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首页> 外文期刊>Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of >A Rise-Dimensional Modeling and Estimation Method for Flight Trajectory Error in Bistatic Forward-Looking SAR
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A Rise-Dimensional Modeling and Estimation Method for Flight Trajectory Error in Bistatic Forward-Looking SAR

机译:双基地前视SAR中飞行轨迹误差的上升维建模与估计方法

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Bistatic forward-looking synthetic aperture radar (BFSAR) is a kind of bistatic SAR system that can image forward-looking terrain in the flight direction of a moving platform. In BFSAR, compensation of the flight trajectory errors is of great significance to get a well-focused image. To accomplish an accurate motion compensation in image processing, a high-precision navigation system is needed. However, in many cases, due to the accuracy limit of such systems, flight trajectory errors are hard to be compensated correctly, causing mainly the resolution decrease in final images. In order to cope with such a problem, we propose a rise-dimensional modeling and estimation for flight trajectory error based on raw BFSAR data in this paper. To apply this method, we first carry out a preprocessing named azimuth-slowtime decoupling to deal with the spatially variant flight trajectory error before estimation. Then, an optimization model for flight trajectory estimation under the criterion of maximum image intensity is built. The solution to the optimization model is the accurate flight trajectory. Then, block coordinate descent technique is used to solve this optimization model. The processing of BFSAR data shows that the algorithm can obtain a more accurate estimation results, and generate better focused images compared with the existing trajectory estimation method.
机译:双基地前视合成孔径雷达(BFSAR)是一种双基地SAR系统,可以在移动平台的飞行方向上成像前瞻地形。在BFSAR中,补偿飞行轨迹误差对获得聚焦良好的图像具有重要意义。为了在图像处理中实现精确的运动补偿,需要高精度的导航系统。然而,在许多情况下,由于这种系统的精度限制,飞行轨迹误差难以正确地补偿,主要导致最终图像的分辨率降低。为了解决这一问题,本文提出了一种基于原始BFSAR数据的上升维建模和飞行轨迹误差估计方法。为了应用这种方法,我们首先进行名为方位角慢时解耦的预处理,以在估计之前处理空间变化的飞行轨迹误差。然后,建立了以最大图像强度为准则的飞行轨迹估计的优化模型。优化模型的解决方案是准确的飞行轨迹。然后,采用块坐标下降技术求解该优化模型。 BFSAR数据的处理表明,与现有的轨迹估计方法相比,该算法可以获得更准确的估计结果,并生成更好的聚焦图像。

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