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Face Synthesis for Eyeglass-Robust Face Recognition

机译:人脸合成,用于眼镜鲁棒的人脸识别

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In the application of face recognition, eyeglasses could significantly degrade the recognition accuracy. A feasible method is to collect large-scale face images with eyeglasses for training deep learning methods. However, it is difficult to collect the images with and without glasses of the same identity, so that it is difficult to optimize the intra-variations caused by eyeglasses. In this paper, we propose to address this problem in a virtual synthesis manner. The high-fidelity face images with eyeglasses are synthesized based on 3D face model and 3D eyeglasses. Models based on deep learning methods are then trained on the synthesized eyeglass face dataset, achieving better performance than previous ones. Experiments on the real face database validate the effectiveness of our synthesized data for improving eyeglass face recognition performance.
机译:在人脸识别的应用中,眼镜可能会大大降低识别精度。一种可行的方法是使用眼镜收集大规模的面部图像,以训练深度学习方法。然而,难以在具有和没有相同身份的眼镜的情况下收集图像,从而难以优化由眼镜引起的内部变化。在本文中,我们建议以一种虚拟的综合方式解决这个问题。带有眼镜的高保真人脸图像是基于3D脸部模型和3D眼镜合成的。然后,在合成的眼镜面部数据集上训练基于深度学习方法的模型,从而获得比以前更好的性能。在真实人脸数据库上进行的实验验证了我们合成数据对于改善眼镜人脸识别性能的有效性。

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