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Restore Anything with Masks: Leveraging Mask Image Modeling for Blind All-in-One Image Restoration

About

All-in-one image restoration aims to handle multiple degradation types using one model. This paper proposes a simple pipeline for all-in-one blind image restoration to Restore Anything with Masks (RAM). We focus on the image content by utilizing Mask Image Modeling to extract intrinsic image information rather than distinguishing degradation types like other methods. Our pipeline consists of two stages: masked image pre-training and fine-tuning with mask attribute conductance. We design a straightforward masking pre-training approach specifically tailored for all-in-one image restoration. This approach enhances networks to prioritize the extraction of image content priors from various degradations, resulting in a more balanced performance across different restoration tasks and achieving stronger overall results. To bridge the gap of input integrity while preserving learned image priors as much as possible, we selectively fine-tuned a small portion of the layers. Specifically, the importance of each layer is ranked by the proposed Mask Attribute Conductance (MAC), and the layers with higher contributions are selected for finetuning. Extensive experiments demonstrate that our method achieves state-of-the-art performance. Our code and model will be released at \href{https://github.com/Dragonisss/RAM}{https://github.com/Dragonisss/RAM}.

Chu-Jie Qin, Rui-Qi Wu, Zikun Liu, Xin Lin, Chun-Le Guo, Hyun Hee Park, Chongyi Li• 2024

Related benchmarks

TaskDatasetResultRank
Image DenoisingBSD68
PSNR33.16
404
DerainingRain100L
PSNR28.16
196
Image DehazingSOTS Outdoor
PSNR28.23
124
Image DehazingSOTS Indoor
PSNR13.09
83
Low-light Image EnhancementLOL v1.0 (test)
PSNR26.24
35
Image RestorationCDD 11 (test)
PSNR (Low)14.41
29
Low-light Image EnhancementLOL_Blur Low-light 1.0 (test)
PSNR9.1
22
DerainingRain13K (Test2800)
PSNR31.2
12
DerainingRain13K (Test100)
PSNR25.72
12
DerainingRain13K (Test1200)
PSNR31.14
12
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