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Actions Speak Louder Than (Pass)words: Passive Authentication of Smartphone* Users via Deep Temporal Features

机译:行动胜于(通过)词语:智能手机的被动身份验证通过深度时间特征,智能手机 * 用户

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Prevailing user authentication schemes on smartphones rely on explicit user interaction, where a user types in a passcode or presents a biometric cue such as face, fingerprint, or iris. In addition to being cumbersome and obtrusive to the users, such authentication mechanisms pose security and privacy concerns. Passive authentication systems can tackle these challenges by unobtrusively monitoring the user's interaction with the device. We propose a Siamese Long Short-Term Memory (LSTM) network architecture for passive authentication, where users can be verified without requiring any explicit authentication step. On a dataset comprising of measurements from 30 smartphone sensor modalities for 37 users, we evaluate our approach on 8 dominant modalities, namely, keystroke dynamics, GPS location, accelerometer, gyroscope, magnetometer, linear accelerometer, gravity, and rotation sensors. Experimental results find that a genuine user can be correctly verified 96.47% a false accept rate of 0.1% within 3 seconds.
机译:智能手机上的普遍存在用户身份验证方案依赖于显式用户交互,其中密码中的用户类型或呈现生物识别:诸如面部,指纹或虹膜。除了对用户繁琐且令人痛苦的外,这种认证机制都会构成安全性和隐私问题。被动身份验证系统可以通过不引人注发地监视用户与设备的交互来解决这些挑战。我们提出了一个用于被动认证的暹罗长的短期内存(LSTM)网络架构,其中可以在不需要任何显式认证步骤的情况下验证用户。在数据集中,包括来自30个用户的30个智能手机传感器方式的测量,我们在8个主导模式下评估我们的方法,即击键动力学,GPS位置,加速度计,陀螺仪,磁力计,线性加速度计,重力和旋转传感器。实验结果发现,在3秒内可以正确验证真正的用户的假接受率为0.1%。

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