用于大规模房地产评估的空间计量经济学模型的路径选择:来自中国银川的证据

Yu Zhao, Xuejia Shen, Jian Ma, Miao Yu
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引用次数: 0

摘要

城市化进程、国民经济增长和中国人口结构的变化提升了房地产评估在抵押融资、二手房市场交易和房地产税费改革等各种背景下的重要性。针对这一需求,本研究采用时间空间双固定空间横截面数据模型作为大规模评估工具,分析了 2022 年 4 月 1 日银川市西夏区 429 套普通住宅的交易价格数据。具体而言,本研究分析了 7 个空间截面数据模型,并辨析了它们之间的内在联系。它设计了一种赋权技术,将距离和特征变量等级合并为一个统一的指标。研究结果探讨了房地产交易价格产生的空间滞后效应,并评估了不同空间截面数据模型的描述能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PATH SELECTION OF SPATIAL ECONOMETRIC MODEL FOR MASS APPRAISAL OF REAL ESTATE: EVIDENCE FROM YINCHUAN, CHINA
Urbanization, national economic growth, and China’s changing population structure have elevated the importance of real estate assessment in various contexts, including mortgage financing, secondary housing market transactions, and real estate tax reform. To address this need, this study employs a time-spatial double-fixed spatial cross-section data model as a mass appraisal tool to analyze the transaction price data of 429 ordinary residential houses in Xixia District, Yinchuan, China on April 1, 2022. Specifically, this study analyzes 7 spatial cross-section data models, discerning their interconnections. It devises an assignment technique that merges distance and characteristic variable rank into a unified indicator. The results explore spatial lag effects in real estate transaction price generation and assess the descriptive capabilities of different spatial cross-section data models.
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