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首页> 外文期刊>IEEE transactions on information forensics and security >Secure Face Unlock: Spoof Detection on Smartphones
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Secure Face Unlock: Spoof Detection on Smartphones

机译:安全面部解锁:智能手机上的欺骗检测

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With the wide deployment of the face recognition systems in applications from deduplication to mobile device unlocking, security against the face spoofing attacks requires increased attention; such attacks can be easily launched via printed photos, video replays, and 3D masks of a face. We address the problem of face spoof detection against the print (photo) and replay (photo or video) attacks based on the analysis of image distortion (e.g., surface reflection, moiré pattern, color distortion, and shape deformation) in spoof face images (or video frames). The application domain of interest is smartphone unlock, given that the growing number of smartphones have the face unlock and mobile payment capabilities. We build an unconstrained smartphone spoof attack database (MSU USSA) containing more than 1000 subjects. Both the print and replay attacks are captured using the front and rear cameras of a Nexus 5 smartphone. We analyze the image distortion of the print and replay attacks using different: 1) intensity channels (R, G, B, and grayscale); 2) image regions (entire image, detected face, and facial component between nose and chin); and 3) feature descriptors. We develop an efficient face spoof detection system on an Android smartphone. Experimental results on the public-domain Idiap Replay-Attack, CASIA FASD, and MSU-MFSD databases, and the MSU USSA database show that the proposed approach is effective in face spoof detection for both the cross-database and intra-database testing scenarios. User studies of our Android face spoof detection system involving 20 participants show that the proposed approach works very well in real application scenarios.
机译:随着人脸识别系统在从重复数据删除到移动设备解锁的应用程序中的广泛部署,抵御人脸欺骗攻击的安全性需要引起更多关注。通过打印照片,视频回放和3D面部蒙版,可以轻松发起此类攻击。我们基于对欺骗性面部图像中图像失真(例如,表面反射,波纹图案,颜色失真和形状变形)的分析,解决了针对印刷品(照片)和重放(照片或视频)攻击的面部欺骗检测问题(或视频帧)。鉴于越来越多的智能手机具有面部解锁和移动支付功能,因此关注的应用领域是智能手机解锁。我们建立了一个包含1000多个主题的不受限制的智能手机欺骗攻击数据库(MSU USSA)。 Nexus 5智能手机的前后摄像头均可捕获打印和重播攻击。我们使用不同的方法分析打印和重放攻击的图像失真:1)强度通道(R,G,B和灰度); 2)图像区域(整个图像,检测到的面部以及鼻子和下巴之间的面部成分);和3)特征描述符。我们在Android智能手机上开发了有效的面部欺骗检测系统。在公共领域Idiap Replay-Attack,CASIA FASD和MSU-MFSD数据库以及MSU USSA数据库上的实验结果表明,该方法对于跨数据库和数据库内测试场景的面部欺骗检测都是有效的。用户对我们的涉及20位参与者的Android面部欺骗检测系统的研究表明,该方法在实际应用场景中效果很好。

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