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Implementing a mass valuation application on interoperable land valuation data model designed as an extension of the national GDI

机译:实施符合互操作土地估值数据模型的大规模估值申请,旨在延伸国家GDI

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摘要

The main purpose of this study is to propose an interoperable land valuation data model for residential properties as an extension of the national geographic data infrastructure (GDI) and to make mass valuation process applicable with the use of machine learning approach. As an example, random forest (RF) ensemble algorithm was implemented in Pendik district of Istanbul to evaluate the prediction performance by using thematic datasets compatible with the data model. This study provides a methodology for various urban applications and robustness of the algorithm increases the prediction of the real estate values with the use of qualified datasets.
机译:本研究的主要目的是提出可互转的土地估值数据模型,以便住宅物业作为国家地理数据基础设施(GDI)的延伸,并使大规模估值过程适用于使用机器学习方法。 例如,随机森林(RF)集合算法是在伊斯坦布尔的Pendik区实现了通过使用与数据模型兼容的主题数据集来评估预测性能。 本研究为各种城市应用提供了一种方法,算法的鲁棒性增加了使用合格数据集的房地产值的预测。

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