Papers › Fast Underwater Image Enhancement for Improved Visual Perception

Fast Underwater Image Enhancement for Improved Visual Perception

23 Mar 2019arXiv:1903.09766archive 2025-07-28

Md Jahidul Islam, Youya Xia, Junaed Sattar

In this paper, we present a conditional generative adversarial network-based model for real-time underwater image enhancement. To supervise the adversarial training, we formulate an objective function that evaluates the perceptual image quality based on its global content, color, local texture, and style information. We also present EUVP, a large-scale dataset of a paired and unpaired collection of underwater images (of `poor' and `good' quality) that are captured using seven different cameras over various visibility conditions during oceanic explorations and human-robot collaborative experiments. In addition, we perform several qualitative and quantitative evaluations which suggest that the proposed model can learn to enhance underwater image quality from both paired and unpaired training. More importantly, the enhanced images provide improved performances of standard models for underwater object detection, human pose estimation, and saliency prediction. These results validate that it is suitable for real-time preprocessing in the autonomy pipeline by visually-guided underwater robots. The model and associated training pipelines are available at https://github.com/xahidbuffon/funie-gan.

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xahidbuffon/funie-gan officialmentioned in papermentioned on GitHubtf report
IRVLab/funie-gan mentioned on GitHubtf report
rowantseng/FUnIE-GAN-PyTorch mentioned on GitHubpytorch report

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Tasks

Image EnhancementObject DetectionPose EstimationSaliency PredictionUnderwater Image Restorationobject-detection

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Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Underwater Image Restoration LSUI FUnIE PSNR 19.37 #5 of 6 Archive leaderboard report

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