Distance-Based Knowledge Measure of Hesitant Fuzzy Linguistic Term Set With Its Application in Multi-Criteria Decision Making

被引:2
作者
Sharma D.K. [1 ]
Singh S. [2 ]
Ganie A.H. [2 ]
机构
[1] University of Maryland Eastern Shore, United States
[2] Shri Mata Vaishno Devi University, India
关键词
Distance Measure; Entropy Measure; Hesitant Fuzzy Linguistic Term Set; Knowledge Measure; Multi-Criteria Decision-Making;
D O I
10.4018/IJFSA.292460
中图分类号
学科分类号
摘要
Motivated by the structural aspect of the probabilistic entropy, the concept of fuzzy entropy enabled the researchers to investigate the uncertainty due to vague information. Fuzzy entropy measures the ambiguity/vagueness entailed in a fuzzy set. Hesitant fuzzy entropy and hesitant fuzzy linguistic term set-based entropy presents a more comprehensive evaluation of vague information. In the vague situations of multiple-criteria decision-making, entropy measure is utilized to compute the objective weights of attributes. The weights obtained due to entropy measures are not reasonable in all the situations. To model such a situation, a knowledge measure is very significant, which is a structural dual to entropy. A fuzzy knowledge measure determines the level of precision in a fuzzy set. This article introduces the concept of a knowledge measure for hesitant fuzzy linguistic term sets (HFLTS) and shows how it may be derived from HFLTS distance measures. The authors also investigate its application in determining the weights of criteria in multi-criteria decision-making (MCDM). © 2022, IGI Global
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