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首页> 外文期刊>International journal of machine learning and cybernetics >Multi-criteria decision-making method based on dominance degree and BWM with probabilistic hesitant fuzzy information
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Multi-criteria decision-making method based on dominance degree and BWM with probabilistic hesitant fuzzy information

机译:基于优势度和BWM的概率犹豫模糊信息的多准则决策方法

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摘要

In this paper, multi-criteria decision-making (MCDM) methods with probabilistic hesitant fuzzy information are proposed based on the dominance degree of probabilistic hesitant fuzzy elements (PHFEs) and best worst method (BWM). First, we discuss the probabilistic distribution function of PHFE and the dominance degree matrix between two PHFEs. The dominance degree matrix is constructed based on the probabilistic distribution function of PHFE, which can be characterized as a fuzzy complementary judgment matrix. Second, BWM is extended to fuzzy preference relations based on the constructed dominance degree matrix. Subsequently, an algorithm is designed for selecting the best and worst weight vectors, and then two models are developed based on additive consistency and multiplicative consistency of fuzzy preference relations to derive the criteria weights. In addition, an algorithm is presented to improve the consistency of the dominance degree matrix when a desired consistency level is not achieved. Finally, the selection of best investment company is provided as an example to demonstrate the feasibility and effectiveness of the proposed methods.
机译:基于概率犹豫模糊元素(PHFE)的优势度和最佳最差方法(BWM),提出了一种具有概率犹豫模糊信息的多准则决策方法。首先,我们讨论了PHFE的概率分布函数和两个PHFE之间的优势度矩阵。基于PHFE的概率分布函数构造优势度矩阵,可以将其表征为模糊互补判断矩阵。其次,基于构造的优势度矩阵,将BWM扩展到模糊偏好关系。随后,设计了选择最佳和最差权向量的算法,然后基于模糊偏好关系的加性和乘性建立了两个模型,以得出标准权重。此外,提出了一种算法,可以在未达到所需的一致性级别时提高优势度矩阵的一致性。最后,以最佳投资公司的选择为例,说明了所提方法的可行性和有效性。

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