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A Consensus Model for Large-Scale Linguistic Group Decision Making With a Feedback Recommendation Based on Clustered Personalized Individual Semantics and Opposing Consensus Groups

机译:基于聚类的个性化个体语义和反对共识组的带有反馈建议的大规模语言群体决策共识模型

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摘要

In linguistic large-scale group decision making (LSGDM), it is often necessary to achieve a consensus. Particularly, when computing with words and linguistic decision, we must keep in mind that words mean different things to different people. Therefore, to represent the specific semantics of each individual, we need to consider the personalized individual semantics (PIS) model in linguistic LSGDM. In this paper, we propose a consensus model based on PIS for LSGDM. Specifically, a PIS process to obtain the individual semantics of linguistic terms with linguistic preference relations is introduced. A consensus process based on PIS, including the consensus measure and feedback recommendation phases, is proposed to improve the willingness of decision makers who follow the suggestions to revise their preferences in order to achieve a consensus in linguistic LSGDM problems. The consensus measure defines two opposing consensus groups with respective acceptable and unacceptable consensus. In the feedback recommendation phase, a PIS-based clustering method to get decision makers with similar individual semantics is proposed. Recommendation rules design a feedback for decision makers with unacceptable consensus, finding suitable moderators from the decision makers with acceptable consensus based on cluster proximity.
机译:在语言大规模团体决策(LSGDM)中,通常需要达成共识。特别是在使用单词和语言决策进行计算时,我们必须记住,单词对不同的人意味着不同的意思。因此,要表示每个人的特定语义,我们需要考虑语言LSGDM中的个性化个体语义(PIS)模型。在本文中,我们提出了一种基于PIS的LSGDM共识模型。具体地,介绍了一种PIS过程,该过程获得具有语言偏好关系的语言术语的各个语义。提出了一个基于PIS的共识过程,包括共识度量和反馈推荐阶段,以提高决策者的意愿,他们会根据建议修改自己的偏好以在语言LSGDM问题中达成共识。共识措施定义了两个相对的共识组,分别具有可接受的和不可接受的共识。在反馈推荐阶段,提出了一种基于PIS的聚类方法,以使决策者具有相似的个体语义。推荐规则为具有不可接受的共识的决策者设计反馈,并基于集群接近度从具有可接受的共识的决策者中寻找合适的主持人。

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