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A SIGNAL-SEPARATION-BASED ARRAY POSTFILTER FOR DISTANT SPEECH RECOGNITION

机译:基于信号分离的数组语音过滤器,用于远程语音识别

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In standard microphone array processing for distant speech recognition, the beamformed output is postfiltered to reduce residual noise. Postfiltering is usually performed through a Weiner filter whose parameters are estimated from both the beamformer output and the signals captured at the microphones themselves. Conventional post-filtering methods assume diffuse or incoherent noise at the various microphones in order to estimate these parameters. When the noise does not conform to this assumption they perform poorly. We propose an alternate postfiltering mechanism that attenuates noise by estimating and separating out the contributions of speech and noise explicitly. Experiments on a corpus of in-car two-channel recordings show that the proposed postfiltering algorithm outperforms conventional postfilters significantly under many noise conditions.
机译:在用于远距离语音识别的标准麦克风阵列处理中,对波束形成的输出进行后滤波以减少残留噪声。后置滤波通常通过Weiner滤波器执行,该滤波器的参数是从波束形成器的输出以及在麦克风本身捕获的信号中估计出来的。常规的后置滤波方法假定各种麦克风处的散射噪声或非相干噪声,以便估计这些参数。当噪声不符合此假设时,它们的性能会很差。我们提出了另一种后置滤波机制,该机制通过显式估计和分离语音和噪声的贡献来衰减噪声。一组车载两通道录音的实验表明,在许多噪声条件下,提出的后置滤波算法明显优于常规后置滤波器。

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