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On the mean-square error performance of adaptive minimum variance beamformers based on the sample covariance matrix

机译:基于样本协方差矩阵的自适应最小方差波束形成器的均方误差性能

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The authors examine the mean-square error (MSE) performance of two common implementations of adaptive linearly constrained minimum variance (LCMV) beamformers that employ the sample covariance matrix. The Type I beamformer is representative of block processing methods where the same input data is used both to compute the adaptive weights and to form the beamformer output. The Type II beamformer, as in many recursive schemes, applies adaptive weights computed from previous data to the current input. Due to correlation between the adaptive weights and the input data, the Type I LCMV beamformer exhibits signal cancellation, which is shown here to cause signal estimate bias. To explicitly account for signal cancellation, the mean-square error (MSE) and output signal-to-noise ratio (SNR) measures of the bias-corrected Type I beamformer are analyzed, thus extending previous results. Further, new analytical results for these performance measures are given for the Type II LCMV beamformer. Comparison of bias-corrected Type I and Type II implementations indicate that both methods yield exactly the same MSE and output SNR performance.
机译:作者研究了采用样本协方差矩阵的自适应线性约束最小方差(LCMV)波束形成器的两种常见实现方式的均方误差(MSE)性能。 I型波束形成器代表块处理方法,其中相同的输入数据既用于计算自适应权重,又用于形成波束形成器输出。与许多递归方案一样,II型波束形成器将根据先前数据计算出的自适应权重应用于当前输入。由于自适应权重和输入数据之间的相关性,I型LCMV波束形成器显示出信号抵消,此处显示为引起信号估计偏差。为了明确说明信号消除,对经过偏置校正的I型波束形成器的均方误差(MSE)和输出信噪比(SNR)措施进行了分析,从而扩展了先前的结果。此外,II型LCMV波束形成器针对这些性能指标给出了新的分析结果。偏差校正的I型和II型实现的比较表明,两种方法产生的MSE和输出SNR性能完全相同。

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