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Group Recommendation Using Topic Identification in Social Networks

机译:在社交网络中使用主题识别进行团体推荐

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Many recommendation systems recommend item (book, music, news, or restaurant) to a group of users with the help of social network services like micro-blogging, which are called as group recommendation systems. However, as the social network services always contain large amounts of information on different topics, and people have different influence on different topic, so the group recommendation systems should take the topic identification in large-scale social networks into account to get an appropriate recommendation. In this paper, we proposed a new group recommendation method, which combines topic identification and social networks for group recommendation. In detail, we firstly identify different topical sub-groups by topics in social networks. Secondly, different user factors are used to calculate the user influence (including individual and social) on the topical sub-groups, which can depict the topical sub-group characteristics in different points of view. Experimental results demonstrate that the proposed method can improve the prediction accuracy of the group recommendation.
机译:许多推荐系统借助诸如微博之类的社交网络服务向一组用户推荐商品(书籍,音乐,新闻或餐厅),这被称为组推荐系统。但是,由于社交网络服务总是包含大量有关不同主题的信息,并且人们对不同主题的影响也不同,因此,团体推荐系统应考虑大型社交网络中的主题标识以获得适当的推荐。在本文中,我们提出了一种新的小组推荐方法,该方法将主题识别和社交网络相结合来进行小组推荐。详细地,我们首先通过社交网络中的主题来识别不同的主题子组。其次,使用不同的用户因素来计算用户对主题子组的影响力(包括个人和社会),可以从不同的角度描述主题子组的特征。实验结果表明,该方法可以提高群体推荐的预测准确率。

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