Predicting Housing Prices: The Case of Ankara Housing Market

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AESOP

Abstract

The housing market is crucial for economies, especially in Türkiye, where economic instability has caused rising housing prices. This study aims to predict trends in the city’s rental market using a dataset of 20,000 listings. By using advanced data analysis and machine learning, the research seeks to identify patterns and forecast rental price movements, benefiting households and policymakers. Valuing housing is complex due to its varied characteristics, prompting the use of hedonic pricing theory. This involves a regression model that links housing prices to their features. While traditional linear regression has been used, non-linear machine learning models often provide more accurate predictions. The research offers a framework for predicting housing market trends and fostering equitable urban development, addressing housing needs in Ankara and beyond.

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Planning as a Transformative Action in an Age of Planetary Crisis. Proceedings of the AESOP Annual Congress 2025, Istanbul, Türkiye, 7–11 July 2025

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Çayan, D., & Özdemir Sarı, Ö. B. (2025). Predicting housing prices: The case of Ankara housing market. In AESOP 2025 Congress: Book of Proceedings (pp. 3656–3669). Association of European Schools of Planning.

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Except where otherwised noted, this item's license is described as Attribution 4.0 International