减少和回收废物:基于中性模糊粗糙集的 Schweizer-Sklar 聚合算子及其在绿色供应链管理中的应用

Zeeshan Ali, Hajra Bibi
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引用次数: 0

摘要

绿色供应链管理(GSCM)是一种有价值的应用,用于减少供应链对环境的整体影响。减少废物和回收利用是可持续技术的重要组成部分,旨在减少对生态的影响,提高储备效率。在本手稿中,我们提出了基于中性模糊粗糙(NFR)值的施韦泽-斯克拉尔(SS)运行定律技术,即 SS t-norm(SSTN)和 SS t-conorm(SSTCN)。此外,我们还推导出了 NFR SS 加权平均算子(NFRSSWA)和 NFR SS 加权几何算子(NFRSSWG)。我们还推导出了上述技术的一些基本特性。此外,我们还介绍了基于多属性决策(MADM)问题中的启动算子在绿色供应链管理中的应用,即废物再教育和再循环。最后,我们举例说明了建议技术的排序值与现有技术的排序值之间的比较,以提高推导理论的价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Waste Reduction and Recycling: Schweizer-Sklar Aggregation Operators Based on Neutrosophic Fuzzy Rough Sets and Their Application in Green Supply Chain Management
Green supply chain management (GSCM) is a valuable application that is used to reduce the overall environmental impact of the supply chain. Waste reduction and recycling are crucial components of sustainable technique that aims to reduce ecological impact and encourage reserve effectiveness. In this manuscript, we initiate the technique of Schweizer-Sklar (SS) operational laws based on neutrosophic fuzzy rough (NFR) values for SS t-norm (SSTN) and SS t-conorm (SSTCN). Further, we derive the NFR SS weighted averaging (NFRSSWA) operator and the NFR SS weighted geometric (NFRSSWG) operator. Some basic properties for the above-initiated techniques are derived. Additionally, we describe the application in green supply chain management, called waste reeducation and recycling based on initiated operators in multi-attribute decision-making (MADM) problems. Finally, we illustrate an example for comparing the ranking values of the proposed techniques with the ranking values of the existing technique to enhance the worth of the derived theory.
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