2023
DOI: 10.1109/access.2022.3232064
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NeuroSCA: Evolving Activation Functions for Side-Channel Analysis

Abstract: The choice of activation functions can significantly impact the performance of neural networks. Due to an ever-increasing number of new activation functions being proposed in the literature, selecting the appropriate activation function becomes even more difficult. Consequently, many researchers approach this problem from a different angle, in which instead of selecting an existing activation function, an appropriate activation function is evolved for the problem at hand. In this paper, we demonstrate that evo… Show more

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Cited by 5 publications
(6 citation statements)
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“…One of the main drawbacks of the Naive Bayes classification is its vital independence feature. In practice, having set of entirely independent features is almost impossible [33][34][35][36] . In classifying benign and malignant image data on mammography, the texture features are not entirely independent and even overlap.…”
Section: Resultsmentioning
confidence: 99%
See 1 more Smart Citation
“…One of the main drawbacks of the Naive Bayes classification is its vital independence feature. In practice, having set of entirely independent features is almost impossible [33][34][35][36] . In classifying benign and malignant image data on mammography, the texture features are not entirely independent and even overlap.…”
Section: Resultsmentioning
confidence: 99%
“…Feature scaling is a method of having numerical data in a dataset with the same values range. MLP is proven to be able to separate datasets well with up to 100% accuracy [35][36][37] . The results of texture feature extraction on benign and malignant images in this study show a range that is not too far away so that some similar data are grouped into the same scale.…”
Section: Resultsmentioning
confidence: 99%
“…The application of neuroevolution to perform side-channel analysis has only scarcely been explored in existing work. Knezevic et al used genetic programming to evolve custom activation functions specific to side-channel analysis [9] that can outperform the widely used ReLU function. The genome in their approach encodes an activation function as a tree containing unary and binary operators, with leaves representing the function's inputs.…”
Section: Network Architecture Optimization In Scamentioning
confidence: 99%
“…This article only discusses non model-building attack. Common non model-building attack methods include simple power consumption attack (SPA), differential power consumption analysis attack (DPA), related power consumption analysis attack (CPA),etc [4] .…”
Section: Feature Selectionmentioning
confidence: 99%