Title :
SOS Based Robust
Fuzzy Dynamic Output Feedback Control of Nonlinear Networked Control Systems
Author :
Seunghwan Chae ; Sing Kiong Nguang
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Auckland, Auckland, New Zealand
Abstract :
In this paper, a methodology for designing a fuzzy dynamic output feedback controller for discrete-time nonlinear networked control systems is presented where the nonlinear plant is modelled by a Takagi-Sugeno fuzzy model and the network-induced delays by a finite state Markov process. The transition probability matrix for the Markov process is allowed to be partially known, providing a more practical consideration of the real world. Furthermore, the fuzzy controller´s membership functions and premise variables are not assumed to be the same as the plant´s membership functions and premise variables, that is, the proposed approach can handle the case, when the premise of the plant are not measurable or delayed. The membership functions of the plant and the controller are approximated as polynomial functions, then incorporated into the controller design. Sufficient conditions for the existence of the controller are derived in terms of sum of square inequalities, which are then solved by YALMIP. Finally, a numerical example is used to demonstrate the validity of the proposed methodology.
Keywords :
H∞ control; Markov processes; delays; discrete time systems; feedback; fuzzy control; matrix algebra; networked control systems; nonlinear control systems; probability; robust control; SOS; Takagi-Sugeno fuzzy model; discrete-time nonlinear networked control systems; finite state Markov process; network-induced delays; robust H∞ fuzzy dynamic output feedback control; sum of square inequalities; transition probability matrix; Delays; Function approximation; Markov processes; Networked control systems; Output feedback; Polynomials; Fuzzy control; Markovian jump systems; membership functions; networked control systems (NCSs); partially known transition probability matrix; sum-of-squares (SOS);
Journal_Title :
Cybernetics, IEEE Transactions on
DOI :
10.1109/TCYB.2013.2281458