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TOAST: A Topic-Oriented Tag-Based Recommender System

机译:TOAST:一个基于主题的基于标签的推荐系统

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Social Annotation Systems have emerged as a popular application with the advance of Web 2.0 technologies. Tags generated by users using arbitrary words to express their own opinions and perceptions on various resources provide a new intermediate dimension between users and resources, which deemed to convey the user preference information. Using clustering for topic extraction and incorporating it with the capture of user preference and resource affiliation is becoming an effective practice in tag-based recommender systems. In this paper, we aim to address these challenges via a topic graph approach. We first propose a Topic Oriented Graph (TOG), which models the user preference and resource affiliation on various topics. Based on the graph, we devise a Topic-Oriented Tag-based Recommendation System (TOAST) by using the preference propagation on the graph. We conduct experiments on two real datasets to demonstrate that our approach outperforms other state-of-the-art algorithms.
机译:随着Web 2.0技术的发展,社交注释系统已成为一种流行的应用程序。用户使用任意单词表达自己对各种资源的看法和看法而生成的标签在用户和资源之间提供了一个新的中间维度,该维度被认为可以传达用户偏好信息。使用聚类进行主题提取并将其与用户喜好和资源隶属关系的捕获结合起来,已成为基于标签的推荐系统中的有效实践。在本文中,我们旨在通过主题图方法来应对这些挑战。我们首先提出一个面向主题的图(TOG),该图可以对各种主题的用户偏好和资源隶属关系进行建模。基于该图,我们通过使用图上的偏好传播来设计基于主题的基于标签的推荐系统(TOAST)。我们在两个真实的数据集上进行了实验,以证明我们的方法优于其他最新算法。

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