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Trust based consensus model for social network in an incomplete linguistic information context
Affiliation:1. School of Management, Hefei University of Technology, Hefei, Anhui, China;2. Centre for Computational Intelligence, Faculty of Technology, De Montfort University, Leicester, UK;3. School of Economics and Management, Shanghai Maritime University, Shanghai 201306, China
Abstract:A theoretical framework to consensus building within a networked social group is put forward. This article investigates a trust based estimation and aggregation methods as part of a visual consensus model for multiple criteria group decision making with incomplete linguistic information. A novel trust propagation method is proposed to derive trust relationship from an incomplete connected trust network and the trust score induced order weighted averaging operator is presented to aggregate the orthopairs of trust/distrust values obtained from different trust paths. Then, the concept of relative trust score is defined, whose use is twofold: (1) to estimate the unknown preference values and (2) as a reliable source to determine experts’ weights. A visual feedback process is developed to provide experts with graphical representations of their consensus status within the group as well as to identify the alternatives and preference values that should be reconsidered for changing in the subsequent consensus round. The feedback process also includes a recommendation mechanism to provide advice to those experts that are identified as contributing less to consensus on how to change their identified preference values. It is proved that the implementation of the visual feedback mechanism guarantees the convergence of the consensus reaching process.
Keywords:Social network  Multiple criteria group decision making  Trust propagation  Trust aggregation  Visual feedback  Incomplete linguistic information
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