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CVPR2021顶会

Flow-Guided One-Shot Talking Face Generation With a High-Resolution Audio-Visual Dataset

Zhimeng Zhang, Lincheng Li, Yu Ding, Changjie Fan

2021年份
160顶会引用

摘要

The new dataset is collected from youtube and consists of about 16 hours 720P or 1080P videos. We leverage the facial 3D morphable model (3DMM) to split the framework into two cascaded modules instead of learning a direct mapping from audio to video. In the first module, we propose a novel animation generator to produce the movements of mouth, eyebrow and head pose simultaneously. In the second module, we transform animation into dense flow to provide more expression details and carefully design a novel flow-guided video generator to synthesize videos. Our method is able to produce high-definition videos and outperforms state-of-the-art works in objective and subjective comparisons * .

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