基于犹豫模糊集的案例推理多属性群体决策方法研究

Jian Hu, Hong Li, Jin Sun
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引用次数: 0

摘要

本研究针对属性权重未知、属性值形式混杂的多属性群体决策问题,提出了一种基于犹豫模糊集的案例推理集成方法。首先,从传统的距离度量和信息论两个角度出发,利用各类属性的距离相似度和信息熵构建了一个多目标优化模型来确定属性权重。其次,考虑到案例数据的混合性和非线性特征,基于对称交互熵原理和 TOPSIS 方法,提出了一种基于对称交互熵的全局相似度量,并设计了一种适用于犹豫模糊环境的案例推理算法。最后,通过分析案例库中目标案例的算术案例,检索出与目标案例最相似的历史案例,确定决策方案,验证了决策方法的实用性和可行性。结果表明,在基于案例的推理研究中考虑犹豫模糊理论,有助于提高决策的准确性和可靠性,为多属性群体决策管理提供更有效的支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on Case Reasoning Multi-attribute Group Decision-making Method Based on Hesitant Fuzzy Set
In this study, a hesitant fuzzy set-based case-based reasoning integration method is proposed for the multi-attribute group decision-making problem with unknown attribute weights and mixed forms of attribute values. First, from two perspectives, traditional distance measure and information theory, a multi-objective optimization model is constructed using the distance similarity measure and information entropy of each type of attributes to determine the attribute weights. Secondly, considering the hybrid and nonlinear characteristics of case data, based on the principle of symmetric interaction entropy and TOPSIS method, a global similarity measure based on symmetric interaction entropy is proposed and a case inference algorithm suitable for hesitant fuzzy environment is designed. Finally, by analyzing the arithmetic cases of the target case in the case base, the most similar historical cases to the target case are retrieved to determine the decision-making scheme, and the practicality and feasibility of the decision-making method are verified. The results show that considering hesitant fuzzy theory for case-based reasoning research will help improve the accuracy and reliability of decision-making and provide more effective support for multi-attribute group decision management.
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