首页> 外文会议>European Conference on Speech Communication and Technology - EUROSPEECH 2003(INTERSPEECH 2003) vol.1; 20030901-04; Geneva(CH) >Blind Separation and Deconvolution for Convolutive Mixture of Speech Using SIMO-Model-Based ICA and Multichannel Inverse Filtering
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Blind Separation and Deconvolution for Convolutive Mixture of Speech Using SIMO-Model-Based ICA and Multichannel Inverse Filtering

机译:基于SIMO模型的ICA和多通道逆滤波实现语音卷积混合的盲分离和反卷积

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摘要

We propose a new two-stage blind separation and deconvo-lution (BSD) algorithm for a convolutive mixture of speech, in which a new Single-Input Multiple-Output (SIMO)-model-based ICA (SIMO-ICA) and blind multichannel inverse filtering are combined. SIMO-ICA can separate the mixed signals, not into monaural source signals but into SIMO-model-based signals from independent sources as they are at the microphones. After SIMO-ICA, a simple blind deconvolution technique for the SIMO model can be applied even when each source signal is temporally correlated. The simulation results reveal that the proposed method can successfully achieve the separation and deconvolution for a convolutive mixture of speech.
机译:我们为语音的卷积混合提出了一种新的两阶段盲分离和去卷积(BSD)算法,其中基于新的基于单输入多输出(SIMO)模型的ICA(SIMO-ICA)和盲多通道逆滤波被组合。 SIMO-ICA可以将混合信号分离为单声道源信号,而不能分离为来自单源的基于SIMO模型的信号,就像它们在麦克风一样。在SIMO-ICA之后,即使每个源信号在时间上相关,也可以为SIMO模型应用简单的盲反卷积技术。仿真结果表明,该方法可以成功实现卷积语音混合的分离和反卷积。

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