How urban forms shape the cooling efficiency of urban green spaces: Evidence from 1318 global cities

As a key strategy for mitigating urban thermal environments, enhancing the cooling efficiency (CE) of urban green spaces through the optimization of urban forms is crucial. However, at the city scale, studies on how urban morphological characteristics influence green space CE remain limited, particularly regarding the differentiated impact pathways and interactions across various climate types. This study quantified the CE of 1318 cities worldwide and found that a 1% increase in vegetation cover corresponds to an approximate 0.05 °C reduction in urban land surface temperature. Structural equation models (SEM) across different climate classifications were further applied to explore how urban forms can be optimized to enhance CE. The results reveal that urban forms primarily influence CE by modifying local climatic conditions and the quality of green spaces. Building density and the connectivity of urban green spaces exert the strongest effects on CE. In most climate types, more open urban spatial configurations are more favorable for improving CE. Moreover, embedded green spaces with more complex shapes and higher connectivity generally exhibit stronger cooling efficiency.

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Publication Details

Journal
Cities
Published
2026-09-11
DOI
https://doi.org/10.1016/j.cities.2026.107587
Primary Topic
Urban Heat Island Mitigation
Type
article
Field-Weighted Citation Impact
0.00

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article

How urban forms shape the cooling efficiency of urban green spaces: Evidence from 1318 global cities

Xingru He, Jingwei Shen, Siyuan Li, Dewei Yang et al.
Cities
Urban Heat Island Mitigation
article

How urban forms shape the cooling efficiency of urban green spaces: Evidence from 1318 global cities

Xingru He, Jingwei Shen, Siyuan Li, Dewei Yang, Qinmei Yan, Ziling He, Zhaowu Yu
article en

Abstract

As a key strategy for mitigating urban thermal environments, enhancing the cooling efficiency (CE) of urban green spaces through the optimization of urban forms is crucial. However, at the city scale, studies on how urban morphological characteristics influence green space CE remain limited, particularly regarding the differentiated impact pathways and interactions across various climate types. This study quantified the CE of 1318 cities worldwide and found that a 1% increase in vegetation cover corresponds to an approximate 0.05 °C reduction in urban land surface temperature. Structural equation models (SEM) across different climate classifications were further applied to explore how urban forms can be optimized to enhance CE. The results reveal that urban forms primarily influence CE by modifying local climatic conditions and the quality of green spaces. Building density and the connectivity of urban green spaces exert the strongest effects on CE. In most climate types, more open urban spatial configurations are more favorable for improving CE. Moreover, embedded green spaces with more complex shapes and higher connectivity generally exhibit stronger cooling efficiency.

CitiesVol. 179
Southwest University (CN), Ministry of Natural Resources (CN), Fudan University (CN)
National Natural Science Foundation of China
Sustainable cities and communities
Openalex Percentile: Top 18%
Urban Heat Island Mitigation
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How urban forms shape the cooling efficiency of urban green spaces: Evidence from 1318 global cities — Xingru He, Jingwei Shen, et al. · Cities (2026) | TGRS Research Map | TGRS