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Short term load forecasting using neural networks

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dc.contributor.author Nigrini, L.B.
dc.contributor.author Jordaan, G.D.
dc.contributor.other Central University of Technology, Free State, Bloemfontein
dc.date.accessioned 2015-10-05T10:59:22Z
dc.date.available 2015-10-05T10:59:22Z
dc.date.issued 2013
dc.date.issued 2013
dc.identifier.issn 16844998
dc.identifier.uri http://hdl.handle.net/11462/646
dc.description Published Article en_US
dc.description.abstract Several forecasting models are available for research in predicting the shape of electric load curves. The development of Artificial Intelligence (AI), especially Artificial Neural Networks (ANN), can be applied to model short term load forecasting. Because of their input-output mapping ability, ANN's are well-suited for load forecasting applications. ANN's have been used extensively as time series predictors; these can include feed-forward networks that make use of a sliding window over the input data sequence. Using a combination of a time series and a neural network prediction method, the past events of the load data can be explored and used to train a neural network to predict the next load point. In this study, an investigation into the use of ANN's for short term load forecasting for Bloemfontein, Free State has been conducted with the MATLAB Neural Network Toolbox where ANN capabilities in load forecasting, with the use of only load history as input values, are demonstrated. en_US
dc.format.extent 640 571 bytes, 1 file
dc.format.mimetype Application/PDF
dc.language.iso en_US en_US
dc.publisher Journal for New Generation Sciences, Vol 11, Issue 3: Central University of Technology, Free State, Bloemfontein
dc.relation.ispartofseries Journal for New Generation Sciences;Vol 11, Issue 3
dc.subject Short Term Load Forecasting (STLF) en_US
dc.subject Artificial Neural Network (ANN) en_US
dc.subject Time series en_US
dc.subject Multilayer feed forward network en_US
dc.subject Real time load data en_US
dc.title Short term load forecasting using neural networks en_US
dc.type Article en_US
dc.rights.holder Central University of Technology, Free State, Bloemfontein


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