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Neural Posterior Estimation for Empirical Power System Time Series

Oberhofer, Ulrich 1; Weber, Nicolas 1; Hagenmeyer, Veit ORCID iD icon 1; Schäfer, Benjamin ORCID iD icon 1
1 Institut für Automation und angewandte Informatik (IAI), Karlsruher Institut für Technologie (KIT)

Abstract:

Methods for state and parameter estimation are widely used to analyze complex systems, such as power systems. Estimating parameters is often necessary for follow-up simulations or effective control. Bayesian approaches allow us to go beyond point estimates and include domain knowledge when identifying parameters. However, such Bayesian approaches are often limited to simulated settings and not well-tuned for noisy, empirical data. We propose to investigate power systems, specifically the power grid frequency dynamics, as an important empirical use case with non-trivial data. Within our article, we introduce the concept of Simulation-Based Inference (SBI) for power grid frequency dynamics. Furthermore, we identify an amortized Neural Posterior Estimator (NPE), using recent normalizing flow architectures, as a suitable method for Bayesian parameter inference. We initially validate the model based on simulated observations and demonstrate the usability of amortized NPE on stochastic models for power grid frequency. Next, we apply the estimation method on empirical frequency data from European synchronous areas and quantify how it outperforms
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Verlagsausgabe §
DOI: 10.5445/IR/1000195710
Veröffentlicht am 30.07.2026
Cover der Publikation
Zugehörige Institution(en) am KIT Institut für Automation und angewandte Informatik (IAI)
Publikationstyp Proceedingsbeitrag
Publikationsdatum 22.06.2026
Sprache Englisch
Identifikator ISBN: 9798400720116
KITopen-ID: 1000195710
Erschienen in E-Energy '26: Proceedings of the 17th ACM International Conference on Future and Sustainable Energy Syste
Veranstaltung 17th ACM International Conference on Future and Sustainable Energy Systems (e-Energy 2026), Banff, Kanada, 22.06.2026 – 25.06.2026
Verlag Association for Computing Machinery (ACM)
Seiten 139 - 153
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