Tests for spatial dependence and heterogeneity in spatially autoregressive varying coefficient models with application to Boston house price analysis
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DOI: 10.1016/j.regsciurbeco.2019.103470
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Cited by:
- Wongsa-art, Pipat & Kim, Namhyun & Xia, Yingcun & Moscone, Francesco, 2024. "Varying coefficient panel data models and methods under correlated error components: Application to disparities in mental health services in England," Regional Science and Urban Economics, Elsevier, vol. 106(C).
- Tizheng Li & Xiaojuan Kang, 2022. "Variable selection of higher-order partially linear spatial autoregressive model with a diverging number of parameters," Statistical Papers, Springer, vol. 63(1), pages 243-285, February.
- Mateusz Tomal & Marco Helbich, 2023. "A spatial autoregressive geographically weighted quantile regression to explore housing rent determinants in Amsterdam and Warsaw," Environment and Planning B, , vol. 50(3), pages 579-599, March.
- Zihan Chen & Su Liu & Wei Liao & Junxue Zhang, 2023. "Construction of Security Pattern for Historical Districts in Cultural Landscape Based on MCR Model: A Case Study of Chaozong Street, Changsha City," Sustainability, MDPI, vol. 15(13), pages 1-17, July.
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Keywords
Spatial dependence; Spatial heterogeneity; Geographically weighted regression; Profile quasi-maximum likelihood estimation; Generalized likelihood ratio statistic; Bootstrap;All these keywords.
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