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Please use this identifier to cite or link to this item: http://tainguyenso.vnu.edu.vn/jspui/handle/123456789/12647

Title: Application of wavelet and neural network to long-term load forecasting
Authors: Khoa T.Q.D.
Phuong L.M.
Binh P.T.T.
Lien N.T.H.
Keywords: Functional-link net
Load forecasting
Multilayer perceptron
Neural network
Wavelet network
Issue Date: 2004
Publisher: 2004 International Conference on Power System Technology, POWERCON 2004
Citation: Volume 1, Issue , Page 840-844
Abstract: Long term load forecasting presents the first step in planning and developing future generation, transmission and distribution facilities. Artificial Intelligent Applications have been introduced for load forecasting. Forecasting procedure considered the correlation variables that have an influence over the demand for electricity, for example: Gross State Product (GSP), Consumers Price Index (CPI) and Electricity Tariff (ET). These variables are chosen to enter the model as the inputs of network. The output is consumed energy. This paper proposed to apply the universal approximation properties of neural and wavelet networks to determine the function that denote relationship between input variables and output energy. The basic back-propagation algorithm is used as a supervisory learning. Three network models are proposed in this paper: Functional link net, Multi-layer perceptron neural network and Wavelet network. © 2004 IEEE.
URI: http://tainguyenso.vnu.edu.vn/jspui/handle/123456789/12647
ISSN: 
Appears in Collections:Articles of Universities of Vietnam from Scopus

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