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Efficient 2D adaptive beamforming algorithm based on sparse array optimisation

机译:基于稀疏阵列优化的高效2D自适应波束成形算法

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摘要

In this study, a 2D adaptive beamforming algorithm for sparse array is proposed. Firstly, a signal model based on matrix completion theory for adaptive beamforming in sparse array is established, which is proved to satisfy null space property. Secondly, in order to enhance the performance of reconstructing complete received signal matrix, genetic algorithm is used to optimise the sparse sampling array. Thirdly, the accelerated proximal gradient algorithm is adopted to reconstruct the complete received signal matrix. Finally, the adaptive beamforming weight is provided directly to form beam patterns, which can be obtained as a result of reconstructing complete received signal matrix. The proposed method could improve the utilisation rate of the sparse array elements and reduce the computational complexity in interference suppression. Simulation results show the effectiveness of the method.
机译:在该研究中,提出了一种用于稀疏阵列的2D自适应波束形成算法。首先,建立了一种基于矩阵完成理论的用于自适应波束成形的稀疏阵列中的信号模型,证明了满足空隙性空间属性。其次,为了提高重建完整接收信号矩阵的性能,遗传算法用于优化稀疏采样阵列。第三,采用加速的近端梯度算法来重建完整的接收信号矩阵。最后,自适应波束成形重量直接提供以形成光束图案,其可以作为重建完整接收的信号矩阵而获得的。所提出的方法可以提高稀疏阵列元件的利用率,并降低干扰抑制中的计算复杂度。仿真结果显示了该方法的有效性。

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