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SwipeVLock: A Supervised Unlocking Mechanism Based on Swipe Behavior on Smartphones

机译:SwipeVLock:一种基于滑动行为的智能手机监督解锁机制

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Smartphones have become a necessity in people's daily lives, and changed the way of communication at any time and place. Nowadays, mobile devices especially smartphones have to store and process a large amount of sensitive information, i.e., from personal to financial and professional data. For this reason, there is an increasing need to protect the devices from unauthorized access. In comparison with the traditional textual password, behavioral authentication can verify current users in a continuous way, which can complement the existing authentication mechanisms. With the advanced capability provided by current smartphones, users can perform various touch actions to interact with their devices. In this work, we focus on swipe behavior and aim to design a machine learning-based unlock scheme called SwipeVLock, which verifies users based on their way of swiping the phone screen with a background image. In the evaluation, we measure several typical supervised learning algorithms and conduct a user study with 30 participants. Our experimental results indicate that participants could perform well with SwipeVLock, i.e., with a success rate of 98% in the best case.
机译:智能手机已成为人们日常生活中的必需品,并随时随地改变了通信方式。如今,移动设备(尤其是智能手机)必须存储和处理大量敏感信息,即从个人数据到财务和专业数据。因此,越来越需要保护设备免遭未经授权的访问。与传统的文本密码相比,行为身份验证可以连续方式验证当前用户,这可以补充现有的身份验证机制。借助当前智能手​​机提供的高级功能,用户可以执行各种触摸操作以与其设备进行交互。在这项工作中,我们着重于滑动行为,旨在设计一种基于机器学习的解锁方案,称为SwipeVLock,该方案根据用户使用背景图片滑动电话屏幕的方式来验证用户。在评估中,我们测量了几种典型的监督学习算法,并与30名参与者进行了用户研究。我们的实验结果表明,参与者使用SwipeVLock可以表现良好,即在最佳情况下成功率为98%。

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