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首页> 外文期刊>Communications, IET >Robust adaptive beamforming for coprime array with steering vector estimation and covariance matrix reconstruction
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Robust adaptive beamforming for coprime array with steering vector estimation and covariance matrix reconstruction

机译:具有转向载体估计和协方差矩阵重建的共同阵列的鲁棒自适应波束成形

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Coprime array exhibits many advantages over the uniform linear array (ULA) with the same number of physical sensors in resolution performance and interference suppression capability. In this study, the authors take the advantages of coprime array to improve the robustness of adaptive beamformer. In the coprime virtual ULA (CV-ULA), they prove that a constructed Toeplitz matrix can be taken as the sample covariance matrix from the perspective of virtual signal characteristics. The CV-ULA Capon spectrum estimator is modified to obtain the directions and powers of all impinging signals. Since the real directions of all impinging signals are located at different angular sectors, they form independent signal subspace for each impinging signal. They also assign independent steering vector mismatches for different impinging signals to obtain their real steering vectors. The steering vector mismatch of each impinging signal is independently obtained by solving its own convex optimisation problem. They reconstruct the interference-plus-noise covariance matrix (INCM) with precise steering vectors and powers of interference signals. The proposed weight vector is computed by combining the desired signal steering vector and the reconstructed INCM. Extensive simulations show that the proposed algorithm provides robustness against many types of model mismatches.
机译:CopRime阵列在分辨率和干扰抑制能力中具有相同数量的物理传感器的均匀线性阵列(ULA)上的许多优点。在这项研究中,作者采用了共同阵列的优势,以提高自适应波束形成器的鲁棒性。在CopRime虚拟ULA(CV-ULA)中,他们证明了从虚拟信号特性的角度被视为样本协方差矩阵的构建脚趾矩阵。修改CV-ULA Capon频谱估计器以获得所有撞击信号的方向和功率。由于所有撞击信号的真实方向位于不同的角度扇区,因此它们形成每个撞击信号的独立信号子空间。它们还为不同的撞击信号分配独立的转向载体不匹配以获得其真正的​​转向矢量。通过解决自己的凸优化问题,可以独立地获得每个撞击信号的转向载体不匹配。它们重建干扰 - 加噪声协方差矩阵(INCM),具有精确的转向矢量和干扰信号的功率。通过组合所需的信号转向向量和重建的INCM来计算所提出的重量矢量。广泛的模拟表明,该算法提供了针对许多类型模型不匹配的鲁棒性。

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