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Compressed sensing radar imaging of off-grid sparse targets

机译:偏离网格稀疏目标的压缩传感雷达成像

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Compressed sensing (CS) technique has been applied to radar imaging to maintain the imaging resolution with reduced amount of data. A necessary step for computation in existing CS radar imaging regimes is to divide the scene of interest into discrete grids, and the scattered signal from each grid is approximated as being reflected from an ideal point scatterer at the center of that grid. However, this approximation significantly affects CS radar imaging performance due to scatterers not in the centers, or off-grid. Existing algorithms utilize atom optimization or iterative optimization to image those off-grid scatterers. However, these algorithms require a minimal distance between scatterers. In this work, by redesigning the imaging scheme, modifying transmitted waveform and processing procedure, with the same amount of data, suitable bases can be selected and the imaging resolution is refined. The off-grid targets are then imaged on finer grids. Experiments show the performance and robustness of the scheme under different SNRs.
机译:压缩传感(CS)技术已经应用于雷达成像以维持具有减少量的成像分辨率。在现有CS雷达成像制度中计算的必要步骤是将感兴趣的场景分成离散网格,并且来自每个网格的散射信号近似为从该网格中心的理想点散射器反射。然而,这种近似显着影响CS雷达成像性能,因为不在中心的散射仪或离网。现有算法利用原子优化或迭代优化来图像图像散射器。然而,这些算法需要散射体之间的最小距离。在这项工作中,通过重新设计成像方案,修改传输的波形和处理过程,具有相同量的数据,可以选择合适的基础,并改进了成像分辨率。然后在更精细的网格上成像非网格目标。实验表明了不同SNR下方案的性能和鲁棒性。

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