支持向量机在连续认证中的应用

Tribhuvanesh Orekondy, S. Gosukonda, K. Srinivasa
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引用次数: 1

摘要

静态身份验证为一次性身份验证会话提供了安全框架,但在整个会话过程中无法对用户进行身份验证。当用户会话处于活动状态并且用户离开系统时,冒名顶替者就有可能获得访问权限。另一方面,持续身份验证旨在从用户登录到注销的初始阶段对用户进行身份验证。该框架根据一定的置信度参数,通过在分别利用硬生物识别和软生物识别的两种模式之间交替,提供了不引人注目的连续认证。我们使用面部特征作为识别用户的硬生物特征。长时间使用人脸识别会产生噪声,通过使用有监督的机器学习算法来抑制噪声。用户服装的颜色作为一种柔软的生物特征,缓解了运算量相对较高的CPU,放松了对用户上半身动作的约束。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of support vector machine in Continuous Authentication
Static Authentication provides a secure framework for a one-time authentication session, but fails to authenticate the user throughout the session. This presents the possibility of an imposter gaining access when a user session is active and the user moves away from the system. Continuous Authentication on the other hand, aims to authenticate the user right from the initial stages of log-in till logout. The proposed framework provides unobtrusive Continuous Authentication, by alternating between two modes which utilize hard and soft biometrics respectively, depending on certain confidence parameters. We use facial features as the hard biometric trait for recognizing the user. Employing face recognition for extended periods of time produces noise, which is dampened by using a supervised machine learning algorithm. The color of user's clothing as the soft biometric trait relieves the CPU of comparatively high computation and relaxes constraints on the user's upper body movement.
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