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Incidence of specific semantic characteristics on the performance of recommender systems of audiovisual content

机译:特定语义特征对视听内容推荐系统性能的影响

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This paper presents a comparison of different simple methods of recommending audiovisual content. The recommendations are performed based on the interest the user had on specific semantic characteristics of previous seen content, such as the actors, directors, writers or genres, or the average IMDB rating of the content, or a combination of them. The tests are based on a subset of MovieLens 1M database and information about the content has been collected from IMDB. Finally, results are compared with the ones obtained by semantic filtering in a previous work.
机译:本文对推荐音像内容的不同简单方法进行了比较。根据用户对以前看过的内容(例如演员,导演,作家或体裁)的特定语义特征的兴趣,或内容的平均IMDB评分或它们的组合,来执行推荐。测试基于MovieLens 1M数据库的子集,并且有关内容的信息已从IMDB收集。最后,将结果与先前工作中通过语义过滤获得的结果进行比较。

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