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Comparative of prediction algorithms for energy consumption by electric vehicle chargers for demand side management

Abida, AyoubMajdoul, RedouaneZegrari, Mourad
International Journal of Electrical and Computer Engineering (IJECE) (Sinta 1)Vol. 0 No. 01 Agustus 2025
DOI10.11591/ijece.v15i4.pp4192-4201

Abstrak

This study focuses on demand side management (DSM), specifically managing electric vehicle (EV) charging consumption. Power distributors must consider numerous factors, such as the number of EVs, charging station availability, time of day, and EV user behavior, to accurately predict EV charging demand. We utilized machine learning algorithms and statistical modeling to predict the energy required by EV users for a specific charger and compared algorithms like K-Nearest Neighbors, XGBoost, random forest regressor, and ridge regressor. To contribute to the existing literature, which lacks studies on future energy prediction for a specific period, we conducted predictions for the next year 2024 on the energy consumption of electric vehicles for an electric vehicle charging point in a Moroccan city. These predictions can be generalized to other chargers as well. Our results showed that K-nearest neighbors (KNN) outperformed other algorithms in accuracy. This study provides valuable insights for distribution operators to manage energy resources efficiently and contributes to the DSM field by highlighting the effectiveness of KNN in predicting EV charging demand.

Kata Kunci

Artificial Intelligence and E-MobilityArtificial intelligenceDemand side managementElectric vehicleMachine learningPrediction algorithmRequested energy

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Comparative of prediction algorithms for energy consumption by electric vehicle chargers for demand side management | International Journal of Electrical and Computer Engineering (IJECE) | Publiora