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Globally convergent blind source separation based on a multiuser kurtosis maximization criterion

机译:基于多用户峰度最大化准则的全局收敛盲源分离

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We consider the problem of recovering blindly (i.e., without the use of training sequences) a number of independent and identically distributed source (user) signals that are transmitted simultaneously through a linear instantaneous mixing channel. The received signals are, hence, corrupted by interuser interference (IUI), and we can model them as the outputs of a linear multiple-input-multiple-output (MIMO) memoryless system. Assuming the transmitted signals to be mutually independent, i.i.d., and to share the same non-Gaussian distribution, a set of necessary and sufficient conditions for the perfect blind recovery (up to scalar phase ambiguities) of all the signals exists and involves the kurtosis as well as the covariance of the output signals. We focus on a straightforward blind constrained criterion stemming from these conditions. From this criterion, we derive an adaptive algorithm for blind source separation, which we call the multiuser kurtosis (MUK) algorithm. At each iteration, the algorithm combines a stochastic gradient update and a Gram-Schmidt orthogonalization procedure in order to satisfy the criterion's whiteness constraints. A performance analysis of its stationary points reveals that the MUK algorithm is free of any stable undesired local stationary points for any number of sources; hence, it is globally convergent to a setting that recovers them all.
机译:我们考虑盲目恢复(即不使用训练序列)的问题,这些问题是通过线性瞬时混合通道同时传输的许多独立且分布均匀的源(用户)信号。因此,接收到的信号会受到用户间干扰(IUI)的破坏,我们可以将它们建模为线性多输入多输出(MIMO)无内存系统的输出。假设传输的信号相互独立,同分并且共享相同的非高斯分布,则存在一组必要条件和充分条件,以实现所有信号的完美盲恢复(至标量相位模糊度),并且涉及到峰度。以及输出信号的协方差。我们关注于源自这些条件的直接盲约束准则。从该标准出发,我们得出了一种用于盲源分离的自适应算法,称为多用户峰度(MUK)算法。在每次迭代中,该算法均结合了随机梯度更新和Gram-Schmidt正交化程序,以满足标准的白度约束。对它的固定点的性能分析表明,对于任何数量的源,MUK算法都没有任何稳定的,不希望的局部固定点;因此,它在全局上收敛到可以恢复所有设置的设置。

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