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AutoDIR: Automatic All-in-One Image Restoration with Latent Diffusion

About

We present AutoDIR, an innovative all-in-one image restoration system incorporating latent diffusion. AutoDIR excels in its ability to automatically identify and restore images suffering from a range of unknown degradations. AutoDIR offers intuitive open-vocabulary image editing, empowering users to customize and enhance images according to their preferences. Specifically, AutoDIR consists of two key stages: a Blind Image Quality Assessment (BIQA) stage based on a semantic-agnostic vision-language model which automatically detects unknown image degradations for input images, an All-in-One Image Restoration (AIR) stage utilizes structural-corrected latent diffusion which handles multiple types of image degradations. Extensive experimental evaluation demonstrates that AutoDIR outperforms state-of-the-art approaches for a wider range of image restoration tasks. The design of AutoDIR also enables flexible user control (via text prompt) and generalization to new tasks as a foundation model of image restoration. Project is available at: \url{https://jiangyitong.github.io/AutoDIR_webpage/}.

Yitong Jiang, Zhaoyang Zhang, Tianfan Xue, Jinwei Gu• 2023

Related benchmarks

TaskDatasetResultRank
Image DerainingRain within-distribution Standard
LPIPS0.139
25
Low-light Image EnhancementLow-light within-distribution Standard
LPIPS0.42
14
Image DeblurringMotion Blur Standard (within-distribution)
LPIPS0.161
14
Image DehazingHaze Standard (within-distribution)
LPIPS0.306
14
Low-light enhancementFoundIR-L
PSNR21.91
10
UHD EnhancementUHD-LL
PSNR22.52
10
Defocus DeblurringLSD
PSNR20.01
10
DehazingDense-Haze
PSNR12.33
10
Joint Denoising and EnhancementFoundIR-L+N
PSNR17.5
10
Non-Homogeneous DehazingNH-HAZE
PSNR12.71
10
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