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Ridge-Based Profiled Differential Power Analysis

机译:基于RIDGE的分析差分功率分析

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Profiled DPA is an important and powerful type of side-channel attacks (SCAs). Thanks to its profiling phase that learns the leakage features from a controlled device, profiled DPA outperforms many other types of SCA and are widely used in the security evaluation of cryptographic devices. Typical profiling methods (such as linear regression based ones) suffer from the overfitting issue which is often neglected in previous works, i.e., the model characterizes details that are specific to the dataset used to build it (and not the distribution we want to capture). In this paper, we propose a novel profiling method based on ridge regression and investigate its generalization ability (to mitigate the overfitting issue) theoretically and by experiments. Further, based on cross-validation, we present a parameter optimization method that finds out the most suitable parameter for our ridge-based profiling. Finally, the simulation-based and practical experiments show that ridge-based profiling not only outperforms 'classical' and linear regression-based ones (especially for nonlinear leakage functions), but also is a good candidate for the robust profiling.
机译:分析DPA是一种重要而强大的侧通道攻击(SCA)。由于其从受控设备中学习泄漏功能的分析阶段,因此分类的DPA优于许多其他类型的SCA,并且广泛用于加密设备的安全评估。典型的分析方法(例如线性回归基于线性回归)遭受过度录制的问题,在以前的作品中通常忽略,即该模型表征特定于用于构建它的数据集的详细信息(而不是我们想要捕获的分发) 。在本文中,我们提出了一种基于RIDGE回归的新型分析方法,并研究其泛化能力(理论上和通过实验调查其泛化能力(以减轻过度装备问题)。此外,基于交叉验证,我们提出了一个参数优化方法,了解基于RIDGE的分析的最合适的参数。最后,基于仿真和实际实验表明,基于脊的分析不仅优于胜过的“古典”和基于线性回归的基于型号(特别是对于非线性回归函数),而且还是鲁棒成型的良好候选者。

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