Papers › Learning Event-Based Motion Deblurring

Learning Event-Based Motion Deblurring

13 Apr 2020CVPR 2020 6arXiv:2004.05794archive 2025-07-28

Zhe Jiang, Yu Zhang, Dongqing Zou, Jimmy Ren, Jiancheng Lv, Yebin Liu

Recovering sharp video sequence from a motion-blurred image is highly ill-posed due to the significant loss of motion information in the blurring process. For event-based cameras, however, fast motion can be captured as events at high time rate, raising new opportunities to exploring effective solutions. In this paper, we start from a sequential formulation of event-based motion deblurring, then show how its optimization can be unfolded with a novel end-to-end deep architecture. The proposed architecture is a convolutional recurrent neural network that integrates visual and temporal knowledge of both global and local scales in principled manner. To further improve the reconstruction, we propose a differentiable directional event filtering module to effectively extract rich boundary prior from the stream of events. We conduct extensive experiments on the synthetic GoPro dataset and a large newly introduced dataset captured by a DAVIS240C camera. The proposed approach achieves state-of-the-art reconstruction quality, and generalizes better to handling real-world motion blur.

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Tasks

DeblurringImage Deblurring

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Deblurring GoPro Learning Event-Based Motion Deblurring PSNR 31.79 #41 of 56 Archive leaderboard report
Deblurring GoPro Learning Event-Based Motion Deblurring SSIM 0.949 #41 of 56 Archive leaderboard report
Image Deblurring GoPro Learning Event-Based Motion Deblurring PSNR 31.79 #38 of 55 Archive leaderboard report
Image Deblurring GoPro Learning Event-Based Motion Deblurring SSIM 0.949 #38 of 55 Archive leaderboard report

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