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REpeating Pattern Extraction Technique (REPET): A Simple Method for Music/Voice Separation

机译:重复模式提取技术(REPET):音乐/声音分离的简单方法

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摘要

Repetition is a core principle in music. Many musical pieces are characterized by an underlying repeating structure over which varying elements are superimposed. This is especially true for pop songs where a singer often overlays varying vocals on a repeating accompaniment. On this basis, we present the REpeating Pattern Extraction Technique (REPET), a novel and simple approach for separating the repeating “background” from the non-repeating “foreground” in a mixture. The basic idea is to identify the periodically repeating segments in the audio, compare them to a repeating segment model derived from them, and extract the repeating patterns via time-frequency masking. Experiments on data sets of 1,000 song clips and 14 full-track real-world songs showed that this method can be successfully applied for music/voice separation, competing with two recent state-of-the-art approaches. Further experiments showed that REPET can also be used as a preprocessor to pitch detection algorithms to improve melody extraction.
机译:重复是音乐的核心原则。许多音乐作品的特点是潜在的重复结构,在这些结构上叠加了各种元素。对于歌手经常在重复的伴奏下叠加各种声音的流行歌曲,尤其如此。在此基础上,我们提出了重复模式提取技术(REPET),这是一种将混合物中重复的“背景”与不重复的“前景”分离的新颖而简单的方法。基本思想是识别音频中的周期性重复片段,将它们与从中得出的重复片段模型进行比较,并通过时频掩蔽提取重复模式。对1,000首歌曲剪辑和14首完整曲目的真实世界歌曲的数据集进行的实验表明,该方法可以成功应用于音乐/语音分离,与两种最新的最新方法相竞争。进一步的实验表明,REPET还可以用作音高检测算法的预处理器,以改善旋律提取。

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