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Tag Based Collaborative Filtering for Recommender Systems

机译:推荐系统基于标签的协同过滤

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Collaborative tagging can help users organize, share and retrieve information in an easy and quick way. For the collaborative tagging information implies user's important personal preference information, it can be used to recommend personalized items to users. This paper proposes a novel tag-based collaborative filtering approach for recommending personalized items to users of online communities that are equipped with tagging facilities. Based on the distinctive three dimensional relationships among users, tags and items, a new similarity measure method is proposed to generate the neighborhood of users with similar tagging behavior instead of similar implicit ratings. The promising experiment result shows that by using the tagging information the proposed approach outperforms the standard user and item based collaborative filtering approaches.
机译:协作标记可以帮助用户以简便快捷的方式组织,共享和检索信息。由于协作标记信息暗含了用户的重要个人喜好信息,因此可以用来向用户推荐个性化商品。本文提出了一种新颖的基于标签的协作过滤方法,用于向配备标签功能的在线社区的用户推荐个性化商品。基于用户,标签和物品之间独特的三维关系,提出了一种新的相似度度量方法,以生成具有相似标签行为而不是相似隐含评价的用户邻域。有希望的实验结果表明,通过使用标记信息,所提出的方法优于基于标准用户和项目的协作过滤方法。

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