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Adaptive convergence of linearly constrained beamformers based on the sample covariance matrix

机译:基于样本协方差矩阵的线性约束波束形成器的自适应收敛

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A statistical analysis of the adaptive convergence behavior of linearly constrained beamformers is given, assuming the sample covariance estimator is used to estimate the covariance matrix. The sensor data are assumed to be Gaussian distributed and independent from data vector to data vector. The output power and mean-squared error in the absence of the desired signal are shown to be multiples of chi-squared random variables. The presence of the desired signal results in an excess mean-squared error that is beta distributed and depends only on the signal power, number of data vectors, and number of adaptive degrees of freedom. The expected value of the excess mean-squared error resulting from the signal presence is directly proportional to the signal power and number of adaptive degrees of freedom, but is inversely proportional to the number of data vectors.
机译:假设样本协方差估计器用于估计协方差矩阵,则对线性约束波束形成器的自适应收敛行为进行了统计分析。假定传感器数据是高斯分布的,并且独立于数据向量到数据向量。在没有所需信号的情况下,输出功率和均方误差显示为卡方随机变量的倍数。所需信号的存在会导致多余的均方误差,该误差是beta分布的,并且仅取决于信号功率,数据向量的数量以及自适应自由度的数量。由信号存在引起的过量均方误差的期望值与信号功率和自适应自由度的数量成正比,但与数据矢量的数量成反比。

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