DocumentCode :
2790977
Title :
The study of multiple model predictive control in wastewater treatment processes
Author :
Zeng, Jing ; Xue, Ding-Yu ; Yuan, De-Cheng
Author_Institution :
Sch. of Inf. Sci. & Eng., Northeastern Univ., Shenyang
Volume :
4
fYear :
2008
fDate :
12-15 July 2008
Firstpage :
2166
Lastpage :
2169
Abstract :
A multiple model predictive control strategy dealing with nonlinear model-based predictive control (NMPC) is proposed in this paper. It is used to deal with control problem of strong nonlinear systems- wastewater treatment processes. Firstly a multi-model modeling method based on local model is given. The modeling idea is to find some data matching with the current working point from vast historical system input-output datasets, then to develop a local model using local polynomial fitting (LPF) algorithm. With the change of working points, multiple local models are built. Combining the obtained multiple models with predictive control, a multiple model predictive control strategy is developed, thus solves the control problem of a sort of unknown-structure nonlinear system based on vast history data only. The effectiveness of the proposed method is demonstrated by simulation results.
Keywords :
nonlinear control systems; polynomial approximation; predictive control; surface fitting; wastewater treatment; data matching; local polynomial fitting algorithm; multiple model predictive control; nonlinear model-based predictive control; unknown-structure nonlinear system; wastewater treatment processes; Control systems; Cybernetics; Databases; Machine learning; Nonlinear control systems; Nonlinear systems; Polynomials; Predictive control; Predictive models; Wastewater treatment; Model predictive control; Multi-model; Neighborhood; Nonlinear system; Wastewater treatment processes;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Machine Learning and Cybernetics, 2008 International Conference on
Conference_Location :
Kunming
Print_ISBN :
978-1-4244-2095-7
Electronic_ISBN :
978-1-4244-2096-4
Type :
conf
DOI :
10.1109/ICMLC.2008.4620764
Filename :
4620764
Link To Document :
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