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基于高阶统计量的自适应盲源分离算法
引用本文:刘涵,刘丁,刘筱琰.基于高阶统计量的自适应盲源分离算法[J].西安理工大学学报,2002,18(2):113-116.
作者姓名:刘涵  刘丁  刘筱琰
作者单位:西安理工大学,自动化与信息工程学院,陕西,西安,710048
摘    要:提出了一种新的自适应盲源分离算法,在无噪音实时两源两传感器的情况下,一旦观测信号被白化,只需要辨识一个特定的旋转矩阵就可以完成盲源分离,并给出了能表征该旋转矩阵的角的自适应估计器,仿真结果表明,当满足源峭度和不为零的条件时,这种方法是一种稳定的和有效的分离算法。

关 键 词:自适应  盲源分离  概率密度函数  高阶统计量  信号处理
文章编号:1006-4710(2002)02-0113-04
修稿时间:2001年7月25日

Blind Sources Separation Using Higher Order Statistic
LIU Han,LIU Ding,LIU Xiao yan.Blind Sources Separation Using Higher Order Statistic[J].Journal of Xi'an University of Technology,2002,18(2):113-116.
Authors:LIU Han  LIU Ding  LIU Xiao yan
Abstract:A new learning algorithm is developed for blind separation of independent source signals from their linear mixtures. In the noiseless real mixture two source two sensor scenario, once the observations are whitened (decorrelated and normalized), only a given rotation matrix remains to be identified in order to achieve the source separation. In this paper, an adapter estimator of the angle that characterizes such a rotation is derived. It shows that estimator converges to a stable valid separation solution with the only condition that the sum of source kurtosis be distinct from zero. Simulation demonstrate the validity of the algorithm.
Keywords:blind source separation  probability density function  higher order statistic
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