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A Novel Travel Group Recommendation Model Based on User Trust and Social Influence
Mobile Information Systems Pub Date : 2021-08-31 , DOI: 10.1155/2021/7080116
Zhiyun Xu 1 , Xiaoyao Zheng 2 , Haiyan Zhang 2 , Yonglong Luo 1, 2
Affiliation  

The interactions between group members often have a significant impact on the results of group recommendations. The traditional group recommendation algorithm does not consider the trust and social influence among users. It involves a low utilization rate of social relationship information, which leads to a low accuracy and satisfaction of group recommendations. Considering these issues, in this study, we propose a travel group recommendation model based on user trust and social influence. Based on the user trust relationship, this model defines the user direct and indirect trust and calculates the user global trust by combining the two trusts. Subsequently, the PageRank algorithm is used to calculate the social influence of users based on their interaction relationship history. Thereafter, a consensus model integrating the intra- and intergroup prediction scores is designed by integrating users’ global trust and social influence to realize group recommendations for tourist attractions. Comparison experiments with several well-known group recommendation models for datasets of different scenic spots in Beijing demonstrate that the proposed model provides a better recommendation performance.
更新日期:2021-08-31
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