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Efficient 3D reconstruction for face recognition

机译:高效的3D重建以进行人脸识别

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摘要

Face recognition with variant pose, illumination and expression (PIE) is a challenging problem. In this paper, we propose an analysis-by-synthesis framework for face recognition with variant PIE. First, an efficient two-dimensional (2D)-to-three-dimensional (3D) integrated face reconstruction approach is introduced to reconstruct a personalized 3D face model from a single frontal face image with neutral expression and normal illumination. Then, realistic virtual faces with different PIE are synthesized based on the personalized 3D face to characterize the face subspace. Finally, face recognition is conducted based on these representative virtual faces. Compared with other related work, this framework has following advantages: (1) only one single frontal face is required for face recognition, which avoids the burdensome enrollment work; (2) the synthesized face samples provide the capability to conduct recognition under difficult conditions like complex PIE; and (3) compared with other 3D reconstruction approaches, our proposed 2D-to-3D integrated face reconstruction approach is fully automatic and more efficient. The extensive experimental results show that the synthesized virtual faces significantly improve the accuracy of face recognition with changing PIE. (c) 2004 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:具有不同姿势,照明和表情(PIE)的面部识别是一个具有挑战性的问题。在本文中,我们提出了一种综合分析框架,用于使用变体PIE进行人脸识别。首先,引入了一种有效的二维(2D)到三维(3D)集成面部重构方法,以从具有中性表情和正常照明的单个正面面部图像重构个性化3D面部模型。然后,基于个性化的3D面部合成具有不同PIE的真实虚拟面部,以表征面部子空间。最后,基于这些代表性的虚拟面部进行面部识别。与其他相关工作相比,该框架具有以下优点:(1)人脸识别只需要一张正面的脸,避免了繁重的招生工作; (2)合成的人脸样本提供了在复杂PIE等困难条件下进行识别的能力; (3)与其他3D重建方法相比,我们提出的2D到3D集成人脸重建方法是全自动且效率更高的。广泛的实验结果表明,随着PIE的变化,合成的虚拟面部显着提高了面部识别的准确性。 (c)2004模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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