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3 months ago

Training Generative Adversarial Networks with Limited Data

Tero Karras Miika Aittala Janne Hellsten Samuli Laine Jaakko Lehtinen Timo Aila

Training Generative Adversarial Networks with Limited Data

Abstract

Training generative adversarial networks (GAN) using too little data typically leads to discriminator overfitting, causing training to diverge. We propose an adaptive discriminator augmentation mechanism that significantly stabilizes training in limited data regimes. The approach does not require changes to loss functions or network architectures, and is applicable both when training from scratch and when fine-tuning an existing GAN on another dataset. We demonstrate, on several datasets, that good results are now possible using only a few thousand training images, often matching StyleGAN2 results with an order of magnitude fewer images. We expect this to open up new application domains for GANs. We also find that the widely used CIFAR-10 is, in fact, a limited data benchmark, and improve the record FID from 5.59 to 2.42.

Code Repositories

NariMo91/GANs-generative-art
pytorch
Mentioned in GitHub
NVlabs/stylegan2-ada
Official
tf
Mentioned in GitHub
mahmoudnafifi/HistoGAN
pytorch
Mentioned in GitHub
datduong/stylegan2-ada-Ws-22q
tf
Mentioned in GitHub
pbaylies/stylegan2
tf
Mentioned in GitHub
NVlabs/stylegan2-ada-pytorch
pytorch
Mentioned in GitHub
fai07600521/final-project
pytorch
Mentioned in GitHub
matjazmav/fri-2021-ibb-seminar
pytorch
Mentioned in GitHub
buganart/stylegan2-ada-pytorch
pytorch
Mentioned in GitHub
BearNinja123/StyleGAN_ADAnough
tf
Mentioned in GitHub
lelechen63/stylegannerf
pytorch
Mentioned in GitHub
jiangshuyi0v0/cvd-gan
pytorch
Mentioned in GitHub
sh4174/3d-stylegan2-ada
tf
Mentioned in GitHub
vsemecky/stylegan2-ada
tf
Mentioned in GitHub
Eitan177/testGenImages
pytorch
Mentioned in GitHub
eps696/stylegan2ada
pytorch
Mentioned in GitHub
duskvirkus/stylegan2-ada-lightning
pytorch
Mentioned in GitHub
usufyan29/stylegan2_runway
tf
Mentioned in GitHub
beresandras/gan-flavours-keras
tf
Mentioned in GitHub
aiksir/stylegan2-ada-blending
tf
Mentioned in GitHub
sangyun884/Face2Webtoon
pytorch
Mentioned in GitHub
wangamelia/cmpm202p2p2
tf
Mentioned in GitHub
woctezuma/steam-stylegan2-ada
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
conditional-image-generation-on-artbench-10StyleGAN2 + ADA
FID: 2.625
conditional-image-generation-on-cifar-10StyleGAN2-ADA
FID: 2.42
Inception score: 10.14
image-generation-on-afhq-catStyleGAN2-ADA
FID: 3.55
clean-FID: 3.28 ± .02
clean-KID: 0.71 ± .02
image-generation-on-afhq-dogStyleGAN2-ADA
FID: 7.41
clean-FID: 7.61 ± .02
clean-KID: 1.28 ± .02
image-generation-on-afhq-wildStyleGAN2-ADA
FID: 3.05
clean-FID: 3.00 ± .01
clean-KID: 0.44 ± .01
image-generation-on-ffhq-1024-x-1024StyleGAN2 ADA+bCR
FID: 3.62
image-generation-on-ffhq-256-x-256StyleGAN2 + ADA (DINOv2)
FD: 514.78
Precision: 0.59
Recall: 0.06
image-generation-on-ffhq-256-x-256StyleGAN2 + ADA
FID: 3.62
image-generation-on-pokemon-256x256StyleGAN2-ADA
FID: 40.38

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