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A novel coherent column replacement method in compressed sensing for DOA estimation

机译:一种用于DOA估计的压缩相干相干替换新方法

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In this paper, a novel method named as coherent column replacement method is proposed to reduce the coherence of a partially deterministic sensing matrix, which is comprised of highly coherent columns and random Gaussian columns. The proposed method is to replace the highly coherent columns with random Gaussian columns to obtain a new sensing matrix. The measurement vector is changed accordingly. It is proved that the original sparse signal could be reconstructed well from the newly changed measurement vector based on the new sensing matrix with large probability. This method is then extended to more practical condition when highly coherent columns and incoherent columns are considered, e.g. the direction of arrival (DOA) estimation problem in phased array radar system using compressed sensing. Numerical simulations show that the proposed method succeeds in identifying multiple targets in a sparse radar scene, where the compressed sensing method based on the original sensing matrix fails. The proposed method also obtains more precise estimation of DOA using one snapshot compared with the traditional estimation methods such as Capon, APES and GLRT based on hundreds of snapshots.
机译:本文提出了一种新的方法,称为相干列替换方法,以减少由高相干列和随机高斯列组成的部分确定性传感矩阵的相干性。所提出的方法是用随机的高斯列替换高相干的列以获得新的感测矩阵。测量矢量相应地改变。事实证明,基于新的检测矩阵,从新改变的测量向量可以很好地重建原始稀疏信号。当考虑到高度相干的色谱柱和不相干的色谱柱时,例如当使用高相干色谱柱时,该方法可以扩展到更实际的条件。相控阵雷达系统压缩感知中的到达方向估计问题数值仿真表明,该方法成功地识别了稀疏雷达场景中的多个目标,该方法基于原始感知矩阵的压缩感知方法失败。与传统的基于数百个快照的Capon,APES和GLRT估计方法相比,该方法还可以使用一个快照获得更精确的DOA估计。

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