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Kernel-based template attacks of cryptographic circuits using static power

机译:使用静态电源的基于内核的加密电路模板攻击

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摘要

Side-channel attacks using static power have been shown to be successful against cryptographic circuits in different environments. This class of attacks exploits the power leakage when the circuit is in a static state, during which the power leakage is expected to be a fixed value. Due to the low signal-to-noise ratio of static power, usually more traces are needed for a static power attack to reach the same success rate as a dynamic power attack. The probabilistic distribution pattern of static power varies significantly in different devices, which further poses challenges to the accurate modeling of static power. In this paper we propose non-parametric template attacks which use a kernel methodology to improve the accuracy of modeling static power consumption. The proposed template attacks are tested using transistor-level simulations of circuits designed with a 45-nm standard cell library. Our test results show that our approach improves the success rate of template attacks using static power in cases where the distribution of static power consumption cannot be accurately modeled by Gaussian models.
机译:事实证明,在不同环境中,使用静态功率进行的旁信道攻击可以成功地抵抗密码电路。当电路处于静态状态时,此类攻击利用了功率泄漏,在此期间,功率泄漏预计为固定值。由于静态功率的信噪比低,通常需要更多的走线才能使静态功率攻击达到与动态功率攻击相同的成功率。静态功率的概率分布模式在不同的设备中变化很大,这进一步对静态功率的精确建模提出了挑战。在本文中,我们提出了使用内核方法提高静态功耗建模精度的非参数模板攻击。拟议的模板攻击是通过对采用45纳米标准单元库设计的电路的晶体管级仿真进行测试的。我们的测试结果表明,在无法通过高斯模型准确建模静态功耗分布的情况下,我们的方法可以提高使用静态功耗进行模板攻击的成功率。

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