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2021 | OriginalPaper | Chapter

Prediction of Short-Term and Long-Term Hourly Global Horizontal Solar Irradiation Using Artificial Neural Networks Techniques in Fez City, Morocco

Authors : Zineb Bounoua, Abdellah Mechaqrane

Published in: Proceedings of the 2nd International Conference on Electronic Engineering and Renewable Energy Systems

Publisher: Springer Singapore

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Abstract

The integration of renewable energy plants into the energy mix leads to serious problems in maintaining the balance of electricity grids. Indeed, renewable energy plants can produce electricity when there is not much need. Therefore, predicting renewable energy potentials and then the output of power plants can allow grid operators to prepare decision scenarios in advance. In this work, we are interested in predicting hourly short-term (h + 1) and long term (h + 48) global horizontal solar irradiation (GHI) by applying two types of Artificial Neural Networks (ANN): Multilayer Perceptron (MLP) and a Nonlinear AutoRegressive neural network with eXogenous inputs (NARX).

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Literature
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go back to reference Bounoua Z, Marzouq M, Mechaqrane A (June 2018) Assessment of a quality control procedure of hourly solar irradiations at Fez city, Morocco. In: IOP conference series: earth and environmental science, vol 161, no 1. IOP Publishing, p 012010 Bounoua Z, Marzouq M, Mechaqrane A (June 2018) Assessment of a quality control procedure of hourly solar irradiations at Fez city, Morocco. In: IOP conference series: earth and environmental science, vol 161, no 1. IOP Publishing, p 012010
Metadata
Title
Prediction of Short-Term and Long-Term Hourly Global Horizontal Solar Irradiation Using Artificial Neural Networks Techniques in Fez City, Morocco
Authors
Zineb Bounoua
Abdellah Mechaqrane
Copyright Year
2021
Publisher
Springer Singapore
DOI
https://doi.org/10.1007/978-981-15-6259-4_71