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Vector Similarity Measures of Q-Linguistic Neutrosophic Variable Sets and Their Multi-Attribute Decision Making Method

机译:Q语言中智变量集的向量相似性度量及其多属性决策方法

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摘要

Since language is used for thinking and expressing habits of humans in real life, the linguistic evaluation for an objective thing is expressed easily in linguistic terms/values. However, existing linguistic concepts cannot describe linguistic arguments regarding an evaluated object in two-dimensional universal sets (TDUSs). To describe linguistic neutrosophic arguments in decision making problems regarding TDUSs, this study proposes a Q-linguistic neutrosophic variable set (Q-LNVS) for the first time, which depicts its truth, indeterminacy, and falsity linguistic values independently corresponding to TDUSs, and vector similarity measures of Q-LNVSs. Thereafter, a linguistic neutrosophic multi-attribute decision-making (MADM) approach by using the presented similarity measures, including the cosine, Dice, and Jaccard measures, is developed under Q-linguistic neutrosophic setting. Lastly, the applicability and effectiveness of the presented MADM approach is presented by an illustrative example under Q-linguistic neutrosophic setting.
机译:由于语言被用于思考和表达人类在现实生活中的习惯,因此对客观事物的语言评价很容易用语言术语/值来表达。但是,现有的语言概念无法在二维通用集(TDUS)中描述有关被评估对象的语言论据。为了描述有关TDUS的决策问题中的语言中智论点,本研究首次提出了Q语言中智变量集(Q-LNVS),该变量集描述了其真相,不确定性和虚假性语言值,分别独立于TDUS和向量Q-LNVS的相似性度量。此后,在Q语言中智环境下,通过使用提出的相似性度量(包括余弦,Dice和Jaccard度量)开发了语言中智多属性决策(MADM)方法。最后,通过Q语言中智环境下的一个例子说明了提出的MADM方法的适用性和有效性。

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