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A Chi-square Distance-based Similarity Measure of Single-valued Neutrosophic Set and Applications

机译:单值中性型集合和应用的基于基于基于基于距离的相似度量

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The aim of this paper is to propose a new similarity measure of singlevalued neutrosophic sets (SVNSs). The idea of the construction of the new similarity measure comes from Chi-square distance measure, which is an important measure in the applications of image analysis and statistical inference. Numerical examples are provided to show the superiority of the proposed similarity measure comparing with the existing similarity measures of SVNSs. A weighted similarity is also put forward based on the proposed similarity. Some examples are given to show the effectiveness and practicality of the proposed similarity in pattern recognition, medical diagnosis and multi-attribute decision making problems under single-valued neutrosophic environment.
机译:本文的目的是提出纯相管套装(SVNS)的新相似性度量。新相似度测量构建的思想来自Chi-Square距离测量,这是图像分析和统计推断的应用中的重要措施。提供数值示例以显示与SVNS的现有相似度测量相比的所提出的相似度测量的优越性。还基于所提出的相似性提出加权相似性。给出了一些例子来表明在单值中性环境下的模式识别,医学诊断和多属性决策中提出的相似性的有效性和实用性。

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