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  2007, Vol. 20 Issue (2): 266-270    DOI:
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Complex System Behavior Forecasting Method Based on BMACRLS Model and Its Application
YANG XiaoYu1,2, FU ZhongQian1, WANG WeiPing2
1.Department of Electronic Science and Technology, University of Science and Technology of China, Hefei 230027
2.Department of Information Management and Decision Science, University of Science and Technology of China, Hefei 230026

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Abstract  ;Complex system behavior forecasting is quite important in complex system management and decision. It is the key of improving forecasting stability and extension without the loss of precision. A new method based on PCA (principle component analysis) and CMACRLS (recursive least squares) is proposed. PCA is used to reduce the input space dimensions. CMACRLS algorithm combined with the Bspline is introduced to ensure the weight convergence and provide the differential information of function adapted to the online modeling. Then the load forecasting is performed by PCABMACRLS and RBF neural network on the data of FuYang Power Land in 2004. The result comparison between two algorithm illustrates the validity of the proposed method.
Key wordsBehavior Forecasting      Neural Network      Principle Component Analysis (PCA)      Recursive Least Squares      Electric Power Load Forecasting     
Received: 22 December 2005     
ZTFLH: TP314  
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YANG XiaoYu
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WANG WeiPing
Cite this article:   
YANG XiaoYu,FU ZhongQian,WANG WeiPing. Complex System Behavior Forecasting Method Based on BMACRLS Model and Its Application[J]. , 2007, 20(2): 266-270.
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