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Unsupervised Single-Channel Music Source Separation by Average Harmonic Structure Modeling

机译:平均谐波结构建模的无监督单通道音乐源分离

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Source separation of musical signals is an appealing but difficult problem, especially in the single-channel case. In this paper, an unsupervised single-channel music source separation algorithm based on average harmonic structure modeling is proposed. Under the assumption of playing in narrow pitch ranges, different harmonic instrumental sources in a piece of music often have different but stable harmonic structures; thus, sources can be characterized uniquely by harmonic structure models. Given the number of instrumental sources, the proposed algorithm learns these models directly from the mixed signal by clustering the harmonic structures extracted from different frames. The corresponding sources are then extracted from the mixed signal using the models. Experiments on several mixed signals, including synthesized instrumental sources, real instrumental sources, and singing voices, show that this algorithm outperforms the general nonnegative matrix factorization (NMF)-based source separation algorithm, and yields good subjective listening quality. As a side effect, this algorithm estimates the pitches of the harmonic instrumental sources. The number of concurrent sounds in each frame is also computed, which is a difficult task for general multipitch estimation (MPE) algorithms.
机译:音乐信号的信号源分离是一个吸引人但困难的问题,尤其是在单通道情况下。提出了一种基于平均谐波结构建模的无监督单通道音乐源分离算法。在窄音调演奏的假设下,音乐中不同的谐波乐器声源通常具有不同但稳定的谐波结构。因此,可以通过谐波结构模型来唯一地表征源。给定仪器源的数量,该算法通过对从不同帧中提取的谐波结构进行聚类,直接从混合信号中学习这些模型。然后使用模型从混合信号中提取相应的信号源。对包括合成器源,真实器源和歌声在内的几种混合信号进行的实验表明,该算法优于基于常规非负矩阵分解(NMF)的源分离算法,并产生良好的主观听音质量。作为副作用,此算法估计谐波乐器源的音高。还计算每个帧中并发声音的数量,这对于常规的多音高估计(MPE)算法而言是一项艰巨的任务。

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