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An Optical Flow-Based Approach to Robust Face Recognition Under Expression Variations

机译:基于光流的表情变化下的鲁棒人脸识别方法

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Face recognition is one of the most intensively studied topics in computer vision and pattern recognition, but few are focused on how to robustly recognize faces with expressions under the restriction of one single training sample per class. A constrained optical flow algorithm, which combines the advantages of the unambiguous correspondence of feature point labeling and the flexible representation of optical flow computation, has been developed for face recognition from expressional face images. In this paper, we propose an integrated face recognition system that is robust against facial expressions by combining information from the computed intraperson optical flow and the synthesized face image in a probabilistic framework. Our experimental results show that the proposed system improves the accuracy of face recognition from expressional face images.
机译:人脸识别是计算机视觉和模式识别中研究最深入的主题之一,但是很少有人关注如何在每堂课只有一个训练样本的限制下用表情来稳健地识别人脸。已经开发了一种约束光流算法,该算法结合了特征点标记的明确对应性和光流计算的灵活表示的优点,用于从表情人脸图像中识别人脸。在本文中,我们提出了一个集成的人脸识别系统,该系统通过在概率框架中组合来自计算出的人内光流和合成的人脸图像的信息来抵抗人脸表情。我们的实验结果表明,所提出的系统提高了从表情面部图像识别面部的准确性。

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