基于对比函数的源分离自适应新算法

E. Moreau, O. Macchi
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引用次数: 105

摘要

介绍了一种基于广义准则的自适应源分离算法,并引入了交叉累积量。通过适当的自适应预处理,可以假定观察到的源混合物x是“白色的”。然后一个分离矩阵H(使得y=Hx有独立的分量)可以被假定为是酉的。定义了一个新的对比函数,其最大值出现在H分离时。它的(简单)形式允许一个相关的自适应算法。提出了两种不同的算法来估计H,要么直接估计,要么通过给定旋转的等效乘积估计。计算机仿真说明了交叉累积量对算法收敛性的贡献。在三源情况下,他们表明性能有了很大的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New self-adaptative algorithms for source separation based on contrast functions
Introduces self-adaptive algorithms for source separation based on a generalized criterion with the introduction of cross-cumulants. By adequate adaptive preprocessing it can be supposed that the observed source mixture x is 'white'. Then a separating matrix H (such that y=Hx has independent components) can be assumed unitary. A new contrast function is defined whose maximum occurs when H is separating. Its (simple) form admits an associated adaptive algorithm. Two different algorithms are proposed to estimate H, either directly or through its equivalent product of Givens rotations. Computer simulations illustrate the contribution of the cross-cumulants on the convergence of the algorithms. In the three-sources case, they show that the performances are improved substantially.<>
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