利用长基线InSAR测量潮滩地形

Duk‐jin Kim
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引用次数: 2

摘要

潮滩位于陆地和海洋之间,很容易受到环境变化的影响。这些地方现在面临着许多与气候变化和人为影响有关的环境挑战。与潮滩沉积或侵蚀有关的地形变化是环境变化的最明显标志。潮滩通常地形变化不大,每天都有退潮和涨潮。由于退潮和涨潮导致相干性较低,传统的SAR干涉技术(如重复通道InSAR)无法在这些潮滩上生成数字高程模型(dem)。在这项研究中,我们开发了一种具有小模糊高度的长基线单通道机载干涉SAR (InSAR)系统。我们使用机载InSAR系统和TanDEM-X在朝鲜半岛西海岸的几个潮滩收集了InSAR数据。TanDEM-X是一种星载准单通干涉SAR系统。我们还研究了DEM的预期精度作为基线和相干性的函数。一般来说,较长的基线更适合生成非常敏感和精细的DEM,这是潮滩所绝对需要的,因为较长的基线具有较小的模糊高度。但较长的基线也可能由于基线去相关而导致低相干性。随着基线的增加,共光谱区域也减少,导致相干性变差,垂直精度变差。在此基础上,提出了机载InSAR系统和星载SAR系统的最优基线。最后,我们将长基线机载InSAR和TanDEM-X构建的地形与GPS-RTK测量结果进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Measurement of Tidal Flat Topography using Long-Baseline InSAR
Tidal flats which are located between land and ocean are very vulnerable to the change of environment. These places are now facing many environmental challenges related to climate change and human-induced impacts. Topographic changes related to sedimentation or erosion in tidal flats are the most evident sign of the environmental changes. The tidal flats usually have small variations of topographies and experience ebb and flood tides every day. The conventional SAR interferometric techniques (such as repeat-pass InSAR) cannot be applied for generating digital elevation models (DEMs) in these tidal flats because of low coherence caused by ebb and flood tides. In this study, we developed a long-baseline single-pass airborne interferometric SAR (InSAR) system that has a small ambiguity height. We collected InSAR data in several tidal flats, the west coast of Korean peninsula, using our airborne InSAR system and TanDEM-X. The TanDEM-X is a space borne quasi-single pass interferometic SAR system. We also investigated the expected accuracy of DEM as function of baseline and coherence. In general, longer baseline is better for generating very sensitive and fine DEM that is absolutely needed for tidal flats, because longer baseline has smaller ambiguity height. But longer baseline can also cause low coherence due to baseline decorrelation. As the baseline increase, common spectral region is also decreased resulting in poorer coherence and poor vertical accuracy. Based on these investigations, we proposed optimal baselines for airborne InSAR system and space-borne SAR system. Finally, we compared the constructed topographies from our long-baseline airborne InSAR and TanDEM-X with GPS-RTK measurements.
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