Write-a-speaker: Text-based Emotional and Rhythmic Talking-head Generation
Lincheng Li, Suzhen Wang, Zhimeng Zhang, Yu Ding, Yixing Zheng, Xin Yu, Changjie Fan
Abstract
In this paper, we propose a novel text-based talking-head video generation framework that synthesizes high-fidelity facial expressions and head motions in accordance with contextual sentiments as well as speech rhythm and pauses. To be specific, our framework consists of a speaker-independent stage and a speaker-specific stage. In the speaker-independent stage, we design three parallel networks to generate animation parameters of the mouth, upper face, and head from texts, separately. In the speaker-specific stage, we present a 3D face model guided attention network to synthesize videos tailored for different individuals. It takes the animation parameters as input and exploits an attention mask to manipulate facial expression changes for the input individuals. Furthermore, to better establish authentic correspondences between visual motions (i.e., facial expression changes and head movements) and audios, we leverage a high-accuracy motion capture dataset instead of relying on long videos of specific individuals. After attaining the visual and audio correspondences, we can effectively train our network in an end-to-end fashion. Extensive experiments on qualitative and quantitative results demonstrate that our algorithm achieves high-quality photo-realistic talking-head videos including various facial expressions and head motions according to speech rhythms and outperforms the state-of-the-art.
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Cited by top-tier papers13
- 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
- EAMM: One-Shot Emotional Talking Face via Audio-Based Emotion-Aware Motion ModelXinya Ji, Hang Zhou, Kaisiyuan Wang, Qianyi Wu et al.SIGGRAPH 2022 · 150 citations
- One-Shot Talking Face Generation from Single-Speaker Audio-Visual Correlation LearningSuzhen Wang, Lincheng Li, Yu Ding, Xin YuAAAI 2022 · 142 citations
- StyleTalk: One-Shot Talking Head Generation with Controllable Speaking StylesYifeng Ma, Suzhen Wang, Zhipeng Hu, Changjie Fan et al.AAAI 2023 · 135 citations
- Expressive Talking Head Generation with Granular Audio-Visual ControlBorong Liang, Yan Pan, Zhizhi Guo, Hang Zhou et al.CVPR 2022 · 114 citations
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- A Lip Sync Expert Is All You Need for Speech to Lip Generation In the WildK. R. Prajwal, Rudrabha Mukhopadhyay, Vinay P. Namboodiri, C. V. JawaharACM MM 2020 · 869 citations
- FSGAN: Subject Agnostic Face Swapping and ReenactmentYuval Nirkin, Yosi Keller, Tal HassnerICCV 2019 · 710 citations
- Few-Shot Adversarial Learning of Realistic Neural Talking Head ModelsEgor Zakharov, Aliaksandra Shysheya, Egor Burkov, Victor S. LempitskyICCV 2019 · 687 citations
- MarioNETte: Few-Shot Face Reenactment Preserving Identity of Unseen TargetsSungjoo Ha, Martin Kersner, Beomsu Kim, Seokjun Seo et al.AAAI 2020 · 184 citations
- Realistic Face Reenactment via Self-Supervised Disentangling of Identity and PoseXianfang Zeng, Yusu Pan, Mengmeng Wang, Jiangning Zhang et al.AAAI 2020 · 46 citations
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