DocumentCode
836384
Title
Clearance of Nonlinear Flight Control Laws Using Hybrid Evolutionary Optimization
Author
Menon, Prathyush P. ; Kim, Jongrae ; Bates, Declan G. ; Postlethwaite, Ian
Author_Institution
Dept. of Eng., Leicester Univ.
Volume
10
Issue
6
fYear
2006
Firstpage
689
Lastpage
699
Abstract
The application of two evolutionary optimization methods, namely, differential evolution and genetic algorithms, to the clearance of nonlinear flight control laws for highly augmented aircraft is described. The algorithms are applied to the problem of evaluating a nonlinear handling quality clearance criterion for a simulation model of a high-performance aircraft with a delta canard configuration and a full-authority flight control law. Hybrid versions of both algorithms, incorporating local gradient-based optimization, are also developed and evaluated. Statistical comparisons of computational cost and global convergence properties reveal the benefits of hybridization for both algorithms. The differential evolution approach in particular, when appropriately augmented with local optimization methods, is shown to have significant potential for improving both the reliability and efficiency of the current industrial flight clearance process
Keywords
aircraft control; genetic algorithms; gradient methods; nonlinear control systems; optimal control; augmented aircraft; differential evolution; genetic algorithm; gradient based optimization; hybrid evolutionary optimization; nonlinear flight control; nonlinear handling quality clearance criterion; Aerodynamics; Aerospace control; Aerospace simulation; Aircraft; Computational efficiency; Computational modeling; Genetic algorithms; Optimization methods; Stability criteria; Uncertainty; Evolutionary algorithms; flight control; nonlinear systems; robustness analysis; simulation;
fLanguage
English
Journal_Title
Evolutionary Computation, IEEE Transactions on
Publisher
ieee
ISSN
1089-778X
Type
jour
DOI
10.1109/TEVC.2006.873220
Filename
4016065
Link To Document