Online-Updated High-Order Collaborative Networks for Single Image Deraining
Cong Wang, Jinshan Pan, Xiao-Ming Wu
Abstract
Single image deraining is an important and challenging task for some downstream artificial intelligence applications such as video surveillance and self-driving systems. Most of the existing deep-learning-based methods constrain the network to generate derained images but few of them explore features from intermediate layers, different levels, and different modules which are beneficial for rain streaks removal. In this paper, we propose a high-order collaborative network with multi-scale compact constraints and a bidirectional scale-content similarity mining module to exploit features from deep networks externally and internally for rain streaks removal. Externally, we design a deraining framework with three sub-networks trained in a collaborative manner, where the bottom network transmits intermediate features to the middle network which also receives shallower rainy features from the top network and sends back features to the bottom network. Internally, we enforce multi-scale compact constraints on the intermediate layers of deep networks to learn useful features via a Laplacian pyramid. Further, we develop a bidirectional scale-content similarity mining module to explore features at different scales in a down-toup and up-to-down manner. To improve the model performance on real-world images, we propose an online-update learning approach, which uses real-world rainy images to fine-tune the network and update the deraining results in a self-supervised manner. Extensive experiments demonstrate that our proposed method performs favorably against eleven state-of-the-art methods on five public synthetic datasets and one real-world dataset. The source code will be available at https://supercong94.wixsite.com/supercong94 .
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Install the CLIlune papers fulltext 6949ba50-d973-4001-9b5e-e7ee36427ef3Cited by top-tier papers5
- PromptRestorer: A Prompting Image Restoration Method with Degradation PerceptionCong Wang, Jinshan Pan, Wei Wang, Jiangxin Dong et al.NeurIPS 2023 · 109 citations
- Unpaired Photo-realistic Image Deraining with Energy-informed Diffusion ModelYuanbo Wen, Tao Gao, Ting ChenACM MM 2024 · 11 citations
- Intra and Inter Parser-Prompted Transformers for Effective Image RestorationCong Wang, Jinshan Pan, Liyan Wang, Wei WangAAAI 2025 · 7 citations
- Harnessing Joint Rain-/Detail-aware Representations to Eliminate Intricate RainsWu Ran, Peirong Ma, Zhiquan He, Hao Ren et al.ICLR 2024 · 5 citations
- FourierMamba: Fourier Learning Integration with State Space Models for Image DerainingDong Li, Yidi Liu, Xueyang Fu, Jie Huang et al.ICML 2025
Builds on8
- DCSFN: Deep Cross-scale Fusion Network for Single Image Rain RemovalCong Wang, Xiaoying Xing, Yutong Wu, Zhixun Su et al.ACM MM 2020 · 112 citations
- Joint Self-Attention and Scale-Aggregation for Self-Calibrated Deraining NetworkCong Wang, Yutong Wu, Zhixun Su, Junyang ChenACM MM 2020 · 76 citations
- Multi-Scale Progressive Fusion Network for Single Image DerainingKui Jiang, Zhongyuan Wang, Peng Yi, Chen Chen et al.CVPR 2020
- Syn2Real Transfer Learning for Image Deraining Using Gaussian ProcessesRajeev Yasarla, Vishwanath A. Sindagi, Vishal M. PatelCVPR 2020
- Detail-recovery Image Deraining via Context Aggregation NetworksSen Deng, Mingqiang Wei, Jun Wang, Yidan Feng et al.CVPR 2020
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