Title :
A unifying framework for global regulation via nonlinear output feedback: from ISS to iISS
Author :
Jiang, Zhong-Ping ; Mareels, Iven ; Hill, David J. ; Huang, Jie
Author_Institution :
Dept. of Electr. & Comput. Eng., Polytech. Univ., Brooklyn, NY, USA
fDate :
4/1/2004 12:00:00 AM
Abstract :
This paper presents a unifying framework for the problem of robust global regulation via output feedback for nonlinear systems with integral input-to-state stable inverse dynamics, subject to possibly unknown control direction. The contribution of the paper is two-fold. Firstly, we consider the problem of global regulation, instead of global asymptotic stabilization (GAS), for systems with generalized dynamic uncertainties. It is shown by an elementary example that GAS is not solvable using conventional smooth output feedback. Secondly, we reduce the stability requirements for the disturbance and demand relaxed assumptions for the system. Using our framework, most of the known classes of output feedback form systems are broadened in several directions: unmeasured states and unknown parameters can appear nonlinearly, restrictive matching and growth assumptions are removed, the dynamic uncertainty satisfies the weaker condition of Sontag´s integral input-to-state stability, and the sign of high-frequency gain may be unknown. A constructive strategy is proposed to design a dynamic output feedback control law, that drives the state to the origin while keeping all other closed-loop signals bounded.
Keywords :
adaptive control; asymptotic stability; closed loop systems; feedback; nonlinear control systems; regulation; closed loop signals; dynamic uncertainty; generalized dynamical uncertainties; global asymptotic stabilization; global regulation; integral input-to-state stability; inverse dynamics; nonlinear output feedback; nonlinear systems; universal adaptive control; Automatic control; Control systems; Nonlinear control systems; Nonlinear dynamical systems; Nonlinear systems; Output feedback; Robust control; Signal design; Stability; Uncertainty;
Journal_Title :
Automatic Control, IEEE Transactions on
DOI :
10.1109/TAC.2004.825663