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Convolutive Speech Bases and Their Application to Supervised Speech Separation

机译:卷积语音库及其在监督语音分离中的应用

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In this paper, we present a convolutive basis decomposition method and its application on simultaneous speakers separation from monophonic recordings. The model we propose is a convolutive version of the nonnegative matrix factorization algorithm. Due to the nonnegativity constraint this type of coding is very well suited for intuitively and efficiently representing magnitude spectra. We present results that reveal the nature of these basis functions and we introduce their utility in separating monophonic mixtures of known speakers
机译:在本文中,我们提出了一种卷积基础分解方法及其在单声道录音同时分离说话者中的应用。我们提出的模型是非负矩阵分解算法的卷积版本。由于非负性约束,这种类型的编码非常适合直观,有效地表示幅度谱。我们提供的结果揭示了这些基本功能的性质,并介绍了它们在分离已知扬声器的单声道混合音中的效用

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