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A Reputation-Enhanced Hybrid Approach for Supplier Selection with Intuitionistic Fuzzy Evaluation Information

机译:具有直觉模糊评估信息的供应商选择的声誉增强混合方法

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摘要

Selecting optimal suppliers in fuzzy environments has become a major challenge for enterprises. Reputation plays an important role in the process of supplier selection because of its fuzziness, dynamicity, and transitivity. In this study, we first present a novel intuitionistic fuzzy sets (IFS)-hyperlink-induced topic search (HITS) method that combines the intuitionistic fuzzy set with the hyperlink-induced topic search (HITS) algorithm to extend the ability of processing fuzzy information in order to obtain post-propagated reputation values of suppliers. Then, we employ the dynamic intuitionistic fuzzy weighted average operator to gain dynamic reputation values and other evaluation attribute values. After that, intuitionistic fuzzy entropy weight method is adopted to acquire more accurate weights for each evaluation attribute. Finally, we employ the Vlsekriterijumska Optimizacija I Kompromisno Resenje method to acquire comprehensive evaluation values of candidate supplier to select optimal suppliers. Two groups of experiments for supplier selection are given to explain feasibility and practicality of the proposed method.
机译:在模糊环境中选择最佳供应商已成为企业的主要挑战。信誉因其模糊性,动态性和可传递性而在供应商选择过程中起着重要作用。在这项研究中,我们首先提出一种新颖的直觉模糊集(IFS)-超链接诱导主题搜索(HITS)方法,该方法将直觉模糊集与超链接诱导主题搜索(HITS)算法结合起来,以扩展处理模糊信息的能力为了获得供应商传播后的声誉价值。然后,我们采用动态直觉模糊加权平均算子获得动态信誉值和其他评估属性值。之后,采用直觉模糊熵权法对每个评价属性获取更准确的权重。最后,我们采用Vlsekriterijumska Optimizacija I Kompromisno Resenje方法获取候选供应商的综合评估值,以选择最佳供应商。给出了两组选择供应商的实验,以说明该方法的可行性和实用性。

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