统计模型在房地产估价领域的贡献

Helga Flavia Tothăzan
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引用次数: 0

摘要

摘要在性能评估中测试模型可能是一项困难的任务,因为这些模型种类繁多。估值中最常用的模型是回归和神经网络。本文应用系统回顾研究,提出了11种回归模型和9种神经网络模型在房地产估价中的应用。我们的目的是为房地产估价中的模型选择提供一个工具。选择标准基于它们的适用性、用户偏好和价格估算性能。研究结果与我们的预期略有不同。多层感知器(MLP)和多元线性回归(GLM)是估价中应用最广泛、最流行的模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The contribution of statistical models in the field of real estate valuation
Abstract Testing a model in property evaluation can be a difficult task due to the large variety of these models. The most popular models used in valuation are regression and neural networks. This paper applied a systematic review study and presents 11 types of regression models and 9 types of neural network models applied in real estate valuation. Our aim is to provide a tool for model selection applied in real estate valuation. The selection criteria were based on their applicability, user preferences and price estimation performance. The findings were slightly different from our expectations. Multi-Layer Perceptron (MLP) and Multiple Linear Regression (GLM) are the most applied and popular models in valuation.
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