A Global Registration Method for Satellite Image Series

Charles Hessel, Carlo de Franchis, Gabriele Facciolo, Jean‐Michel Morel · 2021

Image registration is a fundamental tool of remote sensing. The recent proliferatio of earth observation satellites has opened the way to the analysis of long image time series with denser temporal repetition. Given this wealth of images, it is crucial to design automatic tools to process them. We thus propose a method for the global registration of satellite image time series, that leverages their redundancy to improve in precision and robustness. By computing the relative displacement for all possible pairs of images, we are able to discard outliers and minimize the number of misaligned images. Experiments on synthetic data show that longer image series are registered with a higher precision.

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