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A real-time blind source separation scheme and its application to reverberant and noisy acoustic environments

机译:实时盲源分离方案及其在混响和嘈杂声环境中的应用

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摘要

In this paper, we present an efficient real-time implementation of a broadband algorithm for blind source separation (BSS) of convolutive mixtures. A recently introduced generic BSS framework based on a matrix formulation allows simultaneous exploitation of nonwhiteness and nonstationarity of the source signals using second-order statistics. We demonstrate here that this general scheme leads to highly efficient real-time algorithms based on block-online adaptation suitable for ordinary PC platforms. Moreover, we investigate the problem of incorporating noncausal delays which are necessary with certain geometric constellations. Furthermore, the robustness against diffuse background noise, e.g., in a car environment is examined and a stepsize control is proposed which further enhances the robustness in real-world environments and leads to an improvement in separation performance. The algorithms were investigated in a reverberant office room and in noisy car environments verifying that the proposed method ensures high separation performance in realistic scenarios. (c) 2005 Elsevier B.V. All rights reserved.
机译:在本文中,我们提出了一种用于卷积混合物的盲源分离(BSS)的宽带算法的高效实时实现。最近引入的基于矩阵公式的通用BSS框架允许使用二阶统计量同时利用源信号的非白度和非平稳性。在这里,我们证明了这种通用方案导致了基于适用于普通PC平台的基于块在线自适应的高效实时算法。此外,我们研究了合并某些几何星座所必需的非因果延迟的问题。此外,检查了例如在汽车环境中对扩散背景噪声的鲁棒性,并提出了分步控制,其进一步提高了现实环境中的鲁棒性并导致分离性能的提高。在混响的办公室房间和嘈杂的汽车环境中对算法进行了研究,验证了所提出的方法可确保在现实情况下实现较高的分离性能。 (c)2005 Elsevier B.V.保留所有权利。

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