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Fusing Transferred Priors and Physics-based Decomposition for Underwater Image Enhancement

About

The underwater images are captured within diverse water-medium conditions, leading to complex degradation, including color bias, low contrast, and blur effect. Recently, learning-based methods have demonstrated their potential for underwater image enhancement (UIE). However, most of the previous work focus on the training strategy or network design to make the enhanced result aligned well with the labels in datasets, ignoring that the labels are selected from the enhanced results of previous UIE methods and these pseudo-labels are noisy. Consequently, the performance of their models is not satisfactory to a certain extent. However, collecting the true labels of the underwater images is challenging. In this work, we propose a transfer learning-based UIE that does not require underwater images to have paired noisy or true labels for learning. Instead, the UIE task is first divided into global color correction, haze removal, and background noise suppression following the underwater physics. Then multiple types of prior from other vision tasks are leveraged as cross-domain supervision in each step. In this way, a novel UIE is available via transfer learning, and the physics-aligned UIE decomposition provides theoretical soundness. Qualitative and quantitative experiments demonstrate that our proposal based on physics and priors fusion achieves SOTA performance in the UIE task and effectively boosts downstream vision tasks, significantly outperforming benchmark methods. Project repo: https://github.com/Haru2022/P2-UIE.

Haochen Hu, Yanrui Bin, Zhengyan Zhang, Minchen Wei, Chih-yung Wen, Bing Wang• 2026

Related benchmarks

TaskDatasetResultRank
Underwater Image EnhancementEUVP--
34
Underwater Image EnhancementUnderwater Image Enhancement (aggregated)
Average Rank1.11
11
Underwater Image EnhancementReplica
PSNR17.5133
11
Underwater Image EnhancementLSUI
PAQ2PIQ73.417
11
Underwater Image EnhancementEUVP, LSUI, and P2UIE 1473
Average Rank1.11
11
Underwater Image EnhancementP2UIE 1473
PAQ2PIQ73.315
11
Underwater Image EnhancementUWCNN
PSNR15.2018
9
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