Compares the predictive performance of artificial neural networks to hedonic pricing models, a more traditional valuation tool. The results document similar predictive performance evidenced from both techniques, which contradicts some of the earlier studies which support a position of artificial neural network superiority. Demonstrates that at least 18 per cent of the “normal” property predictions and over 70 per cent of the “outlier” property predictions contained valuation errors greater than 15 per cent of the actual sales price. The combination of these substantial errors and the model‐optimization costs incurred motivate a message of caution before artificial neural networks are adopted by the real estate valuation and/or lending industries.
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1 March 1997
This article was originally published in
Journal of Property Valuation and Investment
Research Article|
March 01 1997
High‐tech valuation: should artificial neural networks bypass the human valuer?
Margarita M. Lenk;
Margarita M. Lenk
Colorado State University, Fort Collins, Colorado, USA
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Elaine M. Worzala;
Elaine M. Worzala
Colorado State University, Fort Collins, Colorado, USA
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Ana Silva
Ana Silva
Colorado State University, Fort Collins, Colorado, USA
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Publisher: Emerald Publishing
Online ISSN: 1758-7867
Print ISSN: 0960-2712
© MCB UP Limited
1997
Journal of Property Valuation and Investment (1997) 15 (1): 8–26.
Citation
Lenk MM, Worzala EM, Silva A (1997), "High‐tech valuation: should artificial neural networks bypass the human valuer?". Journal of Property Valuation and Investment, Vol. 15 No. 1 pp. 8–26, doi: https://doi.org/10.1108/14635789710163775
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