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首页> 外文期刊>IEEE Transactions on Signal Processing >EVAM: an eigenvector-based algorithm for multichannel blind deconvolution of input colored signals
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EVAM: an eigenvector-based algorithm for multichannel blind deconvolution of input colored signals

机译:EVAM:一种基于特征向量的输入彩色信号的多通道盲解卷积算法

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摘要

A new algorithm is proposed for the deconvolution of an unknown, possibly colored, Gaussian or nonstationary signal that is observed through two or more unknown channels described by rational system transfer functions. More specifically, not only the root (pole and zero) locations but also the orders of the channel transfer functions are unknown. It is assumed that the channel orders may be overestimated. The proposed algorithm estimates the orders and root locations of the channel transfer functions, therefore it can also be used in multichannel system identification problems. The input signal is allowed to be nonstationary and the channel transfer functions may be a nonminimum phase as well as noncausal, hence the proposed algorithm is particularly suitable for applications such as dereverberation of speech signals recorded through multiple microphones. Several experimental results indicate improvement compared to the existing methods in the literature.
机译:提出了一种用于对未知的,可能是彩色的,高斯或非平稳信号进行反卷积的新算法,该信号是通过两个或更多个由有理系统传递函数描述的未知通道观察到的。更具体地,不仅根(极点和零)位置,而且通道传递函数的阶数都是未知的。假设可能会高估通道顺序。该算法估计了信道传递函数的阶数和根位置,因此也可以用于多信道系统识别问题。输入信号被允许是非平稳的,并且通道传递函数可以是非最小相位,也可以是非因果关系,因此,所提出的算法特别适用于诸如通过多个麦克风记录的语音信号去混响的应用。与文献中的现有方法相比,一些实验结果表明有所改进。

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