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Coarse to Fine: Image Restoration Boosted by Multi-Scale Low-Rank Tensor Completion

2022-03-29 02:01:57
Rui Lin, Cong Chen, Ngai Wong

Abstract

Existing low-rank tensor completion (LRTC) approaches aim at restoring a partially observed tensor by imposing a global low-rank constraint on the underlying completed tensor. However, such a global rank assumption suffers the trade-off between restoring the originally details-lacking parts and neglecting the potentially complex objects, making the completion performance unsatisfactory on both sides. To address this problem, we propose a novel and practical strategy for image restoration that restores the partially observed tensor in a coarse-to-fine (C2F) manner, which gets rid of such trade-off by searching proper local ranks for both low- and high-rank parts. Extensive experiments are conducted to demonstrate the superiority of the proposed C2F scheme. The codes are available at: this https URL.

Abstract (translated)

URL

https://arxiv.org/abs/2203.15189

PDF

https://arxiv.org/pdf/2203.15189.pdf


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