利用城市指标与深度神经网络进行房地产价值预测

IF 0.3 Q4 REMOTE SENSING
A. Bazan-Krzywoszanska, M. Bereta
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引用次数: 6

摘要

摘要市政规划文件的记录直接影响土地利用。这样,土地的市场价格也就形成了。对适应具体解决方案的经济和社会后果的认识是在空间规划方面制约地方政策的主要论点。研究结果表明,使用不以价格来描述属性的网络能够对属性进行估计,并获得令人满意的结果。在空间政策决策中使用人工多层网络的可能性似乎是有充分根据的。研究结果表明,使用它们进行建模的假设具有相关性,有助于在决定土地利用和开发的地方法律文件中选择最有利的规划安排变体,从而影响其价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The use of urban indicators in forecasting a real estate value with the use of deep neural network
Abstract Records of municipal planning documents directly affect the land use. In this way, the market price of the land is also shaped. Awareness of the economic and social consequences of adapting specific solutions is the primary argument that should condition the local policy in terms of spatial planning. The research results indicate that the network trained with attributes which do not describe a property value by its price was able to estimate it with acceptable and satisfactory results. The possibility to use artificial multilayer networks in spatial policy decision-making seems well founded. The research results show the relevance of the assumption that using them for modeling can be helpful in selecting the most advantageous variant of planning arrangements in a local law document which determines the land use and development, therefore impacts its value.
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28.60%
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5
审稿时长
12 weeks
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