LAPSE:2023.16198
Published Article
LAPSE:2023.16198
Artificial Intelligence Techniques for Power System Transient Stability Assessment
March 3, 2023
The high penetration of renewable energy sources, coupled with decommissioning of conventional power plants, leads to the reduction of power system inertia. This has negative repercussions on the transient stability of power systems. The purpose of this paper is to review the state-of-the-art regarding the application of artificial intelligence to the power system transient stability assessment, with a focus on different machine, deep, and reinforcement learning techniques. The review covers data generation processes (from measurements and simulations), data processing pipelines (features engineering, splitting strategy, dimensionality reduction), model building and training (including ensembles and hyperparameter optimization techniques), deployment, and management (with monitoring for detecting bias and drift). The review focuses, in particular, on different deep learning models that show promising results on standard benchmark test cases. The final aim of the review is to point out the advantages and disadvantages of different approaches, present current challenges with existing models, and offer a view of the possible future research opportunities.
Keywords
Artificial Intelligence, deep learning, Machine Learning, power system stability, transient stability assessment, transient stability index
Suggested Citation
Sarajcev P, Kunac A, Petrovic G, Despalatovic M. Artificial Intelligence Techniques for Power System Transient Stability Assessment. (2023). LAPSE:2023.16198
Author Affiliations
Sarajcev P: Department of Power Engineering, University of Split, FESB, HR21000 Split, Croatia [ORCID]
Kunac A: Department of Power Engineering, University of Split, FESB, HR21000 Split, Croatia [ORCID]
Petrovic G: Department of Power Engineering, University of Split, FESB, HR21000 Split, Croatia [ORCID]
Despalatovic M: Department of Power Engineering, University of Split, FESB, HR21000 Split, Croatia [ORCID]
Journal Name
Energies
Volume
15
Issue
2
First Page
507
Year
2022
Publication Date
2022-01-11
Published Version
ISSN
1996-1073
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Original Submission
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PII: en15020507, Publication Type: Review
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LAPSE:2023.16198
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doi:10.3390/en15020507
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