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Cross-level Monte Carlo Framework for System Vulnerability Evaluation against Fault Attack

机译:跨级蒙特卡罗框架系统漏洞评估对故障攻击

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Fault attack becomes a serious threat to system security and requires to be evaluated in the design stage. Existing methods usually ignore the intrinsic uncertainty in attack process and suffer from low scalability. In this paper, we develop a general framework to evaluate system vulnerability against fault attack. A holistic model for fault injection is incorporated to capture the probabilistic nature of attack process. Based on the probabilistic model, a security metric named as System Security Factor (SSF) is defined to measure the system vulnerability. In the framework, a Monte Carlo method is leveraged to enable a feasible evaluation of SSF for different systems, security policies, and attack techniques. We enhance the framework with a novel system pre-characterization procedure, based on which an importance sampling strategy is proposed. Experimental results on a commercial processor demonstrate that compared to random sampling, a 2500× speedup is achieved with the proposed sampling strategy. Meanwhile, 3% registers are identified to contribute to more than 95% SSF. By hardening these registers, a 6.5× security improvement can be achieved with less than 2% area overhead.
机译:故障攻击成为对系统安全性的严重威胁,并在设计阶段进行评估。现有方法通常忽略攻击过程中的内在不确定性并遭受低可扩展性。在本文中,我们开发了一个普遍的框架来评估对错误攻击的系统漏洞。结合了故障注射的整体模型,以捕获攻击过程的概率性质。基于概率模型,定义了一个名为System安全系数(SSF)的安全度量来测量系统漏洞。在框架中,利用Monte Carlo方法来实现不同系统,安全策略和攻击技术的SSF可行评估。我们以新颖的系统预先表征程序增强了框架,基于提出了重要的抽样策略。在商业处理器上的实验结果表明,与随机采样相比,通过所提出的采样策略实现了2500×加速。同时,确定了3%的寄存器以促成95%以上的SSF。通过硬化这些寄存器,可以通过小于2%的面积开销来实现6.5倍的安全性改进。

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