Title :
Robust
Filtering for Markovian Jump Systems With Randomly Occurring Nonlinearities and Sensor Saturation: The Finite-Horizon Case
Author :
Dong, Hongli ; Wang, Zidong ; Ho, Daniel W C ; Gao, Huijun
Author_Institution :
Res. Inst. of Intell. Control & Syst., Harbin Inst. of Technol., Harbin, China
fDate :
7/1/2011 12:00:00 AM
Abstract :
This paper addresses the robust H∞ filtering problem for a class of discrete time-varying Markovian jump systems with randomly occurring nonlinearities and sensor saturation. Two kinds of transition probability matrices for the Markovian process are considered, namely, the one with polytopic uncertainties and the one with partially unknown entries. The nonlinear disturbances are assumed to occur randomly according to stochastic variables satisfying the Bernoulli distributions. The main purpose of this paper is to design a robust filter, over a given finite-horizon, such that the H∞ disturbance attenuation level is guaranteed for the time-varying Markovian jump systems in the presence of both the randomly occurring nonlinearities and the sensor saturation. Sufficient conditions are established for the existence of the desired filter satisfying the H∞ performance constraint in terms of a set of recursive linear matrix inequalities. Simulation results demonstrate the effectiveness of the developed filter design scheme.
Keywords :
H∞ optimisation; Markov processes; filtering theory; linear matrix inequalities; matrix algebra; Bernoulli distributions; discrete time-varying Markovian jump systems; finite-horizon case; nonlinear disturbances; polytopic uncertainties; randomly occurring nonlinearities; recursive linear matrix inequalities; robust H∞ filtering; sensor saturation; Attenuation; Linear matrix inequalities; Performance analysis; Robustness; Symmetric matrices; Time varying systems; Uncertain systems; Discrete time-varying systems; Markovian jumping parameters; randomly occurring nonlinearities; robust ${cal H}_{infty}$ filtering; sensor saturation;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2011.2135854