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Theory and Statistical Description of the Enhanced Multi-Temporal InSAR (E-MTInSAR) Noise-Filtering Algorithm

机译:增强型多时间InSAR(E-MTInSAR)噪声过滤算法的理论和统计描述

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In this work, the statistical fundaments of the recently proposed enhanced, multi-temporal interferometric synthetic aperture radar (InSAR) noise-filtering (E-MTInSAR) technique is addressed. The adopted noise-filtering algorithm is incorporated into the improved extended Minimum Cost Flow (EMCF) Small Baseline Subset (SBAS) differential interferometric SAR (InSAR) processing chain, which has extensively been used for the generation of Earth’s surface displacement time-series in several different contexts. Originally, the input of the InSAR EMCF-SBAS processing toolbox consisted of a sequence of multi-looked, small baseline interferograms, which were unwrapped using the space-time EMCF phase unwrapping algorithm. Subsequently, the unwrapped interferograms were inverted through the SBAS algorithm to retrieve the expected InSAR deformation products. The improved processing chain has complemented the original codes with two additional steps. In particular, a new multi-temporal noise-filtering algorithm for sequences of time-redundant multi-looked DInSAR interferograms, followed by a proper interferogram selection step, has been proposed. This research study is aimed at primarily assessing the performance of the E-MTInSAR noise-filtering algorithm from a theoretical perspective. To this aim, the principles of directional statistics and errors propagation are exploited. Experimental results, carried out by applying the E-MTInSAR algorithm to a sequence of SAR data collected over the Los Angeles bay area, have been used to corroborate the academic outcome of this research.
机译:在这项工作中,解决了最近提出的增强型多时间干涉合成孔径雷达(InSAR)噪声过滤(E-MTInSAR)技术的统计基础。所采用的噪声过滤算法已合并到改进的扩展的最小成本流(EMCF)小基线子集(SBAS)差分干涉SAR(InSAR)处理链中,该链已广泛用于生成地球表面位移时间序列,不同的环境。最初,InSAR EMCF-SBAS处理工具箱的输入由一系列多眼的小基线干涉图组成,这些干涉图使用时空EMCF相位展开算法展开。随后,展开的干涉图通过SBAS算法反转,以检索预期的InSAR变形产物。改进的处理链通过两个附加步骤对原始代码进行了补充。尤其是,针对时间冗余的多视DInSAR干涉图序列,提出了一种新的多时间噪声滤波算法,然后进行了适当的干涉图选择步骤。本研究旨在从理论角度初步评估E-MTInSAR噪声过滤算法的性能。为了这个目的,利用了方向统计和误差传播的原理。通过将E-MTInSAR算法应用于在洛杉矶湾地区收集到的一系列SAR数据而获得的实验结果已用于证实这项研究的学术成果。

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