﻿FN Clarivate Analytics Web of Science
VR 1.0
PT J
AU Duy, PN
   Chapman, L
   Tight, M
   Thuong, LV
   Linh, PN
AF Duy, P. N.
   Chapman, L.
   Tight, M.
   Thuong, L. V.
   Linh, P. N.
TI Urban Resilience to Floods in Coastal Cities: Challenges and
   Opportunities for Ho Chi Minh City and Other Emerging Cities in
   Southeast Asia
SO JOURNAL OF URBAN PLANNING AND DEVELOPMENT
LA English
DT Article
DE Urban resilience; Flood vulnerability; Spatial planning and management;
   Coastal city
AB Flooding is a hazard in many cities despite the presence of flood protection systems. However, recent losses and damage owing to flooding in many coastal cities have indicated that the increasing volatility of natural disasters and flood events are now exceeding present day design considerations. By comparing and deriving common lessons from case studies in New Orleans, Manila, and Bangkok, this paper focuses on the extent to which coastal cities are becoming more vulnerable to flooding and argues that broader urban resilience in the planning process now has an increasing role to play alongside traditional flood defenses. Given the present speed of development in Southeast Asia, there are opportunities for these ideas to be readily and rapidly incorporated into development plans to reduce the severity of increasing flood events in the region.
C1 [Duy, P. N.; Chapman, L.] Univ Birmingham, Sch Geog, Earth & Environm Sci, Birmingham B15 2TT, W Midlands, England.
   [Tight, M.] Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, W Midlands, England.
   [Thuong, L. V.] Ho Chi Minh City Univ Architecture, Ho Chi Minh City 70000, Vietnam.
   [Linh, P. N.] Ho Chi Minh City Univ Architecture, Dept Urban Planning, Ho Chi Minh City 70000, Vietnam.
C3 University of Birmingham; University of Birmingham
RP Duy, PN (corresponding author), Univ Birmingham, Sch Geog, Earth & Environm Sci, Birmingham B15 2TT, W Midlands, England.
EM duyadm@gmail.com
RI Tight, Miles/L-9984-2015; chapman, lee/F-4674-2014
OI chapman, lee/0000-0002-2837-8334
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NR 52
TC 24
Z9 25
U1 9
U2 136
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
PY 2018
VL 144
IS 1
AR 05017018
DI 10.1061/(ASCE)UP.1943-5444.0000419
PG 10
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 FT1IC
UT WOS:000422887700013
OA Green Published
DA 2025-04-22
ER

PT J
AU Portnoi, LM
   Kwong, TM
AF Portnoi, Laura M.
   Kwong, Tiffany M.
TI Employing Resistance and Resilience in Pursuing K-12 Schooling and
   Higher Education: Lived Experiences of Successful Female
   First-Generation Students of Color
SO URBAN EDUCATION
LA English
DT Article
DE first generation students; resistance; resilience; public higher
   education; programs; postsecondary education; diversity; social;
   culture; subjects; college access; urban education; minority academic
   success; students of color
ID COLLEGE-STUDENTS; ACADEMIC PREPARATION; CRITICAL RACE; GENERATION;
   ASPIRATIONS; ENGAGEMENT; ENROLLMENT; PATHWAYS; SUPPORT; CHICANA
AB Drawing upon standpoint theory and phenomenology, this study chronicles the lived experiences of 16 successful female first-generation students of color as they pursued K-12 schooling and accessed higher education. Findings indicate that a complex set of school, family, peer, and personal factors affected students' lived experiences in their urban environments; three holistic student profiles illustrate the interconnectedness of these factors. Stories of successful female first-generation students of color demonstrate how they, despite facing numerous challenges, used resistance and resilience during their K-12 urban schooling and when accessing higher education.
C1 [Portnoi, Laura M.] Calif State Univ Long Beach, Adv Studies Educ & Counseling Dept, Long Beach, CA 90840 USA.
   [Portnoi, Laura M.; Kwong, Tiffany M.] Calif State Univ Long Beach, 1250 Bellflower Blvd, Long Beach, CA 90840 USA.
C3 California State University System; California State University Long
   Beach; California State University System; California State University
   Long Beach
RP Portnoi, LM (corresponding author), Calif State Univ Long Beach, 1250 Bellflower Blvd, Long Beach, CA 90840 USA.
EM laura.portnoi@csulb.edu
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NR 69
TC 5
Z9 22
U1 1
U2 16
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0042-0859
EI 1552-8340
J9 URBAN EDUC
JI Urban Educ.
PD MAR
PY 2019
VL 54
IS 3
BP 430
EP 458
DI 10.1177/0042085915623333
PG 29
WC Education & Educational Research; Urban Studies
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Urban Studies
GA HL6QX
UT WOS:000458861300005
DA 2025-04-22
ER

PT J
AU Martin, D
   Grodach, C
AF Martin, Declan
   Grodach, Carl
TI RESILIENCE AND ADAPTATION IN GENTRIFYING URBAN INDUSTRIAL DISTRICTS: The
   Experience of Cultural Manufacturers in San Francisco and Melbourne
SO INTERNATIONAL JOURNAL OF URBAN AND REGIONAL RESEARCH
LA English
DT Article
DE gentrification; resilience; urban manufacturing; industrial land;
   creative clusters; intermediaries
ID MAKER MOVEMENT; POLICY; GENTRIFICATION; DISPLACEMENT; WILLIAMSBURG;
   CONTEXT; CHALLENGES; INNOVATION; KNOWLEDGE; LESSONS
AB Recent urban scholarship shows how zoning and real estate dynamics shape ongoing processes of gentrification and deindustrialization. While studies demonstrate the impact of planning and property market pressures on the arts, less research has examined their effect on urban manufacturers in gentrifying industrial districts. Given the differential impact of zoning and real estate pressures, our research focuses specifically on how 'cultural manufacturers' negotiate changing land use patterns in gentrifying urban industrial areas in San Francisco and Melbourne. Our findings show how cultural manufacturers develop flexible workspace arrangements, business models and professional networks to negotiate urban restructuring and avoid displacement. Though innovative, these survival strategies provide limited ability to navigate structural barriers. Here, the presence of intermediary organizations can help coordinate a strategic response to industrial gentrification and indifferent planning policy. In our research we highlight the everyday practices of adaptation and collective action in an under-researched cultural sector to provide a counterweight to macro-scale transitional narratives. While cities have deindustrialized owing to technological and competitive pressures, to focus exclusively on this misses a range of resilience practices that have sustained manufacturers in restructuring cities.
C1 [Martin, Declan; Grodach, Carl] Monash Univ, Urban Planning & Design, Monash Art Design & Architecture MADA, 900 Dandenong Rd, Caulfield, Vic 3145, Australia.
C3 Monash University
RP Martin, D (corresponding author), Monash Univ, Urban Planning & Design, Monash Art Design & Architecture MADA, 900 Dandenong Rd, Caulfield, Vic 3145, Australia.
EM declan.martin@monash.edu; carl.grodach@monash.edu
OI Martin, Declan/0000-0002-5989-1464
FU Australia Research Council Discovery Project, Urban Cultural Policy and
   the Changing Dynamics of Cultural Production [DP170104255]
FX We wish to thank the IJURR handling editor and the three anonymous
   reviewers for their careful review and constructive feedback on previous
   versions of this article. This work was funded by the Australia Research
   Council Discovery Project, Urban Cultural Policy and the Changing
   Dynamics of Cultural Production (DP170104255). Open access publishing
   facilitated by Monash University, as part of the Wiley - Monash
   University agreement via the Council of Australian University Librarians
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NR 79
TC 9
Z9 9
U1 2
U2 26
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0309-1317
EI 1468-2427
J9 INT J URBAN REGIONAL
JI Int. J. Urban Reg. Res.
PD JUL
PY 2023
VL 47
IS 4
BP 625
EP 644
DI 10.1111/1468-2427.13175
EA MAY 2023
PG 20
WC Geography; Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Geography; Public Administration; Urban Studies
GA M9LN2
UT WOS:000981856200001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
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   Batica, Jelena
   Butler, David
   Djordjevic, Slobodan
   Gourbesville, Philippe
   Manojlovic, Natasa
   Mark, Ole
   Veerbeek, William
TI A new flood risk assessment framework for evaluating the effectiveness
   of policies to improve urban flood resilience
SO URBAN WATER JOURNAL
LA English
DT Article
DE Urban Flooding; Strategic Planning; Risk Management
ID CLIMATE-CHANGE; ADAPTATION STRATEGIES; DAMAGE ASSESSMENT; MANAGEMENT;
   IMPACT; MODEL; DRIVERS; SYSTEMS; EVENTS; PART
AB To better understand the impacts of flooding such that authorities can plan for adapting measures to cope with future scenarios, we have developed a modified Drivers-Pressures-State-Impact-Response (DPSIR) framework to allow policy makers to evaluate strategies for improving flood resilience in cities. We showed that this framework proved an effective approach to assessing and improving urban flood resilience, albeit with some limitations. This framework has difficulties in capturing all the important relationships in cities, especially with regards to feedbacks. There is therefore a need to develop improved techniques for understanding components and their relationships. While this research showed that risk assessment is possible even at the mega-city scale, new techniques will support advances in this field. Finally, a chain of models engenders uncertainties. However, the resilience approach promoted in this research, is an effective manner to work with uncertainty by providing the capacity to cope and respond to multiple scenarios.
C1 [Hammond, Michael; Chen, Albert S.; Butler, David; Djordjevic, Slobodan] Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, Exeter, Devon, England.
   [Batica, Jelena] Univ Nice Sophia Antipolis, Nice, France.
   [Gourbesville, Philippe] Univ Nice Sophia Antipolis, Polytech Nice Sophia, Nice, France.
   [Gourbesville, Philippe] Univ Nice Sophia Antipolis, URE Innovat CiTy, Nice, France.
   [Manojlovic, Natasa] TUHH, Hamburg, Germany.
   [Mark, Ole] DHI, Horsholm, Denmark.
   [Veerbeek, William] IHE Delft, Delft, Netherlands.
C3 University of Exeter; Universite Cote d'Azur; Universite Cote d'Azur;
   Universite Cote d'Azur; Hamburg University of Technology; Danish
   Hydraulic Institute (DHI); IHE Delft Institute for Water Education
RP Hammond, M (corresponding author), Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, Exeter, Devon, England.
EM hammond.m.j@gmail.com
RI Gourbesville, Philippe/GQO-9759-2022; Chen, Albert/E-2735-2010; Batica,
   Jelena/HCI-0616-2022; Butler, David/I-2991-2012; Djordjevic,
   Slobodan/P-8853-2015
OI Gourbesville, Philippe/0000-0002-1377-6575; Hammond,
   Michael/0000-0002-9955-8164; Batica, Jelena/0000-0003-1988-6713; Chen,
   Albert S./0000-0003-3708-3332; Butler, David/0000-0001-5515-3416;
   Djordjevic, Slobodan/0000-0003-1682-1383
FU European Commission [244047]; PEARL (Preparing for Extreme And Rare
   events in coastaL regions) project - European Union's Seventh Framework
   Programme [603663]
FX Research on the CORFU (Collaborative research on flood resilience in
   urban areas) project was funded by the European Commission through
   Framework Programme 7 [Grant Number 244047]. The work in this paper was
   partially funded by the PEARL (Preparing for Extreme And Rare events in
   coastaL regions) project, supported by the European Union's Seventh
   Framework Programme [Grant Agreement No 603663].
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NR 62
TC 36
Z9 39
U1 14
U2 111
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 2018
VL 15
IS 5
BP 427
EP 436
DI 10.1080/1573062X.2018.1508598
PG 10
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Water Resources
GA GT7MO
UT WOS:000444712600004
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Mugume, SN
   Melville-Shreeve, P
   Gomez, D
   Butler, D
AF Mugume, Seith N.
   Melville-Shreeve, Peter
   Gomez, Diego
   Butler, David
TI Multifunctional urban flood resilience enhancement strategies
SO PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-WATER MANAGEMENT
LA English
DT Article
DE failure; floods & floodworks; sustainability
ID STORMWATER MANAGEMENT; CLIMATE-CHANGE; SYSTEMS; RISK; PERFORMANCE;
   NETWORK; TANK
AB Enhancing resilience in urban drainage systems (UDSs) can be achieved by implementing a range of strategies that minimise the magnitude and duration of flooding during or after the occurrence of unexpected system failures. Dual-purpose rainwater harvesting (RWH) systems provide a promising multifunctional resilience-enhancing strategy due to their associated multiple benefits such as water conservation and distributed control of storm water. However, their effectiveness in respect to minimisation of resulting flooding impacts and provision of alternative water supplies during unexpected system failures has not been explicitly investigated at a city district or catchment scale. This paper applies the global resilience analysis approach to investigate the effect of implementing a set of multifunctional RWH strategies on improvement of UDS resilience to random cumulative link (sewer) failure, using a case study of the Nakivubo system in Kampala, Uganda. The resulting water supply resilience enhancement benefits are also investigated. The study results reveal that catchment-scale implementation of suitably designed RWH systems provides an effective strategy that improves the system's global resilience to flooding by up to 25%, while simultaneously providing up to 30% of the household water supply requirements in the case study area.
C1 [Mugume, Seith N.] Uganda Elect Generat Co Ltd, Kampala, Uganda.
   [Mugume, Seith N.; Melville-Shreeve, Peter; Gomez, Diego; Butler, David] Univ Exeter, Ctr Water Syst, Coll Engn Math & Phys Sci, Exeter, Devon, England.
   [Butler, David] Univ Exeter, Coll Engn Math & Phys Sci, Water Engn, Exeter, Devon, England.
C3 University of Exeter; University of Exeter
RP Mugume, SN (corresponding author), Uganda Elect Generat Co Ltd, Kampala, Uganda.
EM snm205@exeter.ac.uk
RI Mugume, Seith/ADW-0407-2022; Butler, David/I-2991-2012; Gomez Jorquera,
   Diego E./I-9906-2016
OI Mugume, Seith/0000-0002-8289-0099; Butler, David/0000-0001-5515-3416;
   Gomez Jorquera, Diego E./0000-0003-0313-2554
FU UK Commonwealth PhD scholarship; UK Engineering & Physical Sciences
   Research Council (ESPRC) [EP/K006924/1]; EPSRC [EP/K006924/1] Funding
   Source: UKRI
FX This research is financially supported through a UK Commonwealth PhD
   scholarship awarded to the first author. The work is also supported
   through the UK Engineering & Physical Sciences Research Council (ESPRC)
   funded Safe & SuRe research fellowship (EP/K006924/1) awarded to the
   last author. Acknowledgement is given to the National Water and Sewerage
   Corporation (NWSC), the Kampala Capital City Authority (KCCA) and the
   Water Resources Management Department, Ministry of Water and
   Environment, Uganda for providing datasets used in the study.
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NR 54
TC 20
Z9 23
U1 3
U2 88
PU ICE PUBLISHING
PI WESTMINISTER
PA INST CIVIL ENGINEERS, 1 GREAT GEORGE ST, WESTMINISTER SW 1P 3AA, ENGLAND
SN 1741-7589
EI 1751-7729
J9 P I CIVIL ENG-WAT M
JI Proc. Inst. Civil. Eng.-Water Manag.
PD JUN
PY 2017
VL 170
IS 3
BP 115
EP 127
DI 10.1680/jwama.15.00078
PG 13
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA EW0SA
UT WOS:000402200300003
DA 2025-04-22
ER

PT J
AU Giampieri, MA
   DuBois, B
   Allred, S
   Bunting-Howarth, K
   Fisher, K
   Moy, J
   Sanderson, EW
AF Giampieri, Mario A.
   DuBois, Bryce
   Allred, Shorna
   Bunting-Howarth, Katherine
   Fisher, Kim
   Moy, Jesse
   Sanderson, Eric W.
TI Visions of resilience: lessons from applying a digital democracy tool in
   New York's Jamaica Bay watershed
SO URBAN ECOSYSTEMS
LA English
DT Article
DE Visionmaker; Climate adaptation; Green infrastructure; Urban estuary;
   Community-based planning
ID CITY PANEL; CLIMATE; ADAPTATION; SCIENCE
AB Resilience to extreme weather events and other sudden changes is an issue facing many communities in the early twenty-first century. Planning to respond to disasters is particularly complicated in densely inhabited, multi-jurisdictional urban social-ecological systems like the watershed of Jamaica Bay, a large urbanized estuary on the south side of New York City. This area contains parklands managed by New York City, the National Park Service, and other agencies, four sewage treatment plants, three former landfills, and urban and suburban communities, all of which were heavily impacted by Hurricane Sandy in 2012. Here successful resilience planning and response requires participation from a wide variety of government and civil society players each with different types of knowledge, value systems, and expectations about what resilience means. To investigate how visions of future resilience differed among several communities living in or concerned with Jamaica Bay, New York, we deployed a free, Internet-based modeling framework called Visionmaker that enabled interactive scenario creation and testing. Through a series of standardized workshops, we recruited participants from a variety of different communities of practice (i.e. researchers, land managers, educators, non-governmental organization staff, and community board members) to design visions of resilience. Visions spanned terrestrial and marine environments and contained natural and built ecosystems. Most users favored increasing resilience through expanding salt marsh and green infrastructure while, for the most part, keeping the built city landscape of streets and buildings intact. We compare and contrast these visions and discuss the implications for future resilience planning in coastal cities.
C1 [Giampieri, Mario A.; Fisher, Kim; Moy, Jesse; Sanderson, Eric W.] Wildlife Conservat Soc, 2300 Southern Blvd, Bronx, NY 10460 USA.
   [Giampieri, Mario A.] MIT, Dept Urban Studies & Planning, 77 Massachusetts Ave, Cambridge, MA 02139 USA.
   [DuBois, Bryce; Allred, Shorna] Cornell Univ, Dept Nat Resources, 102 Fernow Hall, Ithaca, NY 14853 USA.
   [Bunting-Howarth, Katherine] Cornell Univ, New York Sea Grant, 112 Rice Hall, Ithaca, NY 14853 USA.
C3 Wildlife Conservation Society; Massachusetts Institute of Technology
   (MIT); Cornell University; Cornell University
RP Giampieri, MA (corresponding author), Wildlife Conservat Soc, 2300 Southern Blvd, Bronx, NY 10460 USA.; Giampieri, MA (corresponding author), MIT, Dept Urban Studies & Planning, 77 Massachusetts Ave, Cambridge, MA 02139 USA.
EM mariogiampieri@gmail.com
RI Sanderson, Eric/O-1664-2019
OI Allred, Shorna/0000-0001-6237-0638; SANDERSON, ERIC
   W./0000-0002-7477-0193
FU United States Department of the Interior, National Park Service
   [P14AC01473]; Rockefeller Foundation; Brooke Astor Fund for New York
   City Education at the New York Community Trust; Summit Foundation;
   Science and Resilience Institute at Jamaica Bay
FX This study was supported by funding from the United States Department of
   the Interior, National Park Service [Cooperative agreement: P14AC01473].
   Additional funding for development of Visionmaker was provided by the
   Rockefeller Foundation, Brooke Astor Fund for New York City Education at
   the New York Community Trust, and the Summit Foundation. We would also
   like to acknowledge and thank all the participants in the Visionmaker
   workshops and the support of the Science and Resilience Institute at
   Jamaica Bay for this effort.
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Z9 5
U1 2
U2 41
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 2019
VL 22
IS 1
SI SI
BP 1
EP 17
DI 10.1007/s11252-017-0701-2
PG 17
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA HJ7SL
UT WOS:000457397500001
OA Bronze, Green Submitted
DA 2025-04-22
ER

PT J
AU Joyce, J
   Chang, NB
   Harji, R
   Ruppert, T
AF Joyce, Justin
   Chang, Ni-Bin
   Harji, Rahim
   Ruppert, Thomas
TI Coupling infrastructure resilience and flood risk assessment via copulas
   analyses for a coastal green-grey-blue drainage system under extreme
   weather events
SO ENVIRONMENTAL MODELLING & SOFTWARE
LA English
DT Article
DE Flood impact; Risk analysis; Resilience assessment; Coastal
   sustainability
ID STATISTICAL APPROACH; MODEL; DISTRIBUTIONS
AB This study sheds light on the coupling of potential flood risk and drainage infrastructure resilience of low-lying areas of a coastal urban watershed to evaluate flood hazards and their possible driving forces. Copulas analyses with the aid of joint probability of simultaneous occurrence help characterize the complexity for hazard classification based on subsequent exposure to inundation under varying levels of adaptive capacity. Adaptive measures of consideration include traditional flood proofing structures and low impact development facilities for a coastal urban watershed - the Cross Bayou watershed, near Tampa Bay, Florida. Findings indicate that coupling flood risk and infrastructure resilience is achievable through the careful formulation of flood risk associated with a resilience metric, which is a function of the predicted hazards, vulnerability, and adaptive capacity. The results also give insights into improving existing methodologies for municipalities in flood management practices such as incorporating a multicriteria flood impact assessment that couples risk and resilience in a common evaluation framework. (c) 2017 Elsevier Ltd. All rights reserved.
C1 [Joyce, Justin; Chang, Ni-Bin] Univ Cent Florida, Dept Civil Environm & Construct, Engn Dept, Orlando, FL 32816 USA.
   [Harji, Rahim] Pinellas Cty Govt, Watershed Management Sect, Largo, FL USA.
   [Ruppert, Thomas] Florida Sea Grant Coll Program, Miami, FL USA.
C3 State University System of Florida; University of Central Florida
RP Chang, NB (corresponding author), Univ Cent Florida, Dept Civil Environm & Construct, Engn Dept, Orlando, FL 32816 USA.
EM nchang@ucf.edu
FU Florida Board of Education; National Oceanic and Atmospheric
   Administration; Florida's citizens and governments [project R-CS-58];
   Pinellas County Government
FX The authors are grateful for the financial support of the Florida Sea
   Grant College Program, a partnership between the Florida Board of
   Education, the National Oceanic and Atmospheric Administration, and
   Florida's citizens and governments, under project R-CS-58 with
   assistance from the Pinellas County Government and to Southwest Florida
   Water Management District for making rainfall data available. The
   authors are thankful for the constructive and copious comments received
   from anonymous reviewers who helped improve the quality of the paper.
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PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 1364-8152
EI 1873-6726
J9 ENVIRON MODELL SOFTW
JI Environ. Modell. Softw.
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DI 10.1016/j.envsoft.2017.11.008
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WC Computer Science, Interdisciplinary Applications; Engineering,
   Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Computer Science; Engineering; Environmental Sciences & Ecology; Water
   Resources
GA FV8GM
UT WOS:000424824200008
DA 2025-04-22
ER

PT J
AU Harbiankova, A
   Scherbina, E
   Budzevich, M
AF Harbiankova, Alena
   Scherbina, Elena
   Budzevich, Mikalai
TI Exploring the Significance of Heritage Preservation in Enhancing the
   Settlement System Resilience
SO SUSTAINABILITY
LA English
DT Article
DE Belarus; cultural heritage; heritage preservation; heritage
   significance; settlement resilience; resilience factors; sustainability;
   sustainable development; settlement system; rural settlement
ID SUSTAINABILITY
AB The sustainable development of urban and rural settlements is considered one of the primary objectives of economic, social, and urban planning. Recent studies focused significant attention on the issue of the resilience of rural settlements due to the challenges and threats they face. One of the essential drivers affecting the resilience of rural settlements is cultural heritage preservation. The research methods were based on the complex systems approach. The study employed a multidimensional analysis method to evaluate the resilience of rural settlements based on five sub-systems: social, economic, environmental, physical, and managerial. The proposed method for evaluation of the settlement sustainability involves the application of a settlement development index and considers the preservation of cultural heritage objects. The data sources used contain open-access information and statistical data provided by municipal organizations, including GIS maps, statistical, and archival records. The study aim was to establish methodological frameworks for evaluating the influence of cultural heritage on the resilience of rural settlements as well as to obtain a quantitative assessment of the resilience of rural settlements within the Zavalocycy local council, located at Hlusk district, Mahilou region, Belarus.
C1 [Harbiankova, Alena] Polish Acad Sci, Inst Rural & Agr Dev, Dept Rural Econ, Ul Nowy Swiat 72, PL-00330 Warsaw, Poland.
   [Scherbina, Elena] Natl Res Moscow State Univ Civil Engn, NRU MGSU, Urban Planning Dept, Moscow 129337, Russia.
   [Budzevich, Mikalai] HL Moffitt Canc Ctr, Tampa, FL 33612 USA.
C3 Polish Academy of Sciences; Institute of Rural & Agricultural
   Development PAS; Moscow State University of Civil Engineering; H Lee
   Moffitt Cancer Center & Research Institute
RP Harbiankova, A (corresponding author), Polish Acad Sci, Inst Rural & Agr Dev, Dept Rural Econ, Ul Nowy Swiat 72, PL-00330 Warsaw, Poland.
EM a.harbiankova@gmail.com; ev.scherbina@yandex.ru;
   mikalai.budzevich@moffitt.org
RI Shcherbina, Elena/Q-6073-2016; Harbiankova, Alena/P-8330-2017
OI Shcherbina, Elena/0000-0002-8595-2101; Harbiankova,
   Alena/0000-0002-0410-0071
FU The authors are very grateful to the academic editors and reviewers for
   constructive comments and suggestions, thanks to whom the article
   received its final shape.
FX The authors are very grateful to the academic editors and reviewers for
   constructive comments and suggestions, thanks to whom the article
   received its final shape.
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NR 68
TC 5
Z9 5
U1 11
U2 28
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2023
VL 15
IS 21
AR 15251
DI 10.3390/su152115251
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 X6OH3
UT WOS:001099617800001
OA gold
DA 2025-04-22
ER

PT J
AU Qi, QJ
   Meng, YY
   Zhao, XF
   Liu, JZ
AF Qi, Qingjie
   Meng, Yangyang
   Zhao, Xiaofei
   Liu, Jianzhong
TI Resilience Assessment of an Urban Metro Complex Network: A Case Study of
   the Zhengzhou Metro
SO SUSTAINABILITY
LA English
DT Article
DE urban metro network; complex topology; robustness; vulnerability;
   resilience assessment
ID RAIL TRANSIT NETWORKS; VULNERABILITY ASSESSMENT; SHENZHEN METRO;
   SYSTEMS; CENTRALITY; SHANGHAI
AB An urban metro network is susceptible to becoming vulnerable and difficult to recover quickly in the face of an unexpected attack on account of the system's complexity and the threat of various emergencies. Therefore, it is necessary to assess the resilience of urban metro networks. However, the research on resilience assessment of urban metro networks is still in the development stage, and it is better to conduct said research using a technique which combines many attributes, multiple methods, and several cases. Therefore, based on the complex network modeling and topological characteristics analysis of metro systems, a metro network's robustness and vulnerability measurement method under node interruption and edge failure is proposed for the first time in this study. Then, considering the three cases of general station interruption, interchange station interruption, and traffic tunnel failure, a quantitative resilience assessment model of metro networks is put forward, and the corresponding recovery strategies are discussed. Finally, a case study of the Zhengzhou Metro Network (ZZMN) under an extreme rainstorm is conducted to demonstrate the viability of the proposed model. The results show that ZZMN possesses scale-free and small-world network properties, and it is robust to random interruptions but vulnerable to deliberate attacks. ZZMN still needs to improve its effectiveness in information transmission. The centrality distribution for each node in the ZZMN network differs significantly, and each node's failure has a unique impact on the network. The larger the DC, BC, and PR of a node is, the lower the network's robustness after its removal is, and the stronger the vulnerability is. Compared with the three cases of general station interruption, interchange station interruption, and traffic tunnel failure, the network loss caused by tunnel failure was the lowest, followed by general station interruption, and the interruption at interchange stations was the most costly. Given the failures under various cases, the metro management department should prioritize selecting the optimal recovery strategy to improve the resilience of the metro network system. This study's findings can assist in making urban metro systems less vulnerable to emergencies and more resilient for a quick recovery, which can provide scientific theoretical guidance and decision support for the safety and resilient, sustainable development of urban metro systems.
C1 [Qi, Qingjie; Meng, Yangyang] Chinese Inst Coal Sci, Inst Emergency Sci Res, Beijing 100013, Peoples R China.
   [Zhao, Xiaofei] City Univ Hong Kong, Dept Comp Sci, Kowloon, Hong Kong, Peoples R China.
   [Liu, Jianzhong] China Coal Technol & Engn Grp, Beijing 100013, Peoples R China.
C3 City University of Hong Kong
RP Meng, YY (corresponding author), Chinese Inst Coal Sci, Inst Emergency Sci Res, Beijing 100013, Peoples R China.
EM mengyy17@tsinghua.org.cn
RI Liu, Jianzhong/B-9205-2012
OI meng, yangyang/0000-0003-4386-1858; ZHAO, Xiaofei/0000-0001-6722-156X
FU Innovation and Entrepreneurship Science and Technology Project of the
   Chinese Institute of Coal Science [2021-JSYF-006]; Innovation and
   Entrepreneurship Science and Technology Project of the China Coal
   Technology and Engineering Group [2022-2-QN004]
FX This research was funded by the Innovation and Entrepreneurship Science
   and Technology Project of the Chinese Institute of Coal Science
   (No.2021-JSYF-006), and the Innovation and Entrepreneurship Science and
   Technology Project of the China Coal Technology and Engineering Group
   (No.2022-2-QN004).
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NR 63
TC 25
Z9 25
U1 30
U2 164
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2022
VL 14
IS 18
AR 11555
DI 10.3390/su141811555
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 4S9KS
UT WOS:000857750900001
OA gold
DA 2025-04-22
ER

PT J
AU Vafai, H
   Parivar, P
   Kashani, SS
   Imani, AF
   Vakili, F
   Ahmadi, G
AF Vafai, H.
   Parivar, P.
   Kashani, S. Sehat
   Imani, A. Farshforoush
   Vakili, F.
   Ahmadi, G.
TI Environmental impact analysis of high-rise buildings for resilient urban
   development
SO SCIENTIA IRANICA
LA English
DT Article
DE Environmental impacts; Resilience mindset; High-rise buildings; Urban
   structure; Urban function
ID SUSTAINABILITY; CHALLENGES; ECOLOGY
AB In recent years, the construction of high-rise buildings as an urban development strategy has been accepted in many megacities. High-rise buildings have positive as well as negative impacts on urban environments. Therefore, the environmental impact assessment of high-rise buildings for establishing strategies to ensure sustainable and resilient urban development is essential. In this study, the environmental impact of high-rise buildings with a resilient development mindset was assessed. Resilience mindset provides an approach for including the uncertainties and interdependence of systems and processes for planning new sustainable developments and assessment methods. The corresponding environmental impact assessment was performed by monitoring the structural changes and their impacts on the function of ecosystem and environmental services. Here, the positive and negative impacts of high-rise buildings were evaluated. Protection of impervious surfaces as a positive impact and changing the natural pattern of urban wind flow as a negative impact were considered. The transparency of the results and the reduction of uncertainty are the advantages of using the resilience mindset in the environmental impact assessment. The results of this study suggest that the resilient development mindset can improve the environmental assessment through the adoption of appropriate indicators on multiple scales and differentiating between the primary and secondary effects. (C) 2020 Sharif University of Technology. All rights reserved.
C1 [Vafai, H.] Univ Arizona, Dept Civil Engn & Engn Mech, Tucson, AZ 85721 USA.
   [Parivar, P.] Yazd Univ, Sch Nat Resources & Desert Studies, Dept Environm Sci, Yazd, Iran.
   [Kashani, S. Sehat] Atmospher Sci & Meteorol Res Ctr ASEMRC, POB 14977-16385, Tehran, Iran.
   [Imani, A. Farshforoush] Sharif Univ Technol, Sch Mech Engn, Tehran, Iran.
   [Vakili, F.] Univ Tehran, Fac Environm, Tehran, Iran.
   [Ahmadi, G.] Clarkson Univ, Dept Mech & Aeronaut Engn, Potsdam, NY 13699 USA.
C3 University of Arizona; University of Yazd; Sharif University of
   Technology; University of Tehran; Clarkson University
RP Ahmadi, G (corresponding author), Clarkson Univ, Dept Mech & Aeronaut Engn, Potsdam, NY 13699 USA.
EM hvafai@email.arizona.edu; parivar.p@yazd.ac.ir; Sehat.kashani@gmail.com;
   farshforoush_amir@mech.sharif.edu; Farane.vakili@gmail.com;
   ahmadi@clarkson.edu
RI Vakili, Fatemeh/JQZ-1788-2023; Ahmadi, Goodarz/AAT-1417-2021
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TC 4
Z9 4
U1 4
U2 23
PU SHARIF UNIV TECHNOLOGY
PI TEHRAN
PA PO BOX 11155-8639, TEHRAN, 00000, IRAN
SN 1026-3098
J9 SCI IRAN
JI Sci. Iran.
PD JUL-AUG
PY 2020
VL 27
IS 4
BP 1843
EP 1857
DI 10.24200/sci.2020.21908
PG 15
WC Engineering, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA OE5WD
UT WOS:000580599600013
OA gold
DA 2025-04-22
ER

PT J
AU Rega, C
   Bonifazi, A
AF Rega, Carlo
   Bonifazi, Alessandro
TI The Rise of Resilience in Spatial Planning: A Journey through
   Disciplinary Boundaries and Contested Practices
SO SUSTAINABILITY
LA English
DT Article
DE resilience; spatial planning; urban sustainability; post-political
   planning; boundary objects; complex systems
ID URBAN RESILIENCE; FINANCIAL CRISES; BRIDGING CONCEPT; SYSTEMS-THEORY;
   SUSTAINABILITY; NEOLIBERALISM; ECOLOGY; CHALLENGES; MANAGEMENT; THINKING
AB Resilience has become a popular term in spatial planning, often replacing sustainability as a reference frame. However, different concepts and understandings are embedded within it, which calls for keeping a critical stance about its widespread use. In this paper, we engage with the resilience turn in spatial planning and we dwell on the relation between resilience and sustainability from a planning perspective. Building on insights from ecology, complex system theory and epistemology, we question whether resilience can effectively act as a 'boundary object', i.e., a concept plastic enough to foster cooperation between different research fields and yet robust enough to maintain a common identity. Whilst we do not predicate a dichotomy between resilience and sustainability, we argue that the shift in the dominant understanding of resilience from a descriptive concept, to a broader conceptual and normative framework, is bound to generate some remarkable tensions. These can be associated with three central aspects in resilience thinking: (i) the unknowability and unpredictability of the future, whence a different focus of sustainability and resilience on outcomes vs. processes, respectively, ensue; (ii) the ontological separation between the internal components of a system and an external shock; (iii) the limited consideration given by resilience to inter- and intra-generational equity. Empirical evidence on actual instances of planning for resilience from different contexts seems to confirm these trends. We advocate that resilience should be used as a descriptive concept in planning within a sustainability framework, which entails a normative and transformative component that resonates with the very raison d'etre of planning.
C1 [Rega, Carlo; Bonifazi, Alessandro] Iteras Res Ctr Sustainabil & Terr Innovat, I-70125 Bari, Italy.
   [Bonifazi, Alessandro] Polytech Univ Bari, Dept Civil Engn Sci & Architecture, I-70126 Bari, Italy.
C3 Politecnico di Bari
RP Rega, C (corresponding author), Iteras Res Ctr Sustainabil & Terr Innovat, I-70125 Bari, Italy.
EM carlo.rega@ec.europa.eu; alebonifazi@gmail.com
RI Rega, Carlo/J-5324-2019; Bonifazi, Alessandro/L-6253-2015
OI Bonifazi, Alessandro/0000-0003-0248-7150
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NR 103
TC 15
Z9 16
U1 2
U2 23
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 7277
DI 10.3390/su12187277
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 OJ9GQ
UT WOS:000584262800001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Moon, HT
   Kim, JS
   Chen, J
   Yoon, SK
   Moon, YI
AF Moon, Hyeon-Tae
   Kim, Jong-Suk
   Chen, Jie
   Yoon, Sun-Kwon
   Moon, Young-Il
TI Mitigating urban flood Hazards: Hybrid strategy of structural measures
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Flood; Flood control; GI; Hybrid strategy; Urban flood resilience; Urban
   plan
ID CLIMATE-CHANGE; SUSCEPTIBILITY ASSESSMENT; WATER-QUALITY; MODELS; RISK;
   URBANIZATION; PERFORMANCE; IMPACT; AREA; RESILIENCE
AB Effective reduction of urban flood risk can be accomplished through structural mitigation measures such as underground drainage tunnels and implementing drainage practices, such as green infrastructure (GI) techniques. In this study, we employed an urban runoff model to quantitatively evaluate the impact of these flood mitigation measures and GI technology in reducing urban flood vulnerability (UFV). Specifically, we assessed the flood control capabilities of underground drainage tunnels and detention reservoirs, among others, exploring various combinations to formulate a comprehensive flood prevention plan (CFPP) for the studied basin. Additionally, our study analyzes the effectiveness of GI technologies, such as impervious area reduction (IAR) and ground retention (GR) and introduces a method for assessing their impact on flood-prone areas. To enhance flood mitigation strategies, we propose a hybrid approach that combines CFPP with GI techniques. The effectiveness of this hybrid strategy was assessed through comparisons with a basic scenario and multiple GI technology scenarios. As a result of applying the hybrid strategy proposed in this study, the reduction rates of peak flow (PF), flood volume (FV), and flooded area (FA) in this basin were up to 37.3 %, 71.5 %, and 93.6 %, respectively. These findings offer valuable insights for designing strategies to enhance urban flood resilience in the face of a changing climate.
C1 [Moon, Hyeon-Tae; Kim, Jong-Suk; Chen, Jie] Wuhan Univ, Sch Water Resources & Hydropower Engn Sci, Wuhan 430072, Peoples R China.
   [Moon, Hyeon-Tae; Moon, Young-Il] Univ Seoul, Dept Civil Engn, Seoul 02504, South Korea.
   [Kim, Jong-Suk; Chen, Jie] Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.
   [Yoon, Sun-Kwon] Seoul Inst Technol, Dept Disasters Prevent Res, Seoul, South Korea.
   [Kim, Jong-Suk; Chen, Jie] Wuhan Univ, Sch Water Resources & Hydropower Engn, Dept Hydrol & Water Resources, Wuhan 430072, Peoples R China.
C3 Wuhan University; University of Seoul; Wuhan University; Wuhan
   University
RP Kim, JS; Chen, J (corresponding author), Wuhan Univ, Sch Water Resources & Hydropower Engn, Dept Hydrol & Water Resources, Wuhan 430072, Peoples R China.
EM jongsuk@whu.edu.cn; jiechen@whu.edu.cn
RI Kim, Jong-Suk/ABC-9255-2021
OI Moon, Hyeontae/0000-0002-3195-8751
FU National Research Foundation of Korea; China Science and Technology
   Exchange Center; Seoul Institute of Technology; State Key Laboratory of
   Water Resources Engineering and Management, Wuhan Univeristy
FX This research was supported by the National Research Foundation of Korea
   and the China Science and Technology Exchange Center. This research was
   partially supported by the Seoul Institute of Technology. We are also
   grateful for the support of the State Key Laboratory of Water Resources
   Engineering and Management, Wuhan Univeristy.
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NR 88
TC 6
Z9 6
U1 28
U2 49
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 104542
DI 10.1016/j.ijdrr.2024.104542
EA MAY 2024
PG 23
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA TX7S8
UT WOS:001244630100001
DA 2025-04-22
ER

PT J
AU Chen, YT
   Wang, HM
AF Chen, Yating
   Wang, Hongmei
TI Industrial Structure, Environmental Pressure and Ecological Resilience
   of Resource-Based Cities-Based on Panel Data of 24 Prefecture-Level
   Cities in China
SO FRONTIERS IN ENVIRONMENTAL SCIENCE
LA English
DT Article
DE resource-based cities; ecological resilience; industrial structure;
   environmental pressure; the secondary industry
AB Based on 432 sets of data from three resource-based provinces in China, Anhui, Shanxi, and Sichuan, a fixed-effects model was established using panel data for empirical analysis to investigate the relationship between industrial structure, environmental pressure, and ecological resilience of resource-based cities, using entropy value method and principal component analysis to measure the industrial structure, environmental pressure and ecological resilience of resource-based cities. It is found that for resource-based cities, the economic growth mainly relies on the development of the secondary industry, which is primarily dependent on local natural resources. The empirical results show that the regional industrial structure has a significant negative impact on the cities' ecological resilience, and the regional industrial structure has a significant positive effect on their environmental pressure. The article enriches the study of urban resilience theory and clarifies the relationship between industrial structure and environmental pressure on urban ecological resilience, which is of guiding significance to further promote the green development of resource-based cities.
C1 [Chen, Yating; Wang, Hongmei] Northwest A&F Univ, Coll Econ & Management, Yangling, Peoples R China.
C3 Northwest A&F University - China
RP Wang, HM (corresponding author), Northwest A&F Univ, Coll Econ & Management, Yangling, Peoples R China.
EM whmeco@nwsuaf.edu.cn
RI Chen, Yating/AAT-5592-2020
FU Shaanxi Provincial Soft Science Project, "Research on the mode and
   effect of rural ecological environment governance in Shaanxi in the
   post-poverty alleviation era" [2021KRM051]; Shaanxi Provincial Social
   Sciences Major Theoretical and Practical Issues Research Major Project
   Subproject, Shaanxi Agricultural Industry High Quality Development Level
   Measurement and Target Framework Construction [2021ZD1055]
FX This study is supported by Shaanxi Provincial Soft Science Project,
   "Research on the mode and effect of rural ecological environment
   governance in Shaanxi in the post-poverty alleviation era" (Project No.
   2021KRM051); Shaanxi Provincial Social Sciences Major Theoretical and
   Practical Issues Research Major Project Subproject, Shaanxi Agricultural
   Industry High Quality Development Level Measurement and Target Framework
   Construction. (Project No. 2021ZD1055).
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NR 38
TC 15
Z9 16
U1 20
U2 182
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 APR 26
PY 2022
VL 10
AR 885976
DI 10.3389/fenvs.2022.885976
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 1F2QH
UT WOS:000795017000001
OA gold
DA 2025-04-22
ER

PT J
AU Pitidis, V
   Coaffee, J
   Bouikidis, A
AF Pitidis, Vangelis
   Coaffee, Jon
   Bouikidis, Aphrodite
TI Creating 'resilience imaginaries' for city-regional planning
SO REGIONAL STUDIES
LA English
DT Article
DE collective visioning; Thessaloniki; city-regional planning; resilience;
   social construction; socio-spatial imaginaries
ID URBAN RESILIENCE; BUILDING RESILIENCE; ADAPTATION; ROTTERDAM; POLITICS;
   POLICY; CITIES; TRANSFORMATIONS; GOVERNANCE; NARRATIVES
AB Resilience narratives have gathered increased attention in city-regional planning over the last two decades, emphasizing holistic foresight, long-term strategic visioning, cross-sectoral integration and collaborative modes of planning. Combining such resilience narratives with the established idea of socio-spatial imaginaries, we introduce the novel concept of 'resilience imaginaries' and explore its application in the city-region of Thessaloniki, Greece. This paper illustrates that resilience imaginaries can be viewed as dynamic and politically contested visions for long-term city-regional development, collectively structured by civic stakeholders, institutionally expressed through city-regional governance transformations and materially manifested through city-regional planning interventions.
C1 [Pitidis, Vangelis; Coaffee, Jon] Univ Warwick, Dept Polit & Int Studies, Coventry, W Midlands, England.
   [Bouikidis, Aphrodite] Simon Fraser Univ, Vancouver, BC, Canada.
C3 University of Warwick; Simon Fraser University
RP Pitidis, V (corresponding author), Univ Warwick, Dept Polit & Int Studies, Coventry, W Midlands, England.
EM evangelos.pitidis@warwick.ac.uk; j.coaffee@warwick.ac.uk;
   aphrodite_bouikidis@sfu.ca
RI Pitidis, Vangelis/AAP-6894-2021
OI Pitidis, Vangelis/0000-0003-2410-4528; Coaffee, Jon/0000-0001-5581-6507
FU UK Engineering and Physical Sciences Research Council (EPSRC)
   [EP/L016400/1]; EPSRC Centre for Doctoral Training in Urban Science and
   Progress at the University of Warwick, UK; European Union's Horizon 2020
   Research and Innovation Programme through the 'Integrating Risk
   Perception and Action to enhance Civil Protection-Citizen Interaction
   (RiskPACC)' project [101019707]
FX The authors gratefully acknowledge funding from the UK Engineering and
   Physical Sciences Research Council (EPSRC) [grant number EP/L016400/1]
   and the EPSRC Centre for Doctoral Training in Urban Science and Progress
   at the University of Warwick, UK. The research presented in this article
   also received financial support from the European Union's Horizon 2020
   Research and Innovation Programme through the 'Integrating Risk
   Perception and Action to enhance Civil Protection-Citizen Interaction
   (RiskPACC)' project [grant agreement number 101019707].
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NR 92
TC 10
Z9 11
U1 13
U2 58
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0034-3404
EI 1360-0591
J9 REG STUD
JI Reg. Stud.
PD APR 3
PY 2023
VL 57
IS 4
SI SI
BP 698
EP 711
DI 10.1080/00343404.2022.2047916
EA APR 2022
PG 14
WC Economics; Environmental Studies; Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Environmental Sciences & Ecology; Geography;
   Public Administration
GA A5VC7
UT WOS:000779275600001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Fang, XY
   Lu, LJ
   Li, Y
   Hong, YL
AF Fang, Xinyi
   Lu, Linjun
   Li, Yan
   Hong, Yilin
TI A Driver-Pressure-State-Impact-Response study for urban transport
   resilience under extreme rainfall-flood conditions
SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Resilience; Vulnerability; Flood; Traffic performance assessment
ID CLIMATE-CHANGE; DPSIR FRAMEWORK; VULNERABILITY; EXPOSURE; HOTSPOTS
AB This paper proposes a systematic Driver-Pressure-State-Impact-Response (DPSIR) method for traffic performance assessment under urban floods caused by extreme rainfall events. A coupled rainfall-flood-traffic model has been developed as the prerequisite for evaluation with publicly available data. The DPSIR method integrates the natural and transportation systems into causeeffect-response impact chains and facilitates dynamic traffic performance measurement on the road and network levels. We apply this approach to the urban networks' motorways, trunk, and arterial roads in Shanghai, China. The results help identify critical roads and verify the effectiveness of demand-control strategies in improving traffic resilience. By offering decision-makers a comprehensive view of traffic operation under disruptions, this method can help them build a more resilient transport system in flood risk management.
C1 [Fang, Xinyi; Lu, Linjun; Hong, Yilin] Shanghai Jiao Tong Univ, Sch Naval Architecture Ocean & Civil Engn, Dept Traff Engn, Shanghai 200240, Peoples R China.
   [Li, Yan] Changan Univ, Coll Transportat Engn, Dept Transport, Middle Sect 2nd Ring Rd Southbound, Xian 710064, Shaanxi, Peoples R China.
C3 Shanghai Jiao Tong University; Chang'an University
RP Lu, LJ (corresponding author), Shanghai Jiao Tong Univ, Sch Naval Architecture Ocean & Civil Engn, Dept Traff Engn, Shanghai 200240, Peoples R China.
EM fxy12138@sjtu.edu.cn; linjunlu@sjtu.edu.cn; lyan@chd.edu.cn;
   hongyilin@sjtu.edu.cn
RI FANG, XINYI/GWZ-3253-2022; Lu, Linjun/L-6856-2019
OI Hong, Yilin/0000-0002-9488-8770; Fang, Xinyi/0009-0005-4940-3796
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Z9 20
U1 41
U2 196
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 AUG
PY 2023
VL 121
AR 103819
DI 10.1016/j.trd.2023.103819
EA JUN 2023
PG 17
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 N9TH7
UT WOS:001040346300001
DA 2025-04-22
ER

PT J
AU Wan, ZY
   Lang, QL
   Zhang, YC
   Zhang, JQ
   Chen, YN
   Liu, GX
   Liu, HN
AF Wan, Ziyang
   Lang, Qiuling
   Zhang, Yichen
   Zhang, Jiquan
   Chen, Yanan
   Liu, Gexu
   Liu, Huanan
TI Improving the resilience of urban transportation to natural disasters:
   the case of Changchun, China
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Natural hazard; Accurate resilience evaluation; Remote sensing and GIS;
   Multi-criteria decision analysis
ID MODEL
AB This study quantitatively assesses the resilience of the urban transport system in Changchun under extreme climatic conditions, focusing on the impacts of natural disasters such as snowstorms, strong winds and extreme low temperatures on the transport system. The vulnerability, exposure, and emergency recovery capacity of the transport system in Changchun were analyzed by constructing a comprehensive assessment framework combining multi-criteria decision analysis (MCDM) and geographic information system (GIS). Based on the meteorological and traffic data of Changchun City in the past 10 years, key indicators such as traffic network density, emergency resource distribution, traffic flow, and extreme weather frequency were selected in this study. The weights were calculated by the improved hierarchical analysis method (AHP) and entropy weighting method, and finally the traffic resilience of Changchun city was quantitatively analyzed. The results show that there are significant spatial differences in the toughness of the transport system in Changchun, of which 38.6% of the areas have very low toughness and are concentrated in the urban fringe and urban-rural areas; 25.3% of the areas are at a medium level of toughness; and 5.4% of the areas show high toughness and are mainly located in the city center and important transport hubs. This study proposes transport resilience enhancement strategies for different areas of Changchun, with special recommendations for strengthening infrastructure development, optimizing traffic management and emergency response capacity in low resilience areas. The results of this study provide a scientific basis for Changchun to cope with future extreme climate challenges, and a reference framework for other cities with similar climatic conditions.
C1 [Wan, Ziyang; Lang, Qiuling; Zhang, Yichen; Chen, Yanan; Liu, Gexu] Changchun Inst Technol, Coll Jilin Emergency Management, Changchun 130012, Peoples R China.
   [Lang, Qiuling; Zhang, Jiquan] Northeast Normal Univ, Inst Nat Disaster Res, Sch Environm, Changchun 130024, Peoples R China.
   [Liu, Huanan] Changchun Inst Technol, Coll Surveying & Mapping Engn, Changchun 130021, Peoples R China.
C3 Changchun Institute Technology; Northeast Normal University - China;
   Changchun Institute Technology
RP Lang, QL (corresponding author), Changchun Inst Technol, Coll Jilin Emergency Management, Changchun 130012, Peoples R China.; Lang, QL (corresponding author), Northeast Normal Univ, Inst Nat Disaster Res, Sch Environm, Changchun 130024, Peoples R China.
EM 0215046@ccit.edu.cn
FU Key Scientific and Technology Research and Development Program of Jilin
   Province [20200403074SF]; Key Scientific and Technology Research and
   Development Program of Jilin Province [20180201033SF, 20180201035SF];
   Key Science and Technology Development Program Research and Development
   Projects of Jilin Province [20220203187SF]
FX This research was funded by the Key Scientific and Technology Research
   and Development Program of Jilin Province (20200403074SF); the Key
   Scientific and Technology Research and Development Program of Jilin
   Province (20180201033SF); the Key Scientific and Technology Research and
   Development Program of Jilin Province (20180201035SF); the Key Science
   and Technology Development Program Research and Development Projects of
   Jilin Province (20220203187SF).
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NR 50
TC 1
Z9 1
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PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD JAN 7
PY 2025
VL 15
IS 1
AR 1116
DI 10.1038/s41598-024-84672-x
PG 22
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA S4Z3F
UT WOS:001398316700011
PM 39774268
OA Green Accepted, gold
DA 2025-04-22
ER

PT J
AU Bellinson, R
   Chu, E
AF Bellinson, Ryan
   Chu, Eric
TI Learning pathways and the governance of innovations in urban climate
   change resilience and adaptation
SO JOURNAL OF ENVIRONMENTAL POLICY & PLANNING
LA English
DT Article
DE Climate change resilience; transnational municipal networks; urban
   governance; innovation; learning
ID GLOBAL CITIES; POLICY; NETWORKS; SUSTAINABILITY; MANAGEMENT
AB The proliferation of transnational municipal networks (TMNs) has led to different innovative models of urban climate change governance. To date, there have been few reflexive inquiries into how urban governance actors and processes are learning to innovate as a result of participating in TMNs. In response, this paper draws on theories of institutional learning and urban governance to offer a conceptual distinction between innovations in governance and the governance of innovations in the context of climate resilience and adaptation. We apply these concepts to evaluate the case studies of Rotterdam and Berkeley, where we highlight the actors, networks, and resources required to motivate and sustain actions against concurrent sectoral interests. Experiences from the two cities show that learning pathways are constructed and reified through processes of communication and negotiation, which can result in the grounding of TMN resources. A focus on unpacking the variations in learning and implementation within cities across diverse political economic contexts can offer insights into the opportunities for enabling more meaningful and sustained forms of innovation.
C1 [Bellinson, Ryan] Univ Sheffield, Dept Urban Studies & Planning, Sheffield, S Yorkshire, England.
   [Chu, Eric] Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham, W Midlands, England.
C3 University of Sheffield; University of Birmingham
RP Chu, E (corresponding author), Univ Birmingham, Sch Geog Earth & Environm Sci, Birmingham, W Midlands, England.
EM E.Chu@bham.ac.uk
RI Bellinson, Ryan/JXN-1161-2024; Chu, Eric/O-6464-2015
OI Chu, Eric/0000-0002-5648-6615; Bellinson, Ryan/0000-0003-1009-1279
FU EU COST Action: Innovations in Climate Governance: Sources, Patterns and
   Effects (INOGOV) [IS1309]
FX The authors would like to thank Marc Wolfram, Jeroen van der Heijden,
   Sirkku Juhola, and James Patterson for leading this special issue, as
   well as officials in Berkeley and Rotterdam for fieldwork support. This
   paper was initially drafted for a workshop held in Amsterdam in
   September 2016 entitled 'Innovative Urban Governance for Mitigation and
   Adaptation: Mapping, Exploring and Interrogating', organized by Jeroen
   van der Heijden and supported by the EU COST Action: IS1309-Innovations
   in Climate Governance: Sources, Patterns and Effects (INOGOV). Previous
   drafts of this paper benefited from comments offered by Marc Wolfram,
   Sirkku Juhola, Nanja Nagorny, Luca Bertolini, Peter Kraftl, Rosie Day,
   and three anonymous reviewers.
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NR 70
TC 57
Z9 59
U1 6
U2 80
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 2019
VL 21
IS 1
SI SI
BP 76
EP 89
DI 10.1080/1523908X.2018.1493916
PG 14
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA HK0VH
UT WOS:000457620400006
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Teti, M
   Martin, AE
   Ranade, R
   Massie, J
   Malebranche, DJ
   Tschann, JM
   Bowleg, L
AF Teti, Michelle
   Martin, Ashley E.
   Ranade, Richa
   Massie, Jenne
   Malebranche, David J.
   Tschann, Jeanne M.
   Bowleg, Lisa
TI "I'm a Keep Rising. I'm a Keep Going Forward, Regardless": Exploring
   Black Men's Resilience Amid Sociostructural Challenges and Stressors
SO QUALITATIVE HEALTH RESEARCH
LA English
DT Article
DE African Americans; interviews, semistructured; men's health; resilience;
   social issues
ID AFRICAN-AMERICAN ADOLESCENTS; RACIAL SOCIALIZATION; PUBLIC-HEALTH;
   COMMUNITY; CULTURE; RISK; LIFE; ODDS
AB A growing number of health and social science research findings document Black men's adversities, but far less is known about their strengths. The purpose of this study was to explore resilience among low-income, urban, Black men. Semistructured interviews produced rich narratives, which uncovered numerous sociostructural stressors in men's lives, such as racism, incarceration, and unemployment. Most men were resilient despite these challenges, however, and described five main forms of resilience: (a) perseverance; (b) a commitment to learning from hardship; (c) reflecting and refocusing to address difficulties; (d) creating a supportive environment; and (e) drawing support from religion/spirituality. Analysis of men's challenge and resilience narratives revealed the need to understand and promote low-income, urban, Black men's resilience via a broader ecosocial perspective which acknowledges the importance of social and community-level protective factors to support individual men's efforts to survive and thrive amid their adversities.
C1 [Teti, Michelle] Univ Missouri, Sch Hlth Profess, Columbia, MO 65211 USA.
   [Martin, Ashley E.] Childrens Hosp Philadelphia, Ctr Outcomes Res, Philadelphia, PA 19104 USA.
   [Ranade, Richa; Massie, Jenne; Bowleg, Lisa] Drexel Univ, Dept Community Hlth & Prevent, Sch Publ Hlth, Philadelphia, PA 19104 USA.
   [Malebranche, David J.] Emory Univ, Sch Med, Div Gen Med, Atlanta, GA USA.
   [Tschann, Jeanne M.] Univ Calif San Francisco, San Francisco, CA 94143 USA.
C3 University of Missouri System; University of Missouri Columbia;
   University of Pennsylvania; Pennsylvania Medicine; Childrens Hospital of
   Philadelphia; Drexel University; Emory University; University of
   California System; University of California San Francisco
RP Teti, M (corresponding author), Univ Missouri, Sch Hlth Profess, 506A Lewis Hall, Columbia, MO 65211 USA.
EM tetim@health.missouri.edu
OI Teti, Michelle/0000-0002-3943-3810
FU NICHD NIH HHS [R01 HD054319-03, R01 HD054319-01A1, R01 HD054319-02, R01
   HD054319, R01 HD054319-01] Funding Source: Medline
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NR 46
TC 57
Z9 102
U1 0
U2 28
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 1049-7323
J9 QUAL HEALTH RES
JI Qual. Health Res.
PD APR
PY 2012
VL 22
IS 4
SI SI
BP 524
EP 533
DI 10.1177/1049732311422051
PG 10
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 900YQ
UT WOS:000300928800009
PM 21911505
OA Green Accepted, Green Submitted
DA 2025-04-22
ER

PT J
AU Guerra, V
   Stephenson, M Jr
   Poets, D
   Todd, MF
AF Guerra, Vanessa
   Stephenson Jr, Max
   Poets, Desiree
   Todd, Molly F.
TI The contributions of community-led newspapers to the resilience of Rio's
   Maré and Rocinha favelas during the COVID-19 pandemic
SO JOURNAL OF URBAN AFFAIRS
LA English
DT Article; Early Access
DE Alternative-media; urban-informality; social-resilience;
   the-right-to-the-city; Latin-America
ID URBAN; AGENCY
AB This article explores how two community-led newspapers in Mar & eacute; and Rocinha in Rio de Janeiro, Brazil, promoted social resilience in their respective favelas during the first 6 months of COVID-19. We reviewed stories published in both newspapers and interviewed a sample of their journalists to investigate the newspapers' responses to the pandemic's effects, government policies (or lack thereof), and resident reactions to evolving virus-related risks during our study period. We employed Keck and Sakdapolrak's social resilience framework to examine our data and found that the newspapers contributed significantly to the resilience of both communities during our study period. Contrary to the neoliberal view of resilience as self-reliance, these newspapers sought instead to encourage sustained collective agency and to challenge oppressive governance through generative activities and advocacy. Our findings deepen understanding of the role of community-organized activities in marginalized populations' struggles to assert their right to the city, particularly during crises.
C1 [Guerra, Vanessa] Univ Virginia, Charlottesville, VA USA.
   [Stephenson Jr, Max; Poets, Desiree] Virginia Tech, Blacksburg, VA USA.
   [Todd, Molly F.] Univ Colorado Boulder, Boulder, CO USA.
   [Guerra, Vanessa] Univ Virginia, Dept Urban & Environm Planning, Sch Architecture, Campbell Hall 416,110 Bayly Dr, Charlottesville, VA 22904 USA.
C3 University of Virginia; Virginia Polytechnic Institute & State
   University; University of Colorado System; University of Colorado
   Boulder; University of Virginia
RP Guerra, V (corresponding author), Univ Virginia, Dept Urban & Environm Planning, Sch Architecture, Campbell Hall 416,110 Bayly Dr, Charlottesville, VA 22904 USA.
EM vguerra@virginia.edu
RI Guerra, Vanessa/KYQ-3644-2024
FU Regional Studies Association
FX Research funded by Regional Studies Association (Small Grant Scheme on
   Pandemics, Cities, Regions & Industry 2023 round).
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NR 85
TC 0
Z9 0
U1 0
U2 1
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 JUN 13
PY 2024
DI 10.1080/07352166.2024.2357707
EA JUN 2024
PG 17
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA UJ6A9
UT WOS:001247717600001
DA 2025-04-22
ER

PT J
AU Houghton, A
   Castillo-Salgado, C
AF Houghton, Adele
   Castillo-Salgado, Carlos
TI Health Co-Benefits of Green Building Design Strategies and Community
   Resilience to Urban Flooding: A Systematic Review of the Evidence
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Review
DE urban flood-related hazards; sustainable design; climate change
   mitigation; climate change adaptation; sustainable communities
ID GLOBAL CLIMATE-CHANGE; LAND-USE; HURRICANE-KATRINA; BUILT ENVIRONMENT;
   PHYSICAL-ACTIVITY; PUBLIC-HEALTH; WATER-QUALITY; WASTE-WATER; IMPACTS;
   VULNERABILITY
AB Climate change is increasingly exacerbating existing population health hazards, as well as resulting in new negative health effects. Flooding is one particularly deadly example of its amplifying and expanding effect on public health. This systematic review considered evidence linking green building strategies in the Leadership in Energy and Environmental Design (R) (LEED) Rating System with the potential to reduce negative health outcomes following exposure to urban flooding events. Queries evaluated links between LEED credit requirements and risk of exposure to urban flooding, environmental determinants of health, co-benefits to public health outcomes, and co-benefits to built environment outcomes. Public health co-benefits to leveraging green building design to enhance flooding resilience included: improving the interface between humans and wildlife and reducing the risk of waterborne disease, flood-related morbidity and mortality, and psychological harm. We conclude that collaborations among the public health, climate change, civil society, and green building sectors to enhance community resilience to urban flooding could benefit population health.
C1 [Houghton, Adele] Biositu LLC, 505D W Alabama St, Houston, TX 77006 USA.
   [Castillo-Salgado, Carlos] Johns Hopkins Bloomberg Sch Publ Hlth, Dept Epidemiol, 615 N Wolfe St, Baltimore, MD 21205 USA.
C3 Johns Hopkins University; Johns Hopkins Bloomberg School of Public
   Health
RP Houghton, A (corresponding author), Biositu LLC, 505D W Alabama St, Houston, TX 77006 USA.
EM adeleh@biositu.com; ccastil3@jhu.edu
OI Houghton, Adele/0000-0002-6861-1591
FU Johns Hopkins Bloomberg School of Public Health, Office of Public Health
   Practice and Training (Lipitz Public Health Policy grant)
FX This work was supported by the Johns Hopkins Bloomberg School of Public
   Health, Office of Public Health Practice and Training (Lipitz Public
   Health Policy grant). The study would not have been possible without the
   following individuals: Brian Schwartz, Alyssa Frazee, Johns Hopkins
   Bloomberg School of Public Health; Marie O'Neill, Larissa Larsen, Carina
   Gronlund, Nicholas Rajkovich, University of Michigan; Colleen Reid,
   University of California at Berkeley; George Luber and Natasha Prudent,
   U.S. Centers for Disease Control and Prevention; Christopher Pyke and
   Sean McMahon, U.S. Green Building Council; and Shannon Jones, III,
   Austin/Travis County Department of Health and Human Services.
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NR 120
TC 27
Z9 32
U1 9
U2 92
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 2017
VL 14
IS 12
AR 1519
DI 10.3390/ijerph14121519
PG 28
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 FU2SD
UT WOS:000423699400082
PM 29210981
OA Green Published, gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Feinberg, A
   Ghorbani, A
   Herder, PM
AF Feinberg, Arthur
   Ghorbani, Amineh
   Herder, Paulien M.
TI Commoning toward urban resilience: The role of trust, social cohesion,
   and involvement in a simulated urban commons setting
SO JOURNAL OF URBAN AFFAIRS
LA English
DT Article
ID COMMUNITY GARDENS; COLLECTIVE ACTION; SPACE; INSTITUTIONS; SOCIETY;
   SUSTAINABILITY; CONVIVIALITY; REFLECTIONS; GOVERNANCE; FRAMEWORK
AB In this paper, we investigate the potential of urban commons for building community resilience. We focus on the issue of adaptability to socio-ecological issues, which depends on the social capital built by the local community of practice. We measure this capital through the variables of volunteer involvement, perceived trust, and social cohesion in an agent-based model, which simulates the dynamics of participation in collective activities. We anchor our model with the case of KasKantine in Amsterdam, a cooperative and restaurant run by volunteers. Our model shows that both trust and social cohesion emerge from the interactions in the cooperative, especially when group sizes are kept small. This contributes to the adaptability of such social-ecological systems, helping their communities build social resilience.
C1 [Feinberg, Arthur; Ghorbani, Amineh; Herder, Paulien M.] Delft Univ Technol, Jaffalaan 5, NL-2628 BX Delft, Netherlands.
C3 Delft University of Technology
RP Feinberg, A (corresponding author), Delft Univ Technol, Jaffalaan 5, NL-2628 BX Delft, Netherlands.
EM a.feinberg@tudelft.nl
RI Ghorbani, Amineh/KIC-8485-2024
OI , Arthur/0000-0002-3365-302X; Ghorbani, Amineh/0000-0002-9985-8239
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NR 102
TC 24
Z9 26
U1 10
U2 21
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 FEB 7
PY 2023
VL 45
IS 2
BP 142
EP 167
DI 10.1080/07352166.2020.1851139
EA DEC 2020
PG 26
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 9A6OE
UT WOS:000600742800001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Tian, SZ
   Zhang, KC
   Chi, YT
   Lian, Y
AF Tian, Shizheng
   Zhang, Kuncheng
   Chi, Yutao
   Lian, Yi
TI Assessing storm surge compound disasters risk: A case study of the
   coastal area of Qingdao
SO OCEAN & COASTAL MANAGEMENT
LA English
DT Article
DE Storm surge compound disaster; Hydrodynamic model; Risk assessment;
   Urban rigidity; Urban resilience
ID 3RD-GENERATION WAVE MODEL; CHINA; REGIONS
AB Global climate change has increased the frequency of compound disasters, posing significant challenges to coastal cities in China. This study assesses the risks of storm surge compound disaster (SSCD) in Qingdao's coastal areas to inform marine disaster prevention and mitigation strategies. The proposed assessment model integrates three key components: hazard, urban rigidity, and urban resilience, encompassing 3 primary and 14 secondary indicators. Utilizing the ADCIRC-SWAN coupled model, simulated the potential maximum typhoon storm surge scenario, identifying critical indicators such as inundation range, depth, significant wave height, and maximum wind speed. A combination of the Analytic Hierarchy Process and Geographic Information Systems was employed to evaluate SSCD risk quantitatively. The results indicate varying risk levels across the study area, with the northern coast of Jiaozhou Bay identified as the highest-risk zone. To mitigate risks, the study recommends that Qingdao's coastal districts implement targeted strategies based on their specific urban rigidity and resilience profiles. Additionally, broader recommendations for coastal cities include establishing comprehensive disaster management systems, adopting ecosystem-based approaches, and fostering multi-stakeholder collaborative management models.
C1 [Tian, Shizheng; Zhang, Kuncheng] Ocean Univ China, Sch Marxism, Qingdao, Peoples R China.
   [Zhang, Kuncheng] Minist Nat Resources, Key Lab Coastal Sci & Integrated Management, Qingdao, Peoples R China.
   [Zhang, Kuncheng] Ocean Univ China, Inst Marine Dev, Qingdao, Peoples R China.
   [Chi, Yutao] Natl Marine Data & Informat Serv, Tianjin, Peoples R China.
   [Lian, Yi] Tianjin Urban Planning & Design Inst, Tianjin, Peoples R China.
C3 Ocean University of China; Ministry of Natural Resources of the People's
   Republic of China; First Institute of Oceanography, Ministry of Natural
   Resources; Ocean University of China; National Marine Data & Information
   Service
RP Zhang, KC (corresponding author), Ocean Univ China, Sch Marxism, Qingdao, Peoples R China.
EM zkc@ouc.edu.cn
RI chi, yutao/JLN-1365-2023
FU Key Laboratory of Coastal Science and Integrated Management, Ministry of
   Natural Resources [2022COSIMQ002]; Shandong Provincial Social Science
   Planning Research Project [22CXSXJ15]; Guangxi Key Laboratory of Marine
   Environmental Science, Guangxi Academy of Sciences [GXKLHY21-04]; Hainan
   Province Marxism Project General Program [2023HNMGC03]
FX This study was financially supported by the Key Laboratory of Coastal
   Science and Integrated Management, Ministry of Natural Resources
   (2022COSIMQ002) ; Shandong Provincial Social Science Planning Research
   Project (22CXSXJ15) ; Guangxi Key Laboratory of Marine Environmental
   Science, Guangxi Academy of Sciences (GXKLHY21-04) ; Hainan Province
   Marxism Project General Program (2023HNMGC03) .
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NR 87
TC 0
Z9 0
U1 15
U2 15
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0964-5691
EI 1873-524X
J9 OCEAN COAST MANAGE
JI Ocean Coastal Manage.
PD MAR
PY 2025
VL 262
AR 107593
DI 10.1016/j.ocecoaman.2025.107593
EA FEB 2025
PG 13
WC Oceanography; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Oceanography; Water Resources
GA Y4R4X
UT WOS:001432014100001
DA 2025-04-22
ER

PT J
AU Guerrero-Hidalga, M
   Martínez-Gomariz, E
   Evans, B
   Webber, J
   Termes-Rifé, M
   Russo, B
   Locatelli, L
AF Guerrero-Hidalga, Maria
   Martinez-Gomariz, Eduardo
   Evans, Barry
   Webber, James
   Termes-Rife, Montserrat
   Russo, Beniamino
   Locatelli, Luca
TI Methodology to Prioritize Climate Adaptation Measures in Urban Areas.
   Barcelona and Bristol Case Studies
SO SUSTAINABILITY
LA English
DT Article
DE climate change adaptation; climate risk; socio-economic assessment;
   urban resilience
ID FLOOD DAMAGE ASSESSMENT; DEPTH DAMAGE; HAZARD; CITIES; IMPACT
AB In the current context of fast innovation in the field of urban resilience against extreme weather events, it is becoming more challenging for decision-makers to recognize the most beneficial adaptation measures for their cities. Detailed assessment of multiple measures is resource-consuming and requires specific expertise, which is not always available. To tackle these issues, in the context of the H2020 project RESCCUE (RESilience to cope with Climate Change in Urban arEas), a methodology to effectively prioritize adaptation measures against extreme rainfall-related hazards in urban areas has been developed. It follows a multi-phase structure to progressively narrow down the list of potential measures. It begins using less resource-intensive techniques, to finally focus on the in-depth analysis on a narrower selection of measures. It involves evaluation of risks, costs, and welfare impacts, with strong focus on stakeholders' participation through the entire process. The methodology is adaptable to different contexts and objectives and has been tested in two case studies across Europe, namely Barcelona and Bristol.
C1 [Guerrero-Hidalga, Maria; Martinez-Gomariz, Eduardo; Termes-Rife, Montserrat] Cetaqua, Water Technol Ctr, Barcelona 08940, Spain.
   [Martinez-Gomariz, Eduardo] Univ Politecn Cataluna, Flumen Res Inst, Barcelona 08034, Spain.
   [Evans, Barry; Webber, James] Univ Exeter, Ctr Water Syst, Exeter EX4 4QF, Devon, England.
   [Evans, Barry] Massey Univ, Coll Sci, Sch Built Environm, Wellington 4442, New Zealand.
   [Termes-Rife, Montserrat] Univ Barcelona, Econ Dept, Barcelona 08034, Spain.
   [Russo, Beniamino; Locatelli, Luca] AQUATEC Suez Adv Solut, Barcelona 08038, Spain.
   [Russo, Beniamino] Univ Zaragoza, Escuela Politecn La Almunia EUPLA, Grp Ingn Hidraul & Ambiental GIHA, Zaragoza 50100, Spain.
C3 Universitat Politecnica de Catalunya; University of Exeter; Massey
   University; University of Barcelona; University of Zaragoza
RP Guerrero-Hidalga, M (corresponding author), Cetaqua, Water Technol Ctr, Barcelona 08940, Spain.
EM maria.guerrero@cetaqua.com; eduardo.martinez@cetaqua.com;
   b.evans@exeter.ac.uk; J.Webber2@exeter.ac.uk; mtermes@ub.edu;
   brusso@aquatec.es; luca.locatelli@aquatec.es
RI Webber, James/HQY-4347-2023; Termes-Rife, Montserrat/Q-3956-2018; Russo,
   Beniamino/Z-6372-2019; Martinez-Gomariz, Eduardo/I-1269-2019
OI Termes-Rife, Montserrat/0000-0002-2878-8077; Guerrero Hidalga,
   Maria/0000-0003-4550-5013; Locatelli, Luca/0000-0003-3859-3553; Russo,
   Beniamino/0000-0001-9437-0085; Webber, James/0000-0002-1158-4895;
   Martinez-Gomariz, Eduardo/0000-0002-0189-0725
FU European Commission [700174]
FX This research, under the RESCCUE Project, was funded by the European
   Commission Horizon2020 funding program. Grant Agreement No. 700174.
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NR 57
TC 10
Z9 11
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 JUN
PY 2020
VL 12
IS 12
AR 4807
DI 10.3390/su12124807
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 MR3VU
UT WOS:000553519000001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Spiliotopoulou, M
   Roseland, M
AF Spiliotopoulou, Maria
   Roseland, Mark
TI Urban sustainability via urban productivity? A conceptual review and
   framework proposal
SO LOCAL ENVIRONMENT
LA English
DT Review
DE Urban sustainability; urban productivity; sustainable cities; urban
   systems thinking; regenerative sustainability; sustainability frameworks
ID CITIES; RESILIENCE; CHALLENGES; PARADIGM; ECONOMY; AGENDA; FUTURE
AB This paper offers conceptual and operational insights for more effective and forward-looking local sustainability decision-making through the emerging concept and framework of holistic urban productivity. Following a short discussion of the contemporary understand and theoretical influences of urban sustainability, we explore the concept, principles, and practices of urban productivity and look at how they can help address urban sustainability planning, implementation, and assessment. We then introduce a conceptual framework for holistic urban productivity which encompasses a set of principles and goals to tackle complex urban processes for effective, inclusive, and forward-looking decision-making. It is informed by and converges numerous theories and approaches and seeks to act as an overarching framework to help operationalise sustainability by empowering urban actors to pursue balanced and synergistic optimisation of all urban community elements. A city that implements the principles and framework of holistic urban productivity embraces economic resilience with shifts in employment patterns and habits; innovative, socially just, and environmentally responsible technologies; compact and nature-enhancing land use planning; strong social connections and affordable housing; and green, light, and smart infrastructure. Urban productivity principles can help lead the transformation of cities into well-functioning and sustainable systems.
C1 [Spiliotopoulou, Maria] Simon Fraser Univ, Sch Resource & Environm Management, TASC 1,8888 Univ Dr, Burnaby, BC V5A 1S6, Canada.
   [Roseland, Mark] Arizona State Univ, Sch Community Resources Dev, Phoenix, AZ USA.
C3 Simon Fraser University; Arizona State University; Arizona State
   University-Downtown Phoenix
RP Spiliotopoulou, M (corresponding author), Simon Fraser Univ, Sch Resource & Environm Management, TASC 1,8888 Univ Dr, Burnaby, BC V5A 1S6, Canada.
EM mariaspi@sfu.ca
RI Roseland, Mark/KCY-7449-2024
OI Roseland, Mark/0000-0002-8933-3607; Spiliotopoulou,
   Maria/0000-0002-3672-0750
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NR 122
TC 3
Z9 3
U1 5
U2 37
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.
PD FEB 1
PY 2022
VL 27
IS 2
BP 177
EP 196
DI 10.1080/13549839.2021.2005008
EA NOV 2021
PG 20
WC Green & Sustainable Science & Technology; Environmental Studies;
   Geography; Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology;
   Geography; Public Administration; Urban Studies
GA ZL5IM
UT WOS:000722049000001
DA 2025-04-22
ER

PT J
AU Fistola, R
   Gargiulo, C
   La Rocca, RA
AF Fistola, R.
   Gargiulo, C.
   La Rocca, R. A.
TI Rethinking vulnerability in city-systems: A methodological proposal to
   assess "urban entropy"
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Article
DE Urban system; Entropy; Vulnerability; Resilience, territorial fragility
ID SUSTAINABLE DEVELOPMENT; COMPLEXITY; RESILIENCE; ENERGY; THERMODYNAMICS;
   INDICATORS
AB This paper aims at proposing a possible alternative point of view to investigate the vulnerability of urban systems. The basic ideal refers to the possibility of thinking about vulnerability as deriving by the interactions of several risks that can affect the urban system and by the interactions among them. In this sense, it is possible to refer to an "integrated territorial risk". Considering the city as a complex and dynamic system that while evolving produce entropy is the main theoretical reference supporting this study. The loss of energy during the evolution of the system corresponds to some conditions of inefficiency that involve the whole system and, as such, this lost energy can be assumed as a "systemic entropy". Is it possible to measure the levels of this vulnerability of the urban system when it stays in ordinary conditions, namely not during stress states that modify the state of equilibrium of the system itself? It is possible to assess the production of this "internal entropy"? In order to answer to these questions in mind, this study aims at analyzing dyscrasias that can occur within the main components of the urban system in order to individuate possible strategies able both to mitigate the fragility of the urban system and to improve its resilience.
C1 [Fistola, R.] Univ Sannio, Dept Engn, Benevento, Italy.
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C3 University of Sannio; University of Naples Federico II
RP La Rocca, RA (corresponding author), DICEA, Piazzale Tecchio 80, I-80125 Naples, Italy.
EM rfistola@unisannio.it; gargiulo@unina.it; larocca@unina.it
RI La Rocca, Rosa/E-9227-2013; Fistola, Romano/JYQ-2206-2024; Gargiulo,
   Carmela/ABD-6287-2020
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Z9 18
U1 3
U2 29
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 0195-9255
EI 1873-6432
J9 ENVIRON IMPACT ASSES
JI Environ. Impact Assess. Rev.
PD NOV
PY 2020
VL 85
AR 106464
DI 10.1016/j.eiar.2020.106464
PG 14
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA NW4AI
UT WOS:000574950900007
PM 32934430
OA Green Published
DA 2025-04-22
ER

PT J
AU Saez-Ujaque, D
   Aquilué, I
   de Balanzo-Joue, R
   Fuertes, P
   Garcia-Almirall, P
AF Saez-Ujaque, Diego
   Aquilue, Ines
   de Balanzo-Joue, Rafael
   Fuertes, Pere
   Garcia-Almirall, Pilar
TI Resiliencia en los planes de transformación de la ciudad posindustrial.
   El vacío como síntoma. Mataró como ejemplo en la región metropolitana de
   Barcelona
SO EURE-REVISTA LATINOAMERICANA DE ESTUDIOS URBANO REGIONALES
LA English
DT Article
DE intermediate cities; urban planning; urban renewal
ID ADAPTATION
AB I This article analyzes the urban void as a symptom of the lack of resilience of the transformation plans of former industrial fabrics in Mataro (Barcelona). Through chronological analysis of the formal and functional transformation processes of these industrial sectors subject to planning, the urban void appears as a symptom of the linear approach in urban planning discipline, unable to address the complexity of the urban phenomenon. Empty buildings, empty lots, empty commercial ground floors, as well as unexpected bifurcations, are the different ways in which the mismatch between the theoretical sequence 'industry-planning-transformation' and the dynamics of the city manifests itself. In this context, the heuristics of socio-ecological resilience and the adaptive cycle provide a useful analytical framework for, on the one hand, typologically and chronologically characterizing these voids and, on the other, pointing out the ailments of urban planning in the face of successive traps along the path.
C1 [Saez-Ujaque, Diego; Aquilue, Ines; Fuertes, Pere; Garcia-Almirall, Pilar] Univ Politecn Cataluna, Barcelona, Spain.
   [de Balanzo-Joue, Rafael] Pratt Inst, Grad Ctr Planning & Environm, New York, NY USA.
C3 Universitat Politecnica de Catalunya
RP Saez-Ujaque, D (corresponding author), Univ Politecn Cataluna, Barcelona, Spain.
EM diego.saez@upc.edu; ines.aquilue@upc.edu; rbalanzoj@gmail.com;
   pere.fuertes@upc.edu; pilacgarcia-almirall@upc.edu
RI DE BALANZO JOUE, RAFAEL/AAN-1367-2020; Aquilué, Inés/I-2793-2015;
   Fuertes, Pere/T-3130-2019; Garcia-Almirall, Pilar/J-7375-2016
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NR 60
TC 1
Z9 1
U1 1
U2 10
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 2024
VL 50
IS 149
AR 6
DI 10.7764/EURE.50.149.06
PG 32
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA EF1B9
UT WOS:001137404100014
OA Green Published, hybrid, Green Submitted
DA 2025-04-22
ER

PT J
AU Makana, LO
   Jefferson, I
   Hunt, DVL
   Rogers, CDF
AF Makana, L. O.
   Jefferson, I.
   Hunt, D. V. L.
   Rogers, C. D. F.
TI Assessment of the future resilience of sustainable urban sub-surface
   environments
SO TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY
LA English
DT Article
DE Future scenarios; Multi-utility tunnels; Fuzzy logic; Geographical
   information systems; Resilience; Sustainability
ID UNDERGROUND SPACE; CAPACITY; TUNNELS; ISSUES
AB Urban sub-surface environments have consistently been used to house a wide variety of urban infrastructure, but often developed in a relatively haphazard way. An important aspect to overcome this is an enriched understanding of the current and potential future uses. Therein Geoscientific information should be considered indispensable, if this space is to be developed in a resilient and sustainable way. This will require a clear understanding of what is or could be located within underground space, together with its properties, in order to assess its true potential as an urban resource. This information will inform urban developmental choices allowing sustainable and resilient development of underground space use to take place regardless of what the future may hold. However, such information needs to be integrated into decision support systems for conventional types of underground construction, in order for any development to occur in a consistent and manageable way.
   This paper presents the development of a new sustainable underground use resilience evaluation (SUURE) framework that will allow the quantification of both spatial and temporal impacts of today's underground urban (re)development solutions, in light of future economic, environmental and social changes. The framework uses a broad range of plausible, yet divergent future scenarios in order to ensure core objectives of sustainability and resilience are met. Within this paper it is used to evaluate the utilisation of Multi-Utility-Tunnels - MUT's (i.e. flush-fitting, shallow and deep) in Birmingham Eastside, UK, as an alternative utility placement technique to traditional (open-cut) trenching. The flush-fitting MUT was found to be having the highest overall baseline (i.e. present-day) performance with a resilience index ratio of 0.739 (mean value), the shallow MUT came second at 0.656, and the deep MUT came last at 0.212. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Makana, L. O.; Jefferson, I.; Hunt, D. V. L.; Rogers, C. D. F.] Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, W Midlands, England.
C3 University of Birmingham
RP Hunt, DVL (corresponding author), Univ Birmingham, Sch Civil Engn, Birmingham B15 2TT, W Midlands, England.
EM huntd@bham.ac.uk
RI Rogers, Christopher/AAE-2395-2020
OI Jefferson, Ian/0000-0001-6437-101X; Rogers,
   Christopher/0000-0002-1693-1999
FU Engineering and Physical Sciences Research Council (EPSRC)
   [EP/F007426/1]; Liveable Cities Programme Grant [EP/J017698]; EPSRC
   [EP/J017698/1, EP/F007426/1] Funding Source: UKRI
FX The authors would like to thank the Engineering and Physical Sciences
   Research Council (EPSRC) for the funding that enabled this research to
   be carried out under the Urban Futures project (Grant Reference:
   EP/F007426/1) and the Liveable Cities (EP/J017698) Programme Grant. In
   addition they would like to thank the British Geological Survey and
   GSI3D for their support during this research.
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NR 56
TC 35
Z9 40
U1 10
U2 149
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0886-7798
J9 TUNN UNDERGR SP TECH
JI Tunn. Undergr. Space Technol.
PD MAY
PY 2016
VL 55
BP 21
EP 31
DI 10.1016/j.tust.2015.11.016
PG 11
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Engineering
GA DK0QL
UT WOS:000374617200004
DA 2025-04-22
ER

PT J
AU Wink, R
   Kirchner, L
   Koch, F
   Speda, D
AF Wink, Ruediger
   Kirchner, Laura
   Koch, Florian
   Speda, Daniel
TI There are Many Roads to Reindustrialization and Resilience: Place-based
   Approaches in Three German Urban Regions
SO EUROPEAN PLANNING STUDIES
LA English
DT Article
DE reindustrialization; regional economic resilience; place-based
   approaches; related variety; evolutionary economic geography
ID ECONOMIC-GEOGRAPHY; POLITICAL-ECONOMY; DEINDUSTRIALIZATION; RELATEDNESS;
   EVOLUTION; INDUSTRY; CRISIS; POLICY; PATHS
AB Reindustrialization has become a major political objective in the European Union. This paper provides three urban case studies on reindustrialization pathways and experiences during the global economic crisis to reveal the specificities of place-based approaches on the local level despite common policies on EU, federal and state levels. Moreover, the evolutionary perspective on reindustrialization and economic resilience shows the importance of adaptive capabilities on the local level, although the sources for these capabilities differ according to context- and place-specific structures.
C1 [Wink, Ruediger; Kirchner, Laura; Koch, Florian; Speda, Daniel] HTWK Leipzig, Fac Business Adm, Leipzig, Germany.
RP Wink, R (corresponding author), HTWK Leipzig, POB 301166, D-04251 Leipzig, Germany.
EM ruediger.wink@htwk-leipzig.de
RI Koch, Florian/KUC-9426-2024
OI Koch, Florian/0000-0002-4897-7174
FU European Spatial Observatory Network (ESPON)
FX This research was part of the project "Economic Crises: Regional
   Resilience (ECR2)", funded by the European Spatial Observatory Network
   (ESPON).
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NR 55
TC 20
Z9 21
U1 4
U2 70
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0965-4313
EI 1469-5944
J9 EUR PLAN STUD
JI Eur. Plan. Stud.
PD MAR 3
PY 2016
VL 24
IS 3
BP 463
EP 488
DI 10.1080/09654313.2015.1046370
PG 26
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 DB5KL
UT WOS:000368552900003
DA 2025-04-22
ER

PT J
AU Lazzeroni, M
AF Lazzeroni, Michela
TI Industrial Decline and Resilience in Small Towns: Evidence From Three
   European Case Studies
SO TIJDSCHRIFT VOOR ECONOMISCHE EN SOCIALE GEOGRAFIE
LA English
DT Article
DE Industrial decline; small towns; resilience; dynamic capabilities; urban
   strategies
ID MEDIUM-SIZED TOWNS; ECONOMIC RESILIENCE; SMALL CITIES; REGIONS
AB This paper concerns the future of small towns with an old industrial specialisation which have undergone growth processes during the 1900s and now experience de-industrialisation and identity crises in an economic scenario characterised by the role played by global cities and emerging countries. The concept of resilience has been adopted as the main analytical tool to study this phenomenon. Following an evolutionary approach, resilience is here understood as the dynamic capabilities a system can use to react to negative events and changes, to emphasise its distinctive contextual factors and promote new development trajectories, by also considering the contribution of institutions and urban strategies. With regard to the empirical part of the research, three comparable small industrial towns have been examined: Sochaux, the historical town of Peugeot; Ivrea, developed around the Olivetti company; Pontedera, the town of Piaggio and the famous Vespa.
C1 [Lazzeroni, Michela] Univ Pisa, Dept Civilitat & Forms Knowledge, Via Paoli 15, I-56126 Pisa, Italy.
C3 University of Pisa
RP Lazzeroni, M (corresponding author), Univ Pisa, Dept Civilitat & Forms Knowledge, Via Paoli 15, I-56126 Pisa, Italy.
EM michela.lazzeroni@unipi.it
OI LAZZERONI, MICHELA/0000-0002-7919-2775
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NR 41
TC 25
Z9 26
U1 3
U2 47
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 2020
VL 111
IS 2
BP 182
EP 195
DI 10.1111/tesg.12368
PG 14
WC Economics; Geography
WE Social Science Citation Index (SSCI)
SC Business & Economics; Geography
GA KT5QY
UT WOS:000519070500006
DA 2025-04-22
ER

PT J
AU Wang, YJ
   Shu, JJ
   Yuan, Y
AF Wang, Yongjie
   Shu, Jinjin
   Yuan, Yu
TI Navigating urban risks for sustainability: A comprehensive evaluation of
   urban vulnerability based on a pressure-sensitivity-resilience framework
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban vulnerability evaluation; Pressure; Sensitivity; Resilience; Risk
   mitigation
ID CLIMATE VULNERABILITY; SOCIAL VULNERABILITY; INDICATORS; SYSTEMS
AB Cities are important symbols of civilization in human society. The vulnerability to cities caused by human activities and natural disasters has become increasingly evident. How to reduce the vulnerability of cities is an important topic in the research of urban public safety and sustainable development. In this study, a comprehensive evaluation of urban vulnerability is conducted on the basis of the pressure-sensitivity-resilience framework from a complex systems perspective, integrating three subsystems-the resource-environment, economic, and social subsystems. On the basis of data from 18 cities in Sichuan Province, China, from 2006 to 2021, this study analyzes vulnerability in terms of its scores, spatial and temporal evolution, and obstacles. The results reveal that the overall vulnerability of the Sichuan Basin has shown a fluctuating downward trend over the past sixteen years, and the spatial distribution has evolved into a large "low-vulnerability" agglomeration. The obstacles affecting urban vulnerability are also changing dynamically and include factors such as the harmless treatment rate of household waste and industrial smoke dust emissions. Drawing from these insights, this study enables the identification and diagnosis of urban vulnerability and, further, provides city managers with tailored recommendations for crafting policies that aim to mitigate risks and promote sustainable development.
C1 [Wang, Yongjie; Shu, Jinjin; Yuan, Yu] Southwest Jiaotong Univ, Sch Publ Adm, Chengdu, Peoples R China.
C3 Southwest Jiaotong University
RP Yuan, Y (corresponding author), Southwest Jiaotong Univ, Sch Publ Adm, Chengdu, Peoples R China.
EM yuanyu1231@swjtu.edu.cn
FU Humanities and Social Sciences Research Project of the Ministry of
   Education [20YJA630068]
FX This research was supported by the Humanities and Social Sciences
   Research Project of the Ministry of Education (20YJA630068) .
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NR 56
TC 0
Z9 0
U1 21
U2 21
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD DEC 15
PY 2024
VL 117
AR 105961
DI 10.1016/j.scs.2024.105961
EA NOV 2024
PG 12
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA M1D5V
UT WOS:001355019000001
DA 2025-04-22
ER

PT J
AU Nickayin, SS
   Tomao, A
   Quaranta, G
   Salvati, L
   Morera, AG
AF Nickayin, Samaneh Sadat
   Tomao, Antonio
   Quaranta, Giovanni
   Salvati, Luca
   Morera, Antonio Gimenez
TI Going toward Resilience? Town Planning, Peri-Urban Landscapes, and the
   Expansion of Athens, Greece
SO SUSTAINABILITY
LA English
DT Article
DE strategic master plan; urban expansion; demographic pressure; green
   belt; green infrastructure; Greece
ID URBAN EXPANSION; ECOSYSTEM SERVICES; LAND DEGRADATION; QUALITY; GROWTH;
   ROME; CRISIS; FORM; ALTERNATIVES; TRAJECTORIES
AB The long-term expansion and the evolution of town planning of a contemporary European metropolis (Athens, Greece) has been analysed in this study in order to evaluate how sustainable urban growth has been taken into account in sequential strategic master plans. During the last decades, the mostly unplanned urban growth and massive housing construction have favoured a slow evolution towards a less compact and mono-centric spatial asset, typical of several Mediterranean cities. Despite efforts to guide urban growth, a series of structural challenges have remained: (i) a gap between planning and implementation; (ii) a gap between spatial planning and socio-economic planning; (iii) a relevant pressure on natural environment; (iv) a lack of participatory planning. In order to face these problems, current strategies for the city of Athens try to foster city resilience providing guidelines for more sustainable management of the built and natural landscape. In particular, the Resilience Strategy for 2030 proposes a list of actions to improve the well-being of citizens and to increase sustainability at the urban and territorial levels. A major role was given to the enhancement of the environmental quality of the metropolitan area and to the involvement of inhabitants in the various phases of decision-making.
C1 [Nickayin, Samaneh Sadat] Agr Univ Iceland, Planning & Design Fac, IS-311 Hvanneyri, Borgarbyggd, Iceland.
   [Tomao, Antonio] Univ Tuscia, Dept Innovat Biol Agrofood & Forest Syst DIBAF, Via S Camillo de Lellis Snc, I-01100 Viterbo, Italy.
   [Quaranta, Giovanni] Univ Basilicata, Dept Math, Comp Sci & Econ Dept, Viale Ateneo Lucano, I-85100 Potenza, Italy.
   [Salvati, Luca] Univ Macerata, Dept Econ & Law, Via Armaroli 43, I-62100 Macerata, Italy.
   [Morera, Antonio Gimenez] Univ Politecn Valencia, Dept Econ & Ciencias Sociales, Cami Vera S-N, ES-46022 Valencia, Spain.
C3 Tuscia University; University of Basilicata; University of Macerata;
   Universitat Politecnica de Valencia
RP Tomao, A (corresponding author), Univ Tuscia, Dept Innovat Biol Agrofood & Forest Syst DIBAF, Via S Camillo de Lellis Snc, I-01100 Viterbo, Italy.
EM samaneh@lbhi.is; antonio.tomao@unitus.it; giovanni.quaranta@unibas.it;
   luca.salvati@unimc.it; angimo1@doctor.upv.es
RI salvia, rosanna/H-8017-2019; Salvati, Luca/AAS-6179-2021; Tomao,
   Antonio/ABG-3180-2021
OI Tomao, Antonio/0000-0001-6656-400X; Nickayin, Samaneh
   Sadat/0000-0002-5230-6103; Quaranta, Giovanni/0000-0002-3509-4807
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NR 79
TC 10
Z9 10
U1 5
U2 37
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2020
VL 12
IS 24
AR 10471
DI 10.3390/su122410471
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 PL7ZW
UT WOS:000603335900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Coletta, VR
   Pagano, A
   Zimmermann, N
   Davies, M
   Butler, A
   Fratino, U
   Giordano, R
   Pluchinotta, I
AF Coletta, Virginia Rosa
   Pagano, Alessandro
   Zimmermann, Nici
   Davies, Michael
   Butler, Adrian
   Fratino, Umberto
   Giordano, Raffaele
   Pluchinotta, Irene
TI Socio-hydrological modelling using participatory System Dynamics
   modelling for enhancing urban flood resilience through Blue-Green
   Infrastructure
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Socio-hydrological modelling; Urban flood resilience; Stakeholder
   engagement; Blue -Green Infrastructure; Thamesmead
ID CLIMATE-CHANGE; STAKEHOLDER ANALYSIS; RISK REDUCTION; IMPLEMENTATION;
   PERSPECTIVES; ADAPTATION; MANAGEMENT; BARRIERS; SAHYSMOD; SCIENCE
AB Cities are complex systems characterised by interdependencies among infrastructural, economic, social, ecological, and human elements. Urban surface water flooding poses a significant challenge due to climate change, population growth, and ageing infrastructure, often resulting in substantial economic losses and social disruption. Traditional hydrological modelling approaches for flood risk management, while providing invaluable support in the analysis of hydrological dynamics of floods, lack an understanding of the complex interplay between hydrological and non -hydrological (i.e., social, environmental, economic) aspects in an urban system, hindering effective flood risk management strategies. In this context, socio-hydrological modelling methods offer a complementary perspective to traditional hydrological models by integrating hydrological and social processes, thereby enhancing the understanding of the complex interactions driving flood resilience. The present work proposes a participatory socio-hydrological modelling approach based on System Dynamics (SD) to quantitatively analyse the interactions and feedback between flood risk and different aspects of the urban system. By combining scientific expertise with stakeholder knowledge, the modelling approach aims to provide decision -makers with a comprehensive understanding of flood dynamics and the effectiveness of resiliencebuilding measures. Furthermore, the role of Blue -Green Infrastructure (BGI) in enhancing urban flood resilience, considering its interplay with grey infrastructure and interactions with various sub -systems, is explored. The results reveal i) the contribution of SD quantitative modelling in supporting the analysis of interactions between flood risk reduction measures and different sub -systems thus offering decision -makers actionable insights into the multifaceted nature of flood risk and resilience; ii) the added value provided by the combination of scientific and stakeholder knowledge in tailoring the model to the case study, quantifying socio-hydrological modelling dynamics limitedly explored in the scientific literature and supporting the selection of measures for increasing flood resilience; iii) the ability of BGI to provide not only hydrological benefits (mainly about the reduction of surface runoff) but also multiple social and environmental benefits (i.e., the co -benefits), especially when coupled with well -functioning grey infrastructure. Reference is made to one of the case studies of the CUSSH and CAMELLIA projects, namely Thamesmead (London, United Kingdom), a formerly inhospitable marshland currently undergoing a process of urban regeneration, with an increasing vulnerability to flooding.
C1 [Coletta, Virginia Rosa; Fratino, Umberto] Polytech Univ Bari, Dept Civil Environm Land Construct & Chem, Bari, Italy.
   [Coletta, Virginia Rosa; Pagano, Alessandro; Giordano, Raffaele] CNR, Water Res Inst, Bari, Italy.
   [Zimmermann, Nici; Davies, Michael; Pluchinotta, Irene] UCL, Inst Environm Design & Engn, Bartlett Fac Built Environm, London, England.
   [Butler, Adrian] Imperial Coll London, Dept Civil & Environm Engn, London, England.
   [Coletta, Virginia Rosa] Polytech Univ Bari, Via Orabona 4, I-70126 Bari, Italy.
C3 Politecnico di Bari; Consiglio Nazionale delle Ricerche (CNR); Istituto
   di Ricerca sulle Acque (IRSA-CNR); University of London; University
   College London; Imperial College London; Politecnico di Bari
RP Coletta, VR (corresponding author), Polytech Univ Bari, Via Orabona 4, I-70126 Bari, Italy.
EM virginiarosa.coletta@poliba.it
RI GIORDANO, RAFFAELE/AAX-7089-2020; Butler, Adrian/F-1843-2010; Coletta,
   Virginia/AAM-8887-2021; Fratino, Umberto/F-3149-2012; Zimmermann,
   Nici/O-3196-2017; Pagano, Alessandro/P-1544-2018
OI Zimmermann, Nici/0000-0003-2344-7238; Pluchinotta,
   Irene/0000-0002-1883-8675; Pagano, Alessandro/0000-0002-2511-9396;
   Davies, Michael/0000-0003-2173-7063; Butler, Adrian/0000-0001-9125-6105
FU Wellcome Trust [209387/Z/17/Z]; UK Natural Environment Research Council
   [NE/S003495/1]
FX This paper is part of the PhD research of the corresponding author, and
   it fits into the research activities of the CUSSH and CAMELLIA projects.
   Therefore, it was partially funded by the Wellcome Trust ("Complex Urban
   Systems for Sustainability and Health" CUSSH project, ref. no.
   209387/Z/17/Z, https://projectcussh.org/) and by the UK Natural
   Environment Research Council ("Community Water Manage- ment for a
   Liveable London" CAMELLIA project, ref. no. NE/S003495/1, https://
   www.camelliawater.org/) . For the purpose of Open Access, the author has
   applied a CC BY public copyright license to any Author Accepted
   Manuscript version arising from this submission. We would like to thank
   the stakeholders for the many stimulating discussions and their kind
   cooperation.
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NR 120
TC 6
Z9 6
U1 47
U2 68
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0022-1694
EI 1879-2707
J9 J HYDROL
JI J. Hydrol.
PD JUN
PY 2024
VL 636
AR 131248
DI 10.1016/j.jhydrol.2024.131248
EA MAY 2024
PG 20
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA TB4R5
UT WOS:001238789700001
PM 39416471
OA Green Published, Green Accepted
DA 2025-04-22
ER

PT J
AU Colucci, A
AF Colucci, Angela
TI Resilience Practices Contribution Enabling European Landscape Policy
   Innovation and Implementation
SO LAND
LA English
DT Article
DE resilience; creative diversity; adaptive governance; resilience
   practices; collaborative green infrastructures; nature-based solutions
ID GRASS-ROOTS INNOVATIONS; NETWORK; SPACE
AB The paper is rooted in the results of the Resilience Practices Observatory (RPO) project, which engaged more than one hundred community-led practices to improve local resilience capacities and about fifty applied research and institutional-led initiatives. The article in retracing the complex and articulated RPO research-action project aims to stimulate the disciplinary debate on the contribution and role of resilience practices in a renewed landscape planning framework process. In particular, the paper focuses on the resilience practices acting on ecological landscape enhancement, assuming nature-based solutions as an umbrella concept under numerous approaches, models, and theoretical frameworks supporting the integration of ecological values in the territorial and urban transformation towards their conservation and improvement. The selected cases are placed in the Milano metropolitan area, aiming to safeguard, improve, and valorize urban and periurban landscapes. The cases are used to explore three emerging phenomena: (1) the alliances and the role of community in orienting landscape planning; (2) the role of practices in solution co-design and planning implementation; (3) the role of community in micro-intervention for urban biodiversity and landscape functionality. The final section emphasizes the potential role of community-led initiatives in implementing the NBS European policy and landscape planning guidelines. In the meantime, final remarks underline perspectives in overcoming the existing criticalities towards renovated and adaptive governance process, enabling a more collaborative arena supporting the engagement of differentiated actors along the whole process, from decision making to the implementation and management of landscape planning.
C1 [Colucci, Angela] REsilienceLAB, I-27100 Pavia, Italy.
   [Colucci, Angela] Politecn Milan, I-20133 Milan, Italy.
C3 Polytechnic University of Milan
RP Colucci, A (corresponding author), REsilienceLAB, I-27100 Pavia, Italy.; Colucci, A (corresponding author), Politecn Milan, I-20133 Milan, Italy.
EM angela.colucci@polimi.it
RI Colucci, Angela/AAQ-2021-2020
OI COLUCCI, ANGELA/0000-0002-3830-7564
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NR 43
TC 4
Z9 4
U1 3
U2 19
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD MAR
PY 2023
VL 12
IS 3
AR 637
DI 10.3390/land12030637
PG 15
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA C0AJ6
UT WOS:000958648600001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Raco, M
   Street, E
AF Raco, Mike
   Street, Emma
TI Resilience Planning, Economic Change and The Politics of Post-recession
   Development in London and Hong Kong
SO URBAN STUDIES
LA English
DT Article
ID REGIONAL RESILIENCE; METAPHOR; CITY
AB For much of the 1990s and 2000s, the emphasis of urban policy in many global cities was on managing and mitigating the social and environmental effects of rapid economic growth. The credit crunch of 2008 and the subsequent recession have undermined some of the core assumptions on which such policies were based. It is in this context that the concept of resilience planning has taken on a new significance. Drawing on contemporary research in London and Hong Kong, the paper shows how resilience and recovery planning has become a key area of political debate. It examines what is meant by conservative and radical interpretations of resilience and how conservative views have come to dominate 'recovery' thinking, with Slite groups unwilling to accept the limits to the neo-liberal orthodoxies that helped to precipitate the economic crisis. The paper explores the implications of such thinking for the politics of urban development.
C1 [Raco, Mike] UCL, Bartlett Sch Planning, London WC1H 0QB, England.
   [Street, Emma] Kings Coll London, Dept Geog, London WC2R 2LS, England.
C3 University of London; University College London; University of London;
   King's College London
RP Raco, M (corresponding author), UCL, Bartlett Sch Planning, Wates House,Gordon St, London WC1H 0QB, England.
EM m.raco@ucl.ac.uk; emma.street@kcl.ac.uk
OI Raco, Michele/0000-0003-0371-532X
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NR 66
TC 78
Z9 88
U1 0
U2 57
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD APR
PY 2012
VL 49
IS 5
BP 1065
EP 1087
DI 10.1177/0042098011415716
PG 23
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA 905RL
UT WOS:000301290400008
DA 2025-04-22
ER

PT J
AU Yin, XY
   Chen, JH
   Li, YX
AF Yin, Xinyao
   Chen, Junhua
   Li, Yuexuan
TI Simulation-Based Resilience Evaluation for Urban Rail Transit Transfer
   Stations
SO SUSTAINABILITY
LA English
DT Article
DE resilience; sustainability of urban rail transit; two-level fuzzy
   evaluation model; G1 weighting method; Anylogic simulation
ID VULNERABILITY; NETWORKS
AB Disturbances often occur in transfer stations; however, little is known about the weaknesses of transfer stations and their ability to cope with passenger flows. Therefore, this paper introduces resilience into the study of transfer stations to enhance their emergency response processes and improve the sustainability of URT networks. It establishes a two-level fuzzy evaluation model, using the G1 weighting method, to assess resilience across various scenarios (daily operation, heavy passenger flow, and emergencies) and identify weaknesses; then, corresponding enhancement strategies are proposed. First, factor sets are established according to resilience stages, including rapidity before disturbance, robustness, redundancy, resourcefulness, and rapidity after disturbance. Using the G1 method, the weight matrix for each factor is calibrated, and a membership degree matrix is determined based on their affiliation with the review set. Multiplying the weight matrix and membership degree matrix yields the resilience value. We apply these steps to a representative station with the assistance of Anylogic simulation in calculating the hard-to-obtain data, yielding a peak-hour resilience value of 0.3425, which indicates a "poor" rating in the review set. By combining the peak-hour resilience with resilience curves under different multiples of peak-hour flows, an enhancement prioritization strategy is proposed for the station, which can act as a reference for the management of URT transfer stations.
C1 [Yin, Xinyao; Chen, Junhua; Li, Yuexuan] Beijing Jiaotong Univ, Sch Traff & Transportat, 3 Shang Yuan Cun, Beijing 100044, Peoples R China.
C3 Beijing Jiaotong University
RP Chen, JH (corresponding author), Beijing Jiaotong Univ, Sch Traff & Transportat, 3 Shang Yuan Cun, Beijing 100044, Peoples R China.
EM 23120942@bjtu.edu.cn; cjh@bjtu.edu.cn; 20221202@bjtu.edu.cn
RI Chen, Junhua/P-1721-2018; Li, Yue-Xuan/ITV-4227-2023
FU China State Railway Group Co., Ltd. Science and technology research and
   development program
FX We would like to thank Yangyang Zhao of Chang'an University for
   providing us with preliminary guidance, and Lijie Yu of Chang'an
   University for providing us with example data and CAD drawings.
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NR 26
TC 0
Z9 0
U1 20
U2 37
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY
PY 2024
VL 16
IS 9
AR 3790
DI 10.3390/su16093790
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 QG8C8
UT WOS:001219808200001
OA gold
DA 2025-04-22
ER

PT J
AU Hutter, G
   Olfert, A
   Neubert, M
   Ortlepp, R
AF Hutter, Gerard
   Olfert, Alfred
   Neubert, Marco
   Ortlepp, Regine
TI Building Resilience to Natural Hazards at a Local Level in
   Germany-Research Note on Dealing with Tensions at the Interface of
   Science and Practice
SO SUSTAINABILITY
LA English
DT Article
DE compromise; disaster risk reduction (DRR); motor of change; setting
   priorities; strategic focus; teleology
ID CLIMATE-CHANGE ADAPTATION; MANAGEMENT; EXAMPLES
AB Building resilience is a core element of urban resilience that refers to both the (1) intended physical change of the building stock and the related blue, green, and grey infrastructure, as well as (2) the social process of increasing resilience through the goal-driven cooperation of scientists and practitioners. Building resilience at the interface of science and practice is characterized by tensions and a range of approaches to dealing with tensions. To specify this proposition, this research note adopts a strategic spatial planning perspective and introduces the typology of "motors of change " from organizational and management research. We focus on a goal-driven motor of change ( "teleology ") and highlight three approaches to dealing with tensions: developing a strategic focus of knowledge integration, setting priorities to enhance resilience as a pro-active ability of disaster risk reduction (DRR), and compromising in the management of trade-offs, such as those between the scales of resilience. For the purpose of illustration, this research note refers to examples of building resilience at a local level in Germany, dealing with heat stress in urban areas, managing the risk of extreme flood events, and analyzing the resilience of innovative infrastructure solutions.
C1 [Hutter, Gerard; Olfert, Alfred; Neubert, Marco; Ortlepp, Regine] Leibniz Inst Ecol Urban & Reg Dev IOER, Res Area Built Environm Resources & Environm Risk, Weberpl 1, D-01217 Dresden, Germany.
C3 Leibniz Institut fur okologische Raumentwicklung
RP Hutter, G (corresponding author), Leibniz Inst Ecol Urban & Reg Dev IOER, Res Area Built Environm Resources & Environm Risk, Weberpl 1, D-01217 Dresden, Germany.
EM g.hutter@ioer.de; a.olfert@ioer.de; m.neubert@ioer.de; r.ortlepp@ioer.de
RI Neubert, Marco/AFF-5749-2022; Olfert, Alfred/AAC-8992-2020; Ortlepp,
   Regine/C-2861-2008
OI Neubert, Marco/0000-0002-9970-4555; Ortlepp, Regine/0000-0002-2109-7468
FU Umweltbundesamt [FKZ 3715 48 102 0, FKZ: 3719 15 103 0];
   Bundesministerium fuer Umwelt, Naturschutz, Bau und Reaktorsicherheit
   [FKZ 03DAS104ABCDE]; Bundesministerium fuer Bildung und Forschung
   [01LR1705]
FX Funding This research was funded by the Umweltbundesamt, grant number
   FKZ 3715 48 102 0, the Umweltbundesamt, grant number FKZ: 3719 15 103 0,
   the Bundesministerium fuer Umwelt, Naturschutz, Bau und
   Reaktorsicherheit, grant number FKZ 03DAS104ABCDE, and the
   Bundesministerium fuer Bildung und Forschung, grant number 01LR1705.
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NR 56
TC 1
Z9 1
U1 4
U2 20
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 22
AR 12459
DI 10.3390/su132212459
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 XI0OG
UT WOS:000725821900001
OA gold
DA 2025-04-22
ER

PT J
AU Meerow, S
   Hannibal, B
   Woodruff, SC
   Roy, M
   Matos, M
   Gilbertson, PC
AF Meerow, Sara
   Hannibal, Bryce
   Woodruff, Sierra C.
   Roy, Malini
   Matos, Melina
   Gilbertson, Philip C.
TI Urban Flood Resilience Networks: Exploring the Relationship between
   Governance Networks, Networks of Plans, and Spatial Flood Resilience
   Policies in Four Coastal Cities
SO ANNALS OF THE AMERICAN ASSOCIATION OF GEOGRAPHERS
LA English
DT Article
DE collaboration; flooding; governance networks; network of plans; urban
   resilience
ID ADAPTIVE GOVERNANCE; CLIMATE; VULNERABILITY; COMMUNITY; SELECTION;
   HAZARDS
AB Coastal cities facing growing flood risks are increasingly focused on resilience. Academic and policy discourse present a resilience-based approach to governing hazards as more collaborative, better connecting threats, systems, and actors. Literature on governance networks, collaborative governance, and networks of plans suggests collaboration enhances resilience, but empirical studies of the relationship between governance networks, networks of plans, and resilience policies are limited. This study addresses this gap by examining collaboration patterns and plans in the context of flood resilience in four U.S. cities (Fort Lauderdale, Baltimore, Boston, and Seattle). We use surveys and social network analysis to assess collaboration within the cities' flood governance networks. We analyze cities' networks of plans using three approaches: (1) plan quality evaluation, (2) plan cross-referencing, and (3) the spatial distribution and flood resilience impact of policies. We find that higher quality plans and those that integrate flood information are more likely to have policies reducing flood risk. Plans that are more connected to other plans also have higher plan quality scores and more flood information. At the city level, the relationship between collaboration across the governance networks and networks of plans appears more complex and requires additional research.
C1 [Meerow, Sara; Gilbertson, Philip C.] Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ 85281 USA.
   [Hannibal, Bryce] US Census Bur, Suitland, MD USA.
   [Woodruff, Sierra C.] Texas A&M Univ, College Stn, TX USA.
   [Roy, Malini] Univ Arizona, Coll Architecture Planning & Landscape Architectur, Tucson, AZ USA.
   [Matos, Melina] Florida Atlantic Univ, Dept Urban & Reg Planning, Ft Lauderdale, FL 33301 USA.
C3 Arizona State University; Arizona State University-Tempe; Texas A&M
   University System; Texas A&M University College Station; University of
   Arizona; State University System of Florida; Florida Atlantic University
RP Meerow, S (corresponding author), Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ 85281 USA.
EM Sara.Meerow@asu.edu
RI Roy, Malini/GXN-3793-2022; Matos, Melina/M-8617-2018; Meerow,
   Sara/J-8037-2019
FU National Science Foundation
FX The authors would like to thank Madison Moore and Elizabeth Van Horn for
   their assistance in coding plans in this study.
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NR 68
TC 2
Z9 2
U1 24
U2 51
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 SEP 13
PY 2024
VL 114
IS 8
SI SI
BP 1866
EP 1876
DI 10.1080/24694452.2023.2284299
EA NOV 2023
PG 11
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA G0X1Q
UT WOS:001147297400001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Zhang, MJ
   Peng, C
   Shu, JF
   Lin, YZ
AF Zhang, Mengjie
   Peng, Chong
   Shu, Jianfeng
   Lin, Yingzi
TI Territorial Resilience of Metropolitan Regions: A Conceptual Framework,
   Recognition Methodologies and Planning Response-A Case Study of Wuhan
   Metropolitan Region
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE territorial resilience; metropolitan regions; territorial planning;
   Wuhan metropolitan region
ID CLIMATE-CHANGE ADAPTATION
AB As the key link and spatial form of urbanization in China, metropolitan region development has become a strategic frontier issue in the field of regional planning and territorial resilience. This paper defines the essence of territorial resilience of metropolitan regions, analyses the capacity of the system and its elements, and builds a regional planning framework. An evaluation indicator system is constructed to evaluate the territorial resilience level and identify the limiting factors in the Wuhan metropolitan region by utilizing the grey correlation model and the obstacle degree model. The results show that the resilience of Wuhan metropolitan region forms an overall pattern of one core area and four sub-regions in the east, west, north and south. According to the different limiting factors of resilience, cities can be divided into three types: cities limited by both policy and spatial resource factors, cities with lagging socioeconomic factors, and cities with insufficient innovation factors. This paper proposes planning response strategies to enhance resilience from two spatial levels. At the regional level this can be done by building a gradually balanced urban system, establishing three areas based on the degree of resilience factor agglomeration, while at the urban level it can be accomplished by maintaining ecological security, promoting economic agglomeration development and constructing innovation networks.
C1 [Zhang, Mengjie; Peng, Chong; Shu, Jianfeng; Lin, Yingzi] Huazhong Univ Sci & Technol, Sch Architecture & Urban Planning, Wuhan 430074, Peoples R China.
C3 Huazhong University of Science & Technology
RP Peng, C (corresponding author), Huazhong Univ Sci & Technol, Sch Architecture & Urban Planning, Wuhan 430074, Peoples R China.
EM zhangmj@hust.edu.cn; pengchong@hust.edu.cn; jfshu@hust.edu.cn;
   linyingzi@hust.edu.cn
RI Peng, Chong/JNE-9569-2023
OI ZHANG, Meng-Jie/0000-0003-3191-8968
FU National Social Science Foundation of China (Key Program) [21AZD048]
FX This research was funded by National Social Science Foundation of China
   (Key Program), grant number 21AZD048.
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TC 4
Z9 4
U1 10
U2 111
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD FEB
PY 2022
VL 19
IS 4
AR 1914
DI 10.3390/ijerph19041914
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 ZX5LY
UT WOS:000771939000001
PM 35206103
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Zhang, P
   Xu, XK
   Yang, WT
   Li, YM
   Yao, SQ
AF Zhang, Peng
   Xu, Xukan
   Yang, Wentong
   Li, Yiming
   Yao, Shengqi
TI Supply-Demand risk assessment of urban flood resilience from the
   perspective of the ecosystem services: A case study in Nanjing, China
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Urban flood resilience; Ecosystem services; Self-Organizing Map;
   Supply-demand matching; Risk assessment
ID FRAMEWORK; SPACE
AB Urban flooding has become a pressing challenge for many countries and regions. Meanwhile, ecosystem-based disaster risk reduction approaches have been recognized as a sustainable and effective strategy for managing flood risks. This study designed a conceptual framework for assessing the supply-demand risk of urban flood resilience (UFR) from the perspective of ecosystem services (ESs). Taking the city of Nanjing, China, as an example, the InVEST model and the multi-criteria comprehensive evaluation method were employed to quantify the supply of UFR provided by natural ecosystems and the demand for UFR from socio-economic systems. Additionally, based on UFR supply-demand evaluation indicators calculated for each subdistrict, the Self- Organizing Map (SOM) was used to cluster the subdistricts. Finally, UFR supply-demand matching was conducted on the subdistrict clusters, and different flood-risk levels were identified based on the supply-demand ratio. The results showed that high flood-risk subdistricts are mainly concentrated in central urban area, low flood-risk subdistricts are primarily in urban periphery, and subdistricts in urban-rural transitional zones exhibit medium flood risk. Statistical analysis revealed that this zonal pattern is closely related to land use types and the distribution of social resources. Therefore, this study provides a scientific basis for developing management strategies of urban flood prevention from the perspective of ESs.
C1 [Zhang, Peng; Xu, Xukan; Yang, Wentong; Li, Yiming; Yao, Shengqi] Hohai Univ, Business Sch, Nanjing 211100, Peoples R China.
   [Xu, Xukan] Hohai Univ, Inst Stat & Data Sci, Nanjing 211100, Peoples R China.
   [Xu, Xukan] Key Lab Ind Big Data Min & Knowledge Management, Changzhou 213000, Peoples R China.
C3 Hohai University; Hohai University
RP Xu, XK (corresponding author), Hohai Univ, Business Sch, Nanjing 211100, Peoples R China.; Xu, XK (corresponding author), Hohai Univ, Inst Stat & Data Sci, Nanjing 211100, Peoples R China.; Xu, XK (corresponding author), Key Lab Ind Big Data Min & Knowledge Management, Changzhou 213000, Peoples R China.
EM xxkwh@hhu.edu.cn
RI Yang, Wentong/AGA-6433-2022
FU Major Program of the National Social Science Foundation of China
   [20ZD125]; Key Program of the China Higher Education Institution
   Industry-University-Research Innovation Fund [2022IT010]
FX This work is financially supported by the Major Program of the National
   Social Science Foundation of China (Grant no. 20&ZD125) , and the Key
   Program of the China Higher Education Institution
   Industry-University-Research Innovation Fund (Grant no. 2022IT010) .
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NR 58
TC 0
Z9 0
U1 2
U2 2
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD APR
PY 2025
VL 173
AR 113397
DI 10.1016/j.ecolind.2025.113397
PG 15
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA 0VW9I
UT WOS:001457271700001
DA 2025-04-22
ER

PT J
AU Chen, JQ
   Liu, J
   Peng, QY
   Yin, Y
AF Chen, Jinqu
   Liu, Jie
   Peng, Qiyuan
   Yin, Yong
TI Strategies to Enhance the Resilience of an Urban Rail Transit Network
SO TRANSPORTATION RESEARCH RECORD
LA English
DT Article
DE public transportation; rail transit systems; rail; railroad
   infrastructure design and maintenance; resilience and sustainability
ID METRICS
AB An urban rail transit (URT) system is an important component of an urban infrastructure system; however, it is vulnerable to disturbances, such as natural disasters and terrorist attacks. Constructing a highly resilient URT network has practical significance for enhancing its capability to respond to disturbances. In this paper, models are developed to optimize a URT network's structure with regard to resilience and to enhance the resilience of a disrupted URT network. A bi-level programming model that aims to maximize a URT network's global accessibility and global efficiency is formulated to optimize the structure of the network. A novel repair strategy, called the simulation repair strategy, is proposed to enhance the resilience of a disrupted URT network by optimizing the repair sequence of failed stations. The models are utilized to enhance the resilience of the Chengdu subway network. The result indicates that the bi-level programming model guides the construction of new links to optimize the structure of the Chengdu subway network. Deliberate attacks are more harmful to the Chengdu subway network than random attacks. The network's operators need to pay attention to the operations of critical stations (e.g., Chunxi Road station and Tianfu Square station) to prevent disturbances from exerting considerable negative effects on the network's normal operations. The simulation repair strategy exhibits higher repair efficiency than the conventional repair strategy, and it effectively enhances the resilience of the disrupted Chengdu subway network.
C1 [Chen, Jinqu; Liu, Jie; Peng, Qiyuan; Yin, Yong] Southwest Jiaotong Univ, Sch Transportat & Logist, Chengdu, Sichuan, Peoples R China.
   [Liu, Jie] Kunming Univ Sci & Technol, Fac Transportat Engn, Kunming, Yunnan, Peoples R China.
   [Peng, Qiyuan; Yin, Yong] Southwest Jiaotong Univ, Natl United Engn Lab Integrated & Intelligent Tra, Chengdu, Sichuan, Peoples R China.
   [Peng, Qiyuan; Yin, Yong] Southwest Jiaotong Univ, Natl Engn Lab Integrated Transportat Big Data App, Chengdu, Sichuan, Peoples R China.
C3 Southwest Jiaotong University; Kunming University of Science &
   Technology; Southwest Jiaotong University; Southwest Jiaotong University
RP Yin, Y (corresponding author), Southwest Jiaotong Univ, Sch Transportat & Logist, Chengdu, Sichuan, Peoples R China.; Yin, Y (corresponding author), Southwest Jiaotong Univ, Natl United Engn Lab Integrated & Intelligent Tra, Chengdu, Sichuan, Peoples R China.; Yin, Y (corresponding author), Southwest Jiaotong Univ, Natl Engn Lab Integrated Transportat Big Data App, Chengdu, Sichuan, Peoples R China.
EM yinyong@home.swjtu.edu.cn
RI Yin, Yong/X-2157-2019; Liu, Jie/CAF-0980-2022
OI Liu, Jie/0000-0002-1920-1043; Chen, Jinqu/0000-0003-4334-5511
FU National Key R&D Program of China [2017YFB1200701]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: This
   research was funded by the National Key R&D Program of China
   (2017YFB1200701).
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NR 31
TC 35
Z9 37
U1 29
U2 191
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 JAN
PY 2022
VL 2676
IS 1
BP 342
EP 354
AR 03611981211037888
DI 10.1177/03611981211037888
EA AUG 2021
PG 13
WC Engineering, Civil; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA YJ5ND
UT WOS:000691630900001
OA Bronze
DA 2025-04-22
ER

PT J
AU Du, YN
   Wang, QX
   Song, Y
   Xin, YJ
AF Du, Yanan
   Wang, Qingxi
   Song, Yan
   Xin, Yueji
TI How cross-regional collaborative innovation networks affect regional
   economic resilience: Evidence from 283 cities in China
SO TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE
LA English
DT Article
DE Cross-regional collaborative innovation; networks; Regional economic
   resilience; Driving innovation; Binary margins in the technology field
ID KNOWLEDGE; GROWTH; CRISIS
AB This paper investigates the impact of China's cross-regional collaborative innovation networks on economic resilience in different periods after a shock. We find that the deeper a city's participation in a cross-regional collaborative innovation network is, the more beneficial it is to the economy's ability to resist risk and facilitate recovery. This finding has passed a series of robustness tests. During the shock-resistant period, the enhanced network status of core cities, urban agglomeration cities, and cities with higher initial economic levels positively affects economic resilience. The centrality of cities in cross-regional collaborative innovation networks formed by capital-intensive, technology-intensive industries and services significantly enhances economic resilience. During the recovery-adjustment period, the elevated status of core cities, urban agglomeration cities, nonurban agglomeration cities, and cities with higher initial economic levels similarly enhances economic resilience. Regional centrality in collaborative innovation networks formed by labour-intensive, capital-intensive, and technology-intensive industries, as well as services, improves economic resilience. Additionally, the elevated status of the network enhances economic resilience to risk by driving innovation quantity and intensive margin in the technological field, and improves economic resilience to adjustment by driving innovation quantity, innovation quality, margins of intensification and expansion in the technology field.
C1 [Du, Yanan] Yancheng Teachers Univ, Business Sch, Yancheng 224007, Peoples R China.
   [Du, Yanan; Wang, Qingxi; Xin, Yueji] Zhejiang Univ Technol, Sch Econ, Hangzhou 310023, Peoples R China.
   [Song, Yan] Univ North Carolina, Dept City & Reg Planning, Chapel Hill, NC USA.
   [Wang, Qingxi; Xin, Yueji] Zhejiang Univ Technol, Inst Ind Syst Modernizat, Hangzhou 310023, Peoples R China.
C3 Yancheng Teachers University; Zhejiang University of Technology;
   University of North Carolina; University of North Carolina Chapel Hill;
   Zhejiang University of Technology
RP Wang, QX (corresponding author), Zhejiang Univ Technol, Sch Econ, Hangzhou 310023, Peoples R China.
EM wqx1976@zjut.edu.cn
FU National Natural Science Founda-tion of China [42101159]; National
   Social Science Fund of China [23BJL022]; China Scholarship Council
   [202308330491]
FX This research was funded by the National Natural Science Founda-tion of
   China (Grant No. 42101159) , the National Social Science Fund of China
   (Grant No. 23BJL022) and the China Scholarship Council (No.
   202308330491) .
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NR 67
TC 0
Z9 0
U1 29
U2 29
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 JUN
PY 2025
VL 215
AR 124057
DI 10.1016/j.techfore.2025.124057
EA MAR 2025
PG 13
WC Business; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Public Administration
GA Z9F2T
UT WOS:001441871300001
DA 2025-04-22
ER

PT J
AU Jun, HJ
   Conroy, MM
AF Jun, Hee-Jung
   Conroy, Maria Manta
TI Linking resilience and sustainability in Ohio township planning
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article
DE resilience; comprehensive planning; township; sustainable development;
   sustainability
ID URBAN; OPPORTUNITIES; INDICATORS; CHALLENGES; CAPACITY; PLANS
AB This study connects resilience and sustainability through comprehensive planning. We argue that communities with a comprehensive plan which promotes sustainable development exhibit resilience. We analyze 46 township plans in Central Ohio, in the Midwestern Region of the United States, to examine plan sustainability. The findings show that the township plans do not provide balanced support of sustainability principles and so are not adequately prepared to withstand and adapt to exogenous shocks.
C1 [Jun, Hee-Jung] Univ West Georgia, Dept Polit Sci & Planning, Carrollton, GA 30118 USA.
   [Conroy, Maria Manta] Ohio State Univ, Dept City & Reg Planning, Columbus, OH 43210 USA.
C3 University System of Georgia; University of West Georgia; University
   System of Ohio; Ohio State University
RP Jun, HJ (corresponding author), Univ West Georgia, Dept Polit Sci & Planning, 1601 Maple St, Carrollton, GA 30118 USA.
EM hjun@westga.edu
RI Jun, Hee-Jung/AAI-6964-2020; Conroy, Maria/AAS-4830-2021; Jun,
   Hee-Jung/K-6551-2015
OI Conroy, Maria/0000-0002-9470-1929; Jun, Hee-Jung/0000-0002-2588-053X
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NR 43
TC 23
Z9 27
U1 3
U2 35
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 JUN 3
PY 2014
VL 57
IS 6
BP 904
EP 919
DI 10.1080/09640568.2013.775061
PG 16
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA AF7PF
UT WOS:000334906300006
DA 2025-04-22
ER

PT J
AU Yang, XH
   Xiahou, XE
   Li, K
   Li, QM
AF Yang, Xiaohua
   Xiahou, Xiaer
   Li, Kang
   Li, Qiming
TI Assessing Construction Safety Performance in Urban Underground Space
   Development Projects from a Resilience Enhancement Perspective
SO BUILDINGS
LA English
DT Article
DE infrastructure resilience; system engineering; construction safety;
   Bayesian network; underground space development
ID BAYESIAN NETWORK; SYSTEM; FRAMEWORK
AB Urban underground space construction frequently encounters issues of inadequate prevention and ineffective resistance to various disturbances, resulting in safety accidents that are difficult to recover from. Resilience pertains to a system's capacity to absorb, resist, recover, and adapt when faced with disruptions. Enhancing the construction safety resilience of underground spaces can effectively tackle the issue of frequent accidents and the challenge of pre-controlling risks at construction sites. Utilizing systems engineering theory, this paper investigates the factors that affect the construction safety resilience of underground spaces and establishes a general framework for evaluating the safety performance of the construction process. Utilizing a large-scale underground construction project as a case study, the Bayesian network inference technique is applied to ascertain the project's safety resilience value. Through reverse reasoning, the method identifies the most likely sequence of causes leading to construction safety incidents, and subsequently, the resilience assessment framework's efficacy is tested. The research findings suggest that the core of construction safety management is the prevention of unsafe human behaviors and that the key to enhancing resilience lies in the optimization of response capabilities. The proposed "PFR-EFR-LFR" whole-process resilience analysis method can be applied to safety assessments for various types of underground space construction projects.
C1 [Yang, Xiaohua; Xiahou, Xiaer; Li, Kang; Li, Qiming] Southeast Univ, Sch Civil Engn, Dept Construct Management & Real Estate, Nanjing 211189, Peoples R China.
   [Yang, Xiaohua; Li, Kang] China Railway Construct Investment Grp Corp Ltd, Beijing 100855, Peoples R China.
C3 Southeast University - China
RP Li, QM (corresponding author), Southeast Univ, Sch Civil Engn, Dept Construct Management & Real Estate, Nanjing 211189, Peoples R China.
EM 230229323@seu.edu.cn; xhcmre@seu.edu.cn; 230198507@seu.edu.cn;
   101001839@seu.edu.cn
RI Skibniewski, Miroslaw/P-5310-2018
FU National Natural Science Foundation of China; Fundamental Research Funds
   for the Central Universities [2242023R40040];  [72101054];  [52378492]
FX This research was funded by [National Natural Science Foundation of
   China] grant numbers [72101054; 52378492] and [Fundamental Research
   Funds for the Central Universities] grant number [2242023R40040].
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NR 55
TC 0
Z9 0
U1 4
U2 4
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD MAR
PY 2025
VL 15
IS 5
AR 726
DI 10.3390/buildings15050726
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA 0AL7Q
UT WOS:001442717900001
OA gold
DA 2025-04-22
ER

PT J
AU Lv, H
   Wu, Q
   Ren, HB
   Li, QF
   Zhou, WS
AF Lv, Hang
   Wu, Qiong
   Ren, Hongbo
   Li, Qifen
   Zhou, Weisheng
TI Collaborative strategy towards a resilient urban energy system: Evidence
   from a tripartite evolutionary game model
SO ENERGY
LA English
DT Article
DE Evolutionary game; Resilience; Grid; Virtual power plant operator; User
AB Extreme natural disasters are occurring with increasing frequency worldwide, posing unprecedented challenges to urban energy systems. In this study, an evolutionary game approach is employed to examine the interactive behavior among the grid, virtual power plant operators, and users, focusing on enhancing the resilience of urban energy systems. The impact of long-term power system development on the simulation outcomes has been examined. Key parameters in the game model are determined through numerical simulation. The evolutionary stabilization strategies of individual actors and the system have been analyzed holistically. According to the simulation results, as the benefit per unit of load restoration increases from 40 to 1000, all three parties increasingly prioritize resilience in their decision-making processes. Notably, when the benefit per unit of load restoration is 40, grid firms tend to disregard resilience. To enhance power system resilience, especially in the context of a high percentage of renewable energy generation, the utility grid should prioritize managing the integration of renewable energy into the grid. Moreover, there is a growing public interest in participating in dynamic demand response programs for incentives. In addition, within certain parameters, the objective of increasing renewable energy consumption may conflict with the aim of improving power system resilience. Virtual power plant operators are unlikely to introduce new renewable energy projects if the return is below 0.0325 Yuan/kWh. This study may offer strategic recommendations for enhancing long-term power system resilience, providing valuable insights for practical and realistic planning.
C1 [Lv, Hang; Wu, Qiong; Ren, Hongbo; Li, Qifen] Shanghai Univ Elect Power, Coll Energy & Mech Engn, Shanghai 200090, Peoples R China.
   [Wu, Qiong; Li, Qifen] Shanghai Noncarbon Energy Convers & Utilizat Inst, Shanghai 200240, Peoples R China.
   [Zhou, Weisheng] Ritsumeikan Univ, Coll Policy Sci, Kyoto 6038577, Japan.
C3 Shanghai University of Electric Power; Ritsumeikan University
RP Wu, Q; Ren, HB (corresponding author), Shanghai Univ Elect Power, Coll Energy & Mech Engn, Shanghai 200090, Peoples R China.
EM wuqiongrff@shiep.edu.cn; tjrhb@shiep.edu.cn
RI Lv, Hang/MTB-3848-2025
FU National Natural Science Foundation of China [71804106, U2066214];
   Shanghai Rising-Star Program [22QA1403900]; Non-carbon energy
   conver-sion and utilization institute under the Shanghai Class IV Peak
   Disci-plinary Development Program
FX The research work was supported by the National Natural Science
   Foundation of China (No.71804106, No.U2066214), Shanghai Rising-Star
   Program (No. 22QA1403900) and the Non-carbon energy conver- sion and
   utilization institute under the Shanghai Class IV Peak Disciplinary
   Development Program.
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NR 30
TC 1
Z9 1
U1 19
U2 19
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 DEC 30
PY 2024
VL 313
AR 133818
DI 10.1016/j.energy.2024.133818
EA NOV 2024
PG 13
WC Thermodynamics; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Thermodynamics; Energy & Fuels
GA M6L9I
UT WOS:001358641400001
DA 2025-04-22
ER

PT J
AU Rathi, A
AF Rathi, Ankita
TI Is Agrarian Resilience limited to Agriculture? Investigating the "farm"
   and "non-farm" processes of Agriculture Resilience in the rural
SO JOURNAL OF RURAL STUDIES
LA English
DT Article
DE Agrarian resilience; Rural; Urban; Non-farm; Capital; Labour
ID FAMILY FARMS; CLIMATE-CHANGE; PERSISTENCE; SYSTEMS; CHINA
AB With 76% of the total main workforce in agriculture and more than 50% small and medium landowning households, the village provides an important case study for understanding agrarian resilience. The conceptualisation of resilience has been majorly confined to a system or a territorial boundary. Agrarian resilience too is commonly assumed to be driven by forces within the agriculture and the rural. i.e. land ownership remains constant, the labour of the peasantry is spatially limited to agriculture, the capital is generated within agriculture and the networks and skills of the peasantry is also confined to agriculture. This has underscored the role of factors and processes working outside the agriculture in conceptualising agrarian resilience. While the primacy of the agrarian processes cannot be denied, there are often processes working outside an agrarian system that can also enable resilience. i.e. the rural workforce can diversify its labour outside agriculture in the urban non-farm sector, capital can also be generated from sources outside the agriculture. In this context, using the case study of a village dominated by small and medium landowning households in the Patiala district of Punjab in India, the paper shows that resilience is driven by processes both within and outside agriculture.
C1 [Rathi, Ankita] Natl Inst Adv Studies, Bengaluru 560012, Karnataka, India.
   [Rathi, Ankita] Manipal Acad Higher Educ, Manipal 576104, Karnataka, India.
C3 Manipal Academy of Higher Education (MAHE)
RP Rathi, A (corresponding author), Natl Inst Adv Studies, Bengaluru 560012, Karnataka, India.; Rathi, A (corresponding author), Manipal Acad Higher Educ, Manipal 576104, Karnataka, India.
EM ankita.rathi1988@gmail.com
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NR 74
TC 25
Z9 29
U1 5
U2 54
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 JUL
PY 2022
VL 93
BP 155
EP 164
DI 10.1016/j.jrurstud.2019.12.015
EA JUN 2022
PG 10
WC Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Geography; Public Administration
GA 2D7SC
UT WOS:000811740800005
DA 2025-04-22
ER

PT J
AU Cai, QN
   Fang, DL
   Chen, B
AF Cai, Qingnan
   Fang, Delin
   Chen, Bin
TI Ecological network analysis for urban physical-virtual water cycle: A
   case study of Beijing
SO ECOLOGICAL MODELLING
LA English
DT Article
DE Information-based ENA; Network structure analysis; Water management;
   Beijing water system; Resilience
ID NEUSE RIVER ESTUARY; 7-COMPARTMENT MODEL; DISTRIBUTED CONTROL; ENVIRON
   NETWORKS; NITROGEN FLOW; METABOLISM; RESILIENCE; PERSPECTIVE;
   ECOSYSTEMS; EFFICIENCY
AB Growing water demands have increasingly challenged the urban water cycle resilience. In contrast to conventional evaluations, which concentrate primarily on the physical water cycle, this study presents a methodological framework considering both physical and virtual components and chooses Beijing as a case study. We constructed an urban physical-virtual water cycle (PVWC) network model to investigate water cycle resilience through structural and functional analysis based on ecological network analysis (ENA). The PVWC model covers multiple water suppliers (surface water, groundwater, transferred water, and reclaimed water), multiple water users (production water use, domestic water use, and ecological water use), water leakage, and wastewater treatment, as well as physical links and virtual flows driven by trade among these nodes. This study analyzed the system's robustness and the contributions of individual components to overall resilience from structural dimension, as well as revealed dominant sectors and interrelationships between components that sustain the system's resilience from functional dimension. The case study of Beijing in 2017 demonstrates that its network is moderately robust and synergistic. The external water transfer subsystem mainly has more remarkable mutualistic pair-wise relationships with secondary industry, tertiary industry, and household consumption. Moreover, water distribution subsystem is the dominant controller of PVWC, while the through flows of water leakage and wastewater treatment rely on the operation of whole system. The ecological environment, which has strong connections with reclaimed water and ecological water flows, played an important role in the entire system promoting more mutualistic relationships. We found that increasing the proportions of transferred water and reclaimed water supply and promoting mutualistic interactions between water users are critical to improving urban water cycle resilience.
C1 [Cai, Qingnan; Fang, Delin] Beijing Normal Univ, State Key Lab Earth Surface Proc & Resource Ecol, Beijing 100875, Peoples R China.
   [Cai, Qingnan; Fang, Delin] Beijing Normal Univ, Fac Geog Sci, Beijing 100875, Peoples R China.
   [Chen, Bin] Beijing Normal Univ, Sch Environm, Beijing 100875, Peoples R China.
C3 Beijing Normal University; Beijing Normal University; Beijing Normal
   University
RP Fang, DL (corresponding author), Beijing Normal Univ, State Key Lab Earth Surface Proc & Resource Ecol, Beijing 100875, Peoples R China.; Fang, DL (corresponding author), Beijing Normal Univ, Fac Geog Sci, Beijing 100875, Peoples R China.
EM fangd@bnu.edu.cn
RI Fang, Delin/D-7617-2015
OI Fang, Delin/0000-0003-0238-328X
FU National Natural Science Foundation of China [72174029, 72091511];
   Fundamental Research Funds for the Central Universities
FX This work was supported by the National Natural Science Foundation of
   China (No. 72174029, 72091511) , and the Fundamental Research Funds for
   the Central Universities.
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NR 77
TC 0
Z9 0
U1 23
U2 23
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0304-3800
EI 1872-7026
J9 ECOL MODEL
JI Ecol. Model.
PD FEB
PY 2025
VL 501
AR 110972
DI 10.1016/j.ecolmodel.2024.110972
EA DEC 2024
PG 12
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA Q6I2O
UT WOS:001385684500001
DA 2025-04-22
ER

PT J
AU Gotham, KF
   Campanella, R
AF Gotham, Kevin F.
   Campanella, Richard
TI Coupled Vulnerability and Resilience: the Dynamics of Cross-Scale
   Interactions in Post-Katrina New Orleans
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE disaster; Hurricane Katrina; New Orleans; resilience; trauma;
   vulnerability
ID SOCIAL-ECOLOGICAL SYSTEMS; COMMUNITY RESILIENCE; ADAPTIVE GOVERNANCE;
   MANAGEMENT; COMPLEXITY; RISK
AB We investigate the impact of trauma on cross-scale interactions in order to identify the major social-ecological factors affecting the pace and trajectory of post-Katrina rebuilding in New Orleans, Louisiana, USA. Disaster and traumatic events create and activate networks and linkages at different spatial and institutional levels to provide information and resources related to post-trauma recovery and rebuilding. The extension, intensification, and acceleration of cross-scale linkages and interactions in response to trauma alter organizational couplings, which then contribute to the vulnerability and resilience of social-ecological systems. Rather than viewing urban ecosystems as either resilient or vulnerable, we conceptualize them as embodying both resilient and vulnerable components. This integrated approach directs analytical attention to the impact of socio-legal regulations, government policies, and institutional actions on resilience and vulnerability, which are also systemic properties of urban ecosystems.
C1 [Gotham, Kevin F.; Campanella, Richard] Tulane Univ, New Orleans, LA 70118 USA.
C3 Tulane University
RP Gotham, KF (corresponding author), Tulane Univ, New Orleans, LA 70118 USA.
RI Gotham, Kevin/X-8783-2019
OI Campanella, Richard/0000-0001-6034-6159
FU National Science Foundation (NSF)
FX Support for this research came from the National Science Foundation
   (NSF).
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NR 73
TC 58
Z9 71
U1 4
U2 86
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 2011
VL 16
IS 3
AR 12
DI 10.5751/ES-04292-160312
PG 20
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 832VM
UT WOS:000295837100025
OA gold, Green Submitted, Green Published
DA 2025-04-22
ER

PT J
AU Díaz-López, C
   Pérez-Rendon, CA
   Serrano-Jiménez, A
   Barrios-Padura, A
AF Diaz-Lopez, Carmen
   Perez-Rendon, Cristina Alba
   Serrano-Jimenez, Antonio
   Barrios-Padura, Angela
TI Evaluating Resilience and Thermal Comfort in Mediterranean Dwellings: A
   Level(s) Framework Approach
SO APPLIED SCIENCES-BASEL
LA English
DT Article
DE resilience; sustainability; housing; rehabilitation; thermal comfort;
   level(s)
AB The construction sector plays a pivotal role in urban development, providing a critical opportunity to foster a cultural shift towards the regeneration of housing stock. This shift focuses on sustainable and resilient urban interventions to extend the lifespan of buildings, starting from the design phase. In this context, the European Union's Level(s) framework, which establishes sustainability indicators, is particularly relevant to this research, as it promotes circular economy principles and building resilience. The framework provides a comprehensive set of indicators that guide resilient housing rehabilitation methodologies. Indicator 2.3 supports the design and renovation of obsolete housing, emphasizing the maximization of resilience against climatic, functional, and socio-economic impacts. Meanwhile, Indicator 4.2 evaluates the thermal comfort of building occupants concerning indoor conditions throughout the year. The primary aim of this study is to develop a resilient housing rehabilitation methodology based on Level(s), which includes (i) assessing the current resilience of a pilot case, (ii) designing new resilient housing configurations, (iii) evaluating thermal comfort duration for older adults, and (iv) analyzing cost amortization. The research findings indicate that the proposed rehabilitation approach significantly improves occupants' resilience to climate-related stressors and thermal comfort, particularly vulnerable populations such as older adults. Additionally, the study highlights the importance of adapting thermal comfort standards for these populations and demonstrates the cost-effectiveness of resilience strategies. The outcomes contribute to a flexible and accessible refurbishment model that meets diverse tenant needs, offering a scalable solution for sustainable urban interventions.
C1 [Diaz-Lopez, Carmen; Perez-Rendon, Cristina Alba; Barrios-Padura, Angela] Univ Seville, Dept Bldg Construct 1, Seville 41004, Spain.
   [Serrano-Jimenez, Antonio] Univ Granada, Dept Bldg Construct, Granada 18012, Spain.
C3 University of Sevilla; University of Granada
RP Díaz-López, C (corresponding author), Univ Seville, Dept Bldg Construct 1, Seville 41004, Spain.
EM cdiazl@us.es; calba@us.es; serranojimenez@ugr.es; abarrios@us.es
RI Barrios Padura, Angela/M-2763-2014; Serrano-Jimenez,
   Antonio/F-6130-2019; Diaz-Lopez, Carmen/AAF-8921-2019
OI Serrano-Jimenez, Antonio/0000-0002-8585-857X; Diaz-Lopez,
   Carmen/0000-0002-6378-6624
FU MCIN/AEI; ERDF A way of making Europe; European Union
   NextGenerationEU/PRTR; Juan de la Cierva postdoctoral contract
   [US-23442-M]; Consejeria de Transformacion Economica, Industria,
   Conocimiento y Universidades of the Junta de Andalucia [PY20_00411]; 
   [FJC2921-014411-I,];  [PID2021-124539OB-I00];  [TED2021-129347B-C21]
FX This research was supported by Grant FJC2921-014411-I, supported by the
   project PID2021-124539OB-I00 funded by MCIN/AEI/10.13039/501100011033
   and by "ERDF A way of making Europe", project TED2021-129347B-C21 funded
   by MCIN/AEI/10.13039/501100011033 and by the "European Union
   NextGenerationEU/PRTR". It was conducted under the Juan de la Cierva
   postdoctoral contract awarded to Carmen Diaz-Lopez at the University of
   Seville (contract reference US-23442-M). Additionally, this study is
   part of the I + D+I Project (PAIDI 2020) titled "Neighbourhood
   Cooperatives of Older People for Active Ageing in Place: Implications
   for Reducing Loneliness in Large Cities" (PY20_00411), funded by the
   Consejeria de Transformacion Economica, Industria, Conocimiento y
   Universidades of the Junta de Andalucia.
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   Zhu XY, 2025, BUILD ENVIRON, V268, DOI 10.1016/j.buildenv.2024.112350
NR 35
TC 0
Z9 0
U1 1
U2 1
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2076-3417
J9 APPL SCI-BASEL
JI Appl. Sci.-Basel
PD FEB
PY 2025
VL 15
IS 4
AR 2136
DI 10.3390/app15042136
PG 20
WC Chemistry, Multidisciplinary; Engineering, Multidisciplinary; Materials
   Science, Multidisciplinary; Physics, Applied
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Chemistry; Engineering; Materials Science; Physics
GA Y1J9L
UT WOS:001429787900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Grabowski, ZJ
   Matsler, AM
   Thiel, C
   McPhillips, L
   Hum, R
   Bradshaw, A
   Miller, T
   Redman, C
AF Grabowski, Z. J.
   Matsler, A. M.
   Thiel, C.
   McPhillips, L.
   Hum, R.
   Bradshaw, A.
   Miller, T.
   Redman, C.
TI Infrastructures as Socio-Eco-Technical Systems: Five Considerations for
   Interdisciplinary Dialogue
SO JOURNAL OF INFRASTRUCTURE SYSTEMS
LA English
DT Article
ID GREEN INFRASTRUCTURE; URBAN INFRASTRUCTURE; ECOSYSTEM; SUSTAINABILITY;
   RESILIENCE; TECHNOLOGY; METABOLISM; FUTURE; ENERGY; MAINTENANCE
C1 [Grabowski, Z. J.] Portland State Univ, Sch Environm, Dept Geog, 1825 SW Broadway, Portland, OR 97207 USA.
   [Grabowski, Z. J.] Portland State Univ, Sch Environm, Dept Environm Sci, 1825 SW Broadway, Portland, OR 97207 USA.
   [Matsler, A. M.] Portland State Univ, Coll Urban & Publ Affairs, Toulan Sch Urban Studies & Planning, 1825 SW Broadway, Portland, OR 97201 USA.
   [Thiel, C.] NYU, Dept Populat Hlth, Langone Med Ctr, Puck Build,295 Lafayette St, New York, NY 10012 USA.
   [Thiel, C.] NYU, Robert F Wagner Sch Publ Serv, Puck Build,295 Lafayette St, New York, NY 10012 USA.
   [McPhillips, L.] Arizona State Univ, Global Inst Sustainabil, Sch Sustainabil, Wrigley Hall, Tempe, AZ 85281 USA.
   [Hum, R.] Univ Alaska Fairbanks, Dept Commun, 505 S Chandalar Dr, Fairbanks, AK 99775 USA.
   [Bradshaw, A.] Columbia Univ, Dept Urban Planning, 116th St & Broadway, New York, NY 10027 USA.
   [Miller, T.] Arizona State Univ, Ira A Fulton Sch Engn, Sch Future Innovat Soc, POB 875603, Tempe, AZ 85287 USA.
   [Miller, T.] Arizona State Univ, Ira A Fulton Sch Engn, Polytech Sch, POB 875603, Tempe, AZ 85287 USA.
   [Redman, C.] Arizona State Univ, Sch Sustainabil, Global Inst Sustainabil, Wrigley Hall, Tempe, AZ 85281 USA.
   [Redman, C.] Arizona State Univ, Coll Liberal Arts & Sci, Nat Hist & Environm, Sch Human Evolut & Social Change, Wrigley Hall, Tempe, AZ 85281 USA.
C3 Portland State University; Portland State University; Portland State
   University; New York University; NYU Langone Medical Center; New York
   University; Arizona State University; Arizona State University-Tempe;
   University of Alaska System; University of Alaska Fairbanks; Columbia
   University; 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 Grabowski, ZJ (corresponding author), Portland State Univ, Sch Environm, Dept Geog, 1825 SW Broadway, Portland, OR 97207 USA.; Grabowski, ZJ (corresponding author), Portland State Univ, Sch Environm, Dept Environm Sci, 1825 SW Broadway, Portland, OR 97207 USA.
EM zbigniew.j.grabowski@gmail.com
RI McPhillips, Lauren/A-8605-2013; GRABOWSKI, ZBIGNIEW/AAH-4566-2020;
   Matsler, Marissa/AAU-9436-2020
OI Matsler, Marissa/0000-0003-3294-1991; McPhillips,
   Lauren/0000-0002-4990-7979; Thiel, Cassandra/0000-0002-1875-886X
FU National Science Foundation; Graduate Research Fellowship Program
   [DGE-1057604, 1069193]; NSF-IGERT Program under Portland State
   University's Sustaining Ecosystem Services to Support Rapidly Urbanizing
   Regions [0966376]; Cornell Cross-Scale Biogeochemistry and Climate IGERT
   [DGE-1069193]; University of Pittsburgh Sustainability Initiative in
   Engineering IGERT [DGE-050434]; Columbia University Solving Urbanization
   Challenges by Design IGERT [DGE-0903597]; University of Alaska,
   Fairbanks Global-Local Interactions: Resilience and Adaption of
   Social-Ecological Systems in a Rapidly Changing North [DGE-0654441];
   Portland State University's Institute for Sustainable Solutions; Miller
   Foundation Award; Division Of Behavioral and Cognitive Sci; Direct For
   Social, Behav & Economic Scie [1444755] Funding Source: National Science
   Foundation
FX The authors would like to thank the organizers of the Third National
   Conference for Sustainability IGERTs held in September 2013 at Portland
   State University which hosted the workshop that led to the creation of
   this paper. This work was supported by numerous grants from the National
   Science Foundation, including the Graduate Research Fellowship Program
   under Grant #DGE-1057604 and 1069193; the NSF-IGERT Program under
   Portland State University's Sustaining Ecosystem Services to Support
   Rapidly Urbanizing Regions, Grant #0966376; the Cornell Cross-Scale
   Biogeochemistry and Climate IGERT, Grant #DGE-1069193; the University of
   Pittsburgh Sustainability Initiative in Engineering IGERT, Grant
   #DGE-050434; the Columbia University Solving Urbanization Challenges by
   Design IGERT, Grant #DGE-0903597; and the University of Alaska,
   Fairbanks Global-Local Interactions: Resilience and Adaption of
   Social-Ecological Systems in a Rapidly Changing North, Grant
   #DGE-0654441. Z. Grabowski and A. M. Matsler would also like to
   acknowledge the support of Portland State University's Institute for
   Sustainable Solutions and the Miller Foundation Award. The authors also
   would like to acknowledge the editor and three anonymous reviewers for
   comments and stimulating critiques which greatly improving the clarity
   and quality of the manuscript.
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NR 108
TC 64
Z9 77
U1 3
U2 47
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 DEC
PY 2017
VL 23
IS 4
AR 02517002
DI 10.1061/(ASCE)IS.1943-555X.0000383
PG 9
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering
GA FQ5RN
UT WOS:000418418700025
DA 2025-04-22
ER

PT J
AU Malalgoda, C
   Amaratunga, D
   Haigh, R
AF Malalgoda, Chamindi
   Amaratunga, Dilanthi
   Haigh, Richard
TI Overcoming challenges faced by local governments in creating a resilient
   built environment in cities
SO DISASTER PREVENTION AND MANAGEMENT
LA English
DT Article
DE Cities; Disaster risk reduction; Built environment; Disasters; Tsunami;
   Local governments
AB Purpose - Although, a number of initiatives have been taken after the devastating Indian Ocean tsunami to institutionalise disaster risk reduction (DRR), gaps still exist in the Sri Lankan local government sector. Even after ten years, local governments are still struggling to overcome a number of challenges in relation to making resilience in the built environment. DRR has not yet been properly integrated into the local government system and, as a result, poses a significant challenge. Accordingly, the purpose of this paper is to discover the hindrances for local governments in creating disaster resilient built environment within cities and to propose ways of overcoming the identified limitations.
   Design/methodology/approach - In total, 15 semi-structured interviews were conducted among experts from Sri Lanka who are involved in disaster management, local governments and built environment fields of study. The interviews were conducted with the intention of gaining expert knowledge pertaining to this field of study. The interviews were mainly designed to capture the current practices for instigating DRR initiatives within Sri Lanka, the role of local governments in creating a disaster resilient built environment and the associated challenges, and ways of overcoming such challenges to ensure an effective contribution to city resilience.
   Findings - Primary data discovered 36 challenges along with some associated sub-challenges. The challenges were categorised under eight main themes: legal framework; lack of adequate tools, techniques and guidelines; human resource constraints; funding constraints; weaknesses in the internal systems and processes; weaknesses in the external systems; community engagement; and other challenges. The paper analyses these challenges in detail and proposes a set of recommendations to overcome the challenges in order to create disaster resilient built environments within cities.
   Research limitations/implications - The paper provides a descriptive analysis of how the Sri Lankan local government sector could overcome the underpinning challenges of contributing to disaster resilience in the built environment and no comparative studies were conducted with in other tsunami affected regions. Furthermore, the paper analyses partial findings of a broader research, which was aimed at developing a framework to empower local governments in creating a disaster resilient built environment.
   Originality/value - The paper provides an extensive analysis of the challenges faced by local governments in contributing to the resilience of their built environment and proposes how these challenges could be overcome while making a worthwhile contribution to both theory and practice. Accordingly, the paper recommends major changes in policy and practice with respect to bringing local governments into DRR.
C1 [Malalgoda, Chamindi; Amaratunga, Dilanthi; Haigh, Richard] Univ Huddersfield, Global Disaster Resilience Ctr, Huddersfield HD1 3DH, W Yorkshire, England.
C3 University of Huddersfield
RP Malalgoda, C (corresponding author), Univ Huddersfield, Global Disaster Resilience Ctr, Huddersfield HD1 3DH, W Yorkshire, England.
EM c.malalgoda@hud.ac.uk
RI Malalgoda, Chamindi/IQU-1640-2023; Haigh, Richard/H-7455-2016
OI Pouri, Rahim/0000-0002-4016-6828; Haigh, Richard/0000-0001-7347-7043;
   Malalgoda, Chamindi/0000-0002-0356-7585; Amaratunga,
   Dilanthi/0000-0002-1682-5301
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NR 35
TC 18
Z9 20
U1 1
U2 22
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 2016
VL 25
IS 5
BP 628
EP 648
DI 10.1108/DPM-11-2015-0260
PG 21
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 EA7EK
UT WOS:000386792000005
OA Green Accepted, Green Submitted, hybrid
DA 2025-04-22
ER

PT J
AU Grimmond, S
   Bouchet, V
   Molina, LT
   Baklanov, A
   Tan, JG
   Schlünzen, KH
   Mills, G
   Golding, B
   Masson, V
   Ren, C
   Voogt, J
   Miao, SG
   Lean, H
   Heusinkveld, B
   Hovespyan, A
   Teruggi, G
   Parrish, P
   Joe, P
AF Grimmond, Sue
   Bouchet, Veronique
   Molina, Luisa T.
   Baklanov, Alexander
   Tan, Jianguo
   Schluenzen, K. Heinke
   Mills, Gerald
   Golding, Brian
   Masson, Valery
   Ren, Chao
   Voogt, James
   Miao, Shiguang
   Lean, Humphrey
   Heusinkveld, Bert
   Hovespyan, Anahit
   Teruggi, Giacomo
   Parrish, Patrick
   Joe, Paul
TI Integrated urban hydrometeorological, climate and environmental
   services: Concept, methodology and key messages
SO URBAN CLIMATE
LA English
DT Article
ID VENTILATION ASSESSMENT; AIR-QUALITY; HONG-KONG; CITIES; INFORMATION;
   BEHAVIOR
AB Integrated Urban hydrometeorological, climate and environmental Services (IUS) is a World Meteorological Organization (WMO) initiative to aid development of science-based services to support safe, healthy, resilient and climate friendly cities. Guidance for Integrated Urban Hydrometeorological, Climate and Environmental Services (Volume I) has been developed with the intent to provide an overview of the concept, methods and good practices for producing and providing these services to respond to urban hazards across a range of time scales (weather to climate). This involves combining (dense) heterogeneous observation networks, high-resolution forecasts, multi-hazard early warning systems and climate services to assist cities in setting and implementing mitigation and adaptation strategies for the management and building of resilient and sustainable cities. IUS includes research, evaluation and delivery with a wide participation from city governments, national hydrometeorological services, international organizations, universities, research institutions and private sector stakeholders. An overview of the IUS concept with key messages, examples of good practice and recommendations are provided. The research community will play an important role to: identify critical research challenges; develop impact forecasts and warnings; promote and deliver IUS internationally, and; support national and local communities in the implementation of IUS thereby contributing to the United Nations' Sustainable Development Goals at all scales.
C1 [Grimmond, Sue] Univ Reading, Reading, Berks, England.
   [Bouchet, Veronique] Environm & Climate Change Canada, Montreal, PQ, Canada.
   [Molina, Luisa T.] Molina Ctr Energy & Environm, La Jolla, CA USA.
   [Baklanov, Alexander; Hovespyan, Anahit; Teruggi, Giacomo; Parrish, Patrick] World Meteorol Org, Geneva, Switzerland.
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   [Schluenzen, K. Heinke] Univ Hamburg, Hamburg, Germany.
   [Mills, Gerald] Univ Coll Dublin, Belfield, Ireland.
   [Golding, Brian] Met Off, Exeter, Devon, England.
   [Masson, Valery] Univ Toulouse, CNRS, Meteo France, CNRM, Toulouse, France.
   [Ren, Chao] Univ Hong Kong, Hong Kong, Peoples R China.
   [Voogt, James] Western Univ, London, ON, Canada.
   [Miao, Shiguang] China Meteorol Adm, Inst Urban Meteorol, Beijing, Peoples R China.
   [Heusinkveld, Bert] Wageningen Univ, Wageningen, Netherlands.
   [Lean, Humphrey] Met Off Reading, Reading, Berks, England.
C3 University of Reading; Environment & Climate Change Canada; China
   Meteorological Administration; Shanghai Meteorological Service, China
   Meteorological Administration; University of Hamburg; University College
   Dublin; Met Office - UK; Meteo France; Centre National de la Recherche
   Scientifique (CNRS); Universite de Toulouse; University of Hong Kong;
   Western University (University of Western Ontario); China Meteorological
   Administration; Institute of Urban Meteorology, China Meteorological
   Administration; Wageningen University & Research; Met Office - UK
EM paul.joe@hotmail.ca
RI Grimmond, Sue/A-2179-2009; tan, jianguo/I-2092-2016; Miao,
   Shiguang/E-7321-2010; REN, Chao/L-8938-2019; Baklanov,
   Alexander/AAB-7460-2022; mills, gerald/N-4244-2017
OI Ren, Chao/0000-0002-8494-2585; Grimmond, Sue/0000-0002-3166-9415; mills,
   gerald/0000-0003-2186-8936; Baklanov, Alexander/0000-0002-5396-8440
CR Amorim J.H., 2018, WMO B, V67, P33
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NR 43
TC 42
Z9 42
U1 4
U2 24
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD SEP
PY 2020
VL 33
AR 100623
DI 10.1016/j.uclim.2020.100623
PG 13
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA ND4TD
UT WOS:000561893700004
PM 32292692
OA Green Published, Green Accepted
DA 2025-04-22
ER

PT J
AU Liu, GM
   Cheng, R
   Liu, WX
   Shi, QX
   Wang, ZY
AF Liu, Gengming
   Cheng, Rui
   Liu, Wenxia
   Shi, Qingxin
   Wang, Zhaoyu
TI Enhancing Resilience of Urban Electric-Road-Metro Interdependent Network
   Considering Electric Bus Scheduling
SO IEEE TRANSACTIONS ON SUSTAINABLE ENERGY
LA English
DT Article
DE Resilience; Maintenance engineering; Schedules; Power system
   reliability; Couplings; Collaboration; Load modeling; Urban areas; State
   of charge; Resource management; Electric-traffic interdependent network;
   electric bus scheduling; load restoration; multi-layer interdependent
   network; resilience
ID DISTRIBUTION-SYSTEMS; POWER; RESTORATION
AB With the increasing electrification of urban transportation, urban power and traffic systems are highly coupled and influence each other, leading to a challenge for the post-event resilience enhancement of urban electric-traffic interdependent network (ETIN). In this context, we propose a multi-layer electric-metro-road interdependent network where the metro network (MN) depends on the distribution power network (DPN) and interacts with the road traffic network (RTN) synchronously. Electric buses (EBs), as one public dispatchable resource, are considered and explored to provide bridging routes for disabled MNs and supply power for failed DPNs, with consideration of three different service trips, i.e., the original trip, bridging trip, and charge-discharge trip. On this basis, a spatio-temporal network-based EB route schedule model is constructed. To consider the evacuation demand of affected MN routes, a fast DPN restoration strategy is proposed to minimize the time cost of lost load by integrating the network reconfiguration with the collaborative allocation of repair crews (RCs) and EBs. Finally, a distributed method is further devised for the coordination among different stakeholders. The proposed method is verified on two electric-traffic systems to show that the collaborative scheduling of RCs and EBs can effectively enhance the resilience of ETIN under metro service disruptions.
C1 [Liu, Gengming; Cheng, Rui; Liu, Wenxia; Shi, Qingxin] North China Elect Power Univ, Dept Elect & Elect Engn, Beijing 102206, Peoples R China.
   [Wang, Zhaoyu] Iowa State Univ, Dept Elect & Comp Engn, Ames, IA 50011 USA.
C3 North China Electric Power University; Iowa State University
RP Cheng, R (corresponding author), North China Elect Power Univ, Dept Elect & Elect Engn, Beijing 102206, Peoples R China.
EM ruicheng@ncepu.edu.cn
RI Shi, Qingxin/JVY-8620-2024; wang, zhaoyu/IQT-3451-2023
OI Shi, Qingxin/0000-0002-0178-3903; wenxia, liu/0000-0001-5993-1000; Wang,
   Zhaoyu/0000-0003-0656-0562
FU National Natural Science Foundation of China [52307094]; Fundamental
   Research Funds for the Central Universities [2023JC008]
FX This work was supported in part by the National Natural Science
   Foundation of China under Grant 52307094 and in part by the Fundamental
   Research Funds for the Central Universities under Grant 2023JC008.
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NR 40
TC 0
Z9 0
U1 21
U2 21
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 1949-3029
EI 1949-3037
J9 IEEE T SUSTAIN ENERG
JI IEEE Trans. Sustain. Energy
PD JAN
PY 2025
VL 16
IS 1
BP 654
EP 672
DI 10.1109/TSTE.2024.3476688
PG 19
WC Green & Sustainable Science & Technology; Energy & Fuels; Engineering,
   Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Energy & Fuels; Engineering
GA P8Z0E
UT WOS:001380707400002
DA 2025-04-22
ER

PT J
AU Ajibade, I
AF Ajibade, Idowu
TI Can a future city enhance urban resilience and sustainability? A
   political ecology analysis of Eko Atlantic city, Nigeria
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Adaptation; Coastal risks; Economic growth; Eko Atlantic; Future city;
   Maladaptation; Resilience planning; Sustainability; Transformation;
   Urban political ecology
ID ADAPTATION; IMPACTS
AB There is a consensus on the detrimental impacts of erosion and storm surges on the coast of Lagos, Nigeria but no agreement on whether the proposed Eko Atlantic City (EAC) adaptation project would lead to urban resilience and sustainability. This on-going modern city construction on the Atlantic Ocean is presented by its planners as a permanent solution to ocean intrusion and a model of adaptation, urban development, and economic growth, suggesting 'all good things go together' even in a changing climate. In this study, I explore the costs and risks of this future city to Greater Lagos in the broader context of resilience planning, capitalist urbanisation, disaster risk, and climate change. I draw on newspaper articles, in-depth interviews, and focus group discussions to unravel the relations of power, politics, and discourses that have served to legitimize and re-position the project as a positive-sum adaptation despite public concerns over maladaptation. Informed by urban political ecology, this paper reveals that while the EAC might hold promises of short-term storm mitigation on Victoria Island, in the long run it will re-shape the physical, economic, political, and socio-cultural 'riskscape' of Lagos with particular implications for marginalized communities and future generations. This developing country case study presents an opportunity for further discussion on adaptation planning, disaster risk reduction, and city transformation.
C1 [Ajibade, Idowu] Balsillie Sch Int Affairs, 67 Erb St West, Waterloo, ON N2L 6C2, Canada.
C3 University of Waterloo
RP Ajibade, I (corresponding author), Balsillie Sch Int Affairs, 67 Erb St West, Waterloo, ON N2L 6C2, Canada.
EM jajibade@balsillieschool.ca
FU Social Science and Humanities Research Council (SSHRC) [756-2014-0294];
   IDRC Canada [106372-010,011]
FX The author appreciates Arabella Fraser and the three anonymous reviewers
   who commented on earlier drafts and provided suggestions for
   improvements. This study was supported by Social Science and Humanities
   Research Council (SSHRC) (756-2014-0294) and IDRC Canada
   (106372-010,011).
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NR 47
TC 87
Z9 100
U1 3
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 DEC
PY 2017
VL 26
BP 85
EP 92
DI 10.1016/j.ijdrr.2017.09.029
PG 8
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 FP8UL
UT WOS:000417921500011
DA 2025-04-22
ER

PT J
AU Leone, F
   Hasan, A
   Reda, F
   Rehman, HU
   Nigrelli, FC
   Nocera, F
   Costanzo, V
AF Leone, Federica
   Hasan, Ala
   Reda, Francesco
   Rehman, Hassam ur
   Nigrelli, Fausto Carmelo
   Nocera, Francesco
   Costanzo, Vincenzo
TI Supporting Cities towards Carbon Neutral Transition through Territorial
   Acupuncture
SO SUSTAINABILITY
LA English
DT Article
DE territorial acupuncture; energy community; positive energy district;
   biourbanism; territorial resilience; urban resilience; towards carbon
   neutrality; micro-invasive spatial planning; micro-invasive urban
   planning; resilience
ID SOCIAL-CLASS DISPARITIES; RENEWABLE ENERGY-SOURCES; ENVIRONMENTAL
   JUSTICE; CHRONIC POVERTY; KYOTO PROTOCOL; CLIMATE-CHANGE; HEALTH-CARE;
   URBAN; EUROPE; ELECTRICITY
AB Since a solution towards carbon neutrality in already highly populated territories that does not profoundly alter the territories has not yet been found, territorial acupuncture, a new methodology presented in this paper, proposes a solution to this challenge and simultaneously helps to counter the dysfunctional dichotomy between large urban centres and small towns. The aim of this study is therefore to present this new concept and its operation. Hence, a phased study was carried out. Territorial acupuncture is the result of merging different theories and practices, such as Biourbanism, urban acupuncture, and energy community design. For Territorial Acupuncture, the territory is conceived as a single organism and, just like acupuncture in traditional Chinese medicine, punctual interventions (in this case, interconnected energy communities) would benefit the entire territory organism. To make the theory work properly, it will be necessary to carry out multi-scalar and multi-disciplinary analyses over the entire territory to identify the intervention points and then proceed to the design and interconnection of the individual district. Thus, Territorial Acupuncture provides a new approach to the resilience of densely populated territories, which, through punctual interventions on a district scale, benefits the entire territory by modifying energy, socio-economic, and environmental dynamics.
C1 [Leone, Federica; Nigrelli, Fausto Carmelo; Nocera, Francesco; Costanzo, Vincenzo] Univ Catania, Dept Civil Engn & Architecture, I-95100 Catania, Italy.
   [Hasan, Ala; Reda, Francesco; Rehman, Hassam ur] VTT Tech Res Ctr Finland Ltd, POB 1000, FI-02044 Espoo, Finland.
C3 University of Catania; VTT Technical Research Center Finland
RP Leone, F (corresponding author), Univ Catania, Dept Civil Engn & Architecture, I-95100 Catania, Italy.
EM federica.leone@phd.unict.it
RI ; Costanzo, Vincenzo/D-3873-2016; Nocera, Francesco/C-4712-2013
OI Hasan, Ala/0000-0003-1082-5615; Rehman, Hassam ur/0000-0002-3769-9295;
   Costanzo, Vincenzo/0000-0002-8426-1835; Nocera,
   Francesco/0000-0001-5673-5418
FU SPARCS [864242]; European Union's Horizon 2020 research and innovation
   programme
FX This research was funded by the SPARCS project (grant number 864242) and
   the University of Catania. The SPARCS project has received funding from
   the European Union's Horizon 2020 research and innovation programme
   under Grant Agreement No. 864242. The sole responsibility for the
   content of this publication lies with the authors. It does not
   necessarily reflect the opinion of the European Communities. The
   European Commission is not responsible for any use that may be made of
   the information contained therein. The funding bodies had no such
   involvement in preparing the manuscript, methods, results, etc., and
   this manuscript reflects only the authors' views and does not
   necessarily reflect their opinion. The financing bodies cannot be held
   responsible for any use that may be made of the information contained
   herein.
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NR 244
TC 2
Z9 2
U1 9
U2 39
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 5
AR 4046
DI 10.3390/su15054046
PG 31
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 9V1IO
UT WOS:000948154000001
OA gold
DA 2025-04-22
ER

PT J
AU Lekakis, N
   Liddle, J
AF Lekakis, Nikos
   Liddle, Joyce
TI City politics under austerity in Greece: Place-based leadership for a
   resilient Thessaloniki, 2011-2021
SO CITIES
LA English
DT Article
DE Resilience; Place -based leadership; City management; Transformation;
   Thessaloniki; Greece
ID GOVERNANCE
AB The 2008 global financial crisis intensified our focus on the role of local governments as strategic actors, within current cycles of economic, political and governance change. This paper highlights the significance of Greece's second-largest city, Thessaloniki, becoming a resilient local authority, with the capacity to respond to pertur-bations, and the ability to self-organise and learn. Existing models of resilience were insufficient for explaining how a strong mayor's team was able to turn around the fortunes of the city. The paper uses a synthetic theoretical model combining the templates 'behavioural resilience' and 'Place-based leadership'. The findings reveal that Thessaloniki's administration was able to respond to a unique set of problems, including the modernization of local services, balancing a problematic budget, opening the city to the world using some of its historic monu-ments and drafting an emergency plan for future shocks. The mayor's team was capable of galvanizing a network of key actors from the city's government, public, private and civic bodies to adapt and generate new ways of thinking and functioning in the context of change and uncertainty, so Thessaloniki appeared to offer a role model on how local government in Greece could develop strategies for overcoming austerity and stress.
C1 [Lekakis, Nikos] Univ Crete, Ctr Polit Anal & Documentat, Gallos Campus, Rethimnon 74100, Greece.
   [Liddle, Joyce] Northumbria Univ, Fac Business & Law, Newcastle Upon Tyne NE1 8ST, Tyne & Wear, England.
C3 University of Crete; Northumbria University
RP Lekakis, N (corresponding author), Univ Crete, Ctr Polit Anal & Documentat, Gallos Campus, Rethimnon 74100, Greece.
EM nilekakis@gmail.com; joyce.liddle@northumbria.ac.uk
RI Lekakis, Nikos/ABB-8798-2021
CR Adedy, 2014, LOC GOV FIN SIT DEL
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NR 46
TC 2
Z9 2
U1 0
U2 81
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2022
VL 131
AR 103984
DI 10.1016/j.cities.2022.103984
EA SEP 2022
PG 9
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 6I2FH
UT WOS:000885944200009
DA 2025-04-22
ER

PT J
AU El-Maissi, AM
   Argyroudis, SA
   Kassem, MM
   Leong, LV
   Nazri, FM
AF El-Maissi, Ahmad Mohamad
   Argyroudis, Sotirios A.
   Kassem, Moustafa Moufid
   Leong, Lee Vien
   Nazri, Fadzli Mohamed
TI An Integrated Framework for the Quantification of Road Network Seismic
   Vulnerability and Accessibility to Critical Services
SO SUSTAINABILITY
LA English
DT Article
DE accessibility index; cities disaster risk reduction; integrated
   framework; resilient infrastructure; vulnerability assessment; critical
   service centres
ID DISASTER MANAGEMENT; HIGHWAY BRIDGES; URBAN AREAS; DAMAGE; METHODOLOGY;
   RESILIENCE; BUILDINGS; SYSTEMS; DEMAND
AB Road networks are regarded as the backbone of transportation systems, which play an important role in the social and economic prosperity of societies. Due to this reason, it is crucial to develop road networks with higher resiliency rates to operate normally during earthquake incidents. In the last decades, the research that tackled the management of disasters for road networks gained great attention, in particular by developing various seismic vulnerability assessment models. Most of those models study a single criterion, e.g., physical damage of road assets, traffic disruption, and/or functionality loss of the network without taking into consideration the combination of different vulnerability criteria. The proposed framework is part of the global seismic vulnerability assessment models that combine fragility functions and vulnerability indices, which is demonstrated by an application in a road network in the city of Penang in Malaysia. In the first step, the fragility functions are developed where their results are used to calculate the Seismic Vulnerability Index (SVI) for roadways by weighting the main investigated parameters. This is followed by investigating the Accessibility Index (AI) model that is employed to assess the accessibility of targeted districts within the investigated area. Subsequently, an integrated approach is employed to generate the emergency evacuation maps to critical service centres by referring to the correlations between vulnerability and the accessibility rates. In conclusion, the results of this study integrate engineering judgment and numerical models to create a comparative study for assessing the performance of road networks and to validate the significance of an integrated seismic assessment on various critical societal sectors, such as improving emergency accessibility and implementing better mitigation strategies for communities living in disaster-prone areas.
C1 [El-Maissi, Ahmad Mohamad; Kassem, Moustafa Moufid; Leong, Lee Vien; Nazri, Fadzli Mohamed] Univ Sains Malaysia, Sch Civil Engn, Engn Campus, Nibong Tebal 14300, Penang, Malaysia.
   [Argyroudis, Sotirios A.] Brunel Univ, Coll Engn Design & Phys Sci, Dept Civil & Environm Engn, London UB8 3PH, England.
C3 Universiti Sains Malaysia; Brunel University
RP Nazri, FM (corresponding author), Univ Sains Malaysia, Sch Civil Engn, Engn Campus, Nibong Tebal 14300, Penang, Malaysia.
EM cefmn@usm.my
RI Mohamed Nazri, Fadzli/J-9158-2019; Argyroudis, Sotirios/AAE-8935-2021;
   El Maissi, Ahmad/HMD-7507-2023; Kassem, Dr. Moustafa/AAV-2745-2020;
   Leong, Lee Vien/C-8887-2011; Mohamed Nazri, Fadzli/A-7697-2012
OI Leong, Lee Vien/0000-0003-0798-4957; KASSEM,
   MOUSTAFA/0000-0003-2707-685X; Mohamed Nazri, Fadzli/0000-0002-0712-0705;
   Argyroudis, Sotirios/0000-0002-8131-3038; El-Maissi,
   Ahmad/0000-0001-6606-1461
FU Ministry of Higher Education (MOHE) through Fundamental Research Grant
   Scheme [FRGS/1/2020/TK02/USM/02/1]
FX This research was supported by Ministry of Higher Education (MOHE)
   through Fundamental Research Grant Scheme (FRGS/1/2020/TK02/USM/02/1).
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NR 79
TC 11
Z9 11
U1 8
U2 58
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2022
VL 14
IS 19
AR 12474
DI 10.3390/su141912474
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 5G9YJ
UT WOS:000867345000001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Tretter, F
   Gaugler, T
   Reichel, C
   Underberg, E
   Harrer-Puchner, G
   Franz-Balsen, A
AF Tretter, Felix
   Gaugler, Tobias
   Reichel, Christian
   Underberg, Emil
   Harrer-Puchner, Gabriele
   Franz-Balsen, Angela
TI Systems ecology of resilient nutrition for urban areas. Need and
   potential for sustainable agriculture
SO GAIA-ECOLOGICAL PERSPECTIVES FOR SCIENCE AND SOCIETY
LA German
DT Article
DE agriculture; food production; human ecology; nutrition; resilience;
   systems theory
C1 [Gaugler, Tobias] Univ Augsburg, Augsburg, Germany.
   [Reichel, Christian] FU Berlin, Berlin, Germany.
   [Harrer-Puchner, Gabriele] Syst Log TT, St Gallen, Switzerland.
   [Franz-Balsen, Angela] Deutsch Gesell Humanokol DGH, Berlin, Germany.
C3 University of Augsburg; Free University of Berlin
RP Gaugler, T (corresponding author), Univ Augsburg, Augsburg, Germany.
EM felix.tretter@dg-humanoekologie.de; tobias.gaugler@mrm.uni-augsburg.de;
   christian.reichel@fu-berlin.de; gabriele.harrer@system-logics.com;
   franzbals6p@aol.com
CR [Anonymous], 2018, AGRO FOOD STUDIES
   DGE (Deutsche Gesellschaft fur Ernahrung), 2020, 14 DGE 14 DGE
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NR 12
TC 1
Z9 1
U1 3
U2 25
PU OEKOM VERLAG GMBH
PI MUNICH
PA WALTHERSTR 29, MUNICH, 80337, GERMANY
SN 0940-5550
EI 2625-5413
J9 GAIA
JI GAIA
PY 2021
VL 30
IS 2
BP 129
EP 131
DI 10.14512/gaia.30.2.12
PG 3
WC Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA TI4WC
UT WOS:000672801300010
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Li, YH
   Cheng, WJ
   Zuo, WJ
   Zhang, LY
AF Li Yuheng
   Cheng Wenjing
   Zuo Wenjie
   Zhang Lingyue
TI Agricultural Vulnerability to Drought in China's Agro-pastoral Ecotone:
   A Case Study of Yulin City, Shaanxi Province
SO CHINESE GEOGRAPHICAL SCIENCE
LA English
DT Article
DE climate change; agricultural vulnerability; drought; agro-pastoral
   ecotone; Yulin City; China
ID FRAMEWORK; FOOD
AB Agro-pastoral ecotone of northern China is the prominent area for agricultural production, but it is also the most typical ecological fragile area with frequent drought disasters. Taking Yulin City at Shaanxi Province in China as the case area, the paper aims to investigate the spatio-temporal changes of agricultural vulnerability to drought in China's agro-pastoral ecotone in the period 2000 to 2020. The results show that: 1) the agricultural vulnerability to drought in Yulin City has shifted from high vulnerability in the period 2000-2010 to low vulnerability in the period 2011-2020. 2) There exist obvious spatio-temporal differences of the agricultural vulnerability to drought in Yulin City during the research period. 3) Four sensitive events and 14 resilient events were identified in the research and the crops of Yulin had become more resilient to drought. Finally, the paper put forward with policy implications to make adaptive strategies of agriculture to climate change in China's agro-pastoral ecotone in the future, e.g., carrying out agricultural zoning based on agricultural production conditions, intensifying the construction of disaster prevention and relief system, and integrating with modern agricultural technology to develop new type agriculture.
C1 [Li Yuheng; Cheng Wenjing] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Li Yuheng; Cheng Wenjing] Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China.
   [Zuo Wenjie] Northeast Agr Univ, Coll Publ Adm & Law, Harbin 150030, Peoples R China.
   [Zhang Lingyue] Northwest A&F Univ, Coll Econ & Management, Yangling 712100, Shaanxi, 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; Northeast Agricultural University -
   China; Northwest A&F University - China
RP Li, YH (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.; Li, YH (corresponding author), Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China.
EM liyuheng@igsnrr.ac.cn
RI li, yuheng/LPQ-3255-2024; zuo, wenjie/GYD-5889-2022
FU National Natural Science Foundation of China [42171208]
FX Under the auspices of National Natural Science Foundation of China (No.
   42171208)
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NR 42
TC 13
Z9 16
U1 16
U2 40
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 1002-0063
EI 1993-064X
J9 CHINESE GEOGR SCI
JI Chin. Geogr. Sci.
PD OCT
PY 2023
VL 33
IS 5
BP 934
EP 945
DI 10.1007/s11769-023-1386-5
PG 12
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA T1KF6
UT WOS:001075637600010
OA hybrid
DA 2025-04-22
ER

PT J
AU Tan, JT
   Lo, KV
   Qiu, FD
   Liu, WX
   Li, J
   Zhang, PY
AF Tan, Juntao
   Lo, Kevin
   Qiu, Fangdao
   Liu, Wenxin
   Li, Jing
   Zhang, Pingyu
TI Regional Economic Resilience: Resistance and Recoverability of
   Resource-Based Cities during Economic Crises in Northeast China
SO SUSTAINABILITY
LA English
DT Article
DE resource-based cities; economic resilience; recessions; resistance;
   recoverability; Northeast China
ID FINANCIAL CRISIS; EUROPE; VULNERABILITY; RECESSIONS; DIVERSITY; IMPACT
AB This paper quantitatively analyzes the economic resilience of resource-based cities (RBCs) in Northeast China in terms of resistance and recoverability during two economic crises: the Asian financial crisis and the global financial crisis. Moreover, it analyzes the main factors that affected regional resilience. There are three main findings. First, the RBCs in general demonstrated poor resistance during both recessions, but there were variations among the different types of RBCs. Petroleum and metal cities demonstrated the most resistance, whereas coal cities performed the worst. Second, the influential factors affecting economic resilience varied across the two economic cycles, but location advantage, research and development (R and D) intensity, foreign trade dependence ratio, and supporting policies had positive effects on resilience during both economic cycles, while the proportion of employed persons in resource industries had a negative effect. Industrial diversity had a weak and ambiguous effect on resilience. Third, the secondary industry was more resilient during the Asian financial crisis, but the tertiary industry was more resilient during the global financial crisis. This shift may be attributed to both the nature of the crises and the strength of the sectors at the time of the crises.
C1 [Tan, Juntao; Qiu, Fangdao] Jiangsu Normal Univ, Sch Geog Geomat & Planning, Xuzhou 221116, Peoples R China.
   [Lo, Kevin] Hong Kong Baptist Univ, Dept Geog, Hong Kong 999077, Hong Kong, Peoples R China.
   [Liu, Wenxin; Li, Jing; Zhang, Pingyu] Chinese Acad Sci, Northeast Inst Geog & Agroecol, Changchun 130002, Jilin, Peoples R China.
C3 Jiangsu Normal University; Hong Kong Baptist University; Chinese Academy
   of Sciences; Northeast Institute of Geography & Agroecology, CAS
RP Zhang, PY (corresponding author), Chinese Acad Sci, Northeast Inst Geog & Agroecol, Changchun 130002, Jilin, Peoples R China.
EM tanjuntaocf@163.com; lokevin@hkbu.edu.hk; qiufangdao@163.com;
   liuwx@iga.ac.cn; lijingsara@iga.ac.cn; zhangpy@iga.ac.cn
RI Lo, Kevin/AEY-9539-2022
OI Lo, Kevin/0000-0001-7721-4726; juntao, Tan/0000-0001-6892-4013
FU National Natural Science Foundation of China [41571152, 41671123,
   41771179]; Chinese Academy of Sciences [KSZD-EW-Z-021-03, Y02015005]
FX This work was supported by the National Natural Science Foundation of
   China (41571152, 41671123, 41771179); the Key Research Program of the
   Chinese Academy of Sciences (KSZD-EW-Z-021-03); and the Key Consulting
   Program of the Chinese Academy of Sciences (Y02015005).
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NR 49
TC 36
Z9 40
U1 2
U2 107
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2017
VL 9
IS 12
AR 2136
DI 10.3390/su9122136
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 FR7FA
UT WOS:000419231500003
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Zuniga-Teran, AA
   Staddon, C
   de Vito, L
   Gerlak, AK
   Ward, S
   Schoeman, Y
   Hart, A
   Booth, G
AF Zuniga-Teran, Adriana A.
   Staddon, Chad
   de Vito, Laura
   Gerlak, Andrea K.
   Ward, Sarah
   Schoeman, Yolandi
   Hart, Aimee
   Booth, Giles
TI Challenges of mainstreaming green infrastructure in built environment
   professions
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article
DE green infrastructure; urban resilience; nature-based solutions;
   stormwater management planning
ID LOW IMPACT DEVELOPMENT; CLIMATE ADAPTATION; URBAN STORMWATER; ECOSYSTEM
   SERVICES; WATER MANAGEMENT; SPACE; CITY; GOVERNANCE; PERSPECTIVE;
   MELBOURNE
AB Green infrastructure (GI) has been identified as a promising approach to help cities adapt to climate change through the provision of multiple ecosystem services. However, GI contributions to urban resilience will not be realized until it is more fully mainstreamed in the built environment and design professions. Here, we interrogate five key challenges for the effective implementation of GI: (1) design standards; (2) regulatory pathways; (3) socio-economic considerations; (4) financeability; and (5) innovation. Methods include a literature review, case studies, and interviews with resilience managers. We propose a people-centred and context-dependent approach to advance effective implementation of GI in urban planning. We highlight two underlying currents that run across all of the challenges - (1) the role of political will as a pre-condition for tackling all challenges holistically; and (2) the role of stakeholder engagement in achieving public support, harnessing funding, and maintaining and monitoring GI in the long term.
C1 [Zuniga-Teran, Adriana A.; Gerlak, Andrea K.] Univ Arizona, Udall Ctr Studies Publ Policy, Tucson, AZ 85721 USA.
   [Zuniga-Teran, Adriana A.] Univ Arizona, Sch Landscape Architecture & Planning, Tucson, AZ 85721 USA.
   [Staddon, Chad; de Vito, Laura; Ward, Sarah] Univ West England, Dept Geog & Environm Management, Bristol, Avon, England.
   [Gerlak, Andrea K.] Univ Arizona, Sch Geog & Dev, Tucson, AZ USA.
   [Schoeman, Yolandi] Monash South Africa, Johannesburg, South Africa.
   [Hart, Aimee; Booth, Giles] Arcadis, Bristol, Avon, England.
C3 University of Arizona; University of Arizona; University of West
   England; University of Arizona
RP Zuniga-Teran, AA (corresponding author), Univ Arizona, Udall Ctr Studies Publ Policy, Tucson, AZ 85721 USA.; Zuniga-Teran, AA (corresponding author), Univ Arizona, Sch Landscape Architecture & Planning, Tucson, AZ 85721 USA.
EM aazuniga@email.arizona.edu
RI Schoeman, Yolandi/HKE-2407-2023; Ward, Sarah/AAK-5052-2020;
   Zuniga-Teran, Adriana/HIK-2468-2022; Ward, Sarah/Q-2728-2015; De Vito,
   Laura/ABH-7673-2020
OI Zuniga-Teran, Adriana/0000-0003-2912-2469; Ward,
   Sarah/0000-0002-1432-4204; De Vito, Laura/0000-0001-9196-4013; Gerlak,
   Andrea/0000-0002-2198-6679
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TC 104
Z9 120
U1 4
U2 31
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 MAR 20
PY 2020
VL 63
IS 4
BP 710
EP 732
DI 10.1080/09640568.2019.1605890
EA JUN 2019
PG 23
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA KA6DG
UT WOS:000472318600001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Essien, E
AF Essien, Etido
TI Impacts of Governance toward Sustainable Urbanization in a Midsized
   City: A Case Study of Uyo, Nigeria
SO LAND
LA English
DT Article
DE urban sustainability; land tenure; urban growth; governance;
   development; urban planning
ID URBAN; TRANSFORMATION; FUTURE
AB Urban studies in Nigeria mostly focus on large cities and metropolitan areas, with minimal attention given to sustainable urban development in midsized cities. In this study, we address this knowledge gap and examine the policies and practices driving urban growth in Uyo, a midsized city in Nigeria. Specifically, we evaluate to what extent the prevailing urban governance culture and practices move the city toward or away from being inclusive, safe, resilient, and sustainable-central tenets of UN Sustainable Development Goal (SDG) 11. This study critically explores the strategic and operational approaches deployed by public stakeholders in pursuit of urban development, housing security, and economic and infrastructure development. We find the lack of continuity in commitment to urban infrastructural development projects and a flawed land tenure system that exacerbates housing insecurity are the two most critical challenges to address in attaining the goals of SDG11 in Uyo. The former calls for better fiscal management and adoption of good governance practices across the administrative hierarchy. The land tenure system can be made equitable and less cumbersome by overhauling the 1999 Land Use Act law of the country. Our findings can inform policies to make midsized cities facing similar challenges more inclusive, safe, resilient, and sustainable.
C1 [Essien, Etido] Univ Bayreuth, Climatol Res Grp, D-95447 Bayreuth, Germany.
C3 University of Bayreuth
RP Essien, E (corresponding author), Univ Bayreuth, Climatol Res Grp, D-95447 Bayreuth, Germany.
EM Etido.Essien@uni-bayreuth.de
OI Essien, Etido/0000-0002-4171-6393
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Z9 10
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PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD JAN
PY 2022
VL 11
IS 1
AR 37
DI 10.3390/land11010037
PG 13
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA YN3NV
UT WOS:000747168900001
OA gold
DA 2025-04-22
ER

PT J
AU Zoomers, A
   van Noorloos, F
   Otsuki, K
   Steel, G
   van Westen, G
AF Zoomers, Annelies
   van Noorloos, Femke
   Otsuki, Kei
   Steel, Griet
   van Westen, Guus
TI The Rush for Land in an Urbanizing World: From Land Grabbing Toward
   Developing Safe, Resilient, and Sustainable Cities and Landscapes
SO WORLD DEVELOPMENT
LA English
DT Review
DE Large-scale land investments; Global land rush; Land grabbing; New urban
   agenda; Urbanization; Habitat III; SDG11
ID SUB-SAHARAN AFRICA; REGIONAL-DEVELOPMENT; INTERMEDIATE CITIES; SMALL
   TOWNS; GENTRIFICATION; MIGRATION; CITY; AGE
AB This article aims to contribute to current discussions about "making cities inclusive, safe, resilient, and sustainable" (SDG 11) by linking debates that are currently taking place in separate containers: debates on the "global land rush" and the "new urban agenda". It highlights some important processes that are overlooked in these debates and advances a new, socially inclusive urbanization agenda that addresses emerging urban land grabs. The global land rush debate has ignored not only the fact that large-scale land investments take place in a context of rapid urbanization, but also that these investments are often triggered by urban demand, whereas discussions on the new urban agenda prepared for the latest United Nations Conference on Housing and Sustainable Urban Development (Habitat III) are typically city-biased, and pay little attention to the role of increasing cross-border investment in land and the transformation of the countryside. Using cases from areas where the global land rush and urbanization are simultaneously intensifying in the global South, we identify four areas that should be prioritized in current debates, namely the impacts of land investments on intra-city dynamics, peri-urban dynamics, and the emergence of new cities and new infrastructure corridors. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Zoomers, Annelies; van Noorloos, Femke; Otsuki, Kei; Steel, Griet; van Westen, Guus] Univ Utrecht, NL-3508 TC Utrecht, Netherlands.
C3 Utrecht University
RP van Westen, G (corresponding author), Univ Utrecht, NL-3508 TC Utrecht, Netherlands.
OI Steel, Griet/0000-0003-2381-2872
FU EU, FP7; Agriculture beyond food programme - NWO-WOTRO; KNAW; CIFOR;
   NWO-Cocoon; NWO
FX This article is based on several ongoing externally funded research
   programmes carried out by our team in various countries: Rurban Africa
   (Funding: EU, FP7) (http://rurbanafrica.ku.dk/); Oil palm expansion in
   Riau, Indonesia - Sliding from the greasy land (Funding: Agriculture
   beyond food programme - NWO-WOTRO and KNAW); Responsible Business and
   Sustainable Biofuel Production in Indonesia, Brazil, Mozambique and
   Tanzania (Funding: CIFOR); Towards more inclusive, participatory and
   conflict-sensitive climate change interventions in Burkina Faso, Ghana
   and Kenya (Funding: NWO-Cocoon); Feeder road development for inclusive
   productive employment in Ethiopia (Funding: NWO); Bridging the gaps
   between policy and practice on land governance, inclusive business and
   food security in Mozambique (Funding: NWO); and Follow the food: Dutch
   business and food chains in K enya, Ghana and Ethiopia (Funding: NWO).
   The authors are collaborating in the context of the Utrecht University
   based Land academy (see also www.landgovernance.org).
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U1 7
U2 200
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0305-750X
EI 1873-5991
J9 WORLD DEV
JI World Dev.
PD APR
PY 2017
VL 92
BP 242
EP 252
DI 10.1016/j.worlddev.2016.11.016
PG 11
WC Development Studies; Economics
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics
GA EJ5HE
UT WOS:000393247600018
OA Green Published
DA 2025-04-22
ER

PT J
AU Bikomeye, JC
   Namin, S
   Anyanwu, C
   Rublee, CS
   Ferschinger, J
   Leinbach, K
   Lindquist, P
   Hoppe, A
   Hoffman, L
   Hegarty, J
   Sperber, D
   Beyer, KMM
AF Bikomeye, Jean C.
   Namin, Sima
   Anyanwu, Chima
   Rublee, Caitlin S.
   Ferschinger, Jamie
   Leinbach, Ken
   Lindquist, Patricia
   Hoppe, August
   Hoffman, Lawrence
   Hegarty, Justin
   Sperber, Dwayne
   Beyer, Kirsten M. M.
TI Resilience and Equity in a Time of Crises: Investing in Public Urban
   Greenspace Is Now More Essential Than Ever in the US and Beyond
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE greenspace; urban neighborhoods; health equity; COVID-19; climate
   change; cancer; cardiovascular diseases (CVD); structural racism;
   resilience; health disparities
ID RESIDENTIAL PROPERTY-VALUES; CARDIOVASCULAR RISK-FACTORS; RACIAL-ETHNIC
   DISPARITIES; PARTICULATE AIR-POLLUTION; CLIMATE-CHANGE IMPACTS;
   PHYSICAL-ACTIVITY; STRESS REDUCTION; MENTAL-HEALTH; BREAST-CANCER; BUILT
   ENVIRONMENT
AB The intersecting negative effects of structural racism, COVID-19, climate change, and chronic diseases disproportionately affect racial and ethnic minorities in the US and around the world. Urban populations of color are concentrated in historically redlined, segregated, disinvested, and marginalized neighborhoods with inadequate quality housing and limited access to resources, including quality greenspaces designed to support natural ecosystems and healthy outdoor activities while mitigating urban environmental challenges such as air pollution, heat island effects, combined sewer overflows and poor water quality. Disinvested urban environments thus contribute to health inequity via physical and social environmental exposures, resulting in disparities across numerous health outcomes, including COVID-19 and chronic diseases such as cancer and cardiovascular diseases (CVD). In this paper, we build off an existing conceptual framework and propose another conceptual framework for the role of greenspace in contributing to resilience and health equity in the US and beyond. We argue that strategic investments in public greenspaces in urban neighborhoods impacted by long term economic disinvestment are critically needed to adapt and build resilience in communities of color, with urgency due to immediate health threats of climate change, COVID-19, and endemic disparities in chronic diseases. We suggest that equity-focused investments in public urban greenspaces are needed to reduce social inequalities, expand economic opportunities with diversity in workforce initiatives, build resilient urban ecosystems, and improve health equity. We recommend key strategies and considerations to guide this investment, drawing upon a robust compilation of scientific literature along with decades of community-based work, using strategic partnerships from multiple efforts in Milwaukee Wisconsin as examples of success.
C1 [Bikomeye, Jean C.; Namin, Sima; Anyanwu, Chima; Beyer, Kirsten M. M.] Med Coll Wisconsin, Inst Hlth & Equ, 8701 Watertown Plank Rd, Milwaukee, WI 53226 USA.
   [Rublee, Caitlin S.] Med Coll Wisconsin, Dept Emergency Med, 8701 Watertown Plank Rd, Milwaukee, WI 53226 USA.
   [Ferschinger, Jamie] Sixteenth St Community Hlth Ctr, Environm Hlth & Community Wellness, 1337 S Cesar Chavez Dr, Milwaukee, WI 53204 USA.
   [Leinbach, Ken] Urban Ecol Ctr, 1500 E Pk Pl, Milwaukee, WI 53211 USA.
   [Lindquist, Patricia] Wisconsin Dept Nat Resources, Div Forestry, 101 S Webster St,POB 7921, Madison, WI 53707 USA.
   [Hoppe, August] Hoppe Tree Serv, Urban Wood Lab, 1813 S 73rd St, W Allis, WI 53214 USA.
   [Hoffman, Lawrence] Groundwork Milwaukee, Dept GIS, 227 West Pleast St, Milwaukee, WI 53212 USA.
   [Hegarty, Justin] Reflo Sustainable Water Solut, 1100 S 5th St, Milwaukee, WI 53204 USA.
   [Sperber, Dwayne] Wudeward Urban Forest Prod, N11W31868 Phyllis Pkwy, Delafield, WI 53018 USA.
C3 Medical College of Wisconsin; Medical College of Wisconsin
RP Beyer, KMM (corresponding author), Med Coll Wisconsin, Inst Hlth & Equ, 8701 Watertown Plank Rd, Milwaukee, WI 53226 USA.
EM jbikomeye@mcw.edu; snamin@mcw.edu; canyanwu@mcw.edu; crublee@mcw.edu;
   jamie.ferschinger@sschc.org; kleinbach@urbanecologycenter.org;
   patricia.lindquist@wisconsin.gov; info@hoppetreeservice.com;
   lawrence@groundworkmke.org; justin.hegarty@refloh2o.com;
   dwayne@wudeward.com; kbeyer@mcw.edu
RI Beyer, Kirsten/HGT-9652-2022; Bikomeye, Jean/ABB-2795-2021
OI Bikomeye, Jean C./0000-0003-0013-1628
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NR 444
TC 34
Z9 39
U1 8
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 AUG
PY 2021
VL 18
IS 16
AR 8420
DI 10.3390/ijerph18168420
PG 39
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 UG4KX
UT WOS:000689224600001
PM 34444169
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Park, S
   Kim, J
   Kang, J
AF Park, Samuel
   Kim, Jaekyoung
   Kang, Junsuk
TI Exploring optimal deep tunnel sewer systems to enhance urban pluvial
   flood resilience in the gangnam region, South Korea
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Deep tunnel sewer system (DTSS); Flood resilience index; Grey
   infrastructure; IDF surface; Urban drainage system; Urban pluvial flood
ID DRAINAGE SYSTEMS; WATER MANAGEMENT; CLIMATE-CHANGE; LID PRACTICES; RISK;
   INFRASTRUCTURE; GREEN; DETERIORATION; PERFORMANCE; ADAPTATION
AB Urban pluvial flooding is becoming a global concern, exacerbated by urbanization and climate change, especially in rapidly developing areas where existing sewer systems lag behind growth. In order to minimize a system's functional failures during extreme rainfalls, localized engineering solutions are required for urban areas chronically suffering from pluvial floods. This study critically evaluates the Deep Tunnel Sewer System (DTSS) as a robust grey infrastructure solution for enhancing urban flood resilience, with a case study in the Gangnam region of Seoul, South Korea. To do so, we integrated a one-dimensional sewer model with a rapid flood spreading model to identify optimal routes and conduit diameters for the DTSS, focusing on four flood-related metrics: the total flood volume, the flood duration, the peak flooding rate, and the number of flooded nodes. Results indicate that, had the DTSS been in place, it could have reduced historical flood volumes over the last decade by 50.1-99.3%, depending on the DTSS route. Regarding the conduit diameter, an 8 m diameter was found to be optimal for minimizing all flood-related metrics. Our research also developed the Intensity-DurationFrequency (IDF) surfaces in three dimensions, providing a correlation between simulated flood-related metrics and design rainfall characteristics to distinguish the effect of DTSS on flood risk reduction. Our findings demonstrate how highly engineered solutions can enhance urban flood resilience, but they may still face challenges during extreme heavy rainfalls with a 80-year frequency or above. This study contributes to rational decision-making and emergency management in the face of increasing urban pluvial flood risks.
C1 [Park, Samuel] Seoul Natl Univ, Res Ctr Reg Climate Crisis Response, Seoul 08826, South Korea.
   [Park, Samuel] Purdue Univ, Lyles Sch Civil Engn, W Lafayette, IN 47907 USA.
   [Kim, Jaekyoung; Kang, Junsuk] Seoul Natl Univ, Interdisciplinary Program Landscape Architecture, Seoul 08826, South Korea.
   [Kim, Jaekyoung; Kang, Junsuk] Seoul Natl Univ, Transdisciplinary Program Smart City Global Conver, Seoul 08826, South Korea.
   [Kang, Junsuk] Seoul Natl Univ, Dept Landscape Architecture & Rural Syst Engn, Seoul 08826, South Korea.
   [Kang, Junsuk] Seoul Natl Univ, Res Inst Agr & Life Sci, Seoul 08826, South Korea.
C3 Seoul National University (SNU); Purdue University System; Purdue
   University; Seoul National University (SNU); Seoul National University
   (SNU); Seoul National University (SNU); Seoul National University (SNU)
RP Kang, J (corresponding author), Seoul Natl Univ, Interdisciplinary Program Landscape Architecture, Seoul 08826, South Korea.
EM junkang@snu.ac.kr
RI Kang, Junsuk/D-7764-2011
OI Kang, Junsuk/0000-0003-1131-9060
FU Korea Environment Industry & Technology Institute (KEITI) through
   "Climate Change R & D Project for New Climate Regime - Korea Ministry of
   Environment (MOE) [2022003570004]; National Research Foundation of Korea
   (NRF) - Korea government (MSIT) [RS -2023-00259403]; Knowledge -based
   environmental service Program - Ministry of Environment
FX <STRONG> </STRONG>This work was supported by Korea Environment Industry
   & Technology Institute (KEITI) through "Climate Change R & D Project for
   New Climate Regime.", funded by Korea Ministry of Environment (MOE)
   (2022003570004) . This work was supported by the National Research
   Foundation of Korea (NRF) grant funded by the Korea government (MSIT)
   (No. RS -2023-00259403) . This work is supported by Knowledge -based
   environmental service Program funded by Ministry of Environment. We
   would like to thank the three anonymous reviewers for their valuable
   feedback, which helped improve earlier versions of this paper.
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NR 120
TC 9
Z9 9
U1 12
U2 20
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 APR
PY 2024
VL 357
AR 120762
DI 10.1016/j.jenvman.2024.120762
EA APR 2024
PG 16
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA RC0N8
UT WOS:001225356800001
PM 38574708
DA 2025-04-22
ER

PT J
AU Zhao, XD
   Cai, H
   Chen, ZL
   Gong, HD
   Feng, QL
AF Zhao, Xudong
   Cai, Hao
   Chen, Zhilong
   Gong, Huadong
   Feng, Qilin
TI Assessing urban lifeline systems immediately after seismic disaster
   based on emergency resilience
SO STRUCTURE AND INFRASTRUCTURE ENGINEERING
LA English
DT Article
DE Resilience; lifeline systems; earthquakes; post-disaster recovery; water
   supply; network analysis
ID EARTHQUAKE VULNERABILITY ASSESSMENT; SOCIAL-ECOLOGICAL SYSTEMS;
   INFRASTRUCTURE SYSTEMS; RELIABILITY ASSESSMENT; RISK-ASSESSMENT;
   NETWORKS; HAZARD; RECONSTRUCTION; COMMUNITIES; FRAMEWORK
AB Resilience is an emerging concept for analyzing the dynamic performance of critical infrastructures during the post-disaster recovery process. Although a number of studies examined how to assess long-term resilience (1year +), very few have investigated short-term resilience (few days to several weeks following a disaster). This study presents the new concept of emergency resilience' and the framework for assessing this short-term resilience for urban lifeline systems in the emergency recovery stage. This framework can quantify differences in system performance (pre-disaster vs. post-recovery) using the new recovery degree' feature. It also integrates a new performance response function which is based on network equilibrium theory to assess emergency resilience in both the technical and organisational dimensions. In the case study of the water pipeline network in Lianyungang, China, the results showed that the levels of the recovery budget b and recovery resource r had different effects on emergency resilience R in seismic disaster. Furthermore, it is demonstrated how the concept and its assessment framework can provide a quick reference tool for optimal decision-making under various scenarios. This study also examined the effects of two anti-seismic reconstruction measures, namely meshed expansion and ductile retrofitting, on the expected emergency resilience of the water pipeline network.
C1 [Zhao, Xudong; Cai, Hao; Chen, Zhilong; Gong, Huadong; Feng, Qilin] PLA Univ Sci & Technol, State Key Lab Explos & Impact & Disaster Prevent, Nanjing, Jiangsu, Peoples R China.
C3 Army Engineering University of PLA
RP Chen, ZL (corresponding author), PLA Univ Sci & Technol, State Key Lab Explos & Impact & Disaster Prevent, Nanjing, Jiangsu, Peoples R China.
EM chen-zl@vip.163.com
RI Zhou, Zechen/AAL-7184-2020
OI Zhao, Xudong/0000-0001-6667-4946; Chen, Zhilong/0000-0001-6956-4849
FU National Basic Research Program of China [2015CB058003]; Science Fund
   for Creative Research Groups of the National Natural Science Foundation
   of China [51321064]
FX This work was supported by the National Basic Research Program of China
   under [grant number 2015CB058003]; the Science Fund for Creative
   Research Groups of the National Natural Science Foundation of China
   under [grant number 51321064].
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NR 64
TC 32
Z9 37
U1 14
U2 173
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.
PY 2016
VL 12
IS 12
BP 1634
EP 1649
DI 10.1080/15732479.2016.1157609
PG 16
WC Engineering, Civil; Engineering, Mechanical
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering
GA DW6AL
UT WOS:000383728700010
DA 2025-04-22
ER

PT J
AU Wu, JJ
   Ma, DH
   Wang, W
   Fei, ZT
   Ren, YY
AF Wu, Jiajia
   Ma, Donghui
   Wang, Wei
   Fei, Zhitao
   Ren, Yuanyuan
TI Resilience Assessment of Urban Water Distribution Networks under
   Disturbance Influence of Aftershocks
SO JOURNAL OF INFRASTRUCTURE SYSTEMS
LA English
DT Article
DE Water distribution networks (WDNs); Aftershock disturbance; Seismic
   resilience; Resilience loss; Probability characteristic; Seismic risk
   analysis
ID SYSTEMS; SEQUENCES; FRAMEWORK
AB Water distribution networks (WDNs) are essential for urban water supply and postearthquake recovery. Conducting a seismic resilience assessment of a WDN and taking corresponding improvement measures can improve the disaster resistance capacity of the water system. A number of previous studies have evaluated the seismic resilience of WDNs, but seldom have taken into account the impact of aftershock disturbances. Aftershock disturbances may aggravate the damage to water distribution networks, prolong the repair time and reduce the recovery ability of WDNs. This study presents an improved framework for assessing WDN resilience considering aftershock disturbances. The stochastic principle and the elliptic ground vibration attenuation model were utilized to determine the spatial distribution of site ground vibration under the mainshock and aftershock. A superposition damage assumption was applied to incorporate aftershock effects in Monte Carlo simulations, and the pressure-driven analysis (PDA) and discrete-event simulation (DES) models were used to analyze the postearthquake hydraulic balance and model the restoration process. By constructing various scenarios, the probabilistic characteristic parameters of resilience indexes and the relationship between WDN resilience metrics and parameters related to aftershocks were investigated. A case study of a real WDN in China demonstrated that there is a correlation between aftershock-related parameters and resilience indexes. Moreover, relying solely on one resilience metric is insufficient for comprehensively understanding the seismic capacity of WDNs.
C1 [Wu, Jiajia; Ma, Donghui; Wang, Wei; Fei, Zhitao; Ren, Yuanyuan] Beijing Univ Technol, Fac Architecture Civil & Transportat Engn, 100 Pingleyuan, Beijing 100124, Peoples R China.
C3 Beijing University of Technology
RP Ma, DH (corresponding author), Beijing Univ Technol, Fac Architecture Civil & Transportat Engn, 100 Pingleyuan, Beijing 100124, Peoples R China.
EM donghuima2022@163.com; ieeww@bjut.edu.cn
RI Wu, Jiajia/HPD-5711-2023; 任, 媛媛/HCI-6782-2022
OI Ma, Donghui/0000-0001-8971-3223
FU Nation Natural Science Foundation of China [52278472]
FX The support from the Nation Natural Science Foundation of China (Grant
   No. 52278472) is greatly appreciated.
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NR 46
TC 0
Z9 0
U1 12
U2 12
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 2025
VL 31
IS 1
AR 04024032
DI 10.1061/JITSE4.ISENG-2448
PG 14
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA S4L4Z
UT WOS:001397957300006
DA 2025-04-22
ER

PT J
AU Muggah, R
AF Muggah, Robert
TI Deconstructing the fragile city: exploring insecurity, violence and
   resilience
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE fragile cities; fragility; mega cities; resilience; security; urban
   conflict; urban violence
ID URBAN VIOLENCE; PATTERNS; CRIME
AB An emerging social category - the fragile city - can be described as a discrete metropolitan unit whose governance arrangements exhibit a declining ability and/or willingness to deliver on the social contract. Fragility is thus no longer ascribed by decision makers and analysts exclusively to nation-states and federal institutions. Rather, fragile cities are being reconceived as the primary sites of tomorrow's warfare and development. Yet, surprisingly little is known about them. When do cities tip into fragility? How is fragility distributed within and between neighbourhoods? What allows some cities to cope, adapt and rebound from external and internal stresses? This article, drawing from emerging theoretical and policy literatures, finds that urban fragility is neither inevitable nor irreversible. To the contrary: it is the very resilience of cities, their neighbourhoods and institutions that is often overlooked in efforts to promote stability and development. Fragile cities themselves are constituted of sources of local resistance and agency that, in some cases, can be reinforced and from which positive lessons can be learned.
C1 Igarape Inst, BR-22271020 Rio De Janeiro, Brazil.
RP Muggah, R (corresponding author), Igarape Inst, Rua Conde de Iraja 370, BR-22271020 Rio De Janeiro, Brazil.
EM robert@igarape.org.br
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NR 98
TC 47
Z9 58
U1 1
U2 30
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 2014
VL 26
IS 2
BP 345
EP 358
DI 10.1177/0956247814533627
PG 14
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA AS0TD
UT WOS:000343990500002
DA 2025-04-22
ER

PT J
AU Ziervogel, G
   Lennard, C
   Midgley, G
   New, M
   Simpson, NP
   Trisos, CH
   Zvobgo, L
AF Ziervogel, Gina
   Lennard, Chris
   Midgley, Guy
   New, Mark
   Simpson, Nicholas P.
   Trisos, Christopher H.
   Zvobgo, Luckson
TI Climate change in South Africa: Risks and opportunities for
   climate-resilient development in the IPCC Sixth Assessment WGII Report
SO SOUTH AFRICAN JOURNAL OF SCIENCE
LA English
DT Article
DE South Africa; climate change impacts; vulnerability; adaptation;
   climate-resilient development
AB Significance: South Africa is wrestling with increasing climate change impacts and how to respond. The 2022 IPCC Working Group II Report synthesises the latest evidence on climate change impacts, vulnerability and adaptation, and what this means for climate-resilient development. In this commentary, South African authors on the Report reflect on its key findings and the implications for the country. The commentary highlights challenges and opportunities for cities, the food-water-energy-nature nexus, knowledge and capacity strengthening (which includes climate services, climate change literacy, and indigenous and local knowledge), climate finance, equity, justice and social protection, and climate-resilient development pathways. The piece closes with a reflection on research gaps requiring attention and the importance of urgently ramping up climate action to secure a liveable future for all South Africans.
C1 [Ziervogel, Gina] Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
   [Lennard, Chris] Univ Cape Town, Climate Syst Anal Grp, Dept Environm & Geog Sci, Cape Town, South Africa.
   [Midgley, Guy] Stellenbosch Univ, Sch Climate Studies, Stellenbosch, South Africa.
   [New, Mark; Simpson, Nicholas P.; Trisos, Christopher H.; Zvobgo, Luckson] Univ Cape Town, African Climate & Dev Initiat, Cape Town, South Africa.
   [Trisos, Christopher H.] Univ Cape Town, Ctr Stat Ecol Environm & Conservat, Cape Town, South Africa.
C3 University of Cape Town; University of Cape Town; Stellenbosch
   University; University of Cape Town; University of Cape Town
RP Ziervogel, G (corresponding author), Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
EM Gina.ziervogel@uct.ac.za
RI Zvobgo, Luckson/AAK-9896-2021; Ziervogel, Gina/AAG-2945-2019; Simpson,
   Nicholas/AAC-4578-2022; New, Mark/A-7684-2008; Midgley, Guy/H-3585-2014;
   Lennard, Chris/C-2120-2014
OI Simpson, Nicholas/0000-0002-9041-982X; Zvobgo,
   Luckson/0000-0003-3400-8003; New, Mark/0000-0001-6082-8879; Midgley,
   Guy/0000-0001-8264-0869; Ziervogel, Gina/0000-0003-4219-6809; Trisos,
   Christopher/0000-0002-5854-1489; Lennard, Chris/0000-0001-6085-0320
FU UK Government's Foreign, Commonwealth & Development Office;
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FX UK Government's Foreign, Commonwealth & Development Office;
   International Development Research Centre (grant no. 109419-001)
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NR 28
TC 19
Z9 19
U1 7
U2 28
PU ACAD SCIENCE SOUTH AFRICA - ASSAf
PI LYNWOOD RIDGE
PA PO BOX 72135, LYNWOOD RIDGE 0040, SOUTH AFRICA
SN 0038-2353
EI 1996-7489
J9 S AFR J SCI
JI S. Afr. J. Sci.
PD SEP-OCT
PY 2022
VL 118
IS 9-10
AR 14492
DI 10.17159/sajs.2022/14492
PG 5
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA 6I4HR
UT WOS:000886088500002
OA gold
DA 2025-04-22
ER

PT J
AU van Oorschot, J
   Sprecher, B
   van 't Zelfde, M
   van Bodegom, PM
   van Oudenhoven, APE
AF van Oorschot, Janneke
   Sprecher, Benjamin
   van 't Zelfde, Maarten
   van Bodegom, Peter M.
   van Oudenhoven, Alexander P. E.
TI Assessing urban ecosystem services in support of spatial planning in the
   Hague, the Netherlands
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Nature-based solutions; Green infrastructure; Urban ecosystem services;
   Spatial analysis; Urban planning; GIS
ID AIR-POLLUTION REMOVAL; GREEN INFRASTRUCTURE; INDICATORS; RESILIENCE;
   GOVERNANCE; SPACE; CITY
AB Green infrastructure (GI) is increasingly addressed in urban planning and research to enhance urban sustainability and resilience through the provisioning of ecosystem services (ES). Yet, few applications exist of planning models for multifunctional GI in high spatial and thematic detail that simultaneously align with stakeholder interests. We address these gaps by developing and presenting a spatially explicit model to inform urban planners on priority areas for multifunctional GI development. This model was made possible by spatial analyses on multiple scales, enabling us to assess ES in sufficient detail, while simultaneously matching the preferences for scale and ES-indicators of decision makers and urban planners. The model involves a novel weighting scheme based upon the local capacity of GI to mitigate problems. We applied our model to the city of The Hague using a set of three policy-relevant problems: air pollution, the urban heat island effect and storm water flooding. Our results show that the capacity of GI to mitigate these problems varies spatially, both within and between ES, and depends on local characteristics of GI and the environmental context. We illustrate the relevance of using a multiscale approach in spatial ES analysis, and underline that GI planning measures should be assessed in high spatial detail due to their often locally distinct ES capacity. Our approach makes important strides towards the deployment of nature-based solutions for urban challenges in the light of demands for increasing resilience and sustainability.
C1 [van Oorschot, Janneke; Sprecher, Benjamin; van 't Zelfde, Maarten; van Bodegom, Peter M.; van Oudenhoven, Alexander P. E.] Leiden Univ, Inst Environm Sci CML, Einsteinweg 2, NL-2333 CC Leiden, Netherlands.
C3 Leiden University - Excl LUMC; Leiden University
RP van Oorschot, J (corresponding author), Leiden Univ, Inst Environm Sci CML, Einsteinweg 2, NL-2333 CC Leiden, Netherlands.
EM j.van.oorschot@cml.leidenuniv.nl; sprecher@cml.leidenuniv.nl;
   zelfde@cml.leidenuniv.nl; p.m.van.bodegom@cml.leidenuniv.nl;
   a.p.e.van.oudenhoven@cml.leidenuniv.nl
RI van 't Zelfde, Maarten/K-6708-2013; van Oudenhoven,
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OI Sprecher, Benjamin/0000-0002-0136-5656; van Bodegom,
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NR 63
TC 22
Z9 22
U1 8
U2 61
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 104195
DI 10.1016/j.landurbplan.2021.104195
PG 11
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 TU6BW
UT WOS:000681120500004
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Chew, AWZ
   He, RF
   Zhang, LM
AF Wei Ze Chew, Alvin
   He, Renfei
   Zhang, Limao
TI Physics Informed Machine Learning (PIML) for Design, Management and
   Resilience-Development of Urban Infrastructures: A Review (jul,
   10.1007/s11831-024-10145-z, 2024)
SO ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING
LA English
DT Correction; Early Access
C1 [Wei Ze Chew, Alvin] Natl Univ Singapore, Sch Comp SoC, NUS Sch Comp, COM1,13,Comp Dr, Singapore 117417, Singapore.
   [He, Renfei] Nanyang Technol Univ, Sch Civil & Environm Engn, 50 Nanyang Ave, Singapore 639798, Singapore.
   [He, Renfei] Nanyang Technol Univ, Nanyang Environm & Water Res Inst NEWRI, Environm Proc Modelling Ctr, Interdisciplinary Grad Programme, 1 Cleantech Loop, Singapore 639798, Singapore.
   [Zhang, Limao] Huazhong Univ Sci & Technol, Natl Ctr Technol Innovat Digital Construct, Sch Civil & Hydraul Engn, 1037 Luoyu Rd, Wuhan 430074, Hubei, Peoples R China.
C3 National University of Singapore; Nanyang Technological University;
   Nanyang Technological University; Huazhong University of Science &
   Technology
RP Zhang, LM (corresponding author), Huazhong Univ Sci & Technol, Natl Ctr Technol Innovat Digital Construct, Sch Civil & Hydraul Engn, 1037 Luoyu Rd, Wuhan 430074, Hubei, Peoples R China.
EM zlm@hust.edu.cn
RI Zhang, Limao/A-1320-2016
CR Chew AWZ, 2025, ARCH COMPUT METHOD E, V32, P399, DOI [10.1007/s11831-024-10145-z, 10.1007/s11831-024-10162-y]
NR 1
TC 6
Z9 6
U1 22
U2 43
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 1134-3060
EI 1886-1784
J9 ARCH COMPUT METHOD E
JI Arch. Comput. Method Eng.
PD 2024 JUL 12
PY 2024
DI 10.1007/s11831-024-10162-y
EA JUL 2024
PG 1
WC Computer Science, Interdisciplinary Applications; Engineering,
   Multidisciplinary; Mathematics, Interdisciplinary Applications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering; Mathematics
GA YW7L1
UT WOS:001271586700001
DA 2025-04-22
ER

PT J
AU Langemeyer, J
   Madrid-Lopez, C
   Beltran, AM
   Mendez, GV
AF Langemeyer, Johannes
   Madrid-Lopez, Cristina
   Beltran, Angelica Mendoza
   Mendez, Gara Villalba
TI Urban agriculture ? A necessary pathway towards urban resilience and
   global sustainability?
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Urban agriculture; Food resilience; Urban metabolism; Environmental
   externalities; Ecosystem services
ID FOOD; GARDENS; CITIES; URBANIZATION; IMPACTS; MODELS
AB The Covid-19 pandemic newly brings food resilience in cities to our attention and the need to question the desired degree of food self-sufficiency through urban agriculture. While these questions are by no means new and periodically entering the global research focus and policy discussions during periods of crises ? the last time during the global financial crisis and resulting food price increases in 2008 ? urban and peri-urban agriculture continue to be replaced by land-uses rendering higher market values (e.g. housing, transport, leisure). The loss of priority for urban agriculture in urban land-use planning is a global trend with only a few exceptions. We argue in this essay that this development has widely taken place due to three blind spots in urban planning. First, the limited consideration of social and ecological vulnerabilities and risk-related inequalities of urban inhabitants, food shortage among them, in the face of different scenarios of global change, including climate change or pandemic events such as Covid-19. Second, the disregard of the intensified negative environmental (and related social) externalities caused by distant agricultural production, as well as lacking consideration of nutrient recycling potentials in cities (e.g. from wastewater) to replace emission intensive mineral fertilizer use. Third, the lack of accounting for the multifunctionality of urban agriculture and the multiple benefits it provides beyond the provision of food, including social benefits and insurance values, for instance the maintenance of cultural heritage and agro-biodiversity. Along these lines, we argue that existing and new knowledge about urban risks and vulnerabilities, the spatially explicit urban metabolism (e.g. energy, water, nutrients), as well as ecosystem services need to be stronger and jointly considered in land-use decision-making.
C1 [Langemeyer, Johannes; Madrid-Lopez, Cristina; Beltran, Angelica Mendoza; Mendez, Gara Villalba] Univ Autonoma Barcelona, Inst Ciencia & Tecnol Ambientals ICTA, Barcelona, Spain.
   [Langemeyer, Johannes] Humboldt Univ, Dept Geog, Berlin, Germany.
   [Mendez, Gara Villalba] Univ Autonoma Barcelona, Sch Engn ETSE, Barcelona, Spain.
C3 Autonomous University of Barcelona; Humboldt University of Berlin;
   Autonomous University of Barcelona
RP Langemeyer, J (corresponding author), Barcelona Lab Environm Justice & Sustainabil BCNU, Inst Environm Sci & Technol ICTA, Lab Anal Socioecol Syst Global World LASEG, Edifici ICTA ICP,Carrer Columnes S-N,Off Z-146, Barcelona 08193, Spain.
EM johannes.langemeyer@uab.cat
RI Mendoza Beltran, Angelica/K-8298-2013; villalba, gara/B-1379-2009;
   Langemeyer, Johannes/AAH-7736-2020; Madrid Lopez, Cristina/C-5958-2018
OI villalba, gara/0000-0001-6392-0902; Mendoza Beltran,
   Angelica/0000-0001-5837-5970; Langemeyer, Johannes/0000-0002-0558-8486;
   Madrid Lopez, Cristina/0000-0002-4969-028X
FU ERC Consolidator Grant [818002-URBAG]; European Union [869324]; Marie
   Sklodowska-Curie PROTEAN project [842460]; "Maria de Maeztu" Programme
   for Units of Excellence of the Spanish Ministry of Science and
   Innovation at ICTA-UAB [CEX2019-000940-M]; Marie Curie Actions (MSCA)
   [842460] Funding Source: Marie Curie Actions (MSCA)
FX We would like to thank two unknown reviewers for their critical feedback
   and valuable remarks. This work was funded by an ERC Consolidator Grant
   awarded to Gara Villalba (818002-URBAG). JL acknowledges funding from
   the European Union's Horizon 2020 INTERLACE project (Grant Agreement
   869324); AM would like to acknowledge the funding from the research and
   innovation programme under the Marie Sklodowska-Curie PROTEAN project
   (842460). This work contributes to the "Maria de Maeztu" Programme for
   Units of Excellence of the Spanish Ministry of Science and Innovation
   (CEX2019-000940-M) at ICTA-UAB.
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NR 108
TC 177
Z9 192
U1 93
U2 633
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 JUN
PY 2021
VL 210
AR 104055
DI 10.1016/j.landurbplan.2021.104055
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 RG5PT
UT WOS:000635590700006
OA Green Published, hybrid
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Gilioli, G
   Tikubet, G
   Herren, HR
   Baumgärtner, J
AF Gilioli, Gianni
   Tikubet, Getachew
   Herren, Hans Rudolf
   Baumgaertner, Johann
TI Assessment of social-ecological transitions in a peri-urban Ethiopian
   farming community
SO INTERNATIONAL JOURNAL OF AGRICULTURAL SUSTAINABILITY
LA English
DT Article
DE poverty alleviation; innovation process; technology selection;
   technology uptake; adaptation; monitoring; transformability assessment;
   resilience assessment; development evaluation
ID SUSTAINABLE URBAN AGRICULTURE; RESILIENCE; TRANSFORMATION; COLLAPSE;
   SYSTEMS
AB In a peri-urban poverty-stricken community in the outskirts of Addis Ababa, Ethiopia, 15 years of development efforts were undertaken by establishing an enterprise, which initially consisted of a horticultural farm and finally was composed of a multifunctional farm and a restaurant with a shop. The enterprise collaborated with BioEconomy Africa, which was charged with administrative, monitoring and facilitation tasks, and provided a training, demonstration and research facility. In the innovation process, the enterprise selected technologies and implemented them within the context of local economic and market conditions. The project benefitted from a flexible allocation of modest funds. This paper assesses the sustainability of the enterprise and the community on the basis of social-ecological system transformability and resilience. The scheme of the Food and Agriculture Organization is used to evaluate the transformability, while resilience is evaluated through self-organization capacity, disturbance absorption capacity, and learning and adaptability. The project period was divided into five Macro-phases. The transformability assessment of the enterprise revealed nonlinear and asynchronous dynamics of environmental sustainability, economic resilience, social well-being and governance that after reaching a minimum attained a maximum at the end of the period under observation. The resilience assessments showed that the self-organization capacity, the disturbance absorption capacity, and learning and adaptability slowly changed to reach a satisfactory level at the end of the observation period. The changes in transformability and resilience profoundly affected the livelihood of the community. The paper demonstrates the important role of agricultural in the development of poverty-stricken peri-urban communities and indicates that innovation processes and the efficiency of facilitation extension model implementation can be enhanced by applying adaptive project execution procedures. It can be concluded that the continuous monitoring and assessments of transformability and resilience are a prerequisite for efficiently moving the socio-ecological system on a smooth road towards a socially acceptable standard of living.
C1 [Gilioli, Gianni] Univ Brescia, Dept Mol & Translat Med, I-25123 Brescia, Italy.
   [Tikubet, Getachew] African Bioecon Capac Dev Inst ABCDI BioEcon Afri, Addis Ababa, Ethiopia.
   [Herren, Hans Rudolf] Millennium Insitute, Washington, DC 20006 USA.
   [Baumgaertner, Johann] CASAS Global Ctr Anal Sustainable Agr Syst Global, Berkeley, CA 94707 USA.
C3 University of Brescia
RP Gilioli, G (corresponding author), Univ Brescia, Dept Mol & Translat Med, Viale Europa 11, I-25123 Brescia, Italy.
EM gianni.gilioli@unibs.it
FU Stanley-Johnson Foundation (Berne, Switzerland); Biovision Foundation
   (Zurich, Switzerland)
FX The authors thank Christopher Stampar and Steve Engfer for their help in
   editing the manuscript. The project stakeholders are grateful for the
   financial support provided by the Stanley-Johnson Foundation (Berne,
   Switzerland) and the Biovision Foundation (Zurich, Switzerland). The
   logistic support provided by Ethiopian Authorities and the ICIPE
   (Nairobi, Kenya) is appreciated.
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NR 37
TC 7
Z9 7
U1 4
U2 66
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1473-5903
EI 1747-762X
J9 INT J AGR SUSTAIN
JI Int. J. Agric. Sustain.
PD JUL 3
PY 2015
VL 13
IS 3
BP 204
EP 221
DI 10.1080/14735903.2014.954452
PG 18
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 CR7KT
UT WOS:000361529200002
DA 2025-04-22
ER

PT J
AU Nop, S
   Thornton, A
AF Nop, Sothun
   Thornton, Alec
TI Community participation in contemporary urban planning in Cambodia: The
   examples of Khmuonh and Kouk Roka neighbourhoods in Phnom Penh
SO CITIES
LA English
DT Article
ID CITIES; RESILIENCE; FRAMEWORK; LADDER; MODEL
C1 [Nop, Sothun; Thornton, Alec] Univ New South Wales, Sch Sci, Bldg 22,Northcott Dr, Canberra, ACT 2600, Australia.
   [Nop, Sothun] Royal Univ Phnom Penh, Fac Dev Studies, Phnom Penh, Cambodia.
   [Thornton, Alec] Univ Johannesburg, Sch Tourism & Hospitality, Sch Humanities, Johannesburg, South Africa.
C3 University of New South Wales Sydney; University of Johannesburg
RP Nop, S (corresponding author), Univ New South Wales, Sch Sci, Bldg 22,Northcott Dr, Canberra, ACT 2600, Australia.
EM sothun.nop@gmail.com
FU University of New South Wales (UNSW)
FX Authors greatly appreciate the valuable comments and suggestions from
   the editorial board and the anonymous referees. We also gratefully
   acknowledge Kvantai Ing, Sinal Hean, Pa Meas, Dara Moa, Cheat Un, Khammy
   Chhorn, Pounleu Tang, Vaty Thy, and Chankresna Choeun for assisting in
   the process of household surveys. This study has benefitted from funding
   from the University of New South Wales (UNSW). The work was conducted
   under the approval from the Human Research Ethics Advisory Panel, UNSW
   Canberra.
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U1 1
U2 15
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 2020
VL 103
AR 102770
DI 10.1016/j.cities.2020.102770
PG 10
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA LZ3TZ
UT WOS:000541152300023
DA 2025-04-22
ER

PT J
AU Abdel-Mooty, MN
   El-Dakhakhni, W
   Coulibaly, P
AF Abdel-Mooty, Moustafa Naiem
   El-Dakhakhni, Wael
   Coulibaly, Paulin
TI Data-Driven Community Flood Resilience Prediction
SO WATER
LA English
DT Article
DE community resilience; data-driven methods; machine learning; resilience;
   flood hazard
ID MACHINE-LEARNING ALGORITHMS; NEURAL-NETWORK; CLIMATE-CHANGE; RISK;
   DESIGN; MODELS
AB Climate change and the development of urban centers within flood-prone areas have significantly increased flood-related disasters worldwide. However, most flood risk categorization and prediction efforts have been focused on the hydrologic features of flood hazards, often not considering subsequent long-term losses and recovery trajectories (i.e., community's flood resilience). In this study, a two-stage Machine Learning (ML)-based framework is developed to accurately categorize and predict communities' flood resilience and their response to future flood hazards. This framework is a step towards developing comprehensive, proactive flood disaster management planning to further ensure functioning urban centers and mitigate the risk of future catastrophic flood events. In this framework, resilience indices are synthesized considering resilience goals (i.e., robustness and rapidity) using unsupervised ML, coupled with climate information, to develop a supervised ML prediction algorithm. To showcase the utility of the framework, it was applied on historical flood disaster records collected by the US National Weather Services. These disaster records were subsequently used to develop the resilience indices, which were then coupled with the associated historical climate data, resulting in high-accuracy predictions and, thus, utility in flood resilience management studies. To further demonstrate the utilization of the framework, a spatial analysis was developed to quantify communities' flood resilience and vulnerability across the selected spatial domain. The framework presented in this study is employable in climate studies and patio-temporal vulnerability identification. Such a framework can also empower decision makers to develop effective data-driven climate resilience strategies.
C1 [Abdel-Mooty, Moustafa Naiem] McMaster Univ, Dept Civil Engn, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
   [El-Dakhakhni, Wael] McMaster Univ, Dept Civil Engn, INTERFACE Inst Multihazard Syst Risk Studies, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
   [El-Dakhakhni, Wael] McMaster Univ, Sch Computat Sci & Engn, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
   [Coulibaly, Paulin] McMaster Univ, Dept Civil Engn, NSERC FloodNet, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
C3 McMaster University; McMaster University; McMaster University; McMaster
   University
RP Abdel-Mooty, MN (corresponding author), McMaster Univ, Dept Civil Engn, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
EM abdelmom@mcmaster.ca; eldak@mcmaster.ca; couliba@mcmaster.ca
RI Abdel-Mooty, Moustafa/HIR-3844-2022
OI Abdel-Mooty, Moustafa Naiem/0000-0003-3354-1068; El-Dakhakhni,
   Wael/0000-0001-8617-261X
FU Natural Sciences and Engineering Research Council [CREATE/482707-2016];
   Vanier Canada Graduate Scholarship (Vanier-CGS)
FX This research was funded by the Natural Sciences and Engineering
   Research Council: Grant No. [CREATE/482707-2016], and the Vanier Canada
   Graduate Scholarship (Vanier-CGS) awarded to the Corresponding Author.
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NR 89
TC 5
Z9 7
U1 16
U2 116
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD JUL
PY 2022
VL 14
IS 13
AR 2120
DI 10.3390/w14132120
PG 21
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA 2T1OD
UT WOS:000822249000001
OA gold
DA 2025-04-22
ER

PT J
AU Xia, LL
   Fu, WQ
   Ke, YH
   Wang, RW
   Liang, S
   Yang, ZF
AF Xia, Linlin
   Fu, Wenqi
   Ke, Yuhan
   Wang, Ruwei
   Liang, Sai
   Yang, Zhifeng
TI China's economic restructuring helps improve land-use resilience of
   carbon metabolism: Evidences from three Chinese megacities
SO APPLIED ENERGY
LA English
DT Article
DE Land-use carbon emissions; Network resilience; Socioeconomic
   determinants; Scenario analysis
ID CLIMATE-CHANGE; SUSTAINABILITY; EMISSIONS
AB Megacities are significant land users and major contributors to global carbon emissions. It is urgent to enhance land-use resilience of megacities through a low carbon strategy. This necessitates a comprehensive understanding of the interactions between decarbonization and land-use resilience from a systematic network perspective. Using ecological network analysis combined with scenario projection methods, this study examined the temporal trends and socioeconomic determinants of the network resilience of carbon metabolism in three Chinese megacities (i.e., Beijing, Shanghai, and Shenzhen) from 2000 to 2030. Our findings suggest that inefficient land expansion directly increased network redundancy, leading to higher carbon emissions and deteriorated land-use resilience. Furthermore, network resilience significantly declined as net carbon emissions neared their peak. Economic restructuring, driven by changes in structure- and efficiency-oriented factors, revealed both co-benefits and trade-offs between decarbonization efforts and network resilience. These improvements were mainly achieved through coupled strategies, with Beijing demonstrating the highest network resilience value (0.3524) during the last stage, compared to Shanghai (0.2810) and Shenzhen (0.2138). Scenario analysis highlighted notable fluctuations in network resilience in response to interventions, underscoring the need for adaptive measures to balance network efficiency and redundancy. To achieve low carbon and resilient development, Beijing must focus on structural transformation, Shenzhen on reducing energy intensity, and Shanghai on improving energy use efficiency. Our study provides valuable insights into the intricate relationship between urban economic resilience and low-carbon development, offering key implications for sustainable urban planning and management.
C1 [Xia, Linlin; Fu, Wenqi; Ke, Yuhan; Liang, Sai; Yang, Zhifeng] Guangdong Univ Technol, Guangdong Basic Res Ctr Excellence Ecol Secur & Gr, Sch Ecol Environm & Resources, Key Lab City Cluster Environm Safety & Green Dev,M, Guangzhou 510006, Peoples R China.
   [Wang, Ruwei] Jinan Univ, Coll Environm & Climate, Guangdong Prov Key Lab Environm Pollut & Hlth, Guangzhou 511443, Peoples R China.
C3 Guangdong University of Technology; Jinan University
RP Wang, RW (corresponding author), Jinan Univ, Coll Environm & Climate, Guangdong Prov Key Lab Environm Pollut & Hlth, Guangzhou 511443, Peoples R China.
EM wangruwei@jnu.edu.cn
RI Fu, Wenqi/IQT-4905-2023; Yang, Zhifeng/AFL-3211-2022
OI Liang, Sai/0000-0002-6306-5800
FU National Key R & D Program of China [2022YFF1301200]; Program for
   Guangdong Introducing Innovative and Entrepreneurial Teams
   [2019ZT08L213]; National Natural Science Foundation of China [41773099,
   52470208]
FX The present study was financially supported by the National Key R & D
   Program of China (No. 2022YFF1301200) , the Program for Guangdong
   Introducing Innovative and Entrepreneurial Teams (No. 2019ZT08L213) ,
   and the National Natural Science Foundation of China (Nos. 41773099 and
   52470208) .
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NR 76
TC 1
Z9 1
U1 62
U2 62
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 JAN 1
PY 2025
VL 377
AR 124686
DI 10.1016/j.apenergy.2024.124686
EA OCT 2024
PN C
PG 10
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA J1T9R
UT WOS:001334976500001
DA 2025-04-22
ER

PT J
AU Yang, J
   Ding, YA
   Zhang, L
AF Yang, Jie
   Ding, Yanan
   Zhang, Lin
TI Conceptualizing and Measuring Megacity Resilience with an Integrated
   Approach: The Case of China
SO SUSTAINABILITY
LA English
DT Article
DE megacity resilience; urban sustainability; PSR theory; comprehensive
   index; CRITIC-Entropy-TOPSIS; TOWA
ID CLIMATE-CHANGE ADAPTATION; URBAN RESILIENCE; RISK; FRAMEWORK;
   SUSTAINABILITY; TRANSFORMATION; STRATEGIES; MANAGEMENT; INDICATOR;
   NETWORKS
AB Megacities play an essential role in social interaction and relationship formation. There is a need for megacity resilience to achieve both safety and sustainability. This paper set out to develop a contextualized conceptual framework and an applied megacity resilience comprehensive index (MRCI). The study provides a multi-model named the technique for order preference by similarity to ideal solution (TOPSIS), extending the criteria importance through inter-criteria correlation and entropy (CRITIC-Entropy) weight and introducing the time-ordered weighted averaging (TOWA) to a dynamic situation. The results show that, while the performance of resilience in Nanjing was the highest, the growth ratio of resilience in Zhengzhou was the fastest. In addition, a coupling relationship of pressure, state, and response resilience was verified, and response resilience was more correlated and showed similar trends with the MRCI. The findings indicate that response resilience is still an obstacle factor in the criterion layer in Dalian. Moreover, identified key obstacle factors in the index layer may differ by district or functional zones and need to improve unified and point to area operation. Issues around resilient culture and citizenship were found to be common. Improving public service in Zhengzhou, enhancing support for applied research in Nanjing, and optimizing the ecological industry layout in Dalian were identified as key focuses. This study should be of value for similar megacities in developed or developing countries to improve their resilience.
C1 [Yang, Jie; Ding, Yanan; Zhang, Lin] Shandong Jianzhu Univ, Sch Management Engn, 1000 Fengming Rd, Jinan 250101, Peoples R China.
C3 Shandong Jianzhu University
RP Zhang, L (corresponding author), Shandong Jianzhu Univ, Sch Management Engn, 1000 Fengming Rd, Jinan 250101, Peoples R China.
EM zhanglin2007@sdjzu.edu.cn
RI zhang, lin/JDM-2043-2023
OI Zhang, Lin/0000-0001-8231-393X
FU Shandong Province Social Science Foundation of China [21CGLJ26];
   Shandong Province Science Foundation of China [ZR202103070032]; Shandong
   Jianzhu university doctoral foundation project [X19009S]; Shandong
   Housing and Urban-Rural Development Department [20220020]
FX This study is supported by the Shandong Province Social Science
   Foundation of China (Grant Number 21CGLJ26), the Shandong Province
   Science Foundation of China (Grant Number ZR202103070032,), the Shandong
   Jianzhu university doctoral foundation project (Grant Number X19009S),
   the Shandong Housing and Urban-Rural Development Department (Grant
   Number 2018R1-03), and the Shandong Housing and Urban-Rural Development
   Department (Grant Number 20220020).
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NR 130
TC 7
Z9 7
U1 17
U2 84
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2022
VL 14
IS 18
AR 11685
DI 10.3390/su141811685
PG 26
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 4U2ZC
UT WOS:000858667200001
OA gold
DA 2025-04-22
ER

PT J
AU Cui, JX
   Jin, H
   Kong, XS
   Sun, JW
   Peng, YW
   Zhu, YY
AF Cui, Jiaxing
   Jin, Han
   Kong, Xuesong
   Sun, Jianwei
   Peng, Yawen
   Zhu, Yuanyuan
TI Territorial Spatial Resilience Assessment and Its Optimisation Path: A
   Case Study of the Yangtze River Economic Belt, China
SO LAND
LA English
DT Article
DE territorial spatial resilience; urban-agricultural-ecological space;
   optimisation path; Yangtze River Economic Belt
AB Along with the rapid development of urbanization and industrialization, the carrying capacity of territorial space has been confronted with a serious crisis. Faced with many uncertain risks and unknown disruptions, it is important to proactively address the uncertainty of future developments in planning and to improve territorial spatial resilience (TSR). Based on the connotation of TSR, we build an assessment framework for TSR containing urban, agricultural and ecological space from three dimensions, including element, structure and function. Using a variety of methods such as the source-sink landscape index, land suitability assessment, and cropland pressure index, we assessed the TSR of the Yangtze River Economic Belt (YREB) from 2000 to 2020 and comprehensively analysed its spatial and temporal evolutionary characteristics. Through data analysis, we observe that the urban spatial resilience (RU) decreases and then increases, while the agricultural spatial resilience (RA) and the ecological spatial resilience (RE) show an increasing trend. The spatial clustering in TSR is apparent, and the distribution of hot and cold spots in RA and RE is reversed in the east-west direction. The changes in TSR are influenced by a combination of RU, RA and RE, which show unique geographical characteristics. Based on the average level and overall evolution of TSR, we divided the study area into five type zones and proposed development strategies for each of them.
C1 [Cui, Jiaxing; Jin, Han; Peng, Yawen; Zhu, Yuanyuan] Cent China Normal Univ, Acad Wuhan Metropolitan Area, Coll Urban & Environm Sci, Hubei Prov Key Lab Geog Proc Anal & Simulat, Wuhan 430079, Peoples R China.
   [Kong, Xuesong] Wuhan Univ, Sch Resource & Environm Sci, Wuhan 430079, Peoples R China.
   [Sun, Jianwei] Guizhou Normal Univ, Sch Geog & Environm Sci, Guiyang 550025, Peoples R China.
C3 Central China Normal University; Wuhan University; Guizhou Normal
   University
RP Zhu, YY (corresponding author), Cent China Normal Univ, Acad Wuhan Metropolitan Area, Coll Urban & Environm Sci, Hubei Prov Key Lab Geog Proc Anal & Simulat, Wuhan 430079, Peoples R China.
EM cuijiaxing@ccnu.edu.cn; jinhan2418@outlook.com; xuesongk@whu.edu.cn;
   sunjianwei@whu.edu.cn; yw13001680797@163.com; zhuyy990@126.com
RI zhu, yuanyuan/HKN-9839-2023; Cui, Jiaxing/AAE-4715-2022
OI jin, han/0009-0005-0720-9055; Kong, Xuesong/0000-0003-3290-025X
FU National Natural Science Foundation of China;  [41901201];  [42361028]
FX This research was funded by the National Natural Science Foundation of
   China, grant number 41901201 and 42361028.
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NR 63
TC 1
Z9 1
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 SEP
PY 2024
VL 13
IS 9
AR 1395
DI 10.3390/land13091395
PG 20
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA H5C3Z
UT WOS:001323615700001
OA gold
DA 2025-04-22
ER

PT J
AU Ding, CH
   Gao, X
   Xie, ZY
AF Ding, Chenhao
   Gao, Xin
   Xie, Zhiyang
TI Analysing the differential impact of the COVID-19 pandemic on the
   resilience of the tourism economy: A case study of the ChengduChongqing
   urban agglomeration in China
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Resilience of tourism economy; Urban network; Chengdu-Chongqing city
   agglomeration
ID CRITICAL INFRASTRUCTURE; VULNERABILITY; MANAGEMENT; DESTINATIONS;
   DISASTERS; COMMUNITY; REGIONS; CRISIS
AB The outbreak of the COVID-19 pandemic in 2019 had a profound impact on the tourism economy, underscoring the critical importance of assessing and analyzing tourism economic resilience. Traditionally, prior research predominantly focused on constructing evaluation systems based on three dimensions: Risk preparedness capability, Restoration capability, and Reorganization and modernization capacity. In this study, we take an innovative approach by incorporating urban network thinking and establishing a tourism economic network, while introducing the dimension of "The rationality of network structure." To comprehensively understand the dynamics of tourism economic resilience, we divided the period from 2018 to 2021 into three distinct phases: Stable period, Pre -shock period, and Shock period. This division allowed us to conduct comparative research that highlights the variations in tourism economic resilience across these different time frames. Additionally, we employed advanced methods, such as kernel density estimation and the GTWR model, for empirical analysis of tourism economic resilience within the Chengdu -Chongqing city cluster. The results of our research unveiled that Chengdu and Chongqing both demonstrate a remarkable level of resilience within their tourism economies. However, given their status as the "dual core" of the Chengdu -Chongqing city agglomeration, they are inherently more susceptible to significant fluctuations when confronted with shocks. The spatial pattern of tourism economic resilience is characterized by prominent wings on both sides, a North -South balance, and a central region with vulnerabilities. The predominant evolutionary patterns are marked by multi -level stabilization, moderate growth, and moderate decline. Ziyang is an exceptional region within the broader growth zone, and its reduced risk preparedness capability has led to an overall decline in tourism economic resilience. Furthermore, key influencing factors, including the economy, infrastructure, and ecological environment, exhibit significant spatial heterogeneity. In conclusion, our study offers valuable insights into researching tourism economic resilience under external shocks, such as the COVID-19 pandemic. These findings can be instrumental in guiding policymakers as they develop effective strategies to bolster tourism economic resilience.
C1 [Ding, Chenhao; Gao, Xin; Xie, Zhiyang] Chongqing Normal Univ, Sch Geog & Tourism, Chongqing, Peoples R China.
C3 Chongqing Normal University
RP Gao, X (corresponding author), Chongqing Normal Univ, Sch Geog & Tourism, Chongqing, Peoples R China.
EM planninggx@126.com
RI Ding, Chenhao/KHX-1790-2024
OI ding, chen hao/0009-0003-6093-901X
FU National Natural Science Foundation of China [41601149]; National Social
   Science Foundation of China [19XGL027]; Natural Science Foundation of
   Chongqing [cstc2019jcyj-msxmX0290]
FX This project was supported by the National Natural Science Foundation of
   China (41601149) : "Research on the pattern and mechanism of goods flow
   network in the Chengdu-Chongqing urban agglomeration based on highway
   big data and multivariate relation-ship network"; the National Social
   Science Foundation of China (19XGL027) : "Study on the regional division
   and governance mode of mountainous rural human settlements at the county
   scale"; the Natural Science Foundation of Chongqing
   (cstc2019jcyj-msxmX0290) : "Research on the spatial focus and dispersion
   of urban land-use changes based on the micro-perspective: methods and
   empirical evidence". We would also like to express our gratitude to the
   editors and anonymous reviewers for their valuable comments and
   suggestions.
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NR 87
TC 10
Z9 10
U1 22
U2 69
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 2024
VL 102
AR 104255
DI 10.1016/j.ijdrr.2024.104255
EA JAN 2024
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 JC0K4
UT WOS:001170836800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Andersson, E
AF Andersson, Erik
TI Urban landscapes and sustainable cities
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE ecosystem function; landscape scale; sustainable development; urban
   ecology
ID LONG-TERM; BIODIVERSITY; ECOLOGY; HETEROGENEITY; CONSERVATION;
   RESILIENCE; ECOSYSTEMS; CHALLENGES; MANAGEMENT; DISPERSAL
AB Ecological research targeting sustainable urban landscapes needs to include findings and methods from many lines of ecological research, such as the link between biodiversity and ecosystem function, the role of humans in ecosystems, landscape connectivity, and resilience. This paper reviews and highlights the importance of these issues for sustainable use of ecosystem services, which is argued to be one aspect of sustainable cities. The paper stresses the need to include social and economic factors when analyzing urban landscapes. Spatially explicit data can be used to assess the roles different green areas have in providing people with ecosystem services, and whether people actually have access to the services. Such data can also be used to assess connectivity and heterogeneity, both argued to be central for continuous, long-term provision of these services, and to determine the role urban form has for sustainability.
C1 Stockholm Univ, S-10691 Stockholm, Sweden.
C3 Stockholm University
RP Andersson, E (corresponding author), Stockholm Univ, S-10691 Stockholm, Sweden.
RI Andersson, Erik/AAE-9771-2019
OI Andersson, Erik/0000-0003-2716-5502
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NR 62
TC 188
Z9 231
U1 4
U2 148
PU RESILIENCE ALLIANCE
PI WOLFVILLE
PA ACADIA UNIV, BIOLOGY DEPT, WOLFVILLE, NS B0P 1X0, CANADA
SN 1708-3087
J9 ECOL SOC
JI Ecol. Soc.
PD JUN
PY 2006
VL 11
IS 1
AR 34
PG 7
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 064WR
UT WOS:000239121300032
DA 2025-04-22
ER

PT J
AU Anguelovski, I
   Shi, LD
   Chu, E
   Gallagher, D
   Goh, K
   Lamb, Z
   Reeve, K
   Teicher, H
AF Anguelovski, Isabelle
   Shi, Linda
   Chu, Eric
   Gallagher, Daniel
   Goh, Kian
   Lamb, Zachary
   Reeve, Kara
   Teicher, Hannah
TI Equity Impacts of Urban Land Use Planning for Climate Adaptation:
   Critical Perspectives from the Global North and South
SO JOURNAL OF PLANNING EDUCATION AND RESEARCH
LA English
DT Article
DE land use planning; climate adaptation; resilience planning; critical
   adaptation studies; environmental justice
ID POLITICAL-ECONOMY; CITY; TRANSFORMATION; CHALLENGES; JUSTICE; CITIES;
   RESILIENCE; SANTIAGO; KATRINA; WATER
AB A growing number of cities are preparing for climate change impacts by developing adaptation plans. However, little is known about how these plans and their implementation affect the vulnerability of the urban poor. We critically assess initiatives in eight cities worldwide and find that land use planning for climate adaptation can exacerbate socio-spatial inequalities across diverse developmental and environmental conditions. We argue that urban adaptation injustices fall into two categories: acts of commission, when interventions negatively affect or displace poor communities, and acts of omission, when they protect and prioritize elite groups at the expense of the urban poor.
C1 [Anguelovski, Isabelle] Univ Autonoma Barcelona, Inst Environm Sci & Technol, Barcelona, Spain.
   [Anguelovski, Isabelle] Inst Hosp Mar Invest Med, IMIM, Barcelona, Spain.
   [Shi, Linda; Gallagher, Daniel; Lamb, Zachary; Teicher, Hannah] MIT, Dept Urban Studies & Planning, Cambridge, MA 02139 USA.
   [Chu, Eric] Univ Amsterdam, Urban Studies, Dept Geog Planning & Int Dev Studies, NL-1012 WX Amsterdam, Netherlands.
   [Goh, Kian] Northeastern Univ, Boston, MA 02115 USA.
   [Reeve, Kara] RTI Int, Washington, DC USA.
C3 Autonomous University of Barcelona; Hospital del Mar Research Institute;
   Massachusetts Institute of Technology (MIT); University of Amsterdam;
   Northeastern University; Research Triangle Institute
RP Anguelovski, I (corresponding author), Univ Autonoma Barcelona, Inst Cienca & Tecnol Ambientals, Z Bldg, E-08193 Barcelona, Spain.
EM Isabelle.Anguelovski@uab.cat
RI Gallagher, Daniel/Q-7133-2019; Chu, Eric/O-6464-2015
OI Teicher, Hannah/0000-0002-8246-3134; Gallagher,
   Daniel/0000-0001-7291-5558; /0000-0003-1830-2392; Chu,
   Eric/0000-0002-5648-6615; Shi, Linda/0000-0002-2444-367X; Anguelovski,
   Isabelle/0000-0002-6409-5155
FU David L. Boren Fellowship; Indian Council for Research on International
   Economic Relations; ERC Starting Grant [678034]; Ramon y Cajal
   fellowship [RYC-2014-15870]; European Research Council (ERC) [678034]
   Funding Source: European Research Council (ERC)
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: Funding
   for the research was provided by the David L. Boren Fellowship,
   administered by the United States National Security Education Program,
   the Indian Council for Research on International Economic Relations, ERC
   Starting Grant 678034, and the Ramon y Cajal RYC-2014-15870 fellowship.
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NR 92
TC 397
Z9 444
U1 25
U2 239
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 SEP
PY 2016
VL 36
IS 3
BP 333
EP 348
DI 10.1177/0739456X16645166
PG 16
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA DV5JC
UT WOS:000382962200006
OA Green Published
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Yang, BF
   Zhang, L
   Zhang, B
   Xiang, Y
   An, L
   Wang, WF
AF Yang, Bofan
   Zhang, Lin
   Zhang, Bo
   Xiang, Yang
   An, Lei
   Wang, Wenfeng
TI Complex equipment system resilience: Composition, measurement and
   element analysis
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Resilience; Complex system; Structure resilience; Resource resilience;
   Strategy resilience; Resilience composition
ID RESOURCE-MANAGEMENT; SEISMIC RESILIENCE; FRAMEWORK; PERFORMANCE;
   STRATEGY; DESIGN; DEFINITIONS; FUTURE; SAFETY; URBAN
AB This paper analyzes the resilience composition of complex equipment system. By considering the system itself, resources, and the human factor, the resilience is analyzed from three components: structure resilience, resource resilience and strategy resilience. The impact of subsystems and their interrelationships on resilience are analyzed in structure resilience. In resource resilience, consumable and non-consumable resources are distinguished, and their influences on system resilience are analyzed, respectively. In strategy resilience, how people affect system resilience is discussed, and the nature of strategy resilience in resilience process is analyzed. Based on the above analysis, how these three components of resilience perform in actual systems is analyzed, and the three components of system resilience are refined into five specific factors involved in system resilience. Then, an improved resilience measurement method for complex equipment systems is given. In simulation, the five elements of resilience are analyzed and studied, respectively. Through simulation and comprehensive analysis, this paper can give a deeper understanding of the three components of system resilience. The quantitative and qualitative analysis on how to optimize the system under the framework of resilience engineering and the optimization principles of system are provided.
C1 [Yang, Bofan; Zhang, Lin; Zhang, Bo; Wang, Wenfeng] AF Engn Univ, Xian, Peoples R China.
   [Yang, Bofan; Xiang, Yang; An, Lei] Unit 94221, Tai An, Peoples R China.
C3 Air Force Engineering University
RP Wang, WF (corresponding author), AF Engn Univ, Xian, Peoples R China.
EM rfvmju01@163.com
RI An, Lei/GQB-0039-2022; Wang, Wenfeng/AAG-1369-2019; Xiang,
   Yang/ABF-9483-2020
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NR 93
TC 17
Z9 19
U1 64
U2 347
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 DEC
PY 2022
VL 228
AR 108783
DI 10.1016/j.ress.2022.108783
EA AUG 2022
PG 13
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA 5B1AB
UT WOS:000863306900003
OA hybrid
DA 2025-04-22
ER

PT J
AU Yin, K
   Wu, JJ
   Wang, WP
   Lee, DH
   Wei, Y
AF Yin, Kai
   Wu, Jianjun
   Wang, Weiping
   Lee, Der-Horng
   Wei, Yun
TI An integrated resilience assessment model of urban transportation
   network: A case study of 40 cities in China
SO TRANSPORTATION RESEARCH PART A-POLICY AND PRACTICE
LA English
DT Article
DE Resilience; Transportation network; Flood; Random disruption; Localized
   disruption; Traffic flow simulation
ID VULNERABILITY ANALYSIS; SCALE; RISK
AB The transportation network is essential in providing daily accessibility and essential service to societies. An acceptable level of service needs to be maintained in critical infrastructures, even in the case of disruptions. We develop an integrated model to assess the resilience of urban trans-portation networks when exposed to different disruptions. Resilience is evaluated from per-spectives of both traffic network topology and traffic flow. This model contains three parts: (1) a traffic flow simulation model to get flow distributed throughout the whole network, (2) different real-world disruptions are abstracted as random, localized, and flood disturbances, (3) functional and topological resilience are accessed by analyzing variations in travel time and connected components before and after a disruption occurs. 40 major cities are chosen to conduct resilience assessments. As the intensity of the disruption increases, common trends in the changes of functional and topological resilience values are observed and analyzed across all studied cities. In most cases, flood disruption is the least disruptive one of all three types of disruptions. Regression models are developed to estimate functional and topological resilience after random, localized, and flood disturbances. Possible resilience enhancement strategies are discussed based on ana-lyses of regression models. This study could aid stakeholders in gaining a clear understanding of resilience not only topologically but also from the perspective of traffic flow and offer them practical strategies to enhance resilience in face of disruptions.
C1 [Yin, Kai; Wu, Jianjun] Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.
   [Wang, Weiping] Beijing Normal Univ, Sch Natl Safety & Emergency Management, Zhuhai 519087, Peoples R China.
   [Lee, Der-Horng] Zhejiang Univ, Univ Illinois Urbana Champaign ZJU UIUC Inst, Haining 314400, Peoples R China.
   [Wei, Yun] Beijing Mass Transit Railway Operat Co Ltd, Beijing 100044, Peoples R China.
C3 Beijing Jiaotong University; Beijing Normal University; Zhejiang
   University
RP Wu, JJ (corresponding author), Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.; Wang, WP (corresponding author), Beijing Normal Univ, Sch Natl Safety & Emergency Management, Zhuhai 519087, Peoples R China.
EM jjwu1@bjtu.edu.cn; wpwang@bnu.edu.cn
RI KAI, YIN/KII-2791-2024; Lee, Der-Horng/H-7080-2012
OI Lee, Der-Horng/0000-0001-5428-8810; Wang, Weiping/0000-0001-7307-3735;
   kai, yin/0000-0002-4440-4846
FU National Natural Science Foundation of China [72288101, 71890972,
   71890970, 72001018]; State Key Laboratory of Rail Traffic Control and
   Safety [RCS2022ZT003]; SmartUrban Future (SURF) Laboratory; Zhejiang
   Province; Natural Science Foundation of Guangdong Province
   [2023A1515010604]
FX This work was supported by the National Natural Science Foundation of
   China (Nos. 72288101, 71890972/71890970, 72001018) , the State Key
   Laboratory of Rail Traffic Control and Safety (No. RCS2022ZT003) , the
   SmartUrban Future (SURF) Laboratory, Zhejiang Province, and the Natural
   Science Foundation of Guangdong Province (2023A1515010604) . We would
   like to thank Dr. Jianxi Gao in Department of Computer Science,
   Rensselaer Polytechnic Institute for his scientific suggestion for this
   work. The authors would like to thank the editor and anonymous referees
   for their valuable comments that help us to improve the quality of the
   paper.
CR A National Transportation Research Nonprofit (TRIP), 2022, NEW YORK TRANSP NUMB
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NR 66
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Z9 43
U1 110
U2 278
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0965-8564
EI 1879-2375
J9 TRANSPORT RES A-POL
JI Transp. Res. Pt. A-Policy Pract.
PD JUL
PY 2023
VL 173
AR 103687
DI 10.1016/j.tra.2023.103687
EA MAY 2023
PG 24
WC Economics; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Transportation
GA P8XY0
UT WOS:001053461300001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Anelli, A
   Mori, F
   Mendicelli, A
   Bramerini, F
AF Anelli, Angelo
   Mori, Federico
   Mendicelli, Amerigo
   Bramerini, Fabrizio
TI Mapping urban limit conditions in the perspective of disaster risk
   prevention and land management
SO ITALIAN JOURNAL OF GEOSCIENCES
LA English
DT Article
DE residential buildings; earthquake; risk analysis; resilience; limit
   conditions; GIS mapping; risk mitigation policies; emergency planning
ID RESILIENCE; STRATEGY; HAZARD
AB The destructive effects of earthquakes on the built environment have highlighted the structural fragilities of cities, especially in their old historic centres. In Italy, such effects have caused high social and economic losses, as well as the complete or partial loss of functionality of cities in the medium and long term and, in the worst cases, their total abandonment. In order to prevent and avoid these dramatic situations and outline policies for enhancing resilience and preparedness within communities, policy makers need predictive tools and models able to estimate damage scenarios, economic losses, deaths, injuries, homeless, as well as the corresponding beneficial impacts of retrofit interventions at the urban, regional and national scale. This paper presents a framework to map urban limit conditions for different earthquake scenarios and performance goals according to the expected percentage of residents in usable buildings as a proxy to measure resilience. The results are aggregated by municipality and by territorial context based on the population in usable and unusable residential buildings in the short and long time span due to their structural damages, which are evaluated by means of probabilistic risk assessments and census data. The proposed framework is applied to all municipalities in five regions of southern Italy and the results are discussed to understand the consequences of housing functionality losses from a resilience perspective understood as the capacity of an urban system to respond to seismic events and recover from them.
C1 [Anelli, Angelo; Mori, Federico; Mendicelli, Amerigo] Italian Natl Res Council IGAG, I-00010 Rome, Italy.
   [Bramerini, Fabrizio] Dept Civil Protect, Via Vitorchiano 2, I-00189 Rome, Italy.
RP Anelli, A (corresponding author), Italian Natl Res Council IGAG, I-00010 Rome, Italy.
EM angelo.anelli@igag.cnr.it
OI MORI, FEDERICO/0000-0002-4441-2037; Mendicelli,
   Amerigo/0000-0002-4975-0406; Anelli, Angelo/0000-0002-8321-3794
FU Italian Civil Protection Department within the project "Contratto
   concernente l'a.damento della Governance in materia di riduzione del
   rischio sismico e vulcanico ai fini di protezione civile nell'ambito del
   PON Governance e Capacita Istituzionale" [2014-2020-CIG6980737E65]
FX This research was supported by the Italian Civil Protection Department
   within the project "Contratto concernente l'a.damento della Governance
   in materia di riduzione del rischio sismico e vulcanico ai fini di
   protezione civile nell'ambito del PON Governance e Capacita
   Istituzionale 2014-2020-CIG6980737E65".
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TC 7
Z9 7
U1 1
U2 10
PU SOC GEOLOGICA ITALIANA
PI ROME
PA UNIV DEGLI STUDI LA SAPIENZA, DIPART SCI DELLA TERRA, PIAZZALE ALDO MORO
   5, ROME, I-00185, ITALY
SN 2038-1719
EI 2038-1727
J9 ITAL J GEOSCI
JI Ital. J. Geosci.
PD JUN
PY 2022
VL 141
IS 2
BP 167
EP 183
DI 10.3301/IJG.2022.11
PG 17
WC Geology; Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology
GA 2M9FR
UT WOS:000817997300001
DA 2025-04-22
ER

PT J
AU Bi, W
   Schooling, J
   Macaskill, K
AF Bi, Wei
   Schooling, Jennifer
   Macaskill, Kristen
TI Assessing flood resilience of urban rail transit systems: Complex
   network modelling and stress testing in a case study of London
SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Urban rail transit systems; Flood resilience assessment; Complex network
   modelling; Stress testing; Climate change; Transport infrastructure
ID FRAMEWORK
AB While the growing prevalence of extreme floods worldwide constantly compromises the service delivery of urban rail transit systems (URTSs), limited research attempts to measure the resilience of URTSs to flood disruptions. This study marks the first quantitative assessment of URTS flood resilience, focusing on dynamic operational performance of service delivery under realistic flood disruption scenarios. A model is tailored to incorporate a broader range of real-world factors into complex network modelling than adopted previously, including physical URTS network features, plausible flood disruption scenarios, and resourcing for recovery. The results of the London URTS case study suggest that the loss of satisfied travel demand is approximately 1.8 million, 4.2 million, and 7.2 million for the 30-year, 100-year, and 1000-year floods, leading to anticipated revenue loss of 3.1 pound million, 6.8 pound million, and 11.4 pound million, respectively (subject to modelling assumptions). This study highlights that the popular normalised resilience index can capture system performance loss but not necessarily recovery time: this matters when there is a long tail to the recovery process. This study provides a meaningful quantitative approach to assessing the current level of system resilience and lays the groundwork for testing the effectiveness of potential interventions for disaster risk reduction in operation and management.
C1 [Bi, Wei; Macaskill, Kristen] Univ Cambridge, Ctr Sustainable Dev, Dept Engn, Cambridge CB2 1PZ, England.
   [Bi, Wei; Schooling, Jennifer; Macaskill, Kristen] Univ Cambridge, Ctr Smart Infrastructure & Construct, Dept Engn, Cambridge CB3 0FA, England.
C3 University of Cambridge; University of Cambridge
RP Bi, W (corresponding author), Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England.
EM wb316@cam.ac.uk
RI Schooling, Jennifer/LJL-2236-2024
OI Bi, Wei/0000-0003-1042-4547
FU TfL professionals across multiple departments
FX The research outlined in this paper was bolstered by the engagement of
   Transport for London (TfL) , offering invaluable support on data,
   knowledge, and practical experience. The authors gratefully acknowledge
   the effort, time, and insightful feedbacks from TfL professionals across
   multiple departments. The opinions expressed in this paper are those of
   the Authors and do not represent those of TfL professionals involved in
   this work. The authors would also like to express their gratitude to the
   UK Environment Agency for their considerable efforts in generating the
   RoFSW maps and for their patience in addressing the enquiries.
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NR 57
TC 6
Z9 6
U1 53
U2 53
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 1361-9209
EI 1879-2340
J9 TRANSPORT RES D-TR E
JI Transport. Res. Part D-Transport. Environ.
PD SEP
PY 2024
VL 134
AR 104263
DI 10.1016/j.trd.2024.104263
EA AUG 2024
PG 26
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 H1D1H
UT WOS:001320906200001
OA hybrid
DA 2025-04-22
ER

PT J
AU Sweetapple, C
   Fu, GT
   Farmani, R
   Butler, D
AF Sweetapple, Chris
   Fu, Guangtao
   Farmani, Raziyeh
   Butler, David
TI Exploring wastewater system performance under future threats: Does
   enhancing resilience increase sustainability?
SO WATER RESEARCH
LA English
DT Article
DE Urban wastewater system; Sustainability; Tipping point; Threat;
   Resilience
ID REAL-TIME CONTROL; CLIMATE-CHANGE; ADAPTATION; MANAGEMENT; QUALITY;
   VULNERABILITY; IMPACT
AB Sustainability and resilience are both key considerations in the design and operation of wastewater systems. However, there is currently a lack of understanding of the relationship between these two goals and of the effects of increasing resilience on sustainability. This paper, therefore, presents a framework for analysis of the effects of resilience-enhancing interventions on sustainability, and applies this to an urban wastewater system. Given that sustainability addresses the long term, the framework includes a novel sustainability assessment approach which captures a continuum of potential future conditions and enables identification of tipping points where applicable. This method allows a wide range of potential futures to be captured whilst removing the need to develop scenarios or future projections. While it may be possible to develop interventions that are beneficial in terms of their effects on both resilience and sustainability, the results obtained from the case study demonstrate that implementing measures designed to increase resilience of an integrated urban wastewater system does not guarantee a universal improvement in sustainability. Therefore, when proposing measures to increase resilience, the potential effects on sustainability should be considered also. It is also shown that the extent of any negative effects on system sustainability can vary significantly depending on future conditions, with the case study intervention (increasing pump capacity) achieving the highest degree of sustainability if rainfall depths or imperviousness in the catchments reduce. However, trade-offs between sustainability indicators are present irrespective of future conditions. Furthermore, while an intervention that enhances resilience may be considered sustainable with respect to specific indicators under current conditions, tipping points exist and it will cease to be sustainable if future threat magnitudes exceed these. (C) 2019 The Authors. Published by Elsevier Ltd.
C1 [Sweetapple, Chris; Fu, Guangtao; Farmani, Raziyeh; 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 Sweetapple, C (corresponding author), Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, North Pk Rd, Exeter EX4 4QF, Devon, England.
EM C.Sweetapple@exeter.ac.uk
RI Fu, Guangtao/ABE-3874-2021; Sweetapple, Chris/GQQ-1426-2022;
   Gonzalez-Barrio, David/MHQ-7861-2025; Farmani, Raziyeh/D-3457-2012
OI Fu, Guangtao/0000-0003-1045-9125; Farmani, Raziyeh/0000-0001-8148-0488
FU UK Engineering & Physical Sciences Research Council [EP/K006924/1];
   EPSRC [EP/K006924/1] Funding Source: UKRI
FX This work forms part of a 5-year fellowship for the last author funded
   by the UK Engineering & Physical Sciences Research Council
   (EP/K006924/1).
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NR 42
TC 23
Z9 25
U1 1
U2 48
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 FEB 1
PY 2019
VL 149
BP 448
EP 459
DI 10.1016/j.watres.2018.11.025
PG 12
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA HK8EC
UT WOS:000458221200044
PM 30472547
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Dennis, M
   James, P
AF Dennis, M.
   James, P.
TI Urban Social-ecological Innovation: Implications for Adaptive Natural
   Resource Management
SO ECOLOGICAL ECONOMICS
LA English
DT Article
ID MARYLAND GREEN INFRASTRUCTURE; ECOSYSTEM SERVICES; COMMUNITY GARDENS;
   SUSTAINABLE DEVELOPMENT; RESPONSE DIVERSITY; FOOD SECURITY; RESILIENCE;
   BIODIVERSITY; AGRICULTURE; FRAMEWORK
AB The urban landscape, as home to the majority of the global population, has been the scene of significant and lasting ecological degradation. Consequently, modern cities rely on distant and geographically vast areas for the provision of a range of important ecosystem services. Urban centres also, however, comprise important hubs of human invention and innovation. Collective approaches to the use and management of green space in urban social-ecological systems, as a form of social-ecological innovation, provide a valuable resource in the production and adaptive management of local ecosystem services. Urban social-ecological innovation (USED, therefore, comprises an important consideration in urban environmental governance. Research on innovation in urban social-ecological systems is analysed here and an evaluation of the insights thereby derived culminates in the development of a conceptual framework. We propose that such a framework can be applied by practitioners and researchers alike to evaluate the mediating nature of USEI towards increasing the resilience of productive urban landscapes.
C1 [Dennis, M.] Univ Manchester, Dept Geog, Sch Environm Educ & Dev, Oxford Rd, Manchester M13 9PL, Lancs, England.
   [James, P.] Univ Salford, Coll Sci & Technol, Sch Environm & Life Sci, Salford M5 4WT, Lancs, England.
C3 University of Manchester; University of Salford
RP Dennis, M (corresponding author), Univ Manchester, Room 1-033,Arthur Lewis Bldg,Oxford Rd, Manchester M13 9PL, Lancs, England.
EM matthew.dennis@manchester.ac.uk
RI Dennis, Matthew/MIP-6720-2025
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NR 166
TC 14
Z9 17
U1 3
U2 91
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0921-8009
EI 1873-6106
J9 ECOL ECON
JI Ecol. Econ.
PD AUG
PY 2018
VL 150
BP 153
EP +
DI 10.1016/j.ecolecon.2018.04.005
PG 23
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 GT2XQ
UT WOS:000444364000013
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Goh, KC
   Kurniawan, TA
   Othman, MHD
   Anouzla, A
   Aziz, F
   Ali, I
   Casila, JCC
   Khan, MI
   Zhang, DD
   Dai, W
   Onn, CW
   Seow, TW
AF Goh, Kai Chen
   Kurniawan, Tonni Agustiono
   Othman, Mohd Hafiz Dzarfan
   Anouzla, Abdelkader
   Aziz, Faissal
   Ali, Imran
   Casila, Joan Cecilia C.
   Khan, Muhammad Imran
   Zhang, Dongdong
   Dai, Wei
   Onn, Choo Wou
   Seow, Ta Wee
TI Reinforcing urban resilience through sound landfill management:
   Addressing global climatic challenges with novel solutions
SO PROCESS SAFETY AND ENVIRONMENTAL PROTECTION
LA English
DT Article
DE Climate change; Landfill management; Net zero emission; Urban
   resilience; Waste-to-Energy
ID SOLID-WASTE MANAGEMENT; WATER-TREATMENT; ARTIFICIAL-INTELLIGENCE;
   ANAEROBIC-DIGESTION; REMOVAL; LEACHATE; MACHINE; PERFORMANCE; OXIDATION;
   NITROGEN
AB This study explores the critical role of effective landfill management in enhancing urban resilience amidst the growing challenges of climate change. With global municipal solid waste projected to rise 69 % from 2016 levels to 3.4 billion tons by 2050, addressing improper waste disposal-currently affecting 67 % of waste-has become imperative. This mismanagement contributes significantly to environmental degradation, public health risks, and soaring economic costs, projected to increase by 154 % from 2020 to USD 640.3 billion by 2050 without intervention. The study emphasizes the necessity for advanced landfill technologies, such as bioreactor landfills, smart waste management systems, and the integration of digital twins and IoT. These innovations can enhance waste processing efficiency, cut greenhouse gas emissions, and yield economic benefits. For instance, bioreactor landfills can boost methane (CH4) production by up to 49 %, facilitating renewable energy generation. Additionally, green infrastructure, waste-to-energy technologies, and improved landfill designs are proposed to mitigate the effects of climate change, including extreme weather events that threaten landfill integrity and emissions stability. Key findings highlight the importance of integrating landfill resilience into urban planning and sustainable waste management strategies. A holistic approach combining technology, policy reforms, and community participation is recommended to build robust urban waste management systems capable of withstanding climate-related challenges. This work underscores the transformative potential of advanced waste management technologies in achieving resilient and sustainable urban systems, contributing significantly to global efforts in combating climate change.
C1 [Goh, Kai Chen; Seow, Ta Wee] Univ Tun Hussein Onn Malaysia, Fac Technol Management & Business, Dept Construct Management, Parit Raja 86400, Malaysia.
   [Kurniawan, Tonni Agustiono] Xiamen Univ, Coll Environm & Ecol, Xiamen 361102, Fujian, Peoples R China.
   [Othman, Mohd Hafiz Dzarfan] Univ Teknol Malaysia, Fac Chem & Energy Engn, Adv Membrane Technol Res Ctr AMTEC, Skudai 81310, Johor Bahru, Malaysia.
   [Anouzla, Abdelkader] Hassan II Univ, Fac Sci & Technol, Lab Proc Engn & Environm, Mohammadia 28806, Morocco.
   [Aziz, Faissal] Cadi Ayyad Univ, Fac Sci Semlalia, Lab Water Sci Microbial Biotechnol & Nat Resources, BP 2390, Marrakech 40000, Morocco.
   [Ali, Imran] Jamia Millia Islamia, Dept Chem, New Delhi 110025, India.
   [Casila, Joan Cecilia C.] Univ Philippines Banos, Land & Water Resources Engn Div, IABE, CEAT, Laguna 4031, Philippines.
   [Khan, Muhammad Imran] Prince Mohammad Bin Fahd Univ, Coll Engn, Dept Mech Engn, Al Khobar, Saudi Arabia.
   [Zhang, Dongdong; Dai, Wei] Guangxi Univ, Sch Elect Engn, Nanning 530004, Guangxi, Peoples R China.
   [Onn, Choo Wou] INTI Int Univ, Putra Nilai 71800, Negeri Sembilan, Malaysia.
C3 University of Tun Hussein Onn Malaysia; Xiamen University; Universiti
   Teknologi Malaysia; Hassan II University of Casablanca; Cadi Ayyad
   University of Marrakech; Jamia Millia Islamia; University of the
   Philippines System; University of the Philippines Los Banos; Prince
   Mohammad Bin Fahd University; Guangxi University; INTI International
   University
RP Goh, KC (corresponding author), Univ Tun Hussein Onn Malaysia, Fac Technol Management & Business, Dept Construct Management, Parit Raja 86400, Malaysia.; Kurniawan, TA (corresponding author), Xiamen Univ, Coll Environm & Ecol, Xiamen 361102, Fujian, Peoples R China.
EM kaichen@uthm.edu.my; tonni@xmu.edu.cn
RI ANOUZLA, Abdelkader/AAO-3329-2020; Ta Wee, Seow/AAH-7587-2021;
   Kurniawan, Tonni Agustiono/B-8172-2008; Casila, Joan/AAB-6749-2019; GOH,
   KAI CHEN/E-3829-2018; Ali, Prof. Imran/F-7710-2010; Imran,
   Muhammad/AAQ-9338-2021; Dongdong, Zhang/ABG-9989-2020; Othman, Mohd
   Hafiz Dzarfan/J-8230-2015; Aziz, Faissal/AAH-6594-2021
OI Casila, Joan Cecilia/0000-0001-6319-8999
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NR 169
TC 0
Z9 0
U1 5
U2 5
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0957-5820
EI 1744-3598
J9 PROCESS SAF ENVIRON
JI Process Saf. Environ. Protect.
PD MAR
PY 2025
VL 195
AR 106789
DI 10.1016/j.psep.2025.106789
EA JAN 2025
PG 25
WC Engineering, Environmental; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA W8U8O
UT WOS:001421262700001
DA 2025-04-22
ER

PT J
AU Pricope, NG
   Dalton, EG
AF Pricope, Narcisa G.
   Dalton, Elijah G.
TI Mapping coastal resilience: Precision insights for green infrastructure
   suitability
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Green infrastructure suitability index (GISI); Flood risk mitigation;
   Urban resilience; Remote sensing; Cloud-computing; Nature-based
   solutions
ID DIFFERENCE WATER INDEX; FOREST DISTURBANCE; LANDTRENDR; NDWI
AB Addressing the need for effective flood risk mitigation strategies and enhanced urban resilience to climate change, we introduce a cloud-computed Green Infrastructure Suitability Index (GISI) methodology. This approach combines remote sensing and geospatial modeling to create a cloud-computed blend that synthesizes land cover classifications, biophysical variables, and flood exposure data to map suitability for green infrastructure (GI) implementation at both street and landscape levels. The GISI methodology provides a flexible and robust tool for urban planning, capable of accommodating diverse data inputs and adjustments, making it suitable for various geographic contexts. Applied within the Wilmington Urban Area Metropolitan Planning Organization (WMPO) in North Carolina, USA, our findings show that residential parcels, constituting approximately 91% of the total identified suitable areas, are optimally positioned for GI integration. This underscores the potential for embedding GI within developed residential urban landscapes to bolster ecosystem and community resilience. Our analysis indicates that 7.19% of the WMPO area is highly suitable for street-level GI applications, while 1.88% is ideal for landscape GI interventions, offering opportunities to enhance stormwater management and biodiversity at larger and more connected spatial scales. By identifying specific parcels with high suitability for GI, this research provides a comprehensive and transferable, data-driven foundation for local and regional planning efforts. The scalability and adaptability of the proposed modeling approach make it a powerful tool for informing sustainable urban development practices. Future work will focus on more spatiallyresolved models of these areas and the exploration of GI's multifaceted benefits at the local level, aiming to guide the deployment of GI projects that align with broader environmental and social objectives.
C1 [Pricope, Narcisa G.] Mississippi State Univ, Dept Geosci, Starkville, MS USA.
   [Dalton, Elijah G.] Spatial Informat Grp SIG, Pleasanton, CA USA.
C3 Mississippi State University
RP Pricope, NG (corresponding author), 301 Res Blvd, Starkville, MS 39759 USA.
EM npricope@research.msstate.edu; edalton@sig-gis.com
RI Pricope, Narcisa/MEQ-2121-2025; PRICOPE, NARCISA/D-7123-2015
OI PRICOPE, NARCISA/0000-0002-6591-7237
FU National Aeronautics and Space Administration (NASA) Research
   Opportunities in Space and Earth Science (ROSES) Equity and
   Environmental Justice (EEJ) grant [80NSSC22K1656]
FX Funding for this work was provided by the National Aeronautics and Space
   Administration (NASA) Research Opportunities in Space and Earth Science
   (ROSES) Equity and Environmental Justice (EEJ) grant no. 80NSSC22K1656
   originally to PI Pricope. We would like to thank Dr. Joanne Halls and
   Leah Mayo from the University of North Carolina Wilmington, Crystal
   Dixon from Wake Forest University, and our community collaborators Craig
   Harris, Greer Shivers, and Abby Lorenzo from the City of Wilmington and
   Wilmington Metropolitan Planning Organization for their continued
   support and dedication to this project.
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NR 56
TC 0
Z9 0
U1 2
U2 2
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 124511
DI 10.1016/j.jenvman.2025.124511
EA FEB 2025
PG 13
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA X9S8C
UT WOS:001428661500001
PM 39965494
OA hybrid
DA 2025-04-22
ER

PT J
AU Anthopoulos, LG
   Pourzolfaghar, Z
   Lemmer, K
   Siebenlist, T
   Niehaves, B
   Nikolaou, I
AF Anthopoulos, Leonidas G.
   Pourzolfaghar, Zohreh
   Lemmer, Kristina
   Siebenlist, Tobias
   Niehaves, Bjoern
   Nikolaou, Ioannis
TI Smart cities as hubs: Connect, collect and control city flows
SO CITIES
LA English
DT Article
DE Smart city; Hub; IoT; Data; Smart services; Architectures; Platforms
ID INFORMATION
AB Regardless the Smart City (SC) broad scope, which ranges from a service-oriented ecosystem with the use of almost all the emerging technologies to a resilient urban environment, practice shows that the SC is mostly capitalized for utility upgrades, urban renovation, and real-time city monitoring. Moreover, recent city imple-mentations register attempts to utilize technology for controlling the entire city flows. The aim of this communication paper is to discuss the SC hubness and more specifically the fact that the SC can become a "hub" that collects, processes, and transmits data; brings together people to co-design and evolve; and controls service, material and people flows in all city types. As a result, this paper defines the role, the uses and the architecture of this "SC-as-a-Hub" operation labeled "SCHub", which can standardize and control all the city flows.
C1 [Anthopoulos, Leonidas G.; Nikolaou, Ioannis] Univ Thessaly, Thessaly, Greece.
   [Pourzolfaghar, Zohreh] Maynooth Univ, Sch Business, Maynooth, Kildare, Ireland.
   [Lemmer, Kristina; Niehaves, Bjoern] Univ Siegen, Informat Syst, Siegen, Germany.
   [Siebenlist, Tobias] Heinrich Heine Univ Dusseldorf, Dept Informat Sci, Dusseldorf, Germany.
C3 University of Thessaly; Maynooth University; Universitat Siegen;
   Heinrich Heine University Dusseldorf
RP Anthopoulos, LG (corresponding author), Univ Thessaly, Thessaly, Greece.
EM lanthopo@uth.gr; zohreh.pourzolfaghar@mu.ie;
   kristina.lemmer@uni-siegen.de; tobias.siebenlist@hhu.de;
   bjoern.niehaves@uni-siegen.de; ionikolaou@uth.gr
RI Anthopoulos, Leonidas/AAU-6487-2020; Nikolaou, Ioannis/HLQ-2671-2023
OI Nikolaou, Ioannis/0000-0001-9170-9661; , Zohreh/0000-0001-8282-7260
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NR 36
TC 8
Z9 8
U1 7
U2 72
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JUN
PY 2022
VL 125
AR 103660
DI 10.1016/j.cities.2022.103660
EA MAR 2022
PG 10
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 0P2IC
UT WOS:000784044500011
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Smart, J
   Nel, E
   Binns, T
AF Smart, Jessie
   Nel, Etienne
   Binns, Tony
TI Economic crisis and food security in Africa: Exploring the significance
   of urban agriculture in Zambia's Copperbelt province
SO GEOFORUM
LA English
DT Article
DE Urban agriculture; Zambia; Copperbelt; Resilience; Food security
ID DEVELOPING-COUNTRIES; URBANIZATION; RESILIENCE; WELFARE; CITIES
AB Urban agriculture is gaining increasing recognition as a key urban survival strategy in the rapidly growing, but food insecure, cities of the South, and in Africa in particular. The overall significance of the activity has been the subject of considerable academic debate. This paper contributes to this debate through the presentation of the findings from recent field-based research in the Copperbelt province of Zambia, a region where the practice of urban agriculture and the role it plays in urban livelihoods appears to be more significant than in many other urban contexts. The region was characterised by a historical dependence on copper mining and associated industries which experienced a severe economic downturn from the late 1980s. In this context, urban agriculture has become a key livelihood strategy and a means to assure food security. Participation rates in urban agriculture in the region are much higher than in other African urban centres and experiences in the Copperbelt province could inform policy and practice in other areas which are experiencing economic crises. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Smart, Jessie; Nel, Etienne; Binns, Tony] Univ Otago, Dept Geog, Dunedin 9054, New Zealand.
   [Nel, Etienne] Univ Johannesburg, Sch Tourism & Hospitality Studies, Johannesburg, South Africa.
C3 University of Otago; University of Johannesburg
RP Nel, E (corresponding author), Univ Otago, Dept Geog, POB 56, Dunedin 9054, New Zealand.
EM Etienne.nel@otago.ac.nz
OI Binns, Tony/0000-0003-1803-7218; Nel, Etienne/0000-0002-8401-3698;
   Smart, Jessie/0000-0003-1503-7669
FU International Development Research Fund of the New Zealand Ministry of
   Foreign Affairs and Trade
FX The authors are grateful to the International Development Research Fund
   of the New Zealand Ministry of Foreign Affairs and Trade for a generous
   grant which provided valuable support for this research.
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NR 64
TC 35
Z9 38
U1 1
U2 35
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0016-7185
EI 1872-9398
J9 GEOFORUM
JI Geoforum
PD OCT
PY 2015
VL 65
BP 37
EP 45
DI 10.1016/j.geoforum.2015.07.009
PG 9
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA CT5OO
UT WOS:000362859900004
DA 2025-04-22
ER

PT J
AU Liu, SW
   Li, YL
   Shen, ZH
   Yu, JY
   Xu, ZY
AF Liu, Shuwen
   Li, Youli
   Shen, Zhihan
   Yu, Jinyi
   Xu, Zhaoyi
TI The impact of population agglomeration on economic resilience: Evidence
   from 280 cities in China
SO INTERNATIONAL REVIEW OF ECONOMICS & FINANCE
LA English
DT Article
DE Population agglomeration; Economic resilience; Consumer effective
   demand; Technological innovation
ID REGIONAL RESILIENCE; GROWTH; MIGRATION; URBAN; URBANIZATION;
   PRODUCTIVITY; CONGESTION; EUROPE; INCOME; MODEL
AB This paper uses data from 280 cities in the period from 2008 to 2021 to investigate the impact of population agglomeration on economic resilience. The empirical results reveal that population agglomeration significantly improves economic resilience. Moreover, these findings demonstrate the robustness including a new additional sample, alternative measures for economic resilience, the inclusion of supplementary control variables, and the application of the instrumental variable methodology. Furthermore, population agglomeration improves economic resilience through stimulating consumer demand and promoting technological innovation. Analyses also show that, compared to cities with high levels of informatization, industrialization and marketization, population agglomeration is more likely to improve economic resilience. Overall, this study provides new insights into population agglomeration and economic resilience.
C1 [Liu, Shuwen; Li, Youli] Hunan Univ Technol & Business, Coll Accounting, Changsha 410205, Peoples R China.
   [Shen, Zhihan] Capital Univ Econ & Business, Int Sch Econ & Management, Beijing 100070, Peoples R China.
   [Yu, Jinyi] Renmin Univ China, Sch Arts, Sch Econ, Beijing 100872, Peoples R China.
   [Xu, Zhaoyi] Tsinghua Univ, Sch Econ & Management, Beijing 100062, Peoples R China.
C3 Hunan University of Technology & Business; Capital University of
   Economics & Business; Renmin University of China; Tsinghua University
RP Shen, ZH (corresponding author), Capital Univ Econ & Business, Int Sch Econ & Management, Beijing 100070, Peoples R China.
EM zhihan.shen@cueb.edu.cn
RI Li, Youli/CAA-0733-2022; Liu, Shuwen/JAC-5203-2023
FU Open Economy in China; Natural Science Foundation of Hunan Province of
   China [2023JJ40244]; Education Department of Hunan Province of China
   [21B0569]
FX * Thanks for the International Conference on Urban Development and Open
   Economy in China support and expert suggestions. ** The paper is granted
   by Natural Science Foundation of Hunan Province of China (Grant nos.
   2023JJ40244) and Education Department of Hunan Province of China (Grant
   nos. 21B0569) .
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NR 95
TC 8
Z9 8
U1 47
U2 70
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1059-0560
EI 1873-8036
J9 INT REV ECON FINANC
JI Int. Rev. Econ. Financ.
PD JUL
PY 2024
VL 94
AR 103429
DI 10.1016/j.iref.2024.103429
EA JUL 2024
PG 13
WC Business, Finance; Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA XS0D7
UT WOS:001263540300001
DA 2025-04-22
ER

PT J
AU Ramos, SJ
AF Ramos, Stephen J.
TI Resilience, Path Dependence, and the Port: The Case of Savannah
SO JOURNAL OF URBAN HISTORY
LA English
DT Article
DE Savannah; port; resilience; path dependence; region
AB The article takes an historical perspective on Savannah's port since 1733 to examine those unique port factors that contributed to the city's resilience. I review resilience and path dependence literatures for seaport research, and I identify and review three critical junctures from Savannah's history to explore the port city's resilience. I then consider how the region once dominated by agricultural production began to move toward an industrial base, with World War II shipbuilding. I conclude by reflecting on how these episodes have helped to establish a trajectory of resilience for Savannah that continues today, suggesting that actor network theory and urban design aesthetics need to be additional criteria for historical port city resilience analysis.
C1 [Ramos, Stephen J.] Univ Georgia, Coll Environm & Design, 285 S Jackson St, Athens, GA 30602 USA.
C3 University System of Georgia; University of Georgia
RP Ramos, SJ (corresponding author), Univ Georgia, Coll Environm & Design, 285 S Jackson St, Athens, GA 30602 USA.
EM sramos@uga.edu
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NR 116
TC 8
Z9 8
U1 4
U2 37
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0096-1442
EI 1552-6771
J9 J URBAN HIST
JI J. Urban Hist.
PD MAR
PY 2021
VL 47
IS 2
SI SI
BP 250
EP 271
DI 10.1177/0096144217704183
PG 22
WC History; History Of Social Sciences; Urban Studies
WE Social Science Citation Index (SSCI); Arts &amp; Humanities Citation Index (A&amp;HCI)
SC History; Social Sciences - Other Topics; Urban Studies
GA QP8AG
UT WOS:000624052900002
DA 2025-04-22
ER

PT J
AU Sobhaninia, S
   Meerow, S
   Dugger, A
   Hopson, T
   He, CL
   Wilhelmi, O
AF Sobhaninia, Saeideh
   Meerow, Sara
   Dugger, Aubrey
   Hopson, Thomas
   He, Cenlin
   Wilhelmi, Olga
TI Where should the green go? A systematic literature review of methods for
   siting green infrastructure to mitigate rising heat and stormwater risks
   in cities worldwide
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Review
DE Green infrastructure; Urban resilience; Spatial planning; Heat;
   Stormwater management; Nature-based solutions; Urban forestry
ID LOW-IMPACT DEVELOPMENT; MULTIOBJECTIVE OPTIMIZATION; ECOSYSTEM SERVICES;
   VACANT LAND; URBAN; CITY; FRAMEWORK; PHOENIX; RESILIENCE; MANAGEMENT
AB Heat and flooding are frequently cited as among the deadliest and costliest climate hazards, respectively, and both are intensifying due to urban developments and climate change. In response, many cities worldwide are increasingly turning to green infrastructure (GI) to mitigate climate risks such as extreme heat and flooding while enhancing overall resilience. However, existing research suggests that knowledge systems for GI globally have significant gaps that undermine the effectiveness of these investments. These include a narrow focus on limited functions while neglecting others and a lack of research on the decision-making processes that determine which GI functions are prioritized and where. The metrics and models used for siting GI likely shape its effectiveness in managing stormwater and mitigating heat risks in urban settings as well as who benefits from GI investments. This study systematically reviews the academic literature on GI spatial planning worldwide to analyze the GI types, indicators, and methods proposed for siting GI to address heat and stormwater challenges in cities. Our findings reveal that the spatial planning of GI for heat and stormwater remains largely separate in the academic literature, despite widespread calls for multifunctional GI. GI siting for stormwater management has a more robust and consistent body of literature with similar methodologies compared to that for heat risk mitigation, and the types of GI used differ between the two focus areas. This study provides valuable insights that can inform more integrated and effective approaches to GI planning, enhancing urban resilience to climate hazards.
C1 [Sobhaninia, Saeideh; Meerow, Sara] Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ 85281 USA.
   [Dugger, Aubrey; Hopson, Thomas; He, Cenlin; Wilhelmi, Olga] NSF Natl Ctr Atmospher Res, Boulder, CO USA.
C3 Arizona State University; Arizona State University-Tempe
RP Sobhaninia, S (corresponding author), Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ 85281 USA.
EM saeideh.sobhaninia@asu.edu; Sara.Meerow@asu.edu; adugger@ucar.edu;
   hopson@ucar.edu; cenlinhe@ucar.edu; olgaw@ucar.edu
FU NSF NCAR
FX or the NSF NCAR. This work was done/data was collected prior to January
   2025.r or the NSF NCAR. This work was done/data was collected prior to
   January 2025.
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J9 URBAN FOR URBAN GREE
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VL 107
AR 128790
DI 10.1016/j.ufug.2025.128790
PG 15
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA 1DF2H
UT WOS:001462240300001
DA 2025-04-22
ER

PT J
AU Kurth, D
AF Kurth, Detlef
TI Urban Development Strategies for Resilient and Sustainable European
   Cities Concluding Remarks to the Special Issue
SO DISP
LA English
DT Article
AB The corona virus started spreading worldwide in early 2020. In the last 12 months, the pandemic has reshaped the world. Its consequences for urban development are still unclear. So far, it is quite obvious that the lockdown and the pandemic crisis management will have a strong impact on the socio-economic development - especially in cities - and will accelerate digitization. Like in a burning glass, this pandemic makes visible long existing problems in urban development and forces us to face unresolved problems of sustainable urban development. In this contribution we give sketches of possible consequences of this crisis on cities and city-regions.
C1 [Kurth, Detlef] Tech Univ Kaiserslautern, Fac Spatial & Environm Planning, Chair Titan Planning, Pfaffenhergstr 95, D-67663 Kaiserslautern, Germany.
C3 University of Kaiserslautern
RP Kurth, D (corresponding author), Tech Univ Kaiserslautern, Fac Spatial & Environm Planning, Chair Titan Planning, Pfaffenhergstr 95, D-67663 Kaiserslautern, Germany.
EM detlef.kurth@ru.uni-kl.de
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NR 8
TC 2
Z9 2
U1 0
U2 5
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0251-3625
EI 2166-8604
J9 DISP
JI disP
PY 2020
VL 56
IS 4
BP 122
EP 124
DI 10.1080/02513625.2020.1906065
PG 3
WC Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Public Administration
GA RF5SD
UT WOS:000634897400014
DA 2025-04-22
ER

PT J
AU Aziz, F
   Wang, XQ
   Mahmood, MQ
   Awais, M
   Trenouth, B
AF Aziz, Farhan
   Wang, Xiuquan
   Mahmood, Muhammad Qasim
   Awais, Muhammad
   Trenouth, Bill
TI Coastal urban flood risk management: Challenges and opportunities - A
   systematic review
SO JOURNAL OF HYDROLOGY
LA English
DT Review
DE Coastal urban flood risk management; Urbanization; Climate change;
   Artificial intelligence; Green funding; Nature-based solutions;
   Participatory planning and governance
ID CLIMATE-CHANGE; REDUCTION; AREAS; RESILIENCE; GOVERNANCE; VULNERABILITY;
   IMPACTS; BOND
AB Generational mechanisms and spatio-temporal evolution patterns of coastal urban flood risk involve complex interactions between climate change, sea level rise and human-induced factors, necessitating integrated adaptive flood management strategies to mitigate evolving vulnerabilities. This systematic review offers a thorough assessment of the challenges and strategic opportunities for sustainable adaptation in managing flood risk in coastal urban areas. It integrates emerging innovative technologies and financial solutions to identify promising approaches to implement mitigation strategies and improve coastal urban flood resilience. Enhancing governance and policy frameworks is crucial for the successful implementation of coastal urban flood risk management (CUFRM) plans. An innovative participatory planning framework is developed to promote flood management practices which are socially inclusive and equitable. Funding for green infrastructure and nature-based solutions and the strategic use of public-private partnerships are effective methods for advancing sustainable flood risk management (FRM). The advancements in emerging technologies, such as artificial intelligence (AI), machine learning (ML), deep learning (DL), social media and digital twin technologies, provide dynamic and collaborative platforms for simulating flood scenarios and have potential to significantly improve CUFRM practices. In the end, a cross-country comparison of current practices in Australia, China, the Netherlands, the UK and the USA reveals a diverse range of approaches and valuable insights derived from regional experiences. The review provides a comprehensive analysis for researchers, policymakers and practitioners aiming to improve flood resilience in coastal metropolitan regions by learning from effective UFRM approaches that enhance governance structures, infrastructure resilience and funding mechanisms.
C1 [Aziz, Farhan; Wang, Xiuquan; Mahmood, Muhammad Qasim; Awais, Muhammad] Univ Prince Edward Island, Canadian Ctr Climate Change & Adaptat, Prince Edward Island, PE C0A 2A0, Canada.
   [Aziz, Farhan; Wang, Xiuquan; Mahmood, Muhammad Qasim; Awais, Muhammad] Univ Prince Edward Island, Sch Climate Change & Adaptat, Prince Edward Island, PE C1A 4P3, Canada.
   [Trenouth, Bill] AECOM Canada Ltd, 250 York St Citi Plaza Suite 410, London, ON N6A6K2, Canada.
RP Wang, XQ (corresponding author), Univ Prince Edward Island, Canadian Ctr Climate Change & Adaptat, Prince Edward Island, PE C0A 2A0, Canada.; Wang, XQ (corresponding author), Univ Prince Edward Island, Sch Climate Change & Adaptat, Prince Edward Island, PE C1A 4P3, Canada.
EM xxwang@upei.ca
RI Wang, Xiuquan/Q-9659-2018; Aziz, Farhan/ADL-2988-2022
OI Aziz, Farhan/0000-0002-4308-4414; Mahmood, Muhammad
   Qasim/0000-0001-9003-9352
FU Research Council of Canada; Canada Foundation for Innovation, Atlantic
   Canada Opportunities Agency; Natural Resources Canada, Government of
   Prince Edward Island and Atlantic Computational Excellence Network
   (ACENET)
FX This research was supported by Natural Science and Engineering Research
   Council of Canada, Canada Foundation for Innovation, Atlantic Canada
   Opportunities Agency, Natural Resources Canada, Government of Prince
   Edward Island and Atlantic Computational Excellence Network (ACENET) .
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NR 121
TC 3
Z9 4
U1 56
U2 56
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 2024
VL 645
AR 132271
DI 10.1016/j.jhydrol.2024.132271
EA NOV 2024
PN B
PG 18
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA M4F5Z
UT WOS:001357119700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Haque, AN
   Dodman, D
   Hossain, MM
AF Haque, Anika Nasra
   Dodman, David
   Hossain, Md. Mohataz
TI Individual, communal and institutional responses to climate change by
   low-income households in Khulna, Bangladesh
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE poverty; climate change; Bangladesh; resilience; urban
ID CHANGE ADAPTATION; ENVIRONMENTAL-CHANGE; URBAN-POOR; RESILIENCE;
   VULNERABILITY; CITIES; DURBAN; POLICY
AB The relationship between "coping" and "resilience" increasingly features in academic, policy and practical discussions on adaptation to climate change in urban areas. This paper examines this relationship in the context of households in "extreme poverty" in the city of Khulna, Bangladesh. It draws on a quantitative data set based on 550 household interviews in low-income and informal settlements that identified the extent of the underlying drivers of vulnerability in this setting, including very low income, inadequate shelter, poor nutritional status and limited physical assets. A series of focus groups were used to explore the ways in which physical hazards have interacted with this underlying vulnerability, as a means to understand the potential impacts of climate change on this particular group of urban residents. These outcomes include frequent water-logging, the destruction of houses and disruption to the provision of basic services. The main focus of the paper is on describing the practices of low-income urban residents in responding to climate-related shocks and stresses, placing these in a particular political context, and drawing lessons for urban policies in Bangladesh and elsewhere. A wide range of specific adaptation-related activities can be identified, which can be grouped into three main categories - individual, communal and institutional. The paper examines the extent to which institutional actions are merely "coping" - or whether they create the conditions in which individuals and households can strengthen their own long-term resilience. Similarly, it examines the extent to which individual and communal responses are merely "coping" - or whether they have the potential to generate broader political change that strengthens the position of marginalized groups in the city.
C1 [Haque, Anika Nasra] Univ Cambridge, Dept Geog, Cambridge CB2 3EN, England.
   [Dodman, David] IIED, London, England.
   [Dodman, David] UCL, London WC1E 6BT, England.
   [Hossain, Md. Mohataz] Bangladesh Univ Engn & Technol, Dept Architecture, Dhaka, Bangladesh.
C3 University of Cambridge; University of London; University College
   London; Bangladesh University of Engineering & Technology (BUET)
RP Haque, AN (corresponding author), Univ Cambridge, Dept Geog, Downing Pl, Cambridge CB2 3EN, England.
EM anikanasra@gmail.com; david.dodman@iied.org; laxmmho@nottingham.ac.uk
RI Hossain, Mohataz/AAI-6834-2020; Haque, Anika/HPF-4453-2023
OI Hossain, Md Mohataz/0000-0002-1885-8692; Dodman,
   David/0000-0002-1304-3283; Haque, Anika/0000-0002-0717-376X
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NR 56
TC 25
Z9 29
U1 0
U2 36
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 112
EP 129
DI 10.1177/0956247813518681
PG 18
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA AG8FC
UT WOS:000335653200007
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Yang, ZY
   Barroca, B
   Laffréchine, K
   Weppe, A
   Bony-Dandrieux, A
   Daclin, N
AF Yang, Zhuyu
   Barroca, Bruno
   Laffrechine, Katia
   Weppe, Alexandre
   Bony-Dandrieux, Aurelia
   Daclin, Nicolas
TI A multi-criteria framework for critical infrastructure systems
   resilience
SO INTERNATIONAL JOURNAL OF CRITICAL INFRASTRUCTURE PROTECTION
LA English
DT Article
DE Critical infrastructure systems; Multi-criteria; Resilience; Disaster
   management; Resilience assessment
ID COST-BENEFIT-ANALYSIS; URBAN RESILIENCE; INTERDEPENDENT INFRASTRUCTURE;
   MENTAL-HEALTH; RISK; SUSTAINABILITY; CAPABILITY; INDICATOR; DISASTER;
   CRITERIA
AB Critical infrastructure systems (CISs) play an essential role in modern society, as they are important for main-taining critical social functions, economic organisation, and national defence. Recently, CISs resilience has gained popularity in both academic and policy filed facing increased natural or technological disasters. Resil-ience assessments have become convenient and common tools for disaster management, as assessment results provide useful information to CIS managers. However, CISs resilience assessment is facing challenges of being practical to use in operational risk management.Although there are many existing assessments for CISs resilience, some shortcomings relating to assessment criteria, which cannot turn resilience useful in practical operation, are frequent in their assessment process. Existing assessments are based on different definitions, which makes criteria generalization difficult. Besides, these assessments are not comprehensive enough. Especially, few assessments address both the cost, effective-ness, and safety of optimisation actions. Moreover, most of the suggested criteria are not specific enough for being used for practical CISs risk management in real cases.This article develops therefore a multi-criteria framework (MCF) for CISs resilience, consisting of general criteria and a guide for defining specific sub-criteria. In this MCF, the side effects, cascading effects and cost -benefit in resilience scenarios are considered indispensable for CISs resilience assessment. The paper also pre-sents an example of the application of the developed guide through two detailed scenarios, one on a single infrastructural system affected by a natural disaster, and the other addressing the interdependence of this infrastructural system and an urban healthcare system. The designed MCF contributes to the operationalisation and comprehensiveness of CISs resilience assessments.
C1 [Yang, Zhuyu; Barroca, Bruno] Univ Gustave Eiffel, Laburba, F-77420 Champs Sur Marne, France.
   [Yang, Zhuyu] Univ Gustave Eiffel, Ecole Ponts ParisTech, LATTS, UMR 8134,CNRS, Marne La Vallee, France.
   [Weppe, Alexandre; Daclin, Nicolas] IMT Mines Ales, Lab Sci Risques LSR, Ales, France.
C3 Universite Gustave-Eiffel; 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); CNRS - Institute for Humanities & Social Sciences (INSHS); IMT -
   Institut Mines-Telecom; IMT Mines Ales
RP Yang, ZY (corresponding author), Univ Gustave Eiffel, Laburba, F-77420 Champs Sur Marne, France.; Yang, ZY (corresponding author), Univ Gustave Eiffel, Ecole Ponts ParisTech, LATTS, UMR 8134,CNRS, Marne La Vallee, France.
EM zhuyu.yang@univ-eiffel.fr
RI AURELIA, BONY-DANDRIEUX/JHT-6973-2023
FU UrbaRiskLab (URL) project; RESIIST project - French National Research
   Agency (ANR) [ANR-18-CE39-0018]; General Secretary of Defense and
   National Security (SGDSN); Agence Nationale de la Recherche (ANR)
   [ANR-18-CE39-0018] Funding Source: Agence Nationale de la Recherche
   (ANR)
FX This work was supported by 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 117
TC 6
Z9 6
U1 17
U2 78
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1874-5482
EI 2212-2087
J9 INT J CRIT INFR PROT
JI Int. J. Crit. Infrastruct. Prot.
PD SEP
PY 2023
VL 42
AR 100616
DI 10.1016/j.ijcip.2023.100616
EA JUN 2023
PG 17
WC Computer Science, Information Systems; Engineering, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering
GA M1YP8
UT WOS:001028210400001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Chen, CJ
   Han, Y
   Galinski, A
   Calle, C
   Carney, J
   Ye, XY
   van Westen, C
AF Chen, Changjie
   Han, Yu
   Galinski, Andrea
   Calle, Christian
   Carney, Jeffrey
   Ye, Xinyue
   van Westen, Cees
TI Integrating Urban Digital Twin with Cloud-Based Geospatial Dashboard for
   Coastal Resilience Planning: A Case Study in Florida
SO JOURNAL OF PLANNING EDUCATION AND RESEARCH
LA English
DT Article; Early Access
DE digital twin; geospatial dashboard; resilience; coastal flooding;
   community engagement; planning ethics
AB Coastal communities are confronted with a growing incidence of climate-induced flooding, necessitating adaptation measures for resilience. In this paper, we introduce a framework that integrates an urban digital twin with a geospatial dashboard to allow visualization of the vulnerabilities within critical infrastructure across a range of spatial and temporal scales. The synergy between these two technologies fosters heightened community awareness about increased flood risks to establish a unified understanding, the foundation for collective decision-making in adaptation plans. The paper also elucidates ethical considerations while developing the platform, including ensuring accessibility, promoting transparency and equity, and safeguarding individual privacy.
C1 [Chen, Changjie; Calle, Christian] Univ Florida, Florida Inst Built Environm Resilience FIBER, Gainesville, FL USA.
   [Galinski, Andrea] Univ Florida, Dept Landscape Architecture, Gainesville, FL USA.
   [Carney, Jeffrey] Univ Florida, Sch Architecture, Gainesville, FL USA.
   [Han, Yu] Univ Cambridge, Dept Land Econ, Cambridge, England.
   [Ye, Xinyue] Texas A&M Univ, Dept Landscape Architecture & Urban Planning, College Stn, TX USA.
   [van Westen, Cees] Univ Twente, Fac Geoinformat Sci & Earth Observat ITC, Enschede, Netherlands.
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; University of Cambridge; Texas
   A&M University System; Texas A&M University College Station; University
   of Twente
RP Chen, CJ (corresponding author), Univ Florida, 1480 Inner Rd, Gainesville, FL 32608 USA.
EM chj.chen@ufl.edu
RI Van Westen, Cees/AAE-4091-2020
FU Florida Department of Environmental Protection Resilient Florida Grant
   [22PLN38]; NSF [2235678]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: We
   acknowledge funding from the Florida Department of Environmental
   Protection Resilient Florida Grant (22PLN38) and NSF grant (Award #
   2235678) to support this research.
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NR 61
TC 0
Z9 0
U1 4
U2 4
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 2025 FEB 19
PY 2025
DI 10.1177/0739456X251316185
EA FEB 2025
PG 17
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA X4H3C
UT WOS:001424975300001
DA 2025-04-22
ER

PT J
AU Mentges, A
   Halekotte, L
   Schneider, M
   Demmer, T
   Lichte, D
AF Mentges, Andrea
   Halekotte, Lukas
   Schneider, Moritz
   Demmer, Tobias
   Lichte, Daniel
TI A resilience glossary shaped by context: Reviewing resilience-related
   terms for critical infrastructures
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Resilience definition; Critical infrastructures; Terminology; Resilience
   capacities; Performance curve
ID COMMUNITY RESILIENCE; CLIMATE-CHANGE; RESPONSE DIVERSITY; SYSTEM
   RESILIENCE; CRISIS MANAGEMENT; URBAN SYSTEMS; BLACK SWANS; RISK;
   FRAMEWORK; PRINCIPLES
AB We present a comprehensive resilience glossary, comprising a set of 93 definitions of resiliencerelated terms used in the context of critical infrastructures. The definition and use of many of these terms, as well as the term resilience itself, shows an enormous variability in the literature. Therefore, we draw from the diverse pool of published definitions, integrate multiple contrasting views, compare the individual terms, and provide references to adjoining or contesting views, to create a clear resilience terminology. This terminology outlines a specific understanding of resilience which supports the effective assessment and management of the resilience of critical infrastructures. The two central elements of this understanding are that (1) resilience is the ability of a system to deal with the impacts of unspecific and possibly unforeseen disruptive events, and that (2) this ability comprises three pillar capacities whose quality can be extracted from performance curves.
C1 [Mentges, Andrea; Halekotte, Lukas; Schneider, Moritz; Demmer, Tobias; Lichte, Daniel] German Aerosp Ctr DLR, Inst Protect Terr Infrastruct, Rathausallee 12, D-53757 St Augustin, Germany.
C3 Helmholtz Association; German Aerospace Centre (DLR)
RP Halekotte, L (corresponding author), German Aerosp Ctr DLR, Inst Protect Terr Infrastruct, Rathausallee 12, D-53757 St Augustin, Germany.
EM andrea.mentges@dlr.de; lukas.halekotte@dlr.de; moritz.schneider@dlr.de;
   tobias.demmer@dlr.de; daniel.lichte@dlr.de
OI Halekotte, Lukas/0000-0002-0126-3940; Mentges,
   Andrea/0000-0002-5639-194X
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NR 302
TC 17
Z9 18
U1 6
U2 44
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 1
PY 2023
VL 96
AR 103893
DI 10.1016/j.ijdrr.2023.103893
EA AUG 2023
PG 28
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA S0JZ0
UT WOS:001068131600001
OA hybrid, Green Accepted, Green Submitted
DA 2025-04-22
ER

PT J
AU Su, X
   Wang, LZ
   Li, LJ
   Li, XT
   Wang, YT
   Liu, Y
   Hu, QF
AF Su, Xin
   Wang, Leizhi
   Li, Lingjie
   Li, Xiting
   Wang, Yintang
   Liu, Yong
   Hu, Qingfang
TI Assessing Watershed Flood Resilience Based on a Grid-Scale System
   Performance Curve That Considers Double Thresholds
SO SUSTAINABILITY
LA English
DT Article
DE flood resilience; dynamic assessment; watershed; grid scale; system
   performance curves
ID URBAN; FREQUENCY; DURATION; GROWTH; ZONES; DEPTH
AB Enhancing flood resilience has become crucial for watershed flood prevention. However, current methods for quantifying resilience often exhibit coarse spatiotemporal granularity, leading to insufficient precision in watershed resilience assessments and hindering the accurate implementation of resilience enhancement measures. This study proposes a watershed flood resilience assessment method based on a system performance curve that considers thresholds of inundation depth and duration. A nested one- and two-dimensional coupled hydrodynamic model, spanning two spatial scales, was utilized to simulate flood processes in plain river network areas with detailed and complex hydraulic connections. The proposed framework was applied to the Hangjiahu area (Taihu Basin, China). The results indicated that the overall trend of resilience curves across different underlying surfaces initially decreased and then increase, with a significant decline observed within 20-50 h. The resilience of paddy fields and forests was the highest, while that of drylands and grasslands was the lowest, but the former had less recovery ability than the latter. The resilience of urban systems sharply declined within the first 40 h and showed no signs of recovery, with the curve remaining at a low level. In some regions, the flood tolerance depth and duration for all land use types exceeded the upper threshold. The resilience of the western part of the Hangjiahu area was higher than that of other regions, whereas the resilience of the southern region was lower compared to the northern region. The terrain and tolerance thresholds of inundation depth were the main factors affecting watershed flood resilience. The findings of this study provide a basis for a deeper understanding of the spatiotemporal evolution patterns of flood resilience and for precisely guiding the implementation and management of flood resilience enhancement projects in the watershed.
C1 [Su, Xin; Wang, Leizhi; Li, Lingjie; Wang, Yintang; Liu, Yong; Hu, Qingfang] Nanjing Hydraul Res Inst, Natl Key Lab Inundat Disaster Prevent, Nanjing 210029, Peoples R China.
   [Li, Lingjie; Wang, Yintang] Yangtze Inst Conservat & Dev, Nanjing 210098, Peoples R China.
   [Li, Xiting] Hohai Univ, Inst Water Sci & Technol, Nanjing 210098, Peoples R China.
C3 Nanjing Hydraulic Research Institute; Hohai University
RP Wang, LZ (corresponding author), Nanjing Hydraul Res Inst, Natl Key Lab Inundat Disaster Prevent, Nanjing 210029, Peoples R China.
EM xsu@nhri.cn; wanglz@nhri.cn; ljli@nhri.cn; xit-ing1016@hhu.edu.cn;
   ytwang@nhri.cn; yongliu@nhri.cn; qfhu@nhri.cn
OI Li, Lingjie/0009-0008-4132-1077
FU Chinese National Key Research and Development Program; Chinese National
   Natural Science Foundation [52309026, 52239008]; China Postdoctoral
   Science Foundation [2023M741769]; Central Public Interest Scientific
   Institution Basal Research Fund of China [Y523005, Y523007, Y523010];
   Huadong Engineering Corporation commissioned project [Hj522087]; 
   [2021YFC3000101];  [2021YFC3000105]
FX This research was funded by Chinese National Key Research and
   Development Program, grant numbers 2021YFC3000101, 2021YFC3000105; the
   Chinese National Natural Science Foundation, grant numbers 52309026,
   52239008; China Postdoctoral Science Foundation, grant number
   2023M741769; Central Public Interest Scientific Institution Basal
   Research Fund of China, grant numbers Y523005, Y523007, Y523010; Huadong
   Engineering Corporation commissioned project, grant number Hj522087.
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NR 55
TC 0
Z9 0
U1 16
U2 16
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2024
VL 16
IS 20
AR 9101
DI 10.3390/su16209101
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 K1C6K
UT WOS:001341335800001
OA gold
DA 2025-04-22
ER

PT J
AU Carballo, DM
   Feinman, GM
   Corral, AL
AF Carballo, David M.
   Feinman, Gary M.
   Lopez Corral, Aurelio
TI Mesoamerican urbanism:Indigenous institutions, infrastructure, and
   resilience
SO URBAN STUDIES
LA English
DT Article; Early Access
DE Aztec; collective action; governance; Maya; neighbourhoods; social
   infrastructure; urbanism
ID VARIABILITY; INSIGHTS; PLAZAS; MAYA
AB Mesoamerica was the most urbanised landscape of the precolonial Western Hemisphere, and urban dwellers there shared many cultural commonalities. They also varied significantly regarding what social institutions they emphasised, what forms of urban infrastructure they created, their fiscal financing and systems of governance, as well as how they managed ecological resources and risk. In this paper, we provide a comparative analysis of Mesoamerican cities using a database of archaeological indices of Indigenous urban characteristics. We report positive correlations between the longevity of cities in our sample and more collective institutions of governance, higher population densities, and more shared and equitably distributed forms of urban infrastructure. The study draws on Indigenous knowledge and practices to assist the target-based approach of the UN Sustainable Development Goals and New Urban Agenda and provides insights into how certain urban institutions and infrastructure can foster greater resilience and equity in the face of ecological and cultural-historical perturbations.
C1 [Carballo, David M.] Boston Univ, Boston, MA 02215 USA.
   [Feinman, Gary M.] Field Museum Nat Hist, Chicago, IL 60605 USA.
   [Lopez Corral, Aurelio] Ctr INAH Tlaxcala, Tlaxcala, Mexico.
C3 Boston University; Field Museum of Natural History (Chicago)
RP Carballo, DM (corresponding author), Boston Univ, Dept Anthropol, 675 Commonwealth Ave, Boston, MA 02215 USA.; Carballo, DM (corresponding author), Boston Univ, Archaeol Program, 675 Commonwealth Ave, Boston, MA 02215 USA.
EM carballo@bu.edu
RI Corral, Aurelio/AAQ-8284-2021; Carballo, David/AAD-9800-2019
OI Lopez Corral, Aurelio/0000-0001-7844-4523
FU National Science Foundation [BCS-1321247]; Society for American
   Archaeology, King Family Grant for Precolumbian Archaeology
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship and/or publication of this article: National
   Science Foundation, grant no: BCS-1321247 and the Society for American
   Archaeology, King Family Grant for Precolumbian Archaeology.
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NR 60
TC 13
Z9 13
U1 1
U2 24
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 2022 JUL 12
PY 2022
DI 10.1177/00420980221105418
EA JUL 2022
PG 18
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA 2U5CM
UT WOS:000823178700001
DA 2025-04-22
ER

PT J
AU Phua, SZ
   Hofmeister, M
   Tsai, YK
   Peppard, O
   Lee, KF
   Courtney, S
   Mosbach, S
   Akroyd, J
   Kraft, M
AF Phua, Shin Zert
   Hofmeister, Markus
   Tsai, Yi-Kai
   Peppard, Oisin
   Lee, Kok Foong
   Courtney, Sean
   Mosbach, Sebastian
   Akroyd, Jethro
   Kraft, Markus
TI Fostering urban resilience and accessibility in cities: A dynamic
   knowledge graph approach
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Disaster resilience; 15-minute city; Accessibility; Isochrone analysis;
   Knowledge graph
ID SERVICE; NEIGHBORHOODS; MANAGEMENT; AMENITIES; SYSTEMS; MODEL
AB This paper explores the utilisation of knowledge graphs and an agent-based implementation to enhance urban resilience and accessibility in city planning. We expand The World Avatar (TWA) dynamic knowledge graph to support decision-making in disaster response and urban planning. By employing a set of connected agents and integrating diverse data sources - including flood data, geospatial building information, land plots, and open-source data - through sets of ontologies, we demonstrate disaster response in a coastal town in the UK and various aspects relevant to city planning for a mid-sized town in Germany using TWA. In King's Lynn, our agent-based approach facilitates holistic disaster response by calculating optimal routes, avoiding flooded segments dynamically, assessing infrastructure accessibility before and during a flood using isochrones, identifying inaccessible population areas, guiding infrastructure restoration, and conducting critical path analysis. In Pirmasens, for city planning purposes, the knowledge graph-driven isochrone generation provides evidence-based insights into current amenity coverage and enables scenario planning for future amenities while adhering to land regulations. The implementation of agents and knowledge graphs achieves interoperability and enhances urban resilience and accessibility by enabling cross-domain correlation analysis that extends various areas including geospatial buildings, population demographics, accessibility coverage, and land use regulations.
C1 [Hofmeister, Markus; Mosbach, Sebastian; Akroyd, Jethro; Kraft, Markus] Univ Cambridge, Dept Chem Engn & Biotechnol, Philippa Fawcett Dr, Cambridge CB3 0AS, England.
   [Phua, Shin Zert; Hofmeister, Markus; Tsai, Yi-Kai; Lee, Kok Foong; Mosbach, Sebastian; Akroyd, Jethro; Kraft, Markus] Cambridge Ctr Adv Res & Educ Singapore CARES, CREATE Tower 05-05,1 Create Way, Singapore 138602, Singapore.
   [Hofmeister, Markus; Peppard, Oisin; Courtney, Sean; Mosbach, Sebastian; Akroyd, Jethro; Kraft, Markus] CMCL Innovat, Sheraton House, Cambridge CB3 0AX, England.
   [Kraft, Markus] Alan Turing Inst, London NW1 2DB, England.
C3 University of Cambridge
RP Kraft, M (corresponding author), Univ Cambridge, Dept Chem Engn & Biotechnol, Philippa Fawcett Dr, Cambridge CB3 0AS, England.
EM shinzert.phua@cares.cam.ac.uk; mk306@cam.ac.uk
RI Akroyd, Jethro/A-8698-2010; Kraft, Markus/D-7243-2016
OI Mosbach, Sebastian/0000-0001-7018-9433; Kraft,
   Markus/0000-0002-4293-8924
FU National Research Foundation, Prime Minister's Office, Singapore under
   its Campus for Research Excellence and Technological Enterprise (CREATE)
   programme; Transport Research and Innovation Grant; Cambridge Trust;
   CMCL; Alexander von Humboldt Foundation
FX This research was supported by the National Research Foundation, Prime
   Minister's Office, Singapore under its Campus for Research Excellence
   and Technological Enterprise (CREATE) programme. This project has
   received funding from the Transport Research and Innovation Grant. M.
   Hofmeister acknowledges financial support provided by the Cambridge
   Trust and CMCL. M. Kraft gratefully acknowledges the support of the
   Alexander von Humboldt Foundation. The authors extend their thanks to
   L.F. Ding and G.H. Xiao for their valuable contributions, particularly
   in sharing the Ontop mapping and engaging in helpful discussions.
   Additionally, the authors express gratitude to the Stadt Pirmasens,
   especially mayor Michael Maas and his team, as well as the Stadtwerke
   Pirmasens, with Christoph Doerr and his team, for their invaluable
   collaboration and generous support in sharing relevant data, enhancing
   the depth and quality of this research. Special thanks to Elliot
   Christou, Connected Places Catapult for advice about different software
   solutions for solving routing problems. For the purpose of open access,
   the authors have applied a Creative Commons Attribution (CC BY) licence
   to any Author Accepted Manuscript version arising.
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NR 90
TC 4
Z9 4
U1 40
U2 56
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT 15
PY 2024
VL 113
AR 105708
DI 10.1016/j.scs.2024.105708
EA AUG 2024
PG 18
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA C5I7K
UT WOS:001289705600001
OA Green Accepted, hybrid
DA 2025-04-22
ER

PT J
AU Gulyas, BZ
   Edmondson, JL
AF Gulyas, Boglarka Z.
   Edmondson, Jill L.
TI Increasing City Resilience through Urban Agriculture: Challenges and
   Solutions in the Global North
SO SUSTAINABILITY
LA English
DT Review
DE food system; urban horticulture; food security; sustainable urban
   development; global change; urbanisation; sustainability
ID CLIMATE-CHANGE ADAPTATION; ECOSYSTEM SERVICES; EUROPEAN PERSPECTIVE;
   FOOD SECURITY; CITIES; SUSTAINABILITY; GOVERNANCE; COMMONS; GARDENS;
   CONTEXT
AB Cities, which now host the majority of the global population, are vulnerable to environmental and socio-economic disturbances, which are likely to increase in number and severity in the near future. Urban agriculture (UA) could help increase the resilience of cities to a range of pressures and acute shocks by improving food security and public health, building social capital, and promoting circular economies. However, comprehensive assessments of its potential are still lacking. Here, we use a systematic review of the literature on UA in the global North to identify factors that determine its success in providing resilience benefits, explore challenges that can limit this, and develop a conceptual model to highlight the ways in which it could be enhanced through research, policy, and practice. We define the success of UA in increasing city resilience as determined by five factors, which in turn depend on the amount of institutional and public support for UA, the presence of a sufficient knowledge base, communication and collaboration among different actors, and resourcefulness in finding alternative ways to use space and other resources efficiently. We close with a discussion of specific directions for research and practice based on the conceptual model developed here.
C1 [Gulyas, Boglarka Z.; Edmondson, Jill L.] Univ Sheffield, Dept Anim & Plant Sci, Sheffield S10 2TN, S Yorkshire, England.
C3 University of Sheffield
RP Gulyas, BZ (corresponding author), Univ Sheffield, Dept Anim & Plant Sci, Sheffield S10 2TN, S Yorkshire, England.
EM bgulyas1@sheffield.ac.uk; j.edmondson@sheffield.ac.uk
RI Gulyas, Boglarka/GLT-6189-2022
OI Gulyas, Boglarka/0000-0002-6206-4902; Edmondson,
   Jill/0000-0002-3623-4816
FU Engineering and Physical Sciences Research Council (EPSRC)
   [EP/N030095/1]; EPSRC PhD studentship; EPSRC [EP/N030095/1] Funding
   Source: UKRI
FX This work was funded by the Engineering and Physical Sciences Research
   Council (EPSRC) under grant no. EP/N030095/1 and by an EPSRC PhD
   studentship.
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NR 98
TC 41
Z9 44
U1 12
U2 92
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 1465
DI 10.3390/su13031465
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 QD6WP
UT WOS:000615656000001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Zhai, LP
   Lee, JE
AF Zhai, Linpei
   Lee, Jae Eun
TI Exploring and Enhancing Community Disaster Resilience: Perspectives from
   Different Types of Communities
SO WATER
LA English
DT Article
DE flood disaster; community disaster resilience; climate emergency;
   disaster risk reduction
ID SOCIAL RESILIENCE; FRAMEWORK; FLOOD; PROSPECTS; RECOVERY; PLACE; MODEL;
   RISK
AB This study aimed to explore the differences in various aspects of community disaster resilience and how to enhance disaster resilience tailored to different community types. The evaluation results were validated using the flood event that occurred in Zhengzhou on 20 July 2021 (hereinafter referred to as the "7.20" rainstorm disaster). The main results of the analysis showed that the respondents' overall evaluation of their community's resilience to the "7.20" disaster was relatively high. Commercial housing communities performed the best, followed by urban village communities, and employee family housing communities performed the worst. Specifically, commercial housing communities scored highest in three dimensions: human capital, physical infrastructure, and adaptation. Urban village communities scored highest in the three dimensions of social capital, institutional capital, and community competence, while employee family housing communities consistently ranked the lowest in each dimension. The most significant disparities were found in human capital, followed by community competence and social capital, adaptation, and, lastly, institutional capital and physical infrastructure. Targeted improvement strategies and measures are suggested for each type of community, offering valuable recommendations for relevant government agencies aiming to enhance community disaster resilience and disaster risk reduction.
C1 [Zhai, Linpei] Zhejiang Normal Univ, Law Sch, Jinhua 321004, Peoples R China.
   [Lee, Jae Eun] Chungbuk Natl Univ, Dept Publ Adm, Cheongju 28644, South Korea.
C3 Zhejiang Normal University; Chungbuk National University
RP Lee, JE (corresponding author), Chungbuk Natl Univ, Dept Publ Adm, Cheongju 28644, South Korea.
EM linpeizhai@zjnu.edu.cn; jeunlee@chungbuk.ac.kr
OI Lee, Jae Eun/0000-0002-2441-9557
FU Chungbuk National University Korea National University Development
   Project
FX No Statement Available
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NR 88
TC 1
Z9 1
U1 25
U2 45
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD MAR
PY 2024
VL 16
IS 6
AR 881
DI 10.3390/w16060881
PG 20
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA MI7O5
UT WOS:001193060700001
OA gold
DA 2025-04-22
ER

PT J
AU Wang, T
   Liu, Y
   Li, QY
   Du, P
   Zheng, XG
   Gao, QF
AF Wang, Tong
   Liu, Yang
   Li, Qiyuan
   Du, Peng
   Zheng, Xiaogong
   Gao, Qingfei
TI State-of-the-Art Review of the Resilience of Urban Bridge Networks
SO SUSTAINABILITY
LA English
DT Review
DE resilience; bridge network; multihazard; structural health monitoring of
   bridge
ID SEISMIC FRAGILITY; TRANSPORTATION NETWORK; ROADWAY NETWORKS; EARTHQUAKE;
   RISK; SUSTAINABILITY; PERFORMANCE; FRAMEWORK; CURVES; IMPACT
AB With the rapid advancement of the urbanization process, the bridge networks in cities are becoming increasingly optimized, playing an important role in ensuring the normal operation of cities. However, with the gradual deterioration of bridges and the further attenuation of their capacity, many bridges are prone to damage or even collapse under extreme loads. After a natural disaster or human-derived accident occurs in a city, the normal operation of the bridge network in the city will play an irreplaceable role in emergency rescue and long-term recovery after the disaster. In this paper, the resilience of urban bridge networks, as a comprehensive indicator that integrates predisaster early warning, disaster response and postdisaster recovery information, is considered. This indicator has been applied in many disciplines, such as civil engineering, sociology, management and economics. The concept of resilience is expounded, and functional and resilience assessment indicators for bridge networks are established. Additionally, the research progress on bridge network resilience is described. Finally, combined with research hotspots such as big data, artificial intelligence and bridge structural health monitoring, the development trends and prospects of bridge network resilience research are discussed.
C1 [Wang, Tong; Liu, Yang; Li, Qiyuan; Gao, Qingfei] Harbin Inst Technol, Sch Transportat Sci & Engn, Harbin 150090, Peoples R China.
   [Du, Peng] Elect Engn Co Ltd, China Railway Bur Grp 5, Changsha 410006, Peoples R China.
   [Zheng, Xiaogong] Heilongjiang Dingjie Rd & Bridge Engn Co Ltd, Harbin 150090, Peoples R China.
C3 Harbin Institute of Technology
RP Gao, QF (corresponding author), Harbin Inst Technol, Sch Transportat Sci & Engn, Harbin 150090, Peoples R China.
EM gaoqingfei@hit.edu.cn
RI Liu, Yang/ABA-4665-2020
OI Gao, Qingfei/0000-0002-9448-4020; Liu, Yang/0000-0002-1187-6388
FU Key Research and Development Program of Shandong Province of China
   [2019JZZY010427]; Key Research and Development Program of Heilongjiang
   Province of China [GY2021ZB0063]
FX This study is supported by the Key Research and Development Program of
   Shandong Province of China (Grant No: 2019JZZY010427) and the Key
   Research and Development Program of Heilongjiang Province of China
   (Grant No: GY2021ZB0063).
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NR 104
TC 5
Z9 5
U1 28
U2 127
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 989
DI 10.3390/su15020989
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 8A3TX
UT WOS:000916165200001
OA gold
DA 2025-04-22
ER

PT J
AU Moya, J
   Goenechea, M
AF Moya, Jorge
   Goenechea, Maria
TI An Approach to the Unified Conceptualization, Definition, and
   Characterization of Social Resilience
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Review
DE social resilience; sustainable development; social capital; resilience
   policies; adaptive capacity
ID COMMUNITY RESILIENCE; DISASTER RESILIENCE; ECOLOGICAL RESILIENCE;
   BUILDING RESILIENCE; ADAPTIVE CAPACITY; URBAN RESILIENCE; SYSTEMS
   APPROACH; MENTAL-HEALTH; SUPPORT; GOVERNANCE
AB The purpose of this article is to offer a synthesis of the characteristics of social resilience, integrating the different approaches received from the social sciences. We propose to focus this conceptual framework as a previous and necessary step for the later study of the possible ways of promotion of this social resilience, that will help to strengthen the welfare and public health systems. The paper explores the difficulties in defining these characteristics, identifying their constituent elements. After this, the paper study the challenges to the future development of resilience models, showing the ways that offer some advances. Finally, we conclude that the social resilience must be conceived as a dynamic, multi-level, and evolutionary process if we are to help societies not only cope with adversity but also to adapt and transform themselves.
C1 [Moya, Jorge] Univ Autonoma Madrid, Fac Ciencias Econ, Madrid 28049, Spain.
   [Goenechea, Maria] Univ Francisco Vitoria, Fac Derecho Empresa & Gobierno, Madrid 28223, Spain.
C3 Autonomous University of Madrid; Universidad Francisco de Vitoria
RP Moya, J (corresponding author), Univ Autonoma Madrid, Fac Ciencias Econ, Madrid 28049, Spain.
EM jorge.moya@uam.es; maria.goenechea@ufv.es
RI Moya, Jorge/HTP-5706-2023
OI Goenechea Dominguez, Maria/0000-0001-8742-3943; Moya Velasco,
   Jorge/0000-0002-7282-0214
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NR 129
TC 21
Z9 21
U1 15
U2 109
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 MAY
PY 2022
VL 19
IS 9
AR 5746
DI 10.3390/ijerph19095746
PG 15
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 1G8TP
UT WOS:000796122600001
PM 35565141
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Almusaed, A
   Almssad, A
   Alasadi, A
   Al-Asadi, F
AF Almusaed, Amjad
   Almssad, Asaad
   Alasadi, Asaad
   Al-Asadi, Fatima
TI Sustainable Reimagining of urban Habitats: Navigating Iraq's housing
   crisis through Socio-Technological and Environmental approaches
SO AIN SHAMS ENGINEERING JOURNAL
LA English
DT Article
DE Sustainable Housing Development; Urban Resilience; Socio-Technological
   Integration; Renewable Energy Strategies; Smart City Frameworks
AB The article rigorously analyzes Iraq's housing dilemma using an interdisciplinary framework combining sociotechnological advancements and environmental initiatives. The article promotes sustainable urban development by tackling increasing urbanization, infrastructural deficiencies, and ecological deterioration. The novelty is in the empirical assessment of innovative sustainable building methods, community-focused urban planning, and the implementation of renewable energy, specifically adapted to Iraq's distinct socio-political and environmental circumstances. The article presents an innovative framework integrating smart city technology with sustainable construction practices, providing a holistic approach to improving housing quality and fostering ecological resilience. The findings substantially enhance the discussion on sustainable urbanization by offering policymakers practical insights to alleviate housing crises and promote enduring urban sustainability. The implications are worldwide since the proposed approaches and frameworks function as scalable models for tackling urban development issues in increasingly urbanizing areas.
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   [Almusaed, Amjad; Alasadi, Asaad; Al-Asadi, Fatima] Univ Basrah, Fac Engn, Architectural Dept, Basrah, Iraq.
C3 Karlstad University; University of Basrah
RP Almssad, A (corresponding author), Karlstad Univ, Dept Engn & Chem Sci, Construct Technol, Karlstad, Sweden.
EM amjad.khalil@uobasrah.edu.iq; asaad.almssad@kau.se;
   asaad.hussain@uobasrah.edu.iq; fatemah.bder@uobasrah.edu.iq
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NR 77
TC 1
Z9 1
U1 1
U2 1
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2090-4479
EI 2090-4495
J9 AIN SHAMS ENG J
JI Ain Shams Eng. J.
PD FEB
PY 2025
VL 16
IS 2
AR 103280
DI 10.1016/j.asej.2025.103280
EA JAN 2025
PG 15
WC Engineering, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA X2M1B
UT WOS:001423745000001
DA 2025-04-22
ER

PT J
AU Liao, KH
   Le, TA
   Nguyen, KV
AF Liao, Kuei-Hsien
   Tuan Anh Le
   Kien Van Nguyen
TI Urban design principles for flood resilience: Learning from the
   ecological wisdom of living with floods in the Vietnamese Mekong Delta
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article; Proceedings Paper
CT International Symposium on Ecological Wisdom for Urban Sustainability
CY OCT 17-18, 2014
CL Chongqing, PEOPLES R CHINA
SP Chongqing Univ, Sch Architecture & Urban Planning, E China Normal Univ, Sch Ecol & Environm Sci, E China Normal Univ, Shanghai Key Lab Urban Ecol Proc & Eco Restorat, Journal Landscape & Urban Planning, Journal Acta Ecologica Sinica, Journal Landscape Architecture
DE Adaptation; Flood hazard mitigation; Living with floods; Urban design;
   Urban resilience; Mekong Delta
ID RISK-MANAGEMENT
AB Despite the widespread implementation of flood control infrastructure, modern cities around the world remain vulnerable to flood hazards. Although flood management has in general placed less emphasis on structural measures, urban flood hazard mitigation continues to fixate on the flood control paradigm, the ideology that flooding must be prevented in the first place, as flooding is assumed to be disastrous. To promote urban flood resilience, this paper argues for the alternative flood adaptation paradigm, which concerns preventing damage when flooding occurs and allows flooding to enter the city. The argument is grounded on our fieldworks on the ecological wisdom of living with floods in the Vietnamese Mekong Delta in two hamlets, Vinh An and Ha Bao, where flooding is mostly harmless and brings benefits. To turn this ecological wisdom of the rural hamlets into practical knowledge, we extract lessons for modern cities: Modern cities need ecological knowledge to nurture ecological wisdom; and need to become agile by developing localized flood-response capacity, striving for timely systemwide adjustment, and turning amphibious. To make these lessons of the ecological wisdom actionable, we translate them into three urban design principles: Urban design should (1) anticipate and accommodate flooding, (2) incorporate the ecological process of flooding, and (3) reveal the flood dynamics to the public. (C) 2016 Published by Elsevier B.V.
C1 [Liao, Kuei-Hsien] Chinese Univ Hong Kong, Sch Architecture, Hong Kong, Hong Kong, Peoples R China.
   [Tuan Anh Le] Can Tho Univ, Res Inst Climate Change, Can Tho, Vietnam.
   [Kien Van Nguyen] An Giang Univ, Res Ctr Rural Dev, Long Xuyen, Vietnam.
C3 Chinese University of Hong Kong; Can Tho University; Vietnam National
   University Ho Chi Minh City (VNUHCM) System; VNU-HCM An Giang University
   (VNUHCM-AGU)
RP Liao, KH (corresponding author), Chinese Univ Hong Kong, Sch Architecture, Shatin, Hong Kong, Peoples R China.
EM liao.kuei.hsien@cuhk.edu.hk; latuan@ctu.edu.vn; kienanu@gmail.com
OI nguyen, Van Kien/0000-0001-7073-8615
FU Chinese University of Hong Kong
FX We are most indebted to the villagers in Vinh An and Ha Bao for their
   time and insights in the lengthy interviews. We are also grateful to
   several people who helped to make the fieldwork in VMD possible and
   successful: We thank Ky Quang Vinh and his staff of the Climate Change
   Coordination Office of Can Tho City, and Tran Van Hieu and Le Thi Phuong
   Dong from An Giang University for helping with the logistics; Tsai
   Hui-Nien, Wu Yu-Chang, and Mai Thanh Quyet for assisting with field
   observation and documentation; and Ky Bao Chau and Dao Phong Lam for
   interpretation. We are also thankful to Jeffrey Chan of National
   University of Singapore, Ken Yocom of University of Washington, Judith
   Ehlert of the University of Vienna, and three anonymous reviewers for
   their valuable comments that helped to improve this paper. This research
   was funded by the Direct Grant for Research 2013-2014 of the Chinese
   University of Hong Kong.
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NR 41
TC 103
Z9 117
U1 9
U2 235
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 NOV
PY 2016
VL 155
SI SI
BP 69
EP 78
DI 10.1016/j.landurbplan.2016.01.014
PG 10
WC Ecology; Environmental Studies; Geography; Geography, Physical; Regional
   & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI); Conference Proceedings Citation Index - Social Science &amp; Humanities (CPCI-SSH); Conference Proceedings Citation Index - Science (CPCI-S)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA EA2CQ
UT WOS:000386400800009
DA 2025-04-22
ER

PT J
AU Khoshkonesh, A
   Nazari, R
   Nikoo, MR
   Karimi, M
AF Khoshkonesh, Alireza
   Nazari, Rouzbeh
   Nikoo, Mohammad Reza
   Karimi, Maryam
TI Enhancing flood risk assessment in urban areas by integrating
   hydrodynamic models and machine learning techniques
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Flood modeling; Hazard analysis; HEC-series; Lidar VHR satellite images;
   Machine learning; GIS
ID RESILIENCE
AB Urban flood risks have intensified due to climate change and dense infrastructural development, necessitating innovative assessment approaches. This study aimed to integrate advanced hydrodynamic models with machine learning (ML) techniques to improve urban flood prediction and hazard analysis. Integrating 1D and 2D hydrodynamic models calibrated with precise parameters demonstrated exceptional predictive accuracy for flood dynamics. The high-resolution Lidar images and sophisticated modeling were used to simulate flood scenarios for the River Thames in West London. The socioeconomic data were incorporated to map vulnerable zones accurately. The findings revealed that 2D hydrodynamic models, while computationally intensive, offered superior accuracy in predicting flood dynamics. In contrast, 1D models could have been more accurate in predicting inundation depth and extent in adjacent urban areas. Advanced ML models, such as the Extra Trees-Principal Component Analysis (ET-PCA) model, further instilled confidence in the reliability of the research findings, demonstrating near-perfect predictive reliability with an R2 of 0.999. This model provided near-perfect predictions and enabled precise flood risk zoning. The integration of socioeconomic data further highlighted the vulnerability of certain urban areas. It emphasized the importance of targeted flood mitigation strategies. Beyond the specific case study, this research demonstrated the potential of combining hydrodynamic simulations with ML to enhance urban flood resilience globally. This framework helps urban planners and policymakers devise effective flood mitigation strategies and improve infrastructure resilience against future flood events.
C1 [Khoshkonesh, Alireza; Nazari, Rouzbeh] Univ Memphis, Dept Civil Engn, Memphis, TN 38125 USA.
   [Nikoo, Mohammad Reza] Sultan Qaboos Univ, Coll Engn, Dept Civil & Architectural Engn, Muscat, Oman.
   [Karimi, Maryam] Univ Memphis, Sch Publ Hlth, Memphis, TN 38152 USA.
C3 University of Memphis; Sultan Qaboos University; University of Memphis
RP Nazari, R (corresponding author), Univ Memphis, Dept Civil Engn, Memphis, TN 38125 USA.
EM rnazari@memphis.edu
RI Khoshkonesh, Alireza/ABK-1659-2022; Nikoo, Mohammad Reza/AAY-7583-2021
OI Khoshkonesh, Alireza/0000-0002-5253-8959
FX 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 49
TC 8
Z9 8
U1 52
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 NOV 20
PY 2024
VL 952
AR 175859
DI 10.1016/j.scitotenv.2024.175859
EA SEP 2024
PG 23
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA F1S5A
UT WOS:001307685200001
PM 39214364
DA 2025-04-22
ER

PT J
AU Mugume, SN
   Butler, D
AF Mugume, Seith N.
   Butler, David
TI Evaluation of functional resilience in urban drainage and flood
   management systems using a global analysis approach
SO URBAN WATER JOURNAL
LA English
DT Article
DE Global resilience analysis; hydraulic failures; pluvial flooding;
   spatial rainfall distribution
ID CLIMATE-CHANGE; IMPACT ASSESSMENT; RAINFALL; RISK; WATER; AREAS
AB Enhancing resilience in urban drainage systems (UDSs) requires new evaluation approaches that explicitly consider vital interactions between threats, system performance and resulting failure impacts during both normal and unexpected (exceptional) loading conditions. However, current reliability-based approaches only focus on prevention of functional (hydraulic) failures resulting from a specified design storm. In this study, the global resilience analysis (GRA) approach is further extended for evaluation of UDS performance when subject to a wide range of random functional failure scenarios (extreme rainfall) with varying magnitude, duration, and spatial distribution. The resulting loss of system functionality during the simulated failure scenarios is quantified using total flood volume and mean flood duration. System residual functionality for each considered rainfall block loading scenario is quantified using the functional resilience index. The developed approach has been successfully applied to test and characterise the functional resilience to extreme rainfall of an existing UDS in Kampala city, Uganda. The study concluded that: (1) UDS functional resilience is significantly influenced by both occurrence of short duration, high intensity rainfall events and spatial rainfall variation during extreme rainfall conditions and (2) future planning and design of resilience enhancement strategies should apply spatially distributed rainfall inputs to facilitate effective sizing of potential adaptation strategies.
C1 [Mugume, Seith N.; Butler, David] Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, Exeter, Devon, England.
C3 University of Exeter
RP Mugume, SN (corresponding author), Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, Exeter, Devon, England.
EM smugume@gmail.com
RI Mugume, Seith/ADW-0407-2022; Butler, David/I-2991-2012
OI Butler, David/0000-0001-5515-3416; Mugume, Seith/0000-0002-8289-0099
FU UK Commonwealth PhD scholarship; UK Engineering & Physical Sciences
   Research Council (ESPRC) [EP/K006924/1]; EPSRC [EP/K006924/1] Funding
   Source: UKRI
FX This research is financially supported through a UK Commonwealth PhD
   scholarship awarded to the first author. The work is also supported
   through the UK Engineering & Physical Sciences Research Council (ESPRC)
   funded Safe & SuRe research fellowship (EP/K006924/1) awarded to the
   last author.
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TC 53
Z9 53
U1 14
U2 125
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 2017
VL 14
IS 7
BP 727
EP 736
DI 10.1080/1573062X.2016.1253754
PG 10
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA EZ7LL
UT WOS:000404905800009
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Andersson, E
   Grimm, NB
   Lewis, JA
   Redman, CL
   Barthel, S
   Colding, J
   Elmqvist, T
AF Andersson, Erik
   Grimm, Nancy B.
   Lewis, Joshua A.
   Redman, Charles L.
   Barthel, Stephan
   Colding, Johan
   Elmqvist, Thomas
TI Urban climate resilience through hybrid infrastructure
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID INTERDEPENDENT INFRASTRUCTURE; MANAGEMENT; RISK; STEWARDSHIP;
   CHALLENGES; BENEFITS; FAILURES; ENHANCE; SCIENCE; MEMORY
AB Urban infrastructure will require transformative changes to adapt to changing disturbance patterns. We ask what new opportunities hybrid infrastructure-built environments coupled with landscape-scale biophysical structures and processes-offer for building different layers of resilience critical for dealing with increased variation in the frequency, magnitude and different phases of climate-related disturbances. With its more diverse components and different internal logics, hybrid infrastructure opens up alternative and additive ways of building resilience for and through critical infrastructure, by providing a wider range of functions and responses. Second, hybrid infrastructure points toward greater opportunities for ongoing (re)design at the landscape level, where structure and function can be constantly renegotiated and recombined.
C1 [Andersson, Erik; Barthel, Stephan; Elmqvist, Thomas] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [Andersson, Erik] North West Univ, Unit Environm Sci & Management, Potchefstroom, South Africa.
   [Grimm, Nancy B.] Arizona State Univ, Sch Life Sci, Tempe, AZ USA.
   [Grimm, Nancy B.] Arizona State Univ, Julie Ann Wrigley Global Inst Sustainabil, Tempe, AZ USA.
   [Lewis, Joshua A.] Tulane Univ, ByWater Inst, Dept Ecol & Evolutionary Biol, New Orleans, LA 70118 USA.
   [Redman, Charles L.] Arizona State Univ, Sch Sustainabil, Tempe, AZ USA.
   [Barthel, Stephan; Colding, Johan] Univ Gavle, Dept Bldg Engn Energy Syst & Sustainabil Sci, Gavle, Sweden.
   [Colding, Johan] Royal Swedish Acad Sci, Beijer Inst Ecol Econ, Stockholm, Sweden.
C3 Stockholm University; North West University - South Africa; Arizona
   State University; Arizona State University-Tempe; Arizona State
   University; Arizona State University-Tempe; Tulane University; Arizona
   State University; Arizona State University-Tempe; University of Gavle;
   Royal Swedish Academy of Sciences; Beijer Institute of Ecological
   Economics
RP Andersson, E (corresponding author), Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.; Andersson, E (corresponding author), North West Univ, Unit Environm Sci & Management, Potchefstroom, South Africa.
EM erik.andersson@su.se
RI Andersson, Erik/AAE-9771-2019; Elmqvist, Thomas/AAY-6344-2021; Colding,
   Johan/AAB-7047-2019; barthel, stephan/AAE-8367-2019; Grimm,
   Nancy/D-2840-2009
OI barthel, stephan/0000-0003-2637-2024; Grimm, Nancy/0000-0001-9374-660X;
   Andersson, Erik/0000-0003-2716-5502
FU 2015-2016 BiodivERsA COFUND project ENABLE - 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; US National Science Foundation [1444755, 1832016,
   1934933]; NordForsk Sustainable Urban Development and Smart Cities
   program through the project SMARTer Greener Cities [95377]; Direct For
   Biological Sciences; Division Of Environmental Biology [1832016] Funding
   Source: National Science Foundation
FX This research was supported by the 2015-2016 BiodivERsA COFUND project
   ENABLE, funded by 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, and through the US National
   Science Foundation grants no. 1444755, 1832016, and 1934933. Andersson
   was also supported by the NordForsk Sustainable Urban Development and
   Smart Cities program through the project SMARTer Greener Cities, grant
   no. 95377. We also thank Dr A degrees sa Gren for contributions to the
   ideation and early conceptualization of the paper.
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U1 3
U2 37
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 APR
PY 2022
VL 55
AR 101158
DI 10.1016/j.cosust.2022.101158
EA FEB 2022
PG 9
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA 2P7LS
UT WOS:000819918200002
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Potter, E
AF Potter, Emily
TI Contesting imaginaries in the Australian city: Urban planning, public
   storytelling and the implications for climate change
SO URBAN STUDIES
LA English
DT Article
DE built environment; culture; arts; creativity; colonisation displacement;
   gentrification; history; heritage; memory; neoliberalism; public space;
   resilience
ID PLACE-MAKING; INDIGENOUS PLACE; CITIES; RENEWAL
AB In Australia, environmental degradation goes hand in hand with exclusionary and mono-vocal tactics of place-making. This article argues that dominant cultural imaginaries inform material and discursive practices of place-making with significant consequence for diverse, inclusive and climate change-responsive urban environments. Urban planning in the modern global city commonly deploys imaginaries in line with neoliberal logics, and this article takes a particular interest in the impact of this on Indigenous Australians, whose original dispossession connects through to current Indigenous urban experiences of exclusion which are set to intensify in the face of increasing climate change. The article explores what urban resilience means in this context, focusing on a case study of urban development in Port Adelaide, South Australia, and broadens the question of dispossession through the forces of global capital to potentially all of humanity in the Anthropocene.
C1 [Potter, Emily] Deakin Univ, Sch Commun & Creat Arts, Burwood Highway, Burwood, Vic 3125, Australia.
C3 Deakin University
RP Potter, E (corresponding author), Deakin Univ, Sch Commun & Creat Arts, Burwood Highway, Burwood, Vic 3125, Australia.
EM e.potter@deakin.edu.au
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NR 52
TC 22
Z9 24
U1 5
U2 30
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD MAY
PY 2020
VL 57
IS 7
SI SI
BP 1536
EP 1552
DI 10.1177/0042098018821304
PG 17
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA LN4MU
UT WOS:000532914400011
DA 2025-04-22
ER

PT J
AU Wang, SS
   Zhang, QD
   Sun, MZ
   Teng, YH
AF Wang, Susu
   Zhang, Qidi
   Sun, Mengze
   Teng, Yuhong
TI Has urban public service equalization reduced regional differences in
   economic resilience?
SO PLOS ONE
LA English
DT Article
AB We delve into whether the equalization of basic public services can mitigate regional disparities in China's economic resilience. Our analysis reveals that COVID-19 has diminished economic resilience and exacerbated regional differences. Notably, these regional disparities constitute the primary cause of spatial variations in economic resilience. Despite the initially low level of basic public services in Chinese cities, there is a discernible upward trend, indicating a gradual narrowing of regional disparities. Furthermore, we uncover a substantial positive correlation between the equalization of public services and variations in regional economic resilience, thereby offering fresh empirical evidence that the equalization of public services can help bridge the gap in regional economic resilience.
C1 [Wang, Susu] Liaocheng Univ, Sch Business, Liaocheng, Peoples R China.
   [Zhang, Qidi] Shandong Acad Social Sci, Jinan, Peoples R China.
   [Sun, Mengze] Zhongnan Univ Econ & Law, Lib, Wuhan, Peoples R China.
   [Teng, Yuhong] Jianghan Univ, Sch Business, Wuhan, Peoples R China.
C3 Liaocheng University; Zhongnan University of Economics & Law; Jianghan
   University
RP Zhang, QD (corresponding author), Shandong Acad Social Sci, Jinan, Peoples R China.
EM Q.D.Zhang@foxmail.com
FU National Social Science Foundation Project "Research on the Mechanism
   and Path of the Coupling of Manufacturing and Manufacturing Innovation
   Chain and Production Chain and Capital Chain under the New Development
   Pattern" [21BJY065]
FX National Social Science Foundation Project "Research on the Mechanism
   and Path of the Coupling of Manufacturing and Manufacturing Innovation
   Chain and Production Chain and Capital Chain under the New Development
   Pattern" (21BJY065) The funder plays an important role in the design of
   the manuscript.
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Z9 0
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U2 20
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 AUG 26
PY 2024
VL 19
IS 8
AR e0303236
DI 10.1371/journal.pone.0303236
PG 17
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA E7B3B
UT WOS:001304516700079
PM 39186741
OA gold
DA 2025-04-22
ER

PT J
AU Rana, IA
   Asim, M
   Aslam, AB
   Jamshed, A
AF Rana, Irfan Ahmad
   Asim, Muhammad
   Aslam, Atif Bilal
   Jamshed, Ali
TI Disaster management cycle and its application for flood risk reduction
   in urban areas of Pakistan
SO URBAN CLIMATE
LA English
DT Article
DE Climate change adaptation; Disaster risk management; Urban flooding;
   Disaster risk reduction; urban resilience
ID CLIMATE-CHANGE ADAPTATION; VULNERABILITY ASSESSMENT; KHYBER PAKHTUNKHWA;
   INSTITUTIONS; POLICIES; SUSTAINABILITY; URBANIZATION; PREPAREDNESS;
   COMMUNITIES; RESILIENCE
AB The disaster risk management cycle is a recognized instrument for managing disaster events and their impacts. However, the usefulness of the cycle has become questionable in diverse urban settings. Thus, this research uses a pragmatic approach to identify challenges in the effectiveness of the conventional disaster risk management cycle and its phases in the context of urban flooding in Pakistan. Institutions involved in flood risk management were interviewed using semistructured questionnaires. Three focus group discussions were also held to understand the viewpoints of selected communities. Thematic analysis was used to categorize views and responses under each phase. The analysis reveals that, despite the advent of disaster risk reduction strategies, local institutions are still relying on reactive approaches and are managing flood risk on an ad-hoc basis. Weak governance and limited corrective measures for existing development patterns are making it difficult to manage flood risks. There is an urgent need to perform multihazard vulnerability and risk assessment, and develop specific strategies under the philosophies of disaster risk reduction and climate change adaptation. This study recommends the inclusion of climate change adaptation and resilience in the current management cycle for reducing future urban risks.
C1 [Rana, Irfan Ahmad] Natl Univ Sci & Technol NUST, Sch Civil & Environm Engn, Dept Urban & Reg Planning, H-12 Sect, Islamabad 44000, Pakistan.
   [Asim, Muhammad; Aslam, Atif Bilal] Univ Engn & Technol UET, Dept City & Reg Planning, Lahore, Pakistan.
   [Jamshed, Ali] Inst Spatial & Reg Planning IREUS, Stuttgart, Germany.
C3 National University of Sciences & Technology - Pakistan
RP Rana, IA (corresponding author), Natl Univ Sci & Technol NUST, Sch Civil & Environm Engn, Dept Urban & Reg Planning, H-12 Sect, Islamabad 44000, Pakistan.
EM iarana@nit.nust.edu.pk; muhammad.asim@uet.edu.pk; atif.aslam@uet.edu.pk;
   ali.jamshed@ireus.uni-stuttgart.de
RI Aslam, Atif/AES-8412-2022; Jamshed, Ali/AAF-6809-2020; Rana, Irfan
   Ahmad/C-2560-2017
OI Aslam, Atif Bilal/0000-0002-6536-1574; Rana, Irfan
   Ahmad/0000-0002-3157-1186; Jamshed, Ali/0000-0003-4802-1225
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NR 96
TC 57
Z9 58
U1 8
U2 74
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD JUL
PY 2021
VL 38
AR 100893
DI 10.1016/j.uclim.2021.100893
EA JUN 2021
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 TS0HZ
UT WOS:000679338800002
DA 2025-04-22
ER

PT J
AU Xu, Y
   Caprotti, F
   Zhang, WS
   Pan, MM
AF Xu, Ying
   Caprotti, Federico
   Zhang, Weishi
   Pan, Mingmin
TI The socioenvironmental state and urban transitions: Eco-urbanism in
   China and the UK
SO ENVIRONMENT AND PLANNING E-NATURE AND SPACE
LA English
DT Article
DE Eco-urbanism; urban political ecology; eco-city; transition; assemblage;
   resilience
ID LOW-CARBON CITIES; CLIMATE-CHANGE; SMART CITIES; CITY; SUSTAINABILITY;
   RESILIENCE; DUTCH; EXPERIMENTATION; ORGANIZATION; PERSPECTIVE
AB Eco-urbanism encapsulates a range of approaches to the management of urbanisation processes and environmental imperatives in contexts of rapid industrial and economic change. The paper focuses on two eco-urban initiatives in China and the UK over a temporal lens stretching from the mid-2000s to the early 2020s, in order to critically engage with the question of how eco-urban projects develop and often undergo radical changes over time, as well as being changed through significant ruptures, periods of stasis and fluidity in the actor-networks involved in project visions, financing and development. Our comparative approach identifies cross-cutting processes operative across two projects at different scales and in different techno-political contexts. The paper argues that longitudinal analysis is key to enabling a view of transitional trajectories as unfolding, and as a way of moving past oft-repeated assessments of specific projects according to a 'failure/success' binary. In order to do so, the paper considers eco-urban projects through a theoretical lens that views projects as unstable assemblages exhibiting change over time on the one hand, but that also recognises the dynamic resilience of geographical imaginations around eco-urban projects, that means that these projects endure (albeit often in different guises) over time.
C1 [Xu, Ying; Caprotti, Federico] Univ Exeter, Exeter, Devon, England.
   [Zhang, Weishi] Tianjin Normal Univ, Tianjin, Peoples R China.
   [Pan, Mingmin] Chinese Univ Hong Kong, Hong Kong, Peoples R China.
C3 University of Exeter; Tianjin Normal University; Chinese University of
   Hong Kong
RP Caprotti, F (corresponding author), Univ Exeter, Dept Geog, Old Lib, Mail Room, Exeter EX4 4SB, Devon, England.
EM f.caprotti@exeter.ac.uk
RI PAN, Mingmin/IST-1385-2023; XU, YING/HTS-5265-2023; Caprotti,
   Federico/AHB-0702-2022
OI Caprotti, Federico/0000-0002-5280-1016; PAN,
   MINGMIN/0009-0009-1184-3242; XU, YING/0000-0001-6344-9612
FU National Natural Science Foundation of China [72104178]; Research
   Program of the Tianjin Education Commission of China [2021KJ84];
   Zhongjian Dongfang Gao's Scholarship for Resource Management Study
   (2017/18) of the Chinese University of Hong Kong; Global Scholarship for
   Research Excellence (2018-19) of the Chinese University of Hong Kong;
   Department of Geography, University of Exeter
FX This work was funded by the National Natural Science Foundation of China
   (72104178), and the Research Program of the Tianjin Education Commission
   of China (2021KJ84). The fieldwork in China was sponsored by the
   Zhongjian Dongfang Gao's Scholarship for Resource Management Study
   (2017/18) of the Chinese University of Hong Kong. Part of this work was
   carried out at the University of Exeter under the support of the Global
   Scholarship for Research Excellence (2018-19) of the Chinese University
   of Hong Kong, and supported by the Department of Geography, University
   of Exeter.
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NR 107
TC 3
Z9 3
U1 7
U2 26
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 2514-8486
EI 2514-8494
J9 ENVIRON PLAN E-NAT
JI Environ. Plan. E-Nat. Space
PD SEP
PY 2023
VL 6
IS 3
SI SI
BP 1682
EP 1704
DI 10.1177/25148486221132835
EA OCT 2022
PG 23
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA T8AI1
UT WOS:000869431200001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Zhou, HY
   Zhao, XY
   Wu, RZ
AF Zhou, Huaiyu
   Zhao, Xiaoying
   Wu, Renzhi
TI Alleviating urban pluvial floods via dual-use water plazas orchestrated
   by predictive algorithms
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Flood resilience; Real-time control; Hydrodynamic modeling; Model
   predictive control; Sponge City
ID REAL-TIME CONTROL; DRAINAGE SYSTEMS; STORMWATER; GREEN; OPTIMIZATION;
   RESILIENCE; MANAGEMENT; CHINA; RTC
AB Old urban areas, characterized by complex land use and inadequate infrastructure, exhibit high vulnerability to precipitation extremes. The integration of dual-use public infrastructure stands at the forefront of planning initiatives to enhance urban flood resilience. This study introduces a pioneering Smart Water Plaza (SWP) system, orchestrated by predictive algorithms, to mitigate pluvial floods. A high-risk old neighborhood (4.5 km2) in Changsha, China, is selected as a case for empirical analysis. Two types of SWPs-in-situ detention, and runoffreceiving units-are initially established based on spatial mapping and potential analysis. The core feature of the SWP system is a multi-horizon 2D-1D model predictive control (MPC), which directly verifies the suitability of terrain configurations and evaluates temporal efficiency. The study plots the performance curves of the SWPs under various design rainfalls and demonstrates flood dynamics using an actual torrential event. The findings indicate that SWPs' resilience contribution index for the stormwater system ranges from 9 % to 38 %. Furthermore, SWPs covering only 5 % of the site lead to an obvious decrease in flooded areas, with reductions ranging from 46 % to 48 %. These outcomes highlight the disaster mitigation potential inherent in multifunctional public spaces for Sponge City transformation and urban renewal efforts.
C1 [Zhou, Huaiyu] Hunan Univ, Sch Architecture & Planning, Dept Architecture, Changsha 410082, Peoples R China.
   [Zhao, Xiaoying] Tsinghua Univ, Sch Architecture, Dept Landscape Architecture, Beijing 100084, Peoples R China.
   [Wu, Renzhi] South China Univ Technol, Sch Architecture, Guangzhou 510641, Peoples R China.
   [Zhou, Huaiyu] Hunan Engn Technol Res Ctr Smart Disaster Prevent, Changsha 410082, Peoples R China.
C3 Hunan University; Tsinghua University; South China University of
   Technology
RP Zhou, HY (corresponding author), Hunan Univ, Sch Architecture & Planning, Dept Architecture, Changsha 410082, Peoples R China.; Zhou, HY (corresponding author), Hunan Engn Technol Res Ctr Smart Disaster Prevent, Changsha 410082, Peoples R China.
EM zhouhy@hnu.edu.cn
RI ZHAO, XIAOYING/MGV-8230-2025
FU Hunan Provincial Natural Sci-ence Foundation of China [2024JJ6139];
   Post-doctoral Fellowship Program of CPSF [GZC20231227]
FX This research was supported by the Hunan Provincial Natural Sci-ence
   Foundation of China (Project No. 2024JJ6139) and the Post-doctoral
   Fellowship Program of CPSF (Grant No. GZC20231227) . The authors are
   grateful to the respected editors and reviewers for their insightful
   comments.
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NR 62
TC 0
Z9 0
U1 17
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 AUG
PY 2024
VL 640
AR 131695
DI 10.1016/j.jhydrol.2024.131695
EA JUL 2024
PG 14
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA A2M1D
UT WOS:001280912200001
DA 2025-04-22
ER

PT J
AU Ellison, DW
   Woods, AM
AF Ellison, Douglas W.
   Woods, Amelia Mays
TI A Review of Physical Education Teacher Resilience in Schools of Poverty
   Through the Lens of Occupational Teacher Socialization
SO URBAN EDUCATION
LA English
DT Review
DE physical education; resilience; poverty; social; socialization; teacher
   development; urban education; teacher education
ID URBAN-SCHOOLS; PERSPECTIVES; ACHIEVEMENT; COMMITMENT; DELIVERY;
   IDENTITY; SUCCESS; IMPACT; RACE
AB The increase in teacher attrition has been substantial in U.S. public schools over the past three decades. The impact this trend has on student learning is pronounced, especially in high-poverty schools. Minimal research has focused on the resilient teachers who stay in these settings and the personal, professional, and biographical influences that guide that decision. This review of literature, guided by resilience theory, occupational socialization of physical education teachers, and research on poverty, attempts to demonstrate the importance of recruiting, training, and retaining resilient physical education teachers in high-poverty schools.
C1 [Ellison, Douglas W.] Univ Wisconsin, Coll Educ & Profess Studies, Whitewater, WI 53190 USA.
   [Woods, Amelia Mays] Univ Illinois, Dept Kinesiol & Community Hlth, Champaign, IL USA.
C3 University of Wisconsin System; University of Illinois System;
   University of Illinois Urbana-Champaign
RP Ellison, DW (corresponding author), Univ Wisconsin, Whitewater, WI 53190 USA.
EM ellisodw@uww.edu
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NR 109
TC 16
Z9 19
U1 2
U2 73
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0042-0859
EI 1552-8340
J9 URBAN EDUC
JI Urban Educ.
PD OCT
PY 2020
VL 55
IS 8-9
BP 1251
EP 1279
DI 10.1177/0042085916672287
PG 29
WC Education & Educational Research; Urban Studies
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Urban Studies
GA NC6TR
UT WOS:000561350300006
DA 2025-04-22
ER

PT J
AU Mouelhi, S
   Laarouchi, ME
   Cancila, D
   Chaouchi, H
AF Mouelhi, Sebti
   Laarouchi, Mohamed-Emine
   Cancila, Daniela
   Chaouchi, Hakima
TI Predictive Formal Analysis of Resilience in Cyber-Physical Systems
SO IEEE ACCESS
LA English
DT Article
DE Resilience; safety; distributed control; object-oriented software;
   component-based architectures; design by contracts; timed automata; 3D
   models; model-checking; temporal logic; fairness
ID AUTOMATIC VERIFICATION; TIME; DESIGN; UPPAAL
AB The behavioral analysis of cyber-physical systems in safety-critical scenarios is a challenging task. In this paper, the endogenous and exogenous aspects of resilience are of cornerstone importance in system design and verification. Endogenous resilience is the inherent ability of the system to detect and process internal faults and malicious attacks. Exogenous resilience is the permanent capability of the system to maintain a safe operation within its ambient environment. In this paper, we present a predictive dual-sided contract-based formal methodology to address both aspects of resilience on top of a distributed object-oriented component-based software model. It is illustrated by a case study of urban drone rescue systems. We exploit the formalism of timed automata and the toolbox UPPAAL to predict by abstraction and analyze (simulate and verify) endogenous resilience. Instead of presenting the final models of the case study, we reflect our experience with UPPAAL in generic patterns of system design and contract specification, reusable in other contexts with adaptations. The analysis of exogenous resilience is specific to the considered drone rescue system. It consists of synthesizing by iterative model-checking safe fiight paths for the drones within a 3D virtual model of urban surroundings true to modern cities.
C1 [Mouelhi, Sebti] ECE Paris Lyon Ecole Ingenieurs, INSEEC U, F-75015 Paris, France.
   [Laarouchi, Mohamed-Emine; Cancila, Daniela] CEA Saclay, CFA LIST, F-91191 Gif Sur Yvette, France.
   [Chaouchi, Hakima] Telecom SudParis, Inst Mines Telecom, F-91000 Evry, France.
C3 CEA; Universite Paris Saclay; IMT - Institut Mines-Telecom; Institut
   Polytechnique de Paris; Telecom SudParis
RP Mouelhi, S (corresponding author), ECE Paris Lyon Ecole Ingenieurs, INSEEC U, F-75015 Paris, France.; Cancila, D (corresponding author), CEA Saclay, CFA LIST, F-91191 Gif Sur Yvette, France.
EM sebti.mouelhi@ece.fr; daniela.cancila@cea.fr
OI Mouelhi, Sebti/0000-0001-5808-5631
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NR 54
TC 13
Z9 14
U1 0
U2 5
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 2019
VL 7
BP 33741
EP 33758
DI 10.1109/ACCESS.2019.2903153
PG 18
WC Computer Science, Information Systems; Engineering, Electrical &
   Electronic; Telecommunications
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Computer Science; Engineering; Telecommunications
GA HR7MJ
UT WOS:000463338100001
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Zhang, SH
   Zhu, J
   Lv, L
   Wang, Z
AF Zhang, Shihao
   Zhu, Jie
   Lv, Liang
   Wang, Zhe
TI Spatial scale increment identification and dynamic simulation of network
   resilience disturbances in landscape infrastructure: A comprehensive
   approach for optimizing regional planning
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Landscape infrastructure; Landscape sustainability; Urban ecosystem
   services; Genetic algorithm; Network resilience
ID ECOSYSTEM SERVICES; GREEN INFRASTRUCTURE; AREAS; CONNECTIVITY;
   VALUATION; CHINA
AB Human-driven material production has brought social and economic benefits. However, it has also exacerbated environmental degradation, posing considerable challenges to the functional attributes and network structures that some communities rely on and threatening their service supply. The current development model continues to compress limited landscape space, and infrastructure has become a characteristic feature of high-density cities, urgently requiring integrated solutions to plan them synergistically. Landscape Infrastructure (LI)-oriented regional planning offer the possibility of integrating social, cultural, and ecosystem services into urban planning. Therefore, this study utilized Genetic Algorithms (GA) to optimize LI distribution, combined with network node testing to assess the rationality of spatial configuration and dynamically simulated urban disturbance scenarios. Using Chongqing as a typical case, the optimized LI area increased by 47.5%, and network efficiency and connectivity indicators significantly improved. While completing the scale increment and structural stability requirements, the model calculations revealed a regional network resilience threshold of 0.36, effectively guiding priority areas for construction and protection. The study provides a replicable Landscape Infrastructure System (LIS) framework, integrating GA and network theory to develop a multi-objective optimization approach. The results support targeted spatial management policies and contribute to sustainable urban development and resilience of socio-ecological systems.
C1 [Zhang, Shihao; Zhu, Jie; Lv, Liang; Wang, Zhe] Chongqing Univ, Sch Architecture & Urban Planning, Shazheng St, Chongqing 400044, Peoples R China.
   [Zhang, Shihao; Zhu, Jie; Lv, Liang; Wang, Zhe] Chongqing Univ, Key Lab New Technol Construct Cities Mt Areas, Chongqing 400044, Peoples R China.
C3 Chongqing University; Chongqing University
RP Zhu, J (corresponding author), Chongqing Univ, Sch Architecture & Urban Planning, Shazheng St, Chongqing 400044, Peoples R China.
EM chujay@cqu.edu.cn
FU State Key Program of National Natural Science of China [52238003]
FX This research was supported by the State Key Program of National Natural
   Science of China (Grant No. 52238003) .
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NR 85
TC 0
Z9 0
U1 20
U2 20
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAR 1
PY 2025
VL 121
AR 106180
DI 10.1016/j.scs.2025.106180
EA FEB 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 X2S8Q
UT WOS:001423920700001
DA 2025-04-22
ER

PT J
AU Wang, XM
   Dong, QQ
AF Wang, Xiaoming
   Dong, Qianqian
TI Assessment of urban ecosystem health and its influencing factors: a case
   study of Zibo City, China
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Urban ecosystem health; Obstacle factor analysis; Sensitivity factor
   analysis; Zibo City
ID COVER CHANGE; SERVICES; CITIES; EMERGY
AB Urban ecosystem health is the foundation of sustainable urban development. It is important to know the health status of urban ecosystem and its influencing factors for formulating scientific urban development planning. Taking Zibo city as the study area, the indicators were selected from five aspects: ecosystem vigor, structure, resilience, service function and population health to establish an assessment index system of urban ecosystem health. The health level of urban ecosystem was assessed, and its changing trend was analyzed from 2006 to 2018 in Zibo. Furthermore, obstacle degree analysis and sensitivity analysis were used to quantitatively analyze the main obstacle factors and sensitivity factors affecting urban ecosystem health, so as to provide references for improving urban ecosystem health. The results showed that the health level of urban ecosystem in Zibo showed an upward trend from 2006 to 2018. The poor structure and ecological environment quality were the main obstacle factors to urban ecosystem health. The impact of changes in a single indicator on urban ecosystem health gradually decreased, but the sensitivity index of indicators had obvious differences. Urban ecosystem health was sensitive to changes in ecosystem structure and resilience. In the future, Zibo should strengthen ecological construction, optimize the industrial structure, and develop green economy to promote urban ecosystem healthy.
C1 [Wang, Xiaoming; Dong, Qianqian] Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Shandong, Peoples R China.
C3 Shandong Normal University
RP Wang, XM (corresponding author), Shandong Normal Univ, Coll Geog & Environm, Jinan 250358, Shandong, Peoples R China.
EM liwxm@163.com
RI book30, book30/T-7713-2019
FU Shandong Social Science Fund;  [19BJCJ23]
FX This research was supported by Shandong Social Science Fund (19BJCJ23).
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NR 50
TC 3
Z9 3
U1 38
U2 71
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD APR 11
PY 2024
VL 14
IS 1
AR 8455
DI 10.1038/s41598-024-59103-6
PG 11
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA NO5U6
UT WOS:001201413300034
PM 38605157
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Zou, JX
   Chen, B
   Wang, SG
AF Zou, Jiaxiang
   Chen, Bin
   Wang, Saige
TI Ecological network analysis and optimization of urban water metabolic
   system in context of energy nexus
SO APPLIED ENERGY
LA English
DT Article
DE Water metabolic network; Dual-objective optimization; Ecological network
   analysis; Energy consumption
ID MULTIREGIONAL INPUT-OUTPUT; RECLAIMED WATER; RESOURCES; EFFICIENCY;
   FRAMEWORK; IRRIGATION; RESILIENCE; ALLOCATION; EFFLUENT; WETLAND
AB The interconnectivity of energy and water resources is inherent within the urban water system. To meet the energy demands of the urban water system and optimize resource utilization, effective planning and management are essential. In this paper, a new framework incorporating network analysis and optimization model was developed to decrease energy consumption while enhancing water resource network resilience in Beijing, China. First, we established a water metabolic network (WMN) using ecological network analysis (ENA) to determine the water resource flow in each process. Then, the WMN performance was evaluated utilizing a set of indices derived from the ENA approach. Finally, an optimization model was set up with the objectives of minimizing energy consumption and maximizing network resilience, using non-dominated sorting genetic algorithm II (NSGA-II) to obtain the Pareto-optimal solutions. The results indicated that WMN was generally operated at a status of low efficiency, high redundancy and robustness. Totally 0.70 billion m3 of water resources and 2.77 billion kWh of energy flow can be saved after the dual-objective optimization. The proposed framework may help optimize water metabolic network to decrease energy consumption while enhancing network resilience for a better urban water system planning, maintenance and management.
C1 [Zou, Jiaxiang; Chen, Bin; Wang, Saige] Beijing Normal Univ, Sch Environm, State Key Lab Reg Environm & Sustainabil, 10 Xinjie Kouwaidajie St, Beijing 100875, Peoples R China.
C3 Beijing Normal University
RP Chen, B (corresponding author), Beijing Normal Univ, Sch Environm, State Key Lab Reg Environm & Sustainabil, 10 Xinjie Kouwaidajie St, Beijing 100875, Peoples R China.
EM chenb@bnu.edu.cn
FU National Key R & D Program of China [2024YFF1307000]; National Natural
   Science Foundation of China [72091511]; State Key Laboratory of Regional
   Environment and Sustainability [24L01ESPC]; Science and technology
   innovation Program of Hunan Province [2023RC4008]
FX This work was supported by the National Key R & D Program of China
   (2024YFF1307000) , National Natural Science Foundation of China
   (Nos.72091511) , special fund of State Key Laboratory of Regional
   Environment and Sustainability (24L01ESPC) , and the Science and
   technology innovation Program of Hunan Province (2023RC4008) . We thank
   editor and reviewers for their great help.
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NR 79
TC 0
Z9 0
U1 2
U2 2
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 JUN 15
PY 2025
VL 388
AR 125700
DI 10.1016/j.apenergy.2025.125700
PG 13
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA 0IG8A
UT WOS:001448024100001
DA 2025-04-22
ER

PT J
AU Wang, L
   Xue, XL
   Xue, WR
   Zhao, BL
AF Wang, Liang
   Xue, Xiaolong
   Xue, Weirui
   Zhao, Beile
TI Analyzing the Formation Mechanism of Cross-City Transportation Network
   Resilience
SO DISCRETE DYNAMICS IN NATURE AND SOCIETY
LA English
DT Article
ID CRITICAL INFRASTRUCTURE; URBAN RESILIENCE
AB The formation mechanism of cross-city transportation network resilience occupies an important position in cross-city transportation network resilience management. This study analyzes the constituent elements of the cross-city transportation network and their interrelationships, and the connotation of cross-city transportation network resilience is defined from the general meaning of system resilience. Combining with the connotation of cross-city transportation network resilience, the specific formation process of cross-city transportation network resilience is analyzed and summarized from three stages, including resisting disturbance, absorbing disturbance, and function recovery. Taking cross-city transportation network nodes and systems as specific objects, the static and dynamic formation path of cross-city transportation network resilience is condensed. Based on the standard linear solid model, a theoretical model is constructed and solved for revealing the formation mechanism of cross-city transportation network resilience. Finally, the theoretical model of cross-city transportation network resilience proposed in this study is used for analyzing the China railway network resilience.
C1 [Wang, Liang; Zhao, Beile] Dalian Maritime Univ, Sch Maritime Econ & Management, 1 Linghai Rd, Dalian 116026, Peoples R China.
   [Xue, Xiaolong; Xue, Weirui] Guangzhou Univ, Sch Management, 230 Outer Ring Rd, Guangzhou 510006, Peoples R China.
C3 Dalian Maritime University; Guangzhou University
RP Xue, XL (corresponding author), Guangzhou Univ, Sch Management, 230 Outer Ring Rd, Guangzhou 510006, Peoples R China.
EM xlxue@hit.edu.cn
RI Wang, Liang/AAI-1031-2021
OI Wang, Liang/0000-0002-4063-6842
FU National Social Science Fund of China [18ZDA043, 19VDL001]; National
   Natural Science Foundation of China (NSFC) [71671053, 71841024];
   Guangdong Science and Technology Program [2019B101001019]; Key Research
   and Development Project of Liaoning Province [84200040]; Social Science
   Planning Foundation of Liaoning Province [L20BGL056]; Economic and
   Social Development Research Foundation of Liaoning Province
   [20211slqnkt-014]; Natural Science Foundation of Heilongjiang Province
   [LH2019G006]
FX This research was supported by the National Social Science Fund of China
   (nos. 18ZDA043 and 19VDL001). This work was also funded by the National
   Natural Science Foundation of China (NSFC) (nos. 71671053 and 71841024),
   Guangdong Science and Technology Program (no. 2019B101001019), Key
   Research and Development Project of Liaoning Province (no.
   2020JH2/10100042), Key Research and Development Project of Liaoning
   Province (no. 84200040), Social Science Planning Foundation of Liaoning
   Province (no. L20BGL056), Economic and Social Development Research
   Foundation of Liaoning Province (no. 20211slqnkt-014), and Natural
   Science Foundation of Heilongjiang Province (no. LH2019G006).
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NR 50
TC 1
Z9 1
U1 31
U2 270
PU HINDAWI LTD
PI LONDON
PA ADAM HOUSE, 3RD FLR, 1 FITZROY SQ, LONDON, W1T 5HF, ENGLAND
SN 1026-0226
EI 1607-887X
J9 DISCRETE DYN NAT SOC
JI Discrete Dyn. Nat. Soc.
PD MAR 12
PY 2021
VL 2021
AR 5524719
DI 10.1155/2021/5524719
PG 12
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 RB1YH
UT WOS:000631911400002
OA gold
DA 2025-04-22
ER

PT J
AU Campbell, KA
   Laurien, F
   Czajkowski, J
   Keating, A
   Hochrainer-Stigler, S
   Montgomery, M
AF Campbell, Karen A.
   Laurien, Finn
   Czajkowski, Jeffrey
   Keating, Adriana
   Hochrainer-Stigler, Stefan
   Montgomery, Marilyn
TI First insights from the Flood Resilience Measurement Tool: A large-scale
   community flood resilience analysis
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Flood resilience; Community; Flood resilience baselines; Measuring and
   evaluation
ID URBAN RESILIENCE
AB A major gap in understanding community flood resilience is a lack of an empirically validated measure of it. To fill this gap, the Zurich Flood Resilience Alliance developed an approach to test and validate a measure of community flood resilience. The approach holistically measures a set of sources of community flood resilience and, when floods occur, it also measures resilient outcomes (level of loss and recovery time). The data is collected and assessed via a web and mobile based measurement tool. Here we report results from data collected in 118 communities across 9 countries using mixed method data collection approaches. This study represents the first large scale analysis of systemic and replicable flood resilience baseline data. The learnings from the analysis provide insights into sources of community flood resilience as a first step to building an evidence based approach to building effective flood resilience capacity.
C1 [Campbell, Karen A.] Wharton Risk Management & Decis Proc Ctr IHS Mark, Philadelphia, PA 19104 USA.
   [Laurien, Finn; Keating, Adriana; Hochrainer-Stigler, Stefan] IIASA, Philadelphia, PA USA.
   [Czajkowski, Jeffrey] Wharton Risk Management & Decis Proc Ctr, NAIC, Philadelphia, PA USA.
   [Montgomery, Marilyn] Wharton Risk Management & Decis Proc Ctr, FC McColm Consulting, Philadelphia, PA USA.
C3 University of Pennsylvania; University of Pennsylvania
RP Campbell, KA (corresponding author), Wharton Risk Management & Decis Proc Ctr IHS Mark, Philadelphia, PA 19104 USA.
EM karen3@temple.edu
RI Keating, Adriana/GSE-5451-2022
OI Hochrainer-Stigler, Stefan/0000-0002-9929-8171; Keating,
   Adriana/0000-0002-4016-067X
FU Z Zurich Foundation
FX The authors are extremely grateful to Reinhard Mechler, Erwann
   Michel-Kerjan, Howard Kunreuther, Michael Szoenyi, David Nash, Colin
   McQuistan, Francisco Ianni, Scott Chaplowe and three anonymous reviewers
   for their valuable input, comments and collaboration on the research. We
   also thank the Z Zurich Foundation for their support and funding.
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NR 30
TC 43
Z9 47
U1 37
U2 247
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 2019
VL 40
AR 101257
DI 10.1016/j.ijdrr.2019.101257
PG 19
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 JA4UM
UT WOS:000487832700010
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Chen, Y
   Liu, T
   Chen, RS
   Zhao, MK
AF Chen, Yi
   Liu, Tao
   Chen, Ruishan
   Zhao, Mengke
TI Influence of the Built Environment on Community Flood Resilience:
   Evidence from Nanjing City, China
SO SUSTAINABILITY
LA English
DT Article
DE flood resilience; built environment; community; influencing factors;
   Nanjing
ID CLIMATE-RELATED DISASTERS; SEA-LEVEL RISE; SOCIAL VULNERABILITY; GREEN
   INFRASTRUCTURE; COASTAL COMMUNITIES; URBAN DESIGN; TRAVEL; NETWORKS;
   BEHAVIOR; IMPACT
AB With the acceleration of global climate change and urbanization, many large and medium-sized cities in China have been frequently subjected to heavy rains and floods. Thus, the question of how to reduce the impact of floods and achieve rapid recovery has attracted much attention. We use the urban community as the basic unit to examine the living environment, internal facilities, and surrounding environment characteristics of six different types of communities in the Jianye District of Nanjing City. First, we use factor analysis and the binary logistic regression model to analyze pre-disaster preparation, disaster response, and post-disaster recovery. Second, we analyze the resilience of the community at different stages. Then, we explore the influencing factors of the built environment on the resilience of the community. Results show that the built-up environmental factors, such as topography, riverfront, building coverage ratio, green space rate, and land use diversity, have a significant impact on community resilience. Finally, we proposed several suggestions for improving the flood resilience of Nanjing City.
C1 [Chen, Yi; Zhao, Mengke] Nanjing Tech Univ, Sch Architecture, Nanjing 211816, Peoples R China.
   [Liu, Tao] Peking Univ, Coll Urban & Environm Sci, Beijing 100871, Peoples R China.
   [Chen, Ruishan] East China Normal Univ, Sch Geog Sci, Key Lab Geog Informat Sci, Minist Educ, Shanghai 200241, Peoples R China.
   [Chen, Ruishan] East China Normal Univ, Inst Ecochongming, Shanghai 200241, Peoples R China.
C3 Nanjing Tech University; Peking University; East China Normal
   University; East China Normal University
RP Liu, T (corresponding author), Peking Univ, Coll Urban & Environm Sci, Beijing 100871, Peoples R China.; Chen, RS (corresponding author), East China Normal Univ, Sch Geog Sci, Key Lab Geog Informat Sci, Minist Educ, Shanghai 200241, Peoples R China.; Chen, RS (corresponding author), East China Normal Univ, Inst Ecochongming, Shanghai 200241, Peoples R China.
EM chenyi2012@njtech.edu.cn; liutao@pku.edu.cn; rschen@geo.ecnu.edu.cn;
   zhaomengke1997@163.com
RI Liu, Tao/B-6318-2009
OI Liu, Tao/0000-0002-3568-4882; YI, CHEN/0000-0002-2604-8868; chen,
   ruishan/0000-0002-7221-8784
FU National Natural Science Foundation of China [41701186, 41801146,
   41571488]; Humanity and Social Science Youth Foundation of Ministry of
   Education [17YJCZH029, 18YJC840022]; College Student Innovation and
   Entrepreneurship Training Program of Jiangsu Province [201910291071Z]
FX This research was funded by the National Natural Science Foundation of
   China (41701186, 41801146, 41571488), the Humanity and Social Science
   Youth Foundation of Ministry of Education (17YJCZH029, 18YJC840022), and
   the College Student Innovation and Entrepreneurship Training Program of
   Jiangsu Province (201910291071Z).
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NR 57
TC 20
Z9 21
U1 17
U2 134
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAR 2
PY 2020
VL 12
IS 6
AR 2401
DI 10.3390/su12062401
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 LA1YW
UT WOS:000523751400248
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU He, CF
   Sheng, HT
AF He, Canfei
   Sheng, Hantian
TI Governance capacity, related variety and regional economic resilience
   under the COVID-19 epidemic: evidence from China
SO ANNALS OF REGIONAL SCIENCE
LA English
DT Article
DE R11; R58
ID CENTRAL-LOCAL RELATIONS; QUALITY; GOVERNMENT; STATE; DECENTRALIZATION;
   INSTITUTIONS; ADAPTATION; FRAMEWORK; GEOGRAPHY; NETWORKS
AB The outbreak of COVID-19 epidemic had a prolonged impact on urban economic activities. Cities with better economic resilience are more capable of resisting the shock brought by the epidemic and realizing post-epidemic economic recovery. In such an uncertain environment, both governance capability and local industrial varieties have significant impacts on economic resilience. On the basis of previous works from evolutionary economic geography and institutional studies, this study uses nighttime light intensity as a proxy for economic resilience at prefecture-level. Our findings indicate that, at least in the short term, the effect of governance capacity on economic resilience is moderated by local industry varieties. Hence, the local government may enhance economic resilience via innovation, economic development and urban governance channels, but it should follow the risk transmission mechanism of the regional industrial network. In addition, taking into account the institutional basis of China's central-local relation, local governance capacity was compressed in the prevention and control of epidemic, mitigating its function on the long-term economic recovery.
C1 [He, Canfei; Sheng, Hantian] Peking Univ, Coll Urban & Environm Sci, Beijing, Peoples R China.
C3 Peking University
RP He, CF (corresponding author), Peking Univ, Coll Urban & Environm Sci, Beijing, Peoples R China.
EM hecanfei@urban.pku.edu.cn
RI Sheng, Hantian/JAD-0815-2023
OI He, Canfei/0000-0001-5170-3599
FU Institut fr Arbeitsmarkt- und Berufsforschung
FX No Statement Available
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NR 87
TC 2
Z9 2
U1 13
U2 41
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0570-1864
EI 1432-0592
J9 ANN REGIONAL SCI
JI Ann. Reg. Sci.
PD JUN
PY 2024
VL 73
IS 1
BP 291
EP 321
DI 10.1007/s00168-024-01266-1
EA APR 2024
PG 31
WC Economics; Environmental Studies; Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Environmental Sciences & Ecology; Geography;
   Public Administration
GA XR2N2
UT WOS:001199188300002
DA 2025-04-22
ER

PT J
AU Neset, TS
   Wilk, J
   Cruz, S
   Graça, M
   Rod, JK
   Maarse, MJ
   Wallin, P
   Andersson, L
AF Neset, T-S
   Wilk, J.
   Cruz, S.
   Graca, M.
   Rod, J. K.
   Maarse, M. J.
   Wallin, P.
   Andersson, L.
TI Co-designing a citizen science climate service
SO CLIMATE SERVICES
LA English
DT Article
DE Citizen sensing; Climate adaptation; Urban resilience; Participatory
   processes; Co-creation
ID BOUNDARY OBJECTS; KNOWLEDGE; COPRODUCTION; INFORMATION; EXPERIMENTATION;
   USABILITY; VOLUNTARY; CREATION; SUCCESS; LEARN
AB Interactive mobile technologies provide an emerging opportunity for citizens to engage with and enhance urban climate resilience, both as providers of locally situated data on climate variables, impacts and climate adaptation measures as well as to obtain information on local conditions and recommendations. This paper examines the process of co-designing a citizen science application for urban climate resilience in four European cities. Further, the paper studies if and how the system enables knowledge co-production to increase urban resilience following process principles for co-production of climate services and discusses the legitimacy, transparency, credibility, and relevance of the process. We further assess the role that a citizen science climate service could play as a boundary object in knowledge co-production. We draw on experiences from a co-design process that included municipal stakeholders from different sectors as well as municipal employees and civil society end-users involved in campaigns. This study identified a set of barriers and enablers for the co-design process and concludes that the CitizenSensing application can fulfil the role of a boundary object, but that the co-design process is a balancing act between navigating time constraints, including stakeholders' different and changing demands and perspectives while retaining a high level of flexibility and reflexivity.
C1 [Neset, T-S; Wilk, J.] Linkoping Univ, Ctr Climate Sci & Policy Res, Dept Themat Studies Environm Change, S-58183 Linkoping, Sweden.
   [Cruz, S.; Graca, M.] Univ Porto, Res Ctr Terr Transports & Environm CITTA, Fac Engn, P-4200465 Porto, Portugal.
   [Rod, J. K.] Norwegian Univ Sci & Technol NTNU, Fac Social & Educ Sci, Dept Geog, NO-7491 Trondheim, Norway.
   [Maarse, M. J.] Deltares, NL-2600 MH Delft, Netherlands.
   [Wallin, P.; Andersson, L.] Swedish Meteorol & Hydrol Inst SMHI, S-60176 Norrkoping, Sweden.
C3 Linkoping University; Universidade do Porto; Norwegian University of
   Science & Technology (NTNU); Deltares; Swedish Meteorological &
   Hydrological Institute
RP Neset, TS (corresponding author), Linkoping Univ, Ctr Climate Sci & Policy Res, Dept Themat Studies Environm Change, S-58183 Linkoping, Sweden.
EM tina.neset@liu.se
RI Cruz, Sara/AAN-2203-2021
OI Graca, Marisa/0000-0002-2231-8752; Santos Cruz,
   Sara/0000-0002-1776-4985; Neset, Tina-Simone/0000-0003-1151-9943
FU FCT (Portugal) [ERA4CS/0001/2016]; FORMAS (Sweden) [201701719]; NWO (The
   Netherlands) [438.17.805]; RCN (Norway) [274192]; European Union
   [690462]; Fundação para a Ciência e a Tecnologia [ERA4CS/0001/2016]
   Funding Source: FCT
FX This research is part of the project `Citizen Sensing -Urban Climate
   Resilience through Participatory Risk Management Systems' that is part
   of ERA4CS, an ERA-NET initiated by JPI Climate, and funded by FCT
   (Portugal, Grant ERA4CS/0001/2016), FORMAS (Sweden, Grant 201701719),
   NWO (The Netherlands, Grant 438.17.805), and RCN (Norway, Grant 274192)
   with co-funding by the European Union (Grant 690462).
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NR 68
TC 16
Z9 17
U1 3
U2 23
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2405-8807
J9 CLIM SERV
JI Clim. Serv.
PD DEC
PY 2021
VL 24
AR 100273
DI 10.1016/j.cliser.2021.100273
EA NOV 2021
PG 10
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 YE1IC
UT WOS:000740883000001
OA Green Submitted, Green Published, gold
DA 2025-04-22
ER

PT J
AU Zaman-ul-Haq, M
   He, MY
   Kanwal, A
   Amir, S
   Akhtar, N
   Saqib, Z
   Jamil, A
   Alarifi, SS
   Mubbin, M
   Bokhari, SA
AF Zaman-ul-Haq, Muhammad
   He, Mingyue
   Kanwal, Ambrina
   Amir, Sarah
   Akhtar, Nadia
   Saqib, Zafeer
   Jamil, Ahsan
   Alarifi, Saad S.
   Mubbin, Muhammad
   Bokhari, Syed Atif
TI Remote Sensing-Based Assessments of Socioeconomic Factors for Urban
   Ecological Resilience in the Semi-Arid Region
SO RANGELAND ECOLOGY & MANAGEMENT
LA English
DT Article
DE Environmental perceptions; Participatory initiatives; Socioeconomic
   Determinants; Sustainable development; Urban ecology; Urbanization
ID VEGETATION; WATER
AB Ecological resources sustain life, influencing ecology and landscape but demanding sustenance. Urbanization is impacting such resources, which is a critical concern for stakeholders. However, appreciating green infrastructure (ecological resources) is relative as the resourceful and resource-deficient nourish divergent views. Socioeconomic determinants significantly influence urban environmental integrity, making their study cardinal. This study evaluated the empirical information for holistic appraisals. The data were obtained from planned (Faisalabad) and semi-planned (Jhang) cities through a cross-sectional survey using a structured questionnaire from 250 households. These two cities were selected because they are physically and economically homogenous but have divergent urbanization trends. Findings construe 48.6% perceiving the environment as unhealthy. About 97.6% understood urban ecological degradation, showing concern. The statistical inferences based on Kruskal-Wallis and Wilcoxon rank-sum tests rendered that age, education, profession, and nature of job influence ( P <= 0.05) awareness regarding urban-ecological resilience. In contrast, gender, duration of stay, and income were insignificant. However, 64.6% showed an inclination for active participation. Contrarily, the majority complained about the city administration. The meagerness of female participation was noticeable, demanding redressal. An enhanced focus on the younger segments of urban society is also needed. Conclusions render that all stakeholders must join hands for urban ecological resilience. (c) 2024 The Society for Range Management. Published by Elsevier Inc. All rights reserved.
C1 [Zaman-ul-Haq, Muhammad; Saqib, Zafeer] Int Islamic Univ, Dept Environm Sci, GIS & Ecoinformat Lab, Islamabad 44000, Pakistan.
   [He, Mingyue] Hubei Univ Automot Technol, Shiyan 442002, Peoples R China.
   [He, Mingyue] Hubei Prov Key Lab Automot Power Transmiss & Elect, Shiyan 442002, Peoples R China.
   [Kanwal, Ambrina] Bahria Univ, Dept Comp Sci, Islamabad 44000, Pakistan.
   [Amir, Sarah; Akhtar, Nadia] Int Islamic Univ, Dept Environm Sci, Female Campus, Islamabad 44000, Pakistan.
   [Jamil, Ahsan] New Mexico State Univ, Dept Plant & Environm Sci, Las Cruces, NM 88003 USA.
   [Alarifi, Saad S.] King Saud Univ, Coll Sci, Dept Geol & Geophys, Riyadh 11451, Saudi Arabia.
   [Mubbin, Muhammad; Bokhari, Syed Atif] Govt Grad Coll, Dept Geog, Asghar Mall, Rawalpindi 46000, Pakistan.
C3 International Islamic University, Pakistan; Hubei University of
   Automotive Technology; International Islamic University, Pakistan; New
   Mexico State University; King Saud University
RP He, MY (corresponding author), Hubei Univ Automot Technol, Sch Automot Engn, Shiyan 442002, Peoples R China.
EM ahemingyue@163.com
RI Akhtar, Nadia/AGG-0404-2022; Jamil, Ahsan/HKE-4058-2023; Alarifi,
   Saad/GZM-6494-2022; ul Haq, Muhammad Zaman/ABI-1160-2022; Saqib,
   Zafeer/J-4364-2017; Mubbin, Muhammad/KIA-8398-2024
OI Saqib, Zafeer/0000-0002-8008-750X; ul Haq, Muhammad
   Zaman/0000-0002-7774-6033; Akhtar, Nadia/0000-0003-4214-4726; Mubbin,
   Muhammad/0000-0002-9515-9561
FU King Saud University, Riyadh, Saudi Arabia [RSP2024R496]
FX The authors extend their appreciation to the researchers sup-porting
   project number (RSP2024R496) , King Saud University, Riyadh, Saudi
   Arabia. The authors would like to acknowledge the anonymous reviewers
   for their contribution to this manuscript.
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NR 57
TC 2
Z9 2
U1 5
U2 10
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1550-7424
EI 1551-5028
J9 RANGELAND ECOL MANAG
JI Rangel. Ecol. Manag.
PD SEP
PY 2024
VL 96
BP 12
EP 22
DI 10.1016/j.rama.2024.04.010
EA AUG 2024
PG 11
WC Ecology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA D9Q7N
UT WOS:001299460500001
DA 2025-04-22
ER

PT J
AU Stojkovic, M
   Mijic, A
   Dobson, B
   Marjanovic, D
   Majkic-Dursun, B
AF Stojkovic, Milan
   Mijic, Ana
   Dobson, Barnaby
   Marjanovic, Dusan
   Majkic-Dursun, Brankica
TI Novel Perspectives on Environmental Dynamic Resilience: Adapting Urban
   Water Systems to a Changing Climate
SO WATER RESOURCES MANAGEMENT
LA English
DT Article
DE Environmental dynamic resilience; Environmental reliability;
   climate-related risks; Urban water system; CityWat; London
ID ENGLAND; RISK; RELIABILITY
AB Climate change imposes significant pressure on existing urban water systems. Prolonged low-flow periods, attributed to shifting climatic conditions, swiftly reduce the available water storage in reservoirs and threaten the quality of river water. This paper introduces a framework for assessing the environmental dynamic resilience (EDR) of urban water systems. The EDR framework stands as a state-of-the-art risk assessment tool that incorporates the dynamic nature and recovery time of water systems. The framework employs outputs from a series of models, including climate, hydrological, and urban water system models, as input data. To validate the findings from the proposed framework, environmental reliability (ER) is utilized as a conventional risk metric in the realm of water resource management. London, UK, serves as a case area to showcase the effectiveness of the proposed climate-related risk metric. The findings suggest a projected 10.5% decrease in the overall EDR during the near-future period (2020-2049) when compared to the baseline period (1975-2004). The sharpest declines in EDR are anticipated for the water quality (15.4%) and reservoir parts (13.6%) of the urban water system. Conversely, ER aligns with the insights from the introduced framework, suggesting a reliability reduction of approximately 6.8%. Nevertheless, ER neglects the recovery time essential for attaining full system functionality, leading to a potential underestimation of the climate-related risks to the urban water system.
C1 [Stojkovic, Milan] Inst Artificial Intelligence Res & Dev Serbia, Novi Sad, Serbia.
   [Mijic, Ana; Dobson, Barnaby] Imperial Coll London, Fac Engn, Dept Civil & Environm Engn, London, England.
   [Marjanovic, Dusan; Majkic-Dursun, Brankica] Jaroslav Cerni Water Inst, Belgrade, Serbia.
C3 Imperial College London
RP Stojkovic, M (corresponding author), Inst Artificial Intelligence Res & Dev Serbia, Novi Sad, Serbia.
EM milan.stojkovic@ivi.ac.rs
RI Dobson, Barnaby/LBH-1116-2024; Stojkovic, Milan/MCK-4022-2025;
   Marjanovic, Dusan/KYR-4549-2024
OI Mijic, Ana/0000-0001-7096-9405; Stojkovic, Milan/0000-0002-7817-9341;
   Marjanovic, Dusan/0009-0006-3427-0254
FU Science fund of the Republic of Serbia
FX No Statement Available
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NR 55
TC 0
Z9 0
U1 7
U2 9
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0920-4741
EI 1573-1650
J9 WATER RESOUR MANAG
JI Water Resour. Manag.
PD SEP
PY 2024
VL 38
IS 12
BP 4455
EP 4472
DI 10.1007/s11269-024-03874-0
EA MAY 2024
PG 18
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA E0J7W
UT WOS:001221285000001
DA 2025-04-22
ER

PT J
AU Zhang, WX
   Han, Q
   Shang, WL
   Xu, CS
AF Zhang, Wangxin
   Han, Qiang
   Shang, Wen-Long
   Xu, Chengshun
TI Seismic resilience assessment of interdependent urban
   transportation-electric power system under uncertainty
SO TRANSPORTATION RESEARCH PART A-POLICY AND PRACTICE
LA English
DT Article
DE Seismic resilience; Transportation system; Electric power system;
   Interdependencies; Uncertainty
ID RECOVERY; NETWORK; FRAMEWORK; BRIDGES; DAMAGE
AB Transportation system (TS) and electric power system (EPS) play crucial roles in the functioning of modern societies. Disruptions to these systems can result in severe consequences, such as substantial economic losses and public safety concerns. The growing interdependencies of infrastructures have increased the vulnerability of TS and EPS to extreme events. However, previous works have not adequately considered the bidirectional interdependencies of TS and EPS when assessing their resilience under earthquake. This study develops a novel framework for evaluating the seismic resilience of urban transportation-electric power system. In such framework, functionality dependencies, resource-sharing interdependencies and restoration independencies are incorporated to represent the interaction between TS and EPS. A weighted connectivity efficiency-based metric is introduced to quantify network performance, considering both topological and flow characteristics. The framework also addresses uncertainties related to seismic damage and repair duration. A demonstrative study is conducted on a TS-EPS system located in Minneapolis, Minnesota. The results reveal the importance of considering the uncertainty factors on the prediction of network recovery trajectories and resilience. In addition, the effects of various enhancement strategies on network resilience are discussed.
C1 [Zhang, Wangxin; Han, Qiang; Shang, Wen-Long; Xu, Chengshun] Beijing Univ Technol, State Key Lab Bridge Engn Safety & Resilience, Beijing 100124, Peoples R China.
   [Shang, Wen-Long] Imperial Coll London, Dept Civil & Environm Engn, London SW7 2AZ, England.
C3 Beijing University of Technology; Imperial College London
RP Han, Q; Shang, WL (corresponding author), Beijing Univ Technol, State Key Lab Bridge Engn Safety & Resilience, Beijing 100124, Peoples R China.
EM WXZhang@emails.bjut.edu.cn; qhan@bjut.edu.cn;
   shangwl_imperial@bjut.edu.cn; xuchengshun@bjut.edu.cn
RI Shang, Wen-Long/LZG-1023-2025
OI qiushen, xu/0009-0008-6951-4225
FU National Key Research and Development Program of China [2022YFC3003603];
   National Natural Science Foundation of China [52338010, 61703053];
   Beijing Natural Science Foundation [L211027, 9232003]
FX This work was supported by the National Key Research and Development
   Program of China (Grant Number 2022YFC3003603), National Natural Science
   Foundation of China (Grant Number 52338010 and 61703053) and Beijing
   Natural Science Foundation (Grant Number L211027 and 9232003).
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NR 76
TC 9
Z9 9
U1 32
U2 63
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0965-8564
EI 1879-2375
J9 TRANSPORT RES A-POL
JI Transp. Res. Pt. A-Policy Pract.
PD MAY
PY 2024
VL 183
AR 104078
DI 10.1016/j.tra.2024.104078
EA APR 2024
PG 19
WC Economics; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Transportation
GA D3N5A
UT WOS:001295286300001
DA 2025-04-22
ER

PT J
AU Shen, ZF
   Ji, CJ
   Lu, SC
   Li, D
AF Shen, Zuofei
   Ji, Chengjun
   Lu, Shichang
   Li, Dan
TI Enhancing the Future Resilience of a Coastal Water Supply Infrastructure
   System to Sea-Level Rise
SO JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT
LA English
DT Article
DE Coastal water supply infrastructure system (CWSIS); Infrastructure
   resilience; Sea level rise (SLR); Resilience index
ID INTRUSION
AB Coastal water supply infrastructure systems (CWSISs) are exposed to saltwater intrusion (SWI) exacerbated by sea level rise (SLR) stressors. However, most existing definitions of CWSIS resilience are confined to the system's global severity, while uncertainties from SLR are not considered. In this paper, we develop a CWSIS model considering uncertainties from SLR and define a new formula for resilience based on three components of system severity, i.e., social severity (SevS) affected by water shortages to end users, regional severity (SevR) caused by water shortages in water treatment plants (WTPs), and technological severity (SevT) considering water shortages in wells. A case study in Xingcheng is designed to (1) examine the resilience response of CWSISs to future SLR, (2) identify vulnerable components, and (3) compare the cost-effectiveness of different measures for enhancing resilience using scenario analysis with full consideration of future uncertainties from SLR. This paper contributes to the development of sustainability assessments for urban water systems subject to future sea level change. Finding response measures with high adaptiveness across a variety of future scenarios is crucial for establishing a sustainable urban water system in the long term.
C1 [Shen, Zuofei; Ji, Chengjun; Lu, Shichang; Li, Dan] Liaoning Tech Univ, Sch Business Adm, Huludao 125105, Liaoning, Peoples R China.
C3 Liaoning Technical University
RP Ji, CJ (corresponding author), Liaoning Tech Univ, Sch Business Adm, Huludao 125105, Liaoning, Peoples R China.
EM shenzuofei047@126.com; jichengjun@lntu.edu.cn; lushichang@lntu.edu.cn;
   281680481@qq.com
FU The work reported is funded by the Financial research Fund of Liaoning
   Province (22C011) and the Liaoning Federation of Social Sciences
   (2023LSLQNKT-043). [22C011]; Financial research Fund of Liaoning
   Province [2023LSLQNKT-043]; Liaoning Federation of Social Sciences
FX The work reported is funded by the Financial research Fund of Liaoning
   Province (22C011) and the Liaoning Federation of Social Sciences
   (2023LSLQNKT-043).
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NR 29
TC 0
Z9 0
U1 11
U2 36
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 1
PY 2024
VL 150
IS 1
AR 04023072
DI 10.1061/JWRMD5.WRENG-6138
PG 14
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA X9QU9
UT WOS:001101722000003
DA 2025-04-22
ER

PT J
AU Huang, YX
   Liang, C
   Yau, Y
AF Huang, Yaoxuan
   Liang, Cong
   Yau, Yung
TI Resilience resistance of super-aged communities: Insights from the
   COVID-19 pandemic experience
SO CITIES
LA English
DT Article
DE Resilience resistance; Super -aged communities; COVID-19 pandemic;
   Compulsory testing notice; Non -pharmaceutical intervention; Confirmed
   cases; Suffering period
ID URBAN RESILIENCE; IMPACT; QUALITY
AB Despite the expanding body of literature on urban resilience amid the COVID-19 pandemic, the resilience resistance of super-aged communities has received scant attention. Resilience resistance refers to the efficacy of government interventions and the systemic barriers to resilience within governance processes. This study focuses on Hong Kong, one of the most densely populated areas with a high proportion of aging residents, to assess the effectiveness of non-pharmaceutical interventions, particularly compulsory testing notices (CTN), on the resilience of super-aged communities. By analyzing data from the Hong Kong Department of Health between July 2020 and May 2021, our findings indicate that during the third wave, super-aged communities implemented interventions similarly to other communities and experienced shorter suffering periods. However, in the fourth wave, these communities recorded more cases and longer suffering periods despite similar interventions. Notably, communities adhering to non-pharmaceutical interventions accelerated their recovery and positively influenced neighboring areas. Conversely, communities with a CTN experienced more cases and prolonged suffering periods. Super-aged communities that received a quick CTN (QCTN) suffered less. These findings highlight the critical importance of timely CTN implementation, suggesting that proactive CTN use can effectively disrupt SARS-CoV-2 transmission and provide valuable insights for efficient pandemic management.
C1 [Huang, Yaoxuan; Liang, Cong; Yau, Yung] Lingnan Univ, Sch Grad Studies, Hong Kong, Peoples R China.
   [Huang, Yaoxuan; Liang, Cong; Yau, Yung] Lingnan Univ, Inst Policy Studies, Hong Kong, Peoples R China.
   [Yau, Yung] Lingnan Univ, Dept Sociol & Social Policy, Hong Kong, Peoples R China.
C3 Lingnan University; Lingnan University; Lingnan University
RP Liang, C (corresponding author), Lingnan Univ, Sch Grad Studies, Hong Kong, Peoples R China.
EM yaoxuanhuang@ln.edu.hk; congliang@ln.edu.hk; yungyau@ln.edu.hk
RI LIANG, Cong/MIN-6352-2025; Yau, Yung/A-9053-2014
OI LIANG, Cong/0000-0002-0706-8046; Yau, Yung/0000-0001-6416-8556; HUANG,
   Yaoxuan/0000-0003-2717-074X
FU Faculty Research Grant of Lingnan University [GSFRG/23/8]; Direct Grant
   of Lingnan University [DR24E5(101236)]; Research Seed Fund of Lingnan
   University [102393]
FX We sincerely thank the editor of Cities, Prof. Pengjun Zhao, and the two
   anonymous reviewers for their valuable feedback and recommen- dations,
   which have greatly inspired and guided us during the revision of our
   manuscript.This study was supported by the Faculty Research Grant of
   Lingnan University (GSFRG/23/8) , the Direct Grant of Lingnan University
   (DR24E5(101236) ) , and the Research Seed Fund of Lingnan University
   (Project No.: 102393) .
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NR 62
TC 0
Z9 0
U1 3
U2 5
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD SEP
PY 2024
VL 152
AR 105228
DI 10.1016/j.cities.2024.105228
EA JUL 2024
PG 16
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA YF3G2
UT WOS:001267025400001
DA 2025-04-22
ER

PT J
AU Sutton, J
   Arcidiacono, A
   Torrisi, G
   Arku, RN
AF Sutton, Jesse
   Arcidiacono, Alessia
   Torrisi, Gianpiero
   Arku, Robert Nutifafa
TI Regional economic resilience: A scoping review
SO PROGRESS IN HUMAN GEOGRAPHY
LA English
DT Review
DE Resilience; regions; determinants; conceptual framework; scoping review
ID ENGAGED PLURALISM; PATH-DEPENDENCE; CRISIS; IMPACT; GEOGRAPHY; EUROPE;
   RECESSION; URBAN; EMPLOYMENT; KNOWLEDGE
AB Since the late 2000s, the concept of regional economic resilience has become the new buzzword in economic geography. Despite considerable attention, a common sentiment in the literature is that regional economic resilience is an underdeveloped and fuzzy concept. Therefore, this paper conducted a scoping review of 168 articles on the concept of regional economic resilience from 2000 to 2022 to assess its present conceptual state. The paper finds that the notion of regional economic resilience has become a well-developed concept and does not bear the markers of a fuzzy concept anymore. A conceptual framework is advanced.
C1 [Sutton, Jesse] Western Univ, Dept Geog & Environm, London, ON, Canada.
   [Arcidiacono, Alessia; Torrisi, Gianpiero] Univ Catania, Dept Econ & Business, Corso Italia, Italy.
   [Arku, Robert Nutifafa] Univ Toronto, Dept Geog & Planning, Toronto, ON, Canada.
   [Sutton, Jesse] Western Univ, Dept Geog & Environm, 1151 Richmond St, London, ON N6A 5C2, Canada.
C3 Western University (University of Western Ontario); University of
   Catania; University of Toronto; Western University (University of
   Western Ontario)
RP Sutton, J (corresponding author), Western Univ, Dept Geog & Environm, 1151 Richmond St, London, ON N6A 5C2, Canada.
EM jsutto22@uwo.ca
RI Torrisi, Gianpiero/HDM-8439-2022; Sutton, Jesse/GSD-4832-2022
OI Sutton, Jesse/0000-0003-3254-577X; Arcidiacono,
   Alessia/0000-0003-1747-2189; Arku, Robert Nutifafa/0000-0002-2018-886X
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NR 214
TC 49
Z9 51
U1 119
U2 332
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 AUG
PY 2023
VL 47
IS 4
BP 500
EP 532
DI 10.1177/03091325231174183
EA MAY 2023
PG 33
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA O9KE0
UT WOS:001002284200001
OA hybrid
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Guo, YC
   Xu, DW
   Xu, J
   Yang, ZY
AF Guo, Yingchu
   Xu, Dawei
   Xu, Jia
   Yang, Ziyi
TI Multi-Scale Analysis of Spatial and Temporal Evolution of Ecosystem
   Health in the Harbin-Changchun Urban Agglomeration, China
SO SUSTAINABILITY
LA English
DT Article
DE region ecosystem health; multi-scale assessment; VOR-SH model;
   Harbin-Changchun urban agglomeration
ID RESILIENCE; PATTERNS; SERVICES; CITY; URBANIZATION
AB Urban agglomerations represent the pinnacle of spatial organization for fully developed cities. Gaining insight into the ecosystem health status of urban agglomerations in various geographical and temporal settings is essential for the long-term sustainability of both humans and the environment. Nevertheless, current research overlooks the impacts of human activities on the well-being of ecosystems, along with the effects of scaling and their implications for ecological management policies and future urban growth plans. This study enhances and refines the classic model and establishes the Vigor Organization Resilience Services Human activities (VOR-SH) evaluation model to assess the ecosystem health of the Harbin-Changchun urban agglomeration on three scales. The results reveal that the changes in the five indicators of ecosystem health within the Harbin-Changchun urban agglomeration differed across three unique periods from 2000 to 2020. In particular, energy, organization and human activities increased, whereas resilience and ecosystem services decreased. On all three scales, the overall ratings for ecosystem health showed improvement. Multi-scale spatial autocorrelation showed strong positive spatial correlations between ecosystem health clusters in the studied area. Multi-scale review results help locate key regions on a grid scale, coordinate regional management at the district-county scale and monitor huge ecosystems at the city scale. This study improves the ecosystem health model and expands multi-scale regulatory theory. This study's findings help guide urban expansion and environmental management.
C1 [Guo, Yingchu; Xu, Dawei; Xu, Jia; Yang, Ziyi] Northeast Forestry Univ, Coll Landscape Architecture, Harbin 150000, Peoples R China.
   [Guo, Yingchu; Xu, Dawei; Xu, Jia] Key Lab Garden Plant Germplasm Dev & Landscape Eco, Harbin 150000, Peoples R China.
C3 Northeast Forestry University - China
RP Xu, DW (corresponding author), Northeast Forestry Univ, Coll Landscape Architecture, Harbin 150000, Peoples R China.; Xu, DW (corresponding author), Key Lab Garden Plant Germplasm Dev & Landscape Eco, Harbin 150000, Peoples R China.
EM guo15232021@nefu.edu.cn; xudw@nefu.edu.cn; xj_landscape@nefu.edu.cn;
   yzylycorisradiata@163.com
FU Fundamental Research Funds for the Central Universities
FX The authors sincerely thank the editors and the anonymous reviewers for
   their constructive feedback.
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NR 70
TC 3
Z9 3
U1 27
U2 66
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JAN
PY 2024
VL 16
IS 2
AR 837
DI 10.3390/su16020837
PG 31
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA GE0G7
UT WOS:001150866500001
OA gold
DA 2025-04-22
ER

PT J
AU Sommese, F
AF Sommese, Francesco
TI Nature-Based Solutions to Enhance Urban Resilience in the Climate Change
   and Post-Pandemic Era: A Taxonomy for the Built Environment
SO BUILDINGS
LA English
DT Article
DE urban health; human well-being; green infrastructure; blue
   infrastructure; green roofs; green walls
ID GREENING SYSTEMS; HEAT-ISLAND; CITIES; FACADES; PERFORMANCE; HEALTH;
   ROOFS; TREE
AB Global environmental and health issues such as climate change and the COVID-19 pandemic have highlighted the weaknesses of current urban systems, including the poor availability and accessibility of green and public spaces in cities. Nature-based Solutions are configured as promising solutions to increase the resilience and health of the built environment by addressing climate and pandemic issues, promoting the psycho-physical well-being of users and proposing solutions for the protection of the environment and ecosystems. Following a systematic review of the scientific literature using the PRISMA methodology, this study aims to provide a taxonomic framework for Nature-based Solutions for the built environment that is applicable to the urban and building scales, highlighting key benefits in addressing pandemic and climate challenges and achieving urban resilience. This framework proposes a holistic and multifunctional approach that will prove to be a useful tool for researchers and policy makers to incorporate greening strategies into urban regeneration and redevelopment processes. The application of Nature-based Solutions still seems to be limited. It is therefore necessary to raise awareness of this issue among citizens and policy makers and to promote close co-operation between the different actors in territorial decision-making processes.
C1 [Sommese, Francesco] Univ Naples Federico II, Dept Civil Bldg & Environm Engn, Ple Vincenzo Tecchio 80, I-80125 Naples, Italy.
C3 University of Naples Federico II
RP Sommese, F (corresponding author), Univ Naples Federico II, Dept Civil Bldg & Environm Engn, Ple Vincenzo Tecchio 80, I-80125 Naples, Italy.
EM francesco.sommese@unina.it
RI Sommese, Francesco/ABA-6702-2022
OI Sommese, Francesco/0000-0002-9720-7520
FU European Union EU Next Generation Italian PRIN 2022 PNRR Programme under
   the "Greenwork-An interdisciplinary framework for urban health and urban
   resilience enhancement based on greening strategies on buildings and
   open spaces" project [CUP: E53D23019110001]
FX This research was founded by the European Union EU Next Generation
   Italian PRIN 2022 PNRR Programme under the "Greenwork-An
   interdisciplinary framework for urban health and urban resilience
   enhancement based on greening strategies on buildings and open spaces"
   project, CUP: E53D23019110001.
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NR 111
TC 4
Z9 4
U1 8
U2 11
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD JUL
PY 2024
VL 14
IS 7
AR 2190
DI 10.3390/buildings14072190
PG 20
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA ZQ3A6
UT WOS:001276709700001
OA gold
DA 2025-04-22
ER

PT J
AU Young, C
   Craig, JC
   Clapham, K
   Banks, S
   Williamson, A
AF Young, Christian
   Craig, Jonathan C.
   Clapham, Kathleen
   Banks, Sandra
   Williamson, Anna
TI The prevalence and protective factors for resilience in adolescent
   Aboriginal Australians living in urban areas: a cross-sectional study
SO AUSTRALIAN AND NEW ZEALAND JOURNAL OF PUBLIC HEALTH
LA English
DT Article
DE Aboriginal; resilience; mental health; adolescents
ID MENTAL-HEALTH; DIFFICULTIES QUESTIONNAIRE; SOCIAL DETERMINANTS;
   COMMUNITY; CHILDREN; RISK; PERSPECTIVES; STRENGTHS; CONSTRUCT; SUPPORT
AB Objectives: To estimate the prevalence and determine protective factors for resilience in urban Aboriginal adolescents. Methods: Cross-sectional survey data was collected from 119 Aboriginal adolescents participating in the Study of Environment on Aboriginal Resilience and Child Health (SEARCH). Resilience was defined as having low-risk' Strengths and Difficulties Questionnaire scores on the total difficulties (range: 0-40) or the prosocial scale (range: 0-10). Results: Most adolescents scored in the low-risk range of the total difficulties (n=85, 73%) and prosocial scales (101, 86%). Family encouragement to attend school was associated with a 4.3-point reduction in total difficulties scores (95%CI, 0.22-8.3). Having someone to talk to if there was a problem and regular strenuous exercise were associated with higher scores on the prosocial behaviour scale, increasing scores by 1.2 (95%CI, 0.45-2.0) and 1.3 (95%CI, 0.26-2.3) points, respectively. Conclusions: Most adolescents in SEARCH displayed resilience. Resilience was associated with nurturing family environments, social support and regular exercise. Implications for public health: Our data accords with previous research that demonstrates resilience, but also a higher prevalence of emotional and behaviour problems among Aboriginal youth. Supporting Aboriginal young people to build resilience may promote better mental health outcomes leading to important public health benefits.
C1 [Young, Christian] Childrens Hosp Westmead, Ctr Kidney Res, Sydney, NSW, Australia.
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   [Craig, Jonathan C.] Flinders Univ S Australia, Coll Med & Publ Hlth, Adelaide, SA, Australia.
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   [Banks, Sandra] Tharawal Aboriginal Corp, Airds, NSW, Australia.
   [Williamson, Anna] Sax Inst, Ultimo, NSW, Australia.
C3 NSW Health; The Children's Hospital at Westmead; University of Sydney;
   University of Sydney; Flinders University South Australia; University of
   Wollongong; University of Sydney; Sax Institute
RP Young, C (corresponding author), Childrens Hosp Westmead, Ctr Kidney Res, Sydney, NSW, Australia.
EM christian.young@sydney.edu.au
RI Young, Christian/O-9648-2015; Craig, Jonathan/E-2813-2013
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NR 56
TC 30
Z9 30
U1 0
U2 8
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1326-0200
EI 1753-6405
J9 AUST NZ J PUBL HEAL
JI Aust. N. Z. Publ. Health
PD FEB
PY 2019
VL 43
IS 1
BP 8
EP 14
DI 10.1111/1753-6405.12853
PG 7
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA HL4OT
UT WOS:000458702100003
PM 30516305
OA gold
DA 2025-04-22
ER

PT J
AU Ye, TL
   Liang, XR
   Zhu, HL
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AF Ye, Tanglin
   Liang, Xinruo
   Zhu, Heliang
   Ye, Jinze
   Jiang, Cheng
TI The effect of the digital economy service industry on regional economic
   resilience: evidence from three major urban agglomerations in China
SO APPLIED ECONOMICS
LA English
DT Article; Early Access
DE Digital economy; economic resilience; service industry; urban
   agglomeration; empirical analysis; JEL CLASSIFICATION A10; A11; A12
ID CHALLENGES; INNOVATION; SHOCKS; GDP; GMM
AB The digital economy has become an important driving force for countries to rebuild economic development during COVID-19. However, its effect on regional economic resilience is still unclear. The purpose of this paper is to study the theoretical mechanism of the digital economy service industry affecting regional economic resilience and to construct an econometric model to empirically test the overall impact of the digital economy on regional economic resilience, as well as the threshold effect of the level of manufacturing development. The study finds that (1) the digital economy service industry has a significant positive impact on regional economic resilience. (2) With improvement in the level of manufacturing development, the positive contribution of the digital economy service industry to the regional economic resilience is enhanced, and the effective coupling of the digital economy service industry and the manufacturing industry can improve the regional economic resilience to a greater extent. Therefore, this paper proposes that, to improve the resilience of the regional economy, we should not only improve the level of digital technology of the digital economy service industry, but also focus on the application of digital technology in the real economy, especially in the manufacturing industry, encourage the digital transformation of enterprises, and improve the digital governance capacity of the government.
C1 [Ye, Tanglin] Capital Univ Econ & Business, Coll Urban Econ & Publ Adm, Beijing, Peoples R China.
   [Liang, Xinruo; Zhu, Heliang] Beijing Univ Technol, Coll Econ & Management, Beijing, Peoples R China.
   [Ye, Jinze] Coll Int Exchange, Beijing Middle Sch 101, Beijing, Peoples R China.
   [Jiang, Cheng] Capital Univ Econ & Business, Sch Management Engn, Beijing, Peoples R China.
   [Jiang, Cheng] Capital Univ Econ & Business, Sch Management Engn, Beijing 100070, Peoples R China.
C3 Capital University of Economics & Business; Beijing University of
   Technology; Capital University of Economics & Business; Capital
   University of Economics & Business
RP Jiang, C (corresponding author), Capital Univ Econ & Business, Sch Management Engn, Beijing 100070, Peoples R China.
EM jiangcheng@cueb.edu.cn
FU National Natural Science Foundation of China [72004143, 72377105];
   National Natural Science Foundation of China [9212002]; Natural Science
   Foundation of Beijing Municipality [BPHR202203164]; Project of
   Cultivation for young top-notch Talents of Beijing Municipal
   Institutions
FX This work is supported by the National Natural Science Foundation of
   China (72004143 and 72377105), the Natural Science Foundation of Beijing
   Municipality (9212002), and the Project of Cultivation for young
   top-notch Talents of Beijing Municipal Institutions (BPHR202203164).
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NR 43
TC 3
Z9 3
U1 52
U2 145
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0003-6846
EI 1466-4283
J9 APPL ECON
JI Appl. Econ.
PD 2024 MAR 8
PY 2024
DI 10.1080/00036846.2024.2325375
EA MAR 2024
PG 17
WC Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA JX9D3
UT WOS:001176567500001
DA 2025-04-22
ER

PT J
AU Wu, X
   Zhang, JJ
   Geng, XL
   Wang, T
   Wang, K
   Liu, SD
AF Wu, Xia
   Zhang, Jianjun
   Geng, Xiaoli
   Wang, Tong
   Wang, Ke
   Liu, Shidong
TI Increasing green infrastructure-based ecological resilience in urban
   systems: A perspective from locating ecological and disturbance sources
   in a resource-based city
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Green infrastructure; Ecological resilience; Ecological sources;
   Disturbance sources; Ecological corridors; Resource-based cities
ID INDUSTRIAL LAND; SERVICES; CITIES; MODEL
AB Maintaining the sustainability of the ecosystem in an ever-changing environment and enabling it to continuously provide services for human beings has become the focus of managers. Resilience is considered the key to maintaining the sustainability of an ecosystem. This paper combines source-sink landscape theory, on the basis of considering ecological processes, and builds a framework of factors that affect the ecological resilience of resource-based cities. We used Wu'an, a typical resource-based city, as the study area, and identified the ecological and disturbance sources to determine the ecological resilience. Green infrastructure (GI), as a kind of ecological infrastructure, plays a critical role in growing resilience. Our study established ecological corridors using the minimum cumulative resistance (MCR) model. And then provides a way in time and space to improve resilience based on corridors' internal and external conditions. Moreover, in the context of development where ecological protection is a priority and construction land expansion are limited, this method can assist government decision-making and serve to delineate the boundaries of urban development and the scope of mining activities.
C1 [Wu, Xia; Zhang, Jianjun; Geng, Xiaoli; Wang, Tong; Wang, Ke; Liu, Shidong] China Univ Geosci, Sch Land Sci & Technol, Beijing 100083, Peoples R China.
   [Zhang, Jianjun] Minist Nat Resources, Key Lab Land Consolidat & Rehabil, Beijing 100083, Peoples R China.
C3 China University of Geosciences; Ministry of Natural Resources of the
   People's Republic of China
RP Zhang, JJ (corresponding author), China Univ Geosci Beijing, 29 Xueyuan Rd, Beijing 100083, Peoples R China.
EM zhangjianjun_bj@126.com
RI Wang, Ke/HGC-1797-2022; Liu, Shidong/JVZ-4422-2024
OI Liu, Shidong/0009-0008-6320-0161
FU National Natural Science Foundation of China [41971260, 41571507];
   Fundamental Research Funds for the Central Universities [2652018033]
FX This article is supported by the National Natural Science Foundation of
   China (Grant No: 41971260, 41571507) and the Fundamental Research Funds
   for the Central Universities (Grant No: 2652018033). We thank all
   reviewers for their valuable advice on this paper.
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NR 59
TC 94
Z9 100
U1 47
U2 319
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT
PY 2020
VL 61
AR 102354
DI 10.1016/j.scs.2020.102354
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 NU7UJ
UT WOS:000573844700006
DA 2025-04-22
ER

PT J
AU Meng, YY
   Zhao, XF
   Liu, JZ
   Qi, QJ
AF Meng, Yangyang
   Zhao, Xiaofei
   Liu, Jianzhong
   Qi, Qingjie
TI Dynamic Influence Analysis of the Important Station Evolution on the
   Resilience of Complex Metro Network
SO SUSTAINABILITY
LA English
DT Article
DE complex metro network; topological evolution; network resilience; node
   importance
ID CENTRALITY
AB With the flourishing development of the urban metro system, the topology of important nodes changes as the metro network structure evolves further. The identical important node has distinct impacts on various metro networks' resilience. At present, the dynamic influences of important station evolution on the resilience of metro networks remain to be studied further. Taking Shenzhen Metro Network (SZMN) as an example, the dynamic influences of the structure evolution of important nodes on the resilience of the metro network were investigated in this study. Firstly, the dynamic evolution characteristics of complex network topology and node centralities in metro systems were mined. Then, combined with the node interruption simulation and the resilience loss triangle theory, the resilience levels of distinct metro networks facing the failure of the same critical node were statistically assessed. Additionally, suggestions for optimal network recovery strategies for diverse cases were made. Finally, based on the evaluation results of node importance and network resilience, the dynamic influences of the topological evolution of important nodes on the resilience of metro networks were thoroughly discussed. The study's findings help us comprehend the metro network's development features better and can assist the metro management department in making knowledgeable decisions and taking appropriate action in an emergency. This study has theoretical and practical significance for the resilient operation and sustainable planning of urban metro network systems.
C1 [Meng, Yangyang; Qi, Qingjie] Chinese Inst Coal Sci, Inst Emergency Sci Res, Beijing 100013, Peoples R China.
   [Zhao, Xiaofei] City Univ Hong Kong, Dept Comp Sci, Kowloon, Hong Kong, Peoples R China.
   [Liu, Jianzhong] China Coal Technol & Engn Grp, Beijing 100013, Peoples R China.
C3 City University of Hong Kong
RP Meng, YY (corresponding author), Chinese Inst Coal Sci, Inst Emergency Sci Res, Beijing 100013, Peoples R China.
EM mengyy17@tsinghua.org.cn; xf.zhao@my.cityu.edu.hk;
   liujianzhong@ccteg.cn; qi_qingjie@163.com
RI Liu, Jianzhong/B-9205-2012
OI ZHAO, Xiaofei/0000-0001-6722-156X; meng, yangyang/0000-0003-4386-1858
FU China Postdoctoral Science Foundation [2022M721449]; Innovation and
   Entrepreneurship Science and Technology Project of China Coal Technology
   and Engineering Group [2022-2-QN004]; Innovation and Entrepreneurship
   Science and Technology Project of Chinese Institute of Coal Science
   [2021-JSYF-006]
FX This research was funded by the China Postdoctoral Science Foundation
   (No. 2022M721449), the Innovation and Entrepreneurship Science and
   Technology Project of China Coal Technology and Engineering Group (No.
   2022-2-QN004), and the Innovation and Entrepreneurship Science and
   Technology Project of Chinese Institute of Coal Science (No.
   2021-JSYF-006).
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NR 43
TC 2
Z9 2
U1 17
U2 80
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2023
VL 15
IS 12
AR 9309
DI 10.3390/su15129309
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 K3OZ1
UT WOS:001015579300001
OA gold
DA 2025-04-22
ER

PT J
AU Du, JW
   Cui, JL
   Ren, G
   Thompson, RG
AF Du, Jianwei
   Cui, Jialei
   Ren, Gang
   Thompson, Russell G.
TI Recognizing the Traffic State of Urban Road Networks: A Resilience-Based
   Data-Driven Approach
SO TRANSPORTATION RESEARCH RECORD
LA English
DT Article; Early Access
DE sustainability and resilience; transportation systems resilience;
   natural hazards and extreme weather events; methods and practices;
   vulnerability and resilience assessment
ID MODEL
AB Accurate and timely traffic network state recognition is crucial in supporting intelligent transportation system (ITS) urban traffic control and guidance. Despite their significance, existing methods for traffic state recognition often fall short of practical demands owing to the dynamic nature and unpredictability of traffic flows and the high costs associated with sample processing. This paper introduces a novel resilience-based approach for classifying and identifying link-level traffic states in urban road networks by focusing on these challenges. This approach has two phases: 1) the classification phase introduces a new operational resilience index and uses a hybrid K-means++-fuzzy c-means (FCM) clustering method for traffic state labeling; and 2) the identification phase employs real-time automatic vehicle identification (AVI) data and a transformer-based model to determine current traffic conditions. A case study conducted by Shaoxing validated the effectiveness of this approach. The results show that the objective function value of the hybrid clustering method is 0.168, with a classification performance metric Xie-Beni (XB) index of 0.137 and a Davies-Bouldin index (DBI) of 12.39, indicating high-quality clustering. A comparative analysis with support vector machines, convolutional neural networks, and long short-term memory (LSTM) models revealed the superior identification performance of the transformer-based model, which achieved 93.35% accuracy (increases of 21.44%, 13.01%, and 5.89%, respectively). The proposed method offers a practical reference for real-time traffic condition monitoring from a resilience perspective in traffic management systems.
C1 [Du, Jianwei; Ren, Gang] Southeast Univ, Jiangsu Key Lab Urban ITS, Nanjing, Peoples R China.
   [Du, Jianwei; Ren, Gang] Southeast Univ, Jiangsu Collaborat Innovat Ctr Modern Urban Traff, Nanjing, Peoples R China.
   [Du, Jianwei; Thompson, Russell G.] Univ Melbourne, Dept Infrastructure Engn, Carlton, Vic, Australia.
   [Cui, Jialei] Baidu Inc, Beijing, Peoples R China.
C3 Southeast University - China; Southeast University - China; University
   of Melbourne; Baidu
RP Ren, G (corresponding author), Southeast Univ, Jiangsu Key Lab Urban ITS, Nanjing, Peoples R China.; Ren, G (corresponding author), Southeast Univ, Jiangsu Collaborat Innovat Ctr Modern Urban Traff, Nanjing, Peoples R China.
EM rengang@seu.edu.cn
RI Thompson, Russell/D-6451-2012; Du, Jianwei/R-9505-2016
FU National Natural Science Foundation of China [52372314, 52432010]; China
   Scholarship Council [202306090168]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: This
   research was made possible thanks to the generous support of the
   National Natural Science Foundation of China (No. 52372314 & No.
   52432010) and China Scholarship Council (No. 202306090168).
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NR 53
TC 0
Z9 0
U1 2
U2 2
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 2025 FEB 27
PY 2025
DI 10.1177/03611981241312914
EA FEB 2025
PG 20
WC Engineering, Civil; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA Y7W1T
UT WOS:001434169100001
DA 2025-04-22
ER

PT J
AU Mannucci, S
   Rosso, F
   D'Amico, A
   Bernardini, G
   Morganti, M
AF Mannucci, Simona
   Rosso, Federica
   D'Amico, Alessandro
   Bernardini, Gabriele
   Morganti, Michele
TI Flood Resilience and Adaptation in the Built Environment: How Far along
   Are We?
SO SUSTAINABILITY
LA English
DT Article
DE urban resilience; built environment; climate change; adaptive planning;
   urban floods
ID CLIMATE-CHANGE; GREEN ROOFS; SCENARIO DISCOVERY; RUNOFF MITIGATION;
   URBAN-ENVIRONMENT; RISK; MODEL; IMPACT; WATER; LESSONS
AB Cities are experiencing an increased rate of climate-related extreme events threats derived from climate change. Floods are one of the most challenging issues to address to reduce damages and losses in urban areas. Building resilience through adaptation to these changing conditions has become a common goal for different disciplines involving planning for the future. Adaptation planning is widely recognized as generally applicable to any field. However, there are current limitations to overcome for architectural and urban planning to switch from theory to practice. This paper proposes a critical overview of literature works on flood mitigative strategies and adaptive approaches considering uncertainties, linking strategies for the Built Environment (BE) to mitigate the effects of floods, and operative frameworks to pursue adaptation under changing environmental conditions. The literature selection accounts for the pivotal components of the BE: open spaces (OSs), buildings, and users. Next, we provide an overview of the most relevant adaptive methodologies that have emerged in literature, and, lastly, the planning strategies are discussed, considering the climate-related uncertainties that might undermine the effectiveness of the designed action. The present paper aimed to provide a contribution to the discussion regarding the necessity of making architectural and urban planning adaptive, providing a base for future studies for operative adaptation.
C1 [Mannucci, Simona; Rosso, Federica; Morganti, Michele] Sapienza Univ Rome, Dept Civil Construct & Environm Engn, SOS Urban Lab, I-00184 Rome, Italy.
   [D'Amico, Alessandro] Sapienza Univ Rome, Dept Civil Construct & Environm Engn, I-00184 Rome, Italy.
   [Bernardini, Gabriele] Univ Politecn Marche, Dept Construct Civil Engn & Architecture DICEA, I-60131 Ancona, Italy.
C3 Sapienza University Rome; Sapienza University Rome; Marche Polytechnic
   University
RP Mannucci, S (corresponding author), Sapienza Univ Rome, Dept Civil Construct & Environm Engn, SOS Urban Lab, I-00184 Rome, Italy.
EM simona.mannucci@uniroma1.it; federica.rosso@uniroma1.it;
   alessandro.damico@uniroma1.it; g.bernardini@staff.univpm.it;
   michele.morganti@uniroma1.it
RI Morganti, Michele/AAD-9759-2019; Rosso, Federica/AAL-3321-2020;
   Mannucci, Simona/HLP-6436-2023; Bernardini, Gabriele/S-6283-2017;
   D'Amico, Alessandro/O-4674-2016
OI Rosso, Federica/0000-0003-2151-3780; Bernardini,
   Gabriele/0000-0002-7381-4537; Mannucci, Simona/0000-0003-3275-0167;
   D'Amico, Alessandro/0000-0001-8518-1653
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NR 127
TC 19
Z9 21
U1 5
U2 42
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD APR
PY 2022
VL 14
IS 7
AR 4096
DI 10.3390/su14074096
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 0L2IO
UT WOS:000781303900001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Steiner, F
   Simmons, M
   Gallagher, M
   Ranganathan, J
   Robertson, C
AF Steiner, Frederick
   Simmons, Mark
   Gallagher, Mark
   Ranganathan, Janet
   Robertson, Colin
TI The ecological imperative for environmental design and planning
SO FRONTIERS IN ECOLOGY AND THE ENVIRONMENT
LA English
DT Article
ID URBAN ECOSYSTEMS; SERVICES; ROOFS
AB Environmental design and planning are important tools for human adaptation. Designers and planners depend on experience, craft, and environmental knowledge to shape preferred futures. Ecological literacy would enhance the design and planning of built environments. The concepts of "resilience" and "ecosystem" offer opportunities for collaboration between ecologists and practitioners in the design and planning disciplines. Urban resilience to natural disasters and coastal green infrastructure represent two areas where design and planning based on ecological principles should be applied. The Sustainable Sites Initiative is a practical example of interdisciplinary collaboration.
C1 [Steiner, Frederick] Univ Texas Austin, Sch Architecture, Austin, TX 78712 USA.
   [Simmons, Mark] Univ Texas Austin, Lady Bird Johnson Wildflower Ctr, Austin, TX 78712 USA.
   [Gallagher, Mark] Princeton Hydro LLC, Ringoes, NJ USA.
   [Ranganathan, Janet] World Resources Inst, Washington, DC 20006 USA.
   [Robertson, Colin] Nevada Museum Art, Reno, NV USA.
C3 University of Texas System; University of Texas Austin; University of
   Texas System; University of Texas Austin
RP Steiner, F (corresponding author), Univ Texas Austin, Sch Architecture, Austin, TX 78712 USA.
EM fsteiner@austin.utexas.edu
RI Robertson, Colin/JOZ-3237-2023
FU Direct For Biological Sciences; Division Of Environmental Biology
   [1153274] Funding Source: National Science Foundation
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NR 14
TC 51
Z9 63
U1 0
U2 106
PU ECOLOGICAL SOC AMER
PI WASHINGTON
PA 1990 M STREET NW, STE 700, WASHINGTON, DC 20036 USA
SN 1540-9295
J9 FRONT ECOL ENVIRON
JI Front. Ecol. Environ.
PD SEP
PY 2013
VL 11
IS 7
BP 355
EP 361
DI 10.1890/130052
PG 7
WC Ecology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 208SV
UT WOS:000323700700004
OA Bronze
DA 2025-04-22
ER

PT J
AU Dastgerdi, AS
   Kheyroddin, R
AF Dastgerdi, Ahmadreza Shirvani
   Kheyroddin, Reza
TI Policy Recommendations for Integrating Resilience into the Management of
   Cultural Landscapes
SO SUSTAINABILITY
LA English
DT Article
DE resilience; cultural landscapes; natural hazards; landscape planning;
   management
ID DISASTER RISK REDUCTION; URBAN RESILIENCE; ADAPTATION; COMMUNITY
AB The perspectives of resilience and cultural landscape share common interests in planning, managing, and protecting socio-ecological systems. Although the principles of the Yokohama, Hyogo, and Sendai frameworks may be used in a variety of geographical contexts due to their general design, the implementation of these frameworks in cultural landscapes is seldom discussed. Our theoretical research is the first step in an ongoing effort to explore how urban governance and policy may provide room for enhancing cultural heritage resilience against natural hazards. A meta-synthesis of international guidelines on cultural landscapes, resilience, and disaster risk reduction serves as the foundation for the research methodology used in this study. The research findings highlight that cultural landscapes must be managed with political, social, and economic support to stay resilient, and therefore, the first step towards this goal is to integrate cultural heritage into the disaster risk reduction plan at a national level. Furthermore, cultural landscapes need a bottom-up participatory framework and more internship opportunities to bring together the government, first responders, site managers, and the local community.
C1 [Dastgerdi, Ahmadreza Shirvani] Univ Camerino, Sch Architecture & Design, I-63100 Ascoli Piceno, Italy.
   [Kheyroddin, Reza] Iran Univ Sci & Technol IUST, Fac Architecture & Environm Design, Tehran 1684613114, Iran.
C3 University of Camerino; Iran University Science & Technology
RP Dastgerdi, AS (corresponding author), Univ Camerino, Sch Architecture & Design, I-63100 Ascoli Piceno, Italy.
EM ahmadreza.shirvani@unicam.it; reza_kheyroddin@iust.ac.ir
RI kheyroddin, reza/S-6260-2018; Shirvani Dastgerdi, Ahmadreza/O-9539-2018
OI Shirvani Dastgerdi, Ahmadreza/0000-0002-5681-2222; kheyroddin,
   Reza/0000-0002-5511-1539
FU Iran Vice-Presidency for Science and Technology Affairs, Sorena Sattari,
   AliReza Seyedabadi; scientific relation and human capital development at
   Center for International Science and Technology Cooperation
FX We would acknowledge the Iran Vice-Presidency for Science and Technology
   Affairs, Sorena Sattari, AliReza Seyedabadi, deputy director of
   scientific relation and human capital development at Center for
   International Science and Technology Cooperation, and M.S. Mahbobeh
   Keyhanifar, head of planning and research support at the Iran University
   of Science and Technology for their precious collaboration and support
   in this research.
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NR 98
TC 14
Z9 14
U1 4
U2 33
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2022
VL 14
IS 14
AR 8500
DI 10.3390/su14148500
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 3J8HF
UT WOS:000833631500001
OA gold
DA 2025-04-22
ER

PT J
AU Liu, W
   Song, ZY
   Ouyang, M
AF Liu, Wei
   Song, Zhaoyang
   Ouyang, Min
TI Lifecycle operational resilience assessment of urban water distribution
   networks
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Lifecycle; Operational resilience; Leakages; Bursts; Water distribution
   networks; Resilience enhancement
ID FRAMEWORK; RELIABILITY; ENTROPY
AB This paper proposes a lifecycle operational resilience assessment framework of urban water distribution networks (WDNs), taking accidents, pipe deterioration, and restoration into account. First, the accident occurrence rates for three common types of pipes, namely, cast iron pipes (CIPs), ductile iron pipes (DIPs), and steel pipes (SPs), are fitted using the maintenance data provided by a water administrative sector. Second, for the two most common accidents, i.e., leakages and bursts, the accident pipes in the former case are simulated by reduced flow, while the accident pipes as well as the influenced ones in the latter case are isolated completely by closing valves, which are determined by a depth-first search method. Third, two restoration strategies are considered, including plugging and replacement, and the corresponding recovery time by days are given based on the maintenance data. Meanwhile, the aging induced pipe deterioration is modeled in the operation process. Finally, the operational resilience of the WDN in Mianzhu city is evaluated by above framework and six resilience strategies are investigated and compared. Results show that replacing accident pipes with new DIPs once burst occurs improve the operational resilience of WDNs most obviously. In addition, replacing CIPs with DIPs ahead of the design working life or adding valves also help to improve the resilience level. Based on the findings, some feasible and practicable resilience enhancement suggestions are concluded to provide guidance for local decision makers.
C1 [Liu, Wei] Tongji Univ, State Key Lab Disaster Reduct Civil Engn, Shanghai 200092, Peoples R China.
   [Liu, Wei; Song, Zhaoyang] Tongji Univ, Dept Struct Engn, Shanghai 200092, Peoples R China.
   [Ouyang, Min] Huazhong Univ Sci & Technol, Sch Artificial Intelligence & Automat, Wuhan 611731, Hubei, Peoples R China.
   [Ouyang, Min] Huazhong Univ Sci & Technol, Key Lab Image Informat Proc & Intelligent Control, Minist Educ, Wuhan 611731, Hubei, Peoples R China.
C3 Tongji University; Tongji University; Huazhong University of Science &
   Technology; Huazhong University of Science & Technology
RP Ouyang, M (corresponding author), Huazhong Univ Sci & Technol, Sch Artificial Intelligence & Automat, Wuhan 611731, Hubei, Peoples R China.; Ouyang, M (corresponding author), Huazhong Univ Sci & Technol, Key Lab Image Informat Proc & Intelligent Control, Minist Educ, Wuhan 611731, Hubei, Peoples R China.
EM liuw@tongji.edu.cn; songzy@tongji.edu.cn; min.ouyang@hust.edu.cn
RI Ouyang, Min/L-3347-2019; Ouyang, Min/J-3214-2013
OI Song, Zhaoyang/0000-0002-7990-1500; Ouyang, Min/0000-0002-3190-4390
FU National Natural Science Foundation of China [51720105005]; China State
   Grid Corp headquarters science and technology project titled "Research
   on Regional Integrated Energy Supply Systems Modeling and Planning
   Techniques"
FX This material is based upon work supported in part by National Natural
   Science Foundation of China (Grant No. 51720105005), and also by China
   State Grid Corp headquarters science and technology project titled
   "Research on Regional Integrated Energy Supply Systems Modeling and
   Planning Techniques". 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 sponsors.
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NR 40
TC 41
Z9 44
U1 16
U2 106
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 JUN
PY 2020
VL 198
AR 106859
DI 10.1016/j.ress.2020.106859
PG 14
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA LG1AX
UT WOS:000527843700011
DA 2025-04-22
ER

PT J
AU Waters, J
   Adger, WN
AF Waters, James
   Adger, W. Neil
TI Spatial, network and temporal dimensions of the determinants of adaptive
   capacity in poor urban areas
SO GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Adaptive capacity; Resilience; Slums; Informal settlements; Social
   networks; Uganda
ID GLOBAL ENVIRONMENTAL-CHANGE; CLIMATE-CHANGE; RESILIENCE; VULNERABILITY;
   ADAPTATION; SLUMS; FRAMEWORK; NAIROBI; COMMUNITIES; IMPACTS
AB Slums and informal settlements are home to rapidly growing populations in urban areas globally and face a range of significant shocks and stresses. The sustainability of these places is critically intertwined with the resilience of their populations. The nature of the capacity for populations to adapt to shocks, as an element of resilience, is related to the evolving knowledge and networks of those populations and is suggested here to have significant spatial and temporal variation. We analyse the key determinants of adaptive capacity and hypothesise that they are related to spatial dimensions of urban form, temporal dimensions of migration, place attachment, and to social differentiation. We investigate these dynamics of adaptive capacity across a transect of urbanisation from inner city to periphery in Kampala, Uganda using diverse methods including a sample survey of residents (n = 720) and ego-network analysis. Results show that the key determinants of individual-level adaptive capacity are attachment to place, social networks, and duration of residence. There are significant differences in adaptive capacity between slum areas, as well as strong social group and temporal dimensions. These findings' suggest the importance of measuring adaptive capacities at appropriate spatial and temporal scales in order to identify specific interventions for slums that build the resilience of their populations.
C1 [Waters, James] Arup Int Dev, 13 Fitzroy St, London W1T 4BQ, England.
   [Adger, W. Neil] Univ Exeter, Coll Life & Environm Sci, Geog, Exeter EX4 4RJ, Devon, England.
C3 University of Exeter
RP Waters, J (corresponding author), Arup Int Dev, 13 Fitzroy St, London W1T 4BQ, England.
EM jjj.waters@gmail.com
RI Adger, William Neil/F-7676-2010
OI Adger, William Neil/0000-0003-4244-2854
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NR 85
TC 52
Z9 60
U1 1
U2 70
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0959-3780
EI 1872-9495
J9 GLOBAL ENVIRON CHANG
JI Glob. Environ. Change-Human Policy Dimens.
PD SEP
PY 2017
VL 46
BP 42
EP 49
DI 10.1016/j.gloenvcha.2017.06.011
PG 8
WC Environmental Sciences; Environmental Studies; Geography
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA FK3JN
UT WOS:000413381500005
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Shang, WL
   Chen, YY
   Li, XG
   Ochieng, WY
AF Shang, Wen-Long
   Chen, Yanyan
   Li, Xingang
   Ochieng, Washington Y.
TI Resilience Analysis of Urban Road Networks Based on Adaptive Signal
   Controls: Day-to-Day Traffic Dynamics with Deep Reinforcement Learning
SO COMPLEXITY
LA English
DT Article
ID STOCHASTIC USER EQUILIBRIUM; ROUTE-CHOICE; STABILITY; ASSIGNMENT; MODEL
AB Improving the resilience of urban road networks suffering from various disruptions has been a central focus for urban emergence management. However, to date the effective methods which may mitigate the negative impacts caused by the disruptions, such as road accidents and natural disasters, on urban road networks is highly insufficient. This study proposes a novel adaptive signal control strategy based on a doubly dynamic learning framework, which consists of deep reinforcement learning and day-to-day traffic dynamic learning, to improve the network performance by adjusting red/green time split. In this study, red time split is regarded as extra traffic flow to discourage drivers to use affected roads, so as to reduce congestion and improve the resilience when urban road networks are subject to different levels of disruptions. In addition, we utilize the convolution neural network as Q-network to approximate Q values, link flow distribution and link capacity are regarded as the state space, and actions are denoted as red/green time split. A small network is utilized as a numerical example, and a fixed time signal control and other two adaptive signal controls are employed for the comparisons with the proposed one. The results show that the proposed adaptive signal control based on deep reinforcement learning can achieve better resilience in most of the cases, particularly in the scenarios of moderate and severe disruptions. This study may shed light on the advantages of the proposed adaptive signal control dealing with major emergencies compared to others.
C1 [Shang, Wen-Long; Chen, Yanyan] Beijing Univ Technol, Coll Metropolitan Transportat, Beijing Key Lab Traff Engn, Beijing 100124, Peoples R China.
   [Shang, Wen-Long; Li, Xingang] Beijing Jiaotong Univ, Sch Traff & Transportat, Beijing SW7 2AZ, Peoples R China.
   [Ochieng, Washington Y.] Imperial Coll London, Ctr Transport Studies, London SW7 2AZ, England.
C3 Beijing University of Technology; Beijing Jiaotong University;
   University of London; University College London; Imperial College London
RP Shang, WL (corresponding author), Beijing Univ Technol, Coll Metropolitan Transportat, Beijing Key Lab Traff Engn, Beijing 100124, Peoples R China.; Shang, WL (corresponding author), Beijing Jiaotong Univ, Sch Traff & Transportat, Beijing SW7 2AZ, Peoples R China.
EM shangwl_imperial@bjut.edu.cn; cdyan@bjut.edu.cn; lixingang@bjtu.edu.cn;
   w.ochieng@imperial.ac.uk
RI chen, yanyan/AAR-7009-2020; Shang, Wen-Long/LZG-1023-2025; Li,
   Xingang/P-1522-2017
OI Shang, Wen-Long/0000-0002-9162-901X; Li, Xingang/0000-0002-5956-0999
FU Key Special Project of Beijing City [Z181100003918011]
FX This work was supported in part by the Key Special Project of Beijing
   City (Grant no. Z181100003918011).
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NR 53
TC 31
Z9 31
U1 9
U2 63
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 NOV 21
PY 2020
VL 2020
AR 8841317
DI 10.1155/2020/8841317
PG 19
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 PA9KV
UT WOS:000595947500006
OA gold
DA 2025-04-22
ER

PT J
AU Wang, KW
   Ma, HT
   Fang, CL
AF Wang, Kewen
   Ma, Haitao
   Fang, Chuanglin
TI The relationship evolution between urbanization and urban ecological
   resilience in the Northern Slope Economic Belt of Tianshan Mountains,
   China
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urbanization; Urban ecological resilience; Relationship evolution;
   Four-quadrant model; Northern Slope Economic Belt of Tianshan; Mountains
ID LAND-USE; CITIES; AGGLOMERATION; ENVIRONMENT; RESOURCES; XINJIANG
AB Revealing the relationship between urbanization and urban ecological resilience (UER) is essential for highquality urbanization and urban ecosystem sustainability. In this study, we evaluated the comprehensive urbanization level (CUL) and UER in the Northern Slope Economic Belt of Tianshan Mountains (NSEBTM), and analyzed the relationship evolution between CUL and UER using the Pearson correlation analysis, four-quadrant model and Markov transition matrix. The results showed that the overall CUL and UER in the NSEBTM gradually increased from 2005 to 2020 while presenting significant spatial heterogeneity. The distribution of CUL displayed a decrease from middle to both sides, and the UER in the western area was generally higher than that in the central and eastern areas. In addition, there was a significant positive correlation between CUL and UER, with the number of double-high cities increasing whereas the number of double-low cities decreasing during the research period. Compared with the UER-lagging cities, the CUL-lagging cities faced more pressure to upgrade and develop the two systems coordinately. This paper provides a useful reference for analyzing the man-land relationship in arid regions and contributes to urban sustainable development.
C1 [Wang, Kewen; Ma, Haitao; Fang, Chuanglin] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Reg Sustainable Dev Modeling, Beijing 100101, Peoples R China.
   [Wang, Kewen; Ma, Haitao; Fang, Chuanglin] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Geographic Sciences & Natural
   Resources Research, CAS; Chinese Academy of Sciences; University of
   Chinese Academy of Sciences, CAS
RP Ma, HT (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Key Lab Reg Sustainable Dev Modeling, Beijing 100101, Peoples R China.; Ma, HT (corresponding author), Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
EM maht@igsnrr.ac.cn
RI Fang, Chuanglin/ABF-2458-2020
OI MA, Haitao/0000-0003-4828-050X
FU Third Xinjiang Scientific Expe- dition Program [2021xjkk0900]
FX This research was supported by the Third Xinjiang Scientific Expe-
   dition Program (Grant No. 2021xjkk0900) .
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NR 81
TC 38
Z9 40
U1 52
U2 170
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT
PY 2023
VL 97
AR 104783
DI 10.1016/j.scs.2023.104783
EA JUL 2023
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA N1EL1
UT WOS:001034528300001
DA 2025-04-22
ER

PT J
AU Song, W
   Li, YS
   Cheng, J
   Chen, RS
   Wu, J
   Jia, N
AF Song, Wen
   Li, Yinshuai
   Cheng, Jie
   Chen, Ruishan
   Wu, Jun
   Jia, Nan
TI Enhancing social vulnerability assessment with energy resilience: A
   comprehensive study of the Netherlands
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Social vulnerability; Energy resilience; Open -source census data;
   Spatial disparities
ID SPATIAL ASSOCIATION; CLIMATE-CHANGE; POVERTY; INDEX; RISK;
   SUSTAINABILITY; INDICATORS; POLICIES; HAZARDS; PATTERN
AB A comprehensive vulnerability assessment is a scientific basis for the realization of the United Nations' sustainable development goals. Energy resilience plays a crucial role in mitigating social vulnerability due to disaster shocks. Often, energy infrastructure and services collapse after disasters. The recent Russia-Ukraine war has exacerbated Europe's energy crisis and social vulnerabilities, making it even more urgent to add energy resilience to vulnerability assessments. This paper takes the Netherlands as the study area for vulnerability assessment, constructs a new social vulnerability indicator (SVI) system supplemented with the energy element, and compares that with the traditional energy indicator system. The results indicate that: 1) The introduction of energy indicators fills the gap of traditional SVI assessment. 2) Energy indicators reveal regional and spatial differences in potential social vulnerability in the Netherlands. 3) Energy-inclusive SVI demonstrates that uneven urbanization exacerbates risks and inequalities for vulnerable groups, with potential impacts on social vulnerability. Sustainable urban development requires the search for a recognized and coordinated approach to managing vulnerability across regions. The complementarity of energy indicators offers opportunities to provide a more comprehensive assessment of spatial patterns of social vulnerability, identify potentially vulnerable areas, enhance urban disaster resilience, and achieve sustainable urban development.
C1 [Song, Wen; Li, Yinshuai; Chen, Ruishan] Shanghai Jiao Tong Univ, Sch Design, Dept Landscape Architecture, Dongchuan Rd 800, Shanghai 200240, Peoples R China.
   [Cheng, Jie] East China Normal Univ, Sch Geog Sci, Dongchuan Rd 500, Shanghai 200241, Peoples R China.
   [Wu, Jun] Breda Univ Appl Sci, Acad AI Games & Media, Monseigneur Hopmansstr 2, NL-4817 JS Breda, Netherlands.
   [Jia, Nan] Michigan State Univ, Coll Agr & Nat Resources, Ctr Syst Integrat & Sustainabil, E Lansing, MI 48824 USA.
C3 Shanghai Jiao Tong University; East China Normal University; Breda
   University of Applied Sciences; Michigan State University
RP Wu, J (corresponding author), Breda Univ Appl Sci, Acad AI Games & Media, Monseigneur Hopmansstr 2, NL-4817 JS Breda, Netherlands.; Jia, N (corresponding author), Michigan State Univ, Coll Agr & Nat Resources, Ctr Syst Integrat & Sustainabil, E Lansing, MI 48824 USA.
EM wu.j@buas.nl; jianan2@msu.edu
RI li, yinshuai/JVN-4599-2024; Song, Wen/G-3291-2014
OI Jia, Nan/0000-0001-8123-7058; Wu, Jun/0000-0002-2380-5800
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NR 69
TC 4
Z9 4
U1 23
U2 58
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 105251
DI 10.1016/j.scs.2024.105251
EA FEB 2024
PG 13
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA LT0I2
UT WOS:001188931000001
OA hybrid
DA 2025-04-22
ER

PT J
AU Abbas, GM
   Akgül, CM
   Dino, IG
AF Abbas, Gunsu Merin
   Akgul, Cagla Meral
   Dino, Ipek Gursel
TI Resilient cooling of the Mediterranean office spaces under climate
   change
SO ARCHITECTURAL ENGINEERING AND DESIGN MANAGEMENT
LA English
DT Article; Early Access
DE Resilient cooling; indoor overheating; climate change; solar shading;
   chromogenic glazing technologies; cool envelope materials; ventilated fa
   & ccedil;ades; IOD
ID ADAPTIVE THERMAL COMFORT; ENERGY-CONSUMPTION; OVERHEATING RISK; NATURAL
   VENTILATION; BUILDING ENVELOPE; WEATHER FILES; IMPACT; PERFORMANCE;
   PRODUCTS; ROOFS
AB Resilient cooling strategies can minimize overheating risks by reducing energy demands and providing healthy indoor environments. Envelope-based resilient cooling strategies are particularly crucial for limiting external heat gain through conduction, convection, and radiation. This paper examines the impact of these strategies on the indoor environment under climate change. Using a case study approach, we simulate various scenarios for single and combined envelope-based resilient cooling strategies in a hypothetical, free-running office building located in the Mediterranean across five K & ouml;ppen-Geiger climate zones (BSh, BSk, BWh, Csa, and Cfa) for both historical and 2050 weather data. We calculate indoor overheating degree and evaluate occupants' adaptive comfort. The findings suggest that combining envelope-based resilient cooling strategies significantly reduces indoor overheating risks, particularly in Southern European and North-Western African cities. Strategies that effectively control solar exposure are more influential in mitigating these risks. Among the strategies examined, a ventilated double skin with low-SHGC or chromogenic glazing is the most climate-change-resilient. This study contributes to the field by assessing the effectiveness of envelope-based resilient cooling strategies and providing recommendations for their application in the Mediterranean climate. It also evaluates how climate change may impact the performance of these strategies, offering insights for design and policymaking.
C1 [Abbas, Gunsu Merin; Dino, Ipek Gursel] Middle East Tech Univ, Dept Architecture, TR-06800 Ankara, Turkiye.
   [Abbas, Gunsu Merin] Eindhoven Univ Technol, Dept Built Environm, NL-5600 MB Eindhoven, Netherlands.
   [Abbas, Gunsu Merin] TOBB Univ Econ & Technol, Dept Architecture, TR-06510 Ankara, Turkiye.
   [Akgul, Cagla Meral] Middle East Tech Univ, Dept Civil Engn, Ankara, Turkiye.
C3 Middle East Technical University; Eindhoven University of Technology;
   TOBB Ekonomi ve Teknoloji University; Middle East Technical University
RP Abbas, GM (corresponding author), Middle East Tech Univ, Dept Architecture, TR-06800 Ankara, Turkiye.; Abbas, GM (corresponding author), Eindhoven Univ Technol, Dept Built Environm, NL-5600 MB Eindhoven, Netherlands.; Abbas, GM (corresponding author), TOBB Univ Econ & Technol, Dept Architecture, TR-06510 Ankara, Turkiye.
EM g.m.abbas@tue.nl
RI Gursel Dino, Ipek/AAA-6763-2019; ABBAS, GÜNSU/AAK-1387-2021; Meral
   Akgul, Cagla/K-8590-2013
OI Gursel Dino, Ipek/0000-0003-2216-9192; ABBAS, GUNSU
   MERIN/0000-0002-4845-6854; Meral Akgul, Cagla/0000-0001-8720-1216
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NR 73
TC 0
Z9 0
U1 3
U2 3
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1745-2007
EI 1752-7589
J9 ARCHIT ENG DES MANAG
JI Archit. Eng. Des. Manag.
PD 2024 SEP 14
PY 2024
DI 10.1080/17452007.2024.2400577
EA SEP 2024
PG 22
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA G1N2U
UT WOS:001314368100001
OA hybrid
DA 2025-04-22
ER

PT J
AU Chen, Y
   Jiang, CL
   Peng, L
   Zhao, S
   Chen, C
AF Chen, Yi
   Jiang, Cailou
   Peng, Lin
   Zhao, Shuang
   Chen, Cheng
TI Digital infrastructure construction and urban industrial chain
   resilience: Evidence from the "Broadband China" strategy
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Digital infrastructure construction; Industrial chain resilience;
   Broadband China; Difference-in-differences; Double dual machine
   learning; High-quality development
ID INNOVATION; QUALITY
AB Effective governance of industrial chain resilience (ICR) is crucial for urban sustainability, and the development of digital infrastructure provides actionable pathways to achieve this goal. However, limited attention has been paid to the influence of digitalization efforts on ICR. Utilizing panel data from 271 Chinese cities spanning 2009 to 2021, this study adopts the "Broadband China" strategy as a proxy and employs a staggered Difference-inDifferences model combined with machine learning algorithms to evaluate the impacts of digital infrastructure construction (DIC) on urban ICR. The results show that: (1) DIC significantly drives urban ICR. This conclusion shows strong reliability, as it is confirmed by extensive robustness checks. (2) Heterogeneity analysis indicates stronger effects of DIC on eastern cities, non-resource-based cities, and cities with high industrial agglomeration. The positive impact exhibits sustained growth in the eastern region yet gradual attenuation in the central region. (3) Mechanism analysis reveals that DIC improves ICR by bridging the digital divide, fostering digital human capital and elevating innovation quality. These findings provide critical insights for formulating policies to strengthen digital infrastructure development and enhance urban ICR.
C1 [Chen, Yi; Jiang, Cailou] Nanjing Univ Informat Sci & Technol, Sch Business, Nanjing 210044, Peoples R China.
   [Peng, Lin] Chuzhou Univ, Sch Econ & Management, Chuzhou 239000, Peoples R China.
   [Zhao, Shuang] Hohai Univ, Business Sch, Nanjing 211100, Peoples R China.
   [Chen, Cheng] Delft Univ Technol, Fac Civil Engn & Geosci, Dept Geosci & Remote Sensing, NL-2628 CN Delft, Netherlands.
C3 Nanjing University of Information Science & Technology; Chuzhou
   University; Hohai University; Delft University of Technology
RP Jiang, CL (corresponding author), Nanjing Univ Informat Sci & Technol, Sch Business, Nanjing 210044, Peoples R China.
EM jcL@nuist.edu.cn
FU National Social Science Foundation of China [20BGL046]
FX We extend our sincere gratitude to Professor Fariborz Haghighat,
   Editor-in-Chief, and the three anonymous reviewers for their invaluable
   feedback, which has greatly enhanced the quality of this manuscript. We
   appreciate the financial support provided by the National Social Science
   Foundation of China (20BGL046) .
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NR 91
TC 0
Z9 0
U1 45
U2 45
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAR 1
PY 2025
VL 121
AR 106228
DI 10.1016/j.scs.2025.106228
EA FEB 2025
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 Y5H0Q
UT WOS:001432419900001
DA 2025-04-22
ER

PT J
AU Hoelscher, K
   Garcia, CG
AF Hoelscher, Kristian
   Garcia, Catalina G.
TI SMEs, violence and crisis: Stylized facts from a survey in Latin America
SO WORLD DEVELOPMENT
LA English
DT Article
DE SMEs; Exogenous Shocks; COVID-19; Urban Violence; El Salvador; Honduras;
   Venezuela; Latin America
ID ORGANIZED-CRIME; SMALL BUSINESS; IMPACT; ENTREPRENEURSHIP; COVID-19;
   RESILIENCE; GOVERNANCE; FRAMEWORK; GROWTH; TIMES
AB Small and medium enterprises (SMEs) can be uniquely vulnerable to exogenous shocks and crises. In many Latin American cities, SMEs also face endemic challenges related to urban violence that can inhibit their operations and survival. Drawing on theory related to how small business vulnerability and resilience is shaped by firm capacity, dynamics of violence and businesses' networks and relationships, this article examines SMEs self- reported business outcomes in fragile urban contexts. We do so by utilising a novel primary survey of urban SME owners in Venezuela, El Salvador and Honduras conducted during the COVID-19 pandemic. Our results highlight how firms that were smaller, informal and faced increasing violence and extortion tended to suffer; while those that increased engagement with both the State and non-state criminal actors and those who supported their communities tended to fare better. While SMEs may face distinct liabilities in complex institutional settings, our findings suggest they can also exercise some agency in navigating urban violence and exogenous shocks by utilising both formal and informal support networks and fostering community linkages as resilience strategies.
C1 [Hoelscher, Kristian] Peace Res Inst Oslo, Oslo, Norway.
   [Garcia, Catalina G.] World Bank, Washington, DC USA.
C3 Peace Research Institute Oslo (PRIO); The World Bank
RP Hoelscher, K (corresponding author), Peace Res Inst Oslo, Oslo, Norway.
EM hoelscher@prio.org
FU Research Council of Norway [302791]
FX We thank the Research Council of Norway, Grant number 302791, for
   financial support for this research. We also thank Sean Fox and three
   anonymous reviewers for useful and critical comments on this manuscript.
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NR 134
TC 1
Z9 1
U1 6
U2 9
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0305-750X
EI 1873-5991
J9 WORLD DEV
JI World Dev.
PD DEC
PY 2024
VL 184
AR 106720
DI 10.1016/j.worlddev.2024.106720
EA AUG 2024
PG 12
WC Development Studies; Economics
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics
GA C5E9A
UT WOS:001289605200001
DA 2025-04-22
ER

PT J
AU Huang, JL
   Geng, H
AF Huang, Jialei
   Geng, Hong
TI Investigating of Spatiotemporal Correlation between Urban Spatial Form
   and Urban Ecological Resilience: A Case Study of the City Cluster in the
   Yangzi River Midstream, China
SO BUILDINGS
LA English
DT Article
DE urban spatial form; urban ecological resilience; GTWR; geographical
   detector; Yangzi River
AB The anthropogenic disturbance caused by irrational urbanization impacts the ecological security of cities. The study of the relationship between urban spatial form (USF) and urban ecological resilience (UER) can offer guidance for sustainable urban development. We select the UER evaluation indexes and construct a DRSIR model based on the causal relationship among the natural, social, and economic dimensions of cities. We also carried out empirical research on the impact of USF on UER in the city cluster located in the Yangtze River midstream (YRM) through the geographical and temporal weighted regression (GTWR) model and geographical detector for four time cross-sections: 2005, 2010, 2015, and 2020. The following findings were obtained: (1) The computing results for UERIs of cities in the YRM noticeably and consistently increased during the study period, exhibiting a spatial distribution pattern with high values in the southeast, second-highest in the northwest, and low values in the center. (2) The regression coefficients of USFIs and UERIs displayed significant spatial and temporal variations in the YRM during the study period. (3) CA, AWMPFD, PD, and AI showed a positive correlation with UERIs, while PD exhibited a negative correlation with UERIs. (4) LPI and AI emerged as the primary drivers of spatial heterogeneity in UERIs, and the interaction between these two factors significantly enhanced their impact on UERIs compared to individual influencing factors. Exploring the correlation between UER and USF can be utilized to provide urban management recommendations that are suitable for the level of urban development, which will contribute to the achievement of sustainable development in the YRM.
C1 [Huang, Jialei; Geng, Hong] Huazhong Univ Sci & Technol, Coll Architecture & Urban Planning, Wuhan 430074, Peoples R China.
C3 Huazhong University of Science & Technology
RP Huang, JL (corresponding author), Huazhong Univ Sci & Technol, Coll Architecture & Urban Planning, Wuhan 430074, Peoples R China.
EM m202173961@hust.edu.cn; 0070010122@hust.edu.cn
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NR 49
TC 0
Z9 1
U1 20
U2 41
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2075-5309
J9 BUILDINGS-BASEL
JI BUILDINGS-BASEL
PD JAN
PY 2024
VL 14
IS 1
AR 274
DI 10.3390/buildings14010274
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA FX1E1
UT WOS:001149051500001
OA gold
DA 2025-04-22
ER

PT J
AU Martin, R
   Sunley, P
AF Martin, Ron
   Sunley, Peter
TI On the notion of regional economic resilience: conceptualization and
   explanation
SO JOURNAL OF ECONOMIC GEOGRAPHY
LA English
DT Article
DE Shocks; resilience; robustness; adaptability; regional economies
ID SOCIAL-ECOLOGICAL SYSTEMS; PATH DEPENDENCE; CONVERGENCE; COMPLEXITY;
   DIVERSITY; STABILITY; GEOGRAPHY
AB Over the past few years a new buzzword has entered academic, political and public discourse: the notion of resilience, a term invoked to describe how an entity or system responds to shocks and disturbances. Although the concept has been used for some time in ecology and psychology, it is now invoked in diverse contexts, both as a perceived (and typically positive) attribute of an object, entity or system and, more normatively, as a desired feature that should somehow be promoted or fostered. As part of this development, the notion of resilience is rapidly becoming part of the conceptual and analytical lexicon of regional and local economic studies: there is increasing interest in the resilience of regional, local and urban economies. Further, resilience is rapidly emerging as an idea 'whose time has come' in policy debates: a new imperative of 'constructing' or 'building' regional and urban economic resilience is gaining currency. However, this rush to use the idea of regional and local economic resilience in policy circles has arguably run somewhat ahead of our understanding of the concept. There is still considerable ambiguity about what, precisely, is meant by the notion of regional economic resilience, about how it should be conceptualized and measured, what its determinants are, and how it links to patterns of long-run regional growth. The aim of this article is to address these and related questions on the meaning and explanation of regional economic resilience and thereby to outline the directions of a research agenda.
C1 [Martin, Ron] Univ Cambridge, Dept Geog, Cambridge CB2 3EN, England.
   [Sunley, Peter] Univ Southampton, Sch Geog & Environm, Southampton SO17 1IB, Hants, England.
C3 University of Cambridge; University of Southampton
RP Martin, R (corresponding author), Univ Cambridge, Dept Geog, Downing Pl, Cambridge CB2 3EN, England.
EM rlm1@cam.ac.uk
RI Martin, Ronald/JPW-9668-2023
FU UK Economic and Social Research Council [ES/1035811/1]; ESRC
   [ES/I035811/1] Funding Source: UKRI
FX The research for this article forms part of a larger project on How
   Regions React to Recession: Resilience, Hysteresis and Long Run Impacts,
   funded by the UK Economic and Social Research Council (Grant
   ES/1035811/1), whose support is gratefully acknowledged. An earlier
   version of the article was presented at the Path Dependence Seminar
   Series, Faculty of Economics and Business, Free University of Berlin,
   25-26 June 2013; at the Annual Conference of the Royal Geographical
   Society-Institute of British Geographers, London, 28-30 August 2013; and
   at the Urban and Regional Economics Studies Group Workshop on 'What
   Constitutes a Regional Economy?' Cardiff, 25-26 September 2013. The
   various comments made on those occasions, together with those of three
   anonymous referees, proved most useful in shaping the final version of
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NR 116
TC 893
Z9 914
U1 170
U2 1001
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 JAN
PY 2015
VL 15
IS 1
BP 1
EP 42
DI 10.1093/jeg/lbu015
PG 42
WC Economics; Geography
WE Social Science Citation Index (SSCI)
SC Business & Economics; Geography
GA CC3GY
UT WOS:000350236000001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Krivtsov, V
   Birkinshaw, S
   Arthur, S
   Knott, D
   Monfries, R
   Wilson, K
   Christie, D
   Chamberlain, D
   Brownless, P
   Kelly, D
   Buckman, J
   Forbes, H
   Monteiro, Y
AF Krivtsov, Vladimir
   Birkinshaw, Steve
   Arthur, Scott
   Knott, David
   Monfries, Ruth
   Wilson, Kirsty
   Christie, Derek
   Chamberlain, David
   Brownless, Peter
   Kelly, David
   Buckman, Jim
   Forbes, Heather
   Monteiro, Yamina
TI Flood resilience, amenity and biodiversity benefits of an historic urban
   pond
SO PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL
   AND ENGINEERING SCIENCES
LA English
DT Article
DE Shetran; CityCAT; biodiversity; rain garden; ecosystem services
ID RESIDENCE TIME; WATER; MANAGEMENT; SYSTEM
AB The main pond within the historic Royal Botanic Garden Edinburgh is an important component of urban blue-green infrastructure. This paper reports on flood resilience provided by the pond (simulated using the CityCAT hydrodynamic model), its water residence times (obtained using the Shetran hydrological model), and the ecology and biodiversity (vascular plants, bryophytes, aquatic invertebrates, phyto- and zooplankton, birds) of the pond and the adjacent area. The results show that the pond improves the flood resilience with at least a 27% reduction in the peak discharge during a 1 h, one in 100-year event. The area represents a biodiversity hot spot with a range of native taxa occurring among introduced plant species. The plankton community is dominated by diatoms, reflecting elevated levels of turbulence and a relatively short residence time, with an average value of 10 days. Analysis of macroinvertebrate community indicates a potential for water quality improvement. The results are discussed in relation to multiple societal benefits related to flood resilience, recreation, education, water quality, amenity and biodiversity value. The conclusions may prove particularly valuable for introducing practical measures in the water catchment, preventing waterlogging of the soil and ensuring an uninterrupted supply of public services.
   This article is part of the theme issue 'Urban flood resilience'.
C1 [Krivtsov, Vladimir; Arthur, Scott; Kelly, David; Buckman, Jim] Heriot Watt Univ, Edinburgh, Midlothian, Scotland.
   [Birkinshaw, Steve] Newcastle Univ, Newcastle Upon Tyne, Tyne & Wear, England.
   [Krivtsov, Vladimir; Knott, David; Monfries, Ruth; Wilson, Kirsty; Chamberlain, David; Brownless, Peter; Forbes, Heather] Royal Bot Gardens Edinburgh, Edinburgh, Midlothian, Scotland.
   [Christie, Derek] Bot Soc Scotland, Edinburgh, Midlothian, Scotland.
   [Monteiro, Yamina] Wildlife Informat Ctr, Vogrie Country Pk, Gorebridge, Scotland.
   [Krivtsov, Vladimir] Univ Edinburgh, 1-02 Rutherford Bldg,Kings Bldg,190 Mayfield Rd, Edinburgh EH9 3BF, Midlothian, Scotland.
C3 Heriot Watt University; Newcastle University - UK; Royal Botanic
   Gardens, Kew; University of Edinburgh
RP Birkinshaw, S (corresponding author), Newcastle Univ, Newcastle Upon Tyne, Tyne & Wear, England.
EM stephen.birkinshaw@newcastle.ac.uk
RI Kelly, David/JMQ-6083-2023; Arthur, Scott/E-5147-2010; Buckman,
   Jim/H-9797-2019; Krivtsov, Vladimir/AAO-6018-2020; Krivtsov,
   Vladimir/G-7219-2015
OI Buckman, Jim/0000-0003-1396-7539; Krivtsov,
   Vladimir/0000-0003-0844-5007; Birkinshaw, Stephen/0000-0003-4989-7915;
   Wilson, Kirsty/0000-0002-8823-8982; Kelly, David/0000-0003-4230-8823
FU Urban Flood Resilience EPSRC [EP/P003982/1, EP/P004334/1]; EPSRC
   [EP/P004334/1, EP/P003982/1, EP/P004180/1, EP/K013661/1] Funding Source:
   UKRI
FX This research was supported by the Urban Flood Resilience EPSRC grants
   EP/P003982/1 and EP/P004334/1.
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NR 45
TC 16
Z9 16
U1 4
U2 76
PU ROYAL SOC
PI LONDON
PA 6-9 CARLTON HOUSE TERRACE, LONDON SW1Y 5AG, ENGLAND
SN 1364-503X
EI 1471-2962
J9 PHILOS T R SOC A
JI Philos. Trans. R. Soc. A-Math. Phys. Eng. Sci.
PD APR 3
PY 2020
VL 378
IS 2168
SI SI
AR 20190389
DI 10.1098/rsta.2019.0389
PG 19
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA KO6JB
UT WOS:000515653700013
PM 32063177
OA Green Published, Green Submitted
DA 2025-04-22
ER

PT J
AU Wang, L
   Xue, XL
   Zhou, X
AF Wang, Liang
   Xue, Xiaolong
   Zhou, Xun
TI A New Approach for Measuring the Resilience of Transport Infrastructure
   Networks
SO COMPLEXITY
LA English
DT Article
ID URBAN RESILIENCE; VULNERABILITY; SIMULATION
AB Resilience is an important property of transport infrastructure networks. Resilient transport infrastructure networks can retain the performance in case of disturbances and quickly recover to the original performance level after the disturbances. This study proposes a new approach that can measure the resilience of transport infrastructure networks. The new approach gives a unified conceptual framework for measuring the resilience of transport infrastructure networks. A network simulation-based method is used to analyze the influential factors of transport infrastructure network resilience. A new measuring method is developed based on network diversity characteristic to quantitatively measure the system resilience and node resilience of transport infrastructure networks. China railway and air transport networks are selected as a case study to applicability of new approach. This new approach provides strong supports for academic and industrial fields to measure, analyze, enhance, and optimize the resilience of transport infrastructure networks.
C1 [Wang, Liang] Dalian Maritime Univ, Sch Maritime Econ & Management, Dalian 116026, Peoples R China.
   [Xue, Xiaolong] Guangzhou Univ, Sch Management, Guangzhou 510006, Peoples R China.
   [Zhou, Xun] Univ Iowa, Tippie Coll Business, Iowa City, IA 52242 USA.
C3 Dalian Maritime University; Guangzhou University; University of Iowa
RP Xue, XL (corresponding author), Guangzhou Univ, Sch Management, Guangzhou 510006, Peoples R China.
EM liangwang@dlmu.edu.cn; xlxue@hit.edu.cn; xun-zhou@uiowa.edu
RI Wang, Liang/AAI-1031-2021
OI Wang, Liang/0000-0002-4063-6842; Zhou, Xun/0000-0003-4930-6572
FU National Social Science Fund of China [18ZDA043]; National Natural
   Science Foundation of China (NSFC) [71671053, 71841024, 71771067,
   71390522]; National Key R&D Program of China [2016YFC0701800,
   2016YFC0701808]; Department of Science and Technology of Guangdong
   Province [2019B101001019]; Fundamental Research Funds for the Central
   Universities [3132020224]
FX This research was funded by the National Social Science Fund of China
   (no. 18ZDA043). The work described in this paper was also supported by
   the National Natural Science Foundation of China (NSFC) (nos. 71671053,
   71841024, 71771067, and 71390522), the National Key R&D Program of China
   (nos. 2016YFC0701800 and 2016YFC0701808), the Department of Science and
   Technology of Guangdong Province (no. 2019B101001019), and the
   Fundamental Research Funds for the Central Universities (no.
   3132020224).
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NR 73
TC 6
Z9 7
U1 22
U2 225
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 AUG 17
PY 2020
VL 2020
AR 7952309
DI 10.1155/2020/7952309
PG 16
WC Mathematics, Interdisciplinary Applications; Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Mathematics; Science & Technology - Other Topics
GA NL6WE
UT WOS:000567552500002
OA gold
DA 2025-04-22
ER

PT J
AU Barros, VG
   Rapaglia, J
   Richter, MB
   Andrighi, JF
AF Barros, Virginia Grace
   Rapaglia, John
   Richter, Maiko B.
   Andrighi, Jean F.
TI Design process in the urban context - Mobility and health in Special
   Flood Hazard Area
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Design thinking; Urban areas; Floods; Mobility; Resilience
ID CLIMATE-CHANGE; RESILIENCE; SUSTAINABILITY; THINKING; INTEGRATION;
   FRAMEWORK
AB In developing countries, unplanned urban growth, lack of infrastructure services, pollution, diseases, and flooding generate urgent needs. Floods cause diseases and damage to countries at all levels of development because they usually lack the preparedness for current climate variability. In Brazil, Municipal Civil Defense (JMCD) - in a 600,000 inhabitants city-, together with other city agencies, established a safe route (SRP) to be implemented during flood occurrences. This map is available for download as a PDF. This work aims to present the developed methodology, tools, and ways to design, in a collaborative way, a conceptual, innovative system model capable of bringing together needs like resilience, safety and sustainability, contributing to urban resilience, mobility, risks communication and health. Different design processes: design thinking, wayfinding system, signage, norms, and laws were used to create a dynamic conceptual design in the urban development. As a result, visual identity, pictograms icons, totems and luminous panels are presented. Luminous system is projected to be linked to rivers height (measured in hydrological gauging stations) to guide users to safe routes. The information technology which can link water height in rivers, to the different levels of flood in the designed system is not among the objectives of this study. Developing strategies to face the potential effects of climate change in the transportation sector poses a major significant challenge. Proper tools are required to prepare to change and provide meaningful environmental, health, social, and security solutions with the quickness the modern cities demand.
C1 [Barros, Virginia Grace] State Univ Santa Catarina UDESC, Ctr Technol Sci, Dept Civil Engn, Lab Hydrol,Risk & Disaster Management Coordinated, 200 Paulo Malschitzki St, BR-89219710 Joinville, SC, Brazil.
   [Rapaglia, John] Univ Sagrado Coracao, Bauru, SP, Brazil.
   [Richter, Maiko B.] Joinville Municipal Civil Def, Joinville, SC, Brazil.
   [Andrighi, Jean F.] Catholic Univ Santa Catarina, Jaragua Do Sul, SC, Brazil.
C3 Universidade do Sagrado Coracao
RP Barros, VG (corresponding author), State Univ Santa Catarina UDESC, Ctr Technol Sci, Dept Civil Engn, Lab Hydrol,Risk & Disaster Management Coordinated, 200 Paulo Malschitzki St, BR-89219710 Joinville, SC, Brazil.
EM virginia.barros@udesc.br; john.rapaglia@gmail.com;
   maikorichter@gmail.com; aljean@catolicasc.org.br
RI Barros, Virginia/X-8187-2018
OI Barros, Virginia/0000-0001-5009-3047
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NR 63
TC 6
Z9 6
U1 5
U2 22
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 1
PY 2021
VL 59
AR 102170
DI 10.1016/j.ijdrr.2021.102170
EA APR 2021
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 SJ6KL
UT WOS:000655641500003
DA 2025-04-22
ER

PT J
AU Koens, K
   Melissen, F
   Mayer, I
   Aall, C
AF Koens, Ko
   Melissen, Frans
   Mayer, Igor
   Aall, Carlo
TI The Smart City Hospitality Framework: Creating a foundation for
   collaborative reflections on overtourism that support destination design
SO JOURNAL OF DESTINATION MARKETING & MANAGEMENT
LA English
DT Article
DE Destination design; Participatory design; Transition management;
   Resilience; Urban tourism; Sustainable tourism governance; City
   hospitality; Overtourism
ID IMPLEMENTING SUSTAINABLE TOURISM; TRANSITION MANAGEMENT; URBAN TOURISM;
   CLIMATE-CHANGE; PERSPECTIVE; RESILIENCE; INVOLVEMENT; GOVERNANCE;
   MITIGATION; EXPERIENCE
AB This paper introduces the Smart City Hospitality Framework, which could serve as the foundation for a destination-design-driven approach to urban tourism governance and dealing with overtourism issues. This conceptual framework is purposely designed to stimulate collaborative (informed) reflections on overtourism and urban tourism development that could support system analyses, problem structuring and development of transition agendas and pathways within the context of turning urban tourism into a transition arena that contributes to setting in motion a sustainability transition at city level. It merges the dimensions of sustainable development (environmentally responsible and equitable economic development) and city hospitality (the extent to which the city acts as a good ?host? to all its ?guests?, including residents and businesses). Resilience resides at its centre to highlight the temporal aspects of these dimensions, and their interdependencies. To show how this framework can serve as the foundation for destination design efforts in practice, a short description of (experiences with) serious game-playing sessions that employ its logic in six European cities is provided.
C1 [Koens, Ko] Breda Univ Appl Sci, POB 3917, NL-4800 DX Breda, Netherlands.
   [Melissen, Frans] Breda Univ Appl Sci, Sustainable Experience Design, POB 3917, NL-4800 DX Breda, Netherlands.
   [Mayer, Igor] Breda Univ Appl Sci, Appl Games Innovat & Soc, POB 3917, NL-4800 DX Breda, Netherlands.
   [Koens, Ko] Univ Johannesburg, Johannesburg, South Africa.
   [Aall, Carlo] Western Norway Res Inst, Box 163, NO-6851 Sogndal, Norway.
C3 Breda University of Applied Sciences; Breda University of Applied
   Sciences; Breda University of Applied Sciences; University of
   Johannesburg
RP Koens, K (corresponding author), Breda Univ Appl Sci, POB 3917, NL-4800 DX Breda, Netherlands.
EM Koens.k@buas.nl; Melissen.f@buas.nl; Mayer.i@buas.nl; caa@vestforsk.no
RI Koens, Ko/N-1637-2019
OI Mayer, Igor Stefan/0000-0002-5592-8848
FU Netherlands Organisation for Scientific Research (NWO) [5619886]
FX This work is part of the research programme JPI Urban Europe - ERA-NET
   Cofund Smart Cities and Communities with project number 5619886, which
   is (partly) financed by the Netherlands Organisation for Scientific
   Research (NWO).
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NR 97
TC 54
Z9 54
U1 12
U2 132
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-571X
EI 2212-5752
J9 J DESTIN MARK MANAGE
JI J. Destin. Mark. Manag.
PD MAR
PY 2021
VL 19
AR 100376
DI 10.1016/j.jdmm.2019.100376
EA MAR 2021
PG 10
WC Hospitality, Leisure, Sport & Tourism; Management
WE Social Science Citation Index (SSCI)
SC Social Sciences - Other Topics; Business & Economics
GA RE6NR
UT WOS:000634268700002
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Castenfors, K
   Svedin, L
AF Castenfors, K
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TI Crisis communication: learning from the 1998 LPG near miss in Stockholm
SO JOURNAL OF HAZARDOUS MATERIALS
LA English
DT Article
DE urban risks; hazardous material; mass media; liquefied petroleum gas;
   urban disaster; Sweden
AB The authors examine current trends in urban risks and resilience in relation to hazardous material transports in general, and crisis communication and the Stockholm liquefied petroleum gas (LPG) near miss in 1998 in particular The article discusses how current dynamics affecting urban areas, such as the decay in terms of increased condensation and limited expansion alternatives combined with industry site contamination and transports of hazardous materials on old worn-out physical infrastructure, work together to produce high-risk factors and increase urban vulnerability in large parts of the world today. Crisis communication takes a particularly pronounced role in the article as challenges in communication and confidence maintenance under conditions of information uncertainty and limited information control are explored. The LPG near miss case illustrates a Swedish case of urban risk and the tight coupling to hazardous material transports. The case also serves as a current example of Swedish resilience and lack of preparedness in urban crises, with particular observations and lessons learned in regards to crisis communication. (C) 2001 Elsevier Science B.V. All rights reserved.
C1 Swedish Natl Def Coll, CRISMART, S-11593 Stockholm, Sweden.
   Swedish Def Res Agcy, S-17290 Stockholm, Sweden.
C3 Swedish National Defence College; Saab Group
RP Svedin, L (corresponding author), Swedish Natl Def Coll, CRISMART, POB 27805, S-11593 Stockholm, Sweden.
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NR 61
TC 6
Z9 6
U1 1
U2 22
PU ELSEVIER SCIENCE BV
PI AMSTERDAM
PA PO BOX 211, 1000 AE AMSTERDAM, NETHERLANDS
SN 0304-3894
J9 J HAZARD MATER
JI J. Hazard. Mater.
PD DEC 14
PY 2001
VL 88
IS 2-3
SI SI
BP 235
EP 254
DI 10.1016/S0304-3894(01)00269-2
PG 20
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology
GA 489LV
UT WOS:000171993600006
PM 11679196
DA 2025-04-22
ER

PT J
AU Kou, CH
   Meng, DH
   Yang, XL
AF Kou, Chenhuan
   Meng, Donghan
   Yang, Xiuli
TI Construction and application of economic resilience evaluation model for
   megacities
SO PLOS ONE
LA English
DT Article
ID REGIONAL RESILIENCE; DETERMINANTS
AB Economic resilience provides a new perspective for megacities to achieve sustainable development when facing multiple shocks, and its accurate evaluation is an essential prerequisite for optimizing urban governance. There are currently no generally accepted methods for empirical evaluation or measuring economic resilience, and the present study aims to contribute to in both the research field and methodology. The present study sets dimensions and indicators based on economic resilience's theoretical and empirical research and used Decision Making Trial and Evaluation Laboratory (DEMATEL) and Interactive Structural Modeling (ISM) methods to exclude the effect indicators and divide the indicator hierarchy, respectively. Subsequently, the present study conducts model validation using Chinese megacities as a case study. The game theory weighting method, which combines the Analytic Hierarchy Process (AHP) and Entropy methods, is used to calculate indicator weights, and the VIKOR (VIseKriterijumska Optimizacija i KOmpromisno Resenje) method is used to evaluate and compare economic resilience of megacities. The research findings indicate that the evaluation model constructed in the present study included 15 indicators (after excluding three effect indicators) divided into four levels. After merging the levels, they correspond to three dimensions: resistance, recoverability, and adaptability. In addition, using Chinese megacities as a case study, the evaluation results found that Beijing, Shanghai, and Shenzhen have high economic resilience, Tianjin and Guangzhou have moderate economic resilience, Chengdu has low economic resilience, and Chongqing has the lowest economic resilience. This result is consistent with previous studies and verifies the model's effectiveness. The present study also found that megacities with lower levels of economic resilience exhibit a more significant upward trend, as well as the highest and higher proportion of economic resilience in Chinese megacities depending on time passes, indicating that megacities' economic resilience is weakening. The evaluation result obtained in the present study is more specific, precise, and focused on depicting the distribution differences and development trends of economic resilience at the urban level.
C1 [Kou, Chenhuan] Hebei Univ Econ & Business, Sch Management Sci & Engn, Shijiazhuang, Hebei, Peoples R China.
   [Meng, Donghan] Hebei Univ Econ & Business, Dev Planning Dept, Shijiazhuang, Hebei, Peoples R China.
   [Meng, Donghan] Cent Univ Finance & Econ, Sch Management Sci & Engn, Beijing, Peoples R China.
   [Yang, Xiuli] Northeast Agr Univ, Sch Publ Adm & Law, Harbin, Heilongjiang, Peoples R China.
C3 Hebei University of Economics & Business; Hebei University of Economics
   & Business; Central University of Finance & Economics; Northeast
   Agricultural University - China
RP Yang, XL (corresponding author), Northeast Agr Univ, Sch Publ Adm & Law, Harbin, Heilongjiang, Peoples R China.
EM yxl_nau@163.com
RI yang, xiuli/HZL-1822-2023; Kou, Kou/KIH-1509-2024
OI Kou, Chenhuan/0000-0003-1271-9138
FU National Natural Science Foundation of China [72304089]; Department of
   Education, Heilongjiang Province [UNPYSCT-2020, 046, LJYXL2022-092]
FX Chen Kou, National Natural Science Foundation of China (72304089); Chen
   Kou, Department of Education, Heilongjiang Province (UNPYSCT-2020, 046);
   Chen Kou, Department of Education, Heilongjiang Province
   (LJYXL2022-092).
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NR 45
TC 0
Z9 0
U1 16
U2 22
PU PUBLIC LIBRARY SCIENCE
PI SAN FRANCISCO
PA 1160 BATTERY STREET, STE 100, SAN FRANCISCO, CA 94111 USA
SN 1932-6203
J9 PLOS ONE
JI PLoS One
PD MAY 24
PY 2024
VL 19
IS 5
AR e0301840
DI 10.1371/journal.pone.0301840
PG 28
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA ZP1K4
UT WOS:001276406500025
PM 38787848
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Gomez, M
   Grady, C
AF Gomez, Michael
   Grady, Caitlin
TI A balancing act: the interplay of food supply chain resilience and
   environmental sustainability in American cities
SO ENVIRONMENTAL RESEARCH LETTERS
LA English
DT Article
DE sustainable; cities; carbon footprint; nitrogen footprint; food; supply
   chain; resilience
ID WATER FOOTPRINT; IMPACT; BLUE
AB Global food systems must be a part of strategies for greenhouse gas (GHG) mitigation, optimal water use, and nitrogen pollution reduction. Insights from research in these areas can inform policies to build sustainable food systems yet limited work has been done to build understanding around whether or not sustainability efforts compete with supply chain resilience. This study explores the interplay between food supply resilience and environmental impacts in US cities, within the context of global food systems' contributions to GHG emissions, water use, and nitrogen pollution. Utilizing county-level agricultural data, we assess the water use, GHG emissions, and nitrogen losses of urban food systems across the US, and juxtapose these against food supply resilience, represented by supply chain diversity. Our results highlight that supply chain resilience and sustainability can simultaneously exist and are not necessarily in competition with each other. We also found a significant per capita footprint in the environmental domains across Southern cities, specifically those along the Gulf Coast and southern Great Plains. Food supply chain resilience scores ranged from 0.18 to 0.69, with lower scores in the southwest and Great Plains, while northeastern and Midwestern regions demonstrated higher resilience. We found several cities with high supply chain resilience and moderate or low environmental impacts as well as areas with high impacts and low resilience. This study provides insights into potential trade-offs and opportunities for creating sustainable urban food systems in the US, underscoring the need for strategies that consider both resilience and environmental implications.
C1 [Gomez, Michael] Penn State Univ, Dept Civil & Environm Engn, University Pk, PA USA.
   [Grady, Caitlin] George Washington Univ, Dept Engn Management & Syst Engn, Washington, DC 20006 USA.
C3 Pennsylvania Commonwealth System of Higher Education (PCSHE);
   Pennsylvania State University; Penn State Behrend; Pennsylvania State
   University - University Park; George Washington University
RP Grady, C (corresponding author), George Washington Univ, Dept Engn Management & Syst Engn, Washington, DC 20006 USA.
EM Caitlin.grady@gwu.edu
RI Gomez, Michael/JNH-6234-2023
OI Grady, Caitlin/0000-0002-9151-6664
FU The authors would like to acknowledge the National Science Foundation
   Grant #1941657 and #2244715, and the George Washington University for
   providing support for this work. [1941657, 2244715]; National Science
   Foundation; George Washington University
FX The authors would like to acknowledge the National Science Foundation
   Grant #1941657 and #2244715, and the George Washington University for
   providing support for this work.
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U1 20
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PU IOP Publishing Ltd
PI BRISTOL
PA TEMPLE CIRCUS, TEMPLE WAY, BRISTOL BS1 6BE, ENGLAND
SN 1748-9326
J9 ENVIRON RES LETT
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PD DEC 1
PY 2023
VL 18
IS 12
AR 124022
DI 10.1088/1748-9326/ad0608
PG 10
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA X6TS5
UT WOS:001099759100001
OA gold
DA 2025-04-22
ER

PT J
AU Ha-Mim, NM
   Hossain, MZ
   Islam, MT
   Rahaman, KR
AF Ha-Mim, Nur Mohammad
   Hossain, Md. Zakir
   Islam, Md. Tariqul
   Rahaman, Khan Rubayet
TI Evaluating resilience of coastal communities upon integrating PRISMA
   protocol, composite resilience index and analytical hierarchy process
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Climate change; Disaster; Community resilience; Indexing method; AHP;
   GIS; PRISMA
ID URBAN; VULNERABILITY; CITIES
AB This research intends to investigate the resilience of coastal communities to natural hazards upon adopting: (i) Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) protocol as a novel approach for the selection of resilience indicators and major components; (ii) Analytical Hierarchy Process to generate a weight for each indicator and major component of resilience; and (iii) indexing method to calculate the extent of resilience for each community. The results highlight that 25.81 % of the communities in the study area are registered in the very low to low resilience class, whereas 58.07 % are classified as very high to high. Additionally, this research identifies 11 critical action areas for building resilience in Khulna City, which is crucial for major stakeholders in setting up development strategies and plans for disaster risk reduction and sustainability.
C1 [Ha-Mim, Nur Mohammad; Hossain, Md. Zakir] Khulna Univ, Urban & Rural Planning Discipline, Khulna, Bangladesh.
   [Islam, Md. Tariqul] Cranfield Univ, Sch Water Energy & Environm, Res Fellow Air Qual & Green Infrastruct, Bldg 146,Coll Rd, Cranfield MK43 0AL, England.
   [Rahaman, Khan Rubayet] St Marys Univ, Dept Geog & Environm Studies, 923 Robie St, Halifax, NS B3H 3C3, Canada.
C3 Khulna University; Cranfield University; Saint Marys University - Canada
RP Rahaman, KR (corresponding author), St Marys Univ, Dept Geog & Environm Studies, 923 Robie St, Halifax, NS B3H 3C3, Canada.
EM hamim@urp.ku.ac.bd; zakir@ku.ac.bd; tariqul.islam@cranfield.ac.uk;
   khan.rahaman@smu.ca
RI Hossain, Md./AAI-2963-2020; Islam, Moinul/F-1257-2014
OI Zakir Hossain, Md./0000-0002-4426-8055; Rahaman,
   Khan/0000-0002-8018-2355; Islam, Md. Tariqul/0000-0003-2831-2252
FU University Grants Commission of Bangladesh
   [37-01-0000-073-07-013-19/1756]
FX Funding Acknowledgement This research was funded by the University
   Grants Commission of Bangladesh, grant number
   37-01-0000-073-07-013-19/1756, project titled 'City Resilience Index to
   Assess the Resilience of Coastal Communities based on the Analytical
   Hierarchy Process (AHP) '.
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NR 50
TC 6
Z9 6
U1 6
U2 17
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 2024
VL 101
AR 104256
DI 10.1016/j.ijdrr.2024.104256
EA JAN 2024
PG 17
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA IW4X1
UT WOS:001169372200001
DA 2025-04-22
ER

PT J
AU Petrescu, D
   Petcou, C
   Safri, M
   Gibson, K
AF Petrescu, Doina
   Petcou, Constantin
   Safri, Maliha
   Gibson, Katherine
TI Calculating the value of the commons: Generating resilient urban futures
SO ENVIRONMENTAL POLICY AND GOVERNANCE
LA English
DT Article
DE citizen-driven ecological transition; collective governance; community
   economies; co-production; economics of nonprofits; resilience; social
   and ecological design; social returns on investment; urban commons;
   value
ID BENEFITS; CRITIQUE
AB In this article, we present a method for valuing the multidimensional aspects of urban commons. This method draws from and contributes to a broader conception of social or community returns on investment, using the case and data of a vibrant project, strategy, and model of ecological resilience, R-Urban, on the outskirts of Paris. R-Urban is based on networks of urban commons and collective hubs supporting civic resilience practices. We use data from 2015, the year before one of the hubs was evicted from its site by a municipal administration that could not see the value of an "urban farm" compared to a parking lot. We combine estimates of the direct revenues generated for a host of activities that took place in R-Urban, including an urban farm, community recycling centre, a greenhouse, community kitchen, compost school, cafe, a teaching space, and a mini-market. We then estimate the market value of volunteer labour put into running the sites, in addition to the value of training and education conducted through formal and informal channels, and the new jobs and earnings that were generated due to R-Urban activity. Finally, we estimate the monetary value of the savings made by an environmentally conscious design that focused on water recycling, soil and biodiversity improvement, and social and health benefits, breaking them down by savings to the organization, participants and households involved in R-Urban itself, as well as savings to the state and the planet. Although our article is built on specific quantities from a concrete project, the method has wide applicability to urban commons of many types seeking to demonstrate the worth and value of all their many facets and activities.
C1 [Petrescu, Doina] Univ Sheffield, Dept Architecture, Sheffield, S Yorkshire, England.
   [Petcou, Constantin] Atelier Architecture Autogeree, Paris, France.
   [Safri, Maliha] Drew Univ, Dept Econ, Madison, NJ 07940 USA.
   [Gibson, Katherine] Western Sydney Univ, Inst Culture & Soc, Sydney, NSW, Australia.
C3 University of Sheffield; Drew University; Western Sydney University
RP Petrescu, D (corresponding author), Univ Sheffield, Dept Architecture, Sheffield, S Yorkshire, England.
EM d.petrescu@sheffield.ac.uk
OI Gibson, Katherine/0000-0003-4605-1818
FU Swedish Environmental Humanities; Julie Graham Community Economy
   Research Fund
FX The authors would like to thank Sophie Yarker for her research
   assistance. We would also like to acknowledge funding from the Swedish
   Environmental Humanities Seed Box 2017-18 and the Julie Graham Community
   Economy Research Fund that supported a Workshop on "Urban food
   Economies; Rethinking Value for More-Than-Capitalist Futures" held in
   Bolsena, Italy in 2017. Thanks must also go to our workshop colleagues
   who helped to frame this analysis; however, all responsibility for the
   content of this article remains ours alone. Thanks also to the Atelier
   d'Architecture Autogeree collective and the participants in the R-Urban
   network for providing invaluable data for this article.
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NR 62
TC 22
Z9 23
U1 0
U2 20
PU WILEY PERIODICALS, INC
PI SAN FRANCISCO
PA ONE MONTGOMERY ST, SUITE 1200, SAN FRANCISCO, CA 94104 USA
SN 1756-932X
EI 1756-9338
J9 ENVIRON POLICY GOV
JI Environ. Policy Gov.
PD MAY
PY 2021
VL 31
IS 3
SI SI
BP 159
EP 174
DI 10.1002/eet.1890
EA MAY 2020
PG 16
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA SU3LI
UT WOS:000536466500001
OA hybrid, Green Accepted
DA 2025-04-22
ER

PT J
AU Ramalho, J
AF Ramalho, Jordana
TI Empowerment in the era of resilience-building: gendered participation in
   community-based (disaster) risk management in the Philippines
SO INTERNATIONAL DEVELOPMENT PLANNING REVIEW
LA English
DT Article
DE Philippines; participation; disaster risk management; urban poverty;
   resilience; gender; empowerment
ID POVERTY; FEMINIZATION; REFLECTIONS; EQUALITY; POLITICS; DANGERS; JUSTICE
AB As the economic, social and environmental impacts of climate change become increasingly apparent in the Philippines, community-based approaches to disaster risk reduction and management (DRRM) have become the new orthodoxy, framed by narratives of participation, empowerment and resilience. Among the urban poor, state-endorsed risk reduction interventions are often facilitated via homeowner associations, with women serving as critical drivers of grass-roots action within these spaces. This article interrogates whether these community-based mobilisations are serving to address or exacerbate gendered inequalities that underpin vulnerabilities to risk. I argue that grass-roots 'resilience-building' and community-based DRRM are decidedly gendered in practice, and reveal complex dynamics whereby participation in these activities is reinforcing gendered inequalities and power differentials while simultaneously facilitating positive personal transformations among female members. The findings of this study reinforce the importance of understanding the socio-spatial manifestations of gender roles, power and agency to the development of inclusive DRRM and 'resilience-building' strategies.
C1 [Ramalho, Jordana] London Sch Econ & Polit Sci, Human Geog & Urban Studies, Houghton St, London WC2A 2AE, England.
C3 University of London; London School Economics & Political Science
RP Ramalho, J (corresponding author), London Sch Econ & Polit Sci, Human Geog & Urban Studies, Houghton St, London WC2A 2AE, England.
EM j.r.ramalho@lse.ac.uk
RI Ramalho, Jordana/AAP-4315-2021
OI Ramalho, Jordana/0000-0003-4614-968X
FU Economic and Social Research Council Postgraduate Award through the
   Department of Geography and Environment, London School of Economics and
   Political Science [ES/J500070/1]
FX The PhD research on which this article is based was generously supported
   by an Economic and Social Research Council Postgraduate Award
   (ES/J500070/1) through the Department of Geography and Environment,
   London School of Economics and Political Science, for a thesis
   provisionally entitled: 'Risk, resilience and responsibilisation:
   gendered participation and empowerment in informal settlements of Metro
   Cebu, the Philippines'. The author would like to thank Sylvia Chant, the
   International Development Planning Review editors and two anonymous
   referees for their helpful comments on earlier drafts, as well as FORGE,
   Regina Yoma, and the many people in the Philippines whose time and
   support made this study possible.
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NR 46
TC 24
Z9 26
U1 3
U2 51
PU LIVERPOOL UNIV PRESS
PI LIVERPOOL
PA 4 CAMBRIDGE ST, LIVERPOOL L69 7ZU, ENGLAND
SN 1474-6743
EI 1478-3401
J9 INT DEV PLANN REV
JI Int. Dev. Plan. Rev.
PD APR
PY 2019
VL 41
IS 2
BP 129
EP 148
DI 10.3828/idpr.2018.25
PG 20
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA JB0FG
UT WOS:000488226300002
DA 2025-04-22
ER

PT J
AU Nik, VM
   Perera, ATD
   Chen, DL
AF Nik, Vahid M.
   Perera, A. T. D.
   Chen, Deliang
TI Towards climate resilient urban energy systems: a review
SO NATIONAL SCIENCE REVIEW
LA English
DT Review
DE climate resilience; climate change adaptation; urban energy systems;
   renewable energy; extreme events; decentralized generation
ID RENEWABLE ENERGY; EXTREME WEATHER; POWER-SYSTEMS; ELECTRICITY DEMAND;
   SWISS VILLAGE; IMPACTS; DESIGN; UNCERTAINTY; SECURITY; PERFORMANCE
AB Climate change and increased urban population are two major concerns for society. Moving towards more sustainable energy solutions in the urban context by integrating renewable energy technologies supports decarbonizing the energy sector and climate change mitigation. A successful transition also needs adequate consideration of climate change including extreme events to ensure the reliable performance of energy systems in the long run. This review provides an overview of and insight into the progress achieved in the energy sector to adapt to climate change, focusing on the climate resilience of urban energy systems. The state-of-the-art methodology to assess impacts of climate change including extreme events and uncertainties on the design and performance of energy systems is described and discussed. Climate resilience is an emerging concept that is increasingly used to represent the durability and stable performance of energy systems against extreme climate events. However, it has not yet been adequately explored and widely used, as its definition has not been clearly articulated and assessment is mostly based on qualitative aspects. This study reveals that a major limitation in the state-of-the-art is the inadequacy of climate change adaptation approaches in designing and preparing urban energy systems to satisfactorily address plausible extreme climate events. Furthermore, the complexity of the climate and energy models and the mismatch between their temporal and spatial resolutions are the major limitations in linking these models. Therefore, few studies have focused on the design and operation of urban energy infrastructure in terms of climate resilience. Considering the occurrence of extreme climate events and increasing demand for implementing climate adaptation strategies, the study highlights the importance of improving energy system models to consider future climate variations including extreme events to identify climate resilient energy transition pathways.
C1 [Nik, Vahid M.] Lund Univ, Div Bldg Phys, Dept Bldg & Environm Technol, S-22363 Lund, Sweden.
   [Nik, Vahid M.] Chalmers Univ Technol, Div Bldg Technol, Dept Architecture & Civil Engn, S-41258 Gothenburg, Sweden.
   [Nik, Vahid M.] Queensland Univ Technol QUT, Inst Future Environm IFE, Brisbane, Qld 4000, Australia.
   [Perera, A. T. D.] Ecole Polytech Fed Lausanne EPFL, Solar Energy & Bldg Phys Lab LESO PB, CH-1015 Lausanne, Switzerland.
   [Perera, A. T. D.] Empa, Urban Energy Syst Lab, CH-86000 Dubendorf, Switzerland.
   [Chen, Deliang] Univ Gothenburg, Dept Earth Sci, Reg Climate Grp, S-40530 Gothenburg, Sweden.
C3 Lund University; Chalmers University of Technology; Queensland
   University of Technology (QUT); Swiss Federal Institutes of Technology
   Domain; Ecole Polytechnique Federale de Lausanne; Swiss Federal
   Institutes of Technology Domain; Swiss Federal Laboratories for
   Materials Science & Technology (EMPA); University of Gothenburg
RP Nik, VM (corresponding author), Lund Univ, Div Bldg Phys, Dept Bldg & Environm Technol, S-22363 Lund, Sweden.; Nik, VM (corresponding author), Chalmers Univ Technol, Div Bldg Technol, Dept Architecture & Civil Engn, S-41258 Gothenburg, Sweden.; Nik, VM (corresponding author), Queensland Univ Technol QUT, Inst Future Environm IFE, Brisbane, Qld 4000, Australia.; Chen, DL (corresponding author), Univ Gothenburg, Dept Earth Sci, Reg Climate Grp, S-40530 Gothenburg, Sweden.
EM vahid.nik@byggtek.lth.se; deliang@gvc.gu.se
RI Chen, Deliang/A-5107-2013; Perera, Amarasinghage/KSL-7665-2024; Perera,
   Amarasinghage Tharindu Dasun/D-7408-2013; Nik, Vahid M./K-2632-2016
OI Perera, Amarasinghage Tharindu Dasun/0000-0002-0461-8874; Nik, Vahid
   M./0000-0002-1497-4813
FU Swedish Research Council for Sustainable Development (Formas)
   [2016-20123, 2018-02858]; European Union [775970]; Formas [2018-02858,
   2016-20123] Funding Source: Formas
FX This work was supported by the Swedish Research Council for Sustainable
   Development (Formas projects 2016-20123 and 2018-02858) and the
   framework of the joint programming initiative `ERA-Net Smart Energy
   Systems' focus initiative on Integrated, Regional Energy Systems, with
   support from the European Union's Horizon 2020 research and innovation
   programme (775970).
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NR 104
TC 76
Z9 79
U1 24
U2 98
PU OXFORD UNIV PRESS
PI OXFORD
PA GREAT CLARENDON ST, OXFORD OX2 6DP, ENGLAND
SN 2095-5138
EI 2053-714X
J9 NATL SCI REV
JI Natl. Sci. Rev.
PD MAR 19
PY 2021
VL 8
IS 3
AR nwaa134
DI 10.1093/nsr/nwaa134
PG 18
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA 5C6JT
UT WOS:000864364600009
PM 34691589
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Holl, A
AF Holl, Adelheid
TI Local employment growth patterns and the Great Recession: The case of
   Spain
SO JOURNAL OF REGIONAL SCIENCE
LA English
DT Article
DE crisis; employment growth; rural; urban; urban hierarchy
ID ECONOMIC-CRISIS; REGIONAL RESILIENCE; POPULATION-GROWTH; URBAN-GROWTH;
   GEOGRAPHIC DIVERSITY; US COUNTIES; CITY GROWTH; EUROPE; CITIES;
   DETERMINANTS
AB The 2008 financial and economic crisis has led to widespread destruction of employment in Spain. Using municipality data, I examine employment growth differences between urban cores, urban hinterlands, and rural areas during the pre-crisis period and the recession period. The data show that patterns of growth and decline have been very uneven across different types of areas. While in the boom years, hinterlands and rural areas experienced higher growth, urban core areas have done better during the recession years. I then test three strands of explanations for local growth differences: (i) the role of the local sectoral composition, (ii) the role of human capital, and (iii) the role of access to urban core areas. Estimations for employment growth in the two periods show that the crisis has altered some of the drivers of local employment growth and that human capital has been a key determinant of local resilience during the Great Recession.
C1 [Holl, Adelheid] Spanish Natl Res Council, Madrid, Spain.
C3 Consejo Superior de Investigaciones Cientificas (CSIC)
RP Holl, A (corresponding author), CSIC, Inst Publ Goods & Policy IPP, C Albasanz 26-28, Madrid 28037, Spain.
EM a.holl@csic.es
RI HOLL, ADELHEID/E-9628-2016
OI HOLL, ADELHEID/0000-0003-4045-9468
FU Fundacion BBVA; Spanish Ministry of Economy, Industry and
   Competitiveness [ECO2016-75941R, CSO2016-79045-C2-1-R]
FX This research has greatly benefitted from support from the Fundacion
   BBVA (I Convocatoria de Ayudas Fundacion BBVA a Investigadores,
   Innovadores y Creadores Culturales). Support from the Spanish Ministry
   of Economy, Industry and Competitiveness (ECO2016-75941R and
   CSO2016-79045-C2-1-R) is also acknowledged. I also thank the managing
   editor Professor Mark Partridge and four anonymous reviewers for helping
   me to improve this work.
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NR 89
TC 31
Z9 33
U1 6
U2 30
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0022-4146
EI 1467-9787
J9 J REGIONAL SCI
JI J. Reg. Sci.
PD SEP
PY 2018
VL 58
IS 4
BP 837
EP 863
DI 10.1111/jors.12392
PG 27
WC Economics; Environmental Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Environmental Sciences & Ecology; Public
   Administration
GA GU0PX
UT WOS:000444954500007
DA 2025-04-22
ER

PT J
AU Krueger, EH
   Constantino, SM
   Centeno, MA
   Elmqvist, T
   Weber, EU
   Levin, SA
AF Krueger, Elisabeth H.
   Constantino, Sara M.
   Centeno, Miguel A.
   Elmqvist, Thomas
   Weber, Elke U.
   Levin, Simon A.
TI Governing sustainable transformations of urban
   social-ecological-technological systems
SO NPJ URBAN SUSTAINABILITY
LA English
DT Review
ID CIRCULAR ECONOMY; CITY-NETWORKS; CLIMATE GOVERNANCE; RENEWABLE ENERGY;
   PUBLIC-HEALTH; WATER; CITIES; TRANSITIONS; RESILIENCE; DYNAMICS
AB Cities have grown rapidly-while they provide opportunities for many, they must also confront pervasive and rising inequality, unsustainable consumption, and growing vulnerability to the impacts of climate change. Recent research emphasizes the need to improve urban resilience and sustainability in the face of climate change, but offers circumscribed approaches that mostly focus on either (1) resource management and service provision, (2) social processes and capacities for transformation, or (3) governance and power relations among actors. Here, we embrace the emerging approach that considers urban areas as interdependent social-ecological-technological systems (SETS) and consider the implications for sustainable service provision; the role of bottom-up efforts in initiating urban transformations; and how governance may, under certain conditions, coordinate these efforts to effect broader change.
C1 [Krueger, Elisabeth H.; Constantino, Sara M.; Levin, Simon A.] Princeton Univ, High Meadows Environm Inst, Princeton, NJ 08544 USA.
   [Krueger, Elisabeth H.; Levin, Simon A.] Princeton Univ, Dept Ecol & Evolutionary Biol, Princeton, NJ 08544 USA.
   [Krueger, Elisabeth H.; Constantino, Sara M.; Weber, Elke U.] Princeton Univ, Andlinger Ctr Energy & Environm, Princeton, NJ 08544 USA.
   [Krueger, Elisabeth H.] Univ Amsterdam, Inst Biodivers & Ecosyst Dynam, NL-1098 XH Amsterdam, Netherlands.
   [Constantino, Sara M.; Centeno, Miguel A.; Weber, Elke U.] Princeton Univ, Sch Publ & Int Affairs, Princeton, NJ 08544 USA.
   [Constantino, Sara M.] Northeastern Univ, Sch Publ Policy & Urban Affairs, Boston, MA 02115 USA.
   [Constantino, Sara M.] Northeastern Univ, Dept Psychol, Boston, MA 02115 USA.
   [Centeno, Miguel A.] Princeton Univ, Dept Sociol, Princeton, NJ 08544 USA.
   [Elmqvist, Thomas] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [Weber, Elke U.] Princeton Univ, Dept Psychol, Princeton, NJ 08544 USA.
C3 Princeton University; Princeton University; Princeton University;
   University of Amsterdam; Princeton University; Northeastern University;
   Northeastern University; Princeton University; Stockholm University;
   Princeton University
RP Krueger, EH; Constantino, SM (corresponding author), Princeton Univ, High Meadows Environm Inst, Princeton, NJ 08544 USA.; Krueger, EH (corresponding author), Princeton Univ, Dept Ecol & Evolutionary Biol, Princeton, NJ 08544 USA.; Krueger, EH; Constantino, SM (corresponding author), Princeton Univ, Andlinger Ctr Energy & Environm, Princeton, NJ 08544 USA.; Krueger, EH (corresponding author), Univ Amsterdam, Inst Biodivers & Ecosyst Dynam, NL-1098 XH Amsterdam, Netherlands.; Constantino, SM (corresponding author), Princeton Univ, Sch Publ & Int Affairs, Princeton, NJ 08544 USA.; Constantino, SM (corresponding author), Northeastern Univ, Sch Publ Policy & Urban Affairs, Boston, MA 02115 USA.; Constantino, SM (corresponding author), Northeastern Univ, Dept Psychol, Boston, MA 02115 USA.
EM e.h.krueger@uva.nl; sara.constantino@gmail.com
RI Elmqvist, Thomas/AAY-6344-2021; Krueger, Elisabeth/AEW-8947-2022; Levin,
   Simon/J-1218-2014
OI Krueger, Elisabeth/0000-0003-0630-3363; Weber, Elke/0000-0002-1678-3631;
   Levin, Simon/0000-0002-8216-5639
FU Princeton University's Dean for Research; Andlinger Center for Energy
   and the Environment; Office of the Provost; National Science Foundation
   [2049796]; Center for Policy Research on Energy and the Environment
FX The authors thank Jessica Seddon and Nona Schulte-Roemer for their
   useful comments on an earlier version of the manuscript, and Emily
   Reinhold for assistance with the literature review. Funding in support
   of this research was provided by Princeton University's Dean for
   Research, High Meadows Environmental Institute, Andlinger Center for
   Energy and the Environment, the Office of the Provost, and the Center
   for Policy Research on Energy and the Environment. SMC would like to
   acknowledge funding from the National Science Foundation, SES-DRMS
   #2049796.
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NR 175
TC 36
Z9 38
U1 20
U2 51
PU SPRINGERNATURE
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON, N1 9XW, ENGLAND
EI 2661-8001
J9 NPJ URBAN SUSTAIN
JI npj Urban Sustain.
PD MAY 3
PY 2022
VL 2
IS 1
AR 10
DI 10.1038/s42949-022-00053-1
PG 12
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I0SQ1
UT WOS:000999965000001
OA gold
DA 2025-04-22
ER

PT J
AU Feng, SL
   Gao, BR
   Tan, Y
   Xiao, KY
   Zhai, YJ
AF Feng, Shilan
   Gao, Bingrui
   Tan, Ya
   Xiao, Kaiyuan
   Zhai, Yingjia
TI Resource-based transformation and urban resilience promotion: Evidence
   from firms' carbon emissions reductions in China
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Resource-based city transformation; Carbon emission; Urban resilience;
   Difference-in-Difference
ID CORPORATE SOCIAL-RESPONSIBILITY; ENVIRONMENTAL-REGULATION;
   EMPIRICAL-EVIDENCE; CITIES; CITY; PRODUCTIVITY; ECONOMY; POLICY
AB The current research investigating the effectiveness of policy-driven transformation in resource-based cities has focused mainly on city-level impacts and has overlooked firm-level evidence. This paper filled this gap by focusing on its impact on firm-level carbon emissions. Drawing on the quasi-natural experiment of China's reform of resource-based city transformation, we utilize a difference-in-differences (DID) model based on nationwide firm-level tax survey data from 2009 to 2016. The findings indicate a noteworthy reduction in firms' carbon emissions due to the reform, particularly in growing-type resource-based cities and within the manufacturing industry. The empirical results provide evidence that the implementation of the "Plan" has effectively enhanced the level of urban resilience. Moreover, the findings demonstrate stronger effects on large firms, publicly owned firms, and firms in municipal districts.
C1 [Feng, Shilan; Xiao, Kaiyuan] Peking Univ, Sch Marxism, Beijing, Peoples R China.
   [Gao, Bingrui] Beijing Univ Technol, Sch Econ & Management, Beijing, Peoples R China.
   [Tan, Ya] Univ Int Business & Econ, Sch Int Trade & Econ, Beijing, Peoples R China.
   [Zhai, Yingjia] Cent Univ Finance & Econ, Sch Econ, Beijing, Peoples R China.
C3 Peking University; Beijing University of Technology; University of
   International Business & Economics; Central University of Finance &
   Economics
RP Xiao, KY (corresponding author), Peking Univ, Sch Marxism, Beijing, Peoples R China.; Tan, Y (corresponding author), Univ Int Business & Econ, Sch Int Trade & Econ, Beijing, Peoples R China.
EM tanya@pku.edu.cn; xiaoky1999@pku.edu.cn
RI Xiao, Kaiyuan/JFS-9347-2023; Gao, Bingrui/JQX-0775-2023; Tan,
   Ya/AAW-4664-2020
OI Tan, Ya/0000-0002-4882-723X
FU National Natural Science Founda- tion of China [72203039]; National
   Social Science Fund of China [20CJL030]
FX This research is supported by the National Natural Science Founda- tion
   of China (Grant No. 72203039) and the National Social Science Fund of
   China (No. 20CJL030) .
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TC 3
Z9 3
U1 37
U2 57
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 25
PY 2024
VL 468
AR 143118
DI 10.1016/j.jclepro.2024.143118
EA JUL 2024
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 ZD7Y8
UT WOS:001273434700001
DA 2025-04-22
ER

PT J
AU Mattos, TS
   Oliveira, PTS
   Bruno, LD
   de Oliveira, ND
   Vasconcelos, JG
   Lucas, MC
AF Mattos, Tiago Souza
   Oliveira, Paulo Tarso S.
   Bruno, Leonardo de Souza
   de Oliveira, Nilo Dinis
   Vasconcelos, Jose G.
   Lucas, Murilo Cesar
TI Improving Urban Flood Resilience under Climate Change Scenarios in a
   Tropical Watershed Using Low-Impact Development Practices
SO JOURNAL OF HYDROLOGIC ENGINEERING
LA English
DT Article
DE Infiltration trench; Permeable pavements; PCSWMM; Rainwater harvesting;
   Rainfall-runoff modeling; Sustainable drainage systems; Climate change
ID LID PRACTICES; RAINFALL; URBANIZATION; MANAGEMENT; RUNOFF; CATCHMENT;
   MODEL; PRECIPITATION; TEMPERATURE; SIMULATION
AB This paper shows how low-impact development (LID) practices affect the resilience of stormwater drainage system under climate change scenarios. A rainfall-runoff model was calibrated and evaluated a in a tropical watershed located in Midwestern Brazil. An ensemble of 17 general circulation model outputs forced by Representative Concentration Pathways (RCP 4.5 and RCP 8.5) was used to create future climate change scenarios up to 2095. The LID efficiency was evaluated based on the runoff peak reduction and the resilience of stormwater drainage by means of a resilience index. Overall, LID combinations showed a reduction in runoff peak higher than 20%, and the best LID combination had a reduction of as much as 46%. This represents a significant improvement in the resilience against flooding in the study area. Therefore, the findings can contribute to the increase in widespread adoption of LID and can encourage decisionmakers to provide such practices for urban flood management.
C1 [Mattos, Tiago Souza; Oliveira, Paulo Tarso S.; Bruno, Leonardo de Souza; de Oliveira, Nilo Dinis] Univ Fed Mato Grosso do Sul, Fac Engn Architecture & Urbanism & Geog, BR-79070900 Campo Grande, MS, Brazil.
   [Vasconcelos, Jose G.] Auburn Univ, Dept Civil Engn, Auburn, AL 36849 USA.
   [Lucas, Murilo Cesar] Fed Univ Technol, Dept Civil Engn, BR-85502970 Curitiba, Parana, Brazil.
C3 Universidade Federal de Mato Grosso do Sul; Auburn University System;
   Auburn University; Universidade Tecnologica Federal do Parana
RP Oliveira, PTS (corresponding author), Univ Fed Mato Grosso do Sul, Fac Engn Architecture & Urbanism & Geog, BR-79070900 Campo Grande, MS, Brazil.
EM engtsm@gmail.com; paulotarsoms@gmail.com; leonardo.bruno@ufms.br;
   nilodinis@hotmail.com; jgv@auburn.edu; muriloclucas@gmail.com
RI Vasconcelos, Jose/D-5391-2016; Lucas, Murilo/C-7109-2012; Mattos,
   Tiago/LCF-3786-2024; Oliveira, Paulo Tarso/A-4187-2011
OI Dinis de Oliveira, Nilo/0000-0002-9406-3373; Vasconcelos,
   Jose/0000-0003-0438-4286; Lucas, Murilo/0000-0002-1732-0241; Oliveira,
   Paulo Tarso/0000-0003-2806-0083; Souza Mattos, Tiago/0000-0001-6028-738X
FU Ministry of Science, Technology, Innovation and Communication (MCTIC);
   National Council for Scientific and Technological Development (CNPq)
   [422947/2018-0, 441289/2017-7, 306830/2017-5]; CoordenacAo de
   Aperfeicoamento de Pessoal de Nivel Superior-Brasil (CAPES) [001];
   Computational Hydraulics International (CHI); CoordenacAo de
   Aperfeicoamento de Pessoal de Nivel Superior-Brasil (CAPES) (Capes
   PrInt)
FX This study was supported by grants from the Ministry of Science,
   Technology, Innovation and Communication (MCTIC) and the National
   Council for Scientific and Technological Development (CNPq) (Grants
   422947/2018-0, 441289/2017-7, and 306830/2017-5), and by the CoordenacAo
   de Aperfeicoamento de Pessoal de Nivel Superior-Brasil (CAPES) (Finance
   code 001 and Capes PrInt). The authors acknowledge Computational
   Hydraulics International (CHI) for providing a university grant to use
   PCSWMM for this project.
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PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1084-0699
EI 1943-5584
J9 J HYDROL ENG
JI J. Hydrol. Eng.
PD DEC 1
PY 2021
VL 26
IS 12
AR 05021031
DI 10.1061/(ASCE)HE.1943-5584.0002143
PG 11
WC Engineering, Civil; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA WI1JK
UT WOS:000708122100002
DA 2025-04-22
ER

PT J
AU Vilca-Campana, K
   Carrasco-Valencia, L
   Iruri-Ramos, C
   Cárdenas-Pillco, B
   Escudero, A
   Chanove-Manrique, A
AF Vilca-Campana, Karla
   Carrasco-Valencia, Lorenzo
   Iruri-Ramos, Carla
   Cardenas-Pillco, Berly
   Escudero, Adrian
   Chanove-Manrique, Andrea
TI Improving Urban Flood Resilience: Urban Flood Risk Mitigation Assessment
   Using a Geospatial Model in the Urban Section of a River Corridor
SO WATER
LA English
DT Article
DE ecosystem services; urban river; InVEST model; blue-green
   infrastructure; urban flood resiliency; urban flood risk; river runoff
ID ECOSYSTEM SERVICES; VULNERABILITY; AREQUIPA; HAZARD
AB Climate change and land use changes in urban landscapes exacerbate the runoff generation which produces economic losses and socio-environmental impacts. Urban rivers serve as blue-green infrastructure (BGI) offering ecosystem services (ESs), including runoff control and mitigation that helps in climate change adaptation, especially in arid regions where flash floods are devasting and climate models predict an increase in frequency and intensity. This study uses the InVEST urban flood risk mitigation (UFRM) model to estimate the runoff generated during precipitation events, applied to the urban section of the Chili River in Arequipa, an arid region south of Peru. The model requires information on land use/land cover, rainfall depth, and hydrological soil groups. Results from 1984 and 2022 demonstrate there is a significant reduction in runoff retention, specially in the northern section, where areas decreased their runoff retention capacity from 70-80% to 20-30%. The results highlight the river's critical role in mitigating flash flood risks in a dessert region. The methodology used can help estimate run-off mitigation provided by urban rivers as BGI and supports the conservation and restoration of urban rivers as ecological corridors, enhancing urban resilience.
C1 [Vilca-Campana, Karla; Carrasco-Valencia, Lorenzo; Iruri-Ramos, Carla; Cardenas-Pillco, Berly; Chanove-Manrique, Andrea] Univ Catolica Santa Maria, Fac Arquitectura Ingn Civil & Ambiente, Urb San Jose s-n, Arequipa 04013, Peru.
   [Escudero, Adrian] Univ Rey Juan Carlos, Inst Invest Cambio Global, Madrid 28933, Spain.
C3 Universidad Catolica de Santa Maria; Universidad Rey Juan Carlos
RP Chanove-Manrique, A (corresponding author), Univ Catolica Santa Maria, Fac Arquitectura Ingn Civil & Ambiente, Urb San Jose s-n, Arequipa 04013, Peru.
EM 76354812@ucsm.edu.pe; 71629417@ucsm.edu.pe; ciruri@ucsm.edu.pe;
   bcardenas@ucsm.edu.pe; achanove@ucsm.edu.pe
FU Universidad Catolica de Santa Maria (Arequipa, Peru) [27574-R-2020]
FX This research and the APC was funded by the Universidad Catolica de
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NR 72
TC 0
Z9 0
U1 0
U2 0
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD APR 2
PY 2025
VL 17
IS 7
AR 1047
DI 10.3390/w17071047
PG 18
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA 1FD6O
UT WOS:001463559800001
DA 2025-04-22
ER

PT J
AU Ghaffarian, S
   Kerle, N
   Filatova, T
AF Ghaffarian, Saman
   Kerle, Norman
   Filatova, Tatiana
TI Remote Sensing-Based Proxies for Urban Disaster Risk Management and
   Resilience: A Review
SO REMOTE SENSING
LA English
DT Review
DE urban DRM; remote sensing; damage; recovery; vulnerability; resilience;
   economic; social; proxy; indirect measurement
ID BUILDING DAMAGE DETECTION; VULNERABILITY ASSESSMENT; COMMUNITY
   RESILIENCE; FLOOD VULNERABILITY; SEISMIC VULNERABILITY; WENCHUAN
   EARTHQUAKE; LAND-USE; ENVIRONMENTAL VULNERABILITY; MONITORING RECOVERY;
   HURRICANE KATRINA
AB Rapid increase in population and growing concentration of capital in urban areas has escalated both the severity and longer-term impact of natural disasters. As a result, Disaster Risk Management (DRM) and reduction have been gaining increasing importance for urban areas. Remote sensing plays a key role in providing information for urban DRM analysis due to its agile data acquisition, synoptic perspective, growing range of data types, and instrument sophistication, as well as low cost. As a consequence numerous methods have been developed to extract information for various phases of DRM analysis. However, given the diverse information needs, only few of the parameters of interest are extracted directly, while the majority have to be elicited indirectly using proxies. This paper provides a comprehensive review of the proxies developed for two risk elements typically associated with pre-disaster situations (vulnerability and resilience), and two post-disaster elements (damage and recovery), while focusing on urban DRM. The proxies were reviewed in the context of four main environments and their corresponding sub-categories: built-up (buildings, transport, and others), economic (macro, regional and urban economics, and logistics), social (services and infrastructures, and socio-economic status), and natural. All environments and the corresponding proxies are discussed and analyzed in terms of their reliability and sufficiency in comprehensively addressing the selected DRM assessments. We highlight strength and identify gaps and limitations in current proxies, including inconsistencies in terminology for indirect measurements. We present a systematic overview for each group of the reviewed proxies that could simplify cross-fertilization across different DRM domains and may assist the further development of methods. While systemizing examples from the wider remote sensing domain and insights from social and economic sciences, we suggest a direction for developing new proxies, also potentially suitable for capturing functional recovery.
C1 [Ghaffarian, Saman; Kerle, Norman] Univ Twente, Fac Geoinformat Sci & Earth Observat ITC, NL-7500 AE Enschede, Netherlands.
   [Filatova, Tatiana] Univ Twente, Ctr Studies Technol & Sustainable Dev, NL-7500 AE Enschede, Netherlands.
C3 University of Twente; University of Twente
RP Ghaffarian, S (corresponding author), Univ Twente, Fac Geoinformat Sci & Earth Observat ITC, NL-7500 AE Enschede, Netherlands.
EM s.ghaffarian@utwente.nl; n.kerle@utwente.nl; t.filatova@utwente.nl
RI Kerle, Norman/A-5508-2010; Filatova, Tatiana/K-8233-2016
OI Ghaffarian, Saman/0000-0001-9882-4603; Kerle,
   Norman/0000-0002-4513-4681; Filatova, Tatiana/0000-0002-3546-6930
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NR 170
TC 60
Z9 65
U1 9
U2 113
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2072-4292
J9 REMOTE SENS-BASEL
JI Remote Sens.
PD NOV
PY 2018
VL 10
IS 11
AR 1760
DI 10.3390/rs10111760
PG 30
WC Environmental Sciences; Geosciences, Multidisciplinary; Remote Sensing;
   Imaging Science & Photographic Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geology; Remote Sensing; Imaging
   Science & Photographic Technology
GA HC3WO
UT WOS:000451733800091
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Zhou, Q
   Qi, ZP
AF Zhou, Qian
   Qi, Zhipeng
TI Urban economic resilience and human capital: An exploration of
   heterogeneity and mechanism in the context of spatial population
   mobility
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban economic resilience (UER); Human capital; Baidu migration big
   data; Spatial two-stage least squares
ID HUMAN-RESOURCE MANAGEMENT; KNOWLEDGE; GROWTH; CHINA; INFRASTRUCTURE
AB Human capital is a critical factor that affects urban economic resilience (UER). We utilize Baidu migration big data to construct a population mobility matrix and provide an analysis of the mechanism of UER from four different perspectives: innovation, industrial structure advancement, industrial structure rationalization, and economic development. Our findings suggest that human capital contributes to approximately 7 % improvement in UER through innovation and economic development, while the role of industrial structure advancement and rationalization is not significant. To address potential endogeneity, we employ an instrumental variable (IV) using spatial two-stage least squares. Additionally, we conduct a heterogeneity analysis based on the city tier, human capital level, and UER size. We replenish the study on UER and offer feasible solutions from the perspective of human capital to enhance UER.
C1 [Zhou, Qian] Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Hubei, Peoples R China.
   [Qi, Zhipeng] Zhongnan Univ Econ & Law, Sch Finance, 182 Nanhu Ave, Wuhan 430073, Hubei, Peoples R China.
C3 Zhongnan University of Economics & Law; Zhongnan University of Economics
   & Law
RP Zhou, Q (corresponding author), Zhongnan Univ Econ & Law, Econ Sch, Nanhu Ave 182, Wuhan 430073, Hubei, Peoples R China.
EM Z0005072@zuel.edu.cn
RI Qi, Zhipeng/IWU-3414-2023
OI Zhou, Qian/0000-0002-2319-1095; QI, Zhipeng/0000-0003-4081-8360
FU Major projects of China Social Science Foundation [18VSJ036, 21ZDA115];
   National Social Science Founda-tion of China [18CGJ002]
FX This paper is supported by the Major projects of China Social Science
   Foundation (18VSJ036, 21ZDA115) , National Social Science Founda-tion of
   China (18CGJ002) .
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NR 52
TC 29
Z9 29
U1 35
U2 114
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD DEC
PY 2023
VL 99
AR 104983
DI 10.1016/j.scs.2023.104983
EA OCT 2023
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA X3FN0
UT WOS:001097345000001
DA 2025-04-22
ER

PT J
AU Wu, ZX
   Chen, YJ
   Zheng, XZ
   Huang, S
   Duan, CF
   Wang, P
AF Wu, Zhixia
   Chen, Yijun
   Zheng, Xiazhong
   Huang, Shan
   Duan, Chenfei
   Wang, Ping
TI A novel framework for evidence-based assessment of flood resilience
   integrating multi-source evidence: A case study of the Yangtze River
   Economic Belt, China
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Multi-source evidence; Flood resilience; Evidence-based assessment;
   Yangtze River Economic Belt; Flood resilience indicator
ID COMMUNITY RESILIENCE; RISK
AB Floods are extremely destructive to the society, economy and nature, and severely restrict sustainable urban development. There is an urgent need to assess the level of flood resilience, analyze its evolutionary characteristics and improve the flood resilience of the region. However, few previous studies have integrated multi- source evidence into a framework for assessing flood resilience over a longer time span. This study integrated multi-source evidence to analyze the Yangtze River Economic Belt, including literature-based evidence, policy texts and social media data. Subsequently, the Kruskal algorithm and Jaccard coefficient were used to construct collinear networks and identify the clustering dimensions of flood resilience. After evidence judgment, a flood resilience indicator system was constructed. The flood resilience index was calculated using the improved Critic method. The dynamic evolution characteristics and key influencing factors were illustrated by the Kernel density and Grey correlation methods, respectively. The principal contribution is to integrate multi-source evidence to assess flood resilience, with a newly constructed indicator system that systematically considers local public demand, policy priorities and common indicators from previous literature. The results show that: the flood resilience index of the Yangtze River Economic Belt is in the range of [0.16, 0.75] from 2000 to 2022, with higher values in the downstream compared to those in the midstream and upstream. The social dimension dominating the overall flood resilience. The kernel density curve of the YREB is characterized by a right trailing. The interregional differences tend to widen and have a polarization effect. The special funds for water conservancy finances and the length of flood prevention levees are key factors influencing the level of flood resilience. Finally, strategies for enhancing flood resilience were proposed. This study provides a feasible framework for constructing an indicator system and assessing flood resilience by integrating multi-source data. It is important for flood risk management and helps to the development of urban flood prevention and resilience strategies.
C1 [Wu, Zhixia; Chen, Yijun] Sichuan Univ Sci & Engn, Coll Management, Zigong 643000, Peoples R China.
   [Wu, Zhixia; Zheng, Xiazhong; Duan, Chenfei] China Three Gorges Univ, Coll Hydraul & Environm Engn, Yichang 443002, Peoples R China.
   [Wu, Zhixia] China Three Gorges Univ, Coll Econ & Management, Yichang 443002, Peoples R China.
   [Wu, Zhixia; Zheng, Xiazhong; Duan, Chenfei] China Three Gorges Univ, Hubei Key Lab Construct & Management Hydropower En, Yichang 443002, Peoples R China.
   [Huang, Shan] Sichuan Agr Univ, Coll Architecture & Urban Rural Planning, Dujiangyan 611830, Peoples R China.
   [Huang, Shan] Municipal Construct Engn Ctr Cuiping Dist, Yibin 644000, Peoples R China.
   [Wang, Ping] Sichuan Univ Sci & Engn, Coll Mech Engn, Zigong 643000, Peoples R China.
C3 Sichuan University of Science & Engineering; China Three Gorges
   University; China Three Gorges University; China Three Gorges
   University; Sichuan Agricultural University; Sichuan University of
   Science & Engineering
RP Zheng, XZ (corresponding author), China Three Gorges Univ, Coll Hydraul & Environm Engn, Yichang 443002, Peoples R China.; Zheng, XZ (corresponding author), China Three Gorges Univ, Hubei Key Lab Construct & Management Hydropower En, Yichang 443002, Peoples R China.
EM zhengxzctgu@126.com
RI Zhang, Haiyan/LSM-0328-2024; Wu, Zhixia/LEL-8312-2024; duan, chen
   fei/IAP-6887-2023
OI duan, chen fei/0000-0003-2620-7993
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NR 68
TC 2
Z9 2
U1 43
U2 43
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 112705
DI 10.1016/j.ecolind.2024.112705
EA OCT 2024
PG 15
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA I8V5C
UT WOS:001332976900001
OA gold
DA 2025-04-22
ER

PT J
AU Kim, H
   Marcouiller, DW
   Woosnam, KM
AF Kim, Hyun
   Marcouiller, David W.
   Woosnam, Kyle M.
TI Rescaling social dynamics in climate change: The implications of
   cumulative exposure, climate justice, and community resilience
SO GEOFORUM
LA English
DT Article
DE Climate adaptation planning; Climate change; Differential vulnerability;
   Temporal effect; Urban and rural spatial classification; Spatial
   clustering of risk
ID DISASTER RISK REDUCTION; FLOOD INSURANCE PROGRAM; ADAPTIVE CAPACITY;
   CHANGE ADAPTATION; CHANGE MITIGATION; VULNERABILITY; POLITICS;
   INFRASTRUCTURE; ANTHROPOCENE; PERSPECTIVES
AB In this study, we explore cumulative exposure, climate justice, and flood risk with specific reference to community resilience, vulnerability, and social justice characteristics at the county-level within the U.S. Mississippi River basin from 1990 to 2009. Using a basic conceptual model of spatial resilience to climate risks, temporal lag effect of community capacity, urban and rural spatial classification, integrative cumulative exposure, and spatial clustering of risk, we examine spatial climate risk outcomes and the role of community resilience in reducing such risks. Our approach accounted for local social, economic, environmental, regulatory policy, and planning mitigation contexts. Results suggest that community social and ecological characteristics were influenced by flood losses and that social capital and climate justice characteristics combined with local proactive planning and policy measures lead to lower disaster losses and enhanced community resilience.
C1 [Kim, Hyun] Univ Notre Dame, 1400 East Angela Blvd, South Bend, IN 46617 USA.
   [Marcouiller, David W.] Univ Wisconsin, 925 Bascom Mall,110 Mus Hall, Madison, WI 53706 USA.
   [Woosnam, Kyle M.] Univ Georgia, Warnell Sch Forestry & Nat Resources, 180 East Green St, Athens, GA 30602 USA.
C3 University of Notre Dame; University of Wisconsin System; University of
   Wisconsin Madison; University System of Georgia; University of Georgia
RP Kim, H (corresponding author), Univ Notre Dame, 1400 East Angela Blvd, South Bend, IN 46617 USA.
EM hkim9129@gmail.com; dwmarcou@wisc.edu; woosnam@uga.edu
OI Kim, Hyun/0000-0003-0681-5828; Marcouiller, David/0000-0002-8785-6121
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NR 104
TC 39
Z9 43
U1 9
U2 92
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 NOV
PY 2018
VL 96
BP 129
EP 140
DI 10.1016/j.geoforum.2018.08.006
PG 12
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA GZ1LY
UT WOS:000449130800014
DA 2025-04-22
ER

PT J
AU Chen, L
   Guo, CX
   Yu, Y
   Zhou, XH
   Fu, YJ
   Wang, S
   Ma, YK
   Shen, ZY
AF Chen, Lei
   Guo, Chenxi
   Yu, Yu
   Zhou, Xuehui
   Fu, Yijia
   Wang, Shuai
   Ma, Yukun
   Shen, Zhenyao
TI Optimization of green infrastructures for sustaining urban stormwater
   quality and quantity: An integrated resilience evaluation
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Urban resilience; Evaluation method; Green infrastructures; Stormwater
   management; SWMM; Sponge city
ID FLOOD RISK; SYSTEM
AB Coupling natural green infrastructure with artificial gray infrastructure is considered a key solution for mitigating the risk of waterlogging and water quality problems caused by rapid urbanization. However, further research is needed to evaluate and optimize the utility of gray-green system considering multiple key factors. Here, the effects of gray-green system on both the water quality and quantity were investigated based on the Storm Water Management Model-InfoWorks ICM (SWMM-ICM) and bivariate copula functions. A resilience index that integrates reliability, bearing capacity, recovery speed, and recovery capacity was then proposed. Taking a typical catchment area in Beijing as an example, the results showed that the resilience index proposed is effective for evaluating the stormwater management of gray-green system. The integration of gray-green infrastructures improved the resilience of urban stormwater management, particularly in terms of controlling the water quality (improved by 1.0-4.0 %) rather than the water quantity (only 0.04-0.3 %). Direct confluence and average distribution strategies of gray-green system were more effective for water quality management, as resilience ranged from 0.7478 to 0.7605. To mitigate the ever-increasing water risks under climate change, the direct confluence, and average or downstream renovation strategies are hot spots for system renovation in the future. These results contribute to a better understanding of gray-green system and provide the foundation for sustainable water quality and quantity management in global cities.
C1 [Chen, Lei; Guo, Chenxi; Yu, Yu; Zhou, Xuehui; Fu, Yijia; Wang, Shuai; Ma, Yukun; Shen, Zhenyao] Beijing Normal Univ, Sch Environm, State Key Lab Water Environm Simulat, Beijing 100875, Peoples R China.
C3 Beijing Normal University
RP Chen, L; Shen, ZY (corresponding author), Beijing Normal Univ, Sch Environm, State Key Lab Water Environm Simulat, Beijing 100875, Peoples R China.
EM chenlei1982bnu@bnu.edu.cn; zyshen@bnu.edu.cn
RI Chen, Lei/AAD-3766-2019
FU Innovative Research Group of the National Natural Science Foundation of
   China [52221003]; National Natural Science Foundation of China
   [U2340219]; Fundamental Research Funds for the Central Universities
FX This research was funded by the Fund for the Innovative Research Group
   of the National Natural Science Foundation of China (No. 52221003) , the
   Joint Funds of the National Natural Science Foundation of China
   (U2340219) , and the Fundamental Research Funds for the Central
   Universities. The data used in this study are available from the
   publications and local administrative agencies cited therein.
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NR 76
TC 3
Z9 3
U1 75
U2 92
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0022-1694
EI 1879-2707
J9 J HYDROL
JI J. Hydrol.
PD AUG
PY 2024
VL 640
AR 131682
DI 10.1016/j.jhydrol.2024.131682
EA JUL 2024
PG 11
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA A1A9R
UT WOS:001279943900001
DA 2025-04-22
ER

PT J
AU Barthel, S
   Parker, J
   Ernstson, H
AF Barthel, Stephan
   Parker, John
   Ernstson, Henrik
TI Food and Green Space in Cities: A Resilience Lens on Gardens and Urban
   Environmental Movements
SO URBAN STUDIES
LA English
DT Article
ID ECOSYSTEM SERVICES; SOCIAL-MOVEMENTS; STOCKHOLM; SCALE; AREAS
AB This article examines the role played by urban gardens during historical collapses in urban food supply lines and identifies the social processes required to protect two critical elements of urban food production during times of crisisopen green spaces and the collective memory of how to grow food. Advanced communication and transport technologies allow food sequestration from the farthest reaches of the planet, but have markedly increasing urban dependence on global food systems over the past 50 years. Simultaneously, such advances have eroded collective memory of food production, while suitable spaces for urban gardening have been lost. These factors combine to heighten the potential for food shortages whenas occurred in the 20th centurymajor economic, political or environmental crises sever supply lines to urban areas. This paper considers how to govern urban areas sustainably in order to ensure food security in times of crisis by: evincing the effectiveness of urban gardening during crises; showing how allotment gardens serve as conduits for transmitting collective social-ecological memories of food production; and, discussing roles and strategies of urban environmental movements for protecting urban green space. Urban gardening and urban social movements can build local ecological and social response capacity against major collapses in urban food supplies. Hence, they should be incorporated as central elements of sustainable urban development. Urban governance for resilience should be historically informed about major food crises and allow for redundant food production solutions as a response to uncertain futures.
C1 [Barthel, Stephan; Ernstson, Henrik] Stockholm Univ, Stockholm Resilience Ctr, SE-10691 Stockholm, Sweden.
   [Barthel, Stephan] Stockholm Univ, Dept Hist, SE-10691 Stockholm, Sweden.
   [Parker, John] Univ Calif Santa Barbara, Natl Ctr Ecol Anal & Synth, Santa Barbara, CA 93106 USA.
   [Ernstson, Henrik] Univ Cape Town, African Ctr Cities, ZA-7701 Cape Town, South Africa.
C3 Stockholm University; Stockholm University; National Center for
   Ecological Analysis & Synthesis; University of California System;
   University of California Santa Barbara; University of Cape Town
RP Barthel, S (corresponding author), Stockholm Univ, Stockholm Resilience Ctr, SE-10691 Stockholm, Sweden.
EM stephan.barthel@stockholmresilience.su.se; parker@nceas.ucsb.edu;
   henrik.ernstson@stockholmresilience.su.se
RI Barthel, Stephan/AAE-8367-2019; Ernstson, Henrik/LMP-6473-2024
FU Swedish research council Formas
FX The authors acknowledge the Swedish research council Formas for
   providing funding for this research, including the following grants for
   SUPER, "Sustainable Urban Planning for Ecosystem Services and
   Resilience" and for "Kunskap for byggande av urban resiliens" and for
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U1 3
U2 257
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 0042-0980
EI 1360-063X
J9 URBAN STUD
JI Urban Stud.
PD MAY
PY 2015
VL 52
IS 7
SI SI
BP 1321
EP 1338
DI 10.1177/0042098012472744
PG 18
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA CE5EL
UT WOS:000351853200007
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Wang, MM
   Li, M
   Sweetapple, C
AF Wang, Mingming
   Li, Min
   Sweetapple, Chris
TI A new framework for distributed storage tanks placement based on a
   resilience characteristic metric and reduced modelling
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban flooding; Resilience; Placement; Distributed storage tanks; Urban
   drainage system
ID LOW IMPACT DEVELOPMENT; OPTIMAL LOCATION; CLIMATE-CHANGE; URBAN AREAS
AB In recent years, urban flooding has been a frequent occurrence, and seriously threatens the safety of lives and properties. Rational placement of distributed storage tanks is one of the effective ways to solve urban flooding, addressing stormwater management and rainwater reuse. However, existing optimization methods (such as genetic algorithm (GA) and other evolutionary algorithms) for determining the placement of storage tanks typically have a high computational burden; as such, they can be very time-consuming, and are not conducive to energy saving, carbon reduction and work efficiency improvements. In this study, a new approach and framework based on a resilience characteristic metric (RCM) and reduced modelling requirements are proposed. In this framework, the resilience characteristic metric, which is based on the linear superposition principle of system resilience metadata, is introduced, and a small number of simulations based on a coupling of MATLAB with SWMM are used to obtain the final placement scheme of storage tanks. The framework is demonstrated and verified with two cases in Beijing and Chizhou, China, and compared with a GA. The GA requires 2000 simulations for two cases (considering the placement of 2 and 6 tanks respectively), while the proposed method needs 44 simulations for the Beijing case and 89 simulations for the Chizhou case. The results show that the proposed approach is feasible and effective, and cannot only obtain a relative better placement scheme, but also considerably reduce computational time and energy consumption. It significantly improves the efficiency of determining the placement scheme of storage tanks. This method provides a new approach for the determining better storage tank placement schemes, and is useful for informing device placement in sustainable drainage systems.
C1 [Wang, Mingming; Li, Min] Anhui Univ Technol, Sch Civil Engn & Architecture, Maanshan 243032, Peoples R China.
   [Wang, Mingming; Li, Min] Minist Educ, Engn Res Ctr Biomembrane Water Purificat & Utiliza, Maanshan 243032, Anhui, Peoples R China.
   [Sweetapple, Chris] Univ Exeter, Coll Engn Math & Phys Sci, Ctr Water Syst, North Pk Rd, Exeter EX4 4QF, England.
C3 Anhui University of Technology; University of Exeter
RP Wang, MM (corresponding author), Anhui Univ Technol, Sch Civil Engn & Architecture, Maanshan 243032, Peoples R China.
EM wangmm@ahut.edu.cn
RI Sweetapple, Chris/GQQ-1426-2022; Wang, Mingming/AAM-7827-2021
OI Wang, Mingming/0000-0001-8849-3521
FU Key Project of Support Program for Outstanding Young Teachers at
   Universities in Anhui Province, China [gxyqZD2019022]
FX This work was supported by the Key Project of Support Program for
   Outstanding Young Teachers at Universities in Anhui Province, China
   [grant number gxyqZD2019022] awarded to the first author.
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NR 25
TC 4
Z9 4
U1 6
U2 30
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 SEP 15
PY 2023
VL 342
AR 118098
DI 10.1016/j.jenvman.2023.118098
EA MAY 2023
PG 7
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA I3IK1
UT WOS:001001747100001
PM 37209650
DA 2025-04-22
ER

PT J
AU Gu, Q
   Huang, CG
   Qiu, ZJ
   Wang, T
   Li, QW
   Zhai, CH
AF Gu, Quan
   Huang, Caigui
   Qiu, Zhijian
   Wang, Tao
   Li, Quanwang
   Zhai, Changhai
TI A Novel Method for Seismic Resilience Assessment of Urban Hospital
   Network Systems Based on a Real-Time Simulation Model
SO INTERNATIONAL JOURNAL OF STRUCTURAL STABILITY AND DYNAMICS
LA English
DT Article
DE Seismic resilience; resilience assessment; urban hospital network
   system; medical transportation networks; real-time simulation model;
   refined nonlinear finite element analysis
ID FRAGILITY; RISK; FRAMEWORK; BRIDGES
AB Earthquake hazards may cause a significant loss to urban hospital network system (UHNS), including hospitals and medical transportation networks. As such, systematic seismic resilience assessment of such systems is of paramount importance to reduce loss and optimize casualty care during earthquakes. For that purpose, this paper proposes a novel method for assessing the seismic resilience of UHNS that considers the logical dependencies or coupling among the system's components, such as the casualty sources, the hospitals and the medical transportation networks. A resilience index is defined as the ratio between the average "shortest" time for a casualty to receive medical treatment before and after an earthquake. The time consists of both transportation time to a hospital and queuing time at the hospital. To obtain the shortest time, a real-time simulation model is proposed that considers the casualty sources, the changes in road traffic, the updates of Origin-Destination (OD) matrix for transportation time, the modifications of waiting time in hospital, the path reselection by casualty, and the changes in functionalities of bridges, hospitals and roads. The functionalities are obtained by analyzing fragility models, calculating residual functionality and estimating functionality recovery times. To calculate the fragilities of bridges and hospitals, a refined nonlinear finite element (FE) analysis is performed based on a general FE software, OpenSees, and the damages are obtained for various structural and nonstructural components, e.g. column, stairs and CT scanner of hospitals, as well as piers, bearings and abutments of bridges. The proposed method is demonstrated in a seismic resilience assessment of a realistic UHNS in Xiamen city of China and provides valuable references to assessments of seismic resilience of UHNS.
C1 [Gu, Quan; Wang, Tao] China Earthquake Adm, Inst Engn Mech, Key Lab Earthquake Engn & Engn Vibrat, Harbin 150080, Peoples R China.
   [Gu, Quan; Huang, Caigui; Qiu, Zhijian] Xiamen Univ, Sch Architecture & Civil Engn, Xiamen 361005, Peoples R China.
   [Li, Quanwang] Tsinghua Univ, Dept Civil Engn, Beijing 100084, Peoples R China.
   [Zhai, Changhai] Harbin Inst Technol, Minist Educ, Key Lab Struct Dynam Behav & Control, Harbin 150090, Peoples R China.
C3 China Earthquake Administration; Institute of Engineering Mechanics,
   CEA; Xiamen University; Tsinghua University; Harbin Institute of
   Technology
RP Gu, Q (corresponding author), China Earthquake Adm, Inst Engn Mech, Key Lab Earthquake Engn & Engn Vibrat, Harbin 150080, Peoples R China.; Gu, Q (corresponding author), Xiamen Univ, Sch Architecture & Civil Engn, Xiamen 361005, Peoples R China.
EM quangu@xmu.edu.cn
RI Wang, Xinyue/KLZ-4064-2024; Qiu, Zhijian/GLR-5006-2022
FU Scientific Research Fund of the Institute of Engineering Mechanics of
   the China Earthquake Administration [2019EEEVL0503]; China's National
   Natural Science Foundation [51578473, 51978591, 51261120376]
FX The authors gratefully acknowledge the useful suggestions provided by
   Deyu Zhang and Dr. Qingxue Shang. The authors acknowledge the financial
   support from the Scientific Research Fund of the Institute of
   Engineering Mechanics of the China Earthquake Administration under grant
   No. 2019EEEVL0503, and from China's National Natural Science Foundation
   (projects 51578473, 51978591 and 51261120376).
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NR 46
TC 0
Z9 0
U1 8
U2 10
PU WORLD SCIENTIFIC PUBL CO PTE LTD
PI SINGAPORE
PA 5 TOH TUCK LINK, SINGAPORE 596224, SINGAPORE
SN 0219-4554
EI 1793-6764
J9 INT J STRUCT STAB DY
JI Int. J. Struct. Stab. Dyn.
PD FEB 29
PY 2024
VL 24
IS 04
PG 36
WC Engineering, Civil; Engineering, Mechanical; Mechanics
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Mechanics
GA LL9O3
UT WOS:001187076100011
DA 2025-04-22
ER

PT J
AU Ansah, IGK
   Gardebroek, C
   Ihle, R
AF Ansah, Isaac Gershon Kodwo
   Gardebroek, Cornelis
   Ihle, Rico
TI Simulating policy options for improving household resilience to food
   demand shocks in the context of West Africa
SO NATURAL RESOURCES FORUM
LA English
DT Article
DE food security; household food demand; microeconomic simulation;
   resilience capacity
ID POVERTY; SYSTEMS; PRICES; CRISIS; RISK
AB Policy interest often focuses on specific instruments that effectively enhance household resilience to food security shocks. Based on microeconomic household demand and resilience theory, this paper investigates to what extent increased household resilience capacities result in household food consumption being more robust to adverse food price and income shocks. Using nationally representative household data from the Ghana Living Standards Survey, baseline parameters estimated from a micro-econometric quadratic almost ideal demand system are used to simulate the impacts of income and price shocks on food demand of urban and rural non-poor as well as urban and rural poor households. We assess how policy instruments that increase household resilience capacities, proxied by the values of assets owned, livestock, or household crop buffer stocks, affect shocks' impacts on food demand. Results show that a 20% general increase in food prices induces a demand switch from all other foods to basic staples and miscellaneous foods while a 20% reduction in available food expenditure dampens demand for pulses, greens, protein foods, and oils. Policy instruments that increase assets, livestock, and crop stocks of only poor households are more beneficial to the urban poor-increasing their demand for greens, protein foods, and oils-than policy instruments that raise resilience capacities of all households. On the other hand, rural poor households' protein demand tends to be enhanced by a general increase in assets, livestock, and crop buffer stocks. These findings illustrate that governments in low-income countries should focus their policy efforts on ensuring food affordability by avoiding price peaks for those food commodities playing major roles in typical national diets. We also conclude that the ongoing Investment for Food and Jobs policy in Ghana helps improving poor households' resilience capacities by raising their buffer stocks, boosting their assets, or increasing the number of livestock kept.
C1 [Ansah, Isaac Gershon Kodwo] Univ Dev Studies, Dept Econ, POB TL 1882, Tamale, Ghana.
   [Ansah, Isaac Gershon Kodwo; Gardebroek, Cornelis; Ihle, Rico] Wageningen Univ, Agr Econ & Rural Policy Grp, Wageningen, Netherlands.
   [Ansah, Isaac Gershon Kodwo; Gardebroek, Cornelis; Ihle, Rico] Res Ctr, Wageningen, Netherlands.
C3 University for Development Studies; Wageningen University & Research
RP Ansah, IGK (corresponding author), Univ Dev Studies, Dept Econ, POB TL 1882, Tamale, Ghana.
EM agershon@uds.edu.gh
RI Gardebroek, Cornelis/AAB-2597-2022; Ansah, Isaac Gershon
   Kodwo/O-6614-2015; Ihle, Rico/E-8115-2014
OI Gardebroek, Cornelis/0000-0002-3154-9464; Ansah, Isaac Gershon
   Kodwo/0000-0001-5071-6224; Ihle, Rico/0000-0002-7970-7054
FU Wageningen University and Research [8415255510]
FX Wageningen University and Research, Grant/Award Number: 8415255510
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NR 59
TC 0
Z9 0
U1 3
U2 23
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
EI 1477-8947
J9 NAT RESOUR FORUM
JI Nat. Resour. Forum
PD FEB
PY 2025
VL 49
IS 1
BP 578
EP 613
DI 10.1111/1477-8947.12407
EA JAN 2024
PG 36
WC Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA Y8M5B
UT WOS:001152605500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Debucquet, G
   Maignant, A
   Laroche, AL
   Widehem, C
   Morel, P
AF Debucquet, Gervaise
   Maignant, Allan
   Laroche, Anne-Laure
   Widehem, Caroline
   Morel, Philippe
TI Bringing nature into private urban housing: Environmental, social and
   food connections for urban resilience
SO CITIES
LA English
DT Article
DE Urban housing; Private gardening; Environmental awareness; Sustainable
   food; Multi-scalar urban planning
ID DOMESTICATED NATURE; GARDEN; ATTITUDES; GREEN; BIODIVERSITY;
   PERCEPTIONS; MOTIVATIONS; VEGETATION; BELIEFS; PLANTS
AB Ongoing confinement for millions of urban citizens due to the Covid-19 pandemic has raised ecological consciousness, changed food habits and questioned the relationship urban dwellers have with nature. There is more interest in bringing plants into urban homes and in sustainable food sources, but no research have studied the relationships between food behaviours and plant-care activities. To address this gap and explore urban citizens' nature relatedness through the greening of private areas, we conducted a national survey of French, young urban citizens (n = 1000), who are more committed to 'edible' cities than older generations but have the lowest rate of plant purchasers. A quantitative approach reveals the prevalence of aesthetic/hedonistic expectations for plants in private housing but also demonstrates contrasting perceptions of tasks for plant maintaining and unequal valuation of social issues around plants. We discuss continuities between environmental awareness, commitment to sustainable food and natural/social uses of plants and argue that urban planning processes should address potential synergies for more integrative resilience. Community building around green areas, urban agriculture or collective gardens, in cities, can have ripple effects towards the greening of private housing. Lastly, the multidisciplinary approach bridging psychosociology and urban studies can inspire multi-scalar urban planning.
C1 [Debucquet, Gervaise] AUDENCIA Business Sch, 8 Route Joneliere, F-44312 Nantes, France.
   [Maignant, Allan; Laroche, Anne-Laure] ASTREDHOR, 42 rue Georges Morel, F-49071 Beaucouze, France.
   [Widehem, Caroline] AGROCAMPUS Ouest, 2 Rue Andrele Notre, F-49000 Angers, France.
   [Morel, Philippe] INRAE Pays Loire, 42 Rue Georges Morel, F-49070 Beaucouze, France.
C3 Audencia; Institut Agro; Agrocampus Ouest; INRAE
RP Debucquet, G (corresponding author), AUDENCIA Business Sch, 8 Route Joneliere, F-44312 Nantes, France.
EM gdebucquet@audencia.com
FU UMT STRATege; French Ministry of Agriculture and Val'hor
FX This research was supported by UMT STRATege, whose partners are
   ASTREDHOR French horticultural technical institute, INRAE, Universite
   d'Angers, Institut Agro-Agrocampus Ouest, ?Ecole Supe?rieure
   d'Agricul-tures d'Angers, Audencia Business School, Lyce?e Agricole et
   Horticole Angers Le Fresne, Plante & Cite?, and Ve?ge?polys Valley. It
   is financed by the French Ministry of Agriculture and Val'hor.
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NR 82
TC 0
Z9 0
U1 7
U2 34
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2022
VL 131
AR 104007
DI 10.1016/j.cities.2022.104007
EA NOV 2022
PG 11
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA 6P6AN
UT WOS:000891011400006
PM 36211220
OA Green Submitted, Bronze, Green Published
DA 2025-04-22
ER

PT J
AU Liu, CH
   Su, X
   Wu, ZC
   Zhang, YJ
   Zhou, CZ
   Wu, XG
   Huang, Y
AF Liu, Chenhui
   Su, Xue
   Wu, Zhichun
   Zhang, Yingjun
   Zhou, Cuizhu
   Wu, Xiangguo
   Huang, Yong
TI Exploration of the Mountainous Urban Rail Transit Resilience Under
   Extreme Rainfalls: A Case Study in Chongqing, China
SO APPLIED SCIENCES-BASEL
LA English
DT Article
DE resilience; mountainous urban rail transit; extreme rainfalls; high-risk
   node identification; genetic algorithm; resilience recovery strategy
ID NETWORK; METRO
AB Extreme rainfalls could greatly affect operations of urban rail transit systems of mountainous cities, which are prone to have landslides and floods under rainfalls. Therefore, it is essential to assess and enhance the resilience of mountainous urban rail transit networks under heavy rainfalls. Taking the metro network of Chongqing, the largest mountainous city in China, as an example, this study establishes a network topology model to identify the high-risk nodes under rainfalls and find the effective recovery strategies. By introducing the metro ridership and topological shortest distances, a network service efficiency function is developed, and the importance of nodes is quantified using service efficiency index and topological importance index. The resilience assessment model based on service efficiency is constructed using the resilience triangle theory. Additionally, risk levels for landslide and flood-prone areas are classified using the K-means algorithm, based on rainfall, elevation, and slope data, identifying high-risk stations. Finally, the node recovery sequence and strategies for high-risk nodes affected by landslides and floods are examined. The results indicate that in extreme rainfall scenarios, two transfer stations (Daping and Fuhua Road) are among the high-risk landslide stations, while most other nodes have a service efficiency index of less than 0.2. High-risk flood stations are located on non-transfer lines and mostly on metro lines with high traffic flow, with service efficiency index generally high, with some stations, like Bijin Station, exceeding 0.3. When all affected nodes fail, network service efficiency decreases by 84.0% and 75.2% under landslide and flood disasters, respectively. Compared with the random recovery strategy, recovery strategies based on topological importance and service efficiency index, the optimal recovery strategy based on genetic algorithm performs much better.
C1 [Liu, Chenhui; Su, Xue; Zhou, Cuizhu] Hunan Univ, Coll Civil Engn, Changsha 410082, Peoples R China.
   [Liu, Chenhui; Wu, Zhichun; Zhang, Yingjun] Hunan Geospatial Informat Engn & Technol Res Ctr, Changsha 410018, Peoples R China.
   [Liu, Chenhui] Hunan Univ, Transportat Res Ctr, Changsha 410082, Peoples R China.
   [Wu, Zhichun; Zhang, Yingjun] Third Surveying & Mapping Inst Hunan Prov, Changsha 410018, Peoples R China.
   [Wu, Zhichun; Zhang, Yingjun] Hunan Engn Res Ctr Geog Informat Secur & Applicat, Changsha 410011, Peoples R China.
   [Wu, Xiangguo] Chongqing Transport Planning Inst, Chongqing 401147, Peoples R China.
   [Huang, Yong] Chongqing Univ, Key Lab New Technol Construct Cities Mt Area, Minist Educ, Chongqing 400045, Peoples R China.
   [Huang, Yong] Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400030, Peoples R China.
C3 Hunan University; Hunan University; Chongqing University; Chongqing
   University
RP Huang, Y (corresponding author), Chongqing Univ, Key Lab New Technol Construct Cities Mt Area, Minist Educ, Chongqing 400045, Peoples R China.; Huang, Y (corresponding author), Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400030, Peoples R China.
EM chenhuiliu@hnu.edu.cn; xuesu@hnu.edu.cn; hnzrzywx@163.com;
   zhangyingjun5@126.com; zcz1025@hnu.edu.cn; wxiangguo@126.com;
   hyong@cqu.edu.cn
RI SU, Xuesan/HSH-2141-2023; Liu, Chenhui/L-5661-2019
OI Liu, Chenhui/0000-0003-2993-9022
FU Key Laboratory of New Technology for Construction of Cities in Mountain
   Area, Ministry of Education; Open Topic of Hunan Geospatial Information
   Engineering and Technology Research Center [HNGIET2023002,
   HNGISA2023003];  [LNTCCMA-20230102]
FX This work is funded by the Key Laboratory of New Technology for
   Construction of Cities in Mountain Area, Ministry of Education
   (LNTCCMA-20230102), the Open Topic of Hunan Geospatial Information
   Engineering and Technology Research Center (HNGIET2023002), and the Open
   Topic of Hunan Engineering Research Center of Geographic Information
   Security and Application (HNGISA2023003).
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NR 38
TC 1
Z9 1
U1 7
U2 7
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2076-3417
J9 APPL SCI-BASEL
JI Appl. Sci.-Basel
PD JAN
PY 2025
VL 15
IS 2
AR 735
DI 10.3390/app15020735
PG 17
WC Chemistry, Multidisciplinary; Engineering, Multidisciplinary; Materials
   Science, Multidisciplinary; Physics, Applied
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Chemistry; Engineering; Materials Science; Physics
GA T3K7N
UT WOS:001404045200001
OA gold
DA 2025-04-22
ER

PT J
AU Yang, YF
   Ng, ST
   Xu, FJ
   Skitmore, M
AF Yang, Yifan
   Ng, S. Thomas
   Xu, Frank J.
   Skitmore, Martin
TI Towards sustainable and resilient high density cities through better
   integration of infrastructure networks
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE High density cities; Sustainability; Resilience; Infrastructure system;
   Asset management
ID DATA-MANAGEMENT; ASSET; FRAMEWORK; WATER; SYSTEM; POLICY;
   INTERDEPENDENCE; CHALLENGES; STRATEGIES; MODELS
AB Many developed high density cities around the world are facing unprecedented challenges as their infrastructure facilities are aging while citizen demands are ever surging. The concerted efforts of different infrastructure stakeholders are indispensable to elevate the quality, reliability, and capacity of infrastructure systems to make high-density cities more sustainable and resilient against increasing climate change and manmade threats. To address these challenges, this paper proposes an integrated framework for multisector infrastructure asset management. For deriving the framework, case studies are conducted first on the best infrastructure asset management (IAM) practices of different countries in such diverse aspects as core process integration, contingency management, climate change response and adaptation, program coordination and orchestration, social value creation and sharing, risk management, resilience and sustainability. By using the criteria and a list of questions obtained from the case studies, interviews with different stakeholders in selected infrastructure sectors in Hong Kong are subsequently carried out to identify the barriers and possible solutions to enhancing the integrated management of multisector infrastructure assets in high-density cities. To facilitate such municipalities in managing their infrastructure assets effectively and efficiently, the proposed multisector integrated IAM framework is established from the holistic perspectives of information integration, process integration, collective decision, and harmonization between interdependent infrastructure systems.
C1 [Yang, Yifan; Ng, S. Thomas; Xu, Frank J.] Univ Hong Kong, Dept Civil Engn, Pokfulam, Hong Kong, Peoples R China.
   [Skitmore, Martin] Queensland Univ Technol, GPO Box 2434,Q4001, Brisbane, Qld, Australia.
C3 University of Hong Kong; Queensland University of Technology (QUT)
RP Ng, ST (corresponding author), Univ Hong Kong, Dept Civil Engn, Pokfulam, Hong Kong, Peoples R China.
EM seuyangyifan@sina.com; tstng@hku.hk; frankxu@hku.hk;
   rm.skitmore@qut.edu.au
RI Yifan, Yang/AAR-9859-2020; Ng, S./AAZ-9757-2020; Skitmore,
   Martin/I-9743-2012; Ng, Thomas Shiu Tong/C-1809-2009
OI Ng, Thomas Shiu Tong/0000-0003-2062-0234; Skitmore,
   Martin/0000-0001-7135-1201
FU Research Grants Council of the HKSAR Government through the General
   Research Fund [17202215, 17248216]
FX The authors would like to thank the Research Grants Council of the HKSAR
   Government for financially supporting this project through the General
   Research Fund (Grant Nos.: 17202215 and 17248216).
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NR 107
TC 73
Z9 77
U1 3
U2 128
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT
PY 2018
VL 42
BP 407
EP 422
DI 10.1016/j.scs.2018.07.013
PG 16
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 GS5VY
UT WOS:000443741600035
DA 2025-04-22
ER

PT J
AU Atkins, JF
   Flügel, T
   Hugman, R
AF Atkins, J. Ffion
   Flugel, Tyrel
   Hugman, Rui
TI The urban water metabolism of Cape Town: Towards becoming a water
   sensitive city
SO SOUTH AFRICAN JOURNAL OF SCIENCE
LA English
DT Article
DE water sensitive cities; performance indicators; urban water management;
   managed aquifer recharge; water equity
ID MANAGED AQUIFER RECHARGE; MASS-BALANCE; RESILIENCE; SUSTAINABILITY;
   TRANSFORMATION; DESIGN; CITIES; ENERGY
AB To improve its resilience to increasing climatic uncertainty, the City of Cape Town (the City) aims to become a water sensitive city by 2040. To undertake this challenge, a means to measure progress is needed that quantifies the urban water systems at a scale that enables a whole-of-system approach to water management. Using an urban water metabolism framework, we (1) provide a first city-scale quantification of the urban water cycle integrating its natural and anthropogenic flows, and (2) assess alternative water sources (indicated in the New Water Programme) and whether they support the City towards becoming water sensitive. We employ a spatially explicit method with particular consideration to apply this analysis to other African or Global South cities. At the time of study, centralised potable water demand by the City amounted to 325 gigalitres per annum, 99% of which was supplied externally from surface storage, and the remaining similar to 1% internally from groundwater storage (Atlantis aquifer). Within the City's boundary, runoff, wastewater effluent and groundwater represent significant internal resources which could, in theory, improve supply efficiency and internalisation as well as hydrological performance. For the practical use of alternative resources throughout the urban landscape, spatially explicit insight is required regarding the seasonality of runoff, local groundwater storage capacity and the quality of water as it is conveyed through the complex urban landscape. We suggest further research to develop metrics of urban water resilience and equity, both of which are important in a Global South context.
   Significance:
   This research provides the initial groundwork of quantifying the magnitude of the urban water cycle of the City of Cape Town at an annual timescale, in relation to becoming a water sensitive city. The urban water metabolism framework used in this study provides important insight to assess whole-of-system urban water dynamics and to benchmark progress towards becoming water sensitive. By quantifying the magnitude of flows into and out of the urban system, this research sheds light on the opportunities to improve circularity in the urban water cycle. The spatial approach adopted here provides a platform to interrogate the urban landscape and its role in the urban water cycle. By using data products that are available via national data sets or remote sensing, this approach can be applied to other African or Global South where data is characteristically scarce. Further work is required to establish metrics that can adequately describe urban water resilience and equity.
C1 [Atkins, J. Ffion] Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
   [Flugel, Tyrel; Hugman, Rui] Umvoto Africa Pty Ltd, Cape Town, South Africa.
   [Flugel, Tyrel] Stellenbosch Univ, Dept Geog & Environm Studies, Stellenbosch, South Africa.
C3 University of Cape Town; Stellenbosch University
RP Atkins, JF (corresponding author), Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
EM ffion.atkins@uct.ac.za
RI Atkins, Ffion/KWU-8191-2024; Flügel, Tyrel/HGC-2742-2022; Hugman,
   Rui/M-8000-2013
OI Hugman, Rui/0000-0003-0891-3886; Atkins, Ffion/0000-0002-7059-3994;
   Flugel, Tyrel/0000-0003-2079-2773
FU South African National Research Foundation [114696]
FX South African National Research Foundation (grant no. 114696)
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NR 67
TC 5
Z9 5
U1 5
U2 35
PU ACAD SCIENCE SOUTH AFRICA - ASSAf
PI LYNWOOD RIDGE
PA PO BOX 72135, LYNWOOD RIDGE 0040, SOUTH AFRICA
SN 0038-2353
EI 1996-7489
J9 S AFR J SCI
JI S. Afr. J. Sci.
PD MAY-JUN
PY 2021
VL 117
IS 5-6
AR 8630
DI 10.17159/sajs.2021/8630
PG 11
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA ST8BS
UT WOS:000662663700021
OA gold
DA 2025-04-22
ER

PT J
AU Cuéllar-Fernández, B
   Fuertes-Callén, Y
   Serrano-Magdalena, A
AF Cuellar-Fernandez, Beatriz
   Fuertes-Callen, Yolanda
   Serrano-Magdalena, Adriana
TI Factors behind the resilience of rural startups
SO TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE
LA English
DT Article
DE Survival; Startups; Rural studies; Financial performance; Matching
   methods
ID BUSINESS SURVIVAL; PROPENSITY SCORE; GROWTH; URBAN; PERFORMANCE;
   AGGLOMERATION; FIRMS; HETEROGENEITY; OPPORTUNITY; ECONOMIES
AB Rural areas are characterized by sparse population, low population density, remoteness, and population aging, which can discourage startups and undermine their financial performance, as the theory of urban agglomeration economies suggests. However, many studies have shown that companies created in rural areas survive longer than those created in urban areas, which seems contradictory. This paper aims to identify the factors that explain this rural resilience. We analyzed all of the startups founded in Spain over 10 years. We used statistical matching methods to test for the effect of the location while controlling for founding conditions and environmental factors. Our study confirmed that few startups are created in rural areas and they grow less, but their survival rate is slightly higher than those established in urban areas. We found that high subsidies, low operating costs, high labor intensity, a slow but low-risk growth pattern, and other foundational conditions and external factors contribute to explaining rural resilience. Nonetheless, additional factors, including the traits of rural entrepreneurs and the lack of alternatives to bankruptcy, as proposed by the entrepreneurial opportunity theory, also matter.
C1 [Cuellar-Fernandez, Beatriz; Fuertes-Callen, Yolanda; Serrano-Magdalena, Adriana] Univ Zaragoza, Dept Accounting & Finance, Zaragoza, Spain.
C3 University of Zaragoza
RP Cuéllar-Fernández, B (corresponding author), Univ Zaragoza, Dept Accounting & Finance, Zaragoza, Spain.
EM bcuellar@unizar.es
RI Serrano-Magdalena, Adriana/KIH-1417-2024
OI Serrano-Magdalena, Adriana/0009-0001-3533-7004
FU European Regional Development Fund (ERDF) by the Spanish Ministry of
   Education and Science [PID2022-136818NB-I00]; Government of Aragon
   [S38_23R]
FX This study was funded by the European Regional Development Fund (ERDF)
   by the Spanish Ministry of Education and Science (code
   PID2022-136818NB-I00), and the Government of Aragon (code S38_23R).
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NR 82
TC 2
Z9 2
U1 11
U2 20
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 SEP
PY 2024
VL 206
AR 123521
DI 10.1016/j.techfore.2024.123521
EA JUN 2024
PG 16
WC Business; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Public Administration
GA XC7N2
UT WOS:001259551700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Hutter, G
AF Hutter, Gerard
TI Collaborative governance and rare floods in urban regions - Dealing with
   uncertainty and surprise
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Dresden region; Flood risk management; Planning; Predictability;
   Resilience; Strategic option
ID CLIMATE-CHANGE; MANAGEMENT; RESILIENCE; NETWORKS
AB Rare floods in urban regions like the Dresden region triggered significant changes in public policy and research. However, how actors are able to deal with uncertainty and surprise related to rare floods in the future is still open to many questions and debates in flood risk management research and practice. From an interpretative and agency-oriented perspective, the paper asks how dealing with uncertainty and surprise may be enhanced through processes of collaborative governance for rare floods in urban regions. The paper follows a conceptual purpose based on a series of completed projects and publications on flood risk management in the urban region of Dresden. Conceptual analysis highlights two strategic options for focusing collaboration of public and private actors: planning for flood risk reduction and searching for resilience. Both options are based on assumptions of collaborators about the predictability of the specific flood risk management problem at stake, especially with regard to analyzing surprise in retrospect. The paper elucidates on implications in the context of collaboration, participation, and governance. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Hutter, Gerard] Leibniz Inst Ecol Urban & Reg Dev IOER, D-01217 Dresden, Germany.
C3 Leibniz Institut fur okologische Raumentwicklung
RP Hutter, G (corresponding author), Leibniz Inst Ecol Urban & Reg Dev IOER, Weberpl 1, D-01217 Dresden, Germany.
EM g.hutter@ioer.de
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NR 55
TC 24
Z9 28
U1 1
U2 37
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 JAN
PY 2016
VL 55
SI SI
BP 302
EP 308
DI 10.1016/j.envsci.2015.07.028
PN 2
PG 7
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA CZ0DM
UT WOS:000366775300004
DA 2025-04-22
ER

PT J
AU Yu, SY
   Newman, G
   Berke, P
   Li, X
AF Yu, Siyu
   Newman, Galen
   Berke, Philip
   Li, Xiao
TI Plan Integration for Ecological Resilience: Examining Factors Associated
   with Wetland Alteration
SO JOURNAL OF PLANNING EDUCATION AND RESEARCH
LA English
DT Article
DE ecological resilience; plan integration; wetland loss; hazard
   vulnerability; land development
ID LAND-USE; COMMUNITY RESILIENCE; URBAN; MANAGEMENT; SERVICES; HOUSTON;
   IMPACT; POLICY; COVER; COAST
AB A community's resilience is strongly influenced by the growth management guidance provided by its network of plans. Wetland loss has been shown to amplify flood damage. This study explores the relationship between plan integration and wetland alteration, comparing the findings from Fort Lauderdale, Florida, and League City, Texas. Combining spatial analytics, a Plan Integration for Resilience Scorecard & TRADE; evaluation, and correlational statistics, we find that wetland loss is significantly associated with plan integration and development patterns and is less acute in League City than Fort Lauderdale. Integrating wetland protection policies throughout a network of plans helps build resilience to flood hazards.
C1 [Yu, Siyu; Newman, Galen] Texas A&M Univ, Dept Landscape Architecture & Urban Planning, College Stn, TX USA.
   [Berke, Philip] Univ North Carolina Chapel Hill, Dept City & Regional Planning, Chapel Hill, NC USA.
   [Li, Xiao] Univ Oxford, Transport Studies Unit, Oxford, England.
   [Yu, Siyu] Texas A&M Univ, Dept Landscape Architecture & Urban Planning, 3137 TAMU, College Stn, TX 77843 USA.
C3 Texas A&M University System; Texas A&M University College Station;
   University of North Carolina; University of North Carolina Chapel Hill;
   University of North Carolina School of Medicine; University of Oxford;
   Texas A&M University System; Texas A&M University College Station
RP Yu, SY (corresponding author), Texas A&M Univ, Dept Landscape Architecture & Urban Planning, 3137 TAMU, College Stn, TX 77843 USA.
EM syu@arch.tamu.edu
RI Li, Xiao/AAM-9526-2021
FU U.S. Department of Homeland Security [2015-ST-061-ND0001-01]
FX The author(s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: 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.
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NR 68
TC 2
Z9 2
U1 16
U2 34
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 MAR
PY 2025
VL 45
IS 1
BP 95
EP 107
DI 10.1177/0739456X231187117
EA JUL 2023
PG 13
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA W6K8S
UT WOS:001034248900001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Tayebi, S
   Mohammadi, H
   Shamsipoor, A
   Tayebi, S
   Alavi, SA
   Hoseinioun, S
AF Tayebi, S.
   Mohammadi, H.
   Shamsipoor, A.
   Tayebi, S.
   Alavi, S. A.
   Hoseinioun, S.
TI Analysis of land surface temperature trend and climate resilience
   challenges in Tehran
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY
LA English
DT Article
DE Surface temperature; Urban heat island; Split-window algorithm; Tehran
   neighborhoods; Urban climate resilience
AB Urban heat island is one of the most important consequences of climate change in cities. Various factors accelerate temperature increase in urban surfaces. Widespread use of impermeable materials with high heat capacity; albedo and trapping of incoming solar radiation in urban structure which prevents reflection; reduction in cooling at night due to increased building heights; and changes in the complex urban geometry are among these factors. The aim of this study is to investigate the surface temperature of Tehran in a 30-year period (1984-2014). The required images and land surface temperature maps were prepared using a split-window algorithm on thermal bands of landsat images for four periods. All images had been taken at 11:00-14:00 in summer. Temperature factors were calculated for different neighborhoods, and two patterns were obtained. One pattern showed the formation of urban heat island in barren lands, large workshop areas, and areas with military land use, and the other one showed the formation of urban heat island in dense building population areas with limited green space. The results indicate an increase in the area of the regions with a higher temperature in the city. In 1984, the smallest area belonged to the above 48 degrees C temperature category (1.8 ha), while in 2014 the below 25 degrees C category had the smallest area (0 ha). It was observed that the area of the former category reached over 1740 ha in 2014. Neighborhood temperature factors show that 17 Shahrivar and Khajeh Nasir-Hoghoughi neighborhoods are the hottest neighborhoods in Tehran. The findings in this study may persuade urban managers scientifically to make preparations for changing the life style focusing on urban macro-scale planning which is a widely emerging issue resulted from recent effects on Tehran's climate resilience. Considering the importance of urban planning priorities in urban ecosystem services, it is essential to make use of all urban elements and fill the empty gap between urban ecosystem services production and their consumption in the city by wise and smart urban management.
C1 [Tayebi, S.; Mohammadi, H.; Shamsipoor, A.] Univ Tehran, Fac Geog, Dept Phys Geog, Tehran, Iran.
   [Tayebi, S.] Islamic Azad Univ, Sci & Res Branch, Fac Nat Resources & Environm, Dept Environm Law, Tehran, Iran.
   [Alavi, S. A.] Shahid Beheshti Univ, RS & GIS Ctr, Remote Sensing & GIS, Tehran, Iran.
   [Hoseinioun, S.] Univ Melbourne, Melbourne, Vic, Australia.
C3 University of Tehran; Islamic Azad University; Shahid Beheshti
   University; University of Melbourne
RP Tayebi, S (corresponding author), Univ Tehran, Fac Geog, Dept Phys Geog, Tehran, Iran.
EM S.tayebi185@gmail.com
RI Tayebi, Sobhan/JVZ-3675-2024; Tayebi, Safiyeh/KHZ-8521-2024
OI Tayebi, Sobhan/0000-0002-2668-8574; Tayebi, Safiyeh/0000-0003-2803-9989
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PA 233 SPRING ST, NEW YORK, NY 10013 USA
SN 1735-1472
EI 1735-2630
J9 INT J ENVIRON SCI TE
JI Int. J. Environ. Sci. Technol.
PD DEC
PY 2019
VL 16
IS 12
BP 8585
EP 8594
DI 10.1007/s13762-019-02329-z
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA JK8ZQ
UT WOS:000495128800089
DA 2025-04-22
ER

PT J
AU Nail, S
AF Nail, Sylvie
TI Memory and resilience: A two-pronged approach to natural spaces in
   Colombia's transition to a peaceful society
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Community empowerment; Social inclusion; Ecosystem services
AB The analysis of spontaneous environmental initiatives undertaken by individuals and communities in cases of conflicts has led to a growing research field in social science, according to which the community-based stewardship of nature seems to conduce to the resilience of co-evolved social-ecological systems. In Colombia, where no such research exists so far, the conflict which officially ended in November 2016 has led to massive internal migration due to forced displacement, as well as to widespread degradation of the environment. Based on evidence provided by case studies of top-down and bottom-up living memorials and urban agriculture initiatives, the article explores the potential of urban greening in the process of memorialisation and in generating new social cohesion, as well as better living conditions in urban areas. It analyses cases both where the conflict has taken place and in the cities where refugees have settled, in order to explore avenues for public policies in post conflict Colombia. The author concludes that greening initiatives offer manifold, so far overlooked, opportunities to restoring social and ecological resilience in urban areas and thus contribute to a lasting peace in Colombia.
C1 [Nail, Sylvie] Univ Nantes, Fac Langues & Cultures Etrangeres, Univ Externado Colombia, Fac Finanzas Gobierno & Relac Int, Nantes, France.
C3 Nantes Universite
RP Nail, S (corresponding author), Univ Nantes, Fac Langues & Cultures Etrangeres, Univ Externado Colombia, Fac Finanzas Gobierno & Relac Int, Nantes, France.
EM sylvie.nail@univ-nantes.fr
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TC 9
Z9 10
U1 0
U2 21
PU ELSEVIER GMBH, URBAN & FISCHER VERLAG
PI JENA
PA OFFICE JENA, P O BOX 100537, 07705 JENA, GERMANY
SN 1618-8667
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD APR
PY 2018
VL 31
BP 48
EP 55
DI 10.1016/j.ufug.2018.01.020
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 GD6BX
UT WOS:000430594600005
DA 2025-04-22
ER

PT J
AU Zhao, XT
   Hu, LW
   Wang, XZ
   Wu, JB
AF Zhao, Xueting
   Hu, Liwei
   Wang, Xingzhong
   Wu, Jiabao
TI Study on Identification and Prevention of Traffic Congestion Zones
   Considering Resilience-Vulnerability of Urban Transportation Systems
SO SUSTAINABILITY
LA English
DT Article
DE traffic safety; traffic engineering; traffic congestion zoning; SOFM;
   urban traffic congestion; zoning boundaries; comprehensive traffic
   evaluation index
ID NEURAL-NETWORK; EXTERNALITIES; ALGORITHM; MOBILITY; DRIVEN; CITIES;
   CITY; FLOW
AB In order to solve the problem of urban short-term traffic congestion and temporal and spatial heterogeneity, it is important to scientifically delineate urban traffic congestion response areas to alleviate regional traffic congestion and improve road network efficiency. Previous urban traffic congestion zoning is mostly divided by urban administrative divisions, which is difficult to reflect the difference of congestion degree within administrative divisions or traffic congestion zoning. In this paper, we introduce the Self-Organizing Feature Mapping (SOFM) model, construct the urban traffic congestion zoning index system based on the resilience and vulnerability of urban traffic systems, and establish the urban traffic congestion zoning model, which is divided into four, five, six, and seven according to the different structures of competition layer topology. The four vulnerability damage capacity indicators of traffic volume, severe congestion mileage, delay time and average operating speed, and two resilience supply capacity indicators of traffic systems, namely, road condition and number of lanes, are used as model input vectors; the data of Guiyang city from January to June 2021 are used as data sets to input four SOFM models for training and testing and the best SOFM model with six competitive topologies is constructed. Finally, the Support Vector Machine (SVM) is used to identify the optimal partition boundary line for traffic congestion. The results show that the four models predict the urban traffic congestion zoning level correctly over 95% on the test set, each traffic congestion zoning evaluation index in the urban area shows different obvious spatial clustering characteristics, the urban traffic congestion area is divided into six categories, and the city is divided into 16 zoning areas considering the urban traffic congestion control types (prevention zone, control zone, closure control zone). The spatial boundary is clear and credible, which helps to improve the spatial accuracy when predicting urban traffic congestion zoning and provides a new methodological approach for urban traffic congestion zoning and zoning boundary delineation.
C1 [Zhao, Xueting; Hu, Liwei; Wang, Xingzhong; Wu, Jiabao] Kunming Univ Sci & Technol, Fac Transportat Engn, Kunming 650504, Peoples R China.
C3 Kunming University of Science & Technology
RP Hu, LW (corresponding author), Kunming Univ Sci & Technol, Fac Transportat Engn, Kunming 650504, Peoples R China.
EM liweihukm@kust.edu.cn
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NR 73
TC 10
Z9 10
U1 14
U2 88
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2022
VL 14
IS 24
AR 16907
DI 10.3390/su142416907
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 7H3SL
UT WOS:000903125600001
OA gold
DA 2025-04-22
ER

PT J
AU Quattrone, G
   Chen, L
AF Quattrone, Giuliana
   Chen, Le
TI Shenzhen-How to further implement the sustainability and resilience
   towards 2030?
SO CITIES
LA English
DT Article
DE Shenzhen; Reform and opening up; New institutional economics; Urban
   planning; Sustainability and resilience; 2030 Agenda
AB This article firstly presents evidence of the guiding role of new institutional economics and urban planning for Shenzhen's historical development, and their significant influence on Shenzhen's all-round development, espe-cially from the socio-economic, urban and environmental aspects in a descriptive approach. To be specific, Shenzhen's development achievements over the past 40 years of reform and opening up have concretely proved the enormous contributions of transaction cost theory, property rights theory and urban planning, relevant policy and governance. Then, we question Shenzhen how to fulfil the new mission that entrusted by the 2030 Agenda for sustainable development. It's extremely important to rethink the future development direction of Shenzhen by taking its fruitful reform and opening up as a new starting point. Thus, through the qualitative analysis of Shenzhen's best practice, the present study aims to provide a research proposal for understanding by what means Shenzhen can further implement the sustainability and resilience towards 2030 from environmental, social, and economic aspects. Subject classification codes: A10, B15, O10, O18, O20, P20, P30, Q56, Q58, R10, R14.
C1 [Quattrone, Giuliana] UNICAL Polifunz, Inst Atmospher Pollut Res, Natl Council Res CNR, I-87036 Arcavacata Di Rende, Italy.
   [Chen, Le] Univ Foreigners Dante Alighieri, Dept Social Sci & Educ Sci Mediterranean Area, Reggio Di Calabria, Italy.
C3 Consiglio Nazionale delle Ricerche (CNR); Istituto Sull'inquinamento
   Atmosferico (IIA-CNR)
RP Quattrone, G (corresponding author), UNICAL Polifunz, Inst Atmospher Pollut Res, Natl Council Res CNR, I-87036 Arcavacata Di Rende, Italy.
EM g.quattrone@iia.cnr.it
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NR 33
TC 2
Z9 2
U1 9
U2 28
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD MAY
PY 2023
VL 136
AR 104263
DI 10.1016/j.cities.2023.104263
EA MAR 2023
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA M4KE4
UT WOS:001029901800001
OA hybrid
DA 2025-04-22
ER

PT J
AU Bi, W
   Macaskill, K
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AF Bi, Wei
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TI Old wine in new bottles? Understanding infrastructure resilience:
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SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Infrastructure resilience; Resilience assessment; Network modelling;
   Transport infrastructure; Limitations and issues in resilience
   applications
ID RAIL TRANSIT NETWORKS; URBAN ROAD NETWORKS; BAYESIAN NETWORK; COMPLEX
   NETWORK; GRAPH-THEORY; TRANSPORTATION; FRAMEWORK; RISK; SYSTEM; MODEL
AB While the trend towards building resilience in infrastructure systems for disaster risk reduction is accelerating, the application of infrastructure resilience is largely conceptual or an embellishment to established modelling techniques. In response, this paper sets out the theoretical foundations of infrastructure resilience, which broadly applies across critical infrastructure networks. This is followed by reviewing system-based and network-based approaches to resilience assessment with a focus on transport infrastructure, where there is an emerging body of studies. It spotlights critical issues in conflating resilience with other concepts of infrastructure safety management or merely tagging resilience on established methods, indicating a phenomenon of "old wine in new bottles". Also, oversimplifying disruption scenarios does not provide a sufficient basis for informed resilience planning. This paper reminds readers to look beyond resilience as a mere buzzword and offers guidance on how to do so by recognising the theoretical and methodological cornerstones of infrastructure resilience.
C1 [Bi, Wei; Macaskill, Kristen] Univ Cambridge, Ctr Sustainable Dev, Dept Engn, Cambridge CB2 1PZ, England.
   [Bi, Wei; Macaskill, Kristen; Schooling, Jennifer] Univ Cambridge, Ctr Smart Infrastructure & Construct, Dept Engn, Cambridge CB3 0FA, England.
   [Bi, Wei] Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England.
C3 University of Cambridge; University of Cambridge; University of
   Cambridge
RP Bi, W (corresponding author), Univ Cambridge, Dept Engn, Cambridge CB2 1PZ, England.
EM wb316@cam.ac.uk
RI Schooling, Jennifer/LJL-2236-2024
OI Schooling, Jennifer/0000-0002-4777-0438; Bi, Wei/0000-0003-1042-4547
FU EPSRC [EP/P013848/1, EP/N021614/1] Funding Source: UKRI
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NR 200
TC 16
Z9 18
U1 61
U2 214
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 JUL
PY 2023
VL 120
AR 103793
DI 10.1016/j.trd.2023.103793
EA MAY 2023
PG 21
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 P8XT4
UT WOS:001053456700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Gu, Q
   Huang, CG
   Qiu, ZJ
   Wang, T
   Li, QW
   Zhai, CH
AF Gu, Quan
   Huang, Caigui
   Qiu, Zhijian
   Wang, Tao
   Li, Quanwang
   Zhai, Changhai
TI A Novel Method for Seismic Resilience Assessment of Urban Hospital
   Network Systems Based on a Real-Time Simulation Model
SO INTERNATIONAL JOURNAL OF STRUCTURAL STABILITY AND DYNAMICS
LA English
DT Article
DE Seismic resilience; resilience assessment; urban hospital network
   system; medical transportation networks; real-time simulation model;
   refined nonlinear finite element analysis
ID FRAGILITY; RISK; FRAMEWORK; BRIDGES
AB Earthquake hazards may cause a significant loss to urban hospital network system (UHNS), including hospitals and medical transportation networks. As such, systematic seismic resilience assessment of such systems is of paramount importance to reduce loss and optimize casualty care during earthquakes. For that purpose, this paper proposes a novel method for assessing the seismic resilience of UHNS that considers the logical dependencies or coupling among the system's components, such as the casualty sources, the hospitals and the medical transportation networks. A resilience index is defined as the ratio between the average "shortest" time for a casualty to receive medical treatment before and after an earthquake. The time consists of both transportation time to a hospital and queuing time at the hospital. To obtain the shortest time, a real-time simulation model is proposed that considers the casualty sources, the changes in road traffic, the updates of Origin-Destination (OD) matrix for transportation time, the modifications of waiting time in hospital, the path reselection by casualty, and the changes in functionalities of bridges, hospitals and roads. The functionalities are obtained by analyzing fragility models, calculating residual functionality and estimating functionality recovery times. To calculate the fragilities of bridges and hospitals, a refined nonlinear finite element (FE) analysis is performed based on a general FE software, OpenSees, and the damages are obtained for various structural and nonstructural components, e.g. column, stairs and CT scanner of hospitals, as well as piers, bearings and abutments of bridges. The proposed method is demonstrated in a seismic resilience assessment of a realistic UHNS in Xiamen city of China and provides valuable references to assessments of seismic resilience of UHNS.
C1 [Gu, Quan; Wang, Tao] China Earthquake Adm, Inst Engn Mech, Key Lab Earthquake Engn & Engn Vibrat, Harbin 150080, Peoples R China.
   [Gu, Quan; Huang, Caigui; Qiu, Zhijian] Xiamen Univ, Sch Architecture & Civil Engn, Xiamen 361005, Peoples R China.
   [Li, Quanwang] Tsinghua Univ, Dept Civil Engn, Beijing 100084, Peoples R China.
   [Zhai, Changhai] Harbin Inst Technol, Minist Educ, Key Lab Struct Dynam Behav & Control, Harbin 150090, Peoples R China.
C3 China Earthquake Administration; Institute of Engineering Mechanics,
   CEA; Xiamen University; Tsinghua University; Harbin Institute of
   Technology
RP Gu, Q (corresponding author), China Earthquake Adm, Inst Engn Mech, Key Lab Earthquake Engn & Engn Vibrat, Harbin 150080, Peoples R China.; Gu, Q (corresponding author), Xiamen Univ, Sch Architecture & Civil Engn, Xiamen 361005, Peoples R China.
EM quangu@xmu.edu.cn
RI Wang, Xinyue/KLZ-4064-2024; Qiu, Zhijian/GLR-5006-2022
FU Scientific Research Fund of the Institute of Engineering Mechanics of
   the China Earthquake Administration [2019EEEVL0503]; China's National
   Natural Science Foundation [51578473, 51978591, 51261120376]
FX The authors gratefully acknowledge the useful suggestions provided by
   Deyu Zhang and Dr. Qingxue Shang. The authors acknowledge the financial
   support from the Scientific Research Fund of the Institute of
   Engineering Mechanics of the China Earthquake Administration under grant
   No. 2019EEEVL0503, and from China's National Natural Science Foundation
   (projects 51578473, 51978591 and 51261120376).
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NR 46
TC 3
Z9 3
U1 7
U2 8
PU WORLD SCIENTIFIC PUBL CO PTE LTD
PI SINGAPORE
PA 5 TOH TUCK LINK, SINGAPORE 596224, SINGAPORE
SN 0219-4554
EI 1793-6764
J9 INT J STRUCT STAB DY
JI Int. J. Struct. Stab. Dyn.
PD FEB 29
PY 2024
VL 24
IS 04
AR 2450050
DI 10.1142/S0219455424500500
PG 29
WC Engineering, Civil; Engineering, Mechanical; Mechanics
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Mechanics
GA LL9O3
UT WOS:001187076100010
DA 2025-04-22
ER

PT J
AU Soares, AJ
   Tosato, G
AF Soares, Ana Jacinta
   Tosato, Giorgio
TI An urban system mathematical approach with human factor: The case of
   pedestrianization in a consolidated area
SO ECOLOGICAL MODELLING
LA English
DT Article
DE Human -urban mathematical model; Consolidated urban area evolution;
   Pedestrianization and human factor interaction; Urban evolution and
   resilience
ID STABILITY ANALYSIS; LANDSCAPE; RESILIENCE; DYNAMICS; MODEL
AB Promoting pedestrianization in cities and other urban areas is a revitalization strategy to enhance sustainability and liveability in these regions. It improves urban mobility and contributes to the reduction of the environmental impact of transportation. In this paper, we propose the use of a mathematical model for a human-urban system to analyse a case study of ecological management concerning pedestrianization of a consolidated area. The model is endowed of a set of two differential equations for the time evolution of two state variables and presents the novelty of incorporating the human factor, representing the proportion of population in favour to pedestrianization. The other state variable is urban related and represents the proportion of pedestrian areas, correlated to sustainability. We describe the model and discuss its main properties in terms of equilibrium states and their asymptotic stability. Then we consider a case-study and develop its numerical investigation when the mathematical model is applied. The results are interpreted in urban terms and some information is provided about future dynamics. In particular, periodic oscillations associated to limit cycle can appear and their urban fall-out is investigated.
C1 [Soares, Ana Jacinta] Univ Minho, Ctr Math, Braga, Portugal.
   [Tosato, Giorgio] Politecn Torino, Turin, Italy.
C3 Universidade do Minho; Polytechnic University of Turin
RP Tosato, G (corresponding author), Politecn Torino, Turin, Italy.
EM ajsoares@math.uminho.pt; giorgio.tosato@polito.it
OI Soares, Ana Jacinta/0000-0003-4771-9859; Tosasto,
   Giorgio/0009-0008-6642-497X
FU Portuguese FCT [UIDB/00013/2020, UIDP/00013/2020]
FX We would like to express our gratitude to Prof. Roberto Monaco for his
   precious suggestions and the fruitful discussions we engaged in
   regarding the topic of this paper. AJS acknowledges the support by the
   Portuguese FCT Projects UIDB/00013/2020 and UIDP/00013/2020 of CMAT-UM.
CR [Anonymous], 2017, From Particle Systems to Partial Differential Equations
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NR 23
TC 0
Z9 0
U1 6
U2 11
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0304-3800
EI 1872-7026
J9 ECOL MODEL
JI Ecol. Model.
PD MAR
PY 2024
VL 489
AR 110619
DI 10.1016/j.ecolmodel.2024.110619
EA JAN 2024
PG 7
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA IY9D2
UT WOS:001170009100001
DA 2025-04-22
ER

PT J
AU Qiu, T
   Sun, XH
   Chen, XS
   Su, D
   Zhang, JQ
   Xu, ZY
   Song, R
   Wang, XY
AF Qiu, Tong
   Sun, Xiaohui
   Chen, Xiangsheng
   Su, Dong
   Zhang, Jiqing
   Xu, Zhenyan
   Song, Ran
   Wang, Xiuyan
TI Experimental study and resilience modeling for prefabricated hollow
   diaphragm walls of full-assembled underground stations under urban
   multi-disturbance conditions
SO TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY
LA English
DT Article
DE Full -assembled underground station; Prefabricated hollow diaphragm
   wall; Single -walled enclosure structure; Urban multi -disturbance
   conditions; Recoverability; Resilience assessment
ID SYSTEM; RISK
AB A full-assembled underground station (FUS) using a prefabricated enclosure structure and prefabricated main structure was constructed for the first time in the Shenzhen Metro. The key technology of an FUS is the use of single-walled prefabricated diaphragm walls instead of traditional overlapping cast-in-situ diaphragm walls and exterior walls. To improve the applicability of a single-walled diaphragm wall for an FUS, this study proposed a novel prefabricated hollow diaphragm wall (PHDW) and investigated its response and resilience to urban multidisturbance conditions. First, full-scale recoverability and ultimate bearing experiments were performed on the PHDWs. Second, a PHDW hierarchical resilience assessment framework was established. Third, a multidisturbance finite element analysis (FEA) was performed on the Shenzhen Metro FUS using PHDWs. Based on above, a security management strategy was proposed. The main conclusions are as follows: (1) The recoverability and ultimate bearing experiments revealed that the PHDW had both recoverability and ductility. (2) The FEA indicated significant variability in the multi-disturbance response of the PHDWs. Therefore, a rigid deformation control is inappropriate for the security management of PHDWs. (3) The disturbance deformation tolerance of a single-walled enclosure structure can be improved by approximately 20 %-60 % by using PHDW recoverability. (4) Multiple conditions of poor resilience must be fully alerted using a multi-disturbance monitoring strategy. This study provides a security management strategy for Shenzhen Metro FUS and facilitates the low-carbon construction of urban traffic facilities.
C1 [Qiu, Tong; Sun, Xiaohui; Chen, Xiangsheng; Su, Dong] Shenzhen Univ, Coll Civil & Transportat Engn, Shenzhen, Peoples R China.
   [Qiu, Tong; Sun, Xiaohui; Chen, Xiangsheng; Su, Dong] Shenzhen Key Lab Green Efficient & Intelligent Con, Shenzhen, Peoples R China.
   [Qiu, Tong; Sun, Xiaohui; Chen, Xiangsheng; Su, Dong] Shenzhen Univ, Coll Civil & Transportat Engn, Key Lab Resilient Infrastruct Coastal Cities MOE, Shenzhen, Peoples R China.
   [Zhang, Jiqing; Xu, Zhenyan; Song, Ran; Wang, Xiuyan] China Railway Design Corp, Tianjin, Peoples R China.
C3 Shenzhen University; Shenzhen University
RP Chen, XS (corresponding author), Shenzhen Univ, Coll Civil & Transportat Engn, Shenzhen, Peoples R China.
EM tongqiuszu@qq.com; sunxiaohui@szu.edu.cn; xschen@szu.edu.cn;
   sudong@szu.edu.cn; zhangjiqing@crdc.com; xuzhenyan@crdc.com;
   songran@crdc.com; wangxiuyan@crdc.com
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 Founda- tion of China (NSFC) [51938008]
FX This study was supported by the National Natural Science Founda- tion of
   China (NSFC) (Project Number 51938008) .
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NR 49
TC 18
Z9 18
U1 18
U2 93
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 MAY
PY 2023
VL 135
AR 105044
DI 10.1016/j.tust.2023.105044
EA FEB 2023
PG 21
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA J1GP7
UT WOS:001007162500001
DA 2025-04-22
ER

PT J
AU An, M
   Song, MF
   He, WJ
   Huang, J
   Fang, X
AF An, Min
   Song, Mengfei
   He, Weijun
   Huang, Jin
   Fang, Xue
TI Evaluate cities' urban water resources system resilience along a river
   and identify its critical driving factors
SO ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH
LA English
DT Article
DE Water resources system; Resilience evaluation; Spatial heterogeneity;
   Geographic Detectors; RAGA-PP; Driving factors
ID CHANGING CLIMATE; FLOOD; FRAMEWORK; CHINA; PERSPECTIVE; DISASTERS; MODEL
AB The emergence of a series of problems, such as serious water environment pollution and flood disasters, leads to an increase in an urban water resources system's vulnerability and pressure. In order to alleviate an urban water resources crisis, calculating the water resources system resilience (WRSR) and identifying its impact factors are essential. This paper constructed a resilience evaluation framework of the "Economy-Social Development-Infrastructure-Water Resources-Ecological Environment" water resources system from three stages, i.e. resistance, restoration and adaptability. Then, taking 21 cities along the Yangtze River Economic Belt's lower reaches (YREB's lower reaches) as an example, we scientifically measured the WRSR by using the Projection Pursuit Evaluation Model of Real Coding based on the Accelerating Genetic Algorithm (RAGA-PP) and analyzed its driving factors with Geographic Detectors (GD). (1) From 2010 to 2018, the overall level of the WRSR along the YREB's lower reaches was low, and it was characterized by attenuation from central cities to marginal cities; Suzhou had the highest average WRSR (0.656), while Chizhou had the lowest (0.207). (2) From stage characteristics, compared with 2010, resistance and restoration of most cities along the YREB's lower reaches showed an upward trend in 2018; however, the adaptability level of some cities was still low. From the perspective of sub-system resilience, resilience levels of different sub-systems in each urban water resources system (UWRS) were different. (3) For impact factors, average factor interpretations of per capita GDP, average wages of employees and affected areas of floods, geological disasters and typhoons were largest. Based on this, this paper provides relevant suggestions for improving the WRSR along the YREB's lower reaches to improve ability of UWRS to resist external risks.
C1 [An, Min; Song, Mengfei; He, Weijun; Huang, Jin; Fang, Xue] China Three Gorges Univ, Coll Econ & Management, 8,Univ Ave, Yichang, Peoples R China.
   [Huang, Jin] China Three Gorges Univ, Res Ctr Reservoir Resettlement, Humanities & Social Sci Coll & Univ Hubei Prov, 8,Univ Ave, Yichang, Peoples R China.
C3 China Three Gorges University; China Three Gorges University
RP Huang, J (corresponding author), China Three Gorges Univ, Coll Econ & Management, 8,Univ Ave, Yichang, Peoples R China.; Huang, J (corresponding author), China Three Gorges Univ, Res Ctr Reservoir Resettlement, Humanities & Social Sci Coll & Univ Hubei Prov, 8,Univ Ave, Yichang, Peoples R China.
EM anmin@ctgu.edu.cn; songmengfei@ctgu.edu.cn; weijunhe@ctgu.edu.cn;
   huangjin@ctgu.edu.cn; fangxue@ctgu.edu.cn
OI an, min/0000-0002-2288-7664
FU National Science Foundation of China [72004116, 71874101, 72104127];
   Hubei Social Science Foundation: Research on Optimal Allocation and
   Guarantee Measures of Trans-regional Water Pollution Load in the Yangtze
   River Economic Zone [2020051]; Hubei Province Humanities and Social
   Sciences Key Research Base Project: An Empirical Study on the Evaluation
   of Urban-rural Integration Development and Spatial Pattern Evolution in
   Chongqing Western Region [2021-SDSG-05]; 2021 Hubei Provincial
   Department of Education Science Research Program Funded Project for
   Young and Middle-aged Talents: Characteristics and driving factors of
   carbon emissions spatial-temporal transfer network in China [Q20211211]
FX This work was supported by the National Science Foundation of China (No.
   72004116, 71874101, 72104127); Hubei Social Science Foundation: Research
   on Optimal Allocation and Guarantee Measures of Trans-regional Water
   Pollution Load in the Yangtze River Economic Zone (No. 2020051); Hubei
   Province Humanities and Social Sciences Key Research Base Project: An
   Empirical Study on the Evaluation of Urban-rural Integration Development
   and Spatial Pattern Evolution in Chongqing Western Region
   (2021-SDSG-05); 2021 Hubei Provincial Department of Education Science
   Research Program Funded Project for Young and Middle-aged Talents:
   Characteristics and driving factors of carbon emissions spatial-temporal
   transfer network in China (No. Q20211211).
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NR 86
TC 7
Z9 8
U1 21
U2 114
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 FEB
PY 2023
VL 30
IS 6
BP 16355
EP 16371
DI 10.1007/s11356-022-23271-7
EA OCT 2022
PG 17
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA F7SF8
UT WOS:000862533200002
PM 36181601
DA 2025-04-22
ER

PT J
AU Vis, BN
   Evans, DL
   Graham, E
AF Vis, Benjamin N.
   Evans, Daniel L.
   Graham, Elizabeth
TI Engagement with Urban Soils Part I: Applying Maya Soil Connectivity
   Practices to Intergenerational Planning for Urban Sustainability
SO LAND
LA English
DT Article
DE soil connectivity; urban soils; urban planning; applied archaeology;
   Pre-Columbian Maya; Maya urbanism; environmental psychology; urban
   sustainable development; New Urban Agenda
ID ENVIRONMENTAL CONCERN; OUTDOOR RECREATION; ECOSYSTEM SERVICES; COLLAPSE;
   RESILIENCE; EXPERIENCE; EXPANSION; KNOWLEDGE; IMPACTS
AB Urban soil security depends on the means and social practices that enable multiple generations to maintain and improve soil resources. Soils are pivotal to urban sustainability yet seem absent from international planning advisories for sustainable urban development. Subsuming soils under broad and unspecific categories (ecosystem, environment, land, etc.) leaves soil interests indeterminate and largely ignored in urban planning. The absence of soils in sustainable urban planning advice permits planning guidelines that cause increasing land-use conversions which seal soils. Urban patterns of sealed and distanced soils, preventing access to and direct enjoyment of soil benefits, generate disengagement from soils. Despite fierce land-use competition, urban areas offer the greatest potential for soil connectivity exactly because people concentrate there. Based on previous work we accept that everyday opportunities to encounter and directly engage with soils in Pre-Columbian lowland Maya urban life rendered soil connectivity commonplace. Here, we review how the two original routes towards soil connectivity, knowledge exchange and producer-consumer relationships, reinforced and supported regular soil engagement in Maya urban practice. We frame our interpretation of Maya cultural values and urban practices in terms of leading insights from environmental psychology on pro-environmental behaviour and stakeholder attitudes and the principles of building resilience. This allows us to recognise that Maya urban soil connectivity functions thanks to the structural involvement of the largest societal stakeholder group, while imparting soil knowledge is entangled in shared socio-cultural activities rather than a task for a minority of soil specialists. The emerging Maya model for a socially engaged soil-aware urban society combines bottom-up practices and top-down social-ecological cultural values to increase resilience, to diminish reliance on long-distance supply chains, and to maintain productive human-environment relationships over the long term. As such it becomes a primary task for urban planning advice and guidelines to enable and support a widely shared and enduring culture of soil care. Urban sustainable development may only be successful if underpinned by a broadly carried increase in soil knowledge and awareness of intergenerational soil dependency.
C1 [Vis, Benjamin N.] Univ Libre Bruxelles, Fac Architecture Cambre Horta, B-1050 Brussels, Belgium.
   [Vis, Benjamin N.] Univ Autonoma Yucatan, Fac Arquitectura, Merida 97000, Mexico.
   [Evans, Daniel L.] Cranfield Univ, Sch Water Energy & Environm, Cranfield MK43 0AL, England.
   [Graham, Elizabeth] UCL, Inst Archaeol, London WC1H 0PY, England.
C3 Universite Libre de Bruxelles; Universidad Autonoma de Yucatan;
   Cranfield University; University of London; University College London
RP Evans, DL (corresponding author), Cranfield Univ, Sch Water Energy & Environm, Cranfield MK43 0AL, England.
EM benjamin.n.vis@outlook.com; daniel.l.evans@cranfield.ac.uk;
   e.graham@ucl.ac.uk
RI Evans, Daniel/AAE-2326-2021
OI Evans, Daniel/0000-0002-4484-7874
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NR 105
TC 1
Z9 1
U1 2
U2 9
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 892
DI 10.3390/land12040892
PG 20
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA E7OF9
UT WOS:000977387600001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Zhao, YH
   Wan, C
   Wang, C
   Wang, NY
   Deng, RL
   Li, BB
AF Zhao, Yuheng
   Wan, Can
   Wang, Chong
   Wang, Naiyu
   Deng, Ruilong
   Li, Binbin
TI A two-stage scheduling model for urban distribution network resilience
   enhancement in ice storms
SO IET RENEWABLE POWER GENERATION
LA English
DT Article
DE active networks; distributed power generation; distribution networks;
   failure analysis; load shedding
ID PREDICTION INTERVALS; GRID RESILIENCE; SYSTEM
AB This paper proposes a two-stage stochastic scheduling model for urban distribution network resilience enhancement against ice storms, which coordinates mobile deicing equipment routing and distributed energy resources dispatching. An improved line ice thickness prediction model and a photovoltaic power generation prediction method in accordance with conditional generative adversarial networks are proposed to provide data boundaries for scheduling strategy. Facing the uncertainty of line failure, a two-stage scenario-based distribution network optimization model is established. At first stage, the mobile deicing equipment routing strategy is decided to mitigate the impact caused by ice storms. The Monte-Carlo simulation method is introduced to describe the uncertainty of line failure due to ice acceleration. For the second stage, based on the results of photovoltaic forecasting and possible distribution line failure scenario generated by Monte-Carlo simulation method, the optimal distributed energy resources dispatching strategy can be obtained through the mixed integer programming. The proposed model is simplified to a mixed integer linear programming model that can be solved by a commercial solver. The test results on the modified IEEE 33-node system and modified 69-node system demonstrate that the proposed method can effectively improve the resilience performance of urban distribution network under ice storms.
   This paper proposes a two-stage stochastic scheduling model for urban distribution network resilience enhancement against ice storms, which coordinates mobile deicing equipment routing and distributed energy resources. An improved line ice thickness prediction model and a photovoltaic power generation prediction method in accordance with conditional generative adversarial networks are proposed to provide data boundaries for scheduling strategy.image
C1 [Zhao, Yuheng; Wan, Can] Zhejiang Univ, Coll Elect Engn, Hangzhou, Peoples R China.
   [Wang, Chong] Hohai Univ, Coll Energy & Elect Engn, Nanjing, Peoples R China.
   [Wang, Naiyu; Li, Binbin] Zhejiang Univ, Coll Civil Engn & Architecture, Hangzhou, Peoples R China.
   [Deng, Ruilong] Zhejiang Univ, Coll Control Sci & Engn, Hangzhou, Peoples R China.
C3 Zhejiang University; Hohai University; Zhejiang University; Zhejiang
   University
RP Wan, C (corresponding author), Zhejiang Univ, Coll Elect Engn, Hangzhou, Peoples R China.
EM canwan@zju.edu.cn
RI Wang, Nai-Yu/E-5303-2016; Li, Binbin/GRR-8576-2022; Deng,
   Ruilong/B-2049-2012
FU National Natural Science Foundation of China; Zhejiang Provincial
   Natural Science Foundation of China [LR22E070003];  [52277130]; 
   [U2166203]
FX This work was supported in part by the National Natural Science
   Foundation of China under Grants 52277130 and U2166203, in part by the
   Zhejiang Provincial Natural Science Foundation of China under Grant
   LR22E070003.
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NR 37
TC 1
Z9 1
U1 9
U2 46
PU INST ENGINEERING TECHNOLOGY-IET
PI HERTFORD
PA MICHAEL FARADAY HOUSE SIX HILLS WAY STEVENAGE, HERTFORD SG1 2AY, ENGLAND
SN 1752-1416
EI 1752-1424
J9 IET RENEW POWER GEN
JI IET Renew. Power Gener.
PD MAY
PY 2024
VL 18
IS 7
SI SI
BP 1149
EP 1163
DI 10.1049/rpg2.12845
EA DEC 2023
PG 15
WC Green & Sustainable Science & Technology; Energy & Fuels; Engineering,
   Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Energy & Fuels; Engineering
GA QI9E7
UT WOS:001113412800001
OA gold
DA 2025-04-22
ER

PT J
AU Keith, L
   Gabbe, CJ
   Schmidt, E
AF Keith, Ladd
   Gabbe, C. J.
   Schmidt, Erika
TI Urban heat governance: examining the role of urban planning
SO JOURNAL OF ENVIRONMENTAL POLICY & PLANNING
LA English
DT Article; Early Access
DE Extreme heat; heat planning; heat governance; climate change; urban
   heat; heat resilience; >
ID CITIES; EXPOSURE; POLICIES
AB Heat is an increasing climate risk for cities due to climate change and the urban heat island effect. Extreme heat has inequitable impacts across social, economic, and urban environmental systems. Despite increasing awareness of heat risk, the planning and governance structures for mitigating and managing heat are less understood than those for other climate risks. We studied five large, climatically-diverse U.S. cities to better understand urban heat governance with a focus on the field of urban planning. We first conducted a plan evaluation of these cities' comprehensive, climate action, and hazard mitigation plans (n = 14) and then interviewed urban planners, resilience professionals, hazard mitigation planners, emergency managers, and public health professionals (n = 22). We found that aspects of heat planning occur across a variety of municipal plans but only a small number of strategies were explicitly framed in terms of heat, suggesting an opportunity to better connect heat with other policy goals. Urban planners tended to play a backseat role relative to other professions, despite the field's importance for reducing heat-related inequity. Better understanding the role of urban planning within broader governance structures can help policymakers to best engage in heat mitigation and management.
C1 [Keith, Ladd; Schmidt, Erika] Univ Arizona, Sch Landscape Architecture & Planning, Tucson, AZ 85721 USA.
   [Gabbe, C. J.] Santa Clara Univ, Dept Environm Studies & Sci, Santa Clara, CA USA.
C3 University of Arizona; Santa Clara University
RP Keith, L (corresponding author), Univ Arizona, Sch Landscape Architecture & Planning, Tucson, AZ 85721 USA.
EM ladd@arizona.edu
RI Keith, Ladd/AAU-6494-2020
OI Gabbe, C.J./0000-0002-0084-580X; Keith, Ladd/0000-0002-5549-0372
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NR 47
TC 16
Z9 16
U1 9
U2 55
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.
PD 2023 AUG 8
PY 2023
DI 10.1080/1523908X.2023.2244446
EA AUG 2023
PG 21
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA P2GE4
UT WOS:001048867700001
DA 2025-04-22
ER

PT J
AU Maggi, S
   Roberts, W
   MacLennan, D
   D'Angiulli, A
AF Maggi, Stefania
   Roberts, William
   MacLennan, David
   D'Angiulli, Amedeo
TI Community resilience, quality childcare, and preschoolers' mental
   health: A three-city comparison
SO SOCIAL SCIENCE & MEDICINE
LA English
DT Article
DE Canada; British Columbia; Childcare; Mental health; Resilience;
   Community; Social capital; Children
ID EARLY-LIFE; POVERTY; DISORDER; SAMPLE
AB Many studies suggest that quality childcare can positively influence children's outcomes in a wide range of domains, including mental health. While an extensive literature on the effects of childcare on individual children exists, how quality childcare programs contribute to trends at the population-level is yet to be established. In this study, we examine community differences in the quality of childcare and the mental health of children attending childcare centres in three communities in British Columbia, Canada. Previous research on Kindergarten children conducted in these communities indicated that two exhibited expected outcomes (based on socioeconomic criteria, these communities were classified as "better off" and "worse off"), and one exhibited better than expected outcomes and was therefore labeled "resilient." We hypothesized that the better than expected child outcomes in the resilient community were due to better quality childcare in this community. To test this hypothesis, we assessed 621 children and their 24 respective childcare centres, and conducted extensive observations of the three study communities. As expected. teachers (but not parents) from the resilient community reported fewer children's mental health problems and childcare quality was found to be higher in the resilient community than in the comparison communities. However, city differences were lost in the hierarchical linear regressions suggesting that the community effects were mediated through childcare quality. To interpret these findings we turned to our observations that indicated that the resilient community was markedly different from the other two in terms of the social capital and developmental assets that it possessed. (C) 2011 Elsevier Ltd. All rights reserved.
C1 [Maggi, Stefania] Carleton Univ, Inst Interdisciplinary Studies, Ottawa, ON, Canada.
   [Roberts, William; MacLennan, David] Thompson Rivers Univ, Kamloops, BC, Canada.
C3 Carleton University
RP Maggi, S (corresponding author), Carleton Univ, Inst Interdisciplinary Studies, Room 2010,Dunton Tower,1125 Colonel Dr, Ottawa, ON, Canada.
EM stefania_maggi@carleton.ca
FU Michael Smith Foundation for Health Research; Canadian Institutes for
   Health Research; Human Early Learning Partnership; Rotary Community
   Trust
FX We would like to thank the Michael Smith Foundation for Health Research,
   the Canadian Institutes for Health Research, the Human Early Learning
   Partnership, and the Rotary Community Trust Fund for financial
   contributions; the children, families, managers, and staff working at
   the participating childcare centres for contributing their time,
   resources, and ideas to this project; and Christine and Josh Miller for
   their invaluable dedication to the project.
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NR 44
TC 8
Z9 9
U1 5
U2 37
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 OCT
PY 2011
VL 73
IS 7
BP 1080
EP 1087
DI 10.1016/j.socscimed.2011.06.052
PG 8
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 831QD
UT WOS:000295745300017
PM 21835523
DA 2025-04-22
ER

PT J
AU Cerbaro, M
   Morse, S
   Murphy, R
   Middlemiss, S
   Michelakis, D
AF Cerbaro, Mercio
   Morse, Stephen
   Murphy, Richard
   Middlemiss, Sarah
   Michelakis, Dimitrios
TI Assessing Urban Vulnerability to Flooding: A Framework to Measure
   Resilience Using Remote Sensing Approaches
SO SUSTAINABILITY
LA English
DT Article
DE vulnerability; flooding; remote sensing; Earth Observation (EO); Google
   Street View (GSV); climate change
ID GOOGLE STREET VIEW; RISK; DISASTERS; BRAZIL
AB Assessing and measuring urban vulnerability resilience is a challenging task if the right type of information is not readily available. In this context, remote sensing and Earth Observation (EO) approaches can help to monitor damages and local conditions before and after extreme weather events, such as flooding. Recently, the increasing availability of Google Street View (GSV) coverage offers additional potential ways to assess the vulnerability and resilience to such events. GSV is available at no cost, is easy to use, and is available for an increasing number of locations. This exploratory research focuses on the use of GSV and EO data to assess exposure, sensitivity, and adaptation to flooding in urban areas in the cities of Belem and Rio Branco in the Amazon region of Brazil. We present a Visual Indicator Framework for Resilience (VIFOR) to measure 45 indicators for these characteristics in 1 km(2) sample areas in poor and richer districts in the two cities. The aim was to assess critically the extent to which GSV-derived information could be reliable in measuring the proposed indicators and how this new methodology could be used to measure vulnerability and resilience where official census data and statistics are not readily available. Our results show that variation in vulnerability and resilience between the rich and poor areas in both cities could be demonstrated through calibration of the chosen indicators using GSV-derived data, suggesting that this is a useful, complementary and cost-effective addition to census data and/or recent high resolution EO data. Furthermore, the GSV-linked approach used here may assist users who lack the technical skills to process raw EO data into usable information. The ready availability of insights on the vulnerability and resilience of diverse urban areas by straightforward remote sensing methods such as those developed here with GSV can provide valuable evidence for decisions on critical infrastructure investments in areas with low capacity to cope with flooding.
C1 [Cerbaro, Mercio; Morse, Stephen; Murphy, Richard] Univ Surrey, Ctr Environm & Sustainabil, Guildford GU2 7XH, Surrey, England.
   [Middlemiss, Sarah; Michelakis, Dimitrios] Ecometr Ltd, Orchard Brae House,30 Queensferry Rd, Edinburgh EH4 2HS, Midlothian, Scotland.
C3 University of Surrey
RP Cerbaro, M (corresponding author), Univ Surrey, Ctr Environm & Sustainabil, Guildford GU2 7XH, Surrey, England.
EM m.cerbaro@surrey.ac.uk; s.morse@surrey.ac.uk; rj.murphy@surrey.ac.uk;
   sarah.middlemiss@ecometrica.com; dimitrios.michelakis@ecometrica.com
RI Morse, Sophie/AAG-1528-2021
OI Morse, Stephen/0000-0002-0519-1454; MURPHY, Richard/0000-0002-3063-515X
FU Space Research and Innovation Network for Technology (SPRINT) programme
   of Research Englands Connected Capabilities Fund; Ecometrica Ltd.
   [OW131379P2V5]
FX The Space Research and Innovation Network for Technology (SPRINT)
   programme of Research Englands Connected Capabilities Fund and
   Ecometrica Ltd., project award OW131379P2V5.
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NR 41
TC 5
Z9 5
U1 8
U2 47
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 4
AR 2276
DI 10.3390/su14042276
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 ZK2TS
UT WOS:000762846900001
OA gold
DA 2025-04-22
ER

PT J
AU Luo, XR
   Liu, P
   Xia, Q
   Cheng, Q
   Liu, WB
   Mai, YY
   Zhou, CT
   Zheng, YL
   Wang, DC
AF Luo, Xinran
   Liu, Pan
   Xia, Qian
   Cheng, Qian
   Liu, Weibo
   Mai, Yiyi
   Zhou, Chutian
   Zheng, Yalian
   Wang, Dianchang
TI Machine learning-based surrogate model assisting stochastic model
   predictive control of urban drainage systems
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban drainage system; Combined sewer overflow; Stochastic model
   predictive control; Machine learning -based surrogate model; Resilience
ID REAL-TIME CONTROL; RESILIENCE; INFRASTRUCTURE; FRAMEWORK; RISK
AB Quantifying the uncertainty of stormwater inflow is critical for improving the resilience of urban drainage systems (UDSs). However, the high computational complexity and time consumption obstruct the implementation of uncertainty-addressing methods for real-time control of UDSs. To address this issue, this study developed a machine learning-based surrogate model (MLSM) that maintains high-fidelity descriptions of drainage dynamics and meanwhile diminishes the computational complexity. With stormwater inflow and controls as inputs and system overflow as the output, MLSM is able to fast evaluate system performance, and therefore stochastic optimization becomes feasible. Thus, a real-time control strategy was built by combining MLSM with the stochastic model predictive control. This strategy used stochastic stormwater inflow scenarios as input and aimed to minimize the expected overflow under all scenarios. An ensemble of stormwater inflow scenarios was generated by assuming the forecast errors follow normal distributions. To downsize the ensemble, representative scenarios with their probabilities were selected using the simultaneous backward reduction method. The proposed control strategy was applied to a combined UDS of China. Results are as follows. (1) MLSM fit well with the original high-fidelity urban drainage model, while the computational time was reduced by 99.1%. (2) The proposed strategy consistently outperformed the classical deterministic model predictive control in both magnitude and duration dimensions of system resilience, when the consumed time compatible is with the real-time operation. It is indicated that the proposed control strategy could be used to inform the realtime operation of complex UDSs and thus enhance system resilience to uncertainty.
C1 [Luo, Xinran; Liu, Pan; Cheng, Qian; Liu, Weibo; Mai, Yiyi; Zhou, Chutian; Zheng, Yalian] Wuhan Univ, State Key Lab Water Resources Engn & Management, Wuhan 430072, Peoples R China.
   [Luo, Xinran; Liu, Pan; Cheng, Qian; Liu, Weibo; Mai, Yiyi; Zhou, Chutian; Zheng, Yalian] 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; Mai, Yiyi; Zhou, Chutian; Zheng, Yalian] Wuhan Univ, Res Inst Water Secur RIWS, Wuhan 430072, Peoples R China.
   [Xia, Qian] Hubei Water Resources Res Inst, Hubei Water Resources & Hydropower Sci & Technol P, Wuhan 430070, 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.
EM liupan@whu.edu.cn
RI Liu, Pan/E-9344-2011
OI Liu, Pan/0000-0002-3777-6561; Cheng, Qian/0000-0002-8924-345X
FU National Key R & D Program of China [2022YFC3202804]; National Science
   Fund for Distinguished Young Scholars of China [52225901]
FX This study was supported by the National Key R & D Program of China
   (Grant No. 2022YFC3202804) , and the National Science Fund for
   Distinguished Young Scholars of China (Grant No. 52225901) . 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 51
TC 10
Z9 10
U1 17
U2 57
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 NOV 15
PY 2023
VL 346
AR 118974
DI 10.1016/j.jenvman.2023.118974
EA SEP 2023
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA T8FT5
UT WOS:001080291700001
PM 37714088
DA 2025-04-22
ER

PT J
AU Satorras, M
   Ruiz-Mallén, I
   Monterde, A
   March, H
AF Satorras, Mar
   Ruiz-Mallen, Isabel
   Monterde, Arnau
   March, Hug
TI Co-production of urban climate planning: Insights from the Barcelona
   Climate Plan
SO CITIES
LA English
DT Article
DE Citizen involvement; Co-production; Digital platform; Participation;
   Urban climate governance
ID KNOWLEDGE COPRODUCTION; CHANGE ADAPTATION; POLICY; GOVERNANCE; LESSONS;
   SCIENCE; SUSTAINABILITY; RESILIENCE; COMMUNITY; POWER
AB Climate policy co-production represents an emerging institutional arrangement promising to better and fairly involve societal actors in resilience policy-making. Little evidence exists, however, on how climate policy coproduction is understood, planned and performed in cities. This article sheds light on these co-production processes through an in-depth analysis of the case study of the Barcelona Climate Plan. While traditional forms of public engagement such as face-to-face workshops served to collect most proposals from organizations, new tools such as the digital platform resulted in increased lay citizen involvement and process transparency. Participants, including organizers of the co-production process, did not share a clear understanding of what co-production was about, which can endanger the fulfilment of the goals. These findings shed light over effective and limiting procedural and conceptual aspects for co-production of urban climate policies and guide a critical discussion over the added value and the transformative potential of the co-production approach to reframe urban climate resilience planning in cities.
C1 [Satorras, Mar; Ruiz-Mallen, Isabel; Monterde, Arnau; March, Hug] Univ Oberta Catalunya UOC, Internet Interdisciplinary Inst IN3, Av Carl Friedrich Gauss 5, Barcelona 08860, Spain.
   [March, Hug] Univ Oberta Catalunya UOC, Estudis Econ & Empresa, Av Tibidabo 39-43, Barcelona 08035, Spain.
C3 UOC Universitat Oberta de Catalunya; UOC Universitat Oberta de Catalunya
RP Satorras, M (corresponding author), Univ Oberta Catalunya UOC, Internet Interdisciplinary Inst IN3, Av Carl Friedrich Gauss 5, Barcelona 08860, Spain.
EM mgrausat@uoc.edu; iruiz_mallen@uoc.edu; amonterde@uoc.edu;
   hmarch@uoc.edu
RI March, Hug/F-4935-2016; Satorras, Mar/AAB-2054-2021; Ruiz-Mallen,
   Isabel/E-9614-2018
OI Satorras, Mar/0000-0003-0991-7141
FU Spanish Ministry of Science and Innovation through the RESCITIES
   project: Plan Nacional (MCIU/AEI/FEDER, UE) [PGC2018-100996-A-I00];
   Fundacio Universitat Oberta de Catalunya (UOC Postdoctoral Research
   Fellowships); Spanish State Research Agency through a "Juan de la
   Cierva-Formacion" program [FJCI-2017-31723]; Spanish State Research
   Agency through a "Ramon y Cajal" research fellowship [RYC-2015-17676]
FX This work received funding from the Spanish Ministry of Science and
   Innovation through the RESCITIES project: Plan Nacional
   (PGC2018-100996-A-I00 (MCIU/AEI/FEDER, UE)). This research was also
   supported by the Fundacio Universitat Oberta de Catalunya (UOC
   Postdoctoral Research Fellowships). M. Satorras acknowledges funding
   received from the Spanish State Research Agency through a "Juan de la
   Cierva-Formacion" program (FJCI-2017-31723). I. Ruiz-Mallen acknowledges
   support from the Spanish State Research Agency through a "Ramon y Cajal"
   research fellowship (RYC-2015-17676).
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NR 76
TC 35
Z9 37
U1 10
U2 70
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 NOV
PY 2020
VL 106
AR 102887
DI 10.1016/j.cities.2020.102887
PG 11
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA NY8LZ
UT WOS:000576635800002
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Ianos, I
   Jones, R
AF Ianos, Ioan
   Jones, Roy
TI Local aspects of change in the rural-urban fringe of a metropolitan
   area: A study of Bucharest, Romania
SO HABITAT INTERNATIONAL
LA English
DT Article
ID SUSTAINABLE DEVELOPMENT; RESILIENCE; URBANIZATION; MIGRATION;
   COMPLEXITY; RESISTANCE; DYNAMICS; QUALITY; CHINA; SOUTH
C1 [Ianos, Ioan] Univ Bucharest, Interdisciplinary Ctr Adv Res Terr Dynam, Blvd Regina Elisabeta,4-12, Bucharest 030018, Romania.
   [Jones, Roy] Curtin Univ, Geog Discipline Grp, Perth, WA 6845, Australia.
C3 University of Bucharest; Curtin University
RP Jones, R (corresponding author), Curtin Univ, Geog Discipline Grp, Perth, WA 6845, Australia.
EM r.jones@curtin.edu.au
RI Ianos, Ioan/B-9296-2012
OI Ianos, Ioan/0000-0002-9566-3020
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NR 61
TC 18
Z9 18
U1 6
U2 45
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 SEP
PY 2019
VL 91
AR 102026
DI 10.1016/j.habitatint.2019.102026
PG 8
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 IY4KC
UT WOS:000486358900006
DA 2025-04-22
ER

PT J
AU Patten, DT
AF Patten, Duncan T.
TI The role of ecological wisdom in managing for sustainable interdependent
   urban and natural ecosystems
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article; Proceedings Paper
CT International Symposium on Ecological Wisdom for Urban Sustainability
CY OCT 17-18, 2014
CL Chongqing, PEOPLES R CHINA
SP Chongqing Univ, Sch Architecture & Urban Planning, E China Normal Univ, Sch Ecol & Environm Sci, E China Normal Univ, Shanghai Key Lab Urban Ecol Proc & Eco Restorat, Journal Landscape & Urban Planning, Journal Acta Ecologica Sinica, Journal Landscape Architecture
DE Ecological wisdom; Urban; Riverine; Sustainability; Ecosystem services
ID RIVER; RESILIENCE; RESISTANCE; SERVICES; IMPACTS; LESSONS
AB This conceptual paper has two goals. First it reviews aspects of sustainability and resilience and their relationship to management of coupled, interdependent urban and natural ecosystems where the natural ecosystem supplies goods and services to help maintain urban sustainability. Second, it explores whether urban ecosystems and natural ecosystems that help sustain the urban ecosystem can both be sustainable, and whether ecological wisdom could be an overarching tool guiding how these two systems are managed to maintain sustainability of both. In doing this, the concept of ecological wisdom is expanded from a philosophical context to a practical context applicable to 21st century ecosystem management. Using several cases of interrelationships between urban and natural ecosystems, ecological wisdom is conceptually shown to be a preferred management process. The cases also demonstrate that, regardless of management approaches to create sustainable functioning riverine ecosystems modified to supply clean water as goods and services to urban areas for urban sustainability; it is unlikely that these riverine ecosystems will ever be fully functional. As a comprehensive management approach, ecological wisdom conceptually may come closest to creating both sustainable urban ecosystems and sustainable functional riverine ecosystems. (C) 2016 Elsevier B.V. All rights reserved.
C1 [Patten, Duncan T.] Arizona State Univ, Life Sci, 8945 Trooper Trail, Bozeman, MT 59715 USA.
C3 Arizona State University
RP Patten, DT (corresponding author), Arizona State Univ, Life Sci, 8945 Trooper Trail, Bozeman, MT 59715 USA.
EM dtpatten@mcn.net
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NR 49
TC 35
Z9 38
U1 2
U2 94
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 NOV
PY 2016
VL 155
SI SI
BP 3
EP 10
DI 10.1016/j.landurbplan.2016.01.013
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); Conference Proceedings Citation Index - Social Science &amp; Humanities (CPCI-SSH); Conference Proceedings Citation Index - Science (CPCI-S)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA EA2CQ
UT WOS:000386400800002
DA 2025-04-22
ER

PT J
AU Montero-Gutiérrez, P
   Amores, TP
   Delgado, MG
   Félix, JLM
   Ramos, JS
   Domínguez, SA
AF Montero-Gutierrez, Paz
   Amores, Teresa Palomo
   Delgado, MCarmen Guerrero
   Felix, Jose Luis Molina
   Ramos, Jose Sanchez
   Dominguez, Servando Alvarez
TI Improving urban resilience and habitability by an effective regeneration
   of the streets: A comprehensive approach step-by-step validated in a
   real case
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Urban resilience; Urban regeneration; Climate adaption; Urban thermal
   comfort index; Urban heat island; Anthropogenic heat
ID HEAT-ISLAND; THERMAL COMFORT; MODEL; STRESS; DESIGN
AB The world ' s average temperature has increased by 1 degrees C, leading to more frequent and intense extreme weather events. Attention has turned to the Urban Heat Island (UHI), a warming phenomenon in cities resulting from human activities and the urban design. In this way, urban adaptation of streets and the development of new urban spaces focus on achieving thermal comfort. While the research community proposed surface energy balances (SEB), a limitation arises from SEB ' s ability to identify UHI due to its exclusion of anthropogenic heat. This study highlights the need to address anthropogenic variables and the importance of continuous monitoring in urban areas undergoing adaptation. A calculation method called co -simulation is suggested to incorporate anthropogenic heat using ENVI-met software as the basis. Adaptation justification involves monitoring and assessing the COMFA comfort index in an avenue. The calculation process proposes improvements for a comfortable environment, evaluating the microclimate impact on urban adaptation. Implementation, ongoing monitoring, and a comprehensive sensitivity analysis of the COMFA comfort index ensure a 60% improvement in the thermal sensation from June to September. This approach promotes the adoption of innovative solutions for climate change, emphasizing energy efficiency and well-being in urban spaces.
C1 [Montero-Gutierrez, Paz; Amores, Teresa Palomo; Delgado, MCarmen Guerrero; Felix, Jose Luis Molina; Ramos, Jose Sanchez; Dominguez, Servando Alvarez] Univ Seville, Escuela Super Ingn, Grp Termotecnia, Camino Descubrimientos S-N, Seville 41092, Spain.
C3 University of Sevilla
RP Delgado, MG (corresponding author), Univ Seville, Escuela Super Ingn, Grp Termotecnia, Camino Descubrimientos S-N, Seville 41092, Spain.
EM mmontero1@us.es; tpalomo@us.es; mgdelgado@us.es; jlmolina@us.es;
   jsr@us.es; salvarez@us.es
RI Palomo, Teresa/AAP-7169-2021; Montero-Gutierrez, Paz/KZU-0745-2024;
   Sánchez Ramos, José/G-1941-2010
OI Montero Gutierrez, Paz/0000-0002-4587-3310; Palomo Amores, Teresa
   Rocio/0000-0003-4513-9826
FU CONSTANCY-Resilient urbanisation methodologies and natural conditioning
   using imaginative nature-based solutions and cultural heritage to
   recover the street life" [PID2020-118972RB-I00]; Spanish Ministry of
   Science and Innovation [TED2021-130416B-I00]
FX This study has been funded by the projects "CONSTANCY-Resilient
   urbanisation methodologies and natural conditioning using imaginative
   nature-based solutions and cultural heritage to recover the street life"
   (Grant Agreement PID2020-118972RB-I00) and the project
   "NATUR-BEAM-Lighting the way to a greener future to restore urban
   habitability through nature-based solutions" (Grant Agreement
   TED2021-130416B-I00) by the Spanish Ministry of Science and Innovation.
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NR 44
TC 0
Z9 0
U1 11
U2 19
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 2024
VL 256
AR 111471
DI 10.1016/j.buildenv.2024.111471
EA APR 2024
PG 19
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA RS6N3
UT WOS:001229690300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Patil, GR
   Bhavathrathan, BK
AF Patil, Gopal R.
   Bhavathrathan, B. K.
TI EFFECT OF TRAFFIC DEMAND VARIATION ON ROAD NETWORK RESILIENCE
SO ADVANCES IN COMPLEX SYSTEMS
LA English
DT Article
DE Urban road network; capacity degradation; network resilience; demand
   sensitivity; generalized index of resilience
ID COMPLEXITY
AB Certain capacity degradation levels increase travel times on road networks, while traffic demand remains met. Resilience of a road network is higher, if it can take-in higher levels of degradation without leaving any part of the demand unmet. It is important for planners to quantify this, and it can be obtained as the output of an optimization problem. The resultant measure of resilience is demand-specific. To generalize the resilience measure, its sensitivity to change in demand should be studied. We observe that irrespective of the difference in network size or network topology, resilience decreases with increase in demand. We perform computational experiments on different network topologies to investigate the relationship between network resilience and traffic demand. Based on this, we introduce the area under the demand-resilience curve as a generalized index of resilience (GIR). We compare the GIR with traditional network indicators and find that it is in certain ways, better.
C1 [Patil, Gopal R.; Bhavathrathan, B. K.] Indian Inst Technol, Dept Civil Engn, Transportat Syst Engn, Bombay 400076, Maharashtra, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Bombay
RP Patil, GR (corresponding author), Indian Inst Technol, Dept Civil Engn, Transportat Syst Engn, Bombay 400076, Maharashtra, India.
EM gpatil@iitb.ac.in; bhavathrathan@iitb.ac.in
RI Patil, Gopal/P-4567-2014; BK, Bhavathrathan/AAU-1231-2020; Bhattiyil
   Kuzhiyamkunnath, Bhavathrathan/D-9404-2016
OI Bhattiyil Kuzhiyamkunnath, Bhavathrathan/0000-0001-7993-6861; Patil,
   Gopal/0000-0002-2281-1870
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NR 33
TC 13
Z9 13
U1 4
U2 72
PU WORLD SCIENTIFIC PUBL CO PTE LTD
PI SINGAPORE
PA 5 TOH TUCK LINK, SINGAPORE 596224, SINGAPORE
SN 0219-5259
EI 1793-6802
J9 ADV COMPLEX SYST
JI Adv. Complex Syst.
PD FEB-MAR
PY 2016
VL 19
IS 1-2
AR 1650003
DI 10.1142/S021952591650003X
PG 18
WC Mathematics, Interdisciplinary Applications; Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Mathematics; Science & Technology - Other Topics
GA DR3LY
UT WOS:000379805900004
DA 2025-04-22
ER

PT J
AU Chen, XF
   Ma, SH
   Chen, L
   Yang, L
AF Chen, Xifang
   Ma, Shuhong
   Chen, Lin
   Yang, Lei
TI Resilience measurement and analysis of intercity public transportation
   network
SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Resilience assessment; Service feature; Complex network; Intercity
   transportation; Disruption; Recovery
ID HIGH-SPEED RAIL; VULNERABILITY ANALYSIS; SYSTEMS; ROBUSTNESS; METRO
AB The resilience measurement of intercity public transportation networks is of great significance for the region's safety and sustainability. This study discusses the topological and functional resilience of sub-networks and multi-modal network under different disruptions. Specifically, functional resilience is measured by comprehensively considering the service features of transportation modes. Additionally, the recovery priority of failed nodes to maximize network resilience is also discussed. The intercity coach/train timetable data and intercity travel data from the Guanzhong Plain urban agglomeration in China were applied to demonstrate the application of the methods. The results show that multi-modal network is more resilient to disruptions than sub-networks. According to the comparison, network functional resilience is more easily compromised and has less effectiveness on recovery than topological resilience. The findings could help stakeholders better understand transportation resilience and provide a valuable reference for formulating pre- or post-disaster resilience development strategies.
C1 [Chen, Xifang; Ma, Shuhong; Chen, Lin; Yang, Lei] Changan Univ, Sch Transportat Engn, Xian 710064, Shaanxi, Peoples R China.
C3 Chang'an University
RP Ma, SH (corresponding author), Changan Univ, Sch Transportat Engn, Xian 710064, Shaanxi, Peoples R China.
EM chenxifang@chd.edu.cn; msh@chd.edu.cn; linchen@chd.edu.cn;
   chdyanglei@163.com
RI Yang, Lei/AAD-6795-2022; Chen, Xifang/AAI-5223-2020
FU Humanities and Social Science Research Foundation of the Ministry of
   Education of China [23YJAZH097]; Social Science Foundation of Shaanxi
   Provincial [2023R030]; Science and Technology Project of Shaanxi
   Provincial Communications Department [21-13R]; The 111 project of
   Sustainable Development of Transportation in Western Urban Agglomeration
   [B20035]
FX This work was supported by the Humanities and Social Science Research
   Foundation of the Ministry of Education of China (23YJAZH097) ; Social
   Science Foundation of Shaanxi Provincial (2023R030) ; Science and
   Technology Project of Shaanxi Provincial Communications Department
   (21-13R) ; and 111 project of Sustainable Development of Transportation
   in Western Urban Agglomeration (B20035) .
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NR 89
TC 10
Z9 10
U1 132
U2 214
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 JUN
PY 2024
VL 131
AR 104202
DI 10.1016/j.trd.2024.104202
EA APR 2024
PG 22
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 RU7O6
UT WOS:001230242000001
DA 2025-04-22
ER

PT J
AU Pasimeni, MR
   Valente, D
   Zurlini, G
   Petrosillo, I
AF Pasimeni, Maria Rita
   Valente, Donatella
   Zurlini, Giovanni
   Petrosillo, Irene
TI The interplay between urban mitigation and adaptation strategies to face
   climate change in two European countries
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Urban adaptive capacity; Urban resilience; SECAPs; Adaptation
   strategies; Mitigation strategies
ID GREEN INFRASTRUCTURE; CITIES; RESILIENCE; GOVERNMENT; GOVERNANCE;
   POLITICS; TRANSITIONS; DISTURBANCE; SCALES
AB The growing recognition of the contribution of urban areas to adaptation and mitigation strategies implemented in response to climate change has led to several policy initiatives. Among others, the "Covenant of Mayors for Climate and Energy" is the most acknowledged, providing local govemments with the opportunity to overcome the mitigation-adaptation dichotomy and enhance urban resilience. In this context, the main aim of this paper is to analyse the synergy between adaptation and mitigation actions in some European Sustainable Energy and Climate Action Plans at an urban level. We will do this through: (1) the proposal of a novel classification model of climate change mitigation and adaptation measures, which will be capable of classifying, in a common way, the best practices carried out at an urban level; and (2) a comparison of the best climate change management practices carried out by two European countries (Italy and Spain). The classification model is based on three urban sectors: (1) Urban Adaptation and Health (UA&H), (2) Transport & Infrastructure (T&I), and (3) Energy (NRG). Urban management measures have been classified as soft (more focused on environmental information), gray (more focused on buildings), and green (more focused on nature-based solutions). The overall comparative analysis between Italy and Spain shows that in large and medium-sized Italian cities, mainly soft (52%) and green (28%) adaptation measures have been integrated into local energy-environmental planning in combination with mitigation actions. However, in both countries, decisions regarding the type of measures to be implemented are taken independently of the size of the city. This paper, in line with other research, highlights the importance of nature-based solutions as a first step in the integration process between adaptation and mitigation strategies at an urban level.
C1 [Pasimeni, Maria Rita; Valente, Donatella; Zurlini, Giovanni; Petrosillo, Irene] Univ Salento, Dept Biol & Environm Sci & Technol, Lab Landscape Ecol, Lecce, Italy.
C3 University of Salento
RP Valente, D (corresponding author), Univ Salento, Dept Biol & Environm Sci & Technol, Lab Landscape Ecol, Lecce, Italy.
EM donatella.valente@unisalento.it
RI Valente, Donatella/AAY-4679-2020; Petrosillo, Irene/N-8039-2015
OI Pasimeni, Maria Rita/0000-0002-9181-4354; Petrosillo,
   Irene/0000-0002-7359-4095; Valente, Donatella/0000-0002-4566-1473;
   Zurlini, Giovanni/0000-0002-2432-5294
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NR 49
TC 50
Z9 51
U1 9
U2 72
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 MAY
PY 2019
VL 95
BP 20
EP 27
DI 10.1016/j.envsci.2019.02.002
PG 8
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HR4PJ
UT WOS:000463128100003
DA 2025-04-22
ER

PT J
AU Peng, PY
   Li, MY
   Ao, YB
   Deng, SL
   Martek, I
AF Peng, Panyu
   Li, Mingyang
   Ao, Yibin
   Deng, Shulin
   Martek, Igor
TI Spatial-temporal evolution of driving mechanisms of city resilience: A
   Sichuan-based case study
SO LAND USE POLICY
LA English
DT Article
DE City resilience; Spatial -temporal evolution; Urbanization; Beautiful
   Sichuan; Driving mechanism
ID CLIMATE-CHANGE; MARKOV-CHAINS; URBAN; URBANIZATION; REGIONS; CITIES;
   SPACE
AB The rapid development of urbanization has brought a series of challenges to cities, including a shortage of resources, environmental pollution, social inequality and escalating disaster risks. Cities, especially those in underdeveloped regions, are more vulnerable because they face multiple challenges and pressures. Thus, in developing countries, and in particular in China's western region, which has experienced more intense urbanization, the implementation of city resilience is especially crucial. Representative of China's western region, Sichuan Province, was the first province to issue an outline of local practice planning, styled "Beautiful China Construction." Sichuan is thus a pioneering venture in China's effort to develop city resilience. Presently, however, existing literature on resilience governance has targeted developed regions, which is of limited application in developing countries and regions. Therefore, this study adopts a multi-dimensional and multimethod research design, aimed at bringing to light the key dimensions of city resilience, and analyzing the degree to which these align with China's "Beautiful Sichuan Policy." The results reveal that: (1) During the period from 2015 to 2021, city resilience showed an obvious upward trend, stability has been enhanced, relative variability has decreased, there is a radiation effect among cities, and a right-skewed uneven distribution is observed. (2) The spatial distribution of city resilience is unbalanced, with Chengdu and Panzhihua experiencing a relatively high level of resilience, while other areas remain relatively low. (3) City resilience is influenced by many interacting factors. Economic recovery ability, the level of urban development, policies and institutions, and infrastructure development have different degrees of positive impacts. However, sewage discharge levels have different effects on city resilience over time. These research results provide important theoretical support and policy references regarding city resilience construction practice and city resilience research.
C1 [Peng, Panyu; Ao, Yibin; Deng, Shulin] Chengdu Univ Technol, Coll Environm & Civil Engn, Chengdu 610059, Peoples R China.
   [Li, Mingyang; Ao, Yibin] Chengdu Univ Technol, Coll Management Sci, Chengdu 610059, Peoples R China.
   [Martek, Igor] Deakin Univ, Sch Architecture & Built Environm, Geelong 3220, Australia.
C3 Chengdu University of Technology; Chengdu University of Technology;
   Deakin University
RP Ao, YB (corresponding author), Chengdu Univ Technol, Coll Environm & Civil Engn, Chengdu 610059, Peoples R China.
EM aoyibin10@mail.cdut.edu.cn
RI Martek, Igor/HCH-6448-2022
FU Population and Development Research Base [2023PD01]; Project of
   Beautiful Countryside Construction and Development Research Center
   [CCRC2024-5, GTFY2023001, ZHJJ2023YJS001]
FX Thanks to the anonymous reviewers for the valuable comments on this
   article. This research is funded by the National Natural Science
   Foundation of China (72171028) , the China Postdoctoral Science
   Foundation (2022T150077, 2022M710496) , the Project of Research Center
   for Science and Technology Innovation and New Economy in the Twin Cities
   Economic Circle of Chengdu-Chongqing Region (CYCX2023XSXRZC08) , the
   Project of Chengdu Green and Low Carbon Development Research Base
   (LD2024Z06) , the Project of Chengdu Population and Development Research
   Base (2023PD01) , the Project of Beautiful Countryside Construction and
   Development Research Center (CCRC2024-5) , the Project of the Research
   Base for Promoting Common Wealth in the New Era (GTFY2023001) , the
   Project of Sichuan Center for Disaster Economic Research
   (ZHJJ2023YJS001) .r Population and Development Research Base (2023PD01)
   , the Project of Beautiful Countryside Construction and Development
   Research Center (CCRC2024-5) , the Project of the Research Base for
   Promoting Common Wealth in the New Era (GTFY2023001) , the Project of
   Sichuan Center for Disaster Economic Research (ZHJJ2023YJS001) .
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NR 82
TC 6
Z9 6
U1 36
U2 80
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 AUG
PY 2024
VL 143
AR 107210
DI 10.1016/j.landusepol.2024.107210
EA MAY 2024
PG 16
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA UD2K6
UT WOS:001246056600001
DA 2025-04-22
ER

PT J
AU Borie, M
   Ziervogel, G
   Taylor, FE
   Millington, JDA
   Sitas, R
   Pelling, M
AF Borie, Maud
   Ziervogel, Gina
   Taylor, Faith E.
   Millington, James D. A.
   Sitas, Rike
   Pelling, Mark
TI Mapping (for) resilience across city scales: An opportunity to open-up
   conversations for more inclusive resilience policy?
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Resilience; Science-policy; Mapping; Informal settlements; Nairobi; Cape
   Town
ID URBAN RESILIENCE; GIS; PARTICIPATION; KNOWLEDGE; RISK; TERRITORIES;
   POLITICS; STORIES; SYSTEMS
AB There are growing calls, across a continuum from international agreements to social movements, for strengthening urban resilience alongside reductions in inequality and poverty. Although there is broad agreement on what the term resilience means in general, different perspectives exist on how the concept should be implemented locally and controversies around its transformative potential continue. While differing social and institutional factors are important, the ways in which knowledge practices produce these diverse perspectives have been overlooked. To address this gap, this paper focuses on the role of spatial knowledge and mapping practices for resilience and disaster risk reduction. Traditionally, much of the spatial data used for planning has been quantitative and at broad, city-level scales. However, although experiential understandings of resilience have been widely identified, there have been few attempts to integrate these perspectives, often relying on qualitative and experiential knowledge, into city-level resilience planning.
   Bringing together insights from Science and Technology Studies and Human Geography, this paper explores the opportunities that different mapping techniques provide for resilience thinking and planning. Our starting point is that science and technology are not neutral for governance and can both open up or close down governance options. Using case studies from Nairobi and Cape Town, our findings show that mapping practices are heterogeneous and produce diverse understandings of resilience. Although traditional methods dominate city mapping in these case studies, we find innovation at both the city and finer spatial scales. Maps and mapping offer opportunities for resilience via connecting diverse actors, scales and forms of knowledge. We suggest that more work is needed on how to include non-traditional methods, from those that value local experience and the voice of the marginalized to more quantitative mapping methods. While fully integrating diverse approaches may not be possible, nor desirable, bringing them into conversation helps open-up deliberative spaces for resilience.
C1 [Borie, Maud; Millington, James D. A.; Pelling, Mark] Kings Coll London, Dept Geog, London, England.
   [Ziervogel, Gina] Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
   [Taylor, Faith E.] Univ Portsmouth, Dept Geog, Portsmouth, Hants, England.
   [Sitas, Rike] Univ Cape Town, African Ctr Cities, Cape Town, South Africa.
C3 University of London; King's College London; University of Cape Town;
   University of Portsmouth; University of Cape Town
RP Borie, M (corresponding author), Kings Coll London, Dept Geog, London, England.
EM maud.borie@kcl.ac.uk
RI BORIE, MAUD/LNP-9311-2024; Ziervogel, Gina/AAG-2945-2019; Millington,
   James/B-5931-2008; Sitas, Rike/GLQ-7901-2022
OI Taylor, Faith/0000-0001-7971-5049; Borie, Maud/0000-0002-1538-8832;
   Millington, James/0000-0002-5099-0001; Ziervogel,
   Gina/0000-0003-4219-6809; Sitas, Rike/0000-0003-3516-3400
FU GCRF consortium (NERC) [NE/P01609X/1]; AXA; NERC [NE/P01609X/1] Funding
   Source: UKRI
FX We gratefully acknowledge the funding received by the GCRF consortium
   (NERC grant NE/P01609X/1) and AXA (Urban governance for resilience
   project) and thank all interviewees and workshops' participants for
   their time and insights as well as the reviewers. The views expressed in
   this paper are in the authors' personal capacity, and do not represent
   the views of their respective institutions. Any errors or omissions
   remain our own.
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NR 78
TC 22
Z9 24
U1 0
U2 36
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 SEP
PY 2019
VL 99
BP 1
EP 9
DI 10.1016/j.envsci.2019.05.014
PG 9
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA IH4YV
UT WOS:000474498900001
OA hybrid, Green Submitted, Green Published
DA 2025-04-22
ER

PT J
AU Bonnett, NL
   Birchall, SJ
AF Bonnett, Nicole L.
   Birchall, S. Jeff
TI The influence of regional strategic policy on municipal climate
   adaptation planning
SO REGIONAL STUDIES
LA English
DT Article
DE urban planning; climate change resilience; institutions; plan content
   analysis; Vancouver Island; British Columbia
ID QUALITY; PLANS; URBAN; RESILIENCE; GOVERNANCE; KNOWLEDGE; BARRIERS;
   CITIES; STATES
AB This study examines the extent and quality of climate adaptation integration within strategic plans of local governments in British Columbia, Canada. Strategic plans (n = 39) were assessed using plan content analysis in order to understand whether regional planning leads to adaptation action by municipalities. Framed through an institutional resilience lens, we find that regional policy guidance is critical for initiating the uptake of municipal climate adaptation; however, lack of granular adaptation policies informed by appropriate climate data constrains implementation in practice. Through collaboration and leveraging strengths of different levels of government, adaptation barriers can be addressed and the quality of adaptation policies improved.
C1 [Bonnett, Nicole L.; Birchall, S. Jeff] Univ Alberta, Sch Urban & Reg Planning, Dept Earth & Atmospher Sci, Edmonton, AB, Canada.
C3 University of Alberta
RP Bonnett, NL (corresponding author), Univ Alberta, Sch Urban & Reg Planning, Dept Earth & Atmospher Sci, Edmonton, AB, Canada.
EM nbonnett@ualberta.ca; jeff.birchall@ualberta.ca
RI Birchall, S Jeff/HOF-3329-2023; Bonnett, Nicole/HNT-0234-2023
OI Birchall, S. Jeff/0000-0002-4508-6720; Bonnett,
   Nicole/0000-0002-9734-2159
FU Cornerstone Grant from the Killam Research Fund of the University of
   Alberta; Social Sciences and Humanities Research Council of Canada
FX This research was kindly supported by a Cornerstone Grant from the
   Killam Research Fund of the University of Alberta, as well the Social
   Sciences and Humanities Research Council of Canada.
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NR 48
TC 17
Z9 18
U1 7
U2 29
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0034-3404
EI 1360-0591
J9 REG STUD
JI Reg. Stud.
PD JAN 2
PY 2023
VL 57
IS 1
BP 141
EP 152
DI 10.1080/00343404.2022.2049224
EA APR 2022
PG 12
WC Economics; Environmental Studies; Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Environmental Sciences & Ecology; Geography;
   Public Administration
GA 7B2QQ
UT WOS:000786506500001
DA 2025-04-22
ER

PT J
AU Sun, HH
   Zhen, F
   Jiang, YP
AF Sun, Honghu
   Zhen, Feng
   Jiang, Yupei
TI Study on the Characteristics of Urban Residents' Commuting Behavior and
   Influencing Factors from the Perspective of Resilience Theory:
   Theoretical Construction and Empirical Analysis from Nanjing, China
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE commuting behavior; resilience theory; characteristics; influencing
   factors; built environment; China
ID BUILT ENVIRONMENT; PERSONAL EXPOSURE; PHYSICAL-ACTIVITY; PEAK HOURS;
   PATTERNS; POLICIES; IMPACT; BALANCE; WORKERS; CHOICE
AB In the transitional period of China's urbanization, commuting problems and demands are diversified and multi-level, so commuting research topics, viewpoints, and analysis paths should be organically combined to dynamically adapt to the complex commuting contradictions. Based on this, this paper introduces the resilience theory to improve the research paradigm of commuting behavior. Taking Nanjing, China as a case study, with the help of the survey data of commuting behavior of typical communities, this paper provides an empirical analysis of the characteristics and influencing factors of urban residents' commuting behavior from the perspective of resilience theory. The results show that: (1) in the face of commuting pressure, to a large extent, most commuters can still obtain commuting adaptability and a medium level or higher of commuting resilience; and (2) personal attributes, living and employment environment, and commuting environment all have significant heterogeneity effects on commuting pressure, commuting adaptability, and commuting resilience. From the perspective of resilience theory, the means of regulating commuting conflicts are flexible, which can not only directly reduce commuting pressure or optimize commuting adaptability, but also improve commuting resilience according to the specific commuting scenarios constructed by commuting pressure and adaptability. On the whole, the principles of comprehensive improvement, on-demand supply, and dynamic adjustment should be followed.
C1 [Sun, Honghu; Zhen, Feng; Jiang, Yupei] Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210093, Peoples R China.
   [Sun, Honghu; Zhen, Feng; Jiang, Yupei] Nanjing Univ, Prov Engn Lab Smart City Design Simulat & Visuali, Nanjing 210093, Jiangsu, Peoples R China.
C3 Nanjing University; Nanjing University
RP Zhen, F (corresponding author), Nanjing Univ, Sch Architecture & Urban Planning, Nanjing 210093, Peoples R China.; Zhen, F (corresponding author), Nanjing Univ, Prov Engn Lab Smart City Design Simulat & Visuali, Nanjing 210093, Jiangsu, Peoples R China.
EM shhupup@163.com; zhenfeng@nju.edu.cn; jiangyupeidl@126.com
RI zhen, Feng/ABD-6136-2021
FU National Natural Science Foundation of China [41571146]; China
   Scholarship Council Foundation [201906190179]; Postgraduate Research and
   Practice Innovation Program of Jiangsu Province [KYCX19_0047]
FX This study was funded by the National Natural Science Foundation of
   China (grant no. 41571146), the China Scholarship Council Foundation
   (grant no. 201906190179) and the Postgraduate Research and Practice
   Innovation Program of Jiangsu Province (grant no. KYCX19_0047).
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NR 54
TC 5
Z9 6
U1 11
U2 58
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 MAR
PY 2020
VL 17
IS 5
AR 1475
DI 10.3390/ijerph17051475
PG 17
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA KY2GJ
UT WOS:000522389200015
PM 32106500
OA Green Published
DA 2025-04-22
ER

PT J
AU Dai, TC
   Zheng, X
   Yang, JC
AF Dai, Tianchen
   Zheng, Xing
   Yang, Jiachuan
TI A systematic review of studies at the intersection of urban climate and
   historical urban landscape
SO ENVIRONMENTAL IMPACT ASSESSMENT REVIEW
LA English
DT Review
DE Historical urban landscape; Urban change; Microclimate; Urban climate
   risk; Urban resilience; Urban conservation
ID ADAPTATION; MANAGEMENT; GREEN; ENVIRONMENT; DISPERSION; EFFICIENCY;
   RESOURCES; BENEFITS; HERITAGE; WETLANDS
AB Compared to modern cities, historical cities of fragile urban fabric are more vulnerable to natural hazards and climate change. Many existing academic publications have respectively studied urban climate risk and historical urban landscape management, but rare has systematically reviewed studies across the two fields. This review article provides a thorough understanding of how studies of urban climate and historical urban landscape inform and overlap with each other in a global scope from 1995 to 2021. The main aim is to raise academic awareness of the importance of addressing climatic issues in historical urban landscape studies and incorporating the proper cultural practices from the past into future urban climate management. This review finds a series of gaps in current literature, including insufficient academic attentions in this field, lack of collaborations across disciplines, isolation of cultural and natural knowledge, and lack of inclusiveness of climatic topics and case areas. Instead of focusing purely on urban climate, more research should integrate inter-disciplinary and transdisciplinary findings addressing climatic, social, economic, and cultural issues in the development of historical urban landscape and discuss possibilities of their practical implementation. Substantial communication and collaboration between scholars from nature and culture sectors in this emerging field are also suggested to theorize the historical cultural wisdom and learn from successful urban models with a special focus on design and strategic planning so as to strategize for urban resilience and conservation.
C1 [Dai, Tianchen] East China Normal Univ, Sch Design, Shanghai, Peoples R China.
   [Zheng, Xing; Yang, Jiachuan] Hong Kong Univ Sci & Technol, Dept Civil & Environm Engn, Hong Kong, Peoples R China.
C3 East China Normal University; Hong Kong University of Science &
   Technology
RP Zheng, X (corresponding author), Hong Kong Univ Sci & Technol, Dept Civil & Environm Engn, Hong Kong, Peoples R China.
EM tcdai@design.ecnu.edu.cn; janssenzheng@ust.hk; cejcyang@ust.hk
RI dai, tianchen/JQV-3462-2023; Zheng, Xing/GYR-3244-2022; Jiachuan,
   Yang/ABE-5045-2020
OI Zheng, Xing/0000-0001-5180-3602; yang, jiachuan/0000-0002-3890-5628;
   DAI, TIANCHEN/0000-0002-8050-8239
FU Fundamental Research Funds for the Central Universities
   [43800-20101-222461]
FX This research was funded by Fundamental Research Funds for the Central
   Universities grant number [43800-20101-222461]. We are particularly
   grateful for the assistance given by Can Huang and Siqi Chen in the
   production of two figures in this article.
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NR 84
TC 11
Z9 11
U1 13
U2 54
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 0195-9255
EI 1873-6432
J9 ENVIRON IMPACT ASSES
JI Environ. Impact Assess. Rev.
PD NOV
PY 2022
VL 97
AR 106894
DI 10.1016/j.eiar.2022.106894
PG 13
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 6S3DR
UT WOS:000892872000008
DA 2025-04-22
ER

PT J
AU Abdul-Rahman, M
   Alade, W
   Anwer, S
AF Abdul-Rahman, Mohammed
   Alade, Wale
   Anwer, Shahnawaz
TI A Composite Resilience Index (CRI) for Developing Resilience and
   Sustainability in University Towns
SO SUSTAINABILITY
LA English
DT Article
DE analytical hierarchy process; delphi method; outcome and process
   indicators; studentification; sustainability
ID ANALYTIC HIERARCHY PROCESS; PROCESS AHP; STUDENTIFICATION; URBAN;
   GEOGRAPHIES; STUDENTS; PLACE; CITY; COMPETITIVENESS; CONSTRUCTION
AB Globally, most higher educational institutions can no longer house their students within their campuses due to the increased number of enrolments and the unavailability of land for spatial expansion, especially in urban areas. This leads to studentification which negatively impacts university towns. Developing resilience against the negative impacts of studentification will make university towns more sustainable. However, there is no existing community resilience index designed for that purpose. Thus, this study develops a composite resilience index for university towns, using Akoka, a university town in Lagos, Nigeria, as a case study. The composites of the index were determined by prioritizing online user-generated content mined from Twitter between 1 January 2010 and 31 December 2021 using artificial intelligence, while the elements of resilience and risk reduction were developed through the Delphi and analytic hierarchy process. The research outcomes showed that the physical, economic, social, and cultural criteria subjected to comparisons represented >= 70% of the total weights. These criteria made up the outcome indicators, while the integrated community-based risk reduction program model was adopted for the process indicators. Both outcome and process indicators formed the localized composite resilience index for Akoka, Lagos, Nigeria. This proposed composite resilience index would help the town to assess and build resilience against the negative impacts of studentification and provide a methodology for other university towns to create theirs using similar methods.
C1 [Abdul-Rahman, Mohammed; Anwer, Shahnawaz] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.
   [Abdul-Rahman, Mohammed; Alade, Wale] Univ Lagos, Dept Urban & Reg Planning, Lagos 101017, Nigeria.
C3 Hong Kong Polytechnic University; University of Lagos
RP Abdul-Rahman, M (corresponding author), Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong, Peoples R China.; Abdul-Rahman, M (corresponding author), Univ Lagos, Dept Urban & Reg Planning, Lagos 101017, Nigeria.
EM 18042561r@connect.polyu.hk
RI ANWER, SHAHNAWAZ/AAW-1994-2020; Abdul-Rahman, Mohammed/V-1227-2018
OI ANWER, SHAHNAWAZ/0000-0003-3187-8062; Abdul-Rahman,
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NR 98
TC 1
Z9 1
U1 2
U2 12
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 3057
DI 10.3390/su15043057
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 9L4EC
UT WOS:000941502400001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU George, J
AF George, Jennifer
TI Community Governance of Green Urban Infrastructure: Lessons from the
   Australian Context
SO URBAN POLICY AND RESEARCH
LA English
DT Article
DE Community governance; green infrastructure; sustainability; resilience;
   social capital; dynamic governing
ID TRANSITION; MILWAUKEE
AB Community governance is an approach to green urban infrastructure that prioritises the community's role in the visioning, decision-making and managing process. Its success also relies on trusted partnerships. Building on a 5-year research project, this article focuses on selected Australian examples of community-led green infrastructure governance which have been delivering community benefits over several decades, particularly green corridors and trails. Common good outcomes and successes in sustainability and resilience capacity are emerging as features of this approach. Lessons from successes in community-led governance of urban green infrastructure in Australia are discussed and analysed in the context of international and local examples.
C1 [George, Jennifer] Macquarie Univ, Sch Nat Sci, Sydney, NSW 2109, Australia.
C3 Macquarie University
RP George, J (corresponding author), Macquarie Univ, Sch Nat Sci, Sydney, NSW 2109, Australia.
EM jenny.george@mq.edu.au
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NR 67
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Z9 3
U1 17
U2 61
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0811-1146
EI 1476-7244
J9 URBAN POLICY RES
JI Urban Policy Res.
PD OCT 2
PY 2022
VL 40
IS 4
SI SI
BP 335
EP 350
DI 10.1080/08111146.2022.2093182
EA OCT 2022
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 7L6EP
UT WOS:000850161300001
DA 2025-04-22
ER

PT J
AU Boratinskii, V
   Loopmans, M
   Osaragi, T
AF Boratinskii, Vadim
   Loopmans, Maarten
   Osaragi, Toshihiro
TI Reshuffling city life: spatial and functional dynamics of urban activity
   in Tokyo during COVID-19
SO INTERNATIONAL JOURNAL OF URBAN SCIENCES
LA English
DT Article
DE Urban activity centres; COVID-19; resilience; Twitter data; Tokyo
ID BIG DATA; IDENTIFICATION; CENTERS; DENSITY; GROWTH
AB The COVID-19 pandemic, and the measures to curb it have profoundly affected the geography of urban activities in the past years. In this paper, we discuss its effects on urban activity in Tokyo during the first wave of COVID between February and July 2020. Different from other papers, which have analysed general changes in urban activity levels or changes in specific activities, we have focused on changes in activity levels in different types of multifunctional urban activity centres (UAC), allowing us to reveal interactions between UAC types, (combinations of) activities and location within a wider urban system. Our results show how the distribution of urban activity across UAC changed in space and time in reaction to pandemic measures, and relate these dynamics to the spatial patterns of functional specialization of UAC. The existing spatial pattern of UAC allowed urban activities to redistribute spatially, but continue without too much inhibition. Moreover, these changes appeared to be temporary, rather than resulting in irreversible urban transformations. Our analysis thus suggests that Tokyo's multilayered polynuclear structure appeared to contribute to the city's pandemic resilience, allowing urban activities to spatially reorganize, without needing to resort to a total lockdown and collapse of urban life.
C1 [Boratinskii, Vadim; Osaragi, Toshihiro] Tokyo Inst Technol, Sch Environm & Soc, Tokyo, Japan.
   [Boratinskii, Vadim] Vrije Univ Brussel, Fac Sci & Bioengn Sci, Brussels, Belgium.
   [Loopmans, Maarten] Univ Leuven, Dept Earth & Environm Sci, Leuven, Belgium.
   [Boratinskii, Vadim] Tokyo Inst Technol, Sch Environm & Soc, Tokyo 1528550, Japan.
C3 Institute of Science Tokyo; Tokyo Institute of Technology; Vrije
   Universiteit Brussel; KU Leuven; Institute of Science Tokyo; Tokyo
   Institute of Technology
RP Boratinskii, V (corresponding author), Tokyo Inst Technol, Sch Environm & Soc, Tokyo 1528550, Japan.
EM vadimboratinsky9@gmail.com
RI Loopmans, Maarten/ABE-9286-2020; Osaragi, Toshihiro/B-9260-2015
OI Osaragi, Toshihiro/0000-0002-6327-3976; Loopmans,
   Maarten/0000-0002-7157-5608; Boratinskii, Vadim/0000-0001-5382-970X
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NR 87
TC 4
Z9 4
U1 2
U2 17
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1226-5934
EI 2161-6779
J9 INT J URBAN SCI
JI Int. J. Urban Sci.
PD JAN 2
PY 2024
VL 28
IS 1
BP 21
EP 47
DI 10.1080/12265934.2023.2172065
EA JAN 2023
PG 27
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA GX9K3
UT WOS:000924245800001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Heinzlef, C
   Serre, D
AF Heinzlef, Charlotte
   Serre, Damien
TI Improving a resilience observatory with a post cyclonic event resilience
   assessment: Application to the 2010 OLI cyclone in three Pacific islands
SO OCEAN & COASTAL MANAGEMENT
LA English
DT Article
ID CLIMATE-CHANGE; URBAN RESILIENCE; FRENCH-POLYNESIA; COMMUNITY
   RESILIENCE; VULNERABILITY; FLOODS; PERCEPTIONS; INTERDEPENDENCIES;
   VISUALIZATION; CHALLENGES
AB French Polynesia is a territory extremely vulnerable to climate change and associated risks. Among these risks, the cyclonic risk impacts regularly and durably the Polynesian territory. The concept of resilience is particularly relevant in a dynamic of adaptation of territories and populations facing the increase of risks and uncertainties. However, it is complex to operationalize and measure. The methodology presented in this article is part of a larger project to design a spatial decision support system, built in the form of a risk and resilience observatory. This observatory is built around several bricks, one of which is intended to acquire various forms of data, and the other to involve local actors in the adaptation of their territory to climate risks. This paper develops a methodology to assess the social, technical and urban resilience during and after Hurricane Oli. It was built around qualitative data, acquired through interviews and questionnaires with inhabitants and local actors of three islands: Tubuai, Rurutu, Bora -Bora. This approach allowed us to identify different levels of resilience over the long term and according to the actors involved in the experience of cyclone Oli. Finally, this approach allowed for the long -term involvement of stakeholders in the evaluation and implementation of more resilient risk management strategies, both at the individual and collective levels.
C1 [Heinzlef, Charlotte; Serre, Damien] Univ Paris Saclay UVSQ, CEARC, 11 Blvd Alembert, F-78280 Guyancourt, France.
   [Serre, Damien] RESCUESolutions, 91 Route Chartres, F-91940 Gometz Le Chatel, France.
C3 Universite Paris Saclay
RP Heinzlef, C (corresponding author), Univ Paris Saclay UVSQ, CEARC, 11 Blvd Alembert, F-78280 Guyancourt, France.
EM charlotte.heinzlef@uvsq.fr; damien.serre@rescuesolutions.fr
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NR 109
TC 0
Z9 0
U1 5
U2 8
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 1
PY 2024
VL 250
AR 107044
DI 10.1016/j.ocecoaman.2024.107044
EA FEB 2024
PG 18
WC Oceanography; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Oceanography; Water Resources
GA KH6A4
UT WOS:001179095900001
OA hybrid
DA 2025-04-22
ER

PT J
AU Della Corte, V
   Del Gaudio, G
   Sepe, F
   Luongo, S
AF Della Corte, Valentina
   Del Gaudio, Giovanna
   Sepe, Fabiana
   Luongo, Simone
TI Destination Resilience and Innovation for Advanced Sustainable Tourism
   Management: A Bibliometric Analysis
SO SUSTAINABILITY
LA English
DT Article
DE tourism; destination; resilience; innovation
ID WORLDWIDE RESEARCH TRENDS; DISASTER RESILIENCE; URBAN RESILIENCE;
   SCIENCE; SMART; VULNERABILITY; COMMUNITY; INDUSTRY; PERSPECTIVE;
   PERFORMANCE
AB Over the years, literature on the topic of destination resilience has gained increasing attention in different fields (strategic management; sociology; etc.). Therefore, the potentiality of resilience in the tourism field has stimulated the definition and the implementation of strategies, policies, and activities addressed to mitigate risks and seize opportunities through open innovation attitudes in times of crisis. This work aims to contribute to the debate on tourist destination resilience by proposing a conceptual framework of destination resilience and open innovation based on a bibliometric analysis. Moreover, this article is intended as a starting point for a wider discussion of factors that contribute to destination resilience and therefore provides the basis to develop a toolkit of matrixes and approaches. Findings reveal that resilience assessment, as well as in terms of performance, remain undiscovered. Moreover, the present research poses some unresolved questions, shaping interesting future research directions.
C1 [Della Corte, Valentina; Del Gaudio, Giovanna; Sepe, Fabiana; Luongo, Simone] Univ Naples Federico II, Dept Econ, Management, I-80126 Naples, Italy.
C3 University of Naples Federico II
RP Della Corte, V (corresponding author), Univ Naples Federico II, Dept Econ, Management, I-80126 Naples, Italy.
EM valentina.dellacorte@unina.it; giovanna.delgaudio@unina.it;
   fabiana.sepe@unina.it; simone.luongo@unina.it
RI Sepe, Fabiana/ABD-5248-2020; Luongo, Simone/HTQ-9493-2023; Della Corte,
   Valentina/T-2877-2018
OI Luongo, Simone/0000-0003-1125-6477; Della Corte,
   Valentina/0000-0001-7113-3167
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NR 147
TC 30
Z9 30
U1 8
U2 71
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2021
VL 13
IS 22
AR 12632
DI 10.3390/su132212632
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 XE8IR
UT WOS:000723626100001
OA gold
DA 2025-04-22
ER

PT J
AU Forrest, SA
   Trell, EM
   Woltjer, J
AF Forrest, Steven Ashley
   Trell, Elen-Maarja
   Woltjer, Johan
TI Socio-spatial inequalities in flood resilience: Rainfall flooding in the
   city of Arnhem
SO CITIES
LA English
DT Article
DE Rainfall flooding; Flood resilience; Socio-spatial inequalities; Urban
   flood risk management; Water management; Urban governance; Arnhem, the
   Netherlands
ID RISK-MANAGEMENT; CITIES; VULNERABILITY; RESPONSIBILITY; PARTICIPATION;
   GOVERNANCE; CHALLENGE; ENGLAND; JUSTICE; AGENDA
AB This paper critically analyses socio-spatial inequalities associated with the shift towards flood resilience in flood risk management (FRM) and pays particular attention to the notion of 'living with floods' and its implications for citizens. Living with floods and the narrative of 'surviving and thriving' are emphasised within flood resilience literature, but such discussions often ignore the varying socio-spatial vulnerabilities and capacities of citizens. This paper undertakes an exploration of potential socio-spatial inequalities for flood resilience in the Dutch city of Arnhem, which has recently experienced rainfall flooding and is actively encouraging citizen action in FRM. The paper follows a mixed-methods approach that combines secondary data sources, semi-structured interviews, and a document analysis. Three forms of socio-spatial inequalities in flood resilience were identified in Arnhem: existing inequalities exacerbated by the shift, 'hidden' inequalities in vulnerability that are now relevant due to rainfall flood risk, and new inequalities in capacity to fulfil the responsibilities arising from the shift to 'living with floods'. The paper contributes to wider discussions on the shift towards flood resilience in FRM and helps city planners to consider the interactions between vulnerability and capacity in their different neighbourhoods when allocating public resources.
C1 [Forrest, Steven Ashley; Trell, Elen-Maarja] Univ Groningen, Fac Spatial Sci, Dept Spatial Planning & Environm, Landleven 1, NL-9747 AD Groningen, Netherlands.
   [Woltjer, Johan] Univ Westminster, Sch Architecture & Cities, London, England.
C3 University of Groningen; University of Westminster
RP Forrest, SA (corresponding author), Univ Groningen, Fac Spatial Sci, Dept Spatial Planning & Environm, Landleven 1, NL-9747 AD Groningen, Netherlands.
EM s.a.forrest@rug.nl
RI Forrest, Steven/AAL-4451-2020
OI Trell, Elen-Maarja/0000-0003-4419-6474; Woltjer,
   Johan/0000-0003-3179-6294; Forrest, Steven/0000-0001-5350-6441
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NR 70
TC 39
Z9 43
U1 9
U2 76
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD OCT
PY 2020
VL 105
AR 102843
DI 10.1016/j.cities.2020.102843
PG 15
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA NR2NW
UT WOS:000571400400008
OA Green Published, hybrid, Green Accepted
DA 2025-04-22
ER

PT J
AU Wolfram, M
   Frantzeskaki, N
AF Wolfram, Marc
   Frantzeskaki, Niki
TI Cities and Systemic Change for Sustainability: Prevailing Epistemologies
   and an Emerging Research Agenda
SO SUSTAINABILITY
LA English
DT Review
ID GRASS-ROOTS INNOVATIONS; CLIMATE-CHANGE; TRANSITION APPROACH;
   URBAN-DEVELOPMENT; ENERGY REGIONS; RESILIENCE; GOVERNANCE; CITY;
   POLITICS; PATHWAYS
C1 [Wolfram, Marc] Yonsei Univ, Dept Urban Planning & Engn, Seoul 03722, South Korea.
   [Frantzeskaki, Niki] Erasmus Univ, Dutch Res Inst Transit, Postbus 1738, NL-3000 DR Rotterdam, Netherlands.
C3 Yonsei University; Erasmus University Rotterdam - Excl Erasmus MC;
   Erasmus University Rotterdam
RP Wolfram, M (corresponding author), Yonsei Univ, Dept Urban Planning & Engn, Seoul 03722, South Korea.
EM m.wolfram@yonsei.ac.kr; n.frantzeskaki@drift.eur.nl
RI Frantzeskaki, Niki/AAN-1044-2021
OI Frantzeskaki, Niki/0000-0002-6983-448X; Wolfram,
   Marc/0000-0003-3070-0836
FU 7th European Research Framework Programme, ARTS project (Accelerating
   and Rescaling Transitions to Sustainability) [603654]
FX The authors would especially like to thank Junhan Kim, Seung Beom Kang
   and Joy Fangzhou for their invaluable support in the reference analysis.
   This research has been co-funded by the 7th European Research Framework
   Programme, grant agreement No. 603654, ARTS project (Accelerating and
   Rescaling Transitions to Sustainability)
   (www.acceleratingtransitions.eu).
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NR 131
TC 132
Z9 140
U1 2
U2 44
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB
PY 2016
VL 8
IS 2
AR 144
DI 10.3390/su8020144
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 DG1LR
UT WOS:000371830100071
OA Green Submitted, gold, Green Published
DA 2025-04-22
ER

PT J
AU Liu, JJ
   Liu, S
   Xu, XL
   Zou, Q
AF Liu, Jiaojiao
   Liu, Shuai
   Xu, Xiaolin
   Zou, Qi
TI Can Digital Transformation Promote the Rapid Recovery of Cities from the
   COVID-19 Epidemic? An Empirical Analysis from Chinese Cities
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE COVID-19; digital transformation; recovery; cities; empirical analysis
ID EMERGENCY MANAGEMENT; BIG DATA; TECHNOLOGY; RESILIENCE; FRAMEWORK
AB Background: Digital transformation has become a key intervention strategy for the global response to the COVID-19 epidemic, and digital technology is helping cities recover from the COVID-19 epidemic. However, the effects of urban digital transformation on the recovery from the COVID-19 epidemic still lack mechanism analyses and empirical testing. This study aimed to explain the theoretical mechanism of urban digital transformation on the recovery from the COVID-19 epidemic and to test its effectiveness using an empirical analysis. Methods: This study, using a theoretical and literature-based analysis, summarizes the impact mechanisms of urban digital transformation on the recovery of cities from the COVID-19 epidemic. A total of 83 large- and medium-sized cities from China are included in the empirical research sample, covering most major cities in China. The ordinary least squares (OLS) method is adopted to estimate the effect of China's urban digitalization level on population attraction in the second quarter of 2020. Results: The theoretical analysis found that urban digital transformation improves the ability of cities to recover from the COVID-19 epidemic by promoting social communication, collaborative governance, and resilience. The main findings of the empirical analysis show that the digital level of a city has a significant positive effect on urban population attraction (p < 0.001). Conclusions: A positive relationship was found between urban digital transformation and the rapid recovery of cities from the COVID-19 epidemic. Digital inventions for social communication, collaborative governance, and urban resilience are an effective way of fighting the COVID-19 emergency.
C1 [Liu, Jiaojiao] Huazhong Univ Sci & Technol, Sch Journalism & Informat Commun, Wuhan 430074, Peoples R China.
   [Liu, Jiaojiao; Liu, Shuai; Xu, Xiaolin; Zou, Qi] Huazhong Univ Sci & Technol, Nontradit Secur Inst, Wuhan 430074, Peoples R China.
   [Liu, Shuai; Zou, Qi] Huazhong Univ Sci & Technol, Coll Publ Adm, Wuhan 430074, Peoples R China.
   [Xu, Xiaolin] Hunan Agr Univ, Coll Publ Adm & Law, Changsha 410128, Peoples R China.
C3 Huazhong University of Science & Technology; Huazhong University of
   Science & Technology; Huazhong University of Science & Technology; Hunan
   Agricultural University
RP Zou, Q (corresponding author), Huazhong Univ Sci & Technol, Nontradit Secur Inst, Wuhan 430074, Peoples R China.; Zou, Q (corresponding author), Huazhong Univ Sci & Technol, Coll Publ Adm, Wuhan 430074, Peoples R China.
EM d202181505@hust.edu.cn; lshuai@hust.edu.cn; xiaolin@hust.edu.cn;
   qizou@hust.edu.cn
RI Zou, Qi/HMP-6190-2023; xu, xiaolin/IZE-3674-2023
OI Zou, Qi/0000-0003-0208-2874
FU National Social Science Fund of China [20ZDA038, 21AZZ013]; National
   Natural Science Foundation of China [71734002]; Fundamental Research
   Funds for the Central Universities [2021WKFZZX017]
FX This work was supported by the National Social Science Fund of China
   (grant number: 20ZDA038, 21AZZ013), the National Natural Science
   Foundation of China (grant numbers: 71734002), and the Fundamental
   Research Funds for the Central Universities (grant numbers:
   2021WKFZZX017). The funders had no role in the design of the study; the
   collection, analysis, and interpretation of data; or the writing of the
   manuscript.
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NR 52
TC 18
Z9 20
U1 16
U2 179
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 MAR
PY 2022
VL 19
IS 6
AR 3567
DI 10.3390/ijerph19063567
PG 14
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA 0C5AT
UT WOS:000775326500001
PM 35329252
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Quinton, J
   Nesbitt, L
AF Quinton, Jessica
   Nesbitt, Lorien
TI Different names for the same thing? A systematic review of green,
   environmental, eco-, ecological, climate, carbon, and resilience
   gentrification
SO CITIES
LA English
DT Review
DE Green gentrification; Environmental gentrification; Environmental
   justice; Climate justice; Urban sustainability; Climate resilience
ID NEW-YORK-CITY; URBAN SUSTAINABILITY; HIGH LINE; UNEVEN DEVELOPMENT;
   CHANGING STATE; GROWTH MACHINE; CITIES; PARKS; DISPLACEMENT; PROPERTY
AB A plethora of terms have emerged connecting various sustainability and climate-resilience initiatives to gentrification: green, environmental, eco-, ecological, climate, carbon and resilience gentrification. We conducted a systematic literature review of these seven terms to identify how they have been defined and applied over time. We discuss the importance of considering the nuance each term has uncovered but emphasize the need to theorize back across all seven terms to further our understanding of the current state of gentrification. Our research indicates that green, environmental, eco-, and ecological gentrification overlap significantly to describe the impact of a wide range of sustainability and resilience initiatives but differ somewhat in the drivers and discourses to which they have been defined and applied. Climate and resilience gentrification have recently been defined as subtypes of the first four terms to specifically highlight the role of climate impacts and adaptation measures, while carbon gentrification focuses on 'grey' initiatives aimed at reducing carbon emissions. We use the term 'sustainability gentrification' to encompass what all seven terms have in common-the role of climate change, and use of sustainability/resilience-building responses to it, in the production of space for progressively affluent users.
C1 [Quinton, Jessica; Nesbitt, Lorien] Univ British Columbia, Fac Forestry, Dept Forest Resources Management, 2424 Main Mall, Vancouver, BC V6T 1Z4, Canada.
C3 University of British Columbia
RP Nesbitt, L (corresponding author), Univ British Columbia, Fac Forestry, Dept Forest Resources Management, 2424 Main Mall, Vancouver, BC V6T 1Z4, Canada.
EM lorien.nesbitt@ubc.ca
RI Nesbitt, Lorien/GZK-6527-2022
FU Gov-ernment of Canada Social Sciences and Humanities Research Council
FX The authors wish to acknowledge the financial support of the Gov-ernment
   of Canada Social Sciences and Humanities Research Council
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NR 118
TC 1
Z9 1
U1 46
U2 71
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 2024
VL 151
AR 105107
DI 10.1016/j.cities.2024.105107
EA MAY 2024
PG 12
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA TQ5P4
UT WOS:001242741700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Huang, QQ
   Yi, CZ
AF Huang, Qianqian
   Yi, Chengzhi
TI How does the construction of climate adaptive cities enhance climate
   resilience?
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article; Early Access
DE climate-adaptive; climate resilience; policy pilot; DID
ID ADAPTATION; INNOVATION; CARBON; POLICY
AB Promoting policies that facilitate urban adaptation to climate extremes is of global concern. Globally, cities have attempted to adjust to climate change in various ways. Using data from a panel of Chinese cities that have engaged in preliminary climate adaptation, this empirical study is based on an analysis of the effectiveness, heterogeneity and mechanisms of urban climate adaptive policy, mainly using the difference-in-difference (DID) method. The findings show that the preliminary policy significantly improves urban climate adaptation and enhanced climate resilience through pathways such as enhanced technological innovation, increased public participation in environmental issues, appropriate penalties for damage to the environment and lenient environmental regulation. The study also provides multiple tests to confirm whether, and at what level, the experimental policy has indeed been effective. The results show that parallel trend tests, counterfactual tests and random experiments all indicate that the climate adaptive urban project has been effective and robust. Further evidence that there are notable differences in the policy's effects across eastern, central, and western China comes from the heterogeneity test results. The interaction effect based on the economic growth level demonstrates that the impact of policy execution varies significantly with economic development level. The findings provide useful policy insights into ways to leverage the effects of policies in the face of extreme climate events and to enhance global resilience to extreme climate risks across the world.
C1 [Huang, Qianqian; Yi, Chengzhi] Shanghai Jiao Tong Univ, Sch Int & Publ Affairs, Dept Publ Adm, Shanghai, Peoples R China.
   [Huang, Qianqian; Yi, Chengzhi] Shanghai Jiao Tong Univ, Sch Emergency Management, Shanghai, Peoples R China.
   [Yi, Chengzhi] Shanghai Jiao Tong Univ, China Inst Urban Governance, Shanghai, Peoples R China.
C3 Shanghai Jiao Tong University; Shanghai Jiao Tong University; Shanghai
   Jiao Tong University
RP Yi, CZ (corresponding author), Shanghai Jiao Tong Univ, Sch Int & Publ Affairs, Dept Publ Adm, Shanghai, Peoples R China.; Yi, CZ (corresponding author), Shanghai Jiao Tong Univ, Sch Emergency Management, Shanghai, Peoples R China.; Yi, CZ (corresponding author), Shanghai Jiao Tong Univ, China Inst Urban Governance, Shanghai, Peoples R China.
EM yichengzhi@sjtu.edu.cn
FU Major Project of the National Social Science Foundation of China
   [23ZD144]
FX This study was supported by the Major Project of the National Social
   Science Foundation of China [23&ZD144].
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NR 77
TC 1
Z9 1
U1 27
U2 52
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 MAY 31
PY 2024
DI 10.1080/09640568.2024.2362920
EA MAY 2024
PG 23
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA UJ3Y6
UT WOS:001247663200001
DA 2025-04-22
ER

PT J
AU Yuan, YW
   Zhang, Q
   Chen, SM
   Chen, FW
   Zhang, MC
AF Yuan, Yingwei
   Zhang, Qian
   Chen, Sheming
   Chen, Feiwu
   Zhang, Mucheng
TI Design and spatial pattern optimization for a sponge city using factor
   analysis and geographical statistics to restore urban resilience: a case
   study in a coastal area of China
SO WATER SCIENCE AND TECHNOLOGY
LA English
DT Article
DE coastal area; ecological indicators; factor analysis; geographical
   statistics; sponge city; urban resilience
ID LOW-IMPACT DEVELOPMENT
AB The sponge city is a new concept of stormwater management for ecological city construction, which aims to restore water-cycle processes and reduce runoff. Cities in coastal districts are suffering from serious instability due to high population density, urbanization, and land-use changes. However, previous research contains few evaluations of balancing urban ecological indicators of sponge city performance, including geographical, environmental, economic, and social factors, and their effect on resilience at a macro level to develop low-impact development schemes. In this study, we developed an integrated framework using factor analysis, geographical statistics, multi-objective analysis, and remote sensing methods to extract the factors influencing sponge city resilience and to establish spatial pattern schemes. The results indicated that the urbanization degree and plant adaptability had the greatest impact on sponge city performance, with weights of 45 and 27%, respectively. Sponge city spatial pattern schemes performed the best in the combination scenario of 14.8-46.8% green roofs (by area ratio) supported by grooves and rain barrels +10% herbaceous basins divided into units by ecological tree pools +10% permeable pavements and sidewalks. This scenario balanced facilities and cost to optimize the spatial pattern, which improved sponge city adaptability and urban ecological conditions in coastal areas.
C1 [Yuan, Yingwei; Zhang, Qian; Chen, Feiwu; Zhang, Mucheng] Tianjin Agr Univ, Coll Water Conservancy Engn, Tianjin 300384, Peoples R China.
   [Chen, Sheming] China Geol Survey, Tianjin Ctr, Tianjin 300170, Peoples R China.
C3 Tianjin Agricultural University; China Geological Survey; Tianjin
   Center, China Geological Survey
RP Zhang, Q (corresponding author), Tianjin Agr Univ, Coll Water Conservancy Engn, Tianjin 300384, Peoples R China.
EM cathy_zhang@tjau.edu.cn
FU Tianjin Graduate Research Innovation Project [2022SKY195]; National
   Natural Science Foundation of China [41907149]; China Postdoctoral
   Science Foundation [2018M631732]
FX This study was supported by the Tianjin Graduate Research Innovation
   Project (No. 2022SKY195), the National Natural Science Foundation of
   China (No. 41907149) and the China Postdoctoral Science Foundation (No.
   2018M631732). We thank International Science Editing
   (http://www.internationalscienceediting.com) for editing this
   manuscript.
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NR 43
TC 2
Z9 2
U1 19
U2 43
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 NOV 1
PY 2023
VL 88
IS 9
BP 2246
EP 2263
DI 10.2166/wst.2023.347
EA NOV 2023
PG 18
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA Y4EA3
UT WOS:001095663600001
PM 37966180
OA gold
DA 2025-04-22
ER

PT J
AU Xu, ZZ
   Chopra, SS
   Lee, HL
AF Xu, Zizhen
   Chopra, Shauhrat S.
   Lee, Hellas
TI Resilient Urban Public Transportation Infrastructure: A Comparison of
   Five Flow-Weighted Metro Networks in Terms of the Resilience Cycle
   Framework
SO IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS
LA English
DT Article
DE Resilience; Robustness; Measurement; Complex networks; Public
   transportation; Urban areas; Faces; Complex network; public
   transportation; rail transportation; resilience; system performance
ID COMPLEX NETWORKS; ROBUSTNESS; HETEROGENEITY; VULNERABILITY
AB Real-world infrastructures modeled as complex networks have been popular topics in recent decades. As these infrastructures develop, becoming critical to support millions of people, their resilience in the face of disasters and attacks becomes an increasing concern to the engineers and stakeholders. Using a graph theory and complex network approach, we conducted an empirical study on the resilience of five metro, or subway systems selected globally. A multi-phase resilience framework was implemented from the resilience cycle concept, including preparedness, robustness, recovery, and adaptation. It also incorporated the historical flow data into the resilience analysis to account for user behavior impacts. The paper demonstrates a systematic comparison of five metro networks and explores trends in each resilience phase. Generally, diverse performances were observed among the five metro networks, with the Singapore metro showing the best resilience. It is robust to both random disruption and targeted attacks. Analysis suggests its advantage may come from both its moderate heterogeneous topology and the flow pattern, exhibiting the smallest average travel distance. Besides, the result highlights the significance of commuters' relocation behavior between neighboring stations in the recovery stage. For the adaptation from a long-term perspective, we developed a screening tool to investigate the impact of the network expansion on the existing part of network by mapping its relationship with the characteristics of the newly connected nodes. In general, the observation of the networks' different behaviors in flow-weighted analysis symbolizes that flow is necessary for consideration in the resilience design of real-world transportation systems.
C1 [Xu, Zizhen; Chopra, Shauhrat S.; Lee, Hellas] City Univ Hong Kong, Sch Energy & Environm, Hong Kong, Peoples R China.
C3 City University of Hong Kong
RP Chopra, SS (corresponding author), City Univ Hong Kong, Sch Energy & Environm, Hong Kong, Peoples R China.
EM zizhenxu2-c@my.cityu.edy.hk; sschopra@cityu.edu.hk;
   hellas_lee3@berkeley.edu
RI Chopra, Shauhrat S./HIK-2137-2022; Xu, Zizhen/JLL-9260-2023
OI XU, Zizhen/0000-0003-1808-1729; Lee, Hellas/0000-0003-3874-8551; Chopra,
   Shauhrat S./0000-0001-9067-4321
FU Research Grants Council of the Hong Kong Special Administrative Region,
   China [21204819]; City University of Hong Kong [7200622]
FX The work was supported in part by the Research Grants Council of the
   Hong Kong Special Administrative Region, China, under Project 21204819;
   and in part by the City University of Hong Kong under Project 7200622.
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NR 38
TC 38
Z9 40
U1 25
U2 200
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 AUG
PY 2022
VL 23
IS 8
BP 12688
EP 12699
DI 10.1109/TITS.2021.3116667
EA OCT 2021
PG 12
WC Engineering, Civil; Engineering, Electrical & Electronic; Transportation
   Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA 4A1EQ
UT WOS:000732334000001
DA 2025-04-22
ER

PT J
AU Green, D
   O'Donnell, E
   Johnson, M
   Slater, L
   Thorne, C
   Zheng, S
   Stirling, R
   Chan, FKS
   Li, L
   Boothroyd, RJ
AF Green, Daniel
   O'Donnell, Emily
   Johnson, Matthew
   Slater, Louise
   Thorne, Colin
   Zheng, Shan
   Stirling, Ross
   Chan, Faith K. S.
   Li, Lei
   Boothroyd, Richard J.
TI Green infrastructure: The future of urban flood risk management?
SO WILEY INTERDISCIPLINARY REVIEWS-WATER
LA English
DT Article
DE green infrastructure; resilience; SUDS; sustainable drainage; urban
   flooding; water sensitive urban design
ID SUSTAINABLE DRAINAGE SYSTEMS; SEDIMENT TRANSPORT; ECOSYSTEM SERVICES;
   WATER; STORMWATER; REDUCTION; CLIMATE; ADAPTATION; RESILIENCE; BENEFITS
AB Urban flooding is a key global challenge which is expected to become exacerbated under global change due to more intense rainfall and flashier runoff regimes over increasingly urban landscapes. Consequently, many cities are rethinking their approach to flood risk management by using green infrastructure (GI) solutions to reverse the legacy of hard engineering flood management approaches. The aim of GI is to attenuate, restore, and recreate a more natural flood response, bringing hydrological responses closer to pre-urbanized conditions. However, GI effectiveness is often difficult to determine, and depends on both the magnitude of storm events and the spatial scale of GI infrastructure. Monitoring of the successes and failures of GI schemes is not routinely conducted. Thus, it can be difficult to determine whether GI provides a sustainable solution to manage urban flooding. This article provides an international perspective on the current use of GI for urban flood mitigation and the solutions it offers in light of current and future challenges. An increasing body of literature further suggests that GI can be optimized alongside gray infrastructure to provide a holistic solution that delivers multiple co-benefits to the environment and society, while increasing flood resilience. GI will have to work synergistically with existing and upgraded gray infrastructure if urban flood risk is to be managed in a futureproof manner. Here, we discuss a series of priorities and challenges that must be overcome to enable integration of GI into existing stormwater management frameworks that effectively manage flood risk.
   This article is categorized under:
   Engineering Water > Sustainable Engineering of Water
   Engineering Water > Planning Water
   Science of Water > Water Extremes
C1 [Green, Daniel; Stirling, Ross] Newcastle Univ, Sch Engn, UKCRIC Natl Green Infrastruct Facil, Newcastle Upon Tyne NE4 5TG, Tyne & Wear, England.
   [O'Donnell, Emily; Johnson, Matthew; Thorne, Colin] Univ Nottingham, Sch Geog, Nottingham, England.
   [Slater, Louise] Univ Oxford, Sch Geog & Environm, Oxford, England.
   [Zheng, Shan] Wuhan Univ, State Key Lab Water Resources & Hydropower Engn S, Wuhan, Hubei, Peoples R China.
   [Zheng, Shan] Wuhan Univ, Hubei Key Lab Water Syst Sci Sponge City Construc, Wuhan, Hubei, Peoples R China.
   [Chan, Faith K. S.; Li, Lei] Univ Nottingham Ningbo China, Sch Geog Sci, Ningbo, Peoples R China.
   [Boothroyd, Richard J.] Univ Glasgow, Sch Geog & Earth Sci, Glasgow, Lanark, Scotland.
C3 Newcastle University - UK; University of Nottingham; University of
   Oxford; Wuhan University; Wuhan University; University of Nottingham
   Ningbo China; University of Glasgow
RP Green, D (corresponding author), Newcastle Univ, Sch Engn, UKCRIC Natl Green Infrastruct Facil, Newcastle Upon Tyne NE4 5TG, Tyne & Wear, England.
EM daniel.green@newcastle.ac.uk
RI Slater, Louise/KII-9281-2024; Zheng, Shan/GYU-1092-2022; Boothroyd,
   Richard/AAG-1820-2020; Chan, Faith Ka Shun/H-1541-2017
OI Johnson, Matthew/0000-0003-1336-5490; Green, Daniel/0000-0001-5181-6075;
   thorne, colin/0000-0002-2450-9624; Zheng, Shan/0000-0003-4595-9496;
   Stirling, Ross/0000-0002-0069-6621; Slater, Louise/0000-0001-9416-488X;
   Li, Lei/0000-0002-8743-9993; Boothroyd, Richard/0000-0001-9742-4229;
   Chan, Faith Ka Shun/0000-0001-6091-6596; O'Donnell,
   Emily/0000-0003-4303-4705
FU British Council Newton Fund/National Natural Science Foundation of China
   [51981330057]; Research Links grant Scheme [2018-RLWK10-10399]; EPSRC
   [EP/P004180/1, EP/S005862/1] Funding Source: UKRI
FX British Council Newton Fund/National Natural Science Foundation of China
   (Reference: 51981330057) under the Research Links grant Scheme,
   Grant/Award Number: 2018-RLWK10-10399
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NR 123
TC 80
Z9 82
U1 30
U2 176
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 NOV
PY 2021
VL 8
IS 6
AR e21560
DI 10.1002/wat2.1560
EA SEP 2021
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 WG5LV
UT WOS:000700258100001
OA Green Accepted, Green Submitted
DA 2025-04-22
ER

PT J
AU Anguelovski, I
   Chu, E
   Carmin, J
AF Anguelovski, Isabelle
   Chu, Eric
   Carmin, JoAnn
TI Variations in approaches to urban climate adaptation: Experiences and
   experimentation from the global South
SO GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Climate adaptation; Cities; Planning; Experimentation; Innovation;
   Participation
ID RESILIENCE; DURBAN; LEVEL; VULNERABILITY; CHALLENGES; SURAT;
   SUSTAINABILITY; GOVERNANCE; FRAMEWORK; POLICIES
AB In recent years, an increasing number of local governments are recognizing the impact of climate change on different urban sectors. This has led many to pursue climate adaptation planning, seeking to achieve preparedness through reducing vulnerability and enhancing resilience of populations, assets, and municipal operations. Although cities typically share these common goals, many are electing to pursue different planning approaches. In this paper, we examine three climate adaptation planning approaches in the cities of Quito (Ecuador), Surat (India), and Durban (South Africa) and analyze the trade-offs associated with different planning pathways and different forms of stakeholder involvement. We assess the potentials and limitations of these different approaches, including their implications for enhancing government integration and coordination, promoting participation and adaptive capacity of vulnerable groups, and facilitating overall urban resilience. We find that, in order to gain widespread commitment on adaptation, sustained political leadership from the top, departmental engagement, and continued involvement from a variety of stakeholders are integral to effective decision-making and institutionalization of programs in the long run. When climate adaptation is advanced with a focus on learning, awareness, and capacity building, the process will likely lead to more sustained, legitimate, and comprehensive adaptation plans and policies that enhance the resilience of the most affected urban areas and residents. (C) 2014 Elsevier Ltd. All rights reserved.
C1 [Anguelovski, Isabelle] Univ Autonoma Barcelona, Inst Environm Sci & Technol, E-08193 Barcelona, Spain.
   [Chu, Eric; Carmin, JoAnn] MIT, Dept Urban Studies & Planning, Cambridge, MA 02139 USA.
C3 Autonomous University of Barcelona; Massachusetts Institute of
   Technology (MIT)
RP Anguelovski, I (corresponding author), Univ Autonoma Barcelona, Inst Environm Sci & Technol, E-08193 Barcelona, Spain.
EM Isabelle.Anguelovski@uab.cat; ekc@mit.edu; jcarmin@mit.edu
RI Chu, Eric/O-6464-2015
OI Chu, Eric/0000-0002-5648-6615; Anguelovski, Isabelle/0000-0002-6409-5155
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NR 59
TC 121
Z9 133
U1 4
U2 104
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0959-3780
EI 1872-9495
J9 GLOBAL ENVIRON CHANG
JI Glob. Environ. Change-Human Policy Dimens.
PD JUL
PY 2014
VL 27
BP 156
EP 167
DI 10.1016/j.gloenvcha.2014.05.010
PG 12
WC Environmental Sciences; Environmental Studies; Geography
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA AO0HT
UT WOS:000340990400016
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Liu, R
   Jia, YH
AF Liu, Ran
   Jia, Yuhang
TI Resilience and Circularity: Revisiting the Role of Urban Village in
   Rural-Urban Migration in Beijing, China
SO LAND
LA English
DT Article
DE rural land tenure; resilience; circular migration; rural-urban migrants;
   Beijing; urban village
ID POLITICAL-ECONOMY; MIGRANTS; CREDIBILITY; GUANGZHOU; GROWTH; GAMES
AB Recent policies in China have encouraged rural-urban circular migration and an "amphibious" and flexible status of settlement, reacting against the recent risks of economic fluctuation in cities. Rural land, as a form of insurance and welfare, can handle random hazards, and the new Land Management Law guarantees that rural migrants who settle in the city can maintain their rights to farmland, homesteads, and a collective income distribution. Existing studies have pointed out that homeland tenure can reduce migrants' urban settlement intentions (which is a self-reported subjective perception of city life). However, little is known about how the rural-urban circularity and rural tenure system (especially for those still holding hometown lands in the countryside) affect rural migrants' temporary urban settlements (especially for those preferring to stay in informal communities in the host city). The existing studies on the urban villages in China have focused only on the side of the receiving cities, but have rarely mentioned the other side of this process, focusing on migrants' rural land tenure issues in their hometowns. This study discusses the rationale of informality (the urban village) and attests to whether, and to what extent, rural migrants' retention of their hometown lands can affect their tenure security choices (urban village or not) in Chinese metropolises such as Beijing. Binary logistic regression was conducted and the data analysis proved that rural migrants who kept their hometown lands, compared to their land-loss counterparts, were more likely to live in a Beijing urban village. This displays the resilience and circularity of rural-urban migration in China, wherein the rural migrant households demonstrate the "micro-family economy", maintaining tenure security in their hometown and avoiding the dissipation of their family income in their destination. The Discussion and Conclusions sections of this paper refer to some policy implications related to maintaining the rural-urban dual system, protecting rural migrant land rights, and beefing up the "opportunity structure" (including maintaining the low-rent areas in metropolises such as Beijing) in the 14th Five Year Plan period.
C1 [Liu, Ran; Jia, Yuhang] Capital Normal Univ, Coll Resource Environm & Tourism, 105 West 3rd Ring Rd North, Beijing 100048, Peoples R China.
C3 Capital Normal University
RP Liu, R (corresponding author), Capital Normal Univ, Coll Resource Environm & Tourism, 105 West 3rd Ring Rd North, Beijing 100048, Peoples R China.
EM liu.ran.space@hotmail.com; 2200902020@cnu.edu.cn
OI Jia, Yuhang/0000-0001-6013-7197
FU National Natural Science Foundation of China [42071201, 41701188];
   Beijing Philosophy and Social Science Planning Program and Social
   Science Research Key Program of Beijing Municipal Commission of
   Education [SZ202010028016]
FX FundingThis research was funded by the grant from the National Natural
   Science Foundation of China (NSFC project number: 42071201, 41701188),
   and a grant from the Beijing Philosophy and Social Science Planning
   Program and Social Science Research Key Program of Beijing Municipal
   Commission of Education (project number: SZ202010028016).
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   Zhou Y, 2020, LAND USE POLICY, V99, DOI 10.1016/j.landusepol.2020.105048
NR 41
TC 9
Z9 9
U1 5
U2 50
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD DEC
PY 2021
VL 10
IS 12
AR 1284
DI 10.3390/land10121284
PG 13
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA XZ7BJ
UT WOS:000737803200001
OA gold
DA 2025-04-22
ER

PT J
AU Stollmann, J
AF Stollmann, Joerg
TI Neighbourhood resilience in mass housing: co-production via
   research-by-design
SO BUILDING RESEARCH AND INFORMATION
LA English
DT Article
DE agency; built environment; collaboration; co-production; design
   education; housing; neighbourhood design; participation; resilience;
   resourcefulness; urban politics
AB In the debate on neighbourhood resilience, there is a demand for co-production involving inhabitants in adaptation processes. Neighbourhood resilience is discussed in terms of economic, ecological and socio-political capacities, making place-people relations a key factor. Academia-led research-by-design projects are engaging in resilience-building, but professional roles are still unclear. Architects, planners and urban designers often have limited knowledge about the specific community and the socio-economic impacts of their projects. This especially occurs in modernist mass-housing settlements within current conditions of neo-liberalization. Here, inhabitants and designers have only limited access to decision-making power and resources. More significantly, the spatial improvements might endanger major resources: the social cohesion and affordability of the neighbourhood. Using the concepts of collaboration (versus cooperation) and resourcefulness (versus resilience), this paper discusses the advantages and limits of academic design projects using two cases from the Academy of a New Gropiusstadt (AnG) in Berlin, Germany. Based on a process of community-based research-by-design, these projects activate spatial facilities and employ full-scale interventions to improve local resilience. Resourceful collaboration at the neighbourhood level demands new intermediary actors and designers as advocates with multi-scalar and transdisciplinary knowledge and abilities to assess and engage with the impacts of their co-produced design work.
C1 [Stollmann, Joerg] Tech Univ Berlin, Fac 6, Inst Architecture, 152 Str 17 Juni, D-10623 Berlin, Germany.
C3 Technical University of Berlin
RP Stollmann, J (corresponding author), Tech Univ Berlin, Fac 6, Inst Architecture, 152 Str 17 Juni, D-10623 Berlin, Germany.
EM joerg.stollmann@tu-berlin.de
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NR 33
TC 7
Z9 7
U1 0
U2 24
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0961-3218
EI 1466-4321
J9 BUILD RES INF
JI Build. Res. Informat.
PD OCT
PY 2016
VL 44
IS 7
BP 737
EP 753
DI 10.1080/09613218.2016.1217386
PG 17
WC Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology
GA DW7YF
UT WOS:000383868800004
DA 2025-04-22
ER

PT J
AU Aniche, LQ
   Edelenbos, J
   Gianoli, A
   Caruso, R
   DeLosRíos-White, MI
   Wissink-Nercua, CP
   Undabeitia, A
   Enseñado, EM
   Gharbia, S
AF Aniche, Laura Quadros
   Edelenbos, Jurian
   Gianoli, Alberto
   Caruso, Rochelle
   DeLosRios-White, Marta Irene
   Wissink-Nercua, Charmae Pyl
   Undabeitia, Asier
   Ensenado, Elena Marie
   Gharbia, Salem
TI Contextualizing and generalizing drivers and barriers of urban livings
   labs for climate resilience
SO ENVIRONMENTAL POLICY AND GOVERNANCE
LA English
DT Article
DE climate resilience; coastal cities; diffusion process; living lab;
   stakeholder; transition
ID SUSTAINABILITY; CITIES
AB Urban Living Labs are open innovation ecosystems that integrate research and innovation activities within urban communities. However, while solutions co-created and tested in the Urban Living Labs must be contextualized and tailored to each city's uniqueness, broader impact requires generalization and systematic replication across geographical, institutional, and sectoral boundaries. This article examines nine Living Labs in European coastal cities, identifying several barriers and drivers for mainstreaming and upscaling solutions to increase climate resilience through the Living Lab Integrative Process. Our analysis focuses on three main categories. First, social and cultural aspects highlighted include stakeholder engagement and awareness, communication, and dissemination. Second, we assess institutional and political aspects, such as silos, bureaucracy, and resources. Last, we investigate technical factors as knowledge and experience, technical and internal capacity, data availability and accessibility, climate-related policies and actions, and long-term perspective. The results suggest that while some barriers and drivers are common across the cases, providing generalizable patterns, there are also specific differences requiring tailored solutions at the local scale. Nonetheless, the diversity in drivers indicates the potential for sharing knowledge across cases to translate, embed, and scale solutions, enhancing the transition toward climate resilience. Learning and innovation in real-life contexts are fundamental in the Living Lab approach, and our findings demonstrate that cross-case learning can enhance an iterative process of contextualizing and generalizing innovative climate solutions.
C1 [Aniche, Laura Quadros; Edelenbos, Jurian; Gianoli, Alberto; Wissink-Nercua, Charmae Pyl; Ensenado, Elena Marie] Erasmus Univ, Inst Housing & Urban Dev Studies IHS, Rotterdam, Netherlands.
   [Caruso, Rochelle] ERINN Innovat, Dublin, Ireland.
   [DeLosRios-White, Marta Irene] European Network Living Labs ENoLL, Brussels, Belgium.
   [Undabeitia, Asier] Naider, Bilbao, Spain.
   [Gharbia, Salem] Atlantic Technol Univ, Ctr Environm Res Innovat & Sustainabil CERIS, Dept Environm Sci, Letterkenny, Ireland.
   [Aniche, Laura Quadros] Erasmus Univ, Inst Housing & Urban Dev Studies, Burgemeester Oudlaan 50,Mandeville Bldg,14th Floor, NL-3062 PA Rotterdam, Netherlands.
C3 Erasmus University Rotterdam - Excl Erasmus MC; Erasmus University
   Rotterdam; Atlantic Technological University (ATU); Erasmus University
   Rotterdam; Erasmus University Rotterdam - Excl Erasmus MC
RP Aniche, LQ (corresponding author), Erasmus Univ, Inst Housing & Urban Dev Studies, Burgemeester Oudlaan 50,Mandeville Bldg,14th Floor, NL-3062 PA Rotterdam, Netherlands.
EM quadrosaniche@ihs.nl
OI Gharbia, Salem/0000-0003-2130-1841
FU European Climate, Infrastructure and Environment Executive Agency
   (CINEA); Institute for Housing and Urban Development Studies (IHS);
   Atlantic Technological University
FX The authors are grateful to all members of the SCORE-Smart Control of
   the Climate Resilience in European Coastal Cities-project, particularly
   to the Coastal City Living Lab teams and partners from NAIDER, the
   European Network of Living Labs (ENoLL), the Institute for Housing and
   Urban Development Studies (IHS), ERINN Innovation, and Atlantic
   Technological University.
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NR 51
TC 1
Z9 1
U1 3
U2 16
PU WILEY PERIODICALS, INC
PI SAN FRANCISCO
PA ONE MONTGOMERY ST, SUITE 1200, SAN FRANCISCO, CA 94104 USA
SN 1756-932X
EI 1756-9338
J9 ENVIRON POLICY GOV
JI Environ. Policy Gov.
PD OCT
PY 2024
VL 34
IS 5
BP 490
EP 523
DI 10.1002/eet.2097
EA FEB 2024
PG 34
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA I0H6G
UT WOS:001159533500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Le, TDN
AF Tu Dam Ngoc Le
TI Theoretical frameworks in climate change adaptation planning: a
   comparative study in coastal cities of developing countries
SO JOURNAL OF ENVIRONMENTAL PLANNING AND MANAGEMENT
LA English
DT Article
DE Climate change; adaptation planning; theoretical frameworks; coastal
   cities; developing countries
ID RESILIENCE; VULNERABILITY; CAPACITY; MATTER; CITY
AB Climate change adaptation has shifted from a single-dimension to an integrative approach that aligns with vulnerability and resilience concepts. Adaptation planning, correspondingly, is guided by three frameworks categorized as the hazard-based, the vulnerability-based, and the urban resilience framework. Exploring in which ways these frameworks affect the proposed adaptation initiatives is crucial for planners to justify the well-fit approach for adaptation planning. This study seeks to examine the influence of these theoretical frameworks on the formulation of adaptation initiatives with a sample of 45 coastal cities in developing countries. The vulnerability framework is found to tackle the issues of climate change sufficiently while the hazard-based approach shares resources for both climate change and other matters, and the urban resilience framework puts more effort into other issues rather than climate change. From these findings, the study offers implications for adaptation planning in applying each of these three frameworks.
C1 [Tu Dam Ngoc Le] Univ Buffalo State Univ New York, Dept Urban & Reg Planning, Buffalo, NY 14222 USA.
   [Tu Dam Ngoc Le] Mientrung Univ Civil Engn, Fac Architecture, Tuy Hoa, Vietnam.
C3 State University of New York (SUNY) System; University at Buffalo, SUNY
RP Le, TDN (corresponding author), Univ Buffalo State Univ New York, Dept Urban & Reg Planning, Buffalo, NY 14222 USA.; Le, TDN (corresponding author), Mientrung Univ Civil Engn, Fac Architecture, Tuy Hoa, Vietnam.
EM ledamngoctu@muce.edu.vn
RI Le, Tu/JAC-0550-2023
FU Vietnam International Education Development, Ministry of Education and
   Training
FX The author would like to acknowledge the Ph.D. fellowship from Vietnam
   International Education Development, Ministry of Education and Training,
   and Prof. G. William Page, Dr. Zo~e Hamstead, Prof. JiYoung Park, Prof.
   Errol Meidinger, Dr. Emmanuel F. Boamah at the University at Buffalo,
   USA, and the anonymous reviewers for their constructive feedback.
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NR 50
TC 2
Z9 2
U1 12
U2 37
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 JAN 28
PY 2023
VL 66
IS 2
BP 424
EP 444
DI 10.1080/09640568.2021.1990028
EA OCT 2021
PG 21
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA 6Q7AV
UT WOS:000768711500001
DA 2025-04-22
ER

PT J
AU Qiao, Z
   Lu, YS
   He, T
   Wu, F
   Xu, XL
   Liu, L
   Wang, F
   Sun, ZY
   Han, DR
AF Qiao, Zhi
   Lu, Yingshuang
   He, Tong
   Wu, Feng
   Xu, Xinliang
   Liu, Luo
   Wang, Fang
   Sun, Zongyao
   Han, Dongrui
TI Spatial expansion paths of urban heat islands in Chinese cities:
   Analysis from a dynamic topological perspective for the improvement of
   climate resilience
SO RESOURCES CONSERVATION AND RECYCLING
LA English
DT Article
DE Land use and cover change; Spatial expansion path; Urban heat island;
   Urban heat island expansion index; Urban heat island intensity
ID LAND-SURFACE TEMPERATURE; THERMAL ENVIRONMENT; LANDSCAPE; IMPACTS;
   PATTERN; GROWTH; SIZE
AB Urban ecological resilience enhancement is important for the mitigation of climate change risks; however, urban heat islands (UHIs) have negative impacts on urban resilience. A UHI expansion index (UHIEI) was developed to identify new UHI patches produced by including infilling, edge expansion, and leapfrogging. In this study, we used a simplified urban extent (SUE) algorithm to estimate new UHI patches and their associated UHI intensity (UHII) values in 371 cities in China during 2005-2020. Then, we analyzed the sources and sinks of the UHI patches according to land use data. The study sought to comprehensively determine the spatial expansion path of the new UHI patches at the national scale. The results showed mean UHII values of 2.11 degrees C +/- 0.63 degrees C and 1.06 degrees C +/- 0.54 degrees C during the day and night, respectively, for the 371 cities in the summer of 2020; these were slightly higher than the corresponding values in 2005. The UHII values of the new UHI patches were 0.57 degrees C and 0.29 degrees C lower during the day and night, respectively, compared with pre-existing UHI patches in summer. New UHI patches were predominantly formed through edge expansion, with maximum UHII values of 1.74 degrees C +/- 0.80 degrees C and 0.88 degrees C +/- 0.42 degrees C during the day and night, respectively; these are lower than the values of pre-existing UHI patches, but they represent greater contributions to the land surface temperature (LST) of the city. Croplands, rural residential areas, and forests were the main sources for new UHI patches. The results of this study will allow better identification and comparison of the temporal and spatial characteristics of pre-existing and new UHI patches; they will also facilitate the design of targeted measures to mitigate their ecological impacts according to expansion type, thereby improving the cities' ecological resilience characteristics.
C1 [Qiao, Zhi; Lu, Yingshuang; He, Tong] Tianjin Univ, Sch Environm Sci & Engn, Tianjin 300350, Peoples R China.
   [Wu, Feng] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Xu, Xinliang] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, State Key Lab Resources & Environm Informat Syst, Beijing 100101, Peoples R China.
   [Liu, Luo] South China Agr Univ, Guangdong Prov Key Lab Land Use & Consolidat, Guangzhou 510642, Peoples R China.
   [Wang, Fang] Tianjin Acad Sci & Technol Dev, Tianjin 300011, Peoples R China.
   [Sun, Zongyao] Tianjin Univ, Sch Architecture, Tianjin 300272, Peoples R China.
   [Han, Dongrui] Inst Agr Informat & Econ, Shandong Acad Agr Sci, Jinan 250100, Peoples R China.
C3 Tianjin University; Chinese Academy of Sciences; Institute of Geographic
   Sciences & Natural Resources Research, CAS; Chinese Academy of Sciences;
   Institute of Geographic Sciences & Natural Resources Research, CAS;
   South China Agricultural University; Tianjin University; Shandong
   Academy of Agricultural Sciences
RP Wu, F (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
EM wufeng@igsnrr.ac.cn
RI Liu, Luo/GWC-4660-2022; Wu, Feng/ABB-9233-2022; Han,
   Dongrui/IVH-4941-2023; Xinliang, Xu/AAI-6824-2021
OI He, Tong/0000-0002-5667-9417; Wu, Feng/0000-0003-4688-0157; ,
   Zhi/0000-0002-8971-4952; Han, Dongrui/0000-0002-6206-3918
FU National Natural Science Foundation of China; Natural Science Foundation
   of Tianjin City; Major Projects of High -Resolution Earth Observation
   Systems of National Science and Technology;  [52270187];  [41971389]; 
   [41971233];  [21JCYBJC00390];  [05-Y30B01- 9001-19/20-4]
FX Acknowledgements This work was supported in part by the National Natural
   Science Foundation of China (52270187, 41971389, and 41971233) , in part
   by the Natural Science Foundation of Tianjin City (21JCYBJC00390) , and
   in part by the Major Projects of High -Resolution Earth Observation
   Systems of National Science and Technology under Grant 05-Y30B01-
   9001-19/20-4.
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NR 54
TC 39
Z9 45
U1 13
U2 119
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 JAN
PY 2023
VL 188
AR 106680
DI 10.1016/j.resconrec.2022.106680
EA SEP 2022
PG 9
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology
GA 5H4UI
UT WOS:000867675200003
DA 2025-04-22
ER

PT J
AU Guzy, MR
   Smith, CL
   Bolte, JP
   Hulse, DW
   Gregory, SV
AF Guzy, Michael R.
   Smith, Courtland L.
   Bolte, John P.
   Hulse, David W.
   Gregory, Stanley V.
TI Policy Research Using Agent-Based Modeling to Assess Future Impacts of
   Urban Expansion into Farmlands and Forests
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE social-ecological systems; agricultural-urban interface; fish habitat;
   ecosystem health; urban containment policies; agent-based models
ID LAND-COVER CHANGE; CONTINGENT VALUATION; MULTIAGENT SYSTEMS;
   VOTING-BEHAVIOR; SIMULATION; CONSEQUENCES; BIODIVERSITY; PREFERENCES;
   ENVIRONMENT; RESILIENCE
AB The expansion of urban land uses into farmlands and forests requires an assessment of future ecological impacts. Spatially explicit agent-based models can represent the changes in resilience and ecological services that result from different land-use policies. When modeling complex adaptive systems, both the methods used to interpret results and the standards of rigor used to judge adequacy are complicated and require additional research. Recent studies suggest that it would be appropriate to use these models as an extension of exploratory analysis. This type of analysis generates ensembles of alternate plausible representations of future system conditions. User expertise steers interactive, stepwise system exploration toward inductive reasoning about potential changes to the system. In this study, we develop understanding of the potential alternative futures for a social-ecological system by way of successive simulations that test variations in the types and numbers of policies. The model addresses the agricultural-urban interface and the preservation of ecosystem services. The landscape analyzed is at the junction of the McKenzie and Willamette Rivers adjacent to the cities of Eugene and Springfield in Lane County, Oregon. Our exploration of alternative future scenarios suggests that policies that constrain urban growth and create incentives for farming and forest enterprises to preserve and enhance habitat can protect ecosystem resilience and services.
C1 [Guzy, Michael R.; Bolte, John P.] Oregon State Univ, Dept Biol & Ecol Engn, Corvallis, OR 97331 USA.
   [Smith, Courtland L.] Oregon State Univ, Dept Anthropol, Corvallis, OR 97331 USA.
   [Hulse, David W.] Univ Oregon, Dept Landscape Architecture, Eugene, OR 97403 USA.
   [Gregory, Stanley V.] Oregon State Univ, Dept Fisheries & Wildlife, Corvallis, OR 97331 USA.
C3 Oregon State University; Oregon State University; University of Oregon;
   Oregon State University
RP Guzy, MR (corresponding author), Oregon State Univ, Dept Biol & Ecol Engn, Corvallis, OR 97331 USA.
OI Bolte, John/0000-0003-0059-4219
FU National Science Foundation Program; Biocomplexity in the Environment;
   Integrated Research and Education in Environmental Systems [0120022];
   Oregon State University; University of Oregon; EXYSTENCE Network of
   Excellence in Complex Systems; University of Surrey's Institute of
   Advanced Studies
FX We acknowledge the tremendous assistance from the subject editor of
   Ecology and Society and four anonymous reviewers during the development
   of this manuscript in the review process. The National Science
   Foundation Program, Biocomplexity in the Environment: Integrated
   Research and Education in Environmental Systems, Award No. 0120022
   funded part of this research. Additional support came from Oregon State
   University and the University of Oregon. Support from the EXYSTENCE
   Network of Excellence in Complex Systems and the University of Surrey's
   Institute of Advanced Studies made possible our participation in the
   Workshop on Modeling Urban Social Dynamics, April 7-8, 2005. Comments by
   workshop planners and participants helped in developing this manuscript.
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NR 80
TC 70
Z9 86
U1 1
U2 90
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 37
PG 38
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 376IA
UT WOS:000261176100028
DA 2025-04-22
ER

PT J
AU Lombardía, A
   Gómez-Villarino, MT
AF Lombardia, Alba
   Gomez-Villarino, Maria Teresa
TI Green infrastructure in cities for the achievement of the un sustainable
   development goals: a systematic review
SO URBAN ECOSYSTEMS
LA English
DT Review
DE Green infrastructure; Sustainable development goals; Urban
   sustainability; Sustainable cities; Urban resilience
ID ISLAND MITIGATION STRATEGIES; ECOSYSTEM SERVICES; CLIMATE-CHANGE; URBAN
   AGRICULTURE; MENTAL-HEALTH; CITY; RESILIENCE; SPACES; BENEFITS; ECOLOGY
AB Cities, in continuous growth, are at a critical moment to guarantee economic, social and environmental stability, as recognised by the UN 2030 Agenda for Sustainable Development. This study aims to demonstrate how Green Infrastructure (GI) can contribute, as spaces of opportunity in cities, to achieving Sustainable Development Goals (SDGs) in metropolitan areas. And by doing that, more substantial support from urban planners and decision-makers may be performed. A systematic literature review based on the PRISMA method was conducted, 694 records were identified, and 100 articles were thoroughly reviewed. The main finding suggested that 17 SDGs and 74 (44%) of its 169 targets may be achieved through a single strategy; the implementation of nature in the city and the use of the ecosystem services that the environment provides to its advantage. The analysis shows the need for a system change in urban areas worldwide, where GI can contribute to 80% of the targets in SDG11, "Sustainable Cities and Society." The metropolis remains the most efficient area to test and implement green solutions to have an immediate impact on achieving the SDGs. It is imperative to take climate action, and GI can be used as an urban catalyst for sustainability and, consequently, resilience in contemporary cities.
C1 [Lombardia, Alba] SUTD Singapore Univ Technol & Design, Architecture & Sustainable Design Dept, 8 Somapah Rd, Singapore 487372, Singapore.
   [Gomez-Villarino, Maria Teresa] Univ Politecn Madrid, Sch Agr, Food & Biosyst Engn Agroforestry Engn Dept, Madrid 28040, Spain.
C3 Singapore University of Technology & Design; Universidad Politecnica de
   Madrid
RP Lombardía, A (corresponding author), SUTD Singapore Univ Technol & Design, Architecture & Sustainable Design Dept, 8 Somapah Rd, Singapore 487372, Singapore.
EM alba_lombardia@mymail.sutd.edu.sg; teresa.gomez.villarino@upm.es
RI GOMEZ VILLARINO, MARIA TERESA/ABF-8963-2021
OI Lombardia, Alba/0000-0002-6489-2541; GOMEZ VILLARINO, MARIA
   TERESA/0000-0002-8720-3593
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NR 123
TC 12
Z9 13
U1 13
U2 65
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 DEC
PY 2023
VL 26
IS 6
BP 1693
EP 1707
DI 10.1007/s11252-023-01401-4
EA AUG 2023
PG 15
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA CA6B4
UT WOS:001044699700001
DA 2025-04-22
ER

PT J
AU Yadav, N
   Rakholia, S
   Yosef, R
AF Yadav, Neelesh
   Rakholia, Shrey
   Yosef, Reuven
TI Decision Support Systems in Forestry and Tree-Planting Practices and the
   Prioritization of Ecosystem Services: A Review
SO LAND
LA English
DT Review
DE decision support system; climate resilience; ecosystem services; deep
   neural networks; sustainability
ID TOOL; SELECTION; AGROFORESTRY; ADAPTATION; MANAGEMENT; EXPANSION
AB In this study, tree-selection/plantation decision support systems (DSSs) were reviewed and evaluated against essential objectives in the available literature. We verified whether existing DSSs leverage multiple data sources and available online resources such as web interfaces. We compared the existing DSSs, and in this study mainly focused on five main objectives that DSSs can consider in tree selection, including (a) climate resilience, (b) infrastructure/space optimization, (c) agroforestry, (d) ecosystem services, and (e) urban sustainability. The climate resilience of tree species and urban sustainability are relatively rarely taken into account in existing systems, which can be integrated holistically in future DSS tools. Based on this review, deep neural networks (DNNs) are recommended to achieve trade-offs between complex objectives such as maximizing ecosystem services, the climate resilience of tree species, agroforestry conservation, and other benefits.
C1 [Yadav, Neelesh; Rakholia, Shrey] Forest Res Inst, Bioinformat Ctr, Dehra Dun 248006, Uttarakhand, India.
   [Yosef, Reuven] Ben Gurion Univ Negev, Eilat Campus,POB 272, IL-881020 Elat, Israel.
C3 Indian Council of Forestry Research & Education (ICFRE); Forest Research
   Institute (FRI); Ben-Gurion University of the Negev
RP Yosef, R (corresponding author), Ben Gurion Univ Negev, Eilat Campus,POB 272, IL-881020 Elat, Israel.
EM neelesh_yadav@icfre.org; rakholias@gmail.com; ryosef60@gmail.com
RI Yosef, Reuven/I-3450-2019
OI Rakholia, Shrey/0000-0002-2681-3793; Yosef, Reuven/0000-0003-4331-9866
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NR 71
TC 2
Z9 2
U1 4
U2 17
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 230
DI 10.3390/land13020230
PG 12
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA IX7E5
UT WOS:001169695900001
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Barchetta, L
   Petrucci, E
   Xavier, V
   Bento, R
AF Barchetta, Lucia
   Petrucci, Enrica
   Xavier, Valter
   Bento, Rita
TI A Simplified Framework for Historic Cities to Define Strategies Aimed at
   Implementing Resilience Skills: The Case of Lisbon Downtown
SO BUILDINGS
LA English
DT Article
DE historic cities; seismic resilience; urban vulnerability
ID SEISMIC VULNERABILITY ASSESSMENT; CITY-CENTER; BUILDINGS; CENTERS
AB The concepts of resistance to unforeseen disasters and rapid post-disaster recovery of historic cities are necessary due to the earthquakes that have profoundly influenced their evolution. The improvement of this property strongly depends on the effectiveness of the preventive tools. In this work, an operational framework for the resilience assessment of a historical city characterized by high cultural and historical elements is developed, which corresponds to the main contribution of this research. The research includes multicriteria analysis based on the in-depth knowledge of the city's historical development, the study of the effects of past earthquakes, structural vulnerability analysis of pombalino buildings, architectural types and socio-economic aspects. The aim is to obtain the necessary elements to guide an aware plan for improving resilience and the reduction of vulnerability through a GIS tool aimed at preventing and defining urban intervention priorities. The framework proposed is applied to Lisbon downtown.
C1 [Barchetta, Lucia; Petrucci, Enrica] Univ Camerino, Sch Architecture & Design, I-63100 Ascoli Piceno, Italy.
   [Xavier, Valter; Bento, Rita] Univ Lisbon, CERIS, Inst Super Tecn, P-1049001 Lisbon, Portugal.
C3 University of Camerino; Universidade de Lisboa
RP Bento, R (corresponding author), Univ Lisbon, CERIS, Inst Super Tecn, P-1049001 Lisbon, Portugal.
EM rita.bento@tecnico.ulisboa.pt
RI Bento, Rita/A-6544-2013; Petrucci, Enrica/T-6482-2017
OI Bento, Rita/0000-0002-6503-0644; Petrucci, Enrica/0000-0002-6436-7667
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NR 48
TC 4
Z9 4
U1 3
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 JAN
PY 2023
VL 13
IS 1
AR 130
DI 10.3390/buildings13010130
PG 24
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA 7X9UJ
UT WOS:000914537600001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Marasco, S
   Cardoni, A
   Noori, AZ
   Kammouh, O
   Domaneschi, M
   Cimellaro, GP
AF Marasco, Sebastiano
   Cardoni, Alessandro
   Noori, Ali Zamani
   Kammouh, Omar
   Domaneschi, Marco
   Cimellaro, Gian Paolo
TI Integrated platform to assess seismic resilience at the community level
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Disaster resilience; Urban community; Interdependence analysis; Critical
   infrastructure; Damage assessment; Multiprocessing
ID CRITICAL INFRASTRUCTURE; MODEL; ALGORITHM
AB Due to the increasing frequency of disastrous events, the challenge of creating large-scale simulation models has become of major significance. Indeed, several simulation strategies and methodologies have been recently developed to explore the response of communities to natural disasters. Such models can support decision-makers during emergency operations allowing to create a global view of the emergency identifying consequences. An integrated platform that implements a community hybrid model with real-time simulation capabilities is presented in this paper. The platform's goal is to assess seismic resilience and vulnerability of critical infrastructures (e.g., built environment, power grid, socio-technical network) at the urban level, taking into account their interdependencies.
   Finally, different seismic scenarios have been applied to a large-scale virtual city model. The platform proved to be effective to analyze the emergency and could be used to implement countermeasures that improve community response and overall resilience.
C1 [Marasco, Sebastiano; Cardoni, Alessandro; Noori, Ali Zamani; Domaneschi, Marco; Cimellaro, Gian Paolo] Politecn Torino, Dept Struct Geotech & Bldg Engn, Turin, Italy.
   [Kammouh, Omar] Delft Univ Technol, Dept Civil Engn & Geosci, Delft, Netherlands.
C3 Polytechnic University of Turin; Delft University of Technology
RP Cimellaro, GP (corresponding author), Politecn Torino, Dept Struct Geotech & Bldg Engn, Turin, Italy.
EM sebastiano.marasco@polito.it; alessandro.cardoni@polito.it;
   ali.zamani@polito.it; o.kammouh@tudelft.nl; marco.domaneschi@polito.it;
   gianpaolo.cimellaro@polito.it
RI Cimellaro, Gian/AAJ-2511-2020; Noori, Ali/KVB-7125-2024; kammouh,
   omar/AAH-3629-2019; Domaneschi, Marco/V-9978-2017; Cardoni,
   Alessandro/B-4122-2019; Marasco, Sebastiano/K-3500-2015
OI kammouh, omar/0000-0002-8859-061X; Domaneschi,
   Marco/0000-0002-6077-8338; Cardoni, Alessandro/0000-0002-9972-2702;
   Marasco, Sebastiano/0000-0001-8640-4433
FU European Research Council [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 65
TC 65
Z9 69
U1 14
U2 79
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JAN
PY 2021
VL 64
AR 102506
DI 10.1016/j.scs.2020.102506
PG 20
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA PF8HJ
UT WOS:000599288400001
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Mitra, S
   Mulligan, J
   Schilling, J
   Harper, J
   Vivekananda, J
   Krause, L
AF Mitra, Shreya
   Mulligan, Joe
   Schilling, Janpeter
   Harper, Jamilla
   Vivekananda, Janani
   Krause, Lisa
TI Developing risk or resilience? Effects of slum upgrading on the social
   contract and social cohesion in Kibera, Nairobi
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE conflict; flooding; Kibera; Nairobi; resilience; risk; social cohesion;
   social contract; urban
AB In Kibera, an informal settlement in Nairobi, Kenya, major development efforts are underway - namely, the Kenya Slum Upgrading Programme (Kibera Pilot), the Nairobi Railway Relocation Action Plan, and the National Youth Service-led Kibera Slum Upgrade Initiative. This paper assesses how such interventions affect the social contract and social cohesion, and hence the resilience of Kibera residents. We examine the extent to which different types of slum upgrading efforts address risks in Kibera, particularly around conflict and flooding. Our findings show that these interventions can reduce conflict, crime, insecurity and flood risks, and subsequently strengthen resilience in highly dense and complex urban environments, if they do three things: first, include processes that build the social contract (such as meaningful consultation of residents and social accountability mechanisms); second, build bridging social capital between ethnic groups and avoid reducing bonding capital within groups; and third, integrate different sectoral interventions.
C1 [Mitra, Shreya; Schilling, Janpeter; Vivekananda, Janani] Int Alert, 346 Clapham Rd, London SW9 9AP, England.
   [Mulligan, Joe] Kounkuey Design Initiat, Stockholm, Sweden.
   [Schilling, Janpeter] Univ Koblenz Landau, Landau, Germany.
   [Schilling, Janpeter; Krause, Lisa] Univ Hamburg, Hamburg, Germany.
   [Harper, Jamilla] Kounkuey Design Initiat, Nairobi, Kenya.
C3 University of Koblenz & Landau; University of Hamburg
RP Mitra, S (corresponding author), Int Alert, 346 Clapham Rd, London SW9 9AP, England.
EM smitra@international-alert.org; joe@kounkuey.org;
   schilling@uni-landau.de; jamilla@kounkuey.org;
   jvivekananda@international-alert.org; lisakrause@arcor.de
FU Economic and Social Research Council-UK Department for International
   Development (ESRC-DFID) programme Urban Africa Risk Knowledge; Swiss Re
   Foundation; University of Hamburg; ESRC [ES/L008777/1] Funding Source:
   UKRI
FX This research is supported by the Economic and Social Research
   Council-UK Department for International Development (ESRC-DFID)
   programme Urban Africa Risk Knowledge, the Swiss Re Foundation and the
   University of Hamburg.
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NR 29
TC 56
Z9 61
U1 2
U2 63
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 2017
VL 29
IS 1
BP 103
EP 122
DI 10.1177/0956247816689218
PG 20
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA ET2FX
UT WOS:000400086300007
OA Green Published
DA 2025-04-22
ER

PT J
AU Xu, Z
   Zhang, FR
   Wu, YY
AF Xu, Zhen
   Zhang, Furong
   Wu, Yingying
TI A dual-scale system dynamics prediction method for post-earthquake
   repair of urban building groups
SO EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS
LA English
DT Article
DE a dual building-to-city scale; post-earthquake repair; resilience;
   resource allocation; system dynamics model
ID LAQUILA EARTHQUAKE; AFTERMATH; BIM
AB The interaction between individual buildings and a city during the post-earthquake repair process (e.g., the urban repair resource allocation for a building) has a significant influence on urban resilience. To consider such an interaction, a dual-scale system dynamics prediction method for post-earthquake repair of urban building groups is proposed, by which the detailed repair process of each individual building and the entire city can be systematically simulated. First, an urban priority for building repair is determined, and an algorithm for calculating the repair workload of individual buildings considering such an urban priority is developed for the following repair simulation of buildings. Next, a system dynamics model is established for simulating the repair process for individual buildings based on four types of resources, that is, workers, equipment, materials, and funds. Finally, a repair prediction model with a dual building-to-city scale is developed considering the resource allocation process of buildings. Two historical case studies were used to validate the accuracy of the system dynamics model for individual-building repair. A case study on a small-sized city was performed to reveal the influence patterns of different resource availability levels, repair modes, and structural systems on the repair process. The proposed method can predict in detail the post-earthquake repair process with a dual building-to-city scale, supporting the decision-making of city resilience.
C1 [Xu, Zhen; Zhang, Furong; Wu, Yingying] Univ Sci & Technol Beijing, Res Inst Urbanizat & Urban Safety, Sch Civil & Resource Engn, Beijing, Peoples R China.
C3 University of Science & Technology Beijing
RP Xu, Z (corresponding author), Univ Sci & Technol Beijing, Res Inst Urbanizat & Urban Safety, Sch Civil & Resource Engn, Beijing, Peoples R China.
EM xuzhen@ustb.edu.cn
RI XU, Zhen/JNX-0642-2023
OI Xu, Zhen/0000-0001-7011-3236
FU Beijing Municipal Natural Science Foundation [8212011]; National Natural
   Science Foundation of China [51978049, 52238011]; Beijing Nova Program
   of Science and Technology [Z191100001119115]
FX ACKNOWLEDGMENTS The authors are grateful for the financial support
   received from Beijing Municipal Natural Science Foundation (Grant No.
   8212011), National Natural Science Foundation of China (Grant No.
   51978049, 52238011), and Beijing Nova Program of Science and Technology
   (Grant No. Z191100001119115).
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NR 42
TC 3
Z9 4
U1 2
U2 34
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0098-8847
EI 1096-9845
J9 EARTHQ ENG STRUCT D
JI Earthq. Eng. Struct. Dyn.
PD APR
PY 2023
VL 52
IS 5
BP 1423
EP 1444
DI 10.1002/eqe.3823
EA JAN 2023
PG 22
WC Engineering, Civil; Engineering, Geological
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA 9S2WS
UT WOS:000913251400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Bi, CY
   Little, JC
AF Bi, Chenyang
   Little, John C.
TI Integrated assessment across building and urban scales: A review and
   proposal for a more holistic, multi-scale, system-of-systems approach
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Review
DE Building; Urban; Systems; Assessment; Resilience; Sustainability
ID SOCIAL-ECOLOGICAL SYSTEMS; SMART SUSTAINABLE CITIES; INFORMATION
   MODELING BIM; LIFE-CYCLE ASSESSMENT; LOW-CARBON; ENVIRONMENTAL
   SUSTAINABILITY; ASSESSMENT TOOLS; ECO-CITY; GREEN INFRASTRUCTURE; HUMAN
   HEALTH
AB Humanity is facing major societal challenges that are complex and systemic in the nature of their drivers, interactions, and impacts. Because buildings and cities play a substantial role in these societal challenges, we need reliable approaches that can be used to assess their resilience and sustainability. Given that building and urban systems are usually tightly coupled, we critically review nine building-scale assessment frameworks and seven urban-scale assessment frameworks, ranking them from high to low in terms of the causality among component systems. We identify four major knowledge gaps that, to varying degrees, span the entire range of assessment frameworks: (1) causality among component systems and their subsystems is limited; (2) sustainability and resilience are too narrowly defined; (3) social systems are inadequately addressed; and (4) building-and urban scale assessments are poorly connected. To address these limitations, we briefly introduce several closely-related fields of research including integrated assessment and modeling, social-ecological systems research, land systems science, socio-environmental systems modeling, modeling of human behavior, multi-scale modeling, and multi fidelity modeling. Building on these rapidly emerging research domains, we conclude by proposing a more holistic, multi-scale, system-of-systems approach that connects across building and urban scales using several common systems.
C1 [Bi, Chenyang; Little, John C.] Virginia Tech, Dept Civil & Environm Engn, Blacksburg, VA 24061 USA.
C3 Virginia Polytechnic Institute & State University
RP Little, JC (corresponding author), Virginia Tech, Dept Civil & Environm Engn, Blacksburg, VA 24061 USA.
EM jcl@vt.edu
RI Bi, Chenyang/J-7077-2019; Little, John/B-4154-2009
OI Little, John/0000-0003-2965-9557
FU NSF [EEC 1937012]
FX We thank Dr. Amro Farid for insightful suggestions and acknowledge
   funding from NSF Award EEC 1937012 (Planning Grant: Engineering research
   center for managing complex socio-environmental problems using a
   generic, tiered system-of-systems modeling and data-science framework) .
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NR 184
TC 12
Z9 13
U1 11
U2 99
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 2022
VL 82
AR 103915
DI 10.1016/j.scs.2022.103915
EA MAY 2022
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 1T9FQ
UT WOS:000805029900003
DA 2025-04-22
ER

PT J
AU Graveline, N
   Grémont, M
AF Graveline, Nina
   Gremont, Marine
TI Measuring and understanding the microeconomic resilience of businesses
   to lifeline service interruptions due to natural disasters
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Economic resilience; Indirect impacts; Resilience indicator; Business
   interruption; Lifeline service disruption; Disaster risk reduction
ID CLIMATE-CHANGE; ADAPTIVE CAPACITY; VULNERABILITY; ADAPTATION; RISK;
   FRAMEWORK; RESPONSES; RECOVERY; INSIGHTS; FLOOD
AB Facing rising natural hazards, urban environments are particularly prone to suffer economic impacts from business interruptions due to disaster-induced lifeline service disruptions. Enhancing the ability of local economies to maintain function and hasten recovery in the aftermath of natural disasters triggers the need to both measure economic resilience and better understand its drivers. Based on a conceptual framework that highlights the peculiarities of resilience with respect to vulnerability and adaptation, this paper develops a scientifically sound operational indicator of the economic resilience of individual businesses to lifeline service interruptions caused by natural disasters. The indicator is constructed so as to compare patterns of economic resilience across firms or events and identify hotspots of poor resilience that public policies should target as a priority. In order to demonstrate its scientific and operational relevance, it is applied to individual businesses located in the Urban Community of Central Martinique (French West Indies). A business survey is used to collect empirical data for two hypothetical equal hazard scenarios leading to the disruption of the drinking water and electricity networks. An econometric analysis then investigates the dependence of economic resilience to a set of individual characteristics such as business demographics and operating characteristics. Results show that businesses are relatively more resilient to drinking water interruptions than to electricity cuts and that turnover and flexibility in both working hours and production processes are significant drivers of economic resilience. We discuss the limitations of this indicator and pinpoint the challenge for future research of isolating pre-existing sensitivity to shocks from overall economic impacts.
C1 [Graveline, Nina; Gremont, Marine] Bur Rech Geol & Minieres BRGM, 1039 Rue Pinville, F-34000 Montpellier, France.
C3 Bureau de Recherches Geologiques et Minieres (BRGM)
RP Grémont, M (corresponding author), Bur Rech Geol & Minieres BRGM, 1039 Rue Pinville, F-34000 Montpellier, France.
EM m.gremont@brgm.fr
RI Graveline, Nina/AAG-5114-2020
OI Graveline, Nina/0000-0002-7976-0007
FU BRGM
FX This work was supported by BRGM. The authors gratefully acknowledge the
   Communaute d'Agglomeration du Centre de la Martinique, the Chambre de
   Commerce et d'Industrie and the Chambre des Metiers et de l'Artisanat
   for their help in disseminating the questionnaire. We thank Daniel
   Monfort-Climent for very helpful exchanges on an earlier version of this
   paper as well as Jean-Daniel Rinaudo and Bastien Colas for discussions
   on the various components of resilience and Aude Nachbaur for her useful
   help in understanding the peculiarities of the Martiniquese economy. We
   also acknowledge the very useful and relevant contributions of three
   anonymous reviewers. All errors and omissions remain our responsibility.
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NR 70
TC 39
Z9 44
U1 7
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 SEP
PY 2017
VL 24
BP 526
EP 538
DI 10.1016/j.ijdrr.2017.05.012
PG 13
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 FL0XM
UT WOS:000413936100054
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Grilo, F
   Mcphearson, T
   Aleixo, C
   Santos-Reis, M
   Branquinho, C
AF Grilo, Filipa
   Mcphearson, Timon
   Aleixo, Cristiana
   Santos-Reis, Margarida
   Branquinho, Cristina
TI Urban trees through a functional traits' lens: Exploring the interplay
   between tree functional groups and social-ecological factors
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Environmental management; Functional traits; Social-ecological systems;
   Urban green infrastructure; Urban planning
ID RESPONSE DIVERSITY; PLANT TRAITS; PATTERNS; BENEFITS; FOREST; GARDEN
AB Urban trees' functional traits influence their resilience to environmental changes and the delivery of ecosystem services. However, research on classifying urban trees into functional groups based on species traits - clusters of species with similar responses to environmental stressors and providing similar ecosystem services - and exploring the factors that shape their distribution is limited. This study classified a subset of urban trees in Lisbon, Portugal, into functional groups using 20 traits related to survival, establishment, tolerance, and ecosystem services delivery. We analyzed their distribution patterns across the city and modelled their abundance at the local scale, considering various social and ecological factors. These results were integrated with the municipality's tree selection criteria. Our results revealed three functional groups - temperate, mediterranean, and tropical - each with the potential to deliver complementary ecosystem services. The distribution of the temperate functional group, the most abundant, was primarily associated with social factors, such as proximity to roads and public spaces. However, the temperate group had lower potential resilience to climate change due to its association with humid temperate climates, raising concerns in areas dominated by these species. In contrast, the mediterranean and tropical groups were influenced by both social and ecological factors, with trait data suggesting their potential to thrive under future climate conditions. These findings emphasize the need to enhance local functional diversity to increase ecological resilience and ensure a wider range of ecosystem services, especially in the context of climate adaptation. Overall, this analysis demonstrates the importance of social-ecological factors in shaping the functional composition of urban green spaces, offering insights into the roles of traits in sustainable species selection and urban tree management.
C1 [Grilo, Filipa; Aleixo, Cristiana; Santos-Reis, Margarida; Branquinho, Cristina] Univ Lisbon, Ctr Ecol Evolut & Environm Changes cE3c, P-1749016 Lisbon, Portugal.
   [Grilo, Filipa; Aleixo, Cristiana; Santos-Reis, Margarida; Branquinho, Cristina] Univ Lisbon, CHANGE Global Change & Sustainabil Inst, Fac Ciencias, P-1749016 Lisbon, Portugal.
   [Mcphearson, Timon] Royal Swedish Acad Sci, Beijer Inst Ecol Econ, Stockholm, Sweden.
   [Mcphearson, Timon] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [Mcphearson, Timon] Cary Inst Ecosyst Studies, Millbrook, NY USA.
   [Mcphearson, Timon] Urban Syst Lab, New Sch, New York, NY USA.
C3 Universidade de Lisboa; Universidade de Lisboa; Royal Swedish Academy of
   Sciences; Beijer Institute of Ecological Economics; Stockholm
   University; Cary Institute of Ecosystem Studies; The New School
RP Branquinho, C (corresponding author), Univ Lisbon, Ctr Ecol Evolut & Environm Changes cE3c, P-1749016 Lisbon, Portugal.; Branquinho, C (corresponding author), Univ Lisbon, CHANGE Global Change & Sustainabil Inst, Fac Ciencias, P-1749016 Lisbon, Portugal.
EM afgrilo@fc.ul.pt; timon.mcphearson@newschool.edu; caaleixo@fc.ul.pt;
   mmreis@fc.ul.pt; cmbranquinho@fc.ul.pt
RI McPhearson, Timon/JOZ-3799-2023; Santos-Reis, Margarida/H-4064-2011;
   Branquinho, Cristina/B-3670-2008; Aleixo, Cristiana/N-7540-2013
CR [Anonymous], 2021, Censos 2021. Resultados preliminares
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NR 74
TC 0
Z9 0
U1 4
U2 4
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 2025
VL 107
AR 128749
DI 10.1016/j.ufug.2025.128749
EA MAR 2025
PG 10
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 Z6X9X
UT WOS:001440321700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Haces-Garcia, F
   Glennie, CL
   Rifai, HS
AF Haces-Garcia, Francisco
   Glennie, Craig L.
   Rifai, Hanadi S.
TI Sustainability of Network Infrastructure in a Geospatial Resilience
   Context
SO SUSTAINABILITY
LA English
DT Article
DE exploratory factor analysis; geographic information systems; internet
   vulnerability
ID PRINCIPLES
AB Increased societal reliance on critical infrastructures, such as the internet, has fueled resilience concerns. However, important geospatial differences complicate large-scale studies of critical infrastructure. This research develops a new geospatial framework to assess spatial disparities in critical internet infrastructure resilience. The framework is demonstrated using a testbed big data analysis for Texas assembled specifically for this study. Data on contributors to internet resilience-specifically, access flexibility, disruption risk, and disruption vulnerability-were incorporated for the study. An overall resilience score was calculated at the census tract level. Important geospatial patterns in network resilience emerged, with rural and urban areas in Texas showing stark differences. The developed techniques can be implemented to assess resilience geospatially, allowing for targeted efforts that ensure the survivability of critical infrastructure and assessments of digital divides.
C1 [Haces-Garcia, Francisco; Glennie, Craig L.] Univ Houston, Natl Ctr Airborne Laser Mapping, Houston, TX 77204 USA.
   [Haces-Garcia, Francisco; Glennie, Craig L.; Rifai, Hanadi S.] Univ Houston, Dept Civil & Environm Engn, Houston, TX 77204 USA.
C3 University of Houston System; University of Houston; University of
   Houston System; University of Houston
RP Rifai, HS (corresponding author), Univ Houston, Dept Civil & Environm Engn, Houston, TX 77204 USA.
EM rifai@uh.edu
OI Rifai, Hanadi/0000-0002-7321-2448
FU Hurricane Resilience Research Institute; National Center for Airborne
   Laser and Mapping (NCALM, NSF) [1830734]; Directorate For Geosciences;
   Division Of Earth Sciences [1830734] Funding Source: National Science
   Foundation
FX This research was funded by the National Center for Airborne Laser and
   Mapping (NCALM, NSF Grant #1830734) and the Hurricane Resilience
   Research Institute. Their support is gratefully acknowledged.
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NR 45
TC 1
Z9 1
U1 2
U2 23
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2022
VL 14
IS 18
AR 11415
DI 10.3390/su141811415
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 4R7QU
UT WOS:000856954400001
OA gold
DA 2025-04-22
ER

PT J
AU Aurigi, A
   Odendaal, N
AF Aurigi, Alessandro
   Odendaal, Nancy
TI From "Smart in the Box" to "Smart in the City": Rethinking the Socially
   Sustainable Smart City in Context
SO JOURNAL OF URBAN TECHNOLOGY
LA English
DT Article
DE smart urbanism; social sustainability; place; context; planning
ID CITIES
AB This paper focuses on the importance of framing and conceiving smart urban initiatives and schemes in a highly context-sensitive way, and argues that place-based approaches are essential for enhancing the social sustainability of smart cities. It does so by highlighting how such a perspective is often ignored by discourses and visions that favor generalized and socially skewed ways of framing the "city" as well as the citizens who are expected to become "smart" and benefit from high technologies. These, the paper argues, leave out the important nuances and social and spatial interstices that make places unique, and by doing so weaken the ability of smart to be inclusive and afford a rich landscape of technological appropriation making cities more resilient.
C1 [Aurigi, Alessandro] Univ Plymouth, Urban Design, Plymouth, Devon, England.
   [Aurigi, Alessandro] Univ Plymouth, Res, Plymouth, Devon, England.
   [Aurigi, Alessandro] Newcastle Univ, Architecture, Newcastle Upon Tyne, Tyne & Wear, England.
   [Aurigi, Alessandro] UCL, London, England.
   [Odendaal, Nancy] Univ Cape Town, City & Reg Planning, Cape Town, South Africa.
C3 University of Plymouth; University of Plymouth; Newcastle University -
   UK; University of London; University College London; University of Cape
   Town
RP Aurigi, A (corresponding author), Univ Plymouth, Urban Design, Plymouth, Devon, England.; Aurigi, A (corresponding author), Univ Plymouth, Res, Plymouth, Devon, England.; Aurigi, A (corresponding author), UCL, London, England.
EM alex.aurigi@plymouth.ac.uk
RI Odendaal, Nancy/AAS-3927-2021
OI Aurigi, Alessandro/0000-0002-9508-0626; Odendaal,
   Nancy/0000-0003-0706-1247
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NR 46
TC 56
Z9 56
U1 1
U2 32
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 APR 3
PY 2021
VL 28
IS 1-2
SI SI
BP 55
EP 70
DI 10.1080/10630732.2019.1704203
EA JAN 2020
PG 16
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA QY7PP
UT WOS:000511630000001
DA 2025-04-22
ER

PT J
AU Cocozza, S
   Sacco, PL
   Matarese, G
   Maffulli, GD
   Maffulli, N
   Tramontano, D
AF Cocozza, Sergio
   Sacco, Pier Luigi
   Matarese, Giuseppe
   Maffulli, Gayle D.
   Maffulli, Nicola
   Tramontano, Donatella
TI Participation to Leisure Activities and Well-Being in a Group of
   Residents of Naples-Italy: The Role of Resilience
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE subjective well-being; physical activity; cultural participation;
   resilience; Naples
ID QUALITY-OF-LIFE; SCALE CD-RISC; PSYCHOMETRIC PROPERTIES; ABBREVIATED
   VERSION; PHYSICAL-ACTIVITY; SOCIAL-ISOLATION; HEALTH; MORTALITY; ADULTS;
   METAANALYSIS
AB We explored the relationship between cultural and social participation, physical activity, and well-being in a group of residents of the metropolitan area of Naples, Italy and the role that resilience plays in this relationship. Naples offers a remarkable urban environment with the potentially beneficial psychological effects of outstanding natural beauty, and one of the world's most impressive repositories of tangible and intangible cultural heritage. However, Naples was also, and still is, heavily affected by the 2008 economic crisis, in addition to preexisting social and economic issues. The major finding of this study is that, despite this highly contrasting urban environment, the combination of physical activity and engagement in social and cultural activities has a positive effect on subjective (self-reported) psychological well-being (SPWB) in a group of residents, and that resilience mediates this relationship.
C1 [Cocozza, Sergio; Matarese, Giuseppe; Tramontano, Donatella] Univ Federico II Naples, Dept Mol Med & Med Biotechnol, Naples 80131, Italy.
   [Sacco, Pier Luigi] IULM Univ Milan, Dept Humanities, Milan 20143, Italy.
   [Sacco, Pier Luigi] Harvard Univ, metaLAB, Harvard & Berkman Klein Ctr Internet & Soc, Boston, MA 02138 USA.
   [Sacco, Pier Luigi] Bruno Kessler Fdn, Trento 38122, Italy.
   [Maffulli, Gayle D.; Maffulli, Nicola] Mile End Hosp, Ctr Sports & Exercise Med, Barts & London Sch Med & Dent, 275 Bancroft Rd, London E1 4DG, England.
   [Maffulli, Nicola] Univ Salerno, Dept Musculoskeletal Surg, Sch Med Surg & Dent, Salerno 84121, Italy.
C3 University of Naples Federico II; IULM International University
   Languages & Media; Harvard University; Fondazione Bruno Kessler;
   University of London; Queen Mary University London; Barts Health NHS
   Trust; Mile End Hospital; University of Salerno
RP Tramontano, D (corresponding author), Univ Federico II Naples, Dept Mol Med & Med Biotechnol, Naples 80131, Italy.; Sacco, PL (corresponding author), IULM Univ Milan, Dept Humanities, Milan 20143, Italy.; Sacco, PL (corresponding author), Harvard Univ, metaLAB, Harvard & Berkman Klein Ctr Internet & Soc, Boston, MA 02138 USA.; Sacco, PL (corresponding author), Bruno Kessler Fdn, Trento 38122, Italy.
EM sergio.cocozza@unina.it; pierluigi.sacco@iulm.it;
   giuseppe.matarese@unina.it; g.maffulli@qmul.ac.uk; nmaffulli@unisa.it;
   dtramont@unina.it
RI Tramontano, Donatella/AAS-1740-2020; Matarese, Giuseppe/AAO-4077-2021;
   Maffulli, Nicola/A-1839-2014
OI Tramontano, Donatella/0000-0002-9308-034X; Maffulli,
   Nicola/0000-0002-5327-3702; SACCO, PIERLUIGI/0000-0002-5559-2889;
   Matarese, Giuseppe/0000-0001-9429-0616
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NR 78
TC 15
Z9 15
U1 3
U2 34
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 MAR 2
PY 2020
VL 17
IS 6
AR 1895
DI 10.3390/ijerph17061895
PG 17
WC Environmental Sciences; Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public, Environmental & Occupational
   Health
GA LI2VS
UT WOS:000529342300085
PM 32183311
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Hölscher, K
   Frantzeskaki, N
   McPhearson, T
   Loorbach, D
AF Holscher, Katharina
   Frantzeskaki, Niki
   McPhearson, Timon
   Loorbach, Derk
TI Tales of transforming cities: Transformative climate governance
   capacities in New York City, US and Rotterdam, Netherlands
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban climate governance; Governance capacity; Cities; Resilience;
   Agency; Sustainability transition
ID URBAN ECOSYSTEM GOVERNANCE; CHANGE ADAPTATION; SUSTAINABILITY
   TRANSITIONS; RESILIENCE; MANAGEMENT; INNOVATION; WATER;
   ENTREPRENEURSHIP; EXPERIMENTATION; OPPORTUNITIES
AB Climate change actions in cities worldwide are driving deep changes in urban governance. We ask whether new capacities for transformative climate governance are emerging in two cities that have experimented with urban climate governance: Rotterdam, the Netherlands, and New York City (NYC), United States. Transformative climate governance creates the conditions for developing integrated and innovative climate mitigation and adaptation policies and interventions that respond to and shape urban transformation dynamics and contribute to sustainability and resilience. The comparison of capacities for transformative climate governance in Rotterdam and NYC offers insights into the emerging features of urban climate governance vis-a-vis existing urban governance regimes: how urban climate governance is driven and delivered, what new governance conditions emerge, and whether these conditions enable transformative climate governance. In both cities, an integrated, experimental and inclusive approach to climate governance is emerging, which crosses multiple policy sectors and domains (e.g. transport, energy, health, justice), involves a variety of actors and facilitates innovative solutions. Envisioning, long-term goal and knowledge integration, experimentation and tapping into coalitions for change help to provide the basis (including guiding principles, urgency, actor networks, innovative solutions) for transformative climate governance. However, these transformative approaches tend to be still subordinate to business-as-usual interests and policy and planning approaches, which favour isolated, incremental and short-term responses. The challenge for strengthening transformative climate governance will be to develop rigorous institutional and organisational conditions that decisively stipulate a prioritisation of climate change across scales and sectors, provide action mandates and enable wider coordination, collaboration and learning.
C1 [Holscher, Katharina; Frantzeskaki, Niki; Loorbach, Derk] Erasmus Univ, DRIFT, Mandeville Bldg,16th Floor,T16-36, NL-3062 PA Rotterdam, Netherlands.
   [McPhearson, Timon] New Sch, Urban Syst Lab, 79 Fifth Ave,16th Floor, New York, NY 10003 USA.
   [McPhearson, Timon] Cary Inst Ecosyst Studies, 2801 Sharon Turnpike, Millbrook, NY 12545 USA.
   [McPhearson, Timon] Stockholm Univ, Stockholm Resilience Ctr, S-10405 Stockholm, Sweden.
C3 Erasmus University Rotterdam; Erasmus University Rotterdam - Excl
   Erasmus MC; The New School; Cary Institute of Ecosystem Studies;
   Stockholm University
RP Hölscher, K (corresponding author), Erasmus Univ, Dutch Res Inst Transit DRIFT, Mandeville Bldg,16th Floor,Burgmeester Oudlaan 50, NL-3062 PA Rotterdam, Netherlands.
EM holscher@drift.eur.nl; frantzeskaki@drift.eur.nl;
   timon.mcphearson@newschool.edu; loorbach@drift.eur.nl
RI Loorbach, Derk/L-2493-2015; Frantzeskaki, Niki/AAN-1044-2021;
   McPhearson, Timon/JOZ-3799-2023
OI Holscher, Katharina/0000-0002-4504-3368; Frantzeskaki,
   Niki/0000-0002-6983-448X; McPhearson, Timon/0000-0002-9499-0791
FU EU FP7 project IMPRESSIONS [603416]; Prins Bernhard Cultuurfonds, the
   Netherlands; Konrad von Moltke Fund, Germany; Erasmus Trustfonds,
   Rotterdam, the Netherlands; Urban Resilience to Extreme Weather-Related
   Events Sustainability Research Network (URExSRN; US NSF) [SES 1444755];
   ENABLE project through the 2015-2016 BiodivERsA COFUND; Swedish Research
   Council for Environment, Agricultural Sciences, and Spatial Planning;
   Swedish Environmental Protection Agency; German aeronautics and space
   research centre; National Science Centre (Poland); Research Council of
   Norway; Spanish Ministry of Economy and Competitiveness
FX This research was supported by the EU FP7 project IMPRESSIONS [grant
   number 603416]; the Prins Bernhard Cultuurfonds, the Netherlands; the
   Konrad von Moltke Fund, Germany; and the Erasmus Trustfonds, Rotterdam,
   the Netherlands. TM was supported by the Urban Resilience to Extreme
   Weather-Related Events Sustainability Research Network (URExSRN; US NSF
   grant no. SES 1444755) and the ENABLE project, 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, Swedish Environmental
   Protection Agency, German aeronautics and space research centre,
   National Science Centre (Poland), The Research Council of Norway and the
   Spanish Ministry of Economy and Competitiveness. The authors thank all
   interviewees for their time and keen interest in our research.
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NR 120
TC 85
Z9 92
U1 21
U2 147
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 1
PY 2019
VL 231
BP 843
EP 857
DI 10.1016/j.jenvman.2018.10.043
PG 15
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HI7MU
UT WOS:000456641100091
PM 30419440
OA Green Published
DA 2025-04-22
ER

PT J
AU Sun, YL
   Xing, ZL
   Liu, GJ
AF Sun, Yanlei
   Xing, Zhanlei
   Liu, Guojun
TI Achieving resilient cities using data-driven energy transition: A
   statistical examination of energy policy effectiveness and community
   engagement
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Cloud Data Center; Energy Engagement; Energy Policy; Renewable Resource
   Integration; Smart Cities
ID OPTIMIZATION
AB In an era where energy usage is increasingly critical due to the growing prevalence of cloud computing data centers, this study delves into the realm of dynamic energy management (DEM) within cloud data centers (CDCs) to foster efficient power utilization. Our research introduces a Dynamic System Management (DSM) framework tailored for CDCs, encompassing a dynamic voltage scaling (DVS) management unit, a load balancing unit, and a task scheduling unit (TSU). The TSU employs a stochastic Petri net-based planning procedure and advances a 'role-based' resource placement approach, optimizing task scheduling for enhanced system performance and energy efficiency. Through comprehensive simulation tests, we validate the proposed system scheme. Furthermore, this paper extends its focus to augment the resilience of energy policies in the context of smart cities and foster community engagement. Building upon the existing Biogeography-Based Optimization (BBO), we propose enhancements to fortify its robustness and capabilities. Notably, our modified BBO approach demonstrates remarkable reductions in power consumption-27%, 32%, and 39% less when compared to BBO, particle swarm optimization, and genetic algorithms, respectively. These findings underscore the pivotal role of data-driven energy transition and community engagement in building resilient cities for the future.
C1 [Sun, Yanlei; Xing, Zhanlei] Shaanxi Univ Sci & Technol SUST, Sch Econ & Management, Xian 710021, Shaanxi, Peoples R China.
   [Liu, Guojun] Shaanxi Univ Sci & Technol SUST, Lib, Xian 710021, Shaanxi, Peoples R China.
C3 Shaanxi University of Science & Technology; Shaanxi University of
   Science & Technology
RP Sun, YL (corresponding author), Shaanxi Univ Sci & Technol SUST, Sch Econ & Management, Xian 710021, Shaanxi, Peoples R China.
EM sunyanlei@sust.edu.cn
RI Liu, Guojun/A-9459-2015
FU Soft Science Research Plan of Shaanxi Provincial Science and Technology
   Department in 2023-General Project "Research on the Path of Improving
   the Marketization Level of Scientific and Technological Achievements
   Transformation in Shaanxi Province Based on F [2023-CX-RKX-091]; The
   2023 Key Scientific Research Plan Project of Shaanxi Provincial
   Department of Education (Key Research Base Project of Philosophy and
   social sciences): Research on Data Property Rights Governance in the
   Construction of Digital Transformation of Light In [23JZ028]; The 2022
   National College Students' Innovation and Entrepreneurship Training
   Program project (National-level general projects): <Influence of
   Innovation and Entrepreneurship Competition Based on Mediation Model and
   Mechanism> [202210708036]; Soft science Research Project of Xi'an
   Science and Technology Plan, "Research on the Operation Model,
   Effectiveness Evaluation, and Promotion Path of Xi'an Science and
   Technology Think Tank" [23RKYJ0003]
FX This work was sponsored in part by (i) Soft Science Research Plan of
   Shaanxi Provincial Science and Technology Department in 2023-General
   Project "Research on the Path of Improving the Marketization Level of
   Scientific and Technological Achievements Transformation in Shaanxi
   Province Based on Factor Allocation Optimization" (2023-CX-RKX-091),
   (ii) 2023 Key Scientific Research Plan Project of Shaanxi Provincial
   Department of Education (Key Research Base Project of Philosophy and
   social sciences): Research on Data Property Rights Governance in the
   Construction of Digital Transformation of Light Industry (23JZ028) (iii)
   The 2022 National College Students' Innovation and Entrepreneurship
   Training Program project (National-level general projects): < Influence
   of Innovation and Entrepreneurship Competition Based on Mediation Model
   and Mechanism > (202210708036), and (iv) Soft science Research Project
   of Xi'an Science and Technology Plan, "Research on the Operation Model,
   Effectiveness Evaluation, and Promotion Path of Xi'an Science and
   Technology Think Tank" (23RKYJ0003).
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NR 24
TC 4
Z9 4
U1 12
U2 24
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 105155
DI 10.1016/j.scs.2023.105155
EA DEC 2023
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 GK6U3
UT WOS:001152610500001
DA 2025-04-22
ER

PT J
AU Zhu, LQ
   Gao, C
   Wu, MZ
   Zhu, RM
AF Zhu, Liqing
   Gao, Chi
   Wu, Mianzhi
   Zhu, Ruiming
TI Integrating Blue-Green Infrastructure with Gray Infrastructure for
   Climate-Resilient Surface Water Flood Management in the Plain River
   Networks
SO LAND
LA English
DT Article
DE climate-adaptive strategies; land use; blue-green-gray infrastructure;
   GIS analysis; hydrological modeling; scenario-based assessments; flood
   resilience
AB Along with the progression of globalized climate change, flooding has become a significant challenge in low-lying plain river network regions, where urban areas face increasing vulnerability to extreme climate events. This study explores climate-adaptive land use strategies by coupling blue-green infrastructure (BGI) with conventional gray infrastructure, forming blue-green-gray infrastructure (BGGI), to enhance flood resilience at localized and regional scales. By integrating nature-based solutions with engineered systems, this approach focuses on flood mitigation, environmental co-benefits, and adaptive land-use planning. Using the Minhang District in Shanghai as a case study, the research employs geospatial information system (GIS) analysis, hydrological modeling, and scenario-based assessments to evaluate the performance of BGGI systems under projected climate scenarios for the years 2030, 2050, and 2100. The results highlight that coupled BGGI systems significantly improve flood storage and retention capacity, mitigate risks, and provide ecological and social benefits. Water surface-to-catchment area ratios were optimized for primary and secondary catchment areas, with specific increases required in high-risk zones to meet future flood scenarios. Ecological zones exhibited greater adaptability, while urban and industrial areas required targeted interventions. Scenario-based modeling for 2030, 2050, and 2100 demonstrated the scalability, feasibility, and cost-effectiveness of BGI in adapting to climate-induced flooding. The findings contribute to the existing literature on urban flood management, offering a framework for climate-adaptive planning and resilience building with broader implications for sustainable urban development. This research supports the formulation of comprehensive flood management strategies that align with global sustainability objectives and urban resilience frameworks.
C1 [Zhu, Liqing; Wu, Mianzhi] Shanghai Jiao Tong Univ, Dept Landscape Architecture, Shanghai 200240, Peoples R China.
   [Gao, Chi] Huazhong Agr Univ, Dept Landscape Architecture, Wuhan 430070, Peoples R China.
   [Zhu, Ruiming] Illinois Inst Technol, Dept Comp Sci, Chicago, IL 60647 USA.
C3 Shanghai Jiao Tong University; Huazhong Agricultural University;
   Illinois Institute of Technology
RP Gao, C (corresponding author), Huazhong Agr Univ, Dept Landscape Architecture, Wuhan 430070, Peoples R China.
EM lqzhu88@sjtu.edu.cn; gaochi@mail.hzau.edu.cn; wumianzhi@sjtu.edu.cn;
   rzhu8@hawk.iit.edu
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NR 41
TC 0
Z9 0
U1 7
U2 7
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD MAR 17
PY 2025
VL 14
IS 3
AR 634
DI 10.3390/land14030634
PG 28
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 0PT2A
UT WOS:001453095000001
OA gold
DA 2025-04-22
ER

PT J
AU Satterthwaite, D
AF Satterthwaite, David
TI How can urban centers adapt to climate change with ineffective or
   unrepresentative local governments?
SO WILEY INTERDISCIPLINARY REVIEWS-CLIMATE CHANGE
LA English
DT Article
ID VULNERABILITY; RESILIENCE; DURBAN; LEVEL
AB This article considers the prospects for urban areas in the Global South to adapt to climate change. It describes how most of the needed adaptations in the next few decades can be integrated into existing government functions, investments, regulations, and agencies. It also considers why most such measures are unlikely to be implemented-because of either the lack of capacity within urban governments or their unwillingness to address the infrastructure and service needs of their low-income populations. Most urban centers in the Global South also have very large deficits in the basic infrastructure and services that are needed for resilience to climate change impacts. The article also considers how the policies and practices of higher levels of government and international agencies need to change if the much needed adaptive capacity is to be built in urban areas. (C) 2011 John Wiley & Sons, Ltd. WIREs Chin Change 2011 2 767-776 DOI: 10.1002/wcc.136
C1 IIED, London, England.
RP Satterthwaite, D (corresponding author), IIED, London, England.
EM david@iied.org
RI Satterthwaite, David/A-6277-2009
OI satterthwaite, david/0000-0002-0077-1353
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NR 27
TC 23
Z9 25
U1 0
U2 27
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1757-7780
EI 1757-7799
J9 WIRES CLIM CHANGE
JI Wiley Interdiscip. Rev.-Clim. Chang.
PD SEP-OCT
PY 2011
VL 2
IS 5
BP 767
EP 776
DI 10.1002/wcc.136
PG 10
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 823DV
UT WOS:000295103400009
DA 2025-04-22
ER

PT J
AU Maharramli, B
   Bredow, VL
   Goodwin, L
AF Maharramli, Bemmy
   Bredow, Victoria Lowerson
   Goodwin, Lindsay
TI Using civic ecology education to foster social-ecological resilience: A
   case study from Southern California
SO JOURNAL OF ENVIRONMENTAL EDUCATION
LA English
DT Article
DE civic ecology; social ecological resilience; youth civic leadership
AB Environmental education that incorporates civic ecology can contribute to social-ecological resilience through programs designed to advance youth civic leadership and environmental stewardship. This research used an interpretive qualitative approach to study the environmental education activities of a Watershed Avengers at the Ocean Discovery Institute in Southern California that focused on urban canyon stewardship and restoration. The first author conducted ethnographic fieldwork with the Watershed Avengers from fall 2014 through spring 2015. Civic ecology emerged as a concept that resonated with what was observed on the ground and then informed the focus of our study. We found that Ocean Discovery Institute's strength in developing youth civic leadership was a defining feature that contributed to its other practices of collaborative urban canyon restoration and engagement in community priorities. These findings suggest that environmental education practices can build social-ecological resilience through a focus on youth leadership.
C1 [Maharramli, Bemmy] Univ Calif Los Angeles, Ctr Community Engagement, Div Undergrad Educ, Los Angeles, CA 90095 USA.
   [Bredow, Victoria Lowerson] Univ Calif Irvine, UCI Newkirk Ctr Sci & Soc, Irvine, CA USA.
   [Goodwin, Lindsay] Ocean Discovery Inst, San Diego, CA USA.
C3 University of California System; University of California Los Angeles;
   University of California System; University of California Irvine
RP Maharramli, B (corresponding author), Univ Calif Los Angeles, Ctr Community Engagement, Div Undergrad Educ, Los Angeles, CA 90095 USA.
EM bmaharramli@college.ucla.edu
FU Newkirk Center for Science and Society
FX In accordance with Taylor & Francis policy and our ethical obligations
   as researchers, we report that we have no financial interests in the
   enclosed paper. The Newkirk Center for Science and Society funded the
   first author as a graduate student research fellow; however, the Newkirk
   Center had no interest in research outcomes and no relationship with the
   partner organization, Environmental Education Nonprofit, at the time of
   data collection. The third author is a staff member in the Environmental
   Education Nonprofit, which was the focus of this article. We used an
   intentional participatory and community-based research approach, with
   the third author included in the collaborative writing of this article.
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NR 42
TC 0
Z9 0
U1 4
U2 21
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.
PD NOV 2
PY 2021
VL 52
IS 6
BP 445
EP 462
DI 10.1080/00958964.2021.1999886
EA OCT 2021
PG 18
WC Education & Educational Research; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Environmental Sciences & Ecology
GA XQ5DT
UT WOS:000723946800001
DA 2025-04-22
ER

PT J
AU Anderson, V
   Gough, WA
AF Anderson, Vidya
   Gough, William A.
TI Harnessing the Four Horsemen of Climate Change: A Framework for Deep
   Resilience, Decarbonization, and Planetary Health in Ontario, Canada
SO SUSTAINABILITY
LA English
DT Article
DE green roofs; green walls; tree-based intercropping; urban agriculture;
   urban forestry; nature-based solutions; green infrastructure; public
   health; food security; climate security
ID LYME-DISEASE VECTOR; URBAN HEAT-ISLAND; GREEN ROOFS; AIR-POLLUTION;
   SOUTHERN ONTARIO; NITROGEN-DIOXIDE; VEGETATION; IMPACTS; RISK;
   INFRASTRUCTURE
AB Widespread implementation of nature-based solutions like green infrastructure, provides a multi-functional strategy to increase climate resilience, enhance ecological connectivity, create healthier communities, and support sustainable urban development. This paper presents a decision-support framework to facilitate adoption of green infrastructure within communities using the Climate Change Local Adaptation Action Model (CCLAAM) developed for this purpose. It also presents an ecosystems-based approach to bridging the gap between climate change mitigation and adaptation actions in Ontario, Canada. Green infrastructure could be a viable strategy to address multiple climate change impacts and support the implementation of the UN Sustainable Development Goals (SDGs).
C1 [Anderson, Vidya; Gough, William A.] Univ Toronto Scarborough, Climate Lab, Toronto, ON M1C 1A4, Canada.
   [Gough, William A.] Univ Toronto Scarborough, Dept Phys & Environm Sci, Toronto, ON M1C 1A4, Canada.
C3 University of Toronto; University Toronto Scarborough; University of
   Toronto; University Toronto Scarborough
RP Anderson, V (corresponding author), Univ Toronto Scarborough, Climate Lab, Toronto, ON M1C 1A4, Canada.
EM vidya.anderson@utoronto.ca; william.gough@utoronto.ca
RI Gough, William/L-5231-2013
OI Anderson, Vidya/0000-0001-6784-4046
FU Natural Sciences and Engineering Research Council of Canada (NSERC)
   [RGPIN-2018-06801]
FX The authors are supported byW.A.G.'s Natural Sciences and Engineering
   Research Council of Canada (NSERC) Grant RGPIN-2018-06801.
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NR 98
TC 15
Z9 16
U1 9
U2 57
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 1
AR 379
DI 10.3390/su13010379
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 PQ2TG
UT WOS:000606401300001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Otuoze, SH
   Hunt, DVL
   Jefferson, I
AF Otuoze, Suleiman Hassan
   Hunt, Dexter V. L.
   Jefferson, Ian
TI Neural Network Approach to Modelling Transport System Resilience for
   Major Cities: Case Studies of Lagos and Kano (Nigeria)
SO SUSTAINABILITY
LA English
DT Article
DE traffic congestion; critical infrastructure; urbanization; resilience;
   sustainability transport; modelling; artificial neural network
AB Congestion has become part of everyday urban life, and resilience is very crucial to traffic vulnerability and sustainable urban mobility. This research employed a neural network as an adaptive artificially-intelligent application to study the complex domains of traffic vulnerability and the resilience of the transport system in Nigerian cities (Kano and Lagos). The input criteria to train and check the models for the neural resilience network are the demographic variables, the geospatial data, traffic parameters, and infrastructure inventories. The training targets were set as congestion elements (traffic volume, saturation degree and congestion indices), which are in line with the relevant design standards obtained from the literature. A multi-layer feed-forward and back-propagation model involving input-output and curve fitting (nftool) in the MATLAB R2019b software wizard was used. Three algorithms-including Levenberg-Marquardt (LM), Bayesian Regularization (BR), and a Scaled Conjugate Gradient (SCG)-were selected for the simulation. LM converged easily with the Mean Squared Error (MSE) (2.675 x 10(-3)) and regression coefficient (R) (1.0) for the city of Lagos. Furthermore, the LM algorithm provided a better fit for the model training and for the overall validation of the Kano network analysis with MSE (4.424 x 10(-1)) and R (1.0). The model offers a modern method for the simulation of urban traffic and discrete congestion prediction.
C1 [Otuoze, Suleiman Hassan; Hunt, Dexter V. L.; Jefferson, Ian] Univ Birmingham, Dept Civil Engn, Edgbaston B15 2TT, England.
   [Otuoze, Suleiman Hassan] Ahmadu Bello Univ, Dept Civil Engn, Zaria 810107, Nigeria.
C3 University of Birmingham; Ahmadu Bello University
RP Otuoze, SH (corresponding author), Univ Birmingham, Dept Civil Engn, Edgbaston B15 2TT, England.; Otuoze, SH (corresponding author), Ahmadu Bello Univ, Dept Civil Engn, Zaria 810107, Nigeria.
EM HSO647@student.bham.ac.uk; D.Hunt@bham.ac.uk; I.Jefferson@bham.ac.uk
OI Otuoze, Suleiman Hassan/0000-0003-2313-2818
FU Petroleum Trust Development Fund (PTDF), Nigeria; UK Engineering and
   Physical Sciences Research Council (EPSRC) [EP/J017698/1]; EPSRC
   [EP/J017698/1] Funding Source: UKRI
FX This research was funded by the Petroleum Trust Development Fund (PTDF),
   Nigeria (https://ptdf.gov.ng/), which sponsored the doctoral study
   fellowship of Suleiman Hassan Otuoze. The APC was funded by the UK
   Engineering and Physical Sciences Research Council (EPSRC) under grant
   EP/J017698/1 (Transforming the Engineering of Cities to Deliver Societal
   and Planetary Wellbeing) for Dexter V.L. Hunt.
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NR 64
TC 14
Z9 14
U1 4
U2 44
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 1371
DI 10.3390/su13031371
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 QD7GU
UT WOS:000615682500001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Fotouhi, H
   Moryadee, S
   Miller-Hooks, E
AF Fotouhi, Hossein
   Moryadee, Seksun
   Miller-Hooks, Elise
TI Quantifying the resilience of an urban traffic-electric power coupled
   system
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Critical infrastructure interdependencies; Traffic-electric coupled
   system; Transportation resilience quantification; Uncertainty analysis;
   Risk management; Failure scenarios
ID NETWORK; INTERDEPENDENCIES; INFRASTRUCTURES; VULNERABILITY; RESTORATION
AB Transportation system resilience has been the subject of several recent studies. To assess the resilience of a transportation network, however, it is essential to model its interactions with and reliance on other lifelines. Prior works might consider these interactions implicitly, perhaps in the form of hazard impact scenarios wherein services from a second lifeline (e.g. power) are precluded due to a hazard event. In this paper, a bi-level, mixed-integer, stochastic program is presented for quantifying the resilience of a coupled traffic-power network under a host of potential natural or anthropogenic hazard-impact scenarios. A two-layer network representation is employed that includes details of both systems. Interdependencies between the urban traffic and electric power distribution systems are captured through linking variables and logical constraints. The modeling approach was applied on a case study developed on a portion of the signalized traffic-power distribution system in southern Minneapolis. The results of the case study show the importance of explicitly considering interdependencies between critical infrastructures in transportation resilience estimation. The results also provide insights on lifeline performance from an alternate power perspective.
C1 [Fotouhi, Hossein; Miller-Hooks, Elise] George Mason Univ, Sid & Reva Dewberry Dept Civil Environm & Infrast, 4400 Univ Dr,MS 6C1, Fairfax, VA 22030 USA.
   [Moryadee, Seksun] Chulachomklao Royal Mil Acad, Ordnance Engn Dept, Nakhon Nayok, Thailand.
C3 George Mason University
RP Fotouhi, H (corresponding author), George Mason Univ, Sid & Reva Dewberry Dept Civil Environm & Infrast, 4400 Univ Dr,MS 6C1, Fairfax, VA 22030 USA.
EM hfotouhi@gmu.edu; seksun.mor@gmail.com; miller@gmu.edu
RI Moryadee, Seksun/B-6742-2018; Fotouhi, Hossein/AAK-6454-2020
FU National Transportation Center at the University of Maryland; National
   United States Department of Transportation (USDOT) Center; U.S. National
   Science Foundation
FX This work was supported by the National Transportation Center at the
   University of Maryland, a National United States Department of
   Transportation (USDOT) Center and the U.S. National Science Foundation.
   This support is gratefully acknowledged, but implies no endorsement of
   the findings.
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NR 29
TC 84
Z9 100
U1 16
U2 163
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 JUL
PY 2017
VL 163
BP 79
EP 94
DI 10.1016/j.ress.2017.01.026
PG 16
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA ES6BU
UT WOS:000399632100008
OA Bronze, Green Submitted
DA 2025-04-22
ER

PT J
AU Dubbeling, M
   Santini, G
   Renting, H
   Taguchi, M
   Lançon, L
   Zuluaga, J
   de Paoli, L
   Rodriguez, A
   Andino, V
AF Dubbeling, Marielle
   Santini, Guido
   Renting, Henk
   Taguchi, Makiko
   Lancon, Louison
   Zuluaga, Juan
   de Paoli, Luca
   Rodriguez, Alexandra
   Andino, Veronica
TI Assessing and Planning Sustainable City Region Food Systems: Insights
   from Two Latin American Cities
SO SUSTAINABILITY
LA English
DT Article
DE city region food systems; food planning; governance; urban food
   provisioning; urban-rural linkages; resilience; food system assessment
ID LOCAL FOOD
AB In the context of growing urbanisation, urban poverty, and climate change impacts, the importance of urban food security and urban food systems is increasingly recognised by both local and national governments, as well as international actors. There is also a growing understanding that urban development and food systems cannot be decoupled from rural development given the multiple impacts that urban areas have on their surroundings. In recent years the concept of City Region Food Systems (CRFS) has emerged as a promising approach to support local governments, policy makers, and multi-stakeholder bodies in making informed decisions to improve urban and regional food system sustainability and resilience, while taking into account a more integrated approach to territorial development across urban and rural areas. This paper is based on an ongoing FAO and RUAF programme of assessing and planning City Region Food Systems, currently implemented in eight city regions in Canada, Colombia, Ecuador, Senegal, Sri Lanka, The Netherlands, and Zambia. The paper analyses the content, definition and delimitations of the concept of City Region Food Systems by presenting two case studies from Latin America (Quito and Medellin), and discusses first advances in policy uptake and territorial food planning.
C1 [Dubbeling, Marielle; Renting, Henk] RUAF Fdn, NL-3830 AK Leusden, Netherlands.
   [Santini, Guido; Taguchi, Makiko; Lancon, Louison] United Nations FAO, Food & Agr Org, Food Cities Programme, I-00153 Rome, Italy.
   [Zuluaga, Juan; de Paoli, Luca] United Nations FAO, Food & Agr Org, Off Medellin, Medellin, Colombia.
   [Rodriguez, Alexandra] Metropolitan Agcy Econ Dev CONQUITO, Quito, Ecuador.
   [Andino, Veronica] RUAF Fdn, Quito, Ecuador.
C3 Food & Agriculture Organization of the United Nations (FAO); Food &
   Agriculture Organization of the United Nations (FAO)
RP Dubbeling, M (corresponding author), RUAF Fdn, NL-3830 AK Leusden, Netherlands.
EM m.dubbeling@ruaf.org; Guido.Santini@fao.org; h.renting@ruaf.org;
   Makiko.Taguchi@fao.org; Louison.Lancon@fao.org; juan.zuluaga@fao.org.co;
   lucadepaoli@hotmail.com; arodriguez@conquito.org.ec;
   veroandino@gmail.com
RI Renting, Henk/KIG-7905-2024; Rodríguez Pereiras, Alexandra/C-2879-2015
OI Taguchi, Makiko/0000-0002-2945-1249; Renting, Henk/0000-0002-6778-9507
FU German Federal Ministry of Food and Agriculture; Daniel and Nina Carasso
   Foundation
FX We acknowledge financial support for the research work of the FAO and
   RUAF City Region Food System assessment project by the German Federal
   Ministry of Food and Agriculture and the Daniel and Nina Carasso
   Foundation.
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NR 40
TC 61
Z9 68
U1 7
U2 82
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2017
VL 9
IS 8
AR 1455
DI 10.3390/su9081455
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 FF3YT
UT WOS:000408861800169
OA Green Submitted, gold, Green Published
DA 2025-04-22
ER

PT J
AU Zhou, Y
   Wang, R
   Lu, YQ
AF Zhou, Ying
   Wang, Rui
   Lu, Yiqiu
TI Seismic design and analysis of a high-rise self-centering wall building:
   Case study
SO FRONTIERS OF STRUCTURAL AND CIVIL ENGINEERING
LA English
DT Article
DE self-centering wall; post-tensioned precast concrete wall; seismic
   resilient structure; high-rise building; seismic design; engineering
   practice
ID PERFORMANCE
AB Post-tensioning self-centering walls are a well-developed and resilient technology. However, despite extensive research, the application of this technology has previously been limited to low-rise buildings. A ten-story self-centering wall building has now been designed and constructed using the state-of-art design methodologies and construction detailing, as described in this paper. The building is designed in accordance with direct displacement-based design methodology, with modification of seismic demand due to relevant issues including higher-mode effects, second order effects, torsional effects, and flexural deformation of wall panels. Wall sections are designed with external energy-dissipating devices of steel dampers, and seismic performance of such designed self-centering walls is evaluated through numerical simulation. It is the first engineering project that uses self-centering walls in a high-rise building. The seismic design procedure of such a high-rise building, using self-centering wall structures, is comprehensively reviewed in this work, and additional proposals are put forward. Description of construction detailing, including slotted beams, flexible wall-to-floor connections, embedded beams, and damper installation, is provided. The demonstration project promotes the concept of seismic resilient structures and contributes to the most appealing city planning strategy of resilient cities at present. The paper could be a reference for industry engineers to promote the self-centering wall systems worldwide.
C1 [Zhou, Ying; Wang, Rui; Lu, Yiqiu] Tongji Univ, Coll Civil Engn, State Key Lab Disaster Reduct Civil Engn, Shanghai 200092, Peoples R China.
C3 Tongji University
RP Lu, YQ (corresponding author), Tongji Univ, Coll Civil Engn, State Key Lab Disaster Reduct Civil Engn, Shanghai 200092, Peoples R China.
EM yiqiu_lu@tongji.edu.cn
RI Lu, Yiqiu/R-2799-2017; Zhou, Ying/B-7737-2013
OI Wang, Rui/0000-0003-4981-9888
FU Distinguished Young Scientists Fund of National Natural Science
   Foundation of China [52025083]
FX The authors gratefully acknowledge the financial support from the
   Distinguished Young Scientists Fund of National Natural Science
   Foundation of China (Grant No. 52025083), and the technical support of
   Shanghai CITI-RAISE Construction Group.
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NR 29
TC 1
Z9 1
U1 9
U2 25
PU HIGHER EDUCATION PRESS
PI BEIJING
PA CHAOYANG DIST, 4, HUIXINDONGJIE, FUSHENG BLDG, BEIJING 100029, PEOPLES R
   CHINA
SN 2095-2430
EI 2095-2449
J9 FRONT STRUCT CIV ENG
JI Front. Struct. Civ. Eng.
PD NOV
PY 2023
VL 17
IS 11
BP 1690
EP 1706
DI 10.1007/s11709-023-0022-x
EA JAN 2024
PG 17
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA GJ4L6
UT WOS:001142044700003
DA 2025-04-22
ER

PT J
AU Mai, X
   Chan, RCK
   Zhan, CQ
AF Mai, Xin
   Chan, Roger C. K.
   Zhan, Chaoqun
TI Which Sectors Really Matter for a Resilient Chinese Economy? A
   Structural Decomposition Analysis
SO SUSTAINABILITY
LA English
DT Article
DE economic resilience; sectoral effect; time-series analysis;
   urbanization; China
ID REGIONAL RESILIENCE; CRISIS; DIVERSITY; EUROPE; URBAN; ENTREPRENEURSHIP;
   PERFORMANCE; RECESSIONS; INSIGHTS; IMPACT
AB This study explores the structural effect of economic resilience with a case of China by examining the extent to which the major economic sectors contribute to the relative resilience of China's overall economy. By applying a time series analysis, we use the Hodrick-Prescott filter to delineate China's national economy on a quarterly basis and reveal different performances in responding to two recent economic crises in 1997 and 2008. Using quarterly data pertaining to eight economic sectors (including agriculture, industry, and major service sectors) and the national GDP from 1993Q1 to 2017Q2, we examine their effects on China's economic resilience by simulating the responses of the national economy to a unit shock from each sector. Results show that the construction, real estate, and financial services have the greatest potential to "disturb" the national economy whereas the industrial sector has the greatest potential to "stabilize" it. The findings correspond with the understanding that extensive infrastructure development and the real estate boom have driven China's rapid urban development and created economic prosperity, whereas the sectoral decomposition of economic resilience compels a critical reflection on the risks of this growth model.
C1 [Mai, Xin] South China Normal Univ, Sch Geog, Guangzhou 510631, Guangdong, Peoples R China.
   [Chan, Roger C. K.] Univ Hong Kong, Dept Urban Planning & Design, Hong Kong, Peoples R China.
   [Zhan, Chaoqun] Sun Yat Sen Univ, Lingnan Coll, Guangzhou 510275, Guangdong, Peoples R China.
C3 South China Normal University; University of Hong Kong; Sun Yat Sen
   University
RP Zhan, CQ (corresponding author), Sun Yat Sen Univ, Lingnan Coll, Guangzhou 510275, Guangdong, Peoples R China.
EM maixin@m.scnu.edu.cn; hrxucck@hku.hk; zhanchq@mail.sysu.edu.cn
RI Mai, Xin/ABE-1397-2020; Chan, Roger/A-4755-2010
FU China Postdoctoral Science Foundation [2019T120759, 2019M652933]
FX This research was funded by the China Postdoctoral Science Foundation
   Grant [grant number 2019M652933] and the China Postdoctoral Science
   Foundation Grant [grant number 2019T120759].
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NR 61
TC 10
Z9 10
U1 0
U2 47
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 6333
DI 10.3390/su11226333
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 JW8DR
UT WOS:000503277900146
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Sulis, A
   Altana, M
   Sanna, G
AF Sulis, Andrea
   Altana, Martina
   Sanna, Gianfranco
TI Assessing Reliability, Resilience and Vulnerability of Water Supply from
   SuDS
SO SUSTAINABILITY
LA English
DT Article
DE stormwater flooding; Sustainable Drainage Systems (SuDS); sustainable
   city; urbanization; MODSIM; supply indicators
ID CLIMATE-CHANGE; SYSTEM; SIMULATION; SUSTAINABILITY; URBANIZATION;
   MANAGEMENT; MODEL
AB In recent decades, the impacts of urbanization on the hydrological cycle have led to an increase in the frequency and magnitude of urban flooding events, and this is also amplified by the effects of climate change. Sustainable Drainage Systems (SuDS) provide a revolutionary change in this field, improving the sustainability and resilience of cities. This research explores the integration of different SuDS with the aim of significantly reducing both the flow volume and celerity of floods in a residual urban catchment area of the metropolitan city of Quer & eacute;taro (M & egrave;xico), where extreme rainfall frequently occurs. This catchment is a representative suburb of urban pressure and environmental degradation problems. Currently, managing storm water under climate uncertainty through a multi-disciplinary approach is a major concern in this urban area. A 1D-2D coupling model of shallow water equations, the finite volume method, an unstructured meshing method, and a hybrid parallel computing application defined the optimal configuration of SuDS at catchment scale to reduce the flood vulnerability in Quer & eacute;taro. Specifically, in this paper, we explore the management issues of the proposed SuDS configuration that acts as a water resource system with multiple purposes. A generic simulation model called MODSIM was applied to simulate the designed urban drainage system under a balanced IPCC future climate scenario in terms of reliability, resilience and vulnerability against water scarcity. The proposed hierarchical Reliability-Resilience-Vulnerability approach appears to be effective in evaluating the system performance, showing that the complete satisfaction of non-essential water uses in Quer & eacute;taro can be assured at a 65% rate of reliability for a large range of reservoir storage conditions.
C1 [Sulis, Andrea; Altana, Martina; Sanna, Gianfranco] Univ Sassari, Dept Architecture Design & Urban Planning, I-07041 Alghero, Italy.
C3 University of Sassari
RP Sulis, A (corresponding author), Univ Sassari, Dept Architecture Design & Urban Planning, I-07041 Alghero, Italy.
EM asulis@uniss.it; m.altana3@studenti.uniss.it; gianfranco.sanna@uniss.it
FU Sardinian Water Authority (Agenzia di Distretto Idrografico della
   Sardegna); Center of Environmental Sciences (CINSA) of the University of
   Cagliari [11292]
FX This work is part funded by the Institutional Agreement between the
   Sardinian Water Authority (Agenzia di Distretto Idrografico della
   Sardegna) and the Center of Environmental Sciences(CINSA) of the
   University of Cagliari for the development of the Basin Sediment
   Management Plan(Conv. N. 7 Prot. ADIS n. 11292 rep. 169 of 4 November
   2022).
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NR 58
TC 1
Z9 1
U1 9
U2 10
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2024
VL 16
IS 13
AR 5391
DI 10.3390/su16135391
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 YN8U4
UT WOS:001269266400001
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Chong, PI
   Liu, C
   Chung, WG
AF Chong, Poui
   Liu, Chao
   Chung, Wengin
TI Neighborhoods renewal implications for the post-pandemic era: A study of
   COVID-19 infections in Central Shanghai, China
SO BUILDING AND ENVIRONMENT
LA English
DT Article
DE Older neighborhood; Post-pandemic; Urban renewal; Community resilience
ID URBAN; CHALLENGES
AB Since the onset of the Coronavirus Disease 2019 (COVID-19), urban older neighborhoods have faced increased vulnerability, prompting research into neighborhood renewal and resilience. However, research on COVID-19 infection and influencing factors in China's older neighborhoods remains relatively scarce. This study analyzed COVID-19 infections in central Shanghai to identify neighborhood-level factors affecting transmission. Using principal component analysis (PCA) and person correlation coefficients (PCC) to process the data, we established multiple linear regression (MLR) and geographically weighted regression models (GWR). To explore nonlinear relationships, we incorporated the random forest method (RF). Results indicated that older neighborhoods had higher infection rates compared to newer ones. Socioeconomic and built environment factors significantly influenced infection rates. Specifically, higher population density, road network density, and the number of subway stations were positively correlated with increased infection rates. RF analysis revealed a complex, nonlinear relationship between the number of high-income residents and infection rates. This study integrates built environment, socioeconomic, and population characteristics factors using multiple modeling approaches to better understand their impact on infection rates. It also introduces research on mainland Chinese cities as case studies, offering valuable insights for updating older urban neighborhoods to enhance community resilience. However, the study did not fully consider the impact of policies at the time, and its findings are primarily applicable to older neighborhoods in cities similar to Shanghai. Future research should examine the effectiveness of various intervention policies, the long-term effects of neighborhood renewal on community resilience, and the applicability of these findings to other urban environments.
C1 [Chong, Poui; Liu, Chao] Tongji Univ, Coll Architecture & Urban Planning, Shanghai, Peoples R China.
   [Liu, Chao] Shanghai Tongji Urban Planning & Design Inst Co Lt, Shanghai, Peoples R China.
   [Chong, Poui; Chung, Wengin] Minist Nat Resources Peoples Republ China, Key Lab Spatial Intelligent Planning Technol, Beijing, Peoples R China.
C3 Tongji University; Ministry of Natural Resources of the People's
   Republic of China
RP Liu, C (corresponding author), Dept Urban Planning, Room 203,Wenyuan Bldg,1239 Siping Rd, Shanghai 200092, Peoples R China.; Liu, C (corresponding author), Room 203,Wenyuan Bldg,1239 Siping Rd, Shanghai 200092, Peoples R China.
EM chooong@tongji.edu.cn; liuchao1020@tongji.edu.cn; wchung@tongji.edu.cn
FU Young Scientists Fund of the National Natural Science Foundation of
   China [52108060]; Science Foundation for the Science and Technology
   Commission of Shanghai Municipality [20210247900522dz1207800]; Shanghai
   Rising-Star Program [22QB1404900]
FX This work was supported by the Young Scientists Fund of the National
   Natural Science Foundation of China (No. 52108060) ; the Science
   Foundation for the Science and Technology Commission of Shanghai
   Municipality (No.20210247900522dz1207800) ; the Shanghai Rising-Star
   Program (No.22QB1404900) . Thanks to Shanghai Key Laboratory of Urban
   Renewal and Spatial Optimization Technology and Key Laboratory for
   High-density Habitat Ecology and Energy Conservation of Ministry of
   Education" for the support of Shanghai Population Geography Big Data.
   Thanks to Metro-data Technology Co. for the support of 1 % population
   sampling microdata within the outer ring of Shanghai and the technical
   guidance of Chief Economist Chen Qin and Researcher Qian Junjie.
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NR 51
TC 0
Z9 0
U1 8
U2 8
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 FEB 1
PY 2025
VL 269
AR 112330
DI 10.1016/j.buildenv.2024.112330
EA DEC 2024
PG 18
WC Construction & Building Technology; Engineering, Environmental;
   Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Engineering
GA O7P2W
UT WOS:001372995400001
DA 2025-04-22
ER

PT J
AU Yu, TH
   Jia, SS
   Cui, XF
AF Yu, Tonghui
   Jia, Shanshan
   Cui, Xufeng
TI From efficiency to resilience: unraveling the dynamic coupling of land
   use economic efficiency and urban ecological resilience in Yellow River
   Basin
SO SCIENTIFIC REPORTS
LA English
DT Article
DE Yellow River Basin; Land use economic efficiency; Urban ecological
   resilience; Coupling coordination degree
ID ENVIRONMENT; URBANIZATION; COORDINATION; SERVICES
AB This study investigates the Dynamic Coupling between Land Use Economic Efficiency (LUEE) and Urban Ecological Resilience (UER) in the Yellow River Basin (YRB). This exploration is pivotal for elucidating the interaction mechanisms between economic growth and ecological governance. Furthermore, understanding this relationship is essential for fostering high-quality, sustainable urban development in the YRB. Utilizing panel data from 56 cities spanning 2003 to 2020, this study employed the coupling coordination degree (CCD) model, spatial correlation analysis, Kernel density estimation, convergence model, and Geodetector to systematically analyze the spatio-temporal distribution, dynamic trend, and determinants of the CCD between LUEE and UER in the YRB. The findings indicate that: (1) A general upward trend in both LUEE and UER, accompanied by a steady improvement in their CCD. (2) Significant spatial disparities in their CCD, with higher levels in the lower reaches. (3) Marked positive spatial autocorrelation, predominantly characterized by clusters where high (low) values are surrounded by high (low) values. (4) Regarding the impact of individual factors, government fiscal budget expenditure demonstrates the most robust explanatory power for the CCD within the YRB. Concerning the effects of two-factor interactions, the interplay between industrial structure upgrading and government fiscal budget expenditure emerges as the most significant determinant in influencing the CCD between LUEE and UER. This study enhances our comprehensive understanding of the interplay between economic and ecological systems. It offers scientific insights and strategic direction for harmonizing ecological governance with urban economic growth at both the regional and global scales.
C1 [Yu, Tonghui; Jia, Shanshan] Xinyang Normal Univ, Sch Business, Xinyang 464000, Henan, Peoples R China.
   [Cui, Xufeng] Zhongnan Univ Econ & Law, Sch Business Adm, Wuhan 430073, Hubei, 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, Hubei, Peoples R China.
EM cxf@zuel.edu.cn
RI Xufeng, Cui/GMX-2978-2022; Yu, Tonghui/KBB-1425-2024
OI Yu, Tonghui/0009-0004-8945-1787
FU Postgraduate Education Reform and Quality Improvement Project of Henan
   Province; MOE (Ministry of Education of PRC) Project of Humanities and
   Social Sciences [23YJA790012]; Soft Science Research Project of Henan
   Province [242400410215];  [YJS2024ZX33];  [YJS2022JD30]
FX This work was supported by MOE (Ministry of Education of PRC) Project of
   Humanities and Social Sciences (Grants No. 23YJA790012), Postgraduate
   Education Reform and Quality Improvement Project of Henan Province
   (Grants No. YJS2024ZX33 and No. YJS2022JD30), Soft Science Research
   Project of Henan Province (Grants No. 242400410215).
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NR 78
TC 7
Z9 7
U1 47
U2 78
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD JUL 17
PY 2024
VL 14
IS 1
AR 16518
DI 10.1038/s41598-024-67364-4
PG 26
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA A3O0A
UT WOS:001281644800012
PM 39020016
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Williams, J
AF Williams, Jo
TI Circular cities: planning for circular development in European cities
SO EUROPEAN PLANNING STUDIES
LA English
DT Article; Early Access
DE Circular cities; circular development; spatial planning; land-use
   planning; sustainable development
ID ECOSYSTEM SERVICES; CLIMATE-CHANGE; URBAN; ECONOMY
AB Circular development could produce more resource efficient, ecologically regenerative and resilient cities. This development pathway offers many ecological, social and economic benefits. However, there are also many challenges to implementation, not least a heavy reliance on the market to transform urban systems of provision. A regulatory and policy framework is essential for a circular transformation, until circular activities become competitive within existing markets. Spatial and land-use planning can offer this framework. This paper provides insight into the circular development process. It discusses the role of planning in delivering circular development, using examples from four European cities. It identifies the tools for delivery and discusses the inherent limitations of using planning tools to deliver a circular transformation.
C1 [Williams, Jo] UCL, Bartlett Sch Planning, Circular Cities Hub, London WC1H 0NN, England.
C3 University of London; University College London
RP Williams, J (corresponding author), UCL, Bartlett Sch Planning, Circular Cities Hub, London WC1H 0NN, England.
EM joanna.williams@ucl.ac.uk
OI Williams, Joanna/0000-0003-0377-8654
FU Grand Challenge Sustainable Cities Fund; Global Engagement Fund
FX Funding was provided by the Grand Challenge Sustainable Cities Fund and
   Global Engagement Fund.
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NR 56
TC 38
Z9 38
U1 16
U2 83
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0965-4313
EI 1469-5944
J9 EUR PLAN STUD
JI Eur. Plan. Stud.
PD 2022 APR 9
PY 2022
DI 10.1080/09654313.2022.2060707
EA APR 2022
PG 22
WC Environmental Studies; Geography; Regional & Urban Planning; Urban
   Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration;
   Urban Studies
GA 0N3KO
UT WOS:000782741000001
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Meerow, S
   Newell, JP
AF Meerow, Sara
   Newell, Joshua P.
TI Spatial planning for multifunctional green infrastructure: Growing
   resilience in Detroit
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Green infrastructure; Ecosystem services; Resilience; Detroit; Spatial
   planning; Urban greening
ID ECOSYSTEM SERVICES; LAND-USE; MULTICRITERIA ANALYSIS; SOCIAL
   VULNERABILITY; AIR-QUALITY; INNER-CITY; URBAN; HEALTH; CITIES;
   ADAPTATION
AB Cities are expanding green infrastructure to enhance resilience and ecosystem services. Although green infrastructure is promoted for its multifunctionality, projects are typically sited based on a particular benefit, such as stormwater abatement, rather than a suite of socio-economic and environmental benefits. This stems in part from the lack of stakeholder-informed, city-scale approaches to systematically identify ecosystem service tradeoffs, synergies, and 'hotspots' associated with green infrastructure and its siting. To address this gap, we introduce the Green Infrastructure Spatial Planning (GISP) model, a GIS-based multi-criteria approach that integrates six benefits: 1) stormwater management; 2) social vulnerability; 3) green space; 4) air quality; 5) urban heat island amelioration; and 6) landscape connectivity. Stakeholders then weight priorities to identify hotspots where green infrastructure benefits are needed most. Applying the GISP model to Detroit, we compared the results with the locations of current green infrastructure projects. The analysis provides initial evidence that green infrastructure is not being sited in high priority areas for stormwater abatement, let alone for ameliorating urban heat island effects, improving air quality, or increasing habitat connectivity. However, as the Detroit GISP model reveals, it could be developed in locations that simultaneously abate stormwater, urban heat island, and air pollution. Tradeoffs exist between siting to maximize stormwater management versus landscape connectivity. The GISP model provides an inclusive, replicable approach for planning future green infrastructure so that it maximizes social and ecological resilience. More broadly, it represents a spatial planning approach for evaluating competing and complementary ecosystem service priorities fora particular landscape. (C) 2016 Elsevier B.V. All rights reserved.
C1 [Meerow, Sara; Newell, Joshua P.] Univ Michigan, Sch Nat Resources & Environm, Ann Arbor, MI 48109 USA.
C3 University of Michigan System; University of Michigan
RP Meerow, S (corresponding author), 440 Church St, Ann Arbor, MI 48109 USA.
EM sameerow@umich.edu; jpnewell@umich.edu
RI Meerow, Sara/J-8037-2019; Newell, Joshua/J-6665-2016
OI Newell, Joshua/0000-0002-1440-8715; Meerow, Sara/0000-0002-6935-1832
FU University of Michigan's Water Center and National Science Foundation
   grant [CBET-1444745]; Div Of Chem, Bioeng, Env, & Transp Sys;
   Directorate For Engineering [1444745] Funding Source: National Science
   Foundation
FX This research was supported by funding from the University of Michigan's
   Water Center and National Science Foundation grant (CBET-1444745),
   "Sustainability Research Network: Integrated Urban Infrastructure
   Solutions for Environmentally Sustainable, Healthy, and Livable Cities."
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NR 114
TC 579
Z9 676
U1 115
U2 1588
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 MAR
PY 2017
VL 159
BP 62
EP 75
DI 10.1016/j.landurbplan.2016.10.005
PG 14
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 EI7OI
UT WOS:000392687200008
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Hatvani-Kovacs, G
   Belusko, M
   Skinner, N
   Pockett, J
   Boland, J
AF Hatvani-Kovacs, Gertrud
   Belusko, Martin
   Skinner, Natalie
   Pockett, John
   Boland, John
TI Heat stress risk and resilience in the urban environment
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Heat stress resilience; Heatwaves; Adaptation; Built environment;
   Retrofitting; Self-reported health problems
ID EXTREME HEAT; CLIMATE-CHANGE; THERMAL COMFORT; SOUTH-AUSTRALIA; HEALTH;
   VULNERABILITY; MORTALITY; ISLAND; MORBIDITY; ADELAIDE
AB Heatwaves have been subject to significant attention in Australia and globally due to their negative impacts on the ecosystem, infrastructure, human health and social life. Measures to increase resilience to heatwaves, however, are mostly isolated in different disciplines. This paper proposes a framework integrating urban and infrastructure planning, building design, public health and social research to comprehensively assess heat stress resilience. The proposed framework can assist decision makers in the evaluation of different policy changes addressing heat stress resilience and contribute to more comprehensive and effective heatwave management.
   An online survey was undertaken with a representative sample (N=393) from Adelaide, South Australia, to explore heat stress resistance of the built environment, adaptation and heat-related, self reported health problems. The study established the magnitudes of the secondary negative impacts of heatwaves on public health and daily routines. The findings identify a low level of resistance to heat stress by the built environment. It was concluded that community education along with focused building and planning regulations has the potential to significantly increase heat stress resilience. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Hatvani-Kovacs, Gertrud] Univ South Australia, Sch Informat Technol & Math Sci, Mawson Lakes Campus, Mawson Lakes, SA 5095, Australia.
   [Belusko, Martin; Pockett, John] Univ South Australia, Barbara Hardy Inst, Mawson Lakes Campus, Mawson Lakes, SA 5095, Australia.
   [Skinner, Natalie] Univ South Australia, Sch Management, City West Campus, Adelaide, SA 5000, Australia.
   [Boland, John] Univ South Australia, Ctr Ind & Appl Math, Mawson Lakes Campus, Mawson Lakes, SA 5095, Australia.
C3 University of South Australia; University of South Australia; University
   of South Australia; University of South Australia
RP Hatvani-Kovacs, G (corresponding author), Univ South Australia, Sch Informat Technol & Math Sci, Mawson Lakes Campus, Mawson Lakes, SA 5095, Australia.
EM gertrud.hatvani-kovacs@mymail.unisa.edu.au; martin.belusko@unisa.edu.au;
   natalie.skinner@unisa.edu.au; john.pockett@unisa.edu.au;
   john.boland@unisa.edu.au
RI Boland, John/B-3046-2008; Skinner, Natalie/A-4778-2012; Belusko,
   Martin/F-4130-2013; Pockett, John/F-3809-2013; Hatvani-Kovacs,
   Gertrud/B-7158-2015
OI Boland, John/0000-0003-1132-7589; Skinner, Natalie/0000-0002-9713-8545;
   Belusko, Martin/0000-0001-8261-1419; Pockett, John/0000-0002-4780-6250;
   Hatvani-Kovacs, Gertrud/0000-0003-2971-0260
FU Cooperative Research Centre for Low Carbon Living, Urban Micro Climates:
   Comparative Study of Major Contributors to the Urban Heat Island (UHI)
   in three Australian cities; Sydney, Melbourne and Adelaide
FX This study was supported by a grant from the Cooperative Research Centre
   for Low Carbon Living as part of the project, called Urban Micro
   Climates: Comparative Study of Major Contributors to the Urban Heat
   Island (UHI) in three Australian cities; Sydney, Melbourne and Adelaide.
   The authors are also grateful for the free of charge access to the
   Qualtrics online survey software thanks to the Ehrenberg-Bass Institute
   for Marketing Science, University of South Australia.
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NR 79
TC 91
Z9 104
U1 24
U2 179
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT
PY 2016
VL 26
BP 278
EP 288
DI 10.1016/j.scs.2016.06.019
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 EE1DJ
UT WOS:000389320800022
DA 2025-04-22
ER

PT J
AU de Castro, ACV
   Alvim, ATB
AF de Castro, Afonso Celso Vanoni
   Benatti Alvim, Angelica Tanus
TI Sustainable Urbanization in Valley-Bottom Areas in Urban Settings: The
   Case of the Jaguaré Stream Basin, São Paulo, Brazil
SO SUSTAINABILITY
LA English
DT Article
DE valley-bottom; urban sustainability; green-blue infrastructure; Sao
   Paulo; Brazil
ID ECOLOGY; RESILIENCE
AB This article addresses the sustainable urbanization model of urban valley-bottom areas, focusing on the Jaguare stream basin in Sao Paulo, Brazil. It tackles the challenge of integrating environmental criteria into the management of urbanized watersheds to promote urban and environmental resilience through adaptive infrastructures. Sao Paulo, the largest and most populous city in Brazil, has often overlooked the natural characteristics of watersheds, resulting in significant flooding and necessitating a reassessment of urban practices. The study, through the analysis of a referential project, qualitative analyses, and geoprocessing techniques, proposes an urbanization model in valley bottom areas that combines adaptive infrastructures-green-blue and gray infrastructures. It highlights the importance of a systemic, transdisciplinary, and integrated approach that considers the political-administrative, environmental, urbanistic, and infrastructural dimensions to address the challenges posed by climate change and urbanization. Specific recommendations are presented to adapt urbanized valley-bottom areas, emphasizing nature-based solutions and community participation in the management of hydrological risks towards the promotion of sustainable and fair urban spaces.
C1 [de Castro, Afonso Celso Vanoni; Benatti Alvim, Angelica Tanus] Univ Prebiteriana Mackenzie, Postgrad Program, Fac Architecture & Urbanism, BR-01302907 Sao Paulo, Brazil.
RP de Castro, ACV; Alvim, ATB (corresponding author), Univ Prebiteriana Mackenzie, Postgrad Program, Fac Architecture & Urbanism, BR-01302907 Sao Paulo, Brazil.
EM afonso.castro@mackenzie.br; angelica.alvim@mackenzie.br
RI Tanus Benatti Alvim, Angelica/GWM-4848-2022
OI Tanus Benatti Alvim, Angelica/0000-0001-7538-2136
FU Fundo Mackenzie de Pesquisa e Inovao; Mackenzie Presbyterian University;
   MackPesquisa; CAPES PROEX; CNPq
FX The authors are grateful to Mackenzie Presbyterian University,
   MackPesquisa, CAPES PROEX and CNPq for making this work possible.
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NR 47
TC 0
Z9 0
U1 7
U2 9
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 7
AR 3018
DI 10.3390/su16073018
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 NN4S5
UT WOS:001201123000001
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Wu, YJ
   Lin, ZW
   Liu, CJ
   Huang, T
   Chen, YY
   Ru, YT
   Chen, JJZ
AF Wu, Yingjun
   Lin, Zhiwei
   Liu, Chengjun
   Huang, Tao
   Chen, Yuyang
   Ru, Yingtao
   Chen, Jinjuzheng
TI Resilience enhancement for urban distribution network via risk-based
   emergency response plan amendment for ice disasters
SO INTERNATIONAL JOURNAL OF ELECTRICAL POWER & ENERGY SYSTEMS
LA English
DT Article
DE Urban distribution system; Ice disaster; Resilience; Critical load;
   Second-order impact
ID POWER-SYSTEM RESILIENCE; CONSTRAINTS; MICROGRIDS; OPERATION; MODEL
AB High-impact low-probability (HILP) events, such as ice disasters, result in large losses of critical loads (CLs) in the urban distribution network (UDN). Thus, emergency response plans are usually made against various HILP events to improve the UDN resilience. However, these emergency plans are usually made under incomplete and imperfect information; thus, the execution of these plans may not be effective and even risky under the real situation. Therefore, in this paper, a multi-stage UDN resilience enhancement framework is proposed for tackling this challenge. At the first stage, the distribution system operator (DSO) forms typical failure scenarios based on historical data of damage to electric components under ice disasters. Under each scenario, the DSO designs a response plan to minimize the CLs' loss and associated costs. Thanks to the updated information on the ice disaster, at the second stage, DSO makes a risk assessment on the planned emergency response. If the risk is unacceptable for any period of the ice disaster, at the third stage, DSO amends the response plan to alleviate the "second-order " impacts on CLs, distribution lines, and distributed generations (DGs). Finally, simulations on the modified IEEE-69 system, including 10 CLs and some DGs, show that the proposed framework can effectively reduce second-order impacts due to both the ice disaster and its impact on the execution of originally planned emergency response.
C1 [Wu, Yingjun; Lin, Zhiwei; Liu, Chengjun; Chen, Yuyang; Ru, Yingtao; Chen, Jinjuzheng] Hohai Univ, Coll Energy & Elect Engn, Nanjing 210098, Peoples R China.
   [Huang, Tao] Politecn Torino, Dept Energy, I-10129 Turin, Italy.
C3 Hohai University; Polytechnic University of Turin
RP Huang, T (corresponding author), Politecn Torino, Dept Energy, I-10129 Turin, Italy.
EM tao.huang@polito.it
RI Huang, Tao/AAA-3138-2021; Liu, Chengjun/IUQ-0067-2023; Wu,
   Ye/MCX-9790-2025; Lin, Zhiwei/IUQ-0040-2023
OI Liu, Chengjun/0009-0008-1772-6760; Lin, Zhiwei/0000-0003-4893-0568;
   HUANG, Tao/0000-0002-5504-7848
FU National Natural Science Foundation of China [51877181]
FX Acknowledgement This work was supported by the National Natural Science
   Foundation of China under Grant 51877181.
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NR 43
TC 23
Z9 24
U1 5
U2 34
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0142-0615
EI 1879-3517
J9 INT J ELEC POWER
JI Int. J. Electr. Power Energy Syst.
PD OCT
PY 2022
VL 141
AR 108183
DI 10.1016/j.ijepes.2022.108183
EA APR 2022
PG 13
WC Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA 1M2YU
UT WOS:000799840600005
DA 2025-04-22
ER

PT J
AU Bottoms, B
   Arbit, J
   Lewis, E
   Young , A Jr
AF Bottoms, Brad
   Arbit, Julie
   Lewis, Earl
   Young Jr, Alford
TI Towards urban place-based resilience modeling: Mixed methods for a flood
   resilience assessment index
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Article
DE Flooding; climate change; metropolitan areas; geomatics; United States
ID VULNERABILITY; RISK; DISPARITIES; INDICATORS; HAZARDS; ACCESS
AB Large-scale socioeconomic vulnerability models commonly used in flood hazard assessments grapple with data limitations and struggle to fully capture diversity in vulnerability and resilience stemming from America's sociopolitical history. In response, we developed a prototype for a place-based Flood Resilience Assessment Index (FRAI) using tract-level geographies that illustrates human-centric frameworks for quantifying flood resilience in the U.S. For these purposes, we define flood resilience as the likelihood a tract will rebound from a flood disaster. This framework can be used in tandem with flood risk models. We employ mixed methods in geospatial processing, including dasymetric interpolation and network analysis to model access. We also standardize variables by percentage to enable temporal analyses and equity-centered narrative framing. While the resulting scores for a five-county pilot study correlate with those of leading vulnerability indices, FRAI leverages diverse data sources and novel methods to represent the changing landscapes, resources, and needs of urban cores and growing suburbs. Future trajectories for FRAI will continue to define and refine methods for diverse datasets, employ participatory methods for emergency managers and residents of flood-prone communities in value-setting, weighting, and validation, and identify policy and practice avenues.
C1 [Bottoms, Brad; Arbit, Julie] OMRON Social Solut Co Ltd, Dev Ctr, Shiga, Japan.
   [Lewis, Earl] Univ Michigan, Ctr Social Solut, Dept Hist, Ann Arbor, MI USA.
   [Lewis, Earl] Univ Michigan, Ctr Social Solut, Dept Afroamer & African Studies, Ann Arbor, MI USA.
   [Lewis, Earl] Univ Michigan, Ctr Social Solut, Gerald R Ford Sch Publ Policy, Ann Arbor, MI USA.
   [Young Jr, Alford] Univ Michigan, Ctr Social Solut, Natl Ctr Inst Divers, Dept Sociol, Ann Arbor, MI USA.
   [Young Jr, Alford] Univ Michigan, Ctr Social Solut, Natl Ctr Inst Divers, Dept Afroamer & African Studies, Ann Arbor, MI USA.
   [Young Jr, Alford] Univ Michigan, Ctr Social Solut, Natl Ctr Inst Divers, Gerald R Ford Sch Publ Policy, Ann Arbor, MI USA.
   [Arbit, Julie] Univ Michigan, Ctr Social Solut, 505 South State St, 6500 Haven Hall, Ann Arbor, MI 48109 USA.
C3 University of Michigan System; University of Michigan; University of
   Michigan System; University of Michigan; University of Michigan System;
   University of Michigan; University of Michigan System; University of
   Michigan; University of Michigan System; University of Michigan;
   University of Michigan System; University of Michigan; University of
   Michigan System; University of Michigan
RP Arbit, J (corresponding author), Univ Michigan, Ctr Social Solut, 505 South State St, 6500 Haven Hall, Ann Arbor, MI 48109 USA.
EM jlarbit@umich.edu
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NR 69
TC 1
Z9 1
U1 14
U2 30
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 SEP
PY 2024
VL 51
IS 7
SI SI
BP 1563
EP 1580
DI 10.1177/23998083241243104
EA APR 2024
PG 18
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 I6R1L
UT WOS:001199586500001
DA 2025-04-22
ER

PT J
AU Aihara, Y
   Shrestha, S
   Rajbhandari, S
   Bhattarai, AP
   Bista, N
   Kazama, F
   Shindo, J
AF Aihara, Yoko
   Shrestha, Sadhana
   Rajbhandari, Sudarshan
   Bhattarai, Arun Prasad
   Bista, Niranjan
   Kazama, Futaba
   Shindo, Junko
TI Resilience in household water systems and quality of life after the
   earthquake: a mixed-methods study in urban Nepal
SO WATER POLICY
LA English
DT Article
DE Disaster; Household water security; Quality of life; Resilience
ID FRAMEWORK
AB Building resilience into water systems is very important in urban areas, particularly in less-developed countries, as poor-quality systems have adverse effects on human development and poverty reduction. This mixed-methods study aims to assess the resilience of household water systems and their impact on the quality of life (QOL) after the 2015 earthquake in Nepal. Data were obtained from 1,500 households using a questionnaire and six focus group discussions. The resilience of each household's water system was assessed in terms of residents' preand post-earthquake perceptions of water security. Approximately 60% of the households considered their water systems to be resilient. Piped water and wells were associated with stronger perceptions of water system resilience. Participants who considered their household water system to be resilient had higher QOL than those who considered their water systems vulnerable after the earthquake. Qualitative data showed that both the quality and quantity of water deteriorated due to an earthquake. To mitigate the adverse effects of natural disasters on water security, we recommend strengthening the water system infrastructure and operations as well as implementing collaboration between governments and local people.
C1 [Aihara, Yoko] Kobe Gakuin Univ, Nishi Ku, 518 Arise Ikawadanicho, Kobe, Hyogo 6512180, Japan.
   [Shrestha, Sadhana; Kazama, Futaba; Shindo, Junko] Univ Yamanashi, Interdisciplinary Ctr River Basin Environm, 4-4-37 Takeda, Kofu, Yamanashi 4008510, Japan.
   [Rajbhandari, Sudarshan] Ctr Integrated Urban Dev, Ward 3,GPO 8975,EPC 1916, Kathmandu, Nepal.
   [Bhattarai, Arun Prasad; Bista, Niranjan] Small Earth Nepal, Kathmandu, Nepal.
C3 Kobe Gakuin University; University of Yamanashi
RP Aihara, Y (corresponding author), Kobe Gakuin Univ, Nishi Ku, 518 Arise Ikawadanicho, Kobe, Hyogo 6512180, Japan.
EM yanzu99@gmail.com
OI Shrestha, Sadhana/0000-0003-0468-4350
FU Science and Technology Research Partnership for Sustainable Development
   (SATREPS) - Japan Science and Technology Agency (JST); Japan
   International Cooperation Agency (JICA)
FX This project was supported by the Science and Technology Research
   Partnership for Sustainable Development (SATREPS), funded by Japan
   Science and Technology Agency (JST) and Japan International Cooperation
   Agency (JICA).
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TC 7
Z9 7
U1 1
U2 12
PU IWA PUBLISHING
PI LONDON
PA ALLIANCE HOUSE, 12 CAXTON ST, LONDON SW1H0QS, ENGLAND
SN 1366-7017
J9 WATER POLICY
JI Water Policy
PD OCT
PY 2018
VL 20
IS 5
BP 1013
EP 1026
DI 10.2166/wp.2018.117
PG 14
WC Water Resources
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SC Water Resources
GA HI9VL
UT WOS:000456805700010
DA 2025-04-22
ER

PT J
AU Wan, GL
   Sun, DJ
   Peng, BB
   Mao, XH
AF Wan, Gaole
   Sun, Daniel Jian
   Peng, Binbin
   Mao, Xinhua
TI Risk Assessment of Urban Transportation Complex Hub from Resilience
   Perspective: An Empirical Study on Xi'an North Railway Station
SO NATURAL HAZARDS REVIEW
LA English
DT Article
DE Risk and resilience assessment; Bayesian network; Grey-decision-making
   trial and evaluation laboratory (DEMATEL); Entropy weight method; Cloud
   model
AB With the development of multimodel transportation system in megacities, the risk assessment of transportation complex hubs plays a significant role in facing various uncertainties within the urban comprehensive transportation system. This study first identified the hazard sources of various subsystems in urban transportation complex hubs based on the Hazard and Operability (HAZOP) method. In terms of four typical risk events, i.e., fire, flood, stampede, and abnormal retention, the corresponding fault tree models were constructed and transformed into Bayesian networks for quantitative analysis. Thus, the posterior probabilities of root nodes in Bayesian networks were obtained and further used by density-based spatial clustering of applications with noise (DBSCAN) clustering to screen out major hazard sources. Next, a risk assessment index system for urban transportation complex hubs was established from a resilience perspective, including first-level indexes of personnel, equipment, environment, and management, with a number of second-level indexes under them. The Grey-DEMATEL and entropy weight methods were introduced to obtain the combined weight for each index, so that a risk assessment model was developed based on a cloud model. Finally, the Xi'an North Railway Station, China was used as an empirical case study. The results indicate that the comprehensive risk of the station is at a relatively low level. In terms of first-level indexes, the risks of personnel, equipment, and environment are at a relatively low level, while the risk of management is at a normal level. The methodological framework and findings of this study may provide benchmark and guidelines for further resilience assessment of urban infrastructure facilities.
   This study proposed a methodological framework for risk assessment from a resilience perspective, enabling a comprehensive risk assessment of urban transportation complex hubs. Field data (2022.6-2023.3) from the Xi'an North Railway Station, Shaanxi Province, China were collected and used to identify and screen the major hazard sources, on which a resilience-oriented risk assessment index system was established, so that a cloud model was introduced to quantify risks across various aspects of the station. The results indicate that the risk level for personnel, equipment, and environment is relatively low, with the management risk level being normal, and the overall risk of the system being relatively low. This study provides an innovative method for establishing a risk assessment index system for large comprehensive transportation hubs, in which additional appropriate and updated indexes may be introduced according to research objectives, to enhance the pertinence of risk assessment. Furthermore, the methodology may be extended into other transportation facility assessments, serving as a benchmark for future risk assessment in similar contexts and environments, thereby contributing to improving the overall safety and resilience of urban transportation systems.
C1 [Wan, Gaole; Mao, Xinhua] Changan Univ, Sch Transportat Engn, Xian 710064, Shaanxi, Peoples R China.
   [Sun, Daniel Jian] Changan Univ, Sch Future Transportat, Xian 710061, Shaanxi, Peoples R China.
   [Peng, Binbin] Nanjing Univ, Sch Govt, Nanjing 210023, Jiangsu, Peoples R China.
C3 Chang'an University; Chang'an University; Nanjing University
RP Sun, DJ (corresponding author), Changan Univ, Sch Future Transportat, Xian 710061, Shaanxi, Peoples R China.
EM gaolewan@chd.edu.cn; jiansun@chd.edu.cn; bpeng@nju.edu.cn;
   maoxinhua@chd.edu.cn
RI Peng, Binbin/JYQ-3753-2024
OI Wan, Gaole/0009-0009-0305-1800; Peng, Binbin/0000-0002-6472-2446
FU National Nature Science Foundation of China [52172319, 71971138]
FX This research was funded in part by the National Nature Science
   Foundation of China (Nos. 52172319 and 71971138). Any opinions,
   findings, conclusions, and recommendations expressed in this paper are
   those of the authors, and do not necessarily reflect the views of the
   sponsors.
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NR 60
TC 1
Z9 1
U1 32
U2 35
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1527-6988
EI 1527-6996
J9 NAT HAZARDS REV
JI Nat. Hazards Rev.
PD NOV 1
PY 2024
VL 25
IS 4
AR 04024042
DI 10.1061/NHREFO.NHENG-2012
PG 21
WC Engineering, Civil; Environmental Studies; Geosciences,
   Multidisciplinary; Meteorology & Atmospheric Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology; Geology; Meteorology &
   Atmospheric Sciences; Water Resources
GA G0U2A
UT WOS:001313865100012
DA 2025-04-22
ER

PT J
AU Abu-Rayash, A
   Dincer, I
AF Abu-Rayash, Azzam
   Dincer, Ibrahim
TI Development of an integrated sustainability model for resilient cities
   featuring energy, environmental, social, governance and pandemic domains
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Sustainable cities; Society; Renewables; Sustainable energy;
   Environment; Sustainability; Energy; Governance
ID SYSTEMS
AB This research introduces a novel integrated model with a comprehensive approach to develop and characterize smart cities. Strategic planning for sustainable and resilient cities has become an urgent necessity, given the global challenges around the environment and sustainable development. This paper answers the questions of what does a smart city look like and which parameters to prioritize in developing smart cities. This model in-corporates important domains such as energy, environmental, social, governance and pandemic resilience do-mains in addition to other domains, carefully selected to ensure a wholistic approach. Each domain is assessed using four primary performance indicators, totaling 32 indicators, which are used to evaluate the smartness of a city. This conceptual framework is deployed and applied to 20 cities worldwide. Principal component analysis and further statistical assessments are used to determine the interrelationship and intrarelationships between the indicators of the various domains in order to determine a causal-effect matrix. The results show that the governance domain is strongly correlated with the energy and environment domains with the correlation co-efficient (R) values of 0.86 and 0.87 respectively. There is a mild positive relationship between smart governance and smart society indexes. In fact, the R value of 0.7 highlights that smart governance does positively correlate and lead to smarter societies. The average smart energy index ratio is 0.26, which reflects immense opportunities for improvements in this sector. The half of the cities in the study are below average, while the other half exceed the average smart index ratio for the energy index. The smart governance index ratio is 0.44, and the cities vary on this front between 0.17 and 0.59. Montreal is the city with the highest smart governance index ratio, whereas Cairo has the lowest. This study provides the concept of smart city in a quantitative, empirical and compre-hensive manner, highlighting that smart governance, smart society and pandemic resilience are critical aspects to the development of smart cities.
C1 [Abu-Rayash, Azzam; Dincer, Ibrahim] Ontario Tech Univ, Fac Engn & Appl Sci, Clean Energy Res Lab, 2000 Simcoe St North, Oshawa, ON L1G 0C5, Canada.
RP Abu-Rayash, A (corresponding author), Ontario Tech Univ, Fac Engn & Appl Sci, Clean Energy Res Lab, 2000 Simcoe St North, Oshawa, ON L1G 0C5, Canada.
EM azzam.aburayash@ontariotechu.net
RI Dincer, Ibrahim/ITU-6448-2023
OI Abu-Rayash, Azzam/0000-0002-2825-3881
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NR 25
TC 13
Z9 13
U1 9
U2 45
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAY
PY 2023
VL 92
AR 104439
DI 10.1016/j.scs.2023.104439
EA MAR 2023
PG 10
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA E0MY7
UT WOS:000972591600001
DA 2025-04-22
ER

PT J
AU Campbell, J
   Bouman, M
   Crawford, A
   Lewis, AD
AF Campbell, Jacob
   Bouman, Mark
   Crawford, Arlene
   Derby Lewis, Abigail
TI Sankofa Urbanism: retrieval, resilience, and cultural heritage in cities
   through time
SO FRONTIERS IN ECOLOGY AND EVOLUTION
LA English
DT Article
DE sustainability; urban ecology; resilience; urban planning and design;
   cultural heritage; place-making; biodiversity; community engagement
AB One frequently cited principle that underlies the current move toward sustainability in urban planning and policy is, "long-term vision, incorporating awareness of the past and looking way into the future." We name this "Sankofa Urbanism," from the Ghanaian symbol and proverb that suggests, "it is not wrong to reach back for that which you have forgotten." Planners and policy-makers have sought to build in cultural heritage as an important feature of "nature-based solutions" for cities. We argue that retrievals from the past in multiple forms can strengthen the integration of biodiversity preservation, community place-making and urban sustainability initiatives. We present a case for broader examination of how the past, along with diverse forms of ancestral environmental knowledge, is deployed to design and realize sustainability plans. We also call for deeper consideration of how urban planning leverages the evidence of archeology and history. The paper features a case study from our work in the Chicago region where heritage-based activities have been developed as solutions to contemporary urban environmental problems.
C1 [Campbell, Jacob; Bouman, Mark; Derby Lewis, Abigail] Keller Sci Act Ctr, Field Museum, Chicago, IL 60605 USA.
   [Crawford, Arlene] Independent Artist, Chicago, IL USA.
C3 Field Museum of Natural History (Chicago)
RP Campbell, J (corresponding author), Keller Sci Act Ctr, Field Museum, Chicago, IL 60605 USA.
EM jcampbell@fieldmuseum.org
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NR 57
TC 0
Z9 0
U1 6
U2 11
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 JUN 20
PY 2023
VL 11
AR 1219336
DI 10.3389/fevo.2023.1219336
PG 7
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA K9BO7
UT WOS:001019319700001
OA gold
DA 2025-04-22
ER

PT J
AU Díaz, P
   Stanek, P
   Frantzeskaki, N
   Yeh, DH
AF Diaz, Pacia
   Stanek, Paul
   Frantzeskaki, Niki
   Yeh, Daniel H.
TI Shifting paradigms, changing waters: Transitioning to integrated urban
   water management in the coastal city of Dunedin, USA
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Coastal cities; Urban water cycle; IUWM; Urban well field; Water
   recycling; Water conservation
AB Issues related to growing urban populations, protecting the environment and adapting to the changing climate cannot be ignored, especially when it comes to providing reliable water supply to urban areas. Sustainable cities look to shift away from the traditional urban water management characterized by a fragmented approach, and transition to form a new paradigm; one that manages the urban water cycle in a more integrated way, as a single resource, satisfying contemporary issues and adapting to future needs.
   This paper presents Dunedin, a highly urbanized coastal city, as a case study which considers contemporary issues and future needs of urban water supply. Where most IUWM case studies in literature explore only greywater and wastewater reuse, this paper evaluates the entire urban water cycle beginning with the sustainable extraction of groundwater. Dunedin's challenges and responses illustrates IUWM's usefulness in sustainable water use in a nearly closed loop system while providing valuable lessons for cities on a similar trajectory toward improved resilience. Innovative groundwater management strategies, investment in infrastructure technology and aggressive conservation have contributed toward greater sustainability and resilience. (C) 2016 Elsevier Ltd. All rights reserved.
C1 [Diaz, Pacia; Yeh, Daniel H.] Univ S Florida, Dept Civil & Environm Engn, 4202 E Fowler Ave,ENB 118, Tampa, FL 33620 USA.
   [Stanek, Paul] City Dunedin, Water Div, Reverse Osmosis Water Treatment Plant, POB 1348, Dunedin, FL 34697 USA.
   [Frantzeskaki, Niki] Erasmus Univ, DRIFT, Fac Social Sci, Postbus 1738, NL-3000 DR Rotterdam, Netherlands.
C3 State University System of Florida; University of South Florida; Erasmus
   University Rotterdam - Excl Erasmus MC; Erasmus University Rotterdam
RP Yeh, DH (corresponding author), Univ S Florida, Dept Civil & Environm Engn, 4202 E Fowler Ave,ENB 118, Tampa, FL 33620 USA.
EM phernan2@mail.usf.edu; PStanek@dunedinf.net;
   n.frantzeskaki@drift.eur.nl; dhyeh@usf.edu
RI Frantzeskaki, Niki/AAN-1044-2021
OI Yeh, Daniel/0000-0002-8365-9657; Frantzeskaki, Niki/0000-0002-6983-448X
FU University of South Florida; Alfred P. Sloan Foundation
FX This work was supported by the University of South Florida's Signature
   Research Doctoral Fellowship and the Alfred P. Sloan Foundation Graduate
   Scholarship. Dr. Niki Frantzeskaki wants to acknowledge that her
   involvement in this research was made possible via the EU FP7 Research
   Project IMPRESSIONS (http://www.impressions-project.eu/).
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NR 60
TC 20
Z9 22
U1 1
U2 33
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT
PY 2016
VL 26
BP 555
EP 567
DI 10.1016/j.scs.2016.03.016
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 EE1DJ
UT WOS:000389320800046
DA 2025-04-22
ER

PT J
AU Fariha, JN
   Miah, MT
   Limon, ZA
   Alsulamy, S
   Al Kafy, A
   Rahman, SKN
AF Fariha, Jannatun Nahar
   Miah, Md Tanvir
   Limon, Zamil Ahamed
   Alsulamy, Saleh
   Al Kafy, Abdulla
   Rahman, S. K. Nafiz
TI Quantifying spatial dynamics of urban sprawl for climate resilience
   sustainable natural resource management by utilizing geostatistical and
   remote sensing techniques
SO THEORETICAL AND APPLIED CLIMATOLOGY
LA English
DT Article
DE Urban agglomeration; Land cover change; Climate services; Environmental
   sustainability; Geospatial technology
ID COVER CHANGE; LAND; CLASSIFICATION; GAZIPUR; AREA; CITY
AB Urbanization is a complex phenomenon that has a profound impact on natural resources, economies, climate dynamics, and community structures. This study sets out to analyze the effects of urban sprawl on key urban regions in Bangladesh, covering urban, suburban, and rural landscapes. We used Landsat images from 1992 to 2022, processed and classified using the Google Earth Engine and Random Forest algorithm. Spatial metrics, Tupu method, ANOVA, and spatial regression models helped us quantify and explain land cover changes, their drivers, and consequences. Our findings show that the total built-up area in the five districts expanded from 1,200 km2 in 1992 to 2,800 km2 in 2022, with an overall yearly expansion rate of 3.5%. Meanwhile, vegetation cover declined from 2,500 km2 in 1992 to 1,500 km2 in 2022, with an average yearly loss rate of 2.5%. We identified population growth, economic development, and infrastructure expansion as the main drivers of urbanization, while land degradation, air and water pollution, and loss of biodiversity were the main consequences. Urbanization also had a significant impact on environmental functions, including carbon sequestration, water flow control, and urban heat mitigation, with varying effects across different urban areas and land use types. For instance, we found that carbon storage capacity decreased by 20% in urban areas, while it increased by 10% in rural areas. Our research highlights the crucial role of preserving and enhancing green spaces, including vegetation cover and water bodies, to mitigate urban heat and promote urban resilience. The findings underscore the need for sustainable urbanization, balancing economic growth with environmental protection and climate resilience, using geospatial and remote sensing techniques.
C1 [Fariha, Jannatun Nahar; Miah, Md Tanvir; Limon, Zamil Ahamed] Khulna Univ, Urban & Rural Planning Discipline, Khulna 9208, Bangladesh.
   [Alsulamy, Saleh] King Khalid Univ, Architecture & Planning Coll, Dept Architecture, Abha 61421, Saudi Arabia.
   [Al Kafy, Abdulla] Univ Texas Austin, Dept Geog & Environm, East 23rd St 305,A3100, Austin, TX 78712 USA.
   [Rahman, S. K. Nafiz] Auburn Univ, Dept Geosci, Auburn, AL 36849 USA.
C3 Khulna University; King Khalid University; University of Texas System;
   University of Texas Austin; Auburn University System; Auburn University
RP Al Kafy, A (corresponding author), Univ Texas Austin, Dept Geog & Environm, East 23rd St 305,A3100, Austin, TX 78712 USA.
EM farihajannat720@gmail.com; tanvir180417@gmail.com;
   zamilahamedlimon@gmail.com; s.alsulamy@kku.edu.sa;
   abdulla-al.kafy@localpathways.org; szr0125@auburn.edu
RI Kafy, Abdulla Al/AAF-2173-2020; alsulamy, saleh/ACJ-0897-2022
OI alsulamy, saleh/0000-0001-6991-1855; Fariha, Jannatun
   Nahar/0009-0008-9429-9934
FU Deanship of Scientific Research, King Khalid University [2/262/44];
   Deanship of Scientific Research at King Khalid University
FX The Authors extend their appreciation to the Deanship of Scientific
   Research at King Khalid University for funding this work through a large
   research group. Project group number RGP. 2/262/44.
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NR 76
TC 4
Z9 4
U1 7
U2 15
PU SPRINGER WIEN
PI Vienna
PA Prinz-Eugen-Strasse 8-10, A-1040 Vienna, AUSTRIA
SN 0177-798X
EI 1434-4483
J9 THEOR APPL CLIMATOL
JI Theor. Appl. Climatol.
PD JUL
PY 2024
VL 155
IS 7
BP 6307
EP 6349
DI 10.1007/s00704-024-05000-x
EA MAY 2024
PG 43
WC Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Meteorology & Atmospheric Sciences
GA C2P4X
UT WOS:001226901400002
DA 2025-04-22
ER

PT J
AU Glaeser, EL
AF Glaeser, Edward L.
TI Urban resilience
SO URBAN STUDIES
LA English
DT Article
DE cities; COVID-19; growth; regional economics
ID CITIES; IMPACT; PLAGUE; LOCATION; GROWTH; EARTHQUAKE; ECONOMICS;
   GEOGRAPHY; TAXATION; DECLINE
AB Will COVID-19 end the urban renaissance that many cities have experienced since the 1980s? This essay selectively reviews the copious literature that now exists on the long-term impact of natural disasters. At this point, the long-run resilience of cities to many forms of physical destruction, including bombing, earthquakes and fires, has been well-documented. The destruction of human capital may leave a longer imprint, but cities have persisted through many plagues over the past millennia. By contrast, economic and political shocks, including deindustrialisation or the loss of capital city status, can enormously harm an urban area. These facts suggest that the COVID-19 pandemic will only significantly alter urban fortunes if it is accompanied by a major economic shift, such as widespread adoption of remote work, or political shifts that could lead businesses and the wealthy to leave urban areas. The combination of an increased ability to relocate with increased local redistribution or deterioration of local amenity levels, or both, could recreate some of the key attributes of the urban crisis of the 1970s.
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   [Glaeser, Edward L.] NBER, Cambridge, MA 02138 USA.
C3 Harvard University; National Bureau of Economic Research
RP Glaeser, EL (corresponding author), Harvard Univ, Econ Dept, Littauer Ctr 315A,1805 Cambridge St, Cambridge, MA 02138 USA.
EM eglaeser@harvard.edu
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NR 93
TC 67
Z9 70
U1 27
U2 143
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 JAN
PY 2022
VL 59
IS 1
BP 3
EP 35
AR 00420980211052230
DI 10.1177/00420980211052230
EA NOV 2021
PG 33
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA XL6AY
UT WOS:000716335700001
DA 2025-04-22
ER

PT J
AU Rajput, AA
   Mostafavi, A
AF Rajput, Akhil Anil
   Mostafavi, Ali
TI Latent sub-structural resilience mechanisms in temporal human mobility
   networks during urban flooding
SO SCIENTIFIC REPORTS
LA English
DT Article
ID TOPOLOGY; MOTIFS
AB In studying resilience in temporal human networks, relying solely on global network measures would be inadequate; latent sub-structural network mechanisms need to be examined to determine the extent of impact and recovery of these networks during perturbations, such as urban flooding. In this study, we utilize high-resolution aggregated location-based data to construct temporal human mobility networks in Houston in the context of the 2017 Hurricane Harvey. We examine motif distribution, motif persistence, temporal stability, and motif attributes to reveal latent sub-structural mechanisms related to the resilience of human mobility networks during disaster-induced perturbations. The results show that urban flood impacts persist in human mobility networks at the sub-structure level for several weeks. The impact extent and recovery duration are heterogeneous across different network types. Also, while perturbation impacts persist at the sub-structure level, global topological network properties indicate that the network has recovered. The findings highlight the importance of examining the microstructures and their dynamic processes and attributes in understanding the resilience of temporal human mobility networks (and other temporal networks). The findings can also provide disaster managers, public officials, and transportation planners with insights to better evaluate impacts and monitor recovery in affected communities.
C1 [Rajput, Akhil Anil; Mostafavi, Ali] Texas A&M Univ, Zachry Dept Civil Engn, College Stn, TX 77843 USA.
C3 Texas A&M University System; Texas A&M University College Station
RP Mostafavi, A (corresponding author), Texas A&M Univ, Zachry Dept Civil Engn, College Stn, TX 77843 USA.
EM amostafavi@civil.tamu.edu
RI Rajput, Akhil Anil/HKM-5215-2023; Mostafavi, Ali/R-2133-2018
OI Rajput, Akhil Anil/0000-0001-7207-4920
FU National Science Foundation CRISP 2.0 Award [1832662]
FX The authors would like to acknowledge the funding support from the
   National Science Foundation CRISP 2.0 Award under grant number 1832662.
   The authors would also like to acknowledge Streetlight Data for
   providing the mobility data. Any opinions, findings, conclusions, or
   recommendations expressed in this research are those of the authors and
   do not necessarily reflect the view of the funding agencies.
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NR 33
TC 5
Z9 5
U1 5
U2 22
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD JUL 6
PY 2023
VL 13
IS 1
AR 10953
DI 10.1038/s41598-023-37965-6
PG 14
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA L9DY9
UT WOS:001026209100018
PM 37414862
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Akbarzadeh, M
   Memarmontazerin, S
   Derrible, S
   Reihani, SFS
AF Akbarzadeh, Meisam
   Memarmontazerin, Soroush
   Derrible, Sybil
   Reihani, Sayed Farzin Salehi
TI The role of travel demand and network centrality on the connectivity and
   resilience of an urban street system
SO TRANSPORTATION
LA English
DT Article
DE Centrality; Resilience; Giant Component; Adaptive Capacity
ID ROBUSTNESS; VULNERABILITY; NODES
AB In the transportation literature, two major and parallel approaches exist to identify the critical elements of a transportation system. On the one hand, conventional transportation engineering emphasizes travel demand, often in terms of traffic volume (i.e., demand side). On the other hand, newer techniques from Network Science emphasize network topology (i.e., supply side). To better understand the relationship between the two approaches, we first investigate whether they correlate by comparing traffic volume and node centrality. Second, we assess the impact of the two approaches on the connectivity and resilience of a transportation network; connectivity is measured by the relative size of the giant component, and resilience is measured by the network's adaptive capacity (the amount of extra flow it can handle). The urban road system of Isfahan (Iran) is used as a practical case study. Overall, we find that traffic volume indeed correlates with node centrality. In addition, we find that the weighted degree of a node, i.e., the sum of the capacities of its incident links (for small disruptions) and node betweenness (for large disruptions), best captures node criticality. Nodes with high weighted degree and betweenness should therefore be given higher priority to enhance connectivity and resilience in urban street systems. Regarding link criticality, roads with higher capacities showed a more important role as opposed to betweenness, flow, and congestion.
C1 [Akbarzadeh, Meisam; Memarmontazerin, Soroush; Reihani, Sayed Farzin Salehi] Isfahan Univ Technol, Dept Transportat Engn, Esfahan, Iran.
   [Derrible, Sybil] Univ Illinois, Complex & Sustainable Urban Networks CSUN Lab, Chicago, IL USA.
   [Derrible, Sybil] Univ Illinois, Dept Civil & Mat Engn, Chicago, IL USA.
C3 Isfahan University of Technology; University of Illinois System;
   University of Illinois Chicago; University of Illinois Chicago Hospital;
   University of Illinois System; University of Illinois Chicago;
   University of Illinois Chicago Hospital
RP Akbarzadeh, M (corresponding author), Isfahan Univ Technol, Dept Transportat Engn, Esfahan, Iran.
EM makbarzadeh@cc.iut.ac.ir; derrible@uic.edu; farzin.salehi@te.iut.ac.ir
OI Akbarzadeh, Meisam/0000-0001-8703-6791
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NR 41
TC 57
Z9 70
U1 13
U2 110
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0049-4488
EI 1572-9435
J9 TRANSPORTATION
JI Transportation
PD AUG
PY 2019
VL 46
IS 4
BP 1127
EP 1141
DI 10.1007/s11116-017-9814-y
PG 15
WC Engineering, Civil; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Transportation
GA JD9QG
UT WOS:000490322600003
DA 2025-04-22
ER

PT J
AU Li, QR
AF Li, Qirui
TI Resilience Thinking as a System Approach to Promote China's
   Sustainability Transitions
SO SUSTAINABILITY
LA English
DT Review
DE urbanization; rural-urban development; social-ecological systems;
   transformative changes; adaption and mitigation
ID LAND-DEVELOPMENT; URBAN TRANSFORMATION; SEMI-URBANIZATION;
   PROPERTY-RIGHTS; CLIMATE-CHANGE; STATE; LABOR; POPULATION; ADAPTATION;
   FINANCE
AB Urban regeneration and rural revitalization are becoming major policy initiatives in China, which requires new approaches for sustainability transitions. This paper reviewed the history of policy reforms and institutional changes and analysed the main challenges to sustainability transitions in China. The urban-rural systems were defined as a complex dynamic social-ecological system based on resilience thinking and transition theory. The notions of adaptation and transformation were applied to compose a framework to coordinate "resilience" with "sustainability". The findings indicate that China's urbanization has experienced the conservative development of restructuring socio-economic and political systems (before 1984), the fast industrialization and economic development leaned to cities (1984 to 2002), the rapid urbanization led by land expropriation and investment expansion (2002 to 2012), and the quality development transformation equally in urban and rural areas (since 2012). The sustainability transitions have been challenged by controversial institutional arrangements, concerning population mobility control, unequal social welfare, and incomplete property rights. A series of policy interventions should be designed and implemented accordingly with joint efforts of multiple stakeholders and based on the combined technocratic and bottom-up knowledge derived from proactive and conscious individuals and collectives through context-dependent social networks.
C1 [Li, Qirui] Univ Bayreuth, Climatol Res Grp, D-95447 Bayreuth, Germany.
   [Li, Qirui] Univ Bayreuth, Bayreuth Ctr Ecol & Environm Res, D-95448 Bayreuth, Germany.
   [Li, Qirui] Chinese Acad Sci & Minist Water Resources, Inst Water & Soil Conservat, State Key Lab Soil Eros & Dryland Farming Loess P, Yangling 712100, Shaanxi, Peoples R China.
   [Li, Qirui] Leibniz Inst Ecol Urban & Reg Dev, D-01279 Dresden, Germany.
C3 University of Bayreuth; University of Bayreuth; Ministry of Water
   Resources; Leibniz Institut fur okologische Raumentwicklung
RP Li, QR (corresponding author), Univ Bayreuth, Climatol Res Grp, D-95447 Bayreuth, Germany.; Li, QR (corresponding author), Univ Bayreuth, Bayreuth Ctr Ecol & Environm Res, D-95448 Bayreuth, Germany.; Li, QR (corresponding author), Chinese Acad Sci & Minist Water Resources, Inst Water & Soil Conservat, State Key Lab Soil Eros & Dryland Farming Loess P, Yangling 712100, Shaanxi, Peoples R China.; Li, QR (corresponding author), Leibniz Inst Ecol Urban & Reg Dev, D-01279 Dresden, Germany.
EM qirui.li@uni-bayreuth.de
OI Li, Qirui/0000-0001-8128-4401
FU University of Bayreuth; German Research Foundation; Horizon 2020
   [770141]; Institute ofWater and Soil Conservation, Chinese Academy of
   Sciences; Ministry of Water Resources [A314021402-2018]
FX The APC was funded by the University of Bayreuth and German Research
   Foundation. The first phase of this research was supported by Horizon
   2020, grant number 770141. The paper editing services were funded by the
   Institute ofWater and Soil Conservation, Chinese Academy of Sciences and
   Ministry of Water Resources, grant number A314021402-2018.
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NR 168
TC 16
Z9 17
U1 10
U2 86
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2020
VL 12
IS 12
AR 5008
DI 10.3390/su12125008
PG 29
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA ML0XL
UT WOS:000549199800001
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Chen, Y
   Xu, SD
   Cao, Z
   Zhu, ZJ
   He, ZP
AF Chen, Yue
   Xu, Sudong
   Cao, Zhan
   Zhu, Zhenjun
   He, Zhanpeng
TI Determining the Initiation Threshold of Underground Road Network
   Construction in High-Intensity Development Areas: A New Methodology
   Considering Resilience
SO JOURNAL OF ADVANCED TRANSPORTATION
LA English
DT Article
DE high-intensity development areas; initiation threshold; network
   resilience; traffic carrying capacity; traffic demand; underground road
   network
ID SPACE
AB Assessing the resilience of road networks in high-intensity urban development areas is crucial for ensuring sustainable urban growth in the face of increasing traffic demands. Underground road networks are a key solution to alleviating surface traffic congestion and optimizing urban spatial utilization. By enhancing shared mobility on the surface, these networks contribute to reducing vehicle emissions and mitigating environmental pollution. This study explores the optimal conditions for initiating underground road network construction in high-density development areas. Using a spatiotemporal consumption model, the research calculates the maximum traffic capacity of the network while considering land use characteristics to assess traffic demand. The resilience of these road networks is evaluated through structural indicators that measure their resistance to damage and overall stability. The findings indicate that when the demand-to-capacity ratio of the road network ranges from 0.865 to 0.870, the existing road capacity becomes inadequate, necessitating the construction of underground networks to alleviate surface congestion. This study provides both theoretical guidance and practical insights for the planning and development of underground road networks, along with strategies to improve surface environmental quality.
C1 [Chen, Yue; Xu, Sudong] Southeast Univ, Sch Transportat, Nanjing 211189, Peoples R China.
   [Chen, Yue] China Municipal Engn North China Design Res Inst C, Nanjing 210019, Peoples R China.
   [Cao, Zhan; Zhu, Zhenjun; He, Zhanpeng] Nanjing Forestry Univ, Coll Automobile & Traff Engn, Nanjing 210037, Peoples R China.
C3 Southeast University - China; Nanjing Forestry University
RP Xu, SD (corresponding author), Southeast Univ, Sch Transportat, Nanjing 211189, Peoples R China.
EM sudongxu@seu.edu.cn
OI Zhan, Cao/0009-0002-6911-6450
FU Nanjing Urban and Rural Construction Committee;  [Ks2366]
FX This study was funded by the Nanjing Urban and Rural Construction
   Committee (grant numbers no. Ks2366).
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NR 49
TC 0
Z9 0
U1 3
U2 3
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 4338193
DI 10.1155/atr/4338193
PG 14
WC Engineering, Civil; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA W1N6X
UT WOS:001416332500001
OA gold
DA 2025-04-22
ER

PT J
AU Botequilha-Leitao, A
   Díaz-Varela, ER
AF Botequilha-Leitao, Andre
   Diaz-Varela, Emilio R.
TI Performance Based Planning of complex urban social-ecological systems:
   The quest for sustainability through the promotion of resilience
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Strategic planning; Performance-based planning; Complex adaptive
   systems; Adaptive planning and management; Problem structuring methods;
   Resilience
ID PROBLEM STRUCTURING METHODS; ECOSYSTEM SERVICES; STRATEGIC PLANS;
   UNCERTAINTY; FRAMEWORK; DESIGN; CITY; ADAPTATION; MANAGEMENT; CLIMATE
AB Urban systems and human settlements have been growing exponentially in size and complexity in the last decades, defying current approaches to sustainable development. While urban planning has been identified as one of the main tools for attaining specific sustainability goals, consideration of cities as complex social-ecological and adaptive systems challenges traditional views, demanding new flexible and creative planning solutions. In this conceptual study, we analyse the capacity of performance-based planning (PBP) to provide sustainable solutions for urban planning problems. To do so, we examine the different conceptualizations of PBP in the current planning environment. To better define the challenges posed by the complexity of urban systems, we explore the similarities and common ground between PBP and other approaches such as adaptive planning and management (APM) and problem structuring methods (PSM). We analyse a case study, in Queensland (Australia), using SWOT (Strengths, Weaknesses, Opportunities and Threats) analysis to identify potential advantages and barriers to the implementation of PBP. Finally, we discuss the potential role of APM and PSM in PBP, the utility of an extended conceptualization of resilience as an important reference for its implementation and a potentially stronger role for planners in PBP as decision shapers.
C1 [Botequilha-Leitao, Andre] Univ Algarve, Dept Earth Marine & Environm Sci, Fac Sci & Technol, Campus Gambelas, P-8005139 Faro, Portugal.
   [Botequilha-Leitao, Andre] Univ Algarve, CEPAC Study Ctr, Campus Gambelas, P-8005139 Faro, Portugal.
   [Diaz-Varela, Emilio R.] Univ Santiago de Compostela, ECOAGRASOC Res Grp, Santiago de Compostela, Spain.
C3 Universidade do Algarve; Universidade do Algarve; Universidade de
   Santiago de Compostela
RP Botequilha-Leitao, A (corresponding author), Univ Algarve, Dept Earth Marine & Environm Sci, Fac Sci & Technol, Campus Gambelas, P-8005139 Faro, Portugal.; Botequilha-Leitao, A (corresponding author), Univ Algarve, CEPAC Study Ctr, Campus Gambelas, P-8005139 Faro, Portugal.
EM aleitao@ualg.pt
RI Diaz-Varela, Emilio Rafael/D-2900-2009; Botequilha-Leitao,
   Andre/E-9730-2015
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NR 121
TC 48
Z9 55
U1 14
U2 119
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAY
PY 2020
VL 56
AR 102089
DI 10.1016/j.scs.2020.102089
PG 10
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 KU5YA
UT WOS:000519788600030
OA Green Published
DA 2025-04-22
ER

PT J
AU Özerol, G
   Dolman, N
   Bormann, H
   Bressers, H
   Lulofs, K
   Böge, M
AF Ozerol, Gul
   Dolman, Nanco
   Bormann, Helge
   Bressers, Hans
   Lulofs, Kris
   Boege, Mike
TI Urban water management and climate change adaptation: A self-assessment
   study by seven midsize cities in the North Sea Region
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban water management; Urban design; Water sensitive cities; Climate
   change adaptation; Self-assessment; Knowledge co-production
ID ECOSYSTEM SERVICES; RESILIENCE; GOVERNANCE; LESSONS
AB Cities are experiencing the impacts of climate change through water-related disasters, while the sustainable management of water resources remains crucial for urban climate resilience. Accordingly, frameworks that integrate urban water management with climate change adaptation become increasingly relevant. The Water Sensitive Cities (WSC) framework is built on three pillars that address cities' role as communities and networks, water catchments, and providers of ecosystem services. A major element of the framework is the WSC index, which can be applied to assess cities by using multiple indicators under each pillar. With the objectives of adjusting and testing the WSC index in the context of the North Sea Region through a transdisciplinary knowledge co-production process, this paper presents the results from a self-assessment conducted by seven midsize cities. Insights gained from the comparison of self-assessment results are twofold. Firstly, the cities need to value the benefits of ecosystem services for climate change adaptation, and integrate climate change into other sectors. Secondly, the cities differ regarding the priority of climate change, and even the cities that aspire to be frontrunners have weaknesses. The application of the self-assessment process also creates an exchange and mutual learning platform for cities, and increases their awareness on climate resilience.
C1 [Ozerol, Gul; Bressers, Hans; Lulofs, Kris] Univ Twente, Enschede, Netherlands.
   [Dolman, Nanco] Royal HaskoningDHV, Amsterdam, Netherlands.
   [Bormann, Helge; Boege, Mike] Jade Univ Appl Sci, Oldenburg, Germany.
C3 University of Twente; Jade University of Applied Sciences
RP Özerol, G (corresponding author), Univ Twente, Enschede, Netherlands.
RI Dolman, Nanco/AGM-8983-2022; Bormann, Helge/C-1880-2008
OI Dolman, Nanco/0000-0002-8134-6307; Ozerol, Gul/0000-0002-4805-6666;
   Bormann, Helge/0000-0001-7740-4554
FU Interreg VB North Sea Region Programme
FX We would like to thank the CATCH practice partners for their valuable
   inputs and commitment throughout the self-assessment process; the two
   reviewers for their insightful comments that helped us improve the paper
   significantly; Susan Lijzenga for her feedback to an earlier version of
   the paper; and Rim Khamis and Jelle Reitsma for reviewing several
   literature sources as part of their thesis studies on water management,
   climate change adaptation and urban resilience. The methodology as well
   as the empirical data and information presented in this paper results
   from the CATCH Project, co-funded by the Interreg VB North Sea Region
   Programme (https://northsearegion.eu/catch).
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NR 57
TC 51
Z9 54
U1 11
U2 46
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 2020
VL 55
AR 102066
DI 10.1016/j.scs.2020.102066
PG 10
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 KQ1WL
UT WOS:000516721000047
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Hartson, KR
   Hall, LA
   Choate, SA
AF Hartson, Kimberly R.
   Hall, Lynne A.
   Choate, Sara A.
TI Stressors and resilience are associated with well-being in young adult
   college students
SO JOURNAL OF AMERICAN COLLEGE HEALTH
LA English
DT Article
DE College students; resilience; stressors; well-being
ID PSYCHOLOGICAL RESILIENCE; ANXIETY; SLEEP; INTERVENTIONS; VULNERABILITY;
   HYPERTENSION; PREVALENCE; PREDICTORS; SYMPTOMS; SAMPLE
AB Objective The purposes were to describe stressors and resilience behaviors of college students and examine the relationships among stressors, resilience, and well-being. Hypothesis: Resilience will modify the relationship between stressors and well-being. Participants: The sample included 1,010 college students, ages 18-26, from an urban Midwestern university. Methods: A secondary analysis of cross-sectional data from an anonymous survey was conducted using multiple regression and simple slopes analysis. Results: Resilience did not modify the relationship between stressors and well-being. Stressors (beta = -.44, p < .0001) and resilience (beta = .33, p < .0001) accounted for 42% of the variance in well-being (adjusted R-2 = .42, F-2,F-999 = 365.98, p < .0001). The most frequently endorsed stressors were sleep problems, anxiety, and relationships. Conclusions: Stressors and resilience warrant special attention in the allocation of resources and development of programs to improve student well-being.
C1 [Hartson, Kimberly R.; Hall, Lynne A.] Univ Louisville, Sch Nursing, K Bldg,555 South Floyd St, Louisville, KY 40202 USA.
   [Choate, Sara A.] Univ Louisville, Sch Nursing, Div Hlth Promot, Campus Hlth Serv, Louisville, KY 40202 USA.
C3 University of Louisville; University of Louisville
RP Hartson, KR (corresponding author), Univ Louisville, Sch Nursing, K Bldg,555 South Floyd St, Louisville, KY 40202 USA.
EM kimberly.rapp@louisville.edu
RI Choate, Sara/KWU-1117-2024
OI Hall, Lynne/0000-0002-5030-3806; Hartson, Kimberly/0000-0002-7186-9892
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NR 65
TC 21
Z9 22
U1 6
U2 61
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 MAR 24
PY 2023
VL 71
IS 3
BP 821
EP 829
DI 10.1080/07448481.2021.1908309
EA MAR 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 F7OH3
UT WOS:000672203900001
PM 34280317
DA 2025-04-22
ER

PT J
AU Mugume, SN
   Kibibi, H
   Sorensen, J
   Butler, D
AF Mugume, Seith N.
   Kibibi, Hilary
   Sorensen, Johanna
   Butler, David
TI Can Blue-Green Infrastructure enhance resilience in urban drainage
   systems during failure conditions?
SO WATER SCIENCE AND TECHNOLOGY
LA English
DT Article
DE Blue-Green Infrastructure; coupled 1D-2D modelling; flood resilience;
   system failures
ID OVERLAND-FLOW; MODELS; VULNERABILITY; PERFORMANCE; MITIGATION;
   MANAGEMENT
AB The need to enhance the resilience of urban drainage systems (UDSs) in view of emerging global climate change and urbanisation threats is well recognised. Blue-Green Infrastructure (BGI) provides a suitable strategy for building the resilience of existing UDSs. However, there are limited quantitative studies that provide evidence of their effectiveness for increased uptake in cities. In this research, coupled one-dimensional-two-dimensional (1D-2D) modelling is applied to assess the effectiveness of BGI that include rainwater harvesting systems, infiltration trenches, bioretention cells, and detention ponds using two case study UDSs located in Kampala that experience catastrophic pluvial flooding caused by extreme rainfall. The resulting flooding impacts are quantified considering 'failed' and 'non-failed' UDS initial states, using total flood volume and average flood duration as system performance indicators. The study results suggest that spatially distributed rainwater harvesting systems singularly lead to a reduction in total flood volume and average flood duration of 16-45% and 18-24% in the case study UDSs, respectively. Furthermore, the study results suggest that BGIs are more effective during moderate rainfall (T < 10 years). Based on the study findings, city scale implementation of multifunctional rainwater harvesting systems is recommended as a suitable strategy for enhancing UDSs' resilience. HIGHLIGHTS Coupled 1D-2D modelling considering system failures in Urban Drainage Systems (UDSs) applied to assess effectiveness of Blue-Green Infrastructure (BGI). Flooding impacts quantified for 'failed' and 'non-failed' UDSs' initial states. Results confirmed that BGIs are more effective during moderate rainfall. Multifunctional rainwater harvesting systems provide a promising resilience enhancing option.
C1 [Mugume, Seith N.] Makerere Univ, Dept Civil & Environm Engn, POB 7062, Kampala, Uganda.
   [Kibibi, Hilary] MEIR Engn & Res Ltd, POB 114780, Kampala, Uganda.
   [Sorensen, Johanna] Lund Univ, Dept Water Resources Engn, POB 118, Lund, Sweden.
   [Butler, David] Univ Exeter, Ctr Water Syst, Dept Engn, North Pk Rd, Exeter EX4 4QF, England.
C3 Makerere University; Lund University; University of Exeter
RP Mugume, SN (corresponding author), Makerere Univ, Dept Civil & Environm Engn, POB 7062, Kampala, Uganda.
EM smugume@gmail.com
RI Gonzalez-Barrio, David/MHQ-7861-2025; Mugume, Seith/ADW-0407-2022;
   Sörensen, Johanna/AAG-3189-2019
OI Mugume, Seith/0000-0002-8289-0099; Sorensen, Johanna
   Lykke/0000-0002-2312-4917
FU Ministry of Water and Environment, Uganda; Kampala Capital City
   Authority (KCCA); German Development Cooperation (GIZ)
FX Acknowledgement is given to the Directorate of Water Resources
   Management (DWRM); Ministry of Water and Environment, Uganda; Kampala
   Capital City Authority (KCCA); and the German Development Cooperation
   (GIZ) for the provision of the data sets used in the study. The insights
   of two anonymous reviewers are also gratefully acknowledged. We also
   confirm that there are no relevant financial or non-financial competing
   interests to report.
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NR 65
TC 16
Z9 16
U1 26
U2 70
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 FEB 15
PY 2024
VL 89
IS 4
BP 915
EP 944
DI 10.2166/wst.2024.032
EA FEB 2024
PG 30
WC Engineering, Environmental; Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology; Water Resources
GA JO0M8
UT WOS:001159993300001
PM 38423609
OA gold
DA 2025-04-22
ER

PT J
AU Rogov, M
   Rozenblat, C
   Bida, M
   Shutters, ST
AF Rogov, Mikhail
   Rozenblat, Celine
   Bida, Mehdi
   Shutters, Shade T.
TI Evaluating multilevel resilience of Russian urban economies 2010-2019
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE cities; employment; multilevel; multinational firms; panarchy;
   resilience; Russia; system of cities
ID COMPLEXITY; VARIETY; CRISES; CITY
AB In this paper we examine the coevolution of individual cities and the city networks to which they belong, during an economic shock. We take an individual city and its city network to be the meso and macro levels, respectively, of a social-economic system. Focusing on the economic shocks felt by Russian cities in 2014 following the Ukrainian conflict, we demonstrate that the same shock had different effects at the meso level (a city's employment structure) and macro level (a city's interfirm linkages to other cities, both national and international). To explain our findings, we draw on panarchy theory to propose a multilevel perspective of resilience through the coevolution of adaptive cycles at the meso and macro levels of urban economies. To evaluate resilience at each level, we first operationalize the panarchy concept of connectedness using a previously developed metric called "tightness," which quantifies the interdependencies among economic activities. We next operationalize the panarchy concept of potential by measuring a city's degree of economic specialization. At the meso level, we find that larger cities suffered less employment loss than smaller cities during the shock and that by 2019 the structure of the meso level had largely returned to its 2010 structure. On the other hand, at the macro level, we found that the 2019 macro level structure changed considerably from 2010. Thus, we show that the meso level was disturbed but returned to a previous state (engineering resilience) while the macro level transitioned to a new state (ecological resilience). Results suggest that policy makers would benefit from distinguishing between the meso and macro levels, enabling the development of multilevel urban policies to address future shocks.
C1 [Rogov, Mikhail; Rozenblat, Celine; Bida, Mehdi] Univ Lausanne, Inst Geog & Sustainabil, Lausanne, Switzerland.
   [Rogov, Mikhail] HSE Univ, Moscow, Russia.
   [Shutters, Shade T.] Arizona State Univ, Sch Complex Adapt Syst, Tempe, AZ USA.
   [Shutters, Shade T.] Global Climate Forum, Berlin, Germany.
C3 University of Lausanne; HSE University (National Research University
   Higher School of Economics); Arizona State University; Arizona State
   University-Tempe
RP Rogov, M (corresponding author), Univ Lausanne, Inst Geog & Sustainabil, Lausanne, Switzerland.; Rogov, M (corresponding author), HSE Univ, Moscow, Russia.
RI Shutters, Shade/B-9807-2013; Rogov, Mikhail/AEF-0996-2022; Rogov,
   Mikhail/N-7904-2018
OI Shutters, Shade T./0000-0002-8072-4134; Rogov,
   Mikhail/0000-0003-0168-7492
FU Societe Academique Vaudoiseand the University of Lausanne; Minerva
   research grant from the US Air Force Office of Scientific Research
   [FA9550-21-1-0140]
FX This research was supported by the Societe Academique Vaudoiseand the
   University of Lausanne. The authors are particularly grateful to Andrea
   Ferloni and Meiqi Jiao for the numerousdiscussions and their valuable
   remarks. Also, we want to thankMartin Muller, Clementine Cottineau, and
   Maria Gunko for theirconstructive advice. STS was supported by a Minerva
   research grant from the US Air Force Office of Scientific Research under
   award number FA9550-21-1-0140. Any opinions, findings, conclusions,
   orrecommendations expressed in this material are those of STS anddo not
   necessarily reflect the views of the United States Air Force.
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NR 84
TC 2
Z9 3
U1 4
U2 20
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 2022
VL 27
IS 4
AR 37
DI 10.5751/ES-13691-270437
PG 21
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 7L6YF
UT WOS:000906107800001
OA gold
DA 2025-04-22
ER

PT J
AU Xin, FZ
   Ma, YH
   Liao, P
   Fu, BC
AF Xin, Fangzheng
   Ma, Yuanhong
   Liao, Pan
   Fu, Benchen
TI Evaluation of the university campus layout for the dual use as a
   city-level emergency shelter
SO HABITAT INTERNATIONAL
LA English
DT Article
DE Emergency shelter; Emergency accessibility evaluation; Layout of open
   space; University campus; Space syntax; Urban resilience
ID NETWORK; SPACE
AB Creating emergency shelters that efficiently respond to disasters is crucial to enhancing urban resilience. University campuses, due to their vast open spaces, are commonly utilized as city-level emergency shelters globally, providing refuge for thousands of individuals during extreme disasters. However, there is a lack of established standards for designing efficient layouts that fulfill different emergency requirements and scenarios, such as nearby evacuation and long-term sheltering. This study introduces a framework consisting of two dimensions and four indicators to evaluate the emergency accessibility of layouts and subsequently identifies their suitable scenarios. By applying this framework to 42 universities and employing k-means clustering, the universities are classified into five categories. The findings highlight the effectiveness of Polycentric and Concentric forms in establishing well-connected spatial structures. They are appropriate to serve as primary city-level shelters. On the other hand, the Scatter, Grouping, and Centrifugal forms, with their introverted structure, are better suited for temporary regional sheltering. It is recommended that the layout should be designed with a hierarchical structure that has interconnected centers, which can maximize emergency accessibility. This study introduces methods and strategies for urban shelter creation, advocating for the dual use of public facilities to bolster urban resilience and support sustainable urban development.
C1 [Xin, Fangzheng; Ma, Yuanhong; Fu, Benchen] Shenzhen Univ, Benyuan Design Res Ctr, Sch Architecture & Urban Planning, State Key Lab Subtrop Bldg & Urban Sci, Shenzhen, Peoples R China.
   [Liao, Pan] China Univ Min & Technol, Sch Architecture & Design, Xuzhou, Peoples R China.
C3 Shenzhen University; China University of Mining & Technology
RP Ma, YH (corresponding author), Shenzhen Univ, Benyuan Design Res Ctr, Sch Architecture & Urban Planning, State Key Lab Subtrop Bldg & Urban Sci, Shenzhen, Peoples R China.
EM xinfangzheng2021@email.szu.edu.cn; ma.yh@szu.edu.cn;
   pan.liao@mymail.unisa.edu.au; fubenchen@szu.edu.cn
RI Liao, Pan/JBJ-4686-2023; Ma, Yuanhong/ABA-4484-2020
OI Liao, Pan/0000-0002-7269-9231
FU Science and Technology Innovation Committee [20220810151038001]
FX This study was supported by the National Natural Science Foundation of
   China (No. 52108019, No. 52278026, No. 52278027), Shenzhen Science and
   Technology Innovation Committee (No. 20220810151038001).r Science and
   Technology Innovation Committee (No. 20220810151038001) .
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NR 49
TC 0
Z9 0
U1 8
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 FEB
PY 2025
VL 156
AR 103285
DI 10.1016/j.habitatint.2025.103285
EA JAN 2025
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 T8P5W
UT WOS:001407560800001
DA 2025-04-22
ER

PT J
AU Zhai, W
   Hu, WY
   Yuan, ZH
   Li, YT
AF Zhai, Wei
   Hu, Wanyang
   Yuan, Zhihang
   Li, Yantong
TI Examining disaster resilience perception of social media users during
   the billion-dollar hurricanes
SO NATURAL HAZARDS
LA English
DT Article
DE Resilience perception; Social media; Disaster management; Text mining
ID COMMUNITY RESILIENCE; URBAN RESILIENCE; TWITTER; COMMUNICATION;
   EARTHQUAKE; FRAMEWORK; CITIES; WORLD; WOMEN
AB This study investigates disaster resilience during major hurricane events by analyzing Twitter data. The study focuses on resilience-relevant tweets during major hurricanes from 2013 to 2020 in the USA that caused over 1 billion dollars in losses. The study explores variations in resilience perceptions across different racial, gender, and political groups, as well as the sentiment expressed in tweets during different phases of the disaster. Additionally, the study examines the alignment of Twitter discussions with the actual phases of the disasters from a spatiotemporal perspective. The findings highlight disparities in resilience perception among racial and gender groups, emphasizing the need for targeted approaches to promote inclusivity and equity in disaster resilience efforts. The importance of early awareness and preparedness is underscored, suggesting the significance of investing in forecasting and early alert systems to reduce the impact of disasters.
C1 [Zhai, Wei] Univ Texas San Antonio, Sch Architecture & Planning, San Antonio, TX 78207 USA.
   [Hu, Wanyang; Yuan, Zhihang] City Univ Hong Kong, Dept Publ & Int Affairs, Hong Kong, Peoples R China.
   [Li, Yantong] Tianjin Univ, Sch Architecture, Tianjin, Peoples R China.
C3 University of Texas System; University of Texas at San Antonio (UTSA);
   City University of Hong Kong; Tianjin University
RP Hu, WY (corresponding author), City Univ Hong Kong, Dept Publ & Int Affairs, Hong Kong, Peoples R China.
EM wei.zhai@utsa.edu; wanyanhu@cityu.edu.hk; zhihayuan2-c@my.cityu.edu.hk;
   lyt2020@tju.edu.cn
RI Hu, Wanyang/HLW-3879-2023
OI YUAN, Zhihang/0000-0003-4776-4000
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NR 67
TC 4
Z9 4
U1 6
U2 56
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 2024
VL 120
IS 1
BP 701
EP 727
DI 10.1007/s11069-023-06206-4
EA OCT 2023
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 FP7X4
UT WOS:001080005700001
DA 2025-04-22
ER

PT J
AU Moser, S
   Meerow, S
   Arnott, J
   Jack-Scott, E
AF Moser, Susanne
   Meerow, Sara
   Arnott, James
   Jack-Scott, Emily
TI The turbulent world of resilience: interpretations and themes for
   transdisciplinary dialogue
SO CLIMATIC CHANGE
LA English
DT Article
ID CLIMATE-CHANGE; ECOLOGICAL RESILIENCE; URBAN RESILIENCE; RISK;
   SUSTAINABILITY; RESISTANCE; MULTIPLE; LESSONS; CITIES; ART
AB Resilience has experienced exponential growth in scholarship and practice over the past several decades. We conduct a meta-analysis of recent review papers on resilience from all relevant fields to distill key themes emanating from both research and practice. These themes reflect prevalent debates, trends and insights from the thousands of underlying papers. The seven themes are: 1) the distinction between resilience as a system trait, process, or outcome; 2) the importance of resilience as a strategy for dealing with uncertainty; 3) a shift from understanding resilience to active resilience building; 4) the incorporation of transformation into resilience; 5) the increasingly normative interpretation of resilience; 6) the growing emphasis on measuring and evaluating resilience; and 7) the mounting critiques of the resilience agenda demanding attention. We discuss each in detail and find that they help explain both why resilience has attracted widespread attention, but also why it is an increasingly contested concept. We offer several steps to engage in productive dialogue across differences in resilience interpretations and conclude that this interand transdisciplinary dialogue is the difficult and necessary work that must be done, if resilience scholarship and practice is to advance in productive ways in the future.
C1 [Moser, Susanne] Susanne Moser Res & Consulting, Hadley, MA 01035 USA.
   [Meerow, Sara] Arizona State Univ, Sch Geog Sci & Urban Planning, Tempe, AZ USA.
   [Arnott, James; Jack-Scott, Emily] Aspen Global Change Inst, Basalt, CO USA.
   [Arnott, James] Univ Michigan, Sch Environm & Sustainabil, Ann Arbor, MI 48109 USA.
C3 Arizona State University; Arizona State University-Tempe; University of
   Michigan System; University of Michigan
RP Moser, S (corresponding author), Susanne Moser Res & Consulting, Hadley, MA 01035 USA.
EM promundi@susannemoser.com
RI Meerow, Sara/J-8037-2019; Arnott, James/O-1029-2015
OI Meerow, Sara/0000-0002-6935-1832; Jack-Scott, Emily/0000-0002-8382-9812;
   Arnott, James/0000-0003-3989-6724; Moser, Susanne/0000-0001-6375-895X
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NR 71
TC 110
Z9 118
U1 7
U2 70
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 2019
VL 153
IS 1-2
BP 21
EP 40
DI 10.1007/s10584-018-2358-0
PG 20
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 HS3SR
UT WOS:000463783300003
DA 2025-04-22
ER

PT J
AU Li, LG
   Zhang, PY
   Li, X
AF Li, Liangang
   Zhang, Pingyu
   Li, Xin
TI Regional Economic Resilience of the Old Industrial Bases in ChinaA Case
   Study of Liaoning Province
SO SUSTAINABILITY
LA English
DT Article
DE regional economic resilience; influence factors; spatial econometric;
   old industrial bases in China; Liaoning Province
ID GROWTH; SHOCKS; CRISIS; EUROPE; IMPACT
AB Regional economic resilience provides a new perspective for explaining regional differences in response to recession shocks. This paper analyzed the regional economic resilience of Liaoning Province in China in terms of its resistance and recoverability dimensions from 1990 to 2015 and explored the determinants of regional economic resilience by constructing a spatial econometric model using panel data. There are three main findings. First, the level of regional economic resilience in Liaoning was low and its urban economy was more vulnerable to external shocks than that of the whole nation. Second, we found that factors such as the local governance arrangement, the regional innovation ability, and the level of economic diversification have significant positive effects on regional economic resilience. Factors such as the proportion of secondary industry and the GDP negatively affect regional economic resilience. Third, regional economic resilience demonstrates a spatial autocorrelation, and the improvement of economic resilience in the surrounding areas will lead to the decline of regional economic resilience.
C1 [Li, Liangang; Zhang, Pingyu] Chinese Acad Sci, Northeast Inst Geog & Agroecol, Changchun 130002, Jilin, Peoples R China.
   [Li, Liangang; Zhang, Pingyu] Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China.
   [Li, Xin] Nanjing Agr Univ, Coll Publ Adm, Nanjing 210095, Jiangsu, 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; Nanjing Agricultural University
RP Zhang, PY (corresponding author), Chinese Acad Sci, Northeast Inst Geog & Agroecol, Changchun 130002, Jilin, Peoples R China.; Zhang, PY (corresponding author), Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China.; Li, X (corresponding author), Nanjing Agr Univ, Coll Publ Adm, Nanjing 210095, Jiangsu, Peoples R China.
EM liliangang@iga.ac.cn; zhangpy@neigae.ac.cn; xinli@njau.edu.cn
FU National Natural Science Foundation of China [41571152, 41771179,
   41601124]
FX This work was supported by the National Natural Science Foundation of
   China (41571152, 41771179, 41601124).
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U1 33
U2 334
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB 1
PY 2019
VL 11
IS 3
AR 723
DI 10.3390/su11030723
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 HL7NY
UT WOS:000458929500168
OA Green Submitted, Green Published, gold
DA 2025-04-22
ER

PT J
AU Das, M
   Inácio, M
   Das, A
   Barcelo, D
   Pereira, P
AF Das, Manob
   Inacio, Miguel
   Das, Arijit
   Barcelo, Damia
   Pereira, Paulo
TI Mapping and assessment of ecosystem health in the Vilnius functional
   zone (Lithuania)
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Vilnius functional zone; Ecosystem health; Urban sprawl; Landscape
   fragmentation; Land abandonment
ID URBAN HEAT ISLANDS; LAND-USE CHANGE; COVER CHANGE; SERVICES; LANDSCAPE;
   CITY; CITIES; TRANSFORMATIONS; FRAGMENTATION; URBANIZATION
AB Urban expansion is a global phenomenon that impacts biodiversity loss and climate change. Soil sealing increases land degradation and the ecosystem services supply. This degradation also negatively affects ecosystem health, essential to make cities more sustainable and liveable. This work aims to study the ecosystem health spatiotemporal evolution (1990, 2000, 2006, 2012 and 2018) in the Vilnius (Lithuania) functional zone, using the vigour, organisation and resilience (VOR) method. The results showed that ecosystem health model validation was acceptable (r =-0.761; p < 0.01). Between 1990 and 2018, an increase (18.37 %) in ecosystem vigour was observed. The values were significantly higher in 2006, 2012 and 2018 than in 1990 and 2000. We identified a decrease between 1990 and 2018 regarding ecosystem organisation (7.15 %) and resilience (9.92 %). However, no significant differences between the years were identified. Ecosystem health decreased (11.49 %) between 1990 and 2018, mainly between 2012 and 2018. Ecosystem health values in 2018 were significantly lower than those identified in the previous years. The lowest values of ecosystem vigour, organisation and resilience were identified in the Vilnius city centre, while the highest was observed in the Vilnius functional zone. From 1990 to 2018, ecosystem vigour increased in some elderships located on the fringe of the studied area due to land abandonment and forest plantations. Simultaneously, a decrease in ecosystem organisation and resilience in the elderships located in Vilnius city centre was observed due to urban sprawl and the consequent landscape fragmentation. This negatively impacted ecosystem health, overshadowing the positive trend observed in ecosystem vigour. Different processes (e.g., urban sprawl, land abandonment, forest plantations) occurred in the Vilnius functional zone. It is essential to halt urban expansion and its adverse impacts on ecosystem health, city sustainability and liveability.
C1 [Das, Manob; Inacio, Miguel; Pereira, Paulo] Mykolas Romeris Univ, Environm Management Ctr, Ate g 20, LT-08303 Vilnius, Lithuania.
   [Das, Manob; Das, Arijit] Univ Gour Banga, Dept Geog, Malda, West Bengal, India.
   [Barcelo, Damia] Inst Environm Assessment & Water Res IDAEA, Water & Soil Qual Res Grp, Barcelona, Spain.
C3 Mykolas Romeris University; University of Gour Banga; Consejo Superior
   de Investigaciones Cientificas (CSIC); CSIC - Centro de Investigacion y
   Desarrollo Pascual Vila (CID-CSIC); CSIC - Instituto de Diagnostico
   Ambiental y Estudios del Agua (IDAEA)
RP Pereira, P (corresponding author), Mykolas Romeris Univ, Environm Management Ctr, Ate g 20, LT-08303 Vilnius, Lithuania.
EM pereiraub@gmail.com
RI Inácio, Miguel/ABF-5750-2020; Pereira, Paulo/O-1845-2016; Das, Dr.
   Manob/ADB-7695-2022; BARCELO, DAMIA/O-4558-2016
OI Das, Arijit/0000-0002-8088-2255; Inacio, Miguel/0000-0002-4917-1287
FU MApping and Forecasting Ecosystem Services in URban areas (MAFESUR)
   [P-MIP-23-426]; Lithuanian Research Council [P-MIP-23-426]
FX The work is supported by the project MApping and Forecasting Ecosystem
   Services in URban areas (MAFESUR) , funded by the Lithua- nian Research
   Council (Contract: Nr. P-MIP-23-426) .
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NR 142
TC 11
Z9 12
U1 11
U2 56
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 FEB 20
PY 2024
VL 912
AR 168891
DI 10.1016/j.scitotenv.2023.168891
EA DEC 2023
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA DN3Q9
UT WOS:001132690200001
PM 38042183
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Yang, Y
   Lin, ZB
   Xu, ZY
   Liu, SW
AF Yang, Yang
   Lin, Zibo
   Xu, Zhaoyi
   Liu, Shuwen
TI The impact of digital finance on regional economic resilience
SO PACIFIC-BASIN FINANCE JOURNAL
LA English
DT Article
DE Digital finance; Economic resilience; Innovation and entrepreneurship;
   Industrial structure upgrading; Financial efficiency
ID EUROPE; TECHNOLOGY; CRISIS
AB This paper introduces an innovative Urban Economic Resilience Index and uses data from 276 cities in the period from 2011 to 2021 to investigate the impact of digital finance on economic resilience. The empirical results reveal that digital finance significantly improves economic resilience and has a pronounced effect on various dimensions of resilience such as resistance and resilience ability, adaption and adjustment ability, and innovation and transformation ability. Furthermore, these findings demonstrate the robustness including the incorporation of a diverse sample of municipalities, alternative measures for digital finance and economic resilience, the inclusion of supplementary control variables, and the application of the instrumental variable methodology. Furthermore, digital finance improves economic resilience by injecting vitality into innovation and entrepreneurship, accelerating industrial structure upgrading and enhancing financial efficiency. Analyses also show that compared to eastern regions and regions with high levels of network coverage as well as economic development, digital finance is more likely to improve economic resilience. Overall, this study provides new insights into digital finance and economic resilience.
C1 [Yang, Yang; Lin, Zibo] Hunan Normal Univ, Business Sch, Changsha 410081, Peoples R China.
   [Xu, Zhaoyi] Tsinghua Univ, Sch Econ & Management, Beijing 100062, Peoples R China.
   [Liu, Shuwen] Hunan Univ Technol & Business, Coll Accounting, Changsha 410205, Peoples R China.
C3 Hunan Normal University; Tsinghua University; Hunan University of
   Technology & Business
RP Xu, ZY (corresponding author), Tsinghua Univ, Sch Econ & Management, Beijing 100062, Peoples R China.
EM xuzy@sem.tsinghua.edu.cn
RI Liu, Shuwen/JAC-5203-2023
FU Ministry of Education of the People ' s Republic of China [21YJC790140];
   National Natural Science Foundation of China [72103064]; Hunan
   Provincial Natural Science Foundation [2024JJ5280]; China Postdoctoral
   Science Foundation [2023M742021]; Education Department of Hunan Province
   [21B0569]
FX * Thanks for the " sustainability in the economic system and capital
   markets " conference support and expert suggestions.The paper is granted
   by Ministry of Education of the People ' s Republic of China
   (21YJC790140) , National Natural Science Foundation of China (72103064)
   , Hunan Provincial Natural Science Foundation (2024JJ5280) , China
   Postdoctoral Science Foundation (2023M742021) and Education Department
   of Hunan Province (21B0569) .
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NR 80
TC 13
Z9 13
U1 76
U2 126
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0927-538X
EI 1879-0585
J9 PAC-BASIN FINANC J
JI Pac.-Basin Financ. J.
PD JUN
PY 2024
VL 85
AR 102353
DI 10.1016/j.pacfin.2024.102353
EA APR 2024
PG 16
WC Business, Finance
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA SP9R4
UT WOS:001235777000001
DA 2025-04-22
ER

PT J
AU Hoffmann, S
   Deppisch, T
   Fontanari, M
   Traskevich, A
AF Hoffmann, Sebastian
   Deppisch, Theresa
   Fontanari, Martin
   Traskevich, Anastasia
TI Creating cooperative value for destination resilience
SO TOURISM MANAGEMENT PERSPECTIVES
LA English
DT Article
DE Corporate resilience; Crisis resilience; Destination resilience;
   Value-chain; Cooperative networks; Resilience-knowledge
ID BUSINESS RESILIENCE; TOURISM; FRAMEWORK; VULNERABILITY; COMMUNITY;
   SUSTAINABILITY; MANAGEMENT; ISLAND; TRANSFORMATION; COLLABORATION
AB The purpose of this study is to conceptualise a hotel-to-destination process of resilience building. The qualitative study describes managerial experiences of the impact of the COVID-19 pandemic. Problem-centred expert-in-terviews (21) were conducted with family-owned and chain-hotels in urban and rural destinations in Germany and Austria. This contribution is focused on networks at the destination level. It offers conclusions on the value-chain co-creation and cooperative business-models for destination resilience. The empirical findings emphasise the transformative role of stakeholder consolidation in resilient cooperative networks. This in turn highlights the integrative realignment of the value-chain of tourism enterprises in the destination. The research offers applied perspectives that elaborate on functional autonomy through regionally based cooperative business-models within the hotel-to-destination process of resilience development. The study thereby conceptualises resilience-knowledge within connected pillars for transformative tourism development: crisis experiences, resilience awareness, resilient value-chain co-creation, and locally based cooperation.
C1 [Hoffmann, Sebastian] Int Sch Management ISM, Mediapk 5C, D-50670 Cologne, Germany.
   [Deppisch, Theresa] Univ Vienna, Univ Ring 1, A-1010 Vienna, Austria.
   [Fontanari, Martin] Int Sch Management ISM, Mediapk 5C, D-50670 Cologne, Germany.
   [Traskevich, Anastasia] Belarusian State Econ Univ, Partizanski Ave 26, Minsk 220033, BELARUS.
C3 University of Vienna
RP Traskevich, A (corresponding author), Belarusian State Econ Univ, Partizanski Ave 26, Minsk 220033, BELARUS.
EM martin.fontanari@ism.de; anastasia.traskevich@akalem.de
RI Traskevich, Anastasia/ABC-7886-2021
OI Traskevich, Anastasia/0000-0001-5083-5397; Fontanari,
   Martin/0009-0005-3692-5499
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NR 108
TC 5
Z9 5
U1 19
U2 60
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2211-9736
EI 2211-9744
J9 TOUR MANAG PERSPECT
JI Tour. Manag. Perspect.
PD SEP
PY 2023
VL 48
AR 101160
DI 10.1016/j.tmp.2023.101160
EA JUL 2023
PG 12
WC Hospitality, Leisure, Sport & Tourism; Management
WE Social Science Citation Index (SSCI)
SC Social Sciences - Other Topics; Business & Economics
GA P5VF4
UT WOS:001051344600001
DA 2025-04-22
ER

PT J
AU Zhang, JF
   Yu, NX
   Zhang, JX
   Zhou, MJ
AF Zhang, Jinfeng
   Yu, Nancy Xiaonan
   Zhang, Jianxin
   Zhou, Mingjie
TI Sense of community and life satisfaction in Chinese older adults:
   Moderating roles of personal and partner resilience
SO JOURNAL OF COMMUNITY PSYCHOLOGY
LA English
DT Article
ID SCALE CD-RISC; HONG-KONG; EARTHQUAKE SURVIVORS; PSYCHOLOGICAL STATUS;
   VALIDATION; COUPLES; HEALTH; WOMEN; URBAN; MODEL
AB From an ecological perspective, this study aimed to examine the relationship between a sense of community and life satisfaction as moderated by personal resilience and partner resilience among Chinese older adults. Using a cross-sectional design, a total of 258 Chinese couples (age range 60-97 years) completed measures related to sense of community, resilience, and life satisfaction. The results showed that (a) sense of community was positively associated with life satisfaction after controlling for personal resilience, partner resilience, and other covariates, and (b) a three-way interaction between sense of community, personal resilience, and partner resilience emerged to predict life satisfaction. Specifically, the effect of sense of community on life satisfaction under the condition of low personal resilience-low partner resilience was weaker than it was under other conditions. Tailored interventions to enhance community resources, individual resilience, and couples' strengths are recommended to promote the life satisfaction of Chinese older adults.
C1 [Zhang, Jinfeng; Zhang, Jianxin; Zhou, Mingjie] Chinese Acad Sci, Inst Psychol, Beijing, Peoples R China.
   [Zhang, Jinfeng; Yu, Nancy Xiaonan] City Univ Hong Kong, Dept Appl Social Sci, Tat Chee Ave, Kowloon, Hong Kong, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Psychology, CAS; City
   University of Hong Kong
RP Zhou, MJ (corresponding author), Chinese Acad Sci, Inst Psychol, Beijing, Peoples R China.; Yu, NX (corresponding author), City Univ Hong Kong, Dept Appl Social Sci, Tat Chee Ave, Kowloon, Hong Kong, Peoples R China.
EM nancy.yu@cityu.edu.hk
RI Yu, Nancy/K-8450-2015
FU CAS Key Laboratory of Mental Health, Institute of Psychology, Chinese
   Academy of Sciences
FX This research was supported by CAS Key Laboratory of Mental Health,
   Institute of Psychology, Chinese Academy of Sciences. The sponsor had no
   further role in study design, in the collection, analysis, and
   interpretation of data, in the writing of the report, and in the
   decision to submit the paper for publication. Neither this institution
   nor the authors has any conflicts of interest with this manuscript.
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NR 40
TC 33
Z9 37
U1 3
U2 53
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 2017
VL 45
IS 5
BP 577
EP 586
DI 10.1002/jcop.21878
PG 10
WC Public, Environmental & Occupational Health; Psychology,
   Multidisciplinary; Social Work
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Psychology; Social Work
GA EX5FC
UT WOS:000403262600001
DA 2025-04-22
ER

PT J
AU Hosseini, Y
   Mohammadi, RK
   Yang, TY
AF Hosseini, Yaser
   Mohammadi, Reza Karami
   Yang, Tony Y.
TI Resource-based seismic resilience optimization of the blocked urban road
   network in emergency response phase considering uncertainties
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Debris evacuation; Emergency response; Pathway blockage; Resilience
   optimization; Seismic resilience; Urban road network restoration
ID TRANSPORTATION NETWORK; GROUND-MOTION; DEBRIS; BUILDINGS; COMMUNITY;
   MODEL; ACCESSIBILITY; EARTHQUAKES; SIMULATION; ALGORITHM
AB For disaster management organizations, determining the required resources for pre-positioning and optimal resources allocation schedules are important problems in the preparation planning stage for emergency restoring blocked urban road networks. This study bridges the gap between seismic simulation of network obstruction due to roadside collapsed buildings, resource allocation scheduling, and Bruneau's proposed resilience index to assessment the required resources and optimal restoration planning. There are uncertainties in different parts of network restoration planning such as uncertainty in earthquake magnitude, fault rupture location, seismic intensity, building collapse, debris width, debris volume, and restoration time. Uncertainty in a part affects the realization of the next dependent part, therefore integrated framework is needed for realistic restoration planning that has not been addressed in the literature. In this paper, uncertainties are modeled based on probabilistic models to estimate the expected value of path restoration time. Topology-Demand base network functionality index is proposed to evaluate network performance after the earthquake. To optimize resilience, an algorithm based on Simulated Annealing is designed which determines the maximum required resources and optimal task sequences. The proposed framework is showcased by a road network in Tehran metropolis. Equivalent functionality curves are introduced to compare the effects of resource number on network emergency resilience. The optimization results indicate the six resources restore the network within two defined target times. Also, the results reveal that the effect of resource number on reducing the completion time decreases with increasing resources.
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 hoseini, yaser/AAD-8918-2022; Mohammadi, Reza/I-3421-2019
OI Karami Mohammadi, Reza/0000-0003-0077-6434
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NR 103
TC 24
Z9 25
U1 33
U2 114
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 103496
DI 10.1016/j.ijdrr.2022.103496
EA DEC 2022
PG 26
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA 7R6NF
UT WOS:000910186900001
DA 2025-04-22
ER

PT J
AU Sexton, AN
   Lawhorn, KA
AF Sexton, Aaron N.
   Lawhorn, Kane A.
TI Best practices for designing resilient urban ecosystems through native
   species restoration
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Urban ecosystems; Ecological resiliency; Ecosystem restoration;
   Urbanization; Disturbance regimes; Habitat connectivity
ID ECOLOGICAL RESTORATION; BIODIVERSITY; FRAMEWORK; DIVERSITY; HABITAT
AB Urban ecosystems provide a range of services that will become increasingly important in the coming decades as urban populations grow and urban areas intensify. Restoration and maintenance of these ecosystems is vital to the promotion of biodiversity conservation, human-nature interactions, and buffering against the effects of climate change. It is therefore crucial we design these urban ecosystems to be resilient to both climate change and urban stressors. The novelty of urban ecosystems, and their unique constraints and stressors, means that they require unique management and design practices than those used for conventional restorations in natural environments. Additionally, these novel urban ecosystems lack an analogous ecosystem to which comparisons can be made, which makes quantifying restoration success difficult. As such, ecological resilience-the maintenance of rich communities dominated by native species-becomes a more meaningful metric of success for urban restorations. Here, we propose a suite of management strategies designed to promote urban ecological resilience. Specifically, we focus on species pool selection, genetic input, landscape connectivity, and management regimes. While these considerations are important in all ecosystem restorations, these processes play an outsized role in urban ecosystems due to their unique pressures including heightened invasion pressure, depleted native seed pools, high degrees of landscape fragmentation and socio-economic constraints. By focusing on ecosystem resiliency, urban habitat restorations can be maintained with decreased long-term costs, increased biodiversity conservation, and improved human health and well-being.
C1 [Sexton, Aaron N.] Tech Univ Munich, Sch Life Sci, Urban Prod Ecosyst, Freising Weihenstephan, Germany.
   [Lawhorn, Kane A.] North Carolina State Univ, Dept Entomol & Plant Pathol, Raleigh, NC USA.
   [Sexton, Aaron N.] Tech Univ Munich TUM, Munich, Germany.
C3 Technical University of Munich; North Carolina State University;
   Technical University of Munich
RP Sexton, AN (corresponding author), Tech Univ Munich, Sch Life Sci, Urban Prod Ecosyst, Freising Weihenstephan, Germany.; Sexton, AN (corresponding author), Tech Univ Munich TUM, Munich, Germany.
EM aaron.niles.sexton@gmail.com
RI Lawhorn, Kane/HTP-6993-2023
OI Sexton, Aaron/0000-0002-8926-3872
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NR 66
TC 0
Z9 0
U1 13
U2 13
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 128657
DI 10.1016/j.ufug.2024.128657
EA JAN 2025
PG 7
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA T0Q4U
UT WOS:001402160400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Fröhlich, K
   Hassink, R
AF Froehlich, Klaas
   Hassink, Robert
TI Regional resilience: a stretched concept?
SO EUROPEAN PLANNING STUDIES
LA English
DT Article
DE Regional resilience; resilience; conceptual stretching; bibliometric
   analysis
ID ECONOMIC RESILIENCE; ADAPTATION; SCIENCE; POLICY; WEB; INOPERABILITY;
   ADAPTABILITY; EARTHQUAKE; SYSTEMS; IMPACT
AB Regional resilience has been criticized in the literature for being fuzzy. Based on that criticism one could expect it to suffer from conceptual stretching, that is that authors mean different things when they write about regional resilience. In this paper for the first time, a bibliometric analysis is presented to tackle the issue of fuzziness and stretching concerning regional resilience. With the help of that analysis, we identified three groups of research on regional resilience, urban ecology and policies (red), economic dynamics and regional evolutionary perspectives (green) and crisis management and engineering/modelling (blue). We also identified the key papers cited in these groups. In a second step, our qualitative analysis reveals that the divide between the red and green groups is not large and that the blue group is relatively isolated. Overall, the concept of regional resilience seems to be less stretched than we expected on the basis of the criticism expressed in the literature.
C1 [Froehlich, Klaas; Hassink, Robert] Univ Kiel, Dept Geog, Kiel, Germany.
C3 University of Kiel
RP Hassink, R (corresponding author), Univ Kiel, Dept Geog, Kiel, Germany.
EM hassink@geographie.uni-kiel.de
RI Hassink, Robert/U-5311-2019
OI Hassink, Robert/0000-0001-7524-4577
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PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0965-4313
EI 1469-5944
J9 EUR PLAN STUD
JI Eur. Plan. Stud.
PY 2018
VL 26
IS 9
SI SI
BP 1763
EP 1778
DI 10.1080/09654313.2018.1494137
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 GQ4KA
UT WOS:000441639200005
DA 2025-04-22
ER

PT J
AU Haupt, W
   Eckersley, P
   Irmisch, J
   Kern, K
AF Haupt, Wolfgang
   Eckersley, Peter
   Irmisch, Janne
   Kern, Kristine
TI How do local factors shape transformation pathways towards
   climate-neutral and resilient cities?
SO EUROPEAN PLANNING STUDIES
LA English
DT Article
DE Historic cities; university cities; industrial cities; local climate
   governance; sustainable development; green cities
ID CULTURAL-HERITAGE; WORLD HERITAGE; SUSTAINABLE DEVELOPMENT; URBAN
   SUSTAINABILITY; GREEN CITY; UNESCO; GOVERNANCE; TOURISM
AB We examine how local socioeconomic, institutional and political factors shape climate transformation pathways in 23 mid-sized German cities. We group our cities into three types: industrial cities (which may have experienced recent structural change), historic cities (in which a significant proportion of the buildings or landscape is under monument protection) and university cities (in which academic or research institutions play a major role in the local community). Drawing on document analysis and expert interviews, we find that budgetary constraints, weaker civil societies and lower levels of political support result in unfavourable structural conditions for successful transformations in industrial cities. Historic cities have often only limited options to change their built environments, but many have identified climate change as a major threat to their built heritage and are therefore keen to take action in climate adaptation. Lastly, university cities are further along the transformation pathways than the other city types, largely due to having more favourable economic conditions as well as greater support from civil society, politics and the local research community.
C1 [Haupt, Wolfgang; Eckersley, Peter; Irmisch, Janne; Kern, Kristine] Leibniz Inst Res Soc & Space, Res Grp Urban Sustainabil Transformat, Erkner, Germany.
   [Eckersley, Peter] Nottingham Trent Univ, Dept Accounting & Finance, Nottingham, Notts, England.
   [Kern, Kristine] Abo Akad Univ, Dept Publ Adm, Turku, Finland.
C3 Leibniz Association; Leibniz Institut fur Raumbezogene Sozialforschung
   (IRS); Nottingham Trent University; Abo Akademi University
RP Haupt, W (corresponding author), Leibniz Inst Res Soc & Space, Res Grp Urban Sustainabil Transformat, Erkner, Germany.
EM wolfgang.haupt@leibniz-irs.de
RI Haupt, Wolfgang/AET-1139-2022; Eckersley, Peter/I-9980-2019
OI Eckersley, Peter/0000-0001-9048-8529; Kern,
   Kristine/0000-0001-9923-4621; Haupt, Wolfgang/0000-0002-1042-2106
FU Bundesministerium f?r Bildung und Forschung;  [FKZ 01LR1709B];  [FKZ
   01LR1709B1]
FX This work was supported by Bundesministerium f?r Bildung und Forschung
   [grant number FKZ 01LR1709B,FKZ 01LR1709B1].
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U2 23
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0965-4313
EI 1469-5944
J9 EUR PLAN STUD
JI Eur. Plan. Stud.
PD SEP 2
PY 2023
VL 31
IS 9
BP 1903
EP 1925
DI 10.1080/09654313.2022.2147394
EA NOV 2022
PG 23
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 P6IN1
UT WOS:000889197700001
OA hybrid, Green Published, Green Accepted
DA 2025-04-22
ER

PT J
AU Melendez, A
   Caballero-Russi, D
   Soto, MG
   Giraldo, LF
AF Melendez, Amanda
   Caballero-Russi, David
   Soto, Mariantonieta Gutierrez
   Giraldo, Luis Felipe
TI Computational models of community resilience
SO NATURAL HAZARDS
LA English
DT Review
DE Community resilience; Game theory; Agent-based modeling; Computational
   models; Interdependencies
ID GAME-THEORY; INFRASTRUCTURE RESILIENCE; DECISION-SUPPORT; LAND-USE;
   FRAMEWORK; URBAN; SIMULATION; SYSTEMS; METRICS; RISK
AB Protecting civil infrastructure from natural and man-made hazards is vital. Understanding the impact of these hazards helps allocate resources efficiently. Researchers have recently proposed static and dynamic computational models for community resilience analyses to evaluate a community's ability to recover after a disruptive event. Yet, these frameworks still need to adequately address community interdependencies and consider the impact of decision-making in modeling. This paper presents a state-of-the-art review of computational methods to model community resilience, focusing on the last 10 years. It addresses critical terminology, community interdependencies, and current resilience guides within community resilience comprehension and discusses static and dynamic computational models, including probabilistic modeling in uncertain environments, rating models for community resilience assessment, optimization-based modeling for resilient community design, game theory, agent-based, and probabilistic dynamical modeling. This paper presents key findings of promising research for future directions in the community resilience field.
C1 [Melendez, Amanda] Univ Kentucky, Dept Civil Engn, 161 Raymond Bldg, Lexington, KY 40506 USA.
   [Caballero-Russi, David] Penn State Univ, Dept Civil & Environm Engn, University Pk, PA 16802 USA.
   [Soto, Mariantonieta Gutierrez] Penn State Univ, Sch Engn Design Technol & Profess Programs, University Pk, PA 16802 USA.
   [Giraldo, Luis Felipe] Univ los Andes, Dept Elect & Elect Engn, Bogota, Colombia.
C3 University of Kentucky; 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; Penn State Behrend; Pennsylvania State University -
   University Park; Universidad de los Andes (Colombia)
RP Soto, MG (corresponding author), Penn State Univ, Sch Engn Design Technol & Profess Programs, University Pk, PA 16802 USA.
EM mvg5899@psu.edu
RI Giraldo, Luis/AAV-7534-2020; Gutierrez Soto, Mariantonieta/GSM-7926-2022
OI Gutierrez Soto, Mariantonieta/0000-0003-1609-5801; Caballero Russi,
   David Eduardo/0000-0002-8250-5605; Melendez, Amanda/0000-0002-3382-2532
FU Department of Civil Engineering at the University of Kentucky
FX The first author extends her sincere appreciation to the Lyman T.
   Johnson Fellowship given by the Department of Civil Engineering at the
   University of Kentucky.
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NR 119
TC 21
Z9 21
U1 73
U2 212
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 2022
VL 111
IS 2
BP 1121
EP 1152
DI 10.1007/s11069-021-05118-5
EA NOV 2021
PG 32
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 ZZ5RY
UT WOS:000722994900001
OA Bronze
DA 2025-04-22
ER

PT J
AU Ferrari, M
AF Ferrari, Mattia
TI Reflexive Governance for Infrastructure Resilience and Sustainability
SO SUSTAINABILITY
LA English
DT Article
DE reflexive governance; climate change; infrastructure; urban resilience;
   sustainability
ID TRANSITION; RETHINKING; MANAGEMENT; POLICY; SCALE
AB Infrastructure development is one of the areas most in need of climate-resilient and friendly investments. The COVID-19 pandemic will increase government spending in this direction. This paper demonstrates how the principles of reflexive governance are key to unlock the full potential of such investments. By establishing an adaptive and redundant institutional capacity in the provision of public services, reflexive governance can enable a successful path towards climate resilience and sustainability.
C1 [Ferrari, Mattia] European Inst Innovat Technol eV, D-73525 Schwabisch Gmund, Germany.
   [Ferrari, Mattia] Azerbaijan State Univ Econ UNEC, Ctr Studies European Econ AIM, Baku 1001, Azerbaijan.
C3 Ministry of Education of Azerbaijan Republic; Azerbaijan State
   University of Economics (UNEC)
RP Ferrari, M (corresponding author), European Inst Innovat Technol eV, D-73525 Schwabisch Gmund, Germany.; Ferrari, M (corresponding author), Azerbaijan State Univ Econ UNEC, Ctr Studies European Econ AIM, Baku 1001, Azerbaijan.
EM mat.ferrari2@gmail.com
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NR 59
TC 10
Z9 10
U1 2
U2 35
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2020
VL 12
IS 23
AR 10224
DI 10.3390/su122310224
PG 8
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA PD7RQ
UT WOS:000597877900001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Sun, KQ
   Xiao, HQ
   Pan, JP
   Liu, YL
AF Sun, Kaiqi
   Xiao, Huangqing
   Pan, Jiuping
   Liu, Yilu
TI VSC-HVDC Interties for Urban Power Grid Enhancement
SO IEEE TRANSACTIONS ON POWER SYSTEMS
LA English
DT Article
DE Power grids; Power conversion; Converters; Power cables; Load flow;
   Substations; Resilience; VSC-HVDC intertie; urban power grid; adaptive
   emergency control strategy; capacity enhancement; resilience enhancement
ID STATCOM; SVC
AB Urban power grids are facing many operational and expansion challenges to meet further demand growth and increased reliability requirements. Advanced transmission technologies have been considered by the electric utilities to effectively increase the utilization of existing infrastructure and operational flexibility. The focus of this paper is on VSC-HVDC technologies for urban power grid enhancement and modernization. First, a potential technical scheme is proposed for converting an existing AC circuit to DC operation, which could boost the power transfer capability of the critical transmission corridor and increase network operational flexibility. Second, this paper proposes three operation modes for the VSC-HVDC interties in urban power grids corresponding to normal, emergency and island operating conditions, respectively. An integrated, adaptive emergency control strategy (AEC) is proposed that can enable adaptive power flow responses of the VSC-HVDC intertie under varying system operating conditions and critical contingencies. The flexibility and effectiveness of the proposed operational principles of urban VSC-HVDC intertie and the corresponding control strategies are verified in PSCAD/EMTDC using a realistic urban power grid in China.
C1 [Sun, Kaiqi; Liu, Yilu] Univ Tennessee, Dept Elect Engn & Comp Sci, Knoxville, TN 37919 USA.
   [Xiao, Huangqing] South China Univ Technol, Sch Elect Power Engn, Guangzhou 510641, Peoples R China.
   [Pan, Jiuping] Hitachi ABB Power Grids AG, Power Grids Res, Raleigh, NC 27606 USA.
C3 University of Tennessee System; University of Tennessee Knoxville; South
   China University of Technology
RP Xiao, HQ (corresponding author), South China Univ Technol, Sch Elect Power Engn, Guangzhou 510641, Peoples R China.
EM ksun8@utk.edu; xiaohq@scut.edu.cn; jiuping.pan@hitachi-powergrids.com;
   liu@utk.edu
RI sun, kaiqi/ABK-2019-2022; Xiao, Huangqing/ABH-2904-2020
OI Xiao, Huangqing/0000-0003-3108-8909; Pan, Jiuping/0000-0001-7547-1200;
   sun, kaiqi/0000-0002-5992-0309; Liu, Yilu/0000-0002-6707-9062
FU Engineering Research Center Program of the National Science Foundation;
   U.S. Department of Energy under NSF [EEC-1041877]; CURENT Industry
   Partnership Program
FX This work was supported in part by the Engineering Research Center
   Program of the National Science Foundation and the U.S. Department of
   Energy under NSF Award Number EEC-1041877 and in part by CURENT Industry
   Partnership Program. Paper no. TPWRS-01611-2020.
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NR 32
TC 40
Z9 41
U1 4
U2 26
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 0885-8950
EI 1558-0679
J9 IEEE T POWER SYST
JI IEEE Trans. Power Syst.
PD SEP
PY 2021
VL 36
IS 5
BP 4745
EP 4753
DI 10.1109/TPWRS.2021.3067199
PG 9
WC Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA UD0EX
UT WOS:000686891700081
OA Green Submitted, Bronze
DA 2025-04-22
ER

PT J
AU Hatala, AR
   Morton, D
   Njeze, C
   Bird-Naytowhow, K
   Pearl, T
AF Hatala, Andrew R.
   Morton, Darrien
   Njeze, Chinyere
   Bird-Naytowhow, Kelley
   Pearl, Tamara
TI Re-imagining miyo-wicehtowin: Human-nature relations,
   land-making, and wellness among Indigenous youth in a Canadian urban
   context
SO SOCIAL SCIENCE & MEDICINE
LA English
DT Article
DE Indigenous youth; Land; Meaning-making; Environmental repossession;
   Agency; Resilience; Saskatchewan; Community-based research
ID 1ST NATION; HEALTH; PLACE; COMMUNITY; PERSPECTIVES; PERCEPTIONS;
   ENVIRONMENT; RESILIENCE; INEQUITY; CULTURE
AB Relationships to land and nature have long been recognized globally as a central Indigenous determinant of health. As more Indigenous peoples migrate to larger urban centers, it is crucial to better understand how these relationships are maintained or function within urban spaces. This article outlines the results of a year-long collaborative study that qualitatively explored Indigenous young peoples' connections between "land," nature, and wellness in an urban Canadian context. Thirty-eight semi-structured interviews were conducted with 28 Cree and Metis Indigenous youth living within Saskatoon, Saskatchewan. A strength based analysis focused on re-imagining miyo-wicehtowin; that is, the processes of youths' self-determination and agency that build positive human-nature relationships and enact "land-making" amidst their urban spaces. This research critically engages environmental dispossession and repossession to more readily consider decolonizing land-based approaches to health and wellness among urban contexts. Future empirical and methodological directions for exploring human-nature relationships in urban health research are also offered.
C1 [Hatala, Andrew R.; Morton, Darrien; Njeze, Chinyere; Bird-Naytowhow, Kelley] Univ Manitoba, Max Rady Coll Med, Dept Community Hlth Sci, Room S108J,Med Serv Bldg,750 Bannatyne Ave, Winnipeg, MB R3E 0W3, Canada.
   [Pearl, Tamara] Univ Saskatchewan, Coll Law, Wiyasiwewin Mikiwahp Native Law Ctr, Saskatoon, SK, Canada.
C3 University of Manitoba; University of Saskatchewan
RP Hatala, AR (corresponding author), Univ Manitoba, Max Rady Coll Med, 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
OI Hatala, Andrew/0000-0002-8063-5852
FU Urban Aboriginal Knowledge Network and Social Sciences and Humanities
   Research Council [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 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.
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NR 72
TC 49
Z9 60
U1 0
U2 13
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0277-9536
J9 SOC SCI MED
JI Soc. Sci. Med.
PD JUN
PY 2019
VL 230
BP 122
EP 130
DI 10.1016/j.socscimed.2019.04.012
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 IB5WO
UT WOS:000470342400013
PM 31009878
DA 2025-04-22
ER

PT J
AU Johannessen, A
   Rosemarin, A
   Thomalla, F
   Swartling, ÅG
   Stenström, TA
   Vulturius, G
AF Johannessen, Ase
   Rosemarin, Arno
   Thomalla, Frank
   Swartling, Asa Gerger
   Stenstrom, Thor Axel
   Vulturius, Gregor
TI Strategies for building resilience to hazards in water, sanitation and
   hygiene (WASH) systems: The role of public private partnerships
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Public private partnerships; WASH; Water; Sanitation; Hygiene; Disaster
   risk reduction; Resilience; River basin; Urban; Social learning
ID RIVER-BASIN MANAGEMENT; CLIMATE-CHANGE; SCHELDT ESTUARY; EUROPE;
   PARTICIPATION; IMPACTS; FLOODS; HEALTH
AB The aim of this paper is to enhance understanding of how the resilience of water, sanitation and hygiene (WASH) systems to hazards can be improved. In turn, this aims to inform different strategies for public and private partnerships (PPPs). In a new approach, to acknowledge the multi levelled nature of resilience; risk at the relevant levels are taken into account, (regional/river basin, urban area, and individual). For these levels, we first describe the different components of risk, vulnerability and resilience of the WASH system that influence people's exposure to hazards. We illustrate these components using examples from case studies in the literature. Using a social learning lens - a crucial ingredient of resilience - we examine opportunities for reducing risks through improving public-private engagement. These are presented as strategies which could guide investment decisions: As pressures from climate change and development add up, businesses must become aware of the risks involved in operating and investing without considering ecosystem health, both in terms of the services they provide for mitigating floods and droughts, as well as in terms of the development approaches that define how ecosystems are managed (e.g. "making space" for, rather than controlling water). There is a need to develop an institutional culture that strives towards greener and more resilient urban environments with the help of various quality assurance methods. Partnerships must reach the poorer customer base, encourage informal small entrepreneurs, and boost financial mechanisms (e.g, micro insurance, micro finance) to support the most vulnerable in society. (C) 2014 The Authors. Published by Elsevier Ltd.
C1 [Johannessen, Ase; Rosemarin, Arno; Swartling, Asa Gerger; Vulturius, Gregor] Stockholm Environm Inst, Stockholm, Sweden.
   [Thomalla, Frank] Stockholm Environm Inst, Bangkok, Thailand.
   [Stenstrom, Thor Axel] Durhan Univ Technol, Inst Water & Wastewater Technol, SARChI, Durban, South Africa.
   [Swartling, Asa Gerger] Stockholm Resilience Ctr, Stockholm, Sweden.
C3 Stockholm Environment Institute; Durban University of Technology;
   Stockholm University
RP Johannessen, A (corresponding author), Stockholm Environm Inst, Stockholm, Sweden.
EM ase.johannessen@sei-international.org
RI Rosemarin, Arno/AAY-3071-2021; Gerger Swartling, Asa/J-1420-2018
OI Vulturius, Gregor/0000-0001-8899-2267; Johannessen,
   Ase/0000-0002-8752-5496; Gerger Swartling, Asa/0000-0003-3616-7323
FU Swedish Civil Contingencies Agency (MSB) [MSB: 211-946]
FX The authors would like to thank the Swedish Civil Contingencies Agency
   (MSB) (Grant number MSB: 211-946) for providing the funding for this
   research. We are grateful to Lisa Segnestam and Guoyi Flan for valuable
   discussions on the conceptual framework presented in Section 3. We are
   also very grateful to two anonymous external reviewers for their
   constructive comments, which has helped to improve the manuscript. We
   also would like to thank Tom Gill for a final language review and edit
   of the manuscript. We also would like to thank Magnus Enell and Bjorn
   von Euler for initial discussions and input from a private sector
   philanthropy perspective.
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   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
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OA hybrid
DA 2025-04-22
ER

PT J
AU Chu, E
AF Chu, Eric
TI The political economy of urban climate adaptation and development
   planning in Surat, India
SO ENVIRONMENT AND PLANNING C-GOVERNMENT AND POLICY
LA English
DT Article
DE climate change adaptation; development; urban planning; governance;
   India
ID DEVELOPMENT POLICY; HUMAN SECURITY; CITIES; IMPLEMENTATION; VARIABILITY;
   EXPERIENCES; RESILIENCE; GOVERNMENT; CAPACITY; INDUSTRY
AB This paper argues for a political economic approach to understanding climate change adaptation and development planning in an urban context. Based on field research conducted in Surat, India, across a period of two years, I illustrate how climate adaptation is rooted in preexisting and contextually specific urban political relationships that can be traced through the city's developmental history. Through assessing Surat's experience with recent industrialization, episodes of natural disasters, to more recent engagement with the Asian Cities Climate Change Resilience Network, I highlight how adaptation planning, as well as how adaptation is integrated into urban development planning, occurs through processes of prioritizing adaptation against development needs and implementing options that are cocreated among public and civic actors. This case empirically shows how adaptation is mainstreamed into urban development planning, illustrates the trade-offs associated with how different urban actors plan and implement adaptation in the context of rapid industrialization, and assesses how internationally funded adaptation programs are operationalized in the context of local social and political realities.
C1 [Chu, Eric] Univ Amsterdam, Dept Geog Planning & Int Dev Studies, NL-1012 WX Amsterdam, Netherlands.
C3 University of Amsterdam
RP Chu, E (corresponding author), Univ Amsterdam, Dept Geog Planning & Int Dev Studies, NL-1012 WX Amsterdam, Netherlands.
EM E.K.Chu@uva.nl
RI Chu, Eric/O-6464-2015
OI Chu, Eric/0000-0002-5648-6615
FU Department of Urban Studies and Planning at the Massachusetts Institute
   of Technology (MIT); Program on Environmental Governance and
   Sustainability at Center for International Studies at the Massachusetts
   Institute of Technology (MIT); Indian Council for Research on
   International Economic Relations (ICRIER) in New Delhi, India; U.S.
   Institute for International Education's National Security Education
   Program
FX The author (s) disclosed receipt of the following financial support for
   the research, authorship, and/or publication of this article: Financial
   support came from the Department of Urban Studies and Planning and the
   Program on Environmental Governance and Sustainability at Center for
   International Studies, both at the Massachusetts Institute of Technology
   (MIT), the Indian Council for Research on International Economic
   Relations (ICRIER) in New Delhi, India, and the U.S. Institute for
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WC Environmental Studies; Public Administration
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Public Administration
GA DF4FM
UT WOS:000371303300005
OA Green Published
DA 2025-04-22
ER

PT J
AU Bonnet, N
AF Bonnet, Nicolas
TI The Functional Resilience of an Innovative Cluster in the Montpellier
   Urban Area (South of France)
SO EUROPEAN PLANNING STUDIES
LA English
DT Article
ID INDUSTRY
AB The aim of this article is to evaluate the resilience of territories through a study of the morphology of local firms' networks: in this case, in the Montpellier urban area. Two types of data collection were used for the analysis: a statistical survey of a sample of firms and a list of shared patents pending. The first step of the approach enabled us to analyse the motives that led firms to develop innovative partnership. In the second step, we modelled the networks, using graph theory, over different periods of time. Ultimately, the analysis revealed pivotal firms within the network. These firms played an important role in the resilience and spatial organization of the territory. We found that the geographical concentration or dispersal of the firms thus continued under certain economic conditions.
C1 UCS, INRS, Montreal, PQ H2X 1E3, Canada.
C3 University of Quebec; Institut national de la recherche scientifique
   (INRS)
RP Bonnet, N (corresponding author), UCS, INRS, 385 Sherbrooke St E, Montreal, PQ H2X 1E3, Canada.
EM nicolas_bonnet@ucs.inrs.ca
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   [Anonymous], 2000, EC RESEAUX
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NR 26
TC 9
Z9 11
U1 1
U2 24
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0965-4313
EI 1469-5944
J9 EUR PLAN STUD
JI Eur. Plan. Stud.
PY 2010
VL 18
IS 9
BP 1345
EP 1363
AR PII 925286320
DI 10.1080/09654313.2010.492580
PG 19
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 644HJ
UT WOS:000281364400001
DA 2025-04-22
ER

PT J
AU Lu, QC
AF Lu, Qing-Chang
TI Modeling network resilience of rail transit under operational incidents
SO TRANSPORTATION RESEARCH PART A-POLICY AND PRACTICE
LA English
DT Article
DE Network resilience; Urban rail transit; Operational incidents; Duration
   time; Critical stations
ID VULNERABILITY ANALYSIS; TRANSPORT NETWORK; ROBUSTNESS; INDICATORS;
   TOPOLOGY; CAPACITY; RANKING; SYSTEMS; LINKS
AB In the context of urban rail network analysis, most studies have focused on vulnerability analysis developing methodologies to measure consequences on network performance under destroy events. Few works are reported addressing the modeling of rail transit network resilience under operational incidents which could be more important analyzing the network performance changes under daily operations. This study demonstrates a resilience approach for rail transit network under daily operational incidents. Integrating the network topological and passenger volume characteristics, this approach explicitly accounts for the impacts of accumulative affected passengers quantifying the varying resilience of rail network with time under different incidents. The proposed methodology was applied to Shanghai Metro Network in Shanghai, China. Results show that critical stations are identified differently depending on duration time of different incidents and characteristics of the failed stations, and stations on network legs could be more important than those with redundant rail alternatives. Conclusions of this research would also have practical implications for the management and decision making of rail transit network under daily operational incidents.
C1 [Lu, Qing-Chang] Changan Univ, Sch Elect & Control Engn, Nan Er Huan Rd, Xian 710064, Shaanxi, Peoples R China.
C3 Chang'an University
RP Lu, QC (corresponding author), Changan Univ, Sch Elect & Control Engn, Nan Er Huan Rd, Xian 710064, Shaanxi, Peoples R China.
EM qclu@sjtu.edu.cn
FU National Natural Science Foundation of China [51408356]
FX This research is funded by the National Natural Science Foundation of
   China (51408356) and this support is gratefully acknowledged. The author
   would like to thank the Shanghai Metro for offering access to Shanghai
   rail transit data. The constructive comments and suggestions of two
   anonymous referees are appreciated.
CR Angeloudis P, 2006, PHYSICA A, V367, P553, DOI 10.1016/j.physa.2005.11.007
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   Wang ZR, 2015, J INFRASTRUCT SYST, V21, DOI 10.1061/(ASCE)IS.1943-555X.0000232
   Zhang X, 2015, J TRANSP GEOGR, V46, P35, DOI 10.1016/j.jtrangeo.2015.05.006
NR 30
TC 132
Z9 147
U1 47
U2 364
PU PERGAMON-ELSEVIER SCIENCE LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, ENGLAND
SN 0965-8564
EI 1879-2375
J9 TRANSPORT RES A-POL
JI Transp. Res. Pt. A-Policy Pract.
PD NOV
PY 2018
VL 117
BP 227
EP 237
DI 10.1016/j.tra.2018.08.015
PG 11
WC Economics; Transportation; Transportation Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Business & Economics; Transportation
GA GV5OG
UT WOS:000446151200018
DA 2025-04-22
ER

PT J
AU Maring, EF
   Koblinsky, SA
AF Maring, Elisabeth F.
   Koblinsky, Sally A.
TI Teachers' Challenges, Strategies, and Support Needs in Schools Affected
   by Community Violence: A Qualitative Study
SO JOURNAL OF SCHOOL HEALTH
LA English
DT Article
DE violence; risk behavior; safety and emergency care; stress; resilience
ID AFRICAN-AMERICANS; SOCIAL SUPPORT; LOW-INCOME; PREVENTION; EXPOSURE;
   CHILDREN; INTERVENTIONS; PERCEPTIONS; RESILIENCE; BEHAVIORS
AB BACKGROUND Exposure to community violence compromises teacher effectiveness, student learning, and socioemotional well-being. This study examined the challenges, strategies, and support needs of teachers in urban schools affected by high levels of community violence. METHODS Twenty teachers from 3 urban middle schools with predominantly low-income African American students completed open-ended interviews. Selected schools were in geographic areas with high violent crime levels. RESULTS Consistent with an ecological risk and resilience framework, findings revealed that teachers experienced challenges and adopted coping strategies at the individual, family, school, and community levels. Teachers employed a number of strategies associated with resilience, such as prayer and seeking support from family and colleagues, but also engaged in some avoidant strategies, such as emotional withdrawal and avoiding difficult students. CONCLUSIONS Findings suggest interventions to improve school safety and reduce the negative impact of violence-related stressors. Teacher training in behavior management, effective school leadership, improved school security, peer mediation, expanded mental health services, and parent involvement may promote resilience among both teachers and their students.
C1 [Maring, Elisabeth F.; Koblinsky, Sally A.] Univ Maryland, Sch Publ Hlth, College Pk, MD 20742 USA.
C3 University System of Maryland; University of Maryland College Park
RP Maring, EF (corresponding author), Univ Maryland, Sch Publ Hlth, 1142 Sch Publ Hlth, College Pk, MD 20742 USA.
EM efmaring@umd.edu; koblinsk@umd.edu
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NR 41
TC 19
Z9 71
U1 5
U2 50
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0022-4391
EI 1746-1561
J9 J SCHOOL HEALTH
JI J. Sch. Health
PD JUN
PY 2013
VL 83
IS 6
BP 379
EP 388
DI 10.1111/josh.12041
PG 10
WC Education & Educational Research; Education, Scientific Disciplines;
   Health Care Sciences & Services; Public, Environmental & Occupational
   Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Education & Educational Research; Health Care Sciences & Services;
   Public, Environmental & Occupational Health
GA 130PH
UT WOS:000317930100001
PM 23586882
DA 2025-04-22
ER

PT J
AU Payen, FT
   Evans, DL
   Falagán, N
   Hardman, CA
   Kourmpetli, S
   Liu, LX
   Marshall, R
   Mead, BR
   Davies, JAC
AF Payen, Florian Thomas
   Evans, Daniel L.
   Falagan, Natalia
   Hardman, Charlotte A.
   Kourmpetli, Sofia
   Liu, Lingxuan
   Marshall, Rachel
   Mead, Bethan R.
   Davies, Jessica A. C.
TI How Much Food Can We Grow in Urban Areas? Food Production and Crop
   Yields of Urban Agriculture: A Meta-Analysis
SO EARTHS FUTURE
LA English
DT Article
DE urban food growing; urban spaces; growing systems; agricultural
   productivity; food security; urban resilience
ID ECOSYSTEM SERVICES; ENERGY; SUSTAINABILITY; FUTURE; CITIES; CITY;
   VEGETABLES; SECURITY; IMPROVE; SYSTEMS
AB Urban agriculture can contribute to food security, food system resilience and sustainability at the city level. While studies have examined urban agricultural productivity, we lack systemic knowledge of how agricultural productivity of urban systems compares to conventional agriculture and how productivity varies for different urban spaces (e.g., allotments vs. rooftops vs. indoor farming) and growing systems (e.g., hydroponics vs. soil-based agriculture). Here, we present a global meta-analysis that seeks to quantify crop yields of urban agriculture for a broad range of crops and explore differences in yields for distinct urban spaces and growing systems. We found 200 studies reporting urban crop yields, from which 2,062 observations were extracted. Lettuces and chicories were the most studied urban grown crops. We observed high agronomic suitability of urban areas, with urban agricultural yields on par with or greater than global average conventional agricultural yields. "Cucumbers and gherkins" was the category of crops for which differences in yields between urban and conventional agriculture were the greatest (17 kg m(-2) cycle(-1) vs. 3.8 kg m(-2) cycle(-1)). Some urban spaces and growing systems also had a significant effect on specific crop yields (e.g., tomato yields in hydroponic systems were significantly greater than tomato yields in soil-based systems). This analysis provides a more robust, globally relevant evidence base on the productivity of urban agriculture that can be used in future research and practice relating to urban agriculture, especially in scaling-up studies aiming to estimate the self-sufficiency of cities and towns and their potential to meet local food demand.
C1 [Payen, Florian Thomas; Liu, Lingxuan; Marshall, Rachel; Davies, Jessica A. C.] Univ Lancaster, Lancaster Environm Ctr, Lancaster, England.
   [Evans, Daniel L.; Falagan, Natalia; Kourmpetli, Sofia] Cranfield Univ, Ctr Soil Agrifood & Biosci, Cranfield, Beds, England.
   [Hardman, Charlotte A.; Mead, Bethan R.] Univ Liverpool, Dept Psychol, Liverpool, Merseyside, England.
C3 Lancaster University; Cranfield University; University of Liverpool
RP Payen, FT (corresponding author), Univ Lancaster, Lancaster Environm Ctr, Lancaster, England.
EM f.payen@lancaster.ac.uk
RI Mead, Bethan/AAR-1046-2020; Evans, Daniel/AAE-2326-2021; Falagan,
   Natalia/AAA-1523-2020
OI Evans, Daniel/0000-0002-4484-7874; Davies, Jessica/0000-0001-9832-7412;
   Payen, Florian Thomas/0000-0003-0147-7057; Falagan,
   Natalia/0000-0002-7672-9565
FU United Kingdom's Biotechnology and Biological Sciences Research Council
   (BBSRC) [BB/S01425X/1]; Weight Watchers; American Beverage Association;
   BBSRC [BB/S01425X/1] Funding Source: UKRI; ESRC [ES/T000252/1] Funding
   Source: UKRI
FX This work was funded by the United Kingdom's Biotechnology and
   Biological Sciences Research Council (BBSRC) as part of the "Rurban
   Revolution: Can ruralising urban areas through greening and growing
   create a healthy, sustainable & resilient food system?" project (Grant
   No. BB/S01425X/1). Bethan R. Mead has received funding to their
   institution from Weight Watchers (formerly Weight Watchers
   International) for her PhD studentship. Charlotte A. Hardman has
   received research funding from the American Beverage Association.
   Charlotte A. Hardman has also received speaker fees from the
   International Sweeteners Association for work outside of the submitted
   manuscript.
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NR 85
TC 30
Z9 31
U1 12
U2 88
PU AMER GEOPHYSICAL UNION
PI WASHINGTON
PA 2000 FLORIDA AVE NW, WASHINGTON, DC 20009 USA
EI 2328-4277
J9 EARTHS FUTURE
JI Earth Future
PD AUG
PY 2022
VL 10
IS 8
AR e2022EF002748
DI 10.1029/2022EF002748
PG 22
WC Environmental Sciences; Geosciences, Multidisciplinary; Meteorology &
   Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Geology; Meteorology & Atmospheric
   Sciences
GA 4C9TH
UT WOS:000846785400001
PM 36246543
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Wahba, SN
AF Wahba, Sameh N.
TI Can cities bounce back better from COVID-19? Reflections from emerging
   post-pandemic recovery plans and trade-offs
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE density; inclusive cities; informality; liveable cities; post-pandemic
   city; real estate markets; resilient recovery; urban planning
AB As cities plan for post-COVID recovery, many questions preoccupy mayors, policymakers, planners and developers. This article examines COVID-19's impact on cities, drawing on local governments' developing policies and responses to identify some of the emerging trends and trade-offs. Overall, city recovery will likely involve some transformation to land uses and real estate markets, with increasing demand for urban amenities and nature, and with policies in support of affordable housing, slum upgrading and informal sector employment, to achieve more liveable and inclusive cities. This in turn will depend on the policies, planning, finance, digital infrastructure and governance systems in place. While many city challenges predate COVID-19, they were exacerbated by the pandemic. The extent to which cities, and especially cities in the global South, will overcome such challenges will depend on political will and the implementation of targeted policies and low-cost investments in sustainability, liveability and inclusion.
C1 [Wahba, Sameh N.] World Bank, Urban Disaster Risk Management Resilience & Land, 1818 H St NW, Washington, DC 20433 USA.
C3 The World Bank
RP Wahba, SN (corresponding author), World Bank, Urban Disaster Risk Management Resilience & Land, 1818 H St NW, Washington, DC 20433 USA.
EM swahba@worldbank.org
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NR 63
TC 7
Z9 7
U1 1
U2 25
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 2022
VL 34
IS 2
BP 481
EP 496
DI 10.1177/09562478221102867
EA JUN 2022
PG 16
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA 5F0DJ
UT WOS:000824784600001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Kousis, I
   Pigliautile, I
   Pisello, AL
AF Kousis, Ioannis
   Pigliautile, Ilaria
   Pisello, Anna Laura
TI Intra-urban microclimate investigation in urban heat island through a
   novel mobile monitoring system
SO SCIENTIFIC REPORTS
LA English
DT Article
ID CLIMATE RESEARCH; SURFACE; DESIGN; METHODOLOGY; TEMPERATURE; INTENSITY;
   PAVEMENTS; CITIES; ENERGY; TOOL
AB Monitoring microclimate variables within cities with high accuracy is an ongoing challenge for a better urban resilience to climate change. Assessing the intra-urban characteristics of a city is of vital importance for ensuring fine living standards for citizens. Here, a novel mobile microclimate station is applied for monitoring the main microclimatic variables regulating urban and intra-urban environment, as well as directionally monitoring shortwave radiation and illuminance and hence systematically map for the first time the effect of urban surfaces and anthropogenic heat. We performed day-time and night-time monitoring campaigns within a historical city in Italy, characterized by substantial urban structure differentiations. We found significant intra-urban variations concerning variables such as air temperature and shortwave radiation. Moreover, the proposed experimental framework may capture, for the very first time, significant directional variations with respect to shortwave radiation and illuminance across the city at microclimate scale. The presented mobile station represents therefore the key missing piece for exhaustively identifying urban environmental quality, anthropogenic actions, and data driven modelling toward risk and resilience planning. It can be therefore used in combination with satellite data, stable weather station or other mobile stations, e.g. wearable sensing techniques, through a citizens' science approach in smart, livable, and sustainable cities in the near future.
C1 [Kousis, Ioannis; Pigliautile, Ilaria; Pisello, Anna Laura] Univ Perugia, CIRIAF Interuniv Res Ctr, Via G Duranti 67, I-06125 Perugia, Italy.
   [Kousis, Ioannis; Pigliautile, Ilaria; Pisello, Anna Laura] Univ Perugia, Dept Engn, Via G Duranti 97, I-06125 Perugia, Italy.
C3 University of Perugia; University of Perugia
RP Pisello, AL (corresponding author), Univ Perugia, CIRIAF Interuniv Res Ctr, Via G Duranti 67, I-06125 Perugia, Italy.; Pisello, AL (corresponding author), Univ Perugia, Dept Engn, Via G Duranti 97, I-06125 Perugia, Italy.
EM anna.pisello@unipg.it
RI Pigliautile, Ilaria/JBS-0015-2023; Kousis, Ioannis/HMV-1697-2023
OI Pigliautile, Ilaria/0000-0003-3128-4627; Kousis,
   Ioannis/0000-0002-4433-1878
FU European Union's Horizon 2020 program [765057]; Fondazione Cassa di
   Risparmio di Perugia [2018.0499]; European Union's Horizon 2020 program
   -GEOFIT project [792210]; European Union's Horizon 2020 research and
   innovation programme [792210]; H2020 Societal Challenges Programme
   [792210] Funding Source: H2020 Societal Challenges Programme
FX Ioannis Kousis's acknowledgments are due to the European Union's Horizon
   2020 program under Grant Agreement No 765057 (SAFERUP, website
   https://site.unibo.it/safer up/en), and to the Italian project SOSCITTA
   (https://www.eaplab.eu) supported by Fondazione Cassa di Risparmio di
   Perugia (2018.0499). Ilaria Pigliautile's acknowledgments are due to the
   European Union's Horizon 2020 program -GEOFIT project under Grant
   Agreement No 792210 acles. This project has received funding from the
   European Union's Horizon 2020 research and innovation programme under
   grant agreement No. 792210 (GEOFIT, website https://geofit-proje
   ct.eu/). All these funded projects are coordinated by A.L. Pisello
   (corresponding author) on behalf of CIRIAF (UNIPG) and Department of
   Engineering (UNIPG).
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NR 69
TC 56
Z9 60
U1 6
U2 28
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD MAY 6
PY 2021
VL 11
IS 1
AR 9732
DI 10.1038/s41598-021-88344-y
PG 17
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA SL5WX
UT WOS:000656989400003
PM 33958609
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU García, I
AF Garcia, Ivis
TI Beyond Urban-Centered Responses: Overcoming Challenges to Build Disaster
   Resilience and Long-Term Sustainability in Rural Areas
SO SUSTAINABILITY
LA English
DT Article
DE rural communities; disasters; resilience; sustainability
ID NATURAL DISASTERS; VULNERABILITY; LANDSCAPE; NETWORKS; RETURN; RISK
AB This study delves into the difficulties in rural areas of building resilience to disasters and ensuring long-term sustainability. While cities typically receive attention during disaster recovery efforts, previous research shows that rural regions encounter obstacles such as geographic limitations, transportation issues, financial constraints, and a lack of media attention. This study aims to better understand rural disaster resilience and recovery by examining the impact of Hurricane Maria on Puerto Rico through interviews with 18 professionals involved in the recovery process from a variety of sectors including governmental organizations, emergency managers, non-governmental organizations (NGOs), and community leaders from community-based organizations (CBOs). The key findings stress the importance of implementing initiatives in rural areas that bolster sustainability-addressing economic, social, and environmental aspects. This study highlights the importance of customizing disaster response and resilience strategies to meet the needs of rural communities as opposed to a one-size-fits-all approach. It also offers insights for policymakers and urban planners seeking to develop disaster response plans tailored to address the distinctive challenges faced by rural areas.
C1 [Garcia, Ivis] Texas A&M Univ, Sch Architecture, 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, Sch Architecture, Dept Landscape Architecture & Urban Planning, College Stn, TX 77843 USA.
EM ivis.garcia@tamu.edu
OI Garcia, Ivis/0000-0003-4184-2514
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NR 67
TC 2
Z9 2
U1 9
U2 17
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 4373
DI 10.3390/su16114373
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 UC2Q7
UT WOS:001245801600001
OA gold
DA 2025-04-22
ER

PT J
AU Cheshire, L
AF Cheshire, Lynda
TI 'Know your neighbours': disaster resilience and the normative practices
   of neighbouring in an urban context
SO ENVIRONMENT AND PLANNING A-ECONOMY AND SPACE
LA English
DT Article
DE disasters; community resilience; neighbours; neighbourhood; social ties
ID COMMUNITY RESILIENCE; UNCERTAINTY; PLACE
AB As part of community resilience policy, urban dwellers are advised to get to 'know their neighbours' so that they are more likely to turn to them in an emergency. But the idea that neighbours might function as resources for disaster preparedness fails to take account of the fact that neighbour relations are highly diverse and occasionally problematic. Drawing on residents' experiences of the 2011 floods in south-east Queensland, Australia, this paper examines how neighbouring practices and relationships prior to a disaster influence the nature and extent of support from neighbours when disaster strikes. It shows that emergency assistance can map onto existing neighbour relations, such that closer neighbour relations foster frequent and more reliable forms of help. However, the seriousness of the disaster event may be such that residents are aware of their responsibilities to one another as neighbours even if relations are relatively poor or absent. The paper yields important insights for disaster policy and practice in suggesting that community resilience should be embedded within local social practices such as neighbouring, but that neighbouring itself cannot be engineered into existence.
C1 Univ Queensland, Sch Social Sci, Brisbane, Qld 4072, Australia.
C3 University of Queensland
RP Cheshire, L (corresponding author), Univ Queensland, Sch Social Sci, Brisbane, Qld 4072, Australia.
EM l.cheshire@uq.edu.au
RI Cheshire, Lynda/A-8936-2014
OI Cheshire, Lynda/0000-0002-0914-0005
FU Queensland Government (The Queensland Centre for Social Science
   Innovation)
FX This paper is derived from a research project funded through the
   Queensland Government (The Queensland Centre for Social Science
   Innovation) entitled "Identifying and evaluating factors influencing
   community resilience in a crisis". The research team for the North
   Booval study were Peter Walters, Rebecca Wickes, and Lynda Cheshire. The
   author would also like to acknowledge the assistance of Lisa Durnian,
   Alison Schmidt, and Stephanie Raymond in the collection and preliminary
   analysis of the data.
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NR 43
TC 31
Z9 34
U1 1
U2 21
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0308-518X
EI 1472-3409
J9 ENVIRON PLANN A
JI Environ. Plan. A
PY 2015
VL 47
IS 5
BP 1081
EP 1099
DI 10.1177/0308518X15592310
PG 19
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA CQ7SW
UT WOS:000360805500006
DA 2025-04-22
ER

PT J
AU Hesarkazzazi, S
   Hajibabaei, M
   Bakhshipour, AE
   Dittmer, U
   Haghighi, A
   Sitzenfrei, R
AF Hesarkazzazi, Sina
   Hajibabaei, Mohsen
   Bakhshipour, Amin E.
   Dittmer, Ulrich
   Haghighi, Ali
   Sitzenfrei, Robert
TI Generation of optimal (de)centralized layouts for urban drainage
   systems: A graph-theory-based combinatorial multi-objective optimization
   framework
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban drainage networks; Graph theory; Layout decentralization;
   Resilience; Optimization
ID DESIGN; RESILIENCE; TREE; ALGORITHM; GREEN; MODEL
AB The suitability and effectiveness of decentralized paradigms in the field of underground conveyance drainage infrastructures for coping with the current and upcoming sustainability and resilience demands has been documented in recent research. However, a generic and holistic framework that can be quickly put in practice is lacking. To this end, this study proposes a scheme for creating and optimizing decentralization scenarios in terms of sewer layout configurations for both flat and steep terrains with the aid of a combinatorial graph-theory-based optimization. Additionally, a novel and generalized formula is derived to determine the degree of centralization coupled with three layout objective functions, thereby eliminating several feasible layout solutions. The results indicate that cherry picking an appropriate sewer structure (topological layout) at the planning stage can largely influence the design construction costs (reduction up to 49% for steep terrain and 25% for flat terrain), as well as the resilience response of the final network. Therefore, as a general rule of thumb, breaking down the centralized network into a decentralized one can reduce construction cost and improve resilience.
C1 [Hesarkazzazi, Sina; Hajibabaei, Mohsen; Sitzenfrei, Robert] Univ Innsbruck, Inst Infrastructure, Unit Environm Engn, A-6020 Innsbruck, Austria.
   [Bakhshipour, Amin E.; Dittmer, Ulrich] Tech Univ Kaiserslautern, Inst Urban Water Management, Dept Civil Engn, D-67663 Kaiserslautern, Germany.
   [Haghighi, Ali] Shahid Chamran Univ Ahvaz, Fac Civil Engn & Architecture, Ahvaz 61357831351, Iran.
C3 University of Innsbruck; University of Kaiserslautern; Shahid Chamran
   University of Ahvaz
RP Sitzenfrei, R (corresponding author), Univ Innsbruck, Inst Infrastructure, Unit Environm Engn, A-6020 Innsbruck, Austria.
EM Robert.Sitzenfrei@uibk.ac.at
RI Dittmer, Ulrich/AAZ-2605-2020; sitzenfrei, robert/ABB-2910-2021;
   Bakhshipour, Amin/ABC-3464-2020; Haghighi, Ali/AAS-7665-2020
OI Hajibabaei, Mohsen/0000-0002-0047-9715; E. Bakhshipour,
   Amin/0000-0002-6921-2381; Hesarkazzazi, Sina/0000-0002-0828-9182;
   Sitzenfrei, Robert/0000-0003-1093-6040
FU Austrian Science Fund (FWF) [P 31104-N29]
FX Funding This research was funded by the Austrian Science Fund (FWF) , P
   31104-N29.
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NR 54
TC 35
Z9 36
U1 17
U2 85
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD JUN
PY 2022
VL 81
AR 103827
DI 10.1016/j.scs.2022.103827
EA MAR 2022
PG 14
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA 1A3XL
UT WOS:000791693900007
OA hybrid
DA 2025-04-22
ER

PT J
AU Noll, S
AF Noll, Samantha
TI Nonhuman Climate Refugees: The Role that Urban Communities Should Play
   in Ensuring Ecological Resilience
SO ENVIRONMENTAL ETHICS
LA English
DT Article
ID EXTINCTION RISK; ETHICS; BIODIVERSITY; URBANIZATION; IMPACTS; NICHE;
   MOVE
AB Urban residents have the potential to play a key role in helping to facilitate ecological resilience of wilderness areas and ecosystems beyond the city by helping ensure the migration of nonhuman climate refugee populations. Three ethical frameworks related to this issue could determine whether we have an ethical duty to help nonhuman climate refugee populations: ethical individualism, ethical holism, and species ethics. Using each of these frameworks could support the stronger view that policy makers and members of the public have a moral duty to mitigate the impacts of climate induced migration, or the weaker claim that these impacts should be taken into account when making land-use and planning decisions in urban contexts.
C1 [Noll, Samantha] Washington State Univ, Sch Polit Philosophy & Publ Affairs, 801 Johnson Tower,POB 644880, Pullman, WA 99164 USA.
C3 Washington State University
RP Noll, S (corresponding author), Washington State Univ, Sch Polit Philosophy & Publ Affairs, 801 Johnson Tower,POB 644880, Pullman, WA 99164 USA.
EM sam.noll@wsu.edu
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NR 67
TC 1
Z9 1
U1 3
U2 11
PU ENVIRONMENTAL PHILOSOPHY INC
PI DENTON
PA UNIV NORTH TEXAS, DEPT PHILOSOPHY, PO BOX 13496, DENTON, TX 76203-3496
   USA
SN 0163-4275
EI 2153-7895
J9 ENVIRON ETHICS
JI Environ. Ethics
PD SUM
PY 2018
VL 40
IS 2
BP 119
EP 134
PG 16
WC Ethics; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Social Sciences - Other Topics; Environmental Sciences & Ecology
GA HI6UM
UT WOS:000456590900003
DA 2025-04-22
ER

PT J
AU Lu, F
   Liu, Q
   Wang, PC
AF Lu, Fei
   Liu, Qi
   Wang, Pengcheng
TI Spatiotemporal characteristics of ecological resilience and its
   influencing factors in the Yellow River Basin of China
SO SCIENTIFIC REPORTS
LA English
DT Article
ID POPULATION; IMPACT; IPAT
AB Maintaining and improving ecological resilience is of great practical significance for the Yellow River Basin to reduce potential ecological risks and deliver sustainable development. Based on the essential characteristics of evolutionary resilience, this paper developed an ecological resilience index system of "resistance-recovery-reconstruction-renewal" and calculated the ecological resilience of 75 prefecture-level cities in the Yellow River Basin from 2007 to 2021 with the improved TOPSIS method. Then the spatiotemporal evolution characteristics of ecological resilience were analyzed using the gravity center-standard deviation ellipse, Dagum Gini coefficient decomposition, and spatial autocorrelation analysis. Furthermore, the dynamic spatial Durbin model (DSDM) was used to investigate the influencing factors of ecological resilience. The main results are as follows: (1) The ecological resilience of the Yellow River Basin showed an overall fluctuating upward trend, and the average annual growth rate in the downstream region was larger than in the upstream and midstream regions. (2) Cities with similar levels of ecological resilience were distributed in a "large settlement, small scattered" pattern. The center of gravity shifted to the southeast, and the spatial distribution exhibited a "northwest-southeast" pattern and a trend towards an "east-west" pattern. The primary source of spatial differences was the intensity of transvariation. (3) The ecological resilience in the Yellow River Basin showed significant spatial clustering, with the H-H clustering area shifting from the Hubao-Eyu urban agglomeration to the Shandong Peninsula urban agglomeration, and the L-L clustering area mainly distributed around the Central Plains city cluster. (4) The ecological resilience of the Yellow River Basin exhibited significant snowball, spillover, and siphon effects in time, space, and space-time dimensions, respectively. In the short and long term, population density and openness significantly positively affected the ecological resilience of local and surrounding cities. Urbanization had a long-term effect on ecological resilience without a short-term effect. GDP per capita and industrial structure only imparted a significant positive influence on local ecological resilience. The negative spatial spillover of the intensity of financial investment in technological innovation gradually turned into a positive effect.
C1 [Lu, Fei; Wang, Pengcheng] Weifang Univ, Coll Literature & Hist, Coll Culture & Tourism, Weifang 261061, Shandong, Peoples R China.
   [Liu, Qi] Weifang Municipal Cultural & Tourism Ind Dev Ctr, Weifang 261061, Shandong, Peoples R China.
C3 Weifang University
RP Lu, F (corresponding author), Weifang Univ, Coll Literature & Hist, Coll Culture & Tourism, Weifang 261061, Shandong, Peoples R China.
EM wfuctlf2022@163.com
RI Liu, Qi/KHZ-9738-2024
FU Social Science Planning Research Project of Shandong Province
FX We thank all the reviewers of this manuscript for their helpful comments
   and valuable suggestions.
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NR 54
TC 4
Z9 4
U1 49
U2 82
PU NATURE PORTFOLIO
PI BERLIN
PA HEIDELBERGER PLATZ 3, BERLIN, 14197, GERMANY
SN 2045-2322
J9 SCI REP-UK
JI Sci Rep
PD JUL 23
PY 2024
VL 14
IS 1
AR 16988
DI 10.1038/s41598-024-67628-z
PG 21
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA ZM7A4
UT WOS:001275770300106
PM 39043742
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Huang, J
   Liu, Y
AF Huang, Jing
   Liu, Yi
TI Influential factors of corporate involvement in community resilience
   governance from the perspective of symbiosis theory
SO FRONTIERS IN ENERGY RESEARCH
LA English
DT Article
DE corporate community involvement; community resilience; symbiosis theory;
   theory of planned behavior; theory of social practice
ID PLANNED BEHAVIOR; DETERMINANTS; ENTERPRISES; MANAGEMENT; FRAMEWORK;
   ECONOMY; FIRMS
AB Urban resilience is a new paradigm for urban risk governance, whereas developing community resilience is the foundation for better resilient governance. Corporations serve as both the foundation and pivotal factor in ensuring the resilience of a community. Therefore, it is vital to encourage their active involvement in community resilience governance. This investigated the key influential factors of corporations in community resilience governance as well as the influence paths related to these factors. Firstly, multi-participant symbiotic relationships in the community resilience symbiosis system were analyzed. The hypothesis model of corporations' involvement in community resilience governance was proposed, combining the Theory of Planned Behavior and the Theory of Social Practice. Finally, the subjective and objective factors and influence paths were explored based on the structural equation model and the linear regression model by questionnaire investigation. The results show that: 1) Corporate involvement behavior is influenced by subjective factors such as behavioral attitude (ATT), subjective norm (SN), perceived behavioral control (PBC), and behavioral intention (BI), and also by objective community institutional factors including Field and Social capital. 2) The five influence paths to behavior (B) are as follows: SN -> ATT -> BI -> B; PBC -> ATT -> BI -> B; PBC -> B; Field x BI -> B; and Social capital x BI -> B. 3) The involvement behavior is the result of a combination of rational and moral reasoning, with rationality preceding morality. Field capital and Social capital positively and negatively moderate the transformation of behavioral intention into behavior, respectively.
C1 [Huang, Jing; Liu, Yi] Hohai Univ, Inst Management Sci, Nanjing, Peoples R China.
   [Huang, Jing] Natl Key Lab Water Disaster Prevent, Nanjing, Peoples R China.
C3 Hohai University
RP Huang, J (corresponding author), Hohai Univ, Inst Management Sci, Nanjing, Peoples R China.; Huang, J (corresponding author), Natl Key Lab Water Disaster Prevent, Nanjing, Peoples R China.
EM j_huang@hhu.edu.cn
FU National Natural Science Foundation of China10.13039/501100001809
FX No Statement Available
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NR 65
TC 0
Z9 0
U1 22
U2 30
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
SN 2296-598X
J9 FRONT ENERGY RES
JI Front. Energy Res.
PD MAY 16
PY 2024
VL 12
AR 1394159
DI 10.3389/fenrg.2024.1394159
PG 17
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA SK4M1
UT WOS:001234333500001
OA gold
DA 2025-04-22
ER

PT J
AU Gonzva, M
   Barroca, B
   Gautier, PE
   Diab, Y
AF Gonzva, Michael
   Barroca, Bruno
   Gautier, Pierre-Etienne
   Diab, Youssef
TI Modeling disruptions causing domino effects in urban guided transport
   systems faced by flood hazards
SO NATURAL HAZARDS
LA English
DT Article
DE Rail transport; Floods; Simulation; Risk management
ID RESILIENCE; FRAMEWORK
AB Flood risks are the most frequent natural risks in the world. Their consequences are particularly serious when they affect technical systems in urban areas. Experience feedbacks on guided transport systems show that they are urban technical systems that are particularly vulnerable to this type of natural risk. The resilience concept is used in a systemic approach for making an accurate analysis of this type of natural risk. The purpose of this article is to provide an analysis of guided transport systems' resilience in the face of flood risks via a study of the failure mechanisms to which component elements of these systems are subjected. By using methods resulting from operational safety concepts and designing a computer tool, all the failure scenarios for components can be produced, together with their domino effects. In this way, our work provides a methodology for characterizing guided transport systems' vulnerability in the face of natural risks and for comparing this vulnerability depending on whether the system is in an underground, ground-level or overground configuration.
C1 [Gonzva, Michael] SYSTRA, 72 Rue Henry Farman, F-75015 Paris, France.
   [Gonzva, Michael] Paris Est Marne La Valle Univ, Lab Urba Lab, 72 Rue Henry Farman, F-75015 Paris, France.
   [Barroca, Bruno] Paris Est Marne La Valle Univ, Lab Urba Lab, DPLG Architect, 6-8 Ave Blaise Pascal, F-77455 Champs Sur Marne 2, Marne La Vallee, France.
   [Gautier, Pierre-Etienne] Paris Est Marne La Valle Univ, Lab Urba Lab, Sch Engn, City Paris EIVP, 6-8 Ave Blaise Pascal, F-77455 Champs Sur Marne 2, Marne La Vallee, France.
   [Diab, Youssef] SYSTRA, Innovat, 72 Rue Henry Farman, F-75015 Paris, France.
C3 Universite Gustave-Eiffel; Universite Gustave-Eiffel; Universite
   Paris-Est-Creteil-Val-de-Marne (UPEC); Universite Gustave-Eiffel;
   Universite Paris-Est-Creteil-Val-de-Marne (UPEC)
RP Gonzva, M (corresponding author), SYSTRA, 72 Rue Henry Farman, F-75015 Paris, France.; Gonzva, M (corresponding author), Paris Est Marne La Valle Univ, Lab Urba Lab, 72 Rue Henry Farman, F-75015 Paris, France.
EM mgonzva@systra.com; bruno.barroca@u-pem.fr; pegautier@systra.com;
   youssef.diab@u-pem.fr
RI Barroca, Bruno/ABF-5436-2020
OI BARROCA, Bruno/0000-0001-6653-0803
FU French national project "Ville 10D-Ville d'idees"
FX This work has been partially supported by the French national project
   "Ville 10D-Ville d'idees" ("10D City-City of Ideas": Different
   Dimensions for Sustainable and Desirable Urban Development Declined in a
   "Top-Down" Dynamic).
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NR 46
TC 15
Z9 16
U1 7
U2 50
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 MAR
PY 2017
VL 86
IS 1
BP 183
EP 201
DI 10.1007/s11069-016-2680-7
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 EL0QS
UT WOS:000394327500009
DA 2025-04-22
ER

PT J
AU Manandhar, B
   Cui, SH
   Wang, LH
   Shrestha, S
AF Manandhar, Bikram
   Cui, Shenghui
   Wang, Lihong
   Shrestha, Sabita
TI Post-Flood Resilience Assessment of July 2021 Flood in Western Germany
   and Henan, China
SO LAND
LA English
DT Article
DE climate change; early warning system; extreme events; flood resilience;
   post-flood resilience assessment
ID INDEX; CITY
AB In July 2021, devastating floods occurred in western Germany and Henan, China, resulting in extreme loss of life and property damage. Despite the differences in context, climate change contributed to these events. Flood resilience generally means the system's ability to recover from floods. A post-flood resilience assessment seeks to determine the impact of the flood on the area, the duration it took to recover, the effectiveness of the measures taken to reduce the risk of flooding, and ways to enhance flood resilience. The post-flood review capacity method was used to assess the event and calculate the flood resilience index. Western Germany experienced a 500-year return period flood in connection with the low-pressure system, Bernd, while Zhengzhou in Henan experienced a 1000-year return period flood with the influence of Typhoon In-Fa and the Western Pacific subtropical high. More than 107,000 people were affected in Germany, with 205 deaths that account for USD 40 billion in economic losses, whereas in Henan, 14.786 million people were affected, and 398 people died, which accounts for USD 18.9 billion in losses. Germany was more impacted and took longer to restore essential services than Henan, China. The flood resilience index shows that the resilience level of both countries is low. The severe rainstorms in Zhengzhou and the Ahr River Valley exposed weaknesses in urban disaster management, particularly in urban areas, such as subway flooding and risk communication with the public. The events highlighted the need to better understand risks and their consequences, early warning systems, preparedness, and emergency response.
C1 [Manandhar, Bikram; Cui, Shenghui; Wang, Lihong] Chinese Acad Sci, Inst Urban Environm, Key Lab Urban Environm & Hlth, Xiamen 361021, Peoples R China.
   [Manandhar, Bikram; Wang, Lihong] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Manandhar, Bikram; Cui, Shenghui; Wang, Lihong] Chinese Acad Sci, Inst Urban Environm, Xiamen Key Lab Urban Metab, Xiamen 361021, Peoples R China.
   [Manandhar, Bikram] Tribhuvan Univ, Inst Forestry, Hetauda 44107, Nepal.
   [Shrestha, Sabita] Youth Innovat Lab, Banshidhar Marg, Kathmandu 44600, Nepal.
C3 Chinese Academy of Sciences; Institute of Urban Environment, CAS;
   Chinese Academy of Sciences; University of Chinese Academy of Sciences,
   CAS; Chinese Academy of Sciences; Institute of Urban Environment, CAS;
   Tribhuvan University; Institute of Forestry (IOF) - Nepal
RP Cui, SH (corresponding author), Chinese Acad Sci, Inst Urban Environm, Key Lab Urban Environm & Hlth, Xiamen 361021, Peoples R China.
EM shcui@iue.ac.cn
RI Manandhar, Bikram/AFJ-9674-2022; wang, Lihong/MGA-7080-2025; cui,
   shenghui/B-3926-2008; Manandhar, Bikram/L-3051-2017
OI cui, shenghui/0000-0003-1290-3234; Manandhar,
   Bikram/0000-0001-7827-670X; Shrestha, Sabita/0000-0002-8875-9139
FU National Natural Science Foundation of China [41661144032];
   international partnership program of the Chinese Academy of Sciences
   "Multifunctional urban green space planning based on transdisciplinary
   learning" [132C35KYSB20200007]; International (Regional) Cooperation and
   Exchange Program, the National Natural Science Foundation of China
   [32261143730]
FX This research was funded by the National Natural Science Foundation of
   China (Grant No.: 41661144032), the international partnership program of
   the Chinese Academy of Sciences "Multifunctional urban green space
   planning based on transdisciplinary learning" (Grant No.:
   132C35KYSB20200007), and the International (Regional) Cooperation and
   Exchange Program, the National Natural Science Foundation of China
   (Grant No.: 32261143730).
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NR 114
TC 16
Z9 17
U1 21
U2 94
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD MAR
PY 2023
VL 12
IS 3
AR 625
DI 10.3390/land12030625
PG 32
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA C1QO3
UT WOS:000959749400001
OA gold
DA 2025-04-22
ER

PT J
AU Hölscher, K
   Frantzeskaki, N
   McPhearson, T
   Loorbach, D
AF Holscher, Katharina
   Frantzeskaki, Niki
   McPhearson, Timon
   Loorbach, Derk
TI Capacities for urban transformations governance and the case of New York
   City
SO CITIES
LA English
DT Article
DE Transformations; Urban governance; Capacity; Cities; Agency; Climate
   change; Urban
ID CLIMATE-CHANGE; SUSTAINABILITY TRANSITIONS; CREATIVE DESTRUCTION;
   META-GOVERNANCE; POLICY MIXES; RESILIENCE; MANAGEMENT; CITIES;
   INFRASTRUCTURE; ADAPTATION
AB The narrative of urban sustainability transformations epitomises the hope that urban governance can create the conditions to plan and govern cities in a way that they contribute to local and global sustainability and resilience. So far, urban governance is not delivering: novel governance approaches are emerging in cities worldwide, yet are unable to transform conventional policymaking and planning to allow for innovative, co-beneficial and long-term solutions and actions to emerge and institutionalise. We present a capacities framework for urban transformations governance, starting from the need to fulfil distinct output functions ('what needs to happen') for mobilising and influencing urban transformation dynamics. The framework helps to diagnose and inform urban governance for responding to disturbances (stewarding capacity), phasing-out drivers of path-dependency (unlocking capacity), creating and embedding novelties (transformative capacity) and coordinating multi-actor processes (orchestrating capacity). Our case study of climate governance in New York City exemplifies the framework's applicability and explanatory power to identify conditions and activities facilitating transformation (governance), and to reveal gaps and barriers of these vis-a-vis the existing governance regime. Our framework thereby functions as a tool to explore what new forms of urban transformation governance are emerging, how effective these are, and how to strengthen capacities.
C1 [Holscher, Katharina; Frantzeskaki, Niki; Loorbach, Derk] Erasmus Univ, Fac Social & Behav Sci, DRIFT, NL-3000 DR Rotterdam, Netherlands.
   [Frantzeskaki, Niki] Swinburne Univ Technol, Fac Hlth Arts & Design, Melbourne, Vic, Australia.
   [McPhearson, Timon] New Sch, Environm Studies, Urban Ecol Lab, New York, NY USA.
C3 Erasmus University Rotterdam - Excl Erasmus MC; Erasmus University
   Rotterdam; Swinburne University of Technology; The New School
RP Hölscher, K (corresponding author), Erasmus Univ, Dutch Res Inst Transit DRIFT, Mandeville Bldg,16th Floor,Burgmeester Oudlaan 50, NL-3062 PA Rotterdam, Netherlands.
EM holscher@drift.eur.nl; nfrantzeskaki@swin.edu.au;
   Timon.mcphearson@newschool.edu; Ioorbach@drift.eur.nl
RI Frantzeskaki, Niki/AAN-1044-2021; Loorbach, Derk/L-2493-2015;
   McPhearson, Timon/JOZ-3799-2023
OI McPhearson, Timon/0000-0002-9499-0791; Frantzeskaki,
   Niki/0000-0002-6983-448X; Holscher, Katharina/0000-0002-4504-3368
FU EU FP7 project IMPRESSIONS [603416]; Prins Bernhard Cultuurfonds, the
   Netherlands; Konrad von Moltke Fund, Germany; Erasmus Trustfonds,
   Rotterdam, the Netherlands; Urban Resilience to Extreme Weather-Related
   Events Sustainability Research Network (URExSRN; US NSF) [SES 1444755]
FX This research was supported by the EU FP7 project IMPRESSIONS [grant
   number 603416]; the Prins Bernhard Cultuurfonds, the Netherlands; the
   Konrad von Moltke Fund, Germany; and the Erasmus Trustfonds, Rotterdam,
   the Netherlands. The authors thank all interviewees for their time and
   keen interest in our research. TM was supported by Urban Resilience to
   Extreme Weather-Related Events Sustainability Research Network (URExSRN;
   US NSF grant no. SES 1444755).
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NR 124
TC 41
Z9 43
U1 14
U2 96
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 NOV
PY 2019
VL 94
BP 186
EP 199
DI 10.1016/j.cities.2019.05.037
PG 14
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA JN9ZU
UT WOS:000497248300017
OA Green Published
DA 2025-04-22
ER

PT J
AU Zhao, F
   Fashola, OI
   Olarewaju, TI
   Onwumere, I
AF Zhao, Fang
   Fashola, Olushola I.
   Olarewaju, Tolulope I.
   Onwumere, Ijeoma
TI Smart city research: A holistic and state-of-the-art literature review
SO CITIES
LA English
DT Review
DE Smart city; Literature review; Urban planning and governance; Technology
   diffusion; Strategy; Entrepreneurship
ID BIG DATA; SUSTAINABLE CITIES; URBAN; FRAMEWORK; INITIATIVES; TECHNOLOGY;
   INNOVATION; LESSONS; INFORMATION; PERFORMANCE
AB This literature review provides a systematic review of smart city research between 2000 and 2019. The aim of the review is to provide a comprehensive picture of the state-of-the-art of research in smart cities by addressing major issues and identifying gaps and areas for future research. The analysis of 191 publications drawn from high-quality journals and the most influential or highly cited smart city literature highlights four major challenges for small city research: (a) smart city research is often fragmented and technology-driven; (b) many studies are on the perceived benefits of smart cities and fewer on the downsides of technologies and failed projects; (c) there is a need to build new theories for smart city research; and (d) there is a lack of empirical testing of the conceptual frameworks developed in smart city research. The research insights of this literature review may encourage practitioners, including city councillors, urban planners, and business managers, to consider smart city strategies in a holistic way when building vibrant, sustainable, and resilient cities of the future.
C1 [Zhao, Fang] Staffordshire Univ, Staffordshire Business Sch, Leek Rd, Stoke On Trent ST4 2DF, Staffs, England.
   [Fashola, Olushola I.] QA Higher Educ, Birmingham, W Midlands, England.
   [Olarewaju, Tolulope I.] Keele Univ, Keele Business Sch, Keele, Staffs, England.
   [Onwumere, Ijeoma] Manchester Metropolitan Univ, Manchester, Lancs, England.
C3 Staffordshire University; Keele University; Manchester Metropolitan
   University
RP Zhao, F (corresponding author), Staffordshire Univ, Staffordshire Business Sch, Leek Rd, Stoke On Trent ST4 2DF, Staffs, England.
EM fang.zhao@staffs.ac.uk; Olushola.Fashola@qa.com;
   t.olarewaju@keele.ac.uk; i.c.onwumere@gmail.com
RI Onwumere, Ijeoma/KUC-8635-2024; Olarewaju, Tolulope/AAE-4289-2021
OI Olarewaju, Tolu/0000-0002-3770-2685
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NR 155
TC 96
Z9 99
U1 33
U2 231
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2021
VL 119
AR 103406
DI 10.1016/j.cities.2021.103406
EA AUG 2021
PG 14
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA WE0QD
UT WOS:000705333600013
DA 2025-04-22
ER

PT J
AU Lizarralde, G
   Valladares, A
   Olivera, A
   Bornstein, L
   Gould, K
   Barenstein, JD
AF Lizarralde, Gonzalo
   Valladares, Arturo
   Olivera, Andres
   Bornstein, Lisa
   Gould, Kevin
   Barenstein, Jennifer Duyne
TI A systems approach to resilience in the built environment: the case of
   Cuba
SO DISASTERS
LA English
DT Article
DE built environment; disasters; systemic adaptation; systemic resilience;
   systems theory
ID COMMUNITY RESILIENCE; DISASTER
AB Through its capacity to evoke systemic adaptation before and after disasters, resilience has become a seductive theory in disaster management. Several studies have linked the concept with systems theory; however, they have been mostly based on theoretical models with limited empirical support. The study of the Cuban model of resilience sheds light on the variables that create systemic resilience in the built environment and its relations with the social and natural environments. Cuba is vulnerable to many types of hazard, yet the country's disaster management benefits from institutional, health and education systems that develop social capital, knowledge and other assets that support construction industry and housing development, systematic urban and regional planning, effective alerts, and evacuation plans. The Cuban political context is specific, but the study can nonetheless contribute to systemic improvements to the resilience of built environments in other contexts.
C1 [Lizarralde, Gonzalo] Univ Montreal, Dept Architecture, IF Res Grp, Montreal, PQ H3C 3J7, Canada.
   [Olivera, Andres] Univ Villas Santa Clara, Santa Clara, Cuba.
C3 Universite de Montreal
RP Lizarralde, G (corresponding author), Univ Montreal, Dept Architecture, IF Res Grp, CP 6128 Succ Ctr Ville, Montreal, PQ H3C 3J7, Canada.
EM gonzalo.lizarralde@umontreal.ca
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NR 58
TC 25
Z9 26
U1 2
U2 60
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0361-3666
EI 1467-7717
J9 DISASTERS
JI Disasters
PD JAN
PY 2015
VL 39
SU 1
BP S76
EP S95
DI 10.1111/disa.12109
PG 20
WC Environmental Studies; Social Sciences, Interdisciplinary
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Social Sciences - Other Topics
GA AW3GA
UT WOS:000346173100005
PM 25494958
DA 2025-04-22
ER

PT J
AU Krellenberg, K
   Bergsträsser, H
   Bykova, D
   Kress, N
   Tyndall, K
AF Krellenberg, Kerstin
   Bergstraesser, Hannah
   Bykova, Dania
   Kress, Nele
   Tyndall, Katharine
TI Urban Sustainability Strategies Guided by the SDGs-A Tale of Four Cities
SO SUSTAINABILITY
LA English
DT Article
DE SDGs; urban sustainability transformations; comparative case study;
   strategic planning; Hamburg; Magdeburg; Milwaukee; St. Petersburg
ID GOVERNANCE; HAMBURG; INDICATORS; MANAGEMENT; FRAMEWORK
AB The United Nations (UN) 2030 Sustainable Development Agenda, signed in 2015 and backed-up with its seventeen Sustainable Development Goals (SDGs), mentions cities as key players for evolving actively towards more sustainability. This underpins that living in the cities of the urban age is increasingly becoming the focus of sustainability discussions, which is particularly reflected in SDG 11 "Making cities and human settlements inclusive, safe, resilient and sustainable". As urban sustainability strategies are playing a key role for the development of cities, this article sheds light on four cities' sustainability strategies. The case studies highlight shortcomings, in terms of integrated visions, clear targets, and indicators in existing urban (sustainability) strategies. The article discusses these issues in light of an analytical framework, and stresses challenges and opportunities that SDG implementation involves.
C1 [Krellenberg, Kerstin] UFZ Helmholtz Ctr Environm Res, D-04318 Leipzig, Germany.
   [Krellenberg, Kerstin; Bergstraesser, Hannah; Bykova, Dania; Kress, Nele; Tyndall, Katharine] Univ Leipzig, Inst Infrastruct & Resource Management, D-04109 Leipzig, Germany.
C3 Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Leipzig University
RP Krellenberg, K (corresponding author), UFZ Helmholtz Ctr Environm Res, D-04318 Leipzig, Germany.; Krellenberg, K (corresponding author), Univ Leipzig, Inst Infrastruct & Resource Management, D-04109 Leipzig, Germany.
EM kerstin.krellenberg@ufz.de; hannah1_b@hotmail.de;
   bykovadarya2011@yandex.ru; nele_kress@hotmail.com; ktyn3948@gmail.com
RI Krellenberg, Kerstin/B-7722-2017
OI Krellenberg, Kerstin/0000-0003-4645-5775
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NR 69
TC 46
Z9 49
U1 3
U2 42
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB 2
PY 2019
VL 11
IS 4
AR 1116
DI 10.3390/su11041116
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 HO3JV
UT WOS:000460819100176
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Young, AF
   Marengo, JA
   Coelho, JOM
   Scofield, GB
   Silva, CCD
   Prieto, CC
AF Young, Andrea Ferraz
   Marengo, Jose Antonio
   Martins Coelho, Juliano Oliveira
   Scofield, Graziela Balda
   de Oliveira Silva, Camila Cristina
   Prieto, Carla Correa
TI The role of nature-based solutions in disaster risk reduction: The
   decision maker's perspectives on urban resilience in Sao Paulo state
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Disasters; Ecosystem services; Green infrastructure; Landscape; Urban
   resilience
ID ECOSYSTEM-BASED ADAPTATION; VULNERABILITY; FRAMEWORK; CITIES
AB This paper presents the co-learning process outcomes based on Ecosystem-based Adaptation (EbA) and Nature-based Solutions (NbS) for Disaster Risk Reduction (DRR). EbA principles are directly associated with resilience improvement that depends on NbS for change of patterns and actions. Basically, we expected to explore how urban systems can be improved avoiding environmental degradation (i.e. waste ecosystem services and their benefits). Therefore, distinct scenarios were proposed with specific objectives: (1) identification of barriers and challenges; (2) identification of opportunities for NbS implementation. Throughout a workshop, we had chance to discuss knowledge gaps and potential emerging research such as: (1) synergies between DRR and EbA; (2) a long-term perspective of ecosystem management; (3) dynamic of DRR and the natural processes involved considering the complexity of NbS. We conclude that existing measures are limited in their ecological focus regarding to DRR and benefits they address. For this reason, a more comprehensive approach to support NbS and its systematic mainstreaming is required.
C1 [Young, Andrea Ferraz; Marengo, Jose Antonio; Martins Coelho, Juliano Oliveira; Scofield, Graziela Balda; Prieto, Carla Correa] Brazilian Natl Ctr Monitoring & Early Warning Nat, Rio De Janeiro, RJ, Brazil.
   [de Oliveira Silva, Camila Cristina] Univ Fed Sao Paulo, Sao Paulo, SP, Brazil.
C3 Universidade Federal de Sao Paulo (UNIFESP)
RP Young, AF (corresponding author), Brazilian Natl Ctr Monitoring & Early Warning Nat, Rio De Janeiro, RJ, Brazil.
EM andrea.young@cemaden.gov.br
RI Scofield, Graziela/U-6108-2019; Marengo, Jose/ABI-5279-2022; Coelho,
   Juliano/U-7152-2019; Prieto, Carla/T-2984-2019; Ferraz Young,
   Andrea/E-2892-2015
OI Prieto, Carla/0000-0003-4789-0314; Ferraz Young,
   Andrea/0000-0002-5200-4009
FU Sao Paulo Research Foundation (FAPESP), Brazil [17/24467-6]; National
   Institute of Science and Technology for Climate Change Phase 2 under
   National Council for Scientific and Technological Development (CNPq),
   Brazil [465501/2014-1]; FAPESP, Brazil [2014/50848-9, 2015/50122-0,
   15/24099-1]; Coordination of Improvement of Higher Level Personnel
   (CAPES, Brazil) [16/2014]; Deutsche Forschungsgemeinschaf, Germany
   [DFG-IRTG 1740/2]; Fundacao de Amparo a Pesquisa do Estado de Sao Paulo
   (FAPESP) [17/24467-6, 15/50122-0] Funding Source: FAPESP
FX This work was supported by the Sao Paulo Research Foundation, Sao Paulo
   Research Foundation (FAPESP), Brazil under FAPESP Grant 17/24467-6 and
   by the National Institute of Science and Technology for Climate Change
   Phase 2 under National Council for Scientific and Technological
   Development (CNPq), Brazil Grant 465501/2014-1, and FAPESP, Brazil
   Grants 2014/50848-9 and 2015/50122-0; the Coordination of Improvement of
   Higher Level Personnel (CAPES, Brazil) Grant 16/2014, and the Deutsche
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NR 59
TC 46
Z9 47
U1 3
U2 101
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 2019
VL 39
AR 101219
DI 10.1016/j.ijdrr.2019.101219
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 JA4VL
UT WOS:000487835400037
DA 2025-04-22
ER

PT J
AU Cleland, CM
   Lanza, ST
   Vasilenko, SA
   Gwadz, M
AF Cleland, Charles M.
   Lanza, Stephanie T.
   Vasilenko, Sara A.
   Gwadz, Marya
TI Syndemic Risk Classes and Substance Use Problems among Adults in
   High-Risk Urban Areas: A Latent Class Analysis
SO FRONTIERS IN PUBLIC HEALTH
LA English
DT Article
DE syndemics; resilience; risk; substance use problem; latent class
   analysis
ID IDENTIFICATION TEST AUDIT; GENDER-DIFFERENCES; ALCOHOL-USE; USE
   DISORDERS; SOCIAL SUPPORT; GLOBAL BURDEN; HIV CARE; HEALTH; DISEASE;
   POPULATIONS
AB Substance use problems tend to co-occur with risk factors that are especially prevalent in urban communities with high rates of poverty. The present study draws on Syndemics Theory to understand profiles of risk and resilience and their associations with substance use problems in a population at risk for adverse outcomes. African-American/Black and Hispanic heterosexual adults (N = 2,853) were recruited by respondent-driven sampling from an urban area with elevated poverty rates, and completed a structured assessment battery covering sociodemographics, syndemic factors (that is, multiple, co-occurring risk factors), and substance use. More than one-third of participants (36%) met criteria for either an alcohol or a drug problem in the past year. Latent class analysis identified profiles of risk and resilience, separately for women and men, which were associated with the probability of a substance use problem. Almost a third of women (27%) and 38% of men had lower risk profiles-patterns of resilience not apparent in other types of analyses. Profiles with more risk and fewer resilience factors were associated with an increased probability of substance use problems, but profiles with fewer risk and more resilience factors had rates of substance use problems that were very similar to the general adult population. Relative to the lowest risk profile, profiles with the most risk and fewest resilience factors were associated with increased odds of a substance use problem for both women [ adjusted odds ratio (aOR) = 8.50; 95% CI: 3.85-18.74] and men (aOR = 11.68; 95% CI: 6.91-19.74). Addressing syndemic factors in substance use treatment and prevention may yield improved outcomes.
C1 [Cleland, Charles M.; Gwadz, Marya] NYU, Meyers Coll Nursing, Ctr Drug Use & HIV Res, New York, NY 10010 USA.
   [Lanza, Stephanie T.; Vasilenko, Sara A.] Penn State Univ, Dept Biobehav Hlth, University Pk, PA USA.
C3 New York University; Pennsylvania Commonwealth System of Higher
   Education (PCSHE); Pennsylvania State University; Pennsylvania State
   University - University Park; Penn State Behrend
RP Cleland, CM (corresponding author), NYU, Meyers Coll Nursing, Ctr Drug Use & HIV Res, New York, NY 10010 USA.
EM chuck.cleland@nyu.edu
OI Cleland, Charles/0000-0002-6931-9904
FU National Institute on Drug Abuse [R01DA032083, P30DA011041, P50DA039838]
FX This study was supported by the National Institute on Drug Abuse
   (R01DA032083, PI: Gwadz; P30DA011041, PIs: Deren and Hagan; P50DA039838,
   PI: Collins).
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NR 67
TC 18
Z9 21
U1 0
U2 8
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 7
PY 2017
VL 5
AR 237
DI 10.3389/fpubh.2017.00237
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 FH2IV
UT WOS:000410963500001
PM 28936431
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Reder, A
   Rianna, G
   Mercogliano, P
   Castellari, S
AF Reder, Alfredo
   Rianna, Guido
   Mercogliano, Paola
   Castellari, Sergio
TI Parametric investigation of Urban Heat Island dynamics through TEB 1D
   model for a case study: Assessment of adaptation measures
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban Heat Island; Adaptation measures; Climate-resilient cities; Green
   roof; Cool roof; Cool pavement; Green area
ID REGIONAL CLIMATE MODEL; SURFACE-ENERGY BALANCE; MITIGATION STRATEGIES;
   THERMAL COMFORT; CFD ANALYSIS; GREEN ROOF; COSMO-CLM; SCHEME; CITIES;
   AREA
AB At present, the urban population has to cope with the effects caused from Urban Heat Island (UHI), poor air quality and increased frequency and/or intensity of extreme weather and climate events. The expected increase of these extremes in areas of the planet and the way to adapt to them has emphasized the need to investigate in detail the climate of the cities. Local vulnerability and risk assessments, supported by using regional climate models at very high resolution, are key to support development and implementation of effective local adaptation measures to make well-adapted and climate-resilient cities, i.e. more sustainable ones. This study aims to provide some quantitative information on the effectiveness of main local adaptation measures to reduce the magnitude of UHI, in terms of temperature and energy fluxes. The investigation was conducted by adopting the TEB 1D model for the Toulouse city case-study. Different urban configurations and adaptation measures have been considered in the model set up. The results confirm that different adaptation measures may reduce the temperature on the town elements during the daylight hours; among the different measures, the green roof prevent the radiative cooling, increasing the roof night temperature and contributing to the night UHI.
C1 [Reder, Alfredo; Rianna, Guido; Mercogliano, Paola; Castellari, Sergio] CMCC Fdn, Reg Models & Geo Hydrol Impacts REMHI, Euro Mediterranean Ctr Climate Change, Lecce, Italy.
   [Reder, Alfredo] Univ Federico II, DICEA, Naples, Italy.
   [Mercogliano, Paola] CIRA Italian Aerosp Res Ctr, Capua, Italy.
   [Castellari, Sergio] INGV, Pisa, Italy.
   [Castellari, Sergio] EEA, Copenhagen, Denmark.
C3 Centro Euro-Mediterraneo sui Cambiamenti Climatici (CMCC); University of
   Naples Federico II; CIRA - Italian Aerospace Research Centre; Istituto
   Nazionale Geofisica e Vulcanologia (INGV)
RP Reder, A (corresponding author), CMCC Fdn, Reg Models & Geo Hydrol Impacts REMHI, Euro Mediterranean Ctr Climate Change, Lecce, Italy.
EM alfredo.reder@cmcc.it; guido.rianna@cmcc.it; p.mercogliano@cira.it;
   sergio.castellari@eea.europa.eu
RI Rianna, Guido/J-2735-2019; castellari, sergio/C-8392-2012
OI Mercogliano, Paola/0000-0001-7236-010X; RIANNA,
   Guido/0000-0003-0956-4243; CASTELLARI, Sergio/0000-0002-7809-2123;
   REDER, Alfredo/0000-0002-5782-8170
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NR 51
TC 14
Z9 14
U1 4
U2 32
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 662
EP 673
DI 10.1016/j.scs.2018.03.023
PG 12
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA GH1NO
UT WOS:000433169800060
DA 2025-04-22
ER

PT J
AU Abdel-Mooty, MN
   Yosri, A
   El-Dakhakhni, W
   Coulibaly, P
AF Abdel-Mooty, Moustafa Naiem
   Yosri, Ahmed
   El-Dakhakhni, Wael
   Coulibaly, Paulin
TI Community Flood Resilience Categorization Framework
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Resilience; Robustness; Risk classification; Unsupervised machine
   learning; Cluster analysis; Flood hazard; Flood risk
ID RISK; NETWORK; MODELS
AB Coupled with climate change, the expansive developments of urban areas are causing a significant increase in flood-related disasters worldwide. However, most flood risk analysis and categorization efforts have been focused on the hydrologic features of flood hazards (e.g., inundation depth, extent, and duration), rarely considering the resulting long-term losses and recovery time (i.e., the community's flood resilience). This paper aims at developing a data-driven community flood resilience categorization framework that can be utilized for the development of realistic disaster management strategies and proactive risk mitigation measures to better protect urban centers from future catastrophic flood events. This approach considers key resilience goals such as the robustness of the exposed community and its recovery rapidity. Such categorization that calls on the two resilience means, namely resourcefulness and redundancy, can empower decision makers to learn from past events and guide future resilience strategies. To demonstrate the applicability of the developed framework, a data-driven framework was applied on historical mainland flood disaster records collected by the US National Weather Services between 1996 and 2019. Descriptive analysis was conducted to identify the features of this dataset as well as the interdependence between the different variables considered. To further demonstrate the utilization of the developed data-driven framework, a spatial analysis was conducted to quantify community flood resilience across different counties within the affected states. Beyond the work presented in this paper, the developed framework lays the foundation to adopt data driven approaches for disasters prediction to guide proactive risk mitigation measures and develop community resilience management insights.
C1 [Abdel-Mooty, Moustafa Naiem] McMaster Univ, Dept Civil Engn, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
   [Yosri, Ahmed] McMaster Univ, INTERFACE Inst Multihazard Syst Risk Studies, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
   [El-Dakhakhni, Wael] McMaster Univ, INTERFACE Inst Multihazard System Risk Studies, Dept Civil Engn, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
   [El-Dakhakhni, Wael] McMaster Univ, Sch Computat Sci & Engn, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
   [Coulibaly, Paulin] McMaster Univ, Dept Civil Engn, NSERC FloodNet, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
C3 McMaster University; McMaster University; McMaster University; McMaster
   University; McMaster University
RP Abdel-Mooty, MN (corresponding author), McMaster Univ, Dept Civil Engn, 1280 Main St West, Hamilton, ON L8S 4L7, Canada.
EM abdelmom@mcmaster.ca; ahmeda69@mcmaster.ca; eldak@mcmaster.ca;
   couliba@mcmaster.cn
RI Yosri, Ahmed/GQH-1175-2022; Abdel-Mooty, Moustafa/HIR-3844-2022
OI Yosri, Ahmed/0000-0002-1956-5875; Abdel-Mooty, Moustafa
   Naiem/0000-0003-3354-1068
FU Vanier Canada Graduate Scholarship (Vanier-CGS); Natural Science and
   Engineering Research Council (NSERC) through the CaNRisk-Collaborative
   Research and Training Experience (CREATE) program; INViSiONLab;
   INTERFACE Institute at McMaster University
FX The work presented herein is supported by the Vanier Canada Graduate
   Scholarship (Vanier-CGS) awarded to the corresponding author, and the
   Natural Science and Engineering Research Council (NSERC) through the
   CaNRisk-Collaborative Research and Training Experience (CREATE) program.
   Additional support through the INViSiONLab and the INTERFACE Institute
   at McMaster University is also acknowledged.
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NR 74
TC 22
Z9 26
U1 15
U2 68
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD JUL
PY 2021
VL 61
AR 102349
DI 10.1016/j.ijdrr.2021.102349
EA JUN 2021
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 SW0FZ
UT WOS:000664193600002
DA 2025-04-22
ER

PT J
AU Rozhenkova, V
   Allmang, S
   Ly, S
   Franken, D
   Heymann, J
AF Rozhenkova, Veronika
   Allmang, Skye
   Ly, Stephanie
   Franken, Daniel
   Heymann, Jody
TI The role of comparative city policy data in assessing progress toward
   the urban SDG targets
SO CITIES
LA English
DT Article
DE Sustainable Development Goals; Urban SDG; SDG 11 targets; Urban policy;
   City policy; Policy database
ID LEAVE
AB As part of the UN Sustainable Development Goals, all countries have agreed to "make cities and human settlements inclusive, safe, resilient and sustainable". We argue that there is a critical need for large-scale comparative city policy data that, when linked with outcome data, could be used to identify where policies are working and where they could be improved. In an assessment of the landscape of existing city policy data, based on a comprehensive scoping review, we find that existing databases are insufficient for the purposes of comparative analysis. We then describe what an "ideal" city policy database would look like, where it could be housed, and how it could be developed. Such a database could be a key tool for achieving SDG 11, the urban Sustainable Development Goal.
C1 [Rozhenkova, Veronika; Allmang, Skye; Ly, Stephanie; Franken, Daniel; Heymann, Jody] Univ Calif Los Angeles, Fielding Sch Publ Hlth, WORLD Policy Anal Ctr, 621 Charles E Young Dr S,2213-LSB, Los Angeles, CA 90095 USA.
   [Ly, Stephanie] Univ Calif Los Angeles, Fielding Sch Publ Hlth, Community Hlth Sci Dept, Los Angeles, CA USA.
   [Ly, Stephanie] Univ Calif Los Angeles, Calif Ctr Populat Res, 4284 Publ Affairs Bldg, Los Angeles, CA 90095 USA.
C3 University of California System; University of California Los Angeles;
   University of California System; University of California Los Angeles;
   University of California System; University of California Los Angeles
RP Rozhenkova, V (corresponding author), Univ Calif Los Angeles, Fielding Sch Publ Hlth, WORLD Policy Anal Ctr, 621 Charles E Young Dr S,2213-LSB, Los Angeles, CA 90095 USA.
EM veronika14@ucla.edu; sallmang@ph.ucla.edu; stephaniely@ucla.edu;
   dfranken@ph.ucla.edu; jody.heymann@ph.ucla.edu
RI Rozhenkova, Veronika/GLR-7562-2022
OI Heymann, Jody/0000-0003-0008-4198
CR [Anonymous], 2013, Technical report
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NR 20
TC 27
Z9 31
U1 8
U2 52
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD DEC
PY 2019
VL 95
AR 102357
DI 10.1016/j.cities.2019.05.026
PG 8
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA JQ1YG
UT WOS:000498748100012
OA Green Published
DA 2025-04-22
ER

PT J
AU Dong, XS
   Cui, HJ
   Su, Y
   Zhu, MQ
   Yao, S
AF Dong, Xiushi
   Cui, Hongjun
   Su, Yue
   Zhu, Minqing
   Yao, Sheng
TI Identifying critical road segments and optimizing resilience strategies
   based on multi-state congested characteristics
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Multi-state Network; Resilience; Critical road segments; Transportation
   congestion; Repair order
ID TRAFFIC CONGESTION; NETWORK; RESTORATION
AB The urban transportation systems are susceptible to congestion, accidents, and other costly delays, and recovery is challenging. Accurately identifying critical road segments and determining the optimization order are essential prerequisites for significantly improving network resilience. In this context, this paper proposes a method for identifying critical segments in congested road networks and a resilience optimization strategy based on the optimized order. Firstly, multiple congested states of segments are classified by their speed, and the performance is estimated by the probability-based method. Then, performance and temporal dimensions are combined to evaluate segment resilience. After that, the concept of local network resilience for segments is introduced. A resilience-based method for identifying critical road segments is proposed considering both segment performance and their connections with the network. Finally, the proposed resilience optimization strategy is demonstrated to significantly enhance network resilience by comparing it based only on complex network approaches or segment resilience. This has practical implications for alleviating traffic congestion or determining post-disaster network repair priorities.
C1 [Dong, Xiushi; Cui, Hongjun; Su, Yue] Hebei Univ Technol, Sch Civil & Transportat, Xiping Rd 5340, Tianjin, Peoples R China.
   [Zhu, Minqing; Yao, Sheng] Hebei Univ Technol, Sch Architecture & Art Design, Xiping Rd 5340, Tianjin, Peoples R China.
C3 Hebei University of Technology; Hebei University of Technology
RP Su, Y (corresponding author), Hebei Univ Technol, Sch Civil & Transportat, Xiping Rd 5340, Tianjin, Peoples R China.; Zhu, MQ (corresponding author), Hebei Univ Technol, Sch Architecture & Art Design, Xiping Rd 5340, Tianjin, Peoples R China.
EM dongxs0813@163.com; cuihongjun@hebut.edu.cn; suyue17860637806@163.com;
   2018005@hebut.edu.cn; yaosheng@tju.edu.cn
FU National Natural Sci-ence Foundation of China [52172304, 52372302]; Key
   Funding Project of Hebei Provincial Department of Science and Technology
   [22370801D]
FX <BOLD>Acknowledgement</BOLD> This study has been financially supported
   by National Natural Sci-ence Foundation of China (52172304, 52372302)
   and the Key Funding Project of Hebei Provincial Department of Science
   and Technology (22370801D) .
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NR 52
TC 0
Z9 0
U1 16
U2 16
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 JUN
PY 2025
VL 258
AR 110912
DI 10.1016/j.ress.2025.110912
EA FEB 2025
PG 15
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA Y1O3T
UT WOS:001429903100001
DA 2025-04-22
ER

PT J
AU Didier, S
   Morange, M
   Peyroux, E
AF Didier, Sophie
   Morange, Marianne
   Peyroux, Elisabeth
TI The Adaptative Nature of Neoliberalism at the Local Scale: Fifteen Years
   of City Improvement Districts in Cape Town and Johannesburg
SO ANTIPODE
LA English
DT Article
DE neoliberalism; urban regeneration; urban policy mobilities; business
   improvement districts; Johannesburg; Cape Town
ID URBAN GOVERNANCE; NEO-LIBERALISM; STATE; POLICIES; GEOGRAPHIES;
   APARTHEID; SECTOR; DURBAN
AB By unravelling the adoption and adaptation of the North American Business Improvement District (BID) model in South African cities, this paper considers the way neoliberal principles are making their way in the post-apartheid context. Drawing on a comparative approach of BIDs in Johannesburg and Cape Town, we analyse the tensions and conflicts surrounding their implementation and unpack the resilience of this model. As unexpected as this resilience might be in such a context, that is, far away from the heartland of neoliberalism, we argue that this resilience is linked to the permeability of the local contexts and to the plasticity of the model itself at the city and neighbourhood levels, reflecting a capacity to adapt to inherited regulatory frameworks, patterns of territorial development and embedded socio-political alliances of the local terrains, as well as an ability to accommodate post-apartheid issues through the crafting of what we refer to as local Third Ways.
C1 [Didier, Sophie] French Inst S Africa, Inst Francais Afrique Sud, Johannesburg, South Africa.
   [Morange, Marianne] Univ Paris Diderot, SEDET, Paris, France.
   [Peyroux, Elisabeth] Univ Toulouse II Le Mirail, Natl Ctr Sci Res CNRS, LISST, Toulouse, France.
C3 Universite Paris Cite; Universite de Toulouse; Universite de Toulouse -
   Jean Jaures; Centre National de la Recherche Scientifique (CNRS)
RP Didier, S (corresponding author), French Inst S Africa, Inst Francais Afrique Sud, Johannesburg, South Africa.
EM sophie@ifas.org.za; marianne.morange@paris7.jussieu.fr;
   elisabeth.peyroux@univ-tlse2.fr
RI DIDIER, Sophie/AHI-8295-2022
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NR 99
TC 57
Z9 62
U1 0
U2 44
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0066-4812
EI 1467-8330
J9 ANTIPODE
JI Antipode
PD JAN
PY 2013
VL 45
IS 1
BP 121
EP 139
DI 10.1111/j.1467-8330.2012.00987.x
PG 19
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA 056ZW
UT WOS:000312532300007
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Al-Qadi, D
AF Al-Qadi, Dana
TI PIE Index: Quantifying Stakeholder Engagement on Urban Water System
   Projects and Initiatives
SO JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT
LA English
DT Article
DE Urban water systems; Stakeholder engagement; Project management;
   Requirements elicitation; Participatory implementable engineering (PIE)
   index
ID RESILIENCE; MANAGEMENT; REQUIREMENTS; FRAMEWORK; PARTICIPATION;
   INVOLVEMENT; STRATEGIES
AB Recent water crises showed that excluding community stakeholders in urban water system decision-making throughout can have an adverse effect on the entire community and decrease system resilience. Although engineering managers value input from stakeholders (any group or individual that can impact or is influenced by an organization's decisions), community engagement historically has been limited. This study examined the impact of including community stakeholders in decision-making by developing the participatory implementable engineering (PIE) index to quantify stakeholder engagement for engineering managers. In addition, the PIE model was applied to a number of case study cities for validation. The case studies validated the early engagement of community stakeholders in project decision-making as contributing to increased system resilience and decreasing the likelihood of system disruptions and/or jeopardized water quality. A scaffolding is proposed to quantify stakeholder engagement and show that targeted stakeholder engagement can be used for improved engineering decision-making.
C1 [Al-Qadi, Dana] AECOM, Smart Energy, 303 E Wacker Dr, Chicago, IL 60601 USA.
RP Al-Qadi, D (corresponding author), AECOM, Smart Energy, 303 E Wacker Dr, Chicago, IL 60601 USA.
EM Dana.alqadi@aecom.com
OI Al-Qadi, Dana/0000-0001-5458-4310
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NR 47
TC 2
Z9 2
U1 1
U2 16
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 JUL 1
PY 2020
VL 146
IS 7
AR 04020043
DI 10.1061/(ASCE)WR.1943-5452.0001232
PG 10
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Water Resources
GA LS0EY
UT WOS:000536068400004
DA 2025-04-22
ER

PT J
AU Andres, L
   Round, J
AF Andres, Lauren
   Round, John
TI The role of 'persistent resilience' within everyday life and polity:
   households coping with marginality within the 'Big Society'
SO ENVIRONMENT AND PLANNING A-ECONOMY AND SPACE
LA English
DT Article
DE persistent resilience; coping practices; everyday life; informal spaces;
   urban regeneration; austerity
ID REGIONAL RESILIENCE; UK; ADAPTATION; AUSTERITY; COMMUNITY; CRISIS
AB As Europe's current economic crisis continues many households are developing new coping strategies in response to the pressures of everyday life. This paper explores such practices within Birmingham's Castle Vale housing estate, drawing on the increasing engagement within the social sciences with notions of resilience. This concept, originating from engineering, psychology, and disaster management, is increasingly used in urban and economic geography, and is becoming influential on state policy. This paper furthers its current usages by proposing the concept of 'persistent resilience', whereby households, and their networks, develop responses not just to 'shocks', but also to more long-term processes, such as the changing nature of employment and/or responses to constantly altering state policies. This form of resilience has significant policy relevance, as it can be seen, albeit under different names, at the heart of the British government's 'Big Society' project, within which communities are to be empowered to steer their development while 'big government' withdraws. This paper argues, however, that there is an inherent tension within such assumptions of community-led development, as they do not consider the spaces in which it takes place. As the paper demonstrates, 'persistent resilience' is often formed in the semiformal/informal spaces of everyday life, which, in many cases, will be destroyed by cuts to government funding to communities. Thus, the paper calls for a more nuanced, everyday understanding of resilience and the spaces within which it is formed and transmitted.
C1 [Andres, Lauren; Round, John] Univ Birmingham, Ctr Urban & Reg Studies, Sch Geog Earth & Environm Sci, Birmingham B15 2TT, W Midlands, England.
   [Round, John] Kazan Fed Univ, Int Lab Comparat Urban Studies, Kazan, Russia.
C3 University of Birmingham; Kazan Federal University
RP Andres, L (corresponding author), Univ Birmingham, Ctr Urban & Reg Studies, Sch Geog Earth & Environm Sci, Birmingham B15 2TT, W Midlands, England.
EM l.andres@bham.ac.uk; j.round@bham.ac.uk
OI Round, John/0000-0003-0005-2348
FU Russian Government; University of Birmingham (Resilience Initiative)
FX This work was in part supported by the subsidy of the Russian Government
   to support the Program of Competitive Growth of Kazan Federal University
   among the World's Leading Academic Centers. It was also partly supported
   by the University of Birmingham (Resilience Initiative).
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NR 46
TC 33
Z9 33
U1 2
U2 41
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0308-518X
EI 1472-3409
J9 ENVIRON PLANN A
JI Environ. Plan. A
PY 2015
VL 47
IS 3
BP 676
EP 690
DI 10.1068/a46299
PG 15
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA CF2GM
UT WOS:000352365600012
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Zhang, HM
   Yang, JY
   Li, LS
   Shen, DY
   Wei, G
   Khan, HUR
   Dong, SJ
AF Zhang, Huiming
   Yang, Jiayun
   Li, Lianshui
   Shen, Danyun
   Wei, Guo
   Khan, Haroon ur Rashid
   Dong, Sujiang
TI Measuring the resilience to floods: A comparative analysis of key flood
   control cities in China
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Disaster resilience; Entropy-weighting TOPSIS; Floods
ID COMMUNITY RESILIENCE
AB Floods are among the most deadly disasters that affect people's well-being and livelihoods in China. Although improving resilience to floods is an important measure for disaster mitigation, few studies compare flood resilience in different watershed regions in China. To fill this gap, we constructed a comprehensive evaluation model that focused on revising the indicator system. We used the entropy-weighting TOPSIS method to comprehensively consider the four dimensions of economy, society, environment, and management, and then we diagnosed the resilience to flood disasters in 31 key flood control cities across China. The results showed that both cities in the Haihe River Basin and the provincial capitals had a stronger resilience to flooding than other basins, but for the cities of the Huaihe River Basin, resilience was weaker. In some regions with weak economic strength, however, the resilience to floods was strong. The levels of urban infrastructure, water conservation projects, and information about water conservation should be enhanced to improve flood resilience.
C1 [Zhang, Huiming] Nanjing Univ Informat Sci & Technol, Collaborat Innovat Ctr Forecast & Evaluat Meteoro, Nanjing 210044, Peoples R China.
   [Zhang, Huiming; Yang, Jiayun; Li, Lianshui; Khan, Haroon ur Rashid; Dong, Sujiang] Nanjing Univ Informat Sci & Technol, Sch Management Sci & Engn, Nanjing 210044, Peoples R China.
   [Shen, Danyun] Nanjing Univ Informat Sci & Technol, Sch Appl Technol, Nanjing 210044, Peoples R China.
   [Wei, Guo] Univ North Carolina Pembroke, Dept Math & Comp Sci, Pembroke, NC 28372 USA.
C3 Nanjing University of Information Science & Technology; Nanjing
   University of Information Science & Technology; Nanjing University of
   Information Science & Technology; University of North Carolina at
   Pembroke; University of North Carolina
RP Zhang, HM (corresponding author), Nanjing Univ Informat Sci & Technol, Collaborat Innovat Ctr Forecast & Evaluat Meteoro, Nanjing 210044, Peoples R China.
EM 002068@nuist.edu.cn; yangjy_1996@foxmail.com; llsh@nuist.edu.cn;
   880109@nuist.edu.cn; guo.wei@uncp.edu; harunkhan1@gmail.com;
   201813630064@nuist.edu.cn
RI Khan, Haroon/B-6188-2016
OI Khan, Haroon/0000-0001-9731-8573
FU Major Project of National Social Sciences Fund of China [16ZDA047];
   National Science Foundation of China [71503136, 71834003, 71603127];
   National Social Science Fund [19BGL185]; Postgraduate Research
   Innovation Program of Jiangsu Province of China [SJKY19_0985];
   Innovation and Entrepreneurship Training Program for College Students
   [202010300016Z]
FX This work was supported by the Major Project of National Social Sciences
   Fund of China (no. 16ZDA047), National Science Foundation of China
   (71503136, 71834003, 71603127), National Social Science Fund (no.
   19BGL185), Postgraduate Research Innovation Program of Jiangsu Province
   of China (No. SJKY19_0985), and Innovation and Entrepreneurship Training
   Program for College Students (No. 202010300016Z). I would like to thank
   Thomas A. Gavin, Professor Emeritus, Cornell University, for help with
   editing this paper.
CR [Anonymous], 1981, LECT NOTES EC MATH S
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U1 26
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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 1
PY 2021
VL 59
AR 102248
DI 10.1016/j.ijdrr.2021.102248
EA MAY 2021
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 SJ6KX
UT WOS:000655642700006
DA 2025-04-22
ER

PT J
AU Ge, DZ
   Long, HL
   Ma, L
   Zhang, YN
   Tu, SS
AF Ge, Dazhuan
   Long, Hualou
   Ma, Li
   Zhang, Yingnan
   Tu, Shuangshuang
TI Analysis Framework of China's Grain Production System: A Spatial
   Resilience Perspective
SO SUSTAINABILITY
LA English
DT Article
DE agricultural labor transition; land use transition; food security;
   smallholder livelihood; cross-scale analysis; stakeholders
ID CLOSING YIELD GAPS; FOOD SECURITY; SUSTAINABLE LIVELIHOODS; INCOME
   INEQUALITY; RURAL-DEVELOPMENT; LAND; IMPACT; URBANIZATION; TRANSITION;
   PATTERNS
AB China's grain production has transformed from absolute shortage to a current structural oversupply. High-intensity production introduced further challenges for the eco-environment, smallholder livelihood, and the man-land interrelationship. Driven by urban-rural transformation, research on food security patterns and grain production has expanded into a new field. To analyze the challenges and required countermeasures for China's grain production system (GPS), this study constructed a theoretical GPS framework based on space resilience. Firstly, a new GPS concept was proposed and a functional system was established for protecting the regional food security, thus guaranteeing smallholder livelihood, stabilizing urban-rural transformation, and sustaining the eco-environment in terms of economic, social, and ecological attributes of the GPS. Secondly, based on a cross-scale interaction analysis that varied from a smallholder scale to a global scale, the systematic crisis of the GPS was analyzed. Thirdly, a cross-scale analytic framework of the GPS was formed from the perspective of spatial resilience, integrating both inner and external disturbance factors of the GPS. Both spatial heterogeneity and connectivity of internal and external disturbance factors are important contents of system space resilience. Finally, the hierarchy of spatial resilience of GPS became clear. The transformation of labor force and the land use transition form key thresholds of the GPS. In summary: based on protecting the basic functions of the GPS, the cross-scale effect of systematic disturbance factors and relevant countermeasures for spatial resilience are effectively influenced by the coordination of the interests of multiple stakeholders; spatial resilience is an effective analytical tool for GPS regulation, providing a reference for revealing the inherent mechanism and functional evolution of the GPS in the process of urban-rural transformation.
C1 [Ge, Dazhuan; Long, Hualou; Ma, Li; Zhang, Yingnan; Tu, Shuangshuang] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Ge, Dazhuan; Long, Hualou; Ma, Li; Zhang, Yingnan] Chinese Acad Sci, Ctr Assessment & Res Targeted Poverty Alleviat, Beijing 100101, Peoples R China.
   [Ge, Dazhuan; Ma, Li; Zhang, Yingnan] Univ Chinese Acad Sci, Beijing 100049, Peoples R China.
   [Long, Hualou] Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China.
   [Tu, Shuangshuang] Guangxi Teachers Educ Univ, Key Lab Environm Change & Resources Use Beibu Gul, Minist Educ, Nanning 530001, Peoples R China.
C3 Chinese Academy of Sciences; Institute of Geographic Sciences & Natural
   Resources Research, CAS; Chinese Academy of Sciences; Chinese Academy of
   Sciences; University of Chinese Academy of Sciences, CAS; Chinese
   Academy of Sciences; University of Chinese Academy of Sciences, CAS;
   Nanning Normal University
RP Long, HL; Tu, SS (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.; Long, HL (corresponding author), Chinese Acad Sci, Ctr Assessment & Res Targeted Poverty Alleviat, Beijing 100101, Peoples R China.; Long, HL (corresponding author), Univ Chinese Acad Sci, Coll Resources & Environm, Beijing 100049, Peoples R China.; Tu, SS (corresponding author), Guangxi Teachers Educ Univ, Key Lab Environm Change & Resources Use Beibu Gul, Minist Educ, Nanning 530001, Peoples R China.
EM gedz.15b@igsnrr.ac.cn; longhl@igsnrr.ac.cn; mal.17b@igsnrr.ac.cn;
   zhangyn.16b@igsnrr.ac.cn; tuss@gxtc.edu.cn
RI Tu, Shuangshuang/JOZ-1387-2023; LONG, Hualou/AAE-9250-2019; Ge,
   Dazhuan/AET-9786-2022; Zhang, Yingnan/LSL-2273-2024; Ge,
   Dazhuan/M-9145-2017
OI Ge, Dazhuan/0000-0001-8995-6540; Long, Hualou/0000-0002-9146-2467;
   Zhang, Yingnan/0000-0002-9368-8814
FU Key Program of National Natural Science Foundation of China [41731286];
   BaGui Scholars Program of Guangxi Zhuang Autonomous Region
FX This work was supported by the Key Program of National Natural Science
   Foundation of China (Grant No. 41731286) and the BaGui Scholars Program
   of Guangxi Zhuang Autonomous Region.
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NR 117
TC 13
Z9 16
U1 7
U2 80
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD DEC
PY 2017
VL 9
IS 12
AR 2340
DI 10.3390/su9122340
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 FR7FA
UT WOS:000419231500186
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Hu, H
   Tang, GN
AF Hu, Hui
   Tang, Gennian
TI Model Study on the Impact of Foreign Trade on Economic Resilience Based
   on Improved Self-Regulating Annealing Particle Swarm Optimization (China
   Yangtze River Delta as an Example)
SO TEHNICKI VJESNIK-TECHNICAL GAZETTE
LA English
DT Article
DE adaptive parameter; economic resilience; foreign trade; self-regulating
   annealing particle swarm; Yangtze river delta urban agglomeration
AB In order to improve the global search ability of PSO and avoid falling into local extreme value, an improved self-regulating tabu annealing PSO was proposed to study the impact of foreign trade on economic resilience model (China Yangtze River Delta as an example). Firstly, improving the inertial adaptive weights and introducing adjustment factors to constrain the learning particles can make the algorithm have stronger searching ability. The improved algorithm can realize the self-adjustment of inertia weights. Secondly, the improved simulated annealing particle swarm optimization algorithm is verified and compared with the former algorithm through two different functions, and the results show that the convergence speed and accuracy are improved. According to the sensitivity calculation, the compensation node is determined for reactive power compensation. The final results show that the resilience of tourism economy in the Yangtze River Delta urban agglomerations presents a changing trend of "rising first and then decreasing", and the resilience level of all cities is on the rise. The cities with high resilience are mainly distributed in the central and eastern regions, and the resilience level of tourism economy in each city has a certain spatial agglomeration characteristic. The resilience of tourism economy is comprehensively affected by economic development level, economic development structure, infrastructure and government intervention, among which the speed of tourism development has a significant negative impact on the resilience of tourism economy, and other factors have a significant promoting effect.
C1 [Hu, Hui; Tang, Gennian] Zhejiang Univ Technol, Sch Management, Hangzhou 310023, Zhejiang, Peoples R China.
   [Tang, Gennian] Zhejiang Univ Technol, Zhijiang Coll, Shaoxing 312030, Zhejiang, Peoples R China.
C3 Zhejiang University of Technology; Zhejiang University of Technology
RP Hu, H (corresponding author), Zhejiang Univ Technol, Sch Management, Hangzhou 310023, Zhejiang, Peoples R China.
EM hhui_smzjut@163.com
RI Tang, GenNian/GYD-4459-2022
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NR 33
TC 0
Z9 0
U1 0
U2 0
PU UNIV OSIJEK, TECH FAC
PI SLAVONSKI BROD
PA TRG IVANE BRLIC-MAZURANIC 2, SLAVONSKI BROD, HR-35000, CROATIA
SN 1330-3651
EI 1848-6339
J9 TEH VJESN
JI Teh. Vjesn.
PD FEB
PY 2025
VL 32
IS 2
BP 474
EP 484
DI 10.17559/TV-20241023002086
PG 11
WC Engineering, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA 0BC8L
UT WOS:001443166000010
DA 2025-04-22
ER

PT J
AU Langendijk, GS
   Halenka, T
   Hoffmann, P
   Adinolfi, M
   Campino, AA
   Asselin, O
   Bastin, S
   Bechtel, B
   Belda, M
   Bushenkova, A
   Campanale, A
   Chun, KP
   Constantinidou, K
   Coppola, E
   Demuzere, M
   Doan, QV
   Evans, J
   Feldmann, H
   Fernandez, J
   Fita, L
   Hadjinicolaou, P
   Hamdi, R
   Hundhausen, M
   Grawe, D
   Johannsen, F
   Milovac, J
   Katragkou, E
   Kerroumi, NE
   Kotlarski, S
   Le Roy, B
   Lemonsu, A
   Lennard, C
   Lipson, M
   Mandal, S
   Pabón, LEM
   Pavlidis, V
   Pietikäinen, JP
   Raffa, M
   Raluy-López, E
   Rechid, D
   Ito, R
   Schulz, JP
   Soares, PMM
   Takane, Y
   Teichmann, C
   Thatcher, M
   Top, S
   Van Schaeybroeck, B
   Wang, FX
   Yuan, JC
AF Langendijk, Gaby S.
   Halenka, Tomas
   Hoffmann, Peter
   Adinolfi, Marianna
   Campino, Aitor Aldama
   Asselin, Olivier
   Bastin, Sophie
   Bechtel, Benjamin
   Belda, Michal
   Bushenkova, Angelina
   Campanale, Angelo
   Chun, Kwok Pan
   Constantinidou, Katiana
   Coppola, Erika
   Demuzere, Matthias
   Doan, Quang-Van
   Evans, Jason
   Feldmann, Hendrik
   Fernandez, Jesus
   Fita, Lluis
   Hadjinicolaou, Panos
   Hamdi, Rafiq
   Hundhausen, Marie
   Grawe, David
   Johannsen, Frederico
   Milovac, Josipa
   Katragkou, Eleni
   Kerroumi, Nour El Islam
   Kotlarski, Sven
   Le Roy, Benjamin
   Lemonsu, Aude
   Lennard, Christopher
   Lipson, Mathew
   Mandal, Shailendra
   Munoz Pabon, Luis E.
   Pavlidis, Vassileios
   Pietikaeinen, Joni-Pekka
   Raffa, Mario
   Raluy-Lopez, Eloisa
   Rechid, Diana
   Ito, Rui
   Schulz, Jan-Peter
   Soares, Pedro M. M.
   Takane, Yuya
   Teichmann, Claas
   Thatcher, Marcus
   Top, Sara
   Van Schaeybroeck, Bert
   Wang, Fuxing
   Yuan, Jiacan
TI Towards better understanding the urban environment and its interactions
   with regional climate change - The WCRP CORDEX Flagship Pilot Study
   URB-RCC
SO URBAN CLIMATE
LA English
DT Article
DE Urban areas; Regional climate models; Coordinated experiment; URB-RCC;
   Kilometer scale modelling
ID BALANCE TEB SCHEME; HEAT-ISLAND; LAND-SURFACE; AIR-QUALITY; IMPACT;
   MODEL; ENERGY; PARAMETERIZATION; EMISSIONS; PROSPECTS
AB High-quality climate information tailored to cities' needs assists decision makers to prepare for and adapt to climate change impacts, as well as to support the targeted transition towards climate resilient cities. During the last decades, two main modelling approaches emerged to understand and analyse the urban climate and to generate information. Firstly, meso- and microscale urban climate models commonly resolve the street to city scale climate (1 m to 1 km) through simulating short "weather" type episodes, possibly under climate change conditions. Secondly, regional climate models (RCMs) are currently approaching the kilometer scale grid resolutions (1-4 km) and becoming increasingly relevant to understand the interactions of cities with the regional climate on timescales from decades up to a century. Therefore, the WCRP CORDEX Flagship Pilot Study "URBan environments and Regional Climate Change (FPS URB-RCC)" brings together the urban climate modelling community and the RCM community and focuses on understanding the interactions between urban areas and regional climate change, with the help of coordinated experiments with an RCM ensemble having refined urban representations. This paper presents the FPS URB-RCC, its main aims, as well as the initial steps taken. The FPS URB-RCC advances urban climate projections and information to support evidence-based climate action towards climate resilient cities.
C1 [Langendijk, Gaby S.] Deltares, Climate Adaptat & Disaster Risk Dept, POB 177, NL-2600 Delft, Netherlands.
   [Halenka, Tomas; Belda, Michal] Charles Univ Prague, Dept Atmospher Phys, Fac Math & Phys, V Holesovickach 2, Prague 18000 8, Czech Republic.
   [Langendijk, Gaby S.; Hoffmann, Peter; Le Roy, Benjamin; Teichmann, Claas] Helmholtz Zentrum Hereon, Climate Serv Ctr Germany GERICS, Fischertwiete 1, D-20095 Hamburg, Germany.
   [Adinolfi, Marianna; Campanale, Angelo] CMCC Fdn, Reg Models & Geo Hydrol Impacts REMHI Div, Euro Mediterranean Ctr Climate Change, Via Thomas Alva Edison s n c, I-81100 Caserta, CE, Italy.
   [Campino, Aitor Aldama; Wang, Fuxing] Swedish Meteorol & Hydrol Inst, Folkborgsvagen 17, S-60176 Norrkoping, Sweden.
   [Asselin, Olivier; Thatcher, Marcus] Ouranos, 550 rue Sherbrooke Ouest, Montreal, PQ H3A IB9, Canada.
   [Bastin, Sophie] Sorbonne Univ, CNRS, LATMOS, UVSQ Univ Paris Saclay,IPSL,CNES, Guyancourt, France.
   [Bechtel, Benjamin] Ruhr Univ Bochum, Bochum Urban Climate Lab, Bochum, Germany.
   [Bushenkova, Angelina; Johannsen, Frederico; Soares, Pedro M. M.] Univ Lisbon, Inst Dom Luiz IDL, Fac Ciencias, Lisbon, Portugal.
   [Chun, Kwok Pan] Univ West England, Sch Architecture & Environm, Bristol BS16 1YN, England.
   [Constantinidou, Katiana; Hadjinicolaou, Panos] Cyprus Inst, Climate & Atmosphere Res Ctr CARE C, Nicosia, Cyprus.
   [Coppola, Erika] Abdus Salam Int Ctr Theoret Phys ICTP, Trieste, Italy.
   [Demuzere, Matthias] B Kode VOG, Ghent, Belgium.
   [Doan, Quang-Van] Univ Tsukuba, Ctr Computat Sci, Tsukuba, Japan.
   [Evans, Jason] Univ New South Wales, Climate Change Res Ctr, Sydney, Australia.
   [Feldmann, Hendrik; Hundhausen, Marie] Karlsruhe Inst Technol KIT, Inst Meteorol & Climate Res IMKTRO, Karlsruhe, Germany.
   [Munoz Pabon, Luis E.] Univ Buenos Aires UBA, Ctr Invest Mar & Atmosfera CIMA, IRL 3351 IFAECI, CONICET,CNRS,IRD, C A Buenos Aires, Argentina.
   [Hamdi, Rafiq; Van Schaeybroeck, Bert] Royal Meteorol Inst Belgium, Brussels, Belgium.
   [Grawe, David] Univ Hamburg, CEN Urban Climate Lab Meteorol Inst, Bundesstr 55, D-20146 Hamburg, Germany.
   [Fernandez, Jesus; Milovac, Josipa] Univ Cantabria, Inst Fis Cantabria IFCA, CSIC, Santander, Spain.
   [Katragkou, Eleni; Pavlidis, Vassileios] Aristotle Univ Thessaloniki, Sch Geol, Dept Meteorol & Climatol, Thessaloniki, Greece.
   [Kerroumi, Nour El Islam] Off Natl Meteorol, Dar El Beida, Algeria.
   [Kotlarski, Sven] Fed Off Meteorol & Climatol MeteoSwiss, Zurich, Switzerland.
   [Lemonsu, Aude] Univ Toulouse, CNRS, CNRM, Meteo France, Toulouse, France.
   [Lennard, Christopher] Univ Cape Town, Rondebosch, South Africa.
   [Lipson, Mathew] Bur Meteorol, Melbourne, Australia.
   [Mandal, Shailendra] Natl Inst Technol Patna, Dept Architecture & Planning, Patna 800005, India.
   [Raluy-Lopez, Eloisa] Univ Murcia, Phys Earth, Reg Campus Int Excellence CEIR, Campus Mare Nostrum, Murcia, Spain.
   [Ito, Rui] Japan Agcy Marine Earth Sci & Technol, 3173-25 Showa Machi,Kanazawa Ku, Yokohama 2360001, Japan.
   [Schulz, Jan-Peter] German Meteorol Serv DWD, Frankfurter Str 135, D-63067 Offenbach, Germany.
   [Takane, Yuya] Natl Inst Adv Ind Sci & Technol, Environm Management Res Inst, Tsukuba, Japan.
   [Thatcher, Marcus] Commonwealth Sci & Ind Res Org CSIRO, Canberra, Australia.
   [Top, Sara] Univ Ghent, Ghent, Belgium.
   [Yuan, Jiacan] Fudan Univ, Dept Atmospher & Ocean Sci, Shanghai, Peoples R China.
   [Yuan, Jiacan] Fudan Univ, Inst Atmospher Sci, Shanghai, Peoples R China.
   [Yuan, Jiacan] Fudan Univ, Shanghai Key Lab Ocean land atmosphere Boundary D, Shanghai, Peoples R China.
C3 Deltares; Charles University Prague; Helmholtz Association;
   Helmholtz-Zentrum Hereon; Centro Euro-Mediterraneo sui Cambiamenti
   Climatici (CMCC); Swedish Meteorological & Hydrological Institute;
   Ouranos Consortium; Universite Paris Saclay; Sorbonne Universite; Centre
   National de la Recherche Scientifique (CNRS); Ruhr University Bochum;
   Universidade de Lisboa; University of West England; Abdus Salam
   International Centre for Theoretical Physics (ICTP); University of
   Tsukuba; University of New South Wales Sydney; Helmholtz Association;
   Karlsruhe Institute of Technology; Consejo Nacional de Investigaciones
   Cientificas y Tecnicas (CONICET); Royal Meteorological Institute of
   Belgium; University of Hamburg; Consejo Superior de Investigaciones
   Cientificas (CSIC); Universidad de Cantabria; CSIC - Instituto de Fisica
   de Cantabria (IFCA); Aristotle University of Thessaloniki; Federal
   Office of Meteorology & Climatology (MeteoSwiss); Universite de
   Toulouse; Centre National de la Recherche Scientifique (CNRS);
   University of Cape Town; Bureau of Meteorology - Australia; National
   Institute of Technology (NIT System); National Institute of Technology
   Patna; University of Murcia; Japan Agency for Marine-Earth Science &
   Technology (JAMSTEC); Deutscher Wetterdienst; National Institute of
   Advanced Industrial Science & Technology (AIST); Commonwealth Scientific
   & Industrial Research Organisation (CSIRO); Ghent University; Fudan
   University; Fudan University; Fudan University
RP Langendijk, GS (corresponding author), Deltares, Climate Adaptat & Disaster Risk Dept, POB 177, NL-2600 Delft, Netherlands.; Langendijk, GS (corresponding author), Helmholtz Zentrum Hereon, Climate Serv Ctr Germany GERICS, Fischertwiete 1, D-20095 Hamburg, Germany.
EM langendijk.gs@gmail.com; tomas.halenka@mff.cuni.cz;
   peter.hoffmann@hereon.de; marianna.adinolfi@cmcc.it;
   aitor.aldamacampino@smhi.se; asselin.olivier@ouranos.ca;
   sophie.bastin@latmos.ipsl.fr; benjamin.bechtel@rub.de;
   michal.belda@mff.cuni.cz; avbushenkova@ciencias.ulisboa.pt;
   angelo.campanale@cmcc.it; kwok.chun@uwe.ac.uk;
   k.constantinidou@cyi.ac.cy; coppolae@ictp.it; Matthias@b-kode.be;
   doan.van.gb@u.tsukuba.ac.jp; jason.evans@unsw.edu.au;
   hendrik.feldmann@kit.edu; jesus.fernandez@unican.es;
   lluis.fita@cima.fcen.uba.ar; p.hadjinicolaou@cyi.ac.cy;
   Rafiq.hamdi@meteo.be; marie.hundhausen@kit.edu;
   david.grawe@uni-hamburg.de; jfjohannsen@ciencias.ulisboa.pt;
   josipa.milovac@unican.es; katragou@geo.auth.gr;
   sven.kotlarski@meteoswiss.ch; benjamin.le-roy@hereon.de;
   aude.lemonsu@meteo.fr; lennard@csag.uct.ac.za; mathew.lipson@bom.gov.au;
   shailendra@fulbrightmail.org; luis.munoz.pabon@cima.fcen.uba.ar;
   vaspavli@physics.auth.gr; joni-pekka.pietikaeinen@hereon.de;
   mario.raffa@cmcc.it; eloisa.raluyl@um.es; diana.rechid@hereon.de;
   rui.ito@jamstec.go.jp; jan-peter.schulz@dwd.de;
   pmsoares@ciencias.ulisboa.pt; takane.yuya@aist.go.jp;
   claas.teichmann@hereon.de; marcus.thatcher@csiro.au; sara.top@ugent.be;
   fuxing.wang@smhi.se; jcyuan@fudan.edu.cn
RI Hadjinicolaou, Panos/H-1729-2016; Bechtel, Benjamin/H-9853-2014; Takane,
   Yuya/A-9880-2014; Pietikäinen, Joni-Pekka/H-4228-2015; Teichmann,
   Claas/J-1149-2014; Milovac, Josipa/ABE-3736-2021; Hoffmann,
   Peter/KYC-1568-2024; Kotlarski, Sven/ACS-5799-2022; Le Roy,
   Benjamin/ABA-3284-2021; Top, Sara/GQZ-2138-2022; hamdi,
   Rafiq/JCE-1399-2023; Langendijk, Gaby/ISV-5751-2023; Lipson,
   Mathew/AAP-6977-2021; Demuzere, Matthias/HOF-7046-2023; Soares,
   Pedro/K-6239-2012; Yuan, Jiacan/AAI-5731-2021; Halenka,
   Tomáš/Q-3851-2017; Van Schaeybroeck, Bert/AAP-5118-2021; Belda,
   Michal/F-4398-2012; Lennard, Chris/C-2120-2014; WANG, Fuxing/E-7245-2016
OI Lennard, Chris/0000-0001-6085-0320; Van Schaeybroeck,
   Bert/0000-0002-9507-7929; Hadjinicolaou, Panos/0000-0003-1170-2182;
   Munoz, Luis Eduardo/0000-0003-1677-9816; WANG,
   Fuxing/0000-0001-7582-2752
FU CORDEX FPS URB-RCC [101081555, 101056783]; EU [101081555, 101056783];
   German Federal Ministry of Education and Research (BMBF) [01LN2204A];
   CONICET; University of the West of England; MICIU/AEI
   [PID2020-116595RB-I00]; EU Horizon Europea CARMINE project; German
   Research Foundation (DFG) [437467569]; CNRS/INSU/LEFE program; Fund for
   Scientific Research of the Flemish regional government (FWO) [1270723 N]
FX In addition, we thank the Charles University Program COOPERATIO-ENVI, of
   which T. Halenka is part. Furthermore, there are connections between the
   CORDEX FPS URB-RCC and EU Horizon Europe projects IMPETUS4CHANGE
   (101081555) and FOCI (101056783). P. Hoffmann would like to thank the
   German Federal Ministry of Education and Research (BMBF) for the BMBF
   Junior Research Group (CoSynHealth, 01LN2204A) funding support and the
   project management support from the German Aerospace Center (DLR). Luis
   E. Munoz Pabon is funded by the CONICET with a PhD grant. Kwok P. Chun
   is funded by the Vice Chancellor's Accelerator Programme from the
   University of the West of England. J.F. and J.M. acknowledge support
   from project CORDyS (PID2020-116595RB-I00), funded by
   MICIU/AEI/10.13039/501100011033. M. Demuzere acknowledges support from
   the EU Horizon Europea CARMINE project and the ENLIGHT project, project
   funded by the German Research Foundation (DFG) under grant no.
   437467569. IPSL and CIMA thank the CNRS/INSU/LEFE program for financial
   support and GENCI for granted access to HPC resources of TGCC under the
   allocation A0150106877. S. Top is funded by the Fund for Scientific
   Research of the Flemish regional government (FWO), fellowship 1270723 N.
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NR 92
TC 2
Z9 2
U1 11
U2 11
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD NOV
PY 2024
VL 58
AR 102165
DI 10.1016/j.uclim.2024.102165
EA NOV 2024
PG 9
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA P3F2G
UT WOS:001376803100001
OA Green Submitted, hybrid
DA 2025-04-22
ER

PT J
AU Wu, XH
   Yuan, ZJ
AF Wu, Xinhui
   Yuan, Zhenjie
TI Understanding the socio-cultural resilience of rural areas through the
   intergenerational relationship in transitional China: Case studies from
   Guangdong*
SO JOURNAL OF RURAL STUDIES
LA English
DT Article
DE Rural resilience; Socio-cultural resilience; Intergenerational
   relationship; Rural families; China
ID COMMUNITY RESILIENCE; LIVING ARRANGEMENTS; URBAN; INEQUALITY;
   SOLIDARITY; MIGRATION; FAMILIES; CHILDREN; SUPPORT; PEOPLE
AB While rural resilience is considered valuable in global sustainable development and is gaining increasing attention, socio-cultural resilience in rural contexts has attracted limited scholarly attention. Intergenerational relationship as a crucial indicator of socio-cultural resilience and transformation in rural areas, is under-studied. Drawing on a qualitatively based and multi-sited ethnographic fieldwork in two villages in Guangdong, China, this article interrogates how rural residents understand and practice intergenerational relationship, further observing rural resilience from the socio-cultural perspective. The findings revealed the following: 1) changes in intergenerational relations in rural China are neither simple nor linear, but rather highly diversified and contextualized; 2) the status of intergenerational relationships in the villages is highly related to a series of external factors, including demographical features, economic condition and geographical location, etc.; 3) intergenerational relationships and the way rural families operate, interact, and are defined are closely related. Changes in intergenerational relationships not only reveal important shifts in the social and cultural makeup of rural communities, but they also serve as a significant indicator of the resiliency of both rural communities and families. This article, through those results, echoes the rising diversity of contemporary rural family life in China, arguing that intergenerational relationship provides a nuanced, humane perspective to probe social and cultural changes and rural-urban relations in rapidly urbanizing societies. We call for collaborative action to cultivate the positive intergenerational relationships, enhance the rural resilience from socio-cultural perspective, further contribute to the revive of countryside.
C1 [Wu, Xinhui] Sun Yat Sen Univ, Sch Geog & Planning, Guangzhou, Peoples R China.
   [Wu, Xinhui] Sun Yat Sen Univ, China Reg Coordinated Dev & Rural Construct Inst, Guangzhou, Peoples R China.
   [Yuan, Zhenjie] Guangzhou Univ, Ctr Human Geog & Urban Dev, Sch Geog & Remote Sensing, Guangzhou, Peoples R China.
   [Yuan, Zhenjie] Guangdong Prov Ctr Urban & Migrat Studies, Guangzhou, Peoples R China.
   [Yuan, Zhenjie] Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai, Peoples R China.
C3 Sun Yat Sen University; Sun Yat Sen University; Guangzhou University;
   Southern Marine Science & Engineering Guangdong Laboratory; Southern
   Marine Science & Engineering Guangdong Laboratory (Zhuhai)
RP Yuan, ZJ (corresponding author), Guangzhou Univ, Ctr Human Geog & Urban Dev, Sch Geog & Remote Sensing, Guangzhou, Peoples R China.
EM zjyuan@gzhu.edu.cn
RI Wu, Xinhui/MVY-7911-2025
OI Wu, Xinhui/0000-0002-3642-1275
FU National Natural Science Foundation of China; Outstanding Youth Program
   of Guangdong Natural Science Foundation; Foundation of Bureau of
   Education in Guangzhou City;  [42101224];  [42071183]; 
   [2022B1515020087];  [202235209]
FX Acknowledgements The author would like to thank the anonymous reviewers
   for leading us to the field, the colleagues for their kind advices and
   support, and editor of this journal for their constructive and
   professional comments, criticism and suggestions, most of which have
   been taken up in the final revision. This work is supported by the
   National Natural Science Foundation of China (Grant No. 42101224;
   42071183) ; Outstanding Youth Program of Guangdong Natural Science
   Foundation (Grant No. 2022B1515020087) ; Foundation of Bureau of
   Education in Guangzhou City (Grant No. 202235209) .
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Z9 22
U1 28
U2 120
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 JAN
PY 2023
VL 97
BP 303
EP 313
DI 10.1016/j.jrurstud.2022.12.001
EA DEC 2022
PG 11
WC Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Geography; Public Administration
GA 7P6NV
UT WOS:000908820600001
DA 2025-04-22
ER

PT J
AU Kang, KE
   Bowman, AO
   Hannibal, B
   Woodruff, S
   Portney, K
AF Kang, Ki Eun
   Bowman, Ann O'M
   Hannibal, Bryce
   Woodruff, Sierra
   Portney, Kent
TI Ecological, Engineering and Community Resilience Policy Adoption in
   Large US Cities
SO URBAN AFFAIRS REVIEW
LA English
DT Article
DE resilience policy; large cities; ecological resilience; engineering
   resilience; community resilience
ID CLIMATE-CHANGE ADAPTATION; URBAN RESILIENCE; POLITICAL-INSTITUTIONS;
   SOCIAL VULNERABILITY; WATER SCARCITY; GLOBAL CITIES; IMPLEMENTATION;
   GOVERNMENT; INNOVATION; NETWORKS
AB This paper seeks to identify which resilience-oriented policies are being enacted and factors that influence policy adoption. We develop clusters of policies related to three types of resilience: ecological, engineering, and community. Among large U.S. cities, we find wide variation in the number and type of policies enacted. Through multivariate analysis, we identify factors that are associated with the adoption of these policies. Similar to earlier work on sustainability and climate change policy, our results show that larger cities are more likely to adopt all three types of resilience policies. Wealthier and liberal cities adopt more ecological resilience policies. Cities that are members of city networks also adopt more policies, but not all networks significantly influence policy adoption suggesting that network goals and connections are important. We also find that among these large cities, it is the smaller of them that appear to benefit most from membership in networks.
C1 [Kang, Ki Eun; Bowman, Ann O'M; Portney, Kent] Texas A&M Univ, Bush Sch Govt, College Stn, TX USA.
   [Hannibal, Bryce] Univ Utah, Salt Lake City, UT USA.
   [Woodruff, Sierra] Texas A&M Univ, Dept Landscape Architecture & Urban Planning, College Stn, TX USA.
   [Woodruff, Sierra] 3137 TAMU, College Stn, TX 77843 USA.
C3 Texas A&M University System; Texas A&M University College Station; Bush
   School of Government & Public Service; Utah System of Higher Education;
   University of Utah; Texas A&M University System; Texas A&M University
   College Station
RP Woodruff, S (corresponding author), 3137 TAMU, College Stn, TX 77843 USA.
EM swoodruff@tamu.edu
RI Kang, Ki Eun/JEO-8950-2023
OI Kang, Ki Eun/0000-0001-8574-9229
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NR 102
TC 3
Z9 4
U1 12
U2 57
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 1078-0874
EI 1552-8332
J9 URBAN AFF REV
JI Urban Aff. Rev.
PD NOV
PY 2023
VL 59
IS 6
BP 1973
EP 2004
DI 10.1177/10780874221150793
EA JAN 2023
PG 32
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA T5LY1
UT WOS:000911939600001
DA 2025-04-22
ER

PT J
AU Hong, TZ
   Xu, YJ
   Sun, KY
   Zhang, WN
   Luo, X
   Hooper, B
AF Hong, Tianzhen
   Xu, Yujie
   Sun, Kaiyu
   Zhang, Wanni
   Luo, Xuan
   Hooper, Barry
TI Urban microclimate and its impact on building performance: A case study
   of San Francisco
SO URBAN CLIMATE
LA English
DT Article
DE Urban microclimate; CityBES; Building energy use; Building performance;
   Building simulation; Climate resilience
ID HEAT-ISLAND; COOLING DEMAND; NEW-GENERATION; ENERGY; SIMULATION; CITY;
   VEGETATION; ALBEDO; DESIGN
AB Urban microclimate exerts an increasing influence on urban buildings, energy, and sustainability. This study uses 10-year measured hourly weather data at 27 sites in San Francisco, California, to (1) analyze and visualize the urban microclimate patterns and urban heat island effect; (2) simulate annual energy use and peak electricity demand of typical large office buildings and large hotels to investigate the influence of urban microclimate on building performance; (3) simulate indoor air temperature of a single-family house without air-conditioning during the record threeday heatwave of 2017, to quantify the divergence of climate resilience due to urban microclimate effect. Results show significant microclimate effects in San Francisco with up to 11 degrees C outdoor air temperature difference between the coastal and downtown areas on September 1, 2017, during the record three-day heatwave. The simulated energy results of the prototype large office and large hotel buildings using the 2017 weather data show over 100% difference in annual heating energy use and 65% difference in annual cooling energy use across different stations; as well as up to 30% difference in peak cooling electricity demand. The impacts on annual site or source energy use are minimal (less than 5%) as cooling and heating in a mild climate are a relatively small portion of overall building energy use in San Francisco. Results also show the microclimate effects influence indoor air temperature of unconditioned homes by up to 5 degrees C. Newer buildings and homes are much less affected by microclimate effects due to more stringent performance requirements of the building envelope and energy systems. These findings inform that San Francisco microclimate variations should be considered in urban energy planning, building energy codes and standards, as well as heat resilience policymaking.
C1 [Hong, Tianzhen; Xu, Yujie; Sun, Kaiyu; Zhang, Wanni; Luo, Xuan] Lawrence Berkeley Natl Lab, Bldg Technol & Urban Syst Div, Berkeley, CA 94720 USA.
   [Hooper, Barry] Dept Environm, San Francisco, CA USA.
C3 United States Department of Energy (DOE); Lawrence Berkeley National
   Laboratory
RP Hong, TZ (corresponding author), Lawrence Berkeley Natl Lab, Bldg Technol & Urban Syst Div, Berkeley, CA 94720 USA.
EM thong@lbl.gov
RI Hong, Tianzhen/D-3256-2013; Sun, Kaiyu/I-2778-2018
FU Assistant Secretary for Energy Efficiency and Renewable Energy, Office
   of Building Technologies of the United States Department of Energy
   [DE-AC02-05CH11231]
FX This research was funded by the Assistant Secretary for Energy
   Efficiency and Renewable Energy, Office of Building Technologies of the
   United States Department of Energy, under contract number
   DE-AC02-05CH11231.
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NR 61
TC 59
Z9 63
U1 11
U2 70
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD JUL
PY 2021
VL 38
AR 100871
DI 10.1016/j.uclim.2021.100871
EA MAY 2021
PG 16
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA TS0JA
UT WOS:000679341600008
OA Green Submitted, Bronze
DA 2025-04-22
ER

PT J
AU Ponder, CS
AF Ponder, C. S.
TI Spatializing the Municipal Bond Market: Urban Resilience under Racial
   Capitalism
SO ANNALS OF THE AMERICAN ASSOCIATION OF GEOGRAPHERS
LA English
DT Article
DE majority-Black cities; municipal finance; racial capitalism;
   racialization; urban resilience
AB Majority-Black cities in North America are not often described in the academic literature as such. Racial capitalism is a restorative approach that puts majority-Black cities in the Global North into analytical relation with other cities in the global urban landscape. This is an important step to take for many reasons, including rising interest in conversations about the financial production of urban natures in the context of climate change. Moreover, there is a dearth of mixed method empirics documenting the role of racial capitalism in the production of urban space and urban natures. To address this gap, I pair a case study of Jackson, Mississippi's, struggle to fund mandated upgrades to its water system with analysis of a data set containing interest rates of approximately 5 million municipal bonds issued between 1970 and 2014. I find that since financial deregulation in 1999 and 2000, majority-Black cities have been charged more than their white counterparts to produce their built environments. These findings reveal a conflation between territorialized Blackness and financial risk. Thus exposed, I argue that the racialization of urban finance has previously unexamined implications for the production of urban natures and the establishment of just transitions and socioecological futures.
C1 [Ponder, C. S.] Florida State Univ, Dept Geog, Tallahassee, FL 32306 USA.
C3 State University System of Florida; Florida State University
RP Ponder, CS (corresponding author), Florida State Univ, Dept Geog, Tallahassee, FL 32306 USA.
EM csponder@fsu.edu
CR Action Center on Race & the Economy, AB
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NR 65
TC 43
Z9 54
U1 2
U2 12
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 10
PY 2021
VL 111
IS 7
BP 2112
EP 2129
DI 10.1080/24694452.2020.1866487
EA JAN 2021
PG 18
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA US7MX
UT WOS:000635389600001
DA 2025-04-22
ER

PT J
AU Fastame, MC
   Ruiu, M
   Mulas, I
AF Fastame, Maria Chiara
   Ruiu, Marilena
   Mulas, Ilaria
TI Mental Health and Religiosity in the Sardinian Blue Zone: Life
   Satisfaction and Optimism for Aging Well
SO JOURNAL OF RELIGION & HEALTH
LA English
DT Article
DE Life satisfaction; Aging; Optimism; Resilience; Religiosity
ID LATE ADULTHOOD; RESILIENCE; DEPRESSION; LONGEVITY; BEHAVIOR; ANXIETY;
   ELDERS; STATE
AB This study evaluated the impact of the sociocultural context on dispositional optimism and resilience, life satisfaction, and religiosity in late adulthood. Moreover, the associations between those psychological measures and religiosity were investigated. Ninety-five older individuals recruited in the Sardinian Blue Zone and Cagliari completed a battery of tools assessing cognitive and mental health, and religiosity. Life satisfaction correlated with resilience and religiosity, whereas resilience correlated with optimism. Furthermore, participants of the rural area reported greater optimism and life satisfaction than peers living in the urban area. In conclusion, optimism and hedonic well-being favor optimal aging in the Blue Zone.
C1 [Fastame, Maria Chiara; Ruiu, Marilena; Mulas, Ilaria] Univ Cagliari, Dept Pedag, Psychol, Philosophy, Via Is Mirrionis 1, I-09123 Cagliari, Italy.
C3 University of Cagliari
RP Fastame, MC (corresponding author), Univ Cagliari, Dept Pedag, Psychol, Philosophy, Via Is Mirrionis 1, I-09123 Cagliari, Italy.
EM chiara.fastame@unica.it
RI Ruiu, Marilena/AHA-2435-2022
OI Fastame, Maria Chiara/0000-0002-8188-5458
FU Universita degli Studi di Cagliari within the CRUI-CARE Agreement
FX Open access funding provided by Universita degli Studi di Cagliari
   within the CRUI-CARE Agreement.
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NR 50
TC 14
Z9 14
U1 0
U2 14
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0022-4197
EI 1573-6571
J9 J RELIG HEALTH
JI J. Relig. Health
PD AUG
PY 2021
VL 60
IS 4
BP 2450
EP 2462
DI 10.1007/s10943-021-01261-2
EA APR 2021
PG 13
WC Public, Environmental & Occupational Health; Religion
WE Social Science Citation Index (SSCI); Arts &amp; Humanities Citation Index (A&amp;HCI)
SC Public, Environmental & Occupational Health; Religion
GA TH4RA
UT WOS:000642042100001
PM 33881687
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Wen, GF
   Ji, FY
AF Wen, Guofeng
   Ji, Fayan
TI Flood resilience assessment of region based on TOPSIS-BOA-RF integrated
   model
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Region; Flood resilience; Integrated model; TOPSIS-BOA-RF
ID FRAMEWORK
AB Global climate change and rapid urbanization have increased the risk of flood disasters in regions. Flood resilience assessment is the foundation for building regional resilience. Addressing issues of efficiency and accuracy in high-dimensional, small-sample context found in existing assessment models, this study proposes a regional flood resilience assessment integrated model. Firstly, an indicator system is established through the process of "data collection-indicator extraction-opinion solicitation-indicator confirmation", focusing on dimensions of robustness, redundancy, resourcefulness, and rapidity. Secondly, the combined indicator weights are determined using quadratic programming combined with the EWM-Delphi method. Finally, based on the obtained weights, learning samples are generated using piecewise linear interpolation and the TOPSIS. Training samples are then input into the Butterfly Optimization Algorithm(BOA) to optimize the key parameters in the Random Forest(RF). The performance of optimized RF is evaluated using test samples. Therefore, the TOPSIS-BOA-RF integrated model is constructed. Taking the Shandong Peninsula Urban Agglomeration as an example, the integrated model is used to analyze the flood resilience in 16 cities under the jurisdiction of the region from 2003 to 2022. The results indicate that as of 2022, Jinan, Qingdao, and Zibo have reached a high resilience, while Yantai, Weihai, Weifang, Rizhao, Dongying, and Binzhou are rated higher. In contrast, Zaozhuang, Taian, Dezhou, Jining, Linyi, Liaocheng, and Heze exhibit moderate resilience, which is lower than that of other cities. From 2003 to 2022, the Shandong Peninsula Urban Agglomeration has significantly improved in flood resilience, showing a decreasing trend from northeast to southwest. Comparative analysis shows that results of the constructed model are consistent with reality and perform better than other models. Suggestions for enhancing regional resilience, such as construction of regional rescue centers and improvement of economic circle resilience, are proposed.
C1 [Wen, Guofeng; Ji, Fayan] Shandong Technol & Business Univ, Sch Management Sci & Engn, 191 Binhai Middle Rd, Yantai 264005, Shandong, Peoples R China.
C3 Shandong Technology & Business University
RP Ji, FY (corresponding author), Shandong Technol & Business Univ, Sch Management Sci & Engn, 191 Binhai Middle Rd, Yantai 264005, Shandong, Peoples R China.
EM 2022410022@sdtbu.edu.cn
FU Shandong Provincial Natural Sci-ence Foundation, China [ZR2023MG033];
   Hu-manities and Social Science Fund of Ministry of Education of China
   [24YJCZH050]
FX <B>Acknowledgments</B> This work was supported by the Shandong
   Provincial Natural Sci-ence Foundation, China [grant numbers:
   ZR2023MG033] ; and the Hu-manities and Social Science Fund of Ministry
   of Education of China [grant numbers: 24YJCZH050] . We are grateful to
   the editors and the anonymous reviewers for their useful comments.
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NR 85
TC 1
Z9 1
U1 19
U2 19
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD DEC
PY 2024
VL 169
AR 112901
DI 10.1016/j.ecolind.2024.112901
EA DEC 2024
PG 20
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA T8W8S
UT WOS:001407751400001
OA gold
DA 2025-04-22
ER

PT J
AU Dobson, J
AF Dobson, Julian
TI Reinterpreting urban institutions for sustainability: How epistemic
   networks shape knowledge and logics
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Sociotechnical transitions; Knowledge transfer; Institutions;
   Sustainability; Urban resilience
ID COMMUNITIES; RESILIENCE; GOVERNANCE; POLITICS; TRANSITIONS; PERSPECTIVE;
   MANAGEMENT; INNOVATION; SYSTEMS; REFORM
AB Long term urban resilience demands a transition to a low-carbon society but poses a dilemma: the institutions that stabilise and perpetuate sociotechnical systems must become agents of radical change. The possibility of alternative futures challenges the logics and values central to institutional identity.
   'Sustainability transitions' thus raise questions of institutional reinterpretation. The extent of such reinterpretation hinges on the everyday 'institutional work' of actors who bring diverse understandings to bear on their roles and responsibilities. These understandings derive not only from actors' professional roles but also from their engagement in wider epistemic networks.
   Based on case studies of three urban organisations in northern England, this paper examines the impact and influence of epistemic networks in validating or challenging approaches to sustainability transitions. The research found such networking a necessary, but not sufficient, condition for institutional reinterpretation. Epistemic networks serve five functions: they inspire, legitimise and facilitate potential transitions, and challenge slow progress - but they can also limit transitions. From these findings, it is argued that epistemic networks are central to the identification and development of nascent 'transition arenas' (Loorbach, 2010) where more sustainable, and ultimately more resilient, futures may be tested and trialled.
C1 [Dobson, Julian] Univ Sheffield, Dept Landscape, Arts Tower,Western Bank, Sheffield S10 2TN, S Yorkshire, England.
C3 University of Sheffield
RP Dobson, J (corresponding author), Univ Sheffield, Dept Landscape, Arts Tower,Western Bank, Sheffield S10 2TN, S Yorkshire, England.
EM j.r.dobson@sheffield.ac.uk
RI Dobson, Julian/ABE-6963-2020
OI Dobson, Julian/0000-0002-6164-2707
FU Centre for Regional Economic and Social Research, Sheffield Hallam
   University
FX The author is grateful for the helpful comments of the guest editors and
   two anonymous reviewers. This research was funded through a doctoral
   studentship awarded by the Centre for Regional Economic and Social
   Research, Sheffield Hallam University, supported by Professor Peter
   Wells and Dr Will Eadson.
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NR 74
TC 16
Z9 17
U1 0
U2 15
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 FEB
PY 2019
VL 92
BP 133
EP 140
DI 10.1016/j.envsci.2018.11.018
PG 8
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HJ9HI
UT WOS:000457509100015
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Diez, JJ
   Esteban, MD
   Paz, R
   López-Gutiérrez, JS
   Negro, V
   Monnot, JV
AF Diez, J. J.
   Esteban, M. D.
   Paz, R.
   Lopez-Gutierrez, J. S.
   Negro, V.
   Monnot, J. V.
TI Urban Coastal Flooding and Climate Change
SO JOURNAL OF COASTAL RESEARCH
LA English
DT Article; Proceedings Paper
CT 11th International Coastal Symposium (ICS)
CY MAY 09-13, 2011
CL Szczecin, POLAND
SP Univ Szczecin, Inst Marine & Coastal Sci, Coastal Educ & Res Fdn, Univ Szczecinski (US), Cztowiek Nauka Srodowisko (CNS), ZMGM, Reg Dyrekcja Ochrony Srodowiska, Esri, Springer, Lotos, GA2 Syst, World Sci, Helmholtz-Zentrum Geesthacht, Nfosigm, Urzad Marszalkowski Wojewodztwa Zachodniopomorskiego, Wojewodzki Fundusz Ochrony Srodowiska I Gospodarki Wodnej W Gdansku
DE Little Ice Age; global warming; sea level rise; coastal cities
   evolution; flooding risk; flooding types; resilience; FRE measures
ID SEA-LEVEL RISE; NORTH-AMERICA
AB Coastal urban flooding is increasing, affecting mainly to new urban settlements but also to the traditional ones. This is due either to sea level and continental climatic factors. But also because population has increased at the same time being coastal areas selectively affected in old and new settlements, leading to need on flood resilience improvements The planet has been suffering a global warming change leading to sea level rise that is happening since the Little Ice Age although rising since 19th century. It comes with other synergic changes in marine and littoral dynamics, like El Nino South sedation and cyclonic storms. But other relative sea level movements are interfering in each segment of the coast with a local or even a regional character, being the main problem to discern the factors affecting these vertical movements This paper affronts the problem of the coastal urban floods, analyzing their increasing and variability, discussing the rebounds and the subsidence, discerning them from the global change in the long term, and the influence of other sea level changes in the "short term": meteorological phenomena (storm surge and set-up), wave set-up and other long waves, in order to allow a more accurate Flood Resilience measures.
C1 [Diez, J. J.; Esteban, M. D.; Paz, R.; Lopez-Gutierrez, J. S.; Negro, V.; Monnot, J. V.] Univ Politecn Madrid, Res Grp Marine Coastal & Port Environm & Other Se, E-28040 Madrid, Spain.
C3 Universidad Politecnica de Madrid
RP Diez, JJ (corresponding author), Univ Politecn Madrid, Res Grp Marine Coastal & Port Environm & Other Se, E-28040 Madrid, Spain.
EM josejavier.diez@upm.es; mariadolores.esteban@upm.es; rosapaz@bio.ucm.es;
   josesantos.lopez@upm.es; vicente.negro@upm.es; jv.monnot@upm.es
RI Diez Casero, Julio Javier/JTS-5212-2023; LOPEZ GUTIERREZ, JOSE
   SANTOS/A-5457-2015; Esteban, M. Dolores/P-5905-2018
OI LOPEZ GUTIERREZ, JOSE SANTOS/0000-0002-3854-755X; Esteban, M.
   Dolores/0000-0002-5466-0157
CR [Anonymous], 2012, Sea Levels, Land Levels, and Tide Gauges
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NR 16
TC 10
Z9 10
U1 7
U2 87
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.
PY 2011
SI 64
BP 205
EP 209
PN 1
PG 5
WC Environmental Sciences; Geography, Physical; Geosciences,
   Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED); Conference Proceedings Citation Index - Science (CPCI-S)
SC Environmental Sciences & Ecology; Physical Geography; Geology
GA 926IQ
UT WOS:000302824900043
DA 2025-04-22
ER

PT J
AU Ebolor, A
AF Ebolor, Alexander
TI Backcasting frugally innovative smart sustainable future cities
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Frugal innovation; Backcasting; Smart sustainable cities; SDGs; ESG
ID ENERGY-SYSTEMS; RENEWABLE-ENERGY; CITY; TECHNOLOGIES; METHODOLOGY
AB This paper envisions alternative scenarios for future cities that are resilient environmentally, socially, econom-ically, and embedded in smart infrastructure and governance. It reinforces the position that although comple-mentary, the backcasting approach is more appropriate for future city planning. There is limited research that envisions how future cities can be backcasted with frugal innovation (FI) underpinning the sustainability pillars. This research aims to narrow the gap. The methodology is based on a systematic literature review and secondary exploratory case studies. The results of the TOWS (threats, opportunities, weaknesses, strengths) analysis on the suitability of FI on smart sustainable cities (SSC) developmental policies show that FI is an affordable and in-clusive way to sustainably develop cities without injury to the environment. The findings reveal that the five pillars of a smart sustainable future city can integrate frugal innovation and lean engineering concepts to ensure sustainable development at lower costs. Through frugal innovation embedded in city infrastructure, cleaner methods of production can be realized, and inclusiveness can be fostered.
C1 [Ebolor, Alexander] Friedrich Alexander Univ, Erlangen, Germany.
C3 University of Erlangen Nuremberg
RP Ebolor, A (corresponding author), Friedrich Alexander Univ, Erlangen, Germany.
EM alexander.ebolor@fau.de
OI Ebolor, Alexander/0000-0003-3884-0091
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NR 96
TC 5
Z9 7
U1 0
U2 24
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 10
PY 2023
VL 383
AR 135300
DI 10.1016/j.jclepro.2022.135300
EA DEC 2022
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 E4HP5
UT WOS:000975172600001
DA 2025-04-22
ER

PT J
AU Irwin, S
   Schardong, A
   Simonovic, SP
   Nirupama, N
AF Irwin, Sarah
   Schardong, Andre
   Simonovic, Slobodan P.
   Nirupama, Niru
TI ResilSIMA Decision Support Tool for Estimating Resilience of Urban
   Systems
SO WATER
LA English
DT Article
DE resilience; adaptation; urban systems; hydro-meteorological; disaster
   management; decision support; online tool
AB Damages to urban systems as a result of water-related natural disasters have escalated in recent years. The observed trend is expected to increase in the future as the impacts of population growth, rapid urbanization and climate change persist. To alleviate the damages associated with these impacts, it is recommended to integrate disaster management methods into planning, design and operational policies under all levels of government. This manuscript proposes the concept of ResilSIM: A decision support tool that rapidly estimates the resilience (a modern disaster management measure that is dynamic in time and space) of an urban system to the consequences of natural disasters. The web-based tool (with mobile access) operates in near real-time. It is designed to assist decision makers in selecting the best options for integrating adaptive capacity into their communities to protect against the negative impacts of a hazard. ResilSIM is developed for application in Toronto and London, Ontario, Canada; however, it is only demonstrated for use in the city of London, which is susceptible to riverine flooding. It is observed how the incorporation of different combinations of adaptation options maintain or strengthen London's basic structures and functions in the event of a flood.
C1 [Irwin, Sarah; Schardong, Andre; Simonovic, Slobodan P.] Univ Western Ontario, Dept Civil & Environm Engn, 1151 Richmond St, London, ON N6A 3K7, Canada.
   [Nirupama, Niru] York Univ, Fac Liberal Arts & Profess Studies, Disaster & Emergency Management, 4700 Keele St, Toronto, ON M37 1P3, Canada.
C3 Western University (University of Western Ontario); York University -
   Canada
RP Irwin, S (corresponding author), Univ Western Ontario, Dept Civil & Environm Engn, 1151 Richmond St, London, ON N6A 3K7, Canada.
EM sirwin9@uwo.ca; aschardo@uwo.ca; simonovic@uwo.ca; nirupama@yorku.ca
RI Agrawal, Nirupama/AAI-4509-2021; Simonovic, Slobodan/R-7250-2017;
   Schardong, Andre/F-1659-2013
OI Simonovic, Slobodan/0000-0001-5072-2915; Agrawal,
   Nirupama/0000-0002-9184-4852; Schardong, Andre/0000-0002-1862-2321
FU Natural Sciences and Engineering Research Council of Canada
FX The authors would like to acknowledge Natural Sciences and Engineering
   Research Council of Canada for the financial support provided for the
   research that is awarded to the second author, as well as the City of
   London for providing the spatial datasets.
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NR 29
TC 24
Z9 32
U1 2
U2 45
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD SEP
PY 2016
VL 8
IS 9
AR 377
DI 10.3390/w8090377
PG 25
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Water Resources
GA DY9VE
UT WOS:000385482400017
OA gold
DA 2025-04-22
ER

PT J
AU Halekotte, L
   Mentges, A
   Lichte, D
AF Halekotte, Lukas
   Mentges, Andrea
   Lichte, Daniel
TI Do we practice what we preach? The dissonance between resilience
   understanding and measurement
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Resilience definition; Resilience capacities; Resilience management;
   Resilience assessment; Performance curves; Critical infrastructures
ID INFRASTRUCTURE SYSTEMS; COMMUNITY RESILIENCE; ASSESSMENT FRAMEWORK;
   SEISMIC RESILIENCE; WATER MANAGEMENT; URBAN SYSTEMS; RESTORATION;
   STABILITY; NETWORKS; METRICS
AB Resilience is needed to make infrastructures fit for the future, but its operationalization is still lively discussed. Here, we identify three understandings of resilience from the existing literature: resilience as a process, an outcome, and a capacity. We show that all three understandings have their justification, as each plays its part in the core business of resilience, that is, dealing with disruptive events. But, we also find that the trio differs considerably in terms of the implications for the operationalization of resilience. Most importantly, only the understanding of resilience as a capacity allows for a continuous resilience monitoring and a management which is agnostic to the type of disruptive event. We therefore advocate to understand and assess resilience as a capacity. While this understanding is in line with popular opinion, it is often not reflected in the assessment approaches applied. This dissonance shows, for example, in the use of single performance curves to assess resilience. We argue that in order to assess resilience as a capacity, we need to consider multiple performance curves, otherwise we will capture the system's ability to deal with one specific event instead of its ability to deal with any surprises that come its way.
C1 [Halekotte, Lukas; Mentges, Andrea; Lichte, Daniel] German Aerosp Ctr DLR, Inst Protect Terr Infrastruct, Rathausallee 12, D-53757 St Augustin, Germany.
C3 Helmholtz Association; German Aerospace Centre (DLR)
RP Mentges, A (corresponding author), German Aerosp Ctr DLR, Inst Protect Terr Infrastruct, Rathausallee 12, D-53757 St Augustin, Germany.
EM lukas.halekotte@dlr.de; andrea.mentges@dlr.de; daniel.lichte@dlr.de
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NR 149
TC 0
Z9 0
U1 6
U2 6
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 2025
VL 118
AR 105265
DI 10.1016/j.ijdrr.2025.105265
EA FEB 2025
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 X2T6Z
UT WOS:001423942400001
OA hybrid, Green Submitted
DA 2025-04-22
ER

PT J
AU Zhang, Y
   Yang, Y
   Wei, SK
   Ma, ZJ
   Tian, M
   Sun, M
   Nie, JB
AF Zhang, Yang
   Yang, Yang
   Wei, Shaokun
   Ma, Zijun
   Tian, Miao
   Sun, Meng
   Nie, Jiabin
TI Research on spatial structure and resilience of complex urban network: A
   case study of Jing-Jin-Ji Urban Agglomeration
SO FRONTIERS IN ENVIRONMENTAL SCIENCE
LA English
DT Article
DE urban network; Resilience; Coupling; complex network; Jing-Jin-Ji (3J)
   region
ID RIVER ECONOMIC BELT; WORLD CITY NETWORK; INFRASTRUCTURE; GLOBALIZATION;
   EFFICIENCY; EVOLUTION; DYNAMICS; CITIES
AB With the long-term impact of economic globalization, the accelerated cross-border flow of resource elements between cities is increasingly important for the development of urban regions. In this context, the central place theory, which emphasizes the vertical hierarchical relationship between cities, has obvious limitations in interpreting urban interaction. This paper takes the Beijing Tianjin Hebei Urban Agglomeration (including Beijing, Tianjin. and 11 prefecture-level cities in Hebei Province) as the research object, constructs three complex networks of economy, information, and economic information coupling connection, and analyzes the resilience of the network structure. The research results show that: 1) The spatial distribution of the three network structures of Jing-Jin-Ji Urban Agglomeration presents a spatial pattern with Beijing as the core and radiating outward. 2) In terms of weighted degree distribution, Beijing, as an arrow city, has strong competitiveness in the economy and information network, but the hierarchy of cities with balanced information economy development is low. 3) In terms of weighted degree correlation, among the three networks, the cities with a high weighted degree prefer to connect with cities with a low weighted degree, and the mismatch is ranked as information network > information economy coupling network > economic connection network. 4) In terms of network transmission, information network > economy connection network > information economy coupling network, and Beijing and Tianjin have a greater impact. The above results have strong guidance and practical significance for the formulation and adjustment of territorial spatial planning and regional optimization.
C1 [Zhang, Yang; Yang, Yang; Ma, Zijun; Tian, Miao; Sun, Meng; Nie, Jiabin] Capital Univ Econ & Business, Coll Urban Econ & Publ Adm, Beijing, Peoples R China.
   [Zhang, Yang; Yang, Yang; Ma, Zijun; Tian, Miao; Sun, Meng; Nie, Jiabin] Beijing Key Lab Megareg Sustainable Dev Modelling, Beijing, Peoples R China.
   [Wei, Shaokun] China Ctr Urban Dev, Beijing, Peoples R China.
C3 Capital University of Economics & Business
RP Wei, SK (corresponding author), China Ctr Urban Dev, Beijing, Peoples R China.
EM weishaokun@ccud.org.cn
RI fei, teng/AAF-5448-2021; SUN, MENG/KQA-2135-2024
OI Zhang, Yang/0000-0003-3909-7789
FU Major projects of National Social Science Fund [20ZDA086]; Fundamental
   Research Funds for the Capital University of Economics and Business
   [QNTD202009, QNTD202209]; Major project of Beijing Social Science
   Foundation [19ZDA03]
FX This research was supported by the Major projects of National Social
   Science Fund (ID:20ZDA086), Fundamental Research Funds for the Capital
   University of Economics and Business ID: QNTD202009 and QNTD202209),
   Major project of Beijing Social Science Foundation (19ZDA03).
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NR 33
TC 5
Z9 5
U1 15
U2 114
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 2022
VL 10
AR 999124
DI 10.3389/fenvs.2022.999124
PG 19
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 5I6YV
UT WOS:000868500600001
OA gold
DA 2025-04-22
ER

PT J
AU Asad, R
   Vaughan, J
   Ahmed, I
AF Asad, Rumana
   Vaughan, Josephine
   Ahmed, Iftekhar
TI Integrated Traditional Water Knowledge in Urban Design and Planning
   Practices for Sustainable Development: Challenges and Opportunities
SO SUSTAINABILITY
LA English
DT Article
DE traditional water knowledge; challenges; opportunities; urban; SDGs
ID ECOLOGICAL KNOWLEDGE; COPING STRATEGIES; INDIGENOUS ENGAGEMENT;
   ECOSYSTEM SERVICES; RESILIENCE; FLOODS; PRINCIPLES; LANDSCAPE;
   INFRASTRUCTURE; RESTORATION
AB In the context of flood research, scholars and practitioners have recognised that Western-knowledge-driven engineering-based flood management techniques are insufficient for successful water use and management in urban design and planning practices, while ideas, practices, and knowledge from local people are essential. Traditional water knowledge (TWK) explains people's profound understanding of natural processes and the ecological dependencies of water systems and connections with their local water system and the land, beliefs, sense, and practices that are an integral part of their culture. However, the concept of traditional knowledge may differ from scientific knowledge, as it represents a different worldview perspective from a modern Westernised world. Considering Khulna City, Bangladesh, as a case, this paper investigates the salient challenges and opportunities to integrate TWK with present urban design and planning practices. Interviews were conducted with key stakeholders, including relevant government officials, NGO workers, researchers, urban professionals, and local elders. This study finds that TWK can contribute to urban design and planning practices by identifying helpful ecosystem services and site-specific information; by sharing strategies for surface water protection, open-space design, and rainwater harvesting; and encouraging design of spaces for psychological benefit, and ensuring sustainability and building flood resilience in an urban context. Furthermore, this research demonstrates how these elements relate to the Sustainable Development Goals (SDGs). However, issues with knowledge transmission, the identification of the actual knowledge holders, poor governance, weak urban planning, minimal institutional capacity, and perceived cultural inferiority are significant challenges restricting the integration of TWK, despite its relevance to sustainability. This paper suggests that considering traditional water use and management is necessary to develop flood resilience in an urban context in a sustainable way.
C1 [Asad, Rumana] Khulna Univ, Architecture Discipline, Khulna 9208, Bangladesh.
   [Vaughan, Josephine; Ahmed, Iftekhar] Univ Newcastle UON, Sch Architecture & Built Environm, Callaghan, NSW 2308, Australia.
C3 Khulna University; University of Newcastle
RP Asad, R (corresponding author), Khulna Univ, Architecture Discipline, Khulna 9208, Bangladesh.
EM rumana@arch.ku.ac.bd
RI Ahmed, Iftekhar/GPW-8881-2022; Asad, Rumana/AAP-1288-2020; Vaughan,
   Josephine/G-7434-2013
OI Ahmed, Iftekhar/0000-0001-5316-4584; Vaughan,
   Josephine/0000-0003-4730-9892
FU This research was conducted as part of the PhD program of the lead
   author R.A. under the supervision of the other two authors, I.A. and
   J.V. The author (R.A.) would like to acknowledge the support she got
   from Australian Government Research Training Progra
FX This research was conducted as part of the PhD program of the lead
   author R.A. under the supervision of the other two authors, I.A. and
   J.V. The author (R.A.) would like to acknowledge the support she got
   from Australian Government Research Training Program (RTP) Scholarship
   for her PhD program and the supervisory team.
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NR 85
TC 1
Z9 1
U1 7
U2 16
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD AUG
PY 2023
VL 15
IS 16
AR 12434
DI 10.3390/su151612434
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 Q3TR8
UT WOS:001056781800001
OA gold
DA 2025-04-22
ER

PT J
AU Zhang, L
   Kondolf, GM
AF Zhang, Lei
   Kondolf, G. Mathias
TI Ponds and Wetlands Landscapes of Flood Management in the Cities of the
   Lower Yellow River Floodplain-The Case of Huaiyang, China
SO WATER
LA English
DT Article
DE green infrastructure; resilient design; social connectivity; landscape
   history; pond and wetland
AB As interest has increased in green infrastructure and nature-based solutions, traditional approaches to managing landscapes have emerged as providing useful models for sustainable water and land management. From local gazetteers, archives, oral histories, maps, and satellite images, we documented the historical landscapes of ponds and wetlands back to the 17th century in the historic city of Huaiyang on the lower Yellow River floodplain. Like neighboring cities, Huaiyang was protected by a ring levee. As the floodplain rapidly aggraded, cities within the levee became topographically lower than the surrounding landscape. In this context, ponds and wetlands were essential for flood and storm water retention in the low-lying city. These seasonal waterbodies alternated between drying and wetting, providing a dynamic and diverse background for native habitats and human uses. CORONA satellite images ca. 1960s show ponds and wetlands shrinking in the dry season to 35.6% of their wet season extent, while the farmed area expanded 5.3 times. The multiple uses of wetlands included dry-season farming, harvesting wetland plants, and fishing, each use adapted to the localized topographic and hydrologic conditions of the wetlands. The late 20th century saw massive transformations for modern agriculture and urbanization. Understanding the historical evolution of this landscape can provide inspiration for developing green infrastructure and resilient designs that preserve cultural diversity and sustainably manage water in an urbanizing landscape.
C1 [Zhang, Lei] Tianjin Univ, Sch Architecture, Tianjin 300072, Peoples R China.
   [Kondolf, G. Mathias] Univ Calif Berkeley, Dept Landscape Architecture & Environm Planning, Berkeley, CA 94720 USA.
C3 Tianjin University; University of California System; University of
   California Berkeley
RP Kondolf, GM (corresponding author), Univ Calif Berkeley, Dept Landscape Architecture & Environm Planning, Berkeley, CA 94720 USA.
EM leizhang_01@tju.edu.cn; kondolf@berkeley.edu
OI Kondolf, G.Mathias/0000-0001-5639-9995
FU National Natural Science Foundation of China
FX The authors benefited greatly from discussions on these topics with
   Professor Kongjian Yu, Peking University. We thank Jie He, Tianjin
   University, for processing maps and satellite images.
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NR 47
TC 0
Z9 0
U1 7
U2 17
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD MAR
PY 2024
VL 16
IS 5
AR 703
DI 10.3390/w16050703
PG 17
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA KW9H1
UT WOS:001183112300001
OA gold
DA 2025-04-22
ER

PT J
AU Wu, YY
   Wei, YD
   Liu, MT
AF Wu, Yangyi
   Wei, Yehua Dennis
   Liu, Meitong
TI URBAN FORM AND SPATIOTEMPORAL VULNERABILITY OF LOCAL COMMUNITIES TO
   COVID-19
SO GEOGRAPHICAL REVIEW
LA English
DT Article
DE Covid-19; community; compact development; urban form
ID BUILT ENVIRONMENT; HEALTH
AB This paper investigates spatiotemporal dynamics of the effects of urban form on the Covid-19 spread within local communities in Salt Lake County, Utah, in the United States. We identify three types of communities-minority, traditional urban and suburban, and new suburban-and three stages throughout March 2020-September 2021, reflecting the initial, outbreak, and recovery stages. While the traditional urban and suburban communities experience the least risk of Covid-19, minority communities are severely impacted in the initial and outbreak stages, and remote suburban communities are primarily affected in the outbreak and recovery stages. The regression further reveals the role of urban form in the pandemic. High-density urban land use is the main density factor contributing to the disease's spread. In the initial stage, mobility factors such as street connectivity and walkability contribute to the local spread, while land use mixture is the catalyst in the outbreak stage. A comprehensive compact development might offset these negative effects on local public health, and its contribution to local resilience in the recovery stage is also confirmed. Thus, compact development is still valuable for building urban resilience, and proper planning and policies can offset the potential adverse effects of pandemics.
C1 [Wu, Yangyi] Wuhan Univ, Sch Urban Design, Wuhan, Hubei, Peoples R China.
   [Wei, Yehua Dennis; Liu, Meitong] Univ Utah, Dept Geog, Salt Lake City, UT 84108 USA.
C3 Wuhan University; Utah System of Higher Education; University of Utah
RP Wei, YD (corresponding author), Univ Utah, Dept Geog, Salt Lake City, UT 84108 USA.
EM yangyi.wu@whu.edu.cn; wei@geog.utah.edu; meitong.liu@geog.utah.edu
RI Wei, Yehua/A-7831-2009; Wu, Yangyi/GQA-8134-2022
OI Wu, Yangyi/0000-0001-7142-4642
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NR 103
TC 12
Z9 12
U1 5
U2 30
PU TAYLOR & FRANCIS INC
PI PHILADELPHIA
PA 530 WALNUT STREET, STE 850, PHILADELPHIA, PA 19106 USA
SN 0016-7428
EI 1931-0846
J9 GEOGR REV
JI Geogr. Rev.
PD AUG 8
PY 2023
VL 113
IS 4
BP 482
EP 501
DI 10.1080/00167428.2022.2155519
EA JAN 2023
PG 20
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA Q0NF9
UT WOS:000912835000001
DA 2025-04-22
ER

PT J
AU Dowtin, AL
   Hunt, IBJ
AF Dowtin, Asia L.
   Hunt, Indya B. J.
TI Use of the Tree Diversity Reporting Index (TDRI) to assess variability
   in urban tree diversity and related reporting practices: A Michigan, USA
   pilot study
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Urban forest management plans; Natural resource management;
   Biodiversity; Urban forest structure; Urban tree diversity; Resilience;
   Urban planning
ID FOREST MANAGEMENT; BIODIVERSITY; MILWAUKEE; INSIGHTS; PLANS
AB Plans for resilient urban forests are rooted in principles of urban forest biodiversity, begin with comprehensive inventories of urban tree cover, and are often laid out in urban forest management plans. However, there are no universal standards with which tree inventory data are presented in urban forest management plans, making it challenging to assess and compare urban forest biodiversity and resilience within and among municipalities. Using Michigan, USA as a pilot study, we developed the Tree Diversity Reporting Index (TDRI) as a tool to determine which urban forest diversity metrics were reported in urban forest management plans, the comprehensiveness with which these metrics were reported, and emerging trends in urban forest composition across the state. Findings indicate that the most frequently reported metrics were species composition, size distribution, and condition rating. However, there was significant variability in how comprehensively these data were reported, and in the provision of rationale behind some of the classification systems used to report these data. Regarding urban forest composition, there was an overabundance of Acer (maple genus) across the state. In most municipalities, the majority of trees are in fair or better condition, with age structure generally varying between predominantly juvenile or predominantly maturing trees. Use of the TDRI may be beneficial in providing a baseline standard for which tree diversity metrics are reported in urban forest management plans. This may be helpful as a growing number of new stakeholders are engaging in efforts to establish, manage, and benefit from resilient urban forests.
C1 [Dowtin, Asia L.; Hunt, Indya B. J.] Michigan State Univ, Dept Forestry, 480 Wilson Rd, E Lansing, MI 48824 USA.
   [Hunt, Indya B. J.] USDA Forest Serv, 515 Delaware St, Minneapolis, MN 55455 USA.
C3 Michigan State University; United States Department of Agriculture
   (USDA); United States Forest Service
RP Dowtin, AL (corresponding author), Michigan State Univ, Dept Forestry, 480 Wilson Rd, E Lansing, MI 48824 USA.
EM dowtinas@msu.edu; indya.hunt@usda.gov
FU United States Department of Agriculture (USDA) -National Institutes for
   Food and Agriculture McIntire Stennis Capacity Grant-Award [MICL06031];
   Michigan Department of Natural Resources-Partnership for Ecosystem
   Research and Management
FX This work was supported by the United States Department of Agriculture
   (USDA) -National Institutes for Food and Agriculture McIntire Stennis
   Capacity Grant-Award MICL06031 and Michigan Department of Natural
   Resources-Partnership for Ecosystem Research and Management. The content
   is solely the responsibility of the authors and does not necessarily
   represent the official views of USDA or Michigan Department of Natural
   Resources.
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NR 60
TC 0
Z9 0
U1 0
U2 0
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 APR
PY 2025
VL 380
AR 124760
DI 10.1016/j.jenvman.2025.124760
EA MAR 2025
PG 15
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA 0GE3C
UT WOS:001446595700001
PM 40081045
DA 2025-04-22
ER

PT J
AU Heymans, A
   Breadsell, J
   Morrison, GM
   Byrne, JJ
   Eon, C
AF Heymans, Angela
   Breadsell, Jessica
   Morrison, Gregory M.
   Byrne, Joshua J.
   Eon, Christine
TI Ecological Urban Planning and Design: A Systematic Literature Review
SO SUSTAINABILITY
LA English
DT Review
DE urban planning; systematic literature review; ecosystem services; urban
   consonance
ID ECOSYSTEM SERVICES; LANDSCAPE SUSTAINABILITY; RESILIENCE; FRAMEWORK;
   INFRASTRUCTURE; MODEL; OPPORTUNITIES; ADAPTATION; GOVERNANCE; CHALLENGES
AB Urbanization is a defining feature of the modern age, yet the current model of urban development profoundly alters the natural environment, often reducing biodiversity and ultimately threatening human wellbeing. An ecologically based urban planning and design paradigm should consider a more harmonious relationship. Through a systematic literature review of 57 papers, this research identified relevant concepts and theories that could underpin this new paradigm. It revealed a noticeable increase in academic interest in this subject since 2013 and the development of concepts and theories that reflect a more holistic socio-ecological systems approach to urban planning and design based on a transdisciplinary integration and synthesis of research. Seven main themes underpin the academic literature: ecosystem services, socio-ecological systems, resilience, biodiversity, landscape, green infrastructure, as well as integrated and holistic approaches. Six of these can be organised into either a sustainability stream or a spatial stream, representing the foundations of a potential new ecological urban planning and design paradigm that applies sustainability-related concepts in a spatial setting. The final theme, integrated and holistic, includes concepts that reflect the fundamental characteristics of this new paradigm, which can be termed urban consonance'.
C1 [Heymans, Angela; Breadsell, Jessica; Morrison, Gregory M.; Byrne, Joshua J.; Eon, Christine] Curtin Univ, Sustainabil Policy Inst, Sch Design & Built Environm, Bentley, WA 6102, Australia.
C3 Curtin University
RP Breadsell, J (corresponding author), Curtin Univ, Sustainabil Policy Inst, Sch Design & Built Environm, Bentley, WA 6102, Australia.
EM Jessica.breadsell@curtin.edu.au
RI Byrne, Josh/AAP-6000-2021; Breadsell, Jessica/GLU-8702-2022; Sutherland
   (Breadsell), Jessica/H-9581-2016
OI Sutherland (Breadsell), Jessica/0000-0002-1124-7899; Byrne,
   Josh/0000-0002-6758-339X; Morrison, Gregory/0000-0002-2101-6525
FU CRC for Low Carbon Living Ltd. - Cooperative Research Centre's program,
   an Australian Government initiative [NP2006]
FX This research is funded by the CRC for Low Carbon Living Ltd. (Project
   number NP2006) supported by the Cooperative Research Centre's program,
   an Australian Government initiative.
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NR 74
TC 82
Z9 85
U1 10
U2 143
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL 1
PY 2019
VL 11
IS 13
AR 3723
DI 10.3390/su11133723
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 IL1IB
UT WOS:000477051900213
OA Green Published, gold, Green Submitted
DA 2025-04-22
ER

PT S
AU Elmqvist, T
   Colding, J
   Barthel, S
   Borgström, S
   Duit, A
   Lundberg, J
   Andersson, E
   Ahrné, K
   Ernstson, H
   Folke, C
   Bengtsson, J
AF Elmqvist, T
   Colding, J
   Barthel, S
   Borgström, S
   Duit, A
   Lundberg, J
   Andersson, E
   Ahrné, K
   Ernstson, H
   Folke, C
   Bengtsson, J
BE AlfsenNorodom, C
   Lane, BD
   Corry, M
TI The dynamics of social-ecological systems in urban landscapes -:
   Stockholm and the National Urban Park, Sweden
SO URBAN BIOSPHERE AND SOCIETY: PARTNERSHIP OF CITIES
SE Annals of the New York Academy of Sciences
LA English
DT Article; Proceedings Paper
CT Conference on Urban Biosphere and Society - Partnership of Cities
CY OCT 29-30, 2003
CL New York Acad Sci, New York, NY
SP Columbia Univ, Earth Inst, UNESCO
HO New York Acad Sci
DE urban green spaces; National Urban Park (NUP); Stockholm County; green
   wedge
ID RESILIENCE; MANAGEMENT; AREAS
AB This study addresses social-ecological dynamics in the greater metropolitan area of Stockholm County, Sweden, with special focus on the National Urban Park (NUP). It is part of the Millennium Ecosystem Assessment (MA) and has the following specific objectives: (1) to provide scientific information on biodiversity patterns, ecosystem dynamics, and ecosystem services generated; (2) to map interplay between actors and institutions involved in management of ecosystem services; and (3) to identify strategies for strengthening social-ecological resilience. The green areas in Stockholm County deliver numerous ecosystem services, for example, air filtration, regulation of microclimate, noise reduction, surface water drainage, recreational and cultural values, nutrient retention, and pollination and seed dispersal. Recreation is among the most important services and NUP, for example, has more than 15 million visitors per year. More than 65 organizations representing 175,000 members are involved in management of ecosystem services. However, because of population increase and urban growth during the last three decades, the region displays a quite dramatic loss of green areas and biodiversity. An important future focus is how management may reduce increasing isolation of urban green areas and enhance connectivity. Comanagement should be considered where locally managed green space may function as buffer zones and for management of weak links that connect larger green areas; for example, there are three such areas around NUP identified. Preliminary results indicate that areas of informal management represent centers on which to base adaptive comanagement, with the potential to strengthen biodiversity management and resilience in the landscape.
C1 Univ Stockholm, Dept Syst Ecol, SE-10691 Stockholm, Sweden.
   Royal Swedish Acad Sci, Beijer Int Inst Ecol Econ, Stockholm, Sweden.
   Stockholm Univ, CTM, SE-10691 Stockholm, Sweden.
   Dept Ecol & Crop Prod Sci, SE-75007 Uppsala, Sweden.
C3 Stockholm University; Royal Swedish Academy of Sciences; Beijer
   Institute of Ecological Economics; Stockholm University
RP Univ Stockholm, Dept Syst Ecol, SE-10691 Stockholm, Sweden.
EM thomase@ecology.su.se
RI Elmqvist, Thomas/AAY-6344-2021; Folke, Carl/Z-1545-2019; Ernstson,
   Henrik/LMP-6473-2024; Andersson, Erik/AAE-9771-2019; Colding,
   Johan/AAB-7047-2019; Bengtsson, Jan/AAF-2325-2021; barthel,
   stephan/AAE-8367-2019
OI Elmqvist, Thomas/0000-0002-4617-6197; Colding,
   Johan/0000-0001-7644-7448; barthel, stephan/0000-0003-2637-2024;
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NR 44
TC 66
Z9 81
U1 7
U2 177
PU NEW YORK ACAD SCIENCES
PI NEW YORK
PA 2 EAST 63RD ST, NEW YORK, NY 10021 USA
SN 0077-8923
BN 1-57331-554-0; 1-57331-553-2
J9 ANN NY ACAD SCI
JI Ann.NY Acad.Sci.
PY 2004
VL 1023
BP 308
EP 322
DI 10.1196/annals.1319.017
PG 15
WC Environmental Sciences; Environmental Studies; Multidisciplinary
   Sciences; Urban Studies
WE Conference Proceedings Citation Index - Science (CPCI-S); Conference Proceedings Citation Index - Social Science &amp; Humanities (CPCI-SSH); Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Science & Technology - Other Topics;
   Urban Studies
GA BAN79
UT WOS:000223006800018
PM 15253913
DA 2025-04-22
ER

PT J
AU Schibuola, L
   Tambani, C
   Buggin, A
AF Schibuola, Luigi
   Tambani, Chiara
   Buggin, Antonio
TI Seawater Opportunities to Increase Heating, Ventilation, and Air
   Conditioning System Efficiency in Buildings and Urban Resilience
SO FRONTIERS IN ENERGY RESEARCH
LA English
DT Article
DE seawater heat pump; 5GDHC network; urban heat island mitigation;
   anthropogenic heat; decarbonization actions; city resilience; urban
   model
ID PERFORMANCE EVALUATION; ENERGY-CONSUMPTION; ISLAND; PUMP; IMPACT;
   MICROCLIMATE; CLIMATE; MODEL; DENSIFICATION; TECHNOLOGIES
AB In coastal cities, seawater heat pumps (SWHPs) can combine heat pump technology with the availability of seawater to produce the heat and the cold necessary for heating, ventilation, and air conditioning (HVAC) systems installed in buildings. In heating mode, the seawater is used as a cold source and provides the low-temperature heat needed for the operation of the machine. In cooling mode, the seawater removes the heat dissipated by the condenser of the heat pump working for air conditioning. This seawater application seems to be very promising since the temperature trend of the seawater appears to be more favorable than the alternative use of outdoor air, both in winter and in summer. In a case study in Trieste, the performance of a district heating/cooling network supplied with seawater and based on decentralized heat pumps is investigated. For this purpose, annual dynamic simulations were performed, modeling an urban area, the heat pumps, and the network. The energy efficiency evaluation shows a clear superiority of the SWHP solution compared to boilers and airsource heat pumps and thus the possibility to provide a significant contribution to the decarbonization of buildings. Moreover, the results highlight the ability of this GWHP network to reduce the urban heat island (UHI) phenomenon since the heat dissipated by the heat pumps during summer air conditioning is removed from the urban area. Therefore, SWHPs in coastal cities can be among the mitigation measures for UHI to increase outdoor comfort and heat wave resilience in urban areas.
C1 [Schibuola, Luigi; Tambani, Chiara; Buggin, Antonio] Univ Iuav Venice, Dept Architecture, Venice, Italy.
C3 IUAV University Venice
RP Tambani, C (corresponding author), Univ Iuav Venice, Dept Architecture, Venice, Italy.
EM tambani@iuav.it
RI Tambani, Chiara/AAG-3578-2020; Schibuola, Luigi/R-4961-2018
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NR 96
TC 2
Z9 2
U1 3
U2 19
PU FRONTIERS MEDIA SA
PI LAUSANNE
PA AVENUE DU TRIBUNAL FEDERAL 34, LAUSANNE, CH-1015, SWITZERLAND
SN 2296-598X
J9 FRONT ENERGY RES
JI Front. Energy Res.
PD JUL 1
PY 2022
VL 10
AR 913411
DI 10.3389/fenrg.2022.913411
PG 16
WC Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels
GA 3B5KI
UT WOS:000827979200001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Zhong, FL
   Chen, RB
   Luo, XJ
   Song, XY
   Ullah, A
AF Zhong, Fanglei
   Chen, Ruobing
   Luo, Xijing
   Song, Xiaoyu
   Ullah, Asmat
TI Assessing regional resilience in China using a sustainable livelihoods
   approach: Indicators, influencing factors, and the relationship with
   economic performance
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Sustainable livelihoods approach; Regional resilience; Indicators;
   Influencing factors; Economic performance
ID STRATEGIES; SYSTEMS; URBAN
AB Regional resilience analysis is crucial in the context of increased uncertainty. However, research into regional resilience lacks a unified framework. Thus, in this study, we propose a regional resilience evaluation method based on the widely used sustainable livelihood framework to analyze regional resilience and its relationship with economic growth in Chinese provinces during the period 2004-2018. Although regional resilience in Chinese provinces showed a gradual increase, the western regions are mostly low in resilience, whereas the eastern regions are generally high in resilience. The regional innovation level, green space per capita, industrial structure optimization, and fiscal expenditure ratio all have positive effects on regional resilience. In contrast, only the degree of openness has a negative effect on regional resilience. This methodology enables an integrated assessment of its role in influencing regional resilience in terms of broader natural dimensions, socio-economic dimensions. The degree of coordination between regional resilience and economic growth fluctuated but increased overall, and the linkage between them gradually emerged. The results of this relationship analysis, as well as comparisons with other indicator systems, suggest that the sustainable livelihoods approach is appropriate for regional resilience assessments.
C1 [Zhong, Fanglei] Minzu Univ China, Key Lab Ecol & Environm Minor Areas, Natl Ethn Affairs Commiss, Beijing 100081, Peoples R China.
   [Zhong, Fanglei] Minzu Univ China, Sch Econ, Beijing 100081, Peoples R China.
   [Chen, Ruobing] Jinzhou Med Univ, Sch Marxism, Jinzhou 121000, Peoples R China.
   [Luo, Xijing] Beijing Acad Sci & Technol, Beijing 100089, Peoples R China.
   [Song, Xiaoyu] Chinese Acad Sci, Northwest Inst Ecoenvironm & Resources, Lanzhou Informat Ctr, Lanzhou 730000, Peoples R China.
   [Ullah, Asmat] Mehran Univ Engn & Technol, US Pakistan Ctr Adv Studies Water, Jamshoro, Sindh, Pakistan.
C3 Minzu University of China; Jinzhou Medical University; Beijing Academy
   of Science & Technology; Chinese Academy of Sciences; Mehran University
   Engineering & Technology
RP Song, XY (corresponding author), Chinese Acad Sci, Northwest Inst Ecoenvironm & Resources, Lanzhou Informat Ctr, Lanzhou 730000, Peoples R China.
EM songxy@llas.ac.cn
RI Zhong, fanglei/AAC-8958-2021; Song, Xiaoyu/KLY-8367-2024; Ullah, Md
   Asmat/GYU-9827-2022
OI Zhong, Fanglei/0000-0003-0898-3331
FU Key Laboratory of Ecology and Environment in Minority Areas (Minzu
   University of China), National Ethnic Affairs Commission [KLEEMA202306];
   Science and Technology Project of Information and Communication Company
   of Gansu Power Company, State Grid of China [52272323000C]; Open
   Research Program of the International Research Center of Big Data for
   Sustainable Development Goals [CBAS2023ORP04]; National Key R&D Program
   of China [2022YFC3800700]
FX This work was supported by Key Laboratory of Ecology and Environment in
   Minority Areas (Minzu University of China), National Ethnic Affairs
   Commission [No. KLEEMA202306], the Science and Technology Project of
   Information and Communication Company of Gansu Power Company, State Grid
   of China (Project No. 52272323000C), the Open Research Program of the
   International Research Center of Big Data for Sustainable Development
   Goals (Grant No. CBAS2023ORP04) and the National Key R & D Program of
   China (Project No. 2022YFC3800700).
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NR 59
TC 3
Z9 3
U1 33
U2 75
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 111588
DI 10.1016/j.ecolind.2024.111588
EA JAN 2024
PG 12
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA IL3N8
UT WOS:001166443000001
OA gold
DA 2025-04-22
ER

PT J
AU Bühler, MM
   Sebald, C
   Rechid, D
   Baier, E
   Michalski, A
   Rothstein, B
   Nübel, K
   Metzner, M
   Schwieger, V
   Harrs, JA
   Jacob, D
   Köhler, L
   Panhuis, GIH
   Tejeda, RCR
   Herrmann, M
   Buziek, G
AF Buehler, Michael Max
   Sebald, Christoph
   Rechid, Diana
   Baier, Eberhard
   Michalski, Alexander
   Rothstein, Benno
   Nuebel, Konrad
   Metzner, Martin
   Schwieger, Volker
   Harrs, Jan-Albrecht
   Jacob, Daniela
   Koehler, Lothar
   Panhuis, Gunnar In Het
   Tejeda, Raymundo C. Rodriguez
   Herrmann, Michael
   Buziek, Gerd
TI Application of Copernicus Data for Climate-Relevant Urban Planning Using
   the Example of Water, Heat, and Vegetation
SO REMOTE SENSING
LA English
DT Article
DE climate change; city resilience; sustainable development; urban
   planning; remote sensing; internet of things; water management; heat
   islands; digital transformation; data analytics
ID INFRASTRUCTURE
AB Specific climate adaptation and resilience measures can be efficiently designed and implemented at regional and local levels. Climate and environmental databases are critical for achieving the sustainable development goals (SDGs) and for efficiently planning and implementing appropriate adaptation measures. Available federated and distributed databases can serve as necessary starting points for municipalities to identify needs, prioritize resources, and allocate investments, taking into account often tight budget constraints. High-quality geospatial, climate, and environmental data are now broadly available and remote sensing data, e.g., Copernicus services, will be critical. There are forward-looking approaches to use these datasets to derive forecasts for optimizing urban planning processes for local governments. On the municipal level, however, the existing data have only been used to a limited extent. There are no adequate tools for urban planning with which remote sensing data can be merged and meaningfully combined with local data and further processed and applied in municipal planning and decision-making. Therefore, our project CoKLIMAx aims at the development of new digital products, advanced urban services, and procedures, such as the development of practical technical tools that capture different remote sensing and in-situ data sets for validation and further processing. CoKLIMAx will be used to develop a scalable toolbox for urban planning to increase climate resilience. Focus areas of the project will be water (e.g., soil sealing, stormwater drainage, retention, and flood protection), urban (micro)climate (e.g., heat islands and air flows), and vegetation (e.g., greening strategy, vegetation monitoring/vitality). To this end, new digital process structures will be embedded in local government to enable better policy decisions for the future.
C1 [Buehler, Michael Max; Michalski, Alexander; Rothstein, Benno] Konstanz Univ Appl Sci, Fac Civil Engn, D-78462 Constance, Germany.
   [Sebald, Christoph; Metzner, Martin; Schwieger, Volker] Univ Stuttgart, Inst Engn Geodesy IIGS, D-70174 Stuttgart, Germany.
   [Rechid, Diana; Harrs, Jan-Albrecht; Jacob, Daniela] Helmholtz Zentrum Hereon GmbH, Climate Serv Ctr Germany GERICS, D-21502 Geesthacht, Germany.
   [Baier, Eberhard; Panhuis, Gunnar In Het] City Konstanz, Mayors Dept, D-78462 Constance, Germany.
   [Nuebel, Konrad] Tech Univ Munich, Dept Civil Geo & Environm Engn, D-80333 Munich, Germany.
   [Koehler, Lothar] Benefit Unternehmensentwicklung GmbH, D-77933 Lahr, Germany.
   [Tejeda, Raymundo C. Rodriguez] Tejeda Ing Bur Planung & Projektmanagement, D-39365 Eilsleben, Germany.
   [Herrmann, Michael] Str Ucture GmbH, D-70176 Stuttgart, Germany.
   [Buziek, Gerd] Esri Deutschland GmbH, D-85402 Kranzberg, Germany.
C3 HTWG Hochschule Konstanz University of Applied Sciences; University of
   Stuttgart; Helmholtz Association; Helmholtz-Zentrum Hereon; Technical
   University of Munich
RP Bühler, MM (corresponding author), Konstanz Univ Appl Sci, Fac Civil Engn, D-78462 Constance, Germany.
EM michael.buehler@htwg-konstanz.de;
   christoph.sebald@iigs.uni-stuttgart.de; diana.rechid@hereon.de;
   eberhard.baier@konstanz.de; amichals@htwg-konstanz.de;
   benno.rothstein@htwg-konstanz.de; konrad.nuebel@tum.de;
   martin.metzner@iigs.uni-stuttgart.de;
   volketschwieger@iigs.uni-stuttgart.de; jan-albrecht.harrs@hereon.de;
   daniela.jacob@hereon.de; lothar.koehler@benefit-gmbh.de;
   gunnatinhetpanhuis@konstanz.de; tejeda@tejedaingburo.com;
   info@str.ucture.com; g.buziek@esri.de
OI Sebald, Christoph/0000-0001-6597-7857; Rodriguez,
   Raymundo/0000-0002-9950-9784; Harrs, Jan/0000-0002-2446-4665; Rechid,
   Diana/0000-0002-6035-2935; Nubel, Konrad/0000-0002-2863-1360; Schwieger,
   Volker/0000-0001-9055-9809; Buhler, Michael Max/0000-0003-1478-6991
FU Ministry of Science, Research and the Arts Baden-Wurttemberg
   (Ministerium fur Wissenschaft, Forschung und Kunst Baden-Wurttemberg)
FX This research received no external funding to date. A scientific grant
   application on "Development and implementation preparation of Copernicus
   services for public needs on climate adaptation strategies for municipal
   applications in Germany" was submitted to the Federal Ministry of
   Economics and Technology (Bundesministerium fur Wirtschaft und
   Technologie, BMWi) on 30 June 2021. The open-access publication was
   funded by the Ministry of Science, Research and the Arts
   Baden-Wurttemberg (Ministerium fur Wissenschaft, Forschung und Kunst
   Baden-Wurttemberg).
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TC 11
Z9 11
U1 3
U2 39
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2072-4292
J9 REMOTE SENS-BASEL
JI Remote Sens.
PD SEP
PY 2021
VL 13
IS 18
AR 3634
DI 10.3390/rs13183634
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 UZ1NB
UT WOS:000701977400001
OA Green Published, Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Chambers-Ostler, A
   Walker, H
   Doick, KJ
AF Chambers-Ostler, Alexander
   Walker, Hannah
   Doick, Kieron J.
TI The role of the private tree in bringing diversity and resilience to the
   urban forest
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Allometry; Diversity; Ownership; Urban forest
ID LAND-USE; EQUATIONS; DROUGHT; CLIMATE; COMMON
AB The urban forest is important for ecosystem service provision such as rainfall interception, pollution reduction, and biodiversity value. These provide health and wellbeing benefits to people living in urban areas and, with climate change projected to increase extreme weather, the importance of urban trees is likely to increase whilst at the same time putting the urban forest at increasing risk. The urban forest is composed of trees in both public and private ownership. How this ownership status impacts the characteristics of urban forests in Great Britain such as structure, composition, and health is not well known. We used a large database of 18,632 trees to compare the private (10,300 trees) and public (8332 trees) elements of 19 urban forests in Great Britain. We show that trees in the private urban forest are, for a given trunk diameter, 20% shorter and have an 18% smaller crown area. The private urban forest has a 9% lower tolerance for waterlogging stress; however, is 40-57% more diverse across taxonomic levels, hosts double the number of non-native species, and has 6% better tree condition. Management of the urban forest to reduce tree height and crown area reduces the provision of many regulatory ecosystem services. However, the better health and diversity of the private urban forest likely bolsters resilience to climate change and novel pests and diseases, indicating the importance for strategy and policy to recognise and work with those who own and manage private urban trees.
C1 [Chambers-Ostler, Alexander; Walker, Hannah; Doick, Kieron J.] Urban Forest Res Grp Ctr Sustainable Forestry & Cl, Forest Res, Gravel Hill Rd, Farnham GU10 4LH, England.
RP Chambers-Ostler, A (corresponding author), Urban Forest Res Grp Ctr Sustainable Forestry & Cl, Forest Res, Gravel Hill Rd, Farnham GU10 4LH, England.
EM alex.chambers-ostler@forestresearch.gov.uk
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NR 79
TC 5
Z9 6
U1 8
U2 17
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD JAN
PY 2024
VL 91
AR 127973
DI 10.1016/j.ufug.2023.127973
EA DEC 2023
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 HA3D3
UT WOS:001156717100001
OA Bronze
DA 2025-04-22
ER

PT J
AU Li, SD
   Chen, PF
   Hui, FM
   Gong, MJ
AF Li, Shaodong
   Chen, Pengfei
   Hui, Fengming
   Gong, Mengjie
TI Evaluating urban vitality and resilience under the influence of the
   COVID-19 pandemic from a mobility perspective: A case study in Shenzhen,
   China
SO JOURNAL OF TRANSPORT GEOGRAPHY
LA English
DT Article
DE Mobile phone big data; Human mobility; Resilience; PageRank; Regression
   analysis
ID VIBRANCY; PAGERANK
AB Urban vitality is a critical metric for assessing a city's appeal, competitiveness, and sustainability. The lockdown measures enacted during the coronavirus disease 2019 (COVID-19) pandemic has imposed a substantial impact on people's mobility, yet how urban vitality has evolved and the extent of its recovery remain unclear. To address this knowledge gap, this study introduces a novel method for assessing vitality through the lens of human mobility. By combining residents' origin-destination (OD) flow data with the PageRank algorithm, our approach evaluates regional vitality by considering visitation volume, travel distance, and the architecture of the flow network simultaneously. Focusing on Shenzhen, China, as a case study, we evaluate its urban vitality from 2019 to 2023 using the OD flows extracted from mobile phone big data. Building on this evaluation, a resilience indicator is further established to measure the recovery of vitality, and the geographically weighted regression is employed to investigate the factors influencing vitality, with their spatial and temporal changes being explored. Our findings reveal that, as of June 2023, the overall urban vitality in Shenzhen has only recovered to 86% of the level during the same period in 2019, with certain districts exhibiting a continuous decline in vitality even as the epidemic subsided. The main influencing factors also present a significant spatial heterogeneity across different districts in Shenzhen. This study is expected to provide a new method to evaluate vitality dynamics and offer insights to enhance urban vitality.
C1 [Li, Shaodong; Chen, Pengfei; Hui, Fengming; Gong, Mengjie] Sun Yat Sen Univ, Sch Geospatial Engn & Sci, Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai 519082, Peoples R China.
   [Li, Shaodong; Chen, Pengfei; Hui, Fengming] Sun Yat Sen Univ, Key Lab Comprehens Observat Polar Environm, Minist Educ, Zhuhai 519082, Peoples R China.
   [Gong, Mengjie] Shandong Univ Sci & Technol, Coll Geodesy & Geomat, Qingdao 266590, Peoples R China.
C3 Sun Yat Sen University; Southern Marine Science & Engineering Guangdong
   Laboratory; Southern Marine Science & Engineering Guangdong Laboratory
   (Zhuhai); Sun Yat Sen University; Shandong University of Science &
   Technology
RP Chen, PF (corresponding author), Sun Yat Sen Univ, Sch Geospatial Engn & Sci, Zhuhai 519082, Peoples R China.
EM chenpf9@mail.sysu.edu.cn
RI CHEN, pengfei/M-3073-2018
FU Guangdong Basic and Applied Basic Research Foundation [2023A1515011174];
   National Natural Foundation of China [42101351]
FX This research was funded by Guangdong Basic and Applied Basic Research
   Foundation, grant number 2023A1515011174, and the National Natural
   Science Foundation of China, grant number 42101351.
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NR 60
TC 7
Z9 7
U1 23
U2 39
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0966-6923
EI 1873-1236
J9 J TRANSP GEOGR
JI J. Transp. Geogr.
PD MAY
PY 2024
VL 117
AR 103886
DI 10.1016/j.jtrangeo.2024.103886
EA MAY 2024
PG 12
WC Economics; Geography; Transportation
WE Social Science Citation Index (SSCI)
SC Business & Economics; Geography; Transportation
GA YA9Y9
UT WOS:001265895000001
DA 2025-04-22
ER

PT J
AU Ramsey, MM
   Muñoz-Erickson, TA
   Mélendez-Ackerman, E
   Nytch, CJ
   Branoff, BL
   Carrasquillo-Medrano, D
AF Ramsey, Molly M.
   Munoz-Erickson, Tischa A.
   Melendez-Ackerman, Elvia
   Nytch, Christopher J.
   Branoff, Benjamin L.
   Carrasquillo-Medrano, David
TI Overcoming barriers to knowledge integration for urban resilience: A
   knowledge systems analysis of two-flood prone communities in San Juan,
   Puerto Rico
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Urban resilience; Flood management; Knowledge integration; Knowledge
   systems analysis; Citizen knowledge; Co-production
ID GOVERNANCE; RISK; MANAGEMENT
AB Despite increasing attention to the role that multiple sets of knowledge, including citizen-based knowledge, have in developing more resilient and sustainable pathways for flood management, informal knowledge systems have yet to gain legitimacy and be integrated into formal planning and decision-making process. Here we show that a knowledge systems lens can bring to the fore the prospects and barriers to align different knowledge systems for urban resilience. Focusing on two communities in San Juan, Puerto Rico, we use knowledge systems analysis to identify, analyze, and compare the elements and functions of formal and citizen knowledge systems coming to bear on urban flood management. We found key aspects of these knowledge systems that deserve attention to overcome integration barriers, including different frames about how stormwater and riverine flood systems work, a fragmented and unclear formal knowledge system for stormwater management, and a focus on short-term approaches that limit anticipatory capacities in both community and governance. We discuss how citizen knowledge systems have a more nuanced and granular understanding of riverine and stormwater flood dynamics and the opportunities that exist to integrate knowledge systems through co-production, citizen science, and other governance interventions. As officials and citizens continue to learn from experiences with extreme events like Hurricane Maria, a goal of knowledge integration interventions should be the transformation of our knowledge infrastructures to build climate resilience in more just and sustainable ways.
C1 [Ramsey, Molly M.; Melendez-Ackerman, Elvia; Nytch, Christopher J.; Branoff, Benjamin L.] Dept Environm Sci, San Juan, PR 00925 USA.
   [Branoff, Benjamin L.] Univ Puerto Rico, Dept Biol, Rio Piedras, PR USA.
   [Munoz-Erickson, Tischa A.; Branoff, Benjamin L.] US Forest Serv, Int Inst Trop Forestry, USDA, Rio Piedras, PR USA.
   [Branoff, Benjamin L.; Carrasquillo-Medrano, David] Soc Puertorriquena Planificac, POB 23354, San Juan, PR USA.
C3 University of Puerto Rico; University of Puerto Rico Medical Sciences
   Campus; University of Puerto Rico Rio Piedras; United States Department
   of Agriculture (USDA); United States Forest Service
RP Ramsey, MM (corresponding author), Dept Environm Sci, San Juan, PR 00925 USA.
EM molly.ramsey@upr.edu
RI Branoff, Benjamin/AAF-8323-2020; MunozErickson, Tischa/AAG-8476-2019
FU National Science Foundation [1444755, 0948507, 00801577, 1737626];
   University of Puerto Rico-Rio Piedras; USDA Forest Service International
   Institute of Tropical Forestry; Municipality of San Juan; Puerto Rico
   Departamento de Recursos Naturales y Ambientalis [2015-00062]; Vinnova
   [2015-00062] Funding Source: Vinnova; Division Of Behavioral and
   Cognitive Sci; Direct For Social, Behav & Economic Scie [0948507]
   Funding Source: National Science Foundation; Division Of Computer and
   Network Systems; Direct For Computer & Info Scie & Enginr [1737626]
   Funding Source: National Science Foundation; Formas [2015-00062] Funding
   Source: Formas
FX We are thankful for the support of the National Science Foundation,
   which has supported numerous projects that have been instrumental to
   develop the ideas in this article (1444755, 0948507, 00801577, 1737626).
   We also acknowledge the support of the University of Puerto Rico-Rio
   Piedras, the USDA Forest Service International Institute of Tropical
   Forestry, the Puerto Rico Departamento de Recursos Naturales y
   Ambientalis (2015-00062), and the Municipality of San Juan.
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NR 59
TC 28
Z9 32
U1 2
U2 53
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 SEP
PY 2019
VL 99
BP 48
EP 57
DI 10.1016/j.envsci.2019.04.013
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA IH4YV
UT WOS:000474498900006
DA 2025-04-22
ER

PT J
AU Hernantes, J
   Maraña, P
   Gimenez, R
   Sarriegi, JM
   Labaka, L
AF Hernantes, Josune
   Marana, Patricia
   Gimenez, Raquel
   Mari Sarriegi, Jose
   Labaka, Leire
TI Towards resilient cities: A maturity model for operationalizing
   resilience
SO CITIES
LA English
DT Article
DE Resilience; Cities; Maturity model; Policies; Operationalization;
   Roadmap
ID DISASTERS
AB A growing majority of the world's population lives in cities. This rapid urbanization increases the concentration of people and critical services in cities, which also upscale their exposure to acute shocks and long-term stresses such as floods, earthquakes, climate change or social dynamics. While all of these challenges are complex in themselves, in most cases, cities must face a combination of them.
   Resilience thinking demands cities plan holistically so that they are prepared for whatever shocks and stresses may arise. Although there is a set of frameworks aimed at building city resilience, frameworks specifically aimed at operationalizing the resilience-building process within cities remain undeveloped. This research begins to fill this gap by developing a Resilience Maturity Model (RMM) that provides cities with a roadmap for operationalizing the resilience-building process. For that purpose, the RMM defines a sequence of maturity stages and a set of policies that help cities to assess their current maturity stage and identify the policies that need to be implemented to improve their resilience level.
C1 [Hernantes, Josune; Marana, Patricia; Gimenez, Raquel; Mari Sarriegi, Jose; Labaka, Leire] Univ Navarra, TECNUN, Sch Engn, Paseo Manuel Lardizabal 13, San Sebastian 20018, Spain.
C3 University of Navarra
RP Hernantes, J (corresponding author), Univ Navarra, TECNUN, Sch Engn, Paseo Manuel Lardizabal 13, San Sebastian 20018, Spain.
EM jhernantes@tecnun.es; pmarana@tecnun.es; rgimenez@tecnun.es;
   jmsarriegi@tecnun.es; llabaka@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; Marana, Patricia/0000-0002-4536-8074
FU European Union [653569]
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 24
TC 79
Z9 86
U1 10
U2 202
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 2019
VL 84
BP 96
EP 103
DI 10.1016/j.cities.2018.07.010
PG 8
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA HE7LE
UT WOS:000453618000010
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Liu, ZZ
   Chen, H
   Liu, EZ
   Zhang, Q
AF Liu, Zhizhen
   Chen, Hong
   Liu, Enze
   Zhang, Qi
TI Evaluating the dynamic resilience of the multi-mode public transit
   network for sustainable transport
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Resilience; Multi-mode public transit network; Cascading failure;
   Load-capacity model; Sustainable transport
AB Improving multi-mode public transit resilience becomes crucial as urban traffic infrastructure gradually completes. This paper aims to build a dynamic resilience evaluation method and explore the resilience evolution process for multi-mode public transit. For establishing the resilience evaluation method, we considered both structural and functional indicators of the network. Then, we built a nonlinear load-capacity model and a cascading failure model to reflect the dynamic feature of resilience. Next, attack scenarios were designed according to the actual characteristics of the multi-mode public transit. Using the passenger flow data from Xi'an, we tested the impact of station capacity on the dynamic resilience results and analyzed the resilience evolution process. The results indicate that the network's resilience performance was the worst when the subway station was destroyed. Through adjusting the capacity control parameters, we found the best station capacity control parameter is alpha = 0.5, beta = 0.4. Moreover, the sharply reducing intervals found in the results could help traffic managers improve transport efficiency while controlling costs.
C1 [Liu, Zhizhen; Chen, Hong; Liu, Enze; Zhang, Qi] Changan Univ, Coll Transportat Engn, Xian, Shaanxi, Peoples R China.
   [Chen, Hong] Changan Univ, Middle Sect Naner Huan Rd, Xian 710064, Shaanxi, Peoples R China.
C3 Chang'an University; Chang'an University
RP Chen, H (corresponding author), Changan Univ, Middle Sect Naner Huan Rd, Xian 710064, Shaanxi, Peoples R China.
EM 2018021077@chd.edu.cn; chenh_yunshu@163.com; liuenze@chd.edu.cn;
   2017021077@chd.edu.cn
RI Liu, Enze/GXV-2064-2022; Liu, Zhizhen/AGQ-4570-2022
OI Liu, Enze/0000-0001-5880-9599; Liu, Zhizhen/0000-0001-8934-2805; Chen,
   Hong/0000-0002-1339-9669
FU 111 project of Sustainable Trans-portation for Urban Agglomeration in
   Western China [B20035]
FX Ackonwledgement This work was supported by the 111 project of
   Sustainable Trans-portation for Urban Agglomeration in Western China
   (No. B20035) .
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U1 38
U2 248
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 MAY 10
PY 2022
VL 348
AR 131350
DI 10.1016/j.jclepro.2022.131350
EA MAR 2022
PG 18
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 0X3DN
UT WOS:000789591200001
DA 2025-04-22
ER

PT J
AU Chia, B
   Wang, YH
   Chen, Y
AF Chia, Bernadette
   Wang, Yuhong
   Chen, Yang
TI Flood Resilience of Urban River Restoration Projects: Case Studies in
   Hong Kong
SO JOURNAL OF MANAGEMENT IN ENGINEERING
LA English
DT Article
DE Resilience; River channels; Enhancement works; Biodiversity; Storms;
   Flooding
ID RIPARIAN VEGETATION; COMMUNITIES; INVASIONS; FRAMEWORK; RISK
AB As a flood mitigation strategy, most of Hong Kong's river channels were straightened and lined with concrete to maximize their drainage capacities, but at the cost of ecological and aesthetic values. To reclaim these and still meet engineering demands, some nature-based solutions have been introduced to revitalize the rivers. However, there are concerns about the resilience of the restored rivers under heavy rainstorms. In this paper, a framework and process for resilience analysis is proposed, based on which resilience analysis was performed on two river restoration cases from the perspectives of engineering resilience, system resilience, and complex adaptive system resilience. The analysis framework and process were found to be useful in generating technical and managerial insights into the resilience of the river restoration projects. Based on the analysis results, proactive design and adaptive operation management strategies are recommended. Although resilience analysis in this paper was performed in the context of river restoration projects, the framework and process may be applicable to other civil infrastructures. (C) 2020 American Society of Civil Engineers.
C1 [Chia, Bernadette; Wang, Yuhong; Chen, Yang] Hong Kong Polytech Univ, Dept Civil & Environm Engn, Hung Hom, Hong Kong, Peoples R China.
C3 Hong Kong Polytechnic University
RP Wang, YH (corresponding author), Hong Kong Polytech Univ, Dept Civil & Environm Engn, Hung Hom, Hong Kong, Peoples R China.
EM chiab@live.com; ceyhwang@polyu.edu.hk; yang-cee.chen@connect.polyu.hk
RI Wang, Yuhong/N-7434-2017; Wang, Yuhong/J-5216-2014
OI Chen, Yang/0000-0003-2400-472X; Wang, Yuhong/0000-0002-4506-4230
FU Research Grant Council (RGC) of the Hong Kong Special Administrative
   Region Government [E-PolyU502/16]; European Commission (EC)'s Horizon
   2020 Research Scheme, Hong Kong RGC
FX This paper is based on the research project (E-PolyU502/16) funded by
   the Research Grant Council (RGC) of the Hong Kong Special Administrative
   Region Government. The research is part of the study Urban Nature Labs
   (UNaLab), funded by the European Commission (EC)'s Horizon 2020 Research
   Scheme, Hong Kong RGC, and other research partners.
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TC 14
Z9 14
U1 6
U2 74
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 0742-597X
EI 1943-5479
J9 J MANAGE ENG
JI J. Manage. Eng.
PD SEP 1
PY 2020
VL 36
IS 5
AR 05020009
DI 10.1061/(ASCE)ME.1943-5479.0000809
PG 12
WC Engineering, Industrial; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA PS3CO
UT WOS:000607803900030
DA 2025-04-22
ER

PT J
AU Wang, Y
   Zhao, O
   Zhang, LM
AF Wang, Ying
   Zhao, Ou
   Zhang, Limao
TI Modeling urban rail transit system resilience under natural disasters: A
   two-layer network framework based on link flow
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Urban rail transit; resilience; service disruption; dynamic link flow;
   spatial heterogeneity
ID PASSENGER FLOW; HETEROGENEITY; RECOVERY
AB Service disruption of urban rail transit systems in natural disasters induces direct and simultaneous impacts (e.g., delay of travel) that may propagate to indirect and long-term impacts (e.g., economic losses). Models that can identify the critical components of infrastructures, if with proper granularity, will help to form actionable strategies for infrastructure protection and resilience. To better understand the system response under service disruption and followed recovery processes, a purely data-driven approach is proposed to model the system's absorptive and adaptive resilience. To do so, the urban rail transit system is modeled as a customized two-layer network to distinguish its infrastructure layer and service layer. A new localized measure, i.e., link flow, is suggested to construct the system functionality in attack-repair scenarios. It is estimated based on recorded smart card data. Applied to the Hangzhou Metro system, service restoration relying on the new metric is 2 similar to 3 times faster and more robust (i.e., smaller normalized standard deviation) than that relying on the common metric (i.e., recovery cost) under a portfolio of attacks tested with varying severity. Stably high correlations (i.e., 0.65 to 0.8) are observed between the two set of rank indices, i.e., of infrastructure topology-based importance and of flow based importance. Furthermore, the system response to attacks with the estimated link flow is consistent with simulated ones with known and exact link flow.
C1 [Wang, Ying; Zhao, Ou] Nanyang Technol Univ, Sch Civil & Environm Engn, 50 Nanyang Ave, Singapore City 639798, Singapore.
   [Zhang, Limao] Huazhong Univ Sci & Technol, Natl Ctr Technol Innovat Digital Construct, Sch Civil & Hydraul Engn, 1037 Luoyu Rd, Wuhan 430074, Hubei, Peoples R China.
C3 Nanyang Technological University; Huazhong University of Science &
   Technology
RP Zhang, LM (corresponding author), Huazhong Univ Sci & Technol, Natl Ctr Technol Innovat Digital Construct, Sch Civil & Hydraul Engn, 1037 Luoyu Rd, Wuhan 430074, Hubei, Peoples R China.
EM zlm@hust.edu.cn
RI Zhang, Limao/A-1320-2016; Zhao, Ou/F-9311-2019; Wang, Ying/JEO-6382-2023
OI Zhang, Limao/0000-0002-7245-3741; Wang, Ying/0000-0001-9066-2638; ZHAO,
   OU/0000-0003-2941-0970
FU SINGA scholarship
FX The first author is grateful for the SINGA scholarship.
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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 JAN
PY 2024
VL 241
AR 109619
DI 10.1016/j.ress.2023.109619
EA SEP 2023
PG 19
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA T9VG7
UT WOS:001081383200001
DA 2025-04-22
ER

PT J
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TI Building the resilient food waste supply chain for the megacity: Based
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SO RESOURCES CONSERVATION AND RECYCLING
LA English
DT Article
DE Food waste; Supply chain; Downscaling; Resilience; Machine learning
ID MANAGEMENT; POPULATION; CITIES
AB Food waste (FW), a significant component of municipal solid waste (MSW), exhibits notable spatiotemporal fluctuations and environmental impacts, especially in megacities. To enable efficient FW recycling, we developed a resilient supply chain prediction model by leveraging the Multi-scale Progressive Fusion (MPF) framework. The framework integrates models for annual MSW prediction, monthly fluctuations, FW separation rates, and spatial downscaling, enabling it to accurately capture spatiotemporal patterns at a monthly resolution and 1 km2 scale (R2 = 0.8130)., significantly outperforming the Baseline framework (R2 = 0.1383). Our analysis predicted that FW in Beijing would exhibit seasonal variations by 2035, with daily FW during the peak season (July and August) being 36 % higher than in the off-season (February). These findings supported seasonal resilient strategies for addressing spatiotemporal fluctuations in FW. Scenario analysis demonstrated that the MPF framework, when combined with resilient measures, significantly improved supply chain resilience. Compared to non-resilient supply chains reliant on baseline FW predictions, it enhanced traffic adaptation by 5.6 %, reduced costs by 16.9 %, and lowered greenhouse gas (GHG) emissions by 40.1 %. This study demonstrated the critical role of accurate FW spatiotemporal forecasting in enhancing resilience within megacities and provided a practical pathway for building resilient FW supply chains globally.
C1 [Zhao, Tianrui; Sun, Huihang; Wang, Yihe; Zhan, Wei; Li, Yanliang; Li, Weijia; Tang, Xiaomi; Luo, Shanshan; Shang, Xuanlong; Zhang, Jun; Tian, Yu] Harbin Inst Technol, Sch Environm, State Key Lab Urban Water Resource & Environm SKLU, Harbin 150090, Peoples R China.
C3 Harbin Institute of Technology
RP Tian, Y (corresponding author), Harbin Inst Technol, Sch Environm, State Key Lab Urban Water Resource & Environm SKLU, Harbin 150090, Peoples R China.
EM hit_tianyu@163.com
RI Li, Weijia/ABG-1523-2021
FU National Key Research and Develop-ment Program of China [2023YFC3902800]
FX This study is supported by the National Key Research and Develop-ment
   Program of China (2023YFC3902800) .
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NR 64
TC 0
Z9 0
U1 11
U2 11
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 APR
PY 2025
VL 215
AR 108144
DI 10.1016/j.resconrec.2025.108144
EA JAN 2025
PG 12
WC Engineering, Environmental; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Environmental Sciences & Ecology
GA U2A1W
UT WOS:001409878100001
DA 2025-04-22
ER

PT J
AU Wang, M
   Xiong, ZH
   Zhao, JY
   Zhou, SQ
   Wang, YK
   Ikram, RMA
   Wang, L
   Tan, SK
AF Wang, Mo
   Xiong, Ziheng
   Zhao, Jiayu
   Zhou, Shiqi
   Wang, Yuankai
   Ikram, Rana Muhammad Adnan
   Wang, Lie
   Tan, Soon Keat
TI Generative Adversarial Networks for Climate-Sensitive Urban Morphology:
   An Integration of Pix2Pix and the Cycle Generative Adversarial Network
SO LAND
LA English
DT Article
DE urban morphology generation; generative adversarial networks; local
   climate zones; AI-driven urban planning; climate adaptability
ID DATA AUGMENTATION; ZONES
AB Urban heat island (UHI) effects pose significant challenges to sustainable urban development, necessitating innovative modeling techniques to optimize urban morphology for thermal resilience. This study integrates the Pix2Pix and CycleGAN architectures to generate high-fidelity urban morphology models aligned with local climate zones (LCZs), enhancing their applicability to urban climate studies. This research focuses on eight major Chinese coastal cities, leveraging a robust dataset of 4712 samples to train the generative models. Quantitative evaluations demonstrated that the integration of CycleGAN with Pix2Pix substantially improved structural fidelity and realism in urban morphology synthesis, achieving a peak Structural Similarity Index Measure (SSIM) of 0.918 and a coefficient of determination (R2) of 0.987. The total adversarial loss in Pix2Pix training stabilized at 0.19 after 811 iterations, ensuring high convergence in urban structure generation. Additionally, CycleGAN-enhanced outputs exhibited a 35% reduction in relative error compared to Pix2Pix-generated images, significantly improving edge preservation and urban feature accuracy. By incorporating LCZ data, the proposed framework successfully bridges urban morphology modeling with climate-responsive urban planning, enabling adaptive design strategies for mitigating UHI effects. This study integrates Pix2Pix and CycleGAN architectures to enhance the realism and structural fidelity of urban morphology generation, while incorporating the LCZ classification framework to produce urban forms that align with specific climatological conditions. Compared to the model trained by Pix2Pix coupled with LCZ alone, the approach offers urban planners a more precise tool for designing climate-responsive cities, optimizing urban layouts to mitigate heat island effects, improve energy efficiency, and enhance resilience.
C1 [Wang, Mo; Xiong, Ziheng; Zhao, Jiayu; Ikram, Rana Muhammad Adnan] Guangzhou Univ, Coll Architecture & Urban Planning, Guangzhou 510006, Peoples R China.
   [Zhou, Shiqi] Tongji Univ, Coll Design & Innovat, Shanghai 200093, Peoples R China.
   [Wang, Yuankai] Univ Hong Kong, Dept Urban Planning & Design, Pok Fu Lam Rd, Hong Kong, Peoples R China.
   [Wang, Lie] Hunan Univ Informat Technol, Art Sch, Changsha 410151, Peoples R China.
   [Tan, Soon Keat] Nanyang Technol Univ, Sch Civil & Environm Engn, Singapore 639798, Singapore.
C3 Guangzhou University; Tongji University; University of Hong Kong;
   Nanyang Technological University
RP Wang, M (corresponding author), Guangzhou Univ, Coll Architecture & Urban Planning, Guangzhou 510006, Peoples R China.; Wang, L (corresponding author), Hunan Univ Informat Technol, Art Sch, Changsha 410151, Peoples R China.
EM saupwangmo@gzhu.edu.cn; 2112309064@e.gzhu.edu.cn;
   2112309065@e.gzhu.edu.cn; zhoushiqi@tongji.edu.cn;
   u3011546@connect.hku.hk; rana@gzhu.edu.cn;
   wanglie8610051138@outlook.com; ctansk@ntu.edu.sg
RI zhou, shiqi/LLL-2747-2024; Wang, Mo/ABC-9345-2020; Adnan,
   Rana/ABB-1652-2020
OI Wang, Mo/0000-0001-8752-6256
FU Guangdong Basic and Applied Basic Research Foundation, China; Guangzhou
   City School (Institute) Enterprise Joint Funding Project, China
FX This research was funded by the Guangdong Basic and Applied Basic
   Research Foundation, China, grant number 2023A1515030158; and the
   Guangzhou City School (Institute) Enterprise Joint Funding Project,
   China, grant number 2024A03J0317. The APC was funded by the Guangdong
   Basic and Applied Basic Research Foundation, China, and the Guangzhou
   City School (Institute) Enterprise Joint Funding Project, China.
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NR 65
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 MAR 10
PY 2025
VL 14
IS 3
AR 578
DI 10.3390/land14030578
PG 18
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 0PX0W
UT WOS:001453196400001
OA gold
DA 2025-04-22
ER

PT J
AU Polonenko, LM
   Hamouda, MA
   Mohamed, MM
AF Polonenko, Leah McMillan
   Hamouda, Mohamed A.
   Mohamed, Mohamed M.
TI Essential components of institutional and social indicators in assessing
   the sustainability and resilience of urban water systems: Challenges and
   opportunities
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Urban water systems; Institutional indicators; Social indicators;
   Sustainability; Resilience; Framework
ID PERFORMANCE INDICATORS; MANAGEMENT; FRAMEWORK; GOVERNANCE; RESOURCES;
   SECURITY; AFRICA; DESIGN; HEALTH
AB There has been increasing focus on the resilience and sustainability of Urban Water Systems (UWS) due to the increase in urban population and rise of imminent threats (e.g. floods). This focus has brought about numerous studies attempting to develop a framework of assessment of UWS that can be benchmarked and adopted by different jurisdictions. The use of composite indicators has been the most common approach in many of the studies appearing in the past two decades. While there seems to be a consensus on the relevant technical and economic indicators in assessing UWS, the situation is different when it comes to social and institutional indicators. In this paper, a discussion of the most common institutional and social indicators used in conducting a sustainability or resilience assessment of UWS is presented. A framework of criteria which describes four key ways for ensuring that indicators are appropriate for use in UWS is proposed. The framework is described as a tool to mitigate common challenges in the development and evaluation of institutional and social indicators. While social and institutional indicators have been used in a variety of studies, the framework offers a way to better ensure that regardless of the chosen indicators, they are developed and used in a way that is consistent with the merits of social research, notably reliability and validity. (C) 2019 Elsevier B.V. All rights reserved.
C1 [Polonenko, Leah McMillan] Univ Toronto Scarborough, Ctr Crit Dev Studies, Int Dev Studies, 1265 Mil Trail Scarborough, Scarborough, ON M1C 1A4, Canada.
   [Hamouda, Mohamed A.; Mohamed, Mohamed M.] United Arab Emirates Univ, Dept Civil & Environm Engn, POB 15551, Al Ain, U Arab Emirates.
   [Hamouda, Mohamed A.; Mohamed, Mohamed M.] United Arab Emirates Univ, Natl Water Ctr, Abu Dhabi, U Arab Emirates.
C3 University of Toronto; University Toronto Scarborough; United Arab
   Emirates University; United Arab Emirates University
RP Hamouda, MA (corresponding author), United Arab Emirates Univ, Dept Civil & Environm Engn, POB 15551, Al Ain, U Arab Emirates.
EM leah.polonenko@utoronto.ca; m.hamouda@uaeu.ac.ae
RI mohamed, mostafa/AFE-7371-2022; Hamouda, Mohamed/I-1823-2016
OI Mohamed, Mohamed Mostafa/0000-0002-1412-7219; Hamouda,
   Mohamed/0000-0003-1797-4904
FU National Water Center at United Arab Emirates University (UAEU) [31R150]
FX The authors would like to express their gratitude to the National Water
   Center at United Arab Emirates University (UAEU) for financing this
   project under grant no. 31R150.
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NR 82
TC 24
Z9 25
U1 7
U2 97
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 15
PY 2020
VL 708
AR 135159
DI 10.1016/j.scitotenv.2019.135159
PG 11
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA KB0TV
UT WOS:000506214900123
PM 31810672
DA 2025-04-22
ER

PT J
AU Kamali, B
   Ziaei, AN
   Beheshti, A
   Farmani, R
AF Kamali, Behnaz
   Ziaei, Ali Naghi
   Beheshti, Aliasghar
   Farmani, Raziyeh
TI An open-source toolbox for investigating functional resilience in sewer
   networks based on global resilience analysis
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Global resilience analysis; Storm Water Management Model; Scenario
   reduction; Roulette wheel; Multi criteria decision making; Open-source
   toolbox
ID URBAN DRAINAGE; WATER MANAGEMENT; FRAMEWORK; SELECTION; MODEL; SAFE;
   SWMM
AB Resilience analysis of urban infrastructures such as sewerage systems is very important due to different stressors. Failure in these infrastructures may lead to economic, social, health and environmental consequences. The functional resilience of systems can be analyzed in all failure levels caused by unpredictable or even unknown events based on the global resilience analysis (GRA) method. To perform GRA under different scenarios of pipe collapse and blockage, the performance of the system must be evaluated in all possible link failure combinations. The time of this process might be unfeasibly long in real sewerage networks. In this paper, an open-source toolbox is developed which uses a proposed scenario selection method based on roulette wheel to perform GRA without simulating all possible scenarios. This toolbox is based on a proposed O-SWMM API which is a developed version of EPA's Storm Water Management Model (SWMM) to optimize simulation time and memory usage. The results show that the mean resilience for a sample and also a real sewer network was estimated by the proposed method with RMSE less than 0.025 and 0.022 respectively comparing with simulating all possible scenarios. Moreover, the GRA computation using O-SWMM API was at least 2.26 times faster than SWMM.exe.
C1 [Kamali, Behnaz; Ziaei, Ali Naghi; Beheshti, Aliasghar] Ferdowsi Univ Mashhad FUM, Coll Agr, Dept Water Sci & Engn, Mashhad, Razavi Khorasan, Iran.
   [Farmani, Raziyeh] Univ Exeter, Dept Engn, Exeter EX4 4QF, Devon, England.
C3 Ferdowsi University Mashhad; University of Exeter
RP Ziaei, AN (corresponding author), Ferdowsi Univ Mashhad FUM, Coll Agr, Dept Water Sci & Engn, Mashhad, Razavi Khorasan, Iran.
EM an-ziaei@um.ac.ir
RI Farmani, Raziyeh/D-3457-2012
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NR 35
TC 4
Z9 4
U1 2
U2 39
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 108201
DI 10.1016/j.ress.2021.108201
EA NOV 2021
PN B
PG 11
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA XM1ML
UT WOS:000728599800021
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Guo, X
AF Guo, Xin
TI Assessing the impact of the Central Line Project of South-to-North Water
   Diversion on urban economic resilience: Evidence from prefecture-level
   cities in Henan and Hebei provinces
SO INTERNATIONAL REVIEW OF ECONOMICS & FINANCE
LA English
DT Article
DE Central Line Project of South-to-North Water Diversion; High-quality
   development; Urban economic resilience; Difference-in-differences model
ID FOREIGN DIRECT-INVESTMENT; CROP PRODUCTION; CLIMATE-CHANGE; FOOD
   SECURITY; CHINA; MANAGEMENT; TECHNOLOGY; INNOVATION; SUSTAINABILITY;
   RESOURCES
AB The rational distribution of water resources is vital for the stable development of regional economies. In the agriculturally and industrially advanced cities in the north, water shortages impede agricultural irrigation and industrial production and undermine the stability and resilience of the entire economic system. Consequently, this study utilizes the Difference-indifferences and mediation effect models. It is grounded in a panel data analysis of prefecture- level cities in Henan and Hebei provinces along the Central Line Project of South-to-North Water Diversion from 2010 to 2022. The study aims to analyze the impact of the project's operation and water supply on the economic resilience of the recipient cities and to explore the underlying mechanisms. The research findings are as follows: Firstly, there is a significantly positive correlation between the water supply from Central Line Project of South-to-North Water Diversion and the economic resilience of the recipient cities. This conclusion remains valid after a series of robustness tests. Secondly, the water supply from the Central Line Project of South-to- North Water Diversion's recipient cities' economic resilience by enhancing regional innovation capabilities and agricultural technological innovation. Thirdly, the heterogeneity analysis indicates that the positive impact of the water supply from the Central Line Project of South-to- North Water Diversion on the economic resilience of recipient cities is particularly pronounced in non-resource-based cities, and samples that are adjacent to Beijing and Tianjin or are provincial capitals themselves, or are close to provincial capitals. The research conclusions offer specific references and perspectives for the high-quality development of China's Central Line Project of South-to-North Water Diversion, the optimization of the rational allocation of water resources, and the promotion of stable urban economic growth and enhanced resilience.
C1 [Guo, Xin] Nanyang Normal Univ, Law Sch, Nanyang, Peoples R China.
C3 Nanyang Normal College
RP Guo, X (corresponding author), Nanyang Normal Univ, Law Sch, Nanyang, Peoples R China.
EM 20092019@nynu.edu.cn
FU Philosophy and Social Science Planning Project in Henan Province
   [2022BFX016]
FX Research on risk prevention and control mechanism for high-quality
   development of South-to-North Water Diversion Project from the
   perspective of ecological rule of law and safety. Philosophy and Social
   Science Planning Project in Henan Province (2022BFX016)
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NR 87
TC 0
Z9 0
U1 8
U2 8
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1059-0560
EI 1873-8036
J9 INT REV ECON FINANC
JI Int. Rev. Econ. Financ.
PD MAR
PY 2025
VL 98
AR 103904
DI 10.1016/j.iref.2025.103904
EA JAN 2025
PG 19
WC Business, Finance; Economics
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA U9K3E
UT WOS:001414887400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Villanueva, CP
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   Capio, CM
AF Villanueva, Celine P.
   Labao, Richard Braulio J.
   Tran, Katherine Regine Anne G.
   Gonzalez, Nathaniel Reihann B.
   Luna, Joseph M.
   Ochava, Kristine Mallory R.
   Capio, Catherine M.
TI Resilience and green spaces: Association with stress among contact
   centre workers in the Philippines
SO HEALTH PROMOTION JOURNAL OF AUSTRALIA
LA English
DT Article
DE contact centre; resilience; urban green space; work-related stress
ID PHYSICAL-ACTIVITY; WORKPLACE; HEALTH; SCALE; SETTINGS
AB Issue Addressed: Philippine contact centres are rife with factors that contribute to work-related stress; health promotion strategies are needed to mitigate the impacts. With a transactional framework with the environment, this study examined the relationship of stress with resilience and the presence of urban green spaces (UGS) in the environment, while accounting for individual charac-teristics (ie, age, household income, exercise frequency).Methods: Participants include employees (Stage 1 N = 186; Stage 2 N = 89) from six contact centres in the capital region of the Philippines. A two-stage online sur-vey included standardised instruments to measure stress (1 0-item Perceived Stress Scale) and resilience (Connor-Davids on Resilience Scale), customised questions to gather demographic information and probe on participants' insights. Google Earth Pro was used for satellite mapping of UGS, followed by on-site ocular inspection.Results: Participants' average stress level was categorised as high; primary stressors included client demands and workload. The objectively measured per-centages of UGS in the study sites' vicinity were categorised as low. Participants found UGS visible after careful observation, and majority were aware of UGS in their workplace vicinity. Resilience, household income and awareness of UGS in the vicinity significantly predicted stress levels.Conclusion: Contact centre workers experienced high stress levels and their work-places had little accessible UGS. Resilience, household income and awareness of UGS are significant contributors to stress levels.
C1 [Villanueva, Celine P.; Labao, Richard Braulio J.; Tran, Katherine Regine Anne G.; Gonzalez, Nathaniel Reihann B.; Luna, Joseph M.; Ochava, Kristine Mallory R.; Capio, Catherine M.] Ateneo Manila Univ, Hlth Sci Dept, Manila, Philippines.
   [Capio, Catherine M.] Educ Univ Hong Kong, Ctr Psychosocial Hlth, Hong Kong, Peoples R China.
   [Capio, Catherine M.] Educ Univ Hong Kong, Ctr Psychosocial Hlth, 10 Lo Ping Rd, Hong Kong, Peoples R China.
C3 Ateneo de Manila University; Education University of Hong Kong (EdUHK);
   Education University of Hong Kong (EdUHK)
RP Capio, CM (corresponding author), Educ Univ Hong Kong, Ctr Psychosocial Hlth, 10 Lo Ping Rd, Hong Kong, Peoples R China.
EM ccapio@eduhk.hk
RI Capio, Catherine M./IQV-1014-2023
OI Capio, Catherine M./0000-0003-1698-5740
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NR 50
TC 0
Z9 0
U1 0
U2 7
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 1036-1073
EI 2201-1617
J9 HEALTH PROMOT J AUST
JI Health Promot. J. Aust.
PD OCT
PY 2023
VL 34
IS 4
SI SI
BP 923
EP 931
DI 10.1002/hpja.699
EA FEB 2023
PG 9
WC Public, Environmental & Occupational Health
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA W1GE1
UT WOS:000935654900001
PM 36727419
DA 2025-04-22
ER

PT J
AU Sakyi-Nyarko, C
   Ahmad, AH
   Green, CJ
AF Sakyi-Nyarko, Carlos
   Ahmad, Ahmad Hassan
   Green, Christopher J.
TI The Gender-Differential Effect of Financial Inclusion on Household
   Financial Resilience
SO JOURNAL OF DEVELOPMENT STUDIES
LA English
DT Article
DE Financial inclusion; Mobile Money; Savings; Gender; Financial resilience
ID PROPENSITY-SCORE; MOBILE MONEY; EMPOWERMENT; WOMEN; POOR; SAVINGS;
   CREDIT; MICROFINANCE; MICROCREDIT; POVERTY
AB This paper applies the kernel propensity score matching difference-in-differences method to examine gender-differential effects of financial inclusion on household financial resilience, using repeated cross-sectional data from two successive large-scale surveys of Ghanaian households. Applying standardised indices for financial inclusion and financial resilience, we find that financial inclusion significantly improves household financial resilience. Results from gender and locality disaggregated analyses suggest that the effect of financial inclusion on household resilience does not significantly vary by gender or locality. Results from different measures of financial inclusion show that savings and formal account ownership yield more pronounced resilience effect, with mobile money (m-money) exerting the least impact. Remittances via m-money - sending and receiving (a proxy for social capital) - provide significant financial resilience effects, with generally stronger effects in rural than in urban areas, especially for females.
C1 [Sakyi-Nyarko, Carlos; Ahmad, Ahmad Hassan; Green, Christopher J.] Loughborough Univ, Sch Business & Econ, Loughborough LE11 3TU, Leics, England.
C3 Loughborough University
RP Ahmad, AH (corresponding author), Loughborough Univ, Sch Business & Econ, Loughborough LE11 3TU, Leics, England.
EM A.H.Ahmad@lboro.ac.Uk
RI Ahmad, Ahmad/S-7906-2019
OI Ahmad, Ahmad Hassan/0000-0002-6004-0181; Sakyi-Nyarko,
   Carlos/0000-0002-5168-8402
FU Loughborough University Graduate School Studentships; Economic and
   Social Research Council; UK's Foreign, Commonwealth and Development
   Office as part of the DFID-ESRC Growth Research Programme
   [ES/N013344/1]; Ghana Education Trust Fund
FX This research is funded by Loughborough University Graduate School
   Studentships, Ghana Education Trust Fund & a grant by the Economic and
   Social Research Council and the UK's Foreign, Commonwealth and
   Development Office as part of the DFID-ESRC Growth Research Programme
   Call 3, under grant no. ES/N013344/1: Delivering Inclusive Financial
   Development and Growth.
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NR 59
TC 37
Z9 39
U1 34
U2 129
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0022-0388
EI 1743-9140
J9 J DEV STUD
JI J. Dev. Stud.
PD APR 3
PY 2022
VL 58
IS 4
BP 692
EP 712
DI 10.1080/00220388.2021.2013467
EA JAN 2022
PG 21
WC Development Studies; Economics
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics
GA 2A1MK
UT WOS:000741205200001
OA Green Submitted, Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Huang, ZG
   Ma, CX
AF Huang, Zhaoguo
   Ma, Changxi
TI Symmetry-Based Urban Rail Transit Network Planning Using Two-Stage
   Robust Optimization
SO SYMMETRY-BASEL
LA English
DT Article
DE urban rail transit; network planning; robust optimization; large
   neighborhood search; hierarchical clustering
ID VULNERABILITY; DESIGN; ALGORITHM
AB To address the symmetry-related resilience issues of stations and lines in urban rail transit networks, we propose a two-stage robust optimization-based approach for urban rail transit network planning. In this context, resilience is conceptualized as the ability of the network to maintain its operational symmetry under normal and disruptive conditions. Firstly, we used passenger flow distributions as decision variables to construct a two-stage symmetry-based urban rail transit network planning model, aiming to simultaneously minimize the total cost and total operating time of the network while preserving its functional symmetry. Secondly, we designed a hybrid evolutionary algorithm with chromosomes having a two-layer encoding structure, where the Niched Pareto Genetic Algorithm served as the main algorithmic framework, and a Large Neighborhood Search mechanism was designed to optimize the connectivity gene layer of individuals, ensuring the symmetry of network connectivity. Finally, we conducted computational verification on randomly generated instances to confirm the effectiveness of the model and algorithm. The experimental results demonstrated that our method could find two sets of Pareto optimal solutions for cost preference and time preference, thereby preserving the operational symmetry of the network under normal and damaged conditions, as well as reducing the total operating time. This effectively improved the overall efficiency and resilience of the network. Our designed hybrid evolutionary algorithm converged to satisfactory objective values in the early iterations, exhibiting strong search and optimization performance and effectively solving the two-stage symmetry-based urban rail transit network planning model.
C1 [Huang, Zhaoguo; Ma, Changxi] Lanzhou Jiaotong Univ, Sch Traff & Transportat, Lanzhou 730070, Peoples R China.
C3 Lanzhou Jiaotong University
RP Huang, ZG (corresponding author), Lanzhou Jiaotong Univ, Sch Traff & Transportat, Lanzhou 730070, Peoples R China.
EM huangzg@lzjtu.edu.cn; machangxi@mail.lzjtu.cn
RI Ma, Changxi/AAM-5322-2020
OI Ma, Changxi/0000-0002-0250-5462
FU Joint Innovation Fund Project of Lanzhou Jiaotong University and the
   Corresponding Supporting University [LH2024022]; Joint Innovation Fund
   Project of Lanzhou Jiaotong University
FX This research was supported by the Joint Innovation Fund Project of
   Lanzhou Jiaotong University and the Corresponding Supporting University
   (No. LH2024022).
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NR 43
TC 0
Z9 0
U1 14
U2 16
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-8994
J9 SYMMETRY-BASEL
JI Symmetry-Basel
PD SEP
PY 2024
VL 16
IS 9
AR 1149
DI 10.3390/sym16091149
PG 28
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA H4U6O
UT WOS:001323410600001
OA gold
DA 2025-04-22
ER

PT J
AU Barriere, H
   Savatier, J
   Bolo, P
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AF Barriere, Helene
   Savatier, Jeremy
   Bolo, Philippe
   Hubert, Namgyel
   Athanase, Fabienne
TI Defining local strategy for flood management: an opportunity to develop
   a resilience process for Toulouse Metropole
SO HOUILLE BLANCHE-REVUE INTERNATIONALE DE L EAU
LA French
DT Article
DE Flood; Vulnerability; Resilience; Concertation
AB Toulouse Metropole is an urban territory highly affected by flood prone areas from Garonne River and its tributaries. It has launched a vulnerability diagnosis of the territory and the definition of the Urban Area Strategy for flood management and prevention on 41 municipalities, with the objective to improve territorial resilience. The diagnosis outputs are the identification and localization of many issues on a widespread territory, a multi-themes vulnerability analysis with a specific emphasis on taking into account risk in urbanism and urban planning. Regarding governance, concertation had a key role, with a large association of municipalities, stake holders and partners within innovative concertation workshops enabling a real co-construction of the strategy Thanks to this participatory process, the approach has led to raise risk and responsibility awareness of the different stakeholders, and to a real willingness to adapt the territory to improve its resilience thanks to territorial solidarity and with various actors. This experience enabled a political appropriation on a long term outlook (2035) of a technical, complex and lowly mobilizing issue, above all due to the lack of memory of the latest large flood (1875) and the feeling of being protected behind the center city dykes. A new dynamic is launched thanks to the new viewpoints brought by the Flood Directive principles: awareness of the dramatic consequences of floods, the importance of flood risk for urban planning and the involvement of all the actors and stakeholders in the operational programme of the strategy.
C1 [Barriere, Helene] Toulouse Metropole, Toulouse, France.
   [Savatier, Jeremy; Bolo, Philippe] ISL Ingenierie, Paris, France.
   [Hubert, Namgyel] AgenceTER, Paris, France.
   [Athanase, Fabienne] Direct Dept Terr Haute Garonne, Toulouse, France.
RP Barriere, H (corresponding author), Toulouse Metropole, Toulouse, France.
EM helene.barriere@toulouse-metropole.fr; savatier@isl.fr; bolo@isl.fr;
   nhubert@agenceter.com; fabienne.athanase@haute-garonne.gouv.fr
CR Direction Departementale Des Territoires De Haute Garonne, 2017, STRAT LOC GEST RISQ
   Isl Agence ter, 2016, MISS 1 DIAGN VULN TO
   Isl Agence ter, 2017, MISS 2 STRAT PREV GE
   Perea, 2014, VILLE INONDABLES PRE
   Prefet Coordonateur Du Bassin Adour Garonne, 2015, PLAN GEST RISQ IN BA
   Tanguy Charreyron Perchet, 2013, ANN MINES
   Villar david, 2014, SEM IT GO ROSK
NR 7
TC 0
Z9 0
U1 0
U2 9
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 JUN
PY 2018
IS 3
BP 18
EP 24
DI 10.1051/lhb/2018028
PG 7
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA GR1ZH
UT WOS:000442356000003
DA 2025-04-22
ER

PT J
AU Karamouz, M
   Taheri, M
   Khalili, P
   Chen, X
AF Karamouz, M.
   Taheri, M.
   Khalili, P.
   Chen, X.
TI Building Infrastructure Resilience in Coastal Flood Risk Management
SO JOURNAL OF WATER RESOURCES PLANNING AND MANAGEMENT
LA English
DT Article
DE Adaptive practices; Hazard mitigation; Coastal flood; Game theory;
   Hydrologic and hydraulic modeling; Resilience; Wastewater-treatments
   plants (WWTPs)
ID SEA-LEVEL RISE; FREQUENCY-ANALYSIS; HAZARD; MODEL; VULNERABILITY;
   ALLOCATION; CHINA
AB The alteration of a watershed's hydrologic response due to urban development, population growth, global warming, and sea level rise have increased the frequency and intensity of floods. In order to cope with the new challenges in coastal flood management, many efforts were made after Superstorm Sandy. These efforts call for better understanding of flood hazard, better understanding of the operation of infrastructures in a resilience context, ways to mitigate hazard impacts, rebuilding efforts by adaptive design, and developing a unified scale of resilience for measuring performance. In this paper, attempts have been made to address implementation of these measures. The main purpose of this study is to improve resilience in infrastructures, particularly wastewater-treatment plants (WWTPs), which play a pivotal role in urban lifelines in New York City. To do this, first, a flood inundation map has been generated to evaluate the current response of the study area to a 100-year flood and determine the flood inundation depth at WWTPs. Next, a multicriteria decision-making (MCDM) approach was utilized to quantify the resilience index as a system performance indicator. Afterward, two approaches based on resilience-improving measures have been considered to improve this index. The first approach is to provide redundancies between WWTPs to make a platform for WWTPs' cooperation to move the sewage between them. The second approach is to implement adaptive hazard mitigation practices such as best management practices (BMPs) based on a proposed framework of a key initiative in New York City. In order to prioritize various groups of BMPs, five methods of flood mitigation practices, namely resist, delay, discharge, store, and retreat, have been ranked using experts' opinions in a MCDM framework. Thereafter, resilience improvements based on the two aforementioned approaches have been compared by considering financial resources allocation to each WWTP, and the most efficient alternative solutions have been chosen. The methodology outlined in this paper can be utilized in other urban coastal settings to plan for better flood preparedness.
C1 [Karamouz, M.; Taheri, M.; Khalili, P.] Univ Tehran, Sch Civil Engn, Tehran 14174, Iran.
   [Chen, X.] Sun Yat Sen Univ, Ctr Water Resources & Environm Res, Guangzhou 510275, Guangdong, Peoples R China.
C3 University of Tehran; Sun Yat Sen University
RP Karamouz, M (corresponding author), Univ Tehran, Sch Civil Engn, Tehran 14174, Iran.
EM karamouz21@gmail.com; mahkameh.taheri@ut.ac.ir; pouyakhalili@ut.ac.ir;
   eescxh@mail.sysu.edu.cn
RI Taheri, Mahkameh/IAQ-2785-2023; Karamouz, Mohammad/Z-2080-2019; chen,
   xia/GYR-3948-2022
OI Taheri, Mahkameh/0000-0003-0604-5982
FU US National Science Foundation; National Science Foundation of China
FX The first author was formerly a research professor at New York
   University. Part of this paper was orally presented at a workshop in
   Wuhan, China in January 2017 cosponsored by the US National Science
   Foundation and National Science Foundation of China.
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NR 71
TC 30
Z9 32
U1 7
U2 93
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 APR 1
PY 2019
VL 145
IS 4
AR 04019004
DI 10.1061/(ASCE)WR.1943-5452.0001043
PG 18
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA HX4JL
UT WOS:000467360800008
DA 2025-04-22
ER

PT J
AU Farahmand, H
   Yin, K
   Hsu, CW
   Savadogo, I
   Alegre, XE
   Mostafavi, A
AF Farahmand, Hamed
   Yin, Kai
   Hsu, Chia-Wei
   Savadogo, Ibrahim
   Alegre, Xavier Espinet
   Mostafavi, Ali
TI Integrating climate projections and probabilistic network analysis into
   regional transport resilience planning
SO TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT
LA English
DT Article
DE Road network; Regional resilience assessment; Flood; Transportation
   disruption; Network analysis
ID RISK
AB Resilience assessment of road networks is essential to ensure the continuity of critical services following hazard events. Regional transportation resilience assessment requires detailed datasets and advanced computational modeling, which are often unavailable in assessments performed in the Global South. In this study, we present a probabilistic regional resilience assessment framework for road networks in contexts where detailed data are not available. The framework captures agency costs, user costs, and environmental costs. The framework enables benefit-cost analysis as well as incorporating climate projection scenarios for resilience investment analysis. The application of the framework is demonstrated in a case study for regional resilience analysis in Haiti as part of the Resilient Urban Transport and Accessibility Project (RUTAP) by the World Bank. The findings show the capabilities of the framework in providing quantitative insights for informed decision-making to improve regional resilience of road networks in the context of Global South.
C1 [Farahmand, Hamed; Yin, Kai; Hsu, Chia-Wei; Mostafavi, Ali] Texas A&M Univ, Zachry Dept Civil & Environm Engn, UrbanResilience AI Lab, College Stn, TX 77843 USA.
   [Savadogo, Ibrahim; Alegre, Xavier Espinet] World Bank, Transport Unit, Latin Amer & Caribbean Reg, Washington, DC USA.
C3 Texas A&M University System; Texas A&M University College Station; The
   World Bank
RP Farahmand, H (corresponding author), Texas A&M Univ, Zachry Dept Civil & Environm Engn, UrbanResilience AI Lab, College Stn, TX 77843 USA.
EM hamedfarahmand@tamu.edu
RI Mostafavi, Ali/R-2133-2018; KAI, YIN/KII-2791-2024
OI kai, yin/0000-0002-4440-4846
FU Japan-Bank Program for Mainstreaming DRM in Developing Countries;
   Government of Japan; Government of Haiti
FX This research was made possible with the financial support from the
   Japan-Bank Program for Mainstreaming DRM in Developing Countries, which
   is financed by the Government of Japan and receives technical support
   from the World Bank Tokyo Disaster Risk Management Hub. The team would
   like to acknowledge the support of the Government of Haiti, in
   particular Mr. Leger and Mr. Francois at the Unite Central Execution at
   the Ministry of Transport and Public Works, and advice and support of
   Malaika Becoulet, senior transport specialist at the World Bank
   Port-au-Price office.
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NR 57
TC 3
Z9 3
U1 36
U2 50
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 AUG
PY 2024
VL 133
AR 104229
DI 10.1016/j.trd.2024.104229
EA JUL 2024
PG 17
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 ZK4E8
UT WOS:001275171900001
DA 2025-04-22
ER

PT J
AU Ghasemzadeh, B
   Zarabadi, ZSS
   Majedi, H
   Behzadfar, M
   Sharifi, A
AF Ghasemzadeh, Behnam
   Zarabadi, Zahra Sadat Saeideh
   Majedi, Hamid
   Behzadfar, Mostafa
   Sharifi, Ayyoob
TI A Framework for Urban Flood Resilience Assessment with Emphasis on
   Social, Economic and Institutional Dimensions: A Qualitative Study
SO SUSTAINABILITY
LA English
DT Article
DE climate change adaptation; urban resilience; flood resilience; Tehran;
   resilience assessment
ID CLIMATE-CHANGE; DISASTER MANAGEMENT; RISK REDUCTION; EDUCATION;
   VULNERABILITY; COMMUNITIES; PERCEPTIONS; ADAPTATION; STRATEGY; CRITERIA
AB In recent years, the effects of climate change have become more noticeable in Iran, especially in big cities. In particular, climate-related flood risk is increasingly recognized as a potential threat in the capital city of Tehran. Accordingly, the present study aimed to provide a framework/assessment tool to measure Tehran's resilience to flood risks. To this end, 21 professionals from different disciplines were selected through a purposive sampling procedure and were interviewed using semi-structured interviews. The analysis procedure resulted in the identification of 3 themes, 15 categories, 40 subcategories, and 235 codes. The themes were social, economic, and organizational; The identified categories were culture and education (since culture is something to be learned through formal and informal education this component has two features: culture and education), participation, trust, attitude, solidarity, resources, empowerment, flexibility, credit, supervision, intercommunication, rules, specialization, and research. Validation of the indicators and their usability based on the opinions of local experts was used to calibrate the assessment tool and ensure its context-sensitivity. The results of this research can help planners and policymakers to increase their awareness of flood resilience. The approach taken in this research may also be useful for developing flood resilience assessment tools in other Iranian cities as well as in other cities of the Global South with similar conditions.
C1 [Ghasemzadeh, Behnam; Zarabadi, Zahra Sadat Saeideh; Majedi, Hamid] Islamic Azad Univ, Sci & Res Branch, Dept Art & Architecture, Tehran 1477893856, Iran.
   [Behzadfar, Mostafa] Iran Univ Sci & Technol, Sch Architecture & Environm Design, Tehran 1311416846, Iran.
   [Sharifi, Ayyoob] Hiroshima Univ, Grad Sch Humanities & Social Sci & Network Educ &, Hiroshima 7398511, Japan.
C3 Islamic Azad University; Iran University Science & Technology; Hiroshima
   University
RP Zarabadi, ZSS (corresponding author), Islamic Azad Univ, Sci & Res Branch, Dept Art & Architecture, Tehran 1477893856, Iran.
EM behnam.ghasemzadeh@yahoo.com; z.zarabadi@srbiau.ac.ir;
   majedi_h@yahoo.com; behzadfar@iust.ac.ir; sharifi@hiroshima-u.ac.jp
RI Zarabadi, Zahra/AAT-8866-2021; Ghasemzadeh, Behnam/ITU-8556-2023;
   behzadfar, mostafa/S-6055-2018; Sharifi, Ayyoob/M-7584-2013
OI Ghasemzadeh, Behnam/0000-0002-0689-1401; Sharifi,
   Ayyoob/0000-0002-8983-8613; Behzadfar, Mostafa/0000-0003-2882-694X
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NR 164
TC 18
Z9 19
U1 15
U2 75
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 7852
DI 10.3390/su13147852
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 TO6RR
UT WOS:000677036600001
OA gold
DA 2025-04-22
ER

PT J
AU Prior, T
   Eriksen, C
AF Prior, Tim
   Eriksen, Christine
TI Wildfire preparedness, community cohesion and social-ecological systems
SO GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Wildfire; Preparedness; Community cohesion; Resilience;
   Social-ecological system
ID WILDLAND-URBAN INTERFACE; RESILIENCE; RISK; FIRE; HAZARD; VULNERABILITY;
   MITIGATION; MANAGEMENT; BUSHFIRE; PERSPECTIVES
AB The consequences of wildfires are felt in susceptible communities around the globe on an annual basis. Climate change predictions in places like the south-east of Australia and western United States suggest that wildfires may become more frequent and more intense with global climate change. Compounding this issue is progressive urban development at the pen-urban fringe (wildland-urban interface), where continued infrastructure development and demographic changes are likely to expose more people and property to this potentially disastrous natural hazard. Preparing well in advance of the wildfire season is seen as a fundamental behaviour that can both reduce community wildfire vulnerability and increase hazard resilience - it is an important element of adaptive capacity that allows people to coexist with the hazardous environment in which they live. We use household interviews and surveys to build and test a substantive model that illustrates how social cohesion influences the decision to prepare for wildfire. We demonstrate that social cohesion, particularly community characteristics like 'sense of community' and 'collective problem solving', are community-based resources that support both the adoption of mechanical preparations, and the development of cognitive abilities and capacities that reduce vulnerability and enhance resilience to wildfire. We use the results of this work to highlight opportunities to transfer techniques and approaches from natural hazards research to climate change adaptation research to explore how the impacts attributed to the social components of social-ecological systems can be mitigated more effectively. (C) 2013 Elsevier Ltd. All rights reserved.
C1 [Prior, Tim] ETH, Ctr Secur Studies, CH-8092 Zurich, Switzerland.
   [Eriksen, Christine] Univ Wollongong, Sch Earth & Environm Sci, Australian Ctr Cultural Environm Res, Wollongong, NSW 2522, Australia.
C3 Swiss Federal Institutes of Technology Domain; ETH Zurich; University of
   Wollongong
RP Prior, T (corresponding author), ETH, Ctr Secur Studies, Haldeneggsteig 4, CH-8092 Zurich, Switzerland.
EM tim.prior@sipo.gess.ethz.ch
RI Eriksen, Christine/J-6912-2012
OI Eriksen, Christine/0000-0002-2906-9680; Prior, Tim/0009-0006-1726-2770
FU Bushfire Cooperative Research Centre, Australia
FX This research was undertaken with financial support from the Bushfire
   Cooperative Research Centre, Australia. The authors wish to thank the
   three anonymous reviewers for their helpful suggestions on the
   manuscript.
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NR 101
TC 121
Z9 143
U1 4
U2 120
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 DEC
PY 2013
VL 23
IS 6
SI SI
BP 1575
EP 1586
DI 10.1016/j.gloenvcha.2013.09.016
PG 12
WC Environmental Sciences; Environmental Studies; Geography
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA 292DB
UT WOS:000329881300020
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Egerer, M
   Haase, D
   McPhearson, T
   Frantzeskaki, N
   Andersson, E
   Nagendra, H
   Ossola, A
AF Egerer, Monika
   Haase, Dagmar
   McPhearson, Timon
   Frantzeskaki, Niki
   Andersson, Erik
   Nagendra, Harini
   Ossola, Alessandro
TI Urban change as an untapped opportunity for climate adaptation
SO NPJ URBAN SUSTAINABILITY
LA English
DT Article
ID CITY; POLICY; CITIES; SUSTAINABILITY; COMMUNITY; INFRASTRUCTURE;
   INNOVATION; RESPONSES; BARRIERS; SCIENCE
AB Urban social-ecological-technological systems (SETS) are dynamic and respond to climate pressures. Change involves alterations to land and resource management, social organization, infrastructure, and design. Research often focuses on how climate change impacts urban SETS or on the characteristics of urban SETS that promote climate resilience. Yet passive approaches to urban climate change adaptation may disregard active SETS change by urban residents, planners, and policymakers that could be opportunities for adaptation. Here, we use evidence of urban social, ecological, and technological change to address how SETS change opens windows of opportunity to improve climate change adaptation.
C1 [Egerer, Monika] Tech Univ Munich, Sch Life Sci, Dept Life Sci Syst, Freising Weihenstephan, Germany.
   [Egerer, Monika] Tech Univ Berlin, Dept Ecol, Ecosyst Sci Plant Ecol, Berlin, Germany.
   [Haase, Dagmar] UFZ Helmholtz Ctr Environm Res, Dept Computat Landscape Ecol, Leipzig, Germany.
   [Haase, Dagmar] Humboldt Univ, Inst Geog, Berlin, Germany.
   [McPhearson, Timon] New Sch, Urban Syst Lab, New York, NY USA.
   [McPhearson, Timon] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [McPhearson, Timon] Cary Inst Ecosyst Studies, Millbrook, NY USA.
   [Frantzeskaki, Niki] Swinburne Univ Technol, Fac Hlth Arts & Design, Ctr Urban Transit, Melbourne, Australia.
   [Andersson, Erik] Stockholm Univ, Stockholm Resilience Ctr, Stockholm, Sweden.
   [Andersson, Erik] North West Univ, Unit Environm Sci, Potchefstroom, South Africa.
   [Nagendra, Harini] Azim Premji Univ, Bangalore, India.
   [Ossola, Alessandro] Macquarie Univ, Dept Biol Sci, Sydney, NSW, Australia.
   [Ossola, Alessandro] Univ Calif Davis, Dept Plant Sci, Davis, CA USA.
   [Ossola, Alessandro] Univ Melbourne, Sch Ecosyst & Forest Sci, Burnley, Vic, Australia.
C3 Technical University of Munich; Technical University of Berlin;
   Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Humboldt University of Berlin; The New School; Stockholm
   University; Cary Institute of Ecosystem Studies; Swinburne University of
   Technology; Stockholm University; North West University - South Africa;
   Azim Premji Foundation; Azim Premji University Bengaluru; Macquarie
   University; University of California System; University of California
   Davis; University of Melbourne
RP Egerer, M (corresponding author), Tech Univ Munich, Sch Life Sci, Dept Life Sci Syst, Freising Weihenstephan, Germany.; Egerer, M (corresponding author), Tech Univ Berlin, Dept Ecol, Ecosyst Sci Plant Ecol, Berlin, Germany.
EM monika.egerer@tum.de
RI Frantzeskaki, Niki/AAN-1044-2021; Andersson, Erik/AAE-9771-2019;
   Nagendra, Harini/P-9087-2019; Egerer, Monika/AAV-6902-2021; Ossola,
   Alessandro/D-1262-2012; McPhearson, Timon/JOZ-3799-2023
OI Frantzeskaki, Niki/0000-0002-6983-448X; Ossola,
   Alessandro/0000-0002-0507-6026; McPhearson, Timon/0000-0002-9499-0791;
   Haase, Dagmar/0000-0003-4065-5194; Andersson, Erik/0000-0003-2716-5502
FU International Postdoc Initiative at the Technical University of Berlin;
   US National Science Foundation [1444755, 1927167, 1934933]; NordForsk
   [95377]
FX M.E. was supported by the International Postdoc Initiative at the
   Technical University of Berlin during this work. T.M. is supported by
   the US National Science Foundation under Grant nos. 1444755, 1927167,
   and 1934933, and T.M. and E.A. are supported by NordForsk through
   funding to the SMARTer Greener Cities project (# 95377).
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NR 99
TC 50
Z9 55
U1 11
U2 27
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 25
PY 2021
VL 1
IS 1
AR 22
DI 10.1038/s42949-021-00024-y
PG 9
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I3AH7
UT WOS:001001536700001
OA gold
DA 2025-04-22
ER

PT J
AU Li, SQ
AF Li, Si-Qi
TI Seismic risk and vulnerability models considering typical urban building
   portfolios
SO BULLETIN OF EARTHQUAKE ENGINEERING
LA English
DT Article; Early Access
DE Seismic risk model for urban building clusters; Empirical seismic
   vulnerability; Vulnerability membership parameter; Optimized
   vulnerability model; Updated damage index model
ID FRAGILITY CURVES; DAMAGE; CAPACITY; LAQUILA
AB The seismic risk and vulnerability of urban building clusters are fundamental indicators for quantifying urban seismic resilience. The empirical vulnerability and risk models developed using various risk probability assessment theories and real seismic loss observation data from typical building clusters can provide positive references for predicting and evaluating urban earthquake resilience. However, the data used to validate and optimize the vulnerability and resilience models of building portfolios are mostly discrete points within a city. The coupling effect of multiple intensity measures is rarely considered, resulting in a relatively low evaluation accuracy of the established seismic hazard model. This study considers the comprehensive impact of macroseismic and instrumental intensity on the vulnerability of typical urban building portfolios. A multidimensional parameter seismic risk and vulnerability model considering updated damage states is proposed. Based on field inspection data from the 2008 Wenchuan earthquake in China, an optimized hazard and vulnerability model considering all the buildings (8669 buildings) in Dujiangyan city was developed. An innovative structural vulnerability membership index was proposed to estimate the correlation between typical damage states, and vulnerability correlation parameter models were developed. An improved nonlinear vulnerability regression model considering hybrid intensity measures was proposed, and vulnerability comparison curves and matrices were generated considering the empirical damage data of buildings in Dujiangyan city. An optimized seismic damage index calculation model was developed considering five typical building portfolios in Dujiangyan city.
C1 [Li, Si-Qi] Heilongjiang Univ, Sch Civil Engn, 74 Xuefu Rd, Harbin, Peoples R China.
   [Li, Si-Qi] Minist Emergency Management, China Earthquake Adm, Key Lab Earthquake Engn & Engn Vibrat, Inst Engn Mech,Key Lab Earthquake Disaster Mitigat, Harbin, Peoples R China.
C3 Heilongjiang University; China Earthquake Administration; Institute of
   Engineering Mechanics, CEA
RP Li, SQ (corresponding author), Heilongjiang Univ, Sch Civil Engn, 74 Xuefu Rd, Harbin, Peoples R China.; Li, SQ (corresponding author), Minist Emergency Management, China Earthquake Adm, Key Lab Earthquake Engn & Engn Vibrat, Inst Engn Mech,Key Lab Earthquake Disaster Mitigat, Harbin, Peoples R China.
EM lisiqi@hlju.edu.cn
RI Li, Si-Qi/AFT-4132-2022
OI Li, Si-Qi/0000-0002-2761-9116
FU Basic Scientific Research Business Expenses of Provincial Universities
   in Heilongjiang Province [2022 KYYWF 1056]; Scientific Research Fund of
   Institute of Engineering Mechanics, China Earthquake Administration
   [2023D39]; Heilongjiang Postdoctoral Science Foundation, China [LBH
   Z22294]
FX The research described in this paper was financially supported by the
   Basic Scientific Research Business Expenses of Provincial Universities
   in Heilongjiang Province (2022-KYYWF-1056), the Scien-tific Research
   Fund of Institute of Engineering Mechanics, China Earthquake
   Administration (Grant No. 2023D39), and a project funded by Heilongjiang
   Postdoctoral Science Foundation (LBH-Z22294), China.
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NR 80
TC 12
Z9 12
U1 17
U2 39
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 2024 MAR 22
PY 2024
DI 10.1007/s10518-024-01880-6
EA MAR 2024
PG 36
WC Engineering, Geological; Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology
GA LX7C1
UT WOS:001190165900001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Zou, T
   Dawodu, A
   Mangi, E
   Cheshmehzangi, A
AF Zou, Tong
   Dawodu, Ayotunde
   Mangi, Eugenio
   Cheshmehzangi, Ali
TI Exploring Current Trends, Gaps & Challenges in Sustainable Food Systems
   Studies: The Need of Developing Urban Food Systems Frameworks for
   Sustainable Cities
SO SUSTAINABILITY
LA English
DT Article
DE food system framework; sustainability transitions; food security; food
   system sustainability; urban sustainability transitions; smart
   resilience; circular economy
ID CONCEPTUAL-FRAMEWORK; SECURITY; RESILIENCE; HEALTH; DIETS
AB The current global food system is under threat due to significant global changes such as rapid urbanization, climate change, COVID-19 outbreak, etc. The importance of food system sustainability as a key element of sustainable cities has been gradually recognized in recent years; however, the tools for estimating food system sustainability in cities (i.e., urban food system sustainability) holistically are still scarce. Thus, this study represents a comprehensive investigation into food system studies and their impacts on achieving a sustainable community or city. This study is a subset of larger studies that aim to develop an urban food system framework, which utilizes modern approaches in framework development such as sustainability food indicators and a participatory approach. However, to achieve this, trends, gaps, and challenges of the current approach to food system studies need to be reviewed and discussed. A systematic analysis utilizing the protocol of Preferred Reporting Items for Systematic Reviews and Meta-Analyses (PRISMA) approach was conducted, and network analysis of publications was performed via VOS viewer. The results suggest applying circular principles and merging smartness and resilience thinking in developing strategies for food system sustainability. This study finds that key drivers to mitigate food crisis among countries vary. Furthermore, a context-specific framework with a more comprehensive definition of urban food systems covering the institutional processes, and food governance are also needed to achieve urban food system sustainability.
C1 [Zou, Tong; Mangi, Eugenio] Univ Nottingham Ningbo China, Fac Sci & Engn, Dept Architecture & Bult Environm, 199 Taikang East Rd, Ningbo 315100, Peoples R China.
   [Dawodu, Ayotunde] Univ Greenwich, Old Royal Naval Coll, Fac Engn & Sci, Sch Engn, Pk Row, London SE10 9LS, England.
   [Cheshmehzangi, Ali] Qingdao City Univ, Sch Architecture, Qingdao 266106, Peoples R China.
C3 University of Nottingham Ningbo China; University of Greenwich
RP Dawodu, A (corresponding author), Univ Greenwich, Old Royal Naval Coll, Fac Engn & Sci, Sch Engn, Pk Row, London SE10 9LS, England.
EM tong.zou@nottingham.edu.cn; a.o.dawodu@greenwich.ac.uk;
   eugenio.mangi@nottingham.edu.cn; ali.chesh@qdc.edu.cn
RI Zou, Tong/LIC-5248-2024; Cheshmehzangi, Ali/AEY-0328-2022
OI Cheshmehzangi, Ali/0000-0003-2657-4865; Dawodu,
   Ayotunde/0000-0002-2241-5894
FU National Natural Science Foundation of China (NSFC) [71950410760];
   Ministry of Education, Culture, Sports, Science and Technology (MEXT),
   Japan; Qindao City University - National Natural Science Foundation of
   China (NSFC)
FX This research was funded by the National Natural Science Foundation of
   China (NSFC), grant number 71950410760. We also acknowledge the Ministry
   of Education, Culture, Sports, Science and Technology (MEXT), Japan for
   providing support to the corresponding author under the NERPS,
   Hiroshima, Japan, and the Qindao City University. The APC was funded by
   the National Natural Science Foundation of China (NSFC).
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NR 100
TC 1
Z9 1
U1 10
U2 33
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2023
VL 15
IS 13
AR 10248
DI 10.3390/su151310248
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 M6FN3
UT WOS:001031156000001
OA gold
DA 2025-04-22
ER

PT J
AU Chase, DZ
   Lobo, J
   Feinman, GM
   Carballo, DM
   Chase, AF
   Chase, ASZ
   Hutson, SR
   Ossa, A
   Canuto, M
   Stanton, TW
   Gorenflo, LJ
   Pool, CA
   Arroyo, B
   Stuardo, RL
   Nichols, DL
AF Chase, Diane Z.
   Lobo, Jose
   Feinman, Gary M.
   Carballo, David M.
   Chase, Arlen F.
   Chase, Adrian S. Z.
   Hutson, Scott R.
   Ossa, Alanna
   Canuto, Marcello
   Stanton, Travis W.
   Gorenflo, L. J.
   Pool, Christopher A.
   Arroyo, Barbara
   Stuardo, Rodrigo Liendo
   Nichols, Deborah L.
TI Mesoamerican urbanism revisited: Environmental change, adaptation,
   resilience, persistence, and collapse
SO PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF
   AMERICA
LA English
DT Article
DE urbanism; adaptation; climate change; archaeology; Mesoamerica
ID DEFINING NEIGHBORHOOD BOUNDARIES; TLAJINGA DISTRICT; MAYA LOWLANDS; GULF
   LOWLANDS; CLIMATE; PERIOD; TEOTIHUACAN; SETTLEMENT; YUCATAN; LIDAR
AB Urban adaptation to climate change is a global challenge requiring a broad response that can be informed by how urban societies in the past responded to environmental shocks. Yet, interdisciplinary efforts to leverage insights from the urban past have been stymied by disciplinary silos and entrenched misconceptions regarding the nature and diversity of premodern human settlements and institutions, especially in the case of prehispanic Mesoamerica. Long recognized as a distinct cultural region, prehispanic Mesoamerica was the setting for one of the world's original urbanization episodes despite the impediments to communication and resource extraction due to the lack of beasts of burden and wheeled transport, and the limited and relatively late use of metal implements. Our knowledge of prehispanic urbanism in Mesoamerica has been significantly enhanced over the past two decades due to significant advances in excavating, analyzing, and contextualizing archaeological materials. We now understand that Mesoamerican urbanism was as much a story about resilience and adaptation to environmental change as it was about collapse. Here we call for a dialogue among Mesoamerican urban archaeologists, sustainability scientists, and researchers interested in urban adaptation to climate change through a synthetic perspective on the organizational diversity of urbanism. Such a dialogue, seeking insights into what facilitates and hinders urban adaptation to environmental change, can be animated by shifting the long -held emphasis on failure and collapse to a more empirically grounded account of resilience and the factors that fostered adaptation and sustainability.
C1 [Chase, Diane Z.] Univ Houston Syst, Acad Affairs, Houston, TX 77006 USA.
   [Chase, Diane Z.] Univ Houston, Acad Affairs & Provost, Off Provost, Houston, TX 77006 USA.
   [Lobo, Jose] Arizona State Univ, Sch Sustainabil, Coll Global Futures, Tempe, AZ 85281 USA.
   [Feinman, Gary M.] Field Museum Nat Hist, Negaunee Integrat Res Ctr, Chicago, IL 60605 USA.
   [Carballo, David M.] Boston Univ, Dept Anthropol & Archaeol Program, Coll Arts & Sci, Boston, MA 02215 USA.
   [Chase, Arlen F.] Univ Houston, Dept Comparat Cultural Studies, Coll Liberal Arts & Social Sci, Houston, TX 77006 USA.
   [Chase, Adrian S. Z.] Univ Chicago, Mansueto Inst Urban Innovat, Chicago, IL 60637 USA.
   [Chase, Adrian S. Z.] Univ Chicago, Div Social Sci, Dept Anthropol, Chicago, IL 60637 USA.
   [Hutson, Scott R.; Pool, Christopher A.] Univ Kentucky, Dept Anthropol, Coll Arts & Sci, Lexington, KY 40506 USA.
   [Ossa, Alanna] Oswego State Univ New York, Dept Anthropol, Coll Liberal Arts & Sci, Oswego, NY 13126 USA.
   [Canuto, Marcello] Tulane Univ, Sch Liberal Arts, Dept Anthropol, New Orleans, LA 70118 USA.
   [Stanton, Travis W.] Univ Calif Riverside, Dept Anthropol Arts & Social Sci, Coll Human, Riverside, CA 92521 USA.
   [Gorenflo, L. J.] Penn State Univ, Dept Landscape Architecture, Coll Arts & Architecture, University Pk, PA 16802 USA.
   [Arroyo, Barbara] Univ Francisco Marroquin, Museo Popol Vuh, Guatemala City 01010, Guatemala.
   [Stuardo, Rodrigo Liendo] Univ Nacl Autonoma Mexico, Inst Invest Antropol, Mexico City 04510, DF, Mexico.
   [Nichols, Deborah L.] Dartmouth Coll, Dept Anthropol Arts & Sci, Hanover, NH 03755 USA.
C3 University of Houston System; University of Houston; Arizona State
   University; Arizona State University-Tempe; Field Museum of Natural
   History (Chicago); Boston University; University of Houston System;
   University of Houston; University of Chicago; University of Chicago;
   University of Kentucky; Tulane University; University of California
   System; University of California Riverside; Pennsylvania Commonwealth
   System of Higher Education (PCSHE); Pennsylvania State University;
   Pennsylvania State University - University Park; Penn State Behrend;
   Universidad Nacional Autonoma de Mexico; Dartmouth College
RP Chase, DZ (corresponding author), Univ Houston Syst, Acad Affairs, Houston, TX 77006 USA.; Chase, DZ (corresponding author), Univ Houston, Acad Affairs & Provost, Off Provost, Houston, TX 77006 USA.
EM dzchase@central.uh.edu
RI Carballo, David/AAD-9800-2019; Lobo, Jose/AAG-2746-2021; Chase,
   Diane/ISS-8463-2023
OI Chase, Diane/0000-0002-5294-3233; Chase, Adrian/0000-0002-2114-2193;
   Hutson, Scott/0000-0003-4907-2876; Ossa, Alanna/0000-0001-8030-4255
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NR 145
TC 6
Z9 6
U1 3
U2 9
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 AUG 1
PY 2023
VL 120
IS 31
AR r2211558120
DI 10.1073/pnas.2211558120
PG 10
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA U2XJ4
UT WOS:001083479400005
PM 37487066
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Neuman, M
AF Neuman, Michael
TI Infrastructure Is Key to Make Cities Sustainable
SO SUSTAINABILITY
LA English
DT Article
DE infrastructure; capital facilities; community services; public realm;
   sustainability; resilience; planning; design; finance; governance
ID SEA-LEVEL
AB Infrastructure is all around us: under, above, even inside our built and natural landscapes. Sometimes hidden, sometimes visible. The flows that course through them make our cities, economies, and lives possible. Cities could not even exist without infrastructure. Life is endowed with more possibilities by infrastructure. The centrality of infrastructure is pervasive. Worldwide, cities embrace infrastructure for economic competitiveness, well-being, access, environmental protection and knowledge creation. As cities are crucibles that concentrate the human condition, infrastructures are conduits that enable that concentration and empower human achievement. As infrastructures shape almost every aspect of daily life, this article assays the various ways it currently makes places both less sustainable and resilient, as well as more so, and how we can minimise the former and optimise the latter.
C1 [Neuman, Michael] Univ Westminster, Sch Architecture & Cities, London NW1 5LS, England.
C3 University of Westminster
RP Neuman, M (corresponding author), Univ Westminster, Sch Architecture & Cities, London NW1 5LS, England.
EM m.neuman@westminster.ac.uk
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NR 56
TC 6
Z9 7
U1 2
U2 30
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2020
VL 12
IS 20
AR 8308
DI 10.3390/su12208308
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 OI1SZ
UT WOS:000583068600001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Kammen, DM
   Sunter, DA
AF Kammen, Daniel M.
   Sunter, Deborah A.
TI City-integrated renewable energy for urban sustainability
SO SCIENCE
LA English
DT Review
ID GREENHOUSE-GAS EMISSIONS; WIND TURBINES; CITIES; SYSTEMS;
   INFRASTRUCTURE; OPPORTUNITIES; PERFORMANCE; ENVIRONMENT; HOUSEHOLDS;
   FOOTPRINT
AB To prepare for an urban influx of 2.5 billion people by 2050, it is critical to create cities that are low-carbon, resilient, and livable. Cities not only contribute to global climate change by emitting the majority of anthropogenic greenhouse gases but also are particularly vulnerable to the effects of climate change and extreme weather. We explore options for establishing sustainable energy systems by reducing energy consumption, particularly in the buildings and transportation sectors, and providing robust, decentralized, and renewable energy sources. Through technical advancements in power density, city-integrated renewable energy will be better suited to satisfy the high-energy demands of growing urban areas. Several economic, technical, behavioral, and political challenges need to be overcome for innovation to improve urban sustainability.
C1 [Kammen, Daniel M.; Sunter, Deborah A.] Univ Calif Berkeley, Energy & Resources Grp, Berkeley, CA 94720 USA.
   [Kammen, Daniel M.] Univ Calif Berkeley, Goldman Sch Publ Policy, Berkeley, CA 94720 USA.
   [Kammen, Daniel M.; Sunter, Deborah A.] Univ Calif Berkeley, Renewable & Appropriate Energy Lab, Berkeley, CA 94720 USA.
C3 University of California System; University of California Berkeley;
   University of California System; University of California Berkeley;
   University of California System; University of California Berkeley
RP Kammen, DM (corresponding author), Univ Calif Berkeley, Energy & Resources Grp, Berkeley, CA 94720 USA.; Kammen, DM (corresponding author), Univ Calif Berkeley, Goldman Sch Publ Policy, Berkeley, CA 94720 USA.; Kammen, DM (corresponding author), Univ Calif Berkeley, Renewable & Appropriate Energy Lab, Berkeley, CA 94720 USA.
EM kammen@berkeley.edu
OI Sunter, Deborah Ann/0000-0003-2024-9543
FU Karsten Family Foundation; Zaffaroni Foundation; Energy Efficiency and
   Renewable Energy Postdoctoral Research Award from the U.S. Department of
   Energy
FX We thank F. Creutzig, C. Jones, B. Gould, J. Sager, J. Apte, and D.
   Lemoine for useful discussions. This research was supported by the
   Karsten Family Foundation and the Zaffaroni Foundation through their
   support of the Renewable and Appropriate Energy Laboratory (to D.M.K.)
   and by an Energy Efficiency and Renewable Energy Postdoctoral Research
   Award from the U.S. Department of Energy (to D.A.S.).
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NR 79
TC 442
Z9 482
U1 68
U2 770
PU AMER ASSOC ADVANCEMENT SCIENCE
PI WASHINGTON
PA 1200 NEW YORK AVE, NW, WASHINGTON, DC 20005 USA
SN 0036-8075
EI 1095-9203
J9 SCIENCE
JI Science
PD MAY 20
PY 2016
VL 352
IS 6288
SI SI
BP 922
EP 928
DI 10.1126/science.aad9302
PG 7
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA DM2AK
UT WOS:000376147800030
PM 27199413
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Grifoni, RC
   Caprari, G
   Marchesani, GE
AF Grifoni, Roberta Cocci
   Caprari, Giorgio
   Marchesani, Graziano Enzo
TI Combinative Study of Urban Heat Island in Ascoli Piceno City with Remote
   Sensing and CFD Simulation-Climate Change and Urban Health
   Resilience-CCUHRE Project
SO SUSTAINABILITY
LA English
DT Article
DE urban heat island; remote sensing; CFD analysis; urban thermal comfort;
   urban risk map
ID COMFORT
AB This paper presents a new methodological approach for analysing the impacts of climate change on the urban habitat and improving the quality of life for citizens. The study falls within the diagnostic phase of the Climate Change and Urban Health Resilience (CCUHRE) research project applied to the rationalist neighbourhood of Monticelli, a suburb of Ascoli Piceno (Italy). The methodological approach tests innovative and multidisciplinary cognitive tools to quantify the impacts of climate change and create refined risk maps combining remote sensing, spatial data, satellite images, and thermal fluid dynamic (CFD) simulations. These tools created an atlas of green areas and surfaces using scientific indexes that describe the relationship between the urban form and heat and between the type of ground and materials. The information yielded by geoprocessing will allow critical aspects in the context to be addressed with site-specific strategies. In fact, through downscaling, it is possible to analyse the thermal fluid dynamics characteristics of the most significant urban areas and identify the related weather/climate characteristics, perceptual scenarios, and thermal stressed regions. The results have provided a dataset that defines the degree of vulnerability of the neighbourhood and identifies the areas exposed to thermal risk.
C1 [Grifoni, Roberta Cocci; Caprari, Giorgio; Marchesani, Graziano Enzo] Univ Camerino, Sch Architecture & Design, I-63100 Ascoli Piceno, Italy.
C3 University of Camerino
RP Marchesani, GE (corresponding author), Univ Camerino, Sch Architecture & Design, I-63100 Ascoli Piceno, Italy.
EM roberta.coccigrifoni@unicam.it; giorgio.caprari@unicam.it;
   graziano.marchesani@unicam.it
OI Marchesani, Graziano Enzo/0000-0002-4723-5099; Cocci Grifoni,
   Roberta/0000-0002-7092-6293; Caprari, Giorgio/0000-0002-9263-8292
FU Camerino University as FAR project (Fondi-Ateneo-Ricerca) CCUHRE
   (Climate Change and Urban Health Resilience) 2018-2021
FX This research was funded by Camerino University as FAR project
   (Fondi-Ateneo-Ricerca) CCUHRE (Climate Change and Urban Health
   Resilience) 2018-2021.
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NR 46
TC 7
Z9 8
U1 5
U2 30
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 688
DI 10.3390/su14020688
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 ZD4AK
UT WOS:000758142000001
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Ambily, P
   Chithra, NR
   Firoz, M
AF Ambily, P.
   Chithra, N. R.
   Firoz, Mohammed
TI A novel framework for prioritization and spatial suitability assessment
   of Blue-Green infrastructure for urban pluvial flood resilience
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Urban Flood Resilience; Blue-Green Infrastructure; Land Suitability
   Analysis; BGI Priority Analysis; Flood Detention Facility
ID CLASSIFICATION; PATTERNS; IMPACT; INDEX; AREAS; MODEL
AB Blue-Green Infrastructure (BGI) is amongst the most promising solutions to urban pluvial flooding. Optimum siting of BGI for maximum efficiency based on demand-supply assessment is a challenging problem investigated by earlier researchers. However, risk-based demand assessments focus on system vulnerabilities and often overlook the inherent system capacity to absorb and adapt to floods. A more effective approach would involve a resilience-based need assessment to optimize the use of available resources for maximum efficiency. In this research, a resilience-based framework is developed for BGI spatial planning in four modules to prioritize areas requiring intervention, assess spatial suitability, validate and optimize the proposed BGI. In Kochi City of Southern India, indicators of Normalized Difference Vegetation Index, Normalized Difference Water Index, Topographic Wetness Index, Soil Potential Retention, and Patch Cohesion Index are weighted and applied for prioritization using weighted overlay analysis. Spatial suitability is assessed using land-use classification, plot size, and accessibility. A decentralized detention storage facility is proposed as the optimum BGI for the city which is simulated for a 24-hour event with a 25-year return period using Personnel Computer Storm Water Management Model (PCSWMM). 'Duration Factor' is examined to understand the effect of flood duration and depth on the city's functionality. The sizes of BGI facility are optimized using non-dominated sorting genetic algorithm. The results of the flood modelling indicate a significant reduction in average flood duration by around 24% and flood depth by around 28% with the detention storage system, which is further improved by the optimization of detention storages sizes. Key contributions of this study are a methodological framework for site prioritization, suitability mapping, and a typological classification for small to medium-scale urban flood storage facilities. The proposed framework has important implications in identifying, prioritizing, optimizing and placing BGI for improved urban flood resilience.
C1 [Ambily, P.; Chithra, N. R.] NIT Campus, Natl Inst Technol Calicut, Dept Civil Engn Water Resources, Kozhikode 673601, India.
   [Firoz, Mohammed] NIT Campus, Natl Inst Technol Calicut, Dept Architecture & Planning, Kozhikode 673601, India.
C3 National Institute of Technology (NIT System); National Institute of
   Technology Calicut; National Institute of Technology (NIT System);
   National Institute of Technology Calicut
RP Ambily, P (corresponding author), NIT Campus, Natl Inst Technol Calicut, Dept Civil Engn Water Resources, Kozhikode 673601, India.
EM ambilymenon@rit.ac.in
RI NR, Chithra/JZD-4597-2024
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NR 47
TC 0
Z9 0
U1 4
U2 4
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 2025
VL 655
AR 132976
DI 10.1016/j.jhydrol.2025.132976
EA FEB 2025
PG 16
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA 0CQ5P
UT WOS:001444203000001
DA 2025-04-22
ER

PT J
AU Kazmi, SQA
   Naqvi, SAA
   Hussain, E
   Ahmed, S
AF Kazmi, Syed Qasim Abbas
   Naqvi, Syed Ahsan Ali
   Hussain, Etikaf
   Ahmed, Shoaib
TI Resilience Assessment Framework for an Urban Road Network Subjected to
   Disruptions
SO KSCE JOURNAL OF CIVIL ENGINEERING
LA English
DT Article
DE Resilience assessment; Critical road infrastructure; Road link
   alternativity; Dynamic network flow modelling; Vulnerable link; Road
   network performance
ID VULNERABILITY ANALYSIS; TRAFFIC CONGESTION; CRITICAL LINKS;
   TRANSPORTATION; IMPACTS
AB This research paper introduces a novel framework for assessing the resilience of urban transport networks. Traditional approaches to quantify resilience primarily focus on evaluating resilience based on the accessibility and vulnerability of network links. However, this study proposes a different approach by considering the dynamic role of links within the overall network, including their ability to accommodate additional traffic demand from other links. To accomplish this, a comprehensive scanning network approach is implemented using an iterative traffic assignment performed. The framework is applied to the urban transport network of Karachi, Pakistan. The model incorporates parameters for calibrations derived from volume delay functions, specifically alpha and beta, which are obtained from actual traffic travel times during free-flow and peak hours. The accuracy of the model is validated by comparing observed traffic counts at various locations with the simulated traffic volumes, resulting in an average error of 9% and a standard deviation of 7.4%. The study's findings reveal significant losses within the network and identify critical links that are particularly susceptible to disruptions. The analysis provides valuable insights into delays experienced by travellers and the additional distances travelled when specific links are closed. Furthermore, the framework enables the evaluation of the overall impacts of disruptions at the network level. The proposed methodology will allow traffic engineers and decision-makers to effectively plan rerouted through alternative links during disruptions.
C1 [Kazmi, Syed Qasim Abbas] Exponent Engineers Pvt Ltd, Karachi 75400, Pakistan.
   [Naqvi, Syed Ahsan Ali] Think Transportat, Karachi 75300, Pakistan.
   [Hussain, Etikaf; Ahmed, Shoaib] NED Univ Engn & Technol, Civil Engn Dept, Karachi 75200, Pakistan.
   [Hussain, Etikaf] Queensland Univ Technol, Ctr Accid Res & Rd Safety Queensland CARRS Q, Brisbane 4059, Australia.
   [Hussain, Etikaf] Veitch Lister Consulting, Brisbane 4000, Australia.
C3 Exponent; Ned University of Engineering & Technology; Queensland
   University of Technology (QUT)
RP Hussain, E (corresponding author), Queensland Univ Technol, Ctr Accid Res & Rd Safety Queensland CARRS Q, Brisbane 4059, Australia.
EM e.hussain@qut.edu.au
RI Hussain, Etikaf/ABD-5357-2021
OI Naqvi, Ahsan/0000-0002-4319-7152
FU The first author would like to thank Think Transportation (Urban
   Engineering Consultant) for their data availability and his fellows who
   initially contributed to this study.
FX The first author would like to thank Think Transportation (Urban
   Engineering Consultant) for their data availability and his fellows who
   initially contributed to this study.
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NR 42
TC 1
Z9 2
U1 6
U2 31
PU KOREAN SOCIETY OF CIVIL ENGINEERS-KSCE
PI SEOUL
PA 3-16 JUNGDAE-RO 25-GIL, SONGPA-GU, SEOUL, 05661, SOUTH KOREA
SN 1226-7988
EI 1976-3808
J9 KSCE J CIV ENG
JI KSCE J. Civ. Eng.
PD DEC
PY 2023
VL 27
IS 12
BP 5350
EP 5361
DI 10.1007/s12205-023-1669-5
EA OCT 2023
PG 12
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA Z0LL3
UT WOS:001092161300002
OA hybrid
DA 2025-04-22
ER

PT J
AU Yoon, S
   Lee, YJ
   Jung, HJ
AF Yoon, Sungsik
   Lee, Young-Joo
   Jung, Hyung-Jo
TI Flow-based seismic resilience assessment of urban water transmission
   networks
SO STRUCTURAL ENGINEERING AND MECHANICS
LA English
DT Article
DE critical lifeline systems; flow-based analysis; network interdependency;
   recovery strategy; seismic reliability analysis; seismic resilience
ID RISK-ASSESSMENT; GROUND MOTIONS; SYSTEMS; RELIABILITY; PERFORMANCE;
   STRATEGIES; LIFELINES; FRAMEWORK; DESIGN; MODEL
AB In this study, a new framework of seismic resilience estimation for urban water transmission networks was developed. The proposed resilience estimation model consists of three phases: input earthquake generation, hydraulic analysis, and recovery of network facilities. In the earthquake generation phase, the uncertainty of the ground motion is determined using the spatially correlated seismic attenuation law. In the hydraulic analysis phase, a hydraulic simulation is performed in conjunction with EPANET analysis. In the recovery phase, network components are restored, and the performance of the recovered network is evaluated through hydraulic analysis. Then, the seismic resilience curve and recovery costs are calculated. For a numerical simulation, a MATLAB-based computer code was developed for pressure-driven analysis in EPANET simulation. To demonstrate the proposed model, an actual water transmission network in South Korea was reconstructed based on geographic information system data. The performance of the network system was evaluated according to two performance indices: system and nodal serviceability. Finally, the cost of repairing the network facilities and water loss are estimated according to earthquake magnitude and interdependency. Numerical results show that the recovery slope of the resilience curve tends to decrease as the earthquake magnitude and interdependency with the power facilities increase.
C1 [Yoon, Sungsik] Univ Illinois, Dept Civil & Environm Engn, Urbana, IL 61801 USA.
   [Lee, Young-Joo] Ulsan Natl Inst Sci & Technol, Dept Urban & Environm Engn, 50 UNIST Gil, Ulsan 44919, South Korea.
   [Jung, Hyung-Jo] Korea Adv Inst Sci & Technol, Dept Civil & Environm Engn, 291 Daehak Ro, Daejeon 34141, South Korea.
C3 University of Illinois System; University of Illinois Urbana-Champaign;
   Ulsan National Institute of Science & Technology (UNIST); Korea Advanced
   Institute of Science & Technology (KAIST)
RP Lee, YJ (corresponding author), Ulsan Natl Inst Sci & Technol, Dept Urban & Environm Engn, 50 UNIST Gil, Ulsan 44919, South Korea.; Jung, HJ (corresponding author), Korea Adv Inst Sci & Technol, Dept Civil & Environm Engn, 291 Daehak Ro, Daejeon 34141, South Korea.
EM sungsik@illinois.edu; ylee@unist.ac.kr; hjung@kaist.edu
RI Yoon, Sungsik/ABA-2183-2021; Jung, Hyung-Jo/C-1668-2011; Lee,
   Young/V-3932-2018
FU Basic Science Research Program through the National Research Foundation
   of Korea (NRF) - Ministry of Education [2020R1A6A3A03038496]; Korea
   Institute of Energy Technology Evaluation and Planning (KETEP) - Korean
   Government (MOTIE) [20181510102410]
FX This research was supported by Basic Science Research Program through
   the National Research Foundation of Korea (NRF) funded by the Ministry
   of Education (Grant No. 2020R1A6A3A03038496). This research was also
   supported by Korea Institute of Energy Technology Evaluation and
   Planning (KETEP) Grant funded by the Korean Government (MOTIE) (No.
   20181510102410).
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NR 49
TC 5
Z9 6
U1 5
U2 50
PU TECHNO-PRESS
PI DAEJEON
PA PO BOX 33, YUSEONG, DAEJEON 305-600, SOUTH KOREA
SN 1225-4568
EI 1598-6217
J9 STRUCT ENG MECH
JI Struct. Eng. Mech.
PD AUG 25
PY 2021
VL 79
IS 4
BP 517
EP 529
DI 10.12989/sem.2021.79.4.517
PG 13
WC Engineering, Civil; Engineering, Mechanical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA UG5WX
UT WOS:000689323400010
DA 2025-04-22
ER

PT J
AU Cui, JQ
   Lin, D
AF Cui, Jianqiang
   Lin, Dong
TI Utilisation of underground pedestrian systems for urban sustainability
SO TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY
LA English
DT Article
DE Underground pedestrian system; Sustainable urban development; Urban
   resilience; Compact city; Sustainable transport; Urban renewal
ID SPACE; CITY
AB Underground pedestrian systems (UPS) have emerged as an urban phenomenon in the city centres of mega-cities, providing alternative walkways that are safe, accessible, efficient and pleasant for pedestrians. Despite many successful UPS in operation around the world, the application and performance of UPS are not yet well understood by local authorities. While previous studies debated the impacts on cities and people that the development of UPS would bring, an understanding of how to develop UPS to contribute to sustainable urban development, including economic viability, environmental livability and social equity, should be improved. This paper presents a detailed discussion of potential contributions and challenges in developing UPS within the context of sustainable urban development. It contains a comprehensive analysis of the relationship between UPS and urban development with regard to urban planning concepts such as the compact city, city resilience, sustainable transport and urban renewal, within the context of contemporary challenges such as the need to achieve economic sustainability, managing a non-renewable and vulnerable underground resource, and humanisation and social sustainability. It demonstrates why UPS development presents opportunities for and challenges to achieving economic viability, environmental livability and social equity, how to develop UPS so that they make effective contributions to sustainable urban development, and how the challenge of each issue has been addressed in light of the experiences of cities with UPS developments globally. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Cui, Jianqiang] Griffith Univ, Griffith Sch Environm, Urban Res Program, 170 Kessels Rd, Brisbane, Qld 4111, Australia.
   [Lin, Dong] Univ S Australia, Sch Nat & Built Environm, N Terrace, Adelaide, SA 5001, Australia.
C3 Griffith University; University of South Australia
RP Cui, JQ (corresponding author), Griffith Univ, Griffith Sch Environm, Urban Res Program, 170 Kessels Rd, Brisbane, Qld 4111, Australia.
EM jj.cui@griffith.edu.au; dong.lin@mymail.unisa.edu.au
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NR 58
TC 40
Z9 41
U1 7
U2 92
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 MAY
PY 2016
VL 55
BP 194
EP 204
DI 10.1016/j.tust.2015.11.004
PG 11
WC Construction & Building Technology; Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology; Engineering
GA DK0QL
UT WOS:000374617200019
DA 2025-04-22
ER

PT J
AU Yan, MY
   Shahidehpour, M
   Paaso, A
   Zhang, LX
   Alabdulwahab, A
   Abusorrah, A
AF Yan, Mingyu
   Shahidehpour, Mohammad
   Paaso, Aleksi
   Zhang, Liuxi
   Alabdulwahab, Ahmed
   Abusorrah, Abdullah
TI Distribution System Resilience in Ice Storms by Optimal Routing of
   Mobile Devices on Congested Roads
SO IEEE TRANSACTIONS ON SMART GRID
LA English
DT Article
DE Transportation; Storms; Roads; Routing; Resilience; Uncertainty;
   Reactive power; Ice storm; robust resilience enhancement; mobile
   de-icing device routing; power distribution system; urban transportation
   system; benders decomposition
ID CONSTRAINED UNIT COMMITMENT; GRID RESILIENCE; WIND POWER;
   TRANSPORTATION; NETWORKS; MICROGRIDS; FLOW
AB This article proposes a robust resilience enhancement method for a power distribution network in ice storms by the optimal routing of mobile de-icing devices (MDIDs) on congested transportation roads. We consider MDIDs as emergency vehicles, as other vehicles yield the right-of-way to MDIDs, and propose a de-icing schedule (DIS) to illustrate how MDIDs are routed on congested transportation roads. We further coordinate the DIS and MDID routing, which mitigate transportation routing congestions, with power distribution system operation, which considers distribution network reconfiguration and distributed energy resource dispatch. A two-stage robust model is proposed to manage the effects of ice storms forecast errors on both power distribution and urban transportation networks. The proposed model is reformulated as a mixed-integer second-order cone programming problem. The Benders decomposition and column-and-constraint generation algorithms are further utilized to solve the proposed MISOCP. Numerical results for the modified IEEE 33-bus 12-node, IEEE 123-bus 25-node, and 252-bus 80-node electricity-transportation systems show the effectiveness of the proposed model and solution technique for enhancing the power system resilience.
C1 [Yan, Mingyu; Shahidehpour, Mohammad] IIT, Dept Elect & Comp Engn, Chicago, IL 60616 USA.
   [Shahidehpour, Mohammad; Alabdulwahab, Ahmed; Abusorrah, Abdullah] King Abdulaziz Univ, Ctr Res Excellence Renewable Energy & Power Syst, Jeddah 21589, Saudi Arabia.
   [Paaso, Aleksi; Zhang, Liuxi] ComEd, Chicago, IL 60181 USA.
   [Alabdulwahab, Ahmed; Abusorrah, Abdullah] King Abdulaziz Univ, Fac Engn, Dept Elect & Comp Engn, Jeddah 21589, Saudi Arabia.
C3 Illinois Institute of Technology; King Abdulaziz University; King
   Abdulaziz University
RP Shahidehpour, M (corresponding author), IIT, Dept Elect & Comp Engn, Chicago, IL 60616 USA.
EM myan9@iit.edu; ms@iit.edu; esa.paaso@comed.com; liuxi.zhang@comed.com;
   aabdulwhab@kau.edu.sa; aabusorrah@kau.edu.sa
RI Eremia, Mircea/C-5102-2011; Abusorrah, Abdullah/Q-7243-2019;
   alabdulwahab, ahmed/C-7944-2016; Yan, Mingyu/JBR-9223-2023
OI Yan, Mingyu/0000-0001-9040-9480; alabdulwahab, ahmed/0000-0003-4223-7930
FU Deanship of Scientific Research (DSR), King Abdulaziz University,
   Jeddah, Saudi Arabia [RG-1-135-40, TSG-00641-2020]
FX This work was supported by the Deanship of Scientific Research (DSR),
   King Abdulaziz University, Jeddah, Saudi Arabia, under Grant
   RG-1-135-40. Paper no. TSG-00641-2020.
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NR 37
TC 46
Z9 56
U1 7
U2 73
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 1949-3053
EI 1949-3061
J9 IEEE T SMART GRID
JI IEEE Trans. Smart Grid
PD MAR
PY 2021
VL 12
IS 2
BP 1314
EP 1328
DI 10.1109/TSG.2020.3036634
PG 15
WC Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA QO8XO
UT WOS:000623420700034
DA 2025-04-22
ER

PT J
AU Torkfar, P
   Russo, A
AF Torkfar, Pourya
   Russo, Alessio
TI Assessing the Benefits of Climate-Sensitive Design with Nature-Based
   Solutions for Climate Change Adaptation in Urban Regeneration: A Case
   Study in Cheltenham, UK
SO SUSTAINABILITY
LA English
DT Article
DE urban heat island effect; heatwaves; thermal comfort; urban regeneration
ID THERMAL COMFORT; IMPACT; CITIES; TRANSPORT; GREENERY; REMOVAL
AB Addressing the challenge of climate adaptation necessitates an evidence-based approach. The integration of nature into urban spaces is vital in mitigating the effects of climate change, which can be accomplished through the regeneration of grey areas. Consequently, the incorporation of nature-based solutions (NBS) becomes indispensable for the creation of climate-resilient public spaces. However, only a few studies have considered climate change simulated data to design climate-resilient spaces in the UK. Thus, in this study, we evaluated the benefits of two scenarios for regenerating an existing car park space in Cheltenham with 30% and 50% NBS. These design scenarios were the outcomes of a 3-day design workshop aiming to create a climate-resilient public space with NBS. Using ENVI-met software (version 5.0.3) and weather data for the second-highest heatwave in Cheltenham, UK, in 2017 and 2050 predictions, we analysed temperature impacts. Results show NBS could reduce the mean radiant temperature by 6 to 15 degrees. An average decrease of 1.2 in the predicted mean vote (PMV) value, indicating an improvement in thermal comfort within the 50% NBS scenario, highlights its climate adaptation benefits. Comparison between the 30% and 50% NBS scenarios reveals the importance of strategy implementation. This evidence will aid future urban projects in designing climate-resilient and healthy cities, benefiting planning authorities, architects, urban planners, landscape architects, and researchers.
C1 [Torkfar, Pourya; Russo, Alessio] Univ Gloucestershire, Sch Arts, Cheltenham GL50 4AZ, England.
C3 University of Gloucestershire
RP Russo, A (corresponding author), Univ Gloucestershire, Sch Arts, Cheltenham GL50 4AZ, England.
EM arusso@glos.ac.uk
RI Russo, Alessio/M-6352-2016
OI Russo, Alessio/0000-0002-0073-7243
FU RPA Small Grants at the University of Gloucestershire
FX We extend our gratitude to the participants of the 3-day design
   workshop. We are immensely grateful to the six reviewers whose
   invaluable feedback significantly improved the quality of this paper.
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NR 68
TC 2
Z9 2
U1 8
U2 20
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD NOV
PY 2023
VL 15
IS 22
AR 15855
DI 10.3390/su152215855
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 Z7DE4
UT WOS:001113633400001
OA Green Accepted, gold
DA 2025-04-22
ER

PT J
AU Anciano, F
   Lombard, M
AF Anciano, Fiona
   Lombard, Melanie
TI Hybridising governance for resilience in a time of crisis: learning from
   community-based organisations in Cape Town and Cali
SO INTERNATIONAL DEVELOPMENT PLANNING REVIEW
LA English
DT Article
DE urban governance; pandemic; community-based organisations; resilience;
   food security; crisis
ID URBAN RESILIENCE; AUTHORITY; LEGITIMACY
AB Through the lens of food security this paper explores how community-based organisations (CBOs) in low-income neighbourhoods in Cape Town (South Africa) and Cali (Colombia) responded to the COVID-19 pandemic. In understanding how they engaged with and operationalised governance in times of crisis, we are able to critically engage with hybrid governance practices in these contexts and explore their potential to support equitable resilience. The findings are based on 12 months of qualitative research in both cities, including interviews and focus groups with community leaders and weekly digital diaries with local residents. We show how CBOs were able to supplement the state, build partnerships through boundary spanning and act as mediators and brokers by leveraging their trust-based networks to support distributive, procedural and recognitional resilience in their neighbourhoods. We argue that in contexts of vulnerability and rapidly changing conditions, hybridising governance is a more appropriate way to understand these processes, which may result in contested rather than integrated outcomes. Moreover, we find that while CBOs are highly effective first responders in times of crisis, without effective state partnership - in other words, hybridity that includes the state - their potential for longer-term systemic, equitable resilience remains limited.
C1 [Anciano, Fiona] Univ Western Cape, Dept Polit Studies, Robert Sbukwe Rd, ZA-7535 Cape Town, South Africa.
   [Lombard, Melanie] Univ Sheffield, Dept Urban Studies & Planning, Western Bank, Sheffield S10 2TN, England.
C3 University of the Western Cape; University of Sheffield
RP Anciano, F (corresponding author), Univ Western Cape, Dept Polit Studies, Robert Sbukwe Rd, ZA-7535 Cape Town, South Africa.
EM fanciano@uwc.ac.za; m.b.lombard@sheffield.ac.uk
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NR 40
TC 1
Z9 1
U1 0
U2 0
PU LIVERPOOL UNIV PRESS
PI LIVERPOOL
PA 4 CAMBRIDGE ST, LIVERPOOL L69 7ZU, ENGLAND
SN 1474-6743
EI 1478-3401
J9 INT DEV PLANN REV
JI Int. Dev. Plan. Rev.
PD JAN
PY 2025
VL 47
IS 1
BP 41
EP 63
DI 10.3828/idpr.2024.15
PG 23
WC Development Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Development Studies; Public Administration
GA Q2A6T
UT WOS:001382780900001
DA 2025-04-22
ER

PT J
AU Weinstein, A
   Patrick, C
AF Weinstein, Amanda
   Patrick, Carlianne
TI Recession-proof skills, cities, and resilience in economic downturns
SO JOURNAL OF REGIONAL SCIENCE
LA English
DT Article
DE cities; employment; recession; recovery; resilience; skill; unemployment
ID TECHNOLOGICAL-CHANGE; UNEMPLOYMENT RATES; EQUILIBRIUM; EMPLOYMENT;
   RETURNS; CHOICES; MARKET; WEALTH
AB We provide evidence, by combining Occupational Information Network (O*NET) data with monthly Current Population Survey data from 1990 to 2015, that occupations characterized by high cognitive and people skill requirements are less sensitive to recessions, conditional on educational attainment, industry, and individual characteristics. These results are driven by urban areas, particularly noncollege educated people in urban areas, and vary with city size. Finally, we provide the first evidence that metropolitan areas' recovery from economic downturns depends upon initial skill composition of occupations in the area.
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RP Weinstein, A (corresponding author), Univ Akron, Dept Econ, 259 S Broadway St, Akron, OH 44325 USA.
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RI Patrick, Carlianne/S-7410-2019
OI Patrick, Carlianne/0000-0001-5793-1955
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NR 57
TC 7
Z9 9
U1 3
U2 39
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0022-4146
EI 1467-9787
J9 J REGIONAL SCI
JI J. Reg. Sci.
PD MAR
PY 2020
VL 60
IS 2
BP 348
EP 373
DI 10.1111/jors.12446
PG 26
WC Economics; Environmental Studies; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Business & Economics; Environmental Sciences & Ecology; Public
   Administration
GA KR6WS
UT WOS:000517758300005
DA 2025-04-22
ER

PT J
AU Zhang, Y
   Weng, WG
   Qi, QJ
AF Zhang, Yue
   Weng, Wenguo
   Qi, Qingjie
TI Resilience assessment and enhancement methods of large-scale gas
   distribution networks against disruptions due to earthquakes
SO RELIABILITY ENGINEERING & SYSTEM SAFETY
LA English
DT Article
DE Gas distribution networks; Resilience assessment model; Resilience
   enhancement method; Structure; Function
ID SYSTEMS; OPTIMIZATION; FRAMEWORK
AB The large-scale gas distribution network is a critical infrastructure system to provide energy for urban operation and development. The leakage and prolonged supply disruptions of networks will have a significant negative impact on public safety and social stability. This paper aims at studying on resilience assessment and enhancement methods of gas distribution networks, which measure the ability of the system to sustain and recover its structure and function from disruptions due to earthquakes. A resilience assessment model of gas distribution networks is proposed, including structural and functional indexes. The topology method is used to subdivide large-scale network into smaller partitions in order to reduce computing difficulty. A certain urban gas distribution network in China is used as an example for empirical analysis. The quantitative assessment results of network structural and functional indexes are compared and analyzed, based on which the correlation between structural characteristics and functional performances are demonstrated. It is shown that the structure reconstruction of network will have a specific impact on the service delivery function. According to conclusions, the emergency and recovery disposals on isolation and restoration priority strategies for faulty part based on structural partitions provide a foundation for enhancing the resilience of gas distribution networks.
C1 [Zhang, Yue; Qi, Qingjie] China Coal Technol & Engn Grp CCTEG, Chinese Inst Coal Sci CICS, Res Inst Emergency Sci, Beijing 100013, Peoples R China.
   [Weng, Wenguo] Tsinghua Univ, Inst Publ Safety Res, Dept Engn Phys, Beijing 100084, Peoples R China.
C3 Tsinghua University
RP Qi, QJ (corresponding author), China Coal Technol & Engn Grp CCTEG, Chinese Inst Coal Sci CICS, Res Inst Emergency Sci, Beijing 100013, Peoples R China.
EM zhang_yue0920@163.com; wgweng@tsinghua.edu.cn;
   qiqingjie@mail.ccri.ccteg.cn
FU National Natural Science Foundation of China [72204105]
FX This work was supported by the National Natural Science Foundation of
   China (Grant No. 72204105) . The support is gratefully acknowledged.
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NR 50
TC 5
Z9 5
U1 13
U2 52
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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 DEC
PY 2023
VL 240
AR 109583
DI 10.1016/j.ress.2023.109583
EA AUG 2023
PG 14
WC Engineering, Industrial; Operations Research & Management Science
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Operations Research & Management Science
GA S2HS4
UT WOS:001069436400001
DA 2025-04-22
ER

PT J
AU Bixler, RP
   Yang, EJ
   Richter, SM
   Coudert, M
AF Bixler, R. Patrick
   Yang, Euijin
   Richter, Steven M.
   Coudert, Marc
TI Boundary crossing for urban community resilience: A social vulnerability
   and multi-hazard approach in Austin, Texas, USA
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Multi-hazard; Social vulnerability; Urban resilience; Climate
   adaptation; Boundary object; Co-production
ID CLIMATE-CHANGE; RISK; OBJECTS; MANAGEMENT; FRAMEWORK; SCIENCE; SYSTEMS
AB Natural hazard exposure in urban communities continues to increase, driven by changes in land use, climate, and demographics. Socially vulnerable populations disproportionately inhabit hazard-prone areas, are more sensitive to significant impacts, and have less capacity to cope with socio-natural disasters. One approach to address the challenges of increasing urban hazard risk is to connect hazard scientists and disaster risk reduction practitioners through multi-hazard risk assessments. Based on research and practice in Austin, Texas, USA, this paper presents a methodology for a multi-hazard risk assessment that combines exposure to multiple natural hazards (flood, wildfire, and extreme heat) and social vulnerability. Our approach generated normalized quantitative indicators and geospatial maps that identify neighborhoods where relatively high hazard exposure and sensitivity converge to create risk reduction priority areas. The multi-hazard risk assessment connected researchers across traditional silos and the maps catalyzed academics-city staff-community group communication and collaboration. In addition to presenting the methodology and results of the multi-hazard risk assessment, we reflect on how the process and the maps operated as boundary objects giving rise the co-production beteween hazard scientists and disaster risk reduction practitioners. We suggest the intersection of co-production and multi-risk assessments We report on the multi-hazard assessment methodology and the implications for urban community resilience coproduction.
C1 [Bixler, R. Patrick] Univ Texas Austin, LBJ Sch Publ Affairs, Austin, TX 78713 USA.
   [Bixler, R. Patrick; Richter, Steven M.] Univ Texas Austin, Community & Reg Planning Program, Sch Architecture, Austin, TX 78713 USA.
   [Yang, Euijin] Univ Texas Austin, Dept Civil Architectural & Environm Engn, Austin, TX 78713 USA.
   [Coudert, Marc] City Austin, Off Sustainabil, Austin, TX USA.
C3 University of Texas System; University of Texas Austin; University of
   Texas System; University of Texas Austin; University of Texas System;
   University of Texas Austin
RP Bixler, RP (corresponding author), Univ Texas Austin, Lyndon B Johnson Sch Publ Affairs, POB Y, Austin, TX 78713 USA.
EM rpbixler@utexas.edu
OI Bixler, R. Patrick/0000-0003-0515-0967; Yang, Euijin/0000-0001-7998-7191
FU Planet Texas 2050, a research grand challenge at the University of Texas
   at Austin
FX This work was financially supported by Planet Texas 2050, a research
   grand challenge at the University of Texas at Austin.
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U1 14
U2 110
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-4209
J9 INT J DISAST RISK RE
JI Int. J. Disaster Risk Reduct.
PD DEC
PY 2021
VL 66
AR 102613
DI 10.1016/j.ijdrr.2021.102613
EA OCT 2021
PG 9
WC Geosciences, Multidisciplinary; Meteorology & Atmospheric Sciences;
   Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Geology; Meteorology & Atmospheric Sciences; Water Resources
GA WM4MG
UT WOS:000711060300011
DA 2025-04-22
ER

PT J
AU Wang, QC
   Liu, X
   Jian, IY
   Zhang, EJ
   Hou, YT
   Siu, KWM
   Li, YB
AF Wang, Qian-Cheng
   Liu, Xuan
   Jian, Izzy Yi
   Zhang, En-Jia
   Hou, Yu-Ting
   Siu, Kin Wai Michael
   Li, Yi-Bin
TI Community resilience in city emergency: Exploring the roles of
   environmental perception, social justice and community attachment in
   subjective well-being of vulnerable residents
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Social justice; Community attachment; Subjective well-being; Community
   resilience; Vulnerable group; Urban sustainability; COVID-19
ID PLACE ATTACHMENT; PROCEDURAL JUSTICE; HEALTH; IDENTITY; DEPENDENCE;
   FRAMEWORK; HAPPINESS; LOCKDOWN; SENSE; NEIGHBORHOODS
AB Despite the importance of social justice and community attachment for subjective well-being (SWB), the existing research fails to adequately examine these factors in urban emergencies. This study develops a theoretical framework to elucidate the roles of environment perception, social justice, and community attachment in SWB during urban emergencies, with a focus on vulnerable populations. Drawing on the context of COVID-19 lock -down in Shanghai, the research expands the definition of vulnerable groups, considering the factors including gender, income, immigrant, housing ownership, and the infection/exposure history. We examine the proposed framework with structural equation modelling and compare the vulnerable groups with multiple-group analysis. The analysis evidences the direct contribution of social justice and community attachment to SWB, and com-munity attachment intermediates environmental perception and justice to SWB. These factors present hetero-geneity amongst the vulnerable groups: community identity only affects the perceived health of residents with infection history, housing ownership and high income. This research revisits the interaction between residents and community environment in urban emergencies from a vulnerability perspective. The discussions provide novel insights for devising strategies for community service and infrastructure development aimed at enhancing community resilience. Also, the findings can benefit urban emergency planning at both community and city scale.
C1 [Wang, Qian-Cheng; Li, Yi-Bin] Univ Cambridge, Dept Land Econ, Cambridge CB3 9EP, England.
   [Liu, Xuan] Eindhoven Univ Technol, Dept Built Environm, NL-5600 MB Eindhoven, Netherlands.
   [Jian, Izzy Yi; Siu, Kin Wai Michael] Hong Kong Polytech Univ, Sch Design, Hong Kong 999077, Peoples R China.
   [Zhang, En-Jia] Tsinghua Univ, Sch Architecture, Beijing 100084, Peoples R China.
   [Hou, Yu-Ting] Hong Kong Polytech Univ, Dept Bldg & Real Estate, Hong Kong 999077, Peoples R China.
C3 University of Cambridge; Eindhoven University of Technology; Hong Kong
   Polytechnic University; Tsinghua University; Hong Kong Polytechnic
   University
RP Liu, X (corresponding author), Eindhoven Univ Technol, Dept Built Environm, NL-5600 MB Eindhoven, Netherlands.
EM x.liu1@tue.nl
RI Hou, Yuting/ACZ-0385-2022; JIAN, Izzy Yi/AAP-7107-2020; LIU,
   XUAN/ADM-8253-2022; Wang, Qian-Cheng/AET-2058-2022
OI LIU, XUAN/0000-0001-9433-4033; Hou, Yuting/0000-0002-5950-185X; Wang,
   Qiancheng/0000-0003-1445-5578; Li, Yibin/0009-0007-4925-6727
FU Cambridge Trust via scholarships; Eric C. Yim Endowed Professorship and
   postdoctoral fellowship fund [1- W187]
FX The authors would like to acknowledge the finding support from Cambridge
   Trust via scholarships, the partial support of Eric C. Yim Endowed
   Professorship and postdoctoral fellowship fund (PolyU, 1- W187) . The
   authors would also like to thank all anonymous respondents and helpers
   for their support in the data collection process.
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NR 158
TC 27
Z9 28
U1 23
U2 84
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT
PY 2023
VL 97
AR 104745
DI 10.1016/j.scs.2023.104745
EA JUL 2023
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 N4QG1
UT WOS:001036870600001
OA hybrid
DA 2025-04-22
ER

PT J
AU Oulahen, G
   Randall, C
   Nguyen, C
   Mitchell, C
AF Oulahen, Greg
   Randall, Christopher
   Nguyen, Calvin
   Mitchell, Carrie
TI Public Perceptions of Resilience and Vulnerability Concepts for
   Adaptation
SO PROFESSIONAL GEOGRAPHER
LA English
DT Article
DE adaptation; public perception; resilience; risk reduction; vulnerability
ID CLIMATE-CHANGE; URBAN RESILIENCE; TRANSFORMATION; SCIENCE; JUSTICE;
   THEMES; FLOOD; RISK
AB Resilience is everywhere in plans, policy, and academic literature on risk reduction and adaptation, and a common refrain of elected officials and disaster victims alike. Geographers have contributed much to the critical understanding of the theoretical foundations and implications of this now ubiquitous concept, and have made some initial steps in studying how local practitioners and other experts interpret and apply resilience in risk reduction and adaptation measures. But there is limited empirical research, however, on what the people living in communities exposed to hazards think about resilience. This study aims to address this gap by conducting in-person, researcher-administered surveys (n = 400) with members of the public using coastal and lakefront environmental amenities in Vancouver and Toronto, Canada. Survey results include three main findings: (1) the majority of participants prefer the framing of "increasing resilience" over "reducing vulnerability"; (2) the conceptualization of resilience as creative transformation is greatly favored over conceptualizations of resilience as resistance or recovery; and (3) resilience is seen as uneven in both study cities. The study reveals insights that can help inform and align resilience theory and practice in cities.
C1 [Oulahen, Greg] Toronto Metropolitan Univ, Dept Geog & Environm Studies, Toronto, ON M5B 2K3, Canada.
   [Randall, Christopher; Nguyen, Calvin] Toronto Metropolitan Univ, Environm Appl Sci & Management Program, Toronto, ON M5B 2K3, Canada.
   [Mitchell, Carrie] Univ Waterloo, Sch Planning, Waterloo, ON N2L 3G1, Canada.
C3 Toronto Metropolitan University; Toronto Metropolitan University;
   University of Waterloo
RP Oulahen, G (corresponding author), Toronto Metropolitan Univ, Dept Geog & Environm Studies, Toronto, ON M5B 2K3, Canada.
EM greg.oulahen@torontomu.ca; c3randall@torontomu.ca;
   calvin.nguyen@torontomu.ca; carrie.mitchell@uwaterloo.ca
FU The authors would like to thank study participants in Toronto and
   Vancouver for sharing their time and insights with us, and two anonymous
   reviewers for their helpful comments on the article.
FX The authors would like to thank study participants in Toronto and
   Vancouver for sharing their time and insights with us, and two anonymous
   reviewers for their helpful comments on the article.
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NR 73
TC 2
Z9 2
U1 5
U2 16
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0033-0124
EI 1467-9272
J9 PROF GEOGR
JI Prof. Geogr.
PD JAN 2
PY 2024
VL 76
IS 1
BP 13
EP 23
DI 10.1080/00330124.2023.2250415
EA SEP 2023
PG 11
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA FB4I2
UT WOS:001092165400001
DA 2025-04-22
ER

PT J
AU Dodman, D
   Adelekan, I
   Brown, D
   Leck, H
   Manda, M
   Mberu, B
   Pelling, M
   Rusca, M
   Satterthwaite, D
   Taylor, F
AF Dodman, David
   Adelekan, Ibidun
   Brown, Donald
   Leck, Hayley
   Manda, Mtafu
   Mberu, Blessing
   Pelling, Mark
   Rusca, Maria
   Satterthwaite, David
   Taylor, Faith
TI A spectrum of methods for a spectrum of risk: Generating evidence to
   understand and reduce urban risk in sub-Saharan Africa
SO AREA
LA English
DT Article
DE Africa; governance; mixed methodologies; resilience; risk; urban areas
ID DISASTER RISK; LILONGWE; WATER; ACCUMULATION; INEQUALITIES; RESILIENCE;
   AREAS
AB Many African towns and cities face a range of hazards, which can best be described as representing a "spectrum of risk" of events that can cause death, illness or injury, and impoverishment. Yet despite the growing numbers of people living in African urban centres, the extent and relative severity of these different risks is poorly understood. This paper provides a rationale for using a spectrum of methods to address this spectrum of risk, and demonstrates the utility of mixed-methods approaches in planning for resilience. It describes activities undertaken in a wide-ranging multi-country programme of research, which use multiple approaches to gather empirical data on risk, in order to build a stronger evidence base and provide a more solid base for planning and investment. It concludes that methods need to be chosen in regard to social, political economic, biophysical and hydrogeological context, while also recognising the different levels of complexity and institutional capacity in different urban centres. The paper concludes that as well as the importance of taking individual contexts into account, there are underlying methodological principles - based on multidisciplinary expertise and multi-faceted and collaborative research endeavours - that can inform a range of related approaches to understanding urban risk in sub-Saharan Africa and break the cycle of risk accumulation.
C1 [Dodman, David; Satterthwaite, David] Int Inst Environm & Dev, London, England.
   [Adelekan, Ibidun] Univ Ibadan, Ibadan, Nigeria.
   [Brown, Donald] UCL, London, England.
   [Leck, Hayley; Pelling, Mark] Kings Coll London, London, England.
   [Manda, Mtafu] Mzuzu Univ, Mzuzu, Malawi.
   [Mberu, Blessing] African Populat & Hlth Res Ctr, Nairobi, Kenya.
   [Rusca, Maria] Uppsala Univ, Dept Earth Sci, Uppsala, Sweden.
   [Rusca, Maria] Ctr Nat Hazards & Disaster Sci, Uppsala, Sweden.
   [Taylor, Faith] Univ Portsmouth, Dept Geog, Portsmouth, Hants, England.
C3 University of Ibadan; University of London; University College London;
   University of London; King's College London; African Population & Health
   Research Centre; Uppsala University; Centre of Natural Hazards &
   Disaster Science (CNDS); University of Portsmouth
RP Dodman, D (corresponding author), Int Inst Environm & Dev, London, England.
EM david.dodman@iied.org
RI Manda, Mtafu/ABF-6509-2021; Satterthwaite, David/A-6277-2009; Adelekan,
   Ibidun/H-3735-2019; Rusca, Maria/M-8199-2013
OI Dodman, David/0000-0002-1304-3283; Taylor, Faith/0000-0001-7971-5049;
   Rusca, Maria/0000-0003-4513-3213
FU Economic and Social Research Council [ES/L008777/1]; ESRC [ES/L008777/1]
   Funding Source: UKRI
FX Economic and Social Research Council, Grant/Award Number: ES/L008777/1
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NR 37
TC 10
Z9 10
U1 0
U2 8
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0004-0894
EI 1475-4762
J9 AREA
JI Area
PD SEP
PY 2019
VL 51
IS 3
BP 586
EP 594
DI 10.1111/area.12510
PG 9
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA IN4WE
UT WOS:000478676900023
PM 31597984
OA Green Published
DA 2025-04-22
ER

PT J
AU Assumma, V
   Bottero, M
   De Angelis, E
   Lourenço, JM
   Monaco, R
   Soares, AJ
AF Assumma, Vanessa
   Bottero, Marta
   De Angelis, Elena
   Lourenco, Julia M.
   Monaco, Roberto
   Soares, Ana Jacinta
TI A decision support system for territorial resilience assessment and
   planning: An application to the Douro Valley (Portugal)
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Territorial resilience; Multicriteria decision analysis; Mathematical
   modelling; Spatial mapping
ID LANDSCAPE; URBAN; ATTRACTIVENESS; INDICATORS; SUSTAINABILITY;
   TRANSFORMATION; GOVERNANCE; MANAGEMENT; SCENARIOS; DISASTER
AB This paper aims to assess the territorial resilience of a socio-ecological system through an innovative integrated evaluation framework to aid the decision-making process in the planning of transformation scenarios. This framework employs a set of resilience indicators through a Multicriteria Decision Analysis (MCDA) coupled with a Lotka-Volterra mathematical model of cooperative type. The set of indicators aims to calculate a composite index of Tern tonal Resilience (TRI), whereas the mathematical model is an extension of an existing model, aimed to predict possible long-time scenarios. The proposed operational framework for rural and vineyard landscapes aims to bridge the existing gap between territorial resilience theory and practice, with an innovative Decision Support System able to assist Decision Makers and territory planners in the planning and management of resilient territorial systems. This integrated evaluation framework is applied to a famous wine region in Portugal, the Douro Valley, where Port-wine grows. Such framework, espedally in a context of adaptive governance, proves to be a suitable support in the field of landscape and urban planning to evaluate the dynamics of sow-ecological systems and to envision long-term policies and actions. (C) 2020 Published by Elsevier B.V.
C1 [Assumma, Vanessa; Bottero, Marta; De Angelis, Elena] Politecn Torino, Interuniv Dept Reg & Urban Studies & Planning, Viale Mattioli 39, I-10125 Turin, Italy.
   [Lourenco, Julia M.] Univ Minho, Ctr Terr Environm & Construct, Braga, Portugal.
   [Monaco, Roberto] Politecn Torino, Turin, Italy.
   [Soares, Ana Jacinta] Univ Minho, Ctr Math, Braga, Portugal.
C3 Polytechnic University of Turin; Universidade do Minho; Polytechnic
   University of Turin; Universidade do Minho
RP Bottero, M (corresponding author), Politecn Torino, Interuniv Dept Reg & Urban Studies & Planning, Viale Mattioli 39, I-10125 Turin, Italy.
EM marta.bottero@polito.it
RI Lourenco, Julia/J-1719-2015; Assumma, Vanessa/ABH-4247-2020
OI Assumma, Vanessa/0000-0002-4500-0413; Soares, Ana
   Jacinta/0000-0003-4771-9859
FU Portuguese Funds FCT [UIDB/00013/2020, UIDP/00013/2020]
FX The research by A.J.S. has been partially supported by the Portuguese
   Funds FCT Projects UIDB/00013/2020 and UIDP/00013/2020.
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NR 81
TC 41
Z9 42
U1 7
U2 80
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 FEB 20
PY 2021
VL 756
AR 143806
DI 10.1016/j.scitotenv.2020.143806
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA PM0FY
UT WOS:000603487500039
PM 33316645
DA 2025-04-22
ER

PT J
AU Wang, X
   Shahidehpour, M
   Jiang, CW
   Li, ZY
AF Wang, Xu
   Shahidehpour, Mohammad
   Jiang, Chuanwen
   Li, Zhiyi
TI Resilience Enhancement Strategies for Power Distribution Network Coupled
   With Urban Transportation System
SO IEEE TRANSACTIONS ON SMART GRID
LA English
DT Article
DE Resilience; power distribution system; urban transportation systems;
   dynamic user equilibrium; traffic lights; robust optimization
ID ROBUST OPTIMIZATION; USER EQUILIBRIUM; FORMULATION; EXTREME; WAVES
AB Traffic lights play a critical role in mitigating traffic congestions, which can be energized by distributed generators (DGs) when power outages occur in urban areas. This paper studies the resilience enhancement strategy by line hardening and DG placement when outages occur in distribution lines and traffic lights in the coupled power distribution system and urban transportation system (PDS-UTS). A to -level optimization model is formulated with a limited budget for line hardening and DG placement to minimize the cost of load shedding and aggregated vehicle travel time. The first level determines line hardening and DG placement strategies, the second level searches for the worst case of faulted lines that would maximize load shedding and aggregated vehicle travel time, and the third level minimizes the corresponding costs of load shedding and travel. In urban transportation system, a dynamic user equilibrium model is established in a cell transmission model and solved by a linear complementarity approach. As the number of unavailable lines and traffic lights are definite in the inner-most level, the coupled PDS-UTS is considered as two decoupled systems. Accordingly, the tri-level model is converted into an equivalent bi-level model through Karush-Kuhn-Tucker conditions, which is then solved by a greedy search method. Case studies corroborate the effectiveness of the proposed model and relevant solution method for the coupled PDS-UTS.
C1 [Wang, Xu; Jiang, Chuanwen] Shanghai Jiao Tong Univ, Sch Elect Informat & Elect Engn, Shanghai 200240, Peoples R China.
   [Wang, Xu; Shahidehpour, Mohammad; Li, Zhiyi] IIT, Galvin Ctr Elect Innovat, Chicago, IL 60616 USA.
   [Shahidehpour, Mohammad] King Abdulaziz Univ, Renewable Energy Res Grp, Jeddah 21589, Saudi Arabia.
C3 Shanghai Jiao Tong University; Illinois Institute of Technology; King
   Abdulaziz University
RP Shahidehpour, M (corresponding author), IIT, Galvin Ctr Elect Innovat, Chicago, IL 60616 USA.
EM wangxu1989@sjtu.edu.cn; ms@iit.edu; jiangcw@sjtu.edu.cn
RI Shahidehpour, Mohammad/A-9942-2012; Wang, Xu/AFP-2416-2022
OI Shahidehpour, Mohammad/0000-0002-8994-1688; Wang, Xu/0000-0003-3731-8939
FU China Post-Doctoral Science Foundation [2017M611562]; National Natural
   Science Foundation of China [51577116]
FX This work was supported in part by the China Post-Doctoral Science
   Foundation under Grant 2017M611562, and in part by the National Natural
   Science Foundation of China under Grant 51577116. Paper no.
   TSG-01529-2017.
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NR 30
TC 84
Z9 96
U1 7
U2 82
PU IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
PI PISCATAWAY
PA 445 HOES LANE, PISCATAWAY, NJ 08855-4141 USA
SN 1949-3053
EI 1949-3061
J9 IEEE T SMART GRID
JI IEEE Trans. Smart Grid
PD JUL
PY 2019
VL 10
IS 4
BP 4068
EP 4079
DI 10.1109/TSG.2018.2848970
PG 12
WC Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA IE7TP
UT WOS:000472577500051
DA 2025-04-22
ER

PT J
AU Fein, EH
   Kataoka, S
   Aralis, H
   Lester, P
   Marlotte, L
   Morgan, R
   Ijadi-Maghsoodi, R
AF Fein, Eric H.
   Kataoka, Sheryl
   Aralis, Hilary
   Lester, Patricia
   Marlotte, Lauren
   Morgan, Rebecca
   Ijadi-Maghsoodi, Roya
TI Implementing a School-Based, Trauma-Informed Resilience Curriculum for
   Parents
SO SOCIAL WORK IN PUBLIC HEALTH
LA English
DT Article
DE Latino; program development; psychological resilience; school health
   services; urban health
ID INTERVENTION; CHILDREN; SCALE; FAMILIES
AB "Families OverComing Under Stress" (FOCUS) Resilience Curriculum for Parents (FRC-P) is a trauma-informed group parenting program adapted for school social workers to deliver to parents of racial/ethnic minority urban public schoolchildren, an under-researched group of parents in the literature. The objective was to describe implementation of the pilot FRC-P in terms of possible effectiveness, feasibility, and acceptability. Social workers delivered FRC-P to parents at 16 schools. We analyzed (1) changes in parent well-being; (2) parent satisfaction; and (3) a focus group of participating social workers. Ninety-six of 261 parents (37%) who attended FRC-P completed pre and post surveys. Parents reported significant improvements (p < .01) in family functioning (Cohen's d = 0.41), parent connectedness (d = 0.71), and social support (d = 0.66). Social workers linked parents to needed services. Parents and social workers found FRC-P feasible and acceptable. With refinement, FRC-P could help schools foster resilience in under-resourced parents.
C1 [Fein, Eric H.] Harbor UCLA Med Ctr, Dept Pediat, Torrance, CA 90509 USA.
   [Fein, Eric H.] Univ Calif Los Angeles, David Geffen Sch Med, Los Angeles, CA 90095 USA.
   [Kataoka, Sheryl] Univ Calif Los Angeles, Jane & Terry Semel Inst Neurosci & Human Behav, Ctr Hlth Serv & Soc, Los Angeles, CA USA.
   [Kataoka, Sheryl; Lester, Patricia; Marlotte, Lauren; Ijadi-Maghsoodi, Roya] Univ Calif Los Angeles, Jane & Terry Semel Inst Neurosci & Human Behav, Div Populat Behav Hlth, Los Angeles, CA USA.
   [Kataoka, Sheryl; Lester, Patricia; Ijadi-Maghsoodi, Roya] Univ Calif Los Angeles, Dept Psychiat & Biobehav Sci, Los Angeles, CA 90024 USA.
   [Aralis, Hilary] Univ Calif Los Angeles, Dept Biostat, Los Angeles, CA USA.
   [Aralis, Hilary] Univ Calif Los Angeles, Fielding Sch Publ Hlth, Los Angeles, CA USA.
   [Morgan, Rebecca] Los Angeles Unified Sch Dist, Dept Sch Mental Hlth, Los Angeles, CA USA.
   [Ijadi-Maghsoodi, Roya] VA Greater Los Angeles Healthcare Syst, VA Hlth Serv Res & Dev HSR&D Ctr Study Healthcare, Los Angeles, CA USA.
C3 University of California System; University of California Los Angeles;
   University of California Los Angeles Medical Center; University of
   California System; University of California Los Angeles; University of
   California Los Angeles Medical Center; David Geffen School of Medicine
   at UCLA; University of California System; University of California Los
   Angeles; University of California System; University of California Los
   Angeles; University of California System; University of California Los
   Angeles; University of California System; University of California Los
   Angeles; University of California System; University of California Los
   Angeles; US Department of Veterans Affairs; Veterans Health
   Administration (VHA); VA Greater Los Angeles Healthcare System
RP Fein, EH (corresponding author), Harbor UCLA Med Ctr, 1000 WCarson St 6 Flr, Torrance, CA 90502 USA.
EM efein@dhs.lacounty.gov
OI Fein, Eric/0000-0001-8531-5535
FU Agency for Healthcare Research and Quality [AHRQ T32HP 19001]; National
   Institute on Drug Abuse [K12DA000357]; Los Angeles Unified School
   District; SAMHSA
FX This work was supported by the Agency for Healthcare Research and
   Quality [AHRQ T32HP 19001]; National Institute on Drug Abuse
   [K12DA000357]; Los Angeles Unified School District; SAMHSA.
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NR 34
TC 1
Z9 2
U1 2
U2 12
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 1937-1918
EI 1937-190X
J9 SOC WORK PUBLIC HLTH
JI Soc. Work Public Health
PD NOV 17
PY 2021
VL 36
IS 7-8
BP 795
EP 805
DI 10.1080/19371918.2021.1958116
EA JUL 2021
PG 11
WC Public, Environmental & Occupational Health; Social Work
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health; Social Work
GA XB1JV
UT WOS:000678444500001
PM 34308773
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Jain, S
   Cohen, AK
AF Jain, Sonia
   Cohen, Alison K.
TI Fostering Resilience Among Urban Youth Exposed to Violence: A Promising
   Area for Interdisciplinary Research and Practice
SO HEALTH EDUCATION & BEHAVIOR
LA English
DT Review
DE adolescent development; protective factors; resilience; urban health;
   violence
ID COMMUNITY VIOLENCE; DEVELOPMENTAL ASSETS; CHILDRENS EXPOSURE; PROTECTIVE
   FACTORS; NEIGHBORHOOD PREDICTORS; FAMILY; HEALTH; COMPETENCE; RISK;
   VICTIMIZATION
AB Most studies to date have examined negative effects of exposure to community violence, in line with the deficit-based perspective. However, given that most youth exposed to community violence demonstrate positive adaptation or resilience over time, we suggest a shift in perspective, practices, and policies across systems toward identifying and building individual, family, and community assets and strengths that may more effectively support youth who have been exposed to community violence and related risks into competent, caring, and thriving adults. In this article, we review how resilience has been conceptualized and operationalized within the context of community violence, highlight gaps in literature, and offer directions for future public health research and practice. We illustrate this review with practice-based examples from public health work in the San Francisco Bay Area. Future multidisciplinary longitudinal studies that identify protective processes and successful trajectories and rigorous evaluations of strength-based policies, programs, and protective processes are needed.
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C3 University of California System; University of California Berkeley
RP Jain, S (corresponding author), WestEd, Hlth & Human Dev Program, 300 Lakeside Dr 25th Floor, Oakland, CA 94612 USA.
EM sjain@wested.org
OI Cohen, Alison/0000-0001-9848-934X
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PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 1090-1981
EI 1552-6127
J9 HEALTH EDUC BEHAV
JI Health Educ. Behav.
PD DEC
PY 2013
VL 40
IS 6
BP 651
EP 662
DI 10.1177/1090198113492761
PG 12
WC Public, Environmental & Occupational Health
WE Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA 252BW
UT WOS:000326980400004
PM 23818463
DA 2025-04-22
ER

PT J
AU Gargiulo, C
   Zucaro, F
AF Gargiulo, Carmela
   Zucaro, Floriana
TI A Method Proposal to Adapt Urban Open-Built and Green Spaces to Climate
   Change
SO SUSTAINABILITY
LA English
DT Article
DE urban open spaces; climate vulnerability; mitigation and adaptation
   interventions; nature-based solutions; urban resilience; Naples (Italy)
AB To rapidly adapt cities to the growing impacts of climate change, the open space system can play important functions as climate regulators and accelerators of sustainable urban development. To this end, this paper aims to provide a methodology that classifies open spaces on the basis of their physical characteristics and their contribution to climate vulnerability and articulates them according to the costs required for adaptation and the benefits brought. The method was applied to the city of Naples, which is an interesting case study due to its heterogeneous territory in terms of geomorphological features, such as hilly conformation and coastal location, and urban assets characterised by densely built urban fabrics with different distributions and kinds of activities. The results showed that (i) the open spaces with both low thermal and hydraulic performance are predominantly located in the peripheral part of the city, and (ii) the central area is strongly characterised by this dual issue. The latter output confirms the need to update the transformation rules of high historical-architectural value areas by introducing new resilience requirements criteria that cities are asked to have.
C1 [Gargiulo, Carmela; Zucaro, Floriana] Univ Naples Federico II, Dept Civil Bldg & Environm Engn, I-80138 Naples, Italy.
C3 University of Naples Federico II
RP Zucaro, F (corresponding author), Univ Naples Federico II, Dept Civil Bldg & Environm Engn, I-80138 Naples, Italy.
EM floriana.zucaro@unina.it
RI Zucaro, Floriana/AAB-8650-2019; Gargiulo, Carmela/ABD-6287-2020
OI GARGIULO, Carmela/0000-0001-6481-0908; Zucaro,
   Floriana/0000-0003-4171-3659
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NR 67
TC 11
Z9 11
U1 2
U2 15
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY 16
PY 2023
VL 15
IS 10
AR 8111
DI 10.3390/su15108111
PG 29
WC Green & Sustainable Science & Technology; Environmental Sciences;
   Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA H6SM6
UT WOS:000997238000001
OA gold
DA 2025-04-22
ER

PT J
AU Guo, XJ
   Dong, SC
   Wang, GK
   Lu, CP
AF Guo, X. J.
   Dong, S. C.
   Wang, G. K.
   Lu, C. P.
TI EMERGY-BASED URBAN ECOSYSTEM HEALTH EVALUATION FOR A TYPICAL
   RESOURCE-BASED CITY: A CASE STUDY OF TAIYUAN, CHINA
SO APPLIED ECOLOGY AND ENVIRONMENTAL RESEARCH
LA English
DT Article
DE city ecosystem; health evaluation; emergy analysis; information entropy;
   coal-based city
ID ECOLOGICAL FOOTPRINT ANALYSIS; SUSTAINABILITY ASSESSMENT; REGIONAL
   SUSTAINABILITY; ECONOMY; CONSUMPTION; EXERGY
AB Urban ecosystem health assessment helps ensure sustainable urban development. As the provincial capital of Shanxi in China, Taiyuan's development also affects Shanxi, an area rich in coal resources, and its urbanization is closely related to the coal energy structure, which has led to ecological deterioration. This study aims to apply emergy synthesis and information entropy to estimate the urban ecosystem health of Taiyuan during the 2001-2017 period, to provide insight into the policy implications. The results indicated that the urban ecological health of Taiyuan has ameliorated during the 17-year period, mainly due to the resilience and ecological service capacity of Taiyuan urban ecosystem improved over the past 17 years. The continuous reduction of industrial waste emissions leads to ecosystem, which have resilience improving. However, we should be cautious since there are still a lot of problems with the organizational structure. And Taiyuan government still needs to adjust the current energy structure, optimize industrial structure, and reduce the dependence on the resources.
C1 [Guo, X. J.] Shanxi Normal Univ, Coll Geog Sci, Linfen 030024, Shanxi, Peoples R China.
   [Guo, X. J.; Dong, S. C.] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Beijing 100101, Peoples R China.
   [Dong, S. C.] Univ Chinese Acad Sci, Beijing 100101, Peoples R China.
   [Wang, G. K.] Xinyang Normal Univ, Coll Tourism, Xinyang 464000, Peoples R China.
   [Lu, C. P.] Lanzhou Univ, Inst Cty Econ Dev & Rural Revitalizat Strategy, Lanzhou 730000, Gansu, Peoples R China.
C3 Shanxi Normal University; Chinese Academy of Sciences; Institute of
   Geographic Sciences & Natural Resources Research, CAS; Chinese Academy
   of Sciences; University of Chinese Academy of Sciences, CAS; Xinyang
   Normal University; Lanzhou University
RP Lu, CP (corresponding author), Lanzhou Univ, Inst Cty Econ Dev & Rural Revitalizat Strategy, Lanzhou 730000, Gansu, Peoples R China.
EM lcp@lzu.edu.cn
RI Guo, Xiaojia/HSB-6529-2023; Wang, Guokui/JAN-9717-2023
FU Science and Technology Basic Resources Survey Project of China
   [2017FY101304]; Major R&D Project of Chinese Academy of Sciences
   [ZDRW-ZS-2016-6-5]; National Natural Science Foundation of China
   [41701062, 41471116, 41701142]; Shanxi Scholarship Council of China
   [2016-078]; Shanxi Normal University Natural Science Foundation
   [ZR1714]; Youth Innovation Promotion Association CAS [2016181]
FX We thank Rong Zhou for her great assistance in this study. We would also
   like to thank the Science and Technology Basic Resources Survey Project
   of China (2017FY101304), Major R&D Project of Chinese Academy of
   Sciences (ZDRW-ZS-2016-6-5), National Natural Science Foundation of
   China (41701062,41471116,41701142), Shanxi Scholarship Council of China
   (2016-078), Shanxi Normal University Natural Science Foundation
   (ZR1714), and the Youth Innovation Promotion Association CAS (2016181).
   We are also grateful to the anonymous reviewers and all the editors in
   the process of revision.
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NR 41
TC 5
Z9 5
U1 3
U2 48
PU CORVINUS UNIV BUDAPEST
PI BUDAPEST
PA VILLANYI UT 29/43, BUDAPEST, H-1118, HUNGARY
SN 1589-1623
EI 1785-0037
J9 APPL ECOL ENV RES
JI Appl. Ecol. Environ. Res.
PY 2019
VL 17
IS 6
BP 15131
EP 15149
DI 10.15666/aeer/1706_1513115149
PG 19
WC Ecology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA JZ6XS
UT WOS:000505251300169
OA gold
DA 2025-04-22
ER

PT J
AU Parsons, M
   Thorns, MC
AF Parsons, Melissa
   Thorns, Martin C.
TI From academic to applied: Operationalising resilience in river systems
SO GEOMORPHOLOGY
LA English
DT Article; Proceedings Paper
CT 48th Annual Binghamton Geomorphology Symposium
CY OCT 13-15, 2017
CL Texas State Univ, San Marcos, TX
HO Texas State Univ
DE Complexity; Scientific method; Interdisciplinarity; Public policy; River
   management; River policy
ID SOCIAL-ECOLOGICAL SYSTEMS; COMMUNITY RESILIENCE; ECOSYSTEMS; MANAGEMENT;
   POLICY; SCIENCE; STATE
AB The concept of resilience acknowledges the ability of societies to live and develop with dynamic environments. Given the recognition of the need to prepare for anticipated and unanticipated shocks, applications of resilience are increasing as the guiding principle of public policy and programs in areas such as disaster management, urban planning, natural resource management, and climate change adaptation. River science is an area in which the adoption of resilience is increasing, leading to the proposition that resilience may become a guiding principle of river policy and programs. Debate about the role of resilience in rivers is part of the scientific method, but disciplinary disunity about the ways to approach resilience application in policy and programs may leave river science out of the policy process. We propose six elements that need to be considered in the design and implementation of resilience-based river policy and programs: rivers as social-ecological systems; the science-policy interface; principles, capacities, and characteristics of resilience: cogeneration of knowledge: adaptive management: and the state of the science of resilience. (C) 2017 Elsevier B.V. All rights reserved.
C1 [Parsons, Melissa; Thorns, Martin C.] Univ New England, Riverine Landscapes Res Lab, Armidale, NSW 2351, Australia.
C3 University of New England
RP Parsons, M (corresponding author), Univ New England, Riverine Landscapes Res Lab, Armidale, NSW 2351, Australia.
EM melissa.parsons@une.edu.au
RI ; Thoms, Martin/D-5049-2011
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TC 29
Z9 30
U1 2
U2 27
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0169-555X
EI 1872-695X
J9 GEOMORPHOLOGY
JI Geomorphology
PD MAR 15
PY 2018
VL 305
SI SI
BP 242
EP 251
DI 10.1016/j.geomorph.2017.08.040
PG 10
WC Geography, Physical; Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI); Conference Proceedings Citation Index - Science (CPCI-S)
SC Physical Geography; Geology
GA FY8GS
UT WOS:000427102800019
DA 2025-04-22
ER

PT J
AU Huq, E
   Shafique, T
AF Huq, Efadul
   Shafique, Tanzil
TI People move, policies don't: discursive partition against
   climate-impacted dwellers in urbanizing Bangladesh
SO ENVIRONMENT AND URBANIZATION
LA English
DT Article
DE climate migration; discursive partition; epistemicide; global South;
   urban adaptation
ID INFORMAL SETTLEMENTS; CHANGE ADAPTATION; RESILIENCE; JUSTICE;
   IMPLEMENTATION; VULNERABILITY; KNOWLEDGE; MIGRANTS; HISTORY; POVERTY
AB In Bangladesh, internal climate displacement will continue pushing millions to the urbanizing centres where migrants make homes in informal settlements. These settlements, too, are sites for climate hazards such as heat stress and flooding, affecting climate-displaced and economic migrants alike. The demands of growing migrant populations and long-term informal settlement dwellers converge around rights to secure land and housing, acknowledged in policies at both national and urban scales. Yet, settlements continue to face evictions, revealing a significant mismatch between policy aspirations and concrete urban planning strategies. Based on our ongoing research in the informal settlements of Dhaka, Bangladesh, we point to a structural condition we call discursive partition which continues to exclude climate-impacted dwellers from urban resilience policies despite their formal recognition in national climate policies. Based on evidence of how climate-impacted dwellers themselves lead urban adaptation, we point to three critical revisitations for just climate adaptation plans.
C1 [Huq, Efadul] Sith Coll, Environm Sci & Policy, Northampton, MA 01063 USA.
   [Shafique, Tanzil] Univ Sheffield, Arts Tower Level 14 19, Sheffield S10 2TN, England.
C3 University of Sheffield
RP Huq, E (corresponding author), Sith Coll, Environm Sci & Policy, Northampton, MA 01063 USA.
EM ehuq@smith.edu; t.i.shafique@sheffield.ac.uk
OI Shafique, Tanzil Idmam/0000-0002-6315-4539; Huq,
   Efadul/0000-0001-5235-4896
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NR 98
TC 4
Z9 4
U1 5
U2 15
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 2023
VL 35
IS 1
BP 91
EP 110
DI 10.1177/09562478221149863
EA FEB 2023
PG 20
WC Environmental Studies; Urban Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Urban Studies
GA I0TD4
UT WOS:000927793300001
OA hybrid
DA 2025-04-22
ER

PT J
AU Wang, Z
   Deng, XZ
   Wong, C
   Li, ZH
   Chen, JC
AF Wang, Zhan
   Deng, Xiangzheng
   Wong, Cecilia
   Li, Zhihui
   Chen, Jiancheng
TI Learning urban resilience from a social-economic-ecological system
   perspective: A case study of Beijing from 1978 to 2015
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Beijing; Development; Eco-urbanization; Environmental indicator; Urban
   resilience
ID CLIMATE-CHANGE; MULTICRITERIA ANALYSIS; CHINA; VULNERABILITY;
   PERFORMANCE; EFFICIENCY; EMERGENCE; FRAMEWORK; ENERGY; INDIA
AB After the People's Republic of China (PRC) established in 1949, central planners have made much efforts to greening the capital city, Beijing. However, with the increasing population and consumption in the city, the increasing environmental risks continually flow into the local social-economic-ecological system (SEES) through ecological intercorrelation from neighborhoods, so that the thresholds of risks challenge the urban resilience of Beijing and the surrounding area. Thereby, we analyze the 139 selected indicators to deeply understand the systematic risks across temporal scale during 1978-2015 in Beijing. Results show the development pathway of Beijing experienced three stages from "entrance", "soar" to "coursing". In the current new stage, the ecological impacts and resource use per capita are main constrains to future development in Beijing. This implies to a framework of urban growth for a demonstration pilot path of eco-urbanization in five aspects: 1) strategic clarification of the growth space; 2) design the urban growth path based on ecosystem planning with functional landscape architecture; 3) higher standards of industrial establishments with advanced environmental assessment and monitoring; 4) construction of environmental infrastructures with smart resource recycling; and 5) based on strict implementation of institutions and regulations to maximize the function of market allocation. (C) 2018 Elsevier Ltd. All rights reserved.
C1 [Wang, Zhan; Deng, Xiangzheng; Chen, Jiancheng] Beijing Forestry Univ, Sch Econ & Management, Beijing 100086, Peoples R China.
   [Wang, Zhan; Deng, Xiangzheng; Wong, Cecilia] Univ Manchester, Sch Environm Educ & Dev, Manchester M13 9PL, Lancs, England.
   [Wang, Zhan; Deng, Xiangzheng; Li, Zhihui] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Ctr Chinese Agr Policy, Beijing 100101, Peoples R China.
C3 Beijing Forestry University; University of Manchester; Chinese Academy
   of Sciences; Institute of Geographic Sciences & Natural Resources
   Research, CAS
RP Chen, JC (corresponding author), Beijing Forestry Univ, Sch Econ & Management, Beijing 100086, Peoples R China.; Deng, XZ (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Ctr Chinese Agr Policy, Beijing 100101, Peoples R China.
EM wangz@igsnrr.ac.cn; dengxz@igsnrr.ac.cn; cecilia.wong@manchester.ac.uk;
   lizh.12b@igsnrr.ac.cn; chenjc1963@163.com
RI Deng, Xiangzheng/N-1335-2018; Wang, Zhan/Q-9994-2017
OI Wang, Zhan/0000-0002-7351-2731; Wong, Cecilia/0000-0003-2375-8474
FU P.R. of China National natural science foundation of international
   (regional) cooperation and exchange programs [71561137002]; Joint-PhD
   program funded by China Scholarship Council [201606510044]; UK Economic
   and Social Research Council [ES/N010698/1]; Key Project of National
   Natural Science Foundation of P.R. China [71533004]; ESRC [ES/N010698/1]
   Funding Source: UKRI
FX This research was financially supported by the P.R. of China National
   natural science foundation of international (regional) cooperation and
   exchange programs (Grant no. 71561137002), the Joint-PhD program funded
   by China Scholarship Council (Grant no. 201606510044), the UK Economic
   and Social Research Council (Grant no. ES/N010698/1), and the Key
   Project of National Natural Science Foundation of P.R. China (Grant no.
   71533004). To editors and reviewers, we revised this paper in token of
   gratitude.
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NR 61
TC 54
Z9 61
U1 18
U2 260
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 MAY 10
PY 2018
VL 183
BP 343
EP 357
DI 10.1016/j.jclepro.2018.02.128
PG 15
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 GC4OH
UT WOS:000429763800033
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Shi, CY
   Liao, L
   Li, H
   Su, ZH
AF Shi, Chunyu
   Liao, Liao
   Li, Huan
   Su, Zhenhua
TI Which urban communities are susceptible to COVID-19? An empirical study
   through the lens of community resilience
SO BMC PUBLIC HEALTH
LA English
DT Article
DE COVID-19; Pandemic-susceptible communities; Community resilience;
   Qualitative comparative analysis; China
ID VULNERABILITY; CHINA
AB Background After the lockdown of Wuhan on January 23, 2020, the government used community-based pandemic prevention and control as the core strategy to fight the pandemic, and explored a set of standardized community pandemic prevention measures that were uniformly implemented throughout the city. One month later, the city announced its first lists of "high-risk" communities and COVID-19-free communities. Under the standardized measures of pandemic prevention and mitigation, why some communities showed a high degree of resilience and effectively avoided escalation, while the situation spun out of control in other communities? This study investigated: 1) key factors that affect the effective response of urban communities to the pandemic, and 2) types of COVID-19 susceptible communities. Methods This study employs the crisp-set qualitative comparative analysis method to explore the influencing variables and possible causal condition combination paths that affect community resilience during the pandemic outbreak. Relying on extreme-case approach, 26 high-risk communities and 14 COVID-19 free communities were selected as empirical research subjects from the lists announced by Wuhan government. The community resilience assessment framework that evaluates the communities' capacity on pandemic prevention and mitigation covers four dimensions, namely spatial resilience, capital resilience, social resilience, and governance resilience, each dimension is measured by one to three variables. Results The results of measuring the necessity of 7 single-condition variables found that the consistency index of "whether the physical structure of the community is favorable to virus transmission" reached 0.9, which constitutes a necessary condition for COVID-19 susceptible communities. By analyzing the seven condition configurations with high row coverage and unique coverage in the obtained complex solutions and intermediate solutions, we found that outbreaks are most likely to occur in communities populated by disadvantaged populations. However, if lacking spatial-, capital-, and governance resilience, middle-class and even wealthy communities could also become areas where COVID-19 spreads easily. Conclusions Three types of communities namely vulnerable communities, alienated communities, and inefficient communities have lower risk resilience. Spatial resilience, rather than social resilience, constitutes the key influencing factor of COVID-19-susceptible communities, and the dual deficiencies of social resilience and governance resilience are the common features of these communities.
C1 [Shi, Chunyu] Zhejiang Gongshang Univ, Sch Publ Management, Discipline Publ Adm, Hangzhou, Peoples R China.
   [Liao, Liao] South China Normal Univ, Sch Polit & Publ Adm, Guangzhou, Peoples R China.
   [Li, Huan] Zhejiang Gongshang Univ, Sch Publ Management, Discipline Land Resources Management, Hangzhou, Peoples R China.
   [Su, Zhenhua] Zhejiang Univ, Coll Media & Int Culture, Hangzhou, Peoples R China.
C3 Zhejiang Gongshang University; South China Normal University; Zhejiang
   Gongshang University; Zhejiang University
RP Shi, CY (corresponding author), Zhejiang Gongshang Univ, Sch Publ Management, Discipline Publ Adm, Hangzhou, Peoples R China.; Liao, L (corresponding author), South China Normal Univ, Sch Polit & Publ Adm, Guangzhou, Peoples R China.
EM shichunyu@zjgsu.edu.cn; l_liao@hotmail.com
RI Shi, Chunyu/KHD-4656-2024; liao, liao/IUQ-8452-2023
FU National Social Science Foundation of China [19BZZ082]
FX This research is supported by the National Social Science Foundation of
   China, Grant No. 19BZZ082.
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NR 56
TC 22
Z9 22
U1 8
U2 135
PU BMC
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON N1 9XW, ENGLAND
EI 1471-2458
J9 BMC PUBLIC HEALTH
JI BMC Public Health
PD JAN 11
PY 2022
VL 22
IS 1
AR 70
DI 10.1186/s12889-021-12419-8
PG 15
WC Public, Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Public, Environmental & Occupational Health
GA YE8XK
UT WOS:000741402400005
PM 35016669
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Hartigan, M
   Fitzsimons, J
   Grenfell, M
   Kent, T
AF Hartigan, Martin
   Fitzsimons, James
   Grenfell, Maree
   Kent, Toby
TI Developing a Metropolitan-Wide Urban Forest Strategy for a Large,
   Expanding and Densifying Capital City: Lessons from Melbourne, Australia
SO LAND
LA English
DT Article
DE canopy cover; vegetation mapping; connectivity; heat mapping; targets
ID RESILIENCE; CITIES
AB Urban forests provide many ecosystem services, such as reducing heat, improving air quality, treatment of stormwater, carbon sequestration, as well as biodiversity benefits. These benefits have resulted in increasing demand for urban forests and strategies to maintain and enhance this natural infrastructure. In response to a broader resilience strategy for Melbourne, Australia, we outline how a metropolitan-wide urban forest strategy (Living Melbourne) was developed, encompassing multiple jurisdictions and all land tenures. To this end, we mapped tree cover within the Melbourne metropolitan area, modelled potential habitat for some bird species, and investigated the role of tree cover for urban heat island mitigation. We outline the consultation and governance frameworks used to develop the strategy, the vision, goals and actions recommended, including canopy and shrub cover targets for different parts of the metropolitan area. The metropolitan-wide urban forest strategy acts as an overarching framework to guide local government authorities and various stakeholders towards a shared objective of increasing tree cover in Melbourne and we discuss the outcomes and lessons from this approach.
C1 [Hartigan, Martin; Fitzsimons, James] Nature Conservancy, Suite 2-01,60 Leicester St, Carlton, Vic 3053, Australia.
   [Hartigan, Martin; Grenfell, Maree; Kent, Toby] Resilient Melbourne, GPO Box 1603, Melbourne, Vic 3001, Australia.
   [Fitzsimons, James] Deakin Univ, Sch Life & Environm Sci, 221 Burwood Highway, Burwood 3125, Australia.
C3 Nature Conservancy; Deakin University
RP Fitzsimons, J (corresponding author), Nature Conservancy, Suite 2-01,60 Leicester St, Carlton, Vic 3053, Australia.; Fitzsimons, J (corresponding author), Deakin Univ, Sch Life & Environm Sci, 221 Burwood Highway, Burwood 3125, Australia.
EM Martin.Hartigan@gww.com.au; jfitzsimons@tnc.org;
   Maree.Grenfell@melbourne.vic.gov.au; toby@elliskent.com
RI Fitzsimons, James/W-2497-2019
OI Fitzsimons, James/0000-0003-4277-8040
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NR 56
TC 20
Z9 20
U1 2
U2 51
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD AUG
PY 2021
VL 10
IS 8
AR 809
DI 10.3390/land10080809
PG 23
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA UI3JW
UT WOS:000690509000001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Satterthwaite, D
   Archer, D
   Colenbrander, S
   Dodman, D
   Hardoy, J
   Mitlin, D
   Patel, S
AF Satterthwaite, David
   Archer, Diane
   Colenbrander, Sarah
   Dodman, David
   Hardoy, Jorgelina
   Mitlin, Diana
   Patel, Sheela
TI Building Resilience to Climate Change in Informal Settlements
SO ONE EARTH
LA English
DT Review
ID URBAN-POOR; CHANGE ADAPTATION; LOCAL-GOVERNMENT; STREET VENDORS; BASIC
   SERVICES; LAND-TENURE; CITY; SLUM; VULNERABILITY; CHALLENGES
AB Approximately 1 billion people currently live in informal settlements, primarily in urban areas in low- and middle-income countries. Informal settlements are defined by poor-quality houses or shacks built outside formal laws and regulations. Most informal settlements lack piped water or adequate provision for sanitation, drainage, and public services. Many are on dangerous sites because their inhabitants have a higher chance of avoiding eviction. This paper considers how to build resilience to the impacts of climate change in informal settlements. It focuses on informal settlements in cities in low- and middle-income countries and how these concentrate at-risk populations. This paper also reviews what is being done to address climate resilience in informal settlements. In particular, community- and city-government-led measures to upgrade settlements can enhance resilience to climate-change risks and serve vulnerable groups. It also discusses how the barriers to greater scale and effectiveness can be overcome, including with synergies with the Sustainable Development Goals.
C1 [Satterthwaite, David; Dodman, David; Mitlin, Diana] Int Inst Environm & Dev, 80-86 Grays Inn Rd, London WC1X 8NH, England.
   [Satterthwaite, David] UCL, Dev Planning Unit, 80-86 Grays Inn Rd, London WC1X 8NH, England.
   [Archer, Diane] Chulalongkorn Univ, Stockholm Environm Inst, Kasem Uttayanin Bldg,254 Henri Dunant Rd, Bangkok 10330, Thailand.
   [Colenbrander, Sarah] World Resources Inst, New Climate Econ, 10 G St NE Suite 800, Washington, DC 20002 USA.
   [Hardoy, Jorgelina] IIED Amer Latina, Fernandes Spiro 322, RA-1641 Buenos Aires, DF, Argentina.
   [Mitlin, Diana] Univ Manchester, 80-86 Grays Inn Rd, London WC1X 8NH, England.
   [Patel, Sheela] Soc Promot Area Resource Ctr India, POB 9389, Mumbai 400026, Maharashtra, India.
   [Patel, Sheela] Shack Slum Dwellers Int, POB 9389, Mumbai 400026, Maharashtra, India.
C3 University of London; University College London; Chulalongkorn
   University; University of Manchester
RP Satterthwaite, D (corresponding author), Int Inst Environm & Dev, 80-86 Grays Inn Rd, London WC1X 8NH, England.; Satterthwaite, D (corresponding author), UCL, Dev Planning Unit, 80-86 Grays Inn Rd, London WC1X 8NH, England.
EM david@iied.org
RI Satterthwaite, David/A-6277-2009
OI Colenbrander, Sarah/0000-0002-3214-8064; Archer,
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NR 118
TC 191
Z9 198
U1 5
U2 53
PU CELL PRESS
PI CAMBRIDGE
PA 50 HAMPSHIRE ST, FLOOR 5, CAMBRIDGE, MA 02139 USA
SN 2590-3330
EI 2590-3322
J9 ONE EARTH
JI One Earth
PD FEB 21
PY 2020
VL 2
IS 2
BP 143
EP 156
DI 10.1016/j.oneear.2020.02.002
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 RU6GC
UT WOS:000645243500008
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Bhavathrathan, BK
   Patil, GR
AF Bhavathrathan, B. K.
   Patil, Gopal R.
TI Capacity uncertainty on urban road networks: A critical state and its
   applicability in resilience quantification
SO COMPUTERS ENVIRONMENT AND URBAN SYSTEMS
LA English
DT Article
DE Urban road network; Capacity uncertainty; Network resilience; Minimax
   optimization; Genetic algorithm
ID DEGRADABLE TRANSPORTATION SYSTEMS; EQUILIBRIUM TRAFFIC ASSIGNMENT;
   GAME-THEORY; RELIABILITY; VULNERABILITY
AB There are many aspects of urban transportation that represent sources of uncertainty in the design of roadways, such as the level of capacity needed to ensure efficient traffic flow. As a result of uncertainty in roadway capacity, an urban road network can be deemed to operate at different Capacity levels. Some of these levels will have unused capacity, whereas some others will not be enough to cater traffic from all origins to all destinations. Past models assume knowledge over the pattern of these uncertainties. However, it is difficult to gather such knowledge from field observations, and it is absent for majority of the world's urban areas. We present an alternative methodology in which the capacities are considered as variables that can take any value from zero to a practically realizable maximum. Using a minimax optimization formulation, we determine bounds on urban roadway capacity levels, below which the traffic demand will go unmet. We call this the critical state, and define it as a state of link capacities which effects in the maximum irreducible operational cost on the network with the demand getting fulfilled. We prove that at a critical state, the total travel time ( or cost) of the system will be a unique value; i.e. for a given urban road network and a given traffic demand, there is an associated unique critical travel time. We illustrate that this unique travel time which is an aggregate value of the travel times from all roads on the network can be used as a benchmark to create various metrics for the urban road network. As an illustrative example on the applicability of critical state, we compare the unique travel time with the best possible travel time on the network, and develop a metric for network resilience. Network resilience is calculated as a normalized difference of the critical and best operation costs. Two-space genetic algorithm is used to solve the problem formulation. The formulation and the solution methodology are illustrated on test networks and results are presented. (C) 2015 Elsevier Ltd. All rights reserved.
C1 [Bhavathrathan, B. K.; Patil, Gopal R.] Indian Inst Technol, Dept Civil Engn, Transportat Syst Engn, Bombay 400076, Maharashtra, India.
C3 Indian Institute of Technology System (IIT System); Indian Institute of
   Technology (IIT) - Bombay
RP Patil, GR (corresponding author), Indian Inst Technol, Dept Civil Engn, Transportat Syst Engn, Bombay 400076, Maharashtra, India.
EM bhavathrathan@iitb.ac.in; gpatil@iitb.ac.in
RI Patil, Gopal/P-4567-2014; BK, Bhavathrathan/AAU-1231-2020; Bhattiyil
   Kuzhiyamkunnath, Bhavathrathan/D-9404-2016
OI Bhattiyil Kuzhiyamkunnath, Bhavathrathan/0000-0001-7993-6861; Patil,
   Gopal/0000-0002-2281-1870
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NR 60
TC 21
Z9 28
U1 2
U2 60
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 0198-9715
EI 1873-7587
J9 COMPUT ENVIRON URBAN
JI Comput. Environ. Urban Syst.
PD NOV
PY 2015
VL 54
BP 108
EP 118
DI 10.1016/j.compenvurbsys.2015.07.005
PG 11
WC Computer Science, Interdisciplinary Applications; Engineering,
   Environmental; Environmental Studies; Geography; Operations Research &
   Management Science; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Computer Science; Engineering; Environmental Sciences & Ecology;
   Geography; Operations Research & Management Science; Public
   Administration
GA DB1YY
UT WOS:000368306700010
DA 2025-04-22
ER

PT J
AU Ranganathan, M
   Bratman, E
AF Ranganathan, Malini
   Bratman, Eve
TI From Urban Resilience to Abolitionist Climate Justice in Washington, DC
SO ANTIPODE
LA English
DT Article
DE abolition ecologies; antiracist humanism; intersectional feminism;
   ethics of care; urban political ecology; climate justice
ID POLITICS; CRITIQUE; HUMANISM; CITIES; RACISM; CARE
AB What would abolitionism mean for climate justice? "Resilience" is proposed by experts as a solution to climate change vulnerability. But this prescription tends to focus on adaptation to future external threats, subtly validating embedded processes of racial capitalism that have historically dehumanised and endangered residents and their environments in the first place. This article focuses on majority Black areas said to be vulnerable to extreme weather events and targeted for expert-driven resilience enhancements in America's capital city, Washington, DC. Drawing on key insights from Black radical, feminist, and antiracist humanist thought, we reimagine resilience through an abolitionist framework. Using archival analysis, oral histories, a neighbourhood-level survey, and interviews conducted between 2015 and 2018, we argue that abolitionist climate justice entails a centring of DC's historical environmental and housing-related racisms, the intersectional drivers of precarity and trauma experienced by residents beyond those narrowly associated with "climate"; and an ethics of care and healing practiced by those deemed most at risk to climate change.
C1 [Ranganathan, Malini] Amer Univ, Sch Int Serv, Washington, DC 20016 USA.
   [Bratman, Eve] Franklin & Marshall Coll, Environm Studies, Lancaster, PA 17604 USA.
C3 American University; Franklin & Marshall College
RP Ranganathan, M (corresponding author), Amer Univ, Sch Int Serv, Washington, DC 20016 USA.
EM malini@american.edu; ebratman@fandm.edu
RI Bratman, Eve/AAU-3643-2021
OI Ranganathan, Malini/0000-0003-4787-1519
FU Metropolitan Policy Center at American University
FX We are indebted to the organisers, leaders, residents, and practitioners
   in Washington, DC interviewed for this research. Special thanks go to
   Justin Lini for a history of the Kenilworth Parkside neighbourhoods, and
   introductions to Ward 7 community members. Our gratitude is also due to
   Derek Hyra at the Metropolitan Policy Center at American University for
   financial support, and to Megan Ybarra, Nik Heynen, and Katherine
   McKittrick for providing opportunities to present and publish this
   manuscript. We also sincerely thank Tracy Watson, Marissa Lorusso, and
   Isobel Araujo for conducting archival and qualitative research; Erin
   Matson for conducting historical research and producing GIS maps; and
   Abby Schwarz and Nathan Erwin for research and editorial support. Thanks
   also go to Austin Zeiderman, Kasia Paprocki, and Gabriela Valdivia for
   invitations to present the draft manuscript at various venues. Finally,
   our sincere thanks go to Antipode Handling Editor Kiran Asher, Editorial
   Manager Andy Kent, and anonymous peer reviewers. All shortcomings remain
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NR 92
TC 157
Z9 181
U1 9
U2 57
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0066-4812
EI 1467-8330
J9 ANTIPODE
JI Antipode
PD JAN
PY 2021
VL 53
IS 1
BP 115
EP 137
DI 10.1111/anti.12555
EA JUN 2019
PG 23
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA PS9VQ
UT WOS:000473948500001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Urso, G
   Modica, M
   Faggian, A
AF Urso, Giulia
   Modica, Marco
   Faggian, Alessandra
TI Resilience and Sectoral Composition Change of Italian Inner Areas in
   Response to the Great Recession
SO SUSTAINABILITY
LA English
DT Article
DE regional resilience; adaptive capacity; sectoral industry composition;
   urban vs; inner areas
ID REGIONAL RESILIENCE; ECONOMIC-CRISIS; EUROPE; IMPACT; EMPLOYMENT;
   POLICIES; COSTS
AB This paper focuses on the response of Italian inner areas to the Great Recession. Inner areas represent the majority of the Italian territory and are very heterogeneous in terms of (unstable) growth trajectories and industrial composition. One key issue that has partially hindered a thorough empirical analysis of the development paths of these areas so far, is defining these inner areas. To this aim, we adopt the recent classification proposed by the National Strategy for Inner Areas (2014), which identified six categories based on the travel distance from service provision centers. Our purpose is to analyze the potential structural change of inner vs non-inner areas in the face of the 2007-2008 economic crisis, assessing their adaptive capacity to the recessionary disturbance and the factors underlying their industrial composition change. We found that urban poles and inner areas had different abilities to re-adapt their local industrial compositions in response to the economic crisis with obvious effects on their future resilience.
C1 [Urso, Giulia; Modica, Marco; Faggian, Alessandra] Gran Sasso Sci Inst, Social Sci, I-67100 Laquila, AQ, Italy.
C3 Gran Sasso Science Institute (GSSI)
RP Urso, G (corresponding author), Gran Sasso Sci Inst, Social Sci, I-67100 Laquila, AQ, Italy.
EM giulia.urso@gssi.it; marco.modica@gssi.it; alessandra.faggian@gssi.it
RI Faggian, Alessandra/K-8548-2019; Modica, Marco/H-3650-2019
OI Urso, Giulia/0000-0003-0696-0363; Modica, Marco/0000-0002-1759-8665
CR [Anonymous], REG OUTL 2011 BUILD
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NR 49
TC 22
Z9 22
U1 1
U2 6
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD MAY 1
PY 2019
VL 11
IS 9
AR 2679
DI 10.3390/su11092679
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 IA4FF
UT WOS:000469518700227
OA Green Published, Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Termeer, CJAM
   Feindt, PH
   Karpouzoglou, T
   Poppe, KJ
   Hofstede, GJ
   Kramer, K
   Ge, L
   Mathijs, E
   Meuwissen, MPM
AF Termeer, Catrien J. A. M.
   Feindt, Peter H.
   Karpouzoglou, Timos
   Poppe, Krijn J.
   Hofstede, Gert Jan
   Kramer, Koen
   Ge, Lan
   Mathijs, Erik
   Meuwissen, Miranda P. M.
TI Institutions and the resilience of biobased production systems: the
   historical case of livestock intensification in the Netherlands
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE biobased production system; connects; institutions; livestock;
   resilience
ID GOVERNANCE; POLICY; FOOD; SUSTAINABILITY; CLIMATE; INSIGHTS;
   TRANSITIONS; CHALLENGES; SECURITY; DYNAMICS
AB Disconnects between farming and urban systems are widely seen as impairing the resilience of biobased production systems (BBPSs). However, the institutional mechanisms that underlie these resilience problems are not well understood. In this explorative paper, which integrates elements from institutional and resilience theory, we develop a framework to analyze how institutionally shaped patterns of connects and disconnects affect the resilience of BBPs along the dimensions of robustness, adaptability, and transformability. This framework is applied to the historical case of pig livestock intensification in the Netherlands from 1870 to 2017. The case shows that institutions, successfully established in earlier periods, shape connects and disconnects in subsequent periods, thereby enabling and constraining resilience. A combination of perturbations, institutional layering, and shifts in ideational power is an important institutional mechanism for resilience. We conclude that building resilience requires a variety of reconnecting institutions and refraining from a focus on local reconnects or certification only.
C1 [Termeer, Catrien J. A. M.] Univ Wageningen & Res, Publ Adm & Policy Grp, NL-6700 HB Wageningen, Netherlands.
   [Feindt, Peter H.] Humboldt Univ, Albrecht Daniel Thaer Inst Agr & Hort Sci, Berlin, Germany.
   [Karpouzoglou, Timos] KTH Royal Inst Technol, Div Hist Sci Technol & Environm, Stockholm, Sweden.
   [Poppe, Krijn J.] Wageningen Econ Res, Wageningen, Netherlands.
   [Hofstede, Gert Jan] Wageningen Univ & Res, Informat Technol Grp, Social Sci, Wageningen, Netherlands.
   [Hofstede, Gert Jan] North West Univ, UARM, Potchefstroom, South Africa.
   [Kramer, Koen] Wageningen Univ, Wageningen Univ & Res, Wageningen, Netherlands.
   [Ge, Lan] Wageningen Univ & Res, Wageningen Econ Res, Wageningen, Netherlands.
   [Mathijs, Erik] Katholieke Univ Leuven, Dept Earth & Environm Sci, Leuven, Belgium.
   [Meuwissen, Miranda P. M.] Wageningen Univ & Res, Business Econ, Wageningen, Netherlands.
C3 Wageningen University & Research; Humboldt University of Berlin; Royal
   Institute of Technology; Wageningen University & Research; Wageningen
   University & Research; North West University - South Africa; Wageningen
   University & Research; Wageningen University & Research; KU Leuven;
   Wageningen University & Research
RP Termeer, CJAM (corresponding author), Univ Wageningen & Res, Publ Adm & Policy Grp, NL-6700 HB Wageningen, Netherlands.
RI Hofstede, Gert/G-3805-2011; Mathijs, Erik/C-2313-2013; Karpouzoglou,
   Timos/P-6216-2015
OI Mathijs, Erik/0000-0002-3740-7280; Karpouzoglou,
   Timos/0000-0001-9568-9813
FU Wageningen University and Research
FX The research was supported by the strategic investment fund of
   Wageningen University and Research
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NR 75
TC 16
Z9 20
U1 1
U2 18
PU RESILIENCE ALLIANCE
PI WOLFVILLE
PA ACADIA UNIV, BIOLOGY DEPT, WOLFVILLE, NS B0P 1X0, CANADA
SN 1708-3087
J9 ECOL SOC
JI Ecol. Soc.
PD DEC
PY 2019
VL 24
IS 4
AR 15
DI 10.5751/ES-11206-240415
PG 12
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA KB5ZV
UT WOS:000506574000022
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Panos, CL
   Wolfand, JM
   Hogue, TS
AF Panos, Chelsea L.
   Wolfand, Jordyn M.
   Hogue, Terri S.
TI Assessing resilience of a dual drainage urban system to redevelopment
   and climate
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Urban stormwater; Land use change; Climate change; Redevelopment; Infill
   development; Resilience assessment
ID LAND-USE CHANGE; STORMWATER; IMPACTS; DESIGN; INFRASTRUCTURE;
   CHALLENGES; HYDROLOGY
AB Dual drainage systems in urban areas were historically designed and built to convey certain size storms on the assumption of stationarity. However, changes to rainfall due to climate change and increases in impervious cover due to land use change, specifically redevelopment, violate this assumption. Hydrologic models can be used to quantify impacts of climate and land use changes on stormwater runoff. Uncertain climate projections can complicate modeling efforts using "predict-then-adapt" strategies. Therefore, this study used the opposite approach in a "tipping point" resilience assessment. We determined the changes in rainfall (from climate change) and changes in land cover (from redevelopment) that pushed a dual drainage stormwater system to exceed regulatory flooding standards. Then, adaptive measures (bioretention cells) were added to improve system resilience to handle wider changes in climate or land use. We performed this assessment for a redeveloping urban neighborhood in Denver, Colorado and tested regulatory flooding standards for both minor (5-yr) and major (100-yr) storm events at different levels of redevelopment. We found that the pre-redevelopment system exceeds acceptable minor event standards and floods streets (i.e., reaches a tipping point) at an increase in rainfall of 7% due to climate change. It was also found that impervious areas can be increased by redevelopment up to 8.1% before exceeding minor storm event standards under current rainfall conditions, suggesting similar stormwater quantity impacts from both climate and land use changes. Adding distributed bioretention units in redeveloped areas allows for up to an additional 12.5% and 8.5% absolute increase in rainfall before the stormwater system fails minor and major storm event standards, respectively. Given the wide range of climate change estimates for future rainfall conditions, redevelopment presents a unique opportunity for implementing green stormwater infrastructure and building system resilience.
C1 [Panos, Chelsea L.; Hogue, Terri S.] Colorado Sch Mines, Dept Civil & Environm Engn, Coolbaugh Hall, Golden, CO 80401 USA.
   [Wolfand, Jordyn M.] Univ Portland, Shiley Sch Engn, Portland, OR 97203 USA.
C3 Colorado School of Mines; University of Portland
RP Panos, CL (corresponding author), Colorado Sch Mines, Dept Civil & Environm Engn, Coolbaugh Hall, Golden, CO 80401 USA.
EM cpanos@mines.edu; wolfand@up.edu; thogue@mines.edu
RI Panos, Chelsea/Y-5787-2019
OI Panos, Chelsea/0000-0002-2171-9570
FU Colorado Higher Education Competitive Research Authority (CHECRA);
   National Science Foundation [DGE-1646713, NSF EEC-1028968]
FX ` This work was supported by the National Science Foundation-funded
   Engineering Research Center for Reinventing the Nation's Urban Water
   Infrastructure (ReNUWIt) [grant number NSF EEC-1028968]; a grant from
   the Colorado Higher Education Competitive Research Authority (CHECRA);
   and the National Science Foundation Graduate Research Fellowship Program
   [grant number DGE-1646713]. 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
   (NSF).
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NR 46
TC 15
Z9 19
U1 12
U2 59
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 2021
VL 596
AR 126101
DI 10.1016/j.jhydrol.2021.126101
EA MAR 2021
PG 11
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA RQ3PQ
UT WOS:000642334400070
DA 2025-04-22
ER

PT J
AU Wallace, D
   Wallace, R
AF Wallace, Deborah
   Wallace, Rodrick
TI Consequences of massive housing destruction: the New York City fire
   epidemic
SO BUILDING RESEARCH AND INFORMATION
LA English
DT Article
DE community stability; housing destruction; neighbourhood social
   structure; planned shrinkage; public health; public services;
   resilience; urban life; urban renewal
ID BIRTH-WEIGHT; TUBERCULOSIS; POPULATION; MULTILEVEL; BALTIMORE; PARASITE;
   VIOLENCE; STRESS; BRONX
AB What are the social and economic consequences of massive destruction of housing? A case study of the New York City fire epidemic of the 1970s is presented. Decision-makers regarded old neighbourhoods (with low-income families and/or racial minorities) as wastelands and developed policies such as urban renewal and reductions in public services ('planned shrinkage') which negatively impacted on the physical and social fabrics. Structural and functional continuity even after a disturbance - ecological resilience - depends on many non-disjunctive 'loose' relationships to diffuse these impacts. Systems based on 'tight' relationships amplify impacts. Families with resources relocate and reduce the community diversity and the density of loose ties. Low-income families whose homes are destroyed weaken the remaining social networks. The remnant cannot maintain social norms. This displacement leads to two possibilities: many small social networks that do not interact; or one large tight network with low diversity. The former confers pathological resilience; the latter, extreme fragility. Neither enforces social norms or generates political power. Both foster risk behaviours and hamper socialization of youth. Thus, concentrated housing destruction destroys healthy resilience and social control and support. Indirectly, it elevates the mortality rate through increased risk behaviours, high death rates among vulnerable elderly, and infectious and chronic diseases.
C1 [Wallace, Deborah; Wallace, Rodrick] New York State Psychiat Inst & Hosp, Dept Epidemiol, New York, NY 10032 USA.
C3 New York State Psychiatry Institute
RP Wallace, D (corresponding author), New York State Psychiat Inst & Hosp, Dept Epidemiol, 1051 Riverside Dr,Box 47, New York, NY 10032 USA.
EM rdwall@ix.netcom.com
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NR 34
TC 19
Z9 20
U1 0
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.
PY 2011
VL 39
IS 4
SI SI
BP 395
EP 411
DI 10.1080/09613218.2011.567385
PG 17
WC Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Construction & Building Technology
GA 878RO
UT WOS:000299274400006
DA 2025-04-22
ER

PT J
AU Yao, Y
   Guo, ZJ
   Huang, X
   Ren, SL
   Hu, Y
   Dong, AN
   Guan, QF
AF Yao, Yao
   Guo, Zijin
   Huang, Xiao
   Ren, Shuliang
   Hu, Ying
   Dong, Anning
   Guan, Qingfeng
TI Gauging urban resilience in the United States during the COVID-19
   pandemic via social network analysis
SO CITIES
LA English
DT Article
DE COVID-19 pandemic; Social network analysis (SNA); Network resilience;
   Human mobility
ID COMMUNITY; PLACE
AB Social distancing policies and other restrictive measures have demonstrated efficacy in curbing the spread of the COVID-19 pandemic. However, these interventions have concurrently led to short-and long-term alterations in social connectedness. Comprehending the transformation in intracity social interactions is imperative for facil-itating post-pandemic recovery and development. In this research, we employ social network analysis (SNA) to delve into the nuances of urban resilience. Specifically, we constructed intricate networks utilizing human mobility data to represent the impact of social interactions on the structural attributes of social networks while assessing urban resilience by examining the stability features of social connectedness. Our findings disclose a diverse array of responses to social distancing policies regarding social connectedness and varied social reactions across U.S. Metropolitan Statistical Areas (MSAs). Social networks generally exhibited a shift from dense to sparse configurations during restrictive orders, followed by a transition from sparse to dense arrangements upon relaxation of said orders. Furthermore, we analyzed the alterations in social connectedness as demonstrated by network centrality, which can presumably be attributed to the rigidity of policies and the inherent qualities of the examined MSAs. Our findings contribute valuable scientific insights to support informed decision-making for post-pandemic recovery and development initiatives.
C1 [Yao, Yao; Guo, Zijin; Dong, Anning; Guan, Qingfeng] China Univ Geosci, Sch Geog & Informat Engn, Wuhan 430078, Hubei, Peoples R China.
   [Yao, Yao] Univ Tokyo, Ctr Spatial Informat Sci, Chiba 2778568, Japan.
   [Huang, Xiao] Univ Arkansas, Dept Geosci, Fayetteville, AR 72762 USA.
   [Ren, Shuliang] Peking Univ, Sch Earth & Space Sci, Beijing 100871, Peoples R China.
   [Hu, Ying] Cent Southern China Elect Power Design Inst Co Ltd, China Power Engn Consulting Grp, Wuhan, Peoples R China.
C3 China University of Geosciences; University of Tokyo; University of
   Arkansas System; University of Arkansas Fayetteville; Peking University
RP Huang, X (corresponding author), Univ Arkansas, Dept Geosci, Fayetteville, AR 72762 USA.
EM yaoy@cug.edu.cn; gzj2017@cug.edu.cn; xh010@uark.edu;
   renshuliang@stu.pku.edu.cn; hy6192@csepdi.com; donganning@cug.edu.cn;
   guanqf@cug.edu.cn
RI Guan, Qingfeng/AAB-2841-2021; Yao, Yao/L-7252-2018; Ren,
   Shuliang/IYJ-4144-2023; Huang, Xiao/AAS-4608-2020
OI Ren, Shuliang/0000-0003-3776-3266; Guan, Qingfeng/0000-0002-7392-3709;
   Yao, Yao/0000-0002-2830-0377; Huang, Xiao/0000-0002-4323-382X
FU National Key Research and Development Program of China [2019YFB2102903];
   University of Arkansas; National Natural Science Foundation of China
   [42171466, 41801306]; "CUG Scholar" Scientific Research Funds at China
   University of Geosciences (Wuhan) [2022034]; Alibaba Innovation Research
   Program [20228670]; State Key Laboratory of Resources and Environmental
   Information System
FX This work was supported by the National Key Research and Development
   Program of China [2019YFB2102903] ; The Vice Chancellor for Research and
   Innovation Fund from the University of Arkansas; the National Natural
   Science Foundation of China [42171466, 41801306] ; the "CUG Scholar"
   Scientific Research Funds at China University of Geosciences (Wuhan)
   [2022034] ; the Alibaba Innovation Research Program [20228670] ; the
   State Key Laboratory of Resources and Environmental Information System.
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NR 42
TC 19
Z9 19
U1 13
U2 78
PU ELSEVIER SCI LTD
PI London
PA 125 London Wall, London, ENGLAND
SN 0264-2751
EI 1873-6084
J9 CITIES
JI Cities
PD JUL
PY 2023
VL 138
AR 104361
DI 10.1016/j.cities.2023.104361
EA MAY 2023
PG 10
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA J0HB2
UT WOS:001006489800001
PM 37162758
OA Green Published
DA 2025-04-22
ER

PT J
AU Fisher-Jeffes, L
   Carden, K
   Armitage, NP
   Winter, K
AF Fisher-Jeffes, Lloyd
   Carden, Kirsty
   Armitage, Neil P.
   Winter, Kevin
TI Stormwater harvesting: Improving water security in South Africa's urban
   areas
SO SOUTH AFRICAN JOURNAL OF SCIENCE
LA English
DT Article
DE water scarcity; alternative water resources; flood management; climate
   change resilience; sustainable drainage
AB The drought experienced in South Africa in 2016 -one of the worst in decades -has left many urbanised parts of the country with limited access to water, and food production has been affected. If a future water crisis is to be averted, the country needs to conserve current water supplies, reduce its reliance on conventional surface water schemes, and seek alternative sources of water supply. Within urban areas, municipalities must find ways to adapt to, and mitigate the threats from, water insecurity resulting from, inter alia, droughts, climate change and increasing water demand driven by population growth and rising standards of living. Stormwater harvesting (SWH) is one possible alternative water resource that could supplement traditional urban water supplies, as well as simultaneously offer a range of social and environmental benefits. We set out three position statements relating to how SWH can: improve water security and increase resilience to climate change in urban areas; prevent frequent flooding; and provide additional benefits to society. We also identify priority research areas for the future in order to target and support the appropriate uptake of SWH in South Africa, including testing the viability of SWH through the use of real-time control and managed aquifer recharge.
   Significance:
   Addresses water scarcity through building resilience to the impacts of climate change; improving the liveability of cities; and prioritising water-sensitive urban design.
C1 [Fisher-Jeffes, Lloyd; Carden, Kirsty; Armitage, Neil P.] Univ Cape Town, Dept Civil Engn, Cape Town, South Africa.
   [Winter, Kevin] Univ Cape Town, Dept Environm & Geog Sci, Cape Town, South Africa.
C3 University of Cape Town; University of Cape Town
RP Carden, K (corresponding author), Univ Cape Town, Dept Civil Engn, Cape Town, South Africa.
EM Kirsty.carden@uct.ac.za
RI Armitage, Neil/H-2180-2014; Carden, Kirsty/ABC-2415-2021; Carden,
   Kirsty/G-2678-2015
OI Armitage, Neil/0000-0003-3704-3648; Winter, Kevin/0000-0001-6859-9732;
   Carden, Kirsty/0000-0003-2760-2418
FU South African Water Research Commission [K5/2412]
FX We acknowledge the South African Water Research Commission for funding
   this study as part of project no. K5/2412: A feasibility study to
   evaluate the potential of using water-sensitive design principles to
   strengthen planning for water sensitive cities of the future.
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NR 17
TC 21
Z9 22
U1 2
U2 62
PU ACAD SCIENCE SOUTH AFRICA A S S AF
PI LYNWOOD RIDGE
PA PO BOX 72135, LYNWOOD RIDGE 0040, SOUTH AFRICA
SN 0038-2353
EI 1996-7489
J9 S AFR J SCI
JI S. Afr. J. Sci.
PD JAN-FEB
PY 2017
VL 113
IS 1-2
BP 72
EP 75
DI 10.17159/sajs.2017/20160153
PG 4
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA EO2KN
UT WOS:000396525500012
OA gold, Green Submitted
DA 2025-04-22
ER

PT J
AU Lovell, ST
   Taylor, JR
AF Lovell, Sarah Taylor
   Taylor, John R.
TI Supplying urban ecosystem services through multifunctional green
   infrastructure in the United States
SO LANDSCAPE ECOLOGY
LA English
DT Review
DE Social-ecological systems; Resilience; Transformation;
   Multifunctionality; Green infrastructure
ID LANDSCAPE ECOLOGY; PUBLIC-PARTICIPATION; DESIGN; VISUALIZATION;
   BIODIVERSITY; RESILIENCE; MANAGEMENT; GARDENS; PRINCIPLES; SCIENCE
AB This paper summarizes a strategy for supplying ecosystem services in urban areas through a participatory planning process targeting multifunctional green infrastructure. We draw from the literature on landscape multifunctionality, which has primarily been applied to agricultural settings, and propose opportunities to develop urban green infrastructure that could contribute to the sustainable social and ecological health of the city. Thinking in terms of system resilience, strategies might focus on the potential for green infrastructure to allow for adaptation and even transformation in the face of future challenges such as climate change, food insecurity, and limited resources. Because planning for multiple functions can be difficult when many diverse stakeholders are involved, we explored decision support tools that could be applied to green infrastructure planning in the early stages, to engage the public and encourage action toward implementing a preferred solution. Several specific ecosystem services that could be relevant for evaluating current and future urban green spaces include: plant biodiversity, food production, microclimate control, soil infiltration, carbon sequestration, visual quality, recreation, and social capital. Integrating such ecosystem services into small-scale greening projects could allow for creativity and local empowerment that would inspire broader transformation of green infrastructure at the city level. Those cities committing to such an approach by supporting greening projects are likely to benefit in the long run through the value of ecosystem services for urban residents and the broader public.
C1 [Lovell, Sarah Taylor] Univ Illinois, Dept Crop Sci, Plant Sci Lab 1009, Urbana, IL 61801 USA.
   [Taylor, John R.] Univ Illinois, Dept Crop Sci, Urbana, IL 61801 USA.
C3 University of Illinois System; University of Illinois Urbana-Champaign;
   University of Illinois System; University of Illinois Urbana-Champaign
RP Lovell, ST (corresponding author), Univ Illinois, Dept Crop Sci, Plant Sci Lab 1009, 1201 S Dorner Dr, Urbana, IL 61801 USA.
EM stlovell@illinois.edu
RI Lovell, Sarah/H-4478-2013
OI Lovell, Sarah/0000-0001-8857-409X
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NR 106
TC 448
Z9 549
U1 24
U2 1311
PU SPRINGER
PI DORDRECHT
PA VAN GODEWIJCKSTRAAT 30, 3311 GZ DORDRECHT, NETHERLANDS
SN 0921-2973
EI 1572-9761
J9 LANDSCAPE ECOL
JI Landsc. Ecol.
PD OCT
PY 2013
VL 28
IS 8
BP 1447
EP 1463
DI 10.1007/s10980-013-9912-y
PG 17
WC Ecology; Geography, Physical; Geosciences, Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Physical Geography; Geology
GA 226ZI
UT WOS:000325076100003
DA 2025-04-22
ER

PT J
AU Hugo, J
   du Plessis, C
AF Hugo, Jan
   du Plessis, Chrisna
TI A quantitative analysis of interstitial spaces to improve climate change
   resilience in Southern African cities
SO CLIMATE AND DEVELOPMENT
LA English
DT Article
DE Climate change; adaptation; mitigation; urban voids; urban morphology
ID URBAN HEAT-ISLAND; TRANSFORMATION; ADAPTATION
AB Globally urbanization is accelerating, especially within developing countries. This often results in vulnerable urban conditions with limited adaptive capacity to respond to climate change-induced hazards. In response, employing innovative solutions that lever existing unused and underutilized interstitial spaces within the urban fabric for climate change adaptation and mitigation purposes are needed. Essential to this strategy is a better understanding of the quantity and type of potentially available interstitial space. Using a mixed-method approach, this paper analysed the spatial and material condition of unused and underutilized interstitial spaces within a Southern African city. This study organizes these interstitial spaces according to programme, zoning, access, spatial definition, microclimatic characteristics and material use. It undertakes a quantitative assessment identifying seven specific interstitial space types, found in the total study area. Underutilized parking spaces and rooftop spaces are identified as the most prevalent space types with significant climate change adaptation and mitigation potential if appropriately retrofitted. Retrofitting these spaces are relatively effortless, and can ultimately improve the climate change resilience of these cities.
C1 [Hugo, Jan; du Plessis, Chrisna] Univ Pretoria, Dept Architecture, Private Bag X20, ZA-0028 Pretoria, South Africa.
C3 University of Pretoria
RP Hugo, J (corresponding author), Univ Pretoria, Dept Architecture, Private Bag X20, ZA-0028 Pretoria, South Africa.
EM jan.hugo@up.ac.za
RI Du Plessis, Chrisna/AGD-8658-2022; Hugo, Jan/F-2557-2018; Du Plessis,
   Chrisna/G-4896-2013
OI Hugo, Jan/0000-0003-4840-2642; Du Plessis, Chrisna/0000-0002-9889-6735
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NR 53
TC 9
Z9 9
U1 5
U2 24
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 2020
VL 12
IS 7
BP 591
EP 599
DI 10.1080/17565529.2019.1664379
EA SEP 2019
PG 9
WC Development Studies; Environmental Studies
WE Social Science Citation Index (SSCI)
SC Development Studies; Environmental Sciences & Ecology
GA NT6PU
UT WOS:000486747700001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Keramitsoglou, I
   Sismanidis, P
   Analitis, A
   Butler, T
   Founda, D
   Giannakopoulos, C
   Giannatou, E
   Karali, A
   Katsouyanni, K
   Kendrovski, V
   Lemesios, G
   Myrivili, E
   Ordoñez, D
   Varotsos, KV
   Vlastou, G
   Kiranoudis, CT
AF Keramitsoglou, Iphigenia
   Sismanidis, Panagiotis
   Analitis, Antonis
   Butler, Tayrne
   Founda, Dimitra
   Giannakopoulos, Christos
   Giannatou, Eleni
   Karali, Anna
   Katsouyanni, Klea
   Kendrovski, Vladimir
   Lemesios, Giannis
   Myrivili, Eleni
   Ordonez, Dolores
   Varotsos, Konstantinos V.
   Vlastou, Georgia
   Kiranoudis, Chris T.
TI Urban thermal risk reduction: Developing and implementing spatially
   explicit services for resilient cities
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Actionable knowledge; Urban areas; Urban heat island; Heatwaves;
   Disaster risk reduction; Science-policy gap; Resilient cities; Services
ID HEAT WAVES; HUMAN HEALTH; LAND-USE; MORTALITY; VULNERABILITY;
   TEMPERATURE; CLIMATE; IMPACT; SCIENCE; DEATHS
AB Elevated urban temperatures and heatwaves are a serious threat to the health and wellbeing of the continuously growing urban population and are projected to worsen under climate change. For this reason well-informed disaster risk reduction (DRR) actions, where science and technology play a key role, are required. However insufficient communication between scientific and policy-making communities (known as the science-policy gap) hampers the use of science in DRR. Hence there is a strong need to interpret existing scientific knowledge into actionable knowledge, i.e. science that is useful, usable and used. This article presents a series of services and tools that build-upon existing scientific knowledge and aim to provide actionable knowledge to authorities and citizens for reducing the risks of elevated urban temperatures. The above were implemented in the context of the European Commission's Thermal Risk rEduction Actions and tools for secURE cities (TREASURE) project, and address many of the goals and priorities for action set in the Sendai framework for disaster risk reduction (SFDRR) of the United Nations. A key policy-making user of the implemented services and tools is the City of Athens in Greece, which is one of the largest metropolitan areas in Europe.
C1 [Keramitsoglou, Iphigenia; Sismanidis, Panagiotis; Kiranoudis, Chris T.] Natl Observ Athens, Inst Astron Astrophys Space Applicat & Remote Sen, Athens, Greece.
   [Sismanidis, Panagiotis; Kiranoudis, Chris T.] Natl Tech Univ Athens, Sch Chem Engn, Athens, Greece.
   [Analitis, Antonis; Giannatou, Eleni; Katsouyanni, Klea] Natl & Kapodistrian Univ Athens, Med Sch, Dept Hyg Epidemiol & Med Stat, Athens, Greece.
   [Butler, Tayrne; Ordonez, Dolores] AnySolution SL, Palma De Mallorca, Spain.
   [Founda, Dimitra; Giannakopoulos, Christos; Karali, Anna; Lemesios, Giannis; Varotsos, Konstantinos V.] Natl Observ Athens, Inst Environm Res & Sustainable Dev, Athens, Greece.
   [Katsouyanni, Klea] Kings Coll London, Dept Primary Care & Publ Hlth Sci, London, England.
   [Katsouyanni, Klea] Kings Coll London, Environm Res Grp, London, England.
   [Kendrovski, Vladimir] WHO, European Ctr Environm & Hlth, Bonn, Germany.
   [Myrivili, Eleni] Univ Aegean, Dept Cultural Technol & Commun, Mitilini, Greece.
   [Vlastou, Georgia] Natl & Kapodistrian Univ Athens, Sch Sci, Dept Phys, Athens, Greece.
C3 National Observatory of Athens; National Technical University of Athens;
   National & Kapodistrian University of Athens; National Observatory of
   Athens; University of London; King's College London; University of
   London; King's College London; World Health Organization; University of
   Aegean; National & Kapodistrian University of Athens
RP Sismanidis, P (corresponding author), Natl Observ Athens, Inst Astron Astrophys Space Applicat & Remote Sen, Penteli 15236, Greece.
EM panosis@noa.gr
RI Kiranoudis, Chris/K-4363-2013; Katsouyanni, Klea/D-4856-2014;
   Giannakopoulos, Christos/H-6827-2014; /CAC-0198-2022; Keramitsoglou,
   Iphigenia/F-3076-2011; Sismanidis, Panagiotis/H-7441-2014; Varotsos,
   Konstantinos V./ABE-9802-2021
OI Ordonez-Martinez, Dolores/0009-0001-1158-3956; Giannakopoulos,
   Christos/0000-0003-1822-7716; Karali, Anna/0000-0001-7245-8414;
   LEMESIOS, GIANNIS/0000-0001-6050-7004; Sismanidis,
   Panagiotis/0000-0003-2185-1034; Varotsos, Konstantinos
   V./0000-0002-9483-908X
FU project TREASURE [ECHO/SUB/2014/695561]
FX The services presented in this manuscript were designed and developed
   with the support of the Directorate-General for European Civil
   Protection and Humanitarian Aid Operations (DG-ECHO) of the European
   Commission in the framework of the project TREASURE, under Grant
   Agreement ECHO/SUB/2014/695561 (TREASURE-Thermal Risk Reduction Actions
   and Tools for Secure Cities). EUMETSAT is the source of the original
   Meteosat Images used for the Nowcasting Services. The MSG-SEVIRI data
   were acquired by the EUMETCast station operated by the Institute for
   Astronomy, Astrophysics, Space Application and Remote Sensing of the
   National Observatory of Athens. Regional climate model data were
   provided by the EU FP6 ENSEMBLES project (www.ensembles-eu.org). The
   historic climatic data for Athens were provided by the National
   Observatory of Athens, while for Palma by the General Directorate of
   Emergencies of the Regional Ministry of Internal Affairs. Mortality data
   for Athens were provided by the Hellenic Statistical Authority (ELSTAT;
   http://www.statistics.gr/en/home/) and for Palma by the Institute of
   Statistics of the Balearic Islands (IBESTAT). The authors wish to
   acknowledge the work of Mrs. Ioanna Sgourdopoulou-Karra and Mr.
   Apostolos Paralikas, DG-ECHO TREASURE Project monitoring Officers (Desk
   officers), for their continuous support and substantial feedback during
   the course of the project.
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NR 81
TC 32
Z9 34
U1 4
U2 56
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT
PY 2017
VL 34
BP 56
EP 68
DI 10.1016/j.scs.2017.06.006
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 FN3JX
UT WOS:000415896000006
DA 2025-04-22
ER

PT J
AU Frazier, SL
   Dinizulu, SM
   Rusch, D
   Boustani, MM
   Mehta, TG
   Reitz, K
AF Frazier, Stacy L.
   Dinizulu, Sonya Mathies
   Rusch, Dana
   Boustani, Maya M.
   Mehta, Tara G.
   Reitz, Kristin
TI Building Resilience After School for Early Adolescents in Urban Poverty:
   Open Trial of Leaders @ Play
SO ADMINISTRATION AND POLICY IN MENTAL HEALTH AND MENTAL HEALTH SERVICES
   RESEARCH
LA English
DT Article
DE Urban poverty; Early adolescence; After school; Risk and resilience
ID GOOD BEHAVIOR GAME; COMMUNITY VIOLENCE; CLINICAL SUPERVISION; YOUNG
   ADULTHOOD; EXPOSURE; HEALTH; CHILD; FAMILIES; PREDICTORS; OUTCOMES
AB Leaders @ Play is a park after-school program for urban middle school youth designed to leverage recreational activities for social emotional learning. Mental health and park staff co-facilitated sports and games to teach and practice problem solving, emotion regulation, and effective communication. Additional practice occurred during multi-family groups and summer internships as junior camp counselors. We examined feasibility and promise via an open trial (n = 3 parks, 46 youth, 100 % African American, 100 % low-income, 59 % female, M = 13.09 years old). Improvements in social skills and reductions in problem behaviors lend support to after school programs as a space for mental health promotion.
C1 [Frazier, Stacy L.; Boustani, Maya M.] Florida Int Univ, Dept Psychol, Ctr Children & Families, Clin Sci Program Child & Adolescent Psychol, Miami, FL 33199 USA.
   [Dinizulu, Sonya Mathies; Rusch, Dana; Mehta, Tara G.; Reitz, Kristin] Univ Illinois, Dept Psychiat, Inst Juvenile Res, Chicago, IL 60612 USA.
C3 State University System of Florida; Florida International University;
   University of Illinois System; University of Illinois Chicago;
   University of Illinois Chicago Hospital
RP Frazier, SL (corresponding author), Florida Int Univ, Dept Psychol, Ctr Children & Families, Clin Sci Program Child & Adolescent Psychol, 11200 SW 8th St, Miami, FL 33199 USA.
EM slfrazi@fiu.edu
RI Boustani, Maya/AAC-6081-2020; Rusch, Dana/JQV-4568-2023
OI Boustani, Maya/0000-0002-7739-7857; Frazier, Stacy/0000-0003-0335-5678
FU NIMH Developing Center [P20 MH078458]
FX Primary funding for this work was provided by a private family trust
   that wishes to remain anonymous). Additional support was provided by
   NIMH Developing Center grant P20 MH078458 (PI: M. Atkins). The authors
   gratefully acknowledge Aleta Meyers for her early consultation on the
   use of Responding In Positive and Peaceful Ways, and Marc Atkins,
   Eduardo Bustamante, Don Hellison, Emma Sterret, and Mamie Tisue for
   their dedication and contribution to this work. The authors also extend
   their heartfelt appreciation to park district leaders, after school
   program staff, and participating youth and families for their candid
   feedback and enthusiastic participation in this work.
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NR 66
TC 31
Z9 43
U1 4
U2 85
PU SPRINGER
PI NEW YORK
PA 233 SPRING ST, NEW YORK, NY 10013 USA
SN 0894-587X
EI 1573-3289
J9 ADM POLICY MENT HLTH
JI Adm. Policy. Ment. Health
PD NOV
PY 2015
VL 42
IS 6
BP 723
EP 736
DI 10.1007/s10488-014-0608-7
PG 14
WC Health Policy & Services; Public, Environmental & Occupational Health
WE Social Science Citation Index (SSCI)
SC Health Care Sciences & Services; Public, Environmental & Occupational
   Health
GA CT2YS
UT WOS:000362673400008
PM 25425012
OA Green Accepted
DA 2025-04-22
ER

PT J
AU Lyons, A
   Hosking, W
   Rozbroj, T
AF Lyons, Anthony
   Hosking, Warwick
   Rozbroj, Tomas
TI Rural-Urban Differences in Mental Health, Resilience, Stigma, and Social
   Support Among Young Australian Gay Men
SO JOURNAL OF RURAL HEALTH
LA English
DT Article
DE health disparities; men who have sex with men; mental health; rural;
   social determinants of health
ID PSYCHOLOGICAL DISTRESS; ADOLESCENTS; MINORITY; SUICIDE; ABILITY; STRESS;
   SAMPLE
AB PurposeDepression and anxiety are common among young gay men, particularly in comparison with their heterosexual counterparts. Little is known about the mental health and well-being of those living in rural areas, where access to support and opportunities for connecting with other gay men may be relatively limited. We examined differences in the well-being of young rural and urban Australian gay men, including mental health, resilience, stigma-related challenges, and social support.
   MethodsA national online survey was conducted involving 1,034 Australian gay-identified men aged 18-39 years.
   FindingsAll analyses adjusted for sociodemographic differences between the rural and urban samples. On average, rural men had significantly lower self-esteem, lower life satisfaction, lower social support, and were significantly more likely to be psychologically distressed, concerned about acceptance from others, and to conceal their sexual orientation compared to urban gay men. While resilience among the rural group was lower, this was no longer significant following sociodemographic adjustment. An examination of psychosocial predictors of psychological distress in the rural sample revealed that lower education and lower tangible support independently predicted greater distress.
   ConclusionsYoung rural Australian gay men appear to be at a considerable disadvantage with regard to mental health and well-being compared with their urban counterparts, and they may need particular attention in mental health prevention and treatment programs.
C1 [Lyons, Anthony; Hosking, Warwick; Rozbroj, Tomas] La Trobe Univ, Australian Res Ctr Sex Hlth & Soc, Melbourne, Vic 3000, Australia.
   [Hosking, Warwick] Victoria Univ, Coll Arts, Discipline Psychol, Melbourne, Vic 8001, Australia.
C3 La Trobe University; Victoria University
RP Lyons, A (corresponding author), La Trobe Univ, Australian Res Ctr Sex Hlth & Soc, 215 Franklin St, Melbourne, Vic 3000, Australia.
EM a.lyons@latrobe.edu.au
RI Lyons, Anthony/C-2029-2013
OI Lyons, Anthony/0000-0001-9569-6909
FU Australian Government Department of Health and Ageing
FX This research was supported by funding from the Australian Government
   Department of Health and Ageing.
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NR 33
TC 66
Z9 89
U1 0
U2 211
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0890-765X
EI 1748-0361
J9 J RURAL HEALTH
JI J. Rural Health
PD WIN
PY 2015
VL 31
IS 1
BP 89
EP 97
DI 10.1111/jrh.12089
PG 9
WC Health Care Sciences & Services; Health Policy & Services; Public,
   Environmental & Occupational Health
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Health Care Sciences & Services; Public, Environmental & Occupational
   Health
GA AX4RA
UT WOS:000346917900011
PM 25183054
DA 2025-04-22
ER

PT J
AU Nicoson, C
AF Nicoson, Christie
TI Towards climate resilient peace: an intersectional and degrowth approach
SO SUSTAINABILITY SCIENCE
LA English
DT Article
DE Climate change; Degrowth; Intersectionality; Positive peace; Resilience
ID CONFLICT; PERSPECTIVES; INCOME; DETROIT; CITY; TOWN
AB How can peace be climate resilient? How can peace and environmental sustainability be advanced simultaneously? To address these questions, I develop a new conceptual and theoretical framework for climate resilient peace through degrowth. This paper calls for stronger consideration of positive conceptualizations of peace and of intersectionality and degrowth in pursuit of peace and resilience. Not only does climate change make planetary limitations more salient, but it also highlights rising inequalities. In light of this, peace necessitates transforming societal power structures that are both driving climate change and influencing people's experiences of climate impacts. Addressing imbalanced power structures then is key to understanding and fostering climate resilient peace. This paper conceptualizes climate resilient peace based on an intersectional understanding of positive peace, highlighting that peace depends on the negation of structural violence experienced at the intersection of political and social identities. In relation to this, I argue that a process of climate resilient peace must address underlying power structures influencing people's experience of climate harms, and driving climate change so as to mitigate further damage. This paper demonstrates such a process through degrowth, wherein growth is no longer the central economic goal, exemplifying social and ecological means for disrupting structural violence within climate limitations. I discuss and give examples of three key degrowth processes-redistribution, reprioritized care economies, and global equity-as opportunities to foster peace in a changing climate. This framework, thus, contributes a new approach to climate resilient peace that addresses challenges of both social and environmental sustainability.
C1 [Nicoson, Christie] Lund Univ, Statsvetenskapliga Inst, Dept Polit Sci, Box 52, S-22100 Lund, Sweden.
   [Nicoson, Christie] Lund Univ, Statsvetenskapliga Inst, Agenda Grad Sch 2030, Box 52, S-22100 Lund, Sweden.
C3 Lund University; Lund University
RP Nicoson, C (corresponding author), Lund Univ, Statsvetenskapliga Inst, Dept Polit Sci, Box 52, S-22100 Lund, Sweden.; Nicoson, C (corresponding author), Lund Univ, Statsvetenskapliga Inst, Agenda Grad Sch 2030, Box 52, S-22100 Lund, Sweden.
EM christie.nicoson@svet.lu.se
RI Nicoson, Christie/KIK-9245-2024
OI Nicoson, Christie/0000-0003-4962-5469
FU Lund University
FX Open Access funding provided by Lund University.
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NR 86
TC 16
Z9 16
U1 5
U2 20
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 2021
VL 16
IS 4
SI SI
BP 1147
EP 1158
DI 10.1007/s11625-021-00906-1
EA JAN 2021
PG 12
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA SU7ZV
UT WOS:000610860600001
OA hybrid
DA 2025-04-22
ER

PT J
AU Mell, IC
AF Mell, Ian C.
TI Greening Ahmedabadcreating a resilient Indian city using a green
   infrastructure approach to investment
SO LANDSCAPE RESEARCH
LA English
DT Article
DE Urban greening; Indian cities; planning praxis; green infrastructure
ID URBAN-DEVELOPMENT; CITIES; PLAN; INFORMALITY; LANDSCAPE; CONFLICT
AB Ahmedabad is the commercial centre of the Indian state of Gujarat. With a population of 5.1 million, it is subject to a range of socio-economic and ecological pressures which influence how the city's landscape is planned. In 2013, the Ahmedabad Urban Development Authority (AUDA) released a second draft of the 3rd Development Plan for the city. This document outlined how the city plans to strategically deliver built infrastructure, as well as, enhance its landscape through green infrastructure (GI). Utilising ecological networks the plan explores the value of integrating landscape projects to facilitate a spatially functional landscape resource base. This paper evaluates the transition from the rhetoric of the Development Plan to delivery. Drawing on commentary from local stakeholders, it reflects on the form that GI is taking, and asks whether projects such as the Sabarmati Riverfront are meeting both the strategic, and more localised socio-environmental needs of the city.
C1 [Mell, Ian C.] Univ Liverpool, Dept Geog & Planning, Liverpool, Merseyside, England.
   [Mell, Ian C.] Univ Manchester, Sch Environm Educ & Dev, Liverpool, Merseyside, England.
C3 University of Liverpool; University of Manchester
RP Mell, IC (corresponding author), Univ Liverpool, Dept Geog & Planning, Liverpool, Merseyside, England.; Mell, IC (corresponding author), Univ Manchester, Sch Environm Educ & Dev, Liverpool, Merseyside, England.
EM I.C.Mell@liverpool.ac.uk
OI Mell, Ian/0000-0002-0544-0836
FU Urban Knowledge Network Asia (UKNA) [UKNA-2014]
FX Financial support for this paper was received from the Urban Knowledge
   Network Asia (UKNA) [grant number UKNA-2014].
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NR 63
TC 19
Z9 20
U1 3
U2 38
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0142-6397
EI 1469-9710
J9 LANDSCAPE RES
JI Landsc. Res.
PY 2018
VL 43
IS 3
BP 289
EP 314
DI 10.1080/01426397.2017.1314452
PG 26
WC Environmental Studies; Geography
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography
GA FX1BO
UT WOS:000425782400002
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Chen, H
   Chen, CP
   Li, YH
   Qin, LJ
   Qin, MS
AF Chen, Hong
   Chen, Chien-ping
   Li, Yuheng
   Qin, Lijian
   Qin, MingShuai
TI How Internet usage contributes to livelihood resilience of migrant
   peasant workers? Evidence from China
SO JOURNAL OF RURAL STUDIES
LA English
DT Article
DE Internet usage; Migrant peasant workers; Livelihood resilience;
   Urbanisation; China
ID HOUSEHOLDS; DIVERSIFICATION; ADOPTION; POVERTY; HEALTH; IMPACT; URBAN
AB Access to employment through the Internet matters a great deal to stabilise the livelihood of migrant peasant workers in Chinese cities. This study examines how Internet usage affects the off-farm income of migrant peasant workers by constructing a random effects model for the period 2010-2016. Research findings corroborate that Internet usage has significantly increased the off-farm income of migrant peasant workers and the positive impact of Internet usage on income is stronger for migrant peasant workers than for their urban flexible -employed counterparts. The positive impacts of Internet usage on migrant peasant workers' income vary regarding region, gender, and educational level. It is concluded that Internet usage has helped improve the livelihood resilience of migrant peasant workers in China.
C1 [Chen, Hong] Anhui Univ Finance & Econ, Sch Languages & Media, 962 Caoshan Rd, Bengbu 233000, Anhui, Peoples R China.
   [Chen, Chien-ping] Univ Houston Victoria, Coll Business, Katy, TX 77449 USA.
   [Li, Yuheng] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, 11 Jia Datun Rd, Beijing 100101, Peoples R China.
   [Qin, Lijian] Anhui Univ Finance & Econ, Finance & Publ Adm Sch, Bengbu 233000, Peoples R China.
   [Qin, MingShuai] Tech Univ Ostrava, Fac Econ, Studentska 1770 1 Poruba, Ostrava 70800, Czech Republic.
C3 Anhui University of Finance & Economics; University of Houston System;
   University of Houston; University of Houston Victoria; Chinese Academy
   of Sciences; Institute of Geographic Sciences & Natural Resources
   Research, CAS; Anhui University of Finance & Economics; Technical
   University of Ostrava
RP Li, YH (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, 11 Jia Datun Rd, Beijing 100101, Peoples R China.; Qin, LJ (corresponding author), Anhui Univ Finance & Econ, Finance & Publ Adm Sch, Bengbu 233000, Peoples R China.
EM chenhong.china@163.com; Chenc@uhv.edu; liyuheng@igsnrr.ac.cn;
   qinlj28@163.com; qinmingshuai66@163.com
RI li, yuheng/LPQ-3255-2024; 秦, 明帅/GYD-5106-2022; /IAN-0305-2023
OI /0000-0003-3943-4132
FU National Nat-ural Science Foundation of China; Ministry of Education of
   China; major project of Social Science Founda-tion of Anhui Province of
   China; Social Science Foundation of Anhui Province of China; 
   [42171208];  [18YJA790065];  [AHSKZD2019D04];  [AHSKY2020D44]
FX Acknowledgement The authors would like to thank to the support of the
   National Nat-ural Science Foundation of China (42171208) , the Ministry
   of Education of China (18YJA790065) , the major project of Social
   Science Founda-tion of Anhui Province of China (AHSKZD2019D04) , and the
   Social Science Foundation of Anhui Province of China (AHSKY2020D44) .
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NR 60
TC 27
Z9 27
U1 37
U2 166
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 DEC
PY 2022
VL 96
BP 112
EP 120
DI 10.1016/j.jrurstud.2022.09.028
EA NOV 2022
PG 9
WC Geography; Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Geography; Public Administration
GA 6D0RZ
UT WOS:000882410500001
DA 2025-04-22
ER

PT J
AU Zeng, GW
   Gao, JX
   Shekhtman, L
   Guo, SM
   Lv, WF
   Wu, JJ
   Liu, H
   Levy, O
   Li, DQ
   Gao, ZY
   Stanley, HE
   Havlin, S
AF Zeng, Guanwen
   Gao, Jianxi
   Shekhtman, Louis
   Guo, Shengmin
   Lv, Weifeng
   Wu, Jianjun
   Liu, Hao
   Levy, Orr
   Li, Daqing
   Gao, Ziyou
   Stanley, H. Eugene
   Havlin, Shlomo
TI Multiple metastable network states in urban traffic
SO PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF
   AMERICA
LA English
DT Article
DE resilience; urban traffic; percolation; multiple states; tipping point
ID CRITICAL SLOWING-DOWN; EARLY WARNING SIGNAL; COMPLEX-SYSTEMS; TIPPING
   POINT; PERCOLATION; ROBUSTNESS; RESILIENCE
AB While abrupt regime shifts between different metastable states have occurred in natural systems from many areas including ecology, biology, and climate, evidence for this phenomenon in transportation systems has been rarely observed so far. This limitation might be rooted in the fact that we lack methods to identify and analyze possible multiple states that could emerge at scales of the entire traffic network. Here, using percolation approaches, we observe such a metastable regime in traffic systems. In particular, we find multiple metastable network states, corresponding to varying levels of traffic performance, which recur over different days. Based on high-resolution global positioning system (GPS) datasets of urban traffic in the megacities of Beijing and Shanghai (each with over 50,000 road segments), we find evidence supporting the existence of tipping points sepa-rating three regimes: a global functional regime and a metastable hysteresis-like regime, followed by a global collapsed regime. We can determine the intrinsic critical points where the metastable hysteresis-like regime begins and ends and show that these critical points are very similar across different days. Our findings provide a better understanding of traffic resilience patterns and could be useful for designing early warning signals for traffic resilience management and, potentially, other complex systems.
C1 [Zeng, Guanwen; Li, Daqing] Beihang Univ, Sch Reliabil & Syst Engn, Beijing 100191, Peoples R China.
   [Zeng, Guanwen; Li, Daqing] Natl Key Lab Sci & Technol Reliabil & Environm En, Beijing 100191, Peoples R China.
   [Gao, Jianxi] Rensselaer Polytech Inst, Dept Comp Sci, Troy, NY 12180 USA.
   [Shekhtman, Louis] Northeastern Univ, Network Sci Inst, Boston, MA 02115 USA.
   [Guo, Shengmin; Lv, Weifeng] Beihang Univ, State Key Lab Software Dev Environm, Beijing 100191, Peoples R China.
   [Wu, Jianjun] Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.
   [Liu, Hao] Beijing Transportat Informat Ctr, Beijing 100161, Peoples R China.
   [Levy, Orr; Havlin, Shlomo] Bar Ilan Univ, Dept Phys, IL-52900 Ramat Gan, Israel.
   [Gao, Ziyou] Beijing Jiaotong Univ, Sch Traff & Transportat, Beijing 100044, Peoples R China.
   [Stanley, H. Eugene] Boston Univ, Ctr Polymer Studies, Boston, MA 02215 USA.
   [Stanley, H. Eugene] Boston Univ, Phys Dept, Boston, MA 02215 USA.
C3 Beihang University; Rensselaer Polytechnic Institute; Northeastern
   University; Beihang University; Beijing Jiaotong University; Bar Ilan
   University; Beijing Jiaotong University; Boston University; Boston
   University
RP Li, DQ (corresponding author), Beihang Univ, Sch Reliabil & Syst Engn, Beijing 100191, Peoples R China.; Li, DQ (corresponding author), Natl Key Lab Sci & Technol Reliabil & Environm En, Beijing 100191, Peoples R China.; Gao, ZY (corresponding author), Beijing Jiaotong Univ, Sch Traff & Transportat, Beijing 100044, Peoples R China.; Stanley, HE (corresponding author), Boston Univ, Ctr Polymer Studies, Boston, MA 02215 USA.; Stanley, HE (corresponding author), Boston Univ, Phys Dept, Boston, MA 02215 USA.
EM daqingl@buaa.edu.cn; zygao@bjtu.edu.cn; hes@bu.edu.y
RI Shekhtman, Louis/ABY-0572-2022; stanley, harry/ABJ-5063-2022; Havlin,
   Shlomo/ABF-1527-2020; Gao, Jianxi/I-1300-2013
OI Gao, Jianxi/0000-0002-3952-208X; Shekhtman, Louis/0000-0001-5273-8363
FU National Natural Science Foundation of China [U1811463, 71621001,
   71822101, 71890973/71890970, 61961146005, 71771009, 91846202]; Israel
   Ministry of Science and Technology (MOST); Italian Ministry of Foreign
   Affairs, MOST; Japan Science Foundation; Binational Israel-China Science
   Foundation [3132/19]; National Science Foundation; Office of Naval
   Research; Defense Threat Reduction Agency [HDTRA-1-19-1-0016];
   Binational Science Foundation-National Science Foundation; Bar-Ilan
   University Center for Cyber Security and Applied Cryptography; ONR
   [N00014-15-1-2640]; NSF [PHY-1505000, CMMI-1125290, CHE-1213217]; DTRA
   [HDTRA1-14-1-0017]
FX This work is supported by National Natural Science Foundation of China
   Grant 71621001. D.L. acknowledges support from National Natural Science
   Foundation of China Grants 71822101, 71890973/71890970, 61961146005, and
   71771009. J.W. acknowledges support from National Natural Science
   Foundation of China Grant 91846202. W.L. acknowledges support from the
   National Natural Science Foundation of China (No. U1811463). S.H. thanks
   the Israel Ministry of Science and Technology (MOST) with the Italian
   Ministry of Foreign Affairs, MOST with the Japan Science Foundation, the
   Binational Israel-China Science Foundation (No. 3132/19), the National
   Science Foundation, the Office of Naval Research, the Defense Threat
   Reduction Agency (Grant HDTRA-1-19-1-0016), the Binational Science
   Foundation-National Science Foundation, and the Bar-Ilan University
   Center for Cyber Security and Applied Cryptography for financial
   support. J.G. was partially supported by the ONR Contract
   N00014-15-1-2640. The Boston University Center for Polymer Studies is
   supported by NSF Grants PHY-1505000, CMMI-1125290, and CHE-1213217, and
   by DTRA Grant HDTRA1-14-1-0017. The authors thank Beijing PalmGo
   Infotech Co., Ltd., for data support.
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NR 33
TC 57
Z9 60
U1 12
U2 116
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 JUL 28
PY 2020
VL 117
IS 30
BP 17528
EP 17534
DI 10.1073/pnas.1907493117
PG 7
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics
GA MU7LV
UT WOS:000555851800016
PM 32661171
OA Green Published
DA 2025-04-22
ER

PT J
AU Hussain, T
   Wang, DK
   Li, BQ
AF Hussain, Talib
   Wang, Dake
   Li, Benqian
TI Stakeholder Perspectives on the Role of Social Media in Urban Green
   Space, Land Management, and Resilience in Gilgit-Baltistan
SO LAND
LA English
DT Article
DE social media; urban green spaces; land management; community engagement;
   sustainability; resilience
ID TOURISM; IMPACT
AB The primary focus of this study is to explore stakeholders' perspectives on how social media platforms like Facebook, WhatsApp, and Twitter influence land management practices and community engagement. Employing a qualitative methodology, this research delves into the complex interactions facilitated by social media, using thematic analysis to identify key themes related to communication, collaboration, empowerment, and awareness-raising among stakeholders such as local authorities, community members, environmental activists, and urban planners. The findings reveal that social media significantly enhances transparent communication channels, fosters collaboration among stakeholders, empowers local communities, and raises awareness about the importance of urban green spaces. However, challenges such as connectivity and literacy barriers persist, alongside opportunities for greater involvement and innovation. This study emphasizes the critical role of digital platforms in advancing sustainable land management practices, offering valuable insights for policymakers, urban planners, and community stakeholders. Future research should explore specific communication strategies, the impact of social influencers, and the integration of emerging technologies in urban planning. Ultimately, this research contributes to the understanding of how social media can support the development of environmentally friendly and resilient communities.
C1 [Hussain, Talib; Wang, Dake; Li, Benqian] Shanghai Jiao Tong Univ, Sch Media & Commun, Shanghai 200240, Peoples R China.
   [Hussain, Talib] Univ Relig & Denominat, Dept Media Management, Qom 37491 13357, Iran.
C3 Shanghai Jiao Tong University
RP Wang, DK (corresponding author), Shanghai Jiao Tong Univ, Sch Media & Commun, Shanghai 200240, Peoples R China.
EM talibhussian@sjtu.edu.cn; dakewang@sjtu.edu.cn; libenqian@sjtu.edu.cn
OI wang, da ke/0000-0001-6486-8827
FU Scientific innovation projects of Shanghai Education Committee
   [2021-01-07-00-02-E00126]
FX Scientific innovation projects of Shanghai Education Committee
   (2021-01-07-00-02-E00126).
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NR 42
TC 1
Z9 1
U1 12
U2 17
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 962
DI 10.3390/land13070962
PG 28
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA ZS2S4
UT WOS:001277222400001
OA gold
DA 2025-04-22
ER

PT J
AU Ma, YC
   Jiang, Y
   Swallow, S
AF Ma, Yongchi
   Jiang, Yong
   Swallow, Stephen
TI China's sponge city development for urban water resilience and
   sus-tainability: A policy discussion
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Urban flooding; Sponge city; China; Climate change; Low impact
   development; Stormwater management; Ecosystem service
ID ECOSYSTEM SERVICES; LAND-USE; CHALLENGES; MANAGEMENT; ECOLOGY
AB China recently introduced a national policy initiative called sponge city development as a holistic, ecosystem-based approach integrated with urban planning and development to address storm-induced pluvial flooding as well as other urban water and environmental issues. The initiative, while following the U.S. low impact development with a concept also similar to the U.K. sustainable drainage systems and Australian water sensitive cities, is subject to a major design issue in practice with infrastructure projects of similar types adopted unanimously across regions despite spatially diverse and heterogeneous hydrological and biophysical conditions. The ecosystem services framework as applied to the urban setting, particularly its holistic consideration of ecosystem structure and management intervention in relation to services or benefits delivery, can and should guide the planning, design, development, and evaluation of relevant projects or nature-based practices for carrying out the policy initiative, a perspective of practical value with foreseeable transformative impact that has received little recognition in China's current green urban movement toward water resilience and sustainability. (C) 2020 Elsevier B.V. All rights reserved.
C1 [Ma, Yongchi] 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.
   [Swallow, Stephen] Univ Connecticut, Dept Agr & Resource Econ, Storrs, CT 06269 USA.
C3 Shandong University; IHE Delft Institute for Water Education; University
   of Connecticut
RP Jiang, Y (corresponding author), IHE Delft Inst Water Educ, NL-2611 AX Delft, South Holland, Netherlands.
EM y.jiang@un-ihe.org
RI Ma, Yongchi/GRR-5230-2022; jiang, yong/M-4318-2013
OI jiang, yong/0000-0001-6192-8206
FU National Natural Science Foundation of China [71571028]; Economic and
   Social Development Research Funds of Liaoning Province
   [20201slktjdyb036]
FX This work was supported partially by the National Natural Science
   Foundation of China (No. 71571028) and the Economic and Social
   Development Research Funds of Liaoning Province (No. 20201slktjdyb036).
   All opinions are the responsibility of the authors alone.
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NR 50
TC 44
Z9 47
U1 16
U2 225
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 AUG 10
PY 2020
VL 729
AR 139078
DI 10.1016/j.scitotenv.2020.139078
PG 7
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA LU0DU
UT WOS:000537434800017
PM 32380332
DA 2025-04-22
ER

PT J
AU Zhang, LM
   Zeng, GW
   Li, DQ
   Huang, HJ
   Stanley, HE
   Havlin, S
AF Zhang, Limiao
   Zeng, Guanwen
   Li, Daqing
   Huang, Hai-Jun
   Stanley, H. Eugene
   Havlin, Shlomo
TI Scale-free resilience of real traffic jams
SO PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF
   AMERICA
LA English
DT Article
DE resilience; scaling laws; spatiotemporal; traffic congestion; complex
   systems
ID TRAVEL-TIME; VULNERABILITY; CRITICALITY; NETWORK; TRANSITION; SYSTEMS;
   DESIGN; FUTURE
AB The concept of resilience can be realized in natural and engineering systems, representing the ability of a system to adapt and recover from various disturbances. Although resilience is a critical property needed for understanding and managing the risks and collapses of transportation systems, an accepted and useful definition of resilience for urban traffic as well as its statistical property under perturbations are still missing. Here, we define city traffic resilience based on the spatiotemporal clusters of congestion in real traffic and find that the resilience follows a scale-free distribution in 2D city road networks and 1D highways with different exponents but similar exponents on different days and in different cities. The traffic resilience is also revealed to have a scaling relation between the cluster size of the spatiotemporal jam and its recovery duration independent of microscopic details. Our findings of universal traffic resilience can provide an indication toward better understanding and designing of these complex engineering systems under internal and external disturbances.
C1 [Zhang, Limiao; Zeng, Guanwen; Li, Daqing] Beihang Univ, Sch Reliabil & Syst Engn, Beijing 100191, Peoples R China.
   [Zhang, Limiao; Zeng, Guanwen; Li, Daqing] Natl Key Lab Sci & Technol Reliabil & Environm En, Beijing 100191, Peoples R China.
   [Huang, Hai-Jun] Beihang Univ, Sch Econ & Management, Beijing 100191, Peoples R China.
   [Stanley, H. Eugene] Boston Univ, Ctr Polymer Studies, Boston, MA 02215 USA.
   [Stanley, H. Eugene] Boston Univ, Phys Dept, Boston, MA 02215 USA.
   [Havlin, Shlomo] Bar Ilan Univ, Dept Phys, IL-52900 Ramat Gan, Israel.
C3 Beihang University; Beihang University; Boston University; Boston
   University; Bar Ilan University
RP Li, DQ (corresponding author), Beihang Univ, Sch Reliabil & Syst Engn, Beijing 100191, Peoples R China.; Li, DQ (corresponding author), Natl Key Lab Sci & Technol Reliabil & Environm En, Beijing 100191, Peoples R China.; Huang, HJ (corresponding author), Beihang Univ, Sch Econ & Management, Beijing 100191, Peoples R China.; Stanley, HE (corresponding author), Boston Univ, Ctr Polymer Studies, Boston, MA 02215 USA.; Stanley, HE (corresponding author), Boston Univ, Phys Dept, Boston, MA 02215 USA.
EM daqingl@buaa.edu.cn; haijunhuang@buaa.edu.cn; hes@bu.edu
RI Huang, Hai-Jun/AAP-2269-2020; stanley, harry/ABJ-5063-2022; Havlin,
   Shlomo/ABF-1527-2020
OI Stanley, H./0000-0003-2800-4495; Huang, Hai-Jun/0000-0002-9001-9172
FU National Natural Science Foundation of China [71822101, 71771009,
   71890971/71890970, 71890973/71890970]; Israel Ministry of Science and
   Technology; Italian Ministry of Foreign Affairs; Israel Ministry of
   Foreign Affairs; Japan Science Foundation; Israel Science Foundation;
   Office of Naval Research Global, Defense Threat Reduction Agency
   [HDTRA-1-10-1-0014]; Army Research Office; Binational Science
   Foundation; National Science Foundation; Bar-Ilan University Center for
   Cybersecurity and Applied Cryptography; National Science Foundation
   [PHY-1505000]; Defense Threat Reduction Agency [HDTRA1-14-1-0017]
FX H.-J.H. and D.L. acknowledge support from the National Natural Science
   Foundation of China (Grants 71890971/71890970 and 71890973/71890970).
   D.L. also acknowledges support from National Natural Science Foundation
   of China Grants 71822101 and 71771009. S.H. thanks the Israel Ministry
   of Science and Technology with the Italian Ministry of Foreign Affairs,
   the Israel Ministry of Foreign Affairs with the Japan Science
   Foundation, the Israel Science Foundation, the Office of Naval Research
   Global, Defense Threat Reduction Agency Grant HDTRA-1-10-1-0014, the
   Army Research Office, the Binational Science Foundation with the
   National Science Foundation, and the Bar-Ilan University Center for
   Cybersecurity and Applied Cryptography for financial support. The Boston
   University Center for Polymer Studies is supported by National Science
   Foundation Grant PHY-1505000 and by Defense Threat Reduction Agency
   Grant HDTRA1-14-1-0017.
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NR 58
TC 121
Z9 137
U1 17
U2 194
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 APR 30
PY 2019
VL 116
IS 18
BP 8673
EP 8678
DI 10.1073/pnas.1814982116
PG 6
WC Multidisciplinary Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Science & Technology - Other Topics
GA HW1MH
UT WOS:000466446500011
PM 30979803
OA Green Published, hybrid, Green Submitted
DA 2025-04-22
ER

PT J
AU Lo, AY
   Cheung, LTO
   Lee, AKY
   Xu, BX
AF Lo, Alex Y.
   Cheung, Lewis T. O.
   Lee, Anna Ka-yin
   Xu, Bixia
TI Confidence and Trust in Public Institution Natural Hazards Management:
   Case Studies in Urban and Rural China
SO PROFESSIONAL GEOGRAPHER
LA English
DT Article
DE China; hazards management; institutional trust; natural hazards; public
   confidence
ID POLITICAL TRUST; VULNERABILITY; ADAPTATION; RESILIENCE; GOVERNMENT
AB This research aims to investigate the extent to which urban and rural residents trust grassroots-level institutions and how this might affect community resilience to environmental change in China. It focuses on the commitments of institutional actors and their capacities to manage natural hazards and coordinate the community's response. Semistructured interviews were conducted with megacity (Tianjin) and remote village (Wolong) residents in China. We found that public confidence in grassroots-level institutions is limited due to inherent constraints on resources and power. Residents of Wolong tend to recognize the commitment and role of those institutions in connecting individuals with one another, whereas their urban counterparts in Tianjin remain skeptical. Issues of solidarity might account for this difference. These findings will have implications for state-society cooperation and disaster risk comanagement in both urban and rural China.
C1 [Lo, Alex Y.] Univ Hong Kong, Kadoorie Inst, TT Tsui Bldg, Hong Kong, Hong Kong, Peoples R China.
   [Cheung, Lewis T. O.] Hong Kong Inst Educ, Dept Social Sci, Hong Kong, Hong Kong, Peoples R China.
   [Lee, Anna Ka-yin] Centennial Coll Domain Social Sci, Hong Kong, Hong Kong, Peoples R China.
   [Xu, Bixia] Griffith Univ, Griffith Sch Environm, Nathan, Qld 4222, Australia.
C3 University of Hong Kong; Education University of Hong Kong (EdUHK);
   Griffith University
RP Lo, AY (corresponding author), Univ Hong Kong, Kadoorie Inst, TT Tsui Bldg, Hong Kong, Hong Kong, Peoples R China.
EM alexloyh@hku.hk; ltocheung@ied.edu.hk;
   anna.kya.lee@centennialcollege.hku.hk; bixia.xu@griffithuni.edu.au
RI Lo, Alex/B-7948-2008; Cheung, Lewis/I-2007-2013
OI Lo, Alex/0000-0002-5953-4176; Cheung, Lewis/0000-0002-1619-0473
FU "Trust Fund in Support of Reconstruction in the Sichuan Earthquake
   Stricken Areas"; Development Bureau of Hong Kong SAR; Griffith Climate
   Change Response Program of the Griffith University
FX This research was supported by funding from the "Trust Fund in Support
   of Reconstruction in the Sichuan Earthquake Stricken Areas" established
   by the Development Bureau of Hong Kong SAR and the Griffith Climate
   Change Response Program of the Griffith University.
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NR 32
TC 16
Z9 16
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 0033-0124
EI 1467-9272
J9 PROF GEOGR
JI Prof. Geogr.
PY 2016
VL 68
IS 3
BP 475
EP 484
PG 10
WC Geography
WE Social Science Citation Index (SSCI)
SC Geography
GA DW8BC
UT WOS:000383877300012
DA 2025-04-22
ER

PT J
AU Horne, J
AF Horne, James
TI Resilience in major Australian cities: assessing capacity and
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SO INTERNATIONAL JOURNAL OF WATER RESOURCES DEVELOPMENT
LA English
DT Article
DE Resilience; water policy; urban water; water information; climate
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ID CLIMATE-CHANGE; WATER; MANAGEMENT; IMPACTS; ISSUES; DEAD
AB The article examines the resilience of major Australian cities to extreme weather events. It reviews how and how well six of the largest Australian cities have responded to some recent water-related crises, covering droughts, floods and extreme storm events. It discusses examples of the preparedness for specific events, the immediate reaction to the event, the policy responses, and some of the more important challenges that remain.
C1 [Horne, James] Australian Natl Univ, Canberra, ACT, Australia.
C3 Australian National University
RP Horne, J (corresponding author), Australian Natl Univ, Canberra, ACT, Australia.
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NR 83
TC 7
Z9 7
U1 5
U2 27
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 632
EP 651
DI 10.1080/07900627.2016.1244049
PG 20
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA GI4IG
UT WOS:000434334100012
DA 2025-04-22
ER

PT J
AU Li, QM
   Xu, WP
AF Li, Qiumeng
   Xu, Weipan
TI The impact of COVID-19 on bike-sharing travel pattern and flow
   structure: evidence from Wuhan
SO CAMBRIDGE JOURNAL OF REGIONS ECONOMY AND SOCIETY
LA English
DT Article
DE the COVID-19 pandemic; shared bikes; flow structure; travel pattern;
   Wuhan; urban resilience
ID USAGE; BEHAVIOR
AB The COVID-19 pandemic has dramatically influenced urban mobility patterns. This paper explores the impact of the pandemic on the travel patterns and flow structure of bike-sharing, in Wuhan, China. We find that during the pandemic, bike-sharing became a major mode of transport and helped for the travel to hospitals. In post-pandemic Wuhan, more cycling neighbourhoods emerged in suburban areas, and the percentage of bike-sharing ridership in denser areas tends to decrease, especially in workplaces, indicating there is a decentralised trend of bike-sharing flow structure. These findings imply that bike-sharing plays a significant role in promoting urban resilience, and are helpful to build bike-friendly cities and communities in the post-pandemic era.
C1 [Li, Qiumeng] Univ Cambridge, Dept Land Econ, Charles Babbage Rd, Cambridge CB3 0FY, England.
   [Xu, Weipan] Sun Yat Sen Univ, Sch Geog & Planning, West Xingang Rd 135, Guangzhou 510275, Guangdong, Peoples R China.
C3 University of Cambridge; Sun Yat Sen University
RP Li, QM (corresponding author), Univ Cambridge, Dept Land Econ, Charles Babbage Rd, Cambridge CB3 0FY, England.
EM ql303@cam.ac.uk; xuweipan@mail2.sysu.edu.cn
FU China Scholarship Council (CSC) [202008060301]
FX This research is funded by a scholarship from the China Scholarship
   Council (CSC No. 202008060301). Many thanks to Meituan company for
   providing the data in this study. The authors would like to thank Dr
   Davide Luca, Professor Franz Fuerst and Professor Xun Li for their
   guidance.
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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
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PY 2022
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BP 477
EP 494
DI 10.1093/cjres/rsac005
EA APR 2022
PG 18
WC Development Studies; Economics; Geography
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics; Geography
GA 7K8AC
UT WOS:000789880400001
OA hybrid
DA 2025-04-22
ER

PT J
AU Cristiano, E
   Deidda, R
   Viola, F
AF Cristiano, Elena
   Deidda, Roberto
   Viola, Francesco
TI The role of green roofs in urban Water-Energy-Food-Ecosystem nexus: A
   review
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Review
DE Green roofs; WEFE Nexus; Urban nexus; Smart city; Resilient city
ID AIR-POLLUTION; HEAVY-METALS; PERFORMANCE; RUNOFF; IRRIGATION; SYSTEMS;
   IMPACT; BENEFITS; QUALITY; HEALTH
AB Green roofs are strategic tools that can play a significant role in the creation of sustainable and resilient cities. They have been largely investigated thanks to their high retention capacity, which can be a valid support to mitigate the pluvial flood risk and to increase the building thermal insulation, ensuring energy saving. Moreover, green roofs contribute to restoring vegetation in the urban environment, increasing the biodiversity and adding aesthetic value to the city. The new generation of multilayer green roofs present an additional layer with respect to traditional ones, which allows rainwater to be stored, which, if properly treated, can be reused for different purposes. This paper offers a review of benefits and limitations of green roofs, with a focus on multilayer ones, within a Water-Energy-Food-Ecosystem nexus context. This approach enables the potential impact of green roofs on the different sectors to be highlighted, investigating also the interactions and interconnections among the fields. Moreover, the Water-Energy-Food-Ecosystem nexus approach highlights how the installation of traditional and multilayer green roofs in urban areas contributes to the Development Goals defined by the 2030 Sustainable Agenda. (C) 2020 The Authors. Published by Elsevier B.V.
C1 [Cristiano, Elena; Deidda, Roberto; Viola, Francesco] Univ Cagliari, Dept Civil & Environm Engn & Architecture, Cagliari, CA, Italy.
C3 University of Cagliari
RP Cristiano, E (corresponding author), Univ Cagliari, Dept Civil & Environm Engn & Architecture, Cagliari, CA, Italy.
EM elena.cristiano@unica.it
RI Deidda, Roberto/J-2054-2017; Cristiano, Elena/AAJ-5635-2021; Viola,
   Francesco/E-9722-2013
FU Sardinian Region [CUP: F76C18000920002]; Fondazione di Sardegna [CUP:
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FX This work was partially supported by the Sardinian Region with law
   7/2007 (funding call 2017, project: "HYDROSARD: Un approccio
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   Sardegna (funding call 2017, project: Impacts of climate change on water
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NR 161
TC 80
Z9 84
U1 13
U2 180
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 FEB 20
PY 2021
VL 756
AR 143876
DI 10.1016/j.scitotenv.2020.143876
PG 12
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA PM0FY
UT WOS:000603487500073
PM 33310216
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Keenan, JM
AF Keenan, Jesse M.
TI Types and forms of resilience in local planning in the US: Who does
   what?
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE Resilience; Planning; Local governments; Hazard mitigation; Climate
   change
ID URBAN RESILIENCE; ADAPTATION; FRAMEWORK; CITIES; BARRIERS; IMPACTS;
   DESIGN
AB This paper presents and analyzes the results of a survey of actors (n = 130) engaged in planning activities in local governments in the United States (U.S.). This exploratory survey was designed to evaluate the nature of existing resilience, climate change and multi-hazard planning activities, if any, as well as additional considerations for understanding the general state of awareness and knowledge of resilience activities and strategies among various public sector actors. The survey data tests several hypotheses, including the hypothesized disproportionate activity of large cities; the positive correlation between resilience, hazard mitigation and emergency planning; and, the dominate usage of disaster and engineering conceptual variants of resilience. Data from the survey provides evidence in support of an affirmation of the hypotheses. The paper offers insight into the dominate actors and frames that are driving resilience planning, as well as the challenges faced by a lack of discipline for applying categorical variants of resilience.
C1 [Keenan, Jesse M.] Harvard Univ, Grad Sch Design, 407 Gund Hall,48 Quincy St, Cambridge, MA 02138 USA.
C3 Harvard University
RP Keenan, JM (corresponding author), Harvard Univ, Grad Sch Design, 407 Gund Hall,48 Quincy St, Cambridge, MA 02138 USA.
EM jkeenan@gsd.harvard.edu
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NR 45
TC 29
Z9 32
U1 2
U2 40
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 1462-9011
EI 1873-6416
J9 ENVIRON SCI POLICY
JI Environ. Sci. Policy
PD OCT
PY 2018
VL 88
SI SI
BP 116
EP 123
DI 10.1016/j.envsci.2018.06.015
PG 8
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA GQ4NA
UT WOS:000441648200014
DA 2025-04-22
ER

PT J
AU Buarque, ACS
   Bhattacharya-Mis, N
   Fava, MC
   de Souza, FAA
   Mendiondo, EM
AF Buarque, Ana Carolina Sarmento
   Bhattacharya-Mis, Namrata
   Fava, Maria Clara
   de Souza, Felipe Augusto Arguello
   Mendiondo, Eduardo Mario
TI Using historical source data to understand urban flood risk: a
   socio-hydrological modelling application at Gregorio Creek, Brazil
SO HYDROLOGICAL SCIENCES JOURNAL
LA English
DT Article
DE urban floods; socio-hydrology; flood risk; social memory of floods;
   historical data source
ID MEMORY; STRESS
AB The city of Sao Carlos, state of Sao Paulo, Brazil, has a historical coexistence between society and floods. Unplanned urbanization in this area is a representative feature of how Brazilian cities have developed, undermining the impact of natural hazards. The Gregorio Creek catchment is an enigma of complex dynamics concerning the relationship between humans and water in Brazilian cities. Our hypothesis is that social memory of floods can improve future resilience. In this paper we analyse flood risk dynamics in a small urban catchment, identify the impacts of social memory on building resilience and propose measures to reduce the risk of floods. We applied a socio-hydrological model using data collected from newspapers from 1940 to 2018. The model was able to elucidate human-water processes in the catchment and the historical source data proved to be a useful tool to fill gaps in the data in small urban basins.
C1 [Buarque, Ana Carolina Sarmento; Fava, Maria Clara; de Souza, Felipe Augusto Arguello; Mendiondo, Eduardo Mario] Univ Sao Paulo, Sao Carlos Sch Engn, Sao Carlos, Brazil.
   [Bhattacharya-Mis, Namrata] Univ Chester, Dept Geog & Int Dev, Chester, Cheshire, England.
C3 Universidade de Sao Paulo; University of Chester
RP Buarque, ACS (corresponding author), Univ Sao Paulo, Dept Hydraul Engn & Sanitat, Ave Trabalhador Saocarlense 400,CP 359, BR-13566590 Sao Carlos, SP, Brazil.
EM acsbuarque@usp.br
RI Fava, Maria/K-5779-2018; Mis, Namrata/AGJ-5556-2022; Souza,
   Felipe/F-8541-2017; Mendiondo, Eduardo Mario/C-7317-2012; Sarmento
   Buarque, Ana Carolina/K-4106-2018
OI Souza, Felipe/0000-0002-2753-9896; Mendiondo, Eduardo
   Mario/0000-0003-2319-2773; Mis, Namrata
   Bhattacharya/0000-0003-4967-8325; Sarmento Buarque, Ana
   Carolina/0000-0002-9489-4214
FU Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior, Brasil
   (CAPES) [88882.328899/2019-01]; FAPESP [2018/03473-0, 2014/50848-9
   INCT-II]
FX This study was financed in part by the Coordenacao de Aperfeicoamento de
   Pessoal de Nivel Superior, Brasil (CAPES) [Finance Code
   88882.328899/2019-01], FAPESP [2014/50848-9 INCT-II] (Climate Change,
   Water Security), FAPESP [2018/03473-0] (Understanding risk perception
   and the enigma of people's memory through social hydrology).
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NR 34
TC 27
Z9 28
U1 1
U2 28
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 0262-6667
EI 2150-3435
J9 HYDROLOG SCI J
JI Hydrol. Sci. J.
PD MAY 18
PY 2020
VL 65
IS 7
BP 1075
EP 1083
DI 10.1080/02626667.2020.1740705
EA APR 2020
PG 9
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Water Resources
GA LK5YB
UT WOS:000523313100001
DA 2025-04-22
ER

PT J
AU Wang, XY
   Xie, LL
   Zeng, DM
   Yang, CT
   Liu, QM
AF Wang, Xinyu
   Xie, Linlin
   Zeng, Demin
   Yang, Cantian
   Liu, Qianmin
TI Seismic retrofitting of reinforced concrete frame-shear wall buildings
   using seismic isolation for resilient performance
SO STRUCTURES
LA English
DT Article
DE Seismic resilience; RC frame-shear wall building; Retrofitting with
   seismic isolation; Yield ratio
ID REPAIR COSTS; EARTHQUAKE; SYSTEMS; MODEL
AB Seismic retrofitting of a reinforced concrete frame-shear wall building (RCFSWB), which is widely adopted for public buildings, is critical for the seismic risk reduction of a city. Seismic isolation is considered as an effective retrofitting method for resilient performance. The resilience-oriented retrofitting of RCFSWBs through isolation was herein investigated with emphasis on the critical design parameter, the yield ratio of the isolation system. Engineering demand parameters (EDPs) affecting resilient performance of RCFSWBs before retrofitting were identified with the consideration of different stories through two cases. The effect of the yield ratio on resilient performance after retrofitting with seismic isolation was revealed through six cases, emphasizing the control effect of critical EDPs. A yield ratio of 2% was suggested for the resilience-oriented retrofitting of RCFSWB toward the highest resilience level in the Chinese code, and was used to conduct resilience-oriented retrofitting of a nine-story RCFSWB. This research provides a valuable reference for RCFSWB retrofitting through seismic isolation.
C1 [Wang, Xinyu; Xie, Linlin; Zeng, Demin; Yang, Cantian] Beijing Univ Civil Engn & Architecture, Sch Civil & Transportat Engn, 1 Zhanlanguan Rd, Beijing 100044, Peoples R China.
   [Wang, Xinyu; Xie, Linlin; Zeng, Demin; Yang, Cantian] Beijing Univ Civil Engn & Architecture, Beijing Energy Conservat & Sustainable Urban & Ru, Beijing 100044, Peoples R China.
   [Wang, Xinyu; Xie, Linlin; Zeng, Demin; Yang, Cantian] Beijing Univ Civil Engn & Architecture, Minist Coconstruct Collaborat Innovat Ctr, Beijing 100044, Peoples R China.
   [Liu, Qianmin] Beijing Inst Architectural Design, Beijing 100045, Peoples R China.
C3 Beijing University of Civil Engineering & Architecture; Beijing
   University of Civil Engineering & Architecture; Beijing University of
   Civil Engineering & Architecture
RP Xie, LL (corresponding author), Beijing Univ Civil Engn & Architecture, Sch Civil & Transportat Engn, 1 Zhanlanguan Rd, Beijing 100044, Peoples R China.
EM xielinlin@bucea.edu.cn
RI WANG, XINYU/MVV-5551-2025; yang, can/GXV-5624-2022; Xie,
   linlin/GZG-9107-2022
OI Xie, Linlin/0000-0003-3796-5271
FU National Natural Science Foundation of China [52178268]; Pyramid Talent
   Training Project of Beijing University of Civil Engineering and
   Architecture [JDYC20200306]
FX The authors are grateful for the financial support received from the
   National Natural Science Foundation of China (Grant No 52178268), and
   the Pyramid Talent Training Project of Beijing University of Civil
   Engineering and Architecture (JDYC20200306).
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NR 37
TC 18
Z9 22
U1 8
U2 59
PU ELSEVIER SCIENCE INC
PI NEW YORK
PA STE 800, 230 PARK AVE, NEW YORK, NY 10169 USA
SN 2352-0124
J9 STRUCTURES
JI Structures
PD DEC
PY 2021
VL 34
BP 4745
EP 4757
DI 10.1016/j.istruc.2021.10.081
EA NOV 2021
PG 13
WC Engineering, Civil
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA XA2EL
UT WOS:000720467000006
DA 2025-04-22
ER

PT J
AU Buijs, AE
   Mattijssen, TJM
   Van der Jagt, APN
   Ambrose-Oji, B
   Andersson, E
   Elands, BHM
   Moller, MS
AF Buijs, Arjen E.
   Mattijssen, Thomas J. M.
   Van der Jagt, Alexander P. N.
   Ambrose-Oji, Bianca
   Andersson, Erik
   Elands, Birgit H. M.
   Moller, Maja Steen
TI Active citizenship for urban green infrastructure: fostering the
   diversity and dynamics of citizen contributions through mosaic
   governance
SO CURRENT OPINION IN ENVIRONMENTAL SUSTAINABILITY
LA English
DT Article
ID ECOSYSTEM SERVICES; USER PARTICIPATION; RESILIENCE; BIODIVERSITY;
   INSIGHTS; SPACES
AB Active citizens may contribute to the environmental, social, and institutional resilience of cities. This review discusses how citizen initiatives protect biodiversity hotspots, contribute to social cohesion, institutional innovation, and diversity in urban green space management. Challenges related to social inclusiveness, ecological connectivity and continuity suggest government involvement is pertinent, but needs to be refocused. To maximise environmental outcomes of active citizenship, governments may adopt an enabling and stimulating governance style that harnesses the transformative potential of active citizenship. This paper argues for mosaic governance to work with the heterogeneous array of people, institutions, and spatial practices associated with active citizenship. Mosaic governance aims for a context-sensitive way of urban green infrastructure planning, enhancing relationships between the diversity of landscapes and communities across cities.
C1 [Buijs, Arjen E.; Mattijssen, Thomas J. M.; Andersson, Erik; Elands, Birgit H. M.] Wageningen Univ, Forest & Nat Conservat Policy Grp, POB 47, NL-6700 AC Wageningen, Netherlands.
   [Buijs, Arjen E.; Andersson, Erik] Wageningen Environm Res, Droevendaalsesteeg 3, NL-6708 PB Wageningen, Netherlands.
   [Van der Jagt, Alexander P. N.; Andersson, Erik] Forest Res Northern Res Stn, Ctr Ecosyst Soc & Biosecur, Roslin EH25 9SY, Midlothian, Scotland.
   [Ambrose-Oji, Bianca; Andersson, Erik] Forestry Commiss, Forest Res, 620 Bristol Business Pk,Coldharbour Lane, Bristol BS16 1EJ, Avon, England.
   [Andersson, Erik; Moller, Maja Steen] Univ Copenhagen, Landscape Architecture & Planning, Rolighedsvej 23, DK-1958 Frb Copenhagen, Denmark.
   [Andersson, Erik] Stockholm Univ, Stockholm Resilience Ctr, S-10405 Stockholm, Sweden.
C3 Wageningen University & Research; Wageningen University & Research;
   University of Copenhagen; Stockholm University
RP Buijs, AE (corresponding author), Wageningen Univ, Forest & Nat Conservat Policy Grp, POB 47, NL-6700 AC Wageningen, Netherlands.; Buijs, AE (corresponding author), Wageningen Environm Res, Droevendaalsesteeg 3, NL-6708 PB Wageningen, Netherlands.
EM arjen.buijs@wur.nl
RI van der Jagt, Alexander/AAW-5556-2021; Andersson, Erik/AAE-9771-2019;
   Buijs, Arjen/C-6412-2011
OI Mattijssen, Thomas/0000-0002-0822-4012; Buijs,
   Arjen/0000-0002-1683-6182; Andersson, Erik/0000-0003-2716-5502; van der
   Jagt, Alexander/0000-0002-1365-5765
FU European Commission [FP7-ENV.2013.6.2-5-603567]; GREEN SURGE research
   project
FX This research was funded by the European Commission Seventh Framework
   Programme (FP7-ENV.2013.6.2-5-603567) and participating partners in the
   GREEN SURGE research project.
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NR 52
TC 192
Z9 209
U1 7
U2 125
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 1
EP 6
DI 10.1016/j.cosust.2017.01.002
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 EL5UR
UT WOS:000394687200001
DA 2025-04-22
ER

PT J
AU Wu, YH
   Han, FY
AF Wu, Yihao
   Han, Fengyuan
TI Reconfiguring abandoned urban landscapes: a multidimensional
   place-making approach towards sustainable transformation of industrial
   waterfronts
SO LANDSCAPE AND ECOLOGICAL ENGINEERING
LA English
DT Article
DE Multidimensional Place-Making Approach; Sustainable Urban Design;
   Industrial Waterfronts; Urban Redevelopment; Environmental Resilience
ID DECISION-MAKING; REDEVELOPMENT
AB This study introduces an integrated application of the Multidimensional Place-Making Approach (MPA) to urban regeneration, focusing on the reconfiguring abandoned industrial landscapes left by past industrial activity. While existing research predominantly emphasizes Western contexts, this study highlights the adaptation and implementation of MPA in degraded industrial waterfront in developing countries where the impetus of reclaiming the derelict land is also moving towards sustainability. The cases analyzed are located alongside Shanghai Huangpu River, which has a fair share of degraded and economically unproductive landscapes. his research systematically addresses the challenges of historically land ownership divisions, cultural and social dynamics, and the integration of industrial heritage, while maintaining a balance between environmental resilience and aesthetic values. The contribution of this study lies in its demonstration of how MPA facilitates comprehensive, evidence-based urban design and transformation in scenarios that are typically resource-intensive. The application takes a major step in bridging the gap between theoretical MPA concepts and a wide range of practical, implemented solutions. It extends beyond the specific context of the study, promoting the applicability of MPA to diverse urban landscapes and pledging a sustainable future in urban design.
C1 [Han, Fengyuan] Univ Cambridge, Dept Architecture, Cambridge CB2 1PX, England.
   [Wu, Yihao] Shanghai Architectural Design & Res Co Ltd, Arcplus Inst, Div City Planning & Design, Shanghai, Peoples R China.
   [Wu, Yihao] Harvard Univ, Dept Urban Planning & Design, Cambridge, MA 02138 USA.
C3 University of Cambridge; Harvard University
RP Wu, YH (corresponding author), Shanghai Architectural Design & Res Co Ltd, Arcplus Inst, Div City Planning & Design, Shanghai, Peoples R China.; Wu, YH (corresponding author), Harvard Univ, Dept Urban Planning & Design, Cambridge, MA 02138 USA.
EM hzwuyihao@163.com; fh439@cam.ac.uk
RI Han, Feng-Yuan/AAE-8171-2021; Wu, Yihao/AFQ-4835-2022
OI Wu, Yihao/0009-0004-1249-8536; Han, Fengyuan/0009-0000-3642-2940
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NR 51
TC 1
Z9 1
U1 10
U2 10
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 JAN
PY 2025
VL 21
IS 1
BP 175
EP 190
DI 10.1007/s11355-024-00632-7
EA DEC 2024
PG 16
WC Biodiversity Conservation; Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA S6T7H
UT WOS:001367936600001
DA 2025-04-22
ER

PT J
AU Fang, ZX
   Feng, R
   Wang, ZY
AF Fang, Zhixiang
   Feng, Rui
   Wang, Zhongyuan
TI Spatiotemporal flow force model of source/sink human mobilities within
   city
SO CITIES
LA English
DT Article
DE Human mobility; Fluid mechanics; Navier-Stokes equation; Urban planning;
   Spatiotemporal process; Flow force
ID MOBILE PHONE; PATTERNS; CITIES
AB Human mobility is of importance in supporting smart cities, urban planning and constructions of resilient environments. Previous studies on dominant mobility models (i.e., gravity and radiation models) rarely describe the refined spatiotemporal process of human mobility flow forces especially within city. To address this gap, this paper proposes a spatiotemporal flow force model (FFM) of sink/source human mobilities within city, which is derived from Navier-Stokes equation in the field of fluid mechanics. The FFM model outperforms the gravity and radiation models in modeling the refined spatiotemporal flow force process of source/sink human mobilities, in the aspect of intensity and direction of mobility flow force. Comparison results show that the gravity and radiation models in the source mobility scenario can give a rough force estimation about the total outflow from source mobility areas while without the capability of explaining the specific directions of mobility flow from source mobility areas. Pearson correlation coefficient between the intensity results of the two models and those of FFM range from 0.65 to 0.90 and direction differences between the results of the two models and FFM respectively show no clear regularity. In the sink mobility scenario, the direction of mobility flows can be estimated well by the gravity and radiation models while the intensity of mobility flow between small-scale areas within cities is susceptible to inaccuracies. Pearson correlation coefficient ranges from 0.13 to 0.59 and direction differences follow a stepped distribution from high to low within the range of 0 degrees to 180 degrees. In addition, the potential field of human mobility flow force provides a powerful tool for visually analyzing mobility flows within cities. This proposed model enriches human mobility models and is generalizable in supporting smart cities, urban planning, and constructions of resilient environments in terms of the refined spatiotemporal process of mobility flow force.
C1 [Fang, Zhixiang; Feng, Rui; Wang, Zhongyuan] Wuhan Univ, State Key Lab Informat Engn Surveying Mapping & Re, Wuhan 430079, Peoples R China.
C3 Wuhan University
RP Fang, ZX (corresponding author), Wuhan Univ, State Key Lab Informat Engn Surveying Mapping & Re, Wuhan 430079, Peoples R China.
EM zxfang@whu.edu.cn
RI Wang, Zhongyuan/HTL-5239-2023; 方, 志祥/L-7411-2019
FU National Natural Science Foundation of China [42371411]
FX The research was supported in part by the National Natural Science
   Foundation of China (Grants 42371411) .
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NR 40
TC 1
Z9 1
U1 7
U2 50
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 104691
DI 10.1016/j.cities.2023.104691
EA NOV 2023
PG 13
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA CS9O3
UT WOS:001127349300001
DA 2025-04-22
ER

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   Montalto, Franco
   Orton, Philip
   Antoine, Adrienne
   Peters, Danielle
   Jones, Hunter
   Parris, Adam
   Blumberg, Alan
TI Achieving sustainability goals for urban coasts in the US Northeast:
   research needs and challenges
SO LOCAL ENVIRONMENT
LA English
DT Article
DE Climate vulnerability; natural and nature-based features;
   sustainability; adaptation; urban coasts; ecosystem services
AB In the wake of Hurricane Sandy and other recent extreme events, urban coastal communities in the northeast region of the United States are beginning or stepping up efforts to integrate climate adaptation and resilience into long-term coastal planning. Natural and nature-based shoreline strategies have emerged as essential components of coastal resilience and are frequently cited by practitioners, scientists, and the public for the wide range of ecosystem services they can provide. However, there is limited quantitative information associating particular urban shoreline design strategies with specific levels of ecosystem service provision, and research on this issue is not always aligned with decision context and decision-maker needs. Engagement between the research community, local government officials and sustainability practitioners, and the non-profit and private sectors can help bridge these gaps. A workshop to bring together these groups discussed research gaps and challenges in integrating ecosystem services into urban sustainability planning in the urban northeast corridor. Many themes surfaced repeatedly throughout workshop deliberations, including the challenges associated with ecosystem service valuation, the transferability of research and case studies within and outside the region, and the opportunity for urban coastal areas to be a focal point for education and outreach efforts related to ecosystem services.
C1 [Close, Sarah L.; Jones, Hunter] Univ Corp Atmospher Res, NOAA, Climate Program Off, Silver Spring, MD USA.
   [Montalto, Franco; Orton, Philip; Peters, Danielle] Consortium Climate Risk Urban Northeast, New York, NY USA.
   [Montalto, Franco] New York Urban Field Stn, New York, NY USA.
   [Montalto, Franco] Drexel Univ, Dept Civil Environm & Architectural Engn, Philadelphia, PA USA.
   [Orton, Philip; Blumberg, Alan] Stevens Inst Technol, Davidson Lab Castle Point Hudson, Hoboken, NJ USA.
   [Antoine, Adrienne; Parris, Adam] NOAA, Climate Program Off, Silver Spring, MD USA.
   [Peters, Danielle] Columbia Univ, Ctr Climate Syst Res, New York, NY USA.
C3 National Center Atmospheric Research (NCAR) - USA; National Oceanic
   Atmospheric Admin (NOAA) - USA; Drexel University; Stevens Institute of
   Technology; National Oceanic Atmospheric Admin (NOAA) - USA; Columbia
   University
RP Close, SL (corresponding author), Univ Corp Atmospher Res, NOAA, Climate Program Off, Silver Spring, MD USA.
EM sarah.close@noaa.gov
OI Jones, Hunter M./0000-0003-4588-3911; Close, Sarah/0000-0002-6618-0943
FU National Oceanic and Atmospheric Administration Climate Program Office
   [NA13OAR4310144]
FX This work was supported by the National Oceanic and Atmospheric
   Administration Climate Program Office [NA13OAR4310144].
CR Adger WN, 2005, SCIENCE, V309, P1036, DOI 10.1126/science.1112122
   Arkema K., 2014, NATURE CLIMATE CHANG, V3, P913
   Barbier EB, 2013, PLOS ONE, V8, DOI 10.1371/journal.pone.0058715
   Barbier EB, 2011, ECOL MONOGR, V81, P169, DOI 10.1890/10-1510.1
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   Hurricane Sandy Rebuilding Task Force, 2013, HURR SNAD REB STRAT
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NR 19
TC 2
Z9 3
U1 1
U2 20
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 2017
VL 22
IS 4
BP 508
EP 522
DI 10.1080/13549839.2016.1233526
PG 15
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 EO3VM
UT WOS:000396622500008
DA 2025-04-22
ER

PT J
AU Ho, LP
   Nguyen, T
   Chau, NXQ
   Nguyen, KD
AF Long Phi Ho
   Thong Nguyen
   Nguyen Xuan Quang Chau
   Kim Dan Nguyen
TI Integrated urban flood risk management approach in context of
   uncertainties: case study Ho Chi Minh city
SO HOUILLE BLANCHE-REVUE INTERNATIONALE DE L EAU
LA English
DT Article
DE Urban flood; Uncertainties; Resilience; Integrated flood management
AB The paper deals with an Integrated Urban Flood Management Strategy for Ho Chi Minh City to adapt with uncertainties of both natural and anthropogenic impacts. Observed data analysis and hydraulic simulations were utilised to prove the significance of such uncertainties. Hydraulic simulations proved that conventional solutions (e.g. storm sewers, dikes and tide gates) may not be effective to cope with rainfall intensity increase and land subsidence. Beyond constructional intervention that will be still required to improve, soonest as possible, the flood control capacity of the city to a reasonable level, integrated plans should be also considered in order to encourage sustainable urban development initiatives and to mainstream current investments so that irreversible and vulnerable development could be avoided.
   A 3-component strategy was also suggested and analysed for the case study of Ho Chi Minh City, in which Prevention, Adaptation and Resilience should be considered and prioritised.
C1 [Long Phi Ho; Thong Nguyen; Nguyen Xuan Quang Chau] Viet Nam Natl Univ, Ctr Water Management & Climate Change, Ho Chi Minh City, Vietnam.
   [Kim Dan Nguyen] Univ Paris Est, ENPC EDF R&D, CETMEF, Lab Hydraul St Venant, F-78400 Chatou, France.
C3 Vietnam National University Ho Chi Minh City (VNUHCM) System; Institut
   Polytechnique de Paris; Ecole des Ponts ParisTech
RP Ho, LP (corresponding author), Viet Nam Natl Univ, Ctr Water Management & Climate Change, Ho Chi Minh City, Vietnam.
EM hlphi@wacc.edu.vn; Kimdan_nguyen@yahoo.fr
RI Linh, Nguyen/AAS-5706-2020; Ho, Phi/ABE-3485-2021; Nguyen,
   Thong/JHS-8911-2023
OI CHAU, Quang/0000-0002-9597-1787
FU Vietnam National University Ho Chi Minh City (VNU-HCM) [A2013-48-01]
FX The authors would like to thank the Vietnam National University Ho Chi
   Minh City (VNU-HCM) for funding the project under grant number
   A2013-48-01.
CR Bubeck P., 2010, CONNECTING DELTA CIT
   DAHM RUBEN, 2013, P INT C FLOOD RES EX
   JIHA ABHAS K, 2012, WORLD BANK HDB
   Phi H. L., 2007, P 3 INT C CLIM WAT H
   PHI HO LONG, 2013, WORLD BANK WORKSH FL
   PHI HO LONG, 2010, GDLN SEM DIS RISK MA
   PHI HO LONG, 2008, IMPACTS CLIMATE CHAN
   Trung L. V., 2009, 7 FIG REG C SPAT DAT
NR 8
TC 6
Z9 6
U1 0
U2 32
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 DEC
PY 2014
IS 6
BP 26
EP 33
DI 10.1051/lhb/2014059
PG 8
WC Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Water Resources
GA AZ1TT
UT WOS:000348021300004
DA 2025-04-22
ER

PT J
AU Benner, C
   Pastor, M
AF Benner, Chris
   Pastor, Manuel
TI WHITHER RESILIENT REGIONS? EQUITY, GROWTH AND COMMUNITY
SO JOURNAL OF URBAN AFFAIRS
LA English
DT Article
ID EPISTEMIC COMMUNITIES; INEQUALITY
AB A growing body of research has been suggesting that social equity may contribute to economic growth and resilience at a metropolitan scale, but there is limited research on the underlying mechanisms that make for this potentially happy coincidence of economic vitality, resilience and inclusion. This article helps address this gap through an in-depth exploration of three case studies of regions that have been able to either sustain growth and equity over time, and/or that responded to external shocks in a way that suggests resilience: Salt Lake City, Oklahoma City, and San Antonio. We argue that there are different pathways in each case but that all of them can be characterized as having relatively strong and diverse regional knowledge arenas where data are shared and common understandings have developed across diverse constituencies. While the sample is limited, the role of a diverse and dynamic epistemic community does seem to be exactly the sort of mechanism that might keep fates common and regions resilient.
C1 [Benner, Chris] Univ Calif Davis, Community & Reg Dev, Davis, CA 95616 USA.
   [Pastor, Manuel] Univ So Calif, Sociol & Amer Studies & Ethn, Los Angeles, CA 90089 USA.
   [Pastor, Manuel] USCs Program Environm & Reg Equ, New York, NY USA.
   [Pastor, Manuel] Ctr Study Immigrant Integrat, New York, NY USA.
C3 University of California System; University of California Davis;
   University of Southern California
RP Benner, C (corresponding author), Univ Calif Davis, Community & Reg Dev, Davis, CA 95616 USA.; Benner, C (corresponding author), Univ Calif Davis, Davis, CA 95616 USA.
EM ccbenner@ucdavis.edu
RI Pastor, Manuel/A-1566-2010
FU Institute for New Economic Thinking [5409]; Ford Foundation; MacArthur
   Foundation
FX We would like to thank Madeline Wander and Mirabai Auer from the Program
   for Environmental and Regional Equity at the University of Southern
   California for their assistance with field research and analysis. We
   would also like to thank the Institute for New Economic Thinking (Grant
   ID NO. 5409), the Ford Foundation, and the MacArthur Foundation for
   their financial support that helped enable us to research this article.
   We would also like to thank the anonymous reviewers and the members of
   the Building Resilient Regions network for their helpful and
   constructive comments.
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NR 47
TC 22
Z9 26
U1 0
U2 20
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0735-2166
EI 1467-9906
J9 J URBAN AFF
JI J. Urban Aff.
PD FEB
PY 2016
VL 38
IS 1
BP 5
EP 24
DI 10.1111/juaf.12194
PG 20
WC Urban Studies
WE Social Science Citation Index (SSCI)
SC Urban Studies
GA DC7XL
UT WOS:000369434000001
DA 2025-04-22
ER

PT J
AU Hao, HY
   Wang, Y
AF Hao, Haiyan
   Wang, Yan
TI Disentangling relations between urban form and urban accessibility for
   resilience to extreme weather and climate events
SO LANDSCAPE AND URBAN PLANNING
LA English
DT Article
DE Urban form; Urban accessibility; Community resilience; Adaptation;
   Land-use modeling
ID SOCIAL VULNERABILITY; TRAVEL BEHAVIOR; CITIES; HAZARDS
AB The rapid urbanization progress has placed large populations and expensive civil infrastructure at locations exposed to climatic and weather-related hazards (e.g., wind storms and floods), which demands informed and effective planning approaches that help human communities adapt to these adverse events. Emerging research highlights the importance of maintaining sufficient and equitable access to facilities that provide essential resources (e.g., gas and food) and services (e.g., healthcare and banking) and support city residents' daily activities to avoid exacerbated event impacts. Extant studies suggest that urban forms, including the spatial arrangement of facilities, influence place accessibility. However, these studies are mostly semantic and ontological without quantitative investigations into their dynamic interactions under the impact of extreme (weather and climate) events (EEs). Therefore, we propose to evaluate the relations between urban form characteristics (i.e., compacity, polycentricity, and mixed land use) and urban accessibility with simulations. We used Cellular Automata (CA) to simulate four land-use change scenarios for the City of Tallahassee in the United States, and calculated the resource/service-seeking travel paths for "residents" living in the four "simulated cities" characterized by different urban form characteristics across three scenarios, i.e., business-as-usual (BAU), limited resource provision (LRP), and built environment disruption (BED) scenarios. We measured accessibility for a simulated city as the distribution (i.e., median values and cumulative distribution functions) of the calculated travel path lengths for that city. The simulation results indicate that "residents" living in cities with mixed land use and decentralized population and commercial centers are associated with higher-level accessibilities and experience fewer perturbations during EE. The research findings could inform future land use and landscape planning practices and policies that help hazard-prone communities adapt to recurring EEs and thus enhance community resilience.
C1 [Hao, Haiyan] Univ Florida, Coll Design Construct & Planning, Dept Urban & Reg Planning, 1480 Inner Rd, Gainesville, FL 32601 USA.
   [Hao, Haiyan] Univ Florida, Coll Design Construct & Planning, Florida Inst Built Environm Resilience, 1480 Inner Rd, Gainesville, FL 32601 USA.
C3 State University System of Florida; University of Florida; State
   University System of Florida; University of Florida
RP Wang, Y (corresponding author), Univ Florida, Dept Urban & Reg Planning, POB 115706, Gainesville, FL 32611 USA.; Wang, Y (corresponding author), Univ Florida, Florida Inst Built Environm Resilience, POB 115706, Gainesville, FL 32611 USA.
EM hhao@ufl.edu; yanw@ufl.edu
RI Hao, Haiyan/AFK-0917-2022
OI Wang, Yan/0000-0002-3946-9418
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NR 59
TC 17
Z9 19
U1 24
U2 90
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 APR
PY 2022
VL 220
AR 104352
DI 10.1016/j.landurbplan.2022.104352
EA JAN 2022
PG 12
WC Ecology; Environmental Studies; Geography; Geography, Physical; Regional
   & Urban Planning; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Physical Geography; Public
   Administration; Urban Studies
GA 0X3LG
UT WOS:000789611700003
DA 2025-04-22
ER

PT J
AU Ge, YY
   Du, LL
   Ye, HX
AF Ge, Yinyin
   Du, Lili
   Ye, Hongxing
TI Co-optimization approach to post-storm recovery for interdependent power
   and transportation systems
SO JOURNAL OF MODERN POWER SYSTEMS AND CLEAN ENERGY
LA English
DT Article
DE Co-optimization; Interdependent critical infrastructure (CI); Power
   system; Resilience; Transportation system
ID MICROGRIDS; STRATEGIES
AB The power and transportation systems are urban interdependent critical infrastructures (CIs). During the post-disaster restoration process, transportation mobility and power restoration process are interdependent, and their functionalities significantly affect other well-beings of other urban CIs. Therefore, to enhance the resilience of urban CIs, successful recovery strategies should promote CI function cooperatively and synergistically to distribute goods and services efficiently. This paper develops an integrative framework that addresses the challenges of enhancing the recovery efficiency of urban power and transportation systems in short-term recovery period. Specifically, the post-storm recovery process is considered as a scheduling problem under the constraints representing crew dispatch, equipment and fuel limit. We propose a new framework for co-optimizing the recovery scheduling of power and transportation systems, respecting precedency requirement and network constraints. The advantages and benefits of co-optimized recovery scheduling are validated in a testing system.
C1 [Ge, Yinyin] Case Western Reserve Univ, Cleveland, OH 44106 USA.
   [Du, Lili] Univ Florida, Dept Civil & Coastal Engn, Gainesville, FL USA.
   [Ye, Hongxing] Cleveland State Univ, Cleveland, OH 44115 USA.
C3 University System of Ohio; Case Western Reserve University; State
   University System of Florida; University of Florida; University System
   of Ohio; Cleveland State University
RP Ye, HX (corresponding author), Cleveland State Univ, Cleveland, OH 44115 USA.
EM yxg417@case.edu; lili.du@essie.ufl.edu; h.ye@csuohio.edu
RI Ye, Hongxing/T-7190-2017; Du, Lili/AGO-6526-2022; Ge, Yinyin/O-2599-2019
OI Ye, Hongxing/0009-0006-3525-3763
FU U.S. National Science Foundation Project [ECCS-171121]; CARRER Award
   [CMMI-1554559]; CSU FRD-IoT award
FX This work was supported by the U.S. National Science Foundation Project
   (No. ECCS-171121), CARRER Award (No. CMMI-1554559), and CSU FRD-IoT
   award.
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NR 30
TC 16
Z9 18
U1 3
U2 36
PU SPRINGEROPEN
PI LONDON
PA CAMPUS, 4 CRINAN ST, LONDON, N1 9XW, ENGLAND
SN 2196-5625
EI 2196-5420
J9 J MOD POWER SYST CLE
JI J. Mod. Power Syst. Clean Energy
PD JUL
PY 2019
VL 7
IS 4
BP 688
EP 695
DI 10.1007/s40565-019-0524-7
PG 8
WC Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering
GA IM3LV
UT WOS:000477895600003
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Lewandowski, I
   von Cossel, M
   Winkler, B
   Bauerle, A
   Gaudet, N
   Kiesel, A
   Lewin, E
   Magenau, E
   Vidaurre, NAM
   Müller, B
   Schlecht, V
   Thumm, U
   Trenkner, M
   Vargas-Carpintero, R
   Weickert, S
   Weik, J
   Reinmuth, E
AF Lewandowski, Iris
   von Cossel, Moritz
   Winkler, Bastian
   Bauerle, Andrea
   Gaudet, Nicole
   Kiesel, Andreas
   Lewin, Eva
   Magenau, Elena
   Vidaurre, Nirvana Angela Marting
   Mueller, Benedikt
   Schlecht, Valentin
   Thumm, Ulrich
   Trenkner, Marielle
   Vargas-Carpintero, Ricardo
   Weickert, Sebastian
   Weik, Jan
   Reinmuth, Evelyn
TI An Adapted Indicator Framework for Evaluating the Potential Contribution
   of Bioeconomy Approaches to Agricultural Systems Resilience
SO ADVANCED SUSTAINABLE SYSTEMS
LA English
DT Review
DE agricultural systems; bioeconomy; diversification; ecosystem services;
   private goods; public goods; resilience
ID BIOMASS PRODUCTION; LAND-USE; ENVIRONMENTAL PERFORMANCE; MINERAL
   FERTILIZERS; ECOSYSTEM SERVICES; URBAN AGRICULTURE; SPECIES RICHNESS;
   CROP CULTIVATION; PLANT MIXTURES; HARVEST TIME
AB This study reviews a variety of "bioeconomy approaches" (BAs) to assess their potential contribution to resilience in agricultural systems, focusing on benefits that can improve multi-functionality regarding private and public goods. It is based on Meuwissen et al.'s framework to assess the resilience of farming systems. Drawing on literature and expert knowledge, this indicator framework is adapted to develop a new framework which is then applied to seven contrasting BAs (miscanthus, perennial flowering wild plant mixtures, permanent grassland, nutrient recycling, agrivoltaics, urban agriculture, and microalgae). The major outcomes are: 1) the extended indicator framework can help evaluate BAs for their potential to foster resilience in future agricultural systems, 2) all BAs are characterized by their ability to provide multiple private and public goods simultaneously, 3) the strongest contribution of BAs to public goods is their function in maintaining the good condition of natural resources and resource-use efficiency, 4) all BAs can enhance resilience in agricultural systems by contributing diversity, multifunctionality, environmental sustainability, and autonomy, 5) the mitigation of potential drawbacks of BAs implementation requires ex-ante assessment, favorable BAs combinations, and stakeholder involvement, 6) context-specific analysis of each BAs is required to assess their qualitative and quantitative contribution to resilience.
   This study reviews a variety of bioeconomy approaches and how to assess their potential contribution to resilience in agricultural systems, focusing on benefits that can improve multi-functionality in terms of private and public goods. Drawing on literature and expert knowledge, a new framework is developed and applied to the selected bioeconomy approaches. image
C1 [Lewandowski, Iris; von Cossel, Moritz; Winkler, Bastian; Bauerle, Andrea; Gaudet, Nicole; Kiesel, Andreas; Lewin, Eva; Magenau, Elena; Vidaurre, Nirvana Angela Marting; Mueller, Benedikt; Schlecht, Valentin; Thumm, Ulrich; Trenkner, Marielle; Vargas-Carpintero, Ricardo; Weickert, Sebastian; Weik, Jan; Reinmuth, Evelyn] Univ Hohenheim, Inst Crop Sci, Biobased Resources Bioecon 340b, Fruwirthstr 23, D-70599 Stuttgart, Germany.
C3 University Hohenheim
RP von Cossel, M (corresponding author), Univ Hohenheim, Inst Crop Sci, Biobased Resources Bioecon 340b, Fruwirthstr 23, D-70599 Stuttgart, Germany.
EM moritz.cossel@uni-hohenheim.de
RI Lewin, Eva/KMY-5837-2024; Kiesel, Andreas/AAG-4898-2019; Von Cossel,
   Moritz/I-6596-2019
OI Marting Vidaurre, Nirvana A./0000-0002-5348-688X; Magenau,
   Elena/0000-0003-3859-9402; Reinmuth, Evelyn/0000-0001-5281-2287;
   Vargas-Carpintero, Ricardo/0000-0002-6130-7706; Winkler,
   Bastian/0000-0003-1496-3740; Muller, Benedikt/0009-0003-3877-7034;
   Schlecht, Valentin/0009-0001-7520-509X; Lewandowski,
   Iris/0000-0002-0388-4521; Lewin, Eva/0000-0001-6861-0137
FU Projekt DEAL
FX The authors are grateful for the excellent environment provided by the
   University of Hohenheim for bioeconomy research. We particularly wish
   tothank all colleagues working in the experimental fields, laboratories
   andadministration whose dedication and practical support are
   instrumental in making bioeconomy research a reality.Open access funding
   enabled and organized by Projekt DEAL.
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TC 1
Z9 1
U1 7
U2 11
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 JUL
PY 2024
VL 8
IS 7
DI 10.1002/adsu.202300518
EA MAY 2024
PG 72
WC Green & Sustainable Science & Technology; Materials Science,
   Multidisciplinary
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Materials Science
GA YW0P9
UT WOS:001235790300001
DA 2025-04-22
ER

PT J
AU Koebele, EA
   Crow, DA
   Albright, EA
AF Koebele, Elizabeth A.
   Crow, Deserai A.
   Albright, Elizabeth A.
TI Building Resilience during Recovery: Lessons from Colorado's Watershed
   Resilience Pilot Program
SO ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Disaster management; Recovery; Resilience; Recovery-resilience nexus;
   Watershed coalitions
ID WILDLAND-URBAN INTERFACE; COMMUNITY RESILIENCE; DISASTER RECOVERY;
   SOCIAL-SCIENCE; FLOOD RISK; MANAGEMENT; COLLABORATION; VULNERABILITY;
   PARTNERSHIPS; GOVERNANCE
AB As the potential for and scope of some types of disasters increases, so too does the need to build greater disaster resilience across the globe. Communities ideally begin building resilience prior to experiencing a disaster in order to reduce negative impacts and ease recovery processes; however, numerous environmental and sociopolitical factors can impede such efforts until a disaster occurs. While the disaster recovery period offers opportunities for communities to build resilience as they replace infrastructure and restore services, a host of new issues arise during this time that can further complicate or delay resilience building. In this study, we highlight the opportunities and challenges inherent at the intersection of disaster recovery and resilience building, which we term the "recovery-resilience nexus." To study this nexus, we analyze a first-of-its-kind disaster recovery program in Colorado, United States, that promotes resilience-building activities in disaster-affected communities by supporting the efforts of place-based watershed coalitions. Although the program faced numerous and interrelated technical, political, and fiscal hurdles, we argue that it provides an opportunity for drawing important lessons about how communities can navigate the recovery-resilience nexus via cross-boundary collaboration and creatively leveraging traditional disaster recovery funding sources to achieve resilience goals.
C1 [Koebele, Elizabeth A.] Univ Nevada, Polit Sci Dept, 1664 N Virginia St,MailStop 0302, Reno, NV 89509 USA.
   [Crow, Deserai A.] Univ Colorado, Sch Publ Affairs, POB 173364,Campus Box 142, Denver, CO 80217 USA.
   [Albright, Elizabeth A.] Duke Univ, Nicholas Sch Environm, 9 Circuit Dr,Box 90328, Durham, NC 27708 USA.
C3 Nevada System of Higher Education (NSHE); University of Nevada Reno;
   University of Colorado System; University of Colorado Denver; Duke
   University
RP Albright, EA (corresponding author), Duke Univ, Nicholas Sch Environm, 9 Circuit Dr,Box 90328, Durham, NC 27708 USA.
EM ekoebele@unr.edu
OI Koebele, Elizabeth/0000-0001-9133-2710; CROW,
   DESERAI/0000-0003-2078-3607
FU National Science Foundation [1461923, 1461565]; Div Of Civil,
   Mechanical, & Manufact Inn; Directorate For Engineering [1461923,
   1461565] Funding Source: National Science Foundation
FX This research is funded through theInfrastructure, Management, and
   Extreme Events Program of the National Science Foundation (Award Numbers
   1461923 and 1461565).
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NR 91
TC 9
Z9 9
U1 8
U2 50
PU SPRINGER
PI NEW YORK
PA ONE NEW YORK PLAZA, SUITE 4600, NEW YORK, NY, UNITED STATES
SN 0364-152X
EI 1432-1009
J9 ENVIRON MANAGE
JI Environ. Manage.
PD JUL
PY 2020
VL 66
IS 1
BP 1
EP 15
DI 10.1007/s00267-020-01296-3
EA APR 2020
PG 15
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA LS2WI
UT WOS:000529322300001
PM 32342148
DA 2025-04-22
ER

PT J
AU Lorenz, K
   Lal, R
AF Lorenz, Klaus
   Lal, Rattan
TI Managing soil carbon stocks to enhance the resilience of urban
   ecosystems
SO CARBON MANAGEMENT
LA English
DT Article
DE soil inorganic carbon; soil organic carbon; soil-derived ecosystem
   services; climate change adaptation and mitigation; urban environmental
   quality
ID CLIMATE-CHANGE MITIGATION; ORGANIC-CARBON; ATMOSPHERIC CARBON; MICROBIAL
   BIOMASS; INORGANIC CARBON; FOOD SECURITY; STORAGE; SEQUESTRATION;
   BIOCHAR; SYSTEMS
AB Land-use and land-cover change (LULCC) by urbanization will likely replace agricultural expansion as the dominant source of transformation of the terrestrial biosphere. Properly managed urban soils can offset some of the associated carbon (C) losses from urban soils and vegetation by retaining stabilized soil organic carbon (SOC) or soil inorganic carbon (SIC) such as mineral-associated C, black carbon (BC), and stable carbonate minerals. For example, SOC stocks of up to 810 Mg C ha(-1) to 1.5 m depth (Serebryanye Prudy, Russia) and SIC stocks of up to 300 Mg C ha(-1) to 2.5 m depth (Newcastle upon Tyne, UK) have been reported, but data on urban soil C storage are scanty. Aside from contributing to climate change mitigation, protecting and increasing SOC stocks support critically important soil-derived ecosystem services. Thus, C-friendly soil and land-use management practices must be developed and implemented to enhance soil-derived ecosystem services in urban areas, and the resilience of urban ecosystems to climate change. A collective management approach for urban soil C is needed. The principal actors involved should be urban land users (e.g., urban dwellers, property owners, developers) as the immediate users and managers of soil C, local professionals, local government and NGOs.
C1 [Lorenz, Klaus] Inst Adv Sustainabil Studies eV, D-14467 Potsdam, Germany.
   [Lal, Rattan] Ohio State Univ, Coll Food Agr & Environm Sci, Sch Environm & Nat Resources, Carbon Management & Sequestrat Ctr, Columbus, OH 43210 USA.
C3 University System of Ohio; Ohio State University
RP Lorenz, K (corresponding author), Ohio State Univ, Coll Food Agr & Environm Sci, Sch Environm & Nat Resources, Carbon Management & Sequestrat Ctr, Columbus, OH 43210 USA.
EM lorenz.59@osu.edu
RI Lal, Rattan/D-2505-2013
FU Bundesministerium fur Bildung und Forschung (BMBF), Forschung fur
   Nachhaltigkeit (FONA); Ministerium fur Wissenschaft, Forschung und
   Kultur, Land Brandenburg
FX Klaus Lorenz greatly acknowledges the research fellowship granted by
   Bundesministerium fur Bildung und Forschung (BMBF) and its platform
   Forschung fur Nachhaltigkeit (FONA), and by Ministerium fur
   Wissenschaft, Forschung und Kultur, Land Brandenburg.
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NR 117
TC 68
Z9 72
U1 13
U2 176
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1758-3004
EI 1758-3012
J9 CARBON MANAG
JI Carbon Manag.
PD MAR 4
PY 2015
VL 6
IS 1-2
BP 35
EP 50
DI 10.1080/17583004.2015.1071182
PG 16
WC Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA CS9IW
UT WOS:000362405000001
OA Bronze
DA 2025-04-22
ER

PT J
AU Zheng, JX
   Huang, GR
AF Zheng, Jiaxuan
   Huang, Guoru
TI A novel grid cell-based urban flood resilience metric considering water
   velocity and duration of system performance being impacted
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Flood resilience; System performance curve; Water velocity; Duration of
   system performance being; impacted; Instability mechanisms
ID INUNDATION; STABILITY; CRITERION; RISK
AB Flood risks are increasing due to climate change and urbanization. To alleviate flooding problems, the development of flood resilience is necessary. However, existing metrics based on the system performance curve and grid cells only consider the impacts of the water depth. The system performance thresholds are typically determined based on expert experience and study area conditions, resulting in the subjectivity of resilience metrics. This study proposes a novel flood resilience metric that considers the water velocity and duration of system performance being impacted. The Flood Hazard rating index and incipient velocity were used to objectively determine system performance thresholds. The system performance of traffic land was determined by considering the instability mechanisms of residents and vehicles during floods. The proposed metric was evaluated in the Minzhi region of Shenzhen City, China, under different rainfall intensities. Comparisons with an existing metric were conducted, and the contributions of flood resilience area loss of different land-use types under different rainfall intensities were analyzed. The results suggest that an increase in rainfall intensity reduces flood resilience; the higher the rainfall intensity, the longer the flood impact duration is in the study area and in different land-use types. Floods and rainfall intensity have larger influences on traffic land than on other land-use types. The proposed metric provides better performance for quantifying the impacts of floods than the existing metric. Under the rainfall intensity variation, the land-use type with the greatest impact on the overall flood resilience changes from residential land to traffic land. A decrease in the flood resilience of greenspace contributes the least to a decrease in the overall flood resilience. Traffic land should be the priority land-use type in flood resilience improvement projects. The results of the in-depth analysis of urban flood resilience assessment in this study provide reference for flood mitigation and risk reduction.
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.
EM huanggr@scut.edu.cn
RI Zheng, Jiaxuan/LZI-0921-2025
OI Zheng, Jiaxuan/0000-0003-1836-6249
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NR 37
TC 21
Z9 24
U1 26
U2 125
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0022-1694
EI 1879-2707
J9 J HYDROL
JI J. Hydrol.
PD FEB
PY 2023
VL 617
DI 10.1016/j.jhydrol.2022.128911
EA DEC 2022
PN A
PG 12
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA 8T1YA
UT WOS:000929063400001
DA 2025-04-22
ER

PT J
AU Uy, N
   Takeuchi, Y
   Shaw, R
AF Uy, Noralene
   Takeuchi, Yukiko
   Shaw, Rajib
TI An ecosystem-based resilience analysis of Infanta, Philippines
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE ecosystem-based adaptation; ecosystem resilience; resilience analysis;
   social-ecological systems
ID ADAPTATION
AB An exploratory study is conducted to assess the resilience of Infanta through an analysis of its ecosystems from ecological, physical, economic, social and institutional perspectives. Recognizing the strong interdependencies of ecological, physical, economic, social and institutional dimensions in ecosystems and that community-level perceptions can shape adaptation actions, a survey is conducted in 36 village councils in Infanta, Quezon, Philippines utilizing a questionnaire covering 5 dimensions, 25 parameters and 125 measures selected based on the local context of Infanta to gain an understanding of the level of resilience in mountain, riverine, urban, agricultural plain, estuarine and coastal ecosystems. Results show that overall resilience levels of ecosystems lie between 3.08 (medium resilience) and 3.26 (high resilience) on a scale of 15. However, resilience scores in the five dimensions vary from 2.57 (low resilience) to 3.51 (high resilience). On the whole, overall resilience levels in the 36 villages exhibit high levels in the social dimension and low levels in the economic dimension. By assessing the resilience of ecosystems as attempted in this study, a baseline is determined where entry points for adaptation actions that are responsive to prevailing ecosystem conditions can be identified, positive and negative factors addressed and gaps and opportunities acted upon to enhance the resilience of Infanta's ecosystems.
C1 [Uy, Noralene; Takeuchi, Yukiko; Shaw, Rajib] Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Kyoto 6068501, Japan.
C3 Kyoto University
RP Uy, N (corresponding author), Kyoto Univ, Grad Sch Global Environm Studies, Sakyo Ku, Yoshida Honmachi, Kyoto 6068501, Japan.
EM noralene.uy@ky7.ecs.kyoto-u.ac.jp
RI Uy, Noralene/Q-7465-2019; Shaw, Rajib/AAI-4834-2020
OI Uy, Noralene/0000-0002-3363-9869; Shaw, Rajib/0000-0003-3153-1800
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   [No title captured]
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NR 29
TC 7
Z9 7
U1 1
U2 41
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1747-7891
EI 1878-0059
J9 ENVIRON HAZARDS-UK
JI Environ. Hazards
PY 2012
VL 11
IS 4
BP 266
EP 282
DI 10.1080/17477891.2012.688794
PG 17
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 054IN
UT WOS:000312337300002
DA 2025-04-22
ER

PT J
AU Wilkinson, C
AF Wilkinson, Cathy
TI Social-ecological resilience: Insights and issues for planning theory
SO PLANNING THEORY
LA English
DT Article
DE social-ecological resilience; planning theory; complexity; ecology;
   environment; ecosystem services; governance; adaptive capacity
ID ADAPTIVE MANAGEMENT; LONG-TERM; URBAN; TRANSITIONS; PERSPECTIVE;
   ENVIRONMENT; ADAPTATION; GOVERNANCE; PARADIGM; CAPACITY
AB With its origins in systems ecology and emerging interest in the inter-disciplinary examination of the governance of linked social-ecological systems, social-ecological resilience offers a field of scholarship of particular relevance for planning at a time when global ecological challenges require urgent attention. This article explores what new conceptual ground social-ecological resilience offers planning theory. I argue that at a time when planning theorists are calling for more attention to matters of substance alongside matters of process, social-ecological resilience provides a timely contribution, particularly given the minimal attention in planning theory scholarship to environmental and ecological considerations as a driving concern.
C1 Stockholm Univ, Stockholm Resilience Ctr, SE-10691 Stockholm, Sweden.
C3 Stockholm University
RP Wilkinson, C (corresponding author), Stockholm Univ, Stockholm Resilience Ctr, SE-10691 Stockholm, Sweden.
EM cathy.wilkinson@stockholmresilience.su.se
OI Wilkinson, Cathy/0000-0001-9916-4256
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NR 115
TC 227
Z9 274
U1 18
U2 220
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 1473-0952
EI 1741-3052
J9 PLAN THEOR
JI Plan. Theory
PD MAY
PY 2012
VL 11
IS 2
BP 148
EP 169
DI 10.1177/1473095211426274
PG 22
WC Regional & Urban Planning
WE Social Science Citation Index (SSCI)
SC Public Administration
GA 924RF
UT WOS:000302708300003
DA 2025-04-22
ER

PT J
AU Tainter, JA
   Taylor, TG
AF Tainter, Joseph A.
   Taylor, Temis G.
TI Complexity, problem-solving, sustainability and resilience
SO BUILDING RESEARCH AND INFORMATION
LA English
DT Article
DE built environment; complexity; energy; problem-solving; resilience;
   sustainability; temporal perspectives
ID ASSESSING BUILDING PERFORMANCE
AB Societies often solve problems by developing more complex technologies and institutions. Sustainability emerges from success at solving problems. Complexity is a powerful problem-solving tool, but increased complexity requires resources and carries a metabolic cost. Resilience, a condition of vulnerability or the capacity to recover from a setback, helps achieve sustainability goals. Resilient societies must have reserve problem-solving capacity to adjust to major challenges. The abilities of ancient and modern societies to respond to crises at different states of complexity illustrate the relationship between problem-solving capacity and resilience. Increasing complexity, effective at first, seems inexorably to accumulate and to evolve to diminishing returns, undermining the ability to solve future problems. These processes are illustrated through historical case studies, including urban resilience.
C1 [Tainter, Joseph A.; Taylor, Temis G.] Utah State Univ, Dept Environm & Soc, Logan, UT 84322 USA.
C3 Utah System of Higher Education; Utah State University
RP Tainter, JA (corresponding author), Utah State Univ, Dept Environm & Soc, 5215 Old Main Hill, Logan, UT 84322 USA.
EM joseph.tainter@usu.edu; temis.taylor@usu.edu
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NR 53
TC 39
Z9 42
U1 0
U2 57
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 MAR 4
PY 2014
VL 42
IS 2
SI SI
BP 168
EP 181
DI 10.1080/09613218.2014.850599
PG 14
WC Construction & Building Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology
GA 290RP
UT WOS:000329776300005
DA 2025-04-22
ER

PT J
AU Park, S
   Kim, J
   Yun, H
   Kang, J
AF Park, Samuel
   Kim, Jaekyoung
   Yun, Hyeryeong
   Kang, Junsuk
TI Exploring the network structure of coupled green-grey infrastructure to
   enhance urban pluvial flood resilience: A scenario-based approach
   focusing on 'centralized' and 'decentralized' structures
SO JOURNAL OF ENVIRONMENTAL MANAGEMENT
LA English
DT Article
DE Betweenness centrality; Coupled green-grey infrastructure;
   Loosely-connected network; Network density; Network modularity; Urban
   flood resilience
ID LOW IMPACT DEVELOPMENT; INUNDATION; MODEL; PERFORMANCE; RUNOFF
AB Urban pluvial floods pose a significant risk to cities, occurring when precipitation exceeds the carrying capacity of the urban drainage network. Coupled green-grey infrastructure has emerged as a sustainable solution for mitigating urban pluvial floods. This study aims to explore best practices in the network configuration of urban drainage systems coupled with low-impact development (LID) to enhance flow distribution and stormwater infiltration. To do so, we focused on two competing key concepts in network analysis: (1) Centralization and (2) Decentralization. We integrated a one-dimensional stormwater model with a rapid flood spreading model to assess the flood mitigation performance of various centralized and decentralized network configurations in the Gangnam region of Seoul, South Korea. To further assess the combined effects of green and grey infrastructure, we compared the performance of each drainage network configuration with and without identical mixed LID practices. Here we show that the centralized drainage network scenario performed best in reducing flood volume by 40.3%, the decentralized drainage network scenario performed best in shortening flood duration by 47.8%, and the LID practices scenario performed best in mitigating peak flooding rates by 4.2%, each as independent scenarios. When all three scenarios were coupled together, flood volume could be reduced by 73.5%, flood duration by 54.7%, and peak flooding rates by 19.8% in the study area. This exploratory study underscores the potential of network analysis in urban flood research, particularly the effectiveness of loosely-connected network topology. Our findings contribute to the development of best practices for coupled green-grey infrastructure, facilitating sustainable stormwater management and urban flood resilience.
C1 [Park, Samuel] Seoul Natl Univ, Res Ctr Reg Climate Crisis Response, Seoul 08826, South Korea.
   [Park, Samuel] Purdue Univ, Lyles Sch Civil Engn, W Lafayette, IN 47907 USA.
   [Kang, Junsuk] Seoul Natl Univ, Interdisciplinary Program Landscape Architecture, Seoul 08826, South Korea.
   [Kang, Junsuk] Seoul Natl Univ, Transdisciplinary Program Smart City Global Conver, Seoul 08826, South Korea.
   [Yun, Hyeryeong; Kang, Junsuk] Seoul Natl Univ, Dept Landscape Architecture & Rural Syst Engn, Seoul 08826, South Korea.
   [Kang, Junsuk] Seoul Natl Univ, Res Inst Agr & Life Sci, Seoul 08826, South Korea.
   [Kim, Jaekyoung] Gangneung Wonju Natl Univ, Dept Environm Landscape Architecture, Kangnung 25457, South Korea.
   [Kim, Jaekyoung] Seoul Natl Univ, Res Inst Agr & Life Sci, Seoul 08826, South Korea.
C3 Seoul National University (SNU); Purdue University System; Purdue
   University; Seoul National University (SNU); Seoul National University
   (SNU); Seoul National University (SNU); Seoul National University (SNU);
   Gangneung-Wonju National University; Seoul National University (SNU)
RP Kang, J (corresponding author), Seoul Natl Univ, Interdisciplinary Program Landscape Architecture, Seoul 08826, South Korea.
EM junkang@snu.ac.kr
RI Kang, Junsuk/D-7764-2011
OI Kang, Junsuk/0000-0003-1131-9060
FU Korea Environment Industry & Technology Institute (KEITI) through
   "Climate Change R & D Project for New Climate Regime - Korea Ministry of
   Environment (MOE) [2022003570004]; National Research Foundation of Korea
   (NRF) grant - Korea government (MSIT) [RS-2023-00259403];
   Knowledge-based environmental service Program - Ministry of Environment
FX This work was supported by Korea Environment Industry & Technology
   Institute (KEITI) through "Climate Change R & D Project for New Climate
   Regime.", funded by Korea Ministry of Environment (MOE) (2022003570004)
   . This work was supported by the National Research Foundation of Korea
   (NRF) grant funded by the Korea government (MSIT) (No. RS-2023-00259403)
   . This work is supported by Knowledge-based environmental service
   Program funded by Ministry of Environment. We would like to thank the
   two anonymous reviewers for their valuable feedback, which helped
   improve earlier versions of this paper.
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NR 83
TC 6
Z9 6
U1 44
U2 55
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 NOV
PY 2024
VL 370
AR 122344
DI 10.1016/j.jenvman.2024.122344
EA SEP 2024
PG 17
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA H2S5K
UT WOS:001321988800001
PM 39244928
OA hybrid
DA 2025-04-22
ER

PT J
AU Reisinger, AJ
   Rosi, EJ
   Bechtold, HA
   Doody, TR
   Kaushal, SS
   Groffman, PM
AF Reisinger, Alexander J.
   Rosi, Emma J.
   Bechtold, Heather A.
   Doody, Thomas R.
   Kaushal, Sujay S.
   Groffman, Peter M.
TI Recovery and resilience of urban stream metabolism following Superstorm
   Sandy and other floods
SO ECOSPHERE
LA English
DT Article
DE disturbance; ecosystem respiration; flood; gross primary production;
   recovery; recurrence interval; resilience; resistance; Superstorm Sandy.
ID ECOSYSTEM METABOLISM; HEADWATER STREAMS; NITROGEN; CARBON; FLOW;
   URBANIZATION; RESTORATION; MACROINVERTEBRATE; DISTURBANCE; SUCCESSION
AB Urban streams are exposed to multiple different stressors on a regular basis, with increased hydrological flashiness representing a common urban stream stressor. Stream metabolism, the coupled ecosystem functions of gross primary production (GPP) and ecosystem respiration (ER), controls numerous other ecosystem functions and integrates multiple processes occurring within streams. We examined the effect of one large (Superstorm Sandy) and multiple small and moderately sized flood events in Baltimore, Maryland, to quantify the response and recovery of urban stream GPP and ER before and after floods of different magnitudes. We also compared GPP and ER before and after Superstorm Sandy to literature values. We found that both GPP and ER decreased dramatically immediately following floods of varying magnitudes, but on average GPP was more reduced than ER (80% and 66% average reduction in GPP and ER, respectively). Both GPP and ER recovered rapidly following floods within 4-18 d, and recovery intervals did not differ significantly between GPP and ER. During the two-week recovery following Superstorm Sandy, two urban streams exhibited a range of metabolic activity equivalent to similar to 15% of the entire range of GPP and ER reported in a recent meta-analysis of stream metabolism. Urban streams exhibit a substantial proportion of the natural variation in metabolism found across stream ecosystems over relatively short time scales. Not only does urbanization cause increased hydrological flashiness, it appears that metabolic activity in urban streams may be less resistant, but also more resilient to floods than in other streams draining undeveloped watersheds, which have been more studied. Our results show that antecedent conditions must be accounted for when drawing conclusions about stream metabolism measurements, and the rapid recovery and resilience of urban streams should be considered in watershed management and stream restoration strategies targeting ecosystem functions and services.
C1 [Reisinger, Alexander J.; Rosi, Emma J.; Groffman, Peter M.] Cary Inst Ecosyst Studies, Millbrook, NY 12545 USA.
   [Bechtold, Heather A.] Lock Haven Univ, Dept Biol Sci, Lock Haven, PA 17745 USA.
   [Doody, Thomas R.; Kaushal, Sujay S.] Univ Maryland, Dept Geol, Earth Syst Sci Interdisciplinary Ctr, College Pk, MD 20742 USA.
   [Groffman, Peter M.] CUNY, Brooklyn Coll, Adv Sci Res Ctr, Dept Earth & Environm Sci, New York, NY 10031 USA.
C3 Cary Institute of Ecosystem Studies; Pennsylvania State System of Higher
   Education (PASSHE); Lock Haven University; University System of
   Maryland; University of Maryland College Park; City University of New
   York (CUNY) System; Brooklyn College (CUNY)
RP Reisinger, AJ (corresponding author), Cary Inst Ecosyst Studies, Millbrook, NY 12545 USA.
EM reisingera@caryinstitute.org
RI Kaushal, Sujay/G-1062-2013; Rosi, Emma/F-1777-2011
OI Rosi, Emma/0000-0002-3476-6368; Reisinger,
   Alexander/0000-0003-4096-2637; Doody, Thomas/0000-0002-2102-738X
FU National Science Foundation Coastal SEES Grant [EAR-1426819]; Baltimore
   Ecosystem Study, a Long Term Ecological Research Station in Baltimore,
   Maryland (NSF Grant) [DEB-1027188]; Direct For Social, Behav & Economic
   Scie; Division Of Behavioral and Cognitive Sci [1444755] Funding Source:
   National Science Foundation; Division Of Earth Sciences; Directorate For
   Geosciences [1426844] Funding Source: National Science Foundation
FX We thank H. Wellard-Kelly for help collecting and organizing Superstorm
   Sandy data; D. Locke, J. Lagrosa, and C. Welty for help with GIS
   analyses; and participants in the Coastal SEES "sweet spots" project for
   help identifying study sites used in this study. A. Reisinger conceived
   of study, performed field research, analyzed data, and wrote first draft
   of paper; E. Rosi and H. Bechtold conceived of study, performed field
   research, and wrote the paper; S. Kaushal and P. Groffman conceived of
   study and wrote the paper; and T. Doody performed field research and
   wrote the paper. The authors declare no conflicts of interest. This
   project was supported by the National Science Foundation Coastal SEES
   Grant EAR-1426819 Award to P. Groffman, E. Rosi, and S. Kaushal, as well
   as support from the Baltimore Ecosystem Study (http://www.beslter.org),
   a Long Term Ecological Research Station in Baltimore, Maryland (NSF
   Grant DEB-1027188).
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NR 50
TC 39
Z9 49
U1 6
U2 54
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 2150-8925
J9 ECOSPHERE
JI Ecosphere
PD APR
PY 2017
VL 8
IS 4
AR e01776
DI 10.1002/ecs2.1776
PG 12
WC Ecology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA EU4FN
UT WOS:000400985300028
OA gold
DA 2025-04-22
ER

PT J
AU Sultana, P
   Thompson, PM
   Wesselink, A
AF Sultana, Parvin
   Thompson, Paul M.
   Wesselink, Anna
TI Coping and resilience in riverine Bangladesh
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article
DE Bangladesh; erosion; flood; infrastructure; migration; socio-hydrology
ID CLIMATE-CHANGE; FLOODPLAIN; VULNERABILITY; MANAGEMENT; FLOODS;
   INSTITUTIONS; ADAPTATION; DISASTERS; TEMPORARY; HAZARDS
AB This paper investigates the impacts of two successive years of severe floods on households, their coping strategies and resilience to riverine hazards in northern Bangladesh. Based on focus groups and interviews with the same households after floods in 2016 and 2017, we found a cumulative decline in assets through sale of livestock and borrowing, and almost all households evacuated short term to higher places. Three notable recent ways that vulnerable households use socio-hydrological landscapes to enhance their resilience to hazards were revealed. Firstly, local flood protection embankments were the main destination for evacuation and were highly valued as safe places, although they breached and failed to protect the land. Secondly, community organisations, formed mainly for livelihood enhancement, took initiatives to provide warnings, to help households relocate during floods, and to access relief and rehabilitation services. Thirdly, seasonal migration by men, particularly to urban areas, is an important element of long-term coping and resilience based on diversified livelihoods for about 70% of these rural households. Although the unintended use of infrastructure, social capital and urban opportunities all form part of coping and resilience strategies in hazardous riverine landscapes, the high mobility that they are based on is not supported by enabling policies.
C1 [Sultana, Parvin; Thompson, Paul M.] Middlesex Univ, Flood Hazard Res Ctr, London NW4 4BT, England.
C3 Middlesex University
RP Sultana, P (corresponding author), Middlesex Univ, Flood Hazard Res Ctr, London NW4 4BT, England.
EM parvin@agni.com
RI Wesselink, Anna/L-1791-2013
OI Sultana, Arifin/0000-0002-1014-5284
FU Netherlands Organisation for Scientific Research (NWO) Urbanising Deltas
   of the World programme [W 07.69.110]
FX This work was supported by the Netherlands Organisation for Scientific
   Research (NWO) Urbanising Deltas of the World programme under grant
   number W 07.69.110.
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NR 42
TC 19
Z9 19
U1 3
U2 29
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 JAN 1
PY 2020
VL 19
IS 1
SI SI
BP 70
EP 89
DI 10.1080/17477891.2019.1665981
EA SEP 2019
PG 20
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA JZ5DV
UT WOS:000486557600001
DA 2025-04-22
ER

PT J
AU Krueger, EH
   Borchardt, D
   Jawitz, JW
   Rao, PSC
AF Krueger, Elisabeth H.
   Borchardt, Dietrich
   Jawitz, James W.
   Rao, P. Suresh C.
TI Balancing security, resilience, and sustainability of urban water supply
   systems in a desirable operating space
SO ENVIRONMENTAL RESEARCH LETTERS
LA English
DT Article
DE sustainable governance; Capital Portfolio Approach (CPA); water
   footprint; ecological footprint; coupled natural-human-engineered
   systems (CNHE); poverty trap; rigidity trap
ID MANAGEMENT; INFRASTRUCTURE; CHALLENGES; FOOTPRINT; CHENNAI; MARKETS;
   DEMAND; TRADE; AREAS; SAFE
AB The security, resilience, and sustainability of urban water supply systems (UWSS) are challenged by global change pressures, including climate and land use changes, rapid urbanization, and population growth. Building on prior work on UWSS security and resilience, we quantify the sustainability of UWSS based on the performance of local sustainable governance and the size of global water and ecological footprints. We develop a new framework that integrates security, resilience, and sustainability to investigate trade-offs between these three distinct and inter-related dimensions. Security refers to the level of services, resilience is the system's ability to respond to and recover from shocks, and sustainability refers to local and global impacts, and to the long-term viability of system services. Security and resilience are both relevant at local scale (city and surroundings), while for sustainability cross-scale and -sectoral feedbacks are important. We apply the new framework to seven cities selected from diverse hydro-climatic and socio-economic settings on four continents. We find that UWSS security, resilience, and local sustainability coevolve, while global sustainability correlates negatively with security. Approaching these interdependent goals requires governance strategies that balance the three dimensions within desirable and viable operating spaces. Cities outside these boundaries risk system failure in the short-term, due to lack of security and resilience, or face long-term consequences of unsustainable governance strategies. We discuss these risks in the context of poverty and rigidity traps. Our findings have strong implications for policy-making, strategic management, and for designing systems to operate sustainably at local and global scales.
C1 [Krueger, Elisabeth H.; Borchardt, Dietrich] UFZ Helmholtz Ctr Environm Res, Dept Aquat Ecosyst Anal, Permoserstr 15, D-04318 Leipzig, Germany.
   [Krueger, Elisabeth H.; Rao, P. Suresh C.] Purdue Univ, Lyles Sch Civil Engn, 550 Stadium Mall Dr, W Lafayette, IN 47907 USA.
   [Jawitz, James W.] Univ Florida, Soil & Water Sci Dept, Gainesville, FL 32611 USA.
   [Rao, P. Suresh C.] Purdue Univ, Agron Dept, W Lafayette, IN 47907 USA.
   [Krueger, Elisabeth H.] Princeton Univ, Princeton Environm Inst, Princeton, NJ 08544 USA.
C3 Helmholtz Association; Helmholtz Center for Environmental Research
   (UFZ); Purdue University System; Purdue University; State University
   System of Florida; University of Florida; Purdue University System;
   Purdue University; Princeton University
RP Krueger, EH (corresponding author), UFZ Helmholtz Ctr Environm Res, Dept Aquat Ecosyst Anal, Permoserstr 15, D-04318 Leipzig, Germany.; Krueger, EH (corresponding author), Purdue Univ, Lyles Sch Civil Engn, 550 Stadium Mall Dr, W Lafayette, IN 47907 USA.; Krueger, EH (corresponding author), Princeton Univ, Princeton Environm Inst, Princeton, NJ 08544 USA.
EM ekrueger@princeton.edu
RI Srinivasa Rao, Prof. P/ABG-1688-2021; Krueger, Elisabeth/AEW-8947-2022;
   Borchardt, Dietrich/D-1729-2009
OI Krueger, Elisabeth/0000-0003-0630-3363; Borchardt,
   Dietrich/0000-0002-6074-2829; Rao, P. Suresh C./0000-0002-5982-3736
FU Helmholtz Centre for Environmental Research-UFZ; Purdue University
   through a Lynn Fellowship - ESE-IGP; Purdue Climate Change Research
   Center (PCCRC); Lee A Rieth Endowment in the Lyles School of Civil
   Engineering; NSF [1441188]
FX This work was funded in part by Helmholtz Centre for Environmental
   Research-UFZ and by Purdue University through a Lynn Fellowship awarded
   by ESE-IGP, the Purdue Climate Change Research Center (PCCRC), and the
   Lee A Rieth Endowment in the Lyles School of Civil Engineering.
   Additional support came from NSF Award No. 1441188. Constructive input
   was provided by Wolfram Barfuss at Max-Planck-Institute for Mathematics
   in the Sciences, Leipzig, and four anonymous reviewers. The authors
   thank Soohyun Yang for her support in adapting the modeling code.
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NR 68
TC 26
Z9 26
U1 7
U2 57
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 MAR
PY 2020
VL 15
IS 3
AR 035007
DI 10.1088/1748-9326/ab6c2d
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 KS9RV
UT WOS:000518648500001
OA gold
DA 2025-04-22
ER

PT J
AU Fernando, FN
   Maloney, M
   Tappel, L
AF Fernando, Felix N.
   Maloney, Meg
   Tappel, Lauren
TI Perceptions of Urban Community Resilience: Beyond Disaster Recovery in
   the Face of Climate Change
SO SUSTAINABILITY
LA English
DT Article
DE community resilience; basic resilience; adaptive resilience;
   transformative resilience; disaster recovery; climate change
ID ADAPTATION
AB Resilience of human systems has increasingly become a popular topic of research. The aim of this article is to present a juxtaposition of public officials' and residents' perceptions of community resilience along the three-class typology of resilience (basic, adaptive, and transformative) using Dayton, OH as a case study. A two-pronged data collection approach was designed to recruit public officials and residents. This approach was structured using the Community Capitals Framework. A multi-chain referral sampling process (and subsequent snowball sampling) was initiated subsequently. The data were gathered through semi-structured interviews with 75 participants. The interviews were analyzed using a three-tiered deductive structural coding approach. The findings highlight the similarities and differences in resilience perceptions between public officials and community members along the three-class typology of resilience that could inform creative policy initiatives. The factors that might undergird residents' and public officials' perceptions of resilience are discussed. Based on these perceptions, the importance of social capital, communication infrastructure, and addressing chronic stressors are discussed as important strategies to build community resilience, in addition to focusing on essential community infrastructure systems (such as roads, energy, water, sewer, and gas systems).
C1 [Fernando, Felix N.] Univ Dayton, Hanley Sustainabil Inst, Dayton, OH 45469 USA.
   [Maloney, Meg] Off Sustainabil, Dayton, OH 45402 USA.
   [Tappel, Lauren] Dayton Metro Lib, Dayton, OH 45402 USA.
C3 University System of Ohio; University of Dayton
RP Fernando, FN (corresponding author), Univ Dayton, Hanley Sustainabil Inst, Dayton, OH 45469 USA.
EM wfernando1@udayton.edu; meg.maloney@daytonohio.gov;
   ltappel@daytonmetrolibrary.org
FU Hanley Sustainability Institute, University of Dayton
FX This research received no external funding. The APC was funded by the
   Hanley Sustainability Institute, University of Dayton.
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NR 53
TC 3
Z9 3
U1 9
U2 18
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD OCT
PY 2023
VL 15
IS 19
AR 14543
DI 10.3390/su151914543
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 U3KX0
UT WOS:001083831300001
OA gold
DA 2025-04-22
ER

PT J
AU Zhou, YM
   Wang, JW
   Yang, H
AF Zhou, Yaoming
   Wang, Junwei
   Yang, Hai
TI Resilience of Transportation Systems: Concepts and Comprehensive Review
SO IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS
LA English
DT Review
DE Resilience; Roads; Databases; Earthquakes; Measurement; Hurricanes;
   Enhancement; measurement; resilience; transportation
ID URBAN ROAD NETWORKS; GRAPH-THEORY; COMPONENT IMPORTANCE; INFRASTRUCTURE;
   VULNERABILITY; RECOVERY; OPTIMIZATION; CRITICALITY; STRATEGIES;
   MANAGEMENT
AB The resilience of transportation systems has been extensively studied in the past decade. This paper aims to provide a synthesis of the up-to-date literature on resilient transportation, focusing on concepts and methodologies. A systematic literature search method integrating database search, related journal search, and citation supplement is proposed to select all the appropriate articles. Based on the selected core papers, the definition of resilience is examined, and some related concepts are compared. The main body of the paper is devoted to the review of metrics and mathematical models used to measure resilience and the strategies used to enhance resilience. Several popular subtopics are identified and discussed. Finally, current research gaps and challenges are addressed, and some potential research directions are presented.
C1 [Zhou, Yaoming; Wang, Junwei] Univ Hong Kong, Shenzhen Inst Res & Innovat, Dept Ind & Mfg Syst Engn, Hong Kong, Peoples R China.
   [Yang, Hai] Hong Kong Univ Sci & Technol, Dept Civil & Environm Engn, Hong Kong, Peoples R China.
C3 The University of Hong Kong Shenzhen Institute of Research & Innovation;
   University of Hong Kong; Hong Kong University of Science & Technology
RP Wang, JW (corresponding author), Univ Hong Kong, Shenzhen Inst Res & Innovat, Dept Ind & Mfg Syst Engn, Hong Kong, Peoples R China.
EM u3003580@connect.hku.hk; jwwang@hku.hk; cehyang@ust.hk
RI Zhou, Yaoming/ABB-8030-2021; Wang, J. W./E-1263-2013; Yang,
   Hai/F-8848-2011
OI Wang, J. W./0000-0001-8895-2214; Zhou, Yaoming/0000-0003-4080-5658;
   Yang, Hai/0000-0001-5210-8468
FU National Natural Science Foundation of China (NSFC) [71571156]; Research
   Grants Council of the Hong Kong Special Administrative Region, China
   [T32-101/15-R]; University of Hong Kong through the Seed Fund for Basic
   Research [201611159213]; State Key Laboratory of Synthetical Automation
   for Process Industries [PAL-N201802]
FX This work was supported in part by the National Natural Science
   Foundation of China (NSFC) under Grant 71571156, in part by a grant from
   the Research Grants Council of the Hong Kong Special Administrative
   Region, China, under Project T32-101/15-R, in part by The University of
   Hong Kong through the Seed Fund for Basic Research under Grant
   201611159213, and in part by the open project funded by the State Key
   Laboratory of Synthetical Automation for Process Industries under Grant
   PAL-N201802.
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NR 125
TC 236
Z9 276
U1 103
U2 648
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 DEC
PY 2019
VL 20
IS 12
BP 4262
EP 4276
DI 10.1109/TITS.2018.2883766
PG 15
WC Engineering, Civil; Engineering, Electrical & Electronic; Transportation
   Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Transportation
GA KA0WX
UT WOS:000505522400001
HC Y
HP N
DA 2025-04-22
ER

PT J
AU Yusuf, DA
   Zhu, J
   Khaing, CT
   Adamu, S
   Bala, HS
AF Yusuf, Danjuma Abdu
   Zhu, Jie
   Khaing, Chaw Thiri
   Adamu, Shafi'u
   Bala, Hisham Sharif
TI Regulating urban metabolism in semi-arid regions: Classification and
   valuation of urban open spaces ecosystem services in metropolitan Kano
SO ENVIRONMENTAL DEVELOPMENT
LA English
DT Article
DE Urban metabolism; Ecosystem services (ES); Urban landscape; Green
   infrastructure (UGI); Spatial equity; Socio-ecological sustainability;
   Biodiversity conservation; Low-carbon; UHI mitigation
ID PHYSICAL-ACTIVITY; CARBON STOCKS; GREEN SPACE; VEGETATION; BIODIVERSITY;
   QUALITY; TRENDS; AREAS; PARKS; TREES
AB As urban landscapes in metropolitan Kano undergo significant transformations and face rapid decline, this study emphasizes the need for mindful and strategic interventions. It focuses on investigating the regulation of urban metabolism while purposefully identifying, classifying, and evaluating ecosystem services within 46 urban open spaces in the semi-arid region of Kano, Nigeria. The research is grounded in a systematic review of existing literature and empirical methodologies, including field surveys, inventory analysis, and principal component analysis (PCA). Through a typology framework and ecosystem service assessment models, the research identifies key indicators such as air quality enhancement, noise reduction, urban heat mitigation, water quality improvement, and hydrological infiltration. The analysis reveals significant variability in ecosystem service provision among diverse open space typologies, including woodlands, botanical gardens, pocket parks, transit spaces and cemeteries, emphasizing the essential role of green infrastructure in fostering urban resilience. Results show that urban open spaces with extensive natural vegetation exhibit the highest multi-functionality, particularly in regulating services, supporting biodiversity, and enhancing socio-ecological well-being. The study also proposes tailored optimization strategies for distinct urban open space types, addressing challenges related to urban metabolism and ecosystem disturbances. These findings contributes a comprehensive framework for urban stakeholders and policymakers to improve sustainability and resilience in semi-arid urban environments by integrating green infrastructure, enhancing land use efficiency, and fostering inclusive and adaptive management practices.
C1 [Yusuf, Danjuma Abdu; Zhu, Jie; Khaing, Chaw Thiri; Adamu, Shafi'u] Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400044, Peoples R China.
   [Yusuf, Danjuma Abdu] Aliko Dangote Univ Sci & Technol, Dept Architecture, Wudil 713101, Kano, Nigeria.
   [Yusuf, Danjuma Abdu; Zhu, Jie] Chongqing Univ, Key Lab New Technol Construction Cities Mt Areas, Chongqing 400044, Peoples R China.
   [Adamu, Shafi'u] Aliko Dangote Univ Sci & Technol, Dept Urban & Reg Planning, Wudil 713101, Kano, Nigeria.
   [Bala, Hisham Sharif] Chongqing Univ, Sch Civil Engn, Chongqing 400044, Peoples R China.
   [Bala, Hisham Sharif] Chongqing Univ, Natl Ctr Int Res Green Bldg & Built Environm, Chongqing 400044, Peoples R China.
C3 Chongqing University; Chongqing University; Chongqing University;
   Chongqing University
RP Yusuf, DA (corresponding author), Chongqing Univ, Sch Architecture & Urban Planning, Chongqing 400044, Peoples R China.
EM yusufdanjuma@gmail.com
RI YUSUF, DANJUMA ABDU/AAA-1332-2022
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NR 101
TC 0
Z9 0
U1 8
U2 8
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2211-4645
EI 2211-4653
J9 ENVIRON DEV
JI Environ. Dev.
PD JUN
PY 2025
VL 54
AR 101165
DI 10.1016/j.envdev.2025.101165
EA FEB 2025
PG 19
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA Y0C5U
UT WOS:001428916200001
DA 2025-04-22
ER

PT J
AU Savage, AM
   Youngsteadt, E
   Ernst, AF
   Powers, SA
   Dunn, RR
   Frank, SD
AF Savage, Amy M.
   Youngsteadt, Elsa
   Ernst, Andrew F.
   Powers, Shelby A.
   Dunn, Robert R.
   Frank, Steven D.
TI Homogenizing an urban habitat mosaic: arthropod diversity declines in
   New York City parks after Super Storm Sandy
SO ECOLOGICAL APPLICATIONS
LA English
DT Article
DE biotic homogenization; disturbance adapted; diversity; extreme weather;
   hurricane; New York City; Super Storm Sandy; tipping point; urban
   ecology
ID SUBTROPICAL FOREST; HURRICANE-KATRINA; COMMUNITIES; EVENTS; FREQUENCY;
   STRESSORS; RESPONSES; IMPACTS
AB The frequency and intensity of hurricanes are increasing globally, and anthropogenic modifications in cities have created systems that may be particularly vulnerable to their negative effects. Organisms living in cities are exposed to variable levels of chronic environmental stress. However, whether chronic stress ameliorates or exacerbates the negative effects of hurricanes remains an open question. Here, we consider two hypotheses about the simultaneous consequences of acute disturbances from hurricanes and chronic stress from urbanization for the structure of urban arthropod communities. The tipping point hypothesis posits that organisms living in high stress habitats are less resilient than those in low stress habitats because they are living near the limits of their environmental tolerances; while the disturbance tolerance hypothesis posits that high stress habitats host organisms pre-adapted for coping with disturbance, making them more resilient to the effects of storms. We used a before-after-control-impact design in the street medians and city parks of Manhattan (New York City, New York, USA) to compare arthropod communities before and after Super Storm Sandy in sites that were flooded and unflooded during the storm. Our evidence supported the disturbance tolerance hypothesis. Significant compositional differences between street medians and city parks before the storm disappeared after the storm; similarly, unflooded city parks had significantly different arthropod composition while flooded sites were indistinguishable. These differences were driven by reduced occurrences and abundances of arthropods in city parks. Finally, those arthropod groups that were most tolerant to urban stress were also the most tolerant to flooding. Our results suggest that the species that survive in high stress environments are likely to be the ones that thrive in response to acute disturbance. As storms become increasingly common and extreme, this juxtaposition in responses to storm-associated disturbance may lead to diversity loss in cities, potentially leading entire urban landscapes to mirror the reduced diversity of street medians.
C1 [Savage, Amy M.] Rutgers State Univ, Waterfront Technol Ctr, Ctr Computat & Integrat Biol, Dept Biol, 200 Fed St, Camden, NJ 08103 USA.
   [Youngsteadt, Elsa; Frank, Steven D.] North Carolina State Univ, Keck Ctr Behav Biol, Dept Entomol & Plant Pathol, Campus Box 7617, Raleigh, NC 27695 USA.
   [Ernst, Andrew F.] BASF Corp, 26 Davis Dr, Res Triangle Pk, NC 27709 USA.
   [Powers, Shelby A.] East Carolina Univ, Brody Sch Med, 600 Moye Blvd, Greenville, NC 27834 USA.
   [Dunn, Robert R.] North Carolina State Univ, Keck Ctr Behav Biol, Dept Appl Ecol, Campus Box 7617, Raleigh, NC 27695 USA.
C3 Rutgers University System; Rutgers University Camden; Rutgers University
   New Brunswick; North Carolina State University; BASF; University of
   North Carolina; East Carolina University; North Carolina State
   University
RP Savage, AM (corresponding author), Rutgers State Univ, Waterfront Technol Ctr, Ctr Computat & Integrat Biol, Dept Biol, 200 Fed St, Camden, NJ 08103 USA.
EM amy.savage@rutgers.edu
RI Dunn, Robert/B-1360-2013
OI Dunn, Robert/0000-0002-6030-4837; Powers, Shelby/0000-0001-7854-935X;
   Youngsteadt, Elsa/0000-0003-2032-9674; Frank, Steven/0000-0002-4185-2678
FU NSF RAPID [1318655]; United States Geological Survey [G11AC20471,
   G13AC00405]; Division Of Environmental Biology; Direct For Biological
   Sciences [1318655] Funding Source: National Science Foundation
FX This study was funded by an NSF RAPID (1318655) to S. D. Frank and R. R.
   Dunn. It was also supported by Cooperative Agreement No. G11AC20471 and
   G13AC00405 from the United States Geological Survey to R. R. Dunn and S.
   D. Frank. Its contents are solely the responsibility of the authors and
   do not necessarily represent the views of the Department of the Interior
   Southeast Climate Science Center or the USGS. This manuscript is
   submitted for publication with the understanding that the United States
   Government is authorized to reproduce and distribute reprints for
   Governmental purposes.
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NR 41
TC 10
Z9 13
U1 0
U2 32
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 JAN
PY 2018
VL 28
IS 1
BP 225
EP 236
DI 10.1002/eap.1643
PG 12
WC Ecology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA GB4BJ
UT WOS:000429004700017
PM 29281147
DA 2025-04-22
ER

PT J
AU Jun, B
   Jara-Figueroa, C
   Yu, D
AF Jun, Bogang
   Jara-Figueroa, C.
   Yu, Donghyeon
TI The economic resilience of a city: the effect of relatedness on the
   survival of amenity shops during the COVID-19 pandemic
SO CAMBRIDGE JOURNAL OF REGIONS ECONOMY AND SOCIETY
LA English
DT Article
DE resilience; amenity space; relatedness; Covid-19; O18; R12; R30
ID REGIONAL RESILIENCE; CRISIS; INDUSTRIAL; GROWTH; KNOWLEDGE; VARIETY;
   CITIES; EUROPE; SHOCKS
AB Amenity clusters consisting of coffee shops, restaurants and other small businesses improve urban life and are a source of employment for city dwellers. Although most small business clusters were hit hard by restrictions imposed during the COVID-19 pandemic, some were able to adapt. What determines the economic resilience of amenity clusters? Using store-location data for Seoul from 2016 to 2021, we identify spatial clusters of amenities, and from that build an amenity space to examine the effect of relatedness on the resilience of each cluster. We find that businesses are more likely to survive when located in clusters of related amenities.
C1 [Jun, Bogang] Inha Univ, Dept Econ, Incheon, South Korea.
   [Jun, Bogang; Yu, Donghyeon] Inha Univ, Dept Data Sci, Incheon, South Korea.
   [Jara-Figueroa, C.] MIT, Media Lab, 77 Massachusetts Ave, Cambridge, MA 02139 USA.
   [Yu, Donghyeon] Inha Univ, Dept Stat, Incheon, South Korea.
C3 Inha University; Inha University; Massachusetts Institute of Technology
   (MIT); Inha University
RP Jun, B (corresponding author), Inha Univ, Dept Econ, Incheon, South Korea.; Jun, B (corresponding author), Inha Univ, Dept Data Sci, Incheon, South Korea.
EM bogang.jun@inha.ac.kr; cristian.jara.figueroa@gmail.com; dyu@inha.ac.kr
RI Jun, Bogang/AAW-6029-2020
OI Jun, Bogang/0000-0003-4994-702X
FU National Research Foundation of Korea [NRF-2020R1F1A1072673,
   NRF-2020R1F1A1A01048127]; Inha University
FX We appreciate the comments of two reviewers. Also, we thank to Jinsu
   Park for help with data, and George Strong and David Connors for their
   comments. This project is funded by the National Research Foundation of
   Korea (NRF-2020R1F1A1072673 and NRF-2020R1F1A1A01048127). We also
   acknowledge the support of the Inha University.
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NR 48
TC 9
Z9 9
U1 3
U2 47
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 DEC 12
PY 2022
VL 15
IS 3
SI SI
BP 551
EP 573
DI 10.1093/cjres/rsac029
EA SEP 2022
PG 23
WC Development Studies; Economics; Geography
WE Social Science Citation Index (SSCI)
SC Development Studies; Business & Economics; Geography
GA 7K8AC
UT WOS:000850870600001
DA 2025-04-22
ER

PT J
AU Wang, XQ
   Kinsland, G
   Poudel, D
   Fenech, A
AF Wang, Xiuquan
   Kinsland, Gary
   Poudel, Durga
   Fenech, Adam
TI Urban flood prediction under heavy precipitation
SO JOURNAL OF HYDROLOGY
LA English
DT Article
DE Urban flood prediction; Climate change; Heavy precipitation; Reverse
   flow; Flooding risk; Flood map; Urban resilience
ID NUMERICAL-SOLUTION; CLIMATE-CHANGE; MODEL; INFILTRATION; EQUATIONS;
   RISK; UNCERTAINTY; CALIBRATION; CHALLENGES; COVER
AB Increasing city resilience to floods under climate change has become one of the major challenges for decision makers, urban planners, and engineering practitioners around the world. Accurate prediction of urban floods under heavy precipitation is critically important to address such a challenge as it can help understand the vulnerability of a city to future climate change and simulate the effectiveness of various sustainable engineering techniques in reducing urban flooding risks in real urban settings. Here, we propose a new model for urban flood prediction under heavy precipitation. The model divides an irregular urban area into many grid cells with no limitation on the spatial resolution as long as the DEM data of the same resolution are available. It is capable of reflecting the frequent inflow or outflow interactions among grid cells and capturing the rapid generation of surface runoff in urban areas during heavy rainfall. The model also accounts for typical characteristics of urban areas, such as large-scale impermeable surfaces and urban drainage systems, in order to simulate urban floods more realistically. In addition, the model uses both surface elevation and instantaneous surface water depth of all grid cells to dynamically determine the directions of horizontal inflow and outflow during each time step of model simulation. This enables the model to capture the reverse-flow phenomenon which is commonly seen in flat urban areas during heavy storms. By applying the proposed model for reproducing the 2016 flood in Lafayette Parish, Louisiana, we demonstrate its effectiveness in predicting real-world flood events.
C1 [Wang, Xiuquan; Fenech, Adam] Univ Prince Edward Isl, Sch Climate Change & Adaptat, Charlottetown, PE C1A 4P3, Canada.
   [Kinsland, Gary; Poudel, Durga] Univ Louisiana Lafayette, Sch Geosci, Lafayette, LA 70503 USA.
C3 University of Prince Edward Island; University of Louisiana Lafayette
RP Wang, XQ (corresponding author), Univ Prince Edward Isl, Sch Climate Change & Adaptat, Charlottetown, PE C1A 4P3, Canada.
EM xxwang@upei.ca
RI Wang, Xander/Q-9659-2018
OI Wang, Xander/0000-0002-3718-3416
FU University of Prince Edward Island; Natural Science and Engineering
   Research Council of Canada
FX This research was supported by University of Prince Edward Island and
   the Natural Science and Engineering Research Council of Canada. The 5 m
   DEM data for Lafayette Parish are available for-public access through
   Louisiana Atlas GIS Platform (https://maps.ga.lsu.edu/lidar2000/).The
   land cover data (i.e., NLCD 2011) are available for public access at
   https://www.mr1c.gov/nlcd2011.php.The soil texture data (i.e., SSURGO)
   are available for public access at:
   https://websoilsurvey.sc.egov.usda.gov/App/WebSoilSurvey.aspx.The data
   for groundwater level of Lafayette Parish are derived from the National
   Water Information System (NWIS) which is accessible via the USGS Water
   Data Web Interface (https://waterdata.usgs.gov/nwis).The precipitation
   data for Lafayette Parish during the 2016 flood are available for public
   access at: https://www.ncdc.noaa.gov/cdo-web/.The data for soil moisture
   content are obtained from the National Integrated Drought Information
   System (NIDIS) which is available for public access at:
   https://www.drought.gov/drought/data-gallery/soilmoisture.
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NR 71
TC 70
Z9 75
U1 14
U2 137
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0022-1694
EI 1879-2707
J9 J HYDROL
JI J. Hydrol.
PD OCT
PY 2019
VL 577
AR 123984
DI 10.1016/j.jhydrol.2019.123984
PG 21
WC Engineering, Civil; Geosciences, Multidisciplinary; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Geology; Water Resources
GA JB1ET
UT WOS:000488304300087
OA Bronze
DA 2025-04-22
ER

PT J
AU Miller, S
AF Miller, Shaleen
TI Greenspace After a Disaster: The Need to Close the Gap With Recovery for
   Greater Resilience
SO JOURNAL OF THE AMERICAN PLANNING ASSOCIATION
LA English
DT Article
DE disaster; green infrastructure; hurricanes; parks; resilience
ID COMMUNITY RESILIENCE; URBAN; INFRASTRUCTURE; FRAMEWORK; WATER
AB Parks and greenspace planning have often been limited to environmental planning; however, these spaces' ecological benefits may also protect communities from hazards and their negative outcomes, thereby increasing resiliency. Although hazard planning has begun to consider nature-based mitigation solutions, the postdisaster recovery planning of these greenspaces is rare. This can result in a loss of function, a delay in the return to normality, and lost opportunity for increasing park, greenspace, and community resilience. Here I discuss the nature of green infrastructure after a disaster, using examples from both literature and recent North American hurricanes, to suggest the need to add parks and greenspaces to recovery and resilience planning.
C1 [Miller, Shaleen] Florida State Univ, Tallahassee, FL 32306 USA.
   [Miller, Shaleen] Univ N Carolina, Chapel Hill, NC 27515 USA.
C3 State University System of Florida; Florida State University; University
   of North Carolina; University of North Carolina Chapel Hill
RP Miller, S (corresponding author), Florida State Univ, Tallahassee, FL 32306 USA.; Miller, S (corresponding author), Univ N Carolina, Chapel Hill, NC 27515 USA.
EM Sam15s@my.fsu.edu
RI Miller, Shaleen/AAB-3638-2021
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NR 78
TC 12
Z9 15
U1 5
U2 54
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0194-4363
EI 1939-0130
J9 J AM PLANN ASSOC
JI J. Am. Plan. Assoc.
PD JUL 2
PY 2020
VL 86
IS 3
BP 339
EP 348
DI 10.1080/01944363.2020.1730223
EA APR 2020
PG 10
WC Regional & Urban Planning; Urban Studies
WE Social Science Citation Index (SSCI)
SC Public Administration; Urban Studies
GA NR4EP
UT WOS:000523138800001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Anelli, D
   Tajani, F
   Ranieri, R
AF Anelli, Debora
   Tajani, Francesco
   Ranieri, Rossana
TI Urban resilience against natural disasters: Mapping the risk with an
   innovative indicators-based assessment approach
SO JOURNAL OF CLEANER PRODUCTION
LA English
DT Article
DE Sustainable development; Risk assessment; Synthetic index; Urban
   resilience; Multi-criteria analysis; Natural disaster risk; Land take;
   Decision support model; Evaluation model
ID ECOSYSTEM SERVICES; VULNERABILITY; MITIGATION; HAZARDS; MODEL; ROME
AB The increase in the frequency and intensity through which natural disasters have hit cities in the last twenty years has created the need to prefigure a model of sustainable urban development not only consistent with the goals promoted by the Agenda 2030, but also efficient in the regulation of the main cause of the natural disasters: consumption of natural soil. Therefore, the aim of the research is to define an indicators-based methodology for determining a synthetic natural risk index, which represents the degree of territorial exposure to multiple natural disasters in the different sub-urban areas within a vulnerable city. The proposed methodology is structured into eight sequential and ordered phases that comply a system of 23 indicators for the three main components of natural risk (hazard, exposure and vulnerability). Their importance is accounted in the final aggregation of the index through the application of the Analytic Hierarchy Process multi-criteria evaluation technique. The validated results achieved by the application of the proposed methodology to the city of Rome (Italy), represented in a georeferenced map of the risk level of natural disasters, allow to immediately identify the most critical sub-urban areas on the west coast of the "Tevere " river. The proposed risk index may be useful for public and private subjects involved in the predisposition of sustainable urban plans and projects, aimed at improving the level of urban resilience connected to natural disasters aggravated by land consumption. In this way the targets of Goals n.13 "Reducing climate change " and n.15 "Life on Earth " of the Agenda 2030 can be applied at the sub-urban scale.
C1 [Anelli, Debora] Polytech Univ Bari, Dept Civil Environm Land Bldg Engn & Chem, Via Orabona 4, I-70125 Bari, Italy.
   [Tajani, Francesco; Ranieri, Rossana] Sapienza Univ Rome, Dept Architecture & Design, Via Flaminia 359, I-00196 Rome, Italy.
C3 Politecnico di Bari; Sapienza University Rome
RP Anelli, D (corresponding author), Polytech Univ Bari, Dept Civil Environm Land Bldg Engn & Chem, Via Orabona 4, I-70125 Bari, Italy.
EM debora.anelli@poliba.it; francesco.tajani@uniroma1.it;
   rossana.ranieri@uniroma1.it
RI Ranieri, Rossana/ITV-6694-2023; Anelli, Debora/JEF-6213-2023
OI Ranieri, Rossana/0000-0001-7979-5472; Anelli, Debora/0000-0001-6235-3440
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NR 61
TC 35
Z9 36
U1 10
U2 66
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 OCT 15
PY 2022
VL 371
AR 133496
DI 10.1016/j.jclepro.2022.133496
EA AUG 2022
PG 23
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 4X8HW
UT WOS:000861079000005
OA Green Published
DA 2025-04-22
ER

PT J
AU Khaghani, F
   Jazizadeh, F
AF Khaghani, Farnaz
   Jazizadeh, Farrokh
TI mD-Resilience: A Multi-Dimensional Approach for Resilience-Based
   Performance Assessment in Urban Transportation
SO SUSTAINABILITY
LA English
DT Article
DE resilience; transportation systems; congestion; sustainable mobility;
   PeMS; traffic; mobility; Data Envelopment Analysis
ID RELIABILITY
AB As demonstrated for extreme events, the resilience concept is used to evaluate the ability of a transportation system to resist and recover from disturbances. Motivated by the high cumulative impact of recurrent perturbations on transportation systems, we have investigated resilience quantification as a performance assessment method for high-probability low-impact (HPLI) disturbances such as traffic congestions. Resilience-based metrics are supplementary to conventional travel-time-based indices in literature. However, resilience is commonly quantified as a scalar variable despite its multi-dimensional nature. Accordingly, by hypothesizing increased information gain in performance assessment, we have investigated a multi-dimensional approach (mD-Resilience) for resilience quantification. Examining roadways' resilience to recurrent congestions as a contributor to sustainable mobility, we proposed to measure resilience with several attributes that characterize the degradation stage, the recovery stage, and possible recovery paths. These attributes were integrated into a performance index by using Data Envelopment Analysis (DEA) as a non-parametric method. We demonstrated the increased information gain by quantifying the performance of major freeways in Los Angeles, California using Performance Measurement System (PeMS) data. The comparison of mD-Resilience approach with the method based on area under resilience curves showed its potential in distinguishing the severity of congestions. Furthermore, we showed that mD-Resilience also characterizes performance from the lens of delay and bottleneck severities.
C1 [Khaghani, Farnaz; Jazizadeh, Farrokh] Virginia Tech, Dept Civil & Environm Engn, Blacksburg, VA 24061 USA.
C3 Virginia Polytechnic Institute & State University
RP Jazizadeh, F (corresponding author), Virginia Tech, Dept Civil & Environm Engn, Blacksburg, VA 24061 USA.
EM farnazk@vt.edu; jazizade@vt.edu
RI Jazizadeh, Farrokh/P-8822-2014
OI Jazizadeh, Farrokh/0000-0002-0690-1307
FU Virginia Tech's Open Access Subvention Fund (VT OASF)
FX This work was supported in part by Virginia Tech's Open Access
   Subvention Fund (VT OASF).
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NR 57
TC 7
Z9 9
U1 4
U2 45
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUN
PY 2020
VL 12
IS 12
AR 4879
DI 10.3390/su12124879
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 MM6UH
UT WOS:000550289500001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Bialecki, MB
   Fahey, RT
   Scharenbroch, B
AF Bialecki, Margaret B.
   Fahey, Robert T.
   Scharenbroch, Bryant
TI Variation in urban forest productivity and response to extreme drought
   across a large metropolitan region
SO URBAN ECOSYSTEMS
LA English
DT Article
DE Urban forest; Land use; Drought; Resilience; Climate; Tree growth
ID LAND-USE; DENDROCHRONOLOGICAL ANALYSIS; CLIMATIC RESPONSE; CARBON
   STORAGE; TREE SURVIVAL; DIE-OFF; GROWTH; VULNERABILITY; AREA;
   SENSITIVITY
AB The growth and survival of urban trees and maintenance of urban forest canopy are important considerations in adaptation of urban regions to climate change, especially in relation to increasing frequency of extreme climatic events such as drought. However, urban forest growth and drought response may vary considerably within large urban landscapes across gradients in land use, urbanization, forest composition and structure, and environmental factors. We quantified urban forest growth and resilience and resistance to extreme drought in the greater Chicago metropolitan region based on patterns of annual basal area production from increment core analysis. We evaluated variation in growth and drought response in relation to a broad urban to rural gradient, land-use categories, local-scale environmental predictors, and forest community characteristics. Urban forest growth varied greatly among land-use classes and major genera. Plot-level variation in productivity was predicted most strongly (R-2 = 0.53) by total plot-level basal area, canopy height, species composition, soil and ground-cover characteristics, and position within the urban-rural gradient. Urban forest growth was strongly related to regional meteorological drought. In periods of extreme drought conditions growth declined in the year of the drought (i.e., was not resistant to drought effects), but was highly resilient to drought in the subsequent 5 year period. Drought response did not vary consistently across land-use classes or among major genera, and site or community characteristics had little explanatory power in predicting drought response. Improved understanding of factors driving variation in urban forest growth and drought response could help inform adaptation-focused urban forest management strategies.
C1 [Bialecki, Margaret B.] Univ Minnesota, Dept Geog Environm & Soc, 267 19th Ave S, Minneapolis, MN 55455 USA.
   [Fahey, Robert T.] Univ Connecticut, Dept Nat Resources & Environm, 1376 Storrs Rd,Unit 4087, Storrs, CT 06269 USA.
   [Fahey, Robert T.] Univ Connecticut, Ctr Environm Sci & Engn, 1376 Storrs Rd,Unit 4087, Storrs, CT 06269 USA.
   [Scharenbroch, Bryant] Univ Wisconsin, Coll Nat Resources, 2100 Main St, Stevens Point, WI 54481 USA.
   [Bialecki, Margaret B.; Fahey, Robert T.; Scharenbroch, Bryant] Morton Arboretum, Ctr Tree Sci, 4100 IL Rte 53, Lisle, IL 60532 USA.
C3 University of Minnesota System; University of Minnesota Twin Cities;
   University of Connecticut; University of Connecticut; University of
   Wisconsin System; University of Wisconsin Stevens Point
RP Fahey, RT (corresponding author), Univ Connecticut, Dept Nat Resources & Environm, 1376 Storrs Rd,Unit 4087, Storrs, CT 06269 USA.; Fahey, RT (corresponding author), Univ Connecticut, Ctr Environm Sci & Engn, 1376 Storrs Rd,Unit 4087, Storrs, CT 06269 USA.; Fahey, RT (corresponding author), Morton Arboretum, Ctr Tree Sci, 4100 IL Rte 53, Lisle, IL 60532 USA.
EM robert.fahey@uconn.edu
FU USDA Forest Service - National Urban and Community Forestry Advisory
   Council [12-DG-11132544-406]; Center for Tree Science at The Morton
   Arboretum
FX This research was supported by a grant from the USDA Forest Service -
   National Urban and Community Forestry Advisory Council (NO.
   12-DG-11132544-406) as well as the Center for Tree Science at The Morton
   Arboretum. The original Chicago Region Tree Census data were provided by
   the USDA Forest Service and The Morton Arboretum and we are indebted to
   all who worked to collect and process those data. Field data collection
   was conducted by Corrine Erickson, Miles Schwartz-Sax, Chris Burns, and
   Kevin Garbis.
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NR 69
TC 21
Z9 23
U1 10
U2 102
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 2018
VL 21
IS 1
BP 157
EP 169
DI 10.1007/s11252-017-0692-z
PG 13
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA FV0SB
UT WOS:000424265800014
DA 2025-04-22
ER

PT J
AU Wang, XX
   Liu, LJ
   Tang, T
   Sun, WZ
AF Wang, Xiaoxuan
   Liu, Lingjia
   Tang, Tao
   Sun, Wenzhe
TI Enhancing Communication-Based Train Control Systems Through
   Train-to-Train Communications
SO IEEE TRANSACTIONS ON INTELLIGENT TRANSPORTATION SYSTEMS
LA English
DT Article
DE CBTC; T2T communication; resilience; cognitive control
ID ADAPTIVE MODULATION; CODED MODULATION; PERFORMANCE; DESIGN; CHALLENGES;
   RESILIENCE; SERVICES; RADIO; DELAY
AB High reliability and low latency are crucial for urban rail transits. In this paper, we introduce communication strategies for communication-based train control (CBTC) systems using long-term evolution for metro (LTE-M) to improve the reliability and latency. To be specific, the FlashLinQ-based Train-toTrain (T2T) communication schemes are introduced considering both the transmission delay and the packet drop. The quantified resilience is also introduced as a system metric to evaluate the preservation and recovery performance of CBTC systems. First, a novel urban rail transit wireless communication model is established using FlashLinQ-based T2T communications. Then, we introduce a novel cognitive control scheme based on LTE-M with T2T communication to enhance the quality of service and the resilience of multi-train CBTC systems. In the introduced scheme, Q-learning is used to generate optimal control strategies considering both wireless communication parameters adaption and train control parameters. Extensive simulations are conducted and the results show that the resilience of CBTC systems can he enhanced using the introduced scheme. Furthermore, using the introduced scheme, not only the gaps in optimal velocity versus distance curve are smaller, but also the unplanned traction and breaking are reduced as well.
C1 [Wang, Xiaoxuan; Tang, Tao] Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.
   [Liu, Lingjia] Virginia Tech, Bradley Dept Elect & Comp Engn, Blacksburg, VA 24060 USA.
   [Sun, Wenzhe] China Acad Railway Sci, Beijing 100044, Peoples R China.
C3 Beijing Jiaotong University; Virginia Polytechnic Institute & State
   University
RP Wang, XX (corresponding author), Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China.
EM wangxiaoxuan@bjtu.edu.cn; ljliu@ieee.org; ttang@bjtu.edu.cn;
   wzsun1988@gmail.com
RI li, jing/HNI-1304-2023
OI Liu, Lingjia/0000-0003-1915-1784; Wang, Xiaoxuan/0000-0003-3308-0759
FU National Crucial Research Plan [2018YFB1201501]; National Natural
   Science Foundation of China [61603026]; Beijing Natural Science
   Foundation [L171004]; Technological Research and Development Program of
   China Railway Corporation [2016X008-B]; Fundamental Research Funds for
   the Central Universities [2018JBM076, RCS2017ZT003]; Beijing Key
   Laboratory of Urban Rail Transit Automation; Control and State Key
   Laboratory of Rail Traffic Control and Safety
FX This work was supported in part by the National Crucial Research Plan
   under Grant 2018YFB1201501, in part by the National Natural Science
   Foundation of China under Grant 61603026, in part by the Beijing Natural
   Science Foundation under Grant L171004, in part by the Technological
   Research and Development Program of China Railway Corporation under
   Grant 2016X008-B, in part by the Fundamental Research Funds for the
   Central Universities under Grant 2018JBM076 and Project RCS2017ZT003, in
   part by the Beijing Key Laboratory of Urban Rail Transit Automation, and
   in part by the Control and State Key Laboratory of Rail Traffic Control
   and Safety.
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NR 47
TC 64
Z9 69
U1 2
U2 68
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 APR
PY 2019
VL 20
IS 4
BP 1544
EP 1561
DI 10.1109/TITS.2018.2856635
PG 18
WC Engineering, Civil; Engineering, Electrical & Electronic; Transportation
   Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Transportation
GA HR9JP
UT WOS:000463475900029
DA 2025-04-22
ER

PT J
AU Bustos, CA
AF Bustos, Carlos A.
TI Albuquerque's Water Authority and Parks & Recreation Transform Water
   Management
SO JOURNAL AWWA
LA English
DT Article
DE climate change adaptation; efficient water management; public agency
   cooperation; water supply sustainability
AB Key Takeaways US Southwest cities can benefit from innovative conservation approaches to further reduce water demand amid rising population growth and drought driven by climate change. To ensure a resilient water supply, Albuquerque Bernalillo County Water Utility Authority has successfully used adaptive strategies for 30years to improve consumptive-use efficiency. The Water Authority's partnership with the city's Parks Department takes a holistic water management approach to meet water supply needs while promoting responsible usage.
C1 [Bustos, Carlos A.] Albuquerque Bernalillo Cty Water Util Author, Albuquerque, NM 87107 USA.
RP Bustos, CA (corresponding author), Albuquerque Bernalillo Cty Water Util Author, Albuquerque, NM 87107 USA.
EM cbustos@abcwua.org
RI Bustos-Segura, Carlos/AAF-2564-2020
CR Goldbloom-Helzner David, 2022, Opflow, V48, P10, DOI 10.1002/opfl.1686
   Gore-Datar N, 2024, J AWWA, V116, P22, DOI 10.1002/awwa.2213
   Huang JY, 2023, AWWA WATER SCI, V5, DOI 10.1002/aws2.1362
   Warner LA, 2023, AWWA WATER SCI, V5, DOI 10.1002/aws2.1348
NR 4
TC 0
Z9 0
U1 1
U2 1
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 SEP
PY 2024
VL 116
IS 7
BP 36
EP 43
DI 10.1002/awwa.2318
PG 8
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA D9Z8U
UT WOS:001299700600006
DA 2025-04-22
ER

PT S
AU Wulff, K
   Donato, D
   Lurie, N
AF Wulff, Katharine
   Donato, Darrin
   Lurie, Nicole
BE Fielding, JE
TI What Is Health Resilience and How Can We Build It?
SO ANNUAL REVIEW OF PUBLIC HEALTH, VOL 36
SE Annual Review of Public Health
LA English
DT Review; Book Chapter
DE public health; disaster; resilience; preparedness; response; recovery
ID PREPAREDNESS
AB Whether a community is in the path of a natural disaster, the target of an act of terror, or simply striving to meet the demands of increasingly dense urban populations, a community resilience paradigm can help communities and individuals not just to mitigate damage and heal, but to thrive. This article discusses experiences from recent, large-scale disasters to explore how community resilience might serve as a sustainable paradigm for organizing public health and medical preparedness, response, and recovery. By strengthening health systems, meeting the needs of vulnerable populations, and promoting organizational competence, social connectedness, and psychological health, community resilience encourages actions that build preparedness, promote strong day-to-day systems, and address the underlying social determinants of health. Thus, community resilience resonates with a wide array of stakeholders, particularly those whose work routinely addresses health, wellness, or societal well-being.
C1 [Wulff, Katharine; Donato, Darrin; Lurie, Nicole] US Dept HHS, Off Assistant Secretary Preparedness & Response, Washington, DC 20024 USA.
RP Wulff, K (corresponding author), US Dept HHS, Off Assistant Secretary Preparedness & Response, Washington, DC 20024 USA.
EM Kacey.wulff@hhs.gov; darrin.donato@hhs.gov; Nicole.lurie@hhs.gov
CR Aldrich D., 2010, J HOMELAND SECURITY, V6, P1, DOI DOI 10.1093/BJSW/BCP087
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NR 39
TC 103
Z9 120
U1 3
U2 68
PU ANNUAL REVIEWS
PI PALO ALTO
PA 4139 EL CAMINO WAY, PO BOX 10139, PALO ALTO, CA 94303-0897 USA
SN 0163-7525
BN 978-0-8243-2736-1
J9 ANNU REV PUBL HEALTH
JI Annu. Rev. Public Health
PY 2015
VL 36
BP 361
EP 374
DI 10.1146/annurev-publhealth-031914-122829
PG 14
WC Public, Environmental & Occupational Health
WE Book Citation Index – Social Sciences & Humanities (BKCI-SSH); Book Citation Index – Science (BKCI-S); Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Public, Environmental & Occupational Health
GA BC2RR
UT WOS:000351286900023
PM 25581148
DA 2025-04-22
ER

PT J
AU Frick, KT
   Forscher, E
AF Frick, K. Trapenberg
   Forscher, E.
TI Funding Resilient Infrastructure on the Quick: US Federal Transit
   Disaster Programs after Superstorm Sandy
SO NATURAL HAZARDS REVIEW
LA English
DT Article
ID POLICY; VULNERABILITY; HAZARDS; CITIES
AB The applied concept of resilience has garnered attention in the public eye and academic scholarship in the past decade. Through a rise in popularity, its meaning has morphed depending upon scale, audience, and what system must be resilient. This poses a problem of consistency for agencies, firms, and others working to make cities more adaptable to increasingly variable climate conditions. This work provides a critical examination of the Federal Transit Administration's (FTA) $10.4billion Emergency Relief program funding after Superstorm Sandy. The program, funded through the Disaster Relief Appropriations Act of 2013, allowed transportation providers the chance not only to rebuild but to make postemergency system improvements. This new paradigm for emergency funding creates opportunities to develop climate-adaptive infrastructure and services to prepare for the next, rather than the last, disaster. By examining and categorizing the allocation of FTA funds with respect to storm surge vulnerability, we consider the social equity implications of projects funded to date.
C1 [Frick, K. Trapenberg] Univ Calif Berkeley, Dept City & Reg Planning, Berkeley, CA 94720 USA.
   [Frick, K. Trapenberg] Univ Calif Berkeley, Transportat Ctr, Berkeley, CA 94720 USA.
   [Frick, K. Trapenberg] Univ Calif Berkeley, Ctr Econ Competitiveness Transportat, Berkeley, CA 94720 USA.
   [Forscher, E.] Univ Calif Berkeley, Transportat Engn, Berkeley, CA 94720 USA.
   [Forscher, E.] Univ Calif Berkeley, City & Reg Planning, Berkeley, CA 94720 USA.
   [Forscher, E.] Univ Calif Berkeley, Sci Transportat Engn, Berkeley, CA 94720 USA.
C3 University of California System; University of California Berkeley;
   University of California System; University of California Berkeley;
   University of California System; University of California Berkeley;
   University of California System; University of California Berkeley;
   University of California System; University of California Berkeley;
   University of California System; University of California Berkeley
RP Forscher, E (corresponding author), Univ Calif Berkeley, Transportat Engn, Berkeley, CA 94720 USA.; Forscher, E (corresponding author), Univ Calif Berkeley, City & Reg Planning, Berkeley, CA 94720 USA.; Forscher, E (corresponding author), Univ Calif Berkeley, Sci Transportat Engn, Berkeley, CA 94720 USA.
EM kfrick@berkeley.edu; forscher@berkeley.edu
OI Forscher, Edward/0000-0002-2512-1138
FU University of California Transportation Center, part of the University
   Transportation Centers Program of the US Department of Transportation
   (USDOT); USDOT; California Department of Transportation; Carmel P.
   Friesen Chair in Urban Studies; Carmel P. Friesen Fund
FX The authors would like to thank the journal's editors, referees, Lee
   Reis, Sam Blanchard, and Joel Mandella for their insights on earlier
   drafts of this manuscript. This research was supported by the University
   of California Transportation Center, which is part of the University
   Transportation Centers Program of the US Department of Transportation
   (USDOT) and receives funds from USDOT and the California Department of
   Transportation. Opinions, findings, and conclusions or recommendations
   expressed in this material are those of the author and do not
   necessarily reflect the views of these agencies. We also thank Professor
   Emeritus Robert Cervero of UC Berkeley, Carmel P. Friesen Chair in Urban
   Studies, and the Carmel P. Friesen Fund for their research support.
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NR 51
TC 1
Z9 2
U1 1
U2 29
PU ASCE-AMER SOC CIVIL ENGINEERS
PI RESTON
PA 1801 ALEXANDER BELL DR, RESTON, VA 20191-4400 USA
SN 1527-6988
EI 1527-6996
J9 NAT HAZARDS REV
JI Nat. Hazards Rev.
PD NOV
PY 2018
VL 19
IS 4
AR 04018016
DI 10.1061/(ASCE)NH.1527-6996.0000300
PG 13
WC Engineering, Civil; Environmental Studies; Geosciences,
   Multidisciplinary; Meteorology & Atmospheric Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Engineering; Environmental Sciences & Ecology; Geology; Meteorology &
   Atmospheric Sciences; Water Resources
GA GT5GR
UT WOS:000444535200003
DA 2025-04-22
ER

PT J
AU Giuliani, L
   Revez, A
   Sparf, J
   Jayasena, S
   Faber, MH
AF Giuliani, Luisa
   Revez, Alexandra
   Sparf, Jorgen
   Jayasena, Suranga
   Faber, Michael Havbro
TI SOCIAL AND TECHNOLOGICAL ASPECTS OF DISASTER RESILIENCE
SO INTERNATIONAL JOURNAL OF STRATEGIC PROPERTY MANAGEMENT
LA English
DT Article
DE Disaster resilience; ANDROID project; Interdisciplinary;
   Transdisciplinary; Education
ID INTERDISCIPLINARITY; RISK
AB Large scale projects tasked with designing infrastructures and urban networks resilient to disasters face a common challenge, i.e. the need to address concomitant technological issues and social problems. What is more, conflicting technologies and the diverse philosophical underpinnings of distinct academic disciplines pose difficulties in the collaboration among experts of different fields. These difficulties and possible ways to tackle them have been highlighted by a questionnaire developed in the framework of an EU project named ANDROID (Academic Network for Disaster Resilience to Optimize Educational Development). More specifically, the project investigated the level of interdisciplinary work in current research and educational projects within the field of disaster resilience. Findings illustrate the number and types of disciplines involved in disaster resilience projects and suggest that a higher degree of integration between different disciplines in tertiary education could promote a transdisciplinary approach to disaster resilience, resulting in design efficiency and innovation.
C1 [Giuliani, Luisa; Faber, Michael Havbro] Tech Univ Denmark, Dept Civil Engn, Lyngby, Denmark.
   [Revez, Alexandra] Natl Univ Ireland Galway, Dept Geog, Galway, Ireland.
   [Sparf, Jorgen] Mid Sweden Univ, Dept Social Sci, Risk & Crisis Res Ctr, Sundsvall, Sweden.
   [Jayasena, Suranga] Univ Moratuwa, Dept Bldg Econ, Columbus, Sri Lanka.
C3 Technical University of Denmark; Ollscoil na Gaillimhe-University of
   Galway; Mid-Sweden University; University Moratuwa
RP Giuliani, L (corresponding author), Tech Univ Denmark, Dept Civil Engn, Lyngby, Denmark.
EM lugi@byg.dtu.dk
RI Faber, Michael/Q-6437-2018; Jayasena, Himal Suranga/ITV-3253-2023;
   Giuliani, Luisa/AAC-6603-2020; Jayasena, Suranga/I-7996-2012
OI Giuliani, Luisa/0000-0002-1012-7086; Jayasena,
   Suranga/0000-0001-8847-948X
FU Lifelong Learning Programme of the European Union
FX The financial support of the Lifelong Learning Programme of the European
   Union is gratefully acknowledged, as well as the scientific contribution
   of all WP4 members of the ANDROID Disaster Resilience Network.
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NR 47
TC 5
Z9 5
U1 2
U2 28
PU VILNIUS GEDIMINAS TECH UNIV
PI VILNIUS
PA SAULETEKIO AL 11, VILNIUS, LT-10223, LITHUANIA
SN 1648-715X
EI 1648-9179
J9 INT J STRATEG PROP M
JI Int. J. Strateg. Prop. Manag.
PY 2016
VL 20
IS 3
BP 277
EP 290
DI 10.3846/1648715X.2016.1185477
PG 14
WC Management
WE Social Science Citation Index (SSCI)
SC Business & Economics
GA DS4OB
UT WOS:000380759300006
OA Green Submitted, gold
DA 2025-04-22
ER

PT J
AU Li, F
   Yigitcanlar, T
   Li, WD
   Nepal, M
   Nguyen, K
   Dur, F
AF Li, Fei
   Yigitcanlar, Tan
   Li, Wenda
   Nepal, Madhav
   Nguyen, Kien
   Dur, Fatih
TI Understanding urban heat vulnerability: Scientometric analysis of five
   decades of research
SO URBAN CLIMATE
LA English
DT Article
DE Urban heat vulnerability; Urban heat island; Urban sustainability; Urban
   planning; Climate change; Climate resilience
ID CLIMATE-CHANGE; ECOSYSTEM SERVICES; THERMAL COMFORT; AIR-POLLUTION;
   GREEN SPACES; HUMAN HEALTH; ISLAND; IMPACT; MITIGATION; WATER
AB Urban Heat Vulnerability (UHV) has received increasing attention over the last two decades due to the exacerbation of global warming and the Urban Heat Island (UHI) effect, amid rapid urbanisation and climate change. While there has been a notable growth in UHV research, systematic reviews and meta -analyses focusing on a broader range of issues and research trajectories are notably absent. This study aims to provide a comprehensive understanding of the historical progression, current research clusters, and emerging trends in UHV research by utilising a scientometric method. It examines 2340 UHV-related scholarly articles published over the past fifty years (1970s to 2020s). The major findings of this scientometric analysis are: (a) UHV is an emerging research area and is expected to rapidly expand; (b) UHV research is clustered around five interconnected key areas: Urban planning and architectural design; Urban environment and ecology; Urban public health and wellbeing; Urban climate and meteorology; Urban remote sensing; (c) The recent shift in research focus towards public health and wellbeing perspectives in UHV studies highlights the importance of a human -social focus and interdisciplinary collaboration; (d) Remote sensing, particularly supported by machine learning, is a significant technical tool in UHV research; (e) UHV research aligns with the UN sustainable development goals and contributes to achieving urban sustainability and climate resilience. Further advancements in UHV research will require interdisciplinary collaboration, technological innovations, and targeted policies to effectively address urban heat impacts and protect vulnerable populations.
C1 [Li, Fei; Yigitcanlar, Tan; Li, Wenda; Nepal, Madhav; Dur, Fatih] Queensland Univ Technol, Sch Architecture & Built Environm, City Lab 4 0, 2 George St, Brisbane, Qld 4000, Australia.
   [Nguyen, Kien] Queensland Univ Technol, Sch Elect Engn & Robot, 2 George St, Brisbane, Qld 4000, Australia.
C3 Queensland University of Technology (QUT); Queensland University of
   Technology (QUT)
RP Yigitcanlar, T (corresponding author), Queensland Univ Technol, Sch Architecture & Built Environm, City Lab 4 0, 2 George St, Brisbane, Qld 4000, Australia.
EM f34.li@hdr.qut.edu.au; tan.yigitcanlar@qut.edu.au;
   wenda.li@hdr.qut.edu.au; madhav.nepal@qut.edu.au;
   k.nguyenthanh@qut.edu.au
RI Li, Wenda/ISB-6315-2023; Li, Fei/I-8918-2019; Thanh, Kien/G-2571-2017;
   Nepal, Madhav/AAW-9947-2020; Yigitcanlar, Tan/J-1142-2012
OI Nguyen, Kien/0000-0002-3466-9218; Yigitcanlar, Tan/0000-0001-7262-7118
FU China Scholarship Council [202106420006]; Queensland University of
   Technology
FX The authors extend their gratitude to the editor and anonymous referees
   for their invaluable comments on an earlier version of this manuscript.
   They also appreciate the financial support provided by the China
   Scholarship Council (No. 202106420006) and the Queensland University of
   Technology.
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NR 160
TC 5
Z9 5
U1 31
U2 45
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD JUL
PY 2024
VL 56
AR 102035
DI 10.1016/j.uclim.2024.102035
EA JUN 2024
PG 26
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA XL6J4
UT WOS:001261875500001
OA hybrid
DA 2025-04-22
ER

PT J
AU Sosa, T
   Gomez, K
AF Sosa, Teresa
   Gomez, Kimberley
TI Connecting Teacher Efficacy Beliefs in Promoting Resilience to Support
   of Latino Students
SO URBAN EDUCATION
LA English
DT Article
DE high school; Hispanic students; urban education
ID SELF-EFFICACY; SCHOOL; ACHIEVEMENT; SENSE; COMPETENCE; SUCCESS; CULTURE;
   CONTEXT; HEALTH; LIVES
AB This article explores the connection of teacher self-efficacy beliefs in promoting student resilience to teaching practice and support of Latino students. Results suggest that efficacy beliefs related to resilience are linked to building important relationships through connecting with students, building on their experiences and knowledge, and understanding the issues they confront. In particular, important to strengthening the academic resilience of Latino students are teachers' views of their use of Spanish as an asset in their learning as well as the sensitivity teachers displayed around the added stressors Latino students face, such as discrimination and immigrant status.
C1 [Sosa, Teresa] Univ Illinois, Learning Sci Res Inst, Chicago, IL 60607 USA.
   [Gomez, Kimberley] Univ Calif Los Angeles, Grad Sch Educ & Informat Studies, Los Angeles, CA USA.
C3 University of Illinois System; University of Illinois Chicago;
   University of Illinois Chicago Hospital; University of California
   System; University of California Los Angeles
RP Sosa, T (corresponding author), Univ Illinois, Learning Sci Res Inst, 1007 W Harrison St,Room 2048,MC 057, Chicago, IL 60607 USA.
EM tsosa2@uic.edu
RI Sosa, Teresa/AAO-7512-2021; Gomez, Kimberley/I-3093-2019
OI Sosa, Teresa/0000-0003-1641-3988
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NR 86
TC 45
Z9 93
U1 4
U2 50
PU SAGE PUBLICATIONS INC
PI THOUSAND OAKS
PA 2455 TELLER RD, THOUSAND OAKS, CA 91320 USA
SN 0042-0859
EI 1552-8340
J9 URBAN EDUC
JI Urban Educ.
PD SEP
PY 2012
VL 47
IS 5
BP 876
EP 909
DI 10.1177/0042085912446033
PG 34
WC Education & Educational Research; Urban Studies
WE Social Science Citation Index (SSCI)
SC Education & Educational Research; Urban Studies
GA 068GT
UT WOS:000313355000002
DA 2025-04-22
ER

PT J
AU Zou, YH
AF Zou, Yonghua
TI Urban resilience, digital technologies, and the economic recovery of a
   city from the pandemic
SO PUBLIC ADMINISTRATION REVIEW
LA English
DT Article
ID PUBLIC-SERVICES; COPRODUCTION; MANAGEMENT; WORK; PARTICIPATION;
   INFORMATION; BOUNDARIES; GOVERNANCE; FRAMEWORK
AB The COVID-19 pandemic has devastated the world economy, which has made global economic recovery a considerable challenge. When a city experiences disasters, it needs to utilize innovative governance instruments, such as digital technologies, to foster economic recovery resilience. This article proposes a theoretical framework aimed at revealing the interconnection between digital technologies and economic recovery resilience, and it presents the case of Hangzhou, China, to illustrate this framework. This article finds that digital technologies can foster economic recovery resilience by sustaining a collaborative network during disasters. This article also reveals that government-sponsored platforms, public-private partnerships, and citizen coproduction are the underlying dynamics through which digital technologies build resilience. This article provides a nuanced understanding of how digital technologies might impact the theory and practice of economic recovery resilience in the digital era.
C1 [Zou, Yonghua] Zhejiang Univ, Sch Publ Affairs, Hangzhou, Peoples R China.
   [Zou, Yonghua] Zhejiang Univ, China Inst Urbanizat, Hangzhou, Peoples R China.
   [Zou, Yonghua] Zhejiang Univ, Ctr Low carbon Cities, Hangzhou, Peoples R China.
   [Zou, Yonghua] Zhejiang Univ, Sch Publ Affairs, Hangzhou 310058, Peoples R China.
C3 Zhejiang University; Zhejiang University; Zhejiang University; Zhejiang
   University
RP Zou, YH (corresponding author), Zhejiang Univ, Sch Publ Affairs, Hangzhou 310058, Peoples R China.
EM yonghuazou@foxmail.com
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NR 69
TC 12
Z9 13
U1 71
U2 375
PU WILEY
PI HOBOKEN
PA 111 RIVER ST, HOBOKEN 07030-5774, NJ USA
SN 0033-3352
EI 1540-6210
J9 PUBLIC ADMIN REV
JI Public Adm. Rev.
PD JUL
PY 2024
VL 84
IS 4
BP 637
EP 650
DI 10.1111/puar.13678
EA JUN 2023
PG 14
WC Public Administration
WE Social Science Citation Index (SSCI)
SC Public Administration
GA A4H4Q
UT WOS:001006132900001
DA 2025-04-22
ER

PT J
AU Wang, K
   Zhao, SX
   Chen, XT
   Lei, ZX
   Zhou, X
AF Wang, Kun
   Zhao, Songxin
   Chen, Xiangtai
   Lei, Zhenxian
   Zhou, Xiao
TI Spatio-Temporal Evolution and Influencing Factors of the Resilience of
   Tourism Environmental Systems in the Yangtze River Economic Belt of
   China
SO SUSTAINABILITY
LA English
DT Article
DE resilience of the tourism environmental system; spatio-temporal
   evolution; spatial Markov chain; geographical and temporal weighted
   regression; Yangtze River Economic Belt
ID URBAN RESILIENCE; CLIMATE-CHANGE; VULNERABILITY; PERSPECTIVE; COMMUNITY;
   FRAMEWORK
AB The resilience of a tourism environmental system (TESR) is an important aspect of sustainable tourism growth. Based on the construction of an evaluation system for the TESR, this study used 126 prefecture-level cities in the Yangtze River Economic Belt (YREB) as a case study and attempted to explore the spatio-temporal evolution features and influencing mechanism of the TESR. The primary conclusions are as follows: (1) Despite significant improvement in TESR in the YREB, the overall resilience level and growth rate remain relatively low, with ample potential for improvement. (2) Positive spatial correlation and type agglomeration impact are evident in the urban TESR. (3) Relatively frequent transitions of the TESR occur with spatial dependence and spillover effects in the transition paths, i.e., high-level cities can improve the TESR of neighboring cities through positive spillover effects. (4) Several factors, such as city economic, social, industrial, and policy factors, jointly impact the evolution of the pattern of the TESR in the YREB, with heterogeneous effects.
C1 [Wang, Kun; Zhao, Songxin; Chen, Xiangtai; Lei, Zhenxian; Zhou, Xiao] Guizhou Univ, Coll Tourism & Culture Ind, Guiyang 550025, Peoples R China.
   [Wang, Kun; Zhou, Xiao] Guizhou Univ, Culture & Tourism Econ Qual Dev Operat Ctr, Guiyang 550025, Peoples R China.
C3 Guizhou University; Guizhou University
RP Wang, K (corresponding author), Guizhou Univ, Coll Tourism & Culture Ind, Guiyang 550025, Peoples R China.; Wang, K (corresponding author), Guizhou Univ, Culture & Tourism Econ Qual Dev Operat Ctr, Guiyang 550025, Peoples R China.
EM kwang3@gzu.edu.cn; gs.sxzhao22@gzu.edu.cn; gs.xtchen21@gzu.edu.cn;
   gs.zxlei20@gzu.edu.cn; xiaozhou@gzu.edu.cn
OI wang, kun/0009-0007-2085-4029
FU National Natural Science Foundation of China [41961025]
FX This research was funded by the National Natural Science Foundation of
   China (No. 41961025).
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NR 75
TC 7
Z9 7
U1 10
U2 56
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD JUL
PY 2023
VL 15
IS 13
AR 10527
DI 10.3390/su151310527
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 M2MI6
UT WOS:001028570100001
OA gold
DA 2025-04-22
ER

PT J
AU Therrien, MC
   Jutras, M
   Usher, S
AF Therrien, Marie-Christine
   Jutras, Mathilde
   Usher, Susan
TI Including quality in Social network analysis to foster dialogue in urban
   resilience and adaptation policies
SO ENVIRONMENTAL SCIENCE & POLICY
LA English
DT Article
DE social network analysis; urban resilience; adaptation; policy
   implementation
ID CLIMATE-CHANGE; INTERORGANIZATIONAL NETWORKS; GOVERNANCE; ORGANIZATIONS;
   SYSTEMS; COMMUNITIES; INFORMATION
AB The capacities of organizational actors increase when they are linked in network relationships, especially when confronting complex problems such as climate change adaptation and the development of resilience. This Social Network Analysis (SNA) of organizations working on adaptation to climate change and resilience on the territory of Montreal was conducted to provide insights into the implementation of policies in these areas. The analysis reveals a fairly uniform network with organizational links gravitating around two poles: one focused on local action and the other on policy design. The density of relationships is weak overall, and there is medium centralization around the City of Montreal. While centralization is beneficial for coordination, a structure involving more distinct sub-networks linked to central actors by boundary (broker) organizations would improve prospects for innovation and efficiency. Analysis of the quality of relationships highlights important differences between what fosters good relations in each of the poles, reducing the chances that policies developed in the policy-oriented pole will be implemented in the action-oriented pole. Overall, this study emphasizes the relevance of network analysis in understanding prospects for policy implementation in complex areas such as resilience and climate change adaptation.
C1 [Therrien, Marie-Christine; Jutras, Mathilde; Usher, Susan] Ecole Natl Adm Publ, Quebec City, PQ, Canada.
C3 University of Quebec; Ecole National Administration Publique Canada
RP Therrien, MC (corresponding author), Ecole Natl Adm Publ, Quebec City, PQ, Canada.
EM mctherrien@enap.ca
OI Usher, Susan/0000-0002-6772-1908; Jutras, Mathilde/0000-0001-5154-5009
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NR 40
TC 29
Z9 32
U1 7
U2 76
PU ELSEVIER SCI LTD
PI OXFORD
PA THE BOULEVARD, LANGFORD LANE, KIDLINGTON, OXFORD OX5 1GB, OXON, ENGLAND
SN 1462-9011
EI 1873-6416
J9 ENVIRON SCI POLICY
JI Environ. Sci. Policy
PD MAR
PY 2019
VL 93
BP 1
EP 10
DI 10.1016/j.envsci.2018.11.016
PG 10
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA HJ9GX
UT WOS:000457508000001
DA 2025-04-22
ER

PT J
AU Cai, WQ
   Wang, YJ
AF Cai, Wenqiang
   Wang, Yijie
TI Family Support and Hope among People with Substance Use Disorder in
   China: A Moderated Mediation Model
SO INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH
LA English
DT Article
DE family support; resilience; hope; substance use disorder; relapse
ID SOCIAL SUPPORT; LIFE SATISFACTION; RESILIENCE; THERAPY; ADOLESCENTS;
   VALIDATION; ADDICTION; PATHWAYS; RECOVERY; URBAN
AB Studies have shown that hope is an important protective factor. At present, few of the available studies on hope have been conducted on people undergoing compulsory rehabilitation. This study explores the mediating role of resilience between family support and hope, and whether relapse plays a moderating role between family support, resilience, and hope. A total of 647 people with substance use disorder completed surveys on Perceived Social Support from Family Scale, Connor-Davidson Resilience Scale, and Herth Hope Index. Structural equation modeling was used to examine the moderated mediation analysis. Family support not only has a direct effect on hope, but also has a significant indirect effect on hope through resilience. The indirect effect of family support on hope via resilience was significant among both the non-relapse group and relapse group; in addition, both the association between family support and resilience and the relation between resilience and hope were moderated by relapse experience. The results indicate that interventions targeting resilience might be an effective approach to improving hope among people with substance use disorder in China.
C1 [Cai, Wenqiang; Wang, Yijie] Hohai Univ, Sch Publ Adm, Nanjing 211100, Peoples R China.
   [Cai, Wenqiang] Jiangsu Police Inst, Dept Publ Secur Management, Nanjing 210031, Peoples R China.
C3 Hohai University; Jiangsu Police Institute
RP Cai, WQ (corresponding author), Hohai Univ, Sch Publ Adm, Nanjing 211100, Peoples R China.; Cai, WQ (corresponding author), Jiangsu Police Inst, Dept Publ Secur Management, Nanjing 210031, Peoples R China.
EM caiwenqiang@jspi.edu.cn
FU General Program of Philosophy and Social Science Research in
   Universities of Jiangsu [2022 SJYB0461]
FX This research was funded by the General Program of Philosophy and Social
   Science Research in Universities of Jiangsu (2022 SJYB0461).
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NR 74
TC 2
Z9 2
U1 8
U2 32
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1660-4601
J9 INT J ENV RES PUB HE
JI Int. J. Environ. Res. Public Health
PD AUG
PY 2022
VL 19
IS 16
AR 9786
DI 10.3390/ijerph19169786
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 4B5FB
UT WOS:000845802000001
PM 36011426
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Diao, KG
AF Diao, Kegong
TI Multiscale Resilience in Water Distribution and Drainage Systems
SO WATER
LA English
DT Article
DE resilience; multiscale structure; water distribution systems; drainage
   systems; interventions
ID DISTRIBUTION NETWORKS; OPTIMAL-DESIGN; RELIABILITY; MANAGEMENT;
   EXPANSION; COST
AB Multiscale resilience, i.e., coordinating different scales within a system to jointly cope and mitigate risks on any single scale, is identified as the feature of a complex resilient system. However, in water distribution systems (WDSs) and urban drainage systems (UDSs), the inherent resilience is usually not multiscale resilience. By referring to the larger scale to larger pipes serving both local users and some other users at smaller scales, it can be found that smaller scales are not responsible for providing resilience to cope with failures in larger scales. These are because the main function of traditional water systems is to deliver water from upstream to downstream. This study demonstrates that improving multiscale resilience in WDSs and UDSs needs to allow water to travel reversely in the system via providing extra capacities and/or connections at smaller scales. This hypothesis is verified via case studies on a real world WDS and UDS.
C1 [Diao, Kegong] De Montfort Univ, Fac Comp Engn & Media, Leicester LE1 9BH, Leics, England.
C3 De Montfort University
RP Diao, KG (corresponding author), De Montfort Univ, Fac Comp Engn & Media, Leicester LE1 9BH, Leics, England.
EM kegong.diao@dmu.ac.uk
OI Diao, Kegong/0000-0003-2315-9455
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NR 43
TC 14
Z9 15
U1 3
U2 38
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4441
J9 WATER-SUI
JI Water
PD JUN
PY 2020
VL 12
IS 6
AR 1521
DI 10.3390/w12061521
PG 12
WC Environmental Sciences; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Water Resources
GA MR4IS
UT WOS:000553553300001
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Zhong, M
   Ling, F
   Zhong, WC
   Zhang, Q
AF Zhong, Ming
   Ling, Feng
   Zhong, Weichen
   Zhang, Qian
TI Measuring community resilience of flash floods using a multilevel
   interpretive structure model: Quantification and time-varying responses
SO ECOLOGICAL INDICATORS
LA English
DT Article
DE Community resilience; Flash flood; Quantitative assessment; Dynamic
   responses
ID FRAMEWORK; RISK
AB Flash flood, a type of the surface runoff that rises up and down sharply in small watersheds in the hilly and mountainous areas, is a difficulty in flood control and disaster prevention. As a basic unit of people's social life, community is the most widely involved unit in disaster risk management. Flood-prone communities are characterized by geographical dispersion and confinement. This study carries out a research on disaster resilience and time-varying effects from the perspective of flash flood, and proposes a multidisciplinary integrated approach: (1) A multilevel interpretive structure model of the influencing factors of community resilience based on coupling decision mathematical model was constructed to analyze the differential influencing factors of community resilience; (2) The information diffusion method was used to quantitatively analyze and rank the community resilience of flash flood disasters; (3) Rand Index was used to quantitatively estimate the magnitude of community resilience and analyze the characteristics of its time-varying effect curve. Taking the flood-prone areas in northern Guangdong Province as the research area, this study analyzes three types of communities, including urban, rural, and suburban. The results show that the community resilience indicator system from the perspective of flash flood impact is a multi-dimensional and multi-layered complex network system. The direct influencing factors of community resilience in different types of community are different, the construction of water supply and drainage facilities and the flood emergency drills, as the fundamental influencing factors of community resilience, play an essential role in enhancing community resilience to flash floods. Since most of the surveyed communities are located in areas with frequent flash floods, residents have a high awareness of disaster prevention and mitigation, and rural show the higher community resilience than the sample of urban and suburban. With the expansion of inundation, the resilience of all three types of communities shows a consistent trend of "sharp decrease - rapid increase - slow decrease". This study can provide an important reference for enhancing the community resilience in the flood-prone areas, and also improving their disaster prevention and mitigation capabilities. This comprehensive analysis method can provide scientific support to the refined prevention and mitigation of other types of disasters.
C1 [Zhong, Ming] Sun Yat Sen Univ, Sch Geog & Planning, Zhuhai 519082, Peoples R China.
   [Zhong, Ming] Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai 519082, Peoples R China.
   [Zhong, Ming; Zhong, Weichen] Univ Bristol, Dept Civil Aerosp & Design Engn, Bristol BS8 1TR, England.
   [Ling, Feng] Chinese Acad Sci, Innovat Acad Precis Measurement Sci & Technol, Key Lab Environm & Disaster Monitoring & Evaluat H, Wuhan, Peoples R China.
   [Zhang, Qian] Guangdong Res Inst Water Resources & Hydropower, Guangzhou 510275, Peoples R China.
C3 Sun Yat Sen University; Southern Marine Science & Engineering Guangdong
   Laboratory; Southern Marine Science & Engineering Guangdong Laboratory
   (Zhuhai); University of Bristol; Chinese Academy of Sciences; Innovation
   Academy for Precision Measurement Science & Technology, CAS
RP Zhong, M (corresponding author), Sun Yat Sen Univ, Sch Geog & Planning, Zhuhai 519082, Peoples R China.; Zhong, M (corresponding author), Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai 519082, Peoples R China.
EM zhongm37@mail.sysu.edu.cn
RI Zhong, Weichen/GPC-7969-2022
FU National Key R & D Program of China [2021YFC3001000]
FX This work was supported by the National Key R & D Program of China
   (2021YFC3001000) . The financial support is gratefully acknowledged.
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NR 51
TC 0
Z9 0
U1 1
U2 1
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 1470-160X
EI 1872-7034
J9 ECOL INDIC
JI Ecol. Indic.
PD APR
PY 2025
VL 173
AR 113335
DI 10.1016/j.ecolind.2025.113335
PG 11
WC Biodiversity Conservation; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology
GA 0SV3E
UT WOS:001455191500001
DA 2025-04-22
ER

PT J
AU Vershinina, N
   Rodgers, P
AF Vershinina, Natalia
   Rodgers, Peter
TI Self-regulation, micro-foundations and migrant entrepreneurs' capacities
   for resilience
SO ENTREPRENEURSHIP AND REGIONAL DEVELOPMENT
LA English
DT Article
DE Micro-foundations; self-regulation; migrants; entrepreneurs; resilience;
   temporality
ID STRATEGY-AS-PRACTICE; ENVIRONMENTAL DYNAMISM; MIXED EMBEDDEDNESS;
   PERFORMANCE; BUSINESS; FOCUS; DECISION; FORMS; IMPROVISATION;
   CAPABILITIES
AB In this article, using regulatory focus theory (RFT), we adopt a micro-foundational approach to illuminate how migrant entrepreneurs develop forms of resilience within a small firm context. Conceptually we showcase how the fusing of individual and organizational interactions enables the enactment of generative resilience capacities. Our empirical study involves a qualitative, interpretative approach encompassing sixty-one interviews with migrant entrepreneurs across three urban centres in the UK. The enactment of resilience capacities is activated through legitimacy building, network building and resource and capability development. Theoretically we underscore the role of accumulated agency, which aids migrant entrepreneurs to overcome existing structural challenges and in doing so, build resilience capacities. Our findings also reveal the temporal nature of resilience capacity building, involving real-time, retrospective and prospective actions. We offer theoretical contributions, practical implications and signpost directions for future research.
C1 [Vershinina, Natalia] Audencia Business Sch, Dept Entrepreneurship Strategy & Innovat, Nantes, France.
   [Vershinina, Natalia] IAE Paris Sorbonne Business Sch, Chaire Entrepreneuriat Terr Innovat ETI, Paris, France.
   [Vershinina, Natalia] Jonkoping Univ, Ctr Family Entrepreneurship & Ownership CeFEO, Jonkoping Int Business Sch, Jonkoping, Sweden.
   [Rodgers, Peter] Univ Southampton, Southampton Business Sch, Dept Human Resource Management & Org Behav, Southampton, England.
C3 Audencia; Jonkoping University; University of Southampton; Solent
   University
RP Vershinina, N (corresponding author), Audencia Business Sch, Dept Entrepreneurship Strategy & Innovat, Nantes, France.; Rodgers, P (corresponding author), Univ Southampton, Southampton Business Sch, Dept Human Resource Management & Org Behav, Southampton, England.
EM nvershinina@audencia.com; p.rodgers@soton.ac.uk
RI Vershinina, Natalia/P-4316-2017
OI Vershinina, Natalia/0000-0002-7281-1043
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NR 97
TC 4
Z9 4
U1 3
U2 31
PU ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OX14 4RN, OXON, ENGLAND
SN 0898-5626
EI 1464-5114
J9 ENTREP REGION DEV
JI Entrep. Reg. Dev.
PD AUG 8
PY 2023
VL 35
IS 7-8
BP 644
EP 665
DI 10.1080/08985626.2023.2216174
EA JUN 2023
PG 22
WC Business; Development Studies
WE Social Science Citation Index (SSCI)
SC Business & Economics; Development Studies
GA J7NC0
UT WOS:000997897100001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Ferguson, BC
   Brown, RR
   Deletic, A
AF Ferguson, Briony C.
   Brown, Rebekah R.
   Deletic, Ana
TI A Diagnostic Procedure for Transformative Change Based on Transitions,
   Resilience, and Institutional Thinking
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE institutions; resilience; strategic planning; sustainability;
   transformative change; transition; urban water
ID SUSTAINABILITY TRANSITIONS; MANAGEMENT; GOVERNANCE; INFRASTRUCTURE;
   INSIGHTS; SYSTEMS
AB Urban water governance regimes around the world have traditionally planned large-scale, centralized infrastructure systems that aim to control variables and reduce uncertainties. There is growing sectoral awareness that a transition toward sustainable alternatives is necessary if systems are to meet society's future water needs in the context of drivers such as climate change and variability, demographic changes, environmental degradation, and resource scarcity. However, there is minimal understanding of how the urban water sector should operationalize its strategic planning for such change to facilitate the transition to a sustainable water future. We have integrated concepts from transitions, resilience, and institutional theory to develop a diagnostic procedure for revealing insights into which types of strategic action are most likely to influence the direction and pace of change in the overall system toward a desired trajectory. The procedure used the multipattern approach, from transition theory, to identify the system conditions and type of changes necessary for enabling system transformation. It incorporated the adaptive cycle, from resilience theory, to identify the current phase of change for different parts of the system. Finally, it drew on the concepts of institutional pillars and institutional work to identify mechanisms that are likely to be most effective in influencing the transformative dynamics of the system toward a desired trajectory. We have demonstrated application of the proposed diagnostic procedure on a case study of recent transformative change in the urban water system of Melbourne, Australia. We have proposed that an operational diagnostic procedure provides a useful platform from which planners, policy analysts, and decision makers could follow a process of deduction that identifies which types of strategic action best fit the current system conditions.
C1 [Ferguson, Briony C.; Brown, Rebekah R.; Deletic, Ana] Monash Water Liveabil, Clayton, Vic, Australia.
   [Ferguson, Briony C.; Brown, Rebekah R.; Deletic, Ana] Monash Univ, Clayton, Vic 3800, Australia.
C3 Monash University
RP Ferguson, BC (corresponding author), Monash Water Liveabil, Clayton, Vic, Australia.
RI Deletic, Ana/CAG-2385-2022
OI Deletic, Ana/0000-0002-3535-7451; Brown, Rebekah/0000-0002-8689-7562;
   Rogers, Briony/0000-0003-1780-127X
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NR 49
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Z9 25
U1 1
U2 56
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 57
DI 10.5751/ES-05901-180457
PG 20
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA 285YS
UT WOS:000329431700057
OA gold, Green Published, Green Submitted
DA 2025-04-22
ER

PT J
AU Liu, Q
   Wang, JY
   Bai, BW
AF Liu, Qing
   Wang, Jingyi
   Bai, Bowen
TI Unveiling nonlinear effects of built environment attributes on urban
   heat resilience using interpretable machine learning
SO URBAN CLIMATE
LA English
DT Article
DE Urban heat resilience (UHR); Built environment attributes (BEAs);
   Nonlinear; Explainable machine learning; SHAP
ID LAND-SURFACE TEMPERATURE; HYBRID NANOFLUID; ISLAND; CITY; FLOW;
   GENERATION/ABSORPTION; SIMULATION; CHINA; FORM
AB Built environment attributes (BEAs) play a significant role in influencing urban heat resilience (UHR). Previous research has examined the correlations and nonlinear relationships between BEAs and both land surface temperature (LST) and urban heat island (UHI) effects. Nevertheless, the investigation into the nonlinear effects of BEAs on UHR remains underexplored. Furthermore, the advantages of explainable machine learning in elucidating the mechanisms through which BEAs affect the urban thermal environment have been extensively validated. Consequently, taking Beijing, a highly urbanized city, as a case, we conducted an empirical study to investigate the nonlinear effects of BEAs on UHR. We first operationalized UHR as the differential in LST between extreme heat waves and normal heat days. Secondly, we constructed a set of influencing factors covering BEAs and control variables. Subsequently, by integrating the Gradient Boosting Decision Tree (GBDT) with SHapley Additive exPlanations (SHAP), the nonlinear relationships between BEAs and UHR are uncovered. The results demonstrate that: 1) Nonlinear relationships between BEAs and UHR are prevalent, as well as threshold effects. 2) Greening is the key BEA affecting UHR, accounting for 22.39% in contribution, with which increase, UHR increases at an accelerating rate. 3) From the city center outward, the growth of UHR exhibits a leapfrog effect, with the growth rate in the outer ring being 2.7 times that of the inner one. 4) Interactions between BEAs impact UHR. Our findings unveil the complex nonlinear effects of BEAs on UHR, clarifying the priority and optimal quantity thresholds of BEAs. We emphasize the importance of greening and urban scale, which could support decision-making for UHR planning and precise management.
C1 [Liu, Qing] Tianjin Univ, Sch Architecture, Tianjin 300072, Peoples R China.
   [Wang, Jingyi] Nanjing Univ, Sch Atmospher Sci, Nanjing 210023, Peoples R China.
   [Bai, Bowen] Johns Hopkins Univ, Dept Earth & Planetary Sci, Baltimore, MD 21210 USA.
C3 Tianjin University; Nanjing University; Johns Hopkins University
RP Liu, Q (corresponding author), Tianjin Univ, Sch Architecture, Tianjin 300072, Peoples R China.
EM merejinji@tju.edu.cn
RI Bai, Bowen/LDG-2273-2024
OI Liu, Qing/0000-0002-6997-9734
FU National Social Science Foundation of China [19ZDA193]; Tianjin Graduate
   Innovation Talent Project, China [2020YJSS079]
FX This work is supported by the National Social Science Foundation of
   China (19ZDA193) and the Tianjin Graduate Innovation Talent Project,
   China (2020YJSS079) .
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NR 96
TC 10
Z9 10
U1 38
U2 50
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD JUL
PY 2024
VL 56
AR 102046
DI 10.1016/j.uclim.2024.102046
EA JUN 2024
PG 18
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA XM1W7
UT WOS:001262019100001
DA 2025-04-22
ER

PT J
AU Jiang, KP
   Li, KC
   Cong, N
   Wu, SY
   Peng, F
AF Jiang, Kaiping
   Li, Kaichao
   Cong, Nan
   Wu, Siyu
   Peng, Fei
TI Spatial-Temporal Variation Characteristics and Obstacle Factors of
   Resilience in Border Cities of Northeast China
SO LAND
LA English
DT Article
DE Northeast China; Chinese border; border city; regional resilience;
   development difference
AB The study of border resilience is an effective means to analyze the development status of border cities. This study constructs a border city resilience assessment framework, measures the urban resilience level of 13 prefecture-level administrative regions in China's northeastern border region from 2010 to 2019, reveals their temporal and spatial differentiation characteristics, analyzes the main obstacles, and proposes development strategies. This study reveals the following: (1) The overall resilience of the northeast border cities is at a medium level, and differences between regions and cities are large. (2) The resilience of the northeast border cities increased rapidly between 2010 and 2015, especially in the western area; the improvement effect was poor between 2015 and 2019, and except for the increased resilience of individual cities in the eastern area, the development of other cities was slow and some even declined. (3) At the city scale, the development potential, economic structure, residents' security, and environmental governance capabilities are the main factors restricting improvement in the basic resilience of the northeast border cities. Insufficient national policy support and the poor development of neighboring countries have become obstacles to cities' exclusive resilience.
C1 [Jiang, Kaiping] Liaoning Normal Univ, Sch Geog Sci, Dalian 116029, Peoples R China.
   [Li, Kaichao] Hezhou Univ, Sch Econ & Management, Hezhou 542899, Peoples R China.
   [Cong, Nan] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Lhasa Plateau Ecosyst Res Stn, Beijing 100101, Peoples R China.
   [Wu, Siyu; Peng, Fei] Liaoning Normal Univ, Ctr Studies Marine Econ & Sustainable Dev, Dalian 116029, Peoples R China.
   [Wu, Siyu; Peng, Fei] Liaoning Normal Univ, Inst Marine Sustainable Dev, Dalian 116029, Peoples R China.
C3 Liaoning Normal University; Hezhou University; Chinese Academy of
   Sciences; Institute of Geographic Sciences & Natural Resources Research,
   CAS; Liaoning Normal University; Liaoning Normal University
RP Cong, N (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, Lhasa Plateau Ecosyst Res Stn, Beijing 100101, Peoples R China.; Peng, F (corresponding author), Liaoning Normal Univ, Ctr Studies Marine Econ & Sustainable Dev, Dalian 116029, Peoples R China.; Peng, F (corresponding author), Liaoning Normal Univ, Inst Marine Sustainable Dev, Dalian 116029, Peoples R China.
EM congnan@igsnrr.ac.cn; feipeng@lnnu.edu.cn
RI Wu, Yongchang/HOA-8075-2023
FU General Project of the National Natural Science Foundation of China
   [42271253]; Major Special Project of the National Social Science
   Foundation of China [20VHQ002]
FX This research was funded by the General Project of the National Natural
   Science Foundation of China, grant number 42271253 and the Major Special
   Project of the National Social Science Foundation of China, grant number
   20VHQ002.
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NR 40
TC 2
Z9 2
U1 15
U2 37
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD APR 26
PY 2023
VL 12
IS 5
AR 958
DI 10.3390/land12050958
PG 19
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA H6XH9
UT WOS:000997363600001
OA gold
DA 2025-04-22
ER

PT J
AU Cheng, SW
   Yang, MX
   Li, CL
   Xu, HL
   Chen, CL
   Shu, DW
   Jiang, YZ
   Gui, YP
   Dong, NP
AF Cheng, Siwei
   Yang, Mingxiang
   Li, Chenglin
   Xu, Houlei
   Chen, Changli
   Shu, Dewei
   Jiang, Yunzhong
   Gui, Yunpeng
   Dong, Ningpeng
TI An Improved Coupled Hydrologic-Hydrodynamic Model for Urban Flood
   Simulations Under Varied Scenarios
SO WATER RESOURCES MANAGEMENT
LA English
DT Article
DE Coupled model; Urban flood; Urban hydrology; Drainage network; Beijing
AB Cities place a high priority on addressing urban flooding issues and have worked on flood prevention planning and construction efforts. This study aims to develop the improved coupling hydrologic-hydrodynamic model based on SWMM and TELEMAC-2D model by considering river runoff factors. Taking Tongzhou district of Beijing as an example, two different coupled models of the drainage network are constructed for comparison. The research focused on the drainage capacity of the study area and surface ponding water under different rainfall recurrence periods to evaluate the current flood resilience status and the priority of drainage network improvements. The results indicate that the demonstration area effectively mitigates urban flooding and can handle a 100-year return period rainfall event, with a maximum inundation depth of 0.407 m and an overflow node ratio of 20.8%. As the rainfall recurrence period increases, the number of overflow nodes tends to stabilize. Due to the high susceptibility of traffic hubs in cities to flooding, the result of contrast model analysis suggests prioritizing the drainage networks under main roads and overpasses and implementing Low Impact Development (LID) facilities around rivers to enhance urban infiltration and reduce river overflow risks. This coupled model demonstrates good applicability and high simulation accuracy for complex urban flood scenarios, emphasizing the importance of targeted urban planning and infrastructure improvements in enhancing flood resilience.
C1 [Cheng, Siwei; Li, Chenglin] Tibet Agr & Anim Husb Univ, Coll Water Conservancy & Civil Engn, Linzhi 860000, Peoples R China.
   [Cheng, Siwei; Li, Chenglin] Res Ctr Civil Hydraul & Power Engn Tibet, Linzhi 860000, Peoples R China.
   [Cheng, Siwei; Yang, Mingxiang; Jiang, Yunzhong; Gui, Yunpeng; Dong, Ningpeng] China Inst Water Resources & Hydropower Res, Dept Water Resources, Beijing, Peoples R China.
   [Yang, Mingxiang; Jiang, Yunzhong; Gui, Yunpeng; Dong, Ningpeng] State Key Lab Simulat & Regulat Water Cycle River, Beijing, Peoples R China.
   [Xu, Houlei; Chen, Changli; Shu, Dewei] PowerChina Kunming Engn Corp Ltd, Kunming, Peoples R China.
C3 Xizang Agricultural & Animal Husbandry University; China Institute of
   Water Resources & Hydropower Research
RP Yang, MX (corresponding author), China Inst Water Resources & Hydropower Res, Dept Water Resources, Beijing, Peoples R China.; Yang, MX (corresponding author), State Key Lab Simulat & Regulat Water Cycle River, Beijing, Peoples R China.
EM maxvivim@163.com; yangmx@iwhr.com; lcllichenglin@163.com;
   277582905@qq.com; changli.chen@foxmail.com; 53725025@qq.com;
   lark@iwhr.com; guiyp@iwhr.com; dongnp@iwhr.com
RI LI, CHENGLIN/JUF-8254-2023; Dong, Ningpeng/GLU-3558-2022
OI Yang, Mingxiang/0000-0002-6085-6762
FU China Power Construction Corporation Technology Project
FX The authors acknowledge the assistance of anonymous reviews.
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NR 37
TC 4
Z9 4
U1 28
U2 39
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 NOV
PY 2024
VL 38
IS 14
BP 5523
EP 5539
DI 10.1007/s11269-024-03914-9
EA AUG 2024
PG 17
WC Engineering, Civil; Water Resources
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Engineering; Water Resources
GA L6B9V
UT WOS:001297791200001
OA Green Submitted
DA 2025-04-22
ER

PT J
AU Li, L
   Wen, JH
   Shi, Y
   Chen, YX
   Shi, ZC
   Wu, YJ
   Liu, JL
   Tian, TF
   Yan, JP
   Zhao, LN
   Dong, Q
AF Li, Li
   Wen, Jiahong
   Shi, Yong
   Chen, Yuxi
   Shi, Zhongchao
   Wu, Yanjuan
   Liu, Jianli
   Tian, Tongfei
   Yan, Jianping
   Zhao, Luna
   Dong, Qiang
TI Disaster losses in Shanghai decreased under rapid urbanization: Evidence
   from 1980 to 2019
SO URBAN CLIMATE
LA English
DT Article
DE Historical disaster; Disaster loss database; Disaster loss matrix;
   Spatiotemporal characteristics; Urban resilience; Shanghai
ID RISK-ASSESSMENT; FLOOD; CITY; REDUCTION; HAZARDS; ADAPTATION;
   PROTECTION; FRAMEWORK; IMPACT; DAMAGE
AB In the context of rapid urbanization, understanding the spatiotemporal evolution of disasters in coastal cities is critical for disaster risk management and building urban resilience. This study established a comprehensive database of historical disasters from 1980 to 2019 to analyze the spatiotemporal characteristics of disaster losses in Shanghai, using both absolute and relative loss indicators, as well as disaster loss matrices. The results indicate that typhoons (with a composite loss index of 0.94), floods (0.74), and hailstorms (0.46) have been the major disasters affecting Shanghai over the past 40 years. Typhoons have had the greatest impact in terms of affected population, crop failure area, and the number of damaged and collapsed houses. Nearly half of the affected crop area and the crop failure were caused by floods, while hailstorms have posed the greatest threat to human life. Spatially, disasters have been more severe in the suburbs of Shanghai, while the central urban areas have been relatively less affected. Since the 1980s, rapid urbanization in Shanghai has significantly increased the exposure of population and assets; however, disaster severity has noticeably decreased. This reduction is attributed to advancements in socioeconomic development, urban planning and renewal, infrastructure investment, governance and risk management practices, technological innovation, and early warning systems, all of which have remarkably reduced the vulnerability of urban systems and enhanced the city's disaster resilience. Shanghai's experiences offer valuable insights for other coastal cities in developing countries as they pursue safer urban growth.
C1 [Li, Li; Wen, Jiahong; Shi, Zhongchao; Zhao, Luna; Dong, Qiang] Shanghai Normal Univ, Sch Environm & Geog Sci, Shanghai 200234, Peoples R China.
   [Shi, Yong] Shanghai Univ Sport, Dept Econ & Management, Shanghai 200438, Peoples R China.
   [Chen, Yuxi] Shanghai Emergency Management Bur, Div Disaster Prevent & Reduct, Shanghai 200020, Peoples R China.
   [Wu, Yanjuan] Ningbo Univ, Dept Geog & Spatial Informat Tech, Ningbo 315211, Peoples R China.
   [Liu, Jianli; Tian, Tongfei] Univ Sunshine Coast, Sch Sci Technol & Engn, Sippy Downs, QLD 4556, Australia.
   [Yan, Jianping] Rodel Risk Solut Inc, Toronto, ON M1W1J3, Canada.
   [Dong, Qiang] Shanghai Customs Coll, Shanghai 201204, Peoples R China.
C3 Shanghai Normal University; Shanghai University of Sport; Ningbo
   University; University of the Sunshine Coast; Shanghai Customs College
RP Zhao, LN; Dong, Q (corresponding author), Shanghai Normal Univ, Sch Environm & Geog Sci, Shanghai 200234, Peoples R China.
EM 1000447053@smail.shnu.edu.cn; dongqiang@shcc.edu.cn
RI Yan, Jianping/AAP-9523-2021; CHEN, YUXI/HRC-9369-2023; Liu,
   Jianli/ITW-1730-2023
OI hikouzan, tung/0000-0002-0134-5567
FU National Natural Science Foundation of China [42171080]; Historical
   Disaster Investigation and Assessment Project of Shanghai Emergency
   Management Bureau [11 N7295209912021802]
FX This research was supported by the National Natural Science Foundation
   of China (42171080) , and the Historical Disaster Investigation and
   Assessment Project of Shanghai Emergency Management Bureau (11
   N7295209912021802) .
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NR 84
TC 0
Z9 0
U1 12
U2 12
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2212-0955
J9 URBAN CLIM
JI Urban CLim.
PD FEB
PY 2025
VL 59
AR 102278
DI 10.1016/j.uclim.2024.102278
EA JAN 2025
PG 14
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA T0T0E
UT WOS:001402226500001
DA 2025-04-22
ER

PT J
AU Wang, CH
   Chen, N
   Chan, SL
AF Wang, Chih-Hao
   Chen, Na
   Chan, Shih-Liang
TI A gravity model integrating high-speed rail and seismic-hazard
   mitigation through land-use planning: Application to California
   development
SO HABITAT INTERNATIONAL
LA English
DT Article
DE High-speed rail; Resilience; Seismic hazard; Vulnerability; Urban model;
   Land-use planning
ID URBAN-DEVELOPMENT; LOS-ANGELES; TRANSPORTATION; ACCESSIBILITY;
   RESILIENCE; EARTHQUAKE; LOCATION; COUNTY
AB California high-speed rail (CaIHSR) will be changing the current regional and urban structure because of the improved transportation mobility and accessibility. It has been a focus of interest to see whether high-speed rail will enhance the polarization of first-tier station cities or reduce the gap between those and lower-tier cities. In California, the two largest cities (i.e., San Francisco and Los Angeles) are under great seismic threat. Planners should be able to assess CaIHSR impacts and the resulting seismic risks because of disproportionally allocating future growth to seismic hazardous locations. Urban models can help' develop knowledge about urban and regional system behavior, since CaIHSR does not yet exist. A gravity model, TELUM, is therefore used to understand the effects of CaIHSR and seismic hazard mitigation on the allocation of future development over six 5-year increments from 2015 to 2040. Several scenarios are considered: 1) natural growth; 2) impact of CaIHSR; 3) impacts of both seismic hazard mitigation and CalHSR. The first scenario shows that TELUM tends to result in spatial polarization. Under the second scenario, CaIHSR enhances the polarization of San Francisco, Los Angeles, and Fresno metropolitan areas, due to their economic strength. The third scenario is to examine whether CaIHSR effects increase seismic risks. The results show that a seismic mitigation plan with zero-development policy can improve urban resilience. From the perspective at the regional level, possible seismic mitigation approaches are discussed, through land-use and transportation planning, to guide future growth to more seismic-resistant locations. (C) 2017 Elsevier Ltd. All rights reserved.
C1 [Wang, Chih-Hao] Calif State Univ Fresno, Dept Geog & City & Reg Planning, 2555 E San Ramon M-S SB69, Fresno, CA 93740 USA.
   [Chen, Na] Ohio State Univ, City & Reg Planning, Columbus, OH 43210 USA.
   [Chan, Shih-Liang] Natl Taipei Univ, Dept Real Estate & Built Environm, New Taipei, Taiwan.
C3 University System of Ohio; Ohio State University; National Taipei
   University
RP Wang, CH (corresponding author), Calif State Univ Fresno, Dept Geog & City & Reg Planning, 2555 E San Ramon M-S SB69, Fresno, CA 93740 USA.
EM cwang@csufresno.edu; chen.2572@osu.edu; slchan@mail.ntpu.edu.tw
FU Federal Highway Administration (FHWA)
FX The authors thank Professor Stephen H. Putman and the New Jersey
   Institute of Technology (NJIT) for developing the TELUM software,
   sponsored by the Federal Highway Administration (FHWA).
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NR 46
TC 24
Z9 24
U1 0
U2 54
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 2017
VL 62
BP 51
EP 61
DI 10.1016/j.habitatint.2017.02.009
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 ER5XM
UT WOS:000398877600005
DA 2025-04-22
ER

PT J
AU Ordóñez, C
   Duinker, PN
AF Ordonez, Camilo
   Duinker, Peter N.
TI Ecological integrity in urban forests
SO URBAN ECOSYSTEMS
LA English
DT Article
ID BIODIVERSITY; ECOSYSTEM; VEGETATION; DIVERSITY; HABITAT; URBANIZATION;
   CONSERVATION; LANDSCAPE; INVASION; POLICY
AB Ecological integrity has been an umbrella concept guiding ecosystem management for several decades. Though plenty of definitions of ecological integrity exist, the concept is best understood through related concepts, chiefly, ecosystem health, biodiversity, native species, stressors, resilience and self-maintenance. Discussions on how ecological integrity may be relevant to complex human-nature ecosystems, besides those set aside for conservation, are growing in number. In the case of urban forests, no significant effort has yet been made to address the holistic concept of ecological integrity for the urban forest system. Preliminary connections between goals such as increasing tree health, maintaining canopy cover, and reducing anthropogenic stressors and the general notion of integrity exist. However, other related concepts, such as increasing biodiversity, the planting of native species, and the full meaning of ecosystem health beyond merely tree health have not been addressed profoundly as contributors to urban forest integrity. Meanwhile, other concepts such as resilience to change and self-maintenance are not addressed explicitly. In this paper we reveal two camps of interpretation of ecological integrity for urban forests that in turn rely on a particular definition of the urban forest ecosystem and a set of urban forest values. Convergence and integration of these values is necessary to bring a constructive frame of interpretation of ecological integrity to guide urban forest management into the future.
RP Ordóñez, C (corresponding author), Dalhousie Univ, Sch Resource & Environm Studies, 6100 Univ Ave, Halifax, NS B3H 3J5, Canada.
EM camilo.ordonez@dal.ca
RI Ordóñez, Camilo/AAM-5712-2021; Ordonez Barona, Camilo/H-8577-2014
OI Ordonez Barona, Camilo/0000-0002-4928-1275
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NR 104
TC 49
Z9 63
U1 4
U2 168
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 DEC
PY 2012
VL 15
IS 4
BP 863
EP 877
DI 10.1007/s11252-012-0235-6
PG 15
WC Biodiversity Conservation; Ecology; Environmental Sciences; Urban
   Studies
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Biodiversity & Conservation; Environmental Sciences & Ecology; Urban
   Studies
GA 030QV
UT WOS:000310586100005
DA 2025-04-22
ER

PT J
AU Solecki, W
   Rosenzweig, C
AF Solecki, William
   Rosenzweig, Cynthia
TI Indicators and monitoring systems for urban climate resiliency
SO CLIMATIC CHANGE
LA English
DT Article
DE New York City Panel on Climate Change; Urban Climate Resilience
   Indicators and Monitoring System; Climate assessment
ID YORK-CITY PANEL; CHANGE ADAPTATION; VULNERABILITY
AB Cities in the USA and around the world have begun to take an active role in responding to climate change. A central requirement for effective urban climate strategies is the capacity to understand and measure how the climate is changing, the physical, environmental, and social impacts of the changes, and whether adaptation and resiliency policies and programs put in place in response are working. The objective of this paper is to review and assess how urban climate change and resiliency efforts can be measured and to define what might serve as meaningful indicator and monitoring protocols. The New York City Panel on Climate Change (NPCC) is used as a case study along with a reviews of the emerging literature of urban climate change indicators to analyze the requirements and processes needed for a successful urban climate resiliency indicator and monitoring (I and M) system. In the paper, the basic requirements of a proposed Urban Climate Resilience Indicators and Monitoring System are presented. A specific illustration of an I and M system for tracking the urban heat island highlights challenges as well as potential solutions embedded within such systems. Discussions how these protocols can be translated to other locales and settings, as well as the relationship to the US National Climate Assessment indicator process, are presented.
C1 [Solecki, William] CUNY, Dept Geog & Environm Sci, Hunter Coll, New York, NY 10021 USA.
   [Rosenzweig, Cynthia] NASA, Goddard Inst Space Studies, New York, NY 10025 USA.
C3 City University of New York (CUNY) System; Hunter College (CUNY);
   National Aeronautics & Space Administration (NASA); NASA Goddard Space
   Flight Center; Goddard Institute for Space Studies
RP Solecki, W (corresponding author), CUNY, Dept Geog & Environm Sci, Hunter Coll, New York, NY 10021 USA.
EM wsolecki@hunter.cuny.edu
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NR 61
TC 9
Z9 9
U1 9
U2 60
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 DEC
PY 2020
VL 163
IS 4
SI SI
BP 1815
EP 1837
DI 10.1007/s10584-020-02947-4
EA DEC 2020
PG 23
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA PT4IO
UT WOS:000599483400002
DA 2025-04-22
ER

PT J
AU Kim, Y
   Newman, G
AF Kim, Youjung
   Newman, Galen
TI Climate Change Preparedness: Comparing Future Urban Growth and Flood
   Risk in Amsterdam and Houston
SO SUSTAINABILITY
LA English
DT Article
DE urban growth; flood risk; land use change model; land transformation
   model
ID LAND-USE CHANGE; LOGISTIC-REGRESSION; CELLULAR-AUTOMATA; CHANGE MODEL;
   TRANSFORMATION MODEL; INTEGRATED APPROACH; SOIL-EROSION; OPEN SPACE;
   IMPACTS; GIS
AB Rising sea levels and coastal population growth will increase flood risk of more people and assets if land use changes are not planned adequately. This research examines the efficacy of flood protection systems and land use planning by comparing Amsterdam in the Netherlands (renown for resilience planning methods), with the city of Houston, Texas in the US (seeking ways of increasing resilience due to extreme recent flooding). It assesses flood risk of future urban growth in lieu of sea level rise using the Land Transformation Model, a Geographic Information Systems (GIS)-based Artificial Neural Network (ANN) land use prediction tool. Findings show that Houston has currently developed much more urban area within high-risk flood-prone zones compared to Amsterdam. When comparing predicted urban areas under risk, flood-prone future urban areas in Amsterdam are also relatively smaller than Houston. Finally, the increased floodplain when accounting for sea level rise will impact existing and future urban areas in Houston, but do not increase risk significantly in Amsterdam. The results suggest that the protective infrastructure used in the Netherlands has protected its future urban growth from sea level rise more adequately than has Houston.
C1 [Kim, Youjung; Newman, Galen] 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 Kim, Y (corresponding author), Texas A&M Univ, Dept Landscape Architecture & Urban Planning, College Stn, TX 77843 USA.
EM yk2247@tamu.edu; gnewman@arch.tamu.edu
OI Kim, You Jung/0000-0002-1617-3956
FU National Science Foundation Partnerships for International Research and
   Education [1545837]; National Institute of Environmental Health Sciences
   Super grant [P42ES027704-01]; Texas AM University; University Libraries;
   Office of the Vice President for Research; National Institute of
   Environmental Health Sciences [P42ES027704] Funding Source: NIH
   RePORTER; Office Of The Director; Office Of Internatl Science
   &Engineering [1545837] Funding Source: National Science Foundation
FX This research was funded by National Science Foundation Partnerships for
   International Research and Education (award no. 1545837) and the
   National Institute of Environmental Health Sciences Super grant
   (#P42ES027704-01). The open access publishing fees for this article have
   been covered by the Texas A&M University Open Access to Knowledge Fund
   (OAKFund), supported by the University Libraries and the Office of the
   Vice President for Research.
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NR 134
TC 29
Z9 34
U1 3
U2 86
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD FEB 2
PY 2019
VL 11
IS 4
AR 1048
DI 10.3390/su11041048
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 HO3JV
UT WOS:000460819100108
PM 30809384
OA gold, Green Accepted
DA 2025-04-22
ER

PT J
AU Twohig, C
   Casali, Y
   Aydin, NY
AF Twohig, Cian
   Casali, Ylenia
   Aydin, Nazli Yonca
TI Can green roofs help with stormwater floods? A geospatial planning
   approach
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Geospatial planning; Green roofs; Stormwater flooding; Resilience;
   Evidence -based planning
ID RUNOFF; INFRASTRUCTURE; PERFORMANCE; RESILIENCE; MITIGATION; MANAGEMENT;
   RETENTION; PARKS; RISK
AB Increasing urbanization, impervious space, and the impact of climate change are threatening the future of cities. Nature-based solutions, specifically urban green infrastructures, are seen as a sustainable strategy to increase resilience against extreme weather events, including the escalating occurrence of stormwater runoff flooding. Consequently, urban planners and decision-makers have pushed their efforts toward implementing green infrastructure solutions to reduce the impact of stormwater floods. Among others, green roofs help store water and decrease stormwater runoff impacts on a local scale. This research aims to investigate the effect of surface permeability and green roof implementation on reducing stormwater flooding and subsequently provide urban planners with evidence-based geospatial planning recommendations to improve urban resilience in Helsinki. First, we modeled the current impact of stormwater flooding using the Arc-Malstrom model in Helsinki. The model was used to identify districts under high stormwater flood risk. Then, we zoomed in to a focus area and tested a combination of scenarios representing four levels of green roof implementation, two levels of green roof infiltration rates under 40-, 60-, 80-, 100 mm precipitation events on the available rooftops. We utilized open geographic data and geospatial data science principles implemented in the GIS environment to conduct this study. Our results showed that low-level implementation of green roofs with low retention rates reduces the average flood depth by only 1 %. In contrast, the maximum green roof scenario decreased most of the average flood depth (13 %) and reduced the number of vulnerable sites. The proposed methodology can be used for other cities to develop evidence-based plans for green roof implementations.
C1 [Twohig, Cian; Casali, Ylenia; Aydin, Nazli Yonca] Delft Univ Technol, Fac Technol Policy & Management, Delft, Netherlands.
C3 Delft University of Technology
RP Aydin, NY (corresponding author), Delft Univ Technol, Fac Technol Policy & Management, Delft, Netherlands.
EM twohigcian@gmail.com; Y.Casali@tudelft.nl; N.Y.Aydin@tudelft.nl
RI AYDIN, NAZLI YONCA/M-4991-2018
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NR 65
TC 16
Z9 18
U1 12
U2 13
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 OCT
PY 2022
VL 76
AR 127724
DI 10.1016/j.ufug.2022.127724
EA SEP 2022
PG 12
WC Plant Sciences; Environmental Studies; Forestry; Urban Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Plant Sciences; Environmental Sciences & Ecology; Forestry; Urban
   Studies
GA 4U9XW
UT WOS:000859139700001
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Merson, J
   Attwater, R
   Ampt, P
   Wildman, H
   Chapple, R
AF Merson, J.
   Attwater, R.
   Ampt, P.
   Wildman, H.
   Chapple, R.
TI The challenges to urban agriculture in the Sydney basin and lower Blue
   Mountains region of Australia
SO INTERNATIONAL JOURNAL OF AGRICULTURAL SUSTAINABILITY
LA English
DT Article
DE integrated bio-systems; landscape function analysis; protected area
   buffer zones; urban agriculture
AB The western edge of the Sydney basin in Australia has been one of the major sources of fruit and vegetables for the Sydney markets. A rapid expansion of urban development in this region has caused a significant reduction in the number of small farms and market gardens. Urban and peri-urban agriculture in the region also provides an important buffer between urban development and the neighbouring Greater Blue Mountains World Heritage Area. The decline in urban agriculture can be attributed to various causes including urban expansion and economies of scale. This paper presents an overview of a four-year project that explored options for supporting these vulnerable farming communities both in terms of the regulatory factors and economic and environmental sustainability. The role of agri-industries as landscape buffers to the neighbouring World Heritage Area was investigated in relation to resilience, communities of practice, and ecosystem services. The study developed tools, in conjunction with targeted representative landholders, that can assist in enhancing the economic and environmental resilience of these agri-industries. These tools included an integrated bio-system approach to waste using organic waste conversion, and the use of landscape function analysis to monitor across farms to help address erosion, loss of nutrients and inefficient water management.
C1 [Merson, J.; Ampt, P.] Univ New S Wales, Inst Environm Studies, Sydney, NSW 2052, Australia.
   [Attwater, R.] Univ Western Sydney, Richmond, NSW 2753, Australia.
   [Chapple, R.] Blue Mt World Heritage Inst, Katoomba, NSW 2780, Australia.
C3 University of New South Wales Sydney; Western Sydney University
RP Merson, J (corresponding author), Univ New S Wales, Inst Environm Studies, Sydney, NSW 2052, Australia.
EM j.merson@unsw.edu.au
OI Chapple, Rosalie/0000-0002-3826-2896
FU Rural Industries Research & Development Council (RIRDC)
FX The authors acknowledge the Rural Industries Research & Development
   Council (RIRDC) for funding this project, and the farming families who
   participated in the study.
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NR 25
TC 27
Z9 31
U1 0
U2 61
PU EARTHSCAN
PI LONDON
PA 14A ST CROSS STREET, LONDON, EC1N 8XA, ENGLAND
SN 1473-5903
J9 INT J AGR SUSTAIN
JI Int. J. Agric. Sustain.
PY 2010
VL 8
IS 1-2
SI SI
BP 72
EP 85
DI 10.3763/ijas.2009.0464
PG 14
WC Agriculture, Multidisciplinary; Green & Sustainable Science & Technology
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Agriculture; Science & Technology - Other Topics
GA 566PV
UT WOS:000275386000009
DA 2025-04-22
ER

PT J
AU Ismael, D
   Hutton, N
   Erten-Unal, M
   Considine, C
   Vandecar-Burdin, T
   Davis, C
   Chen, YH
AF Ismael, Dalya
   Hutton, Nicole
   Erten-Unal, Mujde
   Considine, Carol
   Vandecar-Burdin, Tancy
   Davis, Christopher
   Chen, Yin-Hsuen
TI Community-Centric Approaches to Coastal Hazard Assessment and Management
   in Southside Norfolk, Virginia, USA
SO ATMOSPHERE
LA English
DT Article
DE community engagement; urban resilience; flood mitigation; green
   infrastructure; environmental justice; participatory GIS
ID SEA-LEVEL RISE; RESILIENCE; FRAMEWORK
AB Urban communities in environmentally sensitive areas face escalating challenges due to climate change and inadequate infrastructural support, particularly in underserved regions like southside Norfolk, Virginia. This area, characterized by its vulnerability to flooding and a predominantly low-income population, lacks equitable inclusion in broader urban flood protection plans. This research focuses on the development of community-centered resilience strategies through active engagement and collaboration with local residents. The methodology centered around building trust and understanding within the community through a series of interactions and events. This approach facilitated a two-way exchange of information, enabling the research team to gather crucial insights on community-valued assets, prevalent flooding issues, and preferred flood mitigation solutions. The engagement revealed a significant increase in community knowledge regarding climate change, sea level rise, and stormwater management. Residents expressed a strong preference for green infrastructure solutions, including rain gardens, permeable pavements, and living shorelines, alongside concerns about pollution and the need for infrastructure redesign. The outcomes of this community engagement have initiated plans to develop tailored, nature-based flooding solutions. These results are set to inform future urban planning and policy, offering insights to the City of Norfolk and the United States Army Corps of Engineers for potential redesigns of flood intervention strategies that are more inclusive and effective. A template for participatory research to inform coastal hazard management includes cross-sector collaboration, a long-term engagement commitment, and education and surveying opportunities to align solutions to lived, local experiences. This template allows for community trust building, which is especially important in environmental justice communities. The study highlights the importance of community involvement in urban resilience planning, demonstrating that local engagement is essential in shaping community-centric solutions and equitable environmental policies.
C1 [Ismael, Dalya] Old Dominion Univ, Engn Technol Dept, Norfolk, VA 23529 USA.
   [Hutton, Nicole] Old Dominion Univ, Inst Coastal Adaptat & Resilience, Dept Polit Sci & Geog, Norfolk, VA 23529 USA.
   [Erten-Unal, Mujde] Old Dominion Univ, Civil & Environm Engn Dept, Norfolk, VA 23529 USA.
   [Considine, Carol] Old Dominion Univ, Inst Coastal Adaptat & Resilience, Norfolk, VA 23529 USA.
   [Vandecar-Burdin, Tancy] Old Dominion Univ, Social Sci Res Ctr, Norfolk, VA 23529 USA.
   [Davis, Christopher; Chen, Yin-Hsuen] Old Dominion Univ, Ctr Geospatial Sci, Norfolk, VA 23529 USA.
C3 Old Dominion University; Old Dominion University; Old Dominion
   University; Old Dominion University; Old Dominion University; Old
   Dominion University
RP Hutton, N (corresponding author), Old Dominion Univ, Inst Coastal Adaptat & Resilience, Dept Polit Sci & Geog, Norfolk, VA 23529 USA.
EM dismael@odu.edu; nhuttons@odu.edu; munal@odu.edu; cconsidi@odu.edu;
   tvandeca@odu.edu; c3davis@odu.edu; y3chen@odu.edu
OI Chen, Yin-Hsuen/0000-0003-4809-5718; Ismael, Dalya/0009-0003-7410-3045
FU Commonwealth Center for Recurrent Flooding Resiliency
FX The authors would like to acknowledge the contributions of Faeghe
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NR 60
TC 1
Z9 1
U1 8
U2 10
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2073-4433
J9 ATMOSPHERE-BASEL
JI Atmosphere
PD MAR
PY 2024
VL 15
IS 3
AR 372
DI 10.3390/atmos15030372
PG 18
WC Environmental Sciences; Meteorology & Atmospheric Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology; Meteorology & Atmospheric Sciences
GA ME0U9
UT WOS:001191840200001
OA gold
DA 2025-04-22
ER

PT J
AU Mauricette, L
   Dong, ZH
   Zhang, LA
   Zhang, X
   Zhang, N
   Strbac, G
AF Mauricette, Lascelle
   Dong, Zihang
   Zhang, Linan
   Zhang, Xi
   Zhang, Ning
   Strbac, Goran
TI Resilience Enhancement of Urban Energy Systems via Coordinated
   Vehicle-to-grid Control Strategies
SO CSEE JOURNAL OF POWER AND ENERGY SYSTEMS
LA English
DT Article
DE Resilience; Optimization; Costs; Vehicle-to-grid; Uncertainty; State of
   charge; Microgrids; Multi-energy system; renewable energy sources;
   resilience; rolling horizon optimization; vehicle-to-grid
ID FRAMEWORK; MICROGRIDS; METRICS; MODEL
AB Coordinated vehicle-to-grid (V2G) control strategies can sustain essential loads of an energy system during islanding, thereby increasing resilience. In this context, this paper investigates the resilience enhancement benefits of smart V2G control, the value of electric vehicle (EV) owner cooperation on system resilience, as well as the complementary effects of PV and EV interaction in an urban multi-energy microgrid (MEMG). By using a rolling horizon approach to optimize day-ahead operation of the MEMG and subsequently dispatching EVs, uncertainties in outage start time, EV arrival/departure times, and initial state of charge (SOC) are mitigated. Results show that smart V2G control can provide a substantial essential load curtailment reduction compared to a non-EV scenario, meanwhile, non-coordinated grid-to-vehicle (G2V) operation was shown to slightly burden the system with a slight increase in non-essential load curtailment. Investigations into the influence of EV cooperation on resilience showed that a high percentage of system-prioritized (SP) EVs could help greatly further reduce essential load curtailment compared to individual-prioritized (IP) EVs. Finally, the complementary benefits of smart V2G control and PV were demonstrated, showing a reduction in both PV and essential load curtailments with increasing numbers of EVs. Overall, the application of smart V2G control, especially with cooperation of EV owners, can drive significant resilience enhancement during islanding, while further benefits can be obtained through having a sufficient number of EVs to utilize high PV penetration.
C1 [Mauricette, Lascelle; Dong, Zihang; Zhang, Linan; Strbac, Goran] Imperial Coll London, Dept Elect & Elect Engn, London SW7 2AZ, England.
   [Zhang, Xi] State Grid Smart Grid Res Inst Co Ltd, Dept Grid Digitalizat Technol, Beijing 102209, Peoples R China.
   [Zhang, Ning] Tsinghua Univ, Dept Elect Engn, State Key Lab Power Syst, Beijing 100084, Peoples R China.
C3 Imperial College London; Tsinghua University
RP Dong, ZH (corresponding author), Imperial Coll London, Dept Elect & Elect Engn, London SW7 2AZ, England.
EM zihang.dong14@imperial.ac.uk
RI Zhang, Linan/GPX-0811-2022; Zhang, Xi/ADI-7558-2022; Zhang,
   Ning/A-3217-2016; Dong, Zihang/AFK-0995-2022
OI DONG, ZIHANG/0000-0003-4541-7259; ZHANG, XI/0000-0003-4568-8745
FU UK Engineering and Physical Sciences Research Council [EP/L015471/1,
   EP/R045518/1]
FX This work was supported by the UK Engineering and Physical Sciences
   Research Council (EP/L015471/1; EP/R045518/1)
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NR 31
TC 15
Z9 15
U1 9
U2 37
PU CHINA ELECTRIC POWER RESEARCH INST
PI BEIJING
PA 15, QINGHE XIAOYING DONG LU, HAIDIAN-QU, BEIJING, 100192, PEOPLES R
   CHINA
SN 2096-0042
J9 CSEE J POWER ENERGY
JI CSEE J. Power Energy Syst.
PD MAR
PY 2023
VL 9
IS 2
BP 433
EP 443
DI 10.17775/CSEEJPES.2022.05270
PG 11
WC Energy & Fuels; Engineering, Electrical & Electronic
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA C8ZV5
UT WOS:000964745600003
DA 2025-04-22
ER

PT J
AU Chen, SL
   Brokhausen, F
   Wiesner, P
   Hegyi, D
   Citir, M
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AF Chen, Siling
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   Park, Sangyoung
   Rabe, Jochen
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   Castelletti, Andrea
   Thamsen, Paul Uwe
   Cominola, Andrea
TI Coupled simulation of urban water networks and interconnected critical
   urban infrastructure systems: A systematic review and multi-sector
   research agenda
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Review
DE Interconnected critical urban infrastructure; Critical Infrastructure
   Domain (CID); Urban water networks; Simulation; Review; Multi-sector
   dynamics
ID RESILIENCE; POWER; OPERATION; PUMP
AB Adaptive planning of water infrastructure systems is crucial to bolster urban resilience in the face of climate change while meeting the needs of rapidly changing urban metabolisms. Urban water systems maintain intricate interconnections with other critical infrastructure domains (CIDs). Multi-sector dependencies and joint management of different CIDs have gained interest in recent research to mitigate undesired cascading effects across domains. Yet, combined modeling and joint simulation of multiple CIDs needs to overcome the limitations of tools and software often siloed to individual infrastructure domains. In this paper, we contribute a systematic review of 24 recent peer-reviewed publications on coupled simulation of urban water systems (water supply and drainage networks) and other CIDs, including energy grids, mobility networks, and IT infrastructure systems, extracted from a larger set of 222 publications. First, we identify trends, modeling frameworks, and simulation software enabling the combined simulation of interlinked CIDs. Then, we define an agenda of priorities for future research. Acknowledging the opportunities provided by open-source tools, data, and standardized evaluation schemes, future research fostering coupled simulation across CIDs should prioritize knowledge transfer, address differences in spatial and temporal dependencies, scale up simulations to a network level, and explore multi-sector interconnections beyond bilateral dependencies.
C1 [Chen, Siling; Huth, Margaux; Cominola, Andrea] Tech Univ Berlin, Chair Smart Water Networks, Str 17 Juni 135, D-10623 Berlin, Germany.
   [Chen, Siling; Citir, Muzaffer; Huth, Margaux; Park, Sangyoung; Rabe, Jochen; Cominola, Andrea] Einstein Ctr Digital Future, Wilhelmstr 67, D-10117 Berlin, Germany.
   [Brokhausen, Florian; Thamsen, Paul Uwe] Tech Univ Berlin, Chair Fluid Syst Dynam, Str 17 Juni 135, D-10623 Berlin, Germany.
   [Wiesner, Philipp] Tech Univ Berlin, Distributed & Operating Syst, Str 17 Juni 135, D-10623 Berlin, Germany.
   [Hegyi, Dora] HafenC Univ Hamburg, United Nations Innovat Technol Accelerator Cities, Henning-Voscherau-Pl 1, D-20457 Hamburg, Germany.
   [Citir, Muzaffer; Park, Sangyoung] Tech Univ Berlin, Chair Smart Mobil Syst, Str 17 Juni 135, D-10623 Berlin, Germany.
   [Thamsen, Lauritz] Univ Glasgow, Sch Comp Sci, 18 Lilybank Gardens, Glasgow G12 8RZ, Scotland.
   [Tscheikner-Gratl, Franz] Norwegian Univ Sci & Technol, Dept Civil & Environm Engn, SP Andersens Veg 5, N-7031 Trondheim, Norway.
   [Castelletti, Andrea] Politecn Milan, Dept Elect Informat & Bioengn, Piazza Leonardo Vinci 32, I-20133 Milan, Italy.
   [Chen, Siling] Tech Univ Berlin, Chair Smart Water Networks, Str 17 Juni 135, D-10623 Berlin, Germany.
C3 Technical University of Berlin; Technical University of Berlin;
   Technical University of Berlin; Technical University of Berlin;
   University of Glasgow; Norwegian University of Science & Technology
   (NTNU); Polytechnic University of Milan; Technical University of Berlin
RP Chen, SL (corresponding author), Tech Univ Berlin, Chair Smart Water Networks, Str 17 Juni 135, D-10623 Berlin, Germany.
EM siling.chen@tu-berlin.de; florian.brokhausen@tu-berlin.de;
   wiesner@tu-berlin.de; dora.hegyi@hcu-hamburg.de;
   muzaffer.citir@campus.tu-berlin.de; margaux.huth@gmail.com;
   sangyoung.park@campus.tu-berlin.de; jochen.rabe@kompetenz-wasser.de;
   Lauritz.Thamsen@glasgow.ac.uk; franz.tscheikner-gratl@ntnu.no;
   andrea.castelletti@polimi.it; paul-uwe.thamsen@tu-berlin.de;
   andrea.cominola@tu-berlin.de
RI Castelletti, Andrea/AAG-7111-2020; Wiesner, Philipp/KMY-1174-2024; Park,
   Sangyoung/AAU-7415-2020; Cominola, Andrea/AAU-7028-2020;
   Tscheikner-Gratl, Franz/AAT-5344-2020
OI Park, Sangyoung/0009-0006-8670-7104; Brokhausen,
   Florian/0000-0002-8003-4344
FU German Academic Exchange Service (DAAD); Federal Ministry of Education
   and Research (BMBF) , Germany [57541877]; Project DEAL
FX The research leading to this review paper has received partial funding
   from the German Academic Exchange Service (DAAD) and the Federal
   Ministry of Education and Research (BMBF) , Germany for the project
   ide3a (international alliance for digital e-learning, e-mobility and
   e-research in academia - Project ID: 57541877) funded as part of the
   International Mobility and Cooperation through Digitalisation (IMKD)
   program, Germany.We are grateful for the Open Access funding enabled and
   organized by Project DEAL.
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NR 92
TC 0
Z9 0
U1 16
U2 39
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD MAY
PY 2024
VL 104
AR 105283
DI 10.1016/j.scs.2024.105283
EA FEB 2024
PG 15
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA OJ1I1
UT WOS:001206807400001
OA hybrid, Green Accepted
DA 2025-04-22
ER

PT J
AU Andersson, DE
   Andersson, ÅE
AF Andersson, David Emanuel
   Andersson, Ake E.
TI Sustainability and the Built Environment: The Role of Durability
SO SUSTAINABILITY
LA English
DT Article
DE durability; built environment; infrastructure; sustainability
ID GREENHOUSE-GAS EMISSIONS; LAND-USE REGULATION
AB A sustainable city combines stable long-term economic growth with a resilient ecological system. It is also a region of social sustainability with low levels of spatial segregation of different socio-economic groups. Spatial inclusion primarily involves provision of equalized city-wide access to territorial public goods. High durability of physical networks and buildings facilitates economic, environmental and social sustainability. This study shows that durability varies considerably between Asian, European and North American cities, with mean life expectancies of buildings that range from below 20 years in Chinese cities to over 100 years in European cities such as Paris. Urban planning principles that focus on the slow and steady expansion of accessibility and density within a durable built environment are consistent with general economic equilibria, while avoiding the pitfalls of political planning of the markets for private goods.
C1 [Andersson, David Emanuel] Natl Sun Yat Sen Univ, Coll Management, 70 Lianhai Rd, Kaohsiung 80424, Taiwan.
   [Andersson, Ake E.] Jonkoping Univ, Jonkoping Int Business Sch, Dept Econ Finance & Stat, Gjuterigatan 5, S-55111 Jonkoping, Sweden.
C3 National Sun Yat Sen University; Jonkoping University
RP Andersson, DE (corresponding author), Natl Sun Yat Sen Univ, Coll Management, 70 Lianhai Rd, Kaohsiung 80424, Taiwan.
EM davidemanuelandersson@cm.nsysu.edu.tw
RI Andersson, David Emanuel/G-8471-2013
OI Andersson, David Emanuel/0000-0002-1640-1314
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NR 39
TC 5
Z9 8
U1 1
U2 18
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 2071-1050
J9 SUSTAINABILITY-BASEL
JI Sustainability
PD SEP
PY 2019
VL 11
IS 18
AR 4926
DI 10.3390/su11184926
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 JC2KA
UT WOS:000489104700112
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Liu, HY
   Wang, JH
   Liu, J
   Ge, Y
   Wang, XL
   Zhang, C
   Cleary, E
   Ruktanonchai, NW
   Ruktanonchai, CW
   Yao, YC
   Wesolowski, A
   Lu, X
   Tatem, AJ
   Bai, XM
   Lai, SJ
AF Liu, Haiyan
   Wang, Jianghao
   Liu, Jian
   Ge, Yong
   Wang, Xiaoli
   Zhang, Chi
   Cleary, Eimear
   Ruktanonchai, Nick W.
   Ruktanonchai, Corrine W.
   Yao, Yongcheng
   Wesolowski, Amy
   Lu, Xin
   Tatem, Andrew J.
   Bai, Xuemei
   Lai, Shengjie
TI Combined and delayed impacts of epidemics and extreme weather on urban
   mobility recovery
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Compound disasters; Mobility recovery; Epidemic; Extreme weather;
   Nonlinear delayed effects; Urban resilience
ID HAZARDS; RISK
AB The ever-increasing pandemic and natural disasters might spatial-temporal overlap to trigger compound disasters that disrupt urban life, including human movements. In this study, we proposed a framework for data-driven analyses on mobility resilience to uncover the compound effects of COVID-19 and extreme weather events on mobility recovery across cities with varied socioeconomic contexts. The concept of suppression risk (SR) is introduced to quantify the relative risk of mobility being reduced below the pre-pandemic baseline when certain variables deviate from their normal values. By analysing daily mobility data within and between 313 Chinese cities, we consistently observed that the highest SR under outbreaks occurred at high temperatures and abnormal precipitation levels, regardless of the type of travel, incidences, and time. Specifically, extremely high temperatures (at 35 degrees C) increased SR during outbreaks by 12.5%-120% but shortened the time for mobility recovery. Increased rainfall (at 20 mm/day) added SRs by 12.5%-300%, with delayed effects reflected in cross-city movements. These compound impacts, with varying lagged responses, were aggravated in cities with high population density and low GDP levels. Our findings provide quantitative evidence to inform the design of preparedness and response strategies for enhancing urban resilience in the face of future pandemics and compound disasters.
C1 [Liu, Haiyan; Liu, Jian] Ocean Data Ctr, Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai 528478, Guangdong, Peoples R China.
   [Wang, Jianghao; Ge, Yong] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, State Key Lab Resources & Environm Informat Syst, Beijing 100101, Peoples R China.
   [Wang, Jianghao; Ge, Yong] Univ Chinese Acad Sci, Beijing 100101, Peoples R China.
   [Wang, Xiaoli] Beijing Ctr Dis Prevent & Control, Beijing 100021, Peoples R China.
   [Zhang, Chi] Sun Yat Sen Univ, Sch Publ Hlth Shenzhen, Shenzhen 528406, Guangdong, Peoples R China.
   [Cleary, Eimear; Yao, Yongcheng; Tatem, Andrew J.; Lai, Shengjie] Univ Southampton, Sch Geog & Environm Sci, WorldPop, Southampton SO17 1BJ, England.
   [Ruktanonchai, Nick W.; Ruktanonchai, Corrine W.] Virginia Tech, Populat Hlth Sci, Blacksburg, VA 24060 USA.
   [Yao, Yongcheng] Zhengzhou Normal Univ, Zhengzhou 450044, Henan, Peoples R China.
   [Wesolowski, Amy] Johns Hopkins Bloomberg Sch Publ Hlth, Dept Epidemiol, Baltimore, MD 21218 USA.
   [Lu, Xin] Natl Univ Def Technol, Coll Syst Engn, Changsha 410073, Hunan, Peoples R China.
   [Bai, Xuemei] Australia Natl Univ, Fenner Sch Environm & Soc, Canberra, ACT 2600, Australia.
   [Lai, Shengjie] Univ Southampton, Inst Life Sci, Southampton SO17 1BJ, England.
   [Lu, Xin; Lai, Shengjie] Fudan Univ, Shanghai Inst Infect Dis & Biosecur, Shanghai 200433, Peoples R China.
C3 Southern Marine Science & Engineering Guangdong Laboratory; Southern
   Marine Science & Engineering Guangdong Laboratory (Zhuhai); Chinese
   Academy of Sciences; Institute of Geographic Sciences & Natural
   Resources Research, CAS; Chinese Academy of Sciences; University of
   Chinese Academy of Sciences, CAS; Sun Yat Sen University; University of
   Southampton; Virginia Polytechnic Institute & State University;
   Zhengzhou Normal University; Johns Hopkins University; Johns Hopkins
   Bloomberg School of Public Health; National University of Defense
   Technology - China; Australian National University; University of
   Southampton; Fudan University
RP Liu, HY (corresponding author), Ocean Data Ctr, Southern Marine Sci & Engn Guangdong Lab Zhuhai, Zhuhai 528478, Guangdong, Peoples R China.; Lai, SJ (corresponding author), Univ Southampton, Sch Geog & Environm Sci, WorldPop, Southampton SO17 1BJ, England.; Bai, XM (corresponding author), Australia Natl Univ, Fenner Sch Environm & Soc, Canberra, ACT 2600, Australia.; Lai, SJ (corresponding author), Univ Southampton, Inst Life Sci, Southampton SO17 1BJ, England.; Lai, SJ (corresponding author), Fudan Univ, Shanghai Inst Infect Dis & Biosecur, Shanghai 200433, Peoples R China.
EM liuhaiyan@sml-zhuhai.cn; xuemei.bai@anu.edu.au; Shengjie.Lai@soton.ac.uk
RI Ge, Yong/ABC-6524-2022; Wang, Jianghao/J-1403-2016; Ruktanonchai,
   Corrine/AGI-6641-2022; Bai, Xuemei/A-5443-2012; lu, xin/C-1940-2009
OI liu, haiyan/0000-0003-3158-0661; Tatem, Andrew/0000-0002-7270-941X; Bai,
   Xuemei/0000-0001-6556-8041; Lai, Shengjie/0000-0001-9781-8148; lu,
   xin/0000-0002-3547-6493; Cleary, Eimear/0000-0003-2549-8565; Wang,
   Jianghao/0000-0001-5333-3827
FU National Institute for Health (MIDAS Mobility) [R01AI160780]; Bill amp;
   Melinda Gates Foundation [INV-024911]; National Nature Science
   Foundation of China [72025405, 91846301, 72088101]; Southern Marine
   Science and Engineering Guangdong Laboratory (Zhuhai) [SML2021SP102]
FX We thank the researchers and organisations who generated and publicly
   shared the mobility, epidemiological, intervention, and analysing code
   used in this research. This study was supported by the National
   Institute for Health (MIDAS Mobility R01AI160780), the Bill & Melinda
   Gates Foundation (INV-024911), the National Nature Science Foundation of
   China (72025405, 91846301, 72088101), and the Southern Marine Science
   and Engineering Guangdong Laboratory (Zhuhai) (SML2021SP102). The
   funders of the study had no role in study design, data collection, data
   analysis, data interpretation, or writing of the report. The
   corresponding authors had full access to all the data in the study and
   had final responsibility for the decision to submit for publication. The
   views expressed in this article are those of the authors and do not
   represent any official policy.
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NR 64
TC 11
Z9 12
U1 11
U2 47
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD DEC
PY 2023
VL 99
AR 104872
DI 10.1016/j.scs.2023.104872
EA AUG 2023
PG 12
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA R7TB4
UT WOS:001066332200001
OA hybrid
DA 2025-04-22
ER

PT J
AU Ning, X
   Zhao, JM
   An, Y
AF Ning, Xin
   Zhao, Jiamei
   An, Yue
TI Urbanization and urban ecological resilience in resource-based cities:
   coupling coordination and its key factors
SO ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY
LA English
DT Article; Early Access
DE Resource-based cities; Urbanization; Urban ecological resilience;
   Coupling coordination degree; Key factors
ID MANAGEMENT; SHANGHAI; CITY
AB The twin constraints of ecological degradation and growing urbanization resulting from resource exploitation pose complex challenges to the development of resource-based cities. To overcome the "Resource Curse" and ensure sustainable development, it is essential to improve the synergy and mutual reinforcement between urbanization and urban ecological resilience (UER). To explore the coordination relationship between comprehensive urbanization level (CUL) and UER in resource-based cities, this paper uses the four-quadrant model to qualitatively analyze the coordination trend between the two. Based on the coupling coordination degree (CCD) model, the spatio-temporal characteristics of the CCD are revealed subsequently. Additionally, the key factors of the CCD are investigated using the random forest algorithm-shapley additive explanations (RFA-SHAP) model. The main results indicate robust and escalating synergy between CUL and UER, with consistent growth in their CCD from 2006 to 2021. This growth, however, is marked by notable spatial variations, with regenerative cities at the forefront. The key factors influencing CCD differ according to the city's developmental phase, yet local fiscal revenue emerges as a consistently influential factor across various urban types. These findings are pivotal in facilitating the synergistic advancement of CUL and UER in resource-based cities, significantly contributing to their sustainable development.
C1 [Ning, Xin; Zhao, Jiamei; An, Yue] Dongbei Univ Finance & Econ, Sch Investment & Construct Management, Dalian 116025, Peoples R China.
   [Ning, Xin] Dongbei Univ Finance & Econ, Res Ctr Low Carbon Econ & Sustainable Dev Urban Ru, Dalian 116025, Peoples R China.
C3 Dongbei University of Finance & Economics; Dongbei University of Finance
   & Economics
RP Ning, X (corresponding author), Dongbei Univ Finance & Econ, Sch Investment & Construct Management, Dalian 116025, Peoples R China.; Ning, X (corresponding author), Dongbei Univ Finance & Econ, Res Ctr Low Carbon Econ & Sustainable Dev Urban Ru, Dalian 116025, Peoples R China.
EM ningxin@dufe.edu.cn; zjmxxl99@163.com; moonanyue@163.com
FU National Key R&D Programme of China;  [2022YFE0208700]
FX This work was supported by the National Key R&D Programme of China under
   Grant 2022YFE0208700.
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NR 62
TC 3
Z9 3
U1 39
U2 39
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 NOV 1
PY 2024
DI 10.1007/s10668-024-05609-y
EA NOV 2024
PG 24
WC Green & Sustainable Science & Technology; Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Science & Technology - Other Topics; Environmental Sciences & Ecology
GA K8S8A
UT WOS:001346547900004
DA 2025-04-22
ER

PT J
AU Zheng, JX
   Li, JY
   Zeng, JJ
   Huang, GR
   Chen, WJ
AF Zheng, Jiaxuan
   Li, Jiayue
   Zeng, Jiajun
   Huang, Guoru
   Chen, Wenjie
TI Application of a time-dependent performance-based resilience metric to
   establish the potential of coupled green-grey infrastructure in urban
   flood management
SO SUSTAINABLE CITIES AND SOCIETY
LA English
DT Article
DE Urban flood resilience (UFR); Performance-based metric; Green
   infrastructure; Grey infrastructure; Green-grey infrastructure coupled
   approach
ID DRAINAGE SYSTEM; INUNDATION; FRAMEWORK
AB Urban flood resilience (UFR) and related facilities for its improvement, such as green and grey infrastructures and their coupled approach have attracted global stakeholders' attention due to successive flooding events worldwide. However, research on quantifying the potential of such measures in UFR enhancement based on system performance and surface inundation is lacking. How these measures act in different stages of system performance reflecting the state of urban functionality has not been addressed. This study investigated the potential of green and grey infrastructures and their coupled approach in enhancing UFR using a time-dependent performance-based metric in the Minzhi region, Shenzhen City. The metric considers water velocity and physical mechanisms of residents and vehicles keeping their stability. Suggestions for UFR enhancement were proposed. The results suggest that the coupled approach performs best. The adopted measures exhibit different impacts during different phases of system performance. Exploring the implementation methods of individual measures, discussing the synergistic integration of individual measures, and implementing targeted approaches to further enhance UFR in vulnerable regions are important. The coupled approach should be prioritized if the grey one is effective in UFR enhancement and preference should be given to the green infrastructure when deciding between green and grey infrastructures.
C1 [Zheng, Jiaxuan; Li, Jiayue; Huang, Guoru] South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China.
   [Zeng, Jiajun] South China Univ Technol, Sch Architecture, Guangzhou 510640, Peoples R China.
   [Huang, Guoru] South China Univ Technol, State Key Lab Subtrop Bldg & Urban Sci, Guangzhou 510640, Peoples R China.
   [Huang, Guoru] Guangdong Engn Technol Res Ctr Safety & Greenizat, Guangzhou 510640, Peoples R China.
   [Zheng, Jiaxuan] Kyoto Univ, Disaster Prevent Res Inst, Kyoto 6128235, Japan.
   [Chen, Wenjie] South China Agr Univ, Coll Water Conservancy & Civil Engn, Guangzhou 510642, Peoples R China.
C3 South China University of Technology; South China University of
   Technology; South China University of Technology; Kyoto University;
   South China Agricultural University
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 & Urban 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 [52279015, 52109018];
   Guangzhou Science and Technology Program [202201010271]; China
   Scholarship Council [202206150102]
FX <B>Acknowledgements</B> This work was supported by the National Natural
   Science Foundation of China [grant numbers 52279015 and 52109018] ,
   Guangzhou Science and Technology Program [grant number 202201010271] ,
   and China Scholarship Council [grant number 202206150102] .
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NR 55
TC 6
Z9 6
U1 30
U2 40
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 2210-6707
EI 2210-6715
J9 SUSTAIN CITIES SOC
JI Sust. Cities Soc.
PD OCT 1
PY 2024
VL 112
AR 105608
DI 10.1016/j.scs.2024.105608
EA JUN 2024
PG 13
WC Construction & Building Technology; Green & Sustainable Science &
   Technology; Energy & Fuels
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Construction & Building Technology; Science & Technology - Other Topics;
   Energy & Fuels
GA E6A0O
UT WOS:001303799600001
DA 2025-04-22
ER

PT J
AU Whaiduzzaman, M
   Barros, A
   Chanda, M
   Barman, S
   Sultana, T
   Rahman, MS
   Roy, S
   Fidge, C
AF Whaiduzzaman, Md
   Barros, Alistair
   Chanda, Moumita
   Barman, Supti
   Sultana, Tania
   Rahman, Md. Sazzadur
   Roy, Shanto
   Fidge, Colin
TI A Review of Emerging Technologies for IoT-Based Smart Cities
SO SENSORS
LA English
DT Review
DE Internet of Things (IoT); smart city; smart waste management; smart
   traffic light; smart parking; smart home; smart buildings
ID WASTE MANAGEMENT; BIG DATA; INTERNET; BLOCKCHAIN; SYSTEM; CHALLENGES;
   PLATFORM; ATTACKS
AB Smart cities can be complemented by fusing various components and incorporating recent emerging technologies. IoT communications are crucial to smart city operations, which are designed to support the concept of a "Smart City" by utilising the most cutting-edge communication technologies to enhance city administration and resident services. Smart cities have been outfitted with numerous IoT-based gadgets; the Internet of Things is a modular method to integrate various sensors with all ICT technologies. This paper provides an overview of smart cities' concepts, characteristics, and applications. We thoroughly investigate smart city applications, challenges, and possibilities with solutions in recent technological trends and perspectives, such as machine learning and blockchain. We discuss cloud and fog IoT ecosystems in the in capacity of IoT devices, architectures, and machine learning approaches. In addition we integrate security and privacy aspects, including blockchain applications, towards more trustworthy and resilient smart cities. We also highlight the concepts, characteristics, and applications of smart cities and provide a conceptual model of the smart city mega-events framework. Finally, we outline the impact of recent emerging technologies' implications on challenges, applications, and solutions for futuristic smart cities.
C1 [Whaiduzzaman, Md; Barros, Alistair] Queensland Univ Technol, Sch Informat Syst, Brisbane, Qld 4000, Australia.
   [Whaiduzzaman, Md; Chanda, Moumita; Barman, Supti; Sultana, Tania; Rahman, Md. Sazzadur] Jahangirnagar Univ, Inst Informat Technol, Dhaka 1342, Bangladesh.
   [Roy, Shanto] Univ Houston, Dept Comp Sci, Houston, TX 77204 USA.
   [Fidge, Colin] Queensland Univ Technol, Sch Comp Sci, Brisbane, Qld 4000, Australia.
C3 Queensland University of Technology (QUT); Jahangirnagar University;
   University of Houston System; University of Houston; Queensland
   University of Technology (QUT)
RP Whaiduzzaman, M (corresponding author), Queensland Univ Technol, Sch Informat Syst, Brisbane, Qld 4000, Australia.; Whaiduzzaman, M (corresponding author), Jahangirnagar Univ, Inst Informat Technol, Dhaka 1342, Bangladesh.
EM wzaman@juniv.edu
RI Barros, Alistair/HPC-0647-2023; Roy, Shanto/Q-8081-2018; Fidge,
   Colin/J-1036-2012
OI Rahman, Md. Sazzadur/0000-0002-9178-3711; Fidge,
   Colin/0000-0002-9410-7217; Whaiduzzaman, Md/0000-0003-2822-0657
FU Australian Research Council [DP190100314]
FX This research is partly supported through the Australian Research
   Council Discovery Project: DP190100314, "Re-Engineering Enterprise
   Systems for Microservices in the Cloud".
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NR 102
TC 27
Z9 28
U1 30
U2 155
PU MDPI
PI BASEL
PA ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND
EI 1424-8220
J9 SENSORS-BASEL
JI Sensors
PD DEC
PY 2022
VL 22
IS 23
AR 9271
DI 10.3390/s22239271
PG 28
WC Chemistry, Analytical; Engineering, Electrical & Electronic; Instruments
   & Instrumentation
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Chemistry; Engineering; Instruments & Instrumentation
GA 6Y8XP
UT WOS:000897371500001
PM 36501973
OA gold, Green Published
DA 2025-04-22
ER

PT J
AU Hansen, R
   Frantzeskaki, N
   McPhearson, T
   Rall, E
   Kabisch, N
   Kaczorowska, A
   Kain, JH
   Artmann, M
   Pauleit, S
AF Hansen, Rieke
   Frantzeskaki, Niki
   McPhearson, Timon
   Rall, Emily
   Kabisch, Nadja
   Kaczorowska, Anna
   Kain, Jaan-Henrik
   Artmann, Martina
   Pauleit, Stephan
TI The uptake of the ecosystem services concept in planning discourses of
   European and American cities
SO ECOSYSTEM SERVICES
LA English
DT Article
DE Ecosystem services; Urban planning; Discourses; Human-nature relations;
   Resilience; Policy-making
ID DECISION-MAKING; FRAMEWORK; GOVERNANCE; MANAGEMENT; POLICIES; RESILIENCE
AB Ecosystem services (ES) are gaining increasing attention as a promising concept to more actively consider and plan for the varied benefits of the urban environment. Yet, to have an impact on decision-making, the concept must spread from academia to practice. To understand how ES have been taken up in planning discourses we conducted a cross-case comparison of planning documents in Berlin, New York, Salzburg, Seattle and Stockholm. We found: (1) explicit references to the ES concept were primarily in documents from Stockholm and New York, two cities in countries that entered into ES discourses early. (2) Implicit references and thus potential linkages between the ES concept and planning discourses were found frequently among all cities, especially in Seattle. (3) The thematic scope, represented by 21 different ES, is comparably broad among the cases, while cultural services and habitat provision are most frequently emphasized. (4) High-level policies were shown to promote the adoption of the ES concept in planning. We find that the ES concept holds potential to strengthen a holistic consideration of urban nature and its benefits in planning. We also revealed potential for further development of ES approaches with regard to mitigation of environmental impacts and improving urban resilience. (C) 2014 The Authors. Published by Elsevier B.V.
C1 [Hansen, Rieke; Rall, Emily; Pauleit, Stephan] Tech Univ Munich, D-85354 Freising Weihenstephan, Germany.
   [Frantzeskaki, Niki] Erasmus Univ, Dutch Res Inst Transit, Rotterdam, Netherlands.
   [McPhearson, Timon] New Sch Social Res, Tishman Environm & Design Ctr, New York, NY 10011 USA.
   [Kabisch, Nadja] Humboldt Univ, D-10099 Berlin, Germany.
   [Kaczorowska, Anna; Kain, Jaan-Henrik] Chalmers Univ Technol, S-41296 Gothenburg, Sweden.
   [Artmann, Martina] Paris Lodron Univ, Salzburg, Austria.
C3 Technical University of Munich; Erasmus University Rotterdam - Excl
   Erasmus MC; Erasmus University Rotterdam; The New School; Humboldt
   University of Berlin; Chalmers University of Technology
RP Hansen, R (corresponding author), Tech Univ Munich, Chair Strateg Landscape Planning & Management, Emil Ramann Str 6, D-85354 Freising Weihenstephan, Germany.
EM hanse@tum.de
RI Kabisch, Nadja/ABE-6198-2020; Frantzeskaki, Niki/AAN-1044-2021;
   Kaczorowska, Anna/V-5710-2017; Pauleit, Stephan/ISV-4685-2023;
   McPhearson, Timon/JOZ-3799-2023; Kain, Jaan-Henrik/P-4805-2015
OI Kaczorowska, Anna/0000-0002-8993-9553; Pauleit,
   Stephan/0000-0002-0056-6720; Frantzeskaki, Niki/0000-0002-6983-448X;
   Hansen, Rieke/0000-0002-4230-1579; McPhearson,
   Timon/0000-0002-9499-0791; Artmann, Martina/0000-0003-3119-4314; Kain,
   Jaan-Henrik/0000-0001-8838-099X; Kabisch, Nadja/0000-0002-8925-4423
FU International Fund for Agriculture and Development (IFAD); CGIAR
   Forests, Trees and Agroforestry Consortium Research Programme; European
   Union
FX The research reported in this paper was financed in part by grants from
   the International Fund for Agriculture and Development (IFAD), the CGIAR
   Forests, Trees and Agroforestry Consortium Research Programme and the
   European Union. An earlier draft received inputs from Paul Ferraro,
   Delia Catacutan, Sara Namirembe, Sean Kennedy, and all the RUPES site
   teams. Comments by from the World Agroforestry Centre scientists are
   gratefully acknowledged.
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NR 76
TC 195
Z9 209
U1 8
U2 81
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 2015
VL 12
SI SI
BP 228
EP 246
DI 10.1016/j.ecoser.2014.11.013
PG 19
WC Ecology; Environmental Sciences; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA CU6TA
UT WOS:000363665300025
OA hybrid, Green Published
DA 2025-04-22
ER

PT J
AU Krupa, MB
   Chapin, FS
   Lovecraft, AL
AF Krupa, Meagan B.
   Chapin, F. Stuart, III
   Lovecraft, Amy L.
TI Robustness or resilience? Managing the intersection of ecology and
   engineering in an urban Alaskan fishery
SO ECOLOGY AND SOCIETY
LA English
DT Article
DE hatchery; robustness theory; salmon; social-ecological systems; stream
   management; urban fishery
ID SYSTEMS; SALMON; ECOSYSTEM; NORTHWEST; FRAMEWORK; COLLAPSE; DESIGN;
   STOCKS
AB Systems theories of robustness and resilience, which are derived from engineering and ecology, respectively, have been increasingly applied to social-ecological systems (SESs). Social-ecological robustness has been applied primarily to management of physical dimensions of SESs (e.g., water management) and resilience to management of ecological dimensions of SESs (e.g., rangelands). However, cases of highly engineered systems have yet to be adequately evaluated by either approach. We find the robustness framework serves to better explain management options of a highly engineered, ecologically-based SES, the lower Ship Creek fishery in Anchorage, Alaska, USA. Robustness applies well to this system because its dynamics are highly engineered through both structures and institutions. Even the salmon are products of a hatchery fishery that operates independently of many ecological variables and feedbacks within the system. However, robustness theory has yet to develop a prescriptive method for management that can assist practitioners. We conclude by applying Ostrom's design principles to the system dynamics to assess opportunities for increasing the robustness of this urban fishery.
C1 [Krupa, Meagan B.] Alaska Pacific Univ, Anchorage, AK 99508 USA.
   [Chapin, F. Stuart, III; Lovecraft, Amy L.] Univ Alaska Fairbanks, Fairbanks, AK USA.
C3 Alaska Pacific University; University of Alaska System; University of
   Alaska Fairbanks
RP Krupa, MB (corresponding author), Alaska Pacific Univ, Anchorage, AK 99508 USA.
RI Chapin, F/AAZ-3931-2020; Krupa, Meagan/M-9182-2015
OI Krupa, Meagan/0000-0003-1581-945X
FU Direct For Biological Sciences; Division Of Environmental Biology
   [1026415] Funding Source: National Science Foundation
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   [No title captured]
NR 59
TC 9
Z9 9
U1 4
U2 38
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 2014
VL 19
IS 2
AR 17
DI 10.5751/ES-06274-190217
PG 9
WC Ecology; Environmental Studies
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA AK8XI
UT WOS:000338711600013
OA Green Published, gold
DA 2025-04-22
ER

PT J
AU Wang, JX
   Foley, K
AF Wang, Jinxuan
   Foley, Karen
TI Preference and perception of individuals for blue-green infrastructure
   in the promotion of climate-resilient cities: A visual experiment in
   Ireland and China
SO URBAN FORESTRY & URBAN GREENING
LA English
DT Article
DE Perceived naturalness; Landscape preference; Photo comparison
   experiment; Social acceptance; Ecological worldview
AB Blue-green infrastructure (BGI) combines hydrological measures and various socioecological functions and is being increasingly acknowledged as a means of promoting climate-resilient cities. Unlike ordinary familiar landscapes and typical underground conventional drainage infrastructure types, BGI is visible as a critical part of urban landscapes. However, studies analysing human BGI perception and preference for distinctive visual BGI appearance are still scarce. Using two cities (Dublin, Ireland and Xi'an, China) with different sociocultural and geographic contexts as case studies, human responses to BGI were studied by developing a photo comparison experiment (PCE) leveraging 15 visual stimuli that reflect five BGI dimensions. The main findings demonstrate that 1) stronger perceived naturalness is preferred over reduced perceived naturalness in BGI, but an excessive sense of naturalness can result in a lower preference for BGI; 2) the preference for perceived naturalness implied in BGI is associated with the perception of BGI landscape component value; and 3) there is a discrepancy between the preference pattern (personal preference with affective reaction) and the acceptance pattern (cognitive or rational understanding of the suitability of BGI implementation based on nonaffective reactions). By generating place-specific knowledge and comparisons, this study contributes to the planning, design and management of urban BGI in Dublin and Xi'an and highlights the need to consider the specificities of each city in BGI design and management, providing insights for other cities in these regions facing the need for wider BGI implementation.
C1 [Wang, Jinxuan] Changan Univ, Sch Architecture, Xian, Peoples R China.
   [Foley, Karen] Univ Coll Dublin, Sch Architecture Planning & Environm Policy, UCD Landscape Architecture, Dublin, Ireland.
C3 Chang'an University; University College Dublin
RP Wang, JX (corresponding author), Changan Univ, Sch Architecture, Xian, Peoples R China.
EM jinxuan.wang@chd.edu.cn; karen.foley@ucd.ie
RI Wang, Jinxuan/JPL-0636-2023
FU China Scholarship Council [201508300003]; Research Funds for the
   Interdisciplinary Projects, CHU
FX The authors would like to thank the editor and the anonymous reviewers'
   valuable and constructive suggestions on this paper. This work was
   supported by the China Scholarship Council [201508300003] and Research
   Funds for the Interdisciplinary Projects, CHU.
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NR 44
TC 0
Z9 0
U1 8
U2 8
PU ELSEVIER GMBH
PI MUNICH
PA HACKERBRUCKE 6, 80335 MUNICH, GERMANY
SN 1618-8667
EI 1610-8167
J9 URBAN FOR URBAN GREE
JI Urban For. Urban Green.
PD APR
PY 2025
VL 106
AR 128730
DI 10.1016/j.ufug.2025.128730
EA FEB 2025
PG 10
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 Y6Q4T
UT WOS:001433342600001
DA 2025-04-22
ER

PT J
AU Xu, WZ
   Yang, HH
   Chen, ZY
   Shi, RX
   Liu, YX
   Chen, J
AF Xu, Weizhen
   Yang, Honghui
   Chen, Ziyi
   Shi, Ruixiang
   Liu, Yuxiang
   Chen, Jing
TI Enhancing bird habitat networks in metropolitan areas: Resilience
   assessment and improvement strategies - A case study from Shanghai
SO SCIENCE OF THE TOTAL ENVIRONMENT
LA English
DT Article
DE Complex network; Circuit theory; Ecological resilience; MaxEnt model;
   Biodiversity conservation
ID ECOLOGICAL NETWORKS; ECOSYSTEM SERVICES; CIRCUIT-THEORY
AB Constructing bird habitat networks (BHNs) is crucial for maintaining the health and service equilibrium of urban ecosystems, especially in large metropolitan areas where the pressure of urbanization is intense. However, most existing BHNs fail to account for the dynamic changes and unique requirements of local species, leading to homogenized construction outcomes and ecological corridor objectives. This study employs a comprehensive approach to identify bird habitat patches using multiple high-quality sources, then utilize circuit theory and complex network theory to construct and assess the resilience of BHN. Our key findings showed: (1)93 bird habitat sources were identified, predominantly situated in the continuous green spaces of southern and southeastern Shanghai, whereas habitat sources in the city center and other densely built-up areas are more dispersed, highlighting them as prime targets for future ecological restoration efforts. (2) The distribution of bird habitat corridors exhibits significant spatial heterogeneity, with primary corridors predominantly spanning the southwestern and eastern parts of the study area, while secondary corridors are more abundant in the western and northern parts, forming a denser network, whereas the central area shows fewer and more isolated corridors. (3) The decline in structural and functional resilience was notably more rapid under targeted attacks than under random attacks, underscoring the need to prioritize crucial bird habitat sources on the city's periphery, especially near highly urbanized areas, in urban planning and biodiversity conservation efforts to sustain ecological balance and biodiversity. These insights provide a crucial scientific basis for urban planners, emphasizing the integration of biodiversity conservation into urban development strategies by optimizing ecological sources and corridors to balance development with ecological preservation.
C1 [Xu, Weizhen; Chen, Ziyi; Shi, Ruixiang; Chen, Jing] Tongji Univ, Coll Architecture & Urban Planning, Shanghai 20092, Peoples R China.
   [Yang, Honghui] Fujian Agr & Forestry Univ, Coll Arts Coll Landscape Architecture, Fuzhou 350100, Fujian, Peoples R China.
   [Liu, Yuxiang] Univ British Columbia, Sch Architecture & Landscape Architecture, Vancouver, BC V6T 1Z2, Canada.
C3 Tongji University; Fujian Agriculture & Forestry University; University
   of British Columbia
RP Chen, J (corresponding author), Tongji Univ, Coll Architecture & Urban Planning, Shanghai 20092, Peoples R China.
EM jingchen@tongji.edu.cn
FU National Natural Science Foundation of China (NSFC) "Research on
   Ecosystem Service Evaluation of Urban Community Gardens" [32001364];
   Shanghai Tongji Urban Planning & Design Institute Co., Ltd.; Joint
   General Project "Research on Key Technologies of Urban Habitat
   Optimization" [KY-2022-LH-B05]
FX This research was funded by National Natural Science Foundation of China
   (NSFC) "Research on Ecosystem Service Evaluation of Urban Community
   Gardens" (No. 32001364) ; Shanghai Tongji Urban Planning & Design
   Institute Co., Ltd. Joint General Project "Research on Key Technologies
   of Urban Habitat Optimization" (No. KY-2022-LH-B05) .
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NR 84
TC 1
Z9 1
U1 69
U2 82
PU ELSEVIER
PI AMSTERDAM
PA RADARWEG 29, 1043 NX AMSTERDAM, NETHERLANDS
SN 0048-9697
EI 1879-1026
J9 SCI TOTAL ENVIRON
JI Sci. Total Environ.
PD DEC 1
PY 2024
VL 954
AR 176316
DI 10.1016/j.scitotenv.2024.176316
EA SEP 2024
PG 14
WC Environmental Sciences
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Environmental Sciences & Ecology
GA H2W4X
UT WOS:001322091600001
PM 39293763
DA 2025-04-22
ER

PT J
AU Nik, VM
   Moazami, A
AF Nik, Vahid M.
   Moazami, Amin
TI Using collective intelligence to enhance demand flexibility and climate
   resilience in urban areas
SO APPLIED ENERGY
LA English
DT Article
DE Collective intelligence; Demand flexibility; Climate flexibility;
   Climate resilience; Demand side management; Urban energy system
ID THERMAL-ENERGY STORAGE; WEATHER DATA SETS; EXTREME WEATHER; RENEWABLE
   ENERGY; RETROFITTING MEASURES; SELF-ORGANIZATION; SIDE MANAGEMENT;
   FUTURE CLIMATE; COMBINED HEAT; POWER
AB Collective intelligence (CI) is a form of distributed intelligence that emerges in collaborative problem solving and decision making. This work investigates the potentials of CI in demand side management (DSM) in urban areas. CI is used to control the energy performance of representative groups of buildings in Stockholm, aiming to increase the demand flexibility and climate resilience in the urban scale. CI-DSM is developed based on a simple communication strategy among buildings, using forward (1) and backward (0) signals, corresponding to applying and disapplying the adaptation measure, which is extending the indoor temperature range. A simple platform and algorithm are developed for modelling CI-DSM, considering two timescales of 15 min and 60 min. Three climate scenarios are used to represent typical, extreme cold and extreme warm years in Stockholm. Several indicators are used to assess the performance of CI-DSM, including Demand Flexibility Factor (DFF) and Agility Factor (AF), which are defined explicitly for this work. According to the results, CI increases the autonomy and agility of the system in responding to climate shocks without the need for computationally extensive central decision making systems. CI helps to gradually and effectively decrease the energy demand and absorb the shock during extreme climate events. Having a finer control timescale increases the flexibility and agility on the demand side, resulting in a faster adaptation to climate variations, shorter engagement of buildings, faster return to normal conditions and consequently a higher climate resilience.
C1 [Nik, Vahid M.] Lund Univ, Div Bldg Phys, Dept Bldg & Environm Technol, SE-22363 Lund, Sweden.
   [Nik, Vahid M.] Chalmers Univ Technol, Div Bldg Technol, Dept Architecture & Civil Engn, SE-41258 Gothenburg, Sweden.
   [Nik, Vahid M.] Queensland Univ Technol QUT, Inst Future Environm IFE, Garden Point Campus,2 George St, Brisbane, Qld 4000, Australia.
   [Moazami, Amin] NTNU Norwegian Univ Sci & Technol, Dept Ocean Operat & Civil Engn, Fac Engn, Alesund, Norway.
C3 Lund University; Chalmers University of Technology; Queensland
   University of Technology (QUT); Norwegian University of Science &
   Technology (NTNU)
RP Nik, VM (corresponding author), Lund Univ, Div Bldg Phys, Dept Bldg & Environm Technol, SE-22363 Lund, Sweden.
EM vahid.nik@byggtek.lth.se; amin.moazami@ntnu.no
RI Nik, Vahid M./K-2632-2016
OI Nik, Vahid M./0000-0002-1497-4813; Moazami, Amin/0000-0003-1622-2444
FU Swedish Research Council for Sustainable Development [Formas
   2016-20123]; joint programming initiative 'ERA-Net Smart Energy Systems'
   focus initiative on Integrated, Regional Energy Systems; European
   Union's Horizon 2020 research and innovation programme [775970]
FX In memory of legendary Mohammad-Reza Shajarian whose character and music
   have been always inspiring for the authors. This work was supported by
   the Swedish Research Council for Sustainable Development [Formas
   2016-20123] and the framework of the joint programming initiative
   'ERA-Net Smart Energy Systems' focus initiative on Integrated, Regional
   Energy Systems, with support from the European Union's Horizon 2020
   research and innovation programme [775970].
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NR 91
TC 32
Z9 33
U1 4
U2 26
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 JAN 1
PY 2021
VL 281
AR 116106
DI 10.1016/j.apenergy.2020.116106
PG 17
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED); Social Science Citation Index (SSCI)
SC Energy & Fuels; Engineering
GA OU2RS
UT WOS:000591381500011
OA Green Published, hybrid
DA 2025-04-22
ER

PT J
AU Yan, D
   Liu, LT
   Liu, XJ
   Zhang, M
AF Yan, Dan
   Liu, Litao
   Liu, Xiaojie
   Zhang, Ming
TI Global Trends in Urban Agriculture Research: A Pathway toward Urban
   Resilience and Sustainability
SO LAND
LA English
DT Article
DE urban agriculture; bibliometrics; CiteSpace; bibliometrix
ID PERIURBAN AGRICULTURE; FOOD SECURITY; METROPOLITAN-AREA; CLIMATE-CHANGE;
   LIVELIHOODS; LAND; CITY; METAANALYSIS; FORESTRY; PATTERNS
AB Urban agriculture has been proposed as an important urban element to deal with the challenges of food insecurity and environmental deterioration. In order to track current popular topics and global research trends in urban agriculture, we used bibliometric analysis and visualization mapping to evaluate and analyze the developments in the knowledge of urban agriculture based on 605 papers from the core collection database Web of Science from 2001-2021. The results were as follows. (1) The number of urban agriculture publications increased substantially year by year, indicating that the field is attracting increasing attention. The University of Kassel, Chinese Academy of Sciences, and University of Freiburg are the most productive research institutions in the field of urban agriculture. The top-five most influential countries are the Unites States, Germany, the United Kingdom, Italy, and China, of which the Unites States plays a central role in the cooperative linkage between countries. (2) Research on urban agriculture focuses not only on food production and different styles but also on how to realize the various functions of urban agriculture. In addition, UA-related sustainability and the water-energy-food nexus have become two emerging research topics. (3) Urban agriculture does not necessarily mean a resource-conserving and environmentally friendly food system. To achieve sustainable development, a transition based on technological innovation is needed. How to improve the sustainable development level of the food system while fully considering the resilience, sustainability, and versatility of urban agriculture is the main direction of future research.
C1 [Yan, Dan] Zhengzhou Univ, Ctr Energy Environm & Econ Res, 100 Sci Ave, Zhengzhou 450001, Peoples R China.
   [Yan, Dan; Zhang, Ming] Zhengzhou Univ, Tourism Management Sch, 100 Sci Ave, Zhengzhou 450001, Peoples R China.
   [Liu, Litao; Liu, Xiaojie] Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, 11A Datun Rd, Beijing 100101, Peoples R China.
C3 Zhengzhou University; Zhengzhou University; Chinese Academy of Sciences;
   Institute of Geographic Sciences & Natural Resources Research, CAS
RP Liu, XJ (corresponding author), Chinese Acad Sci, Inst Geog Sci & Nat Resources Res, 11A Datun Rd, Beijing 100101, Peoples R China.
EM yandan@zzu.edu.cn; liult@igsnrr.ac.cn; Liuxj@igsnrr.ac.cn;
   202012022010531@gs.zzu.edu.cn
FU international partnership program of Chinese Academy of Sciences
   [132C35KYSB20200007]; Soft Science Research Project of Henan Province
   [212400410077]
FX This research was funded by [the international partnership program of
   the Chinese Academy of Sciences] grant number [132C35KYSB20200007] and
   [Soft Science Research Project of Henan Province] grand number
   [212400410077].
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NR 84
TC 28
Z9 30
U1 12
U2 139
PU MDPI
PI BASEL
PA MDPI AG, Grosspeteranlage 5, CH-4052 BASEL, SWITZERLAND
EI 2073-445X
J9 LAND-BASEL
JI Land
PD JAN
PY 2022
VL 11
IS 1
AR 117
DI 10.3390/land11010117
PG 17
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA ZD4AP
UT WOS:000758142500001
OA gold
DA 2025-04-22
ER

PT J
AU Haraguchi, M
   Nishino, A
   Kodaka, A
   Allaire, M
   Lall, U
   Kuei-Hsien, L
   Onda, K
   Tsubouchi, K
   Kohtake, N
AF Haraguchi, Masahiko
   Nishino, Akihiko
   Kodaka, Akira
   Allaire, Maura
   Lall, Upmanu
   Kuei-Hsien, Liao
   Onda, Kaya
   Tsubouchi, Kota
   Kohtake, Naohiko
TI Human mobility data and analysis for urban resilience: A systematic
   review
SO ENVIRONMENT AND PLANNING B-URBAN ANALYTICS AND CITY SCIENCE
LA English
DT Review
DE Human mobility; mobile phone data; location information; disaster
   resilience; systematic review
ID SOCIAL-MEDIA; PHONE DATA; DYNAMICS; EXPOSURE; IMPACT; CITY;
   INTERVENTIONS; INFORMATION; EVACUATION; FRAMEWORK
AB The impacts of disasters are increasing due to climate change and unplanned urbanization. Big and open data offer considerable potential for analyzing and predicting human mobility during disaster events, including the COVID-19 pandemic, leading to better disaster risk reduction (DRR) planning. However, the value of human mobility data and analysis (HMDA) in urban resilience research is poorly understood. This review highlights key opportunities for and challenges hindering the use of HMDA in DRR in urban planning and risk science, as well as insights from practitioners. A gap in research on HMDA for data-driven DRR planning was identified. By examining human mobility studies and their respective analytical and planning tools, this paper offers deeper insights into the challenges that must be addressed to improve the development of effective data-driven DRR planning, from data collection to implementation. In future work on HMDA, (i) the human mobility of vulnerable populations should be targeted, (ii) research should focus on disaster mitigation and prevention, (iii) analytical methods for evidence-based disaster planning should be developed, (iv) different types of data should be integrated into analyses to overcome methodological challenges, and (v) a decision-making framework should be developed for evidence-based urban planning through transdisciplinary knowledge co-production.
C1 [Haraguchi, Masahiko] Res Inst Humanity & Nat, Kyoto, Japan.
   [Haraguchi, Masahiko] Columbia Univ, Columbia Water Ctr, New York, NY 10027 USA.
   [Haraguchi, Masahiko] Harvard Univ, Harvard TH Chan Sch Publ Hlth, Cambridge, MA 02138 USA.
   [Nishino, Akihiko] Keio Univ, Yokohama, Kanagawa, Japan.
   [Kodaka, Akira; Kohtake, Naohiko] Keio Univ, Grad Sch Syst Design & Management, Yokohama, Kanagawa, Japan.
   [Allaire, Maura] Univ Calif Irvine, Dept Urban Planning & Publ Policy, Irvine, CA USA.
   [Lall, Upmanu] Columbia Univ, Dept Earth & Environm Engn, New York, NY USA.
   [Kuei-Hsien, Liao] Natl Taipei Univ, Grad Inst Urban Planning, New Taipei 237, Taiwan.
   [Onda, Kaya] Keio Univ, Grad Sch Syst Design & Management, Minato Ku, Yokohama, Kanagawa, Japan.
   [Tsubouchi, Kota] Yahoo Japan Res, Yahoo Japan Corp, Tokyo, Japan.
C3 Research Institute for Humanity & Nature (RIHN); Columbia University;
   Harvard University; Harvard T.H. Chan School of Public Health; Keio
   University; Keio University; University of California System; University
   of California Irvine; Columbia University; National Taipei University;
   Keio University; Yahoo! Japan Corporation
RP Haraguchi, M (corresponding author), Columbia Univ, Columbia Water Ctr, New York, NY 10027 USA.; Haraguchi, M (corresponding author), Res Inst Humanity & Nat, Kita Ku, 457-4 Motoyama Kamigamo, Kyoto, Japan.
EM mh2950@columbia.edu
RI Lall, Upmanu/B-7992-2009; Haraguchi, Masahiko/A-9918-2016
OI Tsubouchi, Kota/0000-0002-7753-8939; Haraguchi,
   Masahiko/0000-0002-3250-5746
FU JST Belmont Forum, Japan [JPMJBF2004]; Research Fellowships of Japan
   Society for the Promotion of Science for Young Scientists; NSF
   [2022720]; US-Japan Foundation Grant [2021-1-29-U]; Div of Res,
   Innovation, Synergies, & Edu; Directorate For Geosciences [2022720]
   Funding Source: National Science Foundation
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 JST Belmont Forum Grant Number JPMJBF2004, Japan,
   Research Fellowships of Japan Society for the Promotion of Science for
   Young Scientists, NSF Grant #2022720 and US-Japan Foundation Grant
   (2021-1-29-U).
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NR 124
TC 40
Z9 42
U1 31
U2 152
PU SAGE PUBLICATIONS LTD
PI LONDON
PA 1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND
SN 2399-8083
EI 2399-8091
J9 ENVIRON PLAN B-URBAN
JI Env. Plan. B-Urban Anal. City Sci.
PD JUN
PY 2022
VL 49
IS 5
BP 1507
EP 1535
AR 23998083221075634
DI 10.1177/23998083221075634
EA APR 2022
PG 29
WC Environmental Studies; Geography; Regional & Urban Planning; Urban
   Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology; Geography; Public Administration;
   Urban Studies
GA 1R0PN
UT WOS:000777734200001
DA 2025-04-22
ER

PT J
AU Skoulidou, D
   Kazantzi, AK
AF Skoulidou, Despoina
   Kazantzi, Athanasia K.
TI Indicator-based risk assessments for urban hazard resilience: an
   application for flash floods
SO ENVIRONMENTAL HAZARDS-HUMAN AND POLICY DIMENSIONS
LA English
DT Article; Early Access
DE Risk; vulnerability; coping capacity; proactive adaptation; decision
   support system; indicators
ID ASSESSING PHYSICAL VULNERABILITY; SOCIAL VULNERABILITY; METHODOLOGY;
   BUILDINGS; IMPACTS; CURVES; CITIES
AB Urban resilience to environmental hazards can be substantially improved if proactive planning is mainstreamed as a risk mitigation strategy. To enable such transition, a resource-efficient and transparent framework is urgently needed for undertaking vulnerability and risk assessments, to consequently inform risk-aware proactive planning on spatially variable assets with very diverse characteristics. This study proposes an indicator-based risk-assessment framework, for efficiently treating the spatially distributed diverse physical and social components comprising a city network. The proposed framework decomposes the risk to its three main dimensions, i.e. hazard, exposure and vulnerability; with the latter accounting for both the susceptibility of the city network to the considered hazard and its capacity to cope. The inclusion of the capacity to cope as a distinct element, that accounts for both city and building-block level preparatory actions, is a unique feature, much sought in Decision Support Systems, that allows to directly quantify their effectiveness towards risk mitigation. The outcome of spatially variable risk estimates, could be exploited by urban planners and city authorities for undertaking risk-aware urban design, development and resilience enhancement decisions. The framework is demonstrated herein for the case of flash floods but could be tailored to accommodate other types of environmental hazards.
C1 [Skoulidou, Despoina] Resilience Guard GmbH, Steinhausen, Switzerland.
   [Skoulidou, Despoina] Univ Porto, Fac Engn, CONSTRUCT LESE, Porto, Portugal.
   [Kazantzi, Athanasia K.] Univ Birmingham, Sch Engn, Dept Civil Engn, Birmingham B15 2TT, England.
C3 Universidade do Porto; University of Birmingham
RP Kazantzi, AK (corresponding author), Univ Birmingham, Sch Engn, Dept Civil Engn, Birmingham B15 2TT, England.
EM a.kazantzi@bham.ac.uk
RI Kazantzi, Athanasia/AAE-2496-2020
OI Skoulidou, Despoina/0000-0002-4053-1127; Kazantzi,
   Athanasia/0000-0002-5233-6740
FU EU [101003517]
FX This research has received funding from the EU Horizon 2020 research and
   innovation programme HARMONIA, entitled 'Development of a Support System
   for Improved Resilience and Sustainable Urban areas to cope with Climate
   Change and Extreme Events based on GEOSS and Advanced Modelling Tools'
   under agreement No. 101003517.
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NR 78
TC 0
Z9 0
U1 9
U2 12
PU TAYLOR & FRANCIS LTD
PI ABINGDON
PA 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
SN 1747-7891
EI 1878-0059
J9 ENVIRON HAZARDS-UK
JI Environ. Hazards
PD 2024 SEP 17
PY 2024
DI 10.1080/17477891.2024.2396913
EA SEP 2024
PG 26
WC Environmental Studies
WE Social Science Citation Index (SSCI)
SC Environmental Sciences & Ecology
GA G6O8F
UT WOS:001317816700001
OA hybrid
DA 2025-04-22
ER

PT J
AU Li, X
   Du, XX
   Jiang, T
   Zhang, RF
   Chen, HH
AF Li, Xue
   Du, Xiaoxue
   Jiang, Tao
   Zhang, Rufeng
   Chen, Houhe
TI Coordinating multi-energy to improve urban integrated energy system
   resilience against extreme weather events
SO APPLIED ENERGY
LA English
DT Article
DE Urban integrated energy system; Resilience; Multi-energy coordination;
   Minimum diameter spanning tree; Extreme event
ID SERVICE RESTORATION; ELECTRICITY; MICROGRIDS; STRATEGY
AB The urban integrated energy system (UIES)' s ability to deliver power, heat and gas to users uninterruptedly even under a high impact and low probability event is critical to the safety and living quality of city residents and also the economy of the urban area. This paper proposes a load restoration strategy based on multi-energy coordination to improve the resilience of UIES, with the goal of restoring important loads as much as possible. The proposed restoration strategy introduces the minimum diameter spanning tree (MDST) method to UIES, and changes the topology of the system accordingly to reorganize the various "islands" after the extreme event, so as to ensure that the operating radius of the area is the smallest, and to alleviate the drops of voltage, air pressure and temperature. On this basis, the proposed restoration strategy also includes a method to better utilize the complementarity of energy sources by coordinating all power, gas and heat sources in the area to ensure the uninterrupted energy supply for important loads in the integrated electricity/gas/heating system. Finally, this paper verifies the feasibility and effectiveness of the proposed method through UIES E33-G14-H6 test system and UIES E123-G48-H32 test system.
C1 [Li, Xue; Du, Xiaoxue; Jiang, Tao; Zhang, Rufeng; Chen, Houhe] Northeast Elect Power Univ, Dept Elect Engn, Jilin 132012, Jilin, Peoples R China.
C3 Northeast Electric Power University
RP Jiang, T (corresponding author), Northeast Elect Power Univ, Dept Elect Engn, Jilin 132012, Jilin, Peoples R China.
EM tjiang@neepu.edu.cn
RI jiang, tao/GWC-7108-2022; zhang, rufeng/KMX-8433-2024
FU National Natural Science Foundation of China International Cooperation
   and Exchange Project [52061635103]; National Natural Science Foundation
   of China General Project [52077029, 51877033, 52007026]; Jilin Province
   Science and Technology Development Plan Project [20200403066SF]
FX This work was supported in part by National Natural Science Foundation
   of China International Cooperation and Exchange Project (Grant No.
   52061635103), National Natural Science Foundation of China General
   Project (Grant No. 52077029, 51877033, 52007026), Jilin Province Science
   and Technology Development Plan Project (No. 20200403066SF).
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NR 39
TC 50
Z9 54
U1 25
U2 105
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 2022
VL 309
AR 118455
DI 10.1016/j.apenergy.2021.118455
EA JAN 2022
PG 14
WC Energy & Fuels; Engineering, Chemical
WE Science Citation Index Expanded (SCI-EXPANDED)
SC Energy & Fuels; Engineering
GA 2L7QT
UT WOS:000817213100004
DA 2025-04-22
ER

PT J
AU Waghwala, RK
   Agnihotri, PG
AF Waghwala, Rupal K.
   Agnihotri, P. G.
TI Flood risk assessment and resilience strategies for flood risk
   management: A case study of Surat City
SO INTERNATIONAL JOURNAL OF DISASTER RISK REDUCTION
LA English
DT Article
DE Flood risk; Flood resilience; Flood management; LULC patterns
ID LAND-USE CHANGE; CLIMATE-CHANGE; URBANIZATION; VULNERABILITY; GIS;
   IMPACT; HAZARD; MODEL; CATCHMENT; EVENTS
AB The process of urbanization has changed LULC patterns which have a strong influence on flood risk and resulting economic losses from flood events. This study intends to assess the flood risk in urban systems and governance in terms of the flood management plan for the Surat city, also called a part of the Lower Tapi Basin, Gujarat, India. Topographical maps of the year 1968 and a satellite image of Resources-1 for the year 2006 are used to analyze the study area. Based on the study, a change from low urbanization to a high urbanization pattern is the main driver for increasing the flood risk in the study area has been noted. These shows a lack of management of flood water in urban areas, which in turn led to increasing flood losses in the urban sprawl. The flood management maps have been made by using the spatial analysis tools of the Geographic Information System (GIS), which will be useful to reduce and transfer flood risk. It will enhance the flood resilience of the flood-prone region.
C1 [Waghwala, Rupal K.; Agnihotri, P. G.] SV Natl Inst Technol, Dept Civil Engn, Surat, India.
C3 National Institute of Technology (NIT System); Sardar Vallabhbhai
   National Institute of Technology
RP Waghwala, RK (corresponding author), SV Natl Inst Technol, Dept Civil Engn, Surat, India.
EM r-waghwala@hotmail.com; pga@ced.svnit.ac.in
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NR 73
TC 100
Z9 104
U1 22
U2 151
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 2019
VL 40
AR 101155
DI 10.1016/j.ijdrr.2019.101155
PG 13
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 JA4UM
UT WOS:000487832700011
DA 2025-04-22
ER

EF