A Systematic Review of the Trajectory of Urban Resilience Research: A Bibliometric Perspective on Global Trends and China’s Pathway
Abstract
1. Introduction
2. Research Methods and Data Sources
2.1. Integrative Literature Review and Process Design
2.2. Data Collection and Analytical Approach
3. Results
3.1. A Literature Review of Resilient Cities
3.2. An Overview of Resilient City Development Practices
3.2.1. International Practices in Building Resilient Cities
3.2.2. China’s Resilient City Development Practices
3.3. Future Development Trends
- (1)
- Conceptual Deepening: From Single to Compound Crises
- (2)
- Technological Empowerment: The Intelligent Leap
- (3)
- Human-Centered Shift: Equity and Community
- (4)
- Governance and Planning Innovation
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Godschalk, D.R. Urban Hazard Mitigation: Creating Resilient Cities. Nat. Hazards Rev. 2003, 4, 136–143. [Google Scholar] [CrossRef] [Scilit]
- Ferreira, T.M.; Santos, P.P. Multi-Hazard Risk Assessment for Resilient and Sustainable Urban Areas. Nat. Hazards 2024, 120, 9107–9109. [Google Scholar] [CrossRef] [Scilit]
- Melkunaite, L.; Guay, F. When Civil Protection Meets Urban Planning: Conceptualising a Resilient City Development Process. Sustain. City XI 2016, 1, 455–466. [Google Scholar] [CrossRef] [Scilit]
- Guo, N.; Wu, F.; Sun, D.; Shi, C.; Gao, X. Mechanisms of Resilience in Cities at Different Development Phases: A System Dynamics Approach. Urban Clim. 2024, 53, 101793. [Google Scholar] [CrossRef] [Scilit]
- Amirzadeh, M.; Sobhaninia, S.; Buckman, S.T.; Sharifi, A. Towards Building Resilient Cities to Pandemics: A Review of COVID-19 Literature. Sustain. Cities Soc. 2023, 89, 104326. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Roberts, D.; Douwes, J.; Sutherland, C.; Sim, V. Durban’s 100 Resilient Cities Journey: Governing Resilience from Within. Environ. Urban. 2020, 32, 547–568. [Google Scholar] [CrossRef] [Scilit]
- Making Cities Resilient 2030. Available online: https://mcr2030.undrr.org/mcr-homepage (accessed on 18 May 2025).
- 100 Resilient Cities. Available online: https://www.rockefellerfoundation.org/100-resilient-cities/ (accessed on 18 May 2025).
- Lu, Y.; Zhai, G.; Zhai, W. Quantifying Urban Spatial Resilience Using Multi-Criteria Decision Analysis (MCDA) and Back Propagation Neural Network (BPNN). Int. J. Disaster Risk Reduct. 2024, 111, 104694. [Google Scholar] [CrossRef] [Scilit]
- Barzaman, S.; Shamsipour, A.; Lakes, T.; Faraji, A. Indicators of Urban Climate Resilience (Case Study: Varamin, Iran). Nat. Hazards 2022, 112, 119–143. [Google Scholar] [CrossRef] [Scilit]
- Suárez, M.; Benayas, J.; Justel, A.; Sisto, R.; Montes, C.; Sanz-Casado, E. A Holistic Index-Based Framework to Assess Urban Resilience: Application to the Madrid Region, Spain. Ecol. Indic. 2024, 166, 112293. [Google Scholar] [CrossRef] [Scilit]
- Iheaturu, C.; Okolie, C.; Ayodele, E.; Egogo-Stanley, A.; Musa, S.; Speranza, C.I. Combining Google Earth Historical Imagery and UAV Photogrammetry for Urban Development Analysis. MethodsX 2024, 12, 102785. [Google Scholar] [CrossRef] [Scilit]
- Rastyapina, O.A.; Korosteleva, N.V. Urban Safety Development Methods. Procedia Eng. 2016, 150, 2042–2048. [Google Scholar] [CrossRef] [Scilit]
- Chiroli, D.M.D.G.; Menezes, M.G.; Zola, F.C.; Aragão, F.V.; de Almeida, R.D.; Tebcherani, S.M. Integrating Resilience and Sustainability: A Systematic Analysis of Resilient Cities Using ISO 37123. Int. J. Disaster Risk Reduct. 2023, 96, 103960. [Google Scholar] [CrossRef] [Scilit]
- Cheek, W.; Chmutina, K. Measuring Resilience in the Assumed City. Int. J. Disaster Risk Sci. 2022, 13, 317–329. [Google Scholar] [CrossRef] [Scilit]
- Snyder, H. Literature Review as a Research Methodology: An Overview and Guidelines. J. Bus. Res. 2019, 104, 333–339. [Google Scholar] [CrossRef] [Scilit]
- Holling, C.S. Engineering Resilience Versus Ecological Resilience; National Academy Press: Washington, DC, USA, 1996. [Google Scholar]
- Holling, C.S. Resilience and Stability of Ecological Systems. Annu. Rev. Ecol. Evol. Syst. 1973, 4, 460–482. [Google Scholar]
- Folke, C.; Carpenter, S.R.; Walker, B.; Scheffer, M.; Chapin, T.; Rockstrm, J. Resilience Thinking: Integrating Resilience, Adaptability and Transformability. Ecol. Soc. 2010, 15, 299–305. [Google Scholar] [CrossRef] [Scilit]
- Folke, C. Resilience (Republished). Ecol. Soc. 2016, 21, 44. [Google Scholar] [CrossRef] [Scilit]
- Torraco, R.J. Work Design Theory: A Review and Critique with Implications for Human Resource Development. Hum. Resour. Dev. Q. 2005, 16, 85–109. [Google Scholar] [CrossRef] [Scilit]
- Whittemore, R.; Knafl, K. The Integrative Review: Updated Methodology. J. Adv. Nurs. 2005, 52, 546–553. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Li, J.; Goerlandt, F.; Reniers, G. An Overview of Scientometric Mapping for the Safety Science Community: Methods, Tools, and Framework. Saf. Sci. 2021, 134, 105093. [Google Scholar] [CrossRef] [Scilit]
- van Eck, N.J.; Waltman, L. Software Survey: VOSviewer, a Computer Program for Bibliometric Mapping. Scientometrics 2010, 84, 523–538. [Google Scholar] [CrossRef] [Scilit]
- Chen, C. CiteSpace II: Detecting and Visualizing Emerging Trends and Transient Patterns in Scientific Literature. J. Am. Soc. Inf. Sci. Technol. 2006, 57, 359–377. [Google Scholar] [CrossRef] [Scilit]
- Yang, J.; Cheng, C.; Shen, S.; Yang, S. Comparison of Complex Network Analysis Software: Citespace, SCI2 and Gephi. In Proceedings of the 2017 IEEE 2nd International Conference on Big Data Analysis (ICBDA), Beijing, China, 10–12 March 2017; pp. 169–172. [Google Scholar]
- Vale, L.J.; Campanella, T.J. (Eds.) The Resilient City: How Modern Cities Recover from Disaster; Oxford University Press: Oxford, UK, 2005. [Google Scholar]
- Kates, R.W.; Colten, C.E.; Laska, S.; Leatherman, S.P.; Clark, W.C. Reconstruction of New Orleans after Hurricane Katrina: A Research Perspective. Cityscape 2007, 9, 5–22. [Google Scholar] [CrossRef] [Scilit]
- Radeloff, V.; Helmers, D.P.; Kramer, H.; Mockrin, M.; Alexandre, P.; Bar-Massada, A.; Butsic, V.; Hawbaker, T.; Martinuzzi, S.; Syphard, A.; et al. Rapid Growth of the US Wildland-Urban Interface Raises Wildfire Risk. Proc. Natl. Acad. Sci. USA 2018, 115, 3314–3319. [Google Scholar] [CrossRef] [Scilit]
- Sharifi, A.; Khavarian-Garmsir, A.R. The COVID-19 Pandemic: Impacts on Cities and Major Lessons for Urban Planning, Design, and Management. Sci. Total Environ. 2020, 749, 142391. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hallegatte, S.; Rentschler, J.; Rozenberg, J. Lifelines: The Resilient Infrastructure Opportunity; World Bank: Washington, DC, USA, 2019. [Google Scholar]
- Pan, Y.; Zhang, L. Roles of Artificial Intelligence in Construction Engineering and Management: A Critical Review and Future Trends. Autom. Constr. 2021, 122, 103517. [Google Scholar] [CrossRef] [Scilit]
- Spaans, M.; Waterhout, B. Building up Resilience in Cities Worldwide—Rotterdam as Participant in the 100 Resilient Cities Programme. Cities 2017, 61, 109–116. [Google Scholar] [CrossRef] [Scilit]
- Future Cities Advisory Outlook 2022: Building New Urban Resilience. Available online: https://unhabitat.org/future-cities-advisory-outlook-2022-building-new-urban-resilience (accessed on 6 November 2025).
- ICLEI—Local Governments for Sustainability. Available online: https://iclei.org/ (accessed on 6 November 2025).
- UNDRR Homepage|UNDRR. Available online: https://www.undrr.org/ (accessed on 6 November 2025).
- Bruneau, M.; Chang, S.E.; Eguchi, R.T.; Lee, G.C.; O’Rourke, T.D.; Reinhorn, A.M.; Shinozuka, M.; Tierney, K.; Wallace, W.A.; Von Winterfeldt, D. A Framework to Quantitatively Assess and Enhance the Seismic Resilience of Communities. Earthq. Spectra 2003, 19, 733–752. [Google Scholar] [CrossRef] [Scilit]
- Satterthwaite, D. Cities’ Contribution to Global Warming: Notes on the Allocation of Greenhouse Gas Emissions. Environ. Urban. 2008, 20, 539–549. [Google Scholar] [CrossRef] [Scilit]
- Cutter, S.L.; Burton, C.G.; Emrich, C.T. Disaster Resilience Indicators for Benchmarking Baseline Conditions. J. Homel. Secur. Emerg. Manag. 2010, 7, 51. [Google Scholar] [CrossRef] [Scilit]
- Leichenko, R. Climate Change and Urban Resilience. Curr. Opin. Environ. Sustain. 2011, 3, 164–168. [Google Scholar] [CrossRef] [Scilit]
- Revi, A.; Satterthwaite, D.E.; Aragón-Durand, F.; Corfee-Morlot, J.; Solecki, W. Urban Areas in Climate Change 2014: Impacts, Adaptation, and Vulnerability. Part A: Global and Sectoral Aspects. Contribution of Working Group II to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change; Cambridge University Press: Cambridge, UK, 2014; pp. 535–612. [Google Scholar]
- Erokhin, D.; Komendantova, N. Social Media Data for Disaster Risk Management and Research. Int. J. Disaster Risk Reduct. 2024, 114, 104980. [Google Scholar] [CrossRef] [Scilit]
- Sharifi, A. Urban Sustainability Assessment: An Overview and Bibliometric Analysis. Ecol. Indic. 2021, 121, 107102. [Google Scholar] [CrossRef] [Scilit]
- Chausson, A.; Turner, B.; Seddon, D.; Chabaneix, N.; Girardin, C.A.J.; Kapos, V.; Key, I.; Roe, D.; Smith, A.; Woroniecki, S.; et al. Mapping the Effectiveness of Nature-Based Solutions for Climate Change Adaptation. Glob. Chang. Biol. 2020, 26, 6134–6155. [Google Scholar] [CrossRef] [Scilit]
- IUCN Global Standard for Nature-Based Solutions. Available online: https://iucn.org/our-work/topic/iucn-global-standard-nature-based-solutions (accessed on 16 November 2025).
- Meerow, S.; Newell, J.P. Urban Resilience for Whom, What, When, Where, and Why? Urban Geogr. 2019, 40, 309–329. [Google Scholar] [CrossRef] [Scilit]
- Deng, T.; Zhang, K.; Shen, Z.-J. A Systematic Review of a Digital Twin City: A New Pattern of Urban Governance toward Smart Cities. J. Manag. Sci. Eng. 2021, 6, 125–134. [Google Scholar] [CrossRef] [Scilit]
- Habib, A.; Habib, M.; Bashir, B.; Bachir, H. Exploring the Sustainability Benefits of Digital Twin Technology in Achieving Resilient Smart Cities During Strong Earthquake Events. Arab. J. Sci. Eng. 2025, 50, 16869–16883. [Google Scholar] [CrossRef] [Scilit]
- Liu, J.; Wang, C.; Zhang, R. Experiment in Resilient City: An Evaluation of China’s Demonstration City of Safe Development Policies. Heliyon 2024, 10, e32000. [Google Scholar] [CrossRef] [Scilit]
- Liu, Y.; Li, Q.; Li, W.; Zhang, Y.; Pei, X. Progress in Urban Resilience Research and Hotspot Analysis: A Global Scientometric Visualization Analysis Using CiteSpace. Environ. Sci. Pollut. Res. 2022, 29, 63674–63691. [Google Scholar] [CrossRef] [Scilit]
- Sharifi, A.; Allam, Z.; Bibri, S.E.; Khavarian-Garmsir, A.R. Smart Cities and Sustainable Development Goals (SDGs): A Systematic Literature Review of Co-Benefits and Trade-Offs. Cities 2024, 146, 104659. [Google Scholar] [CrossRef] [Scilit]
- Uittenbroek, C.J.; Mees, H.L.P.; Hegger, D.; Driessen, P. From Public to Citizen Responsibilities in Urban Climate Adaptation. Urban Clim. Politics 2019, 293, 171–189. [Google Scholar] [CrossRef] [Scilit]
- UN Unveils Campaign to Make Cities More Resistant to Disasters. Available online: https://news.un.org/en/story/2010/05/339882 (accessed on 16 November 2025).
- Yuzva, K.; Zimmermann, M. Introduction: Toward the Resilient City. In Proceedings of the Resilient Cities 2 Conference, Bonn, Germany, 3–5 June 2011; pp. 101–103. [Google Scholar]
- United Nations|Peace, Dignity and Equality <BR>on a Healthy Planet. Available online: https://www.un.org/en (accessed on 16 November 2025).
- ICLEI East Asia. Available online: https://eastasia.iclei.org/ (accessed on 16 November 2025).
- World Meteorological Organization. Atlas of Mortality and Economic Losses from Weather, Climate and Water-Related Hazards|FSM Environment, Climate Change and Disaster Risk Management Data Portal. Available online: https://fsm-data.sprep.org/dataset/world-meteorological-organization-atlas-mortality-and-economic-losses-weather-climate-and (accessed on 23 November 2025).
- ITU Report Highlights Use of Disruptive Technologies in Disaster Management|UN-SPIDER Knowledge Portal. Available online: https://www.un-spider.org/news-and-events/news/itu-report-highlights-use-disruptive-technologies-disaster-management (accessed on 23 November 2025).
- Global Facility for Disaster Reduction and Recovery|GFDRR. Available online: https://www.gfdrr.org/en/global-facility-disaster-reduction-and-recovery (accessed on 23 November 2025).
- Gordon, D.J.; Johnson, C.A. City-Networks, Global Climate Governance, and the Road to 1.5 °C. Curr. Opin. Environ. Sustain. 2018, 30, 35–41. [Google Scholar] [CrossRef] [Scilit]
- Singapore’s ABC Water Programme—EBRD. Available online: https://www.ebrdgreencities.com/policy-tool/singapores-abc-water-programme/ (accessed on 23 November 2025).
- Kainuma, M.; Ishikawa, T.; Kawarasaki, S.; Blanchard, A.; Take, K.; Mori, H. “Paris at 50 Degrees Celsius”: How Can Paris Adapt to Heatwaves? Sustain. Sci. 2025. [Google Scholar] [CrossRef] [Scilit]
- Khader, M. Rotterdam Resilience Strategy, Rotterdam. In Urban Planning for Transitions; Douay, N., Minja, M., Eds.; John Wiley & Sons: Hoboken, NJ, USA, 2021; pp. 1–18. [Google Scholar]
- City Resilience|City of Melbourne. Available online: https://www.melbourne.vic.gov.au/city-resilience (accessed on 23 November 2025).
- Moloney, S.; Doyon, A. The Resilient Melbourne Experiment: Analyzing the Conditions for Transformative Urban Resilience Implementation. Cities 2021, 110, 103017. [Google Scholar] [CrossRef] [Scilit]
- Rosenzweig, B.; Montalto, F.A.; Orton, P.; Kaatz, J.; Maher, N.; Kleyman, J.; Chen, Z.; Sanderson, E.; Adhikari, N.; McPhearson, T.; et al. NPCC4: Climate Change and New York City’s Flood Risk. Ann. New York Acad. Sci. 2024, 1539, 127–184. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- City Resilience Framework 2024: Preparing for the Next Decade. 2024. Available online: https://resilientcitiesnetwork.org/downloadable_resources/Publications/City%20Resilience%20Framework%2024%20FINAL_.pdf (accessed on 23 November 2025).
- Liu, J.; Yang, L. “Dual-Track” Platform Governance on Content: A Comparative Study between China and United States. Policy Internet 2022, 14, 20. [Google Scholar] [CrossRef] [Scilit]
- The Central Committee of the Communist Party of China The State Council Opinions of the Central Committee of the Communist Party of China and the State Council on Advancing Reform and Development in the Field of Work Safety. Available online: https://www.gov.cn/zhengce/2016-12/18/content_5149663.htm (accessed on 23 November 2025).
- State Council Work Safety Commission Notice of the State Council Work Safety Commission on Issuing the “Evaluation and Management Measures for National Safety Development Model Cities”. Available online: https://www.mem.gov.cn/gk/tzgg/tz/201912/t20191205_341956.shtml (accessed on 23 November 2025).
- Office of the State Council Work Safety Commission Notice of the State Council Work Safety Committee Office on Issuing the “Evaluation Rules for National Safety Development Model Cities (2023 Edition)”. Available online: https://www.mem.gov.cn/gk/zfxxgkpt/fdzdgknr/202310/t20231023_466482.shtml (accessed on 23 November 2025).
- State Council Work Safety Commission Office Notice of the State Council Work Safety Commission Office on Issuing the “Guidance Manual for Building National Safety Development Model Cities”. Available online: https://www.mem.gov.cn:10443/gk/tzgg/tz/202009/t20200930_366910.shtml (accessed on 23 November 2025).
- China Meteorological News Agency Zhuji City: Selected for UNDRIS “World Resilient Model Cities” List. Available online: https://www.cma.gov.cn/2011xwzx/2011xqxxw/2011xjctz/202404/t20240402_6172652.html (accessed on 12 December 2025).
- Tianjin Daily Eco-City Pioneers “Indicator-Based” Model for Building Resilient Cities. Available online: https://www.tj.gov.cn/sy/tjxw/202507/t20250726_7099436.html (accessed on 12 December 2025).
- Wu, Y. New Situations of Public Security Risks and Resilient Governance in Megacities and Super-Large Cities. Frontiers 2025, 94–105. [Google Scholar] [CrossRef]









| Development Stage | Year | Key Characteristics |
|---|---|---|
| Key Characteristics | 2000–2008 | Establishment of the Socio-Ecological Systems (SES) framework; Definition of multidimensional resilience (physical/social/economic/institutional); Development of the “4R” model for disaster resilience; Incorporation of equity dimensions into research; Development of community resilience tools (e.g., BRIC indicators). |
| Technology Integration Period | 2009–2018 | Deepening of transformative resilience theory; Mainstreaming of climate resilience (IPCC AR5); Empowerment through smart technologies (big data/AI); Iinstitutionalization of equitable resilience; Global action networks (e.g., 100 Resilient Cities initiative). |
| Composite Crisis Response Period | 2019–Present | Response to pandemic-climate-conflict convergence; Institutionalization of resilience equity; Deep application of digital twins and AI; Mainstreaming of Nature-based Solutions (NbS); Establishment of lifecycle resilience management frameworks. |
| Label | Replace By | Label | Replace By |
|---|---|---|---|
| urban flood resilience | flood resilience | disaster | disasters |
| social-ecological systems | social ecological systems | hazards | hazard |
| urban ecological resilience | ecological resilience | impacts | impact |
| area | urban areas | model | models |
| areas | urban areas | network | networks |
| land | land use | region | regions |
| cover | land cover | resilient city | resilient cities |
| adaptation | adaptability | urban resilience | resilient cities |
| climate change adaptation | climate adaptation | smart city | smart cities |
| access | accessibility | space | spaces |
| perspective | perspectives | system | systems |
| COVID-19 pandemic | COVID-19 | transition | transitions |
| Keyword | Occurrences | Total Link Strength | Keyword | Occurrences | Total Link Strength |
|---|---|---|---|---|---|
| resilience | 2888 | 17,084 | urban areas | 352 | 2221 |
| cities | 1667 | 10,987 | COVID-19 | 336 | 1432 |
| impact | 1168 | 7350 | infrastructure | 324 | 2324 |
| vulnerability | 955 | 6437 | performance | 313 | 1732 |
| climate-change | 949 | 6825 | urban planning | 312 | 2095 |
| management | 930 | 6226 | biodiversity | 305 | 1941 |
| resilient cities | 891 | 5168 | design | 295 | 1836 |
| framework | 859 | 5872 | disasters | 294 | 1975 |
| systems | 754 | 4583 | climate | 272 | 1701 |
| climate change | 740 | 4966 | networks | 271 | 1561 |
| sustainability | 740 | 4864 | climate adaptation | 268 | 1996 |
| adaptability | 723 | 5363 | land-use | 254 | 1622 |
| models | 672 | 3670 | growth | 247 | 1417 |
| urban | 653 | 4048 | sustainable development | 244 | 1466 |
| urbanization | 636 | 4138 | mitigation | 225 | 1683 |
| risk | 609 | 3850 | strategies | 225 | 1616 |
| ecosystem services | 583 | 4229 | politics | 221 | 1581 |
| governance | 504 | 3813 | water | 218 | 1484 |
| health | 424 | 2757 | hazard | 210 | 1453 |
| green infrastructure | 378 | 2869 | smart cities | 208 | 1171 |
| china | 363 | 2038 | dynamics | 207 | 1304 |
| policy | 363 | 2517 | spaces | 205 | 1407 |
| challenges | 360 | 2755 | indicators | 204 | 1427 |
| community resilience | 354 | 2315 | community | 195 | 1269 |
| City | Primary Risks | Resilience Plan | Specific Measures |
|---|---|---|---|
| Singapore | Flooding and Water Scarcity | Implementation of the “Active, Beautiful, Clean Water Programme (ABC Water Programme)” [61] | Policy Framework: Formulated the “Master Plan 2025” to define coastal protection and climate adaptation objectives Ecological Measures: Constructed wetlands and urban parks to mitigate flooding through natural water retention Infrastructure Development: Widened river channels, built reservoirs and underground water storage facilities, and developed underground space |
| Paris, France | Extreme Heat | “Paris at 50 °C” Drill Oasis Campus Opening Program, Paris Volunteers Network [62] | Community: Mobilizing neighborhoods through the Oasis Campus Opening Program and Paris Volunteers Network for emergency response Infrastructure: Installing shaded areas and misting cooling systems Policy: Updated Resilient City Strategy in 2022 |
| Rotterdam, Netherlands | Flooding and Sea Water Intrusion | Rotterdam Resilience Strategy [63] | Spatial Planning: Promote “green roofs” and “blue roofs” (water-retaining roofs), offering subsidies to enhance water storage capacity Infrastructure: Construct multifunctional water squares (e.g., Bentemplein Water Square) that combine rainwater storage with public space functions Institutional Framework: Implemented the Rotterdam Water Plan and Rotterdam Weather-Smart Plan since 2001; updated the Resilience Strategy in 2016 to clarify flood prevention priorities |
| Melbourne, Australia | Extreme Weather and Population Pressure | Resilient Melbourne [64] | Ecology: Large-scale afforestation to mitigate the urban heat island effect Infrastructure: Water-Sensitive Urban Design (WSUD) Society: Converting underutilized land into public spaces Institutions and Planning: The Resilient Melbourne Plan [65] |
| New York, USA | Flooding and Climate Change [66] | Infrastructure: Construct underground water storage facilities; upgrade power, water supply, and drainage systems Society: Prioritize 40% of federal construction funding for underserved communities; advance housing equity and temporary assistance programs | |
| London, United Kingdom | Climate Change | City Resilience Framework (CRF) [67] | Institutional: City Resilience Framework (CRF): Covers four dimension-health, economy, infrastructure, and leadership—establishing 12 objectives and 156 indicators Ecological: Established ultra-low emission zones and developed national park cities |
| Type | City | Framework | Core Strategy | Distinctive Practices |
|---|---|---|---|---|
| International Project Pilot Cities | Zhuji City, Zhejiang | Selected in 2024 as a UN “Resilient City of the World” (the 4th in Asia-Pacific and the first in China) [73] | Enhancing disaster resistance through infrastructure redundancy design and smart risk monitoring | Sponge city renovation, smart waterlogging early warning system |
| Sino-Singapore Tianjin Eco-city | Selected in 2023 as a first-batch pilot for the UN Making Cities Resilient 2030 (MCR2030) initiative [74] | Integrating resilience concepts into urban planning, drawing on Singapore’s experience, with a focus on ecological restoration and smart management | Sponge city, climate-adaptive buildings, ecological buffer zone construction | |
| Chengdu City & Guangyuan City, Sichuan | Selected as UN MCR2030 pilots | Focusing on coordinated disaster risk prevention/control and the transformation of ecological resource value | Chengdu’s smart emergency platform; Guangyuan’s cross-regional geological hazard early warning mechanism | |
| Lishui City, Zhejiang | Selected as a UN MCR2030 pilot | - | Eco-product value realization pathways | |
| Changning District, Shanghai | Selected as a UN MCR2030 pilot [75] | - | Eco-product value realization pathways | |
| Domestic Policy Pilot Cities | Chongqing, Jinan, Guangzhou, Yantai, etc. (21 cities in total) | New Urban Infrastructure Construction Pilot | - | Promoting the integration of new infrastructure (e.g., smart transportation, utility tunnels) with resilient city development |
| Xi’an, Baoji, Xianyang, etc. (Guanzhong Plain Urban Agglomeration) | New Urban Infrastructure Construction Pilot | - | Enhancing regional disaster resistance through spatial planning optimization and infrastructure upgrading | |
| Cities with Local Autonomous Exploration | Beijing, Shanghai | - | - | “Resilient City Construction” integrated into the Master Urban Plan |
| Guangzhou | - | - | “Resilient City Construction” integrated into the Territorial Spatial Master Plan | |
| Hangzhou | - | - | Promoting comprehensive underground development around metro stations and surrounding areas |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Han, M.; Fu, G.; Wu, Z.; Lu, Y.; Xie, X.; Xu, S. A Systematic Review of the Trajectory of Urban Resilience Research: A Bibliometric Perspective on Global Trends and China’s Pathway. Sustainability 2026, 18, 2945. https://doi.org/10.3390/su18062945
Han M, Fu G, Wu Z, Lu Y, Xie X, Xu S. A Systematic Review of the Trajectory of Urban Resilience Research: A Bibliometric Perspective on Global Trends and China’s Pathway. Sustainability. 2026; 18(6):2945. https://doi.org/10.3390/su18062945
Chicago/Turabian StyleHan, Meng, Gui Fu, Zhirong Wu, Yuxuan Lu, Xuecai Xie, and Surui Xu. 2026. "A Systematic Review of the Trajectory of Urban Resilience Research: A Bibliometric Perspective on Global Trends and China’s Pathway" Sustainability 18, no. 6: 2945. https://doi.org/10.3390/su18062945
APA StyleHan, M., Fu, G., Wu, Z., Lu, Y., Xie, X., & Xu, S. (2026). A Systematic Review of the Trajectory of Urban Resilience Research: A Bibliometric Perspective on Global Trends and China’s Pathway. Sustainability, 18(6), 2945. https://doi.org/10.3390/su18062945

