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Unsupervised face anti-spoofing using dual cameras based feature matching

机译:使用基于双摄像头的功能匹配进行无监督的面部防欺骗

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Face anti-spoofing is a crucial part of face recognition system to protect subject’s privacy and life safety. Most current face anti-spoofing algorithms are based on feature extraction and machine learning. The performance of machine learning based approaches depends on the quantity and quality of the training data. In this paper, we propose an unsupervised face anti-spoofing method based on feature extraction and matching of a dual camera setup, which does not require offline training. The principle of our method is simple, intuitive, and generally applicable. The core idea of our method is exploiting the fact that a 3D face has different feature representations in images from two cameras with different view angles, as compared to that of a 2D spoofing face (either printed in a paper or showing on a screen). The proposed method has been benchmarked on a dataset created by our dual camera setup and shows an accuracy of 94.2%.
机译:面部防欺骗是面部识别系统的重要组成部分,可保护受试者的隐私和生命安全。当前大多数人脸反欺骗算法都是基于特征提取和机器学习的。基于机器学习的方法的性能取决于训练数据的数量和质量。在本文中,我们提出了一种基于特征提取和双相机设置匹配的无监督人脸防欺骗方法,该方法不需要脱机训练。我们方法的原理很简单,直观,并且普遍适用。我们方法的核心思想是,与2D欺骗面部(打印在纸上或在屏幕上显示)相比,3D面部在来自具有不同视角的两个摄像机的图像中具有不同的特征表示。所提出的方法已在由我们的双摄像头设置创建的数据集上进行了基准测试,显示出94.2%的准确性。

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