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Source–Filter-Based Single-Channel Speech Separation Using Pitch Information

机译:基于音源信息的基于源滤波器的单通道语音分离

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In this paper, we investigate the source–filter-based approach for single-channel speech separation. We incorporate source-driven aspects by multi-pitch estimation in the model-driven method. For multi-pitch estimation, the factorial HMM is utilized. For modeling the vocal tract filters either vector quantization (VQ) or non-negative matrix factorization are considered. For both methods, the final combination of the source and filter model results in an utterance dependent model that finally enables speaker independent source separation. The contributions of the paper are the multi-pitch tracker, the gain estimation for the VQ based method which accounts for different mixing levels, and a fast approximation for the likelihood computation. Additionally, a linear relationship between pitch tracking performance and speech separation performance is shown.
机译:在本文中,我们研究了基于源过滤器的单通道语音分离方法。我们在模型驱动的方法中通过多音高估计将源驱动的方面纳入其中。对于多音高估计,使用阶乘HMM。为了建模声道滤波器,可以考虑矢量量化(VQ)或非负矩阵分解。对于这两种方法,源模型和滤波器模型的最终组合都会导致依赖话语的模型,从而最终实现说话者独立的源分离。本文的贡献在于多音高跟踪器,基于VQ的方法(其考虑了不同的混合水平)的增益估计以及用于似然计算的快速近似。另外,示出了音调跟踪性能和语音分离性能之间的线性关系。

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