Unsupervised Learning of Depth and Depth-of-Field Effect From Natural Images With Aperture Rendering Generative Adversarial Networks
Takuhiro Kaneko
2021年份
4顶会引用
摘要
Figure 1. Unsupervised learning of depth and depth-of-field (DoF) effect from unlabeled natural images. (a) In training, we adopt only a collection of single-DoF images without any additional supervision (e.g., ground-truth depth, pairs of deep and shallow DoF images, and pretrained model). (b) Once trained, our model can synthesize tuples of deep and shallow DoF images and depths from random noise. The generated data are beneficial in training a shallow DoF renderer, which also requires no external supervision.
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引用它的顶会 Paper4
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- AR-NeRF: Unsupervised Learning of Depth and Defocus Effects from Natural Images with Aperture Rendering Neural Radiance FieldsTakuhiro KanekoCVPR 2022 · 被引用 13 次
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它引用的顶会 Paper8
- Differentiable Augmentation for Data-Efficient GAN TrainingShengyu Zhao, Zhijian Liu, Ji Lin, Jun-Yan Zhu 等NeurIPS 2020 · 被引用 707 次
- RGBD-GAN: Unsupervised 3D Representation Learning From Natural Image Datasets via RGBD Image SynthesisAtsuhiro Noguchi, Tatsuya HaradaICLR 2020 · 被引用 30 次
- Unsupervised Learning of Probably Symmetric Deformable 3D Objects From Images in the WildShangzhe Wu, Christian Rupprecht, Andrea VedaldiCVPR 2020
- Blur, Noise, and Compression Robust Generative Adversarial NetworksTakuhiro Kaneko, Tatsuya HaradaCVPR 2021
- Noise Robust Generative Adversarial NetworksTakuhiro Kaneko, Tatsuya HaradaCVPR 2020
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