Topography-dependent motion compensation: Application to UAVSAR data

Cathleen E. Jones, S. Hensley, T. Michel
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引用次数: 4

Abstract

The UAVSAR L-band synthetic aperture radar system has been designed for repeat track interferometry in support of Earth science applications that require high-precision measurements of small surface deformations over timescales from hours to years. Conventional motion compensation algorithms, which are based upon assumptions of a narrow beam and flat terrain, yield unacceptably large errors in areas with even moderate topographic relief, i.e., in most areas of interest. This often limits the ability to achieve sub-centimeter surface change detection over significant portions of an acquired scene. To reduce this source of error in the interferometric phase, we have implemented an advanced motion compensation algorithm that corrects for the scene topography and radar beam width. Here we discuss the algorithm used, its implementation in the UAVSAR data processor, and the improvement in interferometric phase and correlation achieved in areas with significant topographic relief.
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地形相关运动补偿:在UAVSAR数据中的应用
UAVSAR l波段合成孔径雷达系统设计用于重复跟踪干涉测量,以支持地球科学应用,这些应用需要在数小时到数年的时间尺度上高精度测量小的表面变形。传统的运动补偿算法基于窄梁和平坦地形的假设,即使在地形起伏适中的地区,也会产生不可接受的大误差,即在大多数感兴趣的地区。这通常限制了在获得的场景的重要部分上实现亚厘米表面变化检测的能力。为了减少干涉相位的这种误差源,我们实现了一种先进的运动补偿算法,该算法可以校正场景地形和雷达波束宽度。在这里,我们讨论了所使用的算法,它在UAVSAR数据处理器中的实现,以及在地形起伏较大的地区实现的干涉相位和相关的改进。
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