Unsupervised Image Denoising with Score Function
Yutong Xie, Mingze Yuan, Bin Dong, Quanzheng Li
摘要
Though achieving excellent performance in some cases, current unsupervised learning methods for single image denoising usually have constraints in applications. In this paper, we propose a new approach which is more general and applicable to complicated noise models. Utilizing the property of score function, the gradient of logarithmic probability, we define a solving system for denoising. Once the score function of noisy images has been estimated, the denoised result can be obtained through the solving system. Our approach can be applied to multiple noise models, such as the mixture of multiplicative and additive noise combined with structured correlation. Experimental results show that our method is comparable when the noise model is simple, and has good performance in complicated cases where other methods are not applicable or perform poorly.
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引用它的顶会 Paper4
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它引用的顶会 Paper5
- Diffusion Models Beat GANs on Image SynthesisPrafulla Dhariwal, Alexander Quinn NicholNeurIPS 2021 · 被引用 13,211 次
- Noise2Score: Tweedie's Approach to Self-Supervised Image Denoising without Clean ImagesKwanyoung Kim, Jong Chul YeNeurIPS 2021 · 被引用 176 次
- AR-DAE: Towards Unbiased Neural Entropy Gradient EstimationJae Hyun Lim, Aaron C. Courville, Christopher J. Pal, Chin-Wei HuangICML 2020 · 被引用 26 次
- Neighbor2Neighbor: Self-Supervised Denoising From Single Noisy ImagesTao Huang, Songjiang Li, Xu Jia, Huchuan Lu 等CVPR 2021
- Noisier2Noise: Learning to Denoise From Unpaired Noisy DataNick Moran, Dan Schmidt, Yu Zhong, Patrick CoadyCVPR 2020
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