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An Iterative Method Using Conditional Second-Order Statistics Applied to the Blind Source Separation Problem

机译:有条件二阶统计量的迭代方法应用于盲源分离问题

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This paper is concerned with the problem of blind separation of an instantaneous mixture of sources (BSS), which has been addressed in many ways. When power spectral densities of the sources are different, methods using second-order statistics are sufficient to solve this problem. Otherwise, these methods fail and others (higher order statistics, etc.) must be used. In this paper, we propose an iterative method to process the case of sources with the same power spectral density. This method is based on an evaluation of conditional first and second-order statistics only. Restrictions on characteristics of sources are given to reach a solution, and proofs of convergence of the algorithm are provided for particular cases of probability density functions. Robustness of this algorithm with respect to the number of sources is shown through computer simulations. A particular case of sources that have a probability density function with unbounded domain of definition is described; here, the algorithm does not lead directly to a separation state but to an a priori known mixture state. Finally, prospects of links with contrast functions are mentioned, with a possible generalization of them based on results obtained with particular sources.
机译:本文关注瞬时分离源混合物(BSS)的盲分离问题,该问题已通过多种方式解决。当源的功率谱密度不同时,使用二阶统计量的方法足以解决此问题。否则,这些方法将失败,必须使用其他方法(高阶统计等)。在本文中,我们提出了一种迭代方法来处理具有相同功率谱密度的光源的情况。该方法仅基于对条件一阶和二阶统计量的评估。给出了对源特征的限制以获得解决方案,并且针对概率密度函数的特定情况提供了算法收敛的证明。通过计算机仿真显示了该算法相对于源数量的稳健性。描述了具有无限定义域的概率密度函数的源的特殊情况;在此,该算法不会直接导致分离状态,而是会导致先验已知的混合状态。最后,提到了具有对比函数的链接的前景,并可能基于使用特定来源获得的结果对它们进行概括。

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