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首页> 外文期刊>International journal of intelligent information and database systems >A unified music recommender system using listening habits and semantics of tags
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A unified music recommender system using listening habits and semantics of tags

机译:使用听音习惯和标签语义的统一音乐推荐系统

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摘要

In this paper, we propose a unified music recommender system using both listening habits and semantics of tags in a social music site. Most commercial music recommender systems recommend music items based on the number of plays, or explicit ratings of a song. However, these approaches have some difficulties in recommending new items with only a few ratings, or recommending items to new users with little information. To resolve the problem, UniTag ontology is developed, which defines the meaning and the weighted score of tags. User profiles are created by combining the score of tags and the number of plays, and a collaborative filtering algorithm is executed. For performance evaluation, precisions, recalls, and F-measures are measured using the listening habits-based recommendation, the tag score-based recommendation, and the unified recommendation, respectively. Our experiments show that the proposed approach outperforms the other two approaches in terms of all the evaluation metrics.
机译:在本文中,我们提出了一种使用社交音乐站点中的收听习惯和标签语义的统一音乐推荐系统。大多数商业音乐推荐器系统会根据播放次数或歌曲的明确等级来推荐音乐项目。但是,这些方法在推荐仅具有几个等级的新项目或向信息很少的新用户推荐项目方面存在一些困难。为了解决该问题,开发了UniTag本体,该本体定义了标签的含义和加权得分。通过组合标签得分和播放次数创建用户资料,并执行协作过滤算法。对于性能评估,分别使用基于收听习惯的推荐,基于标签得分的推荐和统一推荐来测量精度,召回率和F量度。我们的实验表明,就所有评估指标而言,所提出的方法优于其他两种方法。

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