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A Robust Adaptive Beamformer Based on Worst-Case Semi-Definite Programming

机译:基于最坏情况半确定规划的鲁棒自适应波束形成器

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摘要

In this correspondence, a novel robust adaptive beamformer is proposed based on the worst-case semi-definite programming (SDP). A recent paper has reported that a beamformer robust against large steering direction error can be constructed by using linear constraints on magnitude response in SDP formulation. In practice, however, array system also suffers from many other array imperfections other than steering direction error. In order to make the adaptive beamformer robust against all kinds of array imperfections, the worst-case optimization technique is proposed to reformulate the beamformer by minimizing the array output power with respect to the worst-case array imperfections. The resultant beamformer has the mathematical form of a regularized SDP problem and possesses superior robustness against arbitrary array imperfections. Although the formulation of robust beamformer uses weighting matrix, with the help of spectral factorization approach, the weighting vector can be obtained so that the beamformer can be used for both signal power and waveform estimation. Simple implementation, flexible performance control, as well as significant signal-to-interference-plus-noise ratio (SINR) enhancement, support the practicability of the proposed method.
机译:在这种对应关系下,提出了一种基于最坏情况半定规划(SDP)的新型鲁棒自适应波束形成器。最近的一篇论文报道说,可以通过在SDP公式中使用对幅度响应的线性约束来构建对较大转向方向误差具有鲁棒性的波束成形器。然而,实际上,除了转向方向误差之外,阵列系统还遭受许多其他阵列缺陷。为了使自适应波束形成器对各种阵列缺陷具有鲁棒性,提出了最坏情况优化技术,以通过相对于最坏情况阵列缺陷最小化阵列输出功率来重新构造波束形成器。所得的波束形成器具有正规化SDP问题的数学形式,并具有针对任意阵列缺陷的出色鲁棒性。尽管鲁棒波束形成器的公式使用加权矩阵,但借助频谱分解方法,仍可以获取加权矢量,从而可以将波束形成器用于信号功率和波形估计。简单的实现,灵活的性能控制以及显着的信噪比(SINR)增强,都支持该方法的实用性。

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