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A Region-Growing Permutation Alignment Approach in Frequency-Domain Blind Source Separation of Speech Mixtures

机译:混合语音的频域盲源分离中的区域增长置换对准方法

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摘要

The convolutive blind source separation (BSS) problem can be solved efficiently in the frequency domain, where instantaneous BSS is performed separately in each frequency bin. However, the permutation ambiguity in each frequency bin should be resolved so that the separated frequency components from the same source are grouped together. To solve the permutation problem, this paper presents a new alignment method based on an inter-frequency dependence measure: the powers of separated signals. Bin-wise permutation alignment is applied first across all frequency bins, using the correlation of separated signal powers; then the full frequency band is partitioned into small regions based on the bin-wise permutation alignment result. Finally, region-wise permutation alignment is performed in a region-growing manner. The region-wise permutation correction scheme minimizes the spreading of the misalignment at isolated frequency bins to others, hence to improve permutation alignment. Experiment results in simulated and real environments verify the effectiveness of the proposed method. Analysis demonstrates that the proposed frequency-domain BSS method is computationally efficient.
机译:可以在频域中有效解决卷积盲源分离(BSS)问题,其中在每个频点中分别执行瞬时BSS。但是,应该解决每个频点中的排列歧义,以便将来自同一源的分离的频率分量组合在一起。为了解决排列问题,本文提出了一种基于频率间相关性度量的对齐方法:分离信号的功率。使用分离信号功率的相关性,首先在所有频率仓上应用按位排列对齐;然后根据二进制排列对齐结果将整个频段划分为小区域。最后,以区域增长的方式进行区域排列置换。区域性排列校正方案最大程度地减少了在孤立频点处的未对准向其他位置的扩散,从而提高了排列对准。在模拟和真实环境中的实验结果证明了该方法的有效性。分析表明,所提出的频域BSS方法在计算上是有效的。

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