DocumentCode
313116
Title
Nonlinear adaptive control based on RBF networks and multi-model method
Author
Xiaohong, Chen ; Feng, Gao ; Jixin, Qian
Author_Institution
Inst. of Ind. Process Control, Zhejiang Univ., Hangzhou, China
Volume
3
fYear
1997
fDate
4-6 Jun 1997
Firstpage
1563
Abstract
Feedforward neural networks have been extensively applied to modeling and control of nonlinear systems. It has been known that using only one NN model to approximate accurately a highly nonlinear plant within a large domain is very difficult, and the controller based on the model often fail when the operating point changes greatly. This paper proposes a nonlinear direct adaptive control strategy based on radial basis function (RBF) neural networks and multi-models. An online adaptive algorithm and several effective model switching methods are given. The adaptive control strategy based on a single NN model has been proved to be robust, reliable, efficient and simple. The strategy based on multi-model proposed in this work can trace an expected output accurately without oscillation within a large domain. The control strategy is also applied to a pH continuously stirred tank reactor and the simulation results demonstrate the advantages
Keywords
adaptive control; chemical industry; feedforward neural nets; neurocontrollers; nonlinear control systems; process control; real-time systems; RBF networks; continuously stirred tank reactor; direct adaptive control; feedforward neural networks; model switching methods; multiple model method; nonlinear systems; online adaptive algorithm; Adaptive algorithm; Adaptive control; Control system synthesis; Feedforward neural networks; Inductors; Neural networks; Nonlinear control systems; Nonlinear systems; Radial basis function networks; Robust control;
fLanguage
English
Publisher
ieee
Conference_Titel
American Control Conference, 1997. Proceedings of the 1997
Conference_Location
Albuquerque, NM
ISSN
0743-1619
Print_ISBN
0-7803-3832-4
Type
conf
DOI
10.1109/ACC.1997.610831
Filename
610831
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