ID-Animator
This repository is the official checkpoint of ID-Animator. It is a Zero-shot ID-Preserving Human Video Generation framework. It can generate high-quality ID-specific human video with only one ID image as reference.
ID-Animator: Zero-Shot Identity-Preserving Human Video Generation
Xuanhua He,
Quande Liu*,
Shengju Qian,
Xin Wang,
Tao Hu,
Ke Cao,
Keyu Yan,
Jie Zhang*
(*Corresponding Author)
Human Video Generation Demos
Recontextualization
Reference Image | Output Video | Output Video | Output Video |
Reference Image | Output Video | Output Video | Output Video |
Inference with Community Models
Reference Image | Output Video | Output Video | Output Video |
Reference Image | Output Video | Output Video | Output Video |
Identity Mixing
Reference Image 1 | Reference Image 2 | Output Video | Output Video |
Reference Image 1 | Reference Image 2 | Output Video | Output Video |
Combination with ControlNet
Reference Image | Sketch Image | Output Video | Output Video |
Reference Image | Sketch Sequence | Output Video | Output Video |
Contact Us
Xuanhua He: hexuanhua@mail.ustc.edu.cn
Quande Liu: qdliu0226@gmail.com
Shengju Qian: thesouthfrog@gmail.com
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