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Prewhitening for Rank-Deficient Noise in Subspace Methods for Noise Reduction

机译:降噪子空间方法中秩缺陷噪声的预白化

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摘要

A fundamental issue in connection with subspace methods for noise reduction is that the covariance matrix for the noise is required to have full rank, in order for the prewhitening step to be defined. However, there are important cases where this requirement is not fulfilled, e.g., when the noise has narrow-band characteristics, or in the case of tonal noise. We extend the concept of prewhitening to include the case when the noise covariance matrix is rank deficient, using a weighted pseudoinverse and the quotient SVD, and we show how to formulate a general rank-reduction algorithm that works also for rank deficient noise. We also demonstrate how to formulate this algorithm by means of a quotient ULV decomposition, which allows for faster computation and updating. Finally we apply our algorithm to a problem involving a speech signal contaminated by narrow-band noise.
机译:与用于降噪的子空间方法有关的一个基本问题是,为了定义预白化步骤,要求噪声的协方差矩阵必须具有完整的秩。但是,在重要情况下,例如,当噪声具有窄带特性时,或在音调噪声的情况下,不能满足该要求。我们使用加权伪逆和商SVD扩展了预白化的概念,以包括噪声协方差矩阵秩不足的情况,并且展示了如何制定一种通用的降秩算法,该算法也适用于秩不足的噪声。我们还演示了如何通过商ULV分解来公式化该算法,从而可以更快地进行计算和更新。最终,我们将算法应用于涉及窄带噪声污染的语音信号的问题。

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