Recommendation Based On Contextual Opinions

USER MODELING, ADAPTATION, AND PERSONALIZATION, UMAP 2014(2014)

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摘要
Context has been recognized as an important factor in constructing personalized recommender systems. However, most context-aware recommendation techniques mainly aim at exploiting item-level contextual information for modeling users' preferences, while few works attempt to detect more fine-grained aspect-level contextual preferences. Therefore, in this article, we propose a contextual recommendation algorithm based on user-generated reviews, from where users' context-dependent preferences are inferred through different contextual weighting strategies. The context-dependent preferences are further combined with users' context-independent preferences for performing recommendation. The empirical results on two real-life datasets demonstrate that our method is capable of capturing users' contextual preferences and achieving better recommendation accuracy than the related works.
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关键词
Context-aware recommender systems,user-generated reviews,aspect-level context,opinion mining,context-dependent preferences
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