对不同外观面进行高效、准确的AAM拟合

Hugo Mercier, Julien Peyras, P. Dalle
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引用次数: 10

摘要

面部特征变形的自动提取是一项具有挑战性的任务,可以作为面部表情解释系统的基础。我们以主动外观模型和同步逆合成算法提取面部变形为出发点,提出了一种改进的版本,以有效地解决面部外观变化问题。考虑面部外观的重要变化是实现逼真的面部特征变形提取系统的第一步,该系统能够适应新面孔或在不断变化的视频条件下跟踪人脸。此外,为了测试配件,我们设计了一个实验方案,在建立基础真理时考虑到人为的不准确性
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Toward an efficient and accurate AAM fitting on appearance varying faces
Automatic extraction of facial feature deformations (either due to identity change or expression) is a challenging task and could be the base of a facial expression interpretation system. We use active appearance models and the simultaneous inverse compositional algorithm to extract facial deformations as a starting point and propose a modified version addressing the problem of facial appearance variation in an efficient manner. To consider important variation of facial appearance is a first step toward a realistic facial feature deformation extraction system able to adapt to a new face or to track a face with changing video conditions. Moreover, in order to test fittings, we design an experiment protocol that takes human inaccuracies into account when building a ground truth
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