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Frontal Face Generation Based Multi-angle Face Identification System

机译:基于正面生成的多角度面识别系统

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Precise identity recognition is a pre-condition for robots to enter the human living environment. Most of the existed face identification methods cannot work on the non-frontal face since the severe texture loss. In this paper, we propose a novel system to deal with multi-angle face identification in video sequence based on frontal face generation, which replaces the process of detection, alignment in the typical face identification system. To solve the problem of face texture loss in large pose variation, we creatively combine generative adversarial networks (GAN) with the state-of-the-art facial landmark localization method. The proposed system was tested on video database containing multi-angle faces, and the experimental results indicate that our system can recognize more faces in the frames, and improve the accuracy of identification for multi-angle face by 130%.
机译:精确的身份识别是进入人类生活环境的机器人的预先条件。由于严重的质地损失,大多数都存在的面部识别方法不能正常工作。在本文中,我们提出了一种基于正面生成的视频序列中的多角度面识别的新型系统,其替换了典型面识别系统中的检测过程,对准。为了解决大姿势变化中面部纹理损失问题,我们创造性地将生成的对抗网络(GAN)与最先进的面部地标定位方法相结合。在包含多角度面的视频数据库上测试了所提出的系统,实验结果表明,我们的系统可以在框架中识别更多面,并提高多角度面的识别精度130%。

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