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Face Recognition Across Pose with Automatic Estimation of Pose Parameters through AAM-Based Landmarking

机译:通过基于AAM的地标自动估计姿势参数实现整个姿势的人脸识别

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In this paper we present a fully automatic system for face recognition across pose where no frontal view is needed in enrollment or test. The system uses three Active Appearance Models(AAMs): the first one is a generic multi resolution AAM, while the remaining ones are trained to cope with left/right variations (i.e. pose-dependent AAMs). During the fitting stage, pose is automatically estimated using eigenvector analysis, and a synthetic face is generated through texture warping. Results over CMU PIE Database show promising results compared to the performance achieved with manually land marked faces.
机译:在本文中,我们提出了一种用于整个姿势的面部识别的全自动系统,在注册或测试中不需要正面视图。该系统使用三个主动外观模型(AAM):第一个是通用的多分辨率AAM,而其余模型则经过训练以应对左右变化(即与姿势有关的AAM)。在拟合阶段,使用特征向量分析自动估计姿势,并通过纹理变形生成合成人脸。通过CMU PIE数据库获得的结果显示出与人工标记地面所获得的性能相比令人鼓舞的结果。

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