A New Hybrid Distance-Based Similarity Measure for Refined Neutrosophic sets and its Application in Medical Diagnosis

IF 0.3 Q4 MATHEMATICS
Vakkas Uluçay, A. Kılıç, M. Sahin, Harun Deniz
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引用次数: 18

Abstract

 In recent times, refined neutrosophic sets introduced by Deli [6] has been one of the most powerful and flexible approaches for dealing with complex and uncertain situations of real world. In particular, the decision making methods between refined neutrosophic sets are important since it has applications in various areas such as image segmentation, decision making, medical diagnosis, pattern recognition and many more. The aim of this paper is to introduce a new distance-based similarity measure for refined neutrosophic sets. The properties of the proposed new distance-based similarity measure have been studied and the findings are applied in medical diagnosis of some diseases with a common set of symptoms.
一种新的基于混合距离的精细Neutrosophic集相似测度及其在医学诊断中的应用
近年来,Deli[6]引入的精细中性粒细胞集已成为处理现实世界中复杂和不确定情况的最强大和最灵活的方法之一。特别是,精细中性粒细胞集之间的决策方法很重要,因为它在图像分割、决策、医学诊断、模式识别等各个领域都有应用。本文的目的是引入一种新的基于距离的精细中性集相似性度量。研究了所提出的新的基于距离的相似性度量的性质,并将其应用于一些具有共同症状的疾病的医学诊断。
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
Matematika
Matematika MATHEMATICS-
自引率
25.00%
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0
审稿时长
24 weeks
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