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One-Shot Free-View Neural Talking-Head Synthesis for Video Conferencing

2020-11-30 18:56:35
Ting-Chun Wang, Arun Mallya, Ming-Yu Liu

Abstract

We propose a neural talking-head video synthesis model and demonstrate its application to video conferencing. Our model learns to synthesize a talking-head video using a source image containing the target person's appearance and a driving video that dictates the motion in the output. Our motion is encoded based on a novel keypoint representation, where the identity-specific and motion-related information is decomposed unsupervisedly. Extensive experimental validation shows that our model outperforms competing methods on benchmark datasets. Moreover, our compact keypoint representation enables a video conferencing system that achieves the same visual quality as the commercial H.264 standard while only using one-tenth of the bandwidth. Besides, we show our keypoint representation allows the user to rotate the head during synthesis, which is useful for simulating a face-to-face video conferencing experience.

Abstract (translated)

URL

https://arxiv.org/abs/2011.15126

PDF

https://arxiv.org/pdf/2011.15126.pdf


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