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SAR imaging with noise waveform and low sampling rate based on sparse optimization

机译:基于稀疏优化的噪声波形低采样率SAR成像

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In this paper, we apply sparse optimization method to synthetic aperture radar (SAR) imaging on the airborne data of a Ku-band SAR using noise waveforms. The SAR system transmits chaotic pulse waveforms at three carrier frequencies (13.7GHz, 13.9GHz and 14.1GHz). Each frequency channel has a same bandwidth of 220MHz and the total bandwidth covered by the three channels is 620MHz. According to the compressed sensing (CS) theory and the randomness property of noise signal, we can uniformly down sample the echo data with a rate below the Nyquist sampling rate. Effects of low-rate sampling on noise radar imaging are discussed with simulated 1-D data presented. The reconstruction of SAR image from low-rate samples is based on our recently proposed maximum a posterior (MAP) estimation method, which is developed from the sparse optimization techniques in CS. Experimental results are presented to show the effectiveness of our algorithm.
机译:在本文中,我们将稀疏优化方法应用于使用噪声波形对Ku波段SAR的机载数据进行合成孔径雷达(SAR)成像。 SAR系统以三个载波频率(13.7GHz,13.9GHz和14.1GHz)发送混沌脉冲波形。每个频道具有相同的220MHz带宽,三个频道覆盖的总带宽为620MHz。根据压缩感知(CS)理论和噪声信号的随机性,我们可以以低于奈奎斯特采样率的速率对回波数据进行均匀下采样。讨论了低速采样对噪声雷达成像的影响,并提供了模拟的一维数据。从低速率样本重建SAR图像是基于我们最近提出的最大后验(MAP)估计方法,该方法是从CS中的稀疏优化技术发展而来的。实验结果表明了该算法的有效性。

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