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

TL;DR
ID-Animator is a zero-shot human video generation method that creates personalized videos from a single reference image, balancing efficiency and identity preservation without additional training.
Contribution
It introduces a face adapter and ID-oriented dataset pipeline with a training strategy to enhance identity preservation in zero-shot video generation.
Findings
Outperforms previous models in personalized video quality
Compatible with popular pre-trained T2V models
Demonstrates high extendability in real-world applications
Abstract
Generating high-fidelity human video with specified identities has attracted significant attention in the content generation community. However, existing techniques struggle to strike a balance between training efficiency and identity preservation, either requiring tedious case-by-case fine-tuning or usually missing identity details in the video generation process. In this study, we present \textbf{ID-Animator}, a zero-shot human-video generation approach that can perform personalized video generation given a single reference facial image without further training. ID-Animator inherits existing diffusion-based video generation backbones with a face adapter to encode the ID-relevant embeddings from learnable facial latent queries. To facilitate the extraction of identity information in video generation, we introduce an ID-oriented dataset construction pipeline that incorporates unified…
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Taxonomy
TopicsGenerative Adversarial Networks and Image Synthesis · Human Motion and Animation · Human Pose and Action Recognition
MethodsAdapter
