Expressive Talking Head Generation with Granular Audio-Visual Control
Borong Liang, Yan Pan, Zhizhi Guo, Hang Zhou, Zhibin Hong, Xiaoguang Han, Junyu Han, Jingtuo Liu, Errui Ding, Jingdong Wang
摘要
Generating expressive talking heads is essential for creating virtual humans. However, existing one- or few-shot methods focus on lip-sync and head motion, ignoring the emotional expressions that make talking faces realistic. In this paper, we propose the Granularly Controlled Audio-Visual Talking Heads (GC-AVT), which controls lip movements, head poses, and facial expressions of a talking head in a granular manner. Our insight is to decouple the audio-visual driving sources through prior-based pre-processing designs. Detailedly, we disassemble the driving image into three complementary parts including: 1) a cropped mouth that facilitates lip-sync; 2) a masked head that implicitly learns pose; and 3) the upper face which works corporately and complementarily with a time-shifted mouth to contribute the expression. Interestingly, the encoded features from the three sources are integrally balanced through reconstruction training. Extensive experiments show that our method generates expressive faces with not only synced mouth shapes, controllable poses, but precisely animated emotional expressions as well.
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引用它的顶会 Paper41
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它引用的顶会 Paper14
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- HeadGAN: One-shot Neural Head Synthesis and EditingMichail Christos Doukas, Stefanos Zafeiriou, Viktoriia SharmanskaICCV 2021 · 被引用 164 次
- Learning Hierarchical Cross-Modal Association for Co-Speech Gesture GenerationXian Liu, Qianyi Wu, Hang Zhou, Yinghao Xu 等CVPR 2022 · 被引用 118 次
- Vision-Infused Deep Audio InpaintingHang Zhou, Ziwei Liu, Xudong Xu, Ping Luo 等ICCV 2019 · 被引用 92 次
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