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Combined asymmetric spatial weights matrix with application to housing prices

机译:组合非对称空间权重矩阵及其在房价中的应用

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In this study, a combined asymmetric spatial weights matrix is proposed for capturing the unequal spatial dependence of housing prices, where the advantage of this matrix was demonstrated by a non-nested hypothesis test. To explore the heterogeneous spatial impacts of urban essential characteristics on housing prices over the eastern, central, and western regions of China, after the Lagrange multiplier and likelihood ratio tests, the spatial Durbin model using the proposed weights matrix was applied to each region. The estimation results showed that the direct impacts of college and new employment were significantly negative in the eastern region, but not significant in the central and western regions. By contrast, the direct impacts of hospitals and scenic spots were significantly positive in eastern China, but not significant in central and western China. In addition, the indirect impacts of the four variables were not significant in the three regions. These results suggest that in eastern China, the government may increase the requirements for using medical resources and close tourist attractions in a single city to cool down the skyrocketing housing prices in this area.
机译:在这项研究中,提出了一个组合的非对称空间权重矩阵来捕获不平等的住房价格空间依赖性,该矩阵的优势通过非嵌套假设检验得到证明。为了研究中国基本特征对中国东部,中部和西部地区房价的异质空间影响,在进行了拉格朗日乘数法和似然比检验之后,将使用拟议权重矩阵的空间杜宾模型应用于每个区域。估计结果表明,大学和新就业的直接影响在东部地区显着为负,而在中西部地区则不显着。相比之下,医院和风景名胜区的直接影响在中国东部显着,而在中部和西部则不显着。此外,这四个变量的间接影响在三个区域中不显着。这些结果表明,在中国东部,政府可能会增加对医疗资源的需求,并关闭一个城市的旅游景点,以缓解该地区房价飞涨的情况。

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