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Emotion-based Music Recommendation By Affinity Discovery From Film Music

机译:电影音乐中Affinity Discovery的基于情感的音乐推荐

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With the growth of digital music, the development of music recommendation is helpful for users to pick desirable music pieces from a huge repository of music. The existing music recommendation approaches are based on a user's preference on music. However, sometimes, it might better meet users' requirement to recommend music pieces according to emotions. In this paper, we propose a novel framework for emotion-based music recommendation. The core of the recommendation framework is the construction of the music emotion model by affinity discovery from film music, which plays an important role in conveying emotions in film. We investigate the music feature extraction and propose the Music Affinity Graph and Music Affinity Graph-Plus algorithms for the construction of music emotion model. Experimental result shows the proposed emotion-based music recommendation achieves 85% accuracy in average.
机译:随着数字音乐的增长,音乐推荐的发展有助于用户从庞大的音乐库中挑选出理想的音乐作品。现有的音乐推荐方法是基于用户对音乐的偏好。但是,有时候,可能会更好地满足用户根据情感推荐音乐作品的要求。在本文中,我们提出了一种基于情感的音乐推荐的新颖框架。推荐框架的核心是通过电影音乐中的亲和力发现来构建音乐情感模型,该模型在传达电影情感方面起着重要作用。我们研究了音乐特征提取,并提出了“音乐亲和图”和“音乐亲和图-Plus”算法,以构建音乐情感模型。实验结果表明,所提出的基于情感的音乐推荐平均可以达到85%的准确性。

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