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A neutrosophic enhanced best-worst method for considering decision-makers' confidence in the best and worst criteria

机译:一种中性学性增强最糟糕的方法,用于考虑决策者对最佳标准的信心

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The best-worst method (BWM) is a multiple criteria decision-making (MCDM) method for evaluating = a set of alternatives based on a set of decision criteria where two vectors of pairwise comparisons are used to calculate the importance weight of decision criteria. The BWM is an efficient and mathematically sound method used to solve a wide range of MCDM problems by reducing the number of pairwise comparisons and identifying the inconsistencies derived from the comparison process. In spite of its simplicity and efficiency, the BWM does not consider the decision-makers' (DMs') confidence in their pairwise comparisons. We propose a neutrosophic enhancement to the original BWM by introducing two new parameters as the DMs' confidence in the best-to-others preferences and the DMs' confidence in the others-to-worst preferences. We present two real-world cases to illustrate the applicability of the proposed neutrosophic enhanced BWM (NE-BWM) by considering confidence rating levels of the DMs.
机译:最糟糕的方法(BWM)是一种多标准决策(MCDM)方法,用于评估<=一组替代方案,基于一组决策标准,其中用于计算决策标准的重要性重量。 BWM是一种有效且数学上的声音方法,用于通过减少成对比较的数量并识别从比较过程派生的不一致性来解决广泛的MCDM问题。尽管其简单性和效率,但BWM不考虑决策者(DMS')对其成对比较的信心。我们通过将两个新参数作为DMS对最佳偏好的信心和DMS对其他偏好的信心提出了两个新的参数,为原始BWM提出了一种中性学性提升。我们提出了两个现实案例,以通过考虑DMS的置信度水平来说明所提出的中性学增强BWM(NE-BWM)的适用性。

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