Robust Conditional GAN from Uncertainty-Aware Pairwise Comparisons
Ligong Han, Ruijiang Gao, Mun Kim, Xin Tao, Bo Liu, Dimitris N. Metaxas
摘要
Conditional generative adversarial networks have shown exceptional generation performance over the past few years. However, they require large numbers of annotations. To address this problem, we propose a novel generative adversarial network utilizing weak supervision in the form of pairwise comparisons (PC-GAN) for image attribute editing. In the light of Bayesian uncertainty estimation and noise-tolerant adversarial training, PC-GAN can estimate attribute rating efficiently and demonstrate robust performance in noise resistance. Through extensive experiments, we show both qualitatively and quantitatively that PC-GAN performs comparably with fully-supervised methods and outperforms unsupervised baselines. Code and Supplementary can be found on the project website*.
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引用它的顶会 Paper4
- AVID: Any-Length Video Inpainting with Diffusion ModelZhixing Zhang, Bichen Wu, Xiaoyan Wang, Yaqiao Luo 等CVPR 2024 · 被引用 25 次
- Dual Projection Generative Adversarial Networks for Conditional Image GenerationLigong Han, Martin Renqiang Min, Anastasis Stathopoulos, Yu Tian 等ICCV 2021 · 被引用 22 次
- Fusing Conditional Submodular GAN and Programmatic Weak SupervisionKumar Shubham, Pranav Sastry, Prathosh APAAAI 2024 · 被引用 3 次
- SINE: SINgle Image Editing with Text-to-Image Diffusion ModelsZhixing Zhang, Ligong Han, Arnab Ghosh, Dimitris N. Metaxas 等CVPR 2023
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