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A multi-dimensional meter-adaptive method for automatic segmentation of music

机译:一种多维仪表自适应方法,用于自动分割音乐

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Music structure appears on a wide variety of temporal levels (notes, bars, phrases, etc). Its highest-level expression is therefore dependent on music's lower-level organization, especially beats and bars. We propose a method for automatic structure segmentation that uses musically meaningful information and is content-adaptive. It relies on a meter-adaptive signal representation that prevents from the use of empirical parameters. Moreover, our method is designed to combine multiple signal features to account for various musical dimensions. Finally, it also combines multiple structural principles that yield complementary results. The resulting algorithm proves to already outperform state-of-the-art methods, especially within small tolerance windows, and yet offers several encouraging improvement directions.
机译:音乐结构出现在各种时间级(笔记,条形,短语等)上。因此,它的最高级别表达是依赖于音乐的较低级别的组织,尤其是节拍和酒吧。我们提出了一种用于自动结构分割的方法,它使用音乐有意义的信息并是内容 - 自适应。它依赖于仪表 - 自适应信号表示,其防止使用经验参数。此外,我们的方法旨在将多个信号特征组合以考虑各种音乐尺寸。最后,它还结合了产生互补结果的多种结构原理。结果算法证明已经倾斜最先进的方法,特别是在小公差窗口内,但还提供了几种鼓励改进方向。

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