使用击键动力学的用户识别

Y. Can, Fatih Alagöz
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引用次数: 0

摘要

传统的用户身份验证或标识系统感兴趣的是您拥有的东西(如密钥、身份证等)或您已经知道的东西(如密码或PIN)。有了生物识别技术,这种兴趣已经转向了一种不同的方法:你的一部分(指纹或脸)或你制作的东西(如手写签名或声音)。识别系统的工作方式是,系统获取一个样本,并与数据库中的每条记录进行比较。这个方法是一个名为“一对多”的比较。输入字符的行为和节奏被用作一种称为击键动力学的生物识别认证系统。与大多数需要特定硬件的识别系统不同,击键动力学只需要一个键盘。在建议的方法中,像登录方法一样使用短的固定文本。在CMU击键数据库上对d变量高斯算法、kNN算法和决策树算法进行了测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
User identification using Keystroke Dynamics
Traditional user authentication or identification systems are interested in something that you possess (like a key, an identification card, etc.) or something you already know (like a password, or a PIN). With biometrics, this interest has been shifted towards a different approach :something that are part of you (fingerprints or face) or something you make (e.g., handwritten signature or voice). Identification system works in such a way that the system obtains one sample and compares with each record in the database. This method is a comparison named “one-to-many. Behaviours and rhythms of the typing characters are used as a biometric authentication system named as Keystroke Dynamics. Unlike most identification systems that require specific hardware, keystroke dynamics requires only a keyboard. In the proposed approach, short fixed text is used like in the login approaches. The d-variate Gaussian, kNN and decision tree algorithms are tested on CMU keystroke database.
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