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Individual Interest and Trust Driving Collective Intelligence Awareness for Social Recommendation

机译:个人兴趣和信任促进社会建议集体情报意识

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Social recommendation incorporates the social information of the user, such as friend relationship and trust relationship into the traditional recommendation system. From this point of view, social recommendation expands the function of the traditional recommendation to some extent. However, the existing social recommendation methods mostly focus on the general social relation between users and neglects the refinement of group information based on individual interest and trust. To this end, this paper proposes a novel social recommendation model based on the collective intelligence awareness driven by individual interest and trust. Experiments on two real-world datasets demonstrate that the proposed social recommendation method based on group information and individual feature outperforms the three baseline methods on the two evaluation metrics MAE and RMSE.
机译:社会推荐将用户的社会信息纳入了与朋友关系和信任关系进入传统推荐系统。从这个角度来看,社会建议在一定程度上扩大了传统推荐的功能。然而,现有的社会推荐方法主要关注用户之间的一般社会关系,并忽视基于个人兴趣和信任的集团信息的改进。为此,本文提出了一种基于各个兴趣和信任引起的集体智能意识的新建议模型。两个现实世界数据集的实验表明,基于集团信息和个人功能的建议的社会推荐方法优于两个评估度量MAE和RMSE的三种基线方法。

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