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Phase estimation for signal reconstruction in single-channel speech separation

机译:单通道语音分离中信号重建的相位估计

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Single-channel speech separation algorithms frequently ignore the issue of accurate phase estimation while reconstructing the enhanced signal. Instead, they directly employ the mixed-signal phase for signal reconstruction which leads to undesired traces of the interfering source in the target signal. In this paper, assuming a given knowledge of signal spectrum amplitude, we present a solution to estimate the phase information for signal reconstruction of the sources from a single-channel mixture observation. We first investigate the effectiveness of the proposed phase estimation method employing known magnitude spectra of sources as an ideal case. We further relax the ideal signal spectra assumption by perturbing the clean signal spectra via Gaussian noise. The results show that for both scenarios, ideal and noisy magnitude signal spectra, the proposed phase estimation approach offers improved signal reconstruction accuracy, segmental SNR and PESQ compared to benchmark methods, and those neglecting the phase information.
机译:单通道语音分离算法经常忽略重建增强信号的同时忽略精确相位估计问题。相反,它们直接采用混合信号阶段进行信号重建,这导致目标信号中的干扰源的不希望的迹线。在本文中,假设给定的信号频谱幅度的知识,我们提出了一种解决方案来估计来自单声道混合观察的源的信号重建的相位信息。我们首先探讨所提出的阶段估计方法的有效性,所述阶段估计方法采用已知的来源幅度谱作为理想情况。我们进一步通过高斯噪声扰乱清洁信号光谱来进一步放宽理想的信号光谱假设。结果表明,对于两种情况,理想和嘈杂的幅度信号谱,与基准方法相比,所提出的相位估计方法提供了改进的信号重建精度,节段SNR和PESQ,以及忽略相位信息的那些。

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