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Team performance in a series of regional and national US cybersecurity defense competitions: Generalizable effects of training and functional role specialization

机译:在一系列区域和国家美国网络安全竞争中的团队表现:培训和功能作用专业化的普遍性

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摘要

A critical component to any modern cybersecurity endeavor is effective use of its human resources to secure networks, maintain services and mitigate adversarial events. Despite the importance of the human cyber- analyst and operator to cybersecurity, there has not been a corresponding rise in data-driven analytical approaches for understanding, evaluating, and improving the effectiveness of cybersecurity teams as a whole. Fortunately, cyber defense competitions are well-established and provide a critical window into what makes a cybersecurity team more or less effective. We examined data collected at the national finals and four regional events of the Collegiate Cyber Defense Competition and posited that experience, access to simulation-based training, and functional role composition by the teams would predict team performance on four scoring dimensions relevant to the application of information assurance skills and defensive cyber operations: (a) maintaining services, (b) help-desk customer support, (c) handling scenario injects, and (d) mitigating red team attacks. Bayesian analysis highlighted that experience was a strong predictor of service availability, scenario injects, and red team defense. Simulation training was also associated with good performance along these scoring dimensions. High-performing and experienced teams clustered with one another based on the functional role composition of team skills. These results are discussed within the context of stages of team development, the efficacy of challenge-based learning events, and reinforce previous analytical results from cyber competitions.
机译:任何现代网络安全的关键组成部分都是有效利用其人力资源来保护网络,维护服务和减轻对抗性事件。尽管人体网络分析师和运营商对网络安全的重要性,但数据驱动的分析方法并未相应上升,以了解,评估和提高整个网络安全团队的有效性。幸运的是,网络防御竞争得到了充分建立,并将关键窗口提供给网络安全团队或多或少有效的原因。我们检查了在国家决赛中收集的数据和大学网络防御竞争的四个区域活动,并监视了该团队的经验,获取基于模拟的培训和功能角色构成将预测四个评分尺寸的团队表现,与应用程序有关信息保证技巧和防守网络运营:(a)维护服务,(b)帮助办公室客户支持,(c)处理方案注入,(d)减轻红色团队攻击。贝叶斯分析强调,经验是服务可用性,情景注入和红色团队防御的强大预测因素。仿真培训也与沿着这些评分尺寸的良好性能相关。基于团队技能的功能角色构成,高性能和经验丰富的团队聚集在一起彼此聚集。这些结果是在团队开发的阶段,基于挑战的学习活动的效果的背景下讨论的,并加强了来自网络竞争的先前分析结果。

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