SVD-based optimal filtering with applications to noise reduction in speech signals

S. Doclo, M. Moonen
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引用次数: 18

Abstract

A class of SVD-based signal enhancement procedures is described, which amount to a specific optimal filtering technique for the case where the so-called 'desired response' signal cannot be observed. It is shown that this optimal filter can be written as a function of the generalized singular vectors and singular values of a so-called speech and noise data matrix. A number of simple symmetry properties of the optimal filter are derived, which are valid for the white noise case as well as for the coloured noise case. Also the averaging step of the standard one-microphone SVD-based noise reduction techniques is investigated, leading to serious doubts about the necessity of this averaging step. When applying this technique for multi-microphone noise reduction, it is shown that for simple scenarios, where we consider localised sources and no multipath propagation, this technique exhibits some kind of beamforming behaviour. We further compare the performance of this technique with standard beamforming techniques, showing that for all reverberation times the performance of the SVD-based optimal filter is better than beamforming.
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基于奇异值分解的最优滤波及其在语音信号降噪中的应用
描述了一类基于奇异值分解的信号增强程序,这相当于无法观察到所谓的“期望响应”信号的情况下的特定最佳滤波技术。结果表明,这种最优滤波器可以写成广义奇异向量和奇异值的函数,即所谓的语音和噪声数据矩阵。导出了最优滤波器的一些简单的对称性质,这些性质对白噪声和有色噪声情况都有效。此外,对标准的单麦克风基于奇异值分解的降噪技术的平均步骤进行了研究,导致对该平均步骤的必要性的严重质疑。当将该技术应用于多麦克风降噪时,表明对于简单的场景,我们考虑局域源和无多径传播,该技术表现出某种波束形成行为。我们进一步将该技术与标准波束形成技术的性能进行了比较,结果表明,对于所有混响时间,基于奇异值分解的最优滤波器的性能都优于波束形成。
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