Neural Global Shutter: Learn to Restore Video from a Rolling Shutter Camera with Global Reset Feature
Zhixiang Wang, Xiang Ji, Jia-Bin Huang, Shin'ichi Satoh, Xiao Zhou, Yinqiang Zheng
Abstract
Most computer vision systems assume distortion-free images as inputs. The widely used rolling-shutter (RS) image sensors, however, suffer from geometric distortion when the camera and object undergo motion during capture. Extensive researches have been conducted on correcting RS distortions. However, most of the existing work relies heavily on the prior assumptions of scenes or motions. Besides, the motion estimation steps are either oversimplified or computationally inefficient due to the heavy flow warping, limiting their applicability. In this paper, we investigate using rolling shutter with a global reset feature (RSGR) to restore clean global shutter (GS) videos. This feature enables us to turn the rectification problem into a deblur-like one, getting rid of inaccurate and costly explicit motion estimation. First, we build an optic system that captures paired RSGR/GS videos. Second, we develop a novel algorithm incorporating spatial and temporal designs to correct the spatial-varying RSGR distortion. Third, we demonstrate that existing image-to-image translation algorithms can recover clean GS videos from distorted RSGR inputs, yet our algorithm achieves the best performance with the specific designs. Our rendered results are not only visually appealing but also beneficial to downstream tasks. Compared to the state-of-the-art RS solution, our RSGR solution is superior in both effectiveness and efficiency. Considering it is easy to realize without changing the hardware, we believe our RSGR solution can potentially replace the RS solution in taking distortion-free videos with low noise and low budget.
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Install the CLIlune papers fulltext 4ba68d74-82f4-4b86-9ccd-105c1cf34ee7Cited by top-tier papers6
- Towards Nonlinear-Motion-Aware and Occlusion-Robust Rolling Shutter CorrectionDelin Qu, Yizhen Lao, Zhigang Wang, Dong Wang et al.ICCV 2023 · 11 citations
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- Single Image Deblurring with Row-dependent Blur MagnitudeXiang Ji, Zhixiang Wang, Shin'ichi Satoh, Yinqiang ZhengICCV 2023 · 6 citations
- Image as an Imu: Estimating Camera Motion From a Single Motion-Blurred ImageJerred Chen, Ronald ClarkICCV 2025
- Joint Appearance and Motion Learning for Efficient Rolling Shutter CorrectionBin Fan, Yuxin Mao, Yuchao Dai, Zhexiong Wan et al.CVPR 2023
Builds on4
- DeblurGAN-v2: Deblurring (Orders-of-Magnitude) Faster and BetterOrest Kupyn, Tetiana Martyniuk, Junru Wu, Zhangyang WangICCV 2019 · 1,100 citations
- Coordinate Attention for Efficient Mobile Network DesignQibin Hou, Daquan Zhou, Jiashi FengCVPR 2021
- Towards Rolling Shutter Correction and Deblurring in Dynamic ScenesZhihang Zhong, Yinqiang Zheng, Imari SatoCVPR 2021
- Structure-Preserving Super Resolution With Gradient GuidanceCheng Ma, Yongming Rao, Yean Cheng, Ce Chen et al.CVPR 2020
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