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Spatio-temporal stability of housing submarkets. Tracking spatial location of clusters of geographically weighted regression estimates of price determinants *

机译:外壳显示屏的时空稳定性。 跟踪价格决定因素地理加权回归估计的集群空间位置*

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This paper fills the gap in rich housing literature by testing the spatio-temporal stability of real estate sub markets. We start with standard Geographically Weighted Regression (GWR) estimation of the hedonic model on point data, and we cluster model coefficients to detect housing submarkets. We check spatio-temporal stability we add novelty by comparing if clusters move over space or stay in the same place. We rasterise surface and apply the Rand Index and Jaccard Similarity to check if clusters assigned to raster cells yield stable spatial structure. This approach allows for quantitative assessments of how much determinants of price are stable over time and space. The same mechanism applied to standard errors of GWR coefficients is a good test of the spatiotemporal stability of local heteroscedasticity. A Case study of apartments? transactions in Warsaw-Poland for the 2006?2015 period, evidences relatively high spatio-temporal stability.
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