A New Entropy Measurement for the Analysis of Uncertain Data in MCDA Problems Using Intuitionistic Fuzzy Sets and COPRAS Method

被引:17
作者
Thakur, Parul
Kizielewicz, Bartlomiej
Gandotra, Neeraj
Shekhovtsov, Andrii
Saini, Namita
Saeid, Arsham Borumand
Salabun, Wojciech
机构
[1] Yogananda School of AI, Computers and Data Science, Shoolini University, HP, Solan
[2] Research Team on Intelligent Decision Support Systems, Department of Artificial Intelligence and Applied Mathematics, Faculty of Computer Science and Information Technology, West Pomeranian University of Technology in Szczecin, ul. Żołnierska 49, Szczecin
[3] Department of Pure Mathematics, Faculty of Mathematics and Computer, Shahid Bahonar University of Kerman, Kerman
基金
英国科研创新办公室;
关键词
intuitionistic set; COPRAS method; MCDM; DECISION-MAKING; SELECTION; TOPSIS; CONSTRUCTION; PROMETHEE; EXTENSION; INDUSTRY; NUMBERS; DEMATEL; WEIGHT;
D O I
10.3390/axioms10040335
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
In this paper, we propose a new intuitionistic entropy measurement for multi-criteria decision-making (MCDM) problems. The entropy of an intuitionistic fuzzy set (IFS) measures uncertainty related to the data modelling as IFS. The entropy of fuzzy sets is widely used in decision support methods, where dealing with uncertain data grows in importance. The Complex Proportional Assessment (COPRAS) method identifies the preferences and ranking of decisional variants. It also allows for a more comprehensive analysis of complex decision-making problems, where many opposite criteria are observed. This approach allows us to minimize cost and maximize profit in the finally chosen decision (alternative). This paper presents a new entropy measurement for fuzzy intuitionistic sets and an application example using the IFS COPRAS method. The new entropy method was used in the decision-making process to calculate the objective weights. In addition, other entropy methods determining objective weights were also compared with the proposed approach. The presented results allow us to conclude that the new entropy measure can be applied to decision problems in uncertain data environments since the proposed entropy measure is stable and unambiguous.
引用
收藏
页数:15
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