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Detecting face presentation attacks in mobile devices with a patch-based CNN and a sensor-aware loss function

机译:通过基于补丁的CNN和传感器感知损耗函数检测移动设备的面部呈现攻击

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With the widespread use of biometric authentication comes the exploitation of presentation attacks, possibly undermining the effectiveness of these technologies in real-world setups. One example takes place when an impostor, aiming at unlocking someone else’s smartphone, deceives the built-in face recognition system by presenting a printed image of the user. In this work, we study the problem of automatically detecting presentation attacks against face authentication methods, considering the use-case of fast device unlocking and hardware constraints of mobile devices. To enrich the understanding of how a purely software-based method can be used to tackle the problem, we present a solely data-driven approach trained with multi-resolution patches and a multi-objective loss function crafted specifically to the problem. We provide a careful analysis that considers several user-disjoint and cross-factor protocols, highlighting some of the problems with current datasets and approaches. Such analysis, besides demonstrating the competitive results yielded by the proposed method, provides a better conceptual understanding of the problem. To further enhance efficacy and discriminability, we propose a method that leverages the available gallery of user data in the device and adapts the method decision-making process to the user’s and the device’s own characteristics. Finally, we introduce a new presentation-attack dataset tailored to the mobile-device setup, with real-world variations in lighting, including outdoors and low-light sessions, in contrast to existing public datasets.
机译:随着生物识别验证的广泛使用来利用演示攻击,可能会破坏这些技术在现实世界设置中的有效性。一个示例在旨在解锁别人的智能手机时,通过呈现用户的打印图像来欺骗内置面部识别系统。在这项工作中,考虑到移动设备的快速设备解锁和硬件限制的用例,我们研究了自动检测脸部认证方法的演示攻击问题。为了丰富对如何使用基于软件的方法来解决问题的理解,我们介绍了用多分辨率补丁训练的单独数据驱动方法以及专门针对问题的多目标损失函数。我们提供了仔细分析,考虑了几个用户脱节和跨因素协议,突出显示当前数据集和方法的一些问题。除了展示所提出的方法产生的竞争结果之外,这种分析提供了更好的对问题的概念理解。为了进一步提高功效和可辨别性,我们提出了一种方法,该方法利用了设备中的可用用户数据库,并使方法决策过程适应用户和设备自己的特征。最后,我们介绍了用于移动设备设置的新呈现 - 攻击数据集,其具有户外和低光会话的现实世界变化,与现有的公共数据集相比。

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