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Robust Adaptive Beamforming Based on Interference Covariance Matrix Reconstruction and Steering Vector Estimation

机译:基于干扰协方差矩阵重构和转向矢量估计的鲁棒自适应波束形成

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Adaptive beamformers are sensitive to model mismatch, especially when the desired signal is present in training snapshots or when the training is done using data samples. In contrast to previous works, this correspondence attempts to reconstruct the interference-plus-noise covariance matrix instead of searching for the optimal diagonal loading factor for the sample covariance matrix. The estimator is based on the Capon spectral estimator integrated over a region separated from the desired signal direction. This is shown to be more robust than using the sample covariance matrix. Subsequently, the mismatch in the steering vector of the desired signal is estimated by maximizing the beamformer output power under a constraint that prevents the corrected steering vector from getting close to the interference steering vectors. The proposed adaptive beamforming algorithm does not impose a norm constraint. Therefore, it can be used even in applications where gain perturbations affect the steering vector. Simulation results demonstrate that the performance of the proposed adaptive beamformer is almost always close to the optimal value across a wide range of signal to noise and signal to interference ratios.
机译:自适应波束形成器对模型失配敏感,尤其是在训练快照中存在所需信号或使用数据样本进行训练时。与以前的工作相反,这种对应关系试图重建干扰加噪声协方差矩阵,而不是为样本协方差矩阵搜索最佳对角线加载因子。估计器基于在与所需信号方向分开的区域上积分的Capon频谱估计器。与使用样本协方差矩阵相比,这显示出更强大的功能。随后,通过在防止校正后的导向向量接近于干扰导向向量的约束下最大化波束形成器的输出功率,来估计期望信号的导向向量中的失配。所提出的自适应波束成形算法不施加范数约束。因此,它甚至可以用于增益扰动影响转向矢量的应用中。仿真结果表明,在宽范围的信噪比和信噪比范围内,所提出的自适应波束形成器的性能几乎始终接近最佳值。

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