A Quantitative Analysis of Non-Profiled Side-Channel Attacks Based on Attention Mechanism
Kangran Pu,
Hua Dang,
Fancong Kong
et al.
Abstract:In recent years, the deep learning method has emerged as a mainstream approach to non-profiled side-channel attacks. However, most existing methods of deep learning-based non-profiled side-channel attack rely on traditional metrics such as loss and accuracy, which often suffer from unclear results in practical scenarios. Furthermore, most previous studies have not fully considered the properties of power traces as long time-series data. In this paper, a novel non-profiled side-channel attack architecture is pr… Show more
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