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MADM based on distance and correlation coefficient measures with decision-maker preferences under a hesitant fuzzy environment

机译:在犹豫的模糊环境下基于距离和相关系数测度并具有决策者偏好的MADM

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摘要

In multiple attribute decision making (MADM), hesitant fuzzy sets (HFSs) are powerful tools for expressing uncertain and vague information. Recently, MADM problems with hesitant fuzzy information have attracted increasing attention, and many MADM methods have been developed. However, only a limited amount of research has considered MADM problems that simultaneously determine attribute weights and decision-maker (DM) preferences. Therefore, we propose an MADM approach for such problems under a hesitant fuzzy environment. First, we derive extended distance and correlation coefficient measures for HFSs that are more reasonable and effective when the DM preferences are considered. We then apply the extended distance measure to subjective and objective preference information to determine attribute weights, and use these to calculate the weighted correlation coefficient between the ideal choice and each alternative. Further, we determine the ranking order of all alternatives, from which it is easy to identify the best choice. Finally, we present an example that demonstrates the practicality of the proposed approach.
机译:在多属性决策(MADM)中,犹豫模糊集(HFS)是表达不确定和模糊信息的强大工具。近来,具有犹豫的模糊信息的MADM问题引起了越来越多的关注,并且已经开发了许多MADM方法。但是,只有有限的研究考虑了同时决定属性权重和决策者(DM)偏好的MADM问题。因此,我们提出了在犹豫的模糊环境下针对此类问题的MADM方法。首先,当考虑DM偏好时,我们推导了HFS的扩展距离和相关系数测度,这些测度更加合理和有效。然后,我们将扩展距离度量应用于主观和客观偏好信息,以确定属性权重,并使用这些距离来计算理想选择和每个替代项之间的加权相关系数。此外,我们确定所有备选方案的排名顺序,从中可以轻松确定最佳选择。最后,我们提供一个示例,说明所提出方法的实用性。

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