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首页> 外文期刊>Journal of Applied Remote Sensing >Multistatic inverse synthetic aperture radar imaging based on parametric block-sparse reconstruction
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Multistatic inverse synthetic aperture radar imaging based on parametric block-sparse reconstruction

机译:基于参数块稀疏重建的多晶逆合成孔径雷达成像

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摘要

By combining the data of different spatially distributed sensors, multistatic inverse synthetic aperture radar (ISAR) can provide more stable imaging results compared with mono-static ISAR. In most previous studies of multistatic ISAR imaging, the scatterers on the target are modeled as isotropic points and a conventional monostatic ISAR imaging method is directly applied after rearranging the data of multiple sensors, which will result in the degradation of image quality, especially when the measurements are limited. In practice, the complex amplitude of the scatterer is usually strongly angle dependent; therefore, the echo of different sensors cannot be assumed to be coherent. We consider the fluctuation of the radar cross section and propose a method based on compressed sensing (CS) for multistatic ISAR imaging. By utilizing the block orthogonal matching pursuit (BOMP) method to reconstruct the target image, the requirement of coherence between different sensors can be eliminated Moreover, in order to apply the CS method, a two-step target motion estimation approach is also presented. A coarse motion estimation method is first applied by tracking the target trajectory with the distance-sum measurement. Then, associating the gradient-based optimization algorithm with BOMP, a parametric block-sparse reconstruction method is developed to jointly correct the residual position error and recover the target image with incoherent echo. Simulation results show the effectiveness of the proposed method. (C) 2020 Society of Photo-Optical Instrumentation Engineers (SPIE)
机译:通过组合不同空间分布式传感器的数据,多晶逆合成孔径雷达(ISAR)可以提供更稳定的成像结果,与单静态ISAR相比。在多静学ISAR成像的最先前研究中,目标上的散射剂被建模,因为在重新排列多个传感器的数据之后直接施加传统的单体载体成像方法,这将导致图像质量的降低,特别是当测量有限。在实践中,散射体的复数幅度通常是强烈的依赖性​​;因此,不能假设不同传感器的回波是连贯的。我们考虑雷达横截面的波动,并提出了一种基于压缩检测(CS)的方法,用于多静学ISAR成像。通过利用块正交匹配追求(BOMP)方法来重建目标图像,此外,还可以消除不同传感器之间的相干关系的要求,以便应用CS方法,还呈现了两步目标运动估计方法。首先通过跟踪具有距离和测量的目标轨迹来施加粗运动估计方法。然后,将基于梯度的优化算法与BOMP相关联,开发了参数块稀疏的重建方法以共同校正残余位置误差并用相连的回声恢复目标图像。仿真结果表明了该方法的有效性。 (c)2020光学仪表工程师协会(SPIE)

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