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Bayesian robust adaptive beamforming based on random steering vector with bingham prior distribution

机译:基于宾厄姆先验分布的随机导引向量的贝叶斯鲁棒自适应波束形成

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We consider robust adaptive beamforming in the presence of steering vector uncertainties. A Bayesian approach is presented where the steering vector of interest is treated as a random vector with a Bingham prior distribution. Moreover, in order to also improve robustness against low sample support, the interference plus noise covariance matrix R is assigned a non informative prior distribution which enforces shrinkage to a scaled identity matrix, similarly to diagonal loading. The minimum mean square distance estimate of the steering vector as well as the minimum mean square error estimate of R are derived and implemented using a Gibbs sampling strategy. The new beamformer is shown to converge within a limited number of snapshots, despite the presence of steering vector errors.
机译:在转向矢量不确定性存在的情况下,我们考虑鲁棒的自适应波束成形。提出了一种贝叶斯方法,其中将感兴趣的转向向量视为具有宾厄姆先验分布的随机向量。此外,为了还提高针对低样本支持的鲁棒性,向干扰加噪声协方差矩阵R分配了无信息的先验分布,类似于对角线加载,该先验分布强制缩小到缩放的单位矩阵。转向向量的最小均方距离估计值以及R的最小均方误差估计值是使用Gibbs采样策略得出并实现的。尽管存在转向矢量误差,但新的波束形成器显示在有限数量的快照内收敛。

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