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A Simple Geometric Blind Source Separation Method for Bounded Magnitude Sources

机译:有界震源的一种简单的几何盲源分离方法

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A novel blind source separation approach and the corresponding adaptive algorithm is presented. It is assumed that the observation mixture is obtained through an unknown memoryless linear mapping of independent and bounded magnitude sources. We further assume an initial adaptive prewhitening of the original observation vector which transforms it into a white vector with the same dimension as the original source vector. Our approach is centered around the basic geometric fact that, under a certain boundedness assumption, the unitary mapping which transforms the whitening output vector into an independent vector has the minimum value of maximum (real component) magnitude output over the ensemble of all output components. Therefore, the related criterion is the minimization of the infinity norm of the real component of the unitary separator's output over all possible output combinations. For the minimization of the corresponding nondifferentiable cost function, we propose the use of subgradient optimization methods to obtain a low complexity iterative adaptive solution. The resulting algorithm is fairly intuitive and simple, and provides a low complexity solution especially to a class of multiuser digital communications problems. We provide examples at the end of this paper to illustrate the performance of our algorithm.
机译:提出了一种新颖的盲源分离方法及相应的自适应算法。假定通过未知的无记忆的独立且有界的幅度源的线性映射获得观测混合。我们进一步假设原始观测向量的初始自适应预变白,将其转换为具有与原始源向量相同尺寸的白色向量。我们的方法集中于以下基本几何事实:在一定的有界度假设下,将白化输出矢量转换为独立矢量的单一映射在所有输出分量的整体上具有最大(实分量)幅度输出的最小值。因此,相关标准是在所有可能的输出组合上最小化单一分隔符输出的实分量的无穷范数。为了最小化相应的不可微成本函数,我们建议使用次梯度优化方法来获得低复杂度的迭代自适应解决方案。所得的算法相当直观和简单,并且提供了低复杂度的解决方案,尤其是针对一类多用户数字通信问题。我们在本文结尾处提供了示例来说明我们算法的性能。

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