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A Method for Filter Shaping in Convolutive Blind Source Separation

机译:卷积卷积盲源分离中的滤波整形方法

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摘要

An often used approach for separating convolutive mixtures is the transformation to the time-frequency domain where an instantaneous ICA algorithm can be applied for each frequency separately. This approach leads to the so called permutation and scaling ambiguity. While different methods for the permutation problem have been widely studied, the solution for the scaling problem is usually based on the minimal distortion principle. We propose an alternative approach that shapes the unmixing filters to have an exponential decay which mimics the form of room impulse responses. These new niters still add some reverberation to the restored signals, but the audible distortions are clearly reduced. Additionally the length of the unmixing filters is reduced, so these filters will suffer less from circular-convolution effects that are inherent to unmixing approaches based on bin-wise ICA followed by permutation and scaling correction. The results for the new algorithm will be shown on a real-world example.
机译:分离卷积混合物的一种常用方法是转换到时频域,其中可以将瞬时ICA算法分别应用于每个频率。这种方法导致所谓的置换和缩放歧义。虽然已经广泛研究了排列问题的不同方法,但是缩放问题的解决方案通常基于最小失真原理。我们提出了一种可替代的方法,该方法可对解混滤波器进行整形,使其具有模仿房间脉冲响应形式的指数衰减。这些新的发生器仍然为恢复的信号增加了一些混响,但是可听见的失真明显减少了。另外,解混滤波器的长度减小了,因此这些滤波器将较少遭受基于基于二进制ICA的解混方法固有的循环卷积效应,然后进行置换和缩放校正。新算法的结果将在实际示例中显示。

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