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Data-Specific Adaptive Threshold for Face Recognition and Authentication

机译:用于面部识别和验证的特定于数据的自适应阈值

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Many face recognition systems boost the performance using deep learning models, but only a few researches go into the mechanisms for dealing with online registration. Although we can obtain discriminative facial features through the state-of-the-art deep model training, how to decide the best threshold for practical use remains a challenge. We develop a technique of adaptive threshold mechanism to improve the recognition accuracy. We also design a face recognition system along with the registering procedure to handle online registration. Furthermore, we introduce a new evaluation protocol to better evaluate the performance of an algorithm for real-world scenarios. Under our proposed protocol, our method can achieve a 22% accuracy improvement on the LFW dataset.
机译:许多人脸识别系统使用深度学习模型来提高性能,但是只有很少的研究涉及处理在线注册的机制。尽管我们可以通过最新的深度模型训练来获得有区别的面部特征,但是如何确定实际使用的最佳阈值仍然是一个挑战。我们开发了一种自适应阈值机制技术,以提高识别精度。我们还设计了人脸识别系统以及注册程序来处理在线注册。此外,我们引入了一种新的评估协议,可以更好地评估实际场景中算法的性能。根据我们提出的协议,我们的方法可以将LFW数据集的准确度提高22%。

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