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Comparison of Compact and Decentralized Urban Development Pathways for Flood Mitigation in Urbanizing Deltas—Guangzhou in the Pearl River Delta as a Case Study

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  • Weibin Lin

    (School of Architecture and Art, Hunan Provincial Key Laboratory of Low Carbon Healthy Building, Central South University, Changsha 410083, China
    School of Architecture, State Key Laboratory of Subtropical Building and Urban Science, South China University of Technology, Guangzhou 510641, China)

  • Yimin Sun

    (School of Architecture, State Key Laboratory of Subtropical Building and Urban Science, South China University of Technology, Guangzhou 510641, China)

  • Steffen Nijhuis

    (Faculty of Architecture and the Built Environment, Department of Urbanism, Delft University of Technology (TU Delft), Julianalaan 134, 2628 BL Delft, The Netherlands)

Abstract

Floods are common and inevitable natural disasters. Achieve Sustainable Development Goal (SDG) 11.5 is a critical challenge for coastal cities, especially those in deltaic lowlands such as in the case of Guangzhou, China. Regarding the spatial planning and design of such urban regions, it is crucial to study the impacts of flooding in compact or decentralized spatial development pathways. This reinforces the understanding of the relationship between strategic decisions for spatial planning and flood mitigation. However, the lack of a computer model to assess spatial evolution paths is a significant limitation. The non-dominated Sorting Genetic Algorithm II (NSGA-II) explores the possibility of a compact built-up land layout in 2030. The results showed that, concerning the 2030 decentralized scenario, the 2030 compact scenario presents a large increase in the integrated fitness function value from 0.618 to 0.771 (the increase is equivalent to 0.153 or about 24.75%). In addition, different development scenarios were constructed by setting different target weights. Compared to the decentralized scenario results, the fitness function values of the optimization results of each scenario showed better results at different levels. They could also serve as a reference for other similar coastal areas to achieve SDG 11.5 by 2030.

Suggested Citation

  • Weibin Lin & Yimin Sun & Steffen Nijhuis, 2024. "Comparison of Compact and Decentralized Urban Development Pathways for Flood Mitigation in Urbanizing Deltas—Guangzhou in the Pearl River Delta as a Case Study," Land, MDPI, vol. 13(3), pages 1-22, March.
  • Handle: RePEc:gam:jlands:v:13:y:2024:i:3:p:351-:d:1353928
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    References listed on IDEAS

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    1. Weiping Wang & Saini Yang & H. Eugene Stanley & Jianxi Gao, 2019. "Local floods induce large-scale abrupt failures of road networks," Nature Communications, Nature, vol. 10(1), pages 1-11, December.
    2. Michalis I. Vousdoukas & Lorenzo Mentaschi & Evangelos Voukouvalas & Alessandra Bianchi & Francesco Dottori & Luc Feyen, 2018. "Climatic and socioeconomic controls of future coastal flood risk in Europe," Nature Climate Change, Nature, vol. 8(9), pages 776-780, September.
    3. Daniel Caparros‐Midwood & Stuart Barr & Richard Dawson, 2017. "Spatial Optimization of Future Urban Development with Regards to Climate Risk and Sustainability Objectives," Risk Analysis, John Wiley & Sons, vol. 37(11), pages 2164-2181, November.
    4. B. Tellman & J. A. Sullivan & C. Kuhn & A. J. Kettner & C. S. Doyle & G. R. Brakenridge & T. A. Erickson & D. A. Slayback, 2021. "Satellite imaging reveals increased proportion of population exposed to floods," Nature, Nature, vol. 596(7870), pages 80-86, August.
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