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A RPCA-Based ISAR Imaging Method for Micromotion Targets

机译:基于RPCA的微动目标ISAR成像方法

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摘要

Micro-Doppler generated by the micromotion of a target contaminates the inverse synthetic aperture radar (ISAR) image heavily. To acquire a clear ISAR image, removing the Micro-Doppler is an indispensable task. By exploiting the sparsity of the ISAR image and the low-rank of Micro-Doppler signal in the Range-Doppler (RD) domain, a novel Micro-Doppler removal method based on the robust principal component analysis (RPCA) framework is proposed. We formulate the model of sparse ISAR imaging for micromotion target in the framework of RPCA. Then, the imaging problem is decomposed into iterations between the sub-problem of sparse imaging and Micro-Doppler extraction. The alternative direction method of multipliers (ADMM) approach is utilized to seek for the solution of each sub-problem. Furthermore, to improve the computational efficiency and numerical robustness in the Micro-Doppler extraction, an SVD-free method is presented to further lessen the calculative burden. Experimental results with simulated data validate the effectiveness of the proposed method.
机译:目标的微运动产生的微多普勒严重污染了反向合成孔径雷达(ISAR)图像。要获取清晰的ISAR图像,去除微多普勒仪是必不可少的任务。通过利用ISAR图像的稀疏性和距离多普勒(RD)域中的微多普勒信号的低秩,提出了一种基于鲁棒主成分分析(RPCA)框架的新型微多普勒去除方法。我们在RPCA框架内为微运动目标制定了稀疏ISAR成像模型。然后,将成像问题分解为稀疏成像的子问题和微多普勒提取之间的迭代。乘数的替代方向方法(ADMM)方法用于寻找每个子问题的解决方案。此外,为了提高微多普勒提取中的计算效率和数值鲁棒性,提出了一种无SVD的方法,以进一步减轻计算负担。仿真数据的实验结果验证了该方法的有效性。

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