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SOTA
Image Generation
Image Generation On Ffhq 1024 X 1024
Image Generation On Ffhq 1024 X 1024
Metrics
FID
Results
Performance results of various models on this benchmark
Columns
Model Name
FID
Paper Title
Repository
StyleGAN3-T
2.79
Alias-Free Generative Adversarial Networks
-
Diffusion StyleGAN2
2.83
Diffusion-GAN: Training GANs with Diffusion
-
Very Deep VAE
-
Very Deep VAEs Generalize Autoregressive Models and Can Outperform Them on Images
-
Efficient-VDVAE
-
Efficient-VDVAE: Less is more
-
StyleALAE
13.09
Adversarial Latent Autoencoders
-
SWAGAN-Bi
4.06
SWAGAN: A Style-based Wavelet-driven Generative Model
-
MSG-StyleGAN
5.8
MSG-GAN: Multi-Scale Gradients for Generative Adversarial Networks
-
Polarity-StyleGAN2
2.57
Polarity Sampling: Quality and Diversity Control of Pre-Trained Generative Networks via Singular Values
-
StyleGAN
4.4
A Style-Based Generator Architecture for Generative Adversarial Networks
-
StyleNAT
4.17
StyleNAT: Giving Each Head a New Perspective
-
StyleGAN3-R
3.07
Alias-Free Generative Adversarial Networks
-
StyleGAN2
2.84
Analyzing and Improving the Image Quality of StyleGAN
-
StyleSwin
5.07
StyleSwin: Transformer-based GAN for High-resolution Image Generation
-
StyleSAN-XL
1.61
SAN: Inducing Metrizability of GAN with Discriminative Normalized Linear Layer
-
CIPS
10.07
Image Generators with Conditionally-Independent Pixel Synthesis
-
MaGNET-StyleGAN2
2.66
MaGNET: Uniform Sampling from Deep Generative Network Manifolds Without Retraining
-
StyleGAN-XL
2.02
StyleGAN-XL: Scaling StyleGAN to Large Diverse Datasets
-
FQ-GAN
3.19
Feature Quantization Improves GAN Training
-
HiT-B
6.37
Improved Transformer for High-Resolution GANs
-
StyleGAN2 ADA+bCR
3.62
Training Generative Adversarial Networks with Limited Data
-
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Image Generation On Ffhq 1024 X 1024 | SOTA | HyperAI