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Determining objective weights with intuitionistic fuzzy entropy measures: A comparative analysis

机译:用直觉模糊熵测度确定客观权重:比较分析

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摘要

In this paper, we propose a new objective weighting method that employs intuitionistic fuzzy (IF) entropy measures to solve multiple-attribute decision-making problems in the context of intuitionistic fuzzy sets. Instead of traditional fuzzy entropy, which uses the probabilistic discrimination of attributes to obtain attribute weights, we utilize the IF entropy to assess objective weights based on the credibility of the input data. We examine various measures for IF entropy with respect to hesitation degree, probability, non-probability, and geometry to calculate the attribute weights. A comparative analysis of different measures to generate attribute rankings is illustrated with both computational experiments as well as analyses of Pearson correlations, Spearman rank correlations, contradiction rates, inversion rates, and consistency rates. The experimental results indicate that ranking the outcomes of attributes not only depends on the type of IF entropy measures but is also affected by the number of attributes and the number of alternatives.
机译:在本文中,我们提出了一种新的客观加权方法,该方法采用直觉模糊(IF)熵测度来解决直觉模糊集背景下的多属性决策问题。代替使用属性的概率判别以获得属性权重的传统模糊熵,我们利用IF熵基于输入数据的可信度来评估客观权重。我们检查关于犹豫程度,概率,非概率和几何形状的IF熵的各种度量,以计算属性权重。通过计算实验以及对Pearson相关性,Spearman等级相关性,矛盾率,倒置率和一致性率的分析,说明了生成属性等级的不同度量的比较分析。实验结果表明,对属性的结果进行排名不仅取决于IF熵度量的类型,而且还受属性数量和替代数量的影响。

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