Robust Adaptive Beamforming using Desired Signal Steering Vector Estimation and Variable Loading

R. Suleesathira
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Abstract

It is known that the desired signal steering vector error, the number of signal samples and the input signal to noise ratio (SNR) are crucial factors to the adaptive beamforming performance. In the presence of steering vector mismatch or lack of samples or strong desired signal, the minimum variance distortionless response (MVDR) beamformer can generate the distorted mainbeam with high sidelobe levels. Diagonal loading of the sample covariance matrix is a widespread technique to provide robustness against such cases. However, there is a tradeoff between the robustness improvement and interference and noise cancellation capability to determine a proper value of loading. Rather than a fixed loading as the diagonal loading, variable loading can provide more robust and protect the rising sidelobe levels in the presence of mismatch. To remedy the effect of mismatch, the presumed desired signal steering vector is utilized to estimate its actual one. The estimation is done by the max/min optimization of the array output power. Then, an algorithm to create the robust MVDR beamformer against the desired signal steering vector mismatch is presented by using the estimated desired signal steering vector and variable loading. Simulation results show that the proposed method has significantly beampattern improvement when the error due to the steering vector mismatch, small number of signal samples and high input SNR exist.
基于期望信号导向矢量估计和可变负载的鲁棒自适应波束形成
已知期望的信号转向矢量误差、信号采样数和输入信噪比是影响自适应波束形成性能的关键因素。最小方差无失真响应波束形成器(MVDR波束形成器)在存在转向矢量不匹配或缺少样本或强期望信号的情况下,可以产生具有高旁瓣电平的畸变主波束。样本协方差矩阵的对角加载是一种广泛的技术,以提供对这种情况的鲁棒性。然而,在鲁棒性改进与干扰和噪声消除能力之间存在权衡,以确定适当的加载值。与固定的对角加载相比,可变加载可以提供更强的鲁棒性,并在存在不匹配的情况下保护上升的副瓣电平。为了弥补失配的影响,利用假定的期望信号转向矢量来估计其实际方向矢量。通过对阵列输出功率的最大/最小优化来进行估计。然后,利用估计的期望信号转向矢量和可变负载,提出了一种针对期望信号转向矢量失配的鲁棒MVDR波束形成算法。仿真结果表明,在控制矢量不匹配、信号采样数少、输入信噪比高的情况下,该方法能显著改善波束方向图。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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