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Security, Privacy and Safety Risk Assessment for Virtual Reality Learning Environment Applications

机译:虚拟现实学习环境应用程序的安全性,隐私权和安全风险评估

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Social Virtual Reality based Learning Environments (VRLEs) such as vSocial render instructional content in a three-dimensional immersive computer experience for training youth with learning impediments. There are limited prior works that explored attack vulnerability in VR technology, and hence there is a need for systematic frameworks to quantify risks corresponding to security, privacy, and safety (SPS) threats. The SPS threats can adversely impact the educational user experience and hinder delivery of VRLE content. In this paper, we propose a novel risk assessment framework that utilizes attack trees to calculate a risk score for varied VRLE threats with rate and duration of threats as inputs. We compare the impact of a well-constructed attack tree with an adhoc attack tree to study the trade-offs between overheads in managing attack trees, and the cost of risk mitigation when vulnerabilities are identified. We use a vSocial VRLE testbed in a case study to showcase the effectiveness of our framework and demonstrate how a suitable attack tree formalism can result in a more safer, privacy-preserving and secure VRLE system.
机译:诸如vSocial之类的基于社交虚拟现实的学习环境(VRLE)可以在三维沉浸式计算机体验中呈现教学内容,以培训有学习障碍的年轻人。先前的工作很少探索VR技术中的攻击漏洞,因此需要系统的框架来量化与安全,隐私和安全(SPS)威胁相对应的风险。 SPS威胁可能会对教育用户体验产生不利影响,并阻碍VRLE内容的交付。在本文中,我们提出了一种新颖的风险评估框架,该框架利用攻击树来计算各种VRLE威胁的风险评分,并以威胁的发生率和持续时间作为输入。我们将结构合理的攻击树与自组织攻击树的影响进行比较,以研究管理攻击树的开销与确定漏洞时降低风险的成本之间的权衡。我们在案例研究中使用vSocial VRLE测试平台来展示我们框架的有效性,并演示合适的攻击树形式化如何可以导致更安全,保留隐私和安全的VRLE系统。

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