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Model based analysis of insider threats

机译:基于模型的内部威胁分析

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摘要

In order to detect malicious insider attacks it is important to model and analyse infrastructures and policies of organisations and the insiders acting within them. We extend formal approaches that allow modelling such scenarios by quantitative aspects to enable a precise analysis of security designs. Our framework enables evaluating the risks of an insider attack to happen quantitatively. The framework first identifies an insider's intention to perform an inside attack, using Bayesian networks, and in a second phase computes the probability of success for an inside attack by this actor, using probabilistic model checking. We provide prototype tool support using Matlab for Bayesian networks and PRISM for the analysis of Markov decision processes, and validate the framework with case studies.
机译:为了检测恶意内幕攻击,重要的是模拟和分析组织的基础设施和政策以及行事中的内部人士。我们扩展了通过定量方面允许建模这种情况的正式方法,以实现安全设计的精确分析。我们的框架使得能够评估内部人士攻击的风险。该框架首先识别使用贝叶斯网络进行内部攻击的内部攻击,并且在第二阶段使用概率模型检查,在第二阶段计算内部攻击的成功概率。我们为使用MATLAB提供原型工具支持,用于贝叶斯网络和棱镜,用于分析马尔可夫决策过程,并用案例研究验证框架。

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