attention in recent years. However, few studies have focused on the resilience of the metro system against rainstorms. Therefore, this paper aims to develop an assessment model for evaluating metro stations' resilience levels. Twenty factors are carried out from dimensions of resistance, recovery and adaptation. The methods of ordered binary comparison, entropy weight and cloud model are proposed to build the assessment model. Then, taking Chongqing metro system in china as a case study, the resilience level of 13 metro stations is calculated. Radar charts from dimensions of resistance, recovery, and adaptation are created to propose recommendations for improving metro stations' resilience against rainstorms, providing a reference for the sustainable development of the metro system. The case study of the Chongqing metro system in china demonstrates that the assessment model can effectively evaluate the resilience level of metro stations and can be used in other infrastructures under natural disasters for resilience assessment.
C1 [Jiao, Liudan; Huo, Xiaosen; Zhang, Yu] Chongqing Jiaotong Univ, Sch Econ & Management, Chongqing 400074, Peoples R China.
   [Zhu, Yinghan] Nanjing Univ, Sch Management & Engn, Nanjing 210093, Peoples R China.
   [Wu, Ya] Southwest Univ, Coll Resources & Environm, Chongqing 400715, Peoples R China.
C3 Chongqing Jiaotong University; Nanjing University; Southwest University
   - China
RP Jiao, LD (corresponding author), Chongqing Jiaotong Univ, Sch Econ & Management, Chongqing 400074, Peoples R China.; Zhu, YH (corresponding author), Nanjing Univ, Sch Management & Engn, Nanjing 210093, Peoples R China.
EM jld@cqjtu.edu.cn; 602022150017@smail.nju.edu.cn;
   huoxiaosen@cqjtu.edu.cn; mswuya@swu.edu.cn; zhangyu_0112@foxmail.com
RI Jiao, Liudan/HIK-0853-2022
FU National Natural Science Foundation of China [71901043, 72004187];
   Chongqing Natural Science Foundation project [CSTB2022N-SCQ-MSX0390];
   Social Science Planning Project of Chongqing [2020QNGL31]; Chongqing
   Municipal Education Commission Project [KJQN201900713, 20SKGH096]
FX This research was funded by the National Natural Science Foundation of
   China (Grant No. 71901043 and No. 72004187), Chongqing Natural Science
   Foundation project (Grant No. CSTB2022N-SCQ-MSX0390), the Social Science
   Planning Project of Chongqing (Grant No. 2020QNGL31) and the Chongqing
   Municipal Education Commission Project (Grant No. KJQN201900713 and No.
   20SKGH096).
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NR 51
TC 24
Z9 25
U1 29
U2 188
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 2023
VL 116
IS 2
BP 2311
EP 2337
DI 10.1007/s11069-022-05765-2
EA DEC 2022
PG 27
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA AE5O4
UT WOS:000903485100006
PM 36589619
OA Green Published, Bronze
DA 2025-04-22
ER

PT J
AU Crippa, J
   Silva, MG
   Ribeiro, ND
   Ruschel, R
AF Crippa, Julianna
   Silva, Maicon Goncalves
   Ribeiro, Nedio Duarte
   Ruschel, Ricardo
TI Urban branding and circular economy: a bibliometric analysis
SO ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY
LA English
DT Review
DE Urban branding; Urban brands; Urban labels; Circular economy; Cities
ID KNOWLEDGE CITIES; INCLUSIVE CITIES; SMART CITIES; GREEN CITIES; CITY;
   CHINA; MODELS; ECO
AB There is an emergence of circular economy concepts and growth and multiplicity of urban labels adopted by cities. Therefore, this paper aims to analyze the correlation between the use of urban branding strategies and the circular economy. A review was carried out on the concepts of the different urban labels and then a bibliometric survey was carried out relating these brandings with the circular economy. The initial analysis relied on the use of 14 urban brandings, six of which did not show bibliometric results and, for this reason, were excluded from further analysis. As a result, the correlation between the circular economy and these 8 urban brandings-sustainable cities, smart cities, resilient cities, green cities, low-carbon cities, ecocities, inclusive cities, and knowledge cities-has been assessed in more depth. Among all combinations with "circular economy", the terms "smart cities" and "sustainable cities" these were the ones that presented the greatest recurrence in the literature, with 45.4% and 38% of the total of articles (108). Environmental science appears as the knowledge area with the highest quantity of publications. Italy, the Netherlands, and China stood out as the countries with a greater number of articles related to the subject. In general, the results point to a trend of plurality of urban brandings, which are adopted according to the characteristics and strategy of each city. It is also worth mentioning that, in many cases, these brandings are not competitors, because in many opportunities they can and must be worked on a complimentary basis by cities.
C1 [Crippa, Julianna; Silva, Maicon Goncalves] Fed Univ Technol, Grad Programme Urban Environm Sustainabil, Curitiba, Parana, Brazil.
   [Crippa, Julianna] FAE Ctr Univ, Dept Civil Engn & Architecture, Curitiba, Parana, Brazil.
   [Ribeiro, Nedio Duarte] Fed Univ Technol, Grad Programme Reg Dev, Pato Branco, Brazil.
   [Ruschel, Ricardo] Western Parana State Univ, Grad Programme Accounting Sci, Cascavel, Brazil.
C3 Universidade Tecnologica Federal do Parana; Centro Universitario
   Franciscano do Parana (UNIFAE); Universidade Estadual do Oeste do Parana
RP Crippa, J (corresponding author), Fed Univ Technol, Grad Programme Urban Environm Sustainabil, Curitiba, Parana, Brazil.; Crippa, J (corresponding author), FAE Ctr Univ, Dept Civil Engn & Architecture, Curitiba, Parana, Brazil.
EM julianna.crippa@gmail.com; maicopel@gmail.com; nedioarquiteto@gmail.com;
   ricardo.ruschel@unioeste.br
RI Filho, Nelson/AAJ-3437-2021; Crippa, Julianna/Q-4831-2017
OI Crippa, Julianna/0000-0002-8870-1666; Goncalves Silva,
   Maicon/0000-0002-9693-0215
FU Federal University of Technology-Parana at Curitiba
FX This paper has received financial support (only one scholarship) from
   Federal University of Technology-Parana at Curitiba.
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TC 10
Z9 10
U1 3
U2 61
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 MAR
PY 2023
VL 25
IS 3
BP 2173
EP 2200
DI 10.1007/s10668-022-02173-1
EA FEB 2022
PG 28
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 9E6JK
UT WOS:000755457400001
DA 2025-04-22
ER

PT J
AU Giezen, M
   Pellerey, V
AF Giezen, Mendel
   Pellerey, Virginia
TI Renaturing the city: Factors contributing to upscaling green schoolyards
   in Amsterdam and The Hague
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Green schoolyards; Greening semipublic spaces; Urban planning
ID THERMAL COMFORT; SPACE; INITIATIVES; CHILDREN; HEALTH; INFRASTRUCTURE;
   RESILIENCE; GOVERNANCE; MANAGEMENT; BARRIERS
AB To increase urban climate resilience, the renaturing of cities plays an important role. One strategy is the greening of schoolyards to increase climate resilience and bring additional benefits such as nature education and a healthy environment. While these are small projects, they could make a significant impact if they can be upscaled. With the intent of identifying the local barriers to the upscaling of green schoolyards, this research applies an upscaling framework to analyze and compare two initiatives that incentivize the greening of schoolyards by providing funds to local schools in Amsterdam and The Hague. There is not one barrier but a combination that seems to prevent upscaling, so it is a combination of factors that prevents the successful up-taking of green schoolyards: lack of environmental awareness, difficulties in acquiring monetary funds, lack of time and expertise from the demand-side, complexity of the bureaucratic processes, and lack of political will.
C1 [Giezen, Mendel; Pellerey, Virginia] Univ Amsterdam, Amsterdam Inst Social Sci Res, Nieuwe Prinsengracht 160, NL-1018 VZ Amsterdam, Netherlands.
C3 University of Amsterdam
RP Giezen, M (corresponding author), Univ Amsterdam, Amsterdam Inst Social Sci Res, Nieuwe Prinsengracht 160, NL-1018 VZ Amsterdam, Netherlands.
EM m.giezen@uva.nl; virginiapellerey@gmail.com
RI Giezen, Mendel/O-7343-2019; Pellerey, Virginia/KHV-2970-2024; Giezen,
   Mendel/N-4545-2013
OI Pellerey, Virginia/0000-0003-4105-4622; Giezen,
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NR 51
TC 9
Z9 10
U1 7
U2 21
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 AUG
PY 2021
VL 63
AR 127190
DI 10.1016/j.ufug.2021.127190
EA MAY 2021
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 TY8ED
UT WOS:000684011700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Varela, AO
   Gusman, I
   Romarís, CAP
AF Varela, Alejandro Otero
   Gusman, Ines
   Romaris, Carlos Alberto Patino
TI Demographic Oases in Shrinking Rural Areas: Exploring
   Trends in Galicia (Spain) and Northern Portugal
SO BOLETIN DE LA ASOCIACION DE GEOGRAFOS ESPANOLES
LA Spanish
DT Article
DE territorial inequalities; rural shrinking; urban systems; small towns
ID URBAN; DEPOPULATION; DECLINE
AB Despite their similar characteristics and shared challenges, Galicia and Northern Portugal are integrated into distinct national urban systems and have followed different territorial cohesion approaches. This study compares these regions to analyze their demographic dynamics and identify territories that exhibit resilience towards severe rural depopulation. Our findings reveal that both regions are intersected by the same Atlantic Urban Axis, where the highest population volumes and densities are concentrated. In contrast, the rural interior of the study area is experiencing strong and continuous demographic loss. However, upon examining demographic trends, alongside key socioeconomic indicators at a fine scale, we identify areas within predominantly rural regions that demonstrate resilience to decline. We termed them demographic oases. Our results indicate that the origins of these demographic oases are diverse -stemming from economic, administrative, and infrastructural factors- and, collectively, they play a crucial role in supporting their surrounding communities. Political approaches to territorial cohesion must acknowledge the significance of these oases, as their numbers are declining and they are essential for the sustainability of rural areas in both regions.
C1 [Varela, Alejandro Otero; Gusman, Ines] Univ Santiago Compostela, Dept Xeog, La Coruna, Spain.
   [Romaris, Carlos Alberto Patino] Univ Vigo, Dept Hist Arte & Xeog, Vigo, Spain.
C3 Universidade de Santiago de Compostela; Universidade de Vigo
RP Varela, AO (corresponding author), Univ Santiago Compostela, Dept Xeog, La Coruna, Spain.
EM alejandrootero.varela@usc.es; mariaines.gusmancorreia@usc.es;
   carlosalberto.patino@uvigo.gal
RI Patiño-Romarís, Carlos/ITU-8174-2023
FU Spanish Ministry of Universities [UP2021-042]; Next Generation EU
   program
FX The work of Ines Gusman has been supported by the grant UP2021-042,
   Margarita Salas Postdoctoral Fellowship, funded by the Spanish Ministry
   of Universities and Next Generation EU program.
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NR 57
TC 0
Z9 0
U1 2
U2 2
PU ASOCIACION ESPANOLES DE GEOGRAFIA
PI MADRID
PA PINAR 25, MADRID, 28006, SPAIN
SN 0212-9426
EI 2605-3322
J9 B ASOC GEOGR ESP
JI Bol. Asoc. Geogr. Esp.
PY 2025
IS 103
AR 3578
DI 10.21138/bage.3578
PG 33
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA X0B9C
UT WOS:001422122300010
OA gold
DA 2025-04-22
ER

PT J
AU Xiao, YH
   Zhao, XD
   Wu, YP
   Chen, ZL
   Gong, HD
   Zhu, LH
   Liu, Y
AF Xiao, Yuanhao
   Zhao, Xudong
   Wu, Yipeng
   Chen, Zhilong
   Gong, Huadong
   Zhu, Lihong
   Liu, Ying
TI Seismic resilience assessment of urban interdependent lifeline networks
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Resilience; Lifeline network; Seismic; Interdependence; Limited recovery
ID CRITICAL INFRASTRUCTURE; SYSTEMS
AB With increasing interdependence of various lifeline networks, natural disasters, especially seismic disasters damage will further degrade overall network performance. Hence, based on the concept of risk, reliability and vulnerability, some scholars assessed the resilience of multi-layer lifeline networks. However few studies considered bidirectional interdependence of lifelines, which would immensely exacerbates the consequences of seismic disaster. And the existing research of resilience assessment generally assumed that lifeline networks can recover to their initial performance rather than limited recovery which is more practical. Therefore, this study presents a framework and method for assessing the resilience of lifeline networks. And a performance response function for interdependent lifelines is proposed based on its functional characteristics. Then, we use an IEEE 30-bus and Belgium 20-node gas interdependent network as examples to verify the effectiveness of the framework. The results showed that, for each network, the recovery resource and budget had various effects on the resilience. And our framework can provide a quick reference for optimal decision-making in various scenarios under seismic disasters.
C1 [Xiao, Yuanhao] Jinan Audit Ctr, Jinan 250000, Peoples R China.
   [Xiao, Yuanhao; Zhao, Xudong; Wu, Yipeng; Chen, Zhilong; Gong, Huadong; Liu, Ying] Army Engn Univ PLA, Nanjing 211101, Peoples R China.
   [Wu, Yipeng] PLA, Inst Def Engn, AMS, Wuhan 430015, Peoples R China.
   [Zhu, Lihong] Hohai Univ, Coll Hydrol & Water Resources, Nanjing 210098, Peoples R China.
C3 Army Engineering University of PLA; Hohai University
RP Zhao, XD (corresponding author), Army Engn Univ PLA, Nanjing 211101, Peoples R China.; Wu, YP (corresponding author), PLA, Inst Def Engn, AMS, Wuhan 430015, Peoples R China.
EM wxlmss@163.com; wuyipeng@zju.edu.cn
RI Wu, Yipeng/X-4984-2018
FU National Natural Science Foundation of China [51708554]; Natural Science
   Foundation of Jiangsu Province [BK 20181336]
FX This research was supported by the National Natural Science Foundation
   of China (Grant No. 51708554) and the Natural Science Foundation of
   Jiangsu Province (Grant No. BK 20181336).
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NR 45
TC 41
Z9 44
U1 19
U2 169
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 FEB
PY 2022
VL 218
AR 108164
DI 10.1016/j.ress.2021.108164
EA NOV 2021
PN B
PG 12
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA XM1ML
UT WOS:000728599800008
DA 2025-04-22
ER

PT J
AU Ulug, C
   Horlings, LG
AF Ulug, Ciska
   Horlings, Lummina G.
TI Connecting resourcefulness and social innovation: exploring conditions
   and processes in community gardens in the Netherlands
SO LOCAL ENVIRONMENT
LA English
DT Article
DE Resourcefulness; food; community gardens; social innovation; rural and
   urban
ID URBAN AGRICULTURE; FOOD JUSTICE; RESILIENCE; CHALLENGES; STRATEGY;
   TRANSITIONS; CAPACITY; ECONOMY
AB Resourcefulness, a community's capacity to engage with their local resource base, is essential in contributing to resilience, the potential to adapt to external challenges and shocks. Resourcefulness and social innovation have some overlapping qualities, however, the academic connection between the two concepts is yet to be explored. Social innovations include new practices, ideas, and initiatives that meet societal needs and contribute to social change and empowerment. Through in-depth interviews and participant observation, this study researches conditions and processes of resourcefulness in facilitating social innovation in rural, peri-urban, and urban community gardens in the North of the Netherlands. Comparing differing contexts, five main enablers for altering social relations and community empowerment have been identified: (1) clear goals and motivations; (2) diversity in garden resources; (3) experimental knowledge processes; (4) strong internal support and recognition; and (5) place-based practices. Above all, this research stresses the importance of defining resourcefulness as a process and foregrounding the place-based contextual nature of innovative collective food system practices.
C1 [Ulug, Ciska; Horlings, Lummina G.] Univ Groningen, Dept Spatial Planning & Environm, Groningen, Netherlands.
C3 University of Groningen
RP Ulug, C (corresponding author), Univ Groningen, Dept Spatial Planning & Environm, Groningen, Netherlands.
EM c.r.ulug@rug.nl
OI Horlings, Lummina/0000-0002-8690-7986; Ulug, Ciska/0000-0003-4764-6143
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   Sveiby Karl-Erik., 2012, CHALLENGING INNOVATI
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NR 77
TC 23
Z9 26
U1 2
U2 27
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
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.
PY 2019
VL 24
IS 3
BP 147
EP 166
DI 10.1080/13549839.2018.1553941
PG 20
WC Green & Sustainable Science & Technology; Environmental Studies;
   Geography; Regional & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology;
   Geography; Public Administration; Urban Studies
GA HL4YM
UT WOS:000458732200001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Cervesato, A
AF Cervesato, Alberto
TI Reuse and Reconversion as Sustainability Paradigm for Marginal Areas
   Regeneration
SO SUSTAINABILITY
LA English
DT Article
DE urban regeneration; inland areas; sustainability; reuse; reconversion;
   renaturalization
AB Imagining the future has become an increasingly arduous exercise especially if we consider the constant anthropic modifications and their consequences to which the environment is subjected. In the face of climate change, the reduction in land consumption and the energy efficiency of buildings are some of the missions to be pursued to achieve an adequate level of sustainability, in the constant search for inclusive, safe, and durable urban settlements. Trying to rebalance a relationship, which has been compromised for too long, between nature and artifice can only take place through an ecosystem approach capable of promoting conservation, productivity, and resilience. These indications become the tracks to formulate exploratory projects of urban regeneration for marginal territories, linking, through a multidisciplinary approach, the architectural scale and the urban scale. In particular, this contribution addresses the debated topic, especially in the Italian context, of possible sustainable transformation scenarios for inland areas, with a focus on hamlets and villages and reflects on the possibility of working on the resilience of territories either by recovering the heritage of villages for housing purposes or enhancing the ecological-environmental component through renaturalization.
C1 [Cervesato, Alberto] Univ Udine, Polytech Dept Engn & Architecture, I-33100 Udine, Italy.
C3 University of Udine
RP Cervesato, A (corresponding author), Univ Udine, Polytech Dept Engn & Architecture, I-33100 Udine, Italy.
EM alberto.cervesato@uniud.it
OI CERVESATO, ALBERTO/0000-0001-7322-832X
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NR 29
TC 1
Z9 1
U1 1
U2 7
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2022
VL 14
IS 22
AR 15270
DI 10.3390/su142215270
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 6K9BN
UT WOS:000887788000001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Birkmann, J
   Sauter, H
   Jamshed, A
   Sorg, L
   Fleischhauer, M
   Sandholz, S
   Wannewitz, M
   Greiving, S
   Bueter, B
   Schneider, M
   Garschagen, M
AF Birkmann, Joern
   Sauter, Holger
   Jamshed, Ali
   Sorg, Linda
   Fleischhauer, Mark
   Sandholz, Simone
   Wannewitz, Mia
   Greiving, Stefan
   Bueter, Bjoern
   Schneider, Melanie
   Garschagen, Matthias
TI Strengthening risk-informed decision-making: scenarios for human
   vulnerability and exposure to extreme events
SO DISASTER PREVENTION AND MANAGEMENT
LA English
DT Article
DE Heat stress; Vulnerability indicators; Local scenarios; Medium-sized
   city; Germany; Risk-informed; decision-making
ID CLIMATE; ADAPTATION; RESPONSES
AB PurposeEnhancing the resilience of cities and strengthening risk-informed decision-making are defined as key within the Global Agenda 2030. Implementing risk-informed decision-making also requires the consideration of scenarios of exposure and vulnerability. Therefore, the paper presents selected scenario approaches and illustrates how such vulnerability scenarios can look like for specific indicators and how they can inform decision-making, particularly in the context of urban planning.Design/methodology/approachThe research study uses the example of heat stress in Ludwigsburg, Germany, and adopts participatory and quantitative forecasting methods to develop scenarios for human vulnerability and exposure to heat stress.FindingsThe paper indicates that considering changes in future vulnerability of people is important to provide an appropriate information base for enhancing urban resilience through risk-informed urban planning. This can help cities to define priority areas for future urban development and to consider the socio-economic and demographic composition in their strategies.Originality/valueThe value of the research study lies in implementing new qualitative and quantitative scenario approaches for human exposure and vulnerability to strengthen risk-informed decision-making.
C1 [Birkmann, Joern; Sauter, Holger; Jamshed, Ali] Univ Stuttgart, Inst Spatial & Reg Planning IREUS, Stuttgart, Germany.
   [Sorg, Linda] City Adm Stuttgart, Stuttgart, Germany.
   [Fleischhauer, Mark; Greiving, Stefan] TU Dortmund Univ, Fac Spatial Planning, Dortmund, Germany.
   [Sandholz, Simone] United Nat Univ, Inst Environm & Human Secur, Bonn, Germany.
   [Wannewitz, Mia; Garschagen, Matthias] Ludwig Maximilians Univ Munchen, Fac Geog, Munich, Germany.
   [Bueter, Bjoern; Schneider, Melanie] GEONET Umweltconsulting GmbH, Hannover, Germany.
C3 University of Stuttgart; Dortmund University of Technology; University
   of Munich
RP Birkmann, J (corresponding author), Univ Stuttgart, Inst Spatial & Reg Planning IREUS, Stuttgart, Germany.
EM joern.birkmann@ireus.uni-stuttgart.de
RI Jamshed, Ali/AAF-6809-2020; Birkmann, Joern/J-5736-2015; Sandholz,
   Simone/AFL-4819-2022
OI Birkmann, Joern/0000-0001-8733-3964; Sandholz,
   Simone/0000-0002-2894-1633; Sauter, Holger/0000-0001-7356-2790; Jamshed,
   Ali/0000-0003-4802-1225
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NR 33
TC 10
Z9 11
U1 3
U2 18
PU EMERALD GROUP PUBLISHING LTD
PI BINGLEY
PA HOWARD HOUSE, WAGON LANE, BINGLEY BD16 1WA, W YORKSHIRE, ENGLAND
SN 0965-3562
EI 1758-6100
J9 DISASTER PREV MANAG
JI Disaster Prev. Manag.
PD JUL 17
PY 2020
VL 29
IS 5
SI SI
BP 663
EP 679
DI 10.1108/DPM-05-2020-0147
PG 17
WC Environmental Studies; Public, Environmental & Occupational Health;
   Management
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health; Business & Economics
GA PA6YW
UT WOS:000595779400003
DA 2025-04-22
ER

PT J
AU Sanders, AE
   Lim, S
   Sohn, W
AF Sanders, Anne E.
   Lim, Sungwoo
   Sohn, Woosung
TI Resilience to urban poverty: Theoretical and empirical considerations
   for population health
SO AMERICAN JOURNAL OF PUBLIC HEALTH
LA English
DT Article
ID TOOTH LOSS; SOCIOECONOMIC-STATUS; SOCIAL DETERMINANTS; DENTAL-CARIES;
   ORAL HEALTH; RISK; SUPPORT; STRESS; COMMUNITY; RACE
AB Objectives. To better understand the trajectory that propels people from poverty to poor health, we investigated health resilience longitudinally among African American families with incomes below 250% of the federal poverty level.
   Methods. Health resilience is the capacity to maintain good health in the face of significant adversity. With higher levels of tooth retention as a marker of health resilience, we used a social-epidemiological framework to define capacity for health resilience through a chain of determinants starting in the built environment (housing quality) and community context (social support) to familial influences (religiosity) and individual mental health and health behavior.
   Results. Odds of retaining 20 or more teeth were 3 times as likely among adults with resilience versus more-vulnerable adults (odds ratio=3.1; 95% confidence interval [CI] = 1.3, 7.4). Children of caregivers with resilience had a lower incident rate of noncavitated tooth decay at 18- to 24-month follow-up (incidence risk ratio=0.8; 95% CI=0.7, 0.9) compared with other children.
   Conclusions. Health resilience to poverty was supported by protective factors in the built and social environments. When poverty itself cannot be eliminated, improving the quality of the built and social environments will foster resilience to its harmful health effects.
C1 [Sanders, Anne E.; Sohn, Woosung] Univ Michigan, Sch Dent, Ann Arbor, MI 48109 USA.
   [Sanders, Anne E.] Australian Res Ctr Populat Oral Hlth, Adelaide, SA, Australia.
   [Lim, Sungwoo] Univ Michigan, Detroit Dental Hlth Project, Ann Arbor, MI 48109 USA.
C3 University of Michigan System; University of Michigan; University of
   Michigan System; University of Michigan
RP Sanders, AE (corresponding author), Univ Michigan, Sch Dent, 1011 N Univ, Ann Arbor, MI 48109 USA.
EM aesand@umich.edu
OI Lim, Sungwoo/0000-0002-4890-0396; Sohn, Woosung/0000-0002-7486-9652
FU NIDCR NIH HHS [U54 DE014261, U-54 DE14261-01] Funding Source: Medline
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NR 51
TC 50
Z9 70
U1 1
U2 45
PU AMER PUBLIC HEALTH ASSOC INC
PI WASHINGTON
PA 800 I STREET, NW, WASHINGTON, DC 20001-3710 USA
SN 0090-0036
EI 1541-0048
J9 AM J PUBLIC HEALTH
JI Am. J. Public Health
PD JUN
PY 2008
VL 98
IS 6
BP 1101
EP 1106
DI 10.2105/AJPH.2007.119495
PG 6
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA 308BK
UT WOS:000256363100027
PM 18445798
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Mikula, P
   Bulla, M
   Blumstein, DT
   Benedetti, Y
   Floigl, K
   Jokimäki, J
   Kaisanlahti-Jokimäki, ML
   Markó, G
   Morelli, F
   Moller, AP
   Siretckaia, A
   Szakony, S
   Weston, MA
   Zeid, FA
   Tryjanowski, P
   Albrecht, T
AF Mikula, Peter
   Bulla, Martin
   Blumstein, Daniel T.
   Benedetti, Yanina
   Floigl, Kristina
   Jokimaki, Jukka
   Kaisanlahti-Jokimaki, Marja-Liisa
   Marko, Gabor
   Morelli, Federico
   Moller, Anders Pape
   Siretckaia, Anastasiia
   Szakony, Sara
   Weston, Michael A.
   Zeid, Farah Abou
   Tryjanowski, Piotr
   Albrecht, Tomas
TI Urban birds' tolerance towards humans was largely unaffected by COVID-19
   shutdown-induced variation in human presence
SO COMMUNICATIONS BIOLOGY
LA English
DT Article
ID FLIGHT-INITIATION DISTANCE; HUMAN DISTURBANCE; ESCAPE BEHAVIOR;
   ANTIPREDATOR BEHAVIOR; R PACKAGE; MOBILITY; FEAR; HABITUATION;
   HYPOTHESIS; DIVERSITY
AB The coronavirus disease 2019 (COVID-19) pandemic and respective shutdowns dramatically altered human activities, potentially changing human pressures on urban-dwelling animals. Here, we use such COVID-19-induced variation in human presence to evaluate, across multiple temporal scales, how urban birds from five countries changed their tolerance towards humans, measured as escape distance. We collected 6369 escape responses for 147 species and found that human numbers in parks at a given hour, day, week or year (before and during shutdowns) had a little effect on birds' escape distances. All effects centered around zero, except for the actual human numbers during escape trial (hourly scale) that correlated negatively, albeit weakly, with escape distance. The results were similar across countries and most species. Our results highlight the resilience of birds to changes in human numbers on multiple temporal scales, the complexities of linking animal fear responses to human behavior, and the challenge of quantifying both simultaneously in situ.
   A study on urban birds' tolerance towards humans highlights their resilience to changes in human numbers, induced by COVID-19 shutdowns, across multiple temporal scales.
C1 [Mikula, Peter; Tryjanowski, Piotr] Tech Univ Munich, TUM Sch Life Sci, Ecoclimatol, D-85354 Freising Weihenstephan, Germany.
   [Mikula, Peter; Tryjanowski, Piotr] Tech Univ Munich, Inst Adv Study, D-85748 Garching, Germany.
   [Mikula, Peter; Bulla, Martin; Benedetti, Yanina; Floigl, Kristina; Morelli, Federico; Siretckaia, Anastasiia; Zeid, Farah Abou] Czech Univ Life Sci Prague, Fac Environm Sci, Kamycka 129, Prague 16500, Czech Republic.
   [Blumstein, Daniel T.] Univ Calif Los Angeles, Dept Ecol & Evolutionary Biol, 621 Young Dr South, Los Angeles, CA 90095 USA.
   [Jokimaki, Jukka; Kaisanlahti-Jokimaki, Marja-Liisa] Univ Lapland, Arctic Ctr, POB 122, Rovaniemi 96101, Finland.
   [Marko, Gabor] Hungarian Univ Agr & Life Sci, Inst Plant Protect, Dept Plant Pathol, Menes Ut 44, H-1118 Budapest, Hungary.
   [Morelli, Federico] Univ Zielona Gora, Inst Biol Sci, Prof Z Szafrana St 1, Zielona Gora 65516, Poland.
   [Moller, Anders Pape] Univ Paris Saclay, Univ Paris Sud, Ecol Systemat Evolut, CNRS,AgroPatisTech, F-91405 Orsay, France.
   [Moller, Anders Pape] Beijing Normal Univ, Coll Life Sci, Minist Educ, Key Lab Biodivers Sci & Ecol Engn, Beijing 100875, Peoples R China.
   [Szakony, Sara] Univ Vet Med Budapest, Inst Biol, Dept Ecol, Rottenbiller U 50, H-1077 Budapest, Hungary.
   [Weston, Michael A.] Deakin Univ, Sch Life & Environm Sci, Deakin Marine, Burwood Campus,221 Burwood Highway, Burwood, Vic 3125, Australia.
   [Tryjanowski, Piotr] Univ Life Sci, Inst Zool, Wojska Polskiego 71c, PL-60625 Poznan, Poland.
   [Albrecht, Tomas] Czech Acad Sci, Inst Vertebrate Biol, Kvetna 8, Brno 60365, Czech Republic.
   [Albrecht, Tomas] Charles Univ Prague, Dept Zool, Fac Sci, Vinicna 7, Prague 12844, Czech Republic.
C3 Technical University of Munich; Technical University of Munich; Czech
   University of Life Sciences Prague; University of California System;
   University of California Los Angeles; University of Lapland; Hungarian
   University of Agriculture & Life Sciences; HUN-REN; HUN-REN Centre for
   Agricultural Research; Plant Protection Institute - HAS; University of
   Zielona Gora; Centre National de la Recherche Scientifique (CNRS);
   Universite Paris Saclay; AgroParisTech; Beijing Normal University;
   University of Veterinary Medicine Budapest; Deakin University; Poznan
   University of Life Sciences; Czech Academy of Sciences; Institute of
   Vertebrate Biology of the Czech Academy of Sciences; Charles University
   Prague
RP Mikula, P (corresponding author), Tech Univ Munich, TUM Sch Life Sci, Ecoclimatol, D-85354 Freising Weihenstephan, Germany.; Mikula, P (corresponding author), Tech Univ Munich, Inst Adv Study, D-85748 Garching, Germany.; Mikula, P; Bulla, M (corresponding author), Czech Univ Life Sci Prague, Fac Environm Sci, Kamycka 129, Prague 16500, Czech Republic.; Albrecht, T (corresponding author), Czech Acad Sci, Inst Vertebrate Biol, Kvetna 8, Brno 60365, Czech Republic.; Albrecht, T (corresponding author), Charles Univ Prague, Dept Zool, Fac Sci, Vinicna 7, Prague 12844, Czech Republic.
EM petomikula158@gmail.com; bulla.mar@gmail.com; albrecht@ivb.cz
RI Tryjanowski, Piotr/C-1367-2009; Moller, Anders/O-6665-2016; Jokimäki,
   Jukka/L-4434-2013; Morelli, Federico/P-1094-2018; Marko,
   Gabor/AAX-1166-2020; Weston, Michael/IVH-3564-2023; Albrecht,
   Tomas/A-1130-2011; Benedetti, Yanina/B-8815-2016; Blumstein,
   Daniel/B-6199-2012; Mikula, Peter/I-3851-2016; Bulla, Martin/F-2946-2011
OI Marko, Gabor/0000-0003-1351-4070; Blumstein, Daniel/0000-0001-5793-9244;
   Mikula, Peter/0000-0002-2731-9105; Bulla, Martin/0000-0002-1328-1927;
   Jokimaki, Jukka/0000-0002-7903-4128; Weston, Michael/0000-0002-8717-0410
FU Ccaron;esk Zemecaron;decaron;lsk Univerzita v Praze (Czech University of
   Life Sciences Prague) [2019-2023, 326348]; Academy of Finland [PROFI 5];
   Research Excellence in Environmental Sciences [REES 003]; Faculty of
   Environmental Sciences at CZU Prague
FX We thank Wolfgang Forstmeier and Lotte Schlicht for an advice on
   statistical analyses. M.A.W. thanks Eliza Anderson, Mickey Balzereit,
   Sammi Cunningham, Alisha Dabonde, Chloe Daws, Megan Dennis, Zoe Kellett,
   Clement Masse, Aaron Moore, Bailey Raats, Max Radvan, Rebecca Frost,
   Anthony Rendall, Natalie Searle, Mel Sheedy, Will Standish, Mia Stott,
   and Millie Toomey for help with the collection of escape responses of
   birds in Melbourne. Clement Masse helped us with data collection in
   Rovaniemi. J.J. was partly supported by the project "Responsible Tourism
   Planning" (2019-2023; project number 326348) funded by the Academy of
   Finland (PROFI 5 Competitive funding to strengthen universities'
   research profiles). P.M. and P.T. were funded by the TUM - Institute for
   Advanced Study - Hans Fisher Senior Fellowship (to P.T.), P.M. and M. B.
   by the Research Excellence in Environmental Sciences (REES 003 to MB)
   from the Faculty of Environmental Sciences at CZU Prague. P.M. is also
   thankful to Anna Milosavljevi & ccaron;ova for support during the
   research, M.B. to Barbora and Majlen for their patience and support.
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NR 99
TC 1
Z9 1
U1 5
U2 9
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
EI 2399-3642
J9 COMMUN BIOL
JI Commun. Biol.
PD JUL 17
PY 2024
VL 7
IS 1
AR 874
DI 10.1038/s42003-024-06387-z
PG 13
WC Biology; Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Life Sciences & Biomedicine - Other Topics; Science & Technology - Other
   Topics
GA YS9I5
UT WOS:001270590600007
PM 39020006
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Hao, Y
   Tie, YX
   Zhang, LJ
   Zhang, F
   Sun, CL
AF Hao, Yu
   Tie, Yuxin
   Zhang, Lijun
   Zhang, Fan
   Sun, Chaolun
TI Research on the evaluation of emergency management capability for urban
   public health emergencies under the perspective of resilience-a case
   study of Henan Province, China
SO FRONTIERS IN PUBLIC HEALTH
LA English
DT Article
DE public health emergencies; the full process balance of emergency
   management; emergency management capacity; capacity evaluation; TOPSIS
   model
ID MODEL
AB With the rapid development of the economy and society, the likelihood of sudden public health emergencies in urban areas continues to rise. In particular, major infectious diseases that have gained global attention, such as the SARS virus, H1N1 influenza, Ebola outbreak, and COVID-19 pandemic, have presented significant challenges to urban emergency management systems. Evaluating emergency management capability is a fundamental requirement for developing emergency response capacity. To this end, this study combines the theory of resilience with the theory of full-process equilibrium emergency management, selects 31 evaluation indicators from six key aspects: preparedness, forewarning, mitigation, disposal, recovery, and learning. The indicator weights are determined using the AHP-Entropy Weight Method, and a TOPSIS model is constructed to assess the emergency management capability of urban public health emergencies. The model's applicability is validated by examining 18 cities in Henan Province. The findings suggest that Jiaozuo, Hebi, Zhengzhou, and Luohe possess relatively robust emergency management capabilities for sudden public health incidents, whereas Kaifeng, Pingdingshan, and Shangqiu exhibit weaker capabilities.
C1 [Hao, Yu; Zhang, Lijun; Zhang, Fan; Sun, Chaolun] Henan Polytech Univ, Safety & Emergency Management Res Ctr, Jiaozuo, Peoples R China.
   [Hao, Yu; Zhang, Lijun; Zhang, Fan; Sun, Chaolun] Henan Polytech Univ, Lab Emergency Management, Jiaozuo, Peoples R China.
   [Tie, Yuxin] Cent China Normal Univ, Sch Informat Management, Wuhan, Peoples R China.
C3 Henan Polytechnic University; Henan Polytechnic University; Central
   China Normal University
RP Sun, CL (corresponding author), Henan Polytech Univ, Safety & Emergency Management Res Ctr, Jiaozuo, Peoples R China.; Sun, CL (corresponding author), Henan Polytech Univ, Lab Emergency Management, Jiaozuo, Peoples R China.
EM Suncl@hpu.edu.cn
RI Zhang, Lijun/H-8200-2019
FU National Natural Science Foundation of China (NSFC) [52374196];
   Humanities and Social Sciences Foundation of Henan Polytechnic
   University [SKY2021-01]; Philosophy and Social Science Innovation Team
   of Henan Province [2023-CXTD-06]; Research Foundation of Humanities &
   Social of Henan Polytechnic University [SKJO2020-01]
FX The author(s) declare financial support was received for the research,
   authorship, and/or publication of this article. This research is funded
   by the National Natural Science Foundation of China (NSFC)(52374196);
   Humanities and Social Sciences Foundation of Henan Polytechnic
   University (SKY2021-01); Philosophy and Social Science Innovation Team
   of Henan Province (2023-CXTD-06); Research Foundation of Humanities &
   Social of Henan Polytechnic University (SKJO2020-01).
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NR 35
TC 0
Z9 0
U1 27
U2 27
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 NOV 4
PY 2024
VL 12
AR 1431158
DI 10.3389/fpubh.2024.1431158
PG 13
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA M3M7C
UT WOS:001356622700001
PM 39559375
OA gold
DA 2025-04-22
ER

PT J
AU De Slatte, A
   Adams, JA
   Cheema, FS
   Vicario, SA
   Barnes, JL
   Koebele, EA
AF De Slatte, Aaron
   Adams, Jeffrey A.
   Cheema, Faisal S.
   Vicario, Sara Alonso
   Barnes, Jesse L.
   Koebele, Elizabeth A.
TI How state-reinforced knowledge infrastructure influences adaptive urban
   water governance
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE adaptive environmental governance; coupled infrastructure systems;
   resilience; urban water management
ID CLIMATE-CHANGE; FRAMEWORK; SYSTEMS; SUSTAINABILITY
AB Resilience and environmental governance scholars have long studied and debated the role of the state in driving or coordinating responses to the varied dimensions of adaptive governance. In this study, we empirically analyze how multilevel, state-reinforced institutional designs impact the adaptive governance of urban water systems by structuring information production and use. Specifically, we analyze the multilevel institutional designs of "knowledge infrastructure systems," defined as the rules and capacities within a system that allow actors to "produce, curate and communicate" information for governance. Drawing on a novel compilation of hydroclimatic data, media content, interviews, planning documents, and institutional designs, we empirically examine a typology of multi-level institutional arrangements in four U.S. urban water systems. Drawing from scholarship that considers the reflexivity of legal avenues and system performance, we conclude that state-reinforced rules governing the production and use of knowledge can clarify capacity-needs and support the efforts of managers responding to climate stressors through adaptive governance processes. They do so by formalizing planning types, timelines, and sanctions for noncompliance, while allowing local users and providers flexibility to innovate within these processes.
C1 [De Slatte, Aaron; Adams, Jeffrey A.; Cheema, Faisal S.] Indiana Univ Bloomington, Paul H ONeill Sch Publ & Environm Affairs, Bloomington, IN 47405 USA.
   [Vicario, Sara Alonso] Arizona State Univ, Sch Sustainable Engn & Built Environm, Tempe, AZ USA.
   [Barnes, Jesse L.; Koebele, Elizabeth A.] Univ Nevada Reno, Dept Polit Sci, Reno, NV USA.
C3 Indiana University System; Indiana University Bloomington; Arizona State
   University; Arizona State University-Tempe; Nevada System of Higher
   Education (NSHE); University of Nevada Reno
RP De Slatte, A (corresponding author), Indiana Univ Bloomington, Paul H ONeill Sch Publ & Environm Affairs, Bloomington, IN 47405 USA.
RI Barnes, Jesse/HMP-6782-2023; Vicario, Sara/N-9846-2017
FU U.S. National Science Foundation [1923880]
FX Acknowledgments: The research was supported by the U.S. National Science
   Foundation (ID #1923880) .
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NR 61
TC 0
Z9 0
U1 3
U2 3
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 NOV
PY 2024
VL 29
IS 4
AR 28
DI 10.5751/ES-15454-290428
PG 34
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA O1S4R
UT WOS:001369009600003
OA gold
DA 2025-04-22
ER

PT J
AU Malecha, M
   Clavin, C
   Walpole, E
AF Malecha, Matthew
   Clavin, Christopher
   Walpole, Emily
TI How well are US communities planning for resilience, climate adaptation,
   and sustainability-and what's missing? Results of a national survey of
   local staff and officials
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article; Early Access
DE resilience; adaptation; sustainability; community planning; climate
   change
ID URBAN RESILIENCE; METAANALYSIS; HEURISTICS
AB Community resilience, climate adaptation, and sustainability planning are increasingly used by communities in the United States to prepare for the effects of natural hazards and climate change. Existing studies have examined the theoretical intersections of these planning initiatives, but knowledge remains limited about practitioner perceptions and needs. We surveyed local community staff conducting resilience, climate adaptation, and sustainability planning to understand their experiences and views about prioritization and effectiveness, barriers to success, and external information and support for these approaches. Respondents generally reported success in their planning efforts across all three areas, and with respect to navigating the growing array of available information and support options. The latter suggests that technical limitations are no longer a serious impediment. However, securing funding and implementing plans remain important barriers to effective resilience, adaptation, and sustainability planning. Yet, observed conceptual and practical overlaps between these related concepts may signal a way forward.
C1 [Malecha, Matthew] Johns Hopkins Univ, Dept Environm Hlth & Engn, Baltimore, MD 21218 USA.
   [Clavin, Christopher; Walpole, Emily] NIST, Community Resilience Program, Engn Lab, Gaithersburg, MD USA.
C3 Johns Hopkins University; National Institute of Standards & Technology
   (NIST) - USA
RP Malecha, M (corresponding author), Johns Hopkins Univ, Dept Environm Hlth & Engn, Baltimore, MD 21218 USA.
EM mmalecha@arch.tamu.edu
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NR 58
TC 1
Z9 1
U1 1
U2 1
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 FEB 2
PY 2024
DI 10.1080/09640568.2024.2314172
EA FEB 2024
PG 19
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA LZ7S3
UT WOS:001190708100001
OA hybrid, Green Submitted
DA 2025-04-22
ER

PT J
AU Raub, KB
   Stepenuck, KF
   Panikkar, B
   Stephens, JC
AF Raub, Kristin B.
   Stepenuck, Kristine F.
   Panikkar, Bindu
   Stephens, Jennie C.
TI An Analysis of Resilience Planning at the Nexus of Food, Energy, Water,
   and Transportation in Coastal US Cities
SO SUSTAINABILITY
LA English
DT Article
DE coastal resilience; resilience plans; food-energy-water-transportation
   nexus approach; urban resilience; Nexus Index
ID MANAGEMENT; CLIMATE
AB Climate change poses increased risks to coastal communities and the interconnected infrastructure they rely on, including food, energy, water, and transportation (FEWT) systems. Most coastal communities in the US are ill-prepared to address these risks, and resilience planning is inconsistently prioritized and not federally mandated. This study examined the resilience plans of 11 coastal US cities to understand 1. How FEWT systems were considered within resilience plans and, 2. How nexus principles or elements critical to a nexus approach were incorporated within resilience plans. A "Nexus Index" was created to examine the incorporation of nexus principles, which included partnerships and collaborations, reference to other plans or reports, discussion of co-benefits, cascading impacts, and inclusion of interdisciplinary or cross-silo principles. These principles were used to score each action within the resilience plans. Results showed that only eight actions (1% of all actions across the 11 plans) focused on the connections among FEWT systems within the resilience plans. The transportation system was associated with the most actions, followed by the energy system, water system, and the food system. While FEWT systems were not consistently included, there was evidence from the Nexus Index that the plans included elements critical to a nexus approach, such as the inclusion of partnerships and reference to co-benefits with the actions they designed to build resilience. The heterogeneity among the systems that each plan emphasized reflects the heterogeneity among the challenges that each city faces. While context-specific differences in resilience plans across cities are expected, some consistency in addressing certain infrastructural needs and their nexus interactions may greatly benefit and improve the implementation of resilience planning.
C1 [Raub, Kristin B.; Stepenuck, Kristine F.; Panikkar, Bindu] Univ Vermont, Rubenstein Sch Environm & Nat Resources, Burlington, VT 05405 USA.
   [Raub, Kristin B.; Panikkar, Bindu] Gund Inst Environm, Burlington, VT 05405 USA.
   [Raub, Kristin B.; Stephens, Jennie C.] Northeastern Univ, Sch Publ Policy & Urban Affairs, Boston, MA 02115 USA.
   [Raub, Kristin B.] Consortium Univ Adv Hydrol Sci Inc, Cambridge, MA 02140 USA.
C3 University of Vermont; Northeastern University
RP Raub, KB (corresponding author), Univ Vermont, Rubenstein Sch Environm & Nat Resources, Burlington, VT 05405 USA.; Raub, KB (corresponding author), Gund Inst Environm, Burlington, VT 05405 USA.; Raub, KB (corresponding author), Northeastern Univ, Sch Publ Policy & Urban Affairs, Boston, MA 02115 USA.; Raub, KB (corresponding author), Consortium Univ Adv Hydrol Sci Inc, Cambridge, MA 02140 USA.
EM kraub@cuahsi.org; kris.stepenuck@uvm.edu; bindu.panikkar@uvm.edu;
   j.stephens@northeastern.edu
RI Stephens, Jennie/MTA-7493-2025
OI Panikkar, Bindu/0000-0002-1864-0570; Stephens, Jennie
   C./0000-0003-0386-8115; Raub, Kristin/0000-0002-7393-2912
FU Northeastern University
FX The APC was funded by Northeastern University.
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NR 29
TC 7
Z9 7
U1 8
U2 46
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 6316
DI 10.3390/su13116316
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 SQ9VN
UT WOS:000660695500001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Abbott, LS
   Killian, MO
   Graven, LJ
   Williams, KJ
AF Abbott, Laurie S.
   Killian, Michael O.
   Graven, Lucinda J.
   Williams, Krystal J.
TI Latent profile analysis of stress and resilience among rural women: A
   cross-sectional study
SO PUBLIC HEALTH NURSING
LA English
DT Article
DE resilience; rural health; stress
ID SOCIAL SUPPORT; CARDIOVASCULAR-DISEASE; URBAN DISPARITIES; MORTALITY;
   NUMBER; SYMPTOMS; CRITERIA; RISK
AB Stress is a cardiovascular disease risk factor, and resilience may serve as a buffer for stress. Little is known about stress and resilience among rural women. Objective: The purposes of this study were to identify profiles of rural women based upon indicators of psychosocial and environmental stress and to examine the relationships between the identified profiles and resilience. Design and sample: A cross-sectional, descriptive design was used to explore stress, social support, and resilience among a representative sample of women (n = 354). Measures: Data were collected to measure perceived stress, social support, chronic stress, and resilience. Results: A latent profile analysis identified three profiles (59.9% Low Stress, 25.4% Moderate Stress, and 14.7% High Stress). Women in the High Stress profile were less likely to afford necessities and have attended college and more likely to be employed. Women in the Low Stress profile had the highest scores for all five resilience subscales. Conclusion: The current study demonstrates the social and environmental impact of stress and how this stress can manifest differently for different women. Underserved women may benefit from strategies that reduce stress and improve social support and resilience. Future research is needed for advancing health equity in rural populations.
C1 [Abbott, Laurie S.; Graven, Lucinda J.] Florida State Univ, Coll Nursing, Tallahassee, FL 32306 USA.
   [Killian, Michael O.] Florida State Univ, Coll Social Work, Tallahassee, FL 32306 USA.
   [Williams, Krystal J.] Florida A&M Univ, Coll Pharm & Pharmaceut Sci, Tallahassee, FL USA.
C3 State University System of Florida; Florida State University; State
   University System of Florida; Florida State University; State University
   System of Florida; Florida A&M University
RP Abbott, LS (corresponding author), Florida State Univ, Coll Nursing, Tallahassee, FL 32306 USA.
EM labbott@fsu.edu
OI Abbott, Laurie/0000-0002-4017-1416
FU Florida Department of Health [044057]
FX Florida Department of Health, Grant/Award Number: 044057.
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NR 61
TC 3
Z9 3
U1 0
U2 13
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0737-1209
EI 1525-1446
J9 PUBLIC HEALTH NURS
JI Public Health Nurs.
PD MAY
PY 2022
VL 39
IS 3
BP 536
EP 544
DI 10.1111/phn.13005
EA NOV 2021
PG 9
WC Public, Environmental & Occupational Health; Nursing
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Nursing
GA 1C0OD
UT WOS:000715584800001
PM 34750856
DA 2025-04-22
ER

PT J
AU Solecki, W
   Pelling, M
   Garschagen, M
AF Solecki, William
   Pelling, Mark
   Garschagen, Matthias
TI Transitions between risk management regimes in cities
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE resiliency; risk management; transformation; transitions; urban coasts
ID SOCIAL-ECOLOGICAL RESILIENCE; SYSTEMS; ADAPTATION; POLITICS; CLIMATE;
   THINKING; POLICY; TRANSFORMATION
AB Ongoing climate change is encouraging cities to reevaluate their risk management strategies. Urban communities increasingly are being forced to respond to climate shifts with actions that promote resistance, resilience, or even larger scale transformations. Our objective is to present a conceptual framework that facilitates examination of how the transition from one type of risk management strategy or regime to another takes place. The research framework is built around a set of assumptions regarding the process of transition between risk management regimes. The framework includes five basic conceptual elements: (1) risk management regimes, (2) development pathways, (3) activity spheres, (4) activity spaces, and (5) root, contextual, and proximate drivers. The interaction among these elements and the potential for transition between four different possible regime states including resistance, resilience, transformation, and collapse are presented. The framework facilitates and guides analysis on whether and how transition is emergent, constrained, or accelerated in specific contexts. A case study of post-Hurricane Sandy New York is used to illustrate the framework and its overall effectiveness.
C1 [Solecki, William] CUNY, Hunter Coll, New York, NY 10021 USA.
   [Pelling, Mark] Kings Coll London, London, England.
   [Garschagen, Matthias] United Nations Univ, Inst Environm & Human Secur, Bonn, Germany.
C3 City University of New York (CUNY) System; Hunter College (CUNY);
   University of London; King's College London
RP Solecki, W (corresponding author), CUNY, Hunter Coll, New York, NY 10021 USA.
FU U.S. National Science Foundation via Belmont Forum
   [G8MUREFU3FP-2201-075]; Direct For Social, Behav & Economic Scie;
   Division Of Behavioral and Cognitive Sci [1444755] Funding Source:
   National Science Foundation
FX Funding for the project comes from the U.S. National Science Foundation
   G8MUREFU3FP-2201-075 via the Belmont Forum. Special thanks to Michael
   Dorsch and Erin Friedman, City University of New York, Graduate Center
   for research and editorial assistance.
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NR 80
TC 51
Z9 54
U1 3
U2 15
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 2017
VL 22
IS 2
AR 38
DI 10.5751/ES-09102-220238
PG 14
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA EZ8SK
UT WOS:000404997600005
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Lamb, Z
   Khirfan, L
AF Lamb, Zachary
   Khirfan, Luna
TI Against Climate Haussmannization: Transformation Through and in Urban
   Design
SO JOURNAL OF PLANNING LITERATURE
LA English
DT Article
DE urban design; climate change; transformation; climate justice; climate
   Haussmannization
ID ADAPTATION; PERSPECTIVES; RESILIENCE; GOVERNANCE; COMMUNITY; KNOWLEDGE;
   POLITICS; LESSONS; RETREAT; CITIES
AB Urban design is an essential component of planning for climate transformation. However, the concept of transformation in urban design is complicated by the problematic legacy of design-led mega-projects. Such projects, often called Haussmannization, are criticized as inattentive to existing landscape, built, and social environments. While corrective movements have partially addressed criticisms of Haussmannization, they can also hinder justice-centered climate transformation, by empowering already powerful interests to defend status quo conditions or justifying inequity-deepening interventions in the name of climate action, a phenomenon we label climate Haussmannization. We present a schema connecting transformative urban design with procedural, distributive, and recognitional justice.
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   [Khirfan, Luna] Univ Waterloo, Sch Planning, Waterloo, ON, Canada.
C3 University of California System; University of California Berkeley;
   University of Waterloo
RP Lamb, Z (corresponding author), Univ Calif Berkeley, City & Reg Planning, Wurster Hall, Berkeley, CA 94702 USA.
EM zlamb@berkeley.edu
RI Khirfan, Luna/AAU-3891-2020
OI /0000-0001-6701-3728; Khirfan, Luna/0000-0003-4978-7521
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NR 117
TC 1
Z9 1
U1 0
U2 17
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0885-4122
EI 1552-6593
J9 J PLAN LIT
JI J. Plan. Lit.
PD AUG
PY 2023
VL 38
IS 3
SI SI
BP 416
EP 425
AR 08854122221108142
DI 10.1177/08854122221108142
EA JUN 2022
PG 10
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA R7VF2
UT WOS:000815843200001
DA 2025-04-22
ER

PT J
AU Nie, LM
AF Nie, Linmei
TI Enhancing urban flood resilience - a case study for policy
   implementation
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-WATER MANAGEMENT
LA English
DT Article
DE sustainability; floods & floodworks; management
ID CLIMATE-CHANGE; DRAINAGE SYSTEMS; IMPACTS; URBANIZATION; NORWAY; WATER
AB Climate change, urbanisation and ageing infrastructure are major challenges to the water sector, community and environment. The effects of these challenges are increasing surface runoff and insufficient drainage capacities, resulting in flooding, pollution and degradation of ecological and biological systems. Compared with traditional flood defence-oriented approaches, the concept of resilience enhances overall community capacity with regard to risk management through hazard and vulnerability assessment, and implementation of technical and non-technical adaptation measures. Fredrikstad, like many municipalities in Norway, faces significant water-related challenges; however, unlike many other municipalities, Fredrikstad has taken proactive action by introducing stormwater management into urban planning and development, guiding public and private sectors and end users to take integrated stormwater management measures through the implementation of a municipal master plan (2008-2028). This paper presents a multilevel approach to enhance municipal flood resilience from strategies to practices. The Fredrikstad case study could provide examples of political implementation and recommendations for other municipalities in Norway and worldwide for adaptation to climate change and urbanisation.
C1 [Nie, Linmei] SINTEF Bldg & Infrastruct, Oslo, Norway.
   [Nie, Linmei] North China Univ Water Resources & Elect Power, Zhengzhou, Peoples R China.
C3 SINTEF; North China University of Water Resources & Electric Power
RP Nie, LM (corresponding author), SINTEF Bldg & Infrastruct, Oslo, Norway.; Nie, LM (corresponding author), North China Univ Water Resources & Elect Power, Zhengzhou, Peoples R China.
FU Research Council of Norway through the Building and Infrastructure
   Vulnerability and Adaptive Capacity to Climate Change (BIVUAC) project
FX The study presented in this paper was financially supported by the
   Research Council of Norway through the Building and Infrastructure
   Vulnerability and Adaptive Capacity to Climate Change (BIVUAC) project
   (July 2010 to June 2013). The author would like express her sincere
   appreciation to Mr Ole Petter Skallebakke in the Fredrikstad
   Municipality for providing information, interviews, discussions and
   fieldworks during the project period. Moreover, the support of Dr Pingju
   Li in improving the quality of the figures is appreciated.
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NR 43
TC 14
Z9 14
U1 8
U2 91
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 2016
VL 169
IS 2
BP 85
EP 93
DI 10.1680/wama.14.00079
PG 9
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA DG3QL
UT WOS:000371984700005
DA 2025-04-22
ER

PT J
AU Ren, MJ
   Chai, N
AF Ren, Minjie
   Chai, Ning
TI Resilience Renewal Design Strategy for Aging Communities in Traditional
   Historical and Cultural Districts: Reflections on the Practice of the
   Sizhou'an Community in China
SO BUILDINGS
LA English
DT Article
DE resilience renewal; aging communities; historical and cultural
   districts; post-epidemic
ID TRANSFORMATION; TOOLS
AB The aging communities within traditional historical and cultural districts in the post-epidemic era face numerous challenges, including declining vitality, deteriorating environments, sluggish economies, and heightened public health risks. This paper aims to explore strategies for promoting the internal self-development of aging communities and enhancing their resilience. It analyzes the resilience of these communities through four dimensions: social factors, built environments, economic factors, and ecological environments. Using the Sizhou'an community in China as a case study, this paper examines the underlying causes of vulnerability and proposes renewal strategies. These strategies include stimulating the vitality of elderly groups, improving the community's spatial environment, leveraging regional cultural advantages, and establishing urban community agricultural gardens. Furthermore, it presents a community renewal model characterized by "government guidance + community leadership + capital introduction + resident participation" to bolster community resilience and vitality, thereby ensuring sustainable development.
C1 [Ren, Minjie; Chai, Ning] Hunan Univ Sci & Technol, Sch Architecture & Art Design, Xiangtan 411201, Peoples R China.
C3 Hunan University of Science & Technology
RP Chai, N (corresponding author), Hunan Univ Sci & Technol, Sch Architecture & Art Design, Xiangtan 411201, Peoples R China.
EM renmmjj@163.com; chainingzp@163.com
FU Scientific Research Fund of Hunan Provincial Education Department,
   China;  [CX20211029]
FX This research was funded by the Scientific Research Fund of Hunan
   Provincial Education Department, China, grant number CX20211029.
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NR 35
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 MAR 19
PY 2025
VL 15
IS 6
AR 965
DI 10.3390/buildings15060965
PG 23
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA 0PR7Y
UT WOS:001453058400001
OA gold
DA 2025-04-22
ER

PT J
AU Ball, K
   Cleland, V
   Salmon, J
   Timperio, AF
   McNaughton, S
   Thornton, L
   Campbell, K
   Jackson, M
   Baur, LA
   Mishra, G
   Brug, J
   Jeffery, RW
   King, A
   Kawachi, I
   Crawford, DA
AF Ball, Kylie
   Cleland, Verity
   Salmon, Jo
   Timperio, Anna F.
   McNaughton, Sarah
   Thornton, Lukar
   Campbell, Karen
   Jackson, Michelle
   Baur, Louise A.
   Mishra, Gita
   Brug, Johannes
   Jeffery, Robert W.
   King, Abby
   Kawachi, Ichiro
   Crawford, David A.
TI Cohort Profile: The Resilience for Eating and Activity Despite
   Inequality (READI) study
SO INTERNATIONAL JOURNAL OF EPIDEMIOLOGY
LA English
DT Article
ID PHYSICAL-ACTIVITY; SOCIOECONOMIC-STATUS; WEIGHT STATUS; WOMEN;
   DEPRIVATION; GUIDELINES; BEHAVIOR; OBESITY; ADULTS; URBAN
AB The Resilience for Eating and Activity Despite Inequality (READI) cohort was established to address the following two key aims: to investigate the pathways (personal, social and structural) by which socio-economic disadvantage influences lifestyle choices associated with obesity risk (physical inactivity, poor dietary choices) and to explore mechanisms underlying 'resilience' to obesity risk in socio-economically disadvantaged women and children. A total of 4349 women aged 18-46 years and 685 children aged 5-12 years were recruited from 80 socio-economically disadvantaged urban and rural neighbourhoods of Victoria, Australia, and provided baseline (T1: 2007-08) measures of adiposity, physical activity, sedentary and dietary behaviours; socio-economic and demographic factors; and psychological, social and perceived environmental factors that might impact on obesity risk. Audits of the 80 neighbourhoods were undertaken at baseline to provide objective neighbourhood environmental data. Three-year follow-up data (2010-11) have recently been collected from 1912 women and 382 children. Investigators welcome enquiries regarding data access and collaboration.
C1 [Ball, Kylie; Salmon, Jo; Timperio, Anna F.; McNaughton, Sarah; Thornton, Lukar; Campbell, Karen; Jackson, Michelle; Crawford, David A.] Deakin Univ, Ctr Phys Act & Nutr Res, Melbourne, Vic, Australia.
   [Cleland, Verity] Menzies Res Inst, Hobart, Tas, Australia.
   [Baur, Louise A.] Childrens Hosp, Westmead, NSW, Australia.
   [Baur, Louise A.] Univ Sydney, Sydney, NSW 2006, Australia.
   [Mishra, Gita] Univ Queensland, Sch Populat Hlth, Herston, Qld, Australia.
   [Brug, Johannes] Vrije Univ Amsterdam, Med Ctr, Amsterdam, Netherlands.
   [Jeffery, Robert W.] Univ Minnesota, Div Epidemiol & Community Hlth, Minneapolis, MN USA.
   [King, Abby] Stanford Univ, Sch Med, Stanford, CA 94305 USA.
   [Kawachi, Ichiro] Harvard Univ, Sch Publ Hlth, Boston, MA 02115 USA.
C3 Deakin University; University of Tasmania; Menzies Institute for Medical
   Research; NSW Health; Sydney Childrens Hospitals Network; University of
   Sydney; University of Sydney; University of Queensland; Vrije
   Universiteit Amsterdam; University of Minnesota System; University of
   Minnesota Twin Cities; Stanford University; Harvard University; Harvard
   T.H. Chan School of Public Health
RP Ball, K (corresponding author), Deakin Univ, Ctr Phys Act & Nutr Res, 221 Burwood Highway, Burwood, Vic 3125, Australia.
EM kylie.ball@deakin.edu.au
RI Baur, Louise/AAE-3413-2021; King, Abby/AAD-5257-2021; Kawachi,
   Ichiro/A-8329-2009; Salmon, Jo/X-2630-2019; Mishra, Gita/KVY-5549-2024;
   Ball, Kylie/B-5866-2015; Salmon, Jo/C-1226-2009; McNaughton, Sarah
   A/B-2075-2012; Cleland, Verity/J-7677-2014; Crawford, David/K-6301-2015;
   Timperio, Anna/A-3086-2013; Brug, Johannes/A-8242-2018
OI King, Abby/0000-0002-7949-8811; Salmon, Jo/0000-0002-4734-6354; Jackson,
   Michelle/0000-0003-4440-4798; McNaughton, Sarah A/0000-0001-5936-9820;
   Baur, Louise/0000-0002-4521-9482; Thornton, Lukar/0000-0001-8759-8671;
   Cleland, Verity/0000-0001-8358-3237; Crawford,
   David/0000-0002-2467-7556; Campbell, Karen/0000-0002-4499-3396;
   Timperio, Anna/0000-0002-8773-5012; Brug, Johannes/0000-0002-1904-7349
FU NHMRC [374241, 479513, 533917]; VicHealth public health research
   fellowships; National Heart Foundation of Australia Career Development
   Award; sanofi-aventis; Victorian Health Promotion Foundation Research
   Fellowship (Public Health); Alfred Deakin Postdoctoral Research
   Fellowship; Australian Research Council Future Fellowship [FT100100581]
FX NHMRC Strategic Award, ID 374241. NHMRC Senior Research Fellowship (ID
   479513 to K.B.). NHMRC Postdoctoral Fellowship (ID 533917 to V. C.).
   VicHealth public health research fellowships (to A.T. and D.C.).
   National Heart Foundation of Australia Career Development Award and
   sanofi-aventis (to J.S.). Victorian Health Promotion Foundation Research
   Fellowship (Public Health) (to K.C.). Alfred Deakin Postdoctoral
   Research Fellowship (to L.T.). Australian Research Council Future
   Fellowship (FT100100581 to S.M.). NHMRC (to G.M.).
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NR 34
TC 47
Z9 49
U1 0
U2 15
PU OXFORD UNIV PRESS
PI OXFORD
PA GREAT CLARENDON ST, OXFORD OX2 6DP, ENGLAND
SN 0300-5771
EI 1464-3685
J9 INT J EPIDEMIOL
JI Int. J. Epidemiol.
PD DEC
PY 2013
VL 42
IS 6
BP 1629
EP 1639
DI 10.1093/ije/dys165
PG 11
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA 291ZC
UT WOS:000329870400024
PM 23255533
OA Green Published, Bronze
DA 2025-04-22
ER

PT J
AU Roberts, E
   Anderson, BA
   Skerratt, S
   Farrington, J
AF Roberts, Elisabeth
   Anderson, Brett Anne
   Skerratt, Sarah
   Farrington, John
TI A review of the rural-digital policy agenda from a community resilience
   perspective
SO JOURNAL OF RURAL STUDIES
LA English
DT Review
DE Resilience; ICTs; Rural development; Policy; Digital inclusion
ID TRANSITIONAL PATHWAYS; GLOBALIZATION; COUNTRYSIDE; SYSTEMS; PLACE;
   LINKS; POWER
AB This paper utilises a community resilience framework to critically examine the digital-rural policy agenda. Rural areas are sometimes seen as passive and static, set in contrast to the mobility of urban, technological and globalisation processes (Bell et al., 2010). In response to notions of rural decline (McManus et al., 2012) rural resilience literature posits rural communities as 'active,' and 'proactive' about their future (Skerratt, 2013), developing processes for building capacity and resources. We bring together rural development and digital policy-related literature, using resilience motifs developed from recent academic literature, including community resilience, digital divides, digital inclusion, and rural information and communication technologies (ICTs). Whilst community broadband initiatives have been linked to resilience (Plunkett-Carnegie, 2012; Heesen et al., 2013) digital inclusion, and engagement with new digital technologies more broadly, have not. We explore this through three resilience motifs: resilience as multi-scalar; as entailing normative assumptions; and as integrated and place-sensitive. We point to normative claims about the capacity of digital technology to aid rural development, to offer solutions to rural service provision and the challenges of implementing localism. Taking the UK as a focus, we explore the various scales at which this is evident, from European to UK country-level. (C) 2016 The Authors. Published by Elsevier Ltd.
C1 [Roberts, Elisabeth] Univ W England, Ctr Floods Communities & Resilience, 3Q12, Bristol BS16 1QY, South Glouceste, England.
   [Anderson, Brett Anne] Univ Aberdeen, Dot Rural RCUK Digital Econ Hub, MacRobert Bldg, Aberdeen AB24 5UA, Scotland.
   [Skerratt, Sarah] Scotlands Rural Coll SRUC, Kings Bldg, Edinburgh EH9 3JG, Midlothian, Scotland.
   [Farrington, John] Univ Aberdeen, Elphinstone Rd, Aberdeen AB24 3UF, Scotland.
C3 University of West England; University of Aberdeen; Scotland's Rural
   College; University of Edinburgh; University of Aberdeen
RP Roberts, E (corresponding author), Univ W England, Ctr Floods Communities & Resilience, 3Q12, Bristol BS16 1QY, South Glouceste, England.
EM liz3.roberts@uwe.ac.uk; brettanne.anderson@gmail.com;
   sarah.skerratt@sruc.ac.uk; j.farrington@abdn.ac.uk
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NR 91
TC 113
Z9 128
U1 36
U2 250
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0743-0167
EI 1873-1392
J9 J RURAL STUD
JI J. Rural Stud.
PD AUG
PY 2017
VL 54
BP 372
EP 385
DI 10.1016/j.jrurstud.2016.03.001
PG 14
WC Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Geography; Public Administration
GA FH9PU
UT WOS:000411545000033
OA Green Accepted, hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Alkhereibi, AH
   Abulibdeh, R
   Abulibdeh, A
AF Alkhereibi, Aya Hasan
   Abulibdeh, Rawan
   Abulibdeh, Ammar
TI Global smart cities classification using a machine learning approach to
   evaluating livability, technology, and sustainability performance across
   key urban indices
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Smart cities; Machine learning; Classification; Livability; Technology;
   Sustainability
ID ARTIFICIAL-INTELLIGENCE; CITY; CHALLENGES; COMMUNITY; TRANSPORT; FUTURE;
   SPACE
AB Smart cities have become an increasingly important response to urbanization challenges, integrating technology to enhance city infrastructure, services, and sustainability. This study aims to classify the highest 50 global smart cities based on key livability and technology indices, using advanced machine learning (ML) models to assess city performance comprehensively. The necessity of this research lies in its focus on identifying patterns and best practices among high-performing cities, offering actionable insights for urban planners and policymakers aiming to improve smart city initiatives. This approach is necessary for understanding and replicating best practices in urban management and smart city development. Focusing on high-ranking cities ensures the study analyzes robust and reliable data, avoiding noise and inconsistencies arising from lower-performing or less-documented cases. Drawing on data from the Smart Cities Index (SCI) and other economic and sustainability competitiveness metrics, the study uses various ML algorithms to categorize cities into performance classes, ranging from high-achieving Class 1 to emerging Class 3 cities. The methodology involves data preparation with imputation and normalization, followed by training 9 supervised ML models. The results show that Support Vector Machine (SVM), K-Nearest Neighbors (KNN), and Decision Tree are identified as the most effective classifiers. Furthermore, the results indicate that cities with well-integrated governance, infrastructure, and sustainability practices consistently rank higher, while cities in the lower classes face challenges in these areas. Policy implications suggest that cities aiming to enhance their smart city performance should prioritize comprehensive urban management strategies that balance technological infrastructure with sustainability and public service accessibility to drive more equitable and resilient urban growth.
C1 [Alkhereibi, Aya Hasan] Qatar Univ, Coll Engn, Doha, Qatar.
   [Abulibdeh, Rawan] Univ Toronto, Dept Elect & Comp Engn, Toronto, ON, Canada.
   [Abulibdeh, Ammar] Qatar Univ, Coll Arts & Sci, Dept Humanities, Appl Geog & GIS Program, POB 2713, Doha, Qatar.
C3 Qatar University; University of Toronto; Qatar University
RP Abulibdeh, A (corresponding author), Qatar Univ, Coll Arts & Sci, Dept Humanities, Appl Geog & GIS Program, POB 2713, Doha, Qatar.
EM aabulibdeh@qu.edu.qa
FU Qatar National Library (QNL)
FX The open access publication of this article was funded by the Qatar
   National Library (QNL) .
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NR 86
TC 0
Z9 0
U1 0
U2 0
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 APR 25
PY 2025
VL 503
AR 145394
DI 10.1016/j.jclepro.2025.145394
PG 22
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 1FQ5X
UT WOS:001463896100001
DA 2025-04-22
ER

PT J
AU Guarnacci, U
AF Guarnacci, Ugo
TI Joining the dots: Social networks and community resilience in
   post-conflict, post-disaster Indonesia
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Social network analysis; Resilience; Disaster; Indonesia
ID DISASTER RISK REDUCTION; GROUP-SIZE; CENTRALITY; INSTITUTIONS;
   CHALLENGES; MANAGEMENT; WORLD
AB This paper applies social network analysis (SNA) as a methodology to investigate community resilience after the December 2004 tsunami and the March 2005 earthquake which struck both Nias and Aceh, Indonesia. Through the analysis, this research focuses on the urban and rural gradients and shows how victims' personal characteristic such as religion, ethnicity and gender create different community's circles of social support. Moreover, this article points out who are the key opinion leaders in the networks and identifies channels of resources/information considered to be crucial to face disaster. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Guarnacci, Ugo] Univ Reading, Dept Econ, POB 218, Reading RG6 6AA, Berks, England.
C3 University of Reading
RP Guarnacci, U (corresponding author), Univ Reading, Dept Econ, POB 218, Reading RG6 6AA, Berks, England.
EM u.guarnacci@pgr.reading.ac.uk
FU Climate Food and Farming Research Network (CLIFF)
FX Many thanks for conversations and reading drafts to Danica Vukadinovic
   Greetham, Marina Della Giusta, Sarah Jewell, John C. Mutter and
   Elisabeth King. I also thank The Climate Food and Farming Research
   Network (CLIFF) for an award to conduct field research in 2011 both in
   Aceh and Nias, Indonesia.
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NR 116
TC 32
Z9 32
U1 6
U2 53
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
PY 2016
VL 16
BP 180
EP 191
DI 10.1016/j.ijdrr.2016.03.001
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 DY1EE
UT WOS:000384836900018
DA 2025-04-22
ER

PT J
AU de Albuquerque, JP
   Anderson, L
   Calvillo, N
   Cattino, M
   Clarke, A
   Cunha, MA
   Degrossi, LC
   Garde-Hansen, J
   Klonner, C
   Lima-Silva, F
   Marchezini, V
   Martins, MHD
   Grajales, DP
   Pitidis, V
   Rizwan, M
   Tkacz, N
   Trajber, R
AF de Albuquerque, Joao Porto
   Anderson, Liana
   Calvillo, Nerea
   Cattino, Massimo
   Clarke, Andrew
   Cunha, Maria Alexandra
   Degrossi, Livia Castro
   Garde-Hansen, Joanne
   Klonner, Carolin
   Lima-Silva, Fernanda
   Marchezini, Victor
   Martins, Mario Henrique da Mata
   Grajales, Diego Pajarito
   Pitidis, Vangelis
   Rizwan, Mohammed
   Tkacz, Nathaniel
   Trajber, Rachel
TI Dialogic data innovations for sustainability transformations and flood
   resilience: The case for waterproofing data
SO GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Transformations; Sustainability; Floods; Urban data; Climate adaptation;
   Resilience; Critical pedagogy; Disaster risk; Participatory urban
   analytics
ID BIG DATA; KNOWLEDGE; BRAZIL
AB Extreme weather events are becoming more frequent and have increasing impacts, which disproportionately affect marginalised and impoverished communities. This article proposes and assesses a new methodological approach for developing innovative solutions based on urban data analytics to address sustainability challenges in light of changing climate conditions. The approach draws inspiration from Paulo Freire's dialogic pedagogy and has been implemented in the international transdisciplinary project "Waterproofing Data", with multiple study sites in Brazil. The project has introduced three methodological interventions: making data practices visible, engaging citizens and communities with data, and sharing data stories. Our study demonstrates that these methods have expanded the types of data used in flood risk management and have engaged a wider range of social groups in the generation, circulation, and utilization of data. We present a framework that provides guidance about the ways in which data innovations can contribute to transformative change, aiming to ensure that future development trajectories are just, inclusive, and equitable. The findings provide evidence that our approach not only helps fill existing data gaps and promote more equitable flood risk governance but also democratises decision-making in climate adaptation. Citizens were empowered to take proactive measures to improve resilience to disaster risks, thereby saving lives and safeguarding livelihoods.
C1 [de Albuquerque, Joao Porto; Cattino, Massimo; Clarke, Andrew] Univ Glasgow, Glasgow, Scotland.
   [Klonner, Carolin; Rizwan, Mohammed] Heidelberg Univ, Heidelberg, Germany.
   [Cunha, Maria Alexandra; Degrossi, Livia Castro; Lima-Silva, Fernanda] Fundacao Getulio Vargas, Sao Paulo, Brazil.
   [Calvillo, Nerea; Garde-Hansen, Joanne; Pitidis, Vangelis; Tkacz, Nathaniel] Univ Warwick, Coventry, England.
   [Marchezini, Victor; Trajber, Rachel] Natl Ctr Disaster Monitoring & Early Warning Cemad, Sao Jose Dos Campos, Brazil.
   [Martins, Mario Henrique da Mata] Univ Fed Sao Carlos UFSCar, Sao Carlos, Brazil.
   [de Albuquerque, Joao Porto] Univ Glasgow, Urban Big Data Ctr, 7 Lilibank Gardens, Glasgow G12 8RZ, Scotland.
C3 University of Glasgow; Ruprecht Karls University Heidelberg; Getulio
   Vargas Foundation; University of Warwick; Universidade Federal de Sao
   Carlos; University of Glasgow
RP de Albuquerque, JP (corresponding author), Univ Glasgow, Urban Big Data Ctr, 7 Lilibank Gardens, Glasgow G12 8RZ, Scotland.
EM joao.porto@glasgow.ac.uk
RI Anderson, Liana/AFV-0623-2022; de Albuquerque, Joao/O-2972-2019;
   Calvillo, Nerea/LDG-6728-2024; Degrossi, Livia/K-6988-2017; Pitidis,
   Vangelis/AAP-6894-2021; Klonner, Carolin/KGK-5805-2024; Silva,
   Fernanda/JBS-7012-2023; da Mata Martins, Mario/AAM-1297-2021; Porto de
   Albuquerque, Joao/E-6374-2011; Marchezini, Victor/Q-4002-2016
OI Porto de Albuquerque, Joao/0000-0002-3160-3168; Klonner,
   Carolin/0000-0003-1981-2204; Marchezini, Victor/0000-0002-1974-0960;
   Pitidis, Vangelis/0000-0003-2410-4528
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NR 102
TC 7
Z9 8
U1 2
U2 40
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0959-3780
EI 1872-9495
J9 GLOBAL ENVIRON CHANG
JI Glob. Environ. Change-Human Policy Dimens.
PD SEP
PY 2023
VL 82
AR 102730
DI 10.1016/j.gloenvcha.2023.102730
EA JUL 2023
PG 15
WC Environmental Sciences; Environmental Studies; Geography
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA P6YU1
UT WOS:001052118100001
OA hybrid
DA 2025-04-22
ER

PT J
AU Busayo, ET
   Kalumba, AM
   Orimoloye, IR
AF Busayo, Emmanuel Tolulope
   Kalumba, Ahmed Mukalazi
   Orimoloye, Israel Ropo
TI Spatial planning and climate change adaptation assessment: Perspectives
   from Mdantsane Township dwellers in South Africa
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Assessment; climate change adaptation; Mdantsane township; Resilience;
   Spatial planning; Urban
ID LAND; GOVERNANCE; POLITICS; GIS
AB Spatial planning plays a significant role in enhancing climate change adaptation especially within urban areas by improving their resilience. Despite all this, cities especially in developing countries still experience the effects of climate change. This paper adopted a mixed method approach to examine township spatial planning and climate change adaptation in identifying potentialities for an integrated approach. Mdantsane case study as one of the largest townships in South Africa was assessed as a unique landscape with reminiscent of apartheid legacies to improve the people's climate change adaptation under urban poverty, lack of basic facilities and other environmental challenges. In keeping with a case study design, we collected data making use of pretested open and close-ended survey forms with an interplay of GIS and remote sensing techniques. This study reveals that Mdantsane is extremely susceptible to the impacts of climate change due to their built-up and natural environment set up as well as the existing interrelations. Thus, comprehensive integration of spatial planning is essential for proofing, health, wellbeing and resilience. Consequently, recommendations to seek strategic intervention and planning were made to sustain adaptation of residents to climate change in the future with specific focus to reduce climate and environmental risks in Mdantsane Township.
C1 [Busayo, Emmanuel Tolulope; Kalumba, Ahmed Mukalazi; Orimoloye, Israel Ropo] 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; orimoloyeisrael@gmail.com
RI Orimoloye, Israel/AAW-1778-2020
OI Busayo, Emmanuel Tolulope/0000-0002-9274-2145; Orimoloye, Israel
   Ropo/0000-0001-5058-2799; Kalumba, Ahmed Mukalazi/0000-0001-7593-9096
CR Abbott D., 2014, Applied Predictive Analytics: Principles and Techniques for the Professional Data Analyst
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NR 53
TC 33
Z9 36
U1 2
U2 34
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 2019
VL 90
AR 101978
DI 10.1016/j.habitatint.2019.04.005
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 IQ3RM
UT WOS:000480668800004
OA hybrid
DA 2025-04-22
ER

PT J
AU Diao, KG
   Sweetapple, C
   Farmani, R
   Fu, GT
   Ward, S
   Butler, D
AF Diao, Kegong
   Sweetapple, Chris
   Farmani, Raziyeh
   Fu, Guangtao
   Ward, Sarah
   Butler, David
TI Global resilience analysis of water distribution systems
SO WATER RESEARCH
LA English
DT Article
DE Excess demand; Failure mode; Global resilience analysis; Pipe failure;
   Substance intrusion; Water distribution system
ID VULNERABILITY; NETWORKS; QUALITY
AB Evaluating and enhancing resilience in water infrastructure is a crucial step towards more sustainable urban water management. As a prerequisite to enhancing resilience, a detailed understanding is required of the inherent resilience of the underlying system. Differing from traditional risk analysis, here we propose a global resilience analysis (GRA) approach that shifts the objective from analysing multiple and unknown threats to analysing the more identifiable and measurable system responses to extreme conditions, i.e. potential failure modes. GRA aims to evaluate a system's resilience to a possible failure mode regardless of the causal threat(s) (known or unknown, external or internal). The method is applied to test the resilience of four water distribution systems (WDSs) with various features to three typical failure modes (pipe failure, excess demand, and substance intrusion). The study reveals GRA provides an overview of a water system's resilience to various failure modes. For each failure mode, it identifies the range of corresponding failure impacts and reveals extreme scenarios (e.g. the complete loss of water supply with only 5% pipe failure, or still meeting 80% of demand despite over 70% of pipes failing). GRA also reveals that increased resilience to one failure mode may decrease resilience to another and increasing system capacity may delay the system's recovery in some situations. It is also shown that selecting an appropriate level of detail for hydraulic models is of great importance in resilience analysis. The method can be used as a comprehensive diagnostic framework to evaluate a range of interventions for improving system resilience in future studies. (C) 2016 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.orgilicenses/by/4.0/).
C1 [Diao, Kegong; Sweetapple, Chris; Farmani, Raziyeh; Fu, Guangtao; Ward, Sarah; Butler, David] Univ Exeter, Ctr Water Syst, North Pk Rd, Exeter EX4 4QF, Devon, England.
   [Diao, Kegong] De Montfort Univ, Fac Technol, Mill Lane, Leicester LE2 7DR, Leics, England.
C3 University of Exeter; De Montfort University
RP Sweetapple, C (corresponding author), Univ Exeter, Ctr Water Syst, North Pk Rd, Exeter EX4 4QF, Devon, England.; Diao, KG (corresponding author), De Montfort Univ, Fac Technol, Mill Lane, Leicester LE2 7DR, Leics, England.
EM dkg630630@gmail.com; C.Sweetapple@exeter.ac.uk; R.Farmani@exeter.ac.uk;
   G.Fu@exeter.ac.uk; sarah.ward@exeter.ac.uk; D.Butler@exeter.ac.uk
RI Fu, Guangtao/ABE-3874-2021; Ward, Sarah/AAK-5052-2020; Sweetapple,
   Chris/GQQ-1426-2022; Farmani, Raziyeh/D-3457-2012; Ward,
   Sarah/Q-2728-2015; Butler, David/I-2991-2012
OI Farmani, Raziyeh/0000-0001-8148-0488; Ward, Sarah/0000-0002-1432-4204;
   Butler, David/0000-0001-5515-3416; Diao, Kegong/0000-0003-2315-9455
FU UK Engineering & Physical Sciences Research Council (EPSRC) project Safe
   SuRe [EP/K006924/1]; EPSRC [EP/K006924/1] Funding Source: UKRI
FX The work reported is funded by the UK Engineering & Physical Sciences
   Research Council (EPSRC) project Safe & SuRe (EP/K006924/1).
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NR 36
TC 151
Z9 171
U1 14
U2 162
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 DEC 1
PY 2016
VL 106
BP 383
EP 393
DI 10.1016/j.watres.2016.10.011
PG 11
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA EC3SV
UT WOS:000388047500040
PM 27750127
OA Green Accepted, hybrid
DA 2025-04-22
ER

PT J
AU Goodchild, B
   Sharpe, R
   Hanson, C
AF Goodchild, Barry
   Sharpe, Rebecca
   Hanson, Chris
TI Between resistance and resilience: a study of flood risk management in
   the Don catchment area (UK)
SO JOURNAL OF ENVIRONMENTAL POLICY & PLANNING
LA English
DT Article
DE Resilience; resistance; urban planning; risk management
ID TRANSITION MANAGEMENT; CLUMSY SOLUTIONS; GOVERNANCE; COMPLEXITY;
   POLITICS
AB The river Don catchment area in Sheffield and Rotherham offers a good place for a case study of flood risk management, given the impact of a flooding event in 2007 and the way in which local events have become entwined with national and international policy shifts. To interpret local policy, a combination of systems-based and socio-cultural theory is used. Both the theories and the case study serve to disentangle the multiple meanings of resilience. Understood in opposition to flood resistance, resilience has only limited applicability in an area such as the case study where engineering works protect employment and infrastructure. Resilience as a policy discourse also lacks political transparency and a recognition of socio-cultural influences. Underlying the shift towards resilient styles of management is an appreciation of the importance of capacity, to learn and to act. The case study identifies blockages to the realisation of that capacity.
C1 [Goodchild, Barry; Sharpe, Rebecca; Hanson, Chris] Sheffield Hallam Univ, Ctr Reg & Econ Res, Sheffield S1 1WB, S Yorkshire, England.
C3 Sheffield Hallam University
RP Goodchild, B (corresponding author), Sheffield Hallam Univ, Ctr Reg & Econ Res, Sheffield S1 1WB, S Yorkshire, England.
EM cresr@shu.ac.uk
OI Sharpe, Rebecca/0000-0002-2783-9215
FU Sheffield Hallam University
FX This work was supported by Sheffield Hallam University.
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NR 52
TC 6
Z9 6
U1 1
U2 28
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1523-908X
EI 1522-7200
J9 J ENVIRON POL PLAN
JI J. Environ. Pol. Plan.
PY 2018
VL 20
IS 4
BP 434
EP 449
DI 10.1080/1523908X.2018.1433997
PG 16
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA GI4JF
UT WOS:000434336800003
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Singh-Peterson, L
   Lawrence, G
AF Singh-Peterson, Lila
   Lawrence, Geoffrey
TI Insights into community vulnerability and resilience following natural
   disasters: perspectives with food retailers in Northern NSW, Australia
SO LOCAL ENVIRONMENT
LA English
DT Article
DE food-supply chains; resilience of food-supply; rural community
   resilience; food systems vulnerability
AB The resilience of Australia's food-supply chain following natural disasters has been brought into question, following the significant flooding and cyclone events of 2010/2011. How this manifests at the community level, in both rural and urban locations, has been examined through the lens of large and small food retailers in northern NSW. These interviews reveal the fragility of both the long and short supply chain where transport systems are compromised. Self-imposed standards severely restricted the ability of supermarkets to acquire fresh food, in the face of transport disruptions. Similarly, the precarious position of rural food retailers, exposed to continual fuel and electricity price increases, is compounded by the impact of extreme weather events. The insights captured through this study suggest interception points, or policy entry points, to address the resilience of the food-supply chain.
C1 [Singh-Peterson, Lila] Univ Sunshine Coast, Sustainabil Res Ctr, Maroochydore, Australia.
   [Lawrence, Geoffrey] Univ Queensland, Sch Social Sci, Brisbane, Qld, Australia.
   [Lawrence, Geoffrey] Univ Queensland, Global Change Inst, Brisbane, Qld, Australia.
C3 University of the Sunshine Coast; University of Queensland; University
   of Queensland
RP Singh-Peterson, L (corresponding author), Univ Sunshine Coast, Sustainabil Res Ctr, Maroochydore, Australia.
EM lsinghpe@usc.edu.au
RI Lawrence, Geoffrey/H-1525-2019; Singh-Peterson, Lila/R-9323-2019
OI Singh-Peterson, Lila/0000-0002-6095-9569
FU Australian Research Council [DP 120101949]; National Research Foundation
   of Korea [NRF-2010-330-00159]; Norwegian Research Council
FX Professor Lawrence receives funding from the Australian Research Council
   [DP 120101949], the National Research Foundation of Korea
   [NRF-2010-330-00159] and the Norwegian Research Council.
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NR 46
TC 22
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PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
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PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
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JI Local Environ.
PY 2015
VL 20
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EP 795
DI 10.1080/13549839.2013.873396
PG 14
WC Green & Sustainable Science & Technology; Environmental Studies;
   Geography; Regional & Urban Planning; Urban Studies
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SC Science & Technology - Other Topics; Environmental Sciences & Ecology;
   Geography; Public Administration; Urban Studies
GA V79YR
UT WOS:000212150800003
DA 2025-04-22
ER

PT J
AU Essel-Gaisey, F
   Okyere, MA
   Forson, R
   Chiang, TF
AF Essel-Gaisey, Felix
   Okyere, Michael Adu
   Forson, Richmond
   Chiang, Tsun-Feng
TI The road to recovery: Financial resilience and mental health in
   post-apartheid South Africa
SO SSM-POPULATION HEALTH
LA English
DT Article
DE Multidimensional financial resilience; Mental health disorders; South
   Africa; Wellbeing; Life satisfaction; Household expenditure
ID SELF-DETERMINATION THEORY; PROPENSITY SCORE; GROSSMAN MODEL; INCOME;
   CONSUMPTION; POVERTY; SATISFACTION; EMPOWERMENT; DISORDERS
AB Following the post-apartheid era in South Africa, global economic hardships and financial shocks have forced most households to endure various mental and psychological stresses.. This has hindered the achievement of Sustainable Development Goal 3 (SDG-3)-good health and wellbeing-prompting policymakers and academics to search for remedies to mitigate such stresses. Highlighting resilience as a means of improving wellbeing, this paper focuses on financial resilience and constructs an index using a multidimensional framework to investigate its association with mental health disorders. Using the South Africa National Income Dynamic Study alongside several robust estimation techniques, we uncover a negative association between financial resilience and mental health disorders among South Africans. More specifically, financial resilience is associated with an approximately 37% decrease in the occurrence of mental health disorders. The results also reveal disparities in the correlation between financial resilience and mental health disorders across different subgroups. Non-Whites (especially Blacks), urban dwellers, and male household heads are shown to most strongly experience the depressionreducing effect of financial resilience. This paper also shows that life satisfaction and household expenditure mediate the relationship between financial resilience and mental wellbeing. Toward the end of this paper, we discuss the implications of our results and offer some policy recommendations.
C1 [Essel-Gaisey, Felix; Chiang, Tsun-Feng] Henan Univ, Sch Econ, Kaifeng 475004, Henan, Peoples R China.
   [Okyere, Michael Adu] Xiamen Univ, China Inst Studies Energy Policy, Sch Management, Xiamen 361005, Fujian, Peoples R China.
   [Forson, Richmond] Xiamen Univ, Wang Yanan Inst Studies Econ, Xiamen 361005, Fujian, Peoples R China.
   [Chiang, Tsun-Feng] Natl Chiayi Univ, Dept Appl Econ, Chiayi, Taiwan.
   [Okyere, Michael Adu] Xiamen Univ, Sch Econ, China Ctr Energy Econ Res, Xiamen 361005, Peoples R China.
C3 Henan University; Xiamen University; Xiamen University; National Chiayi
   University; Xiamen University
RP Chiang, TF (corresponding author), Natl Chiayi Univ, Dept Appl Econ, Chiayi, Taiwan.
EM pkwesh@gmail.com; papaokyere70@gmail.com; richmondforson6@gmail.com;
   tschiang@mail.ncyu.edu.tw
RI Okyere, Michael/AAM-3831-2021; Forson, Richmond/GVS-3235-2022
OI Essel-Gaisey, Felix/0000-0002-2693-2813; Chiang,
   Tsun-Feng/0000-0003-4669-6755
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NR 133
TC 8
Z9 9
U1 7
U2 18
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 2352-8273
J9 SSM-POPUL HLTH
JI SSM-Popul. Health
PD SEP
PY 2023
VL 23
AR 101455
DI 10.1016/j.ssmph.2023.101455
EA JUN 2023
PG 14
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA Q6GK8
UT WOS:001058484900001
PM 37456618
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Carvalhaes, T
   Rinaldi, V
   Goh, Z
   Azad, S
   Uribe, J
   Ghandehari, M
AF Carvalhaes, Thomaz
   Rinaldi, Vivaldi
   Goh, Zhen
   Azad, Shams
   Uribe, Juanita
   Ghandehari, Masoud
TI Integrating Spatial and Ethnographic Methods for Resilience Research: A
   Thick Mapping Approach for Hurricane Maria in Puerto Rico
SO ANNALS OF THE AMERICAN ASSOCIATION OF GEOGRAPHERS
LA English
DT Article
DE complexity; Hurricane Maria; mixed methods; resilience; thick mapping
ID URBAN RESILIENCE; COMMUNITY RESILIENCE; COMPLEX
AB Hurricane Maria left unprecedented impacts on Puerto Rican communities, leaving some without infrastructure services and unable to communicate with family for several months. To understand the forms of community-level resilience that emerged while hard infrastructure systems took time recover, this article (1) abductively explores resilience as an emergent phenomenon of complex adaptive systems; (2) identifies subsequent forms of social capital, local adaptive capacities, and manifestations of quantifiable variables, such as infrastructure performance, in community experiences; and (3) demonstrates a framework to integrate disparate methodologies for resilience assessments via a multiplicity of mappings of space and place. We combine ethnographic and geospatial methods into an interactive GeoApp for analysis using participant-coded narratives and a series of geospatial indicators as a thick map. Thick mapping facilitates quantitative and qualitative data analysis at several scales, while enabling qualitative query of collected narratives. Results highlight local innovation, community bonding and bridging, and nuances in the role of public institutions as emergent elements of resilience. The thick map shows how top-down assessments can be augmented by thick data and how multiple framings can be anchored in the same system or place. These findings are important to inform and integrate community-oriented and technocentric solutions toward resilience-enhancing measures.
C1 [Carvalhaes, Thomaz] Oak Ridge Natl Lab, Human Dynam Grp, Oak Ridge, TN 37830 USA.
   [Rinaldi, Vivaldi] NYU, Tandon Sch Engn, Urban Syst, Brooklyn, NY 11201 USA.
   [Azad, Shams] NYU, Dept Civil & Urban Engn, Tandon Sch Engn, Brooklyn, NY 11201 USA.
   [Ghandehari, Masoud] NYU, Tandon Sch Engn, Fac Civil & Urban Engn, Brooklyn, NY 11201 USA.
   [Goh, Zhen] Emerginarium, Singapore, Singapore.
   [Uribe, Juanita] Cognit Edge, Latin Amer Reg, Singapore, Singapore.
C3 United States Department of Energy (DOE); Oak Ridge National Laboratory;
   New York University; New York University Tandon School of Engineering;
   New York University; New York University Tandon School of Engineering;
   New York University; New York University Tandon School of Engineering
RP Carvalhaes, T (corresponding author), Oak Ridge Natl Lab, Human Dynam Grp, Oak Ridge, TN 37830 USA.
EM carvalhaestm@ornl.gov; var287@nyu.edu; zhen@emerginarium.com;
   sua215@nyu.edu; juanita.uribe@cognitive-edge.com; mg3081@nyu.edu
RI Carvalhaes, Thomaz/GXV-3742-2022
OI Azad, Shams/0000-0003-3683-7761; Carvalhaes, Thomaz/0000-0003-3352-3302
FU National Science Foundation [CRISP-1832678]
FX This work was funded by National Science Foundation grant number
   CRISP-1832678. New York University has applied and received IRB
   exemption for this work.
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NR 82
TC 4
Z9 5
U1 5
U2 20
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 NOV 11
PY 2022
VL 112
IS 8
BP 2413
EP 2435
DI 10.1080/24694452.2022.2071200
EA MAY 2022
PG 23
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA 6D7DC
UT WOS:000824448900001
DA 2025-04-22
ER

PT J
AU Moussa, YM
   Diop, IT
   Nassirou, I
   Nafiou, MM
   Soulé, M
AF Moussa, Yahaya Maazou
   Diop, Ibrahima Thione
   Nassirou, Ibrahim
   Nafiou, Malam Maman
   Soule, Moussa
TI Determinants of the urban green spaces management practices in the city
   of Niamey, Niger
SO CITIES
LA English
DT Article
DE Urban green spaces; Management practices; Niamey City; Niger
ID TREES
AB Urban green spaces in the city of Niamey are under the threat of rapid urbanization in the context of climate change. The urban green space management becomes paramount and solicits the stakeholders' participation. Therefore, this study aims to analyze the determinants of the urban green space management practiced by the dwellers in Niamey City. Based on the questionnaire, the multinomial logistic model was applied to the primary data collected from close to 390 randomly selected households. The results show that the variables shade from urban green spaces, gender, household size, education level, monthly income, work status, length of time living in the districts, the status of peripheral areas, status of transitional areas, cost of the management, and plant market are the determinants of the urban green space management practices. These results give a signal to urban managers, and decision-makers on the factors to be addressed for better delivering urban green spaces likely to enhance urban climate resilience.
C1 [Moussa, Yahaya Maazou; Nafiou, Malam Maman] Abdou Moumouni Univ Niamey, Fac econ & management, Dept Econ, Niamey, Niger.
   [Diop, Ibrahima Thione] Cheikh Anta Diop Univ Dakar, Fac econ & management, Dept Econ, Dakar, Senegal.
   [Nassirou, Ibrahim] Univ Montreal, Montreal, PQ, Canada.
   [Soule, Moussa] Univ Dan Dicko Dankoulodo Maradi UDDM, Fac Sci & Tech FST, Dept Biol, Maradi, Niger.
C3 Abdou Moumouni University; University Cheikh Anta Diop Dakar; Universite
   de Montreal
RP Moussa, YM (corresponding author), Abdou Moumouni Univ Niamey, Fac econ & management, Dept Econ, Niamey, Niger.
EM mousyaha@yahoo.com
RI Moussa, Soulé/C-4391-2019
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NR 27
TC 2
Z9 2
U1 6
U2 25
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JAN
PY 2024
VL 144
AR 104641
DI 10.1016/j.cities.2023.104641
EA NOV 2023
PG 8
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA Y5XZ9
UT WOS:001105999400001
DA 2025-04-22
ER

PT J
AU Pernice, GFA
   Orso, V
   Gamberini, L
AF Pernice, Gabriella Francesca Amalia
   Orso, Valeria
   Gamberini, Luciano
TI Redefining Coworking for Sustainable Communities: Insights from Small
   Cities Amid COVID-19
SO SUSTAINABILITY
LA English
DT Article
DE coworking space; sustainability; resilience; COVID-19; work-life
   balance; suburban areas
ID CO-WORKING; SPACES; ENTREPRENEURSHIP
AB The global rise of coworking spaces (CSs) underscores their potential to foster sustainable urban development by promoting collaboration, community engagement, and strengthening local communities. However, little is known about how CSs in smaller urban or suburban settings are managed. The COVID-19 pandemic added uncertainty to this sector, placing significant strain on these spaces and testing their resilience. This study explored how managers of CSs in small cities organize and sustain their operations, focusing on the challenges posed by the pandemic. We employed a qualitative approach, conducting eleven in-depth semi-structured interviews with managers of small city CSs, followed by nine additional interviews four months later to capture the evolving conditions. Findings show that management strategies crucially shape the sustainability of these spaces: those emphasizing open, collaborative layouts proved more vulnerable to lockdown measures, whereas those offering private offices generally weathered the crisis more effectively-albeit sometimes at the expense of a collaborative culture and community integration. These insights highlight the importance of adaptive management practices that balance economic viability with the core principles of collaboration and community building. By addressing the distinct challenges of smaller urban and suburban contexts, CS managers can strengthen their spaces' resilience and enhance both social and economic sustainability in their local communities.
C1 [Pernice, Gabriella Francesca Amalia; Orso, Valeria; Gamberini, Luciano] Univ Padua, Dept Gen Psychol, I-35131 Padua, Italy.
   [Orso, Valeria; Gamberini, Luciano] Univ Padua, Human Inspired Res Ctr, I-35121 Padua, Italy.
C3 University of Padua; University of Padua
RP Orso, V (corresponding author), Univ Padua, Dept Gen Psychol, I-35131 Padua, Italy.; Orso, V (corresponding author), Univ Padua, Human Inspired Res Ctr, I-35121 Padua, Italy.
EM gabriella.pernice@studenti.unipd.it; valeria.orso@unipd.it;
   luciano.gamberini@unipd.it
RI Orso, Valeria/KUD-5651-2024
FU FSE POR 2014-2020 [2122-0008-1463-2019]; FSE POR
FX This study was partially supported by the FSE POR 2014-2020, and the
   Project number is 2122-0008-1463-2019.
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NR 76
TC 0
Z9 0
U1 0
U2 0
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 1547
DI 10.3390/su17041547
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 Y4J2E
UT WOS:001431799000001
OA gold
DA 2025-04-22
ER

PT J
AU D'Ambrosio, R
   Longobardi, A
   Balbo, A
   Rizzo, A
AF D'Ambrosio, Roberta
   Longobardi, Antonia
   Balbo, Alessandro
   Rizzo, Anacleto
TI Hybrid Approach for Excess Stormwater Management: Combining
   Decentralized and Centralized Strategies for the Enhancement of Urban
   Flooding Resilience
SO WATER
LA English
DT Article
DE stormwater detention tanks; low-impact development; flood resilience
ID LOW-IMPACT DEVELOPMENT; PERFORMANCE; SYSTEM; STORAGE; GREEN;
   INFRASTRUCTURES; OPTIMIZATION
AB Urban sprawl and soil sealing has gradually led to an impervious surface increase with consequences on the enhancement of flooding risk. During the last decades, a hybrid approach involving both traditional storm water detention tanks (SWDTs) and low-impact development (LID) has resulted in the best solution to manage urban flooding and to improve city resilience. This research aimed at a modeling comparison between drainage scenarios involving the mentioned hybrid approach (H-SM), with (de)centralized LID supporting SWDTs, and a scenario representative of the centralized approach only involving SWDTs (C-SM). Results highlighted that the implementation of H-SM approaches could be a great opportunity to reduce SWDTs volumes. However, the performances varied according to the typology of implemented LID, their parameterization with specific reference to the draining time, and the rainfall severity. Overall, with the increase of rainfall severity and the decrease of draining time, a decrease of retention performances can be observed with SWDTs volume reductions moving from 100% to 28%. In addition, without expecting to implement multicriteria techniques, a preliminary cost analysis pointed out that the larger investment effort of the (de)centralized LID could be, in specific cases, overtaken by the cost advantages resulting from the reduction of the SWDTs volumes.
C1 [D'Ambrosio, Roberta; Longobardi, Antonia] Univ Salerno, Dept Civil Engn, I-84084 Fisciano, Italy.
   [Balbo, Alessandro] WISE Engn Srl, I-20017 Rho, Italy.
   [Rizzo, Anacleto] IRIDRA Srl, I-50121 Florence, Italy.
C3 University of Salerno
RP D'Ambrosio, R (corresponding author), Univ Salerno, Dept Civil Engn, I-84084 Fisciano, Italy.
EM balbo@wisebenefit.it; rizzo@iridra.com
RI Longobardi, Antonia/AAE-3780-2019; Rizzo, Anacleto/A-1879-2011;
   D'Ambrosio, Roberta/KQU-9939-2024
OI LONGOBARDI, Antonia/0000-0002-1575-0782; Rizzo,
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NR 48
TC 13
Z9 13
U1 4
U2 34
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD DEC
PY 2021
VL 13
IS 24
AR 3635
DI 10.3390/w13243635
PG 19
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA XZ1UF
UT WOS:000737444600001
OA gold
DA 2025-04-22
ER

PT J
AU Chen, X
   Huang, X
   Yu, TH
   Zhang, Y
   Cui, XF
AF Chen, Xi
   Huang, Xuan
   Yu, Tonghui
   Zhang, Yu
   Cui, Xufeng
TI From Imbalance to Synergy: The Coupling Coordination of Digital
   Inclusive Finance and Urban Ecological Resilience in the Yangtze River
   Economic Belt
SO LAND
LA English
DT Article
DE Yangtze River Economic Belt; digital inclusion finance; urban ecological
   resilience; decoupling model; coupling coordination degree
ID INFRASTRUCTURE
AB In the context of rapid urbanization and digitalization, scientifically assessing the spatio-temporal interaction between digital inclusive finance (DIF) and urban ecological resilience (UER) is crucial for promoting the coordinated development of the regional ecology and economy. This study investigates the spatiotemporal evolution of the coupled coordination degree (CCD), the decoupling phenomenon, and its hindering factors in the Yangtze River Economic Belt (YREB) by utilizing the kernel density analysis, standard deviation ellipse, decoupling model, and obstacle degree analysis. Through systematic analyses, this paper aims to elucidate the development disparities among regions within the YREB, identify problematic areas, and propose targeted improvement measures. The results show that (1) The CCD between DIF and UER in the YREB has increased annually from 2011 to 2020. However, there are persistent imbalances, with an overall low level of coordination and uneven spatial development, and a trend of "higher coordination in the east and lower coordination in the west". (2) The overall CCD of the YREB has reached at least the primary coordination level, with the coupling enhancement speed ranked as "downstream > midstream > upstream", and regional differences decreasing. (3) The decoupling analysis reveals a predominant decoupling trend between DIF and UER, indicating that the digitization of financial services has not concurrently increased ecological pressures. (4) The obstacle degree analysis identifies resilience and digitalization as major barriers hindering CCD. This study provides a scientific basis and analytical framework for understanding the current spatiotemporal interaction between DIF and UER in the YREB, offering an important reference for formulating more effective policies.
C1 [Chen, Xi; Huang, Xuan; Yu, Tonghui; Zhang, Yu] Xinyang Normal Univ, Sch Business, Xinyang 464000, Peoples R China.
   [Cui, Xufeng] Zhongnan Univ Econ & Law, Sch Business Adm, Wuhan 430073, Peoples R China.
C3 Xinyang Normal University; Zhongnan University of Economics & Law
RP Cui, XF (corresponding author), Zhongnan Univ Econ & Law, Sch Business Adm, Wuhan 430073, Peoples R China.
EM xichen@xynu.edu.cn; huang1004@xynu.edu.cn; yuth1987@xynu.edu.cn;
   y.zhang@xynu.edu.cn; cxf@zuel.edu.cn
RI Xufeng, Cui/GMX-2978-2022; Yu, Tonghui/KBB-1425-2024
OI Yu, Tonghui/0009-0004-8945-1787
FU Soft Science Research Plan Project of Henan Province; Postgraduate
   Education Reform and Quality Improvement Project of Henan Province
   [YJS2022JD30];  [242400410215]
FX This work was supported by Soft Science Research Plan Project of Henan
   Province (Grant No. 242400410215), Postgraduate Education Reform and
   Quality Improvement Project of Henan Province (Grant No. YJS2022JD30).
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NR 71
TC 2
Z9 2
U1 28
U2 28
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 1617
DI 10.3390/land13101617
PG 31
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA K4J9D
UT WOS:001343565000001
OA gold
DA 2025-04-22
ER

PT J
AU Cox, S
AF Cox, Savannah
TI Inscriptions of resilience: Bond ratings and the government of climate
   risk in Greater Miami, Florida
SO ENVIRONMENT AND PLANNING A-ECONOMY AND SPACE
LA English
DT Article
DE Resilience; bond ratings; climate governance; environmental fixes
ID DEBT; CITY; FIX
AB In recent years, credit rating agencies have begun to incorporate a municipality's resilience and vulnerability to climate change into their US municipal bond rating methods. Drawing on the case of Greater Miami resilience planning and Science and Technology Studies-inspired work on inscriptive devices, I investigate how this incorporation practically happens, and how it shapes the ways that Greater Miami governments attempt to govern climate risk through resilience investments. What "counts" as resilience there, I suggest, is increasingly an effect of the observational practices of rating agencies. However, the still-emergent status of resilience as an object of knowledge among rating agencies and Greater Miami governments means that resilience retains a degree of plasticity, allowing government officials and residents alike to mobilize the term for different purposes and toward different ends. In tracing the emergent relations between rating agency practice on climate risk and local government resilience investments, the paper makes two contributions to scholarship in economic and urban geography. First, it illuminates the ways that extra-local practices of expert valuation shape the local construction of environmental fixes. Second, it offers insights into how one of the key actors of the 2007-2008 financial crisis is beginning to lay the epistemic groundwork for future economic crises and inequalities in and between cities, this time as they relate to climate change impacts and a city's supposed resilience and vulnerability to them.
C1 [Cox, Savannah] Univ Calif Berkeley, Dept City & Reg Planning, Berkeley, CA 94720 USA.
C3 University of California System; University of California Berkeley
RP Cox, S (corresponding author), Univ Calif Berkeley, Dept City & Reg Planning, Berkeley, CA 94720 USA.
EM savannah.cox@berkeley.edu
OI Cox, Savannah/0000-0001-7686-0865
FU National Science Foundation Division of Behavioral and Cognitive
   Sciences [2025990]; Direct For Social, Behav & Economic Scie [2025990]
   Funding Source: National Science Foundation; Division Of Behavioral and
   Cognitive Sci [2025990] Funding Source: National Science Foundation
FX The authors disclosed receipt of the following financial support for the
   research, authorship, and/or publication of this article: This work was
   supported by the National Science Foundation Division of Behavioral and
   Cognitive Sciences (grant number 2025990).
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NR 44
TC 23
Z9 26
U1 1
U2 27
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
PD MAR
PY 2022
VL 54
IS 2
BP 295
EP 310
AR 0308518X211054162
DI 10.1177/0308518X211054162
EA NOV 2021
PG 16
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA YJ5CZ
UT WOS:000717957800001
DA 2025-04-22
ER

PT J
AU Wang, Y
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AF Wang, Yang
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TI Multidimensional evaluation of seismic emergency capabilities in Chinese
   cities: the case of Changchun
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Urbanization; Seismic disasters; Emergency capabilities; Indicator
   evaluation system; Disaster recovery
ID RESPONSE CAPACITY; MANAGEMENT; RESILIENCE; FRAMEWORK; CRITERIA
AB In the context of rapid urbanization, the proliferation of high-density residential zones and intricate infrastructure networks markedly amplifies a city's susceptibility to natural calamities, notably seismic events. Thus, a precise evaluation of a city's emergency capability for seismic events is imperative. This research proposes a novel and all-encompassing evaluation framework for indicators, grounded in crisis management theory, covering the entire spectrum of disaster mitigation, preparedness, response, and recovery. The framework comprises four primary dimensions and 15 auxiliary indicators, synergistically integrating quantitative and qualitative methodologies. Employing the coefficient of Coefficient of Variation Method and the Delphi Method, the study assigns weights to the indicators, while the 2-tuple fuzzy linguistic approach adeptly manages uncertain information. Utilizing Changchun City as an exemplar, the constructed and analyzed model highlights the city's strengths in emergency supply reserves and the formulation of emergency plans. However, the findings indicate a pressing need for enhancements in seismic preparedness, monitoring and early warning systems, urban economic resilience, and public education initiatives. This study not only furnishes a robust framework for evaluating disaster emergency capabilities specific to Changchun City but also imparts valuable insights applicable to seismic disaster management in other urban contexts. It substantially contributes to the theoretical and practical discourse on augmenting urban resilience in the face of natural disasters.
C1 [Wang, Yang; Zhang, Yichen; Li, Mingda; Ma, Ming; Li, Jinying] Changchun Inst Technol, Coll Jilin Emergency Management, Changchun 130012, Peoples R China.
   [Zhang, Jiquan] Northeast Normal Univ, Sch Environm, Changchun 130024, Peoples R China.
C3 Changchun Institute Technology; Northeast Normal University - China
RP Zhang, YC (corresponding author), Changchun Inst Technol, Coll Jilin Emergency Management, Changchun 130012, Peoples R China.
EM zhangyc@ccit.edu.cn
RI Li, Mingda/JEF-7091-2023; Zhang, Jiquan/HRB-2680-2023
FU Studying on the dynamic updating mechanism of house building and
   municipal facilities survey data based on operational data iteration and
   its application in provincial seismic and disaster prevention emergency
   response
FX This work was funded by Studying on the dynamic updating mechanism of
   house building and municipal facilities survey data based on operational
   data iteration and its application in provincial seismic and disaster
   prevention emergency response.
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NR 60
TC 0
Z9 0
U1 12
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 DEC 28
PY 2024
VL 14
IS 1
AR 30898
DI 10.1038/s41598-024-81765-5
PG 18
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA R1A5Z
UT WOS:001388869300048
PM 39730633
OA gold
DA 2025-04-22
ER

PT J
AU Casal-Campos, A
   Sadr, SMK
   Fu, GT
   Butler, D
AF Casal-Campos, Arturo
   Sadr, Seyed M. K.
   Fu, Guangtao
   Butler, David
TI Reliable, Resilient and Sustainable Urban Drainage Systems: An Analysis
   of Robustness under Deep Uncertainty
SO ENVIRONMENTAL SCIENCE & TECHNOLOGY
LA English
DT Article
ID WATER MANAGEMENT; COMMUNITY WATER; CLIMATE-CHANGE; RISK; STRATEGIES;
   INFRASTRUCTURE; VULNERABILITY; METRICS; GREEN
AB Reliability, resilience and sustainability are key goals of any urban drainage system. However, only a few studies have recently focused on measuring, operationalizing and comparing such concepts in a world of deep uncertainty. In this study, these key concepts are defined and quantified for a number of gray, green and hybrid strategies, aimed at improving the capacity issues of an existing integrated urban wastewater system. These interventions are investigated by means of a regret-based approach, which evaluates the robustness (that is the ability to perform well under deep uncertainty conditions) of each strategy in terms of the three qualities through integration of multiple objectives (i.e., sewer flooding, river water quality, combined sewer overflows, river flooding, greenhouse gas emissions, cost and acceptability) across four different future scenarios. The results indicate that strategies found to be robust in terms of sustainability were typically also robust for resilience and reliability across future scenarios. However, strategies found to be robust in terms of their resilience and, in particular, for reliability did not guarantee robustness for sustainability. Conventional gray infrastructure strategies were found to lack robustness in terms of sustainability due to their unbalanced economic, environmental and social performance. Such limitations were overcome, however, by implementing hybrid solutions that combine green retrofits and gray rehabilitation solutions.
C1 [Casal-Campos, Arturo; Sadr, Seyed M. K.; Fu, Guangtao; Butler, David] Univ Exeter, Ctr Water Syst, Coll Engn Math & Phys Sci, North Pk Rd,Harrison Bldg, Exeter EX4 4QF, Devon, England.
C3 University of Exeter
RP Casal-Campos, A; Fu, GT (corresponding author), Univ Exeter, Ctr Water Syst, Coll Engn Math & Phys Sci, North Pk Rd,Harrison Bldg, Exeter EX4 4QF, Devon, England.
EM a.casal@mail.com; g.fu@exeter.ac.uk
RI Gonzalez-Barrio, David/MHQ-7861-2025; Fu, Guangtao/ABE-3874-2021
OI Sadr, Seyed M K/0000-0001-5679-2287; Fu, Guangtao/0000-0003-1045-9125;
   Casal-Campos, Arturo/0000-0003-2484-8965
FU UK Engineering and Physical Sciences Research Council through STREAM
   [EP/G037094/1]; Northumbrian Water Limited, BRIM [EP/N010329/1]; final
   author's fellowship Safe SuRe [EP/K006924/1]; EPSRC [EP/K006924/1,
   EP/N010329/1] Funding Source: UKRI
FX This study was funded by the UK Engineering and Physical Sciences
   Research Council through STREAM (EP/G037094/1) with Northumbrian Water
   Limited, BRIM (EP/N010329/1) and the final author's fellowship Safe &
   SuRe (EP/K006924/1).
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NR 59
TC 84
Z9 91
U1 18
U2 140
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 AUG 21
PY 2018
VL 52
IS 16
BP 9008
EP 9021
DI 10.1021/acs.est.8b01193
PG 14
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology
GA GR5UF
UT WOS:000442706700003
PM 30011191
OA Green Accepted, hybrid
DA 2025-04-22
ER

PT J
AU De Las Heras, A
   Luque-Sendra, A
   Zamora-Polo, F
AF De Las Heras, Ana
   Luque-Sendra, Amalia
   Zamora-Polo, Francisco
TI Machine Learning Technologies for Sustainability in Smart Cities in the
   Post-COVID Era
SO SUSTAINABILITY
LA English
DT Article
DE machine learning; sustainability; smart cities; SGDs
ID DEVELOPMENT GOALS; CITY RESEARCH; INTEGRATION; SIMULATION; PREDICTION;
   MANAGEMENT; NETWORK; OUTPUT
AB The unprecedented urban growth of recent years requires improved urban planning and management to make urban spaces more inclusive, safe, resilient and sustainable. Additionally, humanity faces the COVID pandemic, which especially complicates the management of Smart Cities. A possible solution to address these two problems (environmental and health) in Smart Cities may be the use of Machine Learning techniques. One of the objectives of our work is to thoroughly analyze the link between the concepts of Smart Cities, Machine Learning techniques and their applicability. In this work, an exhaustive study of the relationship between Smart Cities and the applicability of Machine Learning (ML) techniques is carried out with the aim of optimizing sustainability. For this, the ML models, analyzed from the point of view of the models, techniques and applications, are studied. The areas and dimensions of sustainability addressed are analyzed, and the Sustainable Development Goals (SDGs) are discussed. The main objective is to propose a model (EARLY) that allows us to tackle these problems in the future. An inclusive perspective on applicability, sustainability scopes and dimensions, SDGs, tools, data types and Machine Learning techniques is provided. Finally, a case study applied to an Andalusian city is presented.
C1 [De Las Heras, Ana; Luque-Sendra, Amalia; Zamora-Polo, Francisco] Univ Seville, Dept Ingn Diseno, Escuela Politecn Super, Virgen Africa 7, Seville 41011, Spain.
C3 University of Sevilla
RP Luque-Sendra, A (corresponding author), Univ Seville, Dept Ingn Diseno, Escuela Politecn Super, Virgen Africa 7, Seville 41011, Spain.
EM adelasheras@us.es; amalialuque@us.es; fzpolo@us.es
RI Luque, Amalia/I-7330-2015; de las Heras, Ana/F-6290-2018; Zamora-Polo,
   Francisco/H-3765-2018
OI Luque, Amalia/0000-0002-1205-4722; De Las Heras Garcia De Vinuesa,
   Ana/0000-0002-9884-7490; Zamora-Polo, Francisco/0000-0002-9700-6809
FU Telefonica Chair "Intelligence in Networks" of the University of Seville
   (Spain)
FX This work was supported by the Telefonica Chair "Intelligence in
   Networks" of the University of Seville (Spain), through project "SIDI".
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NR 93
TC 34
Z9 34
U1 6
U2 50
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 9320
DI 10.3390/su12229320
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 OY9RZ
UT WOS:000594577100001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Li, LG
   Zhang, PY
   Wang, CX
AF Li, Liangang
   Zhang, Pingyu
   Wang, Chengxin
TI What Affects the Economic Resilience of China's Yellow River Basin Amid
   Economic Crisis-From the Perspective of Spatial Heterogeneity
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE regional economic resilience; spatial heterogeneity; spatiotemporal
   evolution; influence mechanism; Yellow River Basin; China
ID REGIONAL RESILIENCE; CITIES; SHOCKS
AB This paper contributes to the study of regional economic resilience by analyzing the dynamic characteristics and influence mechanisms of resilience from the perspective of spatial heterogeneity. This paper focuses on the resistance and recoverability dimensions of resilience and analyzed the dynamic changes in economic resilience in China's Yellow River Basin in response to the 2008 economic crisis. The multi-scale geographical weighted regression model was utilized to examine the effect of key factors on regional economic resilience. Our findings show the following: (1) The resistance of the Yellow River Basin to the financial crisis was high; however, the recoverability decreased significantly over time. (2) The spatial heterogeneity of driving factors was significant, and they had different effect scales on economic resilience. Related variety, government agency, environment, and opening to the global economy had a significant effect on economic resilience only in a specific small range. Specialization, unrelated variety, and location had opposite effects in different regions of the Yellow River Basin. (3) Specialization limited the area's resistance to shock but enhanced the recoverability. Related variety improved regional economic resilience. Unrelated variety was not conducive to regional resistance to shock and had opposite effects on the recoverability in different regions. (4) Government agency and financial market promoted regional economic resilience. Environment pollution and resource-based economic structure limited regional economic resilience. Opening to the global economy and urban hierarchy limited regional resistance to shock, but strong economic development had the opposite effect of improved regional resistance. The location in the east of the Yellow River Basin enhanced the recoverability; however, the location in the west limited the recoverability.
C1 [Li, Liangang; Wang, Chengxin] Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Peoples R China.
   [Zhang, Pingyu] Chinese Acad Sci, Northeast Inst Geog & Agroecol, Changchun 130002, Peoples R China.
   [Zhang, Pingyu] Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China.
C3 Shandong Normal University; Chinese Academy of Sciences; Northeast
   Institute of Geography & Agroecology, CAS; Chinese Academy of Sciences;
   University of Chinese Academy of Sciences, CAS
RP Wang, CX (corresponding author), Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Peoples R China.
EM llg911208@163.com; zhangpy@iga.ac.cn; 110105@sdnu.edu.cn
FU National Natural Science Foundation of China [42101161, 42071162];
   National Social Science Foundation of China [20BJY070]; China
   Postdoctoral Science Foundation [2020M672113]; Shandong Postdoctoral
   Innovation Project [202003021]; Shandong Humanities and Social Sciences
   [2021-YYGL-29]
FX This work was funded by the National Natural Science Foundation of China
   (42101161, 42071162); National Social Science Foundation of China
   (20BJY070); Project funded by China Postdoctoral Science Foundation
   (2020M672113); Shandong Postdoctoral Innovation Project (202003021);
   Project funded by Shandong Humanities and Social Sciences
   (2021-YYGL-29).
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NR 54
TC 5
Z9 7
U1 9
U2 122
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 AUG
PY 2022
VL 19
IS 15
AR 9024
DI 10.3390/ijerph19159024
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 3R6LT
UT WOS:000839022400001
PM 35897395
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Hernández-Ramírez, M
   Cáceres-Feria, R
   Ruiz-Ballesteros, E
AF Hernandez-Ramirez, Macarena
   Caceres-Feria, Rafael
   Ruiz-Ballesteros, Esteban
TI Housing tactics: Searching for community resilience in depopulated rural
   contexts (Huertas, South West Spain)
SO SOCIOLOGIA RURALIS
LA English
DT Article
DE community; housing; local-based tourism; resilience; tourism
ID TOURISM; SUSTAINABILITY; MODEL; LENS
AB Depopulation of the rural world jeopardises the continuity of many communities and the socioecosystems they support. In response to this situation, diverse strategies are activated to ensure the continuity of these socioecosystems. All these initiatives seek, directly or indirectly, to strengthen community resilience, with a view to making the changes required to reverse the population trend. One of the most obvious, but least studied, effects of depopulation is the abandonment of housing, which initially implies urban deterioration and collapse but which can also become an opportunity if these abandoned houses are turned into a resource at different levels and in different arenas. An ethnographic case study conducted in the Sierra de Aracena Mountains (South West Spain) allows us to explore the link between housing and community resilience, helping us understand how the use and management of redundant housing can be a fundamental component of resilience in rural settings marked by depopulation.
C1 [Hernandez-Ramirez, Macarena; Caceres-Feria, Rafael; Ruiz-Ballesteros, Esteban] Univ Pablo de Olavide, Dept Social Anthropol Basic Psychol & Publ Hlth, Ctra De Utrera Km 1, Seville 41013, Spain.
C3 Universidad Pablo de Olavide
RP Hernández-Ramírez, M (corresponding author), Univ Pablo de Olavide, Dept Social Anthropol Basic Psychol & Publ Hlth, Ctra De Utrera Km 1, Seville 41013, Spain.
EM mherram@upo.es
RI Cáceres-Feria, Rafael/J-7047-2017; Ruiz-Ballesteros, Esteban/J-1245-2017
OI Caceres-Feria, Rafael/0000-0002-9471-1211; Ruiz-Ballesteros,
   Esteban/0000-0002-6270-0593; Hernandez-Ramirez,
   Macarena/0000-0003-0793-3746
FU Universidad Pablo de Olavide/CBUA; Turismo de base local y resiliencia
   socioecologica [CSO2017-84893-P]; Programa Estatal de Fomento de la
   Investigacion, Cientifica y Tecnica de Excelencia' del Ministerio de
   Economia Industria y Competitividad
FX Universidad Pablo de Olavide/CBUA; Turismo de base local y resiliencia
   socioecologica, Grant/Award Number: CSO2017-84893-P; Programa Estatal de
   Fomento de la Investigacion, Cientifica y Tecnica de Excelencia' del
   Ministerio de Economia Industria y Competitividad
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NR 66
TC 7
Z9 7
U1 6
U2 48
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0038-0199
EI 1467-9523
J9 SOCIOL RURALIS
JI Sociol. Rural.
PD JAN
PY 2022
VL 62
IS 1
BP 24
EP 43
DI 10.1111/soru.12367
PG 20
WC Geography; Sociology
WE Social Science Citation Index (SSCI)
SC Geography; Sociology
GA YM9YC
UT WOS:000746924200003
OA hybrid
DA 2025-04-22
ER

PT J
AU Villagra, P
   Herrmann-Lunecke, MG
   Lillo, OPY
   Ariccio, S
   Ceballo, M
AF Villagra, Paula
   Herrmann-Lunecke, Marie Geraldine
   Pena y Lillo, Oneska
   Ariccio, Silvia
   Ceballo, Macarena
TI Resilient planning pathways to community resilience to tsunami in Chile
SO HABITAT INTERNATIONAL
LA English
DT Article
ID LIVELIHOOD RESILIENCE; NATURAL DISASTERS; URBAN; EARTHQUAKE; LANDSCAPE;
   FRAMEWORK; INDEX; JAPAN
AB There is growing urgency to develop resilient coastal communities worldwide due to an increase in destructive events. Many resilience assessment models, tools, and frameworks are being developed to guide planners and policy makers for planning resilient communities. However, many lack a multidimensional approach, while others disregard regional variations in indicators' importance, and neglect an adequate community involvement level. In turn, these factors hinder the development of a 'Resilient Planning Pathway' (RPP), or a set of planning strategies that consider key local environmental attributes and socio-cultural capacities. The RPP approach has been used in the context of vulnerable groups and urban and landscape planning worldwide. The objective of this study is to identify key resilience aspects to develop RPPs in Chilean coastal communities exposed to tsunami hazards. We used a cross-sectional participatory method with public servants and coastal communities which identifies regional variations in resilience dimensions, in order to define challenges for planners and policy makers. A systematic international literature review in Atlas.Ti revealed 78 resilience composite indicators and six resilience dimensions for tsunami hazards in Chile. Composite indicators were evaluated according to their importance and experience by 134 public servants within 42 coastal communities, revealing the aspects that guide the current development of RPPs. Public servants' responses are similar among macrozones and suggest that RPP development has focused on the physical, socio-cultural, and institutional dimensions, neglecting the ecological and economic dimensions. In contrast, the community opinions from 10 representative coastal settlements collected in 29 focus groups indicated that the importance of composite indicators varies among macrozones and with regards to the public servants' responses. This finding suggests commonalities and differences among macrozones regarding the challenges in developing Chilean coastal communities' RPPs. We believe that our methodological approach could help generate similar assessments in other world zones.
C1 [Villagra, Paula; Pena y Lillo, Oneska] Univ Austral Chile, Fac Ciencias, Inst Ciencias Ambientales & Evolut, Edificio Emilio Pugin,Campus Isla Teja, Valdivia 5090000, Chile.
   [Villagra, Paula; Ceballo, Macarena] Univ Austral Chile, Lab Paisaje & Resiliencia Urbana PRULAB, Valdivia, Chile.
   [Herrmann-Lunecke, Marie Geraldine] Univ Chile, Fac Arquitectura & Urbanismo, Dept Urbanismo, Santiago, Chile.
   [Ariccio, Silvia] Univ Utrecht, Inst Risk Assessment Sci, Utrecht, Netherlands.
C3 Universidad Austral de Chile; Universidad Austral de Chile; Universidad
   de Chile; Utrecht University
RP Villagra, P (corresponding author), Robles 1100,A501, Valdivia, Los Rios, Chile.
EM Paula.villagra@uach.cl; mherrmann@uchile.cl; oneskajordana@gmail.com;
   s.ariccio@uu.nl; macarena.ceballo.v@gmail.com
RI Herrmann-Lunecke, Marie/ACM-9303-2022; Peña y Lillo,
   Oneska/GQA-6152-2022; ARICCIO, SILVIA/JCE-4535-2023; Villagra,
   Paula/J-3632-2014
OI Villagra, Paula/0000-0001-6428-3933; ARICCIO,
   SILVIA/0000-0002-8328-0014; Herrmann-Lunecke, Marie
   Geraldine/0000-0003-0186-441X
FU National Agency for Research and Development
FX The authors declare the following financial interests/personal
   re-lationships which may be considered as potential competing interests:
   Paula Villagra reports financial support was provided by National Agency
   for Research and Development. If there are other authors, they declare
   that they have no known competing financial interests or per-sonal
   relationships that could have appeared to influence the work re-ported
   in this paper.
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NR 89
TC 1
Z9 1
U1 5
U2 9
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 OCT
PY 2024
VL 152
AR 103158
DI 10.1016/j.habitatint.2024.103158
EA AUG 2024
PG 20
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 D6W4I
UT WOS:001297565700001
DA 2025-04-22
ER

PT J
AU Malakar, K
   Mishra, T
AF Malakar, Krishna
   Mishra, Trupti
TI Assessing socio-economic vulnerability to climate change: a city-level
   index-based approach
SO CLIMATE AND DEVELOPMENT
LA English
DT Article
DE vulnerability index; cities; India; climate change; socio-economic
ID FLOOD RISK; RESILIENCE; INDIA
AB The present study attempts to develop indices, indicating the vulnerability to climate change/environmental hazards, for Indian cities located in different bio-climatic zones. The indices generated in the study are based on socio-economic variables and provide a basic overview of the potential vulnerabilities faced by these cities in the context of climate disasters. Eleven cities located in six different bio-climatic zones have been studied. Various indicators of socio-economic vulnerability have been compiled and segregated into the following major components: infrastructure, technology, finance, social and space. This approach of segregation can aid identification of developmental needs essential for minimizing vulnerability. The proxy indicators have been standardized and agglomerated to obtain the respective major components. These components, thereafter, have been combined to obtain the overall vulnerability index. The indices are on a scale of 0-10. The results reveal that, among the selected cities, Jaisalmer is the most vulnerable and Pune is the least vulnerable. Further, the technological and financial indices vary significantly among the 11 cities, but their social capability and infrastructure are comparable. This index can assist in keeping track of vulnerability and planning disaster resilient cities.
C1 [Malakar, Krishna; Mishra, Trupti] Indian Inst Technol, Interdisciplinary Programme IDP Climate Studies, Bombay 400076, Maharashtra, India.
   [Mishra, Trupti] Indian Inst Technol, Shailesh J Mehta Sch Management, Bombay 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 Malakar, K (corresponding author), Indian Inst Technol, Interdisciplinary Programme IDP Climate Studies, Bombay 400076, Maharashtra, India.
EM krishna.malakar@iitb.ac.in
RI Mishra, Trupti/AAA-8875-2021; Malakar, Krishna/AGI-3680-2022
OI Malakar, Krishna/0000-0002-4225-4696
FU Department of Science and Technology, Government of India [11DST078]
FX This work was supported by Department of Science and Technology,
   Government of India [11DST078].
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TC 36
Z9 39
U1 1
U2 45
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1756-5529
EI 1756-5537
J9 CLIM DEV
JI Clim. Dev.
PY 2017
VL 9
IS 4
BP 348
EP 363
DI 10.1080/17565529.2016.1154449
PG 16
WC Development Studies; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology
GA EU1SA
UT WOS:000400799100006
DA 2025-04-22
ER

PT J
AU Jiang, Y
   Zevenbergen, C
   Fu, DF
AF Jiang, Yong
   Zevenbergen, Chris
   Fu, Dafang
TI Understanding the challenges for the governance of China's "sponge
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SO NATURAL HAZARDS
LA English
DT Article
DE Urban flooding; China; Water management; Water resilience; Urban
   planning
ID LOW IMPACT DEVELOPMENT
AB China is a country with severe water problems. In recent years, urban flooding has become even more frequent, pervasive and severe, threatening China's development. To tackle the issue, China launched a policy initiative termed sponge cities with enormous investment commitment. Yet, China's ambitious policy agenda is constrained by limited governance capacity and lack of knowledge and experience needed to pursue sustainable urban stormwater management with rising sophistication and complexity. Marking a fundamental shift in water management, this initiative can be an effective approach if China commits to appropriate technical, governance and financial measures to overcome implementation challenges.
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C3 IHE Delft Institute for Water Education; Southeast University - China
RP Jiang, Y (corresponding author), IHE Delft Inst Water Educ, Delft, Netherlands.
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NR 43
TC 55
Z9 63
U1 5
U2 224
PU SPRINGER
PI NEW YORK
PA 233 SPRING ST, NEW YORK, NY 10013 USA
SN 0921-030X
EI 1573-0840
J9 NAT HAZARDS
JI Nat. Hazards
PD OCT
PY 2017
VL 89
IS 1
BP 521
EP 529
DI 10.1007/s11069-017-2977-1
PG 9
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 FG0VD
UT WOS:000409497100026
DA 2025-04-22
ER

PT J
AU Beauchamp, E
   Hirons, M
   Brown, K
   Milner-Gulland, EJ
AF Beauchamp, Emilie
   Hirons, Mark
   Brown, Katrina
   Milner-Gulland, E. J.
TI Twenty priorities for future social-ecological research on climate
   resilience
SO ENVIRONMENTAL RESEARCH LETTERS
LA English
DT Article
DE research priorities; climate adaptation; climate governance; evidence
   generation; resilient development; social-ecological resilience
ID EXPERT ELICITATION; ADAPTIVE CAPACITY; URBAN RESILIENCE;
   DECISION-MAKING; FOOD SECURITY; EL-NINO; ADAPTATION; CONSERVATION;
   QUESTIONS; SYSTEMS
AB Faced with the global climate crisis and the inevitability of future climate shocks, enhancing social-ecological resilience has become an urgent area for research and policy internationally. Research to better understand the impacts of, and response to, climate shocks is critical to improve the resilience and well-being of affected people and places. This paper builds on the findings of a focus collection on this topic to provide a concluding and forward-looking perspective on the future of social-ecological research on climate resilience. Drawing on an expert workshop to identify research gaps, we distinguish 20 priorities for future research on climate resilience. These span four key themes: Systems and Scales, Governance and Knowledge, Climate Resilience and Development, and Sectoral Concerns. Given the need and urgency for evidence-based policies to address the climate crisis, the analysis considers the importance of understanding how findings on social-ecological resilience are used in policy, rather than solely focusing on how it is generated. Many of the priorities emphasise the governance systems within which climate research is produced, understood and used. We further reflect on the state of current evidence generation processes, emphasising that the involvement of a wider range of voices in the design, implementation and dissemination of climate resilience research is critical to developing the efficient and fair interventions it is meant to support.
C1 [Beauchamp, Emilie] Int Inst Environm & Dev, 80-86 Grays Inn Rd, London WC1X 8NH, England.
   [Beauchamp, Emilie; Milner-Gulland, E. J.] Univ Oxford, Dept Zool, 11a Mansfield Rd, Oxford OX1 3SZ, England.
   [Hirons, Mark] Univ Oxford, Sch Geog & Environm, Environm Change Inst, Oxford, England.
   [Brown, Katrina] Univ Exeter, Coll Life & Environm Sci, Geog, Exeter EX4 4RJ, Devon, England.
C3 University of Oxford; University of Oxford; University of Exeter
RP Beauchamp, E (corresponding author), Int Inst Environm & Dev, 80-86 Grays Inn Rd, London WC1X 8NH, England.; Beauchamp, E (corresponding author), Univ Oxford, Dept Zool, 11a Mansfield Rd, Oxford OX1 3SZ, England.
EM emilie.beauchamp@iied.org
OI Hirons, Mark/0000-0002-5020-7830
FU UK Natural Environment Research Council [NE/P00394X/1]; Department for
   International Development; NERC [NE/P00394X/1, NE/K010379/2] Funding
   Source: UKRI
FX This work was supported under grant NE/P00394X/1 of the UK Natural
   Environment Research Council and the Department for International
   Development. We thank all individuals who contributed questions during
   the workshop itself and the two-day conference. We are grateful to
   workshop participants and to all the Understanding the Impacts of the
   Current El Nino project teams who commented on the manuscript and
   contributed to articles in this special issue.
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NR 140
TC 11
Z9 13
U1 22
U2 95
PU IOP Publishing Ltd
PI BRISTOL
PA TEMPLE CIRCUS, TEMPLE WAY, BRISTOL BS1 6BE, ENGLAND
SN 1748-9326
J9 ENVIRON RES LETT
JI Environ. Res. Lett.
PD OCT
PY 2020
VL 15
IS 10
AR 105006
DI 10.1088/1748-9326/abb157
PG 11
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA NY5LO
UT WOS:000576431000001
OA gold
DA 2025-04-22
ER

PT J
AU 'Adamo, I
   Gastaldi, M
   Ioppolo, G
   Morone, P
AF 'Adamo, Idiano
   Gastaldi, Massimo
   Ioppolo, Giuseppe
   Morone, Piergiuseppe
TI An analysis of Sustainable Development Goals in Italian cities:
   Performance measurements and policy implications
SO LAND USE POLICY
LA English
DT Article
DE Hybrid methodology; Multi-criteria analysis; SDGs; Sustainable policy;
   Sustainable cities
ID PROJECTS
AB The Sustainable Development Goals (SDGs) aim to achieve a more inclusive, resilient, safe and sustainable so-ciety. Policy makers, together with entrepreneurs and citizens, are called to a great challenge to optimize land use. This work, through a multi-criteria decision analysis (MCDA), aims at comparing the sustainability of 103 Italian cities through the evaluation of 45 SDGs' indicators, ranking cities on the base of their performance. Results show strong disparities across Italy with three northern cities at the top of the ranking and many southern cities at the bottom. The analysis then creates a framework based on experts' view composed of 21 criteria that would facilitate the development of a sustainability plan. A hybrid methodology based on the Analytic Hierarchy Process (AHP) and the 10-point scale is used to rank among the criteria. Selected experts underlined how sus-tainable policy and green investment are enabling factors of sustainable cities, but political stability and streamlined public spending are also essential to achieve this goal. The analysis offers insights for different categories of stakeholders and invites to measure and monitor the progress of cities towards SDGs proposing eight directions (policy, economy, operations, environment, organization, staff, society and human).
C1 ['Adamo, Idiano] Sapienza Univ Rome, Dept Comp Control & Management Engn, Via Ariosto 25, I-00185 Rome, Italy.
   [Gastaldi, Massimo] Univ Aquila, Dept Ind Engn Informat & Econ, Via G Gronchi 18, I-67100 Laquila, Italy.
   [Ioppolo, Giuseppe] Univ Messina, Dept Econ, Via Verdi 75, I-98122 Messina, Italy.
   [Morone, Piergiuseppe] UnitelmaSapienza Univ Rome, Dept Law & Econ, Viale Regina Elena 295, I-00161 Rome, Italy.
C3 Sapienza University Rome; University of L'Aquila; University of Messina
RP 'Adamo, I (corresponding author), Sapienza Univ Rome, Dept Comp Control & Management Engn, Via Ariosto 25, I-00185 Rome, Italy.
EM idiano.dadamo@uniroma1.it; massimo.gastaldi@univaq.it;
   giuseppe.ioppolo@unime.it; piergiuseppe.morone@unitelmasapienza.it
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NR 64
TC 48
Z9 49
U1 7
U2 32
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 SEP
PY 2022
VL 120
AR 106278
DI 10.1016/j.landusepol.2022.106278
EA JUL 2022
PG 14
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 3K5CC
UT WOS:000834092600007
DA 2025-04-22
ER

PT J
AU Wang, ZG
   Hao, XC
   Du, XSH
   Ding, H
   Xie, ZW
AF Wang, Zhaoguo
   Hao, Xuechen
   Du, Xishihui
   Ding, Hua
   Xie, Zhiwei
TI Measurement of economic resilience under the COVID-19 based on nighttime
   light remote sensing: Case of Hubei province
SO PLOS ONE
LA English
DT Article
ID REGIONS; WUHAN; CHINA
AB This study investigates the economic resilience of cities in Hubei province during the COVID-19 pandemic, utilizing highway nighttime lights as a proxy indicator. By February 2020, the pandemic had caused a significant economic contraction in Hubei. However, by May 2021, a strong recovery was observed, with most cities experiencing growth rates of over 20%. Despite initially similar responses to the crisis, this study reveals significant heterogeneity in economic resilience across the examined cities in Hubei. The spatial distribution follows a core-periphery structure, with Wuhan exhibiting greater resistance to economic shocks compared to peripheral cities. Furthermore, the response capacity within the Wuhan urban agglomeration area exhibits regional variations. In summary, lockdown policies had spatially varied impacts on economic resilience across Hubei's cities. These results offer valuable insights into regional economic resilience and contribute to the formulation of strategies aimed at effectively addressing future unforeseen events.
C1 [Wang, Zhaoguo] Shenyang Agr Univ, Coll Econ & Management, Shenyang, Peoples R China.
   [Hao, Xuechen] 519th North China Geol Survey, Baoding, Peoples R China.
   [Du, Xishihui; Ding, Hua; Xie, Zhiwei] Shenyang Jianzhu Univ, Sch Transportat & Geomat Engn, Shenyang, Peoples R China.
C3 Shenyang Agricultural University; Shenyang Jianzhu University
RP Du, XSH (corresponding author), Shenyang Jianzhu Univ, Sch Transportat & Geomat Engn, Shenyang, Peoples R China.
EM daisy_duxi@126.com
OI Zhaoguo, Wang/0000-0002-7766-2147
FU Foundation of the Educational Department of Liaoning Province
   [LJKMR20221067]; National Natural Science Foundation of China [42101294,
   42101353]; Shenyang Philosophy Social Science planning project
   [SY20230316Q]; Humanities and Social Science Foundation of the Ministry
   of Education [21YJC790129]
FX This research was funded by the Foundation of the Educational Department
   of Liaoning Province (LJKMR20221067), National Natural Science
   Foundation of China (42101294, 42101353), Shenyang Philosophy Social
   Science planning project (SY20230316Q) and Humanities and Social Science
   Foundation of the Ministry of Education(21YJC790129). Our funders played
   a role in study design, decision to publish, and preparation of the
   manuscript.
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NR 70
TC 0
Z9 0
U1 5
U2 5
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 SEP 27
PY 2024
VL 19
IS 9
AR e0307613
DI 10.1371/journal.pone.0307613
PG 21
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA H9O4O
UT WOS:001326652300050
PM 39331628
OA gold
DA 2025-04-22
ER

PT J
AU Chen, C
   Wang, SL
   Zhang, JH
   Gu, XF
AF Chen, Chen
   Wang, Shuliang
   Zhang, Jianhua
   Gu, Xifeng
TI Modeling the Vulnerability and Resilience of Interdependent
   Transportation Networks under Multiple Disruptions
SO JOURNAL OF INFRASTRUCTURE SYSTEMS
LA English
DT Article
DE Urban public transportation system; Interdependent network;
   Vulnerability; Resilience; Entropy
ID TRANSIT NETWORKS; FRAMEWORK; RAILWAY; FAILURES; SYSTEMS
AB Because infrastructure systems are highly interconnected, it is crucial to analyze their vulnerability and resilience with the consideration of interdependencies. This paper constructed a bus-metro interdependent network model based on the passenger transfer relationship and used deep learning to identify the network topology attributes. The vulnerability process of the interdependent network to different disruptions under structural and functional perspective was studied. On this basis, this paper adopted a resilience assessment framework and mainly focused on modeling and resilience analysis of interdependent networks' recovery processes. The optimal and instructive recovery strategy was determined, and it is shown that the increase of the coupling distance cannot alleviate the vulnerability of the interdependent network effectively; after the tolerance coefficient reaches the threshold, the effect on the vulnerability of the dependent network is weakened; and a betweenness-based strategy (BBS) works best in the preferential recovery of key nodes.
C1 [Chen, Chen; Wang, Shuliang; Zhang, Jianhua; Gu, Xifeng] Jiangsu Normal Univ, Dept Elect Engn & Automat, Xuzhou 221116, Peoples R China.
C3 Jiangsu Normal University
RP Wang, SL (corresponding author), Jiangsu Normal Univ, Dept Elect Engn & Automat, Xuzhou 221116, Peoples R China.
EM 18451301601@163.com; shuliang0820@sina.com; zhangjianhua1980@126.com;
   guxifeng1104@163.com
FU National Natural Science Foundations of China [61503166, 61801197];
   Jiangsu Natural Science Foundation [BK20181004]; National Science
   Foundation of the Jiangsu Higher Education Institutions of China
   [18KJB510012]; Qinglan Project of Jiangsu Higher Education institutions
   of China; Xuzhou Science and Technology Project of China [KC19006]
FX This work is jointly supported by the National Natural Science
   Foundations of China (61503166, 61801197), the Jiangsu Natural Science
   Foundation (BK20181004), the National Science Foundation of the Jiangsu
   Higher Education Institutions of China (18KJB510012), the Qinglan
   Project of Jiangsu Higher Education institutions of China (2020), and
   the Xuzhou Science and Technology Project of China (KC19006).
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Z9 17
U1 21
U2 160
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1076-0342
EI 1943-555X
J9 J INFRASTRUCT SYST
JI J. Infrastruct. Syst.
PD MAR 1
PY 2023
VL 29
IS 1
AR 04022043
DI 10.1061/JITSE4.ISENG-2185
PG 12
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA 7Y1OI
UT WOS:000914657300006
DA 2025-04-22
ER

PT J
AU Cardoni, A
   Cimellaro, GP
   Domaneschi, M
   Sordo, S
   Mazza, A
AF Cardoni, A.
   Cimellaro, G. P.
   Domaneschi, M.
   Sordo, S.
   Mazza, A.
TI Modeling the interdependency between buildings and the electrical
   distribution system for seismic resilience assessment
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Power network; Infrastructure interdependency; Resilience; Earthquake
   simulation; Virtual city
ID POWER
AB The complexity of large-scale power networks, together with their increasing ageing and obsolete design, implies an intrinsic fragility with respect to natural disasters, such as strong earthquakes. The investigation of the interdependencies among different critical infrastructures is fundamental to prevent possible cascading effects and frequent unserviceability. This paper aims at studying the effects of a seismic event on a large-scale virtual city, implicitly modeling the interdependency between the buildings and the electric distribution network. A consistent methodology to assess the resilience of the urban electric power distribution system is herein introduced and validated. Furthermore, a new resilience index is also introduced and compared to others available in the literature. The index is able to properly describe the network resilience, by taking into account aspects such as redundancy and resourcefulness. The developed methodology allows to investigate the impact of extreme events on the electric power distribution system also in case of scarce input data.
C1 [Cardoni, A.; Cimellaro, G. P.; Domaneschi, M.; Sordo, S.] Politecn Torino, Dept Struct Geotech & Bldg Engn, Corso Duca Abruzzi 24, I-10129 Turin, Italy.
   [Mazza, A.] Politecn Torino, Dept Energy, Corso Duca Abruzzi 24, I-10129 Turin, Italy.
C3 Polytechnic University of Turin; Polytechnic University of Turin
RP Cimellaro, GP (corresponding author), Politecn Torino, Dept Struct Geotech & Bldg Engn, Corso Duca Abruzzi 24, I-10129 Turin, Italy.
EM gianpaolo.cimellaro@polito.it
RI Domaneschi, Marco/V-9978-2017; Mazza, Andrea/AAC-1538-2019; Cimellaro,
   Gian/AAJ-2511-2020; Cimellaro, Gian Paolo/F-1281-2010; Cardoni,
   Alessandro/B-4122-2019
OI Cimellaro, Gian Paolo/0000-0001-6474-3493; Cardoni,
   Alessandro/0000-0002-9972-2702
FU European Research Council of the project IDEAL RESCUE-Integrated DEsign
   and control of Sustainable CommUnities during Emergencies [ERC_IDEal
   reSCUE_637842]
FX The research leading to these results has received funding from the
   European Research Council under the Grant Agreement n. ERC_IDEal
   reSCUE_637842 of the project IDEAL RESCUE-Integrated DEsign and control
   of Sustainable CommUnities during Emergencies.
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NR 34
TC 32
Z9 37
U1 6
U2 60
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 2020
VL 42
AR 101315
DI 10.1016/j.ijdrr.2019.101315
PG 8
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA KG5JT
UT WOS:000509985300027
DA 2025-04-22
ER

PT J
AU Ko, I
   Prakash, A
AF Ko, Inhwan
   Prakash, Aseem
TI Signaling climate resilience to municipal bond markets: does membership
   in adaptation-focused voluntary clubs affect bond rating?
SO CLIMATIC CHANGE
LA English
DT Article
DE Climate adaptation; Cities; Climate club; Municipal bonds; Voluntary
   environmental program
ID ENVIRONMENTAL-PROGRAMS; CO-BENEFITS; REGULATIONS; PERFORMANCE; CITIES;
   HETEROSKEDASTICITY; DETERMINANTS; PROTECTION; INFERENCE; POLITICS
AB This paper examines whether US cities' membership in voluntary climate clubs improves the municipal bond ratings issued by S&P, Moody's, and Fitch. We suggest that only clubs focused on climate adaptation could help cities signal their resilience to climate risks and their ability to service their municipal bonds. Yet, club membership is only a signal of intent. By itself, it does not offer concrete evidence that cities have adopted adaptation policies or enhanced their resilience to climate risks. We examine three climate clubs: ICLEI, whose membership obligations cover climate and other environmental issues; C40, whose scope covers both climate mitigation and adaptation; and 100 Resilient Cities (100RC), which focuses on adaptation only. Employing a two-way fixed effects model for a panel of 80 US cities from 1995 to 2018, we find that 100RC membership leads to a small improvement in bond ratings. This has important policy implications: Assurances about implementing adaptation policy, as opposed to evidence about how adaptation reduces climate risks, could have spillover effects on municipal finance. In such cases, climate adaptation could have tangible implications for city-level finances.
C1 [Ko, Inhwan; Prakash, Aseem] Univ Washington, Dept Polit Sci, Seattle, WA 98195 USA.
C3 University of Washington; University of Washington Seattle
RP Prakash, A (corresponding author), Univ Washington, Dept Polit Sci, Seattle, WA 98195 USA.
EM inhwanko@uw.edu; aseem@uw.edu
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NR 72
TC 8
Z9 9
U1 1
U2 10
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0165-0009
EI 1573-1480
J9 CLIMATIC CHANGE
JI Clim. Change
PD MAR
PY 2022
VL 171
IS 1-2
AR 9
DI 10.1007/s10584-022-03329-8
PG 19
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA ZR4WU
UT WOS:000767786000001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Hudec, O
   Reggiani, A
   Siserová, M
AF Hudec, Oto
   Reggiani, Aura
   Siserova, Monika
TI Resilience capacity and vulnerability: A joint analysis with reference
   to Slovak urban districts
SO CITIES
LA English
DT Article
DE Resilience capacity; Economic vulnerability; Slovak districts;
   Urbanisation
AB The concept of resilience has recently been investigated from the perspective of several disciplines. This extensive research has produced many approaches to determine the key definitions, linked to both the notion of stability in dynamics (return to the previous equilibrium after a shock) and the idea of adaptivity (absorption of the shock leading to new equilibria). Among the various definitions and measurements which can be found in the literature, the Resilience Capacity Index (RCI) defines a kind of 'potential resilience', i.e. the potential ability of a region to recover, or bounce back in the presence of external shocks. However, the RCI should also be tested empirically versus other resilience/vulnerability indicators. Vulnerability denotes a different view on the state of the system in the presence of shocks, i.e. the degree to which a system is susceptible to harm. In the present paper, this concept will be adopted by analysing the dynamics of the unemployment growth rate, and then comparing it to the RCI.
   The country of interest in this paper is Slovakia. Slovakia is a small country in Central-Eastern Europe and can serve as a good example of an open and export-based economy, subjected to the global crisis. Thus, in the context of the 2007-2008 economic crisis, the RCI in the 79 Slovak districts is examined with respect to their vulnerability in the first period of rising unemployment (2008-2012), as well as in the second period following vulnerability to the economic shock (2012-2014). A clear West-East divide in the resilience capacity can be seen. The more urban and export-oriented districts with high RCI values are shown to be exposed to high vulnerability compared with the rural districts. On the other hand, the small, peripheral districts respond to a lesser extent, or with a delay, to the shock.
C1 [Hudec, Oto; Siserova, Monika] Tech Univ Kosice, Dept Reg Sci & Management, Nemcovej 32, Kosice 04001, Slovakia.
   [Reggiani, Aura] Univ Bologna, Dept Econ, Bologna, Italy.
C3 Technical University Kosice; University of Bologna
RP Hudec, O (corresponding author), Tech Univ Kosice, Dept Reg Sci & Management, Nemcovej 32, Kosice 04001, Slovakia.
EM oto.hudec@tuke.sk; aura.reggiani@unibo.it; monika.siserova@tuke.sk
RI Hudec, Oto/F-4898-2019
OI Hudec, Oto/0000-0002-8877-8647; Reggiani, Aura/0000-0002-8288-2187
FU Slovak Research and Development Agency "Universities and economic
   development of regions - UNIREG" [APVV-14-0512]
FX The first author acknowledges that the work was supported by the grant
   of the Slovak Research and Development Agency APVV-14-0512 "Universities
   and economic development of regions - UNIREG".
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NR 38
TC 63
Z9 74
U1 13
U2 97
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 MAR
PY 2018
VL 73
BP 24
EP 35
DI 10.1016/j.cities.2017.10.004
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA FW3KP
UT WOS:000425205600003
DA 2025-04-22
ER

PT J
AU Schoennagel, T
   Balch, JK
   Brenkert-Smith, H
   Dennison, PE
   Harvey, BJ
   Krawchuk, MA
   Mietkiewicz, N
   Morgan, P
   Moritz, MA
   Rasker, R
   Turner, MG
   Whitlock, C
AF Schoennagel, Tania
   Balch, Jennifer K.
   Brenkert-Smith, Hannah
   Dennison, Philip E.
   Harvey, Brian J.
   Krawchuk, Meg A.
   Mietkiewicz, Nathan
   Morgan, Penelope
   Moritz, Max A.
   Rasker, Ray
   Turner, Monica G.
   Whitlock, Cathy
TI Adapt to more wildfire in western North American forests as climate
   changes
SO PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF
   AMERICA
LA English
DT Article
DE wildfire; resilience; forests; wildland-urban interface; policy
ID WILDLAND-URBAN INTERFACE; COLORADO FRONT RANGE; SUB-ALPINE FORESTS;
   PONDEROSA PINE; FIRE REGIMES; LANDSCAPE PATTERNS; DOMINATED FORESTS;
   ROCKY-MOUNTAINS; FUEL TREATMENTS; UNITED-STATES
AB Wildfires across western North America have increased in number and size over the past three decades, and this trend will continue in response to further warming. As a consequence, the wildland-urban interface is projected to experience substantially higher risk of climate-driven fires in the coming decades. Although many plants, animals, and ecosystem services benefit from fire, it is unknown how ecosystems will respond to increased burning and warming. Policy and management have focused primarily on specified resilience approaches aimed at resistance to wildfire and restoration of areas burned by wildfire through fire suppression and fuels management. These strategies are inadequate to address a new era of western wildfires. In contrast, policies that promote adaptive resilience to wildfire, by which people and ecosystems adjust and reorganize in response to changing fire regimes to reduce future vulnerability, are needed. Key aspects of an adaptive resilience approach are (i) recognizing that fuels reduction cannot alter regional wildfire trends; (ii) targeting fuels reduction to increase adaptation by some ecosystems and residential communities to more frequent fire; (iii) actively managing more wild and prescribed fires with a range of severities; and (iv) incentivizing and planning residential development to withstand inevitable wildfire. These strategies represent a shift in policy and management from restoring ecosystems based on historical baselines to adapting to changing fire regimes and from unsustainable defense of the wildlandurban interface to developing fire-adapted communities. We propose an approach that accepts wildfire as an inevitable catalyst of change and that promotes adaptive responses by ecosystems and residential communities to more warming and wildfire.
C1 [Schoennagel, Tania; Balch, Jennifer K.] Univ Colorado Boulder, Dept Geog, Boulder, CO 80309 USA.
   [Balch, Jennifer K.; Mietkiewicz, Nathan] Univ Colorado Boulder, Earth Lab, Boulder, CO 80309 USA.
   [Brenkert-Smith, Hannah] Univ Colorado Boulder, Inst Behav Sci, Boulder, CO 80309 USA.
   [Dennison, Philip E.] Univ Utah, Dept Geog, Salt Lake City, UT 84112 USA.
   [Harvey, Brian J.] Univ Washington, Sch Environm & Forest Sci, Seattle, WA 98195 USA.
   [Krawchuk, Meg A.] Oregon State Univ, Dept Forest Ecosyst & Soc, Corvallis, OR 97331 USA.
   [Morgan, Penelope] Univ Idaho, Dept Forest Rangeland & Fire Sci, Moscow, ID 83844 USA.
   [Moritz, Max A.] Univ Calif Berkeley, Dept Environm Sci Policy & Management, Berkeley, CA 94720 USA.
   [Rasker, Ray] Headwaters Econ, Bozeman, MT 59771 USA.
   [Turner, Monica G.] Univ Wisconsin, Dept Zool, Madison, WI 53706 USA.
   [Whitlock, Cathy] Montana State Univ, Montana Inst Ecosyst, Bozeman, MT 59717 USA.
   [Whitlock, Cathy] Montana State Univ, Dept Earth Sci, Bozeman, MT 59717 USA.
C3 University of Colorado System; University of Colorado Boulder;
   University of Colorado System; University of Colorado Boulder;
   University of Colorado System; University of Colorado Boulder; Utah
   System of Higher Education; University of Utah; University of
   Washington; University of Washington Seattle; Oregon State University;
   University of Idaho; University of California System; University of
   California Berkeley; University of Wisconsin System; University of
   Wisconsin Madison; Montana State University System; Montana State
   University Bozeman; Montana State University System; Montana State
   University Bozeman
RP Schoennagel, T (corresponding author), Univ Colorado Boulder, Dept Geog, Boulder, CO 80309 USA.
EM tania.schoennagel@colorado.edu
RI Harvey, Brian/T-9513-2017; Turner, Monica/B-2099-2010
OI Dennison, Philip/0000-0002-0241-1917; Krawchuk, Meg/0000-0002-3240-3117;
   Mietkiewicz, Nathan/0000-0002-2287-0408; BRENKERT-SMITH,
   HANNAH/0000-0001-6117-8863
FU Directorate For Geosciences; Division Of Earth Sciences [1515353]
   Funding Source: National Science Foundation; Division Of Behavioral and
   Cognitive Sci; Direct For Social, Behav & Economic Scie [1461590]
   Funding Source: National Science Foundation; Office of Integrative
   Activities; Office Of The Director [1443108] Funding Source: National
   Science Foundation; Office Of Internatl Science &Engineering; Office Of
   The Director [0966472] Funding Source: National Science Foundation
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NR 102
TC 545
Z9 590
U1 40
U2 469
PU NATL ACAD SCIENCES
PI WASHINGTON
PA 2101 CONSTITUTION AVE NW, WASHINGTON, DC 20418 USA
SN 0027-8424
J9 P NATL ACAD SCI USA
JI Proc. Natl. Acad. Sci. U. S. A.
PD MAY 2
PY 2017
VL 114
IS 18
BP 4582
EP 4590
DI 10.1073/pnas.1617464114
PG 9
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA ET5VV
UT WOS:000400358000028
PM 28416662
OA Bronze, Green Published
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Dodman, D
   Sverdlik, A
   Agarwal, S
   Kadungure, A
   Kothiwal, K
   Machemedze, R
   Verma, S
AF Dodman, David
   Sverdlik, Alice
   Agarwal, Siddharth
   Kadungure, Artwell
   Kothiwal, Kanupriya
   Machemedze, Rangarirai
   Verma, Shabnam
TI Climate change and informal workers: Towards an agenda for research and
   practice
SO URBAN CLIMATE
LA English
DT Article
DE Informal employment; Climate vulnerability; Urban poverty; Social
   protection; India; Zimbabwe
ID OCCUPATIONAL-HEALTH; HEAT; RISK; RESILIENCE; ECONOMY; PEOPLE; SAFETY
AB The informal economy is crucial for making cities function, and it provides the main means of income for a significant proportion of all workers globally. At the same time, informal workers are extremely vulnerable to the effects of climate change, with higher temperatures and more intense weather events causing direct physical harm and contributing to ill-health. This paper analyzes research from three cities in India and Zimbabwe (Indore, Harare, and Masvingo) to describe the vulnerability of informal workers in several sectors. It highlights the ways in which the direct impacts of climate change are compounded by other factors, including low-quality living conditions and the absence of provision for Occupational Health and Safety (OHS). Informal workers in the three cities have adopted a range of responses to reduce risk, and there are some recent inclusive engagements with local officials to enhance living and working conditions. However, key interventions such as expanding access to social protection (which has important potential to foster climate resilience) often fail to reach the most vulnerable urban informal workers. We conclude with recommendations and an agenda for more equitable policy and practice that can support multiple benefits for informal workers' health, livelihoods, and climate resilience in urban areas.
C1 [Dodman, David] Erasmus Univ, Inst Housing & Urban Dev Studies IHS, Burgemeester Oudlaan 50, NL-3062 PA Rotterdam, Netherlands.
   [Sverdlik, Alice] Univ Manchester, Global Dev Inst GDI, 1-012 Arthur Lewis Bldg, Oxford Rd, Manchester M13 9PL, England.
   [Kadungure, Artwell; Machemedze, Rangarirai] Training & Res Support Ctr TARSC, 47 Van Praagh Ave, Milton Pk, Harare, Zimbabwe.
   [Agarwal, Siddharth; Kothiwal, Kanupriya; Verma, Shabnam] Urban Hlth Resource Ctr UHRC, 136 First Floor, Delhi 110029, India.
C3 Erasmus University Rotterdam - Excl Erasmus MC; Erasmus University
   Rotterdam; University of Manchester
RP Sverdlik, A (corresponding author), Univ Manchester, Global Dev Inst GDI, 1-012 Arthur Lewis Bldg, Oxford Rd, Manchester M13 9PL, England.
EM dodman@ihs.nl; alice.sverdlik@manchester.ac.uk
RI ; Agarwal, Siddharth/L-5337-2015
OI Kothiwal, Kanupriya/0000-0002-5660-0836; Agarwal,
   Siddharth/0000-0002-4293-435X; Sverdlik, Alice/0000-0002-1109-073X
FU National Institute for Health and Care Research (NIHR), Global Health
   Research Group using aid from the UK Government [17/63/145]; National
   Institutes of Health Research (NIHR) [17/63/145] Funding Source:
   National Institutes of Health Research (NIHR)
FX This research was commissioned by the National Institute for Health and
   Care Research (NIHR), Global Health Research Group 17/63/145, using aid
   from the UK Government. The views are solely those of the authors.
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NR 69
TC 16
Z9 16
U1 5
U2 15
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 101401
DI 10.1016/j.uclim.2022.101401
EA JAN 2023
PG 10
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA D8HQ7
UT WOS:000971087300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Le, T
   Kyle, GT
   Tran, T
AF Le, Trang
   Kyle, Gerard T.
   Tran, Tho
TI Using public participation gis to understand texas coastal communities'
   perceptions and preferences for urban green space development in
   connection to their perceptions of flood risk
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Urban green spaces; Green infrastructure; Flood risk perception; PPGIS;
   Urban resilience
ID CLIMATE-CHANGE; PHYSICAL-ACTIVITY; VALUES; ACCESSIBILITY; PROVISION;
   DISTANCE; BELIEFS; CITIES; PPGIS
AB Urban green spaces, a form of green infrastructure, provide cities with a number of opportunities to build urban resilience to withstand a wide range of urban challenges, such as land-use change, climate change, biodiversity loss, and physical and mental health. Despite their benefits to communities, urban green spaces are among the most valuable and attractive areas for development and are most susceptible to urban development. Therefore, careful planning of the green space network is needed,requiring diverse voices from not only city policymakers and planning experts but also local residents. This study investigated residents' perceptions and preferences for green space development and its association with perceived flood risk. Data were collected from residents residing in two Texas Gulf Coast cities via a Public Participation Geographic Information System (PPGIS) platform. Our analyses revealed that Texas Gulf Coast residents assigned a full spectrum of landscape values to their existing urban green spaces with aesthetic and recreation values being most frequently identified. Notably, across the city landscape, urban green spaces that were most favored by residents tended to be green spaces with water bodies, large in scale and offered a broader array of facilities/amenities. These spaces were also identified as flood-prone areas, presenting opportunities for green space improvement, flood protection, and preservation. In addition, we observed a significant association between residents' risk perception and the number of locations across the city landscape they perceived as posing the greatest flooding threat. Our findings illustrate a need to promote multiple landscape values of urban green spaces, especially in its ability to protect the city from future flooding. This research highlights how PPGIS can support green infrastructure planning as well as enhance public participation in green infrastructure planning processes.
C1 [Le, Trang] Texas A&M Univ, Dept Recreat Pk & Tourism Sci, College Stn, TX 77843 USA.
   [Kyle, Gerard T.] Texas A&M Univ, Dept Rangeland Wildlife & Fisheries Management, Human Dimens Nat Resources Lab, College Stn, TX 77843 USA.
   [Tran, Tho] Civilitude LLC, Urban Planning Strategist, Austin, TX 78723 USA.
C3 Texas A&M University System; Texas A&M University College Station; Texas
   A&M University System; Texas A&M University College Station
RP Le, T (corresponding author), Texas A&M Univ, Dept Recreat Pk & Tourism Sci, College Stn, TX 77843 USA.
EM trangle@tamu.edu
RI KYLE, GERARD/I-9843-2014; Le, Trang/JFJ-4623-2023
OI Le, Trang/0000-0002-7108-6871
FU National Oceanic and Atmospheric Administration, U.S. Department of
   Commerce [NA18OAR4170088]; National Science Foundation's Doctoral
   Dissertation Research Improvement Grants (DDRIGs) in Decision, Risk and
   Management Science 2021-2022 [2117222]
FX This work was supported in part by an Institutional Grant (grant award
   number NA18OAR4170088) to the Texas Sea Grant College Program from the
   National Oceanic and Atmospheric Administration, U.S. Department of
   Commerce, and by the National Science Foundation's Doctoral Dissertation
   Research Improvement Grants (DDRIGs) in Decision, Risk and Management
   Science 2021-2022 (award number 2117222) .
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NR 58
TC 5
Z9 5
U1 24
U2 33
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 128330
DI 10.1016/j.ufug.2024.128330
EA APR 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 D2R4Y
UT WOS:001294709900001
DA 2025-04-22
ER

PT J
AU Wallace, D
   Wallace, R
AF Wallace, Deborah
   Wallace, Rodrick
TI Urban Systems during Disasters: Factors for Resilience
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE resilience; social network; urban system
ID NEW-YORK-CITY; VIOLENT CRIME; SPREAD; TUBERCULOSIS; ECOSYSTEM; AIDS
AB Urban neighborhoods form the basic functional unit of municipalities. Socioeconomically, they consist of social networks and interlocking layers of social networks. Old, stable neighborhoods are blessed with large social networks and dense interlocking layers. Both social control and social support depend on these complex structures of tight and loose ties. Public health and public order depend on these structures. They are the basis of resilience of both the neighborhood itself and of the municipality that is composed of neighborhoods. In New York City in the 1970s and later, domain shift occurred because of the disruption of the socioeconomic structure by the massive destruction of low-rental housing. A combined epidemic of building fires and landlord abandonment of buildings leveled a huge percentage of housing in poor neighborhoods and forced mass migration between neighborhoods. Social relationships that had existed between families and individuals for decades were destroyed. Community efficacy also greatly diminished. Drug use, violent crime, tuberculosis, and low-weight births were among the many public health and public order problems that soared in incidence consequent to the unraveling of the communities. These problems spilled out into the metropolitan region of dependent suburban counties. The ability of a municipality and its dependent suburban counties to weather a disaster such as an avian flu pandemic depends on the size of social networks in its neighborhoods and on the interconnection between the social networks. Diversity such as gained by social and economic integration influences the strength of the loose ties between social networks. Poor neighborhoods with extreme resilience conferred by a dense fabric of social networks must also maintain connections with mainstream political structure or they will fail to react to both good and bad impacts and communications.
C1 [Wallace, Rodrick] New York State Psychiat Inst & Hosp, New York, NY 10032 USA.
C3 New York State Psychiatry Institute
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NR 42
TC 45
Z9 56
U1 2
U2 45
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 2008
VL 13
IS 1
AR 18
PG 14
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 376IA
UT WOS:000261176100027
DA 2025-04-22
ER

PT J
AU Abdrabo, KI
   Kantoush, SA
   Esmaiel, A
   Saber, M
   Sumi, T
   Almamari, M
   Elboshy, B
   Ghoniem, S
AF Abdrabo, Karim I.
   Kantoush, Sameh A.
   Esmaiel, Aly
   Saber, Mohamed
   Sumi, Tetsuya
   Almamari, Mahmood
   Elboshy, Bahaa
   Ghoniem, Safaa
TI An integrated indicator-based approach for constructing an urban flood
   vulnerability index as an urban decision-making tool using the PCA and
   AHP techniques: A case study of Alexandria, Egypt
SO URBAN CLIMATE
LA English
DT Article
DE Climate change; Urban areas; Flood vulnerability; Vulnerability index;
   PCA; AHP; Decision support; MOVE framework
ID SOCIAL VULNERABILITY; PHYSICAL VULNERABILITY; GLOBAL CHANGE; RISK;
   FRAMEWORK; HAZARDS; RESILIENCE; MODEL
AB Several cities are exceptionally vulnerable to flood impacts due to increasing urbanization, population growth, and climate change. Quantifying flood vulnerability is useful for identifying the system's weakness, monitoring its evolution, and supporting targeted flood risk adaptation policies. One of the vital aims of assessing urban flood vulnerability is to create an understandable link between flood vulnerability conceptual theories and the daily decision-making process through an easily accessible tool. Although several studies have described the development of an integrated flood vulnerability index (FVI) combining physical, social, and economic dimensions in urban areas, this index has not been assessed in developing countries. Therefore, this study focuses on an integrated indicator-based approach to develop an urban FVI based on exposure, susceptibility, and resilience to urban flooding at the neighbourhood scale. To evaluate the flood vulnerability of the population, we used the Improvement of Vulnerability Assessment in Europe (MOVE) framework. Accordingly, the vulnerability indices cover exposure, susceptibility and resilience aspects. The index is applied to Alexandria, one of the most important coastal cities of Egypt, which is highly vulnerable due to its dense population, low adaptive capacity, flat topography, and exposure to various water-related disasters, such as cyclones, storm surges, bank erosion, sea-level rise, tidal floods, and frequent urban floods. In this study, we use inductive principal component analysis (PCA) to develop a composite indicator for the FVI and to evaluate the vulnerability of 101 census administrative units (sheyakhahs) in Alexandria. We apply the Kaiser-Meyer-Olkin (KMO) test and Bartlett's test of sphericity to assess sample adequacy and perform data standardization for all indicators. Furthermore, the analytic hierarchy process (AHP) is adopted for simplicity and comparison with the PCA results to assess their robustness. We clustered 58 and 13 flood vulnerability-related indicators into three major dimensions, i.e., physical, social, and economic, through PCA and the AHP, respectively. Official collected data are analysed using combined methods using advanced statistical analysis (SPSS) software and a geographic information system (GIS). The findings highlight the variability in flood vulnerability across highly urbanized and suburban areas. Based on the PCA, 38 indicators were defined as the most comprehensive flood vulnerability assessment (FVA) used in Egyptian cities. Additionally, due to reliability of the approach to indicator selection and the weighting process, the chosen 13 indicators for the AHP analysis yielded similar results. This research provides spatial planners and decision-makers with an integrated, comprehensive, and unified urban FVI to assess vulnerability and, thus, improve flood resilience in Egypt and countries in similar situations.
C1 [Abdrabo, Karim I.; Ghoniem, Safaa] Cairo Univ, Fac Urban & Reg Planning, Giza 12613, Egypt.
   [Abdrabo, Karim I.; Almamari, Mahmood] Kyoto Univ, Grad Sch Engn, Dept Urban Management, Kyoto 6158245, Japan.
   [Kantoush, Sameh A.; Saber, Mohamed; Sumi, Tetsuya] Kyoto Univ, Disaster Prevent Res Inst DPRI, Kyoto 6110011, Japan.
   [Esmaiel, Aly] Housing & Bldg Res Ctr HBRC, Urban Planning Consultant, Unhabitat Egypt, 87 Tahreer St, 9th Floor, Giza, Egypt.
   [Elboshy, Bahaa] Tanta Univ, Fac Engn, Architectural Engn Dept, Tanta 31511, Egypt.
C3 Egyptian Knowledge Bank (EKB); Cairo University; Kyoto University; Kyoto
   University; Egyptian Knowledge Bank (EKB); Tanta University
RP Abdrabo, KI (corresponding author), Cairo Univ, Fac Urban & Reg Planning, Giza 12613, Egypt.
EM m.karim.ibrahim@cu.edu.eg; samehahmed.2n@kyoto-u.ac.jp;
   mohamedmd.saber.3u@kyoto-u.ac.jp; sumi.tetsuya.2s@kyoto-u.ac.jp
RI abdrabo, karim/AAL-6139-2020; Saber, Mohamed/H-8261-2019; Elboshy,
   Bahaa/J-9706-2019; Sumi, Tetsuya/I-2848-2019
OI Sumi, Tetsuya/0000-0002-1423-7477; Esmaiel, Aly/0000-0002-3320-7054;
   Ghoneim, Safaa/0000-0001-5328-4586
FU Ministry of Higher Education of the Arab Republic of Egypt; Japan
   Society for the Promotion of Science (JSPS) [JPJSCCB20220004]
FX Funding: KA is funded by a full scholarship from the Ministry of Higher
   Education of the Arab Republic of Egypt, core -to -core program, the
   Japan Society for the Promotion of Science (JSPS) , grant number
   JPJSCCB20220004
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NR 79
TC 70
Z9 72
U1 111
U2 285
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 101426
DI 10.1016/j.uclim.2023.101426
EA JAN 2023
PG 19
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA 8P9ZM
UT WOS:000926874400001
OA hybrid
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Zhao, LJ
   Li, HY
   Sun, Y
   Huang, RB
   Hu, QM
   Wang, JJ
   Gao, F
AF Zhao, Laijun
   Li, Huiyong
   Sun, Yan
   Huang, Rongbing
   Hu, Qingmi
   Wang, Jiajia
   Gao, Fei
TI Planning Emergency Shelters for Urban Disaster Resilience: An Integrated
   Location-Allocation Modeling Approach
SO SUSTAINABILITY
LA English
DT Article
DE disaster planning; emergency shelters; urban disaster resilience;
   location-allocation model; time-varying shelter demand
ID FACILITY LOCATION; OR/MS RESEARCH; EARTHQUAKE; ALGORITHM
AB In recent years, extreme natural hazards threaten cities more than ever due to contemporary society's high vulnerability in cities. Hence, local governments need to implement risk mitigation and disaster operation management to enhance disaster resilience in cities. Transforming existing open spaces within cities into emergency shelters is an effective method of providing essential life support and an agent of recovery in the wake of disasters. Emergency shelters planning must identify suitable locations for shelters and reasonably allocate evacuees to those shelters. In this paper, we first consider both the buildings' post-disaster condition and the human choice factor that affect evacuees' decision, and propose a forecasting method to estimate the time-varying shelter demand. Then we formulate an integrated location-allocation model that is used sequentially: an emergency shelter location model to satisfy the time-varying shelter demand in a given urban area with a goal of minimizing the total setup cost of locating the shelters and an allocation model that allocates the evacuees to shelters with a goal of minimizing their total evacuation distance. We also develop an efficient algorithm to solve the model. Finally, we propose an emergency shelters planning based on a case study of Shanghai, China.
C1 [Zhao, Laijun; Sun, Yan; Hu, Qingmi; Wang, Jiajia; Gao, Fei] Shanghai Jiao Tong Univ, SinoUS Global Logist Inst, Shanghai 200030, Peoples R China.
   [Li, Huiyong] Shanghai Univ, Sch Management, Shanghai 200444, Peoples R China.
   [Huang, Rongbing] York Univ, Sch Adm Studies, Toronto, ON M3J 1P3, Canada.
   [Zhao, Laijun] Shanghai Jiao Tong Univ, China Inst Urban Governance, Shanghai 200030, Peoples R China.
   [Zhao, Laijun; Sun, Yan; Hu, Qingmi; Wang, Jiajia; Gao, Fei] Shanghai Jiao Tong Univ, Antai Coll Econ & Management, Shanghai 200030, Peoples R China.
C3 Shanghai Jiao Tong University; Shanghai University; York University -
   Canada; Shanghai Jiao Tong University; Shanghai Jiao Tong University
RP Li, HY (corresponding author), Shanghai Univ, Sch Management, Shanghai 200444, Peoples R China.
EM ljzhao70@sjtu.edu.cn; hylee@shu.edu.cn; sunyan66@sjtu.edu.cn;
   rhuang@yorku.ca; qingmihu@sjtu.edu.cn; wangjjsh@sjtu.edu.cn;
   loo_yoo_yo@sjtu.edu.cn
RI Gao, Fei/HJI-6415-2023; Chen, Yucheng/HPH-0981-2023
OI Li, Huiyong/0000-0002-2006-2511
FU National Natural Science Foundation of China [71373155]; Shanghai
   Pujiang Program [14PJC073]; Shanghai Technological Innovation Project
   [17DZ1203300, 17DZ1203302]
FX This study is supported by grants from the National Natural Science
   Foundation of China (Project No. 71373155), the Shanghai Pujiang Program
   (Project No. 14PJC073) and the Shanghai Technological Innovation Project
   (Project Nos. 17DZ1203300, 17DZ1203302).
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NR 33
TC 64
Z9 68
U1 11
U2 131
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2017
VL 9
IS 11
AR 2098
DI 10.3390/su9112098
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 FO4EH
UT WOS:000416793400176
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Terhorst, P
   Erkus-Öztürk, H
AF Terhorst, Pieter
   Erkus-Ozturk, Hilal
TI Resilience to the Global Economic and Turkish (GEO)Political Crisis
   Compared
SO TIJDSCHRIFT VOOR ECONOMISCHE EN SOCIALE GEOGRAFIE
LA English
DT Article
DE Global economic crisis; (geo)political crisis; resilience; tourism city;
   Turkey
ID REGIONAL RESILIENCE; POLITICAL-ECONOMY; URBAN-GROWTH; GEOGRAPHY; EUROPE;
   DYNAMICS
AB Over the last ten years Turkey has gone through two different types of crises, namely the global economic crisis of 2008-2009 and the (geo)political crisis after 2015. This paper analyses the resilience of the economy of the tourism city of Antalya to both crises by focusing on the development of GDP of its inbound tourism countries and the births and deaths of both tourism and non-tourism firms. The impact of the global economic crisis was moderate. The (geo)political crisis of 2016, by contrast, had a strong impact on Antalya's economy. The city's tourism arrivals strongly decreased, new firm formation stagnated, although the death rate of firms did not increase, and the sectoral diversification of new firms declined. Antalya conforms more to the engineering type of resilience to both crises than to the adaptive one which requires ability/willingness to shift into new sectors.
C1 [Terhorst, Pieter] Univ Amsterdam, Dept Planning & Geog, Amsterdam, Netherlands.
   [Erkus-Ozturk, Hilal] Akdeniz Univ, Fac Architecture, Dept Urban & Reg Planning, Antalya, Turkey.
C3 University of Amsterdam; Akdeniz University
RP Erkus-Öztürk, H (corresponding author), Akdeniz Univ, Fac Architecture, Dept Urban & Reg Planning, Antalya, Turkey.
EM p.j.f.terhorst@uva.nl; herkus@akdeniz.edu.tr
RI Erkuş, Hilal/B-5993-2016
FU BAGEP Award of the Science Academy
FX This work was supported by the BAGEP Award of the Science Academy.
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NR 55
TC 6
Z9 8
U1 4
U2 30
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0040-747X
EI 1467-9663
J9 TIJDSCHR ECON SOC GE
JI Tijdschr. Econ. Soc. Geogr.
PD APR
PY 2019
VL 110
IS 2
BP 138
EP 155
DI 10.1111/tesg.12343
PG 18
WC Economics; Geography
WE Social Science Citation Index (SSCI)
SC Business & Economics; Geography
GA HP7PT
UT WOS:000461881500004
DA 2025-04-22
ER

PT J
AU Jaramillo, N
   Carreño, ML
   Lantada, N
AF Jaramillo, Nayive
   Carreno, Martha Liliana
   Lantada, Nieves
TI Evaluation of social context integrated into the study of seismic risk
   for urban areas
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban seismic risk; Social vulnerability; Social fragility; Lack of
   resilience; Social indicators; Holistic assessment of seismic risk
ID ENVIRONMENTAL HAZARDS; VULNERABILITY; INDEX
AB Usually the seismic risk evaluation involves only the estimation of the expected physical damage, casualties or economic losses. This article corresponds to a holistic approach for seismic risk assessment which involves the evaluation of the social fragility and the lack of resilience. The complementary evaluation of social context aspects such as the distribution of the population, the absence of economic and social development, deficiencies in institutional management, and lack of capacity for response and recovery; is useful in order to have seismic risk evaluation suitable to support a decision making processes for risk reduction.
   The proposed methodology allows a standardized assessment of the social fragility and lack of resilience, by means of an aggravating coefficient of which summarizes the characteristics of the social context using fuzzy sets and Analytic Hierarchy Process (AHP). The selection of 20 social indicators is based on the indicators used by urban observatories of United Nations and other social researchers. These indicators are classified according to social item they describe, in six categories. Applying the determination level analysis, thirteen prevailing social indicators are selected. The proposed methodology has been applied in the cities of Merida (Venezuela) and Barcelona (Spain). (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Jaramillo, Nayive] Univ Los Andes, Sect La Hechicera, Dept Ciencias Aplicadas & Humanist, Edificio B,2 Piso, Merida, Estado Merida, Venezuela.
   [Carreno, Martha Liliana] Univ Politecn Cataluna, Dept Civil & Environm Engn, Div Resistencia Mat & Estruct Engn RMEE, CIMNE, Jordi Girona 1-3,Bldg Cl,Campus Nord UPC, ES-08034 Barcelona, Spain.
   [Lantada, Nieves] Univ Politecn Cataluna, Div Geotech Engn & Geosci, Dept Civil & Environm Engn, Jordi Girona 1-3,Bldg D2,Campus Nord UPC, ES-08034 Barcelona, Spain.
C3 University of Los Andes Venezuela; Universitat Politecnica de Catalunya;
   Centre Internacional de Metodes Numerics en Enginyeria (CIMNE);
   Universitat Politecnica de Catalunya
RP Carreño, ML (corresponding author), Univ Politecn Cataluna, Dept Civil & Environm Engn, Div Resistencia Mat & Estruct Engn RMEE, CIMNE, Jordi Girona 1-3,Bldg Cl,Campus Nord UPC, ES-08034 Barcelona, Spain.
EM nayive@ula.ve; liliana@cimne.upc.edu; nieves.lantada@upc.edu
RI Lantada, Nieves/B-6611-2016; Carreno, Martha Liliana/C-8837-2015
OI Lantada, Nieves/0000-0002-9974-6915; Carreno, Martha
   Liliana/0000-0003-1914-2992
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NR 61
TC 17
Z9 18
U1 1
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 AUG
PY 2016
VL 17
BP 185
EP 198
DI 10.1016/j.ijdrr.2016.05.002
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 DY1EG
UT WOS:000384837100019
OA Green Published
DA 2025-04-22
ER

PT J
AU Farmani, R
   Butler, D
AF Farmani, Raziyeh
   Butler, David
TI Implications of Urban Form on Water Distribution Systems Performance
SO WATER RESOURCES MANAGEMENT
LA English
DT Article
DE Water distribution systems; Urban form; Growth; Water quality;
   Reliability; Scenarios
ID EVOLUTIONARY MULTIOBJECTIVE OPTIMIZATION; DISTRIBUTION NETWORK;
   TOTAL-COST; RELIABILITY; DESIGN
AB This paper presents the results of an investigation into the relationship between urban form and the performance of a water distribution system. The effect of new development or redevelopment on the performance of an expanded rehabilitation of the well-known Anytown water distribution system is examined to provide an insight into their interaction, which can be considered along with other aspects of renewal to achieve more sustainable urban areas. A range of urban growth rates, urban form and water efficiency strategies are studied in relation to the system's key performance indicators of total cost, resilience and water quality. The urban forms considered in this work are compact/uniform, monocentric, polycentric and edge developments. These development patterns are representative of common development approaches widely applied in urban planning. They also correspond to future settlement patterns, based on adopting four future (socio-economic) scenarios so called Policy Reform (PR), Fortress World (FW), New Sustainability Paradigm (NSP), and Market Forces (MF) respectively. Three growth rates and two water demand efficiency levels are considered. It is concluded the rate and type of urban development has major implications for the redesign and operation of existing water infrastructure in terms of total cost, water quality and system resilience, with uniform expansion (PR) resulting in the most cost-effective system upgrade by a considerable margin. Polycentric expansion as a representative urban form for New Sustainability Paradigm is the least cost-effective if it relies on centralised water distribution system to provide service to customers. Edge expansion (MF) has both the cheapest and the most expensive expansion costs depending on location of the expansion. Monocentric urban development (FW) does not result in the most cost-effective system contrary to what has been reported in the literature. Water efficiency measures had relatively little impact on overall performance as it was balanced out with demand increase due to new growth.
C1 [Farmani, Raziyeh; Butler, David] Univ Exeter, Ctr Water Syst, Exeter, Devon, England.
C3 University of Exeter
RP Farmani, R (corresponding author), Univ Exeter, Ctr Water Syst, Exeter, Devon, England.
EM r.farmani@exeter.ac.uk
RI Butler, David/I-2991-2012; Farmani, Raziyeh/D-3457-2012
OI Butler, David/0000-0001-5515-3416; Farmani, Raziyeh/0000-0001-8148-0488
FU UK Engineering and Physical Science Research Council as part of the
   ReVISIONS; Urban Futures consortia under the Sustainable Urban
   Environment programme [EP/F007566/1, EP/F007426/1]
FX This work was supported by the UK Engineering and Physical Science
   Research Council as part of the ReVISIONS and Urban Futures consortia
   under the Sustainable Urban Environment programme (grants EP/F007566/1
   and EP/F007426/1).
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TC 31
Z9 35
U1 1
U2 58
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 JAN
PY 2014
VL 28
IS 1
BP 83
EP 97
DI 10.1007/s11269-013-0472-3
PG 15
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA 277ZD
UT WOS:000328856900005
DA 2025-04-22
ER

PT J
AU Schlee, MB
   Tamminga, KR
   Tangari, VR
AF Schlee, Monica Bahia
   Tamminga, Kenneth R.
   Tangari, Vera Regina
TI A Method for Gauging Landscape Change as a Prelude to Urban Watershed
   Regeneration: The Case of the Carioca River, Rio de Janeiro
SO SUSTAINABILITY
LA English
DT Article
DE landscape morphology; landscape dynamics; edge effect; regenerative
   riparian urbanism; social-ecological systems; resilience
AB Natural systems undergo processes, flows, and rhythms that differ from those of urban sociocultural systems. While the former takes place over eras or many generations, the latter may occur within years or even months. Natural systems change includes no principle of intentional progress or enhancement of complexity. In contrast, sociocultural systems change occurs through inherited characteristics, learning, and cultural transmission [1]. Both are dynamic, heterogeneous, and vulnerable to regime shifts, and are inextricably linked. The interrelations among natural and anthropogenic factors affecting sustainability vary spatially and temporally. This paper focuses on landscape changes along the Carioca River valley in Rio de Janeiro, located in the Brazilian Neotropical Southeastern Region, and its implications for local urban sustainability. The study incorporates a transdisciplinary approach that integrates landscape ecology and urban morphology methodologies to gauge landscape change and assess social-ecological systems dynamics. The methodology includes a variety of landscape change assessments; including on-site landscape ecological, landscape morphology, biological and urbanistic surveys, to gauge urban watershed quality. It presents an adapted inventory for assessment of urban tropical rivers, Neotropical Urban Stream Visual Assessment Protocol (NUSVAP), and correlates the level of stream and rainforest integrity to local urban environmental patterns and processes. How can urban regional land managers, planners and communities work together to promote shifts toward more desirable configurations and processes? An understanding of the transient behavior of social-ecological systems and how they respond to change and disturbance is fundamental to building appropriate management strategies and fostering resilience, regenerative capacity, and sustainable development in urban watersheds. The sociocultural patterns, processes and dynamics of Rio's hillsides suggest that increasing the multifunctionality, flexibility, adaptability and connectivity of open spaces may influence carrying, adaptive and regenerative capacities of urban landscape systems.
C1 [Schlee, Monica Bahia] Municipal Secretary Urban Planning CMP, Macro Urban Planning Dept, SMU PCRJ, BR-20241250 Rio De Janeiro, Brazil.
   [Tamminga, Kenneth R.] Penn State Univ, Dept Landscape Architecture, University Pk, PA 16802 USA.
   [Tangari, Vera Regina] Univ Fed Rio de Janeiro, FAU, Sch Architecture & Urbanism, BR-22231010 Rio De Janeiro, Brazil.
C3 Pennsylvania Commonwealth System of Higher Education (PCSHE);
   Pennsylvania State University; Pennsylvania State University -
   University Park; Penn State Behrend; Universidade Federal do Rio de
   Janeiro
RP Schlee, MB (corresponding author), Municipal Secretary Urban Planning CMP, Macro Urban Planning Dept, SMU PCRJ, Rua Santa Cristina 121, BR-20241250 Rio De Janeiro, Brazil.
EM monbasch@gmail.com; krt1@psu.edu; vtangari@uol.com.br
RI Schlee, Monica/D-4244-2013
OI Schlee, Monica/0000-0001-6044-3370
FU Graduate School of Pennsylvania State University; Alma Heinz and August
   Pohland Graduate Scholarship
FX Fieldwork in Brazil undertaken by the first author was funded by The
   Graduate School of Pennsylvania State University and the Alma Heinz and
   August Pohland Graduate Scholarship. We acknowledge the support of the
   Rio de Janeiro City Government, the Instituto Municipal de Urbanismo
   Pereira Passos, the Secretaria Municipal de Urbanismo, the
   Sub-Secretaria Municipal de Patrimonio Cultural. We appreciate
   individual assistance from Antonio Bernardo de Carvalho, Joan
   Schumacher, Lysle Sherwin, Ana Luiza Coelho Netto, Darcilio Baptista,
   Daniel Nadenicek, Deryck Holdsworth, Bill Elmendorf, Jonathas Magalhaes
   Pereira da Silva, Maria Paula Albernaz, Luiz Otavio Pedreira, Timothy
   Moulton, Rogerio Ribeiro de Oliveira, Mariana Egler, Mariana Silveira,
   Sandra Magalhaes, Rodolfo Paranhos, Joao Crisostomo Oswaldo Cruz, Bruno
   Henriques Coutinho, Raphael Urbano de Andrade, Marco Zambelli, Murilo
   Santos de Medeiros, Gustavo Peres Lopes, Alice Amaral dos Reis, Claudia
   Muricy, Daniel Mancebo, Antonio Barboza Correia, Carla Cabral and Paula
   Serrano. Finally, we thank the Instituto Municipal de Urbanismo Pereira
   Passos and the Secretaria Municipal de Urbanismo of Rio de Janeiro for
   access to cadastral bases, orthophotos and allotment bases and the two
   anonymous reviewers for their valuable comments on the manuscript.
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NR 73
TC 16
Z9 16
U1 0
U2 37
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2012
VL 4
IS 9
BP 2054
EP 2098
DI 10.3390/su4092054
PG 45
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 213GE
UT WOS:000324042500008
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Zhou, Y
   Chen, LZ
   Chen, W
   Tan, JY
AF Zhou, Yan
   Chen, Liuzhuo
   Chen, Wei
   Tan, Jingyang
TI Seismic resilience evolution of reinforced concrete frame-wall
   structures in corrosive environments over service time
SO JOURNAL OF BUILDING ENGINEERING
LA English
DT Article
DE Seismic resilience; Functionality; Corrosion; Aging effects; Frame-wall
   structures
ID DISASTER RESILIENCE
AB Achieving seismic resilience in building structures is essential to prevent significant functional losses during earthquakes and prolonged recovery periods in modern cities. Over time, corrosion compromises the structural integrity of reinforced concrete (RC) buildings, thereby increasing their functional vulnerability to seismic actions. This study proposes a three-dimensional quantitative assessment framework for evaluating the seismic resilience of corroded reinforced concrete frame-wall structures (RCFWS) based on functionality, time, and seismic intensity. The framework investigates the variation in seismic resilience of RCFWS in corrosive environments over different service times. Initially, a numerical simulation method is developed to account for the effects of corrosion on RCFWS. Using the incremental dynamic analysis (IDA) method, the study determines time-dependent direct economic losses, preparation time, and repair time under frequent, basic, rare, and extremely rare ground motions. The evaluation framework integrates functionality-time curves under varying seismic intensities into resilience surfaces, offering a comprehensive assessment of seismic resilience across different service times. The results indicate that corrosion-induced deterioration significantly reduces structural functionality, leading to increased economic losses and extended recovery times. This study underscores the critical need for accurate pre-earthquake resilience assessments for RC buildings in corrosive environments to ensure proper retrofitting and reinforcement. The findings highlight the importance of incorporating aging effects into seismic resilience evaluations, providing theoretical support for urban renewal projects and the enhancement of building structures in corrosive conditions.
C1 [Zhou, Yan; Chen, Liuzhuo; Chen, Wei; Tan, Jingyang] Hubei Key Lab Disaster Prevent & Mitigat, Yichang 443002, Hubei, Peoples R China.
   [Zhou, Yan; Chen, Liuzhuo; Chen, Wei; Tan, Jingyang] China Three Gorges Univ, Coll Civil Engn & Architecture, Yichang 443002, Hubei, Peoples R China.
C3 China Three Gorges University
RP Chen, LZ (corresponding author), China Three Gorges Univ, Coll Civil Engn & Architecture, Yichang 443002, Hubei, Peoples R China.
EM 15276831997@163.com
FU Hubei Provincial Natural Science Foundation Youth Project [2024AFB302];
   Open Fund of Hubei Key Laboratory of Disaster Prevention and Mitigation
   (China Three Gorges University) [2022KJZ14, 2022KJZ16]; National Key
   Research and Development Program of China [2019YFC1509302]
FX The authors are grateful for the financial support received from the
   Hubei Provincial Natural Science Foundation Youth Project (2024AFB302) ,
   Open Fund of Hubei Key Laboratory of Disaster Prevention and Mitigation
   (China Three Gorges University) (No. 2022KJZ14; No.2022KJZ16) and the
   National Key Research and Development Program of China (No.
   2019YFC1509302) . Also, we would like to thank the respected reviewers
   for their efforts towards improving our manuscript.
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NR 31
TC 0
Z9 0
U1 8
U2 8
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
EI 2352-7102
J9 J BUILD ENG
JI J. Build. Eng.
PD APR 1
PY 2025
VL 99
AR 111443
DI 10.1016/j.jobe.2024.111443
EA DEC 2024
PG 20
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA Q7C0N
UT WOS:001386200300001
DA 2025-04-22
ER

PT J
AU Dutta, M
   Herreros-Cantis, P
   Mcphearson, T
   Mustafa, A
   Palmer, MI
   Tosca, M
   Ventrella, J
   Cook, EM
AF Dutta, Maya
   Herreros-Cantis, Pablo
   Mcphearson, Timon
   Mustafa, Ahmed
   Palmer, Matthew I.
   Tosca, Mika
   Ventrella, Jennifer
   Cook, Elizabeth M.
TI New York City 2100: Environmental justice implications of future
   scenarios for addressing extreme heat
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Environmental justice; Climate resilience; Scenario planning; Urban
   ecosystem services
ID LAND-USE CHANGE; ECOSYSTEM SERVICES; CLIMATE-CHANGE; METROPOLITAN-AREA;
   URBAN AREAS; CHALLENGES; EQUITY; PANEL
AB Climate-driven hazards, such as extreme heat or precipitation, are threatening the current and future livability of New York City (NYC) and disproportionately affecting low-income communities and communities of color. To envision future climate resilience, government stakeholders and researchers co-produced future scenarios for 2100 in response to climate hazards for NYC during participatory workshops in Fall 2021. A commonly co- produced strategy included urban green infrastructure (UGI) because of its potential to retain runoff and provide cooling benefits. We ask, what are the potential environmental justice implications of ecosystem services provisioned from UGI distribution in the co-produced NYC future scenario compared to a business-as-usual future scenario? To analyze potential outcomes and tradeoffs, we integrated spatially-explicit UGI strategies into simulated land use and cover models. We then assessed two ecosystem services (flood and heat mitigation) using the spatially-explicit tool Integrated Valuation of Ecosystem Services and Tradeoffs (InVEST). We explored potential environmental justice implications by comparing the provision of ecosystem services to sociodemographic indicators within census block groups between scenarios. Presently, ecosystem services are disproportionately lower for communities of color, including predominantly Asian, Black/African-American, and Hispanic/Latino communities. In future scenarios we found ecosystem service provision will decrease within these communities under business-as-usual land development. The future scenario co-produced for extreme heat resilience, however, shows an increase in overall provisioning across NYC, including in neighborhoods with a high proportion of people of color. Our results show that co-produced future scenarios can be used to inform strategic future planning for inclusive adaptation decisions to improve future climate resilience and justice.
C1 [Dutta, Maya; Palmer, Matthew I.] Columbia Univ, Dept Ecol Evolut & Environm Biol, New York, NY USA.
   [Herreros-Cantis, Pablo] Basque Ctr Climate Change BC3, Leioa 48940, Spain.
   [Herreros-Cantis, Pablo] Univ Autonoma Barcelona UAB, Inst Environm Sci & Technol ICTA, Cerdanyola Del Valles, Spain.
   [Herreros-Cantis, Pablo; Mcphearson, Timon; Mustafa, Ahmed; Ventrella, Jennifer] New Sch, Urban Syst Lab, New York, NY USA.
   [Mcphearson, Timon] Cary Inst Ecosyst Studies, Millbrook, NY USA.
   [Mcphearson, Timon] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [Mcphearson, Timon] Royal Swedish Acad Sci, Beijer Inst Ecol Econ, Stockholm, Sweden.
   [Tosca, Mika] Solarpunk Project, Chicago, IL USA.
   [Cook, Elizabeth M.] Barnard Coll, Environm Sci Dept, 3009 Broadway, New York, NY 10027 USA.
C3 Columbia University; Basque Centre for Climate Change (BC3); Autonomous
   University of Barcelona; The New School; Cary Institute of Ecosystem
   Studies; Stockholm University; Royal Swedish Academy of Sciences; Beijer
   Institute of Ecological Economics; Barnard College
RP Cook, EM (corresponding author), Barnard Coll, Environm Sci Dept, 3009 Broadway, New York, NY 10027 USA.
EM ecook@barnard.edu
RI Palmer, Matthew/LRS-8024-2024; McPhearson, Timon/JOZ-3799-2023
OI , Jennifer Ventrella/0000-0002-8726-9912; Herreros Cantis,
   Pablo/0000-0002-2278-0648; McPhearson, Timon/0000-0002-9499-0791
FU NSF SETS Growing Convergence Research [1934933]; NATURA [1927167];
   Columbia University E3B department; Doctoral INPhINIT-INCOMING program
   from "La Caixa" Foundation [LCF/BQ/DI22/11940028, 100010434]
FX We would like to thank Adam Parris for his collaboration and
   co-organizing the NYC Climate Adaptation workshop series, Daniela
   Tagtachian for facilitating the co-production of the NYC 2100 Heat
   Resilience scenario, and all participants of the workshop series for
   sharing their insights for future climate resilience. We also
   acknowledge support for this project from NSF SETS Growing Convergence
   Research (#1934933) and NATURA (#1927167) projects and the Columbia
   University E3B department. PHC was supported by the Doctoral
   INPhINIT-INCOMING program, fellowship code (LCF/BQ/DI22/11940028) , from
   "La Caixa" Foundation (ID 100010434) .
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NR 72
TC 1
Z9 1
U1 36
U2 36
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 FEB
PY 2025
VL 254
AR 105249
DI 10.1016/j.landurbplan.2024.105249
EA NOV 2024
PG 13
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 N0G7V
UT WOS:001361225700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Turok, I
   Seeliger, L
   Visagie, J
AF Turok, Ivan
   Seeliger, Leanne
   Visagie, Justin
TI Restoring the core? Central city decline and transformation in the South
SO PROGRESS IN PLANNING
LA English
DT Article
DE Central business district; Urban regeneration; Urban resilience;
   Property development; Affordable housing; Precinct management; South
   Africa; Johannesburg; Cape Town; Pretoria; Durban
AB Central cities are vibrant and productive places because of the dense concentration of people, firms and supporting facilities. Yet their dynamism can be undermined by congestion, social tensions and poor urban management. South Africa's four major city centres experienced tumultuous changes during the transition from apartheid and the exodus of many property owners, investors and occupiers to the suburbs. Buildings decayed, infrastructure collapsed, public health and safety deteriorated, and governance was disrupted by unauthorised activities. Despite the general neglect, signs of recovery have emerged and gathered momentum in recent years. The revival is fragile, partial and patchy in most cases, and dwarfed by scale of new investment in outlying economic nodes. The paper uses a resilience framework to examine how enterprising organisations have spurred regeneration by identifying opportunities for the adaptive reuse of redundant buildings and public spaces for affordable housing and social amenities. It also compares the extent, character and causes of the rebound across the four cities, demonstrating elements of continuity (bounce-back resilience) and transformation (bounce -forward resilience) in each case. Cape Town is characterised more by continuity and Johannesburg more by decline and transformation, with Pretoria and Durban in between. City centre recovery is attributed to a combination of pioneering private and public sector actions, albeit disjointed and uneven in their effectiveness. The paper concludes that central cities are relatively open incubators of economic and social progress, but also cauldrons of competing interests which create many dilemmas for decision-makers to negotiate, and which require coordinated attention and determination to realise their potential.
C1 [Turok, Ivan; Seeliger, Leanne; Visagie, Justin] Human Sci Res Council, Private Bag X9182, ZA-8000 Cape Town, South Africa.
C3 Human Sciences Research Council-South Africa
RP Turok, I (corresponding author), Human Sci Res Council, Private Bag X9182, ZA-8000 Cape Town, South Africa.
EM iturok@hsrc.ac.za
RI Turok, Ivan/X-6120-2019
FU National Research Foundation [78644]
FX The paper draws on research supported by the National Research
   Foundation (grant number 78644). We are grateful to Glen Robbins, David
   Savage, David Schmidt and three anonymous referees for their insightful
   and constructive comments on the draft paper.
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NR 132
TC 11
Z9 11
U1 7
U2 27
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0305-9006
EI 1873-4510
J9 PROG PLANN
JI Prog. Plan.
PD FEB
PY 2021
VL 144
SI SI
AR 100434
DI 10.1016/j.progress.2019.100434
EA FEB 2021
PG 31
WC Environmental Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public Administration
GA QF7ER
UT WOS:000617056000001
DA 2025-04-22
ER

PT J
AU Cellucci, L
   Burattini, C
   Drakou, D
   Gugliermetti, F
   Bisegna, F
   Vollaro, AD
   Salata, F
   Golasi, I
AF Cellucci, Lucia
   Burattini, Chiara
   Drakou, Dionysia
   Gugliermetti, Franco
   Bisegna, Fabio
   Vollaro, Andrea de Lieto
   Salata, Ferdinando
   Golasi, Iacopo
TI Urban Lighting Project for a Small Town: Comparing Citizens and
   Authority Benefits
SO SUSTAINABILITY
LA English
DT Article
DE smart city; smart lighting; road lighting; LED; energy consumption;
   smart grid
ID ENERGY; RELIABILITY; SYSTEMS
AB The smart and resilient city evolves by slow procedures of mutation without radical changes, increasing the livability of its territory. The value of the city center in a Smart City can increase through urban lighting systems: its elements on the territory can collect and convey data to increase services to city users; the electrical system becomes the so-called Smart Grid. This paper presents a study of smart lighting for a small town, a touristic location inside a nature reserve on the Italian coast. Three different approaches have been proposed, from minimal to more invasive interventions, and their effect on the territory has been investigated. Based on street typology and its surroundings, the work analyzes the opportunity to introduce smart and useful services for the citizens starting from a retrofitting intervention. Smart city capabilities are examined, showing how it is possible to provide new services to the cities through ICT (Information and Communication Technology) without deep changes and simplifying the control of basic city functions. The results evidence an important impact on annual energy costs, suggesting smart grid planning not only for metropolis applications, but also in smaller towns, such as the examined one.
C1 [Cellucci, Lucia; Burattini, Chiara; Drakou, Dionysia; Gugliermetti, Franco; Bisegna, Fabio; Vollaro, Andrea de Lieto; Salata, Ferdinando; Golasi, Iacopo] Univ Roma La Sapienza, Dept Astronaut Elect & Energet Engn DIAEE, I-00184 Rome, Italy.
C3 Sapienza University Rome
RP Cellucci, L (corresponding author), Univ Roma La Sapienza, Dept Astronaut Elect & Energet Engn DIAEE, Via Eudossiana 18, I-00184 Rome, Italy.
EM lucia.cellucci@uniroma1.it; chiara.burattini@uniroma1.it;
   dionysia.drakou@uniroma1.it; franco.gugliermetti@uniroma1.it;
   fabio.bisegna@uniroma1.it; andrea.delietovollaro@uniroma1.it;
   ferdinando.salata@uniroma1.it; iacopo.golasi@uniroma1.it
RI Bisegna, Fabio/H-8090-2012; Burattini, Chiara/AIF-3976-2022; Salata,
   Ferdinando/I-4627-2015
OI Golasi, Iacopo/0000-0002-9942-0560; Bisegna, Fabio/0000-0002-4945-9571;
   Salata, Ferdinando/0000-0001-9740-034X
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NR 24
TC 19
Z9 21
U1 0
U2 26
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
SN 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2015
VL 7
IS 10
BP 14230
EP 14244
DI 10.3390/su71014230
PG 15
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 CV5RI
UT WOS:000364328300060
OA Green Published, Green Submitted, gold
DA 2025-04-22
ER

PT J
AU McGuinness, C
   Nordstokke, D
AF McGuinness, Claire
   Nordstokke, David
TI Mindful self-care and resilience in first-year undergraduate students
SO JOURNAL OF AMERICAN COLLEGE HEALTH
LA English
DT Article
DE Flourishing; mindful self-care; resilience; undergraduate students
ID MENTAL-HEALTH; SOCIAL SUPPORT; ACADEMIC-ACHIEVEMENT; COLLEGE-STUDENTS;
   LIFE EVENTS; PERSONALITY; PERSISTENCE; EFFICACY; SUCCESS; MODELS
AB Objective Post-secondary students experience elevated levels of academic stress. The objective of the current study is to examine the relationship between a three factor model of resilience (ie, mastery, emotionality reactivity, and relatedness), mindful self-care and flourishing in first-year undergraduate students. Participants A sample (n = 177) of first-year undergraduates were recruited from a large urban university in Alberta during the 2019-2020 academic year. Method A multiple regression analysis was utilized to examine whether the three-factor model of resilience and mindful self-care predicted flourishing in undergraduate students. Results Self-reported resilience significantly predicted flourishing. Specifically, a sense of mastery and a sense of relatedness was positively associated with flourishing. Additionally, mindful self-care significantly predicted flourishing. Specifically, supportive relationships and supportive structure. Conclusions University demands are significant and academic stress reduction interventions should be offered to support students entering post-secondary education.
C1 [McGuinness, Claire; Nordstokke, David] Univ Calgary, Werklund Sch Educ, 2500 Univ Ave, Calgary, AB T2N 1N4, Canada.
C3 University of Calgary
RP McGuinness, C (corresponding author), Univ Calgary, Werklund Sch Educ, 2500 Univ Ave, Calgary, AB T2N 1N4, Canada.
EM claire.mcguinness1@ucalgary.ca
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NR 64
TC 3
Z9 3
U1 7
U2 38
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0744-8481
EI 1940-3208
J9 J AM COLL HEALTH
JI J. Am. Coll. Health
PD OCT 13
PY 2023
VL 71
IS 8
BP 2569
EP 2577
DI 10.1080/07448481.2021.1978463
EA SEP 2021
PG 9
WC Education & Educational Research; Public, Environmental & Occupational
   Health
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Public, Environmental & Occupational
   Health
GA Y0VI4
UT WOS:000701494000001
PM 34591744
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Cucuzza, M
   Stoll, JS
   Leslie, HM
AF Cucuzza, Marina
   Stoll, Joshua S.
   Leslie, Heather M.
TI Comprehensive plans as tools for enhancing coastal community resilience
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article
DE coastal communities; community planning; comprehensive plans;
   social-ecological resilience
ID SOCIAL-ECOLOGICAL SYSTEMS; CLIMATE-CHANGE; SUSTAINABLE DEVELOPMENT;
   ADAPTATION; FRAMEWORK; VULNERABILITY; CAPACITY; STRATEGY
AB Planning for change is critical to ensuring resilient coastal communities. In Maine, USA, the comprehensive planning process provides a platform for communities to articulate policies that address social, economic, and environmental issues. While comprehensive plans were initially required of municipalities to address urban sprawl over thirty years ago, a broad range of challenges face coastal communities today. Here, we report on an assessment of 30 comprehensive plans from coastal communities across the state. We analyzed the degree to which plans incorporate principles of social-ecological resilience. Our results reveal significant variability across comprehensive plans, with some communities addressing key indicators of resilience and others engaging with them in a limited way. By more explicitly incorporating principles of social-ecological resilience, the next-generation of comprehensive plans can be repurposed to serve as tools for communities to implement strategies that build adaptive capacity as they face unprecedented challenges and plan for a changing world.
C1 [Cucuzza, Marina; Stoll, Joshua S.; Leslie, Heather M.] Univ Maine, Sch Marine Sci, Orono, ME 04469 USA.
   [Cucuzza, Marina; Leslie, Heather M.] Univ Maine, Darling Marine Ctr, Walpole, ME 04573 USA.
C3 University of Maine System; University of Maine Orono; University of
   Maine System; University of Maine Orono
RP Cucuzza, M (corresponding author), Univ Maine, Sch Marine Sci, Orono, ME 04469 USA.; Cucuzza, M (corresponding author), Univ Maine, Darling Marine Ctr, Walpole, ME 04573 USA.
EM marina.cucuzza@maine.edu
RI Leslie, Heather/B-4980-2014
OI Leslie, Heather/0000-0003-4512-9417; Cucuzza, Marina/0000-0001-9126-6514
FU NOAA Saltonstall-Kennedy Grant Program [NA17NMF4270198]; UMaine College
   of Natural Science, Forestry, and Agriculture; Maine Economic
   Improvement Fund; Maine Sea Grant; Lobster Institute, University of
   Maine
FX This work was supported by the NOAA Saltonstall-Kennedy Grant Program
   under Grant NA17NMF4270198. This work was additionally supported by the
   UMaine College of Natural Science, Forestry, and Agriculture, the Maine
   Economic Improvement Fund, Maine Sea Grant, and the Lobster Institute,
   University of Maine.
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NR 60
TC 12
Z9 20
U1 4
U2 38
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 SEP 18
PY 2020
VL 63
IS 11
BP 2022
EP 2041
DI 10.1080/09640568.2019.1700943
EA DEC 2019
PG 20
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA MI8NQ
UT WOS:000503950100001
DA 2025-04-22
ER

PT J
AU Yang, MX
   Zhai, GF
AF Yang, Muxi
   Zhai, Guofang
TI Measurement and Influencing Factors of Economic Resilience over a Long
   Duration of COVID-19: A Case Study of the Yangtze River Delta, China
SO LAND
LA English
DT Article
DE urban economic resilience; SARIMA time series model; performance curve;
   GWR model; Yangtze River Delta; COVID-19 pandemic
ID REGIONAL RESILIENCE; UNRELATED VARIETY; EUROPE; CRISIS
AB The COVID-19 pandemic put forward a new test for an economic resilience study. Its long-term and diffusive spatiotemporal characteristics suggest that we need to pay attention to the resilience and spatial heterogeneity of cities over a longer period. This paper applied SARIMA and the performance curve to measure the economic resilience of each city under the pandemic, and explored its influencing factors and spatial heterogeneity using a geodetector and geographically weighted regression model. The results show that: (1) From 2020 to 2022, the economic resilience in the Yangtze River Delta presented a downward to upward to slightly downward trend. High-resilience cities were concentrated in southern Jiangsu, while vulnerable cities were primarily located in western Anhui. The performance of regional core cities was not as strong as in previous research focusing on long-term economic resilience. (2) Fixed-asset investment, related variety, labor supply level, foreign trade dependence, and innovation level were the main influencing factors, on average. The effects of these factors had spatial heterogeneity related to the regional endowment and development quality. The findings suggest that the specificity of public health risks and the lack of coping experience may lead to a general failure of economic resilience. Identifying key factors and current weaknesses in each region can make resilience improvement strategies more targeted and effective.
C1 [Yang, Muxi; Zhai, Guofang] Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210093, Peoples R China.
C3 Nanjing University
RP Zhai, GF (corresponding author), Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210093, Peoples R China.
EM mg21360053@smail.nju.edu.cn; guofang_zhai@nju.edu.cn
RI Zhai, Guofang/JJD-3299-2023
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NR 70
TC 2
Z9 2
U1 8
U2 23
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD FEB
PY 2024
VL 13
IS 2
AR 175
DI 10.3390/land13020175
PG 22
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA JG9X2
UT WOS:001172141100001
OA gold
DA 2025-04-22
ER

PT J
AU Pascariu, GC
   Banica, A
   Nijkamp, P
AF Pascariu, Gabriela Carmen
   Banica, Alexandru
   Nijkamp, Peter
TI A Meta-Overview and Bibliometric Analysis of Resilience in Spatial
   Planning - the Relevance of Place-Based Approaches
SO APPLIED SPATIAL ANALYSIS AND POLICY
LA English
DT Article
DE Spatial; Territorial; Resilience; Planning; Place-based policies;
   Bibliometric; Citation link; Text mining
ID URBAN RESILIENCE; CLIMATE-CHANGE; CONNECTIVITY; LANDSCAPES; COMMUNITY;
   CONSERVATION; DISTURBANCE; INDICATORS; MANAGEMENT; NETWORKS
AB This study offers a literature review and bibliometric analysis aiming to enhance our understanding of the actual contribution of resilience approaches to spatial and territorial development and planning studies. Using citation link-based clustering and statistical text-mining techniques (in terms of prevalence of topics, over time, extraction of relevant terms, keywords frequencies), our study maps scientific domains that include the spatial dimension of resilience thinking. It offers a systematic assessment of modern approaches by connecting profoundly theoretical views to more instrumental and policy-oriented approaches. Firstly, the theoretical background of spatial resilience used in numerous studies in various fields is analysed from the viewpoint of the type of embedded resilience (engineering, ecological, social-ecological, economic, social etc.). Secondly, we review and discuss the significance of three main and consistent research directions in terms of different scales and political/institutional contexts that matter from the viewpoint of spatial and territorial planning. Our findings show that spatial resilience debates are far from being settled, as according to many scientists, resilience measurements are often based on technical-reductionist frameworks that cannot comprehensively reflect the complex systems and issues they address. Our conclusions highlight the necessity of a harmonized framework and integrated perspective on resilience in sustainable territorial planning and development, in both theoretical and empirical contexts.
C1 [Pascariu, Gabriela Carmen] Alexandru Ioan Cuza Univ, Fac Econ & Business Adm, Iasi, Romania.
   [Pascariu, Gabriela Carmen; Nijkamp, Peter] Alexandru Ioan Cuza Univ, Fac Law, Ctr European Studies, Iasi, Romania.
   [Banica, Alexandru] Alexandru Joan Cuza Univ Iasi, Fac Geog & Geol, Dept Geog, Iasi, Romania.
   [Banica, Alexandru] Romanian Acad, Geog Res Ctr, Iasi Branch, Iasi, Romania.
   [Nijkamp, Peter] Open Univ Netherlands OU, Heerlen, Netherlands.
   [Nijkamp, Peter] Polytech Univ UMP6, Ben Guerir, Morocco.
C3 Alexandru Ioan Cuza University; Alexandru Ioan Cuza University;
   Alexandru Ioan Cuza University; Romanian Academy; Mohammed VI
   Polytechnic University
RP Banica, A (corresponding author), Alexandru Joan Cuza Univ Iasi, Fac Geog & Geol, Dept Geog, Iasi, Romania.; Banica, A (corresponding author), Romanian Acad, Geog Res Ctr, Iasi Branch, Iasi, Romania.
EM alexandru.banica@uaic.ro
RI Pascariu, Gabriela/O-4976-2015; BANICA, Alexandru/A-4171-2018
OI BANICA, Alexandru/0000-0001-7781-342X; Nijkamp,
   Peter/0000-0002-4068-8132; Pascariu, Gabriela Carmen/0000-0002-8169-0124
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NR 117
TC 12
Z9 13
U1 4
U2 53
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1874-463X
EI 1874-4621
J9 APPL SPAT ANAL POLIC
JI Appl. Spat. Anal. Policy
PD SEP
PY 2023
VL 16
IS 3
SI SI
BP 1097
EP 1127
DI 10.1007/s12061-022-09449-z
EA APR 2022
PG 31
WC Environmental Studies; Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration
GA O2JN9
UT WOS:000785949500001
PM 35495415
OA Bronze, Green Published
DA 2025-04-22
ER

PT J
AU French, EL
   Birchall, SJ
   Landman, K
   Brown, RD
AF French, Emily L.
   Birchall, S. Jeff
   Landman, Karen
   Brown, Robert D.
TI Designing public open space to support seismic resilience: A systematic
   review
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Review
DE Earthquakes; Disaster prevention parks; Seismic resilience; Landscape
   architecture
ID URBAN FORM; EARTHQUAKE; RECONSTRUCTION; GUIDELINES; MANAGEMENT;
   MORPHOLOGY; SHELTER; CITIES
AB In the wake of major earthquakes public open spaces become hubs for both short-term disaster response efforts and support longer-term recovery needs. At present, few open spaces are actually designed to support these intermittent but critical uses. Currently, there is no consolidated body of knowledge or resource for landscape architects designing for areas of high seismic risk. This research identifies ways in which landscape architects and professionals within allied design disciplines can proactively plan and design open space to support seismic resilience. A systematic review of both grey literature and peer-reviewed academic papers was conducted. The results of the systematic review identified six key themes: Multifunctionality; networks; site location and suitability; size and function; site elements; and, social resilience. These themes contribute to developing a foundation for design disciplines to better incorporate seismic resilience into planning and design of public open spaces.
C1 [French, Emily L.; Landman, Karen] Univ Guelph, Sch Environm Design & Rural Dev, Landscape Architecture, 50 Stone Rd East, Guelph, ON N1G 2W1, Canada.
   [Birchall, S. Jeff] Univ Alberta, Dept Earth & Atmospher Sci, Urban & Reg Planning, 1-26 Earth Sci Bldg, Edmonton, AB T6G 2E3, Canada.
   [Brown, Robert D.] Texas A&M Univ, Landscape Architecture & Urban Planning, College Stn, TX 77843 USA.
C3 University of Guelph; University of Alberta; Texas A&M University
   System; Texas A&M University College Station
RP Birchall, SJ (corresponding author), Univ Alberta, Dept Earth & Atmospher Sci, Urban & Reg Planning, 1-26 Earth Sci Bldg, Edmonton, AB T6G 2E3, Canada.
EM jeff.birchall@ualberta.ca
RI Brown, Robert/HPG-5711-2023; Birchall, S Jeff/HOF-3329-2023
OI Birchall, S. Jeff/0000-0002-4508-6720; Brown, Robert/0000-0001-6955-910X
FU Landscape Architecture Canada Foundation grant
FX This research was kindly supported by a Landscape Architecture Canada
   Foundation grant.
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NR 72
TC 43
Z9 48
U1 12
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 MAR
PY 2019
VL 34
BP 1
EP 10
DI 10.1016/j.ijdrr.2018.11.001
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 HN2RJ
UT WOS:000460032200001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Kwak, Y
   Deal, B
   Mosey, G
AF Kwak, Yoonshin
   Deal, Brian
   Mosey, Grant
TI Landscape Design toward Urban Resilience: Bridging Science and Physical
   Design Coupling Sociohydrological Modeling and Design Process
SO SUSTAINABILITY
LA English
DT Article
DE landscape architecture; urban resilience; Geodesign; Planning Support
   Systems (PSSs); evidence-based design; design application
ID INTEGRATED LAND; GEODESIGN; SUPPORT; SYSTEMS; FRAMEWORK; SUSTAINABILITY;
   CONVERGENCE; CURRICULUM; PARADIGM; DYNAMICS
AB Given that evolving urban systems require ever more sophisticated and creative solutions to deal with uncertainty, designing for resilience in contemporary landscape architecture represents a cross-disciplinary endeavor. While there is a breadth of research on landscape resilience within the academy, the findings of this research are seldom making their way into physical practice. There are existent gaps between the objective, scientific method of scientists and the more intuitive qualitative language of designers and practitioners. The purpose of this paper is to help bridge these gaps and ultimately support an endemic process for more resilient landscape design creation. This paper proposes a framework that integrates analytic research (i.e., modeling and examination) and design creation (i.e., place-making) using processes that incorporate feedback to help adaptively achieve resilient design solutions. Concepts of Geodesign and Planning Support Systems (PSSs) are adapted as part of the framework to emphasize the importance of modeling, assessment, and quantification as part of processes for generating information useful to designers. This paper tests the suggested framework by conducting a pilot study using a coupled sociohydrological model. The relationships between runoff and associated design factors are examined. Questions on how analytic outcomes can be translated into information for landscape design are addressed along with some ideas on how key variables in the model can be translated into useful design information. The framework and pilot study support the notion that the creation of resilient communities would be greatly enhanced by having a navigable bridge between science and practice.
C1 [Kwak, Yoonshin; Deal, Brian] Univ Illinois, Dept Landscape Architecture, Champaign, IL 61820 USA.
   [Mosey, Grant] Univ Illinois, Sch Architecture, Champaign, IL 61820 USA.
C3 University of Illinois System; University of Illinois Urbana-Champaign;
   University of Illinois System; University of Illinois Urbana-Champaign
RP Kwak, Y (corresponding author), Univ Illinois, Dept Landscape Architecture, Champaign, IL 61820 USA.
EM yk23@illinois.edu; deal@illinois.edu; gmosey2@illinois.edu
OI Mosey, Grant/0000-0002-0169-6199; Kwak, Yoonshin/0000-0002-3132-3780;
   Deal, Brian/0000-0002-9981-5474
FU Water Resources Research Act annual base grants (104b) program through
   the Illinois Water Resources Center; United States Geological Survey
FX This research was funded in part under the provisions of section 104 of
   the Water Resources Research Act annual base grants (104b) program
   distributed through the Illinois Water Resources Center and United
   States Geological Survey.
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NR 81
TC 13
Z9 14
U1 4
U2 60
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY
PY 2021
VL 13
IS 9
AR 4666
DI 10.3390/su13094666
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 SC8RP
UT WOS:000650931100001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Jesse, BJ
   Kramer, GJ
   Koning, V
AF Jesse, Bernhard-Johannes
   Kramer, Gert Jan
   Koning, Vinzenz
TI Characterization of necessary elements for a definition of resilience
   for the energy system
SO ENERGY SUSTAINABILITY AND SOCIETY
LA English
DT Review
DE Energy system; Resilience; Definition; Engineering resilience;
   Ecological resilience; Adaptive resilience
ID NATIONAL ENERGY; POWER-PLANT; FRAMEWORK; URBAN; INFRASTRUCTURE;
   SECURITY; VULNERABILITY; ADAPTATION; CLIMATE; SUSTAINABILITY
AB BackgroundTo reduce the effects of climate change, the current fossil-based energy system must transition to a low-carbon system based largely on renewables. In both academic literature and non-academic discourse concerning the energy transition, resilience is frequently mentioned as an additional objective or requirement. Despite its frequent use, resilience is a very malleable term with different meanings in different contexts.Main textThis paper seeks to identify how resilience is understood in the field of the energy system and whether there are similar aspects in the different ways the term is understood. To this end, we review more than 130 papers for definitions of energy system resilience. In addition, we use different aspects to categorize and examine these. The results paint a diverse picture in terms of the definition and understanding of resilience in the energy system. However, a few definition archetypes can be identified. The first uses a straightforward approach, in which the energy system has one clearly defined equilibrium state. Here, resilience is defined in relation to the response of the energy system to a disturbance and its ability to quickly return to its equilibrium. The second type of resilience allows for different equilibriums, to which a resilient energy system can move after a disruption. Another type of resilience focuses more on the process and the actions of the system in response to disruption. Here, resilience is defined as the ability of the system to adapt and change. In the papers reviewed, we find that the operational definition of resilience often encompasses aspects of different archetypes. This diversity shows that resilience is a versatile concept with different elements.ConclusionsWith this paper, we aim to provide insight into how the understanding of resilience for the energy system differs depending on which aspect of the energy system is studied, and which elements might be necessary for different understandings of resilience. We conclude by providing information and recommendations on the potential usage of the term energy system resilience based on our lessons learned.
C1 [Jesse, Bernhard-Johannes] Forschungszentrum Julich, Inst Climate & Energy Syst Julich Syst Anal ICE 2, Wilhelm Johnen Str, D-52425 Julich, Germany.
   [Jesse, Bernhard-Johannes; Kramer, Gert Jan; Koning, Vinzenz] Univ Utrecht, Copernicus Inst Sustainable Dev, POB 80-115, NL-3508 TC Utrecht, Netherlands.
   [Koning, Vinzenz] Univ Utrecht, Ctr Complex Syst Studies, Minnaertgebouw,Leuvenlaan 4, NL-3584 CE Utrecht, Netherlands.
C3 Helmholtz Association; Research Center Julich; Utrecht University;
   Utrecht University
RP Jesse, BJ (corresponding author), Forschungszentrum Julich, Inst Climate & Energy Syst Julich Syst Anal ICE 2, Wilhelm Johnen Str, D-52425 Julich, Germany.; Jesse, BJ (corresponding author), Univ Utrecht, Copernicus Inst Sustainable Dev, POB 80-115, NL-3508 TC Utrecht, Netherlands.
EM b.jesse@fz-juelich.de
RI Jesse, Bernhard-Johannes/KGE-5992-2024
OI Koning, Vinzenz/0000-0003-4044-2842; Jesse,
   Bernhard-Johannes/0000-0003-2633-3279
FU Deutsche Forschungsgemeinschaft
FX Thomas Brooks proofread the final manuscript.
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NR 172
TC 0
Z9 0
U1 37
U2 44
PU BMC
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON N1 9XW, ENGLAND
SN 2192-0567
J9 ENERGY SUSTAIN SOC
JI Energy Sustain. Soc.
PD JUL 30
PY 2024
VL 14
IS 1
AR 46
DI 10.1186/s13705-024-00478-9
PG 14
WC Green & Sustainable Science & Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Energy & Fuels
GA A2M6P
UT WOS:001280926400001
OA gold
DA 2025-04-22
ER

PT J
AU Feng, C
   Wu, JJ
   Du, J
AF Feng, Chao
   Wu, Jingjie
   Du, Juan
TI Construction and Evaluation of a Safe Community Evaluation Index
   System-A Study of Urban China
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE urban public safety; safe community; sustainable development; disaster
   prevention and mitigation; risk factors
ID DISASTER RESILIENCE; FRAMEWORK; VULNERABILITY; ADAPTATION
AB A community is the basic unit of a city. Scientific and effective evaluations of the construction effect of safe communities can improve the construction capacity of community disaster prevention and mitigation; it is also the basis for improving urban public safety and realizing stable and sustainable urban operation. First, following the development framework of a safe community and taking two typical communities in Xi'an, China, as examples, based on the literature and expert opinions, the initial indicators of a safe community are determined. Second, based on existing data, the literature and expert opinions, a questionnaire is designed, and the reliability and validity of the questionnaire are tested by exploratory factor analysis. Third, the indicators for evaluating the construction ability of a safe community are selected. Finally, an evaluation model of the construction ability of safe communities is constructed by using the comprehensive weighting technique for order of preference by similarity to the ideal solution (TOPSIS), which is applied to the actual evaluation of eighteen representative communities in Xi'an. The main findings are as follows. (1) The sense of community security is the collective consciousness of community residents. It includes not only the security and feelings of community residents themselves, but also the cognition of the impact of social policies at the macro and micro-levels on community residents, their families, and even the whole community. (2) From the three levels of consciousness, technology, and policy as the starting points for the construction of the theoretical model of a safe community, organizational resilience, accessibility resilience, social environmental resilience, and capital resilience are found to be the main influencing factors in the construction of a safe community. (3) Using questionnaires and expert interviews to preliminarily screen evaluation indicators and using the comprehensive weighting TOPSIS method to build an evaluation model can effectively avoid the defects of traditional empirical research on the validity and reliability of methods. (4) The ranking of the eighteen representative communities in the empirical analysis is basically consistent with the selection results of the national comprehensive disaster reduction demonstration community, which indicates the effectiveness and accuracy of the indicators and algorithms.
C1 [Feng, Chao] Northwest Univ, Sch Publ Adm, Xian 710127, Peoples R China.
   [Wu, Jingjie] Northwest Univ Polit Sci & Law, Sch Econ, Xian 710063, Peoples R China.
   [Du, Juan] Northwestern Polytech Univ, Sch Management, Xian 710072, Peoples R China.
C3 Northwest University Xi'an; Northwest University of Political Science &
   Law; Northwestern Polytechnical University
RP Feng, C (corresponding author), Northwest Univ, Sch Publ Adm, Xian 710127, Peoples R China.
EM 20185283@nwu.edu.cn
RI Wu, Jingjie/G-8274-2016
FU China Postdoctoral Science Foundation [2020M673462]; Social Science
   Foundation of Shaanxi Province [2021R028]; Incubation program of
   national social science fund of Northwestern University [2019XNFH009];
   Shaanxi Provincial Education Department Youth Innovation Team Project
   [19JK0833]; Shaanxi soft science research program-General Projects
   [2021KRM170]
FX This research was funded by China Postdoctoral Science Foundation:
   Research on Community Resilience Evaluation, Forecast and Disaster
   Reduction Strategy from the Perspective of Security (grant number:
   2020M673462); Social Science Foundation of Shaanxi Province: Research on
   evaluation, prediction and disaster reduction strategy of urban
   resilience in Shaanxi Province from the perspective of security (grant
   number: 2021R028); Incubation program of national social science fund of
   Northwestern University: Research on the construction of big data driven
   emergency collaborative governance model (grant number: 2019XNFH009);
   Shaanxi Provincial Education Department Youth Innovation Team Project:
   Research on the construction of big data driven emergency collaborative
   governance model (grant number: 19JK0833); and Shaanxi soft science
   research program-General Projects: Research on media communication
   strategy of public emergencies in Shaanxi Province from the perspective
   of dual network linkage (grant number: 2021KRM170).
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NR 52
TC 7
Z9 7
U1 17
U2 93
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 2022
VL 19
IS 17
AR 10607
DI 10.3390/ijerph191710607
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 4J2GZ
UT WOS:000851088500001
PM 36078323
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Handayani, W
   Fisher, MR
   Rudiarto, I
   Setyono, JS
   Foley, D
AF Handayani, Wiwandari
   Fisher, Micah R.
   Rudiarto, Iwan
   Setyono, Jawoto Sih
   Foley, Dolores
TI Operationalizing resilience: A content analysis of flood disaster
   planning in two coastal cities in Central Java, Indonesia
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Resilience; Operationalizing resilience; Flood; Disaster risk reduction;
   Central Java
ID CLIMATE-CHANGE ADAPTATION; BUILDING RESILIENCE; URBAN RESILIENCE; CITY;
   RISK; EXPERIENCES; STRATEGIES; POLICIES; SYSTEMS; PLANS
AB Global concern has sought to connect resilience with the field of disaster risk reduction, which was prominent in the Hyogo Framework for Action (2005-2015) and updated in the Sendai Framework for Disaster Risk Reduction (2015-2030). However, defining disaster risk reduction and resilience as policy goals geared towards reducing vulnerability and minimizing risk requires a closer examination. This research examines operationalization of resilience in programs and budgets of development plans in Indonesian cities. This paper investigates the documentation of planning policies in the Indonesian context, examining National to local level efforts. The research specifically analyzes case studies at two cities, Semarang and Tegal, and highlights how these sites have accommodated the term resilience to address flooding. The scope of the research focuses on flooding as it is the most commonly experienced hazard across Indonesia. Content analysis is applied to assess identified planning documents. The content analysis is further verified through focus group discussions among key stakeholders. Findings indicate that there are fourteen areas of plans/programs in terms of reduced exposure to hazards, lessened vulnerability of people and property, improved management of land and the environment, and improved preparedness to address flooding in the two selected cities. The elaboration of resilience-related programmes provides important lessons, namely that operationalizing resilience should be integrative and comprehensive, and require both short-term actionable initiative(s) and long-term transformative frameworks.
C1 [Handayani, Wiwandari; Rudiarto, Iwan; Setyono, Jawoto Sih] Diponegoro Univ, Dept Urban & Reg Planning, Semarang 50275, Indonesia.
   [Fisher, Micah R.; Foley, Dolores] Univ Hawaii Manoa, Dept Urban & Reg Planning, Honolulu, HI 96822 USA.
C3 Diponegoro University; University of Hawaii System; University of Hawaii
   Manoa
RP Handayani, W (corresponding author), Diponegoro Univ, Dept Urban & Reg Planning, Semarang 50275, Indonesia.
EM wiwandari.handayani@pwk.undip.ac.id; micahrf@hawaii.edu;
   iwan.rudiarto@undip.ac.id; jawoto@pwk.undip.ac.id; dolores@hawaii.edu
RI handayani, wiwandari/C-3540-2016; Fisher, Micah/Z-1124-2019; RUDIARTO,
   IWAN/AAB-8397-2021
OI Fisher, Micah/0000-0002-8246-2318; RUDIARTO, IWAN/0000-0002-5724-8053
FU Diponegoro University; Ministry of Research and Technology Indonesia
FX We would like to express our gratitude to Diponegoro University and the
   Director General of Higher Education, Ministry of Research and
   Technology Indonesia for funding this research. We would also like to
   thank the government of Semarang and Tegal for the data and shared
   information they provided during the survey period.
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NR 41
TC 35
Z9 35
U1 6
U2 47
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
PY 2019
VL 35
AR 101073
DI 10.1016/j.ijdrr.2019.101073
PG 11
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 HR3JW
UT WOS:000463034000014
DA 2025-04-22
ER

PT J
AU Hu, QF
   Zhang, Q
   Liu, W
   Wang, F
   Che, DL
   Ma, MX
AF Hu, Qunfang
   Zhang, Qiang
   Liu, Wen
   Wang, Fei
   Che, Delu
   Ma, Miaoxi
TI Mitigation of urban road collapses based on machine learning via
   integrating susceptibility assessment and geophysical detection
   validation
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Urban road collapse; Susceptibility assessment; Machine learning;
   Underground disease detection; Road disaster resilience
ID GROUND DEFORMATION; COVER-COLLAPSE; EROSION; MODEL; MECHANISM; COUNTY;
   SOIL
AB Road collapse is a frequent and damaging disaster in cities. The complexity and uncertainty inherent in urban environments pose significant challenges to mitigating road collapses. This paper presents a novel framework integrating machine learning-based susceptibility assessment and geophysical detection validation for urban road collapse risk reduction. Three oversampling techniques, random oversampling, synthetic minority oversampling technique for nominal and continuous features (SMOTENC), and adaptive synthetic sampling (ADASYN), are first utilized to implement data augmentation on urban road collapse accident samples. Subsequently, three machine learning models, support vector machine (SVM), random forest (RF), and extreme gradient boosting (XGBoost), are developed to evaluate road collapse susceptibility by extracting collapseinducing patterns from historical accident data. Particularly, on-site geophysical hazard detection is conducted to validate the assessment results. The results demonstrate that XGBoost with SMOTENC achieves satisfactory performance in identifying road collapses with accuracy (0.9608) and AUC (0.9796). The spatial distribution of road collapse susceptibility in Shanghai central area follows a high-moderate-low pattern from northwest to southeast. The geophysical detection reveals a correlation between higher road collapse susceptibility and increased severity of underground diseases, validating the generalization capacity of XGBoost in actual operational environments. Additionally, the structural problems of underground pipelines are identified as the most influential factors for urban road collapse. This research offers valuable insights for urban road collapse mitigation and resilience improvement of transportation infrastructure.
C1 [Hu, Qunfang; Zhang, Qiang; Ma, Miaoxi] Tongji Univ, Urban Mobil Inst, Shanghai 200092, Peoples R China.
   [Hu, Qunfang; Wang, Fei] Tongji Univ, Shanghai Inst Disaster Prevent & Relief, Shanghai 200092, Peoples R China.
   [Hu, Qunfang; Wang, Fei] Minist Emergency Management, Key Lab Urban Safety Risk Monitoring & Early Warni, Shanghai 200092, Peoples R China.
   [Liu, Wen] Dev Ctr Shanghai Rd & Transportat, Shanghai 200092, Peoples R China.
   [Che, Delu] Tongji Univ, Coll Civil Engn, Shanghai 200092, Peoples R China.
C3 Tongji University; Tongji University; Tongji University
RP Zhang, Q (corresponding author), Tongji Univ, Urban Mobil Inst, Shanghai 200092, Peoples R China.
EM zhangqiang917@tongji.edu.cn
RI 王, 飞/HLX-5462-2023; hu, qunfang/JWP-7228-2024; Che, Delu/HDO-3676-2022
OI hu, qunfang/0000-0002-2997-826X; Wang, Fei/0000-0001-9157-1551; Zhang,
   Qiang/0009-0008-7549-9359
FU National Key Research and Development Program of China [2022YFC3801000];
   Shanghai Science and Technology Innovation Action Plan Project
   [22dz1201200, 22dz1200402]
FX The support from National Key Research and Development Program of China
   (Grant No. 2022YFC3801000) and Shanghai Science and Technology
   Innovation Action Plan Project (No. 22dz1201200 and No. 22dz1200402) is
   greatly appreciated.
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NR 78
TC 2
Z9 2
U1 41
U2 53
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 2024
VL 111
AR 104667
DI 10.1016/j.ijdrr.2024.104667
EA JUL 2024
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 ZB7S2
UT WOS:001272901700001
DA 2025-04-22
ER

PT J
AU de Andrés, EA
   Cabrera, C
   Smith, H
AF Alvarez de Andres, Eva
   Cabrera, Cecilia
   Smith, Harry
TI Resistance as resilience: A comparative analysis of state-community
   conflicts around self-built housing in Spain, Senegal and Argentina
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Urban governance; Resilience; Resistance; Social mobilisation; Conflict;
   Right to the city
ID EVICTIONS
AB Since the 2007/08 financial crisis and during the ensuing period of austerity, government agencies and 'conventional' markets have shown little interest in meeting low-income housing demand. Land and housing are increasingly commodified and financialised, and 'formal' access to housing has become unaffordable to ever larger sectors of the population. Those excluded from formal systems continue to provide themselves with land and housing via alternative means, as has been documented for over five decades. This phenomenon has intensified in some places and reappeared in others. Despite international agreements and exhortations to recognise the urban poor's efforts to house themselves, which now also promote the notion of urban and community resilience, government agencies continue to criminalise and quash such initiatives, thus contributing to inequality. This paper aims to examine and illustrate the type of bottom-up housing process and official response that is taking place around the wold, with a focus on the role of two key actors: state and community. It adopts a transformative interpretation of urban resilience based on making the concept of resistance central to this, in order to reflect the realities and priorities of low-income and vulnerable settlements. This 'resistance as resilience' is explored in three self-built settlements by examining Giddens's structuring types of relation: allocative structures, authoritative structures and systems of meaning. These case studies are located in national contexts with different income levels: Las Sabinas in Spain (recent settlement in a high-income country); Guinaw Rails Nord in Senegal (medium-term settlement in a low-income country), Villa 31 in Argentina (long-standing settlement in a middle-income country). The case studies show how communities in all three cases have been the most active and effective in creating settlements that meet their needs in an integrated way, while government agencies have implemented policies of exclusion and abandonment. The case studies highlight that communities do not operate on a level playing field, but their actions can bring about changes in the types of relation identified by Giddens. So-called 'informality' thus becomes a political question, related to the position of low-income communities within their political economy and social structure, and their relationship with power structures.
C1 [Alvarez de Andres, Eva] Univ Politecn Madrid, Escuela Tecn Super Arquitectura, Ave Juan de Herrera 4, E-28040 Madrid, Spain.
   [Cabrera, Cecilia] Univ Buenos Aires, Inst Super Urbanismo Terr & Ambiente, Fac Arquitectura Diseno & Urbanismo, Ciudad Univ Pabellon 3 Piso 4, RA-1428 Buenos Aires, DF, Argentina.
   [Smith, Harry] Heriot Watt Univ, Sch Energy Geosci Infrastruct & Soc, Urban Inst, Ctr Environm & Human Settlements, Edinburgh EH14 4AS, Midlothian, Scotland.
C3 Universidad Politecnica de Madrid; University of Buenos Aires; Heriot
   Watt University
RP de Andrés, EA (corresponding author), Univ Politecn Madrid, Escuela Tecn Super Arquitectura, Ave Juan de Herrera 4, E-28040 Madrid, Spain.
EM eva.alvarez@upm.es; ceciliac1@yahoo.com; h.c.smith@hw.ac.uk
OI Cabrera, Cecilia/0000-0001-5314-5703; Alvarez de Andres,
   Eva/0000-0002-7370-7053; Smith, Harry/0000-0003-0922-5575
CR Alguacil, 2013, VIVIENDA ESPANA SIGL
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NR 56
TC 13
Z9 17
U1 1
U2 34
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 2019
VL 86
BP 116
EP 125
DI 10.1016/j.habitatint.2019.03.003
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 HV8SO
UT WOS:000466254100012
DA 2025-04-22
ER

PT J
AU Ahmed, F
   Moors, E
   Khan, MSA
   Warner, J
   van Scheltinga, CT
AF Ahmed, Farhana
   Moors, Eddy
   Khan, M. Shah Alam
   Warner, Jeroen
   van Scheltinga, Catharien Terwisscha
TI Tipping points in adaptation to urban flooding under climate change and
   urban growth: The case of the Dhaka megacity
SO LAND USE POLICY
LA English
DT Article
DE Urban growth; Climate change, land use; Flood; Planning; Adaptation
ID RESILIENCE; AREAS; SIDE; CITY
AB Envisioning the future city as the outcome of planned development, several master and strategic plans for Dhaka were prepared. However, these plans, do not adequately address the well-known and combined effects of climate change and unplanned urbanization on urban flooding. Additionally, the spatial planning component is missing in adaptation planning, which broadly concentrates on the climate change. Long-term adaptation strategies should consider both the temporal and spatial extent of flooding. Uncertainties in climate change and urbanization will induce planning failure beyond the Adaptation Tipping Point for flooding exceeding the thresholds of the bio-physical system or the acceptable limits of societal preference. In this paper, a shift is proposed from the current planning practice of single-dimensional Predict and Act' towards a more resilience-based `Monitor and Adapt' approach. It is prudent to visualize the effects of urbanization and climate change and translate them into strategies for improved adaptation based spatial planning. Here, Dhaka's exposure to floods under different climate change and urban (planned and unplanned) development scenarios is assessed based on acceptable thresholds obtained from plans (top-down defined) and stakeholders (bottom-up perspectives). The scale of effects of these two drivers on urban flooding is exhibited through the zone differentiated flooding extent. While apparently the effect of climate change on flooding is greater than that of unplanned urban developments, both play an important role in instigating tipping points and intensifying risks.
C1 [Ahmed, Farhana] Vrije Univ Amsterdam, Amsterdam, Netherlands.
   [Ahmed, Farhana] CEGIS, House 6,Rd 23-C,Gulshan 1, Dhaka 1212, Bangladesh.
   [Moors, Eddy] Vrije Univ Amsterdam, Water & Climate, Amsterdam, Netherlands.
   [Moors, Eddy] Rector, IHE Delft Inst Water Educ, Delft, Netherlands.
   [Khan, M. Shah Alam] BUET, Inst Water & Flood Management, Dhaka 1000, Bangladesh.
   [Warner, Jeroen] WUR, Disaster Studies, Social Sci Grp, Wageningen, Netherlands.
   [van Scheltinga, Catharien Terwisscha] Wageningen Univ, Climate Change & Adapt Land & Water Management, Alterra, Wageningen, Netherlands.
   [Moors, Eddy] IHE Delft, Westvest 7, NL-2611 AX Delft, Netherlands.
   [Warner, Jeroen] Hollandseweg 1, NL-6706 KN Wageningen, Netherlands.
   [van Scheltinga, Catharien Terwisscha] Bldg 100,Droevendaalsesteeg 3, NL-6708 PB Wageningen, Netherlands.
C3 Vrije Universiteit Amsterdam; Vrije Universiteit Amsterdam; IHE Delft
   Institute for Water Education; Bangladesh University of Engineering &
   Technology (BUET); Wageningen University & Research; Wageningen
   University & Research; IHE Delft Institute for Water Education
RP Ahmed, F (corresponding author), Vrije Univ Amsterdam, Amsterdam, Netherlands.
EM fahmed@cegisbd.com; e.j.moors@vu.nl; msalamidian@iwfm.buet.ac.bd;
   jeroen.warner@wur.nl; catharien.terwisscha@wur.nl
OI Terwisscha van Scheltinga, Catharien/0000-0002-1590-9941
FU NWO-WOTRO grant [W 01.65.339.00]
FX Funding for this research was provided under NWO-WOTRO grant W
   01.65.339.00 for the Integrated Programme "Communities and institutions
   for flood resilience: enhancing knowledge and capacity to manage flood
   risk in the Bangladeshi and Dutch Deltas". I am extremely grateful to
   Wageningen University and Research specially the Climate Change and
   Adaptive Land and Water Management division, Alterra, the Netherlands
   and also to Center for Environmental and Geographic Information Services
   (CEGIS), Dhaka, Bangladesh for providing the necessary support to
   conduct this research. We are grateful to the editors for their
   constructive feedback and insightful suggestions which greatly improved
   this article. The assistance provided by Tamim Al Hossain, Saniruzzaman,
   Zulfiqar Rahman and Farhana Noor in developing the river and storm water
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TC 34
Z9 38
U1 3
U2 52
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
PY 2018
VL 79
BP 496
EP 506
DI 10.1016/j.landusepol.2018.05.051
PG 11
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HF6WK
UT WOS:000454378800045
OA Green Published
DA 2025-04-22
ER

PT J
AU Sen, MK
   Dutta, S
AF Sen, Mrinal Kanti
   Dutta, Subhrajit
TI An Integrated GIS-BBN Approach to Quantify Resilience of Roadways
   Network Infrastructure System against Flood Hazard
SO ASCE-ASME JOURNAL OF RISK AND UNCERTAINTY IN ENGINEERING SYSTEMS PART
   A-CIVIL ENGINEERING
LA English
DT Article
DE Infrastructure resilience; Network infrastructure; Natural hazard;
   Flood; Bayesian belief network; Geographic information system
ID BAYESIAN BELIEF NETWORK; URBAN RESILIENCE; COMMUNITY; FRAMEWORK; RISK;
   QUANTIFICATION; UNCERTAINTY; MODEL
AB Infrastructure resilience is defined as the ability of a system to withstand and recover from the effects of natural or man-made hazards. For any community, quantifying its sociophysical infrastructure resilience during and after any disruptive event is important for planners, designers, and decision-makers. However, a global approach for resilience quantification becomes challenging due to the fact that infrastructure systems' performance varies from location to location and the recovery process is also complex and region-specific. In this work, an integrated Geographic Information System (GIS)-Bayesian Belief Network (BBN) framework is developed to model and quantify the resilience (vulnerability and recovery) of network infrastructure systems against flood hazards. To this end, a simple case study is demonstrated for quantifying flood resilience of a roadway network in a community in northeast India. Data collection is done using a GIS platform and a probabilistic graphical model (BBN model) is used to model uncertainties in resilience quantification based on the available data and judgments. The main contributions of the proposed resilience model are: (1) the model can provide more accurate and realistic estimates based on beliefs; (2) the model can be updated as and when more data is available; and (3) sensitivity analysis of the validated road network resilience model to facilitate risk-informed decision-making against future flood disaster. (c) 2020 American Society of Civil Engineers.
C1 [Sen, Mrinal Kanti; Dutta, Subhrajit] Natl Inst Technol Silchar, Dept Civil Engn, Silchar 788010, Assam, India.
C3 National Institute of Technology (NIT System); National Institute of
   Technology Silchar
RP Dutta, S (corresponding author), Natl Inst Technol Silchar, Dept Civil Engn, Silchar 788010, Assam, India.
EM mksen88@gmail.com; subhrajit.nits@gmail.com
RI SEN, MRINAL KANTI/AAV-9991-2021; Dutta, Subhrajit/N-6525-2016
OI Dutta, Subhrajit/0000-0001-8877-0840; SEN, MRINAL
   KANTI/0000-0003-0364-7726
FU ministry of human resource and development, Government of India
FX The first author (MKS) acknowledges the students' scholarship received
   from ministry of human resource and development, Government of India.
   The second author (SD) acknowledge Siddhartha Ghosh, Professor,
   Department of Civil Engineering, IIT Bombay for encouraging discussion
   related to infrastructure resilience during the initial stages of this
   work. Both the authors gratefully acknowledge Golam Kabir, Assistant
   Professor, Faculty of Engineering and Applied Sciences, University of
   Regina, Canada for the valuable discussion on sensitivity analysis and
   model validation.
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NR 69
TC 17
Z9 17
U1 9
U2 70
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 2376-7642
J9 ASCE-ASME J RISK U A
JI ASCE-ASME J. Risk. Uncertain. Eng. Syst. Part A.-Civ. Eng.
PD DEC
PY 2020
VL 6
IS 4
AR 04020045
DI 10.1061/AJRUA6.0001088
PG 14
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA QH9UR
UT WOS:000618621500006
DA 2025-04-22
ER

PT J
AU Wu, JJ
   Yang, RF
   Zhao, P
   Yang, LX
AF Wu, Junjie
   Yang, Renfu
   Zhao, Peng
   Yang, Luxia
TI Computer-aided mobility solutions: Machine learning innovations to
   secure smart urban transportation
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Smart urban transportation; Machine learning; Intrusion detection system
   (IDS); Electric vehicle (EV) charging; Explainable AI (XAI); Dynamic
   adaptability
AB This study introduces a groundbreaking hybrid deep learning Intrusion Detection System (IDS) tailored to improve the security of Electric Vehicle (EV) charging processes in the context of computer-aided mobility solutions for smart urban transportation. The proposed system ingeniously integrates XGBoost and Convolutional Neural Network (CNN) technologies, leveraging their combined strengths to fortify the resilience of EV charging infrastructure. In response to the demand for transparency in decision-making, our approach incorporates Explainable AI Techniques, specifically employing Shapley Additive exPlanations (SHAP) values. This not only enables the IDS to identify anomalous behavior but also provides clear insights into the features influencing the detection process. The transparency achieved is pivotal for fostering stakeholder trust, ensuring regulatory compliance, and facilitating well-informed decision-making within the dynamic landscape of smart urban transportation. A sophisticated mechanism is implemented to enable the model to autonomously adjust and learn from evolving charging patterns over time. This adaptive capability ensures the IDS remains effective in the face of changing charging behaviors, contributing to the resilience of the overall smart urban transportation system. This research not only propels the field of cybersecurity in smart urban transportation but also establishes a robust framework for the development of intelligent systems. These systems play a critical role in securing essential processes while providing interpretable insights for stakeholders in the realm of computer-aided mobility solutions.
C1 [Wu, Junjie; Yang, Renfu; Zhao, Peng; Yang, Luxia] Taiyuan Normal Univ, Sch Comp Sci & Technol, Taiyuan 030619, Shanxi, Peoples R China.
C3 Taiyuan Normal University
RP Zhao, P (corresponding author), Taiyuan Normal Univ, Sch Comp Sci & Technol, Taiyuan 030619, Shanxi, Peoples R China.
EM wujunjie@tynu.edu.cn; yrf13623485785@163.com; zhaopengtynu@126.com;
   yangluxia@tynu.edu.cn
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NR 25
TC 0
Z9 0
U1 19
U2 27
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 15
PY 2024
VL 107
AR 105422
DI 10.1016/j.scs.2024.105422
EA APR 2024
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 RV0Z5
UT WOS:001230331000001
DA 2025-04-22
ER

PT J
AU Banzhaf, E
   Anderson, S
   Grandin, G
   Hardiman, R
   Jensen, A
   Jones, L
   Knopp, J
   Levin, G
   Russel, D
   Wu, WB
   Yang, J
   Zandersen, M
AF Banzhaf, Ellen
   Anderson, Sally
   Grandin, Gwendoline
   Hardiman, Richard
   Jensen, Anne
   Jones, Laurence
   Knopp, Julius
   Levin, Gregor
   Russel, Duncan
   Wu, Wanben
   Yang, Jun
   Zandersen, Marianne
TI Urban-Rural Dependencies and Opportunities to Design Nature-Based
   Solutions for Resilience in Europe and China
SO LAND
LA English
DT Article
DE nature-based solutions (NBS); green infrastructure; urban planning;
   airshed; watershed; natureshed; peopleshed; rural-urban fringe; social
   and biophysical scales
ID LAND-USE; CLIMATE-CHANGE; WATER-QUALITY; AFFORESTATION; URBANIZATION;
   ADAPTATION; MANAGEMENT; DISCOURSES; STRUGGLES; LANDSCAPE
AB Interrelationships between urban and rural areas are fundamental for the development and safeguarding of viable future living conditions and quality of life. These areas are not well-delineated or self-sufficient, and existing interrelations may privilege one over the other. Major urban challenges facing China and Europe are related to changes in climate, environment, and to decision-making that makes urban and rural landscapes more susceptible to environmental pressures. Focusing on the six European and Chinese cities and surrounding rural areas, under study in the joint EC and MOST-funded REGREEN project, we examine how nature-based solutions (NBS) may assist in counteracting these pressures. We explore urban-rural dependencies and partnerships regarding NBS that can enhance resilience in Europe and China. We analyse differences between European and Chinese systems of governance, reflecting on the significance of the scale of research needed to understand how NBS provide benefits. We highlight interactions between differently delineated sheds (watershed, airshed, natureshed, and peopleshed), which influence the interrelationships between urban and rural areas. There may be one-way or two-way interdependence, and the impact may be uni or multi-directional. The European and Chinese solutions, exemplified in this article, tackle the nexus of environmental and peoplesheds. We discuss complex human interactions (and how to model them) that may, or may not, lead to viable and equitable partnerships for implementing NBS in cities within Europe and in China.
C1 [Banzhaf, Ellen; Knopp, Julius; Wu, Wanben] UFZ Helmholtz Ctr Environm Res, Dept Urban & Environm Sociol, D-04318 Leipzig, Germany.
   [Anderson, Sally] Aarhus Univ, Danish Sch Educ, Dept Educ Anthropol, DK-2400 Copenhagen, Denmark.
   [Grandin, Gwendoline] Paris Reg Inst, Paris Reg Biodivers Agcy, F-75740 Paris 15, France.
   [Hardiman, Richard] Hebrew Univ Jerusalem, Fac Humanities, Dept Asian Studies, IL-9190401 Jerusalem, Israel.
   [Jensen, Anne; Levin, Gregor] Aarhus Univ, Dept Environm Sci, DK-4000 Roskilde, Denmark.
   [Jones, Laurence] UK Ctr Ecol & Hydrol, Environm Ctr Wales, Deiniol Rd, Bangor LL57 2UW, Gwynedd, Wales.
   [Russel, Duncan] Univ Exeter, Dept Polit, Exeter EX4 4QG, Devon, England.
   [Wu, Wanben] Fudan Univ, Shanghai Inst EcoChongming SIEC, Coastal Ecosyst Res Stn Yangtze River Estuary, Minist Educ,Key Lab Biodivers Sci & Ecol Engn, Shanghai 200433, Peoples R China.
   [Yang, Jun] Tsinghua Univ, Inst Global Change Studies, Dept Earth Syst Sci, Minist Educ,Key Lab Earth Syst Modeling, Beijing 100084, Peoples R China.
   [Zandersen, Marianne] Aarhus Univ, Dept Environm Sci, DK-4000 Roskilde, Denmark.
   [Zandersen, Marianne] Aarhus Univ, Interdisciplinary Ctr Climate Change iCLIMATE, DK-4000 Roskilde, Denmark.
C3 Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Aarhus University; Hebrew University of Jerusalem; Aarhus
   University; UK Centre for Ecology & Hydrology (UKCEH); University of
   Exeter; Fudan University; Tsinghua University; Aarhus University; Aarhus
   University
RP Banzhaf, E (corresponding author), UFZ Helmholtz Ctr Environm Res, Dept Urban & Environm Sociol, D-04318 Leipzig, Germany.
EM ellen.banzhaf@ufz.de; saan@edu.au.dk;
   gwendoline.grandin@institutparisregion.fr;
   richard.hardiman@mail.huji.ac.il; aj@envs.au.dk; lj@ceh.ac.uk;
   julius.knopp@ufz.de; gl@envs.au.dk; d.j.russel@exeter.ac.uk;
   19110700121@fudan.edu.cn; larix@tsinghua.edu.cn; mz@envs.au.dk
RI Zandersen, Marianne/AAF-1323-2020; Reimer Jensen, Anne
   Marie/JVN-4083-2024; Jones, Laurence/A-3900-2011; Yang,
   Jun/KHW-4756-2024
OI Russel, Duncan/0000-0003-3843-7892; Jensen, Anne/0000-0001-8311-8693;
   Jones, Laurence/0000-0002-4379-9006; Yang, Jun/0000-0003-0824-749X;
   Zandersen, Marianne/0000-0002-3827-3990; Levin,
   Gregor/0000-0002-5223-914X; Knopp, Julius Matthias/0000-0002-3474-6367;
   Wu, Wanben/0000-0002-0581-9774; Banzhaf, Ellen/0000-0002-4740-1202
FU European Commission [821016]; National Key R&D Program Intergovernmental
   Cooperation in International Science and Technology Innovation from
   Ministry of Science and Technology of China [2021YFE93100]
FX This research was funded by the European Commission, Horizon 2020
   programme, grant number 821016, and the National Key R&D Program
   Intergovernmental Cooperation in International Science and Technology
   Innovation from Ministry of Science and Technology of China (Grant no.
   2021YFE93100).
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NR 94
TC 15
Z9 17
U1 11
U2 66
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD APR
PY 2022
VL 11
IS 4
AR 480
DI 10.3390/land11040480
PG 25
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 0Q9MI
UT WOS:000785232800001
OA Green Published, gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Carreiro, MM
   Zipperer, WC
AF Carreiro, Margaret M.
   Zipperer, Wayne C.
TI Co-adapting societal and ecological interactions following large
   disturbances in urban park woodlands
SO AUSTRAL ECOLOGY
LA English
DT Article
DE adaptive cycle; disturbance; panarchy; resilience; social-ecological
   system; urban ecology; urban park
ID SYSTEMS; RESILIENCE; MANAGEMENT; HISTORY
AB The responses of urban park woodlands to large disturbances provide the opportunity to identify and examine linkages in social-ecological systems in urban landscapes. We propose that the Panarchy model consisting of hierarchically nested adaptive cycles provides a useful framework to evaluate those linkages. We use two case studies as examples Cherokee Park in Louisville, Kentucky, USA and Tijuca Forest in Rio de Janeiro, Brazil. In the Cherokee Park case study, the disturbance, a destructive tornado, triggered bottom-up societal responses that created new institutions that influenced park management and shifted the woodland community from a successional pathway dominated by invasive exotic plants to one where native plant species are regaining importance. In the Tijuca Forest example, the disturbance, large scale land-use changes during the 18th century, triggered primarily top-down societal responses to create the world's largest urban forest through a transformative programme of intensive multispecies forest replanting and management. Currently, fine scale disturbances primarily anthropogenically caused fire threaten portions of Tijuca Forest through loss of forest structure and establishment of flammable invasive plants, and again elicited top-down societal responses to stop further destruction and promote greater native plant regeneration. These case studies illustrate that either natural or anthropogenic disturbances to natural systems can alter the direction and magnitude of interactions between social and natural domains in urban landscapes in a co-adaptive manner that alters structures and processes in both system components.
C1 [Carreiro, Margaret M.] Univ Louisville, Dept Biol, Louisville, KY 40292 USA.
   [Zipperer, Wayne C.] US Forest Serv, USDA, Gainesville, FL USA.
C3 University of Louisville; United States Department of Agriculture
   (USDA); United States Forest Service
RP Carreiro, MM (corresponding author), Univ Louisville, Dept Biol, Louisville, KY 40292 USA.
EM m.carreiro@louisville.edu
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NR 39
TC 22
Z9 28
U1 0
U2 56
PU WILEY-BLACKWELL
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1442-9985
J9 AUSTRAL ECOL
JI Austral Ecol.
PD DEC
PY 2011
VL 36
IS 8
BP 904
EP 915
DI 10.1111/j.1442-9993.2010.02237.x
PG 12
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 853FD
UT WOS:000297410700003
DA 2025-04-22
ER

PT J
AU Shi, CS
   Meng, B
   Yuan, YT
   Ou, ZY
   Li, XH
AF Shi, Changsheng
   Meng, Bin
   Yuan, Yuting
   Ou, Zhiyuan
   Li, Xiaohang
TI Examining Changes in Consumer Spatial Structure and Sustainable
   Development Issues in Beijing before and after the Outbreak of COVID-19
SO SUSTAINABILITY
LA English
DT Article
DE COVID-19; consumption space structure; UnionPay consumption data;
   weighted Voronoi diagram
AB Urban consumption spatial structure has a direct impact on the sustainable development and quality of life of urban residents. This study investigates the impact of COVID-19 on Beijing's urban consumption spatial structure within the Sixth Ring Road. Utilizing POI (Point of Interest) data and the Kernel Density method, the spatial distribution of commercial centers is analyzed. Consumption data from China UnionPay for 2019 and 2020, along with the Weighted Voronoi diagram method, are employed to assess changes in the radiation range of commercial centers. The findings indicate that: (1) owing to the pandemic's repercussions, commercial centers at different levels and locations have different changes. (2) There is an overarching decline in UnionPay consumer spending across diverse streets in Beijing. (3) Following the epidemic, large-scale consumption hubs have maintained their dominance, ensuring the overall stability of the city's consumption spatial pattern. In conclusion, the changes in commercial centers and the significant decrease in consumer spending underscore the dynamic interplay between urban consumption and external shocks like the pandemic. These insights are crucial for urban planning strategies aiming to enhance both resilience and sustainability in the face of unforeseen challenges. The spatial restructuring of traditional commercial centers requires nuanced urban planning. Recognizing the resilience and expansion of smaller centers suggests the importance of fostering localized economic activities. Policymakers could incentivize their development to promote community engagement and economic sustainability.
C1 [Shi, Changsheng; Meng, Bin; Yuan, Yuting; Ou, Zhiyuan; Li, Xiaohang] Beijing Union Univ, Coll Appl Arts & Sci, Beijing 100191, Peoples R China.
C3 Beijing Union University
RP Meng, B (corresponding author), Beijing Union Univ, Coll Appl Arts & Sci, Beijing 100191, Peoples R China.
EM changshengshi@foxmail.com; mengbin@buu.edu.cn;
   20221070510116@buu.edu.cn; 20221070510101@buu.edu.cn;
   xiaohangli2019@163.com
RI Shi, Changsheng/IQU-9734-2023; MENG, BIN/JEP-2503-2023
OI Meng, Bin/0000-0002-1605-4826; Li, Xiaohang/0009-0007-1607-7255
FU Academic Research Projects of Beijing Union University
FX No Statement Available
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NR 29
TC 3
Z9 3
U1 4
U2 14
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2023
VL 15
IS 23
AR 16451
DI 10.3390/su152316451
PG 15
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 AB6P5
UT WOS:001116038900001
OA gold
DA 2025-04-22
ER

PT J
AU Yuan, HJ
   Wang, M
   Li, JJ
   Zhang, DQ
   Ikram, RMA
   Su, J
   Zhou, SQ
   Wang, YK
   Zhang, QF
AF Yuan, Haojun
   Wang, Mo
   Li, Jianjun
   Zhang, Dongqing
   Ikram, Rana Muhammad Adnan
   Su, Jin
   Zhou, Shiqi
   Wang, Yuankai
   Zhang, Qifei
TI Matrix scenario-based urban flooding damage prediction via convolutional
   neural network
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban flooding; Stormwater management; Convolutional neural networks;
   Matrix scenario; Hazard assessment
AB This study introduces a cutting-edge, high-resolution tool leveraging the predictive prowess of convolutional neural networks to advance the field of hazard assessment in urban pluvial flooding scenarios. The tool uniquely accounts for the high heterogeneity of urban space and the potential impact of complex climate scenarios, which are often underestimated by traditional data-reliant methods. Employing Shenzhen as a case study, the model showcased superior accuracy, resilience, and interpretability, illuminating potential flood hazards. The performance analysis shows that the model can accurately predict the vast majority of urban flood depths, but has errors in extreme flood predictions (depths greater than 35 cm). Findings underscore escalating flood impacts under enhanced scenario loads, with western and central Shenzhen-regions rife with construction-highlighted as particularly vulnerable. Under the most severe matrix scenario (Scenario 25), economic losses are estimated to be about $25,484 million. These commercial and residential hotspots are anticipated to suffer maximum economic loss, with these two areas accounting for 39.6% and 25.1% of the total losses, necessitating reinforced mitigation efforts, especially during extreme rainfall events and high soil saturation levels. In addition, the flooding control strategies should prioritize the reduction of flood inundation areas and integrate functionally oriented land use characteristics in their development. By aiding in the precise identification of flood-prone areas, this research expedites the development of efficient evacuation plans, bolsters urban sustainability, and augments climate resilience, ultimately mitigating flood-induced economic tolls.
C1 [Yuan, Haojun; Wang, Mo; Li, Jianjun] Guangzhou Univ, Coll Architecture & Urban Planning, Guangzhou 510006, Peoples R China.
   [Zhang, Dongqing] Guangdong Univ Petrochem Technol, Sch Environm Sci & Engn, Guangdong Prov Key Lab Petrochem Pollut Proc & Con, Maoming 525000, Guangdong, Peoples R China.
   [Ikram, Rana Muhammad Adnan] Guangzhou Univ, Sch Econ & Stat, Guangzhou 510006, Peoples R China.
   [Su, Jin] Univ Tun Hussein Onn Malaysia, Fac Civil Engn & Built Environm, Batu Pahat 86400, Johor, Malaysia.
   [Zhou, Shiqi] Tongji Univ, Coll Design & Innovat, Shanghai 200093, Peoples R China.
   [Wang, Yuankai] UCL, Bartlett Sch Architecture, 22 Gordon St, London, England.
   [Zhang, Qifei] Guangzhou Univ, Sch Geog & Remote Sensing, Guangzhou 510006, Peoples R China.
C3 Guangzhou University; Guangdong University of Petrochemical Technology;
   Guangzhou University; University of Tun Hussein Onn Malaysia; Tongji
   University; University of London; University College London; Guangzhou
   University
RP Wang, M (corresponding author), Guangzhou Univ, Coll Architecture & Urban Planning, Guangzhou 510006, Peoples R China.; Zhang, DQ (corresponding author), Guangdong Univ Petrochem Technol, Sch Environm Sci & Engn, Guangdong Prov Key Lab Petrochem Pollut Proc & Con, Maoming 525000, Guangdong, Peoples R China.
EM haojuny1202@outlook.com; landwangmo@outlook.com; lijianjun@gzhu.edu.cn;
   dqzhang3377@outlook.com; rana@gzhu.edu.cn; kallang01@outlook.com;
   zhoushiqi1965@outlook.com; ucbqy55@ucl.ac.uk; zhangqf@gzhu.edu.cn
RI zhou, shiqi/LLL-2747-2024; Wang, Yuankai/HKM-7504-2023; Wang,
   Mo/ABC-9345-2020; Ikram, Rana Muhammad Adnan/ABB-1652-2020
OI Wang, Mo/0000-0001-8752-6256; Ikram, Rana Muhammad
   Adnan/0000-0002-2650-8123
FU Guangdong Basic and Applied Basic Research Foundation, China
   [2023A1515030158, 2023A1515012130]; Guangzhou Sci. Technol. Program,
   China [202201010431]; Maoming Sci. Technol. Program, China [2021S0054]
FX This work was supported by Guangdong Basic and Applied Basic Research
   Foundation, China [grant number 2023A1515030158, 2023A1515012130],
   Guangzhou Sci. Technol. Program, China [grant number 202201010431], and
   Maoming Sci. Technol. Program, China [grant number 2021S0054].
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NR 53
TC 9
Z9 9
U1 26
U2 79
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 1
PY 2024
VL 349
AR 119470
DI 10.1016/j.jenvman.2023.119470
EA OCT 2023
PG 13
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA Y5UP0
UT WOS:001105910000001
PM 39492389
DA 2025-04-22
ER

PT J
AU Makvandi, M
   Yuan, PF
   Ji, QF
   Li, CC
   Elsadek, M
   Li, WJ
   Hassan, A
   Li, Y
AF Makvandi, Mehdi
   Yuan, Philip F.
   Ji, Qunfeng
   Li, Chuancheng
   Elsadek, Mohamed
   Li, Wenjing
   Hassan, Ahmad
   Li, Yu
TI Resilience to climate change by improving air circulation efficiency and
   pollutant dispersion in cities: A 3D-UFO approach to urban block design
SO HELIYON
LA English
DT Article
DE Urbanization; Land-use and land-cover change (LULCC); Air circulation
   efficiency; CFD; 3D urban form optimization (3D-UFO)
ID WIND-TUNNEL ANALYSIS; CROSS-VENTILATION; THERMAL COMFORT; CFD
   SIMULATIONS; DRIVEN RAIN; BUILDINGS; IMPACT; MODEL; WUHAN; FLOW
AB Urbanization presents significant challenges to air quality and climate resilience, necessitating pioneering urban design solutions to enhance air circulation and mitigate pollutants. This urgency intensifies in densely populated and rapidly evolving regions like Wuhan, China, where effective strategies are crucial for sustainable development. This study introduces an innovative 3D Urban Form Optimization (3D-UFO) methodology aimed at advancing urban block design configurations to improve urbanization quality. The 3D-UFO approach systematically addresses the multifaceted challenges of climate change and air quality degradation in rapidly urbanizing areas. Integrating GIS-based analysis for comprehensive Land-Use and Land-Cover Change (LULCC) evaluation with Computational Fluid Dynamics (CFD), our approach employs systematic exploration guided by established urban airflow study protocols. Robust metrics-Airspeed-Ratio (ASR) and Average-Age-of-Local-Air (ALA)-quantify the impact of diverse urban block design strategies on air-circulation efficiency and pollutant dispersion. Analysis across various urban scenarios, yielded by the proposed 3D-UFO approach, reveal significant variations in aircirculation efficiency at street and building levels (SBLs). Optimal urban air circulation achieves efficiency levels of 50-70 % when airflow aligns orthogonally across and parallel to streets. Adjusting street-level building heights, especially incorporating taller structures, boosts ventilation efficiency by 20-30 %, which is crucial for improving airflow dynamics in urban settings. Higher Height-to-Width (H/W) ratios (>5.5) yield a 218.5 % increase in ventilation in specific urban layouts. Notably, the synergy of street-aspect-ratio and building-height-ratio adjustments significantly enhance ASR and ALA, providing a quantitative foundation for sustainable urban development. This 3D-UFO methodology, fusing LULCC analysis, CFD simulations, and systematic exploration, emerge as a valuable framework for urban planners and designers. The study offers informed insights into urban sustainability challenges, demonstrating advancements in addressing environmental concerns and improving living conditions within densely populated environments.
C1 [Makvandi, Mehdi; Yuan, Philip F.; Elsadek, Mohamed; Li, Wenjing; Hassan, Ahmad; Li, Yu] Tongji Univ, Coll Architecture & Urban Planning, 1239 Siping Rd, Shanghai 200092, Peoples R China.
   [Makvandi, Mehdi; Ji, Qunfeng; Li, Chuancheng] Wuhan Univ Technol, Coll Civil Engn & Architecture, Wuhan, Peoples R China.
   [Makvandi, Mehdi] Huazhong Univ Sci & Technol, Coll Architecture & Urban Planning, Wuhan, Peoples R China.
   [Li, Wenjing] Key Lab Ecol & Energy saving Study Dense Habitat, Minist Educ, Shanghai, Peoples R China.
C3 Tongji University; Wuhan University of Technology; Huazhong University
   of Science & Technology
RP Yuan, PF (corresponding author), Tongji Univ, Coll Architecture & Urban Planning, 1239 Siping Rd, Shanghai 200092, Peoples R China.
EM philipyuan007@tongji.edu.cn
RI MAKVANDI, MEHDI/GQY-4844-2022; Li, Wenjing/ABA-9384-2022; Elsadek,
   Mohamed/Q-9118-2019; Ji, Qunfeng/GQB-1812-2022
OI Makvandi, Mehdi/0000-0001-6425-8535; Hassan, Dr.
   Ahmad/0000-0002-3526-3690
FU Shanghai Science and Technology Committee [21DZ1204500]; National Key R
   & D Program of China [2022YFE0141400]; National Natural Science
   Foundation of China [U1913603]; Shanghai Municipal Science and
   Technology Major Project [2021SHZDZX0100]; Fundamental Research Funds
   for the Central Universities; Postdoctoral Fellowship Program of CPSF
   [GZC20241226]; China Postdoctoral Science Foundation [2024T170669]
FX This article is supported by the Shanghai Science and Technology
   Committee (Grant No. 21DZ1204500) , National Key R & D Program of China
   (2023YFC3806900) , National Key R & D Program of China (2022YFE0141400)
   , National Natural Science Foundation of China (Grant No. U1913603) ,
   the Shanghai Municipal Science and Technology Major Project
   (2021SHZDZX0100) , the Fundamental Research Funds for the Central
   Universities, the Postdoctoral Fellowship Program of CPSF (GZC20241226)
   , and Special Funding for Postdoctoral Researchers from the China
   Postdoctoral Science Foundation (2024T170669) .
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NR 78
TC 2
Z9 2
U1 7
U2 7
PU CELL PRESS
PI CAMBRIDGE
PA 50 HAMPSHIRE ST, FLOOR 5, CAMBRIDGE, MA 02139 USA
EI 2405-8440
J9 HELIYON
JI Heliyon
PD SEP 15
PY 2024
VL 10
IS 17
AR e36904
DI 10.1016/j.heliyon.2024.e36904
EA SEP 2024
PG 23
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA F4X0Q
UT WOS:001309851900001
PM 39296148
OA Green Published
DA 2025-04-22
ER

PT J
AU Caprotti, F
   Cowley, R
AF Caprotti, Federico
   Cowley, Robert
TI Varieties of smart urbanism in the UK: Discursive logics, the state and
   local urban context
SO TRANSACTIONS OF THE INSTITUTE OF BRITISH GEOGRAPHERS
LA English
DT Article
DE cultural economy; digital economy; resilience; smart city; urban
   development; urban futures
ID ECO-CITIES; CITY; SUSTAINABILITY; RESILIENCE; GEOGRAPHIES; POLITICS;
   POLICY
AB The paper analyses the varieties of smart urbanism to be found in the contemporary urban landscape in the UK. In so doing, it builds on and extends two currently dominant sets of critiques of the smart city: those that call into question its technocratic and top-down modes of governance, and those that describe the smart city as an empty signifier. The paper makes sense of the UK's variegated local smart urban practices by tracing the emergence of a national, state-led cultural economy of smart urbanism. Based on an analysis of smart-city programmes in 34 UK cities, we identify two broad discursive logics through which varieties of smart urbanism are produced and performed. First, the invocation of crisis forms a discursive foundation on which place-specific logics are based. Second, sets of what we term variegated logics are differently combined to build on the "foundational story" of crisis in the construction of local smart agendas. We discuss three of these variegated logics: the city portrayed as technological simulacrum; the focus on specific sectoral activities; and a chameleonic tendency to envelop previous eco-urban agendas into smart urbanism. By making these logics visible, the paper opens up a new critical space for debate about alternative future pathways that smart cities might take.
C1 [Caprotti, Federico; Cowley, Robert] Univ Exeter, Dept Geog, Exeter, Devon, England.
C3 University of Exeter
RP Caprotti, F (corresponding author), Univ Exeter, Dept Geog, Exeter, Devon, England.
EM f.caprotti@exeter.ac.uk
RI Caprotti, Federico/AHB-0702-2022; Cowley, Robert/HTL-3722-2023
OI Caprotti, Federico/0000-0002-5280-1016; Cowley,
   Robert/0000-0002-5267-3974
FU Economic and Social Research Council [ES/L015978/2]; ESRC [ES/L015978/2]
   Funding Source: UKRI
FX Economic and Social Research Council, (Grant/Award Number:
   ES/L015978/2).
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NR 108
TC 37
Z9 40
U1 1
U2 28
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0020-2754
EI 1475-5661
J9 T I BRIT GEOGR
JI Trans. Inst. Br. Geogr.
PD SEP
PY 2019
VL 44
IS 3
BP 587
EP 601
DI 10.1111/tran.12284
PG 15
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA IN4KA
UT WOS:000478642600015
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Piselli, C
   Castaldo, VL
   Pigliautile, I
   Pisello, AL
   Cotana, F
AF Piselli, C.
   Castaldo, V. L.
   Pigliautile, I.
   Pisello, A. L.
   Cotana, F.
TI Outdoor comfort conditions in urban areas: On citizens' perspective
   about microclimate mitigation of urban transit areas
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban heat island; Mitigation; Outdoor comfort; Human perspective;
   Monitoring; Population survey; Urban resilience; Anthropogenic heat
ID HEAT-ISLAND MITIGATION; PEDESTRIAN THERMAL COMFORT; LOCAL
   CLIMATE-CHANGE; GREEN INFRASTRUCTURE; ENERGY PERFORMANCE; COOL
   MATERIALS; QUALITY; DESIGN; TEMPERATURES; PERCEPTION
AB Understanding citizen environmental perception is a crucial issue to improve outdoor environmental and landscape quality. This paper is aimed at investigating the perspective of travelling citizens about local microclimate conditions in a transportation open-air hub of an urban district in central Italy, to propose effective mitigation strategies. Therefore, a survey was submitted to pedestrians while crossing the area to understand their actual perception of visual-thermal-acoustic conditions characterizing the outdoor environment, with varying weather and personal characteristics. Simultaneously, the continuous in-situ monitoring of the main environmental parameters was performed. Finally, the benefits generated by selected microclimate mitigation and landscape improvement strategies were quantitatively assessed by means of validated microclimate district models. Results of the field survey highlighted the minor tolerance of the local environment by local citizens compared to tourists, especially those coming from denser and more polluted cities. Moreover, the simulations confirmed the capability of selected microclimate mitigation strategies against anthropogenic heat, to improve pedestrians' outdoor thermal comfort conditions in summer, without winter penalties. In particular, the vegetation increase, according to pedestrians' request for additional green areas, combined to other solutions for sustainable landscape change, showed the most significant impact in summer overheating mitigation and urban resilience to anthropogenic climate change.
C1 [Piselli, C.; Castaldo, V. L.; Pigliautile, I.; Pisello, A. L.; Cotana, F.] CIRIAF Interuniv Res Ctr, Via G Duranti 63, I-06125 Perugia, Italy.
   [Castaldo, V. L.; Pisello, A. L.; Cotana, F.] Univ Perugia, Dept Engn, Via G Duranti 93, I-06125 Perugia, Italy.
C3 University of Perugia
RP Pisello, AL (corresponding author), Univ Perugia, Dept Engn, Via G Duranti 93, I-06125 Perugia, Italy.
EM anna.pisello@unipg.it
RI Piselli, Cristina/AGL-4455-2022; Pigliautile, Ilaria/JBS-0015-2023
FU "CIRIAF program for UNESCO" in the framework of the UNESCO Chair "Water
   Resources Management and Culture"
FX Anna Laura Pisello's acknowledgments are due to the "CIRIAF program for
   UNESCO" in the framework of the UNESCO Chair "Water Resources Management
   and Culture", for supporting her research. The authors are very grateful
   to Silvia Biagetti for dedicating time an effort to this project. The
   authors thank Comune di Perugia, under the framework of "Programma di
   sviluppo urbanosostenibile di Perugia" Perugia. Zip.
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PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAY
PY 2018
VL 39
BP 16
EP 36
DI 10.1016/j.scs.2018.02.004
PG 21
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 GH1NO
UT WOS:000433169800002
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Mao, D
   Yang, HJ
   Zhang, SH
   Sun, HZ
   Wang, XJ
AF Mao, Da
   Yang, Huijie
   Zhang, Shaohua
   Sun, Haozhe
   Wang, Xiaojuan
TI Adaptive Behavioral Dynamics in Public Open Spaces During the COVID-19
   Pandemic: A Technological Perspective on Urban Resilience
SO JOURNAL OF THE KNOWLEDGE ECONOMY
LA English
DT Article; Early Access
DE Behavioral dynamics; Information annotation technology; Deep learning;
   Computer vision; COVID-19 pandemic; Urban resilience; Age-responsive
   design
AB The emergence of the COVID-19 pandemic has significantly disrupted urban life, leading to profound changes in the daily routines and behavioral patterns of city residents. This study focuses on a central public open space within a residential area in Xinxiang, China, as a microcosm of urban dynamics during the pandemic. Leveraging an innovative long-term information annotation technology, the research team transformed 3 months of daytime monitoring video data from the early phase of the pandemic into a meticulously annotated dataset containing 115,975 records of spatial behavior. These records were generated through a combination of visual interpretation and spatial positioning techniques. The ensuing comprehensive analysis aimed to discern shifts in residents' behavioral characteristics, particularly focusing on spatial activity indices and densities. This study not only enhances our understanding of evolving dynamics in public open spaces but also provides empirical support for optimizing and transforming such spaces in the post-pandemic era. Key findings include the utility of long-term information annotation technology for rigorous behavioral analysis, nuanced trends in spatial vitality, age-related variations, identification of predominant resident behaviors, and age-dependent preferences for activity areas. This research contributes to urban behavioral dynamics knowledge and underscores the adaptability of communities in the face of unprecedented challenges, informing urban planning and policy decisions in a rapidly evolving world.
C1 [Mao, Da; Yang, Huijie; Zhang, Shaohua; Sun, Haozhe; Wang, Xiaojuan] Henan Inst Sci & Technol, Sch Hort & Landscape Architecture, Xinxiang 453003, Henan, Peoples R China.
   [Mao, Da] Henan Prov Engn Ctr Hort Plant Resource Utilizat &, Xinxiang 453003, Henan, Peoples R China.
   [Mao, Da; Yang, Huijie; Zhang, Shaohua; Sun, Haozhe; Wang, Xiaojuan] Xinxiang Urban Rural & Landscape Digital Technol E, Xinxiang 453003, Henan, Peoples R China.
C3 Henan Institute of Science & Technology
RP Mao, D (corresponding author), Henan Inst Sci & Technol, Sch Hort & Landscape Architecture, Xinxiang 453003, Henan, Peoples R China.; Mao, D (corresponding author), Henan Prov Engn Ctr Hort Plant Resource Utilizat &, Xinxiang 453003, Henan, Peoples R China.; Mao, D (corresponding author), Xinxiang Urban Rural & Landscape Digital Technol E, Xinxiang 453003, Henan, Peoples R China.
EM maoda@foxmail.com
RI Yang, Huijie/D-6458-2013
FU Key Science and Technology Research and Development Program of Henan
   Province, China [212102310490]; Key Science and Technology Research and
   Development Program of Henan Province, China [222102320233]; Key Science
   and Technology Research and Development Program of Henan Province, China
   [232102320180]; High-level Talent Research Project of Henan Institute of
   Science and Technology [2017028]; Cultivation Plan of Young Backbone
   Teachers in Colleges and Universities of Henan Province, China
   [2021GGJS118]
FX This research was funded by the following projects: Key Science and
   Technology Research and Development Program of Henan Province, China
   (212102310490); Key Science and Technology Research and Development
   Program of Henan Province, China (222102320233); Key Science and
   Technology Research and Development Program of Henan Province, China
   (232102320180); High-level Talent Research Project of Henan Institute of
   Science and Technology (2017028); and Cultivation Plan of Young Backbone
   Teachers in Colleges and Universities of Henan Province, China
   (2021GGJS118)
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NR 68
TC 0
Z9 0
U1 7
U2 22
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 2023 NOV 13
PY 2023
DI 10.1007/s13132-023-01591-4
EA NOV 2023
PG 27
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA Y2OU6
UT WOS:001103719300002
DA 2025-04-22
ER

PT J
AU Soomro, SEH
   Boota, MW
   Zwain, HM
   Soomro, GEZ
   Shi, XT
   Guo, JL
   Li, YH
   Tayyab, M
   Hu, CH
   Liu, CS
   Soomro, MHAA
   Wang, YY
   Wahid, JA
   Bai, YQ
   Nazli, S
   Yu, J
AF Soomro, Shan-e-hyder
   Boota, Muhammad Waseem
   Zwain, Haider M.
   Soomro, Gul-e-Zehra
   Shi, Xiaotao
   Guo, Jiali
   Li, Yinghai
   Tayyab, Muhammad
   Hu, Caihong
   Liu, Chengshuai
   Soomro, Mairaj Hyder Alias Aamir
   Wang, Yuanyang
   Wahid, Junaid Abdul
   Bai, Yanqin
   Nazli, Sana
   Yu, Jia
TI How effective is twitter (X) social media data for urban flood
   management?
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Artificial intelligence (AI); Large language model (LLM); Natural
   language processiong (NLP); Resilience; Sentiment analysis (SA); Urban
   flood
ID SPATIOTEMPORAL EVOLUTION; RESILIENCE; IMPACT; URBANIZATION; KARACHI;
   COVER; RISK
AB Social media has been an instant source of information for natural disasters, such as urban floods, throughout the world. Ex-post evaluation of the information is considered more important after a flood disaster with devastating consequences on critical infrastructure, the environment, and the well-being of the society. Research proposes an evaluation framework for integrating the disorganized online public opinion on urban flood disaster events towards emotional and conceptual characteristics for better ex-post analysis and public participation. Social media posts on an urban flood were acquired using a search engine, and then sentiment analysis, topic modeling, and spatial-temporal analysis were performed to generate measures of online public opinion about the urban flood crisis. Twitter (X) is the most popular microblogging service presently available. As per the methodology, we analyzed all tweets regarding the 2022 urban flood in the cosmopolitan city (Karachi) of Pakistan from users all over the world. The evaluation results demonstrated that the distribution patterns of post intensities and emotion polarity in response to the floods emphasized crucial aspects with contradictory emotions and highlighted the strategic implications. Experimental results on real datasets show relatively better performance than the baseline and state-of-the-art approaches and achieved the highest 91% score. Online public opinion is a valuable supplement to ex post-disaster evaluation as it helps the project (e.g., flood management) better perform and provides suggestions for future flood mitigation, especially public participation management.
C1 [Soomro, Shan-e-hyder; Shi, Xiaotao; Guo, Jiali; Li, Yinghai; Tayyab, Muhammad; Wang, Yuanyang; Bai, Yanqin; Yu, Jia] China Three Gorges Univ, Coll Hydraul & Environm Engn, Yichang 443002, Peoples R China.
   [Boota, Muhammad Waseem] Henan Univ, Coll Geog & Environm Sci, Kaifeng 475004, Peoples R China.
   [Zwain, Haider M.] Al Qasim Green Univ, Coll Engn, Water Resources Management Engn Dept, Babylon 51013, Iraq.
   [Soomro, Gul-e-Zehra] Quaid e Awam Univ Engn Sci & Technol, Dept Artificial Intelligence, Nawabshah 67450, Pakistan.
   [Soomro, Mairaj Hyder Alias Aamir] Univ Wollongong, Sch Civil Min & Environm, Northfields Ave, Wollongong, NSW 2522, Australia.
   [Soomro, Shan-e-hyder; Hu, Caihong; Liu, Chengshuai] Zhengzhou Univ, Coll Water Conservancy & Transportat, Zhengzhou 450001, Peoples R China.
   [Wahid, Junaid Abdul] Zhengzhou Univ, Sch Comp & Artificial Intelligence, Zhengzhou 450001, Peoples R China.
   [Nazli, Sana] China Inst Water Resources & Hydropower Res, State Key Lab Simulat & Regulat Water Cycle River, Beijing 100038, Peoples R China.
C3 China Three Gorges University; Henan University; Al Qasim Green
   University; University of Wollongong; Zhengzhou University; Zhengzhou
   University; China Institute of Water Resources & Hydropower Research
RP Guo, JL; Bai, YQ (corresponding author), China Three Gorges Univ, Coll Hydraul & Environm Engn, Yichang 443002, Peoples R China.
EM shanhydersoomro110@hotmail.com; waseem.boota@henu.edu.cn;
   haider.zwain@wrec.uoqasim.edu.iq; gulezehrasoomro37@gmail.com;
   fishlab@163.com; jiali.guo@ctgu.edu.cn; liyinghai@ctgu.edu.cn;
   mtayyab@outlook.com; mairaj_hyder@hotmail.com; hucaihong@zzu.edu.cn;
   mairaj_hyder@hotmail.com; liucs@gs.zzu.edu.cn; wangyuanyang911@163.com;
   junaidzzu@hotmail.com; 958634286@qq.com; sananazli550@gmail.com
RI Soomro, Shan-e-hyder/IZP-8372-2023; Zwain, Haider/B-8336-2013; Abdul
   Wahid, Junaid/IAP-0383-2023; 白, 白/KBB-6962-2024; Tayyab,
   Muhammad/KYP-6564-2024
OI Boota, Dr. Muhammad Waseem/0000-0003-0770-0715
FU Projects of National Natural Science Foundation of China [52179018];
   National Natural Science Foundation of China [51922065, 52279069];
   Talent Scientific Research Startup Fund Projects [2023RCKJ0048]
FX This work was supported by the Projects of National Natural Science
   Foundation of China (52179018) , National Natural Science Foundation of
   China (51922065, 52279069) , and Talent Scientific Research Startup Fund
   Projects (2023RCKJ0048) .
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NR 104
TC 11
Z9 11
U1 40
U2 65
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 131129
DI 10.1016/j.jhydrol.2024.131129
EA MAR 2024
PG 16
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA UK5A8
UT WOS:001247954000001
DA 2025-04-22
ER

PT J
AU Manea, A
   Tabassum, S
   Lambert, M
   Cinantya, A
   Ossola, A
   Leishman, MR
AF Manea, Anthony
   Tabassum, Samiya
   Lambert, Martin
   Cinantya, Ariningsun
   Ossola, Alessandro
   Leishman, Michelle R.
TI Biochar, but not soil microbial additives, increase the resilience of
   urban plant species to low water availability
SO URBAN ECOSYSTEMS
LA English
DT Article
DE Climate change; Inoculation; Microbiome; Soil amendments; Urban greening
ID ECOSYSTEM SERVICES; TREE GROWTH; DROUGHT; RESPONSES; CLIMATE; STRESS;
   FOREST; QUANTIFICATION; PRODUCTIVITY; METAANALYSIS
AB Impervious surfaces that characterise urban areas can make them harsh, water-limited places for plants to grow. To help alleviate plant stress under these challenging drought conditions, a range of soil additives can be utilised. Although well-studied individually, our understanding of the interaction between different soil additives in alleviating drought stress in urban areas is rudimentary. The aim of this study was to (1) assess the growth of urban horticultural plant species under drought stress and (2) determine whether drought stress in these species is alleviated by the use of soil additives, both individually and in combination. We grew six plant species (three trees, three graminoids) commonly planted in Australian urban areas under two watering regimes (drought-stressed, well-watered) and four soil additive treatments (no additive, microbial additive only, biochar only, microbial additive and biochar), and assessed their performance. We found that drought stress significantly reduced the growth of the six study species. Surprisingly, this decrease in growth was not reduced with the use of soil additives, despite biochar increasing soil water content and mycorrhizal colonisation when used in combination with the microbial additive. However, the addition of biochar significantly delayed the visual onset of drought stress across all species. Our results show that soil additives can be used as a cost-effective management strategy to increase plant resilience to drought stress in urban areas.
C1 [Manea, Anthony; Tabassum, Samiya; Lambert, Martin; Cinantya, Ariningsun; Leishman, Michelle R.] Macquarie Univ, Sch Nat Sci, Sydney, NSW 2109, Australia.
   [Ossola, Alessandro] Univ Calif Davis, Dept Plant Sci, Davis, CA 95616 USA.
C3 Macquarie University; University of California System; University of
   California Davis
RP Manea, A (corresponding author), Macquarie Univ, Sch Nat Sci, Sydney, NSW 2109, Australia.
EM anthony.manea@mq.edu.au
RI Leishman, Michelle/AAU-4102-2020; Tabassum, Samiya/H-8486-2014;
   Leishman, Michelle/G-9726-2012; Ossola, Alessandro/D-1262-2012
OI Tabassum, Samiya/0000-0002-8402-8099; Lambert, Martin
   John/0000-0003-2515-7904; Leishman, Michelle/0000-0003-4830-5797; Manea,
   Anthony/0000-0002-0956-4529; Ossola, Alessandro/0000-0002-0507-6026
FU Which Plant Where project; Green Cities Fund as part of the Hort
   Frontiers Strategic Partnership Initiative; CAUL
FX This work was supported by the Which Plant Where project, which was
   funded by the Green Cities Fund, as part of the Hort Frontiers Strategic
   Partnership Initiative developed by Hort Innovation. Open Access funding
   enabled and organized by CAUL and its Member Institutions
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NR 76
TC 3
Z9 3
U1 4
U2 23
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 OCT
PY 2023
VL 26
IS 5
BP 1251
EP 1261
DI 10.1007/s11252-023-01382-4
EA MAY 2023
PG 11
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA T5XO1
UT WOS:000993334000002
OA hybrid
DA 2025-04-22
ER

PT J
AU Wang, T
   Li, HB
   Huang, Y
AF Wang, Tao
   Li, Hongbo
   Huang, Yue
TI The complex ecological network's resilience of the Wuhan metropolitan
   area
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Ecological network; Resilience; Complex network; Wuhan Metropolitan Area
ID NATURE CONSERVATION; ECOSYSTEM SERVICES; INFRASTRUCTURE; PERSPECTIVE;
   EFFICIENCY
AB With rapid urbanization and frequent disasters, regional ecosystem resilience decreased continuously. Strengthening the resilience of the ecological network is conducive to improving the ecological benefits and the quality of ecological products. The research on the resilience of ecological networks is increasingly concerned, and it is necessary to construct a comprehensive research framework to evaluate the resilience of ecological networks. Taking Wuhan metropolitan area as a case, this research aimed to constructs an ecological network and evaluates network resilience from the perspective of complex networks. Firstly, we construct the evaluation Index of network resilience from the structure and function dimensions. Secondly, regions with high importance are selected as ecological sources according to the evaluation of landscape connectivity. Thirdly, the MCR model is used to establish the ecological network. Finally, we analyzed the resilience characteristics of the network under different node failure scenarios. The results show that: (1) Ecological nodes correspond to a wide variety of land types, including forest, water bodies, croplands, and urban and build-up; (2) The overall ecological connection of the ecological corridor is relatively high and the main components of the landscape are croplands, forest and water bodies; (3) The trend of structural and functional resilience does not always show convergence under different shock simulation which is related to the redundancy of networks. The research results will help to analyze the network and regional resilience and provide references for the optimization of ecological networks and the improvement of sustainable ecosystem management and restoration.
C1 [Wang, Tao; Li, Hongbo; Huang, Yue] Huazhong Agr Univ, Dept Land Management, Wuhan 430070, Peoples R China.
C3 Huazhong Agricultural University
RP Li, HB (corresponding author), Huazhong Agr Univ, Dept Land Management, Wuhan 430070, Peoples R China.
EM wangtao95@webmail.hzau.edu.cn; lihb20132013@163.com
RI Li, Hongbo/ABG-9963-2021
OI TAO, WANG/0009-0004-5626-5785
FU National Natural Science Foundation of China [41871179]; Huazhong
   Agricultural University Scientific & Technological Self-innovation
   Foundation [2016RC014]
FX This research is funded by the National Natural Science Foundation of
   China (No. 41871179) and supported by Huazhong Agricultural University
   Scientific & Technological Self-innovation Foundation (Program No.
   2016RC014).
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Z9 128
U1 92
U2 512
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD NOV
PY 2021
VL 130
AR 108101
DI 10.1016/j.ecolind.2021.108101
EA AUG 2021
PG 16
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA UM6RG
UT WOS:000693457200012
OA gold
DA 2025-04-22
ER

PT J
AU Tien, I
AF Tien, Iris
TI Resilient by design: the case for increasing resilience of buildings and
   their linked food-energy-water systems
SO ELEMENTA-SCIENCE OF THE ANTHROPOCENE
LA English
DT Article
DE Resilience; buildings; food-energy-water systems (FEWS); design
   objectives; integrated systems; performance-based design; design
   practices and incentives
ID CASCADING FAILURES; URBAN AGRICULTURE; INFRASTRUCTURE; INNOVATION; GREEN
AB The resilience of buildings and food, energy, and water systems (FEWS) to natural or manmade disruptions are closely linked. The resilience of a building goes beyond the safety of its structural elements and must include the resilience of its supporting systems and the services they supply. The resilience of FEWS, in turn, can increase through design elements of a building that affect generation and storage of FEW resources. In this commentary, I discuss increasing the resilience of buildings and their linked FEWS-improving their resistance, absorption, restoration, and adaptive capacities-through new integrated systems design practices. I begin with a discussion of the current state of building design at the FEW nexus. I then use the prior establishment and current use of sustainability design objectives as an analogue to developing and implementing resilience design objectives. I review progress and limitations of specific drivers for increasing resilient design practices, including economic incentives, regulations, extralegal programs and initiatives, and societal incentives. My recommendations for leveraging these drivers to increase resilient design include: for economic incentives, quantify the costs and benefits to make the business case for resilience; for formal regulations, specify increased building requirements with performance-based resilience objectives; for extralegal initiatves, integrate these resilience objectives with existing certification programs and award designs that address FEWS as an integrated network rather than as disparate systems; and for societal incentives, demonstrate public benefit to shift societal perceptions of resilience. Together, these actions will motivate the design of more resilient building and FEW systems to increase their longevity, performance, and robustness.
C1 [Tien, Iris] Georgia Inst Technol, Sch Civil & Environm Engn, Atlanta, GA 30332 USA.
C3 University System of Georgia; Georgia Institute of Technology
RP Tien, I (corresponding author), Georgia Inst Technol, Sch Civil & Environm Engn, Atlanta, GA 30332 USA.
EM itien@ce.gatech.edu
FU National Science Foundation [CNS-1541074]; Division Of Computer and
   Network Systems; Direct For Computer & Info Scie & Enginr [1541074]
   Funding Source: National Science Foundation
FX The author acknowledges support for this work by the National Science
   Foundation through Grant No. CNS-1541074.
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NR 85
TC 10
Z9 11
U1 2
U2 39
PU UNIV CALIFORNIA PRESS
PI OAKLAND
PA 155 GRAND AVE, SUITE 400, OAKLAND, CA 94612-3758 USA
SN 2325-1026
J9 ELEMENTA-SCI ANTHROP
JI Elementa-Sci. Anthrop.
PD FEB 21
PY 2018
VL 6
AR 18
DI 10.1525/elementa.142
PG 12
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA FW8LU
UT WOS:000425586100002
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Shah, F
   Sharifi, A
AF Shah, Fahad
   Sharifi, Ayyoob
TI Climate models for predicting precipitation and temperature trends in
   cities: A systematic review
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Review
DE Climate change; SSPs and RCPs; Global climate models; Urban climate
   projections; Urban areas; Urban resilience
ID EXTREME TEMPERATURE; CHANGE SCENARIOS; PROJECTIONS; RAINFALL; URBAN;
   EVENTS; IMPACT; FLOOD; VARIABILITY; SIMULATION
AB Climate change is increasingly putting pressure on urban areas and threatening millions of lives. In this context, diverse climate models have been utilized to predict future changes in precipitation and temperature. Despite substantial research in this field, there is a lack of review of various climate models, their predictive reliability, and their geographical focus. This systematic review, covering studies from 2009 to 2023, examines the use of different climate models to predict precipitation and temperature trends in cities. We organized the studies into two primary categories based on the type and geographic focus of climate models used in this field. Using deductive content analysis, our analysis found that researchers used combined neural networks and Coupled Model Intercomparison Project Phase 6 (CMIP6) models the most. Time series models, particularly those optimized with machine learning, demonstrated superior accuracy compared to other models. Furthermore, scenarios such as SSP5-8.5 and RCP8.5 projected significant changes in precipitation and temperature across cities in Europe, North America, Asia, and the Gulf Cooperation Council (GCC) countries. These changes could intensify the frequency of heatwaves, floods, and droughts in urban areas by the end of the 21st century. A key gap in the existing literature is the insufficient analysis of small cities, indicating a promising area for future research. This study provides valuable insights for policymakers in climate change adaptation and urban resilience planning.
C1 [Shah, Fahad] Hiroshima Univ, Grad Sch Innovat & Practice Smart Soc, Urban Environm Sci Lab URBES, Higashi, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Univ Queensland, Sch Architecture Design & Planning, Brisbane 4067, Australia.
C3 Hiroshima University; Hiroshima University; Hiroshima University;
   University of Queensland
RP Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.; Sharifi, A (corresponding author), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
EM d233114@hiroshima-u.ac.jp; sharifi@hiroshima-u.ac.jp
RI Sharifi, Ayyoob/M-7584-2013
OI Sharifi, Ayyoob/0000-0002-8983-8613
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NR 135
TC 1
Z9 1
U1 14
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 FEB 15
PY 2025
VL 120
AR 106171
DI 10.1016/j.scs.2025.106171
EA JAN 2025
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 W9P8N
UT WOS:001421808600001
DA 2025-04-22
ER

PT J
AU Astarita, V
   Guido, G
   Haghshenas, SS
   Haghshenas, SS
AF Astarita, Vittorio
   Guido, Giuseppe
   Haghshenas, Sina Shaffiee
   Haghshenas, Sami Shaffiee
TI Risk Reduction in Transportation Systems: The Role of Digital Twins
   According to a Bibliometric-Based Literature Review
SO SUSTAINABILITY
LA English
DT Article
DE digital twins; urban risk management; predictive analysis in urban
   planning; disaster response and mitigation; urban resilience and
   sustainability
ID CHALLENGES; DESIGN; SAFETY; USERS; DSS
AB Urban areas, with their dense populations and complex infrastructures, are increasingly susceptible to various risks, including environmental challenges and infrastructural strain. This paper delves into the transformative potential of digital twins-virtual replicas of physical entities-for mitigating these risks. It specifically explores the role of digital twins in reducing disaster risks, such as those posed by earthquakes and floods, through a comprehensive bibliometric-based literature review. Digital twins could contribute to risk reduction by combining data analytics, simulation, and predictive modeling by creating virtual replicas of physical entities and integrating real-time data streams to better address and manage risks in urban environments. In detail, they can help city planners and decision-makers analyze complex urban systems, simulate potential scenarios, and predict potential outcomes. This proactive approach allows both the identification of vulnerabilities and better implementation of targeted mitigation strategies to enhance urban resilience and sustainability. More informed decisions can be made relying on simulations, and it can also be possible to optimize resource allocation and better respond to emerging challenges. This work reviews the key publications in this domain, with the aim of finding relevant papers that can be useful to urban planners and policy-makers. The paper concludes by discussing the broader implications of these findings and identifying challenges in the widespread adoption of digital twin technology, including data privacy concerns and the need for interdisciplinary collaboration. It also outlines prospective avenues for future research in this emerging field.
C1 [Astarita, Vittorio; Guido, Giuseppe; Haghshenas, Sina Shaffiee; Haghshenas, Sami Shaffiee] Univ Calabria, Dept Civil Engn, I-87036 Arcavacata Di Rende, Italy.
C3 University of Calabria
RP Astarita, V (corresponding author), Univ Calabria, Dept Civil Engn, I-87036 Arcavacata Di Rende, Italy.
EM vittorio.astarita@unical.it; giuseppe.guido@unical.it;
   sina.shaffieehaghshenas@unical.it; sami.shaffiee@gmail.com
RI Shaffiee Haghshenas, Sami/AAJ-5788-2020; Astarita, Vittorio/V-6194-2018;
   Guido, Giuseppe/P-3632-2015; Haghshenas, Sina Shaffiee/J-3688-2019
OI Guido, Giuseppe/0000-0001-7570-4123; Astarita,
   Vittorio/0000-0002-3673-9814; Haghshenas, Sina
   Shaffiee/0000-0003-2859-3920
FU RISK: Recovery Increasing by Social Knowledge
FX No Statement Available
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NR 51
TC 9
Z9 9
U1 14
U2 23
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2024
VL 16
IS 8
AR 3212
DI 10.3390/su16083212
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 OV6K1
UT WOS:001210091300001
OA gold
DA 2025-04-22
ER

PT J
AU Haque, MN
   Sharifi, A
AF Haque, Md. Nazmul
   Sharifi, Ayyoob
TI Justice in access to urban ecosystem services: A critical review of the
   literature
SO ECOSYSTEM SERVICES
LA English
DT Review
DE Ecosystem services; Justice; Inequity; Urban sustainability; Cities;
   Green infrastructure
ID NEW-YORK-CITY; ENVIRONMENTAL JUSTICE; METROPOLITAN-AREA; SOCIAL
   INJUSTICE; GREEN EQUITY; PARKS; MANAGEMENT; INFRASTRUCTURE;
   CLASSIFICATION; OPPORTUNITIES
AB Ecosystem services are crucial for urban resilience, climate change adaptation and mitigation, and sustainable development. Incorporating these services in urban environments involves various principles, partnerships, organizational strategies, and methodologies. A vast body of research exists on ecosystem services. However, there is a lack of studies that address equity concerns in access to urban ecosystem services. This paper critically reviews the literature to investigate the state of access to ecosystem services in urban areas. We use deductive content analysis for this purpose. We explore traditional concepts of justice and update them by examining the sources and types of ecosystem services in urban environments. We examine justice typology considering various social, environmental, infrastructural, ecological, and mobility issues. We also explore different justice dimensions, including distributional, procedural, recognitional, and restorative issues. Results showed a notable prioritization of green infrastructures (73%) over blue infrastructures (5%). Furthermore, there has been an apparent emphasis on cultural services (42%) and regulating services (25%) in offering recreational activities, fostering social integration, improving place -making capabilities, showcasing adaptability, and demonstrating resilience. An important finding is that most of the publications (87%) highlight that there is no justice in access to ecosystem services. Regarding typologies, we found that there has been more attention to environmental justice, and infrastructural, ecological, and mobility justice are underexplored. As for dimensions, more attention has been paid to distributional and recognitional justice at the cost of restorative justice. A key shortcoming is that cities in the Global South are not adequately represented in the literature, despite their significance for achieving sustainable urban development in the coming decades.
C1 [Haque, Md. Nazmul] Hiroshima Univ, Grad Sch Humanities & Social Sci, Urban Environm Sci Lab URBES, Hiroshima, Japan.
   [Haque, Md. Nazmul] Khulna Univ Engn & Technol, Dept Urban & Reg Planning, Khulna, Bangladesh.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, 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; Khulna University of Engineering & Technology
   (KUET); Hiroshima University; 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), Hiroshima Univ, Network Educ & Res Peace & Sustainabil NERPS, 1-5-1 Kagamiyama, Higashihiroshima, Hiroshima 7398529, Japan.
EM d220635@hiroshima-u.ac.jp; sharifi@hiroshima-u.ac.jp
RI Haque, Md. Nazmul/GWU-4965-2022; Sharifi, Ayyoob/M-7584-2013
OI Haque, Md. Nazmul/0000-0003-3988-5654; Sharifi,
   Ayyoob/0000-0002-8983-8613
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NR 145
TC 15
Z9 15
U1 33
U2 70
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0416
J9 ECOSYST SERV
JI Ecosyst. Serv.
PD JUN
PY 2024
VL 67
AR 101617
DI 10.1016/j.ecoser.2024.101617
EA MAR 2024
PG 18
WC Ecology; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA QU0X2
UT WOS:001223274900001
DA 2025-04-22
ER

PT J
AU Martín, Y
   Paneque, P
AF Martin, Yago
   Paneque, Pilar
TI Moving from adaptation capacities to implementing adaptation to extreme
   heat events in urban areas of the European Union: Introducing the
   U-ADAPT! research approach
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Extreme heat events; Urban adaptation; Implementation; Risk reduction;
   Heat waves
ID CLIMATE-CHANGE ADAPTATION; PRIVATE RESPONSIBILITIES; RESILIENCE; RISK;
   FRAMEWORK
AB Extreme Heat Events (EHE) are a major concern for many urban areas worldwide and are considered as one of the deadliest natural hazards globally. Climate change and socioeconomic trends (exposure and susceptibility) are expected to exacerbate the risk of urban heat stress. Several urban areas have recently declared a climate emergency and initiated the adaptation process, but progress is still patchy, uncoordinated, and of varied quality. The main constraint is the lack of mechanisms for monitoring and reporting adaptation strategies, not allowing the supervision and evaluation of the adaptation process. The EU-funded project U-ADAPT! (Urban-Adaptation) focuses on the concrete expression of adaptation to evaluate the current implementation and effectiveness of adaptation measures and strategies to reduce Heat Disaster Risk (HDR), moving the emphasis from the study of vulnerability, resilience, and potential adaptation (adaptation capacity) of communities to the actual depth and pace of the past and current adaptation process. In this article, we discuss the theoretical support and design of the project and set the base for next project stages, which ultimately aims to create a unique interdisciplinary framework and a replicable multidimensional indicator on adaptation to EHE that empower European Union citizens to demand a safe and sustainable environment and hold institutions accountable for the adaptation process to current and upcoming risks.
C1 [Martin, Yago; Paneque, Pilar] Univ Pablo de Olavide, Dept Geog Hist & Filosofia, Carretera Utrera Km 1, Seville 41013, Spain.
C3 Universidad Pablo de Olavide
RP Martín, Y; Paneque, P (corresponding author), Univ Pablo de Olavide, Dept Geog Hist & Filosofia, Carretera Utrera Km 1, Seville 41013, Spain.
EM ymargon@upo.es; ppansal@upo.es
RI ; Paneque, Pilar/H-1581-2015
OI Martin, Yago/0000-0002-0375-8971; Paneque, Pilar/0000-0003-0652-1520
FU European Union's Horizon 2020 research and innovation programme under
   the Marie Sklodowska-Curie grant [101019424]; Marie Curie Actions (MSCA)
   [101019424] Funding Source: Marie Curie Actions (MSCA)
FX This project has received funding from the European Union's Horizon 2020
   research and innovation programme under the Marie Sklodowska-Curie grant
   agreement No. [101019424].
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NR 61
TC 24
Z9 24
U1 9
U2 40
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 MAY 15
PY 2022
VL 310
AR 114773
DI 10.1016/j.jenvman.2022.114773
EA FEB 2022
PG 8
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 1K9MU
UT WOS:000798919300009
PM 35217442
OA hybrid
DA 2025-04-22
ER

PT J
AU Lebrasseur, R
AF Lebrasseur, Richard
TI From green fingers and green ring to green mitten: Helsinki's
   polycentric urbanization and its impact on green structure
SO ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY
LA English
DT Article; Early Access
DE Greenspace; Green structure; Polycentric urbanization; Landscape
   fragmentation; Peri-urban areas; Morphology
ID LANDSCAPE FRAGMENTATION; URBAN; SUSTAINABILITY; RESILIENCE; DYNAMICS;
   PATTERNS; SYSTEMS; REGIONS; SPACES
AB Urbanization changes the landscape and fragments spatial structures including greenspaces across much of the world and Europe. The resultant impacts and morphological characteristics are understudied within peri-urban regions of cities. This study analyzed the spatial qualities and relationship among peri-urban greenspaces, green structure, and polycentric urban form within the Greater Helsinki Region of Finland. Results illustrate the existing 'Green Fingers' have impacted urban development patterns. Though the Region includes many fragmented greenspaces, an overall interconnected and coherent intermixed green structure remains. Greenstructures and polycentric regions face continued threats; managing the growth of peri-urban regions is critical to maintaining a greenstructure's multiple benefits to humans and nature across the globe.
C1 [Lebrasseur, Richard] Green Infrastructure Performance Lab, Sch Resource & Environm Studies, Halifax, NS, Canada.
RP Lebrasseur, R (corresponding author), Green Infrastructure Performance Lab, Sch Resource & Environm Studies, Halifax, NS, Canada.
EM r.lebrasseur@dal.ca
OI leBrasseur, Richard/0000-0003-2489-1541
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NR 74
TC 0
Z9 0
U1 7
U2 19
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 2024 FEB 28
PY 2024
DI 10.1007/s10668-024-04611-8
EA FEB 2024
PG 22
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA JD9Z8
UT WOS:001171356700002
DA 2025-04-22
ER

PT J
AU Jesus, TC
   Portugal, P
   Costa, DG
   Vasques, F
AF Jesus, Thiago C.
   Portugal, Paulo
   Costa, Daniel G.
   Vasques, Francisco
TI Reliability and Detectability of Emergency Management Systems in Smart
   Cities under Common Cause Failures
SO SENSORS
LA English
DT Article
DE urban emergencies; urban planning; emergency management system;
   emergency detection; disaster recovery; emergency detectability
ID DISASTER; RESILIENCE
AB Urban areas are undergoing significant changes with the rise of smart cities, with technology transforming how cities develop through enhanced connectivity and data-driven services. However, these advancements also bring new challenges, especially in dealing with urban emergencies that can disrupt city life and infrastructure. The emergency management systems have become crucial elements for enabling cities to better handle urban emergencies, although ensuring the reliability and detectability of such system remains critical. This article introduces a new method to perform reliability and detectability assessments. By using Fault Tree Markov chain models, this article evaluates their performance under extreme conditions, providing valuable insights for designing and operating urban emergency systems. These analyses fill a gap in the existing research, offering a comprehensive understanding of emergency management systems functionality in complex urban settings.
C1 [Jesus, Thiago C.] State Univ Feira De Santana, DTEC UEFS, BR-44036900 Feira De Santana, Brazil.
   [Portugal, Paulo; Costa, Daniel G.] Univ Porto, Fac Engn, SYSTEC ARISE, P-4200465 Porto, Portugal.
   [Vasques, Francisco] Univ Porto, Fac Engn, INEGI, P-4169007 Porto, Portugal.
C3 Universidade Estadual de Feira de Santana; Universidade do Porto;
   Universidade do Porto
RP Portugal, P (corresponding author), Univ Porto, Fac Engn, SYSTEC ARISE, P-4200465 Porto, Portugal.
EM tcjesus@uefs.br; pportugal@fe.up.pt; danielgcosta@fe.up.pt;
   vasques@fe.up.pt
RI Jesus, Thiago/AAC-9588-2021; Vasques, Francisco/ABD-7443-2021; Portugal,
   Paulo/H-3286-2013; Costa, Daniel/I-4928-2013; Vasques,
   Francisco/B-2494-2013
OI Portugal, Paulo/0000-0002-6386-9753; Costa, Daniel/0000-0003-3988-8476;
   C. Jesus, Thiago/0000-0001-5299-6856; Vasques,
   Francisco/0000-0003-3115-0901
FU FCT/MCTES (PIDDAC)
FX No Statement Available
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NR 48
TC 4
Z9 4
U1 15
U2 33
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1424-8220
J9 SENSORS-BASEL
JI Sensors
PD MAY
PY 2024
VL 24
IS 9
AR 2955
DI 10.3390/s24092955
PG 18
WC Chemistry, Analytical; Engineering, Electrical & Electronic; Instruments
   & Instrumentation
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Chemistry; Engineering; Instruments & Instrumentation
GA QG8C7
UT WOS:001219808100001
PM 38733061
OA gold
DA 2025-04-22
ER

PT J
AU Serrano, VRD
AF Romero de avila Serrano, Vicente
TI Dynamics and distribution of the knowledge economy in contemporary
   crisis (2000-2015) in the Madrid city-region
SO KNOWLEDGE MANAGEMENT RESEARCH & PRACTICE
LA English
DT Article
DE Knowledge Economy; agglomeration economies; economic development;
   crisis; city-region; second-rank cities
ID INTENSIVE BUSINESS SERVICES; EMPLOYMENT CENTERS; EUROPEAN CITIES;
   AGGLOMERATION; SPECIALIZATION; INDUSTRIES; EVOLUTION; LOCATION
AB Over the last three decades, the rise and growth of knowledge-based economies have become central to the economic development of global and local economies. However, the 2008 crisis and the subsequent major economic restructuring process requires that we re-build our understanding of the knowledge economy (KE). Based on the foundations of recent agglomeration economies, the article discusses the relation between the knowledge economies and the spatial reconfiguration of regions and economic restructuring during a period of expansion (2000-2007) and a period of recession (2007-2015) using the case of the Madrid city-region. The article finds that: (1) the KE in metropolitan regions is anchored in a multicore network composed of a large or first-rank city and some medium-sized or second-rank cities; (2) employment in the KE is more resilient to a crisis period than other industries; (3) second-rank cities respond better than first-rank cities to a recession; (4) the city's hierarchy profile (first- or second-rank) influences the KE's sectorial composition; (5) the KE locates in relation to a complex combination of agglomeration economies, functions, amenities, and proximity to the metropolitan core. Finally, results also suggest that localisation economies and the cities' economic functions are important for the KE concentration and specialisation.
C1 [Romero de avila Serrano, Vicente] Univ Castilla La Mancha, Sch Civil Engn, Avda Camilo Jose Cela S-N, Ciudad Real 13071, Spain.
C3 Universidad de Castilla-La Mancha
RP Serrano, VRD (corresponding author), Univ Castilla La Mancha, Sch Civil Engn, Avda Camilo Jose Cela S-N, Ciudad Real 13071, Spain.
EM vicenteromeroavila@gmail.com
RI Romero de Avila Serrano, Vicente/L-2968-2014
OI Romero de Avila Serrano, Vicente/0000-0002-2257-5732
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NR 70
TC 4
Z9 4
U1 1
U2 10
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1477-8238
EI 1477-8246
J9 KNOWL MAN RES PRACT
JI Knowl. Manag. Res. Pract.
PD JAN 2
PY 2023
VL 21
IS 1
BP 146
EP 164
DI 10.1080/14778238.2020.1855087
EA DEC 2020
PG 19
WC Information Science & Library Science; Management
WE Social Science Citation Index (SSCI)
SC Information Science & Library Science; Business & Economics
GA 8S9NN
UT WOS:000598969300001
DA 2025-04-22
ER

PT J
AU Zhong, Y
   Li, YQ
AF Zhong, Yan
   Li, Yunqi
TI Statistical Evaluation of Sustainable Urban Planning: Integrating
   Renewable Energy Sources, Energy-Efficient Buildings, and Climate
   Resilience Measures
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Forecasting; Hybrid techniques; Bus sensitivity ratio; Generator
   sensitivity ratio; Climate changes
ID MANAGEMENT; SYSTEM
AB In the face of increasing climate-related challenges, sustainable urban energy networks must grapple with transmission congestion in deregulated power systems. This study introduces a novel statistical approach that synergizes two powerful methodologies for evaluating and managing urban energy networks: the integration of photovoltaic (PV) renewable energy sources and Gated Recurrent Unit (GRU)-based PV forecasting. By combining evolutionary optimization techniques with GRU forecasting, we aim to bolster the sustainability and reliability of urban energy networks while addressing climate change adaptation. In this study, we employ statistical methods, including generator sensitivity ratios and bus sensitivity ratios (BSR), to pinpoint optimal locations for PV power integration within urban networks. The Lion Optimization Algorithm (LOA), an evolutionary optimization method, is employed within a digital twin framework to optimize active power rescheduling values and congestion prices. The incorporation of GRU-based PV forecasting enhances the precision and resilience of our energy management approach. Through extensive simulations conducted on the New England 39-bus system, our findings reveal that the combination of the LOA method and GRU forecasting outperforms traditional optimization techniques such as the Ant Lion Optimizer (ALO) and Particle Swarm Optimization (PSO). This dual-optimization strategy leads to significantly reduced active power rescheduling values and congestion prices, underlining the potential of our statistical model to effectively manage congestion in transmission lines within sustainable urban energy networks. In the context of integrating renewable PV sources and adapting urban energy infrastructure to climate change impacts, the synergy of evolutionary optimization and GRU-based forecasting offers a robust pathway to enhance sustainability and reliability in urban energy networks.
C1 [Zhong, Yan; Li, Yunqi] Fuzhou Univ Int Studies & Trade, Gucuo Cultural Res Ctr, Fuzhou 350000, Peoples R China.
RP Zhong, Y (corresponding author), Fuzhou Univ Int Studies & Trade, Gucuo Cultural Res Ctr, Fuzhou 350000, Peoples R China.
EM zhongyan@fzfu.edu.cn
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NR 26
TC 4
Z9 4
U1 8
U2 28
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 105160
DI 10.1016/j.scs.2023.105160
EA JAN 2024
PG 11
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 IL5T9
UT WOS:001166502000001
DA 2025-04-22
ER

PT J
AU Rosa, A
   Santangelo, A
   Tondelli, S
AF Rosa, Angela
   Santangelo, Angela
   Tondelli, Simona
TI Investigating the Integration of Cultural Heritage Disaster Risk
   Management into Urban Planning Tools. The Ravenna Case Study
SO SUSTAINABILITY
LA English
DT Article
DE resilience; adaptive capacity; cultural heritage; risk management;
   climate change; urban planning; planning tool; Ravenna
ID CLIMATE-CHANGE ADAPTATION; CHANGE VULNERABILITY ASSESSMENTS; ADAPTIVE
   CAPACITY; CHALLENGES; REDUCTION; GOVERNANCE; FRAMEWORK
AB As increasingly recognized by scholars, climate change is posing new challenges in the field of disaster risk management and urban planning. Even though cultural heritage has passed through decades and centuries, it has never experienced such unexpected and variable events as those forecasted by climate change for the foreseeable future, making it a sensitive element of the living environment. By selecting the city of Ravenna and the cultural heritage site of the Santa Croce Church and archaeological area as a case study, the paper aims at providing an insight into the role that urban planning tools have when it comes to improving the resilience of historical areas, coping with climate change through improvements to the disaster risk management of cultural heritage. Starting from a deep analysis of the existing spatial and urban planning tools that operate at different scales on the Ravenna territory, the adaptive capacity of the historical area toward the identified risks was assessed. The results may lead, on the one hand, to improving the integration of cultural heritage risk management into urban planning tools; on the other hand, they contribute to improving the scope and the governance of the heritage management plans in order to cope with climate change risks and their effects.
C1 [Rosa, Angela; Santangelo, Angela; Tondelli, Simona] Univ Bologna, Alma Mater Studiorum, Dept Architecture, I-40136 Bologna, Italy.
   [Santangelo, Angela; Tondelli, Simona] Univ Bologna, Alma Mater Studiorum, CIRI Bldg & Construct, I-40136 Bologna, Italy.
C3 University of Bologna; University of Bologna
RP Santangelo, A (corresponding author), Univ Bologna, Alma Mater Studiorum, Dept Architecture, I-40136 Bologna, Italy.; Santangelo, A (corresponding author), Univ Bologna, Alma Mater Studiorum, CIRI Bldg & Construct, I-40136 Bologna, Italy.
EM angela.rosa2@studio.unibo.it; angela.santangelo@unibo.it;
   simona.tondelli@unibo.it
RI Tondelli, Simona/AAD-6167-2021
OI Tondelli, Simona/0000-0003-0891-7852; SANTANGELO,
   ANGELA/0000-0002-6488-3872
FU European Union [821282]; H2020 Societal Challenges Programme [821282]
   Funding Source: H2020 Societal Challenges Programme
FX This research has received funding from the European Union's Horizon
   2020 Research and Innovation Programme under grant agreement no 821282.
   The contents reflect only the authors' view and the European Union is
   not liable for any use that may be made of the information contained
   therein.
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NR 101
TC 19
Z9 20
U1 2
U2 36
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JAN
PY 2021
VL 13
IS 2
AR 872
DI 10.3390/su13020872
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 PY1FS
UT WOS:000611794900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Azadgar, A
   Nyka, L
   Salata, S
AF Azadgar, Anahita
   Nyka, Lucyna
   Salata, Stefano
TI Advancing Urban Flood Resilience: A Systematic Review of Urban Flood
   Risk Mitigation Model, Research Trends, and Future Directions
SO LAND
LA English
DT Review
DE urban flood risk; flood resiliency; inclusive urban planning; ecosystem
   services
ID ECOSYSTEM SERVICES; LAND-USE; CLIMATE; MULTISCALE; LANDSCAPE; VALUATION;
   FRAMEWORK; SUPPORT; JUSTICE; RUNOFF
AB Climate change has increased the frequency of extreme weather events, challenging traditional flood risk assessments. New methods, like InVEST's urban flood risk mitigation model (UFRM), are crucial for assessing flood-prone areas, especially those vulnerable to pluvial flooding. This systematic review examines the utilization and limitations of the UFRM model for identifying flood-prone areas and designing adaptation plans in response to climate change, based on research articles published between 2019 and 2024. The articles were identified through Scinapse and Google Scholar using predefined criteria, including relevance to UFRM applications and publication within the specified timeframe. An analysis of the 21 selected papers using bibliometric techniques reveals geographic concentrations of the case studies that utilized the UFRM model primarily in Italy, Turkey, China, and the United States, with notable research gaps in Central Europe. The journal publication trends highlight the prominence of certain journals, such as the Journal of Land. A network analysis using VOSviewer identifies thematic clusters aligned with the UFRM research areas, including Urban Planning and Nature-Based Solutions (NBSs), Urbanization and Sustainable Development, the Economic and Social Effects of Flood Mitigation, Adaptation and Risk Management, and Resilience and Vulnerability. This review contributes to gaining a deeper understanding of the research landscape regarding the utilization of the UFRM model and provides recommendations for advancing sustainable and resilient urban development practices. The review was not preregistered in a formal registry. The finding reveals that integrating automation and optimization tools to suggest different solutions for problematic nodes in urban areas is crucial for addressing multiple issues simultaneously and optimizing adaptation plans effectively.
C1 [Azadgar, Anahita; Nyka, Lucyna] Gdansk Univ Technol, Fac Architecture, Dept Urban Architecture & Waterscapes, 11-12 Narutowicza St, PL-80233 Gdansk, Poland.
   [Salata, Stefano] Politecn Milan, Dept Architecture & Urban Planning, Lab PPTE, I-20133 Milan, Italy.
C3 Fahrenheit Universities; Gdansk University of Technology; Polytechnic
   University of Milan
RP Azadgar, A (corresponding author), Gdansk Univ Technol, Fac Architecture, Dept Urban Architecture & Waterscapes, 11-12 Narutowicza St, PL-80233 Gdansk, Poland.; Salata, S (corresponding author), Politecn Milan, Dept Architecture & Urban Planning, Lab PPTE, I-20133 Milan, Italy.
EM anahita.azadgar@pg.edu.pl; lucyna.nyka@pg.edu.pl;
   stefano.salata@polimi.it
RI Salata, Stefano/B-9186-2018; azadgar, anahita/HHC-9821-2022; NYKA,
   Lucyna/H-5796-2018
OI NYKA, Lucyna/0000-0003-2064-7605; Azadgar, Anahita/0000-0003-0173-9432
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NR 82
TC 3
Z9 3
U1 27
U2 27
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 2138
DI 10.3390/land13122138
PG 28
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA Q8D2M
UT WOS:001386908100001
OA gold
DA 2025-04-22
ER

PT J
AU Zhou, WM
   Kalonji, G
   Chen, C
   Martek, I
AF Zhou, Wenmei
   Kalonji, Gretchen
   Chen, Chuan
   Martek, Igor
TI Seismic Resilience of Rural Water Supply Systems; Factor Analysis of
   Cases Set in Sichuan Province, China
SO FRONTIERS IN PUBLIC HEALTH
LA English
DT Article
DE rural water supply; rural development; earthquake; factor analysis;
   resilience
ID DISASTER RECOVERY PROJECTS; DRINKING-WATER; INFRASTRUCTURE RESILIENCE;
   ENHANCE; RISKS; INDEX; FRAMEWORK; LESSONS
AB The seismic resilience of water supply systems can be impacted by numerous factors, but what these factors are in the rural context of China is unknown. In this study, 41 potential influencing factors of seismic-resilience for rural water supply system (RWSS) were obtained through a literature review and semi-structured expert interview, comprising 26 general influencing factors (GFs) and 15 water supply safety influencing factors (SFs). This study verified and ranked these factors through a questionnaire survey delivered to RWSS stakeholders in Sichuan Province, China. Based on 123 valid, returned questionnaires, these factors are divided into 9 factor groups through factor analysis performed on GFs and SFs, respectively, of which "economic resilience" and "organizational resilience in disaster prevention stage" are shown to be the most important factor groups. Additionally, it found that the experience of earthquake events significantly affects the perceptions of stakeholders on the importance of certain factors. Specifically, stakeholders who have experienced an earthquake prioritize the post-earthquake resilience of the system, while those who have not experienced an earthquake prioritize the absorption capacity of the system in the disaster prevention stage. Thus, it is not appropriate to use fixed weights to evaluate the seismic resilience of RWSSs. Significantly, this outcome differs from existing findings on the resilience of Urban Water Supply Systems (UWSSs), where "technical resilience" is the key dimension. These findings can help decision-makers fully understand the factors affecting the seismic resilience of RWSSs in China, and in doing so, augment the strengthening of rural water supply.
C1 [Zhou, Wenmei; Kalonji, Gretchen] Sichuan Univ, Hong Kong Polytech Univ, Inst Disaster Management & Reconstruct, Chengdu, Peoples R China.
   [Chen, Chuan] Sichuan Univ, Business Sch, Chengdu, Peoples R China.
   [Martek, Igor] Deakin Univ, Sch Architecture & Built Environm, Geelong, Vic, Australia.
C3 Hong Kong Polytechnic University; Sichuan University; Sichuan
   University; Deakin University
RP Chen, C (corresponding author), Sichuan Univ, Business Sch, Chengdu, Peoples R China.
EM chenchuanscu@126.com
RI Martek, Igor/HCH-6448-2022
OI Zhou, Wenmei/0000-0001-5395-9854; Zhou, Wenmei/0009-0008-9907-5980
FU National Natural Science Foundation of China [71971147]
FX Funding This study was supported by the National Natural Science
   Foundation of China (No. 71971147). The funders have no role in the
   study design, analysis, and interpretation of the study findings.
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NR 90
TC 4
Z9 4
U1 10
U2 51
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 FEB 22
PY 2022
VL 10
AR 840379
DI 10.3389/fpubh.2022.840379
PG 17
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA ZP3OR
UT WOS:000766335000001
PM 35273942
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Pasquinelli, C
   Trunfio, M
AF Pasquinelli, Cecilia
   Trunfio, Mariapina
TI Reframing urban overtourism through the Smart-City Lens
SO CITIES
LA English
DT Article
DE Urban overtourism; Smart city; Stakeholder engagement; Human-technology
   interaction; Urban sustainable development
ID SUSTAINABLE TOURISM RESEARCH; PERCEPTIONS; QUALITY; CITIES; TRENDS
AB This conceptual paper reframes urban overtourism through the Smart-City Lens by discussing the entanglement of technological, human and social capital, which emphasizes human-technology interactions in the city. It integrates smart city drivers (i.e., actors, ICTs platforms and social capital) and urban sustainable development effects (i.e., city hospitality, sustainability and resilience), to conceptually ground four dichotomies to reinterpret, address and manage urban overtourism. This research contributes to reconceptualising and opening research avenues considering how human-technology interactions reframe the overtourism knowledge gaps: the discerning of objective and subjective overtourism, the identification of active and passive stakeholders and the definition of regulative, managerial and marketing approaches. This research makes an analytical contribution proposing an applicative framework for fieldwork and case analysis and orienting policy design in urban contexts.
C1 [Pasquinelli, Cecilia; Trunfio, Mariapina] Univ Naples Parthenope, Dept Management & Quantitat Studies, Via Gen Parisi 13, I-80132 Naples, Italy.
C3 Parthenope University Naples
RP Pasquinelli, C (corresponding author), Univ Naples Parthenope, Dept Management & Quantitat Studies, Via Gen Parisi 13, I-80132 Naples, Italy.
EM cecilia.pasquinelli@uniparthenope.it
RI Pasquinelli, Cecilia/HLQ-2890-2023; trunfio, mariapina/AAE-4782-2021
OI Pasquinelli, Cecilia/0000-0002-4924-9398
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NR 85
TC 37
Z9 37
U1 13
U2 67
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 2020
VL 102
AR 102729
DI 10.1016/j.cities.2020.102729
PG 8
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA LP8RR
UT WOS:000534585300020
DA 2025-04-22
ER

PT J
AU Behm, JE
   Bélouard, N
   Gleditsch, JM
   Phillips, PM
   Swartz, TM
AF Behm, Jocelyn E.
   Belouard, Nadege
   Gleditsch, Jason M.
   Phillips, Payton M.
   Swartz, Timothy M.
TI Trait-based approaches for understanding how biodiversity generates
   sustainable benefits in urban vegetated green infrastructure
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID PLANT FUNCTIONAL TRAITS; ECOSYSTEM SERVICES; CONCEPTUAL-FRAMEWORK;
   SPECIES-DIVERSITY; RESTORATION; HETEROGENEITY; CONNECTIVITY; RESILIENCE;
   EVOLUTION; SELECTION
AB While it is appreciated that the biodiversity within vegetated green infrastructure generates ecosystem services that improve the well-being of urban residents, advances in urban sustainability are hindered because we lack a solid mechanistic understanding of how biodiversity provides these services. Here, we outline a trait-based urban ecology agenda for researching how species' traits provide ecosystem services (trait-service relationships) in tandem with how species with desired service-providing traits establish in vegetated green infrastructure (community assembly). Because trait-service relationships and community assembly processes can differ in urban versus natural environments, this agenda will fill major knowledge gaps of how biodiversity promotes urban sustainability. Results from our research agenda can be implemented by planners and managers to enhance service provisioning and ultimately improve urban sustainability.
C1 [Behm, Jocelyn E.; Belouard, Nadege; Gleditsch, Jason M.; Phillips, Payton M.; Swartz, Timothy M.] Temple Univ, Integrat Ecol Lab, Ctr Biodivers, Dept Biol, 1925 N 12th St, Philadelphia, PA 19122 USA.
C3 Pennsylvania Commonwealth System of Higher Education (PCSHE); Temple
   University
RP Behm, JE (corresponding author), Temple Univ, Integrat Ecol Lab, Ctr Biodivers, Dept Biol, 1925 N 12th St, Philadelphia, PA 19122 USA.
EM jocelyn.behm@temple.edu
RI Phillips, Payton/K-2395-2019; Belouard, Nadege/IQW-0061-2023; Swartz,
   Timothy/GQB-0766-2022
OI Phillips, Payton/0000-0001-6440-9065; Belouard,
   Nadege/0000-0002-7968-7735
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NR 96
TC 7
Z9 7
U1 4
U2 31
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 1877-3435
EI 1877-3443
J9 CURR OPIN ENV SUST
JI Curr. Opin. Environ. Sustain.
PD AUG
PY 2022
VL 57
AR 101204
DI 10.1016/j.cosust.2022.101204
EA AUG 2022
PG 11
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 4P2BQ
UT WOS:000855200000001
OA Bronze
DA 2025-04-22
ER

PT J
AU Calderón-Argelich, A
   Benetti, S
   Anguelovski, I
   Connolly, JJT
   Langemeyer, J
   Baró, F
AF Calderon-Argelich, Amalia
   Benetti, Stefania
   Anguelovski, Isabelle
   Connolly, James J. T.
   Langemeyer, Johannes
   Baro, Francesc
TI Tracing and building up environmental justice considerations in the
   urban ecosystem service literature: A systematic review
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Review
DE Green spaces; Urban green infrastructure; Cities; Trade-offs; Equity;
   Environmental benefits
ID CLIMATE-CHANGE ADAPTATION; GREEN SPACE; POLITICAL ECOLOGY; TRADE-OFFS;
   POVERTY ALLEVIATION; CO-BENEFITS; EQUITY; VALUATION; VALUES; CITY
AB The concept of ecosystem services (ES) has mainstreamed as an interdisciplinary framework in the urban sustainability and resilience agenda. While the uptake of ES in urban areas is deeply entangled with multiple values, trade-offs, institutions, management and planning approaches, there is still a lack of a comprehensive and systematic framework to address environmental justice (EJ) in urban ES assessments. This article presents a systematic literature review to examine what factors are critical for the effective inclusion of an EJ lens in urban ES appraisals. More specifically, we assessed how distributional, procedural and recognitional EJ dimensions have been addressed, and in relation to which types of urban ES. Our results reveal that EJ considerations are currently focused on the (un)equal distribution of ES and the associated green and blue infrastructure with regard to socioeconomic groups, with special attention to income and race/ethnicity as the main mechanisms of social stratification. There is also a predominant focus on regulating and cultural ES, analyzing their role on resilience and adaptive capacity on one hand, and recreational values, social cohesion and place-making on the other. In this review, we also evaluate the interconnected dimensions of justice and their constraints, and lay out pathways for new research into intersectional and restorative approaches to justice in ES assessments. Finally, we interrogate what the role of urban ES-based planning might be in making more inclusive and just cities and explore its implications for policy and practice.
C1 [Calderon-Argelich, Amalia; Anguelovski, Isabelle; Connolly, James J. T.; Langemeyer, Johannes; Baro, Francesc] Univ Autonoma Barcelona UAB, Inst Environm Sci & Technol ICTA, Edifici ICTA ICP,Carrer Columnes S-N, Cerdanyola Del Valles 08193, Spain.
   [Benetti, Stefania] Univ Roma La Sapienza, Dept Methods & Models Econ, Terr & Finance MEMOTEF, Via Castro Laurenziano 9, I-00161 Rome, Italy.
   [Anguelovski, Isabelle; Connolly, James J. T.] Hosp del Mar Med Res Inst IMIM, Carrer Doctor Aiguader 88, Barcelona 08003, Spain.
   [Anguelovski, Isabelle] Inst Catalana Recerca & Estudis Avancats ICRE, Passeig Lluis Co 23, Barcelona 08010, Spain.
   [Connolly, James J. T.] Univ British Columbia, Sch Community & Reg Planning, 433-6333 Mem Rd, Vancouver, BC, Canada.
   [Langemeyer, Johannes] Humboldt Univ, Dept Geog, Berlin, Germany.
   [Baro, Francesc] Vrije Univ Brussel VUB, Dept Geog, Pl Laan 2, B-1050 Brussels, Belgium.
   [Baro, Francesc] Vrije Univ Brussel VUB, Dept Sociol, Pl Laan 2, B-1050 Brussels, Belgium.
C3 Autonomous University of Barcelona; Sapienza University Rome; Hospital
   del Mar Research Institute; Hospital del Mar; University of British
   Columbia; Humboldt University of Berlin; Vrije Universiteit Brussel;
   Vrije Universiteit Brussel
RP Calderón-Argelich, A (corresponding author), Univ Autonoma Barcelona UAB, Inst Environm Sci & Technol ICTA, Edifici ICTA ICP,Carrer Columnes S-N, Cerdanyola Del Valles 08193, Spain.
EM amalia.calderon@uab.cat
RI Calderón-Argelich, Amalia/GPW-7149-2022; Connolly, James/AAZ-6161-2021;
   Baro, Francesc/C-1564-2019; Langemeyer, Johannes/AAH-7736-2020
OI Baro, Francesc/0000-0002-0145-6320; Langemeyer,
   Johannes/0000-0002-0558-8486; Calderon-Argelich,
   Amalia/0000-0001-7456-8932; Benetti, Stefania/0000-0003-1442-6697
FU Generalitat de Catalunya; Generalitat de Catalunya [2017-SGR-775]; EU
   [730243, 869324]; European Research Council [678034, 818002-URBAG];
   Spanish Ministry of Science, Innovation and University through the
   2015-2016 BiodivERsA COFUND (project ENABLE) [PCIN-2016002]; "Maria de
   Maeztu" Programme for Units of Excellence of the Spanish Ministry of
   Science and Innovation [CEX2019-000940-M]; University of Rome La
   Sapienza; European Social Fund through AGAUR-FI grant; Laboratory for
   the Analysis of Social-Ecological Systems in a Globalized world (LASEG),
   Universitat Autonoma de Barcelona; European Research Council (ERC)
   [678034] Funding Source: European Research Council (ERC)
FX Authors acknowledge financial support from the following organizations:
   1) Secretary of University and Research from Generalitat de Catalunya
   and European Social Fund through AGAUR-FI grant; 2) the Laboratory for
   the Analysis of Social-Ecological Systems in a Globalized world (LASEG),
   Universitat Autonoma de Barcelona and Generalitat de Catalunya
   (2017-SGR-775); 3) the EU's Horizon 2020 framework program for research
   and innovation (project NATURVATION, grant agreement ID: 730243 and
   INTERLACE grant agreement: 869324); 4) the European Research Council
   (project GREENLULUs; grant agreement ID: 678034 and the ERC Consolidator
   Grant: 818002-URBAG); 5) Spanish Ministry of Science, Innovation and
   University through the 2015-2016 BiodivERsA COFUND (project ENABLE, code
   PCIN-2016002); 6) the "Maria de Maeztu" Programme for Units of
   Excellence of the Spanish Ministry of Science and Innovation
   (CEX2019-000940-M); 7) University of Rome La Sapienza through a doctoral
   fellowship. Finally, we also thank the anonymous reviewers of this
   article for their helpful suggestions and advice on an earlier version
   of this manuscript.
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NR 217
TC 80
Z9 82
U1 19
U2 114
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 104130
DI 10.1016/j.landurbplan.2021.104130
PG 16
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 TU5YM
UT WOS:000681111700004
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Frantzeskaki, N
   van Steenbergen, F
   Stedman, RC
AF Frantzeskaki, Niki
   van Steenbergen, Frank
   Stedman, Richard C.
TI Sense of place and experimentation in urban sustainability transitions:
   the Resilience Lab in Carnisse, Rotterdam, The Netherlands
SO SUSTAINABILITY SCIENCE
LA English
DT Article
DE Sense of place; Experimentation; Cities; Urban transitions; Vision;
   Sustainability
ID SOCIAL-ECOLOGICAL SYSTEMS; LIVING LAB; SPATIAL PERSPECTIVE; EMERGING
   RESEARCH; INNOVATION; SPACE; VISIONS; TRANSFORMATIONS; ATTACHMENT;
   CITIES
AB Experimentation as a means of governance for sustainability transitions has been advocated for years by transition scholars and geography scholars. We propose that examining the impact of experimentation requires an understanding of its embeddedness in place as a socio-spatial context. This notion of embeddedness, which conceptually aligns well with the understanding of sense of place, is under-examined in sustainability transitions literature. By conjoining the sense of place and sustainability transition literatures, we conceptualize that sense of place can be one outcome of experimentation fostering sustainability transitions. We examine urban living labs as an open format of urban experimentation, where multiple actors interact with the aim to co-design, test, and implement governance innovations. From the literature, we have distilled three phenomena that relate to a sense of place as mechanisms for transformation: a symbolic understanding or meaning of place; a narrative of place that connects to a transformative vision; and new types of relations between people and place. With this conceptual lens, we analyze our case study, an urban living lab called The Resilience Lab in a neighborhood of the city of Rotterdam, The Netherlands. Drawing from a longitudinal case study research, we contend that urban living labs can connect a sense of change (transformation) with a sense of place by co-creating new narratives of place, by co-producing knowledge on new practices and new relations between people and place, and by allowing the co-design or (re) establishment of places with symbolic meaning. As such, urban living labs facilitate urban sustainability transitions.
C1 [Frantzeskaki, Niki; van Steenbergen, Frank] Erasmus Univ, Dutch Res Inst Transit, Fac Social Sci, Burgemeester Oudlaan 40, NL-3000 DR Rotterdam, Netherlands.
   [Stedman, Richard C.] Cornell Univ, Dept Nat Resources, Human Dimens Res Unit, Fernow Hall, Ithaca, NY 14853 USA.
C3 Erasmus University Rotterdam; Erasmus University Rotterdam - Excl
   Erasmus MC; Cornell University
RP Frantzeskaki, N (corresponding author), Erasmus Univ, Dutch Res Inst Transit, Fac Social Sci, Burgemeester Oudlaan 40, NL-3000 DR Rotterdam, Netherlands.
EM Frantzeskaki@drift.eur.nl; rcs6@cornell.edu
RI Stedman, Richard/ACN-8032-2022; Frantzeskaki, Niki/AAN-1044-2021
OI Frantzeskaki, Niki/0000-0002-6983-448X
FU JPI Urban Europe GUST project (Governance of Urban Sustainability
   Transitions)
FX Authors want to thank all participants of the Resilience Lab, Carnisse
   Rotterdam. The research was supported by the JPI Urban Europe GUST
   project (Governance of Urban Sustainability Transitions). Reviewers also
   contributed with their critical comments in improving our manuscript to
   its current form.
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NR 70
TC 77
Z9 81
U1 4
U2 72
PU SPRINGER JAPAN KK
PI TOKYO
PA SHIROYAMA TRUST TOWER 5F, 4-3-1 TORANOMON, MINATO-KU, TOKYO, 105-6005,
   JAPAN
SN 1862-4065
EI 1862-4057
J9 SUSTAIN SCI
JI Sustain. Sci.
PD JUL
PY 2018
VL 13
IS 4
BP 1045
EP 1059
DI 10.1007/s11625-018-0562-5
PG 15
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA GI6UP
UT WOS:000434638900009
PM 30147796
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU D'Ambrosio, V
   Di Martino, F
   Miraglia, V
AF D'Ambrosio, Valeria
   Di Martino, Ferdinando
   Miraglia, Vittorio
TI A GIS-based framework to assess heatwave vulnerability and impact
   scenarios in urban systems
SO SCIENTIFIC REPORTS
LA English
DT Article
ID WAVE VULNERABILITY; INDEX; CITY
AB In this work, we propose a GIS-based platform aimed at the analysis of heatwave scenarios risks produced in urbanised environments, applied to assess vulnerability and impact heatwave scenarios. Our framework implements a hierarchical model that represents a good trade-off between forecast accuracy and portability in different urban fabrics, apart from the spatial scale of the data, using topographic and remote sensing spatial data provided by institutional agencies. The framework has been applied to two study areas: the dense city of Naples (Italy) and the intermediately populated city of Avellino (Italy) in order to evaluate its accuracy performances and portability in different urban fabrics. Our framework can be used by urban planners and decision makers as a tool to locate potential risk zones where it is necessary to implement climate-resilient solutions.
C1 [D'Ambrosio, Valeria; Di Martino, Ferdinando; Miraglia, Vittorio] Univ Napoli Federico II, Dipartimento Architettura, Via Toledo 402, I-80134 Naples, Italy.
   [Di Martino, Ferdinando] Univ Napoli Federico II, Ctr Interdipartimentale Ric A Calza Bini, Via Toledo 402, I-80134 Naples, Italy.
C3 University of Naples Federico II; University of Naples Federico II
RP Di Martino, F (corresponding author), Univ Napoli Federico II, Dipartimento Architettura, Via Toledo 402, I-80134 Naples, Italy.; Di Martino, F (corresponding author), Univ Napoli Federico II, Ctr Interdipartimentale Ric A Calza Bini, Via Toledo 402, I-80134 Naples, Italy.
EM fdimarti@unina.it
RI Di Martino, Ferdinando/H-8056-2019
OI Miraglia, Vittorio/0009-0005-1817-4142
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NR 28
TC 9
Z9 9
U1 4
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 AUG 11
PY 2023
VL 13
IS 1
AR 13073
DI 10.1038/s41598-023-39820-0
PG 18
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA S0QJ5
UT WOS:001068298400016
PM 37567928
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Bediako, IA
   Zhao, XC
   Ampimah, BC
   Boamah, KB
   Mensah, SO
AF Bediako, Isaac Asare
   Zhao, Xicang
   Ampimah, Benjamin Chris
   Boamah, Kofi Baah
   Mensah, Samuel Owusu
TI Exogenous pressures and probabilistic assessment of risk and
   vulnerability of urban water systems in Ghana
SO URBAN WATER JOURNAL
LA English
DT Article
DE Exogenous pressures; vulnerability; urban water system
ID CLIMATE-CHANGE; RESOURCES; GROWTH
AB Risk and vulnerability assessment of urban water systems can be extended to include several components. This work formulates a probable quantitative assessment of risk and vulnerability of urban water system based on climatic conditions and urban population growth. Climate change scenarios and population projections are used to estimate susceptibility to water supply systems' risk and vulnerability. Quantile regression was used to establish the exponent correlation between the climate variables and population; and evaluate their consequential influences on urban water supply systems. We complemented the analysis with a probabilistic model to assess the robustness of urban water system that depends wholly on the climate for freshwater source. The study established that Climatic conditions, though uncertain, point to freshwater deficiency in the future. Moreover, population trends project a higher urban population thereby increasingly lowering water per capita and subsequently leading to doubtful urban water system's resilience to the exogenous pressures.
C1 [Bediako, Isaac Asare; Zhao, Xicang; Boamah, Kofi Baah; Mensah, Samuel Owusu] Jiangsu Univ, Fac Management Sci & Engn, Zhenjiang, Peoples R China.
   [Bediako, Isaac Asare] Koforidua Tech Univ, Sch Business & Management Studies, Koforidua, Ghana.
   [Ampimah, Benjamin Chris] Cape Coast Tech Univ, Dept Math Stat & Comp Studies, Cape Coast, Ghana.
C3 Jiangsu University
RP Bediako, IA (corresponding author), Jiangsu Univ, Fac Management Sci & Engn, Zhenjiang, Peoples R China.; Bediako, IA (corresponding author), Koforidua Tech Univ, Sch Business & Management Studies, Koforidua, Ghana.
EM isaacasareb@gmail.com
RI Boamah, Kofi/I-1709-2019
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NR 24
TC 2
Z9 2
U1 2
U2 12
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
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VL 15
IS 6
BP 609
EP 614
DI 10.1080/1573062X.2018.1529188
PG 6
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA GZ8YX
UT WOS:000449783400014
DA 2025-04-22
ER

PT J
AU Anderson, V
   Gough, WA
   Zgela, M
   Milosevic, D
   Dunjic, J
AF Anderson, Vidya
   Gough, William A.
   Zgela, Matej
   Milosevic, Dragan
   Dunjic, Jelena
TI Lowering the Temperature to Increase Heat Equity: A Multi-Scale
   Evaluation of Nature-Based Solutions in Toronto, Ontario, Canada
SO ATMOSPHERE
LA English
DT Article
DE built environment; climate change; green roofs; green infrastructure;
   green walls; heat mitigation; temperature; urban agriculture; urban heat
   island; urban forestry
ID ISLAND MITIGATION STRATEGIES; AIR-POLLUTION REMOVAL; GREEN
   INFRASTRUCTURE; URBAN VEGETATION; NITROGEN-DIOXIDE; CLIMATE-PROOF;
   LAND-COVER; ROOFS; DEPOSITION; DENSITY
AB Nature-based solutions (NbS) present an opportunity to reduce rising temperatures and the urban heat island effect. A multi-scale study in Toronto, Ontario, Canada, evaluates the effect of NbS on air and land surface temperature through two field campaigns at the micro and meso scales, using in situ measurements and LANDSAT imagery. This research demonstrates that the application of NbS in the form of green infrastructure has a beneficial impact on urban climate regimes with measurable reductions in air and land surface temperatures. Broad implementation of green infrastructure is a sustainable solution to improve the urban climate, enhance heat and greenspace equity, and increase resilience.
C1 [Anderson, Vidya; Gough, William A.] Univ Toronto Scarborough, Dept Phys & Environm Sci, Climate Lab, Toronto, ON M1C 1A4, Canada.
   [Zgela, Matej] Univ Zagreb, Fac Sci, Dept Geophys, Horvatovac 95, Zagreb 10000, Croatia.
   [Milosevic, Dragan; Dunjic, Jelena] Univ Novi Sad, Fac Sci, Dept Geog Tourism & Hotel Management, Trg Dositeja Obradov 3, Novi Sad 21000, Vojvodina, Serbia.
C3 University of Toronto; University Toronto Scarborough; University of
   Zagreb; University of Novi Sad
RP Anderson, V (corresponding author), Univ Toronto Scarborough, Dept Phys & Environm Sci, Climate Lab, Toronto, ON M1C 1A4, Canada.
EM vidya.anderson@utoronto.ca; william.gough@utoronto.ca;
   matej.zgela@gfz.hr; dragan.milosevic@dgt.uns.ac.rs;
   jelenad@dgt.uns.ac.rs
RI Gough, William/L-5231-2013; Dunjić, Jelena/AAG-6585-2021; Milosevic,
   Dragan/S-5510-2016
OI Milosevic, Dragan/0000-0001-5050-0052; Anderson,
   Vidya/0000-0001-6784-4046; Zgela, Matej/0000-0002-5459-0099; Dunjic,
   Jelena/0000-0002-5427-378X
FU W.A.G.'s Natural Sciences and Engineering Research Council of Canada
   (NSERC) [RGPIN-2018-06801]
FX The authors are supported by W.A.G.'s Natural Sciences and Engineering
   Research Council of Canada (NSERC) Grant RGPIN-2018-06801.
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NR 111
TC 13
Z9 13
U1 15
U2 81
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4433
J9 ATMOSPHERE-BASEL
JI Atmosphere
PD JUL
PY 2022
VL 13
IS 7
AR 1027
DI 10.3390/atmos13071027
PG 20
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA 3K1DS
UT WOS:000833825200001
OA gold
DA 2025-04-22
ER

PT J
AU Kirby, A
AF Kirby, Andrew
TI Adapting cities, adapting the curriculum
SO GEOGRAPHY
LA English
DT Article
ID URBAN HEAT-ISLAND; CLIMATE; RESILIENCE; CITY; SUSTAINABILITY;
   ADAPTATION; IMPACT
AB This article is the second of two on teaching about sustainability and cities in geography. The first article set the scene by assessing sustainability initiatives and arguing that the most profound challenge facing urban communities in the twenty-first century is adaptation (Kirby, 2014). This second article explores these claims in greater detail and goes on to show the potential for geographic research and education in this arena. Via a series of examples, this article demonstrates that existing approaches, such as planning, resilience and sustainability, are all shackled to broad normative concepts, when it is highly localised responses that are required to deal with the problems cities face in the coming decades. With its ability to offer a curriculum that incorporates the singularity of individual communities, geography is uniquely placed to offer leadership in this context.
C1 Arizona State Univ, Sch Social & Behav Sci, Phoenix, AZ 85004 USA.
C3 Arizona State University; Arizona State University-Downtown Phoenix
RP Kirby, A (corresponding author), Arizona State Univ, Sch Social & Behav Sci, Phoenix, AZ 85004 USA.
EM andrew.kirby@asu.edu
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PU TAYLOR & FRANCIS LTD
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SN 0016-7487
EI 2043-6564
J9 GEOGRAPHY
JI Geography
PD SUM
PY 2014
VL 99
BP 90
EP 98
PN 2
PG 9
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA AI5XA
UT WOS:000336941800006
DA 2025-04-22
ER

PT J
AU Marsal-Llacuna, ML
   Segal, ME
AF Marsal-Llacuna, Maria-Luisa
   Evan Segal, Mark
TI The Intelligenter Method (II) for "smarter" urban policy-making and
   regulation drafting
SO CITIES
LA English
DT Article
DE Smart sustainability; Urban intelligence; Higher education taught
   method; Master's program in smart cities
ID LAND-USE; CITIES; QUALITY
AB The Intelligenter Method is based on the innovative idea of collaborations discovery in urban systems. The Intelligenter Method shows that what makes an urban project, masterplan, policy, or regulation smart is not its sophisticated architecture and master planning, nor complexity and legal engineering in a technological environment, but rather qualitative and quantitative collaborations that urban subsystems being studied can establish with related subsystems and stakeholders. Furthermore, this safeguards sustainability while promoting urban development and improving resilience. This Method is also applicable to intelligenter urban planning and city projects. This first part of the methodology is published in a separate paper in this Cities issue with the title "The Intelligenter Method (I) for making 'smarter' city projects and plans". (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Marsal-Llacuna, Maria-Luisa; Evan Segal, Mark] Intelligenter Res Assoc, 28 Major St, Barcelona 08712, Spain.
RP Marsal-Llacuna, ML (corresponding author), Intelligenter Res Assoc, 28 Major St, Barcelona 08712, Spain.
EM llmarsal@intelligenter.org; msegal@intelligenter.org
OI Marsal-Llacuna, Maria-Lluisa/0000-0001-8855-3328
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NR 56
TC 18
Z9 21
U1 2
U2 35
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 JAN
PY 2017
VL 61
BP 83
EP 95
DI 10.1016/j.cities.2016.05.006
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA EJ1WN
UT WOS:000393001100010
DA 2025-04-22
ER

PT J
AU Van Leeuwen, CJ
   Koop, SHA
   Sjerps, RMA
AF Van Leeuwen, C. J.
   Koop, S. H. A.
   Sjerps, R. M. A.
TI City Blueprints: baseline assessments of water management and climate
   change in 45 cities
SO ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY
LA English
DT Article
DE Blue City Index (R); Resilient cities; Water governance; Water scarcity;
   Climate adaptation
ID 24 INDICATORS; SUSTAINABILITY; ECOLOGY
AB Climate change and urbanization are among the most significant trends of the twenty-first century, affecting global natural resources such as water, economic development and human well-being. The growth of the world population will be absorbed by the cities. The necessity of cities adapting to these trends calls for radical changes in urban water management. In this paper, baseline assessments, i.e., City Blueprints, have been carried out for 45 municipalities and regions in 27 countries, mainly in Europe. The assessments showed that cities vary considerably with regard to their water management. This is also captured in the Blue City Index(A (R)) (BCI), the arithmetic mean of 24 indicators comprising the City Blueprint(A (R)). Theoretically, the BCI has a minimum score of 0 and a maximum score of 10. The actual BCIs in the 45 cities and regions varied from 3.5 (Kilamba Kiaxi in Angola) to 8.5 (Helsingborg in Sweden). The BCI was positively and significantly correlated with the gross domestic product per person, the ambitions of the local authorities regarding water management, the voluntary participation index and governance indicators according to the World Bank (2013). The study also demonstrated a very significant correlation between the BCI and the University of Notre Dame Global Adaptation Index. The impacts of water scarcity and floods in cities are discussed. It is concluded that cities in transitional and developing countries are particularly at risk.
C1 [Van Leeuwen, C. J.; Koop, S. H. A.; Sjerps, R. M. A.] KWR Watercycle Res Inst, Groningenhaven 7, NL-3433 PE Nieuwegein, Netherlands.
   [Van Leeuwen, C. J.; Koop, S. H. A.] Univ Utrecht, Copernicus Inst Sustainable Dev & Innovat, Heidelberglaan 2, NL-3584 CS Utrecht, Netherlands.
C3 KWR Watercycle Research Institute; Utrecht University
RP Van Leeuwen, CJ (corresponding author), KWR Watercycle Res Inst, Groningenhaven 7, NL-3433 PE Nieuwegein, Netherlands.; Van Leeuwen, CJ (corresponding author), Univ Utrecht, Copernicus Inst Sustainable Dev & Innovat, Heidelberglaan 2, NL-3584 CS Utrecht, Netherlands.
EM Kees.van.Leeuwen@kwrwater.nl
RI Koop, Steven/J-8116-2019; van Leeuwen, Kees/S-5815-2016
OI Koop, Steven/0000-0001-9906-3746; van Leeuwen, Kees/0000-0003-1605-4268
FU Netherlands TKI Water Technology Program [T550004]; European Commission
   [265122, 642354]; H2020 Societal Challenges Programme [642354] Funding
   Source: H2020 Societal Challenges Programme
FX We would like to thank all city representatives for their participation
   in this study. In particular, we would like to thank Misagh Mottaghi
   (Lund University in Sweden) for her work to contact and assess cities in
   Sweden. We would also like to thank Ciprian Nanu (EIP Water Secretariat)
   for his efforts to contact cities in Central and Eastern Europe. We
   would also like to thank Zsoka Ardai (Budapest, Hungary) for her
   involvement in the assessments of both Budapest and Wroclaw, and
   Professor Zalewski (European Regional Centre for Ecohydrology in Lodz)
   for the assessment of Lodz. This report is a summary of activities that
   has been carried out over a period of more than 4 years. The City
   Blueprint activities started in 2011 as institutional research of KWR
   Watercycle Research Institute in the context of Watershare (R): sharing
   knowledge in the water sector (http://www.watershare.eu/). The
   methodology has been applied in the context of the EU Research Project
   TRUST (Transitions to the Urban Water Services of Tomorrow) and further
   received funding from the Netherlands TKI Water Technology Program
   (Project T550004). The City Blueprint Action Group is part of the
   governance activity of the European Innovation Partnership on Water of
   the European Commission (European Commission 2015), coordinated by both
   Dr. Richard Elelman of Fundacio CTM Centre Tecnologic and NETWERC H2O
   (Manresa, Spain) and Prof. Dr. Kees Van Leeuwen of KWR Watercycle
   Research Institute. The European Commission is acknowledged for funding
   TRUST in the 7th Framework Programme under Grant Agreement No. 265122
   and for BlueSCities in H2020-Water under Grant Agreement No. 642354.
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NR 42
TC 25
Z9 25
U1 0
U2 57
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 AUG
PY 2016
VL 18
IS 4
BP 1113
EP 1128
DI 10.1007/s10668-015-9691-5
PG 16
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA DR3FM
UT WOS:000379788000011
OA hybrid
DA 2025-04-22
ER

PT J
AU Tabassum, S
   Manea, A
   Leishman, MR
AF Tabassum, Samiya
   Manea, Anthony
   Leishman, Michelle R.
TI Limiting the impact of insect pests on urban trees under climate change
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Global warming; Herbivory; Management; Resilience; Urban diversity;
   Urban greening
ID ASIAN LONGHORNED BEETLE; GROWTH; HEAT; CITIES
AB Insect herbivore pests have been identified as a significant threat to the health and survival of urban trees. In the future, these pest-tree interactions in urban areas may be altered by the increased variability in environmental conditions projected under climate change. However, our understanding of how this may occur is limited. In this short communication, we discuss the factors that increase urban forest vulnerability to insect pests and how climate change will alter these factors. We then discuss how we can help to reduce the negative effects of these factors through actions such as diversifying our urban forests, reducing plant stress and increasing our capacity for early detection of insect pests using emerging biosurveillance technologies. In a time with increasing globalisation aiding in the transport of pests between urban areas, it is important that we remain vigilant to the everincreasing threats that can compromise our urban green assets and the benefits they provide.
C1 [Tabassum, Samiya; Manea, Anthony; Leishman, Michelle R.] Macquarie Univ, Sch Nat Sci, N Ryde, NSW 2109, Australia.
C3 Macquarie University
RP Manea, A (corresponding author), Macquarie Univ, Sch Nat Sci, N Ryde, NSW 2109, Australia.
EM anthony.manea@mq.edu.au
RI Leishman, Michelle/AAU-4102-2020; Tabassum, Samiya/H-8486-2014;
   Leishman, Michelle/G-9726-2012
OI Tabassum, Samiya/0000-0002-8402-8099; Leishman,
   Michelle/0000-0003-4830-5797; Manea, Anthony/0000-0002-0956-4529
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NR 48
TC 5
Z9 5
U1 7
U2 19
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 APR
PY 2024
VL 94
AR 128246
DI 10.1016/j.ufug.2024.128246
EA FEB 2024
PG 5
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 LQ9T0
UT WOS:001188392000001
OA hybrid
DA 2025-04-22
ER

PT J
AU Huchzermeyer, M
   Misselwitz, P
AF Huchzermeyer, Marie
   Misselwitz, Philipp
TI Coproducing inclusive cities? Addressing knowledge gaps and conflicting
   rationalities between self-provisioned housing and state-led housing
   programmes
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID LIVING-CONDITIONS; POLICY; NEOLIBERALISM; CONSTRUCTION; PROJECTS; SLUMS;
   INDIA
AB Globally, and particularly in the global south, the majority of urban housing stock occupied by economically weak households has not been built through state programmes or formal market delivery, but by households themselves. While global policies like the new UN Sustainable Development Goals are beginning to recognise the importance of 'inclusive, resilient and sustainable cities', housing policies in most countries do not build on vibrant self-provisioning practices as a means to achieving them, focusing instead on centralised delivery programmes and market dynamics. A 'Co-op City Network' explored this across Brazil, Eastern and South Africa, India and Germany, finding that networked, transdisciplinary, action-oriented research is needed to help overcome established binaries between programmed and self-provisioned housing and forge new co-designing approaches.
C1 [Huchzermeyer, Marie] Univ Witwatersrand, Sch Architecture & Planning, CUBES, John Moffat Bldg,East Campus,Private Bag 3, ZA-2050 Johannesburg, South Africa.
   [Misselwitz, Philipp] Tech Univ Berlin, Int Urbanism & Design Habitat Unit, Sch Planning Bldg Environm 6, Dept Architecture, Str 17,Juni 135, D-10623 Berlin, Germany.
C3 University of Witwatersrand; Technical University of Berlin
RP Misselwitz, P (corresponding author), Tech Univ Berlin, Int Urbanism & Design Habitat Unit, Sch Planning Bldg Environm 6, Dept Architecture, Str 17,Juni 135, D-10623 Berlin, Germany.
EM misselwitz@tu-berlin.de
RI Huchzermeyer, Marie/HZK-3339-2023
FU Technische Universitat Berlin; Gesellschaft fur Internationale
   Zusammenarbeit (GIZ) in Rwanda; Swedish International Development
   Cooperation Agency (Sida) [T2S_PP_332]
FX We would like to thank all partners and contributors in Brazil, Germany,
   India and various African countries including Malawi, Rwanda, South
   Africa and Tanzania who participated in a range of workshops conducted
   in 2014 and 2015. A particular thanks goes to the co-convenors of these
   workshops and colleagues of COCINET Gautam Bhan, Rainer Hehl, Jorg
   Stollmann, Tile von Damm and the contributors to the Berlin workshop
   Grace Lubaale (UN-Habitat) and Abdoumaliq Simone. We also thank the host
   institutions Instituto CASA, Rio de Janeiro, the Indian Institute for
   Human Settlements (IIHS), Goethe Institute Daressalaam and Technical
   University Berlin. The Technische Universitat Berlin and the
   Gesellschaft fur Internationale Zusammenarbeit (GIZ) in Rwanda helped to
   fund the project activities in Daressalaam and Berlin. Finally, we thank
   the International Social Science Council's Transformations to
   Sustainability programme (Project ID. T2S_PP_332), programme funded by
   the Swedish International Development Cooperation Agency (Sida).
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NR 47
TC 29
Z9 32
U1 2
U2 22
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 JUN
PY 2016
VL 20
BP 73
EP 79
DI 10.1016/j.cosust.2016.07.003
PG 7
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 EE3RH
UT WOS:000389513300013
DA 2025-04-22
ER

PT J
AU Xie, MK
   Wang, RJ
   Yang, J
   Cheng, YN
AF Xie, Mingkun
   Wang, Ruijun
   Yang, Jing
   Cheng, Yuning
TI A Monitoring and Control System for Stormwater Management of Urban Green
   Infrastructure
SO WATER
LA English
DT Article
DE stormwater management performance; urban green infrastructure; real-time
   monitoring; intelligent control; Internet of things
AB Urban green infrastructure (UGI) can be used as a sustainable stormwater management approach. UGI can bring numerous ecological benefits to cities, including increased urban resilience, increased availability of water resources, and optimization of habitats. This paper used empirical research methods to describe an Internet of things (IoT)-based UGI monitoring and control system for stormwater management (MCSSWM). Using a Xuzhou-based practical project in China as a case study, we introduce the construction process, method, and monitoring results of the system. The results showed that the MCSSWM could be beneficial for UGI ecological performance evaluation and management.
C1 [Xie, Mingkun; Wang, Ruijun; Yang, Jing; Cheng, Yuning] Southeast Univ, Sch Architecture, Dept Landscape Architecture, Nanjing 210096, Peoples R China.
C3 Southeast University - China
RP Cheng, YN (corresponding author), Southeast Univ, Sch Architecture, Dept Landscape Architecture, Nanjing 210096, Peoples R China.
EM mingkun.xie@seu.edu.cn; ruijun1986@outlook.com; 230159012@seu.edu.cn;
   101004222@seu.edu.cn
RI Yang, Mingjun/ABA-2682-2020
OI mingkun, xie/0000-0001-9294-7119
FU National Natural Science Foundation of China [51838003]
FX This research was funded by the National Natural Science Foundation of
   China, grant number 51838003.
CR Ahiablame LM, 2012, WATER AIR SOIL POLL, V223, P4253, DOI 10.1007/s11270-012-1189-2
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NR 22
TC 7
Z9 9
U1 3
U2 66
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD JUN
PY 2021
VL 13
IS 11
AR 1438
DI 10.3390/w13111438
PG 8
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA SR1RF
UT WOS:000660821200001
OA gold
DA 2025-04-22
ER

PT J
AU Deng, ZT
   Xie, ZQ
   Jiang, FS
   Xu, JR
   Yang, SQ
   Xu, T
   Zhao, L
   Chen, YH
   He, JL
   Hou, ZQ
AF Deng, Zhanting
   Xie, Zhiqiang
   Jiang, Fengshan
   Xu, Jiarui
   Yang, Shouquan
   Xu, Tong
   Zhao, Lei
   Chen, Yuhan
   He, Jianglong
   Hou, Zhiqun
TI Research on the coupling coordination of land use and eco-resilience
   based on entropy weight method: a case study on Dianchi Lake Basin
SO LANDSCAPE AND ECOLOGICAL ENGINEERING
LA English
DT Article
DE Land use; Eco-resilience; Coupling model; Coupling coordination degree
ID MOVING WINDOW ANALYSIS; ECOLOGICAL RESILIENCE; SPATIOTEMPORAL ANALYSIS;
   LANDSCAPE PATTERN; AREA; SYSTEMS
AB Recently, rapid urbanization has contributed to an increasingly dominant trend of people congregating around river basins. As a result, significant changes in land use structure occur, leading to alterations in ecosystem structure and gradual degradation of ecological service functions. Using the DLB (Dianchi Lake Basin) in southwestern China as the research area, this essay analyzed its land use structure in 2020 and constructed an urban eco-resilience evaluation system based on the three dimensions of "resistibility, adaptability, and recuperability" derived from the eco-resilience theory. Meanwhile, the physical coupling model was used to calculate the coupling coordination degree of land use and eco-resilience in the area. Research shows: (1) the DLB is a complete and relatively independent ecosystem, with diverse land use types in the watershed, and the land use structure of the watershed is related to altitude and economic development; (2) the overall eco-resilience of the area has significant spatial differences in distribution. The eco-resilience of the lakeside built-up area is the lowest eco-resilience, and the regions with higher resilience are primarily those surrounding the lake or hills. (3) According to the coupling coordination degree model, the calculated coupling degree of land use and eco-resilience is 0.49, and the coordination degree is 0.38, indicating early stages of the coupling coordination progress. This paper developed a comprehensive evaluation model of land use and river basin eco-resilience, and studied the coupling relationship between the two. This holds theoretical and practical significance for ecological protection and sustainable development of DLB.
C1 [Deng, Zhanting; Xie, Zhiqiang; Jiang, Fengshan; Xu, Tong] Yunnan Univ, Sch Earth Sci, Kunming 650504, Peoples R China.
   [Xu, Jiarui; Yang, Shouquan] Yunnan Univ, Inst Int Rivers & Ecosecur, Kunming 650504, Peoples R China.
   [He, Jianglong; Hou, Zhiqun] Kunming Surveying & Mapping Inst, Kunming 650506, Peoples R China.
   [Zhao, Lei] Kunming Surveying & Mapping Management Ctr, Kunming 650599, Peoples R China.
   [Chen, Yuhan] West Yunnan Univ Appl Sci, Sch Continuing Educ, Dali 671000, Peoples R China.
   [Xu, Tong] Yunnan Inst Water & Hydropower Engn lnvestigat Des, Spatial Informat Branch, Kunming 650021, Peoples R China.
   [Yang, Shouquan] Chongqing Planning & Nat Resources Survey & Monito, Chongqing 401121, Peoples R China.
C3 Yunnan University; Yunnan University; West Yunnan University of Applied
   Sciences
RP Xie, ZQ (corresponding author), Yunnan Univ, Sch Earth Sci, Kunming 650504, Peoples R China.
EM dzt@mail.ynu.edu.cn; xzq_2019@ynu.edu.cn; florachaing@mail.ynu.edu.cn;
   jiarui-xu@outlook.com; 1609091387@qq.com; 1565092270@qq.com;
   54784341@qq.com; chenyuhan98@21cn.com; wind9158@126.com;
   ynkmhzq@aliyun.com
RI Zhang, Xitian/AAX-5010-2021
FU Open Research Fund of Key Laboratory of Digital Cartography and Land
   Information of the Ministry of Natural Resources [72361035]; National
   Natural Science Foundation of China [CKWV20221029/KY]; Open Research
   Fund of Yangtze River Scientific Research Institute [2022]; Yunnan
   Province Industry Education Integration Postgraduate Joint Training Base
   Project [K00000135]; Science and Technology Plan Project of Yunnan
   Provincial Department of Housing and Urban-Rural Development
   [KCSZ202301]; Yunnan University Graduate Ideological and Political
   Demonstration Course Project; South Surveying & Mapping Technology Co.,
   Ltd. (SOUTH) in Guangzhou
FX This research was made possible through the generous support of several
   grants: National Natural Science Foundation of China (Grant No.
   72361035), Open Research Fund of Yangtze River Scientific Research
   Institute (Grant No. CKWV20221029/KY), Yunnan Province Industry
   Education Integration Postgraduate Joint Training Base Project (2022),
   Science and Technology Plan Project of Yunnan Provincial Department of
   Housing and Urban-Rural Development (Grant No. K00000135), Yunnan
   University Graduate Ideological and Political Demonstration Course
   Project (Grant No. KCSZ202301). We are grateful for the support from
   South Surveying & Mapping Technology Co., Ltd. (SOUTH) in Guangzhou, as
   well as Kunming Surveying and Mapping Institute for their technological
   support. We also extend our appreciation to the industry experts and
   scholars for their assistance in completing this article.
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NR 75
TC 6
Z9 6
U1 22
U2 55
PU SPRINGER JAPAN KK
PI TOKYO
PA SHIROYAMA TRUST TOWER 5F, 4-3-1 TORANOMON, MINATO-KU, TOKYO, 105-6005,
   JAPAN
SN 1860-1871
EI 1860-188X
J9 LANDSC ECOL ENG
JI Landsc. Ecol. Eng.
PD APR
PY 2024
VL 20
IS 2
BP 129
EP 145
DI 10.1007/s11355-023-00585-3
EA FEB 2024
PG 17
WC Biodiversity Conservation; Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA ME4V0
UT WOS:001159591100001
DA 2025-04-22
ER

PT J
AU Ruiz-Puente, C
AF Ruiz-Puente, Carmen
TI Proposal of a Conceptual Model to Represent Urban-Industrial Systems
   from the Analysis of Existing Worldwide Experiences
SO SUSTAINABILITY
LA English
DT Article
DE complex systems; industrial ecology; urban-industrial symbiosis;
   urban-industrial systems; urban metabolism
ID SYMBIOSIS; BENEFITS; SUZHOU; CITY
AB The adoption of Industrial Symbiosis (IS) practices within urban areas is gaining interest due to the environmental impacts entailed by the development of cities. However, there is still a lack of knowledge about how the relationships between industrial and urban areas can be modelled. In this context, this research aimed at posing a conceptual model to understand and represent Urban-Industrial Systems (UIS). To this end, a set of worldwide previous UIS experiences were overviewed to identify the agents, dynamics, and collaboration opportunities that characterize them. The multi-perspective analysis of these cases indicated that UIS are complex systems, which means that they are autonomous, self-organized, responsive, nonlinear, and willing to consolidate their resilience. As such, Agent-Based Models (ABM) were suggested to be the most suitable approach for their representation.
C1 [Ruiz-Puente, Carmen] Univ Cantabria, Dept Transport & Projects & Proc Technol, INGEPRO Res Grp, Santander 39005, Spain.
C3 Universidad de Cantabria
RP Ruiz-Puente, C (corresponding author), Univ Cantabria, Dept Transport & Projects & Proc Technol, INGEPRO Res Grp, Santander 39005, Spain.
EM ruizpm@unican.es
RI Ruiz-Puente, Carmen/K-4161-2015
OI Ruiz-Puente, Carmen/0000-0001-5854-9694
FU Spanish Ministry of Science, Innovation and Universities
   [DPI2017-88127-R]
FX This research was funded by the Spanish Ministry of Science, Innovation
   and Universities, grant number DPI2017-88127-R (AEI/FEDER, UE).
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NR 49
TC 0
Z9 0
U1 2
U2 22
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 9292
DI 10.3390/su13169292
PG 15
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 UH8OA
UT WOS:000690181600001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Muñoz-Erickson, TA
   Campbell, LK
   Childers, DL
   Grove, JM
   Iwaniec, DM
   Pickett, STA
   Romolini, M
   Svendsen, ES
AF Munoz-Erickson, Tischa A.
   Campbell, Lindsay K.
   Childers, Daniel L.
   Grove, J. Morgan
   Iwaniec, David M.
   Pickett, Steward T. A.
   Romolini, Michele
   Svendsen, Erika S.
TI Demystifying governance and its role for transitions in urban
   social-ecological systems
SO ECOSPHERE
LA English
DT Article
DE governance; power; social networks; social-ecological systems;
   sustainability transitions; urban
ID SUSTAINABILITY TRANSITIONS; MANAGEMENT; RESILIENCE; NETWORKS; PATHWAYS;
   CITIES; POLICY; CITY
AB Governance is key to sustainable urban transitions. Governance is a system of social, power, and decision-making processes that acts as a key driver of resource allocation and use, yet ecologists-even urban ecologists-seldom consider governance concepts in their work. Transitions to more sustainable futures are becoming increasingly important to the management of many ecosystems and landscapes, and particularly so for urban systems. We briefly identify and synthesize important governance dimensions of urban sustainability transitions, using illustrations from cities in which long-term social-ecological governance research is underway. This article concludes with a call to ecologists who are interested in environmental stewardship, and to urban ecologists in particular, to consider the role of governance as a driver in the dynamics of the systems they study.
C1 [Munoz-Erickson, Tischa A.] US Forest Serv, Int Inst Trop Forestry, USDA, 1201 Calle Ceiba, Rio Piedras, PR 00926 USA.
   [Campbell, Lindsay K.; Svendsen, Erika S.] US Forest Serv, Northern Res Stn, USDA, New York City Urban Field Stn, 431 Walter Reed Rd, Bayside, NY 11359 USA.
   [Childers, Daniel L.; Iwaniec, David M.] Arizona State Univ, Sch Sustainabil, POB 875502, Tempe, AZ 85287 USA.
   [Grove, J. Morgan] Arizona State Univ, Northern Res Stn, USDA, Suite 350,5523 Res Pk Dr, Baltimore, MD 21228 USA.
   [Pickett, Steward T. A.] Cary Inst Ecosyst Studies, 2801 Sharon Turnpike,Box AB, Millbrook, NY 12545 USA.
   [Romolini, Michele] Loyola Marymount Univ, Ctr Urban Resilience, 1 LMU Dr,113 Res Annex, Los Angeles, CA 90045 USA.
C3 United States Department of Agriculture (USDA); United States Forest
   Service; United States Department of Agriculture (USDA); United States
   Forest Service; Arizona State University; Arizona State
   University-Tempe; United States Department of Agriculture (USDA);
   Arizona State University; Cary Institute of Ecosystem Studies; Loyola
   Marymount University
RP Muñoz-Erickson, TA (corresponding author), US Forest Serv, Int Inst Trop Forestry, USDA, 1201 Calle Ceiba, Rio Piedras, PR 00926 USA.
EM tamunozerickson@fs.fed.us
RI MunozErickson, Tischa/AAG-8476-2019; Iwaniec, David/M-7993-2014
OI Romolini, Michele/0000-0003-4669-9796; Iwaniec,
   David/0000-0002-0410-4152; Childers, Daniel/0000-0003-3904-0803;
   Pickett, Steward/0000-0002-1899-976X
FU National Science Foundation (NSF) Urban Sustainability Research
   Coordination Network (RCN) [1140070]; USDA Forest Service; International
   Institute of Tropical Forestry and Northern Research Station; NSF
   [0948507, 1444755]; NSF DA [1027188]; NSF DEB Grant [1027188]; Division
   Of Environmental Biology; Direct For Biological Sciences [1027188,
   1140070] Funding Source: National Science Foundation; Division Of
   Environmental Biology; Direct For Biological Sciences [1140077] Funding
   Source: National Science Foundation
FX This work was made possible by the National Science Foundation (NSF)
   Urban Sustainability Research Coordination Network (RCN) under Grant
   number 1140070. Other sources of support include the USDA Forest
   Service, International Institute of Tropical Forestry and Northern
   Research Station, and the NSF under Grant number 0948507 (Urban Long
   Term Research Area Exploratory) and the Grant number 1444755 (Urban
   Resilience to Extreme Weather-related Events Sustainability Research
   Network). Daniel L. Childers and David Iwaniec received additional
   support from NSF Grant number 1027188 (Central Arizona-Phoenix Long-Term
   Ecological Research Program). The contributions of J. Morgan Grove,
   Michelle Romolini, and Steward T.A. Pickett were additionally supported
   by NSF DEB Grant number 1027188 (Baltimore Ecosystem Study LTER). Any
   opinions, findings, and conclusions or recommendations expressed in this
   material are those of the authors and do not necessarily reflect the
   view of the National Science Foundation (NSF) and the United States
   Department of Agriculture (USDA).
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NR 57
TC 30
Z9 35
U1 1
U2 36
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 2150-8925
J9 ECOSPHERE
JI Ecosphere
PD NOV
PY 2016
VL 7
IS 11
AR e01564
DI 10.1002/ecs2.1564
PG 11
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA EI1AP
UT WOS:000392207600022
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Dong, ZF
   Li, CJ
   Wen, S
   Zhai, PF
   Kang, S
AF Dong, Zhengfang
   Li, Chengjie
   Wen, Sen
   Zhai, Pengfei
   Kang, Shuai
TI Study on Seismic Resilience Quantitative Framework of Subway Stations
   and Resilience Improvement Strategy
SO FRONTIERS IN EARTH SCIENCE
LA English
DT Article
DE underground station; seismic resilience; friction pendulum bearing;
   resilience improvement; recovery model
ID PLASTIC-DAMAGE MODEL; MOUNTAIN TUNNELS; FUNCTIONALITY
AB Improving the seismic resilience of urban underground structures is among the hot topics concerning disaster prevention and the mitigation engineering of underground structures; however, there is still a lack of research on the quantitative methods for the seismic resilience of underground structures. Based on the existing research results of seismic resilience in other fields and combined with the actual situation of subway stations, in this paper, a quantitative framework for the seismic resilience of subway stations was proposed. In this quantitative framework, the seismic resilience of subway stations was described from the functional and economic levels, respectively, with two indices. Also, a recovery model and an indirect economic loss calculation method for subway stations were proposed. Based on the proposed framework, the strategy and mechanism of improving seismic resilience were analyzed. Moreover, a finite element model was established to calculate and analyze the effects of the two strategies on enhancing the seismic resilience of subway stations by adding seismic mitigation measures before earthquakes and accelerating restoration after earthquakes. The results showed that the proposed framework is feasible, as both strategies showed to improve the seismic resilience of a subway station; however, the mechanisms are different. After the installation of seismic mitigation measures before an earthquake, the functional recovery capacity of the station increased by 22-30%, and the economic loss decreased by 43-75%. After the earthquake, by increasing the number of repair workers, the functional recovery capacity increased by 5-25%, and the economic losses decreased by 10-48%.
C1 [Dong, Zhengfang; Wen, Sen; Kang, Shuai] Henan Prov Res Ctr Engn Intelligent, Kaifeng, Peoples R China.
   [Dong, Zhengfang; Li, Chengjie; Wen, Sen; Zhai, Pengfei; Kang, Shuai] Henan Univ, Inst Geotech & Rail Transport Engn, Kaifeng, Peoples R China.
C3 Henan University
RP Dong, ZF (corresponding author), Henan Prov Res Ctr Engn Intelligent, Kaifeng, Peoples R China.; Dong, ZF (corresponding author), Henan Univ, Inst Geotech & Rail Transport Engn, Kaifeng, Peoples R China.
EM dzf@henu.edu.cn
RI Li, Chengjie/IRZ-8866-2023
FU Natural Science Foundation of Henan Province [222300420415]; Training
   Plan of Young Backbone Teachers in Colleges and Universities of Henan
   Province [2018GGJS018]
FX Funding This work is supported by Natural Science Foundation of Henan
   Province (No.222300420415) and Training Plan of Young Backbone Teachers
   in Colleges and Universities of Henan Province (No. 2018GGJS018).
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NR 58
TC 6
Z9 7
U1 12
U2 132
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 11
PY 2022
VL 10
AR 869965
DI 10.3389/feart.2022.869965
PG 17
WC Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology
GA 0E9XQ
UT WOS:000777025300001
OA gold
DA 2025-04-22
ER

PT J
AU Xi, JR
   Wang, JB
   Gu, ZK
AF Xi, Jiaoru
   Wang, Jiangbo
   Gu, Zhikai
TI Effects of the planning and implementation of housing reconstruction on
   community resilience in China
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Housing reconstruction; Top-down approach; Organizational method;
   Community resilience
ID RECOVERY PROCESS; EARTHQUAKE; LAQUILA
AB Many researchers agree that the current Chinese top-down housing reconstruction model gua-rantees both its enforcement and efficiency. However, many have also questioned its possible negative effects on the affected localities. Thus, this research conducted an empirical study on three recently serious-affected towns in China that were hit by earthquakes. Further, it identifies different types of housing projects according to their reconstruction methods, measures and compares their resilience levels, and proposes policy implications. Our findings clarify and indicate various implications. First, the housing reconstruction in China has been carried out primarily by on-site self-constructed housing (SCH) and relocated government-constructed housing (GCH). Second, SCH generally has high resilience levels and should thus be encour-aged during the post-disaster resettlement period. Third, in the affected areas with developmental conditions, GCH should also be considered as it could also achieve a high-quality built envi-ronment and urban development. Fourth, this study found that, in less developed areas, large-scale relocation constructions always result in a low resilience and, thus, need to be avoided. Fifth, the mobilization of various external forces would provide strong support for achieving a high-quality reconstruction in both developed and less-developed areas. Therefore, a coordina-tion method is important in leveraging their unique capacities without neglecting local demands. Finally, within the Chinese urban-rural divide, inhabitants with a transitional social identity are particularly vulnerable, requiring more attention and policy support in the long term.
C1 [Xi, Jiaoru; Wang, Jiangbo; Gu, Zhikai] Nanjing Tech Univ, Coll Architecture, Nanjing, Peoples R China.
C3 Nanjing Tech University
RP Xi, JR (corresponding author), Nanjing Tech Univ, Coll Architecture, Nanjing, Peoples R China.
EM xjr@njtech.edu.cn
RI Wang, Jiangbo/B-4981-2014
OI Xi, Jiaoru/0000-0001-6801-8694
FU National Natural Science Foundation of China; Ministry of Education of
   the People?s Republic of China Humanities and Social Sciences Youth
   Foundation;  [51978329];  [19YJCZH191]
FX Funding This work is supported by the National Natural Science
   Foundation of China (52008204) , the Ministry of Education of the
   People?s Republic of China Humanities and Social Sciences Youth
   Foundation (19YJCZH191) , and the National Natural Science Foundation of
   China (51978329) .
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NR 57
TC 2
Z9 3
U1 4
U2 23
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 2022
VL 83
AR 103406
DI 10.1016/j.ijdrr.2022.103406
EA NOV 2022
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 6R7VH
UT WOS:000892505900005
DA 2025-04-22
ER

PT J
AU Gong, ZY
   Deng, ZC
   Tang, JQ
   Zhao, HB
   Liu, ZY
   Zhao, PJ
AF Gong, Zhaoya
   Deng, Zhicheng
   Tang, Junqing
   Zhao, Hongbo
   Liu, Zhengying
   Zhao, Pengjun
TI Uncovering human behavioral heterogeneity in urban mobility under the
   impacts of disruptive weather events
SO INTERNATIONAL JOURNAL OF GEOGRAPHICAL INFORMATION SCIENCE
LA English
DT Article
DE Human mobility; travel behavior; urban resilience; spatiotemporal flow
   decomposition; Zhengzhou '7.20' heavy rainfall
ID PRINCIPAL-COMPONENT ANALYSIS; NONNEGATIVE MATRIX; SPACE
AB Understanding the response of human mobility to disruptive weather events is beneficial for the development of urban risk mitigation and emergency response policies, thus enhancing urban resilience. Most human mobility studies relying on aggregate flow data inevitably neglect the heterogeneity of disaggregate travel patterns with distinctive spatiotemporal characteristics, causing the uncertainty problem for identifying meaningful travel behaviors. Moreover, there is a lack of robust methodological approaches to extracting stable and genuine travel patterns under normal or disruptive situations. To address these issues, this study proposes a data-driven approach to spatiotemporal flow decomposition based on non-negative matrix factorization. With sparseness factored in the decomposition, stable disaggregate travel patterns can be extracted from origin-destination mobility flows. By combining temporal, spatial, and urban functional perspectives, heterogeneous travel behaviors can be analyzed and inferred. With a case study of the Zhengzhou '7.20' heavy rainfall in 2021, the most extreme rainfall ever recorded in China, this study validated the effectiveness of the proposed approach and managed to identify representative and interesting travel patterns and behaviors, facilitating a better understanding of human travel behaviors under external impacts. In practice, this study can provide valuable insights for coping strategies in the face of increasingly frequent disruptive events.
C1 [Gong, Zhaoya; Deng, Zhicheng; Tang, Junqing; Liu, Zhengying; Zhao, Pengjun] Peking Univ, Sch Urban Planning & Design, Shenzhen Grad Sch, Shenzhen, Peoples R China.
   [Gong, Zhaoya; Deng, Zhicheng; Tang, Junqing; Liu, Zhengying; Zhao, Pengjun] Peking Univ, Shenzhen Grad Sch, Key Lab Earth Surface Syst & Human Earth Relat, Minist Nat Resources China, Shenzhen, Peoples R China.
   [Zhao, Hongbo] Henan Univ, Key Res Inst Yellow River Civilizat & Sustainable, Kaifeng, Peoples R China.
   [Zhao, Hongbo] Henan Univ, Collaborat Innovat Ctr Yellow River Civilizat, Henan Prov & Minist Educ, Kaifeng, Peoples R China.
C3 Peking University; Ministry of Natural Resources of the People's
   Republic of China; Peking University; Henan University; Henan University
RP Deng, ZC; Zhao, PJ (corresponding author), Peking Univ, Sch Urban Planning & Design, Shenzhen Grad Sch, Shenzhen, Peoples R China.; Deng, ZC; Zhao, PJ (corresponding author), Peking Univ, Shenzhen Grad Sch, Key Lab Earth Surface Syst & Human Earth Relat, Minist Nat Resources China, Shenzhen, Peoples R China.
EM zhicheng.deng@stu.pku.edu.cn; pengjun.zhao@pku.edu.cn
RI Z, HB/KHX-5716-2024; Liu, Zhengying/HPB-6128-2023; Gong,
   Zhaoya/AAQ-5282-2021
OI Deng, Zhicheng/0000-0002-7848-3976
FU Shenzhen Science and Technology Program [KQTD20221101093604016,
   JCYJ20220818100810024]; National Natural Science Foundation of China
   [41925003, 42130402]
FX This work was supported by the Shenzhen Science and Technology Program
   under Grant [KQTD20221101093604016, JCYJ20220818100810024]; and the
   National Natural Science Foundation of China under Grant [41925003,
   42130402].
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NR 70
TC 2
Z9 2
U1 34
U2 51
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1365-8816
EI 1362-3087
J9 INT J GEOGR INF SCI
JI Int. J. Geogr. Inf. Sci.
PD MAY 4
PY 2025
VL 39
IS 5
SI SI
BP 951
EP 974
DI 10.1080/13658816.2024.2372783
EA JUN 2024
PG 24
WC Computer Science, Information Systems; Geography; Geography, Physical;
   Information Science & Library Science
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Computer Science; Geography; Physical Geography; Information Science &
   Library Science
GA 1GM9Z
UT WOS:001259255900001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Sharifi, A
AF Sharifi, Ayyoob
TI An overview and thematic analysis of research on cities and the COVID-19
   pandemic: Toward just, resilient, and sustainable urban planning and
   design
SO ISCIENCE
LA English
DT Article
ID AIR-POLLUTION; WATER CYCLE; MOBILITY; HEALTH; CHINA; CITY; FOOD;
   PERSPECTIVES; SARS-COV-2; MORBIDITY
AB Since early 2020, researchers have made efforts to study various issues related to cities and the pandemic. Despite the wealth of research on this topic, there are only a few review articles that explore multiple issues related to it. This is partly because of the rapid pace of publications that makes systematic literature review challenging. To address this issue, in the present study, we rely on bibliometric analysis techniques to gain an overview of the knowledge structure and map key themes and trends of research on cities and the pandemic. Results of the analysis of 2,799 articles show that research mainly focuses on six broad themes: air quality, meteorological factors, built environment factors, transportation, socio-economic disparities, and smart cities, with the first three being dominant. Based on the findings, we discuss major lessons that can be learned from the pandemic and highlight key areas that need further research.
C1 [Sharifi, Ayyoob] Hiroshima Univ, Grad Sch Human & Social Sci, HigashiHiroshima, Hiroshima, Japan.
   [Sharifi, Ayyoob] Network Educ & Res Peace & Sustainabil NERPS, Hiroshima, Japan.
   [Sharifi, Ayyoob] Hiroshima Univ, IDEC Inst, Ctr Peaceful & Sustainable Futures CEPEAS, Hiroshima, Japan.
C3 Hiroshima University; Hiroshima University
RP Sharifi, A (corresponding author), Hiroshima Univ, Grad Sch Human & Social Sci, HigashiHiroshima, Hiroshima, Japan.; Sharifi, A (corresponding author), Network Educ & Res Peace & Sustainabil NERPS, Hiroshima, Japan.; Sharifi, A (corresponding author), Hiroshima Univ, IDEC Inst, Ctr Peaceful & Sustainable Futures CEPEAS, Hiroshima, Japan.
EM sharifi@hiroshima-u.ac.jp
RI Sharifi, Ayyoob/M-7584-2013
FU JSPS KAKENHI [22K04493]; Toyota Foundation [D21-R-0040]
FX This study was supported by JSPS KAKENHI Grant Number 22K04493 and a
   grant from Toyota Foundation (Grant No. D21-R-0040).
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NR 135
TC 36
Z9 36
U1 3
U2 29
PU CELL PRESS
PI CAMBRIDGE
PA 50 HAMPSHIRE ST, FLOOR 5, CAMBRIDGE, MA 02139 USA
EI 2589-0042
J9 ISCIENCE
JI iScience
PD NOV 18
PY 2022
VL 25
IS 11
AR 105297
DI 10.1016/j.isci.2022.105297
EA OCT 2022
PG 20
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA 6J1SO
UT WOS:000886608300005
PM 36246575
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Deng, CY
   Shi, ZW
   Chi, B
   Wang, JR
AF Deng, Chunyao
   Shi, Zhenwu
   Chi, Bo
   Wang, Jinru
TI Evaluating the Development Levels of Green Urban Transportation Systems
SO SUSTAINABILITY
LA English
DT Article
DE comprehensive and integrated empowerment method; evaluation system
   construction; green urban transportation; sustainable development
   strategy
AB To promote the green and resilient development of urban transportation and the sustainable development of cities, we developed a technique that can be used to evaluate the level of urban green transportation development. First, the toughness evaluation indexes were integrated according to the connotation requirements of green transportation development, and the evaluation index system was constructed using the hierarchical analysis method. Second, subjective and objective weighting methods, such as the G1, entropy weighting, and "addition" integration methods, which provide a simple and easy-to-use evaluation method that can improve evaluation accuracy, were adopted. Finally, Harbin, a typical city in the north, was chosen as a representative city to verify the method effectiveness. The study findings can be used to evaluate the current level of green development of a city as well as for future planning, providing a basis for formulating sustainable urban transportation development strategies. We will continue to conduct comparative studies on different evaluation methods and cities to improve the generalizability of the method.
C1 [Deng, Chunyao; Shi, Zhenwu; Wang, Jinru] Northeast Forestry Univ, Coll Civil Engn & Transportat, 26 Hexing Rd, Harbin 150040, Peoples R China.
   [Deng, Chunyao] Hulunbuir Univ, Sch Construct Engn, 26 Genghis Khan Middle Rd, Hailar 021000, Peoples R China.
   [Chi, Bo] Heilongjiang Longjian Rd & Bridge Co Ltd, R&D Ctr, 10 He Luo St, Harbin 150028, Peoples R China.
C3 Northeast Forestry University - China; Hulunbuir University
RP Deng, CY; Shi, ZW (corresponding author), Northeast Forestry Univ, Coll Civil Engn & Transportat, 26 Hexing Rd, Harbin 150040, Peoples R China.; Deng, CY (corresponding author), Hulunbuir Univ, Sch Construct Engn, 26 Genghis Khan Middle Rd, Hailar 021000, Peoples R China.; Chi, B (corresponding author), Heilongjiang Longjian Rd & Bridge Co Ltd, R&D Ctr, 10 He Luo St, Harbin 150028, Peoples R China.
EM dcy19900726@163.com; shizhenwu@126.com; c13796637774@163.com;
   wangjinru96@126.com
RI Chi, Bo/G-4256-2013
OI Deng, Chunyao/0009-0003-6981-5822
FU Ordos City Social Science Project: Research on Urban Transportation
   Emergency Protection and Management under Major Public Emergencies
   [2023p493]; Ordos City Social Science Project: Research on Emergency
   Security and Management of Urban Transportation under Major Public
   Emergencies
FX The authors would like to thank the Shitu Research Service Platform and
   University Literature Service Center for their assistance with the
   literature as well as the data collection and organization process.
   Thanks to the support of Ordos City Social Science Project: Research on
   Emergency Security and Management of Urban Transportation under Major
   Public Emergencies (Project No. 2023p493).
CR [Anonymous], 2018, GB/T 5132852018
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NR 44
TC 2
Z9 2
U1 27
U2 46
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2024
VL 16
IS 11
AR 4795
DI 10.3390/su16114795
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 UC2G3
UT WOS:001245791200001
OA gold
DA 2025-04-22
ER

PT J
AU Liu, ZX
   Ling, MX
   Zhu, T
   Xu, DR
   He, YS
   Liu, ZF
AF Liu, Zixin
   Ling, Mingxing
   Zhu, Ting
   Xu, Deru
   He, Yueshun
   Liu, Zhifeng
TI Enhancing Security of ADS-B Systems with Encryption Algorithm in the
   Smart Ocean
SO JOURNAL OF COASTAL RESEARCH
LA English
DT Article
DE ADS-B; encryption algorithm; smart ocean
AB The smart ocean is an influencer concept incorporating digitalized associated ocean and seaboard cities. The construction of an omni-bearing smart ocean requires urban resilience, and the application of smart means can greatly improve a city's emergency response capability in the face of dangerous events. Aviation security is a non-negligible point in the construction of the smart ocean. The automatic dependent surveillance-broadcast (ADS-B) in the aircrafts is used to broadcast and transmit navigating data, including the call sign of aircraft, altitude in the airspace, current heading of destination, and other locating messages. This paper studies ADS-B security threats such as distributed denial of service attacks and proposes the use of an encryption algorithm to process ADS-B plaintext to improve urban resilience of the smart ocean.
C1 [Liu, Zixin; Ling, Mingxing] East China Univ Technol, State Key Lab Nucl Resources & Environm, Nanchang 330013, Jiangxi, Peoples R China.
   [Zhu, Ting] East China Univ Technol, Nanchang 330000, Jiangxi, Peoples R China.
   [Xu, Deru] East China Univ Technol, Sch Earth Sci, Nanchang 330000, Jiangxi, Peoples R China.
   [He, Yueshun; Liu, Zhifeng] East China Univ Technol, Software Coll, Nanchang 330000, Jiangxi, Peoples R China.
C3 East China University of Technology; East China University of
   Technology; East China University of Technology; East China University
   of Technology
RP Ling, MX (corresponding author), East China Univ Technol, State Key Lab Nucl Resources & Environm, Nanchang 330013, Jiangxi, Peoples R China.
EM mxling@ecut.edu.cn
RI Liu, Zixin/ADS-9262-2022; Zhu, Ting/LXW-0633-2024
FU Science and Technology Planning Project of Jiangxi Education Department
   [GJJ160589]; Side channel analysis of big data based on neural network
   [JELRGBDT202005]; National Natural Science Fund [11765001]; National
   Natural Science Foundation of China [41930428]; General Project of the
   National Natural Science Foundation of China [41872243]
FX This work is supported by the 2017 Science and Technology Planning
   Project of Jiangxi Education Department, Application of machine learning
   method in image quality assessment, No. GJJ160589; Side channel analysis
   of big data based on neural network, JELRGBDT202005; National Natural
   Science Fund, Study on the change law of time spectrum of pulsed Neutron
   logging and the uranium quantification algorithm under the complicated
   environment, No. 11765001; National Natural Science Foundation of China
   (Key Program), A case study on the metalorganic mechanism of the
   large-scale Au-polymetallic mineralization in the Jiangnan Old land of
   South China, No.41930428; and the General Project of the National
   Natural Science Foundation of China, Digital frequency spectrum analysis
   and mineralization precise prediction for continental supergene U-Re,
   No. 41872243.
CR Strohmeier M., 2013, IEEE COMMUNICATIONS, V17
   Valovage E., 2006, P IEEE AER, V22, P35
NR 2
TC 0
Z9 0
U1 6
U2 27
PU COASTAL EDUCATION & RESEARCH FOUNDATION
PI COCONUT CREEK
PA 5130 NW 54TH STREET, COCONUT CREEK, FL 33073 USA
SN 0749-0208
EI 1551-5036
J9 J COASTAL RES
JI J. Coast. Res.
PD WIN
PY 2020
SI 105
BP 181
EP 184
DI 10.2112/JCR-SI105-038.1
PG 4
WC Environmental Sciences; Geography, Physical; Geosciences,
   Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Physical Geography; Geology
GA PN9MB
UT WOS:000604796700038
DA 2025-04-22
ER

PT J
AU Kalafsky, RV
   Rosko, HM
AF Kalafsky, Ronald V.
   Rosko, Helen M.
TI Applying Geography Course Projects to Issues in City Resilience and
   Global Connectivity
SO JOURNAL OF GEOGRAPHY
LA English
DT Article
DE geographic education; globalization; urban geography; economic
   geography; hazards
ID ECONOMIC-GEOGRAPHY; CITIES
AB Globalization would appear to be a subject that easily could be addressed in geography classrooms, yet this is not always the case. In terms of pedagogy, many geographers are concerned whether the field has been adequately engaging various components of this topic (e.g., connectivity, core-periphery), especially in terms of making the subject matter relevant to students. This article presents the results of a recent course project situated at the intersection of city-level resilience to hazards and connectivity with the global economy, utilizing SWOT analysis. The student projects demonstrated that this comparatively simple analytical tool was a useful means for exploring and integrating key topics in globalization and urban-economic geography, while also facilitating a problem-based learning environment.
C1 [Kalafsky, Ronald V.] Univ Tennessee, Dept Geog, Knoxville, TN 37996 USA.
   [Rosko, Helen M.] ORNL, GIST, Oak Ridge, TN USA.
C3 University of Tennessee System; University of Tennessee Knoxville;
   United States Department of Energy (DOE); Oak Ridge National Laboratory
RP Kalafsky, RV (corresponding author), Univ Tennessee, Dept Geog, Knoxville, TN 37996 USA.
RI Rosko, Helen/JAC-8771-2023
OI Rosko, Helen/0000-0001-8934-451X
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NR 71
TC 3
Z9 3
U1 1
U2 27
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 0022-1341
EI 1752-6868
J9 J GEOGR
JI J. Geogr.
PD MAR-APR
PY 2017
VL 116
IS 2
BP 67
EP 78
DI 10.1080/00221341.2015.1135976
PG 12
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA EM1FP
UT WOS:000395063800003
DA 2025-04-22
ER

PT J
AU De Rosa, M
   Bianco, V
   Barth, H
   da Silva, PP
   Salgado, CV
   Pallonetto, F
AF De Rosa, Mattia
   Bianco, Vincenzo
   Barth, Henrik
   da Silva, Patricia Pereira
   Salgado, Carlos Vargas
   Pallonetto, Fabiano
TI Technologies and Strategies to Support Energy Transition in Urban
   Building and Transportation Sectors
SO ENERGIES
LA English
DT Article
DE cities; renewable energy; energy efficiency; positive energy districts;
   urban transports; funding mechanisms; project management
ID RENEWABLE ENERGY; RETROFIT; IMPACT; CITY
AB More than half of the world population live in urban settlements which are responsible for a large share of energy consumption and, consequently, carbon emissions. The transition towards a more sustainable urban environment requires a change in paradigm in terms of how we design and manage our cities. Urban areas require innovative technologies and strategies to reduce energy consumption and carbon emissions, and to be included in comprehensive plans encompassing all technical, social and economic dimensions which characterise cities. This involves the transformation of urban contexts, with a focus on local and urban-level mitigation measures, such as the construction of positive energy buildings, deployment of renewable energy, promotion of a sustainable mobility, creation of resilient urban infrastructure, implementation of circular economy and recycling practices, etc. The present article provides a perspective on the sustainable energy transition in cities, focusing on the building and transportation sectors. Furthermore, insights on supporting mechanisms and innovative management strategies are presented.
C1 [De Rosa, Mattia] Univ Sassari, Dept Biomed Sci, Engn Res Div, Via Vienna 2, I-07100 Sassari, Italy.
   [Bianco, Vincenzo] DIME TEC Div Thermal Energy & Environm Conditionin, Via AllOpera Pia 15-A, I-16145 Genoa, Italy.
   [Bianco, Vincenzo] Univ Napoli Parthenope, Isola C4 Ctr Direzionale, Dipartimento Ingn, I-80143 Naples, Italy.
   [Barth, Henrik] Halmstad Univ, Ctr Innovat Entrepreneurship & Learning Res CIEL, S-30118 Halmstad, Sweden.
   [da Silva, Patricia Pereira] Univ Coimbra, Fac Econ, Ctr Business & Econ Res, CeBER, Av Dias Silva 165, P-3004512 Coimbra, Portugal.
   [Salgado, Carlos Vargas] Univ Politecn Valencia UPV, Inst Univ Ingn Energet, Camino Vera S-N, Valencia 46022, Spain.
   [Pallonetto, Fabiano] Natl Univ Ireland Manyooth, Sch Business, Maynooth W23 X021, Ireland.
C3 University of Sassari; Parthenope University Naples; Halmstad
   University; Universidade de Coimbra; Universitat Politecnica de Valencia
RP Bianco, V (corresponding author), DIME TEC Div Thermal Energy & Environm Conditionin, Via AllOpera Pia 15-A, I-16145 Genoa, Italy.; Bianco, V (corresponding author), Univ Napoli Parthenope, Isola C4 Ctr Direzionale, Dipartimento Ingn, I-80143 Naples, Italy.
EM vincenzo.bianco@unige.it
RI Barth, Henrik/M-5186-2017; Bianco, Vincenzo/F-7019-2013; De Rosa,
   Mattia/GLS-0198-2022; Pereira da Silva, Patricia/T-8544-2017;
   Vargas-Salgado, Carlos/ABI-2246-2020
OI Pereira da Silva, Patricia/0000-0002-5862-1278; Bianco,
   Vincenzo/0000-0002-2380-1965; Barth, Henrik/0000-0002-0030-3402;
   Pallonetto, Fabiano/0000-0003-4416-4202; De Rosa,
   Mattia/0000-0002-0745-2419; Vargas-Salgado, Carlos/0000-0002-9259-8374
FU European Union under the Horizon Europe framework [101075582]; Horizon
   Europe - Pillar II [101075582] Funding Source: Horizon Europe - Pillar
   II
FX This research was funded by the European Union under the Horizon Europe
   framework (Grant agreement ID: 101075582).
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NR 72
TC 11
Z9 11
U1 2
U2 25
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD MAY 25
PY 2023
VL 16
IS 11
AR 4317
DI 10.3390/en16114317
PG 16
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA I5BZ6
UT WOS:001002945000001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU De, S
   Das, A
   Mazumder, TN
AF De, Sulagna
   Das, Arup
   Mazumder, Tarak Nath
TI Beyond 'Quantity-Quality' debate: a multi-objective risk assessment
   framework to evaluate urban green spaces
SO HUMAN AND ECOLOGICAL RISK ASSESSMENT
LA English
DT Article; Early Access
DE multi-objective optimization; risk profile; stress of urbanization
   (SoU); SDG 11: sustainable cities and communities; urban green spaces
   (UGSs); vulnerability
ID DIFFERENCE VEGETATION INDEX; PARKS
AB The sustainability of cities depends on the sustainability and resilience of their urban green spaces (UGSs), which provide a plethora of ecosystem services. Vulnerability of UGS is conventionally measured through its size (quantity) and greenness (quality). This study measured the risk of UGS using a novel Multi-Objective Optimization (MOO) framework incorporating three objective functions, which include vulnerability attributable to losses incurred by UGS in size and green cover juxtaposed with the Stress of Urbanization (SoU). All public UGS (N = 591) in Kolkata were considered for the study. The MOO framework used the Pareto sorting algorithm to derive 15 hierarchical risk profiles of UGS in Kolkata. Spearman correlation confirms that park size has a strong, significant negative relationship with Pareto ranks, emphasizing park size as a key determinant of UGS risk. Park size also correlates positively with both SoU and urban greenness. Findings reveal that large parks, despite their high resilience due to extensive vegetation and ecosystem services, are more vulnerable to urbanization pressures, particularly encroachment. By integrating hierarchical risk profiles of UGS as a metric for budgetary allocation by urban local bodies (ULBs), this study introduces a risk-based prioritization approach for sound decision-making in sustainable UGS management.
C1 [De, Sulagna; Das, Arup; Mazumder, Tarak Nath] Indian Inst Technol Kharagpur, Dept Architecture & Reg Planning, Kharagpur 721302, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Kharagpur
RP Das, A (corresponding author), Indian Inst Technol Kharagpur, Dept Architecture & Reg Planning, Kharagpur 721302, India.
EM arup.das@arp.iitkgp.ac.in
RI Das, Arup/AAS-5643-2021
FU Ministry of Education, Government of India; Indian Institute of
   Technology Kharagpur
FX The authors would like to thank Ministry of Education, Government of
   India and the Indian Institute of Technology Kharagpur for funding this
   research as part of the doctoral research of Ms Sulagna De.
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NR 46
TC 0
Z9 0
U1 2
U2 2
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 2025 MAR 15
PY 2025
DI 10.1080/10807039.2025.2480180
EA MAR 2025
PG 16
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA 0MX4L
UT WOS:001451173000001
DA 2025-04-22
ER

PT J
AU Peng, ZR
   Lu, KF
   Liu, YH
   Zhai, W
AF Peng, Zhong-Ren
   Lu, Kai-Fa
   Liu, Yanghe
   Zhai, Wei
TI The Pathway of Urban Planning AI: From Planning Support to Plan-Making
SO JOURNAL OF PLANNING EDUCATION AND RESEARCH
LA English
DT Article
DE artificial intelligence; planning process; sustainability and
   resilience; typology; urban and regional planning
ID CELLULAR-AUTOMATA MODEL; ARTIFICIAL-INTELLIGENCE; LAND-USE;
   INFORMATION-SYSTEMS; SMART CITY; BIG DATA; TRANSPORTATION; INTEGRATION;
   SIMULATION; DYNAMICS
AB Artificial intelligence (AI) is rapidly gaining prominence as a crucial technology to transform and reshape the field of urban planning. However, several unanswered questions persist regarding the potential impacts of AI on urban and regional planning research and practice, as well as the issues involved and the appropriate responses and plans. This paper aims to address these concerns in the AI-enabled planning process and accordingly create a typology of urban planning AI to categorize and outline the progression of AI in urban planning, ranging from AI-assisted and AI-augmented planning to AI-automated and eventually AI-autonomized planning, based on a scoping literature review.
C1 [Peng, Zhong-Ren] Univ Florida, Coll Design Construct & Planning, iAdapt Int Ctr Adaptat Planning & Design, Gainesville, FL USA.
   [Lu, Kai-Fa; Liu, Yanghe] Univ Florida, Coll Design Construct & Planning, Gainesville, FL USA.
   [Zhai, Wei] Univ Texas San Antonio, Sch Architecture & Planning, San Antonio, TX USA.
   [Peng, Zhong-Ren] Univ Florida, 1480 Inner Rd,Box 115706, Gainesville, FL 32611 USA.
C3 State University System of Florida; University of Florida; State
   University System of Florida; University of Florida; University of Texas
   System; University of Texas at San Antonio (UTSA); State University
   System of Florida; University of Florida
RP Peng, ZR (corresponding author), Univ Florida, 1480 Inner Rd,Box 115706, Gainesville, FL 32611 USA.
EM zpeng@ufl.edu
RI Peng, Zhongren/AAH-8123-2020; Chen, Peng/Y-1337-2019; Liu,
   Yanghe/KCJ-5886-2024
OI Peng, Zhong-Ren/0000-0003-3648-6770; Liu, Yanghe/0009-0005-5085-1107
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NR 125
TC 15
Z9 15
U1 63
U2 138
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 DEC
PY 2024
VL 44
IS 4
BP 2263
EP 2279
DI 10.1177/0739456X231180568
EA JUN 2023
PG 17
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA L4B1K
UT WOS:001011933000001
DA 2025-04-22
ER

PT J
AU Boulanger, SOM
AF Boulanger, Saveria Olga Murielle
TI Smart City and Energy: A Bibliometric Review of the Smart City and Smart
   Energy Concept from the Perspective of the Bioclimatic Approach
SO ENERGIES
LA English
DT Review
DE Smart City; smart districts; bioclimatic; environmental design
ID CURRENT TRENDS; FUTURE-TRENDS; BIG DATA; CITIES; TECHNOLOGY; CHALLENGES;
   EFFICIENCY; SUSTAINABILITY; INTEGRATION; MANAGEMENT
AB Smart Cities have emerged as a promising approach for transforming urban living into more sustainable and resilient systems through technology-driven innovations and data-driven governance. Despite its growing implementation and diffusion around the globe, many questions surrounding this topic have emerged. Many critics have emerged since its first conceptualization in the first decade of the current century. Smart Cities have been criticized for their utopian objectives and the security, safety, people's freedom, and privacy within these systems. There are also capitalistic and neoliberalism-related critiques. Other critiques also highlight the current climate cost of Smart City initiatives. In the context of those critiques, bioclimatic and passive strategies might provide an interesting evolution of the concept but seem to be left in the background. This paper aims to contribute to the understanding of the linkages between environmental design approaches and the Smart City discourse. The contribution will explore to which extent bioclimatic and environmental design principles are present in the Smart City discourse and what the patterns are inside the current literature. The methodology of the research included a quali-quantitative analysis of the body of literature in Scopus and a bibliometric analysis using the VOS Viewer tool.
C1 [Boulanger, Saveria Olga Murielle] Univ Bologna, Dept Architecture, I-40136 Bologna, Italy.
C3 University of Bologna
RP Boulanger, SOM (corresponding author), Univ Bologna, Dept Architecture, I-40136 Bologna, Italy.
EM saveria.boulanger@unibo.it
RI Boulanger, Saveria/AAS-4208-2020
OI BOULANGER, SAVERIA OLGA MURIELLE/0000-0003-2147-3192
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NR 132
TC 1
Z9 1
U1 4
U2 11
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD JUN
PY 2024
VL 17
IS 11
AR 2486
DI 10.3390/en17112486
PG 21
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA UB3N7
UT WOS:001245564500001
OA gold
DA 2025-04-22
ER

PT J
AU Trisciuoglio, M
AF Trisciuoglio, Marco
TI Exaptation in Transitional Urban Morphologies: First Notes on the
   Dynamics of Urban Form Read through the Theories of Natural Evolution
SO LAND
LA English
DT Article
DE transitional morphologies; dynamics of urban forms;
   exaptation/adaptation
ID SPANDRELS; RESILIENCE; TERM
AB Studying the dynamics of urban form means questioning the processes of evolution of the form in general. The current discussion on the architecture of buildings and urban spaces has drawn the concept of adaptation from theories of natural evolution. These notes propose a reflection on the opposite and controverse concept of exaptation as it was proposed by the biologist and paleontologist Stephen Jay Gould in 1982. Through some examples (the different transformations of some Roman amphitheaters of the imperial age and the metamorphoses that occurred in the 20th century to some Chinese urban fabrics, originally made by courtyard houses), it is possible to extend to urban forms the idea of the casual co-optation for new uses of organs and anatomical parts developed for other reasons. This kind of reflection opens up innovative considerations on the potential of transitional urban analysis and its repercussions on evolutive urban transformation processes.
C1 [Trisciuoglio, Marco] Politecn Torino, Transit Morphol Joint Res Unit, Nanjing 210018, Peoples R China.
   [Trisciuoglio, Marco] Southeast Univ Nanjing, Nanjing 210018, Peoples R China.
C3 Southeast University - China
RP Trisciuoglio, M (corresponding author), Politecn Torino, Transit Morphol Joint Res Unit, Nanjing 210018, Peoples R China.; Trisciuoglio, M (corresponding author), Southeast Univ Nanjing, Nanjing 210018, Peoples R China.
EM marco.trisciuoglio@polito.it
FU International Demonstration School Internationalization Demonstration
   School at Southeast University Nanjing
FX The author acknowledges the support by the International Demonstration
   School Internationalization Demonstration School at Southeast University
   Nanjing and by the library of the "Transitional Morphologies" Joint
   Research Unit at Politecnico di Torino, in addition to the contribution
   of ideas, reflections and discussions received in recent years from the
   scholars (colleagues, researcher, PhD students, Master students) who
   animate the debate on urban morphology in both locations. The author
   expresses in particular his debt of gratitude towards his colleague Bao
   Li (Southeast University Nanjing, China), a companion in "transitional"
   studies and research between Italy and China, and towards Michela
   Barosio (Politecnico di Torino, Italy), with whom he discussed the
   contents of this work at length, receiving (once again) valuable
   suggestions.
CR Berghauser Pont M., 2021, Spacematrix. Space, Density and Urban Form
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NR 41
TC 0
Z9 0
U1 5
U2 7
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 74
DI 10.3390/land13010074
PG 17
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA GF1Y3
UT WOS:001151171200001
OA gold
DA 2025-04-22
ER

PT J
AU Hilbert, DR
   Koeser, AK
   Roman, LA
   Andreu, MG
   Hansen, G
   Thetford, M
   Northrop, RJ
AF Hilbert, Deborah R.
   Koeser, Andrew K.
   Roman, Lara A.
   Andreu, Michael G.
   Hansen, Gail
   Thetford, Mack
   Northrop, Robert J.
TI Selecting and Assessing Underutilized Trees for Diverse Urban Forests: A
   Participatory Research Approach
SO FRONTIERS IN ECOLOGY AND EVOLUTION
LA English
DT Article
DE city trees; species diversity; woody plants; knowledge co-production;
   municipal forestry; transdisciplinary research; tree survival
ID EMERALD ASH BORER; STREET TREES; SURVIVAL; CONSERVATION; BIODIVERSITY;
   RESILIENCE; FRAMEWORK; GROWTH; STRATEGIES; MANAGEMENT
AB Urban forests provide critical environmental benefits, but the resilience of these socio-ecological systems to stresses like pest and disease outbreaks relies on tree health and diversity. Despite this, low species diversity continues to be a challenge in urban forest management. Using a participatory research approach in central Florida (United States), we selected and tested underutilized native tree species (Celtis laevigata Willd., Ilex vomitoria Aiton, Taxodium ascendens Brongn., Ulmus alata Michx., and Viburnum obovatum Walter) in two urban settings (streetscape and park) in four communities (total n = 200). Our collaborative process was organized into five steps, including a 2-year monitoring period to assess mortality and health through establishment. At the end of the trial, 156 trees survived with annual mortality rates differing by species and plot type. Taxodium ascendens had the highest annual mortality of the five species trialed. Overall, U. alata and V. obovatum showed the greatest potential in central Florida urban settings. Our tree selection process can guide others who want to create forward-thinking and diverse planting lists. Furthermore, this project demonstrates that co-production of knowledge involving members of local municipalities, practitioners, and researchers can be an effective strategy for selecting and testing underutilized tree species.
C1 [Hilbert, Deborah R.; Koeser, Andrew K.] Univ Florida, Gulf Coast Res & Educ Ctr, Inst Food & Agr Sci, Dept Environm Hort, Wimauma, FL 33598 USA.
   [Roman, Lara A.] US Forest Serv, Philadelphia Field Stn, Northern Res Stn, USDA, Philadelphia, PA USA.
   [Andreu, Michael G.] Univ Florida, Sch Forest Fisheries & Geomat Sci, Gainesville, FL USA.
   [Hansen, Gail] Univ Florida, Inst Food & Agr Sci, Dept Environm Hort, Gainesville, FL 32611 USA.
   [Thetford, Mack] Univ Florida, West Florida Res & Educ Ctr, Inst Food & Agr Sci, Dept Environm Hort, Milton, FL USA.
   [Northrop, Robert J.] Univ Floridas, Inst Food & Agr Sci Extens Hillsborough Cty, Seffner, FL USA.
C3 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; State University
   System of Florida; University of Florida; State University System of
   Florida; University of Florida
RP Hilbert, DR (corresponding author), Univ Florida, Gulf Coast Res & Educ Ctr, Inst Food & Agr Sci, Dept Environm Hort, Wimauma, FL 33598 USA.
EM dhilbert@ufl.edu
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)
FX This research was funded in part by the University of Florida/IFAS
   Center for Land Use Efficiency (CLUE) graduate student fellowship
   program.
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NR 129
TC 6
Z9 6
U1 1
U2 16
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 FEB 3
PY 2022
VL 10
AR 759693
DI 10.3389/fevo.2022.759693
PG 15
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA ZG0AE
UT WOS:000759927700001
OA gold
DA 2025-04-22
ER

PT J
AU Costa, DG
   Peixoto, JPJ
   Jesus, TC
   Portugal, P
   Vasques, F
   Rangel, E
   Peixoto, M
AF Costa, Daniel G.
   Peixoto, Joao Paulo J.
   Jesus, Thiago C.
   Portugal, Paulo
   Vasques, Francisco
   Rangel, Elivelton
   Peixoto, Maycon
TI A Survey of Emergencies Management Systems in Smart Cities
SO IEEE ACCESS
LA English
DT Article
DE Emergency services; Smart cities; Licenses; Crisis management; Internet
   of Things; Indexing; Hazards; Smart cities; emergencies management;
   Internet of Things; sustainable cities; resilient cities
ID WIRELESS SENSOR NETWORKS; SOCIAL MEDIA; ARTIFICIAL-INTELLIGENCE; FIRE
   DETECTION; BIG DATA; NEURAL-NETWORK; EXPERT-SYSTEM; CITY; IOT; DISASTER
AB The rapid urbanization process in the last century has deeply changed the way we live and interact with each other. As most people now live in urban areas, cities are experiencing growing demands for more efficient and sustainable public services that may improve the perceived quality of life, specially with the anticipated impacts of climatic changes. In this already complex scenario with increasingly overcrowded urban areas, different types of emergency situations may happen anywhere and anytime, with unpredictable costs in human lives and economic losses. In order to cope with unexpected and potentially dangerous emergencies, smart cities initiatives have been developed in different cities, addressing multiple aspects of emergencies detection, alerting, and mitigation. In this context, this article surveys recent smart city solutions for crisis management, proposing definitions for emergencies-oriented systems and classifying them according to the employed technologies and provided services. Additionally, recent developments in the domains of Internet of Things, Artificial Intelligence and Big Data are also highlighted when associated to the management of urban emergencies, potentially paving the way for new developments while classifying and organizing them according to different criteria. Finally, open research challenges will be identified, indicating promising trends and research directions for the coming years.
C1 [Costa, Daniel G.; Vasques, Francisco] Univ Porto, INEGI, Fac Engn, P-4200465 Porto, Portugal.
   [Peixoto, Joao Paulo J.] State Univ Feira De Santana, PPGM, BR-44036900 Feira De Santana, BA, Brazil.
   [Jesus, Thiago C.] State Univ Feira De Santana, Dept Technol, BR-44036900 Feira De Santana, BA, Brazil.
   [Portugal, Paulo] Univ Porto, INESC TEC, Fac Engn, P-4200465 Porto, Portugal.
   [Rangel, Elivelton; Peixoto, Maycon] Univ Fed Bahia, Comp Sci Dept, BR-40170110 Salvador, BA, Brazil.
C3 Universidade do Porto; Universidade Estadual de Feira de Santana;
   Universidade Estadual de Feira de Santana; Universidade do Porto; INESC
   TEC; Universidade Federal da Bahia
RP Costa, DG (corresponding author), Univ Porto, INEGI, Fac Engn, P-4200465 Porto, Portugal.
EM danielgcosta@fe.up.pt
RI Peixoto, João Paulo/KDN-4851-2024; Jesus, Thiago/AAC-9588-2021; Peixoto,
   Maycon/V-4167-2018; Costa, Daniel/I-4928-2013; Vasques,
   Francisco/B-2494-2013; Portugal, Paulo/H-3286-2013
OI Oliveira Rangel, Elivelton/0000-0003-3155-7023; Peixoto,
   Maycon/0000-0002-4851-5228; C. Jesus, Thiago/0000-0001-5299-6856; Costa,
   Daniel/0000-0003-3988-8476; Just Peixoto, Joao
   Paulo/0000-0003-3507-8249; Vasques, Francisco/0000-0003-3115-0901;
   Portugal, Paulo/0000-0002-6386-9753
FU FCT (Portuguese Foundation for Science and Technology)
   [EXPL/EEI-COM/1089/2021]; INEGI-LAETA under FCT [UIDB/50022/2020];
   Fundação para a Ciência e a Tecnologia [EXPL/EEI-COM/1089/2021] Funding
   Source: FCT
FX This work was supported in part by the FCT (Portuguese Foundation for
   Science and Technology) under Grant EXPL/EEI-COM/1089/2021, and in part
   by INEGI-LAETA under FCT Project UIDB/50022/2020.
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NR 247
TC 39
Z9 40
U1 12
U2 122
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 2169-3536
J9 IEEE ACCESS
JI IEEE Access
PY 2022
VL 10
BP 61843
EP 61872
DI 10.1109/ACCESS.2022.3180033
PG 30
WC Computer Science, Information Systems; Engineering, Electrical &
   Electronic; Telecommunications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering; Telecommunications
GA 2D4UF
UT WOS:000811543500001
OA gold
DA 2025-04-22
ER

PT J
AU Bompard, EF
   Conti, S
   Masera, MJ
   Soma, GG
AF Bompard, Ettore F.
   Conti, Stefania
   Masera, Marcelo J.
   Soma, Gian Giuseppe
TI A New Electricity Infrastructure for Fostering Urban Sustainability:
   Challenges and Emerging Trends
SO ENERGIES
LA English
DT Review
DE electricity; infrastructure; sustainability; energy transition; cities
ID ENERGY; MANAGEMENT; STRATEGY; SYSTEM
AB The energy transition and sustainability are the critical challenges of our time, and cities are at the forefront of this transformation. As key players, these urban centers are pioneering innovative strategies to reduce carbon emissions, enhance energy efficiency, and promote renewable energy sources. Central to the transition is the role of electricity, which acts as a cornerstone in the "cocktail" of sustainable solutions. The development of an efficient and resilient "Electricity City Grid" is essential to support this shift. This article explores the target functions and challenges associated with designing and operating the Smart Electricity City Grid of the future. It delves into the infrastructural costs required for this transition and examines the economic and technical hurdles that must be overcome. Finally, the article looks ahead to the future of research in this field, highlighting the areas that will be crucial for the continued evolution and success of smart urban grids. Through this comprehensive analysis, we aim to suggest a roadmap for cities striving to achieve sustainability through advanced electrical infrastructure.
C1 [Bompard, Ettore F.; Masera, Marcelo J.] Politecn Torino, Dipartimento Energia, I-10129 Turin, Italy.
   [Bompard, Ettore F.; Masera, Marcelo J.] Energy Ctr, Energy Secur Transit Lab, I-10138 Turin, Italy.
   [Conti, Stefania] Univ Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95123 Catania, Italy.
   [Soma, Gian Giuseppe] RESPECT Srl, I-09127 Cagliari, Italy.
C3 Polytechnic University of Turin; University of Catania
RP Conti, S (corresponding author), Univ Catania, Dipartimento Ingn Elettr Elettron & Informat, I-95123 Catania, Italy.
EM ettore.bompard@polito.it; stefania.conti@unict.it;
   marcelo.masera@polito.it; giangiuseppe.soma@respectsrl.it
RI Conti, Stefania/J-3515-2012
OI SOMA, GIAN GIUSEPPE/0000-0001-9779-9477
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NR 72
TC 1
Z9 1
U1 3
U2 3
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1996-1073
J9 ENERGIES
JI Energies
PD NOV
PY 2024
VL 17
IS 22
AR 5573
DI 10.3390/en17225573
PG 18
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA N5N9K
UT WOS:001364816200001
OA gold
DA 2025-04-22
ER

PT J
AU Zhou, WQ
   Pickett, STA
   McPhearson, T
AF Zhou, Weiqi
   Pickett, S. T. A.
   McPhearson, Timon
TI Conceptual frameworks facilitate integration for transdisciplinary urban
   science
SO NPJ URBAN SUSTAINABILITY
LA English
DT Review
ID NEW-YORK-CITY; ECOSYSTEM SERVICES; PATCH DYNAMICS; HEAT-WAVE; LAND-USE;
   RESILIENCE; ECOLOGY; VULNERABILITY; MORTALITY; FUTURE
AB There are urgent calls for developing a comprehensive and globally-relevant urban science that emphasizes convergence among disciplines and practice. Advancing theory and conceptual frameworks is critical to developing a new urban systems science. We synthesize five frameworks that address features identified in calls for global urban science. The frameworks address the overarching urban conditions of complexity, diffuseness, connectivity, and diversity of cities across the globe. The frameworks also help evaluate how a project or study may advance sustainability. The metacity concept, a spatially scalable representation of mosaic change in urban systems, demonstrates how the frameworks apply to increasingly extensive, spatially heterogeneous, and dynamic urban regions. The metacity concept helps avoid static and isolated plans and management approaches and provides a conceptual foundation for an interdisciplinary urban systems science. The frameworks suggest a practical checklist that may help interventions, strategies, and research better align with goals for transforming urban systems toward sustainability.
C1 [Zhou, Weiqi] Chinese Acad Sci, Res Ctr Ecoenvironm Sci, Beijing 100085, Peoples R China.
   [Zhou, Weiqi] Univ Chinese Acad Sci, Beijing, Peoples R China.
   [Pickett, S. T. A.; McPhearson, Timon] Cary Inst Ecosyst Studies, Box AB, Millbrook, NY 12545 USA.
   [McPhearson, Timon] New Sch, Urban Syst Lab, 79 Fifth Ave, 16th Floor, New York, NY 10003 USA.
   [McPhearson, Timon] Stockholm Univ, Stockholm Resilience Ctr, Krafriket 2B, SE-10691 Stockholm, Sweden.
C3 Chinese Academy of Sciences; Research Center for Eco-Environmental
   Sciences (RCEES); Chinese Academy of Sciences; University of Chinese
   Academy of Sciences, CAS; Cary Institute of Ecosystem Studies; The New
   School; Stockholm University
RP Zhou, WQ (corresponding author), Chinese Acad Sci, Res Ctr Ecoenvironm Sci, Beijing 100085, Peoples R China.; Zhou, WQ (corresponding author), Univ Chinese Acad Sci, Beijing, Peoples R China.
EM wzhou@rcees.ac.cn
RI Zhou, Weiqi/G-2427-2010; McPhearson, Timon/JOZ-3799-2023
OI Pickett, Steward/0000-0002-1899-976X; Zhou, Weiqi/0000-0001-7323-4906;
   McPhearson, Timon/0000-0002-9499-0791
FU National Natural Science Foundation of China [41422104, 41371197]; Key
   Research Program of Frontier Sciences, CAS [QYZDB-SSW-DQC034]; Chinese
   Academy of Sciences President's International Fellowship Initiative
   [2013T1Z0026]; U.S National Science Foundation [DEB-1855277]; Urban
   Sustainability Research Coordination Network; US National Science
   Foundation through the Urban Resilience to Extreme Weather-Related
   Events Sustainability Research Network (NSF) [SES 1444755]; US NSF
   Accel-Net program NATURA [1927167]; US NSF Convergence program
   [1934933]; Swedish Research Council for Environment, Agricultural
   Sciences, and Spatial Planning; Swedish Environmental Protection Agency;
   German Aerospace Center; National Science Centre; Research Council of
   Norway; Spanish Ministry of Economy and Competitiveness; Nordforsk
   Sustainable Urban Development and Smart Cities program
FX W.Z. thanks the support from the National Natural Science Foundation of
   China (41422104 and 41371197) and the Key Research Program of Frontier
   Sciences, CAS (QYZDB-SSW-DQC034). S.T.A.P. is grateful for a visiting
   professorship funded by the Chinese Academy of Sciences President's
   International Fellowship Initiative (2013T1Z0026), and both authors
   acknowledge the U.S National Science Foundation for support of the
   Baltimore Ecosystem Study LTER (DEB-1855277) and the Urban
   Sustainability Research Coordination Network. T.M. is grateful for
   support from the US National Science Foundation through the Urban
   Resilience to Extreme Weather-Related Events Sustainability Research
   Network (NSF grant no. SES 1444755), as well as the US NSF Accel-Net
   program NATURA (grant no. 1927167), and US NSF Convergence program
   (grant no. 1934933). Research was also partially funded through the
   2015-2016 BiodivERsA COFUND call for research proposals, with the
   national funders the Swedish Research Council for Environment,
   Agricultural Sciences, and Spatial Planning; the Swedish Environmental
   Protection Agency; the German Aerospace Center; the National Science
   Centre, the Research Council of Norway; and the Spanish Ministry of
   Economy and Competitiveness. Additional support for T.M. was provided by
   the SMARTer Greener Cities project through the Nordforsk Sustainable
   Urban Development and Smart Cities program. We are grateful for strong
   graphics support from Claudia Tomateo in the Urban Systems Lab, the New
   School.
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NR 75
TC 45
Z9 46
U1 0
U2 9
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 23
PY 2021
VL 1
IS 1
AR 1
DI 10.1038/s42949-020-00011-9
PG 11
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I3DL4
UT WOS:001001618400008
OA gold
DA 2025-04-22
ER

PT J
AU Vaarst, M
   Escudero, AG
   Chappell, MJ
   Brinkley, C
   Nijbroek, R
   Arraes, NAM
   Andreasen, L
   Gattinger, A
   De Almeida, GF
   Bossio, D
   Halberg, N
AF Vaarst, Mette
   Getz Escudero, Arthur
   Chappell, M. Jahi
   Brinkley, Catherine
   Nijbroek, Ravic
   Arraes, Nilson A. M.
   Andreasen, Lise
   Gattinger, Andreas
   De Almeida, Gustavo Fonseca
   Bossio, Deborah
   Halberg, Niels
TI Exploring the concept of agroecological food systems in a city-region
   context
SO AGROECOLOGY AND SUSTAINABLE FOOD SYSTEMS
LA English
DT Article
DE City-region; equity; governance; nourishment; resilience; resource
   efficiency
ID ECOLOGICAL INTENSIFICATION; SMALL FARMS; AGRICULTURE; SUSTAINABILITY;
   SOVEREIGNTY; NETWORKS; SECURITY; NITROGEN; PARIS
AB Based on urgent needs for food security compounded by a changing climate which impacts and is impacted by agricultural land-use and food distribution practices, we explore the processes of action in implementing agroecological food systems. We identified the following characteristics for an agroecological food system: 1. Minimizing use of external inputs, 2. Extent of internal resource recycling, 3. Resilience, 4. Multifunctionality, 5. Building on complexity and incorporating greater systems integration, 6. Contextuality, 7. Equity and, 8. Nourishment. We focus on the city-region food systems context, concluding with practical drivers for realizing more agroecological food systems in city-region contexts. Agroecological food systems are widely diverse, shaped by context, and achieved through multi-actor planning in rural, peri-urban and urban areas. Application of agroecological food systems in rural-urban contexts emphasize the necessity of diversification, zoning rural-urban landscapes, planning for seasonality in a food systems context, and producing at scale. Rural-urban food systems are a relevant and challenging entry point that provides opportunities for learning how food systems can be shaped for significant positive change. Social organization, community building, common learning, and knowledge creation are crucial for agroecological contextualized food systems, as are the supports from appropriate governing and institutional structures.
C1 [Vaarst, Mette] Aarhus Univ, Dept Anim Sci, Res Ctr Foulum, Tjele, Denmark.
   [Getz Escudero, Arthur] Urban PlanEat, Madrid, Spain.
   [Chappell, M. Jahi] Coventry Univ, Ctr Agroecol Water & Resilience, Coventry, W Midlands, England.
   [Chappell, M. Jahi] IATP, Minneapolis, MN USA.
   [Brinkley, Catherine] Univ Calif Davis, Coll Agr & Environm Sci Community & Reg Dev, 2333 Hart Hall, Davis, CA 95616 USA.
   [Nijbroek, Ravic] Int Ctr Trop Agr CIAT, Soils & Landscapes Sustainabil, Nairobi, Kenya.
   [Arraes, Nilson A. M.] Nilson Antonio Modesto Univ Campinas, Sch Agr Engn, Campinas, SP, Brazil.
   [Andreasen, Lise; Halberg, Niels] Int Ctr Res Organ Food Syst ICROFS, Tjele, Denmark.
   [Gattinger, Andreas] Justus Liebig Univ Giessen JLU, Inst Agron & Plant Breeding 2, Chair Organ Farming, Giessen, Germany.
   [Gattinger, Andreas] Res Inst Organ Agr FiBL, Dept Soil Sci, Frick, Switzerland.
   [De Almeida, Gustavo Fonseca] Univ Fed Sao Carlos, Ctr Nat Sci, Campus Lagoa de Sino, Sao Paulo, Brazil.
   [Bossio, Deborah] Nature Conservancy, Global Lands Program, Santa Cruz, CA USA.
C3 Aarhus University; Coventry University; University of California System;
   University of California Davis; Alliance; International Center for
   Tropical Agriculture - CIAT; Universidade Federal de Sao Carlos; Nature
   Conservancy
RP Vaarst, M (corresponding author), Aarhus Univ, Dept Anim Sci, Blichers Alle 20,POB 50, DK-8830 Tjele, Denmark.
EM Mette.Vaarst@anis.au.dk
RI Arraes, Nilson/L-2451-2017; Johnson-Chappell, M. Jahi/E-9398-2010;
   Brinkley, Catherine/E-3750-2016; Almeida, Gustavo Fonseca de/F-2839-2014
OI Johnson-Chappell, M. Jahi/0000-0001-8542-1610; Nijbroek,
   Ravic/0000-0002-3748-8973; Vaarst, Mette/0000-0003-2830-2847; Brinkley,
   Catherine/0000-0002-3642-8207; Halberg, Niels/0000-0003-3197-1830;
   Arraes, Nilson Antonio Modesto/0000-0002-8512-9078; Almeida, Gustavo
   Fonseca de/0000-0003-0263-697X
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NR 123
TC 70
Z9 75
U1 4
U2 84
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 2168-3565
EI 2168-3573
J9 AGROECOL SUST FOOD
JI Agroecol. Sustain. Food Syst.
PY 2018
VL 42
IS 6
BP 686
EP 711
DI 10.1080/21683565.2017.1365321
PG 26
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 GB1AV
UT WOS:000428783700009
OA Green Published, Green Submitted, hybrid
DA 2025-04-22
ER

PT J
AU MacKillop, F
AF MacKillop, Fionn
TI Climatic city: Two centuries of urban planning and climate science in
   Manchester (UK) and its region
SO CITIES
LA English
DT Article
DE Manchester; Industrial ecology; Urban regime; Urban climate; Ecological
   modernisation; Green cities
ID ENVIRONMENT
AB This paper traces the history, and current challenges, of climate science and urban design in Greater Manchester, UK. The Mancunian metropolis is a remarkable example of a 'climatic city', one that shapes its climate as much as it is shaped by it. From the efforts to control smoke and clear slums in the 19th century, to today's race to be at the forefront of 'green' and 'sustainable' cities, climate is a central actor in Manchester's history and will likely be so in the near future. We analyse the continuities and inflections of this history of climate science and urban planning in the metropolis by drawing on historical material and interviews with key local stakeholders, to understand the natural, social and political construction of this singular 'industrial ecology'. Ultimately, we ask whether stakeholders in the Greater Manchester area can overcome existing challenges to go towards a greener, more resilient and sustainable city. (C) 2011 Elsevier Ltd. All rights reserved.
C1 [MacKillop, Fionn] Univ So Queensland, Australian Ctr Sustainable Business & Dev, Springfield, Qld 4300, Australia.
   [MacKillop, Fionn] Univ Manchester, Manchester Architectural Res Ctr, Manchester M1 9PL, Lancs, England.
C3 University of Southern Queensland; University of Manchester
RP MacKillop, F (corresponding author), Univ So Queensland, Australian Ctr Sustainable Business & Dev, Springfield, Qld 4300, Australia.
EM Fionn.mackillop@usq.edu.au
FU ESRC [ES/H005471/1] Funding Source: UKRI
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   [No title captured]
NR 45
TC 16
Z9 19
U1 2
U2 44
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 AUG
PY 2012
VL 29
IS 4
BP 244
EP 251
DI 10.1016/j.cities.2011.10.002
PG 8
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 951QM
UT WOS:000304735100004
DA 2025-04-22
ER

PT J
AU Nyati, LH
   Patel, L
   Haffejee, S
   Sello, M
   Mbowa, S
   Sani, T
   Norris, SA
AF Nyati, Lukhanyo H.
   Patel, Leila
   Haffejee, Sadiyya
   Sello, Matshidiso
   Mbowa, Sonia
   Sani, Tania
   Norris, Shane A.
TI Context Matters-Child Growth within a Constrained Socio-Economic
   Environment
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE urban environment; poverty; cash transfers; child growth; child
   resilience; maternal depression; developing countries; South Africa
ID CASH; PROGRAMS
AB Communities in major cities in developing countries may experience economic vulnerability, which has detrimental consequences for maternal and child health. This study investigated individual-, household-, and community-level factors associated with child growth and resilience of early-grade learners aged 6 to 8 years. Demographic characteristics, depression scale, child wellbeing, and anthropometric measurements were collected on a sample of 162 caregiver-child pairs (children 46% female) who receive the child support grant (cash transfer programme) from five low-income urban communities in the City of Johannesburg, South Africa. Height and weight were converted to z-scores using the WHO Anthroplus software. Multiple linear regression was used to assess factors associated with child health outcomes and multi-level regression to account for community-level factors. Higher income vulnerability was associated with lower weight- and height-for-age z-scores (WAZ and HAZ). Not completing secondary schooling and higher household size were associated with lower HAZ but higher BAZ. Child male sex and caregiver with depression were associated with lower child resilience. Caregiver's level of schooling and household size remained independent predictors of child growth, while the caregiver's mental health status independently predicted child resilience. Thus, notwithstanding systemic constraints, there may be modifiable drivers that can help in developing targeted intervention.
C1 [Nyati, Lukhanyo H.; Norris, Shane A.] Univ Witwatersrand, Fac Hlth Sci, Dept Paediat, SAMRC Wits Dev Pathways Hlth Res Unit, 7 York Rd, ZA-2193 Johannesburg, South Africa.
   [Patel, Leila; Haffejee, Sadiyya; Sello, Matshidiso; Mbowa, Sonia; Sani, Tania] Univ Johannesburg, Fac Humanities, Ctr Social Dev Africa, Johannesburg Business Sch, ZA-2092 Milpark, South Africa.
C3 University of Witwatersrand; University of Johannesburg
RP Nyati, LH (corresponding author), Univ Witwatersrand, Fac Hlth Sci, Dept Paediat, SAMRC Wits Dev Pathways Hlth Res Unit, 7 York Rd, ZA-2193 Johannesburg, South Africa.
EM lukhanyo.nyati@gmail.com
RI Nyati, Lukhanyo/AAV-6756-2021; Norris, Shane/C-4664-2014
OI Nyati, Howard/0000-0003-0975-344X; Norris, Shane/0000-0001-7124-3788;
   Patel, Leila/0000-0003-2499-820X; Sello, Matshidiso/0000-0001-5278-4490
FU Department of Science and Innovation through the National Research
   Foundation
FX This research was funded by the Department of Science and Innovation
   through the National Research Foundation.
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NR 32
TC 1
Z9 1
U1 0
U2 4
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 11944
DI 10.3390/ijerph191911944
PG 11
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 5G1QV
UT WOS:000866781500001
PM 36231238
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Chen, WY
   Hua, JY
AF Chen, Wendy Y.
   Hua, Junyi
TI Heterogeneity in resident perceptions of a bio-cultural heritage in Hong
   Kong: A latent class factor analysis
SO ECOSYSTEM SERVICES
LA English
DT Article
DE Urban heritage tree; Biological benefits; Cultural ecosystem services;
   Latent class factor analysis; Heterogeneous perception; Hong Kong
ID WILLINGNESS-TO-PAY; URBAN GREEN SPACES; ECOSYSTEM SERVICES; ATTITUDINAL
   DATA; TREES; BIODIVERSITY; COMMUNITY; CITIES; PREFERENCE; GUANGZHOU
AB There is an increasing recognition of ecosystem services provided by urban trees and their importance to urban resilience and sustainability through the preservation and enhancement of biological diversity so as to withstand disturbances and retain ecosystem functions as well as guarantee the well-being of current and future urban dwellers. However, the heterogeneous perceptions that urban residents may hold towards various ecosystem services have seldom been investigated. This study made a unique contribution to the growing body of literature on urban ecosystem services by examining the unobserved heterogeneity in resident perceptions of ecosystem services provided by a distinctive bio-cultural asset, urban heritage trees, in Hong Kong, via a novel application of latent class factor analysis which allows for considering the multidimensionality of latent factors and increases model parsimony. A total of 1075 face-to-face interviews were conducted with a stratified sample of residents about their perceived importance of two categories of distinctive ecosystem services provided by urban heritage trees: biological benefits and cultural benefits. The results indicated that, on average, both biological and cultural benefits of urban heritage trees were perceived to be important. Nevertheless, six classes were identified on the basis of different levels of two latent class factors, which differed markedly with respect to individual's perceived importance of ecosystem services provided by urban heritage trees, from fairly balanced to very divergent perceptions of biological services and cultural services. This heterogeneity was explained with covariates describing respondents' sociodemographic characteristics and activities at heritage tree sites. The results have implications for optimally tailoring promoting and participatory approaches, fostering improved communications with the general public, and nurturing overall support for urban heritage tree conservation from heterogeneous resident groups in order to achieve urban resilience and sustainability. (C) 2017 Elsevier B.V. All rights reserved.
C1 [Chen, Wendy Y.; Hua, Junyi] Univ Hong Kong, Dept Geog, Pokfulam Rd, Hong Kong, Hong Kong, Peoples R China.
C3 University of Hong Kong
RP Chen, WY (corresponding author), Univ Hong Kong, Dept Geog, Pokfulam Rd, Hong Kong, Hong Kong, Peoples R China.
EM wychen@hku.hk
RI Chen, WY/HKN-5931-2023; Hua, Junyi/AAH-2369-2021; Chen, Wendy
   Yan/D-4884-2009
OI Hua, Junyi/0000-0001-7070-2284; Chen, Wendy Yan/0000-0001-8235-6446
FU General Research Fund from the Research Grants Council of the Hong Kong
   Special Administrative Region [HKU759413H]; University of Hong Kong
   [201210159061]
FX The authors are very grateful for the General Research Fund (HKU759413H)
   from the Research Grants Council of the Hong Kong Special Administrative
   Region and the Seed Funding Programme for Basic Research (201210159061)
   kindly provided by the University of Hong Kong.
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NR 136
TC 25
Z9 27
U1 2
U2 74
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 2212-0416
J9 ECOSYST SERV
JI Ecosyst. Serv.
PD APR
PY 2017
VL 24
BP 170
EP 179
DI 10.1016/j.ecoser.2017.02.019
PG 10
WC Ecology; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA EV7GV
UT WOS:000401944800016
DA 2025-04-22
ER

PT J
AU Espey, J
   Parnell, S
   Revi, A
AF Espey, Jessica
   Parnell, Susan
   Revi, Aromar
TI The transformative potential of a Global Urban Agenda and its lessons in
   a time of crisis
SO NPJ URBAN SUSTAINABILITY
LA English
DT Review
ID HABITAT-II; INDICATORS; IMPLEMENTATION; CITIES
AB 2015 was a seismic moment for urban stakeholders around the world. A coalition of policymakers, academics and practitioners came together to successfully advocate for an urban goal to be included in the UN Sustainable Development Goal framework. Although the value of a place-based approach to development has been demonstrated by a number of cities and countries worldwide, it was 2020-2022 (three years of cataclysmic global events) that highlighted the necessity for a universal place-based approach to planning in order to foster resilience and sustainability. In this article, three academic-practitioners reflect upon the transformative potential of the 2015-16 urban agendas.
C1 [Espey, Jessica] Univ Bristol, Sch Geog Sci, Bristol, England.
   [Parnell, Susan] Univ Bristol, Univ Cape Town, Sch Geog Sci, Cape Town, South Africa.
   [Revi, Aromar] Indian Inst Human Settlements, Bangalore, India.
   [Revi, Aromar] Univ CapeTown, African Ctr Cities, Cape Town, South Africa.
C3 University of Bristol; University of Cape Town; Indian Institute for
   Human Settlements (IIHS); University of Cape Town
RP Espey, J (corresponding author), Univ Bristol, Sch Geog Sci, Bristol, England.
EM jessica.espey@bristol.ac.uk
RI Revi, Aromar/H-8290-2016; Parnell, Susan/Q-9963-2018
OI Revi, Aromar/0000-0002-7712-9262; Parnell, Susan/0000-0002-5702-1684;
   Espey, Jessica/0000-0002-5140-7463
FU UKRI's Global Challenge research Fund [eS/P011055/1]
FX The authors would like to acknowledge the PEAK Urban programme, funded
   by UKRI's Global Challenge research Fund, Grant ref: eS/P011055/1.
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NR 89
TC 7
Z9 7
U1 6
U2 11
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 MAR 11
PY 2023
VL 3
IS 1
AR 15
DI 10.1038/s42949-023-00087-z
PG 10
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I0SN8
UT WOS:000999962700001
PM 36936645
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Hampton, FM
AF Hampton, Frederick M.
TI The Seven Secrets of Successful Urban School Students: The Evidence
   Continues to Grow
SO EDUCATION AND URBAN SOCIETY
LA English
DT Article
DE urban education; students; educational reform; multi-cultural education
ID ACADEMIC RESILIENCE; COMMUNITY; RISK; ACHIEVEMENT
AB This article identifies seven specific attitudes, behaviors, and skills among academically successful urban Black students and explores the relationship to their achievement. This study examines the academic achievement of 157 Black students and finds that when specific Successful Learner Characteristics are present, above-average academic achievement is likely to result. This research further determines that when urban Black students demonstrate these characteristics they also share in greater responsibility for their own learning. Finally, this study concludes that there may be less of an achievement gap than there is a gap in attitudes, behaviors, and skills that lead to academic achievement.
C1 [Hampton, Frederick M.] Cleveland State Univ, Educ, Cleveland, OH 44115 USA.
C3 University System of Ohio; Cleveland State University
RP Hampton, FM (corresponding author), Cleveland State Univ, 2485 Euclid Ave, Cleveland, OH 44115 USA.
EM f.hampton@csuohio.edu
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NR 44
TC 6
Z9 15
U1 1
U2 11
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0013-1245
EI 1552-3535
J9 EDUC URBAN SOC
JI Educ. Urban Soc.
PD JUN
PY 2016
VL 48
IS 5
BP 423
EP 443
DI 10.1177/0013124514533990
PG 21
WC Education & Educational Research; Urban Studies
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Urban Studies
GA DK6OP
UT WOS:000375043700001
DA 2025-04-22
ER

PT J
AU Chen, YH
   Wu, GH
   Chen, Y
   Xia, ZL
AF Chen, Yuehong
   Wu, Guohao
   Chen, Yu
   Xia, Zelong
TI Spatial Location Optimization of Fire Stations with Traffic Status and
   Urban Functional Areas
SO APPLIED SPATIAL ANALYSIS AND POLICY
LA English
DT Article
DE Spatial optimization; Fire station; Traffic status; Urban functional
   areas
AB Efficient spatial deployment of urban fire stations is highly desired to address the frequent and complex modern urban fires. Various spatial location optimization approaches have been developed to site fire stations. However, most approaches ignored the impact of the traffic status and the actual demand areas of fire services in the rapid urbanization. This paper develops a multi-objective spatial optimization model to account for the traffic status with the online map and the actual demands of fire services with urban functional areas in siting fire stations. A case study in Nanjing, China is conducted to select fire stations with the developed model. Results demonstrate its effectiveness in siting fire stations and highlighting important policy implications for fire departments to ensure urban safety and resilience.
C1 [Chen, Yuehong; Wu, Guohao] Hohai Univ, Coll Hydrol & Water Resources, Nanjing 210098, Peoples R China.
   [Chen, Yu] Nanjing Normal Univ, Sch Geog, Nanjing 210023, Peoples R China.
   [Xia, Zelong] Jiangsu Second Normal Univ, Sch Urban Resource & Environm, Nanjing 210013, Peoples R China.
C3 Hohai University; Nanjing Normal University; Jiangsu Second Normal
   University
RP Chen, YH (corresponding author), Hohai Univ, Coll Hydrol & Water Resources, Nanjing 210098, Peoples R China.
OI Chen, Yu/0000-0002-6773-0855
FU National Natural Science Foundation of China; Open Research Fund Program
   of Beijing Key Laboratory of Urban Spatial Information Engineering;
   Natural Science Foundation for Colleges and Universities in Jiangsu
   Province;  [42071315];  [42171173];  [42201213];  [20220119]; 
   [21KJB170012]
FX AcknowledgementsThis work was supported in part by the National Natural
   Science Foundation of China (No. 42071315, No. 42171173 and 42201213),
   in part by the Open Research Fund Program of Beijing Key Laboratory of
   Urban Spatial Information Engineering (No. 20220119), and in part by the
   Natural Science Foundation for Colleges and Universities in Jiangsu
   Province (No. 21KJB170012).
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NR 34
TC 12
Z9 13
U1 10
U2 45
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1874-463X
EI 1874-4621
J9 APPL SPAT ANAL POLIC
JI Appl. Spat. Anal. Policy
PD JUN
PY 2023
VL 16
IS 2
BP 771
EP 788
DI 10.1007/s12061-023-09502-5
EA JAN 2023
PG 18
WC Environmental Studies; Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration
GA G7HL3
UT WOS:000908557400001
DA 2025-04-22
ER

PT J
AU Fatemi, MN
   Okyere, SA
   Diko, SK
   Kita, M
   Shimoda, M
   Matsubara, S
AF Fatemi, Md. Nawrose
   Okyere, Seth Asare
   Diko, Stephen Kofi
   Kita, Michihiro
   Shimoda, Motoki
   Matsubara, Shigeki
TI Physical Vulnerability and Local Responses to Flood Damage in Peri-Urban
   Areas of Dhaka, Bangladesh
SO SUSTAINABILITY
LA English
DT Article
DE physical vulnerability; coping strategies; peri-urban area; Dhaka;
   Bangladesh
ID INDICATOR-BASED APPROACH; COPING STRATEGIES; CLIMATE-CHANGE;
   RISK-ASSESSMENT; URBAN-POOR; RESILIENCE; MODEL; HAZARDS; IMPACT;
   COMMUNITIES
AB In Eastern Dhaka, perennial flood remains a constant threat to people and livelihoods. Learning from the micro-level experiences of the poor in the peri-urban areas of Dhaka provides insights on the intersections between physical vulnerability, flood response strategies, and adaptive capacity. Through a convergent mixed method, this study examines the physical vulnerability of residential buildings, flood damages, and local physical responses in three neighborhoods of Eastern Dhaka. Results show that the level of damage to buildings is the most important predictor of physical vulnerability to floods. Buildings that are older than 20 years old and built with natural materials are likely to experience high flood damages compared to buildings that are less than 10 years and constructed with durable materials. The study concludes that in addition to socio-economic interventions, a targeted and people-centered flood management regime that pays attention to age, material composition, and structural quality of houses is necessary to build residents' adaptive capacities and long-term resilience to flooding. This study contributes to the emerging work on grassroots responses to flood vulnerabilities with practical insights for urban planners and disaster management professionals on particular interventions needed to improve the performance of local responses to flood risks and vulnerabilities.
C1 [Fatemi, Md. Nawrose; Okyere, Seth Asare; Kita, Michihiro; Shimoda, Motoki; Matsubara, Shigeki] Osaka Univ, Div Global Architecture, Suita, Osaka 5650871, Japan.
   [Diko, Stephen Kofi] Univ Memphis, Dept City & Reg Planning, Memphis, TN 38152 USA.
C3 The University of Osaka; University of Memphis
RP Fatemi, MN (corresponding author), Osaka Univ, Div Global Architecture, Suita, Osaka 5650871, Japan.
EM fatemi_nawrose@arch.eng.osaka-u.ac.jp;
   seth_asare_okyere@arch.eng.osaka-u.ac.jp; skdiko@memphis.edu;
   kita@arch.eng.osaka-u.ac.jp; shimoda@arch.eng.osaka-u.ac.jp;
   shigeki@arch.eng.osaka-u.ac.jp
RI Diko, Stephen/GZK-6677-2022; Fatemi, Md Nawrose/AAT-4596-2020
OI Okyere, Seth Asare/0000-0001-9028-2491; Diko,
   Stephen/0000-0003-1809-436X; Fatemi, Md. Nawrose/0000-0002-8831-3583
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NR 118
TC 25
Z9 25
U1 6
U2 23
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY
PY 2020
VL 12
IS 10
AR 3957
DI 10.3390/su12103957
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 MC6VG
UT WOS:000543421400015
OA gold, Green Published
DA 2025-04-22
ER

EF