Learning to See Moving Objects in the Dark
Haiyang Jiang, Yinqiang Zheng
Abstract
Video surveillance systems have wide range of utilities, yet easily suffer from great quality degeneration under dim light circumstances. Industrial solutions mainly use extra near-infrared illuminations, even though it doesn't preserve color and texture information. A variety of researches enhanced low-light videos shot by visible light cameras, while they either relied on task specific preconditions or trained with synthetic datasets. We propose a novel optical system to capture bright and dark videos of the exact same scenes, generating training and groud truth pairs for authentic low-light video dataset. A fully convolutional network with 3D and 2D miscellaneous operations is utilized to learn an enhancement mapping with proper spatial-temporal transformation from raw camera sensor data to bright RGB videos. Experiments show promising results by our method, and it outperforms state-of-the-art low-light image/video enhancement algorithms.
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Install the CLIlune papers fulltext e60e2f28-0fd5-4619-b67b-a377baa9f4ddCited by top-tier papers31
- Seeing Dynamic Scene in the Dark: A High-Quality Video Dataset with Mechatronic AlignmentRuixing Wang, Xiaogang Xu, Chi-Wing Fu, Jiangbo Lu et al.ICCV 2021 · 160 citations
- Zero-Reference Low-Light Enhancement via Physical Quadruple PriorsWenjing Wang, Huan Yang, Jianlong Fu, Jiaying LiuCVPR 2024 · 90 citations
- Abandoning the Bayer-Filter to See in the DarkXingbo Dong, Wanyan Xu, Zhihui Miao, Lan Ma et al.CVPR 2022 · 66 citations
- Coherent Event Guided Low-Light Video EnhancementJinxiu Liang, Yixin Yang, Boyu Li, Peiqi Duan et al.ICCV 2023 · 54 citations
- Hyperspectral Image Denoising with Realistic DataTao Zhang, Ying Fu, Cheng LiICCV 2021 · 50 citations
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