GPAvatar: Generalizable and Precise Head Avatar from Image(s)
Xuangeng Chu, Yu Li, Ailing Zeng, Tianyu Yang, Lijian Lin, Yunfei Liu, Tatsuya Harada
摘要
Head avatar reconstruction, crucial for applications in virtual reality, online meetings, gaming, and film industries, has garnered substantial attention within the computer vision community. The fundamental objective of this field is to faithfully recreate the head avatar and precisely control expressions and postures. Existing methods, categorized into 2D-based warping, mesh-based, and neural rendering approaches, present challenges in maintaining multi-view consistency, incorporating non-facial information, and generalizing to new identities. In this paper, we propose a framework named GPAvatar that reconstructs 3D head avatars from one or several images in a single forward pass. The key idea of this work is to introduce a dynamic point-based expression field driven by a point cloud to precisely and effectively capture expressions. Furthermore, we use a Multi Tri-planes Attention (MTA) fusion module in the tri-planes canonical field to leverage information from multiple input images. The proposed method achieves faithful identity reconstruction, precise expression control, and multi-view consistency, demonstrating promising results for free-viewpoint rendering and novel view synthesis.
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引用它的顶会 Paper35
- Generalizable and Animatable Gaussian Head AvatarXuangeng Chu, Tatsuya HaradaNeurIPS 2024 · 被引用 115 次
- MimicTalk: Mimicking a personalized and expressive 3D talking face in minutesZhenhui Ye, Tianyun Zhong, Yi Ren, Ziyue Jiang 等NeurIPS 2024 · 被引用 28 次
- LAM: Large Avatar Model for One-shot Animatable Gaussian HeadYisheng He, Xiaodong Gu, Xiaodan Ye, Chao Xu 等SIGGRAPH 2025 · 被引用 14 次
- UniLS: End-to-End Audio-Driven Avatars for Unified Listening and SpeakingXuangeng Chu, Ruicong Liu, Yifei Huang, Yun Liu 等CVPR 2026 · 被引用 12 次
- FlexAvatar: Learning Complete 3D Head Avatars with Partial SupervisionTobias Kirschstein, Simon Giebenhain, Matthias NießnerCVPR 2026 · 被引用 10 次
它引用的顶会 Paper22
- Learning an animatable detailed 3D face model from in-the-wild imagesYao Feng, Haiwen Feng, Michael J. Black, Timo BolkartSIGGRAPH 2021 · 被引用 662 次
- Non-Rigid Neural Radiance Fields: Reconstruction and Novel View Synthesis of a Dynamic Scene From Monocular VideoEdgar Tretschk, Ayush Tewari, Vladislav Golyanik, Michael Zollhöfer 等ICCV 2021 · 被引用 617 次
- AD-NeRF: Audio Driven Neural Radiance Fields for Talking Head SynthesisYudong Guo, Keyu Chen, Sen Liang, Yong-Jin Liu 等ICCV 2021 · 被引用 510 次
- Point-NeRF: Point-based Neural Radiance FieldsQiangeng Xu, Zexiang Xu, Julien Philip, Sai Bi 等CVPR 2022 · 被引用 510 次
- PIRenderer: Controllable Portrait Image Generation via Semantic Neural RenderingYurui Ren, Ge Li, Yuanqi Chen, Thomas H. Li 等ICCV 2021 · 被引用 284 次
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