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An Inverse Extended Omega-K Algorithm for SAR Raw Data Simulation With Trajectory Deviations

机译:具有轨迹偏差的SAR原始数据仿真的逆扩展Omega-K算法

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摘要

An efficient and accurate inverse extended omega-K algorithm (IEOKA) is proposed to simulate synthetic aperture radar (SAR) raw data with trajectory deviations. Different from the traditional inverse omega-K algorithm that assumes an ideal flight trajectory, the IEOKA not only recovers the range cell migration accurately but also considers the motion errors including both range and phase errors due to the use of inverse extended Stolt interpolation. Furthermore, the azimuth dependence of the motion errors is discussed. A beam division method based on frequency division technique is presented to generate the azimuth-dependent phase error more accurately. The accuracy and effectiveness of the proposed algorithm have been verified using the generated SAR raw data consisting of the azimuth-dependent motion error.
机译:提出了一种高效,准确的逆扩展omega-K算法(IEOKA)来模拟具有轨迹偏差的合成孔径雷达(SAR)原始数据。与假定理想飞行轨迹的传统反ω-K反算法不同,IEOKA不仅可以准确地恢复距离单元的偏移,而且还考虑了由于使用反向扩展的Stolt插值而引起的运动误差,包括距离和相位误差。此外,讨论了运动误差的方位角依赖性。提出了一种基于分频技术的分束方法,可以更精确地产生与方位角有关的相位误差。使用所生成的SAR原始数据(由与方位角有关的运动误差组成)验证了所提算法的准确性和有效性。

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