NASCTY: Neuroevolution to Attack Side-channel Leakages Yielding Convolutional Neural Networks
January 25, 2023 ยท Declared Dead ยท ๐ Mathematics
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Authors
Fiske Schijlen, Lichao Wu, Luca Mariot
arXiv ID
2301.10802
Category
cs.NE: Neural & Evolutionary
Cross-listed
cs.CR
Citations
5
Venue
Mathematics
Last Checked
4 months ago
Abstract
Side-channel analysis (SCA) can obtain information related to the secret key by exploiting leakages produced by the device. Researchers recently found that neural networks (NNs) can execute a powerful profiling SCA, even on targets protected with countermeasures. This paper explores the effectiveness of Neuroevolution to Attack Side-channel Traces Yielding Convolutional Neural Networks (NASCTY-CNNs), a novel genetic algorithm approach that applies genetic operators on architectures' hyperparameters to produce CNNs for side-channel analysis automatically. The results indicate that we can achieve performance close to state-of-the-art approaches on desynchronized leakages with mask protection, demonstrating that similar neuroevolution methods provide a solid venue for further research. Finally, the commonalities among the constructed NNs provide information on how NASCTY builds effective architectures and deals with the applied countermeasures.
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