Two kinds of orthopair soft sets as novel approaches to granular computing based on parametrization

M. Ali, M. Shabir, F. Feng
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Abstract

This paper aims at introducing two types of orthopair soft sets, which might serve as novel approaches to granular computing based on parametrization. These generalized soft sets emerge naturally when linguistic parameters are employed to convey uncertainty attached to elements of certain sets. Concepts of uncertainty measures attached to the parameters and the whole orthopair soft sets are presented as well. The proposed uncertainty measures are useful for classifying elements of the set of parameters. Different types of granularity measures associated with parameters are presented and are extended to orthopair soft sets. Collective wisdom is helpful in decision making based on consensus. A numerical example is given to demonstrate how orthopair soft sets can be employed in this regard.
两种正交软集是基于参数化的颗粒计算新方法
本文介绍了两种可作为基于参数化的颗粒计算新方法的矫形软集。当使用语言参数来表达特定集合元素的不确定性时,这些广义软集自然出现。给出了参数不确定性测度的概念和整个矫形软集的概念。所提出的不确定度度量对于参数集元素的分类是有用的。提出了与参数相关联的不同类型的粒度度量,并将其推广到正形软集。集体智慧有助于基于共识的决策。给出了一个数值算例,说明了矫形软集在这方面的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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