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Learning Hazing to Dehazing: Towards Realistic Haze Generation for Real-World Image Dehazing

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Existing real-world image dehazing methods primarily attempt to fine-tune pre-trained models or adapt their inference procedures, thus heavily relying on the pre-trained models and associated training data. Moreover, restoring heavily distorted information under dense haze requires generative diffusion models, whose potential in dehazing remains underutilized partly due to their lengthy sampling processes. To address these limitations, we introduce a novel hazing-dehazing pipeline consisting of a Realistic Hazy Image Generation framework (HazeGen) and a Diffusion-based Dehazing framework (DiffDehaze). Specifically, HazeGen harnesses robust generative diffusion priors of real-world hazy images embedded in a pre-trained text-to-image diffusion model. By employing specialized hybrid training and blended sampling strategies, HazeGen produces realistic and diverse hazy images as high-quality training data for DiffDehaze. To alleviate the inefficiency and fidelity concerns associated with diffusion-based methods, DiffDehaze adopts an Accelerated Fidelity-Preserving Sampling process (AccSamp). The core of AccSamp is the Tiled Statistical Alignment Operation (AlignOp), which can provide a clean and faithful dehazing estimate within a small fraction of sampling steps to reduce complexity and enable effective fidelity guidance. Extensive experiments demonstrate the superior dehazing performance and visual quality of our approach over existing methods. The code is available at https://github.com/ruiyi-w/Learning-Hazing-to-Dehazing.

Ruiyi Wang, Yushuo Zheng, Zicheng Zhang, Chunyi Li, Shuaicheng Liu, Guangtao Zhai, Xiaohong Liu• 2025

Related benchmarks

TaskDatasetResultRank
Object DetectionCOCO (test)
mAP42.1
44
Remote Sensing Image DehazingSateHaze1k Thick
PSNR13.49
25
Remote Sensing Image DehazingSateHaze1k Thin
PSNR13.79
25
Remote Sensing Image DehazingSateHaze1k Moderate
PSNR15.55
25
Remote Sensing Image DehazingStateHaze1k (Average)
PSNR14.28
13
Veiling glare removalRealworld-MRL (test)
CLIPIQA0.428
12
Image RestorationScreen-Compound SL (test)
PSNR18.87
12
Veiling glare removalRealworld-SL (test)
CLIPIQA0.406
12
Image RestorationScreen-Compound MRL (test)
PSNR18.55
12
Depth EstimationKITTI Setting 2
AbsRel0.112
9
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