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Blind Audio Source Separation based on Independent Component Analysis

机译:基于独立分量分析的盲音频源分离

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摘要

This paper describes a state-of-the-art method for the blind source separation (BSS) of convolutive mixtures of audio signals. A statistical and computational technique, called independent component analysis (ICA), is examined. By achieving nonlinear decorrelation, nonstationary decorrelation, or time-delayed decorrelation, we can find source signals only from observed mixed signals. Particular attention is paid to the physical interpretation of BSS from the acoustical signal processing point of view. Frequency-domain BSS is shown to be equivalent to two sets of frequency domain adaptive microphone arrays, i.e., adaptive beamformers (ABFs). Although BSS can reduce reverberant sounds to some extent in the same way as ABF, it mainly removes the sounds from the jammer direction. This is why BSS has difficulties with long reverberation in the real world. If sources are not "independent," the dependence results in bias noise when obtaining the correct separation filter coefficients. Therefore, the performance of BSS is limited by that of ABF. Although BSS is upper bounded by ABF, BSS has a strong advantage over ABF. BSS can be regarded as an intelligent version of ABF in the sense that it can adapt without any information on the array manifold or the target direction, and sources can be simultaneously active in BSS.
机译:本文介绍了一种用于音频信号卷积混合的盲源分离(BSS)的最新方法。检验了一种统计和计算技术,称为独立成分分析(ICA)。通过实现非线性解相关,非平稳解相关或时延解相关,我们只能从观察到的混合信号中找到源信号。从声学信号处理的角度特别注意BSS的物理解释。频域BSS被示为等效于两组频域自适应麦克风阵列,即,自适应波束形成器(ABF)。尽管BSS可以与ABF相同的方式在某种程度上减少混响声音,但它主要是从干扰方向上消除声音。这就是为什么BSS在现实世界中难以长时间混响的原因。如果源不是“独立的”,则在获得正确的分离滤波器系数时,该依赖关系会导致偏置噪声。因此,BSS的性能受到ABF的限制。尽管BSS受ABF的限制较大,但BSS具有比ABF强大的优势。从某种意义上说,BSS可以适应性强,而无需任何关于阵列流形或目标方向的信息,并且可以在BSS中同时激活源,因此可以将其视为ABF的智能版本。

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