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Bistatic Synthetic Aperture Radar Imaging Using UltraNarrowband Continuous Waveforms

机译:使用超窄带连续波形的双基地合成孔径雷达成像

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We consider synthetic aperture radar (SAR) imaging using ultranarrowband continuous waveforms (CWs). Because of the high Doppler resolution of CW signals, we refer to this imaging modality as Doppler synthetic aperture radar (DSAR). We present a novel model and an image formation method for the bistatic DSAR for arbitrary imaging geometries. Our bistatic DSAR model is formed by correlating the translated version of the received signal with a scaled or frequency-shifted version of the transmitted CW signal over a finite time window. High-frequency analysis of the resulting model shows that the correlated signal is the projections of the scene reflectivity onto the bistatic iso-Doppler curves. We next use microlocal techniques to develop a filtered-backprojection (FBP) type image reconstruction method. The FBP inversion results in the backprojection of the correlated signal onto the bistatic iso-Doppler curves as opposed to the bistatic iso-range curves used in the traditional wideband SAR imaging. We show that our method takes advantage of the velocity, as well as the acceleration of the antennas in certain directions, to form a high-resolution SAR image. Our bistatic DSAR imaging method is applicable for arbitrary flight trajectories and nonflat topography, and can accommodate system-related parameters. We present resolution analysis and extensive numerical experiments to demonstrate the performance of our imaging method.
机译:我们考虑使用超窄带连续波形(CW)的合成孔径雷达(SAR)成像。由于CW信号的多普勒分辨率高,我们将此成像方式称为多普勒合成孔径雷达(DSAR)。我们提出了一种新颖的模型和双基地DSAR用于任意成像几何的图像形成方法。我们的双基地DSAR模型是通过在有限的时间窗口内将接收到的信号的转换版本与发送的CW信号的缩放版本或频移版本相关联而形成的。对结果模型进行的高频分析表明,相关信号是场景反射率在双基地等距多普勒曲线上的投影。接下来,我们将使用微局部技术来开发反投影(FBP)类型的图像重建方法。与传统宽带SAR成像中使用的双基地等距曲线相反,FBP反演导致相关信号反投影到双基地等距多普勒曲线上。我们表明,我们的方法利用速度以及天线在特定方向上的加速度来形成高分辨率SAR图像。我们的双基地DSAR成像方法适用于任意飞行轨迹和非平坦地形,并且可以容纳与系统相关的参数。我们目前的分辨率分析和广泛的数值实验,以证明我们的成像方法的性能。

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