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Synchronous Fault-Tolerant Near-Optimal Control for Discrete-Time Nonlinear PE Game.

Authors :
Yuan, Yuan
Zhang, Peng
Li, Xuelong
Source :
IEEE Transactions on Neural Networks & Learning Systems. Oct2021, Vol. 32 Issue 10, p4432-4444. 13p.
Publication Year :
2021

Abstract

In this article, the synchronous fault-tolerant near-optimal control strategy design problem is studied for a class of discrete-time nonlinear pursuit-evasion (PE) games. In the studied PE game, the input saturation phenomenon and possible actuator fault are simultaneously taken into consideration. To accelerate the estimation speed, a novel nonlinear fault estimator is designed by introducing a nonlinear function. Then, for the purpose of obtaining the synchronous control strategy for the discrete-time PE games, an approximate Hamilton–Jacobi–Isaacs (HJI) equation is established, which is seldom utilized for the discrete-time approximate dynamic programming in most existing results. It should be noticed that the synchronous control strategy designed based on the approximate HJI equation can be convergent very fast because of its quasi-Newton’s iteration form. Furthermore, the sufficient condition is established to guarantee that the studied system is uniformly ultimately bounded. Finally, a numerical simulation of the hypersonic vehicle system is carried out to validate the proposed methodology. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
2162237X
Volume :
32
Issue :
10
Database :
Academic Search Index
Journal :
IEEE Transactions on Neural Networks & Learning Systems
Publication Type :
Periodical
Accession number :
153789417
Full Text :
https://doi.org/10.1109/TNNLS.2020.3017762