DocumentCode :
2348839
Title :
The Application for the Partial Least-Squares Regression (PLS) and Fuzzy Neural Networks Model (FNN) in the Wind Field Assessment
Author :
Chen, Bing-lian ; Lin, Kai-ping ; Huang, Xiao-yan ; Liang, Wei-liang
Author_Institution :
Comput. & Inf. Eng. Inst., Guangxi Normal Coll., Nanning, China
fYear :
2011
fDate :
15-19 April 2011
Firstpage :
1334
Lastpage :
1338
Abstract :
Searching the predictors in each level of the NCEP data by use the long time series data of NCEP and short time sequence data of wind observation. And filtering the information and extraction the components for these primary predictors using the method of partial least-squares regression (PLS), then takes the new comprehensive variables (names components) as predictors and using the neural network with the features including adaptive and learning and the logical reasoning ability of fuzzy system to establish the wind field calculation model with fuzzy neural network(FNN) through combining fuzzy neural network system and adjustment the system parameters using BP algorithm. Comparing the calculation result shows that the errors of combining model with partial least-square regression(PLS) and fuzzy neural network(FNN) is smaller than that the multiple linear regression model. The length time sequence data of wind could be calculated according to the short time sequence data of observation wind and the long time series data of NCEP by the combining model with PLS and FNN in practical, therefore this model is better practicability and popularize value for it provide the basis to research the exploitation wind resources.
Keywords :
fuzzy neural nets; least squares approximations; power engineering computing; regression analysis; wind power plants; BP algorithm; fuzzy neural networks model; fuzzy system; logical reasoning ability; multiple linear regression model; partial least-squares regression; wind field assessment; wind observation; Artificial neural networks; Data models; Fuzzy neural networks; Predictive models; Time series analysis; Wind forecasting; BP algorithm; fuzzy neural network; partial least-squares; wind field assessment; wind field calculation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computational Sciences and Optimization (CSO), 2011 Fourth International Joint Conference on
Conference_Location :
Yunnan
Print_ISBN :
978-1-4244-9712-6
Electronic_ISBN :
978-0-7695-4335-2
Type :
conf
DOI :
10.1109/CSO.2011.254
Filename :
5957897
Link To Document :
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