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Fast Facial Animation from Video

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Author

Iñaki Navarro, Dario Kneubuehler, Tijmen Verhulsdonck, Eloi du Bois, William Welch, Vivek Verma, Ian Sachs, Kiran Bhat

Venue

ACM SIGGRAPH 2021 Talk

Abstract

Real time facial animation for virtual 3D characters has important applications such as AR/VR, interactive 3D entertainment, pre-visualization and video conferencing. Yet despite important research breakthroughs in facial tracking and performance capture, there are very few commercial examples of real-time facial animation applications in the consumer market. Mass adoption requires realtime performance on commodity hardware and visually pleasing animation that is robust to real world conditions, without requiring manual calibration. We present an end-to-end deep learning framework for regressing facial animation weights from video that addresses most of these challenges. Our formulation is fast (3.2 ms), utilizes images of real human faces along with millions of synthetic rendered frames to train the network on real-world scenarios, and produces jitter-free visually pleasing animations.