Distribution of Signal to Noise Ratio and Application to Leakage Detection

Mathieu Des Noes
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Abstract

In the context of side-channel attacks, the Signal to Noise Ratio (SNR) is a widely used metric for characterizing the information leaked by a device when handling sensitive variables. In this paper, we derive the probability density function (p.d.f.) of the signal to noise ratio (SNR) for the byte value and Hamming Weight (HW) models, when the number of traces per class is large and the target SNR is small. These findings are subsequently employed to establish an SNR threshold, guaranteeing minimal occurrences of false positives. Then, these results are used to derive the theoretical number of traces that are required to remain below pre-defined false negative and false positive rates. The sampling complexity of the T-test, ρ-test and SNR is evaluated for the byte value and HW leakage model by simulations and compared to the theoretical predictions. This allows to establish the most pertinent strategy to make use of each of these detection techniques.
信噪比分布及在泄漏检测中的应用
在侧信道攻击中,信噪比(SNR)是一个广泛使用的指标,用于描述设备在处理敏感变量时泄露的信息。本文推导了字节值模型和汉明权重(HW)模型的信噪比(SNR)概率密度函数(p.d.f.),当每类痕迹数量较多且目标信噪比较小时。这些研究结果随后被用来确定信噪比阈值,以保证误报率最小。然后,利用这些结果推导出理论上所需的痕迹数量,以保持低于预定义的假阴性和假阳性率。通过模拟评估了字节值和硬件泄漏模型的 T 检验、ρ 检验和 SNR 的采样复杂度,并与理论预测进行了比较。这样就能确定使用每种检测技术的最合适策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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