A semantic similarity measure for recommender systems

I-SEMANTICS(2011)

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摘要
In the past few years, recommender systems and semantic web technologies have become main subjects of interest in the research community. In this paper, we present a domain independent semantic similarity measure that can be used in the recommendation process. This semantic similarity is based on the relations between the individuals of an ontology. The assessment can be done offline which allows time to be saved and then, get real-time recommendations. The measure has been experimented on two different domains: movies and research papers. Moreover, the generated recommendations by the semantic similarity have been evaluated by a set of volunteers and the results have been promising.
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关键词
recommendation process,real-time recommendation,research community,semantic similarity,recommender system,semantic similarity measure,research paper,main subject,domain independent semantic similarity,different domain,semantic web technology,recommender systems,ontology,real time
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