Semantically Robust Unpaired Image Translation for Data with Unmatched Semantics Statistics
Zhiwei Jia, Bodi Yuan, Kangkang Wang, Hong Wu, David Clifford, Zhiqiang Yuan, Hao Su
Abstract
Many applications of unpaired image-to-image translation require the input contents to be preserved semantically during translations. Unaware of the inherently unmatched semantics distributions between source and target domains, existing distribution matching methods (i.e., GAN-based) can give undesired solutions. In particular, although producing visually reasonable outputs, the learned models usually flip the semantics of the inputs. To tackle this without using extra supervisions, we propose to enforce the translated outputs to be semantically invariant w.r.t. small perceptual variations of the inputs, a property we call "semantic robustness". By optimizing a robustness loss w.r.t. multi-scale feature space perturbations of the inputs, our method effectively reduces semantics flipping and produces translations that outperform existing methods both quantitatively and qualitatively.
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Install the CLIlune papers fulltext eda296a9-6d13-4cf2-a238-31e249b26ff2Cited by top-tier papers7
- StegoGAN: Leveraging Steganography for Non-Bijective Image-to-Image TranslationSidi Wu, Yizi Chen, Samuel Mermet, Lorenz Hurni et al.CVPR 2024 · 32 citations
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- Exploring Negatives in Contrastive Learning for Unpaired Image-to-Image TranslationYupei Lin, Sen Zhang, Tianshui Chen, Yongyi Lu et al.ACM MM 2022 · 19 citations
- On the Analysis of GAN-based Image-to-Image Translation with Gaussian Noise InjectionChaohua Shi, Kexin Huang, Lu Gan, Hongqing Liu et al.ICLR 2024 · 4 citations
- Reward Fine-Tuning Two-Step Diffusion Models via Learning Differentiable Latent-Space Surrogate RewardZhiwei Jia, Yuesong Nan, Huixi Zhao, Gengdai LiuCVPR 2025
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