Short-Term Forecasts of Energy Generation in a Solar Power Plant Using Various Machine Learning Models, along with Ensemble and Hybrid Methods
Author:
Affiliation:
1. Electrical Power Engineering Institute, Warsaw University of Technology, Koszykowa 75 Street, 00-662 Warsaw, Poland
Abstract
Funder
National Centre for Research and Development
Publisher
MDPI AG
Link
https://www.mdpi.com/1996-1073/17/17/4234/pdf
Reference33 articles.
1. Multi-Prediction of Electric Load and Photovoltaic Solar Power in Grid-Connected Photovoltaic System Using State Transition Method;Wang;Appl. Energy,2024
2. Awais, M., Mahum, R., Zhang, H., Zhang, W., Metwally, A.S.M., Hu, J., and Arshad, I. (2024). Short-Term Photovoltaic Energy Generation for Solar Powered High Efficiency Irrigation Systems Using LSTM with Spatio-Temporal Attention Mechanism. Sci. Rep., 14.
3. Short-term Power Forecasting Method for 5G Photovoltaic Base Stations on Non-sunny Days Based on SDN-integrated INGO-BP and RGAN;Huang;IET Renew. Power Gen.,2024
4. A Taxonomy of Short-term Solar Power Forecasting: Classifications Focused on Climatic Conditions and Input Data;Bazionis;IET Renew. Power Gen.,2023
5. Tsai, W.-C., Tu, C.-S., Hong, C.-M., and Lin, W.-M. (2023). A Review of State-of-the-Art and Short-Term Forecasting Models for Solar PV Power Generation. Energies, 16.
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