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Taylor Expansion of Maximum Likelihood Attacks for Masked and Shuffled Implementations

机译:泰勒扩大蒙面和洗机实施的最大似然攻击

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The maximum likelihood side-channel distinguisher of a template attack scenario is expanded into lower degree attacks according to the increasing powers of the signal-to-noise ratio (SNR). By exploiting this decomposition we show that it is possible to build highly multivariate attacks which remain efficient when the likelihood cannot be computed in practice due to its computational complexity. The shuffled table recomputation is used as an illustration to derive a new attack which outperforms the ones presented by Bruneau et al. at CHES 2015, and so across the full range of SNRs. This attack combines two attack degrees and is able to exploit high dimensional leakage which explains its efficiency.
机译:根据信噪比(SNR)的增加,模板攻击场景的最大似然侧通道区段扩展到更低的程度攻击。 通过利用这种分解,我们表明,由于其计算复杂性在实践中不能计算可能性时,可以建立高度多变量攻击,这仍然有效。 随着Bruneau等人呈现的新攻击,将播放的表重新跟踪用作插图以获得新的攻击。 在Ches 2015年,跨越全方位的SNR。 这种攻击结合了两个攻击度,并且能够利用高维泄漏,这解释了其效率。

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