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Using Contextual Information from Topic Hierarchies to Improve Context-Aware Recommender Systems

机译:使用主题层次结构的上下文信息来改进上下文感知的推荐系统

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Unlike the traditional recommender systems, that make recommendations only by using the relation between user and item, a context-aware recommender system makes recommendations by incorporating available contextual information into the recommendation process as explicit additional categories of data to improve the recommendation process. In this paper, we propose to use contextual information from topic hierarchies to improve the accuracy of context-aware recommender systems. Additionally, we also propose two context-aware recommender algorithms for item recommendation. These are extensions from algorithms proposed in literature for rating prediction. The empirical results demonstrate that by using topic hierarchies our technique can provide better recommendations.
机译:与传统的推荐系统不同,仅通过使用用户和项目之间的关系来提出建议,通过将可用的上下文信息合并到推荐过程中作为明确的附加类数据来提出建议,以改善推荐过程。在本文中,我们建议使用主题层次结构中的上下文信息来提高上下文知识推荐系统的准确性。此外,我们还提出了两个用于项目推荐的背景知识推荐算法。这些是从文献中提出的估算预测中提出的算法的延伸。经验结果表明,通过使用主题层次结构,我们的技术可以提供更好的建议。

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