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Bi-parametric distance and similarity measures of picture fuzzy sets and their applications in medical diagnosis

机译:图片模糊集的双参数距离和相似度测量及其在医学诊断中的应用

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The concept of picture fuzzy sets (PFS) is a generalization of ordinary fuzzy sets and intuitionistic fuzzy sets, which is characterized by positive membership, neutral membership, and negative membership functions. Keeping in mind the importance of similarity measures and applications in data mining, medical diagnosis, decision making, and pattern recognition, several studies have been proposed in the literature. Some of those, however, cannot satisfy the axioms of similarity and provide counter-intuitive cases. In this paper, we propose new similarity measures forPFSsbased on two parameterstandp, wheretidentifies the level of uncertainty andpis theLpnorm. The properties of the bi-parametric similarity and distance measures are discussed. We provide some counterexamples for existing similarity measures in the literature and show how our proposed similarity measure is important and applicable to the pattern recognition problems. In the end, we provide an application of a proposed similarity measure for medical diagnosis.
机译:图片模糊集(PFS)的概念是普通模糊集和直觉模糊集的概念,其特点是积极成员资格,中立成员和负隶属函数。牢记相似度措施和应用在数据采矿中的重要性,医学诊断,决策以及模式识别,在文献中提出了几项研究。然而,其中一些不能满足相似性的原理,并提供反向直观的情况。在本文中,我们提出了在两个ParameterStandP上进行的新相似度措施,Wheretiftifies Nuttivey Andpis Thelpnorm。讨论了双参数相似性和距离测量的性质。我们为文献中的现有相似性措施提供了一些反例,并展示了我们所提出的相似度措施是如何重要的,适用于模式识别问题。最后,我们提供了建议的医学诊断相似度措施的应用。

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