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Spatial and Temporal Effects of Built Environment on Urban Air Temperature in Seoul City, Korea: An Application of Spatial Regression Models

机译:建筑环境对韩国首尔城市气温的时空影响:空间回归模型的应用

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In this study we examined the relationships between the built environment and urban air temperature in Seoul city, Korea. We developed multivariate regression models that address the relationship between built environment characteristics and the ambient air temperature with spatial statistics techniques. In addition, we analyzed the difference in daytime and nighttime air temperature to identify the built environment characteristics that affect the intensity of the nocturnal urban heat island effect (UHI). The large sample size of AWS locations in Seoul makes it possible to analyze the factors that influence ambient air temperature and UHI effect. The analysis results indicate that the sky view factor (SVF) and gross floor area significantly influence the daytime air temperature, while the building coverage and albedo showed strong relationships with the nocturnal air temperature. This study also demonstrated the importance of advanced spatial statistics techniques that control spatial autocorrelation and spatial heteroscedasticity in urban air temperature research. Our models confirmed the need to capture the effects of spatial autocorrelations within our spatial data. The findings of this study are valuable for understanding the complicated associations between the built environment and urban air temperature and to develop public policies to mitigate UHI effects.
机译:在这项研究中,我们研究了韩国首尔市建筑环境与城市气温之间的关系。我们开发了多元回归模型,利用空间统计技术解决了建筑环境特征与环境气温之间的关系。此外,我们分析了白天和夜间气温的差异,以确定影响夜间城市热岛效应(UHI)强度的建筑环境特征。首尔AWS地点的大量样本使分析影响环境空气温度和UHI效应的因素成为可能。分析结果表明,天空因子(SVF)和总建筑面积显着影响白天的空气温度,而建筑物的覆盖范围和反照率则与夜间空气温度密切相关。这项研究还证明了控制城市空气温度研究中空间自相关和空间异方差性的先进空间统计技术的重要性。我们的模型证实需要在我们的空间数据中捕获空间自相关的影响。这项研究的发现对于理解建筑环境与城市气温之间的复杂联系以及制定减轻UHI效应的公共政策都具有宝贵的价值。

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