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Effects of Orbit and Pointing Geometry of a Spaceborne Formation for Monostatic-Bistatic Radargrammetry on Terrain Elevation Measurement Accuracy

机译:单基地双基地雷达图星空编队的轨道和指向几何形状对地形高程测量精度的影响

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摘要

During the last decade a methodology for the reconstruction of surface relief by Synthetic Aperture Radar (SAR) measurements – SAR interferometry – has become a standard. Different techniques developed before, such as stereo-radargrammetry, have been experienced from space only in very limiting geometries and time series, and, hence, branded as less accurate. However, novel formation flying configurations achievable by modern spacecraft allow fulfillment of SAR missions able to produce pairs of monostatic-bistatic images gathered simultaneously, with programmed looking angles. Hence it is possible to achieve large antenna separations, adequate for exploiting to the utmost the stereoscopic effect, and to make negligible time decorrelation, a strong liming factor for repeat-pass stereo-radargrammetric techniques. This paper reports on design of a monostatic-bistatic mission, in terms of orbit and pointing geometry, and taking into account present generation SAR and technology for accurate relative navigation. Performances of different methods for monostatic-bistatic stereo-radargrammetry are then evaluated, showing the possibility to determine the local surface relief with a metric accuracy over a wide range of Earth latitudes.
机译:在过去的十年中,通过合成孔径雷达(SAR)测量重建表面起伏的方法-SAR干涉仪-已成为一种标准。以前开发的不同技术(例如,立体雷达图)仅在非常有限的几何形状和时间序列中从太空中经历过,因此被称为准确性较低。但是,现代航天器可以实现的新颖编队飞行配置可以完成SAR任务,从而能够产生以编程的视角同时收集的成对的单静态-双静态图像。因此,有可能实现较大的天线间隔,足以充分利用立体效果,并使时间去相关性可以忽略不计,这是重复通过立体声雷达测绘技术的强大限制因素。本文从轨道和指向几何的角度,报告了单基地-双基地任务的设计,并考虑了当前的SAR和精确相对导航技术。然后评估了单静态-双静态立体弧度测量的不同方法的性能,显示了在宽广的地球纬度范围内以公制精度确定局部表面起伏的可能性。

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