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Cloud Removal in Hyperspectral Satellite Images Using Low-rank Tensor Completionopen access

Authors
Vo, Chuong HoangMai, Truong Thanh NhatLee, Chul
Issue Date
2024
Publisher
IEEE
Keywords
Image Acquisition; Cloud Removal; Completion Algorithms; Hyperspectral; Hyperspectral Satellite; Joint Optimization; Optimization Problems; Regularization Function; Satellite Images; Tensor Completion; Unfoldings; Satellite Imagery
Citation
2024 Asia Pacific Signal and Information Processing Association Annual Summit and Conference (APSIPA ASC)
Journal Title
2024 Asia Pacific Signal and Information Processing Association Annual Summit and Conference (APSIPA ASC)
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/57922
DOI
10.1109/APSIPAASC63619.2025.10848562
ISSN
2640-009X
2640-0103
Abstract
We propose an unfolding-based low-rank tensor completion (LRTC) algorithm for cloud removal in hyperspectral satellite images. We first formulate cloud removal as an LRTC-based joint optimization problem, incorporating handcrafted priors for hyperspectral image acquisition and implicit regularization functions to compensate for modeling inaccuracies. We then solve the optimization problem iteratively and develop a multistage deep unfolded network. In this network, each stage corresponds to an iteration of the iterative algorithm in which the optimization variables and regularizers are updated using closed-form solutions and learned deep networks, respectively. Experimental results demonstrate that the proposed algorithm achieves better restoration performance than state-of-the-art algorithms in both quantitative and qualitative comparisons. © 2024 IEEE.
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