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The Impact of Ambiguity and Redundancy on Tag Recommendation in Folksonomies

机译:模糊和冗余对民俗分类中标签推荐的影响

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Collaborative tagging applications have become a popular tool allowing Internet users to manage online resources with tags. Most collaborative tagging applications permit unsupervised tagging resulting in tag ambiguity in which a single tag has many different meanings and tag redundancy in which several tags have the same meaning. Common metrics for evaluating tag recommenders may overestimate the utility of ambiguous tags or ignore the appropriateness of redundant tags. Ambiguity and redundancy may even burden the user with additional effort by requiring them to clarify an annotation or forcing them to distinguish between highly related items. In this paper we demonstrate that ambiguity and redundancy impede the evaluation and performance of tag recommenders. Five tag recommendation strategies based on popularity, collaborative filtering and link analysis are explored. We use a cluster-based approach to define ambiguity and redundancy and provide extensive evaluation on three real world datasets.
机译:协作标记应用程序已成为一种流行的工具,允许Internet用户使用标记来管理在线资源。大多数协作式标签应用程序允许无监督的标签,从而导致标签歧义(其中单个标签具有许多不同的含义)和标签冗余(其中多个标签具有相同的含义)。评估标签推荐者的通用指标可能高估了歧义标签的效用,或者忽略了冗余标签的适用性。歧义和冗余甚至可能通过要求用户澄清注释或迫使他们在高度相关的项目之间进行区分而使用户负担更多的工作。在本文中,我们证明了模棱两可和冗余会阻碍标签推荐器的评估和性能。探索了基于受欢迎度,协作过滤和链接分析的五种标签推荐策略。我们使用基于集群的方法来定义歧义和冗余,并对三个现实世界的数据集进行广泛的评估。

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