利用语言q-rung正交模糊哈马赫聚合算子的增强型EDAS方法进行多标准群体决策分析

IF 5 2区 计算机科学 Q1 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE
Jawad Ali, Waqas Ali, Haifa Alqahtani, Muhammad I. Syam
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引用次数: 0

摘要

语言q-rung正对模糊(\(L^{q}ROF\))集为决策专家提供了更大的空间,是呈现不确定信息的一种有效方式。在本研究中,我们首先将哈马赫 t-norm 和 t-conorm 的概念与 \(L^{q}ROF\) 数的框架联系起来,开发并分析了创新的 \(L^{q}ROF\) 哈马赫运算。然后,根据提出的哈马赫规范运算,研究了一系列聚合算子,包括:\(L^{q}ROF\) 加权平均算子、\(L^{q}ROF\) 有序加权平均算子、\(L^{q}ROF\) 混合平均算子、\(L^{q}ROF\) 加权几何算子、\(L^{q}ROF\) 有序加权几何算子、\(L^{q}ROF\) 混合几何算子。还介绍了这些算符的一些有趣的方面。我们根据新提出的概念进一步发展了基于平均解距离的评估(EDAS)方法,以应对标准权重信息完全未知的\(L^{q}ROF\)决策问题,最终通过一个经验案例证明了框架方法的实用性,并进行了详细分析以展示该方法的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Enhanced EDAS methodology for multiple-criteria group decision analysis utilizing linguistic q-rung orthopair fuzzy hamacher aggregation operators

Enhanced EDAS methodology for multiple-criteria group decision analysis utilizing linguistic q-rung orthopair fuzzy hamacher aggregation operators

The linguistic q-rung orthopair fuzzy (\(L^{q}ROF\)) set serves as a useful way of presenting uncertain information by offering more space for decision experts. In the present research, we first link the concepts of Hamacher t-norm and t-conorm with the frame of \(L^{q}ROF\) numbers to develop and analyze the innovative \(L^{q}ROF\) Hamacher operations. Then, following the proposed Hamacher’s norm operations, a series of aggregation operators including \(L^{q}ROF\) weighted averaging, \(L^{q}ROF\) ordered weighted averaging, \(L^{q}ROF\) hybrid averaging, \(L^{q}ROF\) weighted geometric, \(L^{q}ROF\) ordered weighted geometric, \(L^{q}ROF\) hybrid geometric operators are investigated. Some interesting aspects of these AOs are also presented. We further develop evaluation based on distance from average solution (EDAS) approach in light of the newly outlined concepts to cope with \(L^{q}ROF\) decision-making problems where the weight information of criteria is fully unknown, ultimately, the practicality of the framed approach is demonstrated through an empirical case, and a detailed analysis is carried out to showcase the methodology dominance.

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来源期刊
Complex & Intelligent Systems
Complex & Intelligent Systems COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE-
CiteScore
9.60
自引率
10.30%
发文量
297
期刊介绍: Complex & Intelligent Systems aims to provide a forum for presenting and discussing novel approaches, tools and techniques meant for attaining a cross-fertilization between the broad fields of complex systems, computational simulation, and intelligent analytics and visualization. The transdisciplinary research that the journal focuses on will expand the boundaries of our understanding by investigating the principles and processes that underlie many of the most profound problems facing society today.
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