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Quaternion-valued robust adaptive beamformer for electromagnetic vector-sensor arrays with worst-case constraint

机译:具有最坏情况约束的电磁矢量传感器阵列的四元数值鲁棒自适应波束形成器

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摘要

A robust adaptive beamforming scheme based on two-component electromagnetic (EM) vector-sensor arrays is proposed by extending the well-known worst-case constraint into the quaternion domain. After defining the uncertainty set of the desired signal׳s quaternionic steering vector, two quaternion-valued constrained minimization problems are derived. We then reformulate them into two real-valued convex quadratic problems, which can be easily solved via the so-called second-order cone (SOC) programming method. It is also demonstrated that the proposed algorithms can be classified as a specific type of the diagonal loading scheme, in which the optimal loading factor is a function of the known level of uncertainty of the desired steering vector. Numerical simulations show that our new method can cope with the steering vector mismatch problem well, and alleviate the finite sample size effect to some extent. Besides, the proposed beamformer significantly outperforms the sample matrix inversion minimum variance distortionless response (SMI-MVDR) and the quaternion Capon (Q-Capon) beamformers in all the scenarios studied, and achieves a better performance than the traditional diagonal loading scheme, in the case of smaller sample sizes and higher SNRs.
机译:通过将众所周知的最坏情况约束扩展到四元数域,提出了一种基于两分量电磁(EM)矢量传感器阵列的鲁棒自适应波束形成方案。在定义了期望信号的四元数导引向量的不确定性集之后,得出了两个四元数值的约束最小化问题。然后,我们将它们重新构造为两个实值凸二次问题,可以通过所谓的二阶锥(SOC)编程方法轻松解决。还证明了所提出的算法可以被分类为对角线加载方案的特定类型,其中最优加载因子是期望转向矢量的不确定性的已知水平的函数。数值仿真表明,该方法可以很好地解决转向矢量不匹配的问题,并在一定程度上减轻了有限样本量的影响。此外,在所有研究场景中,拟议的波束形成器在所有研究场景中均明显优于样本矩阵求逆最小方差无失真响应(SMI-MVDR)和四元数Capon(Q-Capon)波束形成器,并获得了优于传统对角线加载方案的性能。样本量较小而SNR高的情况。

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