利用 Schweizer-Sklar 优先级聚合运算符为 T 型非球面模糊信息做出再生水多属性决策

Mehwish Sarfraz
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引用次数: 0

摘要

为了处理有问题和模糊的数据,施韦泽和斯克拉尔在 1960 年增加了一个参数 p,这有助于发展 SS t-norm (SSTN) 和 t-conorm (SSTCN) 理论。利用参数 p=-1.1 可以很容易地推导出 Hamacher 和 Lukasiewicz t-norms 的信息。此外,优先聚合算子(PAOs)可选择将哪些数据收集到一个单子集中。这项工作的主要贡献是基于 SS t-norm 和 t-conorm,为 T 球形模糊(T-SF)信息构建了新的聚合算子。此外,还确定了算子的基本特征。此外,我们还开发了 MADM(多属性决策)模型,并从算子 T-SFSSPA、T-SFSSWPA、T-SFSSPG 和 T-SFSSWPG 中推导出一些有用的属性。最后,通过一个实际案例研究,我们得出结论:与目前用于提高诊断算子价值和能力的开创性方法相比,所提出的 MADM 算法在以易于理解的方式解决水循环问题方面的表现明显优于现有算子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-Attribute Decision-Making for T-Spherical Fuzzy Information Utilizing Schweizer-Sklar Prioritized Aggregation Operators for Recycled Water
To handle problematic and ambiguous data, Schweizer and Sklar added a parameter p in 1960, which helped to develop the theory of SS t-norm (SSTN) and t-conorm (SSTCN). The parameter p=-1.1 can be used to easily derive the information of the Hamacher and Lukasiewicz t-norms. Furthermore, prioritized aggregation operators (PAOs) choose which data will be collected into a singleton set. The main contribution of this work is the construction of new aggregation operators for T-spherical fuzzy (T-SF) information based on SS t-norm and t-conorm. Moreover, the fundamental characteristics of the operators are identified. Further, we developed MADM (Multi-Attribute Decision-Making) models and deduced several useful properties from the operators T-SFSSPA, T-SFSSWPA, T-SFSSPG, and T-SFSSWPG. Finally, using an actual case study, we were able to draw the conclusion that, in comparison to the ground-breaking and current methods to enhance the value and capability of the diagnosed operators, the proposed MADM algorithm performs noticeably better than the operators in place for resolving the water recycling problem in a way that is easy to understand.
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