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Resumen de Perspectiva del uso de energía eléctrica mediante redes neuronales

José Rojas, Ricardo Luna

  • Demand for electricity in industrial, commercial and residential sectors represents a current problem to predict ahead of time electricity consumption in these sectors in order to avoid penalties imposed by the respective companies supplying electricity, plans to develop a system perspective electricity demand for intelligent buildings using artificial neural networks (ANN) that allows us a prediction of power consumption ahead of time, and therefore better management of energy in buildings. The variables used as inputs to the neural prediction model were: temperature and humidity, as well as power consumption and time. The algorithm used for perspective was Levenberg-Marquardt. The model validation was performed by comparing the results with a non-linear regression model and actual data with analysis of variance (ANOVA). The results of the 4-4-1 model prediction were 95% reliability.


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