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基于击键动力学的部分密码认证的连体神经网络

Siamese Neural Network for Keystroke Dynamics-Based Authentication on Partial Passwords.

作者信息

Lis Kamila, Niewiadomska-Szynkiewicz Ewa, Dziewulska Katarzyna

机构信息

Research and Academic Computer Network, Kolska 12, 01-045 Warsaw, Poland.

Institute of Control and Computation Engineering, Warsaw University of Technology, Nowowiejska 15/19, 00-665 Warsaw, Poland.

出版信息

Sensors (Basel). 2023 Jul 26;23(15):6685. doi: 10.3390/s23156685.

Abstract

The paper addresses issues concerning secure authentication in computer systems. We focus on multi-factor authentication methods using two or more independent mechanisms to identify a user. User-specific behavioral biometrics is widely used to increase login security. The usage of behavioral biometrics can support verification without bothering the user with a requirement of an additional interaction. Our research aimed to check whether using information about how partial passwords are typed is possible to strengthen user authentication security. The partial password is a query of a subset of characters from a full password. The use of partial passwords makes it difficult for attackers who can observe password entry to acquire sensitive information. In this paper, we use a Siamese neural network and n-shot classification using past recent logins to verify user identity based on keystroke dynamics obtained from the static text. The experimental results on real data demonstrate that keystroke dynamics authentication can be successfully used for partial password typing patterns. Our method can support the basic authentication process and increase users' confidence.

摘要

本文讨论了计算机系统中安全认证的相关问题。我们专注于使用两种或更多独立机制来识别用户的多因素认证方法。特定用户的行为生物特征识别被广泛用于提高登录安全性。行为生物特征识别的使用可以支持验证,而无需额外的交互来打扰用户。我们的研究旨在检查使用关于部分密码输入方式的信息是否有可能加强用户认证的安全性。部分密码是对完整密码中字符子集的查询。使用部分密码使得能够观察密码输入的攻击者难以获取敏感信息。在本文中,我们使用暹罗神经网络和基于过去近期登录的n-shot分类,根据从静态文本中获得的击键动态来验证用户身份。在真实数据上的实验结果表明,击键动态认证可以成功用于部分密码输入模式。我们的方法可以支持基本认证过程并增加用户的信心。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/97ad/10422646/5255b5f7dffe/sensors-23-06685-g001.jpg

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