CPA performance enhancement based on spectrogram

Min-Ku Kim, Dong‐Guk Han, J. Ryoo, Okyeon Yi
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引用次数: 2

Abstract

In a side channel attack, misalignment is a major factor that decreases the attack effectiveness. In order to resolve this issue, correlation power frequency analysis (CPFA) was recently introduced in the frequency domain by Schimmel. This method changes signals from the time domain to the frequency domain to analyze the information using FFT and is able to analytically solve the decrease in the attack effectiveness due to the misalignment. However, for signals that change their frequency components randomly, the results of the analysis are not as good. Moreover, there is a critical point that loses information in the time domain. In order to solve this limitation, we have developed correlation power spectrogram analysis (CPSA), which has excellent performance in side channel analysis. This method converts the time domain information to time domain-frequency domain information using a spectrogram, and the changed information keeps the time information of regular resolution. This method shows excellent performance for the variation in frequency components, as well. In this study, AES power consumption signals were collected from ARM, IC CARD, and MSP430 chips that were developed in the SCARF system. Using these signals, the method shown in this paper yields better performance than CPA or CPFA.
基于谱图的CPA性能增强
在侧信道攻击中,不对准是降低攻击效能的主要因素。为了解决这一问题,Schimmel在频域引入了相关工频分析(CPFA)。该方法将信号从时域变换到频域,利用FFT对信息进行分析,能够解析地解决由于不对准导致的攻击效率下降的问题。然而,对于随机改变其频率成分的信号,分析结果就不那么好了。此外,在时域中存在一个丢失信息的临界点。为了解决这一限制,我们开发了相关功率谱分析(CPSA),它在侧信道分析中具有优异的性能。该方法利用谱图将时域信息转换为时域-频域信息,变换后的信息保持正则分辨率的时间信息。该方法对频率分量的变化也有很好的处理效果。在本研究中,AES功耗信号采集来自ARM、IC卡和MSP430芯片,这些芯片都是在SCARF系统中开发的。使用这些信号,本文所示的方法比CPA或CPFA产生更好的性能。
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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