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Integration of Artificial Neural Networks and Time serie s technique to Estimate Electrical Energy consumption

Publish Year: 1385
Type: Conference paper
Language: English
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ICEMP01_058

Index date: 15 February 2006

Integration of Artificial Neural Networks and Time serie s technique to Estimate Electrical Energy consumption abstract

By looking at the forecasting of Electricity consumption we will explain the application of neural networks to time series analysis. Electricity consumption represents two essential attributes; firstly it shows the strong monthly changes and secondly, clearly shows the increasing trend. The multilayer perceptron with back propagation is used which is a supervised learning strategy and ideally suited to forecast problems. Neural network is a strong rival of regression and time series in forecasting. In this paper shown that using neural networks with preprocessed input data would have less error than neural network with raw input data. Also it is shown that neural networks dominate time series approach from point of yielding less mean absolute percentage error( MAPE). The purpose of this model is to find the essential structure of data and eliminate the trend of it with preprocessing techniques to forecast future consumption with less error.

Integration of Artificial Neural Networks and Time serie s technique to Estimate Electrical Energy consumption authors

A.Azadeh

Research Institute of Energy Management and Planning and Department of Industrial Engineering, Faculty of Engineering, University of Tehran, Iran

A.Kheirkhah

Department of Industrial Engineering, Faculty of Engineering, Bu- Ali Sina University, Hamadan,Iran

M. Saberi

Department of Industrial Engineering, Faculty of Engineering, Bu- Ali Sina University, Hamadan,Iran

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