方位角多通道星载SAR条带图模式的星载成像处理算法

Yanbin Liu;Dongxu Chen;Wenjie Xing;Xuan Zhou;Guang-Cai Sun;Jiarong Xiao;Yue Cao;Shuai Jiang;Shuchen Guo;Zhongjun Yu;Mengdao Xing
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引用次数: 0

摘要

在传统的方位多通道星载合成孔径雷达(SAR)处理方法中,方位角谱重建和后续方位角聚焦均采用全孔径处理。但是,如果将多通道全孔径回波数据存储在卫星上,再采用全孔径算法进行星载成像处理,那么海量的回波数据将需要更多的星载存储资源和计算资源,成像处理时间也会变长。针对上述问题,本文提出了一种基于子孔径数据采集与星载成像处理同步进行的星载成像处理算法。该算法通过子孔径方位角谱重构消除方位角谱模糊。然后利用啁啾缩放算法(CSA)对无二义子孔径信号进行距离单元迁移校正(RCMC)和距离压缩。然后通过子孔径对焦得到低分辨率子孔径图像。通过对各子孔径图像的相干组合,可以获得所有回波数据高分辨率的最终结果。最后,对点目标进行了仿真,验证了算法的有效性。
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An On-Board Imaging Processing Algorithm for Stripmap Mode of Azimuth Multichannel Spaceborne SAR
In the traditional processing methods of azimuth multichannel spaceborne synthetic aperture radar (SAR), the azimuth spectrum reconstruction and subsequent azimuth focusing are always via full-aperture processing. However, if the multichannel full-aperture echo data are stored on the satellite, and then the full-aperture algorithms are used for the on-board imaging processing, the huge amount of echo data will require more on-board storage resources and computing resources, and the imaging processing time will become longer. To solve the above problems, a novel on-board imaging processing algorithm via the idea that the data acquisition and the on-board imaging processing of the subaperture data are carried out simultaneously is proposed in this article. In the algorithm, the azimuth spectrum ambiguity is eliminated by the subaperture azimuth spectrum reconstruction. Then, the range cell migration correction (RCMC) and the range compression for the unambiguous subaperture signals are accomplished by the chirp scaling algorithm (CSA). After that, the low-resolution subaperture images are got via the subaperture focusing. By coherently combining all subaperture images, the final result with high resolution of all echo data can be obtained. Finally, the simulation for the point targets is given to verify the effectiveness of the proposed algorithm.
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2024 Index IEEE Journal on Miniaturization for Air and Space Systems Vol. 5 Table of Contents Front Cover The Journal of Miniaturized Air and Space Systems Broadband Miniaturized Antenna Based on Enhanced Magnetic Field Convergence in UAV
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