Unsupervised Deep Video Denoising
Dev Yashpal Sheth, Sreyas Mohan, Joshua L. Vincent, Ramon Manzorro, Peter A. Crozier, Mitesh M. Khapra, Eero P. Simoncelli, Carlos Fernandez-Granda
摘要
Deep convolutional neural networks (CNNs) for video denoising are typically trained with supervision, assuming the availability of clean videos. However, in many applications, such as microscopy, noiseless videos are not available. To address this, we propose an Unsupervised Deep Video Denoiser (UDVD 1 ), a CNN architecture designed to be trained exclusively with noisy data. The performance of UDVD is comparable to the supervised state-of-the-art, even when trained only on a single short noisy video. We demonstrate the promise of our approach in real-world imaging applications by denoising raw video, fluorescencemicroscopy and electron-microscopy data. In contrast to many current approaches to video denoising, UDVD does not require explicit motion compensation. This is advantageous because motion compensation is computationally expensive, and can be unreliable when the input data are noisy. A gradient-based analysis reveals that UDVD automatically adapts to local motion in the input noisy videos. Thus, the network learns to perform implicit motion compensation, even though it is only trained for denoising. * equal contribution. 1 See https://sreyas-mohan.github.io/udvd/ for code and more results.
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引用它的顶会 Paper19
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它引用的顶会 Paper4
- Robust And Interpretable Blind Image Denoising Via Bias-Free Convolutional Neural NetworksSreyas Mohan, Zahra Kadkhodaie, Eero P. Simoncelli, Carlos Fernandez-GrandaICLR 2020 · 被引用 154 次
- Basis Prediction Networks for Effective Burst Denoising With Large KernelsZhihao Xia, Federico Perazzi, Michaël Gharbi, Kalyan Sunkavalli 等CVPR 2020
- Supervised Raw Video Denoising With a Benchmark Dataset on Dynamic ScenesHuanjing Yue, Cong Cao, Lei Liao, Ronghe Chu 等CVPR 2020
- FastDVDnet: Towards Real-Time Deep Video Denoising Without Flow EstimationMatias Tassano, Julie Delon, Thomas VeitCVPR 2020
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