Adaptive Phone Orientation Method for Continuous Authentication Based on Mobile Motion Sensors

Shixuan Wang, Jiabin Yuan, Jing Wen
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引用次数: 4

Abstract

With the popularity of mobile terminals and the convenience of mobile operating, more and more private data is stored in mobile phones, which makes users pay more attention to mobile security. The data of mobile motion sensors are used to construct the user's behavioral characteristics and biometric characteristics. The principle is to capture the subtle changes in the smartphones caused by the user holding smartphones and touching screens. These changes are unique to different users. This paper studies the effects of mobile phone orientations on continuous authentication based on mobile motion sensors. Additionally, this paper constructs an adaptive phone orientation method for continuous authentication. An orientation detection model is constructed using K-means and Random Forest. The authentication model is constructed by using one-class SVM. Meanwhile, our experiments show that the data of mobile motion sensors are great difference in different phone orientations. We believe considering the situation of multi-orientations data affecting authentication accuracy. The adaptive phone orientation method can better fit for the scenarios where users use mobile devices in different phone orientations. Considering the orientation of the data will improve the robustness of the system and the accuracy of authentication.
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基于移动运动传感器的自适应手机方向连续认证方法
随着移动终端的普及和移动操作的便利性,越来越多的私人数据存储在手机上,这使得用户更加重视移动安全。利用移动运动传感器的数据构建用户的行为特征和生物特征。其原理是捕捉用户手持智能手机和触摸屏幕时智能手机的细微变化。这些更改对于不同的用户是独一无二的。本文研究了基于移动运动传感器的手机方向对连续认证的影响。此外,本文还构造了一种自适应手机定位的连续认证方法。利用k均值和随机森林构造了一个方向检测模型。采用单类支持向量机构建认证模型。同时,我们的实验表明,在不同的手机方向下,移动运动传感器的数据差异很大。我们认为考虑到多方向数据影响认证精度的情况。自适应手机朝向方法可以更好地适应用户在不同手机朝向下使用移动设备的场景。考虑数据的方向将提高系统的鲁棒性和认证的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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