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An Adaptive Independent Component Analysis Method

机译:自适应独立分量分析方法

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摘要

According to the existing problem of the convention methods, an adaptive independent component analysis method is proposed. First, the signals are divided into the heavy tailed and light tailed signals according to the kurtosis. For the heavy tailed signal, the method off-line computes the score function and establishes the lookup table of the standard alpha stable distribution, and then compute the score function of the mixture signals. For the light tailed signal, the score function is estimated by the general Gaussian model. Simulated results show that, the proposed algorithm has a well performance and a lower computational complexity.
机译:根据“惯例方法”的现有问题,提出了一种自适应独立分量分析方法。首先,根据Kurtosis分为重尾和光尾信号的信号。对于大尾信号,该方法离线计算得分功能并建立标准alpha稳定分布的查找表,然后计算混合信号的分数函数。对于光尾信号,通过通用高斯模型估计得分函数。模拟结果表明,所提出的算法具有良好的性能和较低的计算复杂性。

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