A personalized music filtering system based on melody style classification

Fang-Fei Kuo, M. Shan
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引用次数: 45

Abstract

With the growth of digital music, the personalized music filtering system is helpful for users. Melody style is one of the music features to represent user's music preference. We present a personalized content-based music filtering system to support music recommendation based on user's preference of melody style. We propose the multitype melody style classification approach to recommend the music objects. The system learns the user preference by mining the melody patterns from the music access behavior of the user. A two-way melody preference classifier is therefore constructed for each user. Music recommendation is made through this melody preference classifier. Performance evaluation shows that the filtering effect of the proposed approach meets user's preference.
一种基于旋律风格分类的个性化音乐过滤系统
随着数字音乐的发展,个性化的音乐过滤系统为用户提供了帮助。旋律风格是体现用户音乐偏好的音乐特征之一。提出了一种个性化的基于内容的音乐过滤系统,支持基于用户对旋律风格偏好的音乐推荐。我们提出了多类型旋律风格分类方法来推荐音乐对象。该系统通过从用户的音乐访问行为中挖掘旋律模式来学习用户偏好。因此,为每个用户构建了一个双向旋律偏好分类器。通过这个旋律偏好分类器进行音乐推荐。性能评估表明,该方法的过滤效果符合用户偏好。
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