E-CIR: Event-Enhanced Continuous Intensity Recovery
Chen Song, Qixing Huang, Chandrajit Bajaj
摘要
A camera begins to sense light the moment we press the shutter button. During the exposure interval, relative motion between the scene and the camera causes motion blur, a common undesirable visual artifact. This paper presents E-CIR, which converts a blurry image into a sharp video represented as a parametric function from time to intensity. E-CIR leverages events as an auxiliary input. We discuss how to exploit the temporal event structure to construct the parametric bases. We demonstrate how to train a deep learning model to predict the function coefficients. To improve the appearance consistency, we further introduce a refinement module to propagate visual features among consecutive frames. Compared to state-of-the-art event-enhanced de-blurring approaches, E-CIR generates smoother and more realistic results. The implementation of E-CIR is available at https://github.com/chensong1995/E-CIR.
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引用它的顶会 Paper10
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它引用的顶会 Paper7
- DeblurGAN-v2: Deblurring (Orders-of-Magnitude) Faster and BetterOrest Kupyn, Tetiana Martyniuk, Junru Wu, Zhangyang WangICCV 2019 · 被引用 1,100 次
- Motion Deblurring with Real EventsFang Xu, Lei Yu, Bishan Wang, Wen Yang 等ICCV 2021 · 被引用 108 次
- Bringing Events into Video Deblurring with Non-consecutively Blurry FramesWei Shang, Dongwei Ren, Dongqing Zou, Jimmy S. Ren 等ICCV 2021 · 被引用 85 次
- EvIntSR-Net: Event Guided Multiple Latent Frames Reconstruction and Super-resolutionJin Han, Yixin Yang, Chu Zhou, Chao Xu 等ICCV 2021 · 被引用 57 次
- Time Lens: Event-Based Video Frame InterpolationStepan Tulyakov, Daniel Gehrig, Stamatios Georgoulis, Julius Erbach 等CVPR 2021
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