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A Method of Underdetermined Blind Source Separation with an Unknown Number of Sources

机译:不确定数目的未知源的不确定盲源分离方法

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摘要

Aiming to source number estimation, the recovery of mixing matrix and source signal under underdetermined case, we propose a method of underdetermined blind source separation with an unknown number of sources. Firstly, we introduced an algorithm based on S transform and fuzzy c-means clustering technique to estimate number of sources and mixing mixtures. Then sources are represented as null space form and the source signals are recovered by using an algorithm based on Maximum Likelihood. The simulation results show that the proposed method can separate sources of any distribution, and it has superior evaluation performance to the conventional methods.
机译:针对不确定情况下的信源数量估计,混合矩阵和信源信号的恢复,提出了一种信源数量未知的欠确定盲源分离方法。首先,我们介绍了一种基于S变换和模糊c均值聚类技术的算法,用于估计来源和混合混合物的数量。然后将源表示为零空间形式,并使用基于最大似然的算法恢复源信号。仿真结果表明,该方法可以分离任意分布的源,具有优于常规方法的评价性能。

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