InvertAvatar: Incremental GAN Inversion for Generalized Head Avatars
Xiaochen Zhao, Jingxiang Sun, Lizhen Wang, Jinli Suo, Yebin Liu
摘要
While high fidelity and efficiency are central to the creation of digital head avatars, recent methods relying on 2D or 3D generative models often experience limitations such as shape distortion, expression inaccuracy, and identity flickering. Additionally, existing one-shot inversion techniques fail to fully leverage multiple input images for detailed feature extraction. We propose a novel framework, Incremental 3D GAN Inversion, that enhances avatar reconstruction performance using an algorithm designed to increase the fidelity from multiple frames, resulting in improved reconstruction quality proportional to frame count. Our method introduces a unique animatable 3D GAN prior with two crucial modifications for enhanced expression controllability alongside an innovative neural texture encoder that categorizes texture feature spaces based on UV parameterization. Differentiating from traditional techniques, our architecture emphasizes pixel-aligned image-to-image translation, mitigating the need to learn correspondences between observation and canonical spaces. Furthermore, we incorporate ConvGRU-based recurrent networks for temporal data aggregation from multiple frames, boosting geometry and texture detail reconstruction. The proposed paradigm demonstrates state-of-the-art performance on one-shot and few-shot avatar animation tasks. The code will be available at https://github.com/XChenZ/invertAvatar.
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引用它的顶会 Paper9
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- UIKA: Fast Universal Head Avatar from Pose-Free ImagesZijian Wu, Boyao Zhou, Liangxiao Hu, Hongyu Liu 等CVPR 2026 · 被引用 6 次
- FastGHA: Generalized Few-Shot 3D Gaussian Head Avatars with Real-Time AnimationXinya Ji, Sebastian Weiss, Manuel Kansy, Jacek Naruniec 等ICLR 2026 · 被引用 6 次
- DeX-Portrait: Disentangled and Expressive Portrait Animation via Explicit and Latent Motion RepresentationsYuxiang Shi, Zhe Li, Yanwen Wang, Hao Zhu 等CVPR 2026 · 被引用 3 次
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