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Managing non-cooperative behaviors in consensus-based multiple attribute group decision making: An approach based on social network analysis

机译:基于共识的多属性组决策中的非合作行为管理:一种基于社交网络分析的方法

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摘要

In consensus-based multiple attribute group decision making (MAGDM) problems, it is frequent that some experts exhibit non-cooperative behaviors owing to the different areas to which they may belong and the different (sometimes conflicting) interests they might present. This may adversely affect the overall efficiency of the consensus reaching process, especially when some uncooperative behaviors by experts arise. To this end, this paper develops a novel consensus framework based on social network analysis (SNA) to deal with non-cooperative behaviors. In the proposed SNA-based consensus framework, a trust propagation and aggregation mechanism to yield experts’ weights from the social trust network is presented, and the obtained weights of experts are then integrated into the consensus-based MAGDM framework. Meanwhile, a non-cooperative behavior analysis module is designed to analyze the behaviors of experts. Based on the results of such analysis during the consensus process, each expert can express and modify the trust values pertaining other experts in the social trust network. As a result, both the social trust network and the weights of experts derived from it are dynamically updated in parallel. A simulation and comparison study is presented to demonstrate the efficiency of the SNA-based consensus framework for coping with non-cooperative behaviors.
机译:在基于共识的多属性组决策(MAGDM)问题中,由于专家可能属于不同的领域以及他们可能表现出不同的利益(有时是相互矛盾的),因此某些专家经常表现出不合作的行为。这可能会对达成共识的过程的整体效率产生不利影响,尤其是在出现专家的某些不合作行为时。为此,本文开发了一种基于社交网络分析(SNA)的新颖的共识框架来处理非合作行为。在提出的基于SNA的共识框架中,提出了一种信任传播和聚集机制,可以从社会信任网络中获得专家的权重,然后将获得的专家权重集成到基于共识的MAGDM框架中。同时,设计了一个非合作行为分析模块来分析专家的行为。根据共识过程中此类分析的结果,每个专家都可以表达和修改与社会信任网络中其他专家有关的信任值。结果,社会信任网络和由其衍生的专家的权重都被并行地动态更新。进行了仿真和比较研究,以证明基于SNA的共识框架应对非合作行为的效率。

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