Confidence Levels Measurement of Mobile Phone Selection Using a Multiattribute Decision-Making Approach with Unknown Attribute Weight Information Based on T-Spherical Fuzzy Aggregation Operators

IF 1.3 4区 数学 Q3 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Muhammad Rizwan Khan, Kifayat Ullah, Qaisar Khan, Izatmand Haleemzai
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引用次数: 0

Abstract

Advancement in mobile phone (MP) technology has revolutionized the lifestyle. In recent years, we observed that MP technology had been involved in almost all aspects of life, such as communication purposes, e-commerce, mobile baking, and social media connectivity. So, it becomes a hot research topic to select the best MP that fulfills the desired feathers requirement. In this paper, the expert’s familiarity with the examined objects is factored into the initial judgments under the T-spherical fuzzy sets (T-SFSs) environment. The T-SFS is the extension of the picture fuzzy (PF) set (PFS), which gives wider scope for finding the most precise options than existing fuzzy frameworks. The multiattribute decision-making (MADM) is a common and valuable method for aggregating information. For MADM, various aggregation operators (AOs) have been created over the years. The article introduces the newly proposed approach T-spherical fuzzy (T-SF) confidence level weighted averaging and T-SF confidence level weighted geometric . Also, some desired properties of AOs are discussed, and the T-SF entropy measure is introduced for selecting the weight criteria. A MADM framework is introduced, on the behalf of proposed operators. The proposed MADM framework is applied to solve the real-life example of consumers’ preferences to show effectiveness and practicality. Lastly, the developed framework is set side by side with other prevailing approaches to demonstrate the superiority and significance of other existing AOs.
基于 T 型非球面模糊聚合算子的多属性决策方法与未知属性权重信息的手机选择置信度测量
移动电话(MP)技术的进步彻底改变了人们的生活方式。近年来,我们发现 MP 技术几乎涉及生活的方方面面,如通信、电子商务、手机烘焙和社交媒体连接等。因此,如何选择能满足所需羽毛要求的最佳 MP 就成了一个热门研究课题。本文在 T-球形模糊集(T-SFS)环境下,将专家对被检对象的熟悉程度作为初始判断的因素。T-SFS 是图片模糊(PF)集(PFS)的扩展,与现有的模糊框架相比,它能为找到最精确的选项提供更广阔的空间。多属性决策(MADM)是一种常用且有价值的信息聚合方法。针对 MADM,多年来出现了各种聚合算子(AOs)。文章介绍了新提出的 T 球形模糊(T-SF)置信度加权平均法和 T 球形模糊置信度加权几何法。此外,文章还讨论了 AOs 的一些理想特性,并引入了用于选择权重标准的 T-SF 熵度量。还介绍了代表拟议算子的 MADM 框架。提出的 MADM 框架被应用于解决消费者偏好的实际案例,以显示其有效性和实用性。最后,将所开发的框架与其他主流方法并列,以证明其他现有 AO 的优越性和重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Discrete Dynamics in Nature and Society
Discrete Dynamics in Nature and Society 综合性期刊-数学跨学科应用
CiteScore
3.00
自引率
0.00%
发文量
598
审稿时长
3 months
期刊介绍: The main objective of Discrete Dynamics in Nature and Society is to foster links between basic and applied research relating to discrete dynamics of complex systems encountered in the natural and social sciences. The journal intends to stimulate publications directed to the analyses of computer generated solutions and chaotic in particular, correctness of numerical procedures, chaos synchronization and control, discrete optimization methods among other related topics. The journal provides a channel of communication between scientists and practitioners working in the field of complex systems analysis and will stimulate the development and use of discrete dynamical approach.
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