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Blind signal separation by matching pursuit based grouping

机译:通过匹配基于追踪的分组进行盲信号分离

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This paper describes a novel matching pursuit based grouping approach for separating a speech signal from a mixture with non-Gaussian interference. At first, the mixture signal is decomposed into atoms by matching pursuit with a Gabor dictionary. Then a psychoacoustic based grouping algorithm is developed to cluster the atoms into groups to identify the atoms of a speech signal. These atoms are then used to reconstruct the desired speech signal. Simulations were performed on speech corrupted by factory noise and music. Preliminary results show that the proposed approach can remove almost all non-speech signal while the recovered speech signal possesses acceptable intelligibility.
机译:本文介绍了一种新颖的基于匹配追踪的分组方法,该方法可将语音信号从具有非高斯干扰的混合信号中分离出来。首先,通过用Gabor字典匹配追踪将混合信号分解为原子。然后,开发了一种基于心理声学的分组算法,以将原子聚类为组,以识别语音信号的原子。这些原子然后用于重建所需的语音信号。对由于工厂噪音和音乐而损坏的语音进行了模拟。初步结果表明,所提出的方法可以去除几乎所有非语音信号,而恢复的语音信号具有可接受的清晰度。

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