DocumentCode :
2851551
Title :
Applications of adaptive genetic algorithm to radar engine fault diagnosis
Author :
Peng, Zhang ; Wei, Pan ; Lina, Zhu ; Dezhi, Wang
Author_Institution :
Electr. Detection Dept., Shenyang Artillery Acad., Shenyang, China
fYear :
2010
fDate :
26-28 May 2010
Firstpage :
25
Lastpage :
29
Abstract :
According to the problem on calculating the synthetic exponent characterizing the whole performance of radar engine by using the synthetic weighted method, the weights of every parameter are difficult to be determined. To solve this problem, a method of determining the weights of every parameter by adaptive genetic algorithm is presented. The synthetic exponent gained by AGA is more sensitive and exact than the one gained by the expert investigated method in reflecting the whole performance of the engines. Mean while, this method improves the rate of identifying whether the performance of the engine is normal or not, finds the potential forepart fault of engine and prevents the spread of the fault. The validity of the method is testified by monitoring certain type of turbine-fan engine. The adaptive crossover probability and adaptive mutation probability are proposed, which consider the influence of every generation to algorithm and the effect of different individual fitness in every generation.
Keywords :
engines; fans; fault diagnosis; genetic algorithms; probability; radar; turbines; adaptive crossover probability; adaptive genetic algorithm; adaptive mutation probability; radar engine fault diagnosis; synthetic weighted method; turbine-fan engine; Condition monitoring; Engines; Fault diagnosis; Genetic algorithms; Genetic mutations; Optimization methods; Physics; Radar applications; Radar detection; Testing; Adaptive Genetic Algorithm; Crossover Probability; Fault Diagnosis; Mutation Probability; Performance Monitoring; Radar Engine;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control and Decision Conference (CCDC), 2010 Chinese
Conference_Location :
Xuzhou
Print_ISBN :
978-1-4244-5181-4
Electronic_ISBN :
978-1-4244-5182-1
Type :
conf
DOI :
10.1109/CCDC.2010.5499140
Filename :
5499140
Link To Document :
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