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Published in: Artificial Intelligence Review 4/2021

03-11-2020

Relative-distance-based approaches for ranking intuitionistic fuzzy values

Authors: Bing Huang, Jiubing Liu, Chunxiang Guo, Huaxiong Li, Guofu Feng

Published in: Artificial Intelligence Review | Issue 4/2021

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Abstract

During the uncertain information processing on Atanassov’s intuitionistic fuzzy sets, the ranking for intuitionistic fuzzy values (IFVs) is an important and omnipresent issue. Even though many orders used to compare any two IFVs have been proposed, some shortcomings, such as inadmissibility, nonrobustness, and nondeterminacy, may exist when these orders are utilized. Inspired by the Euclidean approach for ranking IFVs, we present a novel order that can overcome the aforementioned shortcomings using the notion of relative geometric distance. With the help of graphic representation of an IFV, we analyze the existing popular approaches for ranking IFVs and point out their drawbacks. Taking into account these three distances between an IFV and the ideal negative point, ideal positive point and most uncertain point, respectively, we present a relative-distance-based mensuration for describing the favorable degree of the IFV. Accordingly, the boundaries used in the existing ranking approaches for IFVs are replaced by a novel curve. We prove that the proposed method satisfies the admissibility, robustness, and determinacy requirements. Finally, we extend the presented ranking method for IFVs by introducing human attitudes and compare the proposed approach with the existing ones, which indicates its availability and rationality. We then can obtain the conclusion that the relative distance is an effective and reasonable approach for ranking IFVs.

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Metadata
Title
Relative-distance-based approaches for ranking intuitionistic fuzzy values
Authors
Bing Huang
Jiubing Liu
Chunxiang Guo
Huaxiong Li
Guofu Feng
Publication date
03-11-2020
Publisher
Springer Netherlands
Published in
Artificial Intelligence Review / Issue 4/2021
Print ISSN: 0269-2821
Electronic ISSN: 1573-7462
DOI
https://doi.org/10.1007/s10462-020-09921-7

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