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02-09-2024 | Original Article

Learning from high-dimensional cyber-physical data streams: a case of large-scale smart grid

Authors: Hossein Hassani, Ehsan Hallaji, Roozbeh Razavi-Far, Mehrdad Saif

Published in: International Journal of Machine Learning and Cybernetics | Issue 3/2025

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Abstract

The increasing adoption of advanced technologies in cyber-physical power systems (CPPSs) poses new security challenges, making the security of CPPSs crucial. This article focuses on the development of data-driven diagnostic methods for fault detection in large-scale smart grids. It introduces an efficient framework that combines feature selection and dimensionality reduction techniques with classification models to address the challenges of high-dimensional data and noisy measurements. The study evaluates various feature selection and dimensionality reduction methods, comparing their performance in diagnosing different types of faults in a simulated IEEE 118-bus system. The results highlight the superiority of embedded methods and nonlinear dimensionality reduction techniques in enhancing diagnostic performance. The article concludes by emphasizing the significance of feature engineering in improving the learning process and decision-making in CPPSs, while acknowledging the practical challenges in implementing these techniques in real-world scenarios.

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Metadata
Title
Learning from high-dimensional cyber-physical data streams: a case of large-scale smart grid
Authors
Hossein Hassani
Ehsan Hallaji
Roozbeh Razavi-Far
Mehrdad Saif
Publication date
02-09-2024
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Machine Learning and Cybernetics / Issue 3/2025
Print ISSN: 1868-8071
Electronic ISSN: 1868-808X
DOI
https://doi.org/10.1007/s13042-024-02365-3