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Robust Speech Dereverberation Using Multichannel Blind Deconvolution With Spectral Subtraction

机译:使用带谱减法的多通道盲解卷积进行鲁棒语音去混响

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A robust dereverberation method is presented for speech enhancement in a situation requiring adaptation where a speaker shifts his/her head under reverberant conditions causing the impulse responses to change frequently. We combine correlation-based blind deconvolution with modified spectral subtraction to improve the quality of inverse-filtered speech degraded by the estimation error of inverse filters obtained in practice. Our method computes inverse filters by using the correlation matrix between input signals that can be observed without measuring room impulse responses. Inverse filtering reduces early reflection, which has most of the power of the reverberation, and then, spectral subtraction suppresses the tail of the inverse-filtered reverberation. The performance of our method in adaptation is demonstrated by experiments using measured room impulse responses. The subjective results indicated that this method provides superior speech quality to each of the individual methods: blind deconvolution and spectral subtraction.
机译:提出了一种鲁棒的去混响方法,用于在需要适应的情况下进行语音增强,在这种情况下,说话者在混响条件下摇头会导致脉冲响应频繁变化。我们将基于相关性的盲反卷积与改进的频谱减法相结合,以提高因实际获得的逆滤波器的估计误差而退化的逆滤波语音的质量。我们的方法通过使用输入信号之间的相关矩阵来计算逆滤波器,而无需测量室内脉冲响应即可观察到这些信号。逆滤波减少了具有混响大部分功能的早期反射,然后频谱减法抑制了逆滤波混响的尾部。通过使用测得的房间脉冲响应进行的实验证明了我们方法的适应性。主观结果表明,该方法为每种单独的方法(盲解卷积和频谱减法)提供了出色的语音质量。

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