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Robust Adaptive Beamforming Based on the Kalman Filter

机译:基于卡尔曼滤波器的鲁棒自适应波束成形

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摘要

In this paper, we present a novel approach to implement the robust minimum variance distortionless response (MVDR) beamformer. This beamformer is based on worst-case performance optimization and has been shown to provide an excellent robustness against arbitrary but norm-bounded mismatches in the desired signal steering vector. However, the existing algorithms to solve this problem do not have direct computationally efficient online implementations. In this paper, we develop a new algorithm for the robust MVDR beamformer, which is based on the constrained Kalman filter and can be implemented online with a low computational cost. Our algorithm is shown to have a similar performance to that of the original second-order cone programming (SOCP)-based implementation of the robust MVDR beamformer. We also present two improved modifications of the proposed algorithm to additionally account for nonstationary environments. These modifications are based on model switching and hypothesis merging techniques that further improve the robustness of the beamformer against rapid (abrupt) environmental changes.
机译:在本文中,我们提出了一种新颖的方法来实现鲁棒的最小方差无失真响应(MVDR)波束形成器。该波束形成器基于最坏情况下的性能优化,并已显示出出色的鲁棒性,可抵抗所需信号导引向量中的任意但受范数限制的失配。但是,解决该问题的现有算法没有直接的计算有效的在线实现。在本文中,我们开发了一种新的鲁棒MVDR波束形成器算法,该算法基于受约束的卡尔曼滤波器,并且可以以较低的计算成本在线实现。我们的算法显示出与鲁棒MVDR波束形成器基于原始二阶视锥编程(SOCP)的实现类似的性能。我们还对提出的算法进行了两种改进,以解决非平稳环境。这些修改基于模型切换和假设合并技术,可进一步提高波束形成器抵抗快速(突变)环境变化的鲁棒性。

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