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Spatial heterogeneity of urban residential carbon emissions in China

机译:中国城市居民碳排放的空间异质性

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This paper uses data from Chinese prefecture-level administrative unit to examine the extent of spatial variability of the impact that population, income, and climate have on urban residential carbon emissions. The residuals of OLS estimation of urban residential carbon emissions exhibit a significant spatial association according to the value of the Moran's I statistic. GWR model effectively reduces the spatial autocorrelation of residuals by considering spatial effect. Not only does it enhance the explanatory power of the model, but also gets local estimates of the parameters. Results show that, there is strong evidence of spatial heterogeneity for impacts of three independent variables: (1) local regression coefficients of population and income are both positive in the OLS and GWR models, but spatial variability of the effect of income is greater in the GWR model; (2) the coefficient estimate of the climate variable in the OLS model is negative, however, the direction is both positive and negative in the GWR model with the magnitude of the effect varying within and across the 302 prefecture-level administrative units in China; (3) one should carefully check the reasonableness of policy recommendations made based on global linear regression models that ignore or failed to properly assess the spatial dependence.
机译:本文使用来自中国地级行政单位的数据来研究人口,收入和气候对城市居民碳排放的影响的空间变异程度。根据Moran's I统计量的值,OLS估计的城市居民碳排放量的残差显示出显着的空间关联。通过考虑空间效应,GWR模型有效地减少了残差的空间自相关。它不仅增强了模型的解释能力,而且还获得了参数的局部估计。结果表明,有充分的证据表明空间异质性对三个自变量的影响:(1)在OLS和GWR模型中,人口和收入的局部回归系数都为正,而在收入和收入模型中,收入效应的空间变异性更大。 GWR模型; (2)OLS模型中气候变量的系数估计为负,但是GWR模型中的方向既为正也为负,而中国302个地级行政单位内部和整个区域的影响程度各不相同; (3)应该仔细检查基于忽略或未能正确评估空间依赖性的全局线性回归模型提出的政策建议的合理性。

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