调查基于手势的密码:可用性和对肩部冲浪攻击的脆弱性

Lakshmidevi Sreeramareddy, Sheng Miao, Jinjuan Feng
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引用次数: 2

摘要

基于识别的密码(如图形密码)为减少用户的内存负载提供了巨大的潜力。此外,与传统的字母数字密码相比,图形密码提供了字典攻击的安全性优势。然而,图形密码抑制了几个众所周知的限制,例如容易受到肩部冲浪攻击。我们开发了一个基于手势的密码,并进行了一项用户研究,以评估该密码的可用性以及肩部冲浪攻击的影响。结果表明,用户可以很容易地学习新的密码方法。虽然通过验证的条目和未经验证的条目在置信度得分等特征上存在差异,但初步机器学习分析的分类精度并不高。我们将在未来的研究中加入更多的功能并探索其他机器学习技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating gesture-based password: usability and vulnerability to shoulder-surfing attacks
The recognition-based password such as graphical passwords provides great potential to reduce the memory load for the user. In addition, graphical passwords provide a security benefit over dictionary attacks compared to traditional alphanumeric passwords. However, the graphical passwords inhibit several well-known limitations such as vulnerability to shoulder-surfing attacks. We developed a gesture-based password and conducted a user study to evaluate the usability of this password as well as the impact of shoulder-surfing attacks. The result suggests that users can easily learn the new password method. Although difference was detected between authenticated entries and unauthenticated entries in features such as confidence scores, the classification accuracy of the preliminary machine learning analysis is not high. We will include more features and explore other machine learning techniques in our future studies.
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