房地产估价TSK模糊模型规则库的演化生成

T. Lasota, B. Trawinski, Krzysztof Trawiński
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引用次数: 7

摘要

本文描述了一种辅助房地产评估的takagi - sugeno - kang型模糊模型,并用进化算法对其进行了优化。第一个过程是学习规则库,第二个过程是将学习规则库和调整隶属函数结合在一个过程中。五个tsk类型的模糊模型包含3或4个输入变量,涉及一个属性的属性进行了评估。该进化算法基于匹茨堡方法,其中实编码的等长染色体包括整个规则库或规则库和所有隶属函数的所有参数。实验是使用训练和测试集进行的,这些训练和测试集是根据在波兰一个城市和一个住宅区进行的134笔实际销售交易编制的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolutionary generation of rule base in TSK fuzzy model for real estate appraisal
Takagi-Sugeno-Kang-type fuzzy model to assist with real estate appraisals is described and optimized using evolutionary algorithms Two approaches were compared in the paper. The first one consisted in learning the rule base and the second one in combining learning the rule base and tuning the membership functions in one process. Five TSK-type fuzzy models comprising 3 or 4 input variables referring to the attributes of a property were evaluated. The evolutionary algorithms were based on Pittsburgh approach with the real coded chromosomes of constant length comprising whole rule base or both the rule base and all parameters of all membership functions. The experiments were conducted using training and testing sets prepared on the basis of actual 134 sales transactions made in one of Polish cities and located in a residential section.
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