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Fuzzy rule generation by hyperellipsoidal clustering

机译:超椭球聚类的模糊规则生成

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This paper considers the generation of fuzzy rules each of which consists of a fuzzy proposition as the premise part and linear models as the consequence part. The fuzzy modeling involves some interdependent problems that are the detection of linear substructures in a given multi-dimensional data set, and the identification of the consequence parts and the membership functions of premise variables. Because it is difficult to solve these problems simultaneously, we treat these problems separately in this paper. The proposals are related to the detection of linear substructures in data by the hyperellipsoidal clustering, and the development of multi-dimensional member-ship functions that take into account the correlation between variables.
机译:本文考虑了模糊规则的生成,每个模糊规则都由模糊命题作为前提部分,而线性模型则作为结果部分。模糊建模涉及一些相互依存的问题,例如在给定的多维数据集中检测线性子结构,以及识别结果部分和前提变量的隶属函数。因为很难同时解决这些问题,所以在本文中我们将分别处理这些问题。这些建议与通过超椭球聚类检测数据中线性子结构以及考虑变量之间相关性的多维成员关系函数的开发有关。

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