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城市形态和社会人口特征对COVID-19影响的空间分析:香港的一项研究

Spatial analysis of the impact of urban geometry and socio-demographic characteristics on COVID-19, a study in Hong Kong.

作者信息

Kwok Coco Yin Tung, Wong Man Sing, Chan Ka Long, Kwan Mei-Po, Nichol Janet Elizabeth, Liu Chun Ho, Wong Janet Yuen Ha, Wai Abraham Ka Chung, Chan Lawrence Wing Chi, Xu Yang, Li Hon, Huang Jianwei, Kan Zihan

机构信息

Department of Land Surveying and Geo-Informatics, The Hong Kong Polytechnic University, Kowloon, Hong Kong, China.

Department of Land Surveying and Geo-Informatics, The Hong Kong Polytechnic University, Kowloon, Hong Kong, China; Research Institute for Sustainable Urban Development, The Hong Kong Polytechnic University, Kowloon, Hong Kong, China.

出版信息

Sci Total Environ. 2021 Apr 10;764:144455. doi: 10.1016/j.scitotenv.2020.144455. Epub 2020 Dec 16.

Abstract

The World Health Organization considered the wide spread of COVID-19 over the world as a pandemic. There is still a lack of understanding of its origin, transmission, and treatment methods. Understanding the influencing factors of COVID-19 can help mitigate its spread, but little research on the spatial factors has been conducted. Therefore, this study explores the effects of urban geometry and socio-demographic factors on the COVID-19 cases in Hong Kong. For each patient, the places they visited during the incubation period before going to hospital were identified, and matched with corresponding attributes of urban geometry (i.e., building geometry, road network and greenspace) and socio-demographic factors (i.e., demographic, educational, economic, household and housing characteristics) based on the coordinates. The local cases were then compared with the imported cases using stepwise logistic regression, logistic regression with case-control of time, and least absolute shrinkage and selection operator regression to identify factors influencing local disease transmission. Results show that the building geometry, road network and certain socio-economic characteristics are significantly associated with COVID-19 cases. In addition, the results indicate that urban geometry is playing a more important role than socio-demographic characteristics in affecting COVID-19 incidence. These findings provide a useful reference to the government and the general public as to the spatial vulnerability of COVID-19 transmission and to take appropriate preventive measures in high-risk areas.

摘要

世界卫生组织将新冠病毒病在全球的广泛传播视为一场大流行。目前对其起源、传播和治疗方法仍缺乏了解。了解新冠病毒病的影响因素有助于减缓其传播,但针对空间因素的研究甚少。因此,本研究探讨城市形态和社会人口因素对香港新冠病毒病病例的影响。对于每一位患者,确定其在入院前潜伏期内去过的地方,并根据坐标将这些地方与城市形态(即建筑形态、道路网络和绿地)及社会人口因素(即人口、教育、经济、家庭和住房特征)的相应属性进行匹配。然后,采用逐步逻辑回归、时间病例对照逻辑回归以及最小绝对收缩和选择算子回归,将本地病例与输入病例进行比较,以确定影响本地疾病传播的因素。结果表明,建筑形态、道路网络和某些社会经济特征与新冠病毒病病例显著相关。此外,结果表明,在影响新冠病毒病发病率方面,城市形态比社会人口特征发挥着更重要的作用。这些发现为政府和公众了解新冠病毒病传播的空间脆弱性以及在高风险地区采取适当的预防措施提供了有益的参考。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2014/7738937/2f81a850587a/ga1_lrg.jpg

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