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TrueHeart: Continuous Authentication on Wrist-worn Wearables Using PPG-based Biometrics

机译:TrueHeart:使用基于PPG的生物识别技术对腕戴式可穿戴设备进行连续认证

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Traditional one-time user authentication processes might cause friction and unfavorable user experience in many widely-used applications. This is a severe problem in particular for security-sensitive facilities if an adversary could obtain unauthorized privileges after a user’s initial login. Recently, continuous user authentication (CA) has shown its great potential by enabling seamless user authentication with few active participation. We devise a low-cost system exploiting a user’s pulsatile signals from the photoplethysmography (PPG) sensor in commercial wrist-worn wearables for CA. Compared to existing approaches, our system requires zero user effort and is applicable to practical scenarios with non-clinical PPG measurements having motion artifacts (MA). We explore the uniqueness of the human cardiac system and design an MA filtering method to mitigate the impacts of daily activities. Furthermore, we identify general fiducial features and develop an adaptive classifier using the gradient boosting tree (GBT) method. As a result, our system can authenticate users continuously based on their cardiac characteristics so little training effort is required. Experiments with our wrist-worn PPG sensing platform on 20 participants under practical scenarios demonstrate that our system can achieve a high CA accuracy of over 90% and a low false detection rate of 4% in detecting random attacks.
机译:传统的一次性用户身份验证过程可能会在许多广泛使用的应用程序中引起摩擦和不利的用户体验。如果攻击者可以在用户首次登录后获得未经授权的特权,那么这对于安全性较高的设施来说尤其是一个严重的问题。最近,连续用户身份验证(CA)通过启用无缝的用户身份验证而几乎没有活跃的参与,已显示出其巨大的潜力。我们设计了一种低成本系统,该系统利用了用于CA的手腕式可穿戴设备中来自光电容积描记(PPG)传感器的用户脉动信号。与现有方法相比,我们的系统需要零用户的努力,并且适用于具有运动伪像(MA)的非临床PPG测量的实际情况。我们探索了人类心脏系统的独特性,并设计了一种MA过滤方法来减轻日常活动的影响。此外,我们确定了常规基准特征,并使用梯度提升树(GBT)方法开发了自适应分类器。因此,我们的系统可以根据用户的心脏特征连续对其进行身份验证,因此几乎不需要培训。我们的腕戴式PPG传感平台在实际情况下对20名参与者进行的实验表明,在检测随机攻击时,我们的系统可以实现90%以上的高CA准确性和4%的低误检率。

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