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A Mixing Matrix Estimation Algorithm for Underdetermined Blind Source Separation

机译:欠定盲源分离的混合矩阵估计算法

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摘要

This paper considers mixing matrix estimation for underdetermined blind source separation. First, we propose an effective detection algorithm to identify single source points where only one source occurs. The detection algorithm finds single source points by utilizing the time-frequency coefficients of mixed signals and the complex conjugates of the coefficients. Then, a method based on probability density is proposed in order to find more reliable single source points and cluster them. Finally, the mixing matrix is obtained through re-selecting and clustering single source points. The experimental results indicate that the algorithm can accurately estimate the mixing matrix when there are fewer sensors than sources.
机译:本文考虑将混合矩阵估计用于不确定的盲源分离。首先,我们提出一种有效的检测算法,以识别只有一个来源的单个来源点。该检测算法通过利用混合信号的时频系数和系数的复共轭来找到单个源点。然后,提出了一种基于概率密度的方法,以找到更可靠的单个源点并将它们聚类。最后,通过重新选择和聚类单个源点获得混合矩阵。实验结果表明,当传感器少于源时,该算法可以准确估计混合矩阵。

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