基于模糊参数化单值嗜中性软集方法的硬盘选择优化

Muhammad Ihsan, Muhammad Saeed, Atiqe Ur Rahman
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摘要

本研究采用模糊参数化单值嗜中性软集(FP-SVNSS)的概念,引入一种新的决策问题方法,特别是在硬盘选择的背景下。首先,重点是为集合中的每个参数分配不同程度的重要性,这使得评估过程更加细致和灵活。这是由几个相关概念的发展和基本操作(如补、子集、并集和交集)的定义所支持的。在追求清晰,这些操作和FP-SVNSS方法的整体框架的细微差别是通过许多例子说明。通过综合比较,肯定了FP-SVNSS方法相对于其他决策方法的优越性。所提出的方法的独特优势在于它能够处理不完美、模糊和不一致的数据。因此,它提供了比现有模型更高的准确性和实用性。在研究的后半部分,通过解决一个现实世界的决策问题,对该理论进行了检验。所选案例涉及硬盘的最佳选择,这是信息技术采购中的一个常见问题。FP-SVNSS方法在该问题上的成功应用,有力地证明了其在实际环境中的潜在价值。通过对这一创新决策方法的探索,本研究为更广阔的软计算和决策理论领域做出了贡献。这些发现表明FP-SVNSS方法在处理学术和工业背景下各种复杂和模糊问题方面的无数未来应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimizing hard disk selection via a fuzzy parameterized single-valued neutrosophic soft set approach
This study introduces a novel approach to decision-making problems, especially in the context of hard disk selection, using the concept of the fuzzy parameterized single-valued neutrosophic soft set (FP-SVNSS). Primarily, the focus is on assigning different levels of importance to each parameter within the set, which enables a more nuanced and flexible evaluation process. This is underpinned by the development of several related concepts and the definition of basic operations such as complement, subset, union, and intersection. In the quest for clarity, the nuances of these operations and the overall framework of the FP-SVNSS method are illustrated via numerous examples. The superiority of the FP-SVNSS method over other decision-making methods is affirmed through a comprehensive comparison. The unique strength of the proposed approach lies in its ability to handle imperfect, ambiguous, and inconsistent data. Consequently, it offers greater accuracy and practicality than existing models. In the latter part of the study, the theory is put to the test by tackling a real-world decision-making problem. The selected case involves the optimal selection of hard disks, a common issue in information technology procurement. The successful application of the FP-SVNSS method to this issue provides a compelling demonstration of its potential value in practical settings. Through the exploration of this innovative decision-making methodology, this research contributes to the broader field of soft computing and decision-making theory. The findings suggest a myriad of future applications of the FP-SVNSS method in dealing with various complex and fuzzy problems in both academic and industrial contexts.
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