DocumentCode :
1443226
Title :
Fuzzy-based adaptive digital power metering using a genetic algorithm
Author :
Kung, Chih-Hsien ; Devaney, Michael J. ; Huang, Chung-Ming ; Kung, Chih-Ming
Author_Institution :
Chang-Jung Univ., Tainan, Taiwan
Volume :
47
Issue :
1
fYear :
1998
fDate :
2/1/1998 12:00:00 AM
Firstpage :
183
Lastpage :
188
Abstract :
This paper describes an innovative, fuzzy-based, adaptive approach to the metering of power and rms voltage and current employing a genetic algorithm. The fuzzy-based adaptive metering engine adjusts the number of points per cycle to be processed and the location of these points. Adjustments are based on the optimal fuzzy rules constructed by a genetic algorithm to satisfy overall metering-error criteria under different operating environments while minimizing the number of points actually employed in the metering computation. This results in a reduction in the metering-computation effort, which frees up the processor for other tasks such as communication or power quality measurements. The fuzzy-based adaptive metering algorithm has been implemented on a microcontroller-based power metering system that employs a multitasking operating system which exploits the efficiencies achieved by the reduced metering rate. The fuzzy-based adaptive metering algorithm has been tested with a variety of actual and synthesized power-system waveforms and the experimental evaluations have demonstrated excellent accuracy in the metered power system quantities
Keywords :
adaptive systems; computerised instrumentation; digital instrumentation; electric current measurement; fuzzy systems; genetic algorithms; power measurement; voltage measurement; adaptive digital power metering; adaptive metering algorithm; genetic algorithm; measurement error; metered power system; microcontroller; multitasking; optimal fuzzy rules; power; power quality measurements; reduced metering rate; rms current; rms voltage; synthesized power-system waveforms; Engines; Frequency; Genetic algorithms; Multitasking; Power measurement; Power quality; Power system dynamics; Power system harmonics; Power system measurements; Voltage;
fLanguage :
English
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9456
Type :
jour
DOI :
10.1109/19.728815
Filename :
728815
Link To Document :
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