Title :
Robust
Finite-Horizon Control for a Class of Stochastic Nonlinear Time-Varying Systems Subject to Sensor and Actuator Saturations
Author :
Wang, Zidong ; Ho, Daniel W C ; Dong, Hongli ; Gao, Huijun
Author_Institution :
Sch. of Inf. Sci. & Technol., Donghua Univ., Shanghai, China
fDate :
7/1/2010 12:00:00 AM
Abstract :
This technical note addresses the robust H∞ finite-horizon output feedback control problem for a class of uncertain discrete stochastic nonlinear time-varying systems with both sensor and actuator saturations. In the system under investigation, all the system parameters are allowed to be time-varying, the parameter uncertainties are assumed to be of the polytopic type, and the stochastic nonlinearities are described by statistical means which can cover several classes of well-studied nonlinearities. The purpose of the problem addressed is to design an output feedback controller, over a given finite-horizon, such that the H∞ disturbance attenuation level is guaranteed for the nonlinear stochastic polytopic system in the presence of saturated sensor and actuator outputs. Sufficient conditions are first established for the robust H∞ performance through intensive stochastic analysis, and then a recursive linear matrix inequality (RLMI) approach is employed to design the desired output feedback controller achieving the prescribed H∞ disturbance rejection level. Simulation results demonstrate the effectiveness of the developed controller design scheme.
Keywords :
H∞ control; actuators; control system synthesis; feedback; linear matrix inequalities; nonlinear control systems; robust control; sensors; stochastic systems; time-varying systems; RLMI; actuator saturations; discrete stochastic nonlinear time-varying systems; feedback control problem; output feedback controller design; recursive linear matrix inequality; robust H∞ finite horizon control; sensor saturations; stochastic polytopic system; Actuators; Control systems; Nonlinear control systems; Output feedback; Robust control; Robustness; Sensor systems; Stochastic systems; Time varying systems; Uncertain systems; Actuator saturation; discrete time-varying systems; finite-horizon; robust ${cal H}_{infty}$ control; sensor saturation; stochastic nonlinear systems;
Journal_Title :
Automatic Control, IEEE Transactions on
DOI :
10.1109/TAC.2010.2047033