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Dominant speech enhancement based on SNR-adaptive soft mask filtering

机译:基于SNR自适应软掩码滤波的优势语音增强

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In this paper, we present a SNR-adaptive soft mask filter for multi-channel noisy speech enhancement. Incorporating frame-by-frame spectral magnitude ratios into the time-frequency (T-F) mask filter framework, the adaptive filter can be designed robust to changing environments. Experimental results show that the proposed adaptive mask filter can effectively suppress non-stationary noise components even in a closely-spaced microphone pair. Moreover, the soft mask compressed with sigmoidal nonlinearity can reduce musical noises so that improved PESQ values are obtained.
机译:在本文中,我们提出了一种适用于多通道噪声语音增强的SNR自适应软掩模滤波器。通过将逐帧频谱幅度比纳入时频(T-F)掩码滤波器框架,可以将自适应滤波器设计为对变化的环境具有鲁棒性。实验结果表明,所提出的自适应掩模滤波器即使在间隔很近的麦克风对中也能有效地抑制非平稳噪声分量。而且,以S形非线性压缩的软掩膜可以减少音乐噪声,从而获得改善的PESQ值。

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