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Paper · arXiv 2405.12970

Face Adapter for Pre-Trained Diffusion Models with Fine-Grained ID and Attribute Control

Yue Han, Junwei Zhu, Keke He, Xu Chen, Yanhao Ge, Wei Li, Xiangtai Li, Jiangning Zhang, Chengjie Wang, Yong Liu

24 upvotesMay 21, 2024arXiv 预印本
AI 摘要

Face-Adapter, an adaptive framework for pre-trained diffusion models, achieves high-fidelity face editing with efficient identity and attribute control, demonstrating performance competitive with fully fine-tuned models in face reenactment and swapping.

GANdiffusion modelsFace-AdapterSpatial Condition GeneratorPlug-and-play Identity EncoderAttribute Controllermotion controlID retentiongeneration qualityStableDiffusion

Abstract

Current face reenactment and swapping methods mainly rely on GAN frameworks, but recent focus has shifted to pre-trained diffusion models for their superior generation capabilities. However, training these models is resource-intensive, and the results have not yet achieved satisfactory performance levels. To address this issue, we introduce Face-Adapter, an efficient and effective adapter designed for high-precision and high-fidelity face editing for pre-trained diffusion models. We observe that both face reenactment/swapping tasks essentially involve combinations of target structure, ID and attribute. We aim to sufficiently decouple the control of these factors to achieve both tasks in one model. Specifically, our method contains: 1) A Spatial Condition Generator that provides precise landmarks and background; 2) A Plug-and-play Identity Encoder that transfers face embeddings to the text space by a transformer decoder. 3) An Attribute Controller that integrates spatial conditions and detailed attributes. Face-Adapter achieves comparable or even superior performance in terms of motion control precision, ID retention capability, and generation quality compared to fully fine-tuned face reenactment/swapping models. Additionally, Face-Adapter seamlessly integrates with various StableDiffusion models.

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Face Adapter for Pre-Trained Diffusion Models with Fine-Grained ID and Attribute Control | TensorX