Fault-Tolerant Control for Discrete-Time Stochastic Systems with Randomly Occurring Faults
This paper is concerned with the probability-dependent gain-scheduled fault-tolerant control problem for a class of discrete-time stochastic delayed systems with randomly occurring actuator faults (ROAFs) by utilizing parameter-based Lyapunov functional. The occurrence of the possible actuator faults is modeled by a random sequence in terms of a time-varying Bernoulli distribution with measurable probability in real time. The purpose of the addressed fault-tolerant control problem is to design a controller with scheduled gains such that, for the admissible ROAFs, time delays and noises, the closed-loop system is exponentially mean-square stable. By using the semi-definite programme method, the time-varying fault-tolerant controller is derived which is dependent on the occurrence probability of the actuator faults. Therefore, the main results lead to less conservatism than those obtained by conventional methods with fixed controller gains only. A simulation example is exploited to demonstrate the effectiveness of the proposed design procedures.
Fault tolerant control randomly occurring actuator fault time-varying Bernoulli distribution probability-dependent Lyapunov function gain-scheduled controller discrete-time stochastic systems
Guoliang Wei Licheng Wang Wangyan Li
Department of Control Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China
国际会议
The 31st Chinese Control Conference(第三十一届中国控制会议)
合肥
英文
1535-1540
2012-07-01(万方平台首次上网日期,不代表论文的发表时间)