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Improved Methods for Predicting Property Prices in Hazard Prone Dynamic Markets

Author

Listed:
  • Koen Koning

    (University of Twente)

  • Tatiana Filatova

    (University of Twente)

  • Okmyung Bin

    (East Carolina University)

Abstract

Property prices are affected by changing market conditions, incomes and preferences of people. Price trends in natural hazard zones may shift significantly and abruptly after a disaster signalling structural systemic changes in property markets. It challenges accurate market assessments of property prices and capital at risk after major disasters. A rigorous prediction of property prices in this case should ideally be done based only on the most recent sales, which are likely to form a rather small dataset. Hedonic analysis has been long used to understand how various factors contribute to the housing price formation. Yet, the robustness of its assessment is undermined when the analysis needs to be performed on relatively small samples. The purpose of this study is to suggest a model that can be widely applicable and quickly calibrated in a changing environment. We systematically study four statistical models: starting from a typical standard hedonic function and gradually changing its functional specification by reducing the hedonic analysis to some basic property characteristics and applying kriging to control for neighbourhood effects. Across different sample sizes we find that the latter performs consistently better in the out-of-sample predictions than other traditional price prediction methods. We present the specific improvements to the traditional spatial hedonic model that enhance the model’s prediction accuracy. The improved model can be used to monitor price changes in risk-prone areas, accounting for changes in flood risk and at the same time controlling for autonomous market responses to flood risk.

Suggested Citation

  • Koen Koning & Tatiana Filatova & Okmyung Bin, 2018. "Improved Methods for Predicting Property Prices in Hazard Prone Dynamic Markets," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 69(2), pages 247-263, February.
  • Handle: RePEc:kap:enreec:v:69:y:2018:i:2:d:10.1007_s10640-016-0076-5
    DOI: 10.1007/s10640-016-0076-5
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    2. Arkadiusz Górski & Kamila Urbańska & Agnieszka Parkitna, 2020. "Identification of risks of investments into residential premises for rent in Poland," WORking papers in Management Science (WORMS) WORMS/20/15, Department of Operations Research and Business Intelligence, Wroclaw University of Science and Technology.
    3. Arkadiusz Górski & Agnieszka Parkitna & Kamila Urbańska, 2021. "Identification of risks of investments into residential premises for rent in Poland," Operations Research and Decisions, Wroclaw University of Science and Technology, Faculty of Management, vol. 31(4), pages 53-68.
    4. Jorge Chica-Olmo & Rafael Cano-Guervos & Mario Chica-Rivas, 2019. "Estimation of Housing Price Variations Using Spatio-Temporal Data," Sustainability, MDPI, vol. 11(6), pages 1-21, March.
    5. Fletcher, Cameron S. & Ganegodage, K. Renuka & Hildenbrand, Marian D. & Rambaldi, Alicia N., 2022. "The behaviour of property prices when affected by infrequent floods," Land Use Policy, Elsevier, vol. 122(C).

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