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GaitLock: Protect Virtual and Augmented Reality Headsets Using Gait

机译:GaitLock:使用步态保护虚拟和增强现实耳机

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With the fast penetration of commercial Virtual Reality (VR) and Augmented Reality (AR) systems into our daily life, the security issues of those devices have attracted significant interests from both academia and industry. Modern VR/AR systems typically use head-mounted devices (i.e., headsets) to interact with users, and often store private user data, e.g., social network accounts, online transactions or even payment information. This poses significant security threats, since in practice the headset can be potentially obtained and accessed by unauthenticated parties, e.g., identity thieves, and thus cause catastrophic breach. In this paper, we propose a novel GaitLock system, which can reliably authenticate users using their gait signatures. Our system doesn't require extra hardware, e.g., fingerprint sensors or retina scanners, but only uses the on-board inertial measurement units (IMUs) equipped in almost all mainstream VR/AR headsets to authenticate the legitimate users from intruders, by simply asking them to walk a few steps. To achieve that, we propose a new gait recognition model Dynamic-SRC, which combines the strength of Dynamic Time Warping (DTW) and Sparse Representation Classifier (SRC), to extract unique gait patterns from the inertial signals during walking. We implement GaitLock on Google Glass (a typical AR headset), and extensive experiments show that GaitLock outperforms the state-of-the-art systems significantly in recognition accuracy (> 98 percent success in 5 steps), and is able to run in-situ on the resource-constrained VR/AR headsets without incurring high energy cost.
机译:随着商业虚拟现实(VR)和增强现实(AR)系统快速渗透到我们的日常生活中,这些设备的安全性问题引起了学术界和工业界的极大兴趣。现代VR / AR系统通常使用头戴式设备(即,头戴式耳机)来与用户交互,并且经常存储私人用户数据,例如,社交网络账户,在线交易或什至支付信息。这带来了重大的安全威胁,因为在实践中,耳机可能会被未经身份验证的方(例如身份窃贼)获取和访问,从而造成灾难性的破坏。在本文中,我们提出了一种新颖的GaitLock系统,该系统可以使用他们的步态签名可靠地验证用户身份。我们的系统不需要额外的硬件,例如指纹传感器或视网膜扫描仪,而仅使用几乎所有主流VR / AR头显中配备的机载惯性测量单元(IMU),即可通过简单地询问入侵者来验证合法用户他们走了几步。为此,我们提出了一种新的步态识别模型Dynamic-SRC,该模型结合了动态时间规整(DTW)和稀疏表示分类器(SRC)的优势,可以从步行过程中的惯性信号中提取独特的步态模式。我们在Google Glass(典型的AR头戴式耳机)上实现了GaitLock,大量的实验表明,GaitLock在识别准确度方面(优于5个步骤,成功率超过98%)明显优于最新系统。在资源受限的VR / AR头戴式耳机上就地安装,而不会产生高昂的能源成本。

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