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Papers/Consistency Regularization for Generative Adversarial Netw...

Consistency Regularization for Generative Adversarial Networks

Han Zhang, Zizhao Zhang, Augustus Odena, Honglak Lee

2019-10-26ICLR 2020 1Unconditional Image GenerationImage GenerationConditional Image Generation
PaperPDF

Abstract

Generative Adversarial Networks (GANs) are known to be difficult to train, despite considerable research effort. Several regularization techniques for stabilizing training have been proposed, but they introduce non-trivial computational overheads and interact poorly with existing techniques like spectral normalization. In this work, we propose a simple, effective training stabilizer based on the notion of consistency regularization---a popular technique in the semi-supervised learning literature. In particular, we augment data passing into the GAN discriminator and penalize the sensitivity of the discriminator to these augmentations. We conduct a series of experiments to demonstrate that consistency regularization works effectively with spectral normalization and various GAN architectures, loss functions and optimizer settings. Our method achieves the best FID scores for unconditional image generation compared to other regularization methods on CIFAR-10 and CelebA. Moreover, Our consistency regularized GAN (CR-GAN) improves state-of-the-art FID scores for conditional generation from 14.73 to 11.48 on CIFAR-10 and from 8.73 to 6.66 on ImageNet-2012.

Results

TaskDatasetMetricValueModel
Image GenerationCelebA-HQ 128x128FID16.97CR-GAN
Image GenerationImageNet 128x128FID6.66CR-BigGAN
Image GenerationCIFAR-10FID11.67CR-BigGAN
Image GenerationArtBench-10 (32x32)FID4.647BigGAN + CR
Image GenerationImageNet 128x128FID6.66CR-BigGAN
Conditional Image GenerationCIFAR-10FID11.67CR-BigGAN
Conditional Image GenerationArtBench-10 (32x32)FID4.647BigGAN + CR
Conditional Image GenerationImageNet 128x128FID6.66CR-BigGAN

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