NightRain: Nighttime Video Deraining via Adaptive-Rain-Removal and Adaptive-Correction
Beibei Lin, Yeying Jin, Wending Yan, Wei Ye, Yuan Yuan, Shunli Zhang, Robby T. Tan
Abstract
Existing deep-learning-based methods for nighttime video deraining rely on synthetic data due to the absence of real-world paired data. However, the intricacies of the real world, particularly with the presence of light effects and low-light regions affected by noise, create significant domain gaps, hampering synthetic-trained models in removing rain streaks properly and leading to over-saturation and color shifts. Motivated by this, we introduce NightRain, a novel nighttime video deraining method with adaptive-rain-removal and adaptive-correction. Our adaptive-rain-removal uses unlabeled rain videos to enable our model to derain real-world rain videos, particularly in regions affected by complex light effects. The idea is to allow our model to obtain rain-free regions based on the confidence scores. Once rain-free regions and the corresponding regions from our input are obtained, we can have region-based paired real data. These paired data are used to train our model using a teacher-student framework, allowing the model to iteratively learn from less challenging regions to more challenging regions. Our adaptive-correction aims to rectify errors in our model's predictions, such as over-saturation and color shifts. The idea is to learn from clear night input training videos based on the differences or distance between those input videos and their corresponding predictions. Our model learns from these differences, compelling our model to correct the errors. From extensive experiments, our method demonstrates state-of-the-art performance. It achieves a PSNR of 26.73dB, surpassing existing nighttime video deraining methods by a substantial margin of 13.7%.
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Install the CLIlune papers fulltext 56bf9664-a3d6-4e9e-abbf-5374c08a5695Cited by top-tier papers11
- Enhancing Visibility in Nighttime Haze Images Using Guided APSF and Gradient Adaptive ConvolutionYeying Jin, Beibei Lin, Wending Yan, Yuan Yuan et al.ACM MM 2023 · 68 citations
- NightHaze: Nighttime Image Dehazing via Self-Prior LearningBeibei Lin, Yeying Jin, Wending Yan, Wei Ye et al.AAAI 2025 · 36 citations
- Learning Truncated Causal History Model for Video RestorationAmirhosein Ghasemabadi, Muhammad Kamran Janjua, Mohammad Salameh, Di NiuNeurIPS 2024 · 28 citations
- Boosting Image De-Raining via Central-Surrounding Synergistic ConvolutionLong Peng, Yang Wang, Xin Di, Peizhe Xia et al.AAAI 2025 · 27 citations
- Rethinking Nighttime Image Deraining via Learnable Color Space TransformationQiyuan Guan, Xiang Chen, Guiyue Jin, Jiyu Jin et al.NeurIPS 2025 · 10 citations
Builds on9
- Flexible Diffusion Modeling of Long VideosWilliam Harvey, Saeid Naderiparizi, Vaden Masrani, Christian Weilbach et al.NeurIPS 2022 · 384 citations
- Enhancing Visibility in Nighttime Haze Images Using Guided APSF and Gradient Adaptive ConvolutionYeying Jin, Beibei Lin, Wending Yan, Yuan Yuan et al.ACM MM 2023 · 68 citations
- UConNet: Unsupervised Controllable Network for Image and Video DerainingJun-Hao Zhuang, Yi-Si Luo, Xile Zhao, Tai-Xiang Jiang et al.ACM MM 2022 · 8 citations
- Blindly Assess Image Quality in the Wild Guided by a Self-Adaptive Hyper NetworkShaolin Su, Qingsen Yan, Yu Zhu, Cheng Zhang et al.CVPR 2020
- Self-Learning Video Rain Streak Removal: When Cyclic Consistency Meets Temporal CorrespondenceWenhan Yang, Robby T. Tan, Shiqi Wang, Jiaying LiuCVPR 2020
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