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COMPLEX ICA FOR CIRCULAR AND NON-CIRCULAR SOURCES

机译:循环和非循环源的复杂ICA

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摘要

In this paper we propose an information theory based generic method for complex Independent Component Analysis (ICA). Expressions for the complex score function are derived. The method exploits the full second order structure of complex signals. It combines a preprocessing step called the strong-uncorrelating transform (SUT) [10] with ICA methods that use the proposed complex score function. The method is capable of separating circular or non-circular and symmetric or asymmetric source distributions from complex mixtures. It allows the separation of such signals with relatively simple modifications to existing methods for real-valued signals. The performance of the proposed method is compared to the standard complex JADE [6] and FastICA [3] algorithms in a simulation.
机译:在本文中,我们提出了一种基于信息论的通用方法,用于复杂的独立成分分析(ICA)。推导出复数得分函数的表达式。该方法利用了复杂信号的完整二阶结构。它结合了称为强非相关变换(SUT)[10]的预处理步骤和使用建议的复数得分函数的ICA方法。该方法能够从复杂混合物中分离出圆形或非圆形以及对称或不对称源分布。它允许通过对现有实值信号的方法进行相对简单的修改来分离此类信号。在仿真中,将所提方法的性能与标准复杂JADE [6]和FastICA [3]算法进行了比较。

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