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Instrument identification and pitch estimation in multi-timbre polyphonic musical signals based on probabilistic mixture model decomposition

机译:基于概率混合模型分解的多音复音音乐信号的乐器识别和音高估计

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摘要

In this paper, we propose a method based on probabilistic mixture model decomposition that can simultaneously identify musical instrument types, estimate pitches and assign each pitch to its source instrument in monaural polyphonic audio containing multiple sources. In the proposed system, the probability density function (PDF) of the observed mixture note is treated as a weighted sum approximation of all possible note models. These note models, covering 14 instruments and all their possible pitches, describe their dynamic frequency envelopes in terms of probability. The weight coefficients, indicating the probabilities of the existence of pitches of a certain type of instrument, are estimated using the Expectation-Maximization (EM) algorithm. The weight coefficients are used to detect the types of source instruments and the pitches. The results of experiments involving 14 instruments within a designated pitch range F3-F6 (37 pitches) demonstrate a good discrimination capability, especially in instrument identification and instrument-pitch identification. For the entire system including the note onset detection tool, using quartet polyphonic recordings, the average F-measure values of instrument-pitch identification, instrument identification and pitch estimation were 55.4, 62.5 and 86 % respectively.
机译:在本文中,我们提出了一种基于概率混合模型分解的方法,该方法可以同时识别乐器类型,估计音高并将每个音高分配给包含多个音源的单声道复音音频。在提出的系统中,将观察到的混合音符的概率密度函数(PDF)视为所有可能音符模型的加权和近似值。这些音符模型涵盖了14种乐器及其所有可能的音高,并根据概率描述了它们的动态频率包络线。表示某种类型乐器音高存在概率的权重系数是使用最大期望(EM)算法估算的。权重系数用于检测源乐器的类型和音高。在指定的音高范围F3-F6(37个音高)内涉及14台乐器的实验结果证明了良好的辨别能力,尤其是在乐器识别和乐器音高识别方面。对于包括音符起音检测工具的整个系统,使用四重和弦录音,乐器音高识别,乐器识别和音高估计的平均F测量值分别为55.4、62.5和86%。

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