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Article type: Research Article
Authors: Zhang, Zhiming; *
Affiliations: College of Mathematics and Information Science, Hebei University, Baoding, Hebei, China
Correspondence: [*] Corresponding author. Zhiming Zhang, College of Mathematics and Information Science, Hebei University, Baoding, Hebei 071002, China. E-mail: [email protected].
Abstract: The purpose of this study is to develop a hesitant fuzzy linguistic TOPSIS (The technique for order preference by similarity to ideal solution) method with a possibility-based comparison approach for addressing multi-criteria decision-making (MCDM) problems within the environment of hesitant fuzzy linguistic term sets (HFLTSs). This paper firstly analyses the existing comparison methods for HFLTSs and develops a new possibility degree formula which can address the issues in the previous ones. Then, based on the possibilities of the HFLTS binary relations, this paper defines the possibility-based outranking index to determine hesitant fuzzy linguistic positive ideal and negative ideal solutions. Subsequently, this paper introduces the concept of possibility-based comparison indices to establish a possibility-based closeness coefficient of each alternative relative to the ideal solutions. Based on a possibility-based comparison approach with the ideal solutions, this paper develops a hesitant fuzzy linguistic TOPSIS method for handling MCDM problems in which both the evaluative ratings of alternatives and the importance weights of criteria are expressed by HFLTSs. Finally, a numerical example is furnished to verify the feasibility and practicality of the proposed method and a comparative analysis with the existing methods is provided to illustrate the effectiveness and advantages of the proposed method.
Keywords: Multi-criteria decision-making, hesitant fuzzy linguistic terms set, TOPSIS, possibility-based closeness coefficient, possibility-based comparison approach
DOI: 10.3233/JIFS-161971
Journal: Journal of Intelligent & Fuzzy Systems, vol. 33, no. 6, pp. 3309-3322, 2017
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