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A novel similarity measure on intuitionistic fuzzy sets with its applications

机译:直觉模糊集的一种新的相似度量及其应用

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摘要

The intuitionistic fuzzy set, as a generation of Zadeh' fuzzy set, can express and process uncertainty much better, by introducing hesitation degree. Similarity measures between intuitionistic fuzzy sets (IFSs) are used to indicate the similarity degree between the information carried by IFSs. Although several similarity measures for intuitionistic fuzzy sets have been proposed in previous studies, some of those cannot satisfy the axioms of similarity, or provide counter-intuitive cases. In this paper, we first review several widely used similarity measures and then propose new similarity measures. As the consistency of two IFSs, the proposed similarity measure is defined by the direct operation on the membership function, non-membership function, hesitation function and the upper bound of membership function of two IFS, rather than based on the distance measure or the relationship of membership and non-membership functions. It proves that the proposed similarity measures satisfy the properties of the axiomatic definition for similarity measures. Comparison between the previous similarity measures and the proposed similarity measure indicates that the proposed similarity measure does not provide any counter-intuitive cases. Moreover, it is demonstrated that the proposed similarity measure is capable of discriminating the difference between patterns.
机译:直觉模糊集是Zadeh模糊集的一代,通过引入犹豫度,可以更好地表达和处理不确定性。直觉模糊集(IFS)之间的相似性度量用于指示IFS携带的信息之间的相似度。尽管在以前的研究中已经提出了几种针对直觉模糊集的相似性度量,但是其中一些不能满足相似性公理,或者提供了违反直觉的情况。在本文中,我们首先回顾几种广泛使用的相似性度量,然后提出新的相似性度量。作为两个IFS的一致性,拟议的相似性度量由对两个IFS的隶属函数,非隶属函数,犹豫函数和隶属函数上限的直接运算来定义,而不是基于距离度量或关系成员资格和非成员资格功能。证明所提出的相似性度量满足相似性度量的公理定义的性质。先前相似性度量与拟议相似性度量之间的比较表明,拟议相似性度量未提供任何违反直觉的情况。此外,证明了所提出的相似性度量能够区分模式之间的差异。

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