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Main Authors: Siyadatzadeh, Roozbeh, Mehrafrooz, Fatemeh, Mentens, Nele, Stefanov, Todor
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2502.14968
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author Siyadatzadeh, Roozbeh
Mehrafrooz, Fatemeh
Mentens, Nele
Stefanov, Todor
author_facet Siyadatzadeh, Roozbeh
Mehrafrooz, Fatemeh
Mentens, Nele
Stefanov, Todor
contents The rapid growth of deploying machine learning (ML) models within embedded systems on a chip (SoCs) has led to transformative shifts in fields like healthcare and autonomous vehicles. One of the primary challenges for training such embedded ML models is the lack of publicly available high-quality training data. Transfer learning approaches address this challenge by utilizing the knowledge encapsulated in an existing ML model as a starting point for training a new ML model. However, existing transfer learning approaches require direct access to the existing model which is not always feasible, especially for ML models deployed on embedded SoCs. Therefore, in this paper, we introduce a novel unconventional transfer learning approach to train a new ML model by extracting and using weights from an existing ML model running on an embedded SoC without having access to the model within the SoC. Our approach captures power consumption measurements from the SoC while it is executing the ML model and translates them to an approximated weights matrix used to initialize the new ML model. This improves the learning efficiency and predictive performance of the new model, especially in scenarios with limited data available to train the model. Our novel approach can effectively increase the accuracy of the new ML model up to 3 times compared to classical training methods using the same amount of limited training data.
format Preprint
id arxiv_https___arxiv_org_abs_2502_14968
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle P2W: From Power Traces to Weights Matrix -- An Unconventional Transfer Learning Approach
Siyadatzadeh, Roozbeh
Mehrafrooz, Fatemeh
Mentens, Nele
Stefanov, Todor
Machine Learning
The rapid growth of deploying machine learning (ML) models within embedded systems on a chip (SoCs) has led to transformative shifts in fields like healthcare and autonomous vehicles. One of the primary challenges for training such embedded ML models is the lack of publicly available high-quality training data. Transfer learning approaches address this challenge by utilizing the knowledge encapsulated in an existing ML model as a starting point for training a new ML model. However, existing transfer learning approaches require direct access to the existing model which is not always feasible, especially for ML models deployed on embedded SoCs. Therefore, in this paper, we introduce a novel unconventional transfer learning approach to train a new ML model by extracting and using weights from an existing ML model running on an embedded SoC without having access to the model within the SoC. Our approach captures power consumption measurements from the SoC while it is executing the ML model and translates them to an approximated weights matrix used to initialize the new ML model. This improves the learning efficiency and predictive performance of the new model, especially in scenarios with limited data available to train the model. Our novel approach can effectively increase the accuracy of the new ML model up to 3 times compared to classical training methods using the same amount of limited training data.
title P2W: From Power Traces to Weights Matrix -- An Unconventional Transfer Learning Approach
topic Machine Learning
url https://arxiv.org/abs/2502.14968