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Smartphone-Based Gait Recognition: From Authentication to Imitation

机译:基于智能手机的步态识别:从身份验证到模仿

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This work evaluates the security strength of a smartphone-based gait recognition system against zero-effort and live minimal-effort impersonation attacks under realistic scenarios. For this purpose, we developed an Android application, which uses a smartphone-based accelerometer to capture gait data continuously in the background, but only when an individual walks. Later, it analyzes the recorded gait data and establishes the identity of an individual. At first, we tested the performance of this system against zero-effort attacks by using a dataset of 35 participants. Later, live impersonation attacks were performed by five professional actors who are specialized in mimicking body movements and body language. These attackers were paired with their physiologically close victims, and they were given live audio and visual feedback about their latest impersonation attempt during the whole experiment. No false positives under impersonation attacks, indicate that mimicry does not improve chances of attackers being accepted by our gait authentication system. In 29 percent of total impersonation attempts, when attackers walked like their chosen victim, they lost regularity between their steps which makes impersonation even harder for attackers.
机译:这项工作评估了基于智能手机的步态识别系统在实际情况下针对零努力和实时最小努力模仿攻击的安全强度。为此,我们开发了一个Android应用程序,该应用程序使用基于智能手机的加速度计在后台连续捕获步态数据,但仅限于个人行走时。随后,它分析记录的步态数据并建立个人身份。首先,我们使用35名参与者的数据集测试了该系统针对零努力攻击的性能。后来,由五个专门模仿肢体动作和肢体语言的专业演员进行了现场模仿攻击。这些攻击者与生理上接近的受害者配对,并在整个实验过程中获得了有关他们最新假冒尝试的实时音频和视频反馈。在模拟攻击下没有误报,表明模仿不会增加攻击者被我们的步态验证系统接受的机会。在总模拟尝试的29%中,当攻击者像所选受害者一样行走时,他们在步伐之间失去了规律性,这使攻击者更加难以进行模仿。

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