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首页> 外文期刊>Egyptian Informatics Journal >The detection of spoofing by 3D mask in a 2D identity recognition system
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The detection of spoofing by 3D mask in a 2D identity recognition system

机译:在2D身份识别系统中通过3D蒙版检测欺骗

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Nowadays face recognition systems are facing a new problem after having won the challenge of reliability. The problem is that these systems have become vulnerable to attacks by identity theft. In order to deceive the recognition systems hackers use several methods, such as the use of face images or videos of people belonging to the system database. Luckily, this type of attack is thwarted by the use of adapted systems. But unfortunately another type of attack that uses 3D face masks appeared. This type of attack is very efficient, since as will be shown, a high percentage of hackers who use 3D masks can mislead a good facial recognition system, like the one used in our investigation. In this paper, a new method is proposed for the detection of hackers that use 3D masks to deceive face recognition systems. This method uses the Angular Radial Transformation (ART) to extract pertinent features that are fed into a classifier to decide whether the captured image represents a face image. The performance of the proposed method was evaluated using a public 3D Mask Attack Database (3DMAD). The obtained results show the efficiency of the proposed method, since it can reduce the error rate in discriminating between a real face and a face mask down to 0.90%.
机译:如今,人脸识别系统在赢得可靠性挑战后面临着一个新问题。问题在于这些系统已经变得容易受到身份盗窃的攻击。为了欺骗识别系统,黑客使用了多种方法,例如使用面部图像或属于系统数据库的人的视频。幸运的是,使用适合的系统可以阻止此类攻击。但不幸的是,出现了另一种使用3D面罩的攻击。这种攻击非常有效,因为如将要显示的那样,使用3D蒙版的黑客中有很大一部分会误导一个好的面部识别系统,就像我们调查中使用的那样。在本文中,提出了一种检测使用3D蒙版欺骗面部识别系统的黑客的新方法。此方法使用角径向变换(ART)提取相关特征,这些特征将被馈送到分类器中以决定捕获的图像是否代表面部图像。使用公共3D掩码攻击数据库(3DMAD)评估了所提出方法的性能。所获得的结果表明了该方法的有效性,因为它可以将区分真实面部和面罩的错误率降低到0.90%。

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