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Independent component analysis in signals with multiplicative noise using fourth-order statistics

机译:使用四阶统计量对具有乘性噪声的信号进行独立分量分析

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The existence of multiplicative noise greatly limits the applicability of independent component analysis (ICA), because it does not take into account the existence of the noise. This paper proposes a method to extend ICA to this kind of noisy environment, without any limitation in the nature of the sources or the noise. In order to do this, the statistical structure of a linear transformation of the noisy data is studied up to fourth order, and then this structure is used to find the inverse of the mixing matrix through the minimization of a cost function. The method designed is able to extract the mixing matrix and some statistical features of the noise and the sources, notably improving the performance of the standard ICA methods when the mixture is contaminated by multiplicative noise.
机译:乘法噪声的存在极大地限制了独立分量分析(ICA)的适用性,因为它没有考虑噪声的存在。本文提出了一种将ICA扩展到这种嘈杂环境的方法,而对信源或噪声的性质没有任何限制。为此,对噪声数据的线性变换的统计结构进行了研究,直到四阶,然后通过最小化成本函数,使用该结构来找到混合矩阵的逆。设计的方法能够提取混合矩阵以及噪声和噪声源的一些统计特征,特别是当混合物被乘性噪声污染时,可以显着提高标准ICA方法的性能。

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