DocumentCode :
1685308
Title :
Genetic algorithms-based gain optimization of a simple learning control for single-phase shunt active filters
Author :
Lenwari, Wanchak
Author_Institution :
Dept. of Control Syst. & Instrum. Eng., King´´s Mongkut Univ. of Technol. Thonburi, Bangkok, Thailand
fYear :
2010
Firstpage :
2457
Lastpage :
2461
Abstract :
The repetitive or learning based control has proven to achieve high steady-state performances for control systems. The iterative learning algorithm aims to accomplish zero tracking error without full knowledge of the system model. However, its dynamic behaviors were not satisfied in some conditions particularly under non-periodic disturbances since the control uses the information from the previous iteration to calculate the system input. This paper proposes the investigation of the use of genetic algorithm to optimize the learning gain of a simple proportional-type (P-type) learning control applied to current control for shunt active filters. The merit of the proposed control is its simplicity, potentially suitable for commercial active filters. All design concepts are verified and the results obtained in the simulation confirm the improvement in the dynamic responses during the transient condition while the harmonic control accuracy in steady-state can remain excellent with the proposed control system.
Keywords :
active filters; dynamic response; electric current control; genetic algorithms; iterative methods; learning systems; power harmonic filters; zero assignment; P-type learning control; commercial active filters; control systems; current control; dynamic behaviors; dynamic responses; genetic algorithms-based gain optimization; harmonic control accuracy; iterative learning algorithm; learning based control; learning gain; nonperiodic disturbances; proportional-type learning control; repetitive based control; single-phase shunt active filters; steady-state performances; transient condition; zero tracking error; Active filters; Control systems; Gallium; Harmonic analysis; Impedance; Power harmonic filters; Steady-state; Current Control; Genetic Algorithm(GA); Iterative Learning Control(ILC); Optimization; Shunt Active Filter;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Automation and Systems (ICCAS), 2010 International Conference on
Conference_Location :
Gyeonggi-do
Print_ISBN :
978-1-4244-7453-0
Electronic_ISBN :
978-89-93215-02-1
Type :
conf
Filename :
5670263
Link To Document :
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