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Study on Entropy and Similarity Measure for Fuzzy Set

机译:模糊集的熵与相似度量研究

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摘要

In this study, we investigated the relationship between similarity measures and entropy for fuzzy sets. First, we developed fuzzy entropy by using the distance measure for fuzzy sets. We pointed out that the distance between the fuzzy set and the corresponding crisp set equals fuzzy entropy. We also found that the sum of the similarity measure and the entropy between the fuzzy set and the corresponding crisp set constitutes the total information in the fuzzy set. Finally, we derived a similarity measure from entropy and showed by a simple example that the maximum similarity measure can be obtained using a minimum entropy formulation.
机译:在这项研究中,我们研究了模糊集的相似性度量与熵之间的关系。首先,我们通过使用模糊集的距离度量来开发模糊熵。我们指出,模糊集和相应的脆集之间的距离等于模糊熵。我们还发现,相似度度和模糊集与相应脆集之间的熵之和构成了模糊集中的总信息。最后,我们从熵中推导出一个相似性度量,并通过一个简单的例子表明,使用最小熵公式可以获得最大相似度度量。

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