A case study for evaluating learners' behaviors from online cybersecurity training platform on digital forensics subject

Do Thi Thu Hien, Phan The Duy, Hien Do Hoang, Nghi Hoang Khoa, V. Pham
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Abstract

Virtual cybersecurity training platforms play an important role in developing the knowledge and practice skills of students in educational institutions and universities. It helps learners can access virtual laboratories through web interfaces without any geolocation restriction, especially in the Covid-19 pandemic. Furthermore, instructors can monitor and understand learners' behaviors in practice sessions by analyzing actions and logs from the virtual platform. But, to realize this feature, such a platform must gather data during cybersecurity training for data mining tasks. In this paper, we introduce a virtual laboratory platform to facilitate cybersecurity training courses, namely vLab. In addition, we apply clustering analysis to the actions of learners to better understand the capabilities of trainees in resolving given challenges in digital forensics subject. With the built-in behavior analyzer in vLab, instructors can find out the common mistakes, and the reasons for learners' failure results, or identify whether they actually conduct experiments to get answers for digital forensics challenges or not.
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基于网络安全培训平台的数字取证科目学习者行为评估案例研究
虚拟网络安全培训平台在教育机构和高校学生的知识和实践技能培养中发挥着重要作用。它帮助学习者通过网络界面访问虚拟实验室,而不受任何地理位置限制,特别是在Covid-19大流行期间。此外,教师可以通过分析来自虚拟平台的动作和日志来监控和了解学习者在练习中的行为。但是,为了实现这一功能,该平台必须在网络安全培训期间收集数据,以进行数据挖掘任务。在本文中,我们介绍了一个虚拟实验室平台,以方便网络安全培训课程,即vLab。此外,我们将聚类分析应用于学习者的行为,以更好地了解学员在解决数字取证主题中给定挑战的能力。通过vLab中内置的行为分析器,教师可以找出常见的错误,以及学习者失败结果的原因,或者确定他们是否真的进行了实验来获得数字取证挑战的答案。
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