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3D Facial Landmarking under Expression, Pose, and Occlusion Variations

机译:3D在表达,姿势和遮挡变化下的面部地标

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Automatic localization of 3D facial features is important for face recognition, tracking, modeling and expression analysis. Methods developed for 2D images were shown to have problems working across databases acquired with different illumination conditions. Expression variations, pose variations and occlusions also hamper accurate detection of landmarks. In this paper we assess a fully automatic 3D facial landmarking algorithm that relies on accurate statistical modeling of facial features. This algorithm can be employed to model any facial landmark, provided that the facial poses present in the training and test conditions are similar. We test this algorithm on the recently acquired Bosphorus 3D face database, and also inspect cross-database performance by using the FRGC database. Then, a curvature-based method for localizing the nose tip is introduced and shown to perform well under severe conditions.
机译:3D面部特征的自动定位对于面部识别,跟踪,建模和表达分析非常重要。显示用于2D图像的方法显示在跨不同的照明条件获取的数据库中具有问题。表达变化,姿势变化和闭塞还妨碍了准确的地标检测。在本文中,我们评估了一种完全自动的3D面部地标算法,依赖于面部特征的准确统计建模。如果培训和测试条件中存在的面部姿势类似,则可以采用该算法来模拟任何面部地标。我们在最近获得的Bosphorus 3D面部数据库上测试该算法,并通过使用FRGC数据库检查跨数据库性能。然后,引入了一种用于定位鼻尖的基于曲率的方法,并显示在严重条件下表现良好。

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