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Providing entertainment by content-based filtering and semantic reasoning in intelligent recommender systems

机译:在智能推荐器系统中通过基于内容的过滤和语义推理来提供娱乐

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Recommender systems arose in view of the information overload present in numerous domains. The so-called content-based recommenders offer products similar to those the users liked in the past. However, due to the use of syntactic similarity metrics, these systems elaborate overspecialized recommendations including products very similar to those the user already knows. In this paper, we present a strategy that overcomes overspecialization by applying reasoning techniques borrowed from the semantic Web. Thanks to the reasoning, our strategy discovers a huge amount of knowledge about the user''s preferences, and compares them with available products in a more flexible way, beyond the conventional syntactic metrics. Our reasoning-based strategy has been implemented in a recommender system for interactive digital television, with which we checked that the proposed technique offers accurate enhanced suggestions that would go unnoticed in the traditional approaches.
机译:鉴于众多领域中存在的信息过载,出现了推荐系统。所谓的基于内容的推荐器提供的产品与用户过去喜欢的产品相似。但是,由于使用了语法相似性度量,因此这些系统精心设计了过于专业的建议,其中包括与用户已经知道的产品非常相似的产品。在本文中,我们提出了一种通过应用从语义Web借用的推理技术来克服过度专业化的策略。由于这种推理,我们的策略发现了有关用户偏好的大量知识,并以更灵活的方式将其与可用产品进行了比较,超越了常规句法指标。我们基于推理的策略已在交互式数字电视的推荐器系统中实现,通过该系统,我们检查了所提出的技术是否提供了准确的增强建议,而这些建议在传统方法中是不会被注意到的。

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