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Hierarchical Bayesian Data Analysis in Radiometric SAR System Calibration: A Case Study on Transponder Calibration with RADARSAT-2 Data

机译:辐射SAR系统校准中的多层贝叶斯数据分析:以RADARSAT-2数据进行应答器校准的案例研究

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A synthetic aperture radar (SAR) system requires external absolute calibration so that radiometric measurements can be exploited in numerous scientific and commercial applications. Besides estimating a calibration factor, metrological standards also demand the derivation of a respective calibration uncertainty. This uncertainty is currently not systematically determined. Here for the first time it is proposed to use hierarchical modeling and Bayesian statistics as a consistent method for handling and analyzing the hierarchical data typically acquired during external calibration campaigns. Through the use of Markov chain Monte Carlo simulations, a joint posterior probability can be conveniently derived from measurement data despite the necessary grouping of data samples. The applicability of the method is demonstrated through a case study: The radar reflectivity of DLR’s new C-band Kalibri transponder is derived through a series of RADARSAT-2 acquisitions and a comparison with reference point targets (corner reflectors). The systematic derivation of calibration uncertainties is seen as an important step toward traceable radiometric calibration of synthetic aperture radars.
机译:合成孔径雷达(SAR)系统需要外部绝对校准,以便可以在许多科学和商业应用中利用辐射测量。除了估算校准因子外,计量标准还要求推导各自的校准不确定度。目前尚未系统地确定这种不确定性。在这里,首次建议使用分层建模和贝叶斯统计作为一种一致的方法来处理和分析通常在外部校准活动中获取的分层数据。通过使用马尔可夫链蒙特卡罗模拟,尽管需要对数据样本进行分组,也可以方便地从测量数据中得出联合后验概率。通过案例研究证明了该方法的适用性:DLR新型C波段Kalibri应答器的雷达反射率是通过一系列RADARSAT-2采集以及与参考点目标(角反射器)的比较得出的。校准不确定性的系统推导被视为迈向合成孔径雷达可追溯辐射校准的重要一步。

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