Image-Adaptive GAN Based Reconstruction
Shady Abu Hussein, Tom Tirer, Raja Giryes
摘要
In the recent years, there has been a significant improvement in the quality of samples produced by (deep) generative models such as variational auto-encoders and generative adversarial networks. However, the representation capabilities of these methods still do not capture the full distribution for complex classes of images, such as human faces. This deficiency has been clearly observed in previous works that use pre-trained generative models to solve imaging inverse problems. In this paper, we suggest to mitigate the limited representation capabilities of generators by making them image-adaptive and enforcing compliance of the restoration with the observations via back-projections. We empirically demonstrate the advantages of our proposed approach for image super-resolution and compressed sensing.
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引用它的顶会 Paper15
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- Robust Compressed Sensing MRI with Deep Generative PriorsAjil Jalal, Marius Arvinte, Giannis Daras, Eric Price 等NeurIPS 2021 · 被引用 483 次
- HyperStyle: StyleGAN Inversion with HyperNetworks for Real Image EditingYuval Alaluf, Omer Tov, Ron Mokady, Rinon Gal 等CVPR 2022 · 被引用 250 次
- Solving Inverse Problems with Latent Diffusion Models via Hard Data ConsistencyBowen Song, Soo Min Kwon, Zecheng Zhang, Xinyu Hu 等ICLR 2024 · 被引用 213 次
- Invertible generative models for inverse problems: mitigating representation error and dataset biasMuhammad Asim, Max Daniels, Oscar Leong, Ali Ahmed 等ICML 2020 · 被引用 172 次
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