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A problem-based selection of multi-attribute decision-making methods

机译:基于问题的多属性决策方法选择

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摘要

Different multi-attribute decision-making (MADM) methods often produce different outcomes for selecting or ranking a set of decision alternatives involving multiple attributes. This paper presents a new approach to the selection of compensatory MADM methods for a specific cardinal ranking problem via sensitivity analysis of attribute weights. In line with the context-dependent concept of informational importance, the approach examines the consistency degree between the relative degree of sensitivity of individual attributes using an MADM method and the relative degree of influence of the corresponding attributes indicated by Shannon's entropy concept. The approach favors the method that has the highest consistency degree as it best reflects the decision information embedded in the problem data set. An empirical study of a scholarship student selection problem is used to illustrate how the approach can validate the ranking outcome produced by different MADM methods. The empirical study shows that different problem data sets may result in a different method being selected. This approach is particularly applicable to large-scale cardinal ranking problems where the ranking outcome of different methods differs significantly.
机译:不同的多属性决策(MADM)方法通常会产生不同的结果,以选择或排序一组涉及多个属性的决策选择。本文提出了一种通过属性权重敏感性分析来选择针对特定基数排名问题的补偿性MADM方法的新方法。与信息重要性的上下文相关概念一致,该方法使用MADM方法检查各个属性的相对敏感度与Shannon熵概念指示的相应属性的相对影响度之间的一致性。该方法偏向于具有最高一致性程度的方法,因为它可以最好地反映嵌入在问题数据集中的决策信息。对奖学金生选拔问题的实证研究用于说明该方法如何验证由不同MADM方法产生的排名结果。实证研究表明,不同的问题数据集可能导致选择不同的方法。此方法特别适用于大型基数排名问题,其中不同方法的排名结果显着不同。

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