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Improvement of the Initialization of ICA Time-Frequency Algorithms for Speech Separation

机译:语音分离ICA时频算法初始化的改进

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摘要

The blind separation of speech signals in reverberant environments is a well-known problem for which many algorithms have been developed. In this paper, we propose a novel initialization procedure for those ICA algorithms that work in the time-frequency domain and use the prewhitening of the observations. In comparison with classical initializations, this method allows to reduce drastically the number of permutations. The effectiveness of the proposed technique in realistic scenarios is illustrated by means of simulations.
机译:在混响环境中语音信号的盲分离是一个众所周知的问题,为此已经开发了许多算法。在本文中,我们为那些在时频域中工作并使用观测值进行预白化的ICA算法提出了一种新颖的初始化程序。与经典初始化相比,此方法可以大大减少排列的数量。通过仿真说明了所提出技术在现实场景中的有效性。

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