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Efficient Frequency Domain Implementation of Noncausal Multichannel Blind Deconvolution for Convolutive Mixtures of Speech

机译:卷积语音的非因果多通道盲解卷积的高效频域实现

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摘要

Multichannel blind deconvolution (MCBD) algorithms are known to suffer from an extensive computational complexity problem, which makes them impractical for blind source separation (BSS) of speech and audio signals. This problem is even more serious with noncausal MCBD algorithms that must be used in many frequently occurring BSS setups. In this paper, we propose a novel frequency domain algorithm for the efficient implementation of noncausal multichannel blind deconvolution. A block-wise formulation is first developed for filtering and adaptation of filter coefficients. Based on this formulation, we present a modified overlap-save procedure for noncausal filtering in the frequency domain. We also derive update equations for training both causal and anti-causal filters in the frequency domain. Our evaluations indicate that the proposed frequency domain implementation reduces the computational requirements of the algorithm by a factor of more than 100 for typical filter lengths used in blind speech separation. The algorithm is employed successfully for the separation of speech mixtures in a reverberant room. Simulation results demonstrate the superior performance of the proposed algorithm over causal MCBD algorithms in many potential source and microphone positions. It is shown that in BSS problems, causal MCBD algorithms with center-spike initialization do not always converge to a delayed form of the desired noncausal solution, further revealing the need for an efficient noncausal MCBD algorithm.
机译:已知多通道盲解卷积(MCBD)算法存在着广泛的计算复杂性问题,这使得它们对于语音和音频信号的盲源分离(BSS)不切实际。对于必须在许多频繁出现的BSS设置中使用的非因果MCBD算法,此问题甚至更加严重。在本文中,我们提出了一种新颖的频域算法,可有效实现非因果的多通道盲解卷积。首先开发一种逐块公式,以过滤和调整滤波器系数。基于此公式,我们提出了一种改进的重叠保存过程,用于频域中的非因果滤波。我们还导出更新方程,以便在频域中训练因果滤波器和反因果滤波器。我们的评估表明,对于盲语音分离中使用的典型滤波器长度,所提出的频域实现将算法的计算要求降低了100倍以上。该算法已成功用于混响室中语音混合的分离。仿真结果表明,在许多潜在的源和麦克风位置,该算法优于因果的MCBD算法。结果表明,在BSS问题中,带有中心尖峰初始化的因果MCBD算法并不总是收敛于所需非因果解的延迟形式,这进一步表明了对有效非因果MCBD算法的需求。

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