Multipolar Interval-Valued Fuzzy Set with Application of Similarity Measures and multi-person TOPSIS technique

M. Saeed, Asad Mehmood, Muhammad Arslan
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引用次数: 1

Abstract

A Similarity measure in the fuzzy structure plays a very considerable role in manipulating hurdles that apprehend vague data, but unable to deal with the ambiguous and variability of the problems having multipolar interval-valued data. In this research article, a certain distance between two multipolar interval-valued fuzzy sets (mIVF sets) has been defined. A new similarity measure (Sim.M) for mIVF based on distances has been introduced, also some of the basic operations on the structure has been defined such as union, intersection, and complement. MCDM is performed for mIVF information that measure the similarity measure based on distance measure for the best alternative. An application is given that the proposed Sim.M for mIVF set is capable of recognition the nature and structure of different entities which belongs to the same family. Furthermore, a multiperson TOPSIS technique is developed for the structure of mIVF with an algorithm for the selection of the best alternative
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应用相似测度和多人TOPSIS技术的多极区间值模糊集
模糊结构中的相似性度量在处理理解模糊数据的障碍时起着非常重要的作用,但无法处理具有多极区间值数据的问题的模糊性和可变性。在本文中,定义了两个多极区间值模糊集(mIVF)之间的一定距离。引入了一种新的基于距离的mIVF相似度度量(Sim.M),并定义了结构上的并、交、补等基本运算。对mIVF信息执行MCDM,基于距离度量度量最佳替代的相似性度量。给出了一个应用。mIVF集合M能够识别同属一族的不同实体的性质和结构。此外,针对mIVF结构,提出了一种多人TOPSIS算法,并给出了最佳方案的选择算法
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