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Face Mosaicing for Pose Robust Video-Based Recognition

机译:基于姿态的稳健基于视频的人脸识别

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摘要

This paper proposes a novel face mosaicing approach to modeling human facial appearance and geometry in a unified framework. The human head geometry is approximated with a 3D ellipsoid model. Multi-view face images are back projected onto the surface of the ellipsoid, and the surface texture map is decomposed into an array of local patches, which are allowed to move locally in order to achieve better correspondences among multiple views. Finally the corresponding patches are trained to model facial appearance. And a deviation model obtained from patch movements is used to model the face geometry. Our approach is applied to pose robust face recognition. Using the CMU PIE database, we show experimentally that the proposed algorithm provides better performance than the baseline algorithms. We also extend our approach to video-based face recognition and test it on the Face In Action database.
机译:本文提出了一种新颖的人脸镶嵌方法,用于在统一框架中对人脸的外观和几何形状进行建模。用3D椭球模型近似人的头部几何形状。多视图面部图像被反投影到椭球的表面上,并且表面纹理贴图被分解为一系列局部斑块,这些局部斑块被允许局部移动以实现多个视图之间更好的对应。最后,训练相应的补丁以模拟面部外观。从面片运动获得的偏差模型用于建模脸部几何形状。我们的方法用于构成稳健的人脸识别。使用CMU PIE数据库,我们通过实验证明了所提出的算法比基线算法具有更好的性能。我们还将我们的方法扩展到基于视频的面部识别,并在Face In Action数据库中对其进行测试。

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