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Personalization of tagging systems

机译:个性化标签系统

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Social media systems have encouraged end user participation in the Internet, for the purpose of storing and distributing Internet content, sharing opinions and maintaining relationships. Collaborative tagging allows users to annotate the resulting user-generated content, and enables effective retrieval of otherwise uncategorised data. However, compared to professional web content production, collaborative tagging systems face the challenge that end-users assign tags in an uncontrolled manner, resulting in unsystematic and inconsistent metadata.rnThis paper introduces a framework for the personalization of social media systems. We pinpoint three tasks that would benefit from personalization: collaborative tagging, collaborative browsing and collaborative search. We propose a ranking model for each task that integrates the individual user's tagging history in the recommendation of tags and content, to align its suggestions to the individual user preferences. We demonstrate on two real data sets that for all three tasks, the personalized ranking should take into account both the user's own preference and the opinion of others.
机译:社交媒体系统鼓励最终用户参与Internet,以存储和分发Internet内容,共享观点并维护关系。协作标记允许用户注释最终的用户生成的内容,并可以有效地检索未分类的数据。但是,与专业的Web内容制作相比,协作标记系统面临最终用户以不受控制的方式分配标记的挑战,从而导致元数据不系统和不一致。rn本文介绍了社交媒体系统的个性化框架。我们指出了可以从个性化中受益的三个任务:协作标记,协作浏览和协作搜索。我们为每个任务提出一个排序模型,该模型将个人用户的标签历史记录整合到标签和内容的推荐中,以使其建议与个人用户的偏好保持一致。我们在两个真实的数据集上表明,对于所有三个任务,个性化排名都应考虑用户自己的偏好和其他人的意见。

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