

Hyperhuman
Overview :
HyperHuman is a model for generating realistic human images. It captures the structural features of human images, ranging from coarse body skeletons to fine-grained spatial geometry, to generate human images with coherence and naturalness. HyperHuman consists of three parts: 1) Building a massive human dataset called HumanVerse, which contains 340M images and comprehensive annotations such as human poses, depth, and surface normals; 2) Proposing a latent structure diffusion model that simultaneously denoises depth, surface normals, and the synthesized RGB image. Our model forces learning of image appearance, spatial relationships, and geometry within a unified network, with each branch exhibiting structural awareness and texture richness; 3) Finally, to further enhance visual quality, we propose a structure-guided refiner for more detailed high-resolution generation. Extensive experiments demonstrate that our model has generated human images with high realism and diversity in various scenarios, achieving state-of-the-art performance.
Target Users :
HyperHuman can be used to generate realistic human images, which can be applied in various fields such as games, movies, and virtual reality.
Use Cases
HyperHuman can be used for character generation in games.
HyperHuman can be used for special effects in movies.
HyperHuman can be used for generating human avatars in virtual reality.
Features
Generate realistic human images
Capture structural features of human images
Generate human images with coherence and naturalness
Build a massive human dataset
Denoise depth, surface normals, and synthesized RGB images
Force learning of image appearance, spatial relationships, and geometry
Enhance visual quality
Generate high-resolution images
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