Image Deraining via Self-supervised Reinforcement Learning

Fuente: arXiv
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Main Authors: Liao, He-Hao, Peng, Yan-Tsung, Chu, Wen-Tao, Hsieh, Ping-Chun, Tsai, Chung-Chi
Format: Preprint
Published: 2024
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author Liao, He-Hao
Peng, Yan-Tsung
Chu, Wen-Tao
Hsieh, Ping-Chun
Tsai, Chung-Chi
author_facet Liao, He-Hao
Peng, Yan-Tsung
Chu, Wen-Tao
Hsieh, Ping-Chun
Tsai, Chung-Chi
contents The quality of images captured outdoors is often affected by the weather. One factor that interferes with sight is rain, which can obstruct the view of observers and computer vision applications that rely on those images. The work aims to recover rain images by removing rain streaks via Self-supervised Reinforcement Learning (RL) for image deraining (SRL-Derain). We locate rain streak pixels from the input rain image via dictionary learning and use pixel-wise RL agents to take multiple inpainting actions to remove rain progressively. To our knowledge, this work is the first attempt where self-supervised RL is applied to image deraining. Experimental results on several benchmark image-deraining datasets show that the proposed SRL-Derain performs favorably against state-of-the-art few-shot and self-supervised deraining and denoising methods.
format Preprint
id arxiv_https___arxiv_org_abs_2403_18270
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Image Deraining via Self-supervised Reinforcement Learning
Liao, He-Hao
Peng, Yan-Tsung
Chu, Wen-Tao
Hsieh, Ping-Chun
Tsai, Chung-Chi
Computer Vision and Pattern Recognition
Image and Video Processing
The quality of images captured outdoors is often affected by the weather. One factor that interferes with sight is rain, which can obstruct the view of observers and computer vision applications that rely on those images. The work aims to recover rain images by removing rain streaks via Self-supervised Reinforcement Learning (RL) for image deraining (SRL-Derain). We locate rain streak pixels from the input rain image via dictionary learning and use pixel-wise RL agents to take multiple inpainting actions to remove rain progressively. To our knowledge, this work is the first attempt where self-supervised RL is applied to image deraining. Experimental results on several benchmark image-deraining datasets show that the proposed SRL-Derain performs favorably against state-of-the-art few-shot and self-supervised deraining and denoising methods.
title Image Deraining via Self-supervised Reinforcement Learning
topic Computer Vision and Pattern Recognition
Image and Video Processing
url https://arxiv.org/abs/2403.18270