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Authors: Stephan Balduin ; Eric Msp Veith and Sebastian Lehnhoff

Affiliation: OFFIS - Institute for Information Technology, Escherweg 2, Oldenburg, Germany

Keyword(s): Machine Learning, Power Grid, Power Flow, Surrogate Models, Sampling, Correlation.

Abstract: Machine learning and computational intelligence technologies gain more and more popularity as possible solution for issues related to the power grid. One of these issues, the power flow calculation, is an iterative method to compute the voltage magnitudes of the power grid’s buses from power values. Machine learning and, especially, artificial neural networks were successfully used as surrogates for the power flow calculation. Artificial neural networks highly rely on the quality and size of the training data, but this aspect of the process is apparently often neglected in the works we found. However, since the availability of high quality historical data for power grids is limited, we propose the Correlation Sampling algorithm. We show that this approach is able to cover a larger area of the sampling space compared to different random sampling algorithms from the literature and a copula-based approach, while at the same time inter-dependencies of the inputs are taken into account, w hich, from the other algorithms, only the copula-based approach does. (More)

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Paper citation in several formats:
Balduin, S.; Veith, E. and Lehnhoff, S. (2022). Sampling Strategies for Static Powergrid Models. In Proceedings of the 12th International Conference on Simulation and Modeling Methodologies, Technologies and Applications - SIMULTECH; ISBN 978-989-758-578-4; ISSN 2184-2841, SciTePress, pages 319-326. DOI: 10.5220/0011306400003274

@conference{simultech22,
author={Stephan Balduin. and Eric Msp Veith. and Sebastian Lehnhoff.},
title={Sampling Strategies for Static Powergrid Models},
booktitle={Proceedings of the 12th International Conference on Simulation and Modeling Methodologies, Technologies and Applications - SIMULTECH},
year={2022},
pages={319-326},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0011306400003274},
isbn={978-989-758-578-4},
issn={2184-2841},
}

TY - CONF

JO - Proceedings of the 12th International Conference on Simulation and Modeling Methodologies, Technologies and Applications - SIMULTECH
TI - Sampling Strategies for Static Powergrid Models
SN - 978-989-758-578-4
IS - 2184-2841
AU - Balduin, S.
AU - Veith, E.
AU - Lehnhoff, S.
PY - 2022
SP - 319
EP - 326
DO - 10.5220/0011306400003274
PB - SciTePress