Probabilistic Speech-Driven 3D Facial Motion Synthesis: New Benchmarks, Methods, and Applications
Karren D. Yang, Anurag Ranjan, Jen-Hao Rick Chang, Raviteja Vemulapalli, Oncel Tuzel
Abstract
We consider the task of animating 3D facial geometry from speech signal. Existing works are primarily deterministic, focusing on learning a one-to-one mapping from speech signal to 3D face meshes on small datasets with limited speakers. While these models can achieve high-quality lip articulation for speakers in the training set, they are unable to capture the full and diverse distribution of 3D facial motions that accompany speech in the real world. Importantly, the relationship between speech and facial motion is one-to-many, containing both inter-speaker and intra-speaker variations and necessitating a probabilistic approach. In this paper, we identify and address key challenges that have so far limited the development of probabilistic models: lack of datasets and metrics that are suitable for training and evaluating them, as well as the difficulty of designing a model that generates diverse results while remaining faithful to a strong conditioning signal as speech. We first propose large-scale benchmark datasets and metrics suitable for probabilistic modeling. Then, we demonstrate a probabilistic model that achieves both diversity and fidelity to speech, outperforming other methods across the proposed benchmarks. Finally, we showcase useful applications of probabilistic models trained on these large-scale datasets: we can generate diverse speech-driven 3D facial motion that matches unseen speaker styles extracted from reference clips; and our synthetic meshes can be used to improve the performance of downstream audio-visual models.
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Cited by top-tier papers5
- MMHead: Towards Fine-grained Multi-modal 3D Facial AnimationSijing Wu, Yunhao Li, Yichao Yan, Huiyu Duan et al.ACM MM 2024 · 17 citations
- MemoryTalker: Personalized Speech-Driven 3D Facial Animation via Audio-Guided StylizationHyung Kyu Kim, Sangmin Lee, Hak Gu KimICCV 2025 · 1 citation
- Towards High-fidelity 3D Talking Avatar with Personalized Dynamic TextureXuanchen Li, Jianyu Wang, Yuhao Cheng, Yikun Zeng et al.CVPR 2025
- Exploring Timeline Control for Facial Motion GenerationYifeng Ma, Jinwei Qi, Chaonan Ji, Peng Zhang et al.CVPR 2025
- Perceptually Accurate 3D Talking Head Generation: New Definitions, Speech-Mesh Representation, and Evaluation MetricsLee Chae-Yeon, Oh Hyun-Bin, Han EunGi, Sung-Bin Kim et al.CVPR 2025
Builds on10
- wav2vec 2.0: A Framework for Self-Supervised Learning of Speech RepresentationsAlexei Baevski, Yuhao Zhou, Abdelrahman Mohamed, Michael AuliNeurIPS 2020 · 9,451 citations
- Learning an animatable detailed 3D face model from in-the-wild imagesYao Feng, Haiwen Feng, Michael J. Black, Timo BolkartSIGGRAPH 2021 · 662 citations
- AD-NeRF: Audio Driven Neural Radiance Fields for Talking Head SynthesisYudong Guo, Keyu Chen, Sen Liang, Yong-Jin Liu et al.ICCV 2021 · 510 citations
- MeshTalk: 3D Face Animation from Speech using Cross-Modality DisentanglementAlexander Richard, Michael Zollhöfer, Yandong Wen, Fernando De la Torre et al.ICCV 2021 · 272 citations
- FaceFormer: Speech-Driven 3D Facial Animation with TransformersYingruo Fan, Zhaojiang Lin, Jun Saito, Wenping Wang et al.CVPR 2022 · 218 citations
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