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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源分离

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This keynote talk describes a state-of-the-art method for the blind source separation (BSS) of convolutive mixtures of audio signals. Independent component analysis (ICA) is used as a major statistical tool for separating the mixtures. We provide examples to show how ICA criteria change as the number of audio sources increases. We then discuss a frequency-domain approach where simple instantaneous ICA is employed in each frequency bin. A directivity pattern analysis of the ICA solutions provides us with a physical interpretation of the ICA-based separation. It tells us the relationship between ICA-based BSS and adaptive beamforming. In order to obtain properly separated signals with the frequency-domain approach, the permutation and scaling ambiguity of the ICA solutions should be aligned appropriately. We describe two complementary methods for aligning the permutations, i.e., collecting separated frequency components originating from the same source. The first method exploits the signal envelope dependence of the same source across frequencies. The second method relies on the spatial diversity of the sources, and is closely related to source localization techniques. Finally, we describe methods for sparse source separation, which can be applied even to an underdetermined case.
机译:该主题演讲描述了用于音频信号的络滤波器混合物的盲源分离(BSS)的最先进的方法。独立分量分析(ICA)用作分离混合物的主要统计工具。我们提供了示例,以显示ICA标准如何随着音频源的数量而变化。然后,我们讨论一个频域方法,其中在每个频率箱中采用简单的瞬时ICA。 ICA解决方案的方向性模式分析为我们提供了对基于ICA的分离的物理解释。它告诉我们基于ICA的BSS和自适应波束成形之间的关系。为了通过频域方法获得适当分离的信号,ICA解决方案的置换突出和缩放歧义应适当地对齐。我们描述了两个用于对准排列的互补方法,即,收集来自相同源的分离的频率分量。第一种方法利用频率的相同源的信号包络依赖性。第二种方法依赖于来源的空间分集,并且与源定位技术密切相关。最后,我们描述了稀疏源分离的方法,即使是未确定的情况也可以应用。

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