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Musical data mining for electronic music distribution

机译:用于电子音乐分发的音乐数据挖掘

摘要

Music classification is a key ingredient for electronic music distribution. Because of the lack of standards in music classification - or the lack of enforcement of existing standards - there is a huge amount Of unclassified titles of music in the world. In this paper we propose a method of classification based on musical data mining technique based on co-occurrence and correlation analysis that can be used for classification. It gives a new approach of similarity between several titles of music or several artists. We study large corpora of textual information referring titles of music or artists whose names are decided by humans without particular constraints other than readability, and draw various hypotheses concerning the natural similarities that emerge from these corpora. Based on a clustering technique, we show that interesting groups can reveal specific music genres and allow classifying titles of music in a kind of objective manner.
机译:音乐分类是分发电子音乐的关键要素。由于音乐分类中缺乏标准-或缺乏对现有标准的强制执行-世界上有大量未分类的音乐标题。在本文中,我们提出了一种基于音乐数据挖掘技术的分类方法,该方法基于可共存和相关分析的音乐数据挖掘技术,可用于分类。它提供了一种新的相似方法,可用于多个音乐标题或多个艺术家之间。我们研究大量的文本信息语料库,这些语料库指的是音乐或艺术家的名字,其名称由人类决定,除了可读性外没有特别的限制,并针对这些语料库中出现的自然相似性提出了各种假设。基于聚类技术,我们表明有趣的群体可以揭示特定的音乐流派,并允许以一种客观的方式对音乐标题进行分类。

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