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Gestalt Interest Points with a Neural Network for Makeup-Robust Face Recognition

机译:基于神经网络的格式塔兴趣点,用于化妆-脸型识别

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In this paper, we propose a novel approach for the domain of makeup-robust face recognition. Most face recognition schemes usually fail to generalize well on these data where there is a large difference between the training and testing sets, e.g., makeup changes. Our method focuses on the problem of determining whether face images before and after makeup refer to the same identity. The work on this fundamental research topic benefits various real-world applications, for example automated passport control, security in general, and surveillance. Experiments show that our method is highly effective in comparison to state-of-the-art methods.
机译:在本文中,我们提出了一种针对化妆鲁棒脸部识别领域的新颖方法。在训练和测试集之间存在很大差异(例如化妆改变)的情况下,大多数面部识别方案通常无法很好地概括这些数据。我们的方法着重于确定化妆前后脸部图像是否引用相同身份的问题。这个基础研究主题的工作使各种实际应用受益,例如自动护照控制,总体安全和监视。实验表明,与最新方法相比,我们的方法非常有效。

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