Publication | Closed Access
Domestic Heat Demand Prediction Using Neural Networks
44
Citations
4
References
2008
Year
Unknown Venue
EngineeringEnergy EfficiencyVirtual Power PlantIntelligent Energy SystemData ScienceSystems EngineeringMicrochp AppliancesPredictive AnalyticsDemand ForecastingEnergy ForecastingElectricity Production CapacityForecastingEnergy PredictionIntelligent ForecastingSmart GridEnergy ManagementEnergy PolicyThermal EngineeringUrban Climate
By combining a cluster of microCHP appliances, a virtual power plant can be formed. To use such a virtual power plant, a good heat demand prediction of individual households is needed since the heat demand determines the production capacity. In this paper we present the results of using neural networks techniques to predict the heat demand of individual households. This prediction is required to determine the electricity production capacity of the large fleet of microCHP appliances. All predictions are short-term (for one day) and use historical heat demand and weather influences as input.
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