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A 2-Tuple Linguistic Dynamic OWAWA Aggregation Operator and its application to multi-Attribute decision-making Cover

A 2-Tuple Linguistic Dynamic OWAWA Aggregation Operator and its application to multi-Attribute decision-making

Open Access
|Dec 2025

Abstract

A linguistic dynamic decision-making problem reveals situations in which the decision data gathered in multiple periods is represented by means of linguistic values. To deal with linguistic variables in linguistic dynamic decision-making problems, the 2-tuple linguistic model stands out among computational models because of its accuracy and interpretability. The selection of a suitable time-dependent 2-tuple linguistic aggregation operator is relevant due to its properties that can highly modify the computing cost as well as the results themselves and their accuracy and interpretability. This paper proposes a new 2-tuple linguistic dynamic hybrid weighted aggregation operator which is suitable to model different attitudes in decision-making by simultaneously weighting the given arguments as well as their ordered positions. The novel 2-tuple Linguistic Dynamic Ordered Weighted Averaging-Weighted Average (2TDOWAWA) operator weights not only the importance of a particular time period, but also the importance of non-dynamic evaluations in such a time period. Eventually, a 2-tuple Linguistic Dynamic Multiple Attribute Decision-Making approach based on the 2TDOWAWA Aggregation Operator is described. Finally a practical example is provided to illustrate the developed approach and to demonstrate its practicality and effectiveness.

DOI: https://doi.org/10.14313/jamris-2025-032 | Journal eISSN: 2080-2145 | Journal ISSN: 1897-8649
Language: English
Page range: 18 - 25
Submitted on: Apr 14, 2024
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Accepted on: Sep 17, 2024
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Published on: Dec 24, 2025
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2025 Yeleny Zulueta-Véliz, Carlos Rafael Rodríguez Rodríguez, Aylin Estrada Velazco, published by Łukasiewicz Research Network – Industrial Research Institute for Automation and Measurements PIAP
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.