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Construction of Multi-Functional Composite Resilient Ecological Networks in High-Density Cities

Author

Listed:
  • Hui Li

    (College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou 510642, China)

  • Jiaheng Du

    (College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou 510642, China)

  • Wanqi Guo

    (Guangdong Research Institute of Water Resources and Hydropower, Guangzhou 510642, China)

  • Qing Xu

    (College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou 510642, China)

  • Jinli Zhu

    (College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou 510642, China)

  • Zhenzhou Xu

    (College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou 510642, China)

  • Wei Gao

    (College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou 510642, China)

Abstract

The rapid development of high-density cities has triggered severe ecological challenges, including habitat fragmentation, urban heat island (UHI) effects, and conflicting demands for public recreation. Traditional ecological networks (ENs) often focus only on “source” landscapes while neglecting degraded “sink” areas. This bias limits the ability of planners to resolve complex spatial conflicts. Therefore, the primary aim of this study is to develop a robust spatial planning framework that mitigates urban ecological conflicts and enhances regional resilience. To achieve this, we constructed a composite ecological network (CEN) for the high-density city of Guangzhou that harmonizes bird habitat conservation, thermal regulation, and cultural recreation. We combined the MaxEnt model, morphological spatial pattern analysis (MSPA), and circuit theory to identify functional “sources” and “sinks” across these three dimensions. Next, using complex network theory, we optimized the CEN and evaluated its structural robustness using low degree addition (LDA) and low betweenness addition (LBA) strategies. The results indicate the following: (1) The CEN effectively captured the complex mosaic landscape of the city. (2) Single-objective networks displayed distinct spatial differences—the recreational network formed a dispersed web of 242 corridors, while habitat and climate networks remained highly clustered. (3) The integrated CEN generated 1137 multi-layered corridors, creating a vital green skeleton to support species dispersal, mitigate UHI effects, and improve cultural access. (4) Optimization simulations verified that the LBA strategy provided the highest stability against targeted attacks by balancing network connectivity with local aggregation. Ultimately, this framework offers a highly adaptable planning tool for dense cities, providing precise spatial guidance to overcome ecological bottlenecks and harmonize urban growth with ecosystem resilience.

Suggested Citation

  • Hui Li & Jiaheng Du & Wanqi Guo & Qing Xu & Jinli Zhu & Zhenzhou Xu & Wei Gao, 2026. "Construction of Multi-Functional Composite Resilient Ecological Networks in High-Density Cities," Land, MDPI, vol. 15(6), pages 1-35, June.
  • Handle: RePEc:gam:jlands:v:15:y:2026:i:6:p:1097-:d:1972272
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