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Continuous face authentication scheme for mobile devices with tracking and liveness detection

机译:具有跟踪和动态检测功能的移动设备连续人脸认证方案

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We present a novel scheme for continuous face authentication using mobile device cameras that addresses the issue of spoof attacks and attack windows in state-of-the-art approaches. Our scheme authenticates a user based on extracted facial features. However, unlike other schemes that periodically re-authenticate a user, our scheme tracks the authenticated face and only attempts re-authentication when the authenticated face is lost. This allows our scheme to eliminate attack windows that exist in schemes authenticating periodically and immediately recognise impostor usage. We also introduce a robust liveness detection component to our scheme that can detect printed faces and face videos. We describe how the addition of liveness detection enhances the robustness of our scheme against spoof attacks, improving on state-of-the-art approaches that lack this capability. Furthermore, we create the first dataset of facial videos collected from mobile devices during different real-world activities (walking, sitting and standing) such that our results reflect realistic scenarios. Our dataset therefore allows us to give new insight into the impact of user activity on facial recognition. Our dataset also includes spoofed facial videos for liveness testing. We use our dataset alongside two benchmark datasets for our experiments. We show and discuss how our scheme improves on existing continuous face authentication approaches and efficiently enhances device security.
机译:我们提出了一种使用移动设备相机进行连续人脸认证的新颖方案,该方案以最新方法解决了欺骗攻击和攻击窗口的问题。我们的方案基于提取的面部特征对用户进行身份验证。但是,与其他定期对用户进行身份验证的方案不同,我们的方案跟踪经过身份验证的面孔,并且仅在丢失经过身份验证的面孔时才尝试进行重新身份验证。这使我们的方案可以消除定期进行身份验证的方案中存在的攻击窗口,并立即识别冒名顶替者的使用情况。我们还在方案中引入了功能强大的活动检测组件,可以检测打印的面部和面部视频。我们描述了动态检测的添加如何增强我们针对欺骗攻击的方案的鲁棒性,并改进了缺乏此功能的最新方法。此外,我们创建了在不同的现实世界活动(步行,坐着和站立)期间从移动设备收集的第一个面部视频数据集,以使我们的结果反映出真实的场景。因此,我们的数据集使我们能够对用户活动对面部识别的影响提供新的见解。我们的数据集还包括用于面部表情测试的欺骗性面部视频。我们将数据集与两个基准数据集一起用于实验。我们将展示并讨论我们的方案如何在现有的连续人脸身份验证方法上进行改进,并有效地提高设备安全性。

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