CEDFlow: Latent Contour Enhancement for Dark Optical Flow Estimation
Fengyuan Zuo, Zhaolin Xiao, Haiyan Jin, Haonan Su
摘要
Accurately computing optical flow in low-contrast and noisy dark images is challenging, especially when contour information is degraded or difficult to extract. This paper proposes CEDFlow, a latent space contour enhancement for estimating optical flow in dark environments. By leveraging spatial frequency feature decomposition, CEDFlow effectively encodes local and global motion features. Importantly, we introduce the 2nd-order Gaussian difference operation to select salient contour features in the latent space precisely. It is specifically designed for large-scale contour components essential in dark optical flow estimation. Experimental results on the FCDN and VBOF datasets demonstrate that CEDFlow outperforms state-of-the-art methods in terms of the EPE index and produces more accurate and robust flow estimation. Our code is available at: https://github.com/xautstuzfy.
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引用它的顶会 Paper4
- FlowFM: Advancing Dark Optical Flow Estimation with Flow MatchingFengyuan Zuo, Haiyan Jin, Yuanlin Zhang, Zhaolin Xiao 等CVPR 2026
- Multi-Modal Synergistic Implicit Image Enhancement for Efficient Optical Flow EstimationWeichen Dai, Hexing Wu, Xiaoyang Weng, Yuxin Zheng 等CVPR 2025
- FlowAnyTime: Efficient Fine-tuning with Intra-Inter Frame Distillation for All-Weather Optical Flow EstimationZixu Wang, Hongye Chen, Xiaochun Zou, Congxuan Zhang 等AAAI 2026
- ARFlow: Auto-regressive Optical Flow Estimation for Arbitrary-Length Videos via Progressive Next-Frame ForecastingJiuming Liu, Mengmeng Liu, Siting Zhu, Yunpeng Zhang 等ICLR 2026
它引用的顶会 Paper9
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- Global Matching with Overlapping Attention for Optical Flow EstimationShiyu Zhao, Long Zhao, Zhixing Zhang, Enyu Zhou 等CVPR 2022 · 被引用 85 次
- Learning Optical Flow with Adaptive Graph ReasoningAo Luo, Fan Yang, Kunming Luo, Xin Li 等AAAI 2022 · 被引用 73 次
- An Image-to-video Model for Real-Time Video EnhancementDongyu She, Kun XuACM MM 2022 · 被引用 6 次
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