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A Usable Authentication System Using Wrist-Worn Photoplethysmography Sensors on Smartwatches

机译:在智能手表上使用腕戴式光电容积脉搏波传感器的可用身份验证系统

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Smartwatches are expected to become the world's best-selling electronic product after smartphones. Various smart-watches have been released to the private consumer market, but the data on smartwatches is not well protected. In this paper, we show for the first time that photoplethysmography (PPG)signals influenced by hand gestures can be used to authenticate users on smartwatches. The insight is that muscle and tendon movements caused by hand gestures compress the arterial geometry with different degrees, which has a significant impact on the blood flow. Based on this insight, novel approaches are proposed to detect the starting point and ending point of the hand gesture from raw PPG signals and determine if these PPG signals are from a normal user or an attacker. Different from existing solutions, our approach leverages the PPG sensors that are available on most smartwatches and does not need to collect training data from attackers. Also, our system can be used in more general scenarios wherever users can perform hand gestures and is robust against shoulder surfing attacks. We conduct various experiments to evaluate the performance of our system and show that our system achieves an average authentication accuracy of 96.31 % and an average true rejection rate of at least 91.64% against two types of attacks.
机译:智能手表有望成为继智能手机之后全球最畅销的电子产品。已经向私人消费者市场发布了各种智能手表,但是智能手表上的数据没有得到很好的保护。在本文中,我们首次展示了受手势影响的光电容积描记(PPG)信号可用于对智能手表上的用户进行身份验证。洞察力是由手势引起的肌肉和肌腱运动以不同程度压缩动脉的几何形状,这对血流有显着影响。基于这种见识,提出了新颖的方法来从原始PPG信号中检测手势的起点和终点,并确定这些PPG信号是来自正常用户还是攻击者。与现有解决方案不同,我们的方法利用了大多数智能手表上可用的PPG传感器,并且不需要从攻击者那里收集训练数据。此外,我们的系统可用于用户可以执行手势且对肩膀冲浪攻击具有鲁棒性的更一般的场景。我们进行了各种实验来评估系统的性能,结果表明,针对两种类型的攻击,我们的系统实现了96.31%的平均身份验证准确度和至少91.64%的平均真实拒绝率。

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