The Research Development of Hedonic Price Model-Based Real Estate Appraisal in the Era of Big Data
Развитие исследований оценки недвижимости на основе гедонической модели цен в эпоху больших данных
2022-02-24
SCID: 54.1/369knj7g
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big datahedonic price modelreal estate appraisalspatial modelingweb crawler technology
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Abstract (AI)
In the era of big data, advances in relevant technologies are profoundly impacting the field of real estate appraisal. Many scholars regard the integration of big data technology as an inevitable future trend in the real estate appraisal industry. In this paper, we summarize 124 studies investigating the use of big data technology to optimize real estate appraisal through the hedonic price model (HPM). We also list a variety of big data resources and key methods widely used in the real estate appraisal field. On this basis, the development of real estate appraisal moving forward is analyzed. The results obtained in the current studies are as follows: First, the big data resources currently applied to real estate appraisal include more than a dozen big data types from three data sources; the internet, remote sensing, and the Internet of things (IoT). Additionally, it was determined that web crawler technology represents the most important data acquisition method. Second, methods such as data pre-processing, spatial modeling, Geographic information system (GIS) spatial analysis, and the evolving machine learning methods with higher valuation accuracy were successfully introduced into the HPM due to the features of real estate big data. Finally, although the application of big data has greatly expanded the amount of available data and feature dimensions, this has caused a new problem: uneven data quality. Uneven data quality can reduce the accuracy of appraisal results, and, to date, insufficient attention has been paid to this issue. Future research should pay greater attention to the data integration of multi-source big data and absorb the applications developed in other disciplines. It is also important to combine various methods to form a new united evaluation model based on taking advantage of, and avoiding shortcomings to compensate for, the mechanism defects of a single model.
Key Findings
1
Data preprocessing, spatial modeling, GIS spatial analysis, and machine learning have been integrated into HPM, improving valuation accuracy.
2
Expanded data volume and feature dimensions create uneven data quality, which can reduce appraisal accuracy and remains insufficiently addressed.
3
Future research should integrate multisource big data and combine complementary methods into unified evaluation models to overcome limitations of single models.
4
Real estate appraisal increasingly uses more than a dozen big-data types from internet, remote-sensing, and Internet of Things sources.
5
The review synthesizes 124 studies on optimizing hedonic price model-based real estate appraisal through big data technologies.
6
Web crawling is identified as the most important method for acquiring big data for real estate appraisal.
Research Object
Real estate appraisal through hedonic price models in the era of big data
Research Subject
The use of big-data resources, spatial and machine-learning methods, and data integration to improve appraisal accuracy and address uneven data quality
Publication Details
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2022-02-24
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References available in scid.ai4
A HOUSE PRICE VALUATION BASED ON THE RANDOM FOREST APPROACH: THE MASS APPRAISAL OF RESIDENTIAL PROPERTY IN SOUTH KOREA2020
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Capitalized amenity value of urban wetlands: a hedonic property price approach to urban wetlands in Perth, Western Australia*2009
Artificial Neural Networks and the Mass Appraisal of Real Estate2018
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