272 research outputs found

    Linear Facial Expression Transfer With Active Appearance Models

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    The issue of transferring facial expressions from one person's face to another's has been an area of interest for the movie industry and the computer graphics community for quite some time. In recent years, with the proliferation of online image and video collections and web applications, such as Google Street View, the question of preserving privacy through face de-identification has gained interest in the computer vision community. In this paper, we focus on the problem of real-time dynamic facial expression transfer using an Active Appearance Model framework. We provide a theoretical foundation for a generalisation of two well-known expression transfer methods and demonstrate the improved visual quality of the proposed linear extrapolation transfer method on examples of face swapping and expression transfer using the AVOZES data corpus. Realistic talking faces can be generated in real-time at low computational cost

    Monocular and Stereo Methods for AAM Learning from video

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    Discriminative multi-task sparse learning for robust visual tracking using conditional random field

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    Biologically Inspired Contrast Enhancement Using Asymmetric Gain Control

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    Image Reconstruction from Contrast Information

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    Towards Affective Sensing

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    Group expression intensity estimation in videos via Gaussian Processes

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