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A bioinformatics based approach to user authentication via keystroke dynamics

机译:基于生物信息学的通过击键动态进行用户身份验证的方法

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Keystroke dynamics is a behavioural biometric deployed as a software based method for the authentication and/or identification of a user requesting access to a secured computing facility. It relies on how a user types on the input device (here assumed to be a PC keyboard)-and makes the explicit assumption that there are typing characteristics that are unique to each individual. If these unique characteristics can be extracted-then they can be used, in conjunction with the login details to enhance the level of access security-over and above the possession of the login details alone. Most unique characteristics involve the extraction of keypress durations and multi-key latencies. These characteristics are extracted during an enrollment phase, where a user is requested to login into the computer system repeatedly. The unique characteristics then form a string of some length, proportional to the enrollment character content times the number of attributes extracted. In this study, the deployment of classical string matching features prevalent in the bioinformatics literature such as position specific scoring matrices (motifs) and multiple sequence alignments to provide a novel approach to user verification and identification within the context of keystroke dynamics based biometrics. This study provides quantitative information regarding the values of parameters such as attribute acceptance thresholds, the number of accepted attributes, and the effect of contiguity. In addition, this study examined the use of keystroke dynamics as a tool for user identification. The results in this study yield virtually 100% user authentication and identification within a single framework.
机译:击键动力学是一种行为生物特征,该行为生物特征被部署为基于软件的方法,用于认证和/或标识请求访问安全计算设施的用户。它取决于用户如何在输入设备(此处假定为PC键盘)上打字,并明确假设存在每个人唯一的打字特征。如果可以提取这些独特的特征,则可以将其与登录详细信息结合使用,以提高访问安全级别,而不仅仅是单独拥有登录详细信息。最独特的特征包括按键持续时间和多键等待时间的提取。这些特征是在注册阶段提取的,在该阶段要求用户重复登录计算机系统。然后,独特特征形成一定长度的字符串,该字符串与注册字符内容乘以提取的属性数量成比例。在这项研究中,经典字符串匹配功能的部署在生物信息学文献中很普遍,例如特定位置的评分矩阵(motif)和多个序列比对,从而为基于键盘动力学的生物识别技术中的用户验证和识别提供了一种新颖的方法。这项研究提供了有关参数值的定量信息,例如属性接受阈值,接受属性的数量以及连续性的影响。此外,本研究还研究了击键动力学作为用户识别工具的使用。这项研究的结果在单个框架内几乎实现了100%的用户身份验证和标识。

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