Group Recommendation Using External Followee for Social TV

Xiaoyan Wang, Lifeng Sun, Zhi Wang, Da Meng
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引用次数: 21

Abstract

Group recommendation plays a significant role in Social TV systems, where online friends form into temporary groups to enjoy watching video together and interact with each other. Online microblogging systems introduce the "following" relationship that reflects the common interests between users in a group and external representative followees outside the group. Traditional group recommendation only considers internal group members' preferences and their relationship. In our study, we measure the external followees' impact on group interest and establish group preference model based on external experts' guidance for group recommendation. In addition, we take advantage of the current watching video to improve context-aware recommendations. Experimental results show that our solution works much better in situations of high group dynamic and inactive group members than traditional approaches.
利用外部关注者进行社交电视群体推荐
群体推荐在社交电视系统中扮演着重要的角色,在线朋友组成临时群体,一起观看视频并相互互动。在线微博系统引入了“关注”关系,它反映了群内用户与群外具有代表性的外部关注者之间的共同兴趣。传统的群体推荐只考虑内部群体成员的偏好和他们之间的关系。在我们的研究中,我们测量了外部追随者对群体兴趣的影响,并基于外部专家对群体推荐的指导建立了群体偏好模型。此外,我们利用当前观看视频来改进上下文感知推荐。实验结果表明,该方法在群体动态程度高、群体成员不活跃的情况下,比传统方法具有更好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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