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Robust Nonlocal Low-Rank SAR Time Series Despeckling Considering Speckle Correlation by Total Variation Regularization

机译:强大的非局部低级SAR时间序列考虑通过总变化正规化考虑散斑相关性

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Outliers and speckle both corrupt time series of synthetic aperture radar (SAR) acquisitions. Owing to the coherence between SAR acquisitions, their speckle can no longer be regarded as independent. In this study, we propose an algorithm for nonlocal low-rank time series despeckling, which is robust against outliers and also specifically addresses speckle correlation between acquisitions. By imposing total variation regularization on the signal’s speckle component, the correlation between acquisitions can be identified, facilitating the extraction of outliers from unfiltered signals and the correlated speckle. This robustness against outliers also addresses matching errors and inaccuracies in the nonlocal similarity search. Such errors include mismatched data in the nonlocal estimation process, which degrade the denoising performance of conventional similarity-based filtering approaches. Multiple experiments on real and synthetic data assess the performance of the approach by comparing it with state-of-the-art methods. It provides filtering results of comparable quality but is not adversely affected by outliers. The source code is available at https://github.com/gbaierllrtv.
机译:异常值和斑点腐蚀时间序列的合成孔径雷达(SAR)采集。由于SAR收购之间的一致性,它们的斑点无法再被视为独立。在这项研究中,我们提出了一种用于非识别低级时间序列机除的算法,这对异常值具有鲁棒性,并且还具体地解决了采集之间的散斑相关性。通过在信号的散斑组件上施加总变化正则化,可以识别采集之间的相关性,从未过滤信号和相关斑点的提取。对异常值的这种稳健性还在非本体相似性搜索中解决了匹配的错误和不准确性。这些误差包括非识别估计过程中的错配数据,这降低了基于常规相似性的滤波方法的去噪性能。对实际和合成数据的多个实验通过将其与最先进的方法进行比较来评估方法的性能。它提供了相当质量的过滤结果,但对异常值没有不利影响。源代码可用 https://github.com / gbaier / nllrtv

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