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Geo-uninorm consistency control module for preference similarity network hierarchical clustering based consensus model

机译:偏好相似网络分层聚类的共识模型的地理统一一致性控制模块

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摘要

In order to avoid misleading decision solutions in group decision making (GDM) processes, in addition to consensus, which is obviously desirable to guarantee that the group of experts accept the final decision solution, consistency of information should also be sought after. For experts’ preferences represented by reciprocal fuzzy preference relations, consistency is linked to the transitivity property. In this study, we put forward a new consensus approach to solve GDM with reciprocal preference relations that implements rationality criteria of consistency based on the transitivity property with the following twofold aim prior to finding the final decision solution: (A) to develop aconsistency control moduleto provide personalized consistency feedback to inconsistent experts in the GDM problem to guarantee the consistency of preferences; and (B) to design aconsistent preference network clustering based consensus measurebased on an undirected weighted consistent preference similarity network structure with undirected complete links, which using the concept of structural equivalence will allow one to (i) cluster the experts; and (ii) measure their consensus status. Based on the uninorm characterization of consistency of reciprocal preferences relations and the geometric average, we propose the implementation of the geo-uninorm operator to derive a consistent based preference relation from a given reciprocal preference relation. This is subsequently used to measure the consistency level of a given preference relation as the cosine similarity between the respective relations’ essential vectors of preference intensity. The proposed geo-uninorm consistency measure will allow the building of a consistency control module based on a personalized feedback mechanism to be implemented when the consistency level is insufficient. This consistency control module has two advantages: (1) it guarantees consistency by advising inconsistent expert(s) to modify their preferences with minimum changes; and (2) it providesfairrecommendations individually, depending on the experts’ personal level of inconsistency. Once consistency of preferences is guaranteed, a structural equivalence preference similarity network is constructed. For the purpose of representing structurally equivalent experts and measuring consensus within the group of experts, we develop an agglomerative hierarchical clustering based consensus algorithm, which can be used as a visualization tool in monitoring current state of experts’ group agreement and in controlling the decision making process. The proposed model is validated with a comparative analysis with an existing literature study, from which conclusions are drawn and explained.
机译:为了避免在团体决策(GDM)流程中产生误导性的决策解决方案,除了达成共识外,这显然是保证专家组接受最终决策解决方案的理想方法,还应寻求信息的一致性。对于以互惠的模糊偏好关系表示的专家偏好,一致性与可传递性属性相关联。在这项研究中,我们提出了一种新的共识方法,以解决具有互惠偏好关系的GDM,该方法基于传递性属性实现一致性的合理性标准,并在寻求最终决策解决方案之前具有以下两个目的:(A)开发一致性控制模块向GDM问题中不一致的专家提供个性化的一致性反馈,以确保首选项的一致性; (B)基于具有无向完整链接的无向加权一致偏好相似性网络结构,设计基于一致偏好网络聚类的共识度量,使用结构对等的概念将允许(i)将专家聚类; (ii)衡量他们的共识状态。基于对等偏好关系和几何平均值一致性的统一描述,我们提出了地理范数算子的实现,可以从给定的对等偏好关系中得出基于一致性的偏好关系。随后,这用于度量给定偏好关系的一致性级别,作为各个关系的偏好强度基本向量之间的余弦相似度。所提议的地理统一一致性度量将允许在一致性级别不足时基于个性化反馈机制构建一致性控制模块。该一致性控制模块具有两个优点:(1)通过建议不一致的专家以最小的更改来修改其偏好,从而确保一致性。 (2)根据专家的个人前后矛盾程度,分别提供合理的建议。一旦保证了偏好的一致性,就构建了一个结构等效的偏好相似网络。为了代表结构上等效的专家并衡量专家组内的共识,我们开发了一种基于聚集层次聚类的共识算法,该算法可作为可视化工具来监视专家组协议的当前状态并控制决策处理。通过与现有文献研究的比较分析对提出的模型进行了验证,从中得出并解释了结论。

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