Unsupervised Deep Video Denoising with Untrained Network
Huan Zheng, Tongyao Pang, Hui Ji
摘要
Deep learning has become a prominent tool for video denoising. However, most existing deep video denoising methods require supervised training using noise-free videos. Collecting noise-free videos can be costly and challenging in many applications. Therefore, this paper aims to develop an unsupervised deep learning method for video denoising that only uses a single test noisy video for training. To achieve this, an unsupervised loss function is presented that provides an unbiased estimator of its supervised counterpart defined on noise-free video. Additionally, a temporal attention mechanism is proposed to exploit redundancy among frames. The experiments on video denoising demonstrate that the proposed unsupervised method outperforms existing unsupervised methods and remains competitive against recent supervised deep learning methods.
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引用它的顶会 Paper8
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它引用的顶会 Paper10
- Patch Craft: Video Denoising by Deep Modeling and Patch MatchingGregory Vaksman, Michael Elad, Peyman MilanfarICCV 2021 · 被引用 79 次
- Unsupervised Deep Video DenoisingDev Yashpal Sheth, Sreyas Mohan, Joshua L. Vincent, Ramon Manzorro 等ICCV 2021 · 被引用 78 次
- Efficient Multi-Stage Video Denoising With Recurrent Spatio-Temporal FusionMatteo Maggioni, Yibin Huang, Cheng Li, Shuai Xiao 等CVPR 2021
- BasicVSR: The Search for Essential Components in Video Super-Resolution and BeyondKelvin C. K. Chan, Xintao Wang, Ke Yu, Chao Dong 等CVPR 2021
- Self2Self With Dropout: Learning Self-Supervised Denoising From Single ImageYuhui Quan, Mingqin Chen, Tongyao Pang, Hui JiCVPR 2020
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