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Image Generation

Image generation (synthesis) is the task of generating new images from an existing dataset. Unconditional generation refers to generating samples unconditionally from the dataset, i.e., \(p(y)\); while conditional generation involves generating samples based on labels from the dataset, i.e., \(p(y|x)\). This section showcases the latest leaderboard for unconditional generation, while other types of image generation can be found in subtasks. Image generation holds significant application value in computer vision, being useful for data augmentation, artistic creation, and virtual reality, among other fields.

ImageNet 256x256
Discriminator Guidance
CIFAR-10
GMem
ImageNet 64x64
CTM (NFE 1)
FFHQ 256 x 256
Anycost GAN
ImageNet 512x512
MAGVIT-v2
CelebA 64x64
HDCGAN
ImageNet 32x32
StyleGAN-XL
LSUN Bedroom 256 x 256
StyleGAN (DINOv2)
STL-10
LSUN Churches 256 x 256
BOSS
ImageNet 128x128
ADM-G
FFHQ 1024 x 1024
Efficient-VDVAE
CelebA-HQ 256x256
BOSS
CelebA 256x256
StyleSwin
MNIST
Locally Masked PixelCNN (8 orders)
FFHQ-U
Alias-Free-R
FFHQ
Anycost GAN
CelebA-HQ 1024x1024
StyleSwin
Binarized MNIST
CR-NVAE
CIFAR-100
LeCAM (StyleGAN2 + ADA)
LSUN Cat 256 x 256
Projected GAN
AFHQ Cat
Vision-aided GAN
AFHQV2
Polarity-StyleGAN3
CelebA-HQ 128x128
COCO-GAN
TextAtlasEval
Fashion-MNIST
GLF+perceptual loss (ours)
CLEVR
Projected GAN
Cityscapes
GANformer
AFHQ Dog
Vision-aided GAN
LSUN Horse 256 x 256
StyleGAN2
CelebA 128x128
U-Net GAN
AFHQ Wild
Vision-aided GAN
Places50
SinDiffusion
VLN-CE
Stanford Cars
Projected GANs
Pokemon 256x256
StyleGAN-XL
ARKitScenes
GAUDI
CUB 128 x 128
Projected GAN
VizDoom
Stanford Dogs
Projected GAN
Replica
CAT 256x256
StyleGAN2 + DA + RLC (Ours)
ShapeStacks
CIFAR-10 (10% data)
DiffAugment-StyleGAN2
LSUN Bedroom
StyleGAN
FFHQ 512 x 512
Anycost GAN
MetFaces
FFHQ 128 x 128
Anycost GAN
CelebA-HQ 64x64
COCO-GAN
LSUN Bedroom 64 x 64
WGAN-GP + TTUR + Alex-Adam
CIFAR-10 (20% data)
DiffAugment-StyleGAN2
ADE-Indoor
ObjectsRoom
MetFaces-U
Pokemon 1024x1024
StyleGAN-XL
Stacked MNIST
VAEBM
Oxford 102 Flowers 256 x 256
MSG-StyleGAN
FFHQ 64x64
SiDA-EDM
LSUN Car 512 x 384
Polarity-StyleGAN2
AFHQ-v2 64x64
iNaturalist 2019
StyeGAN2 + NoisyTwins
LSUN Bedroom 128 x 128
LadaGAN
RC-49
cDR-RS
25% ImageNet 128x128
LeCAM + DA
Cityscapes-5K 256x512
SB-GAN
LSUN Car 256 x 256
StyleGAN2
ImageNet 256x256 - 1% labeled data
DPT
ImageNet 256x256 - 2 labeled data per class
ImageNet 256x256 - 1 labeled data per class
NASA Perseverance
EMNIST-Letters
Spiking-Diffusion
FFHQ 64x64 - 4x upscaling
PFGM++
CelebA
LSUN
BigGAN + gSR
ImageNet 256x256 - 5 labeled data per class
SDSS Galaxies
Indian Celebs 256 x 256
MSG-StyleGAN
CelebA-HQ 512x512
WaveDiff
Cityscapes-25K 256x512
SB-GAN
Satellite-Buildings 256 x 256
CIPS
GQN
LLVIP
pix2pix
Satellite-Landscapes 256 x 256
CIPS
Oxford 102 Flowers 128x128
QSNGAN
Multi-dSprites
GENESIS
KMNIST
LSUN tower 64x64
DDPM-IP
CelebA-HQ
DDPM
Landscapes 256 x 256
CIPS