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Get Free AccessThis paper develops a two-stage decision approach with probabilistic hesitant fuzzy data. Research challenges in earlier models are: (i) the calculation of occurrence probability; (ii) imputation of missing elements; (iii) consideration of attitude and hesitation of experts during weight calculation; (iv) capturing of interdependencies among experts during aggregation; and (v) ranking of alternatives with resemblance to human cognition. Driven by these challenges, a new group decision-making model is proposed with integrate methods for data curation and decision-making. The usefulness and superiority of the model is realized via an illustrative example of a logistic service provider selection.
Raghunathan Krishankumar, Arunodaya Raj Mishra, Pratibha Rani, Fatih Ecer, Edmundas Kazimieras Zavadskas, K. S. Ravichandran, Amir Gandomi (2024). Two-Stage EDAS Decision Approach with Probabilistic Hesitant Fuzzy Information. Informatica, pp. 1-33, DOI: 10.15388/24-infor577.
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Type
Article
Year
2024
Authors
7
Datasets
0
Total Files
0
Language
English
Journal
Informatica
DOI
10.15388/24-infor577
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