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Predicting the output of a PV plant

Predicting the output of a PV plant

von Abdou Aziz Cissé und Mamadou Salif Diallo
Softcover - 9786203354201
39,90 €
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Beschreibung

Energy market players (investors, power producers, grid operators, consumers, etc.) are facing potential challenges such as the growing demand for energy, new patterns of energy consumption, the integration of (intermittent) renewable energy sources into power grids and the evolution of power grids.This book investigates the possibility of predicting the production of a self-consuming photovoltaic installation by artificial neural networks. We cross-compared two neural network architectures (looped and unlooped) with respect to multivariate regression in order to have an efficient and reliable tool for predicting the production of a PV installation based on meteorological data (sunshine and ambient temperature).To do so, we used monitoring data of a plant over a 72-day period to build, train and test two neural network topologies (looped and unlooped) which are trained with the Levenberg-Marquardt algorithm.

Application of artificial neural networks

Details

Verlag Our Knowledge Publishing
Ersterscheinung 24. Februar 2021
Maße 22 cm x 15 cm x 0.5 cm
Gewicht 113 Gramm
Format Softcover
ISBN-13 9786203354201
Seiten 64

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