Title | ||
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Multiple-attribute decision making based on single-valued neutrosophic Schweizer-Sklar prioritized aggregation operator |
Abstract | ||
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Single-valued neutrosophic (SVN) sets can successfully describe the uncertainty problems, and Schweizer-Sklar (SS) t-norm (TN) and t-conorm (TCN) can build the information aggregation process more flexible by a parameter. To fully consider the advantages of SVNS and SS operations, in this article, we extend the SS TN and TCN to single-valued neutrosophic numbers (SVNN) and propose the SS operational laws for SVNNs. Then, we merge the prioritized aggregation (PRA) operator with SS operations, and develop the single-valued neutrosophic Schweizer-Sklar prioritized weighted averaging (SVNSSPRWA) operator, single-valued neutrosophic Schweizer-Sklar prioritized ordered weighted averaging (SVNSSPROWA) operator, single-valued neutrosophic Schweizer-Sklar prioritized weighted geometric (SVNSSPRWG) operator, and single-valued neutrosophic Schweizer-Sklar prioritized ordered weighted geometric (SVNSSPROWG) operator. Moreover, we study some useful characteristics of these proposed aggregation operators (AOs) and propose two decision making models to deal with multiple-attribute decision making (MADM) problems under SVN information based on the SVNSSPRWA and SVNSSPRWG operators. Lastly, an illustrative example about talent introduction is given to testify the effectiveness of the developed methods. |
Year | DOI | Venue |
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2019 | 10.1016/j.cogsys.2018.10.005 | Cognitive Systems Research |
Keywords | Field | DocType |
Single-valued neutrosophic sets,Schweizer-Sklar operations,Prioritized aggregation operator,Multiple-attribute decision making | Decision-making models,Operational laws,Psychology,Theoretical computer science,Operator (computer programming),Artificial intelligence,Information aggregation,Merge (version control),Machine learning | Journal |
Volume | ISSN | Citations |
57 | 1389-0417 | 0 |
PageRank | References | Authors |
0.34 | 29 | 3 |
Name | Order | Citations | PageRank |
---|---|---|---|
Peide Liu | 1 | 1571 | 102.34 |
Qaisar Khan | 2 | 12 | 2.53 |
Tahir Mahmood | 3 | 95 | 28.76 |