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Robust Adaptive Beamforming in Partly Calibrated Sparse Sensor Arrays

机译:部分校准的稀疏传感器阵列中的鲁棒自适应波束形成

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摘要

Two new approaches to adaptive beamforming in sparse subarray-based partly calibrated sensor arrays are developed. Each subarray is assumed to be well calibrated, so that the steering vectors of all subarrays are exactly known. However, the intersubarray gain and/or phase mismatches are known imperfectly or remain completely unknown. Our first approach is based on a worst-case beamformer design which, in contrast to the existing worst-case designs, exploits a specific structured ellipsoidal uncertainty model for the signal steering vector rather than the commonly used unstructured uncertainty models. Our second approach is based on estimating the unknown intersubarray parameters by maximizing the output power of the minimum variance beamformer subject to a proper constraint that helps to avoid trivial solution of the resulting optimization problem. Different modifications of the second approach are developed for the cases of gain-and-phase and phase-only intersubarray distortions.
机译:开发了两种新的基于稀疏子阵列的部分校准传感器阵列中自适应波束形成的方法。假定每个子阵列都经过了很好的校准,因此所有子阵列的导向向量都是已知的。然而,子阵列间的增益和/或相位失配是不完全已知的或仍然是完全未知的。我们的第一种方法基于最坏情况的波束形成器设计,与现有最坏情况的设计相反,该方法针对信号转向矢量采用了特定的结构化椭圆不确定性模型,而不是通常使用的非结构化不确定性模型。我们的第二种方法是基于最大化最小方差波束形成器的输出功率,并通过适当的约束来估计未知子集间参数,该约束有助于避免琐碎解决所产生的优化问题。针对增益和相位以及仅相位子阵列间失真的情况,开发了第二种方法的不同修改。

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