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Robust adaptive beamforming based on interference covariance matrix sparse reconstruction

机译:基于干扰协方差矩阵稀疏重构的鲁棒自适应波束形成

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摘要

Adaptive beamformers are sensitive to model mismatch, especially when the desired signal is present in the training data. In this paper, we reconstruct the interference-plus-noise covariance matrix in a sparse way, instead of searching for an optimal diagonal loading factor for the sample covariance matrix. Using sparsity, the interference covariance matrix can be reconstructed as a weighted sum of the outer products of the interference steering vectors, the coefficients of which can be estimated from a compressive sensing (CS) problem. In contrast to previous works, the proposed CS problem can be effectively solved by use of a priori information instead of using l_1-norm relaxation or other approximation algorithms. Simulation results demonstrate that the performance of the proposed adaptive beamformer is almost always equal to the optimal value.
机译:自适应波束形成器对模型失配敏感,尤其是在训练数据中存在所需信号时。在本文中,我们以稀疏的方式重建干扰加噪声协方差矩阵,而不是为样本协方差矩阵寻找最佳对角线加载因子。使用稀疏性,可以将干扰协方差矩阵重构为干扰导引向量的外部乘积的加权和,可以根据压缩感测(CS)问题来估计其系数。与先前的工作相反,所提出的CS问题可以通过使用先验信息而不是使用l_1范数松弛或其他近似算法来有效地解决。仿真结果表明,所提出的自适应波束形成器的性能几乎总是等于最佳值。

著录项

  • 来源
    《Signal processing》 |2014年第ptab期|375-381|共7页
  • 作者单位

    School of Electrical and Computer Engineering, Advanced Radar Research Center, University of Oklahoma, Norman, OK 73019, USA;

    School of Electrical and Computer Engineering, Advanced Radar Research Center, University of Oklahoma, Norman, OK 73019, USA;

    School of Information Science and Engineering, Xiamen University, Xiamen, China;

    Department of Electronic Engineering, East China University of Science and Technology, Shanghai, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Compressive sensing; DOA estimation; Robust adaptive beamforming; Sparse reconstruction;

    机译:压缩感测;DOA估算;鲁棒的自适应波束成形;稀疏重建;

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