FantasyTalking: Realistic Talking Portrait Generation via Coherent Motion Synthesis
Mengchao Wang, Qiang Wang, Fan Jiang, Yaqi Fan, Yunpeng Zhang, Yonggang Qi, Kun Zhao, Mu Xu
Abstract
Creating a realistic animatable avatar from a single static portrait remains challenging. Existing approaches often struggle to capture subtle facial expressions, the associated global body movements, and the dynamic background. To address these limitations, we propose a novel framework that leverages a pretrained video diffusion Transformer model to generate high-fidelity, coherent talking portraits with controllable motion dynamics. At the core of our work is a dual-stage audio-visual alignment strategy. In the first stage, we employ a clip-level training scheme to establish coherent global motion by aligning audio-driven dynamics across the entire scene, including the reference portrait, contextual objects, and background. In the second stage, we refine lip movements at the frame level using a lip-tracing mask, ensuring precise synchronization with audio signals. To preserve identity without compromising motion flexibility, we replace the commonly used reference network with a lightweight cross-attention module that effectively maintains facial consistency throughout the video. Furthermore, we integrate a motion intensity modulation module that explicitly controls facial keypoints and body joint trajectories, enabling fine-grained manipulation of portrait movements beyond mere lip motion. Extensive experimental results show that our proposed approach achieves higher quality with better realism, coherence, motion intensity, and identity preservation. Our demo, code, models can be found on this page: https://fantasy-amap.github.io/fantasy-talking/.
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Cited by top-tier papers18
- Let Them Talk: Audio-Driven Multi-Person Conversational Video GenerationZhe Kong, Feng Gao, Yong Zhang, Zhuoliang Kang et al.NeurIPS 2025 · 73 citations
- SpeakerVid-5M: A Large-Scale High-Quality Dataset for Audio-Visual Dyadic Interactive Human GenerationYouliang Zhang, Zhaoyang Li, Duomin Wang, jiahe zhang et al.ICLR 2026 · 30 citations
- Instilling an Active Mind in Avatars via Cognitive SimulationJianwen Jiang, Weihong Zeng, Zerong Zheng, Jiaqi Yang et al.ICLR 2026 · 26 citations
- StreamAvatar: Streaming Diffusion Models for Real-Time Interactive Human AvatarsZhiyao Sun, Ziqiao Peng, Yifeng Ma, Yi Chen et al.CVPR 2026 · 26 citations
- EchoMimicV3: 1.3B Parameters Are All You Need for Unified Multi-Modal and Multi-Task Human AnimationRang Meng, Yan Wang, Weipeng Wu, Ruobing Zheng et al.AAAI 2026 · 24 citations
Builds on23
- Segment AnythingAlexander Kirillov, Eric Mintun, Nikhila Ravi, Hanzi Mao et al.ICCV 2023 · 13,211 citations
- Diffusion Models Beat GANs on Image SynthesisPrafulla Dhariwal, Alexander Quinn NicholNeurIPS 2021 · 13,211 citations
- High-Resolution Image Synthesis with Latent Diffusion ModelsRobin Rombach, Andreas Blattmann, Dominik Lorenz, Patrick Esser et al.CVPR 2022 · 13,123 citations
- Emerging Properties in Self-Supervised Vision TransformersMathilde Caron, Hugo Touvron, Ishan Misra, Hervé Jégou et al.ICCV 2021 · 8,921 citations
- BLIP-2: Bootstrapping Language-Image Pre-training with Frozen Image Encoders and Large Language ModelsJunnan Li, Dongxu Li, Silvio Savarese, Steven C. H. HoiICML 2023 · 7,873 citations
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