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Face Recognition on Consumer Devices: Reflections on Replay Attacks

机译:消费设备上的面部识别:对重放攻击的思考

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Widespread deployment of biometric systems supporting consumer transactions is starting to occur. Smart consumer devices, such as tablets and phones, have the potential to act as biometric readers authenticating user transactions. However, the use of these devices in uncontrolled environments is highly susceptible to replay attacks, where these biometric data are captured and replayed at a later time. Current approaches to counter replay attacks in this context are inadequate. In order to show this, we demonstrate a simple replay attack that is 100% effective against a recent state-of-the-art face recognition system; this system was specifically designed to robustly distinguish between live people and spoofing attempts, such as photographs. This paper proposes an approach to counter replay attacks for face recognition on smart consumer devices using a noninvasive challenge and response technique. The image on the screen creates the challenge, and the dynamic reflection from the person’s face as they look at the screen forms the response. The sequence of screen images and their associated reflections digitally watermarks the video. By extracting the features from the reflection region, it is possible to determine if the reflection matches the sequence of images that were displayed on the screen. Experiments indicate that the face reflection sequences can be classified under ideal conditions with a high degree of confidence. These encouraging results may pave the way for further studies in the use of video analysis for defeating biometric replay attacks on consumer devices.
机译:开始支持消费者交易的生物识别系统的广泛部署。诸如平板电脑和电话之类的智能消费设备有可能充当生物识别读取器来验证用户交易。但是,在不受控制的环境中使用这些设备非常容易受到重放攻击,在这些情况下,稍后会捕获并重放这些生物统计数据。在这种情况下,目前用于应对重播攻击的方法是不够的。为了证明这一点,我们演示了一种简单的重放攻击,该攻击对最新的先进人脸识别系统具有100%的有效性;该系统经过专门设计,可以对活人和欺骗企图(例如照片)进行有力的区分。本文提出了一种使用非侵入式挑战和响应技术来针对智能消费设备上的面部识别进行反重放攻击的方法。屏幕上的图像会带来挑战,当他们看着屏幕时,人脸的动态反射就会形成响应。屏幕图像序列及其相关的反射会为视频加水印。通过从反射区域中提取特征,可以确定反射是否与屏幕上显示的图像序列匹配。实验表明,人脸反射序列可以在理想条件下以高置信度进行分类。这些令人鼓舞的结果可能为进一步研究利用视频分析克服消费类设备上的生物特征重放攻击铺平道路。

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