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Parameter estimation for Choquet fuzzy integral based on Takagi-Sugeno fuzzy model

机译:基于Takagi-Sugeno模糊模型的Choquet模糊积分参数估计

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摘要

Currently, both Choquet fuzzy integral and Takagi-Sugeno fuzzy models are popular synthetic evaluation and fuzzy modeling tools. In this paper, we prove that Choquet fuzzy integral is a special version of Takagi-Suguno fuzzy model in the sense of structure, thus the learning algorithm of the latter is used to develop a parameter estimation procedure for the former. The parameter estimation procedure actually is performed in each ordinal subspace of input space, in which all input data have unique ordering of components. The proposed approach in this paper has been proven to possess better performance than the existing ones by not only theoretical analysis but also experiments.
机译:目前,Choquet模糊积分模型和Takagi-Sugeno模糊模型都是流行的综合评估和模糊建模工具。本文从结构的角度证明了Choquet模糊积分是Takagi-Suguno模糊模型的一种特殊形式,因此使用后者的学习算法为前者开发了一种参数估计程序。参数估计过程实际上是在输入空间的每个有序子空间中执行的,在该子空间中,所有输入数据都具有唯一的分量顺序。通过理论分析和实验证明,本文提出的方法具有比现有方法更好的性能。

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