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A probabilistic approach for phase estimation in single-channel speech enhancement using von mises phase priors

机译:一种使用冯·米塞斯先验先验的单通道语音增强中相位估计的概率方法

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In many artificial intelligence systems human voice is considered as the medium for information transmission. Human-machine communication by voice becomes difficult when speech is mixed with some background noise. As a remedy, a single-channel speech enhancement is indispensable for reducing background noise from noisy speech to make it suitable for automatic speech recognition and telephony speech. While the conventional techniques for single-channel speech enhancement incorporate noisy phase in both amplitude estimation and signal reconstruction stages, in this paper we propose a probabilistic method to estimate the clean speech phase from noisy observation. Our proposed method consists of phase unwrapping followed by threshold-based temporal smoothing using von Mises phase priors. The proposed phase enhancement method leads to improved speech quality and intelligibility predicted by instrumental measures without explicit incorporation of amplitude enhancement.
机译:在许多人工智能系统中,人的声音被认为是信息传输的媒介。当语音与一些背景噪音混合时,通过语音进行人机通信变得困难。作为一种补救措施,单通道语音增强对于减少嘈杂语音的背景噪声是必不可少的,以使其适合于自动语音识别和电话语音。虽然传统的单通道语音增强技术在幅度估计和信号重建阶段都包含了噪声相位,但在本文中,我们提出了一种从噪声观测中估计干净语音相位的概率方法。我们提出的方法包括相位解缠,然后使用von Mises相位先验进行基于阈值的时间平滑。所提出的相位增强方法可提高语音质量和通过仪器测量预测的清晰度,而无需明确地结合幅度增强。

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