Title :
Adaptive Controller Design and Disturbance Attenuation for Sequentially Interconnected SISO Linear Systems Under Noisy Output Measurements
Author :
Zeng, Sheng ; Fernandez, Emmanuel
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Cincinnati, Cincinnati, OH, USA
Abstract :
This note presents a robust adaptive controller design for a special class of linear system, consisting of two sequentially interconnected SISO linear subsystems, S1 and S2, under noisy output measurements and with additional feedback. We formulate the robust adaptive control problem as a nonlinear H∞-optimal control problem under imperfect state measurements, and then solve it using game theory. A cost-to-come function formulation is utilized in the analysis in order to derive identifiers for S1 and S2, and integrator backstepping methodology is applied recursively to obtain the control law, which guarantees the boundedness of closed-loop signals, and achieves asymptotic tracking, under some assumptions. The closed-loop system exhibits a guaranteed disturbance attenuation level with respect to the exogenous disturbance inputs, where the ultimate attenuation lower bound for the achievable performance level is equal to the noise intensity in the measurement channel of S1.
Keywords :
H∞ control; adaptive control; closed loop systems; game theory; linear systems; nonlinear control systems; robust control; closed-loop system; disturbance attenuation; game theory; noisy output measurements; nonlinear H∞-optimal control problem; robust adaptive controller design; sequentially interconnected SISO linear systems; Adaptive control; Attenuation measurement; Control systems; Game theory; Linear feedback control systems; Linear systems; Output feedback; Programmable control; Robust control; Signal analysis; Adaptive control; cost-to-come function analysis; integrator backstepping; nonlinear $H^{infty }$ control;
Journal_Title :
Automatic Control, IEEE Transactions on
DOI :
10.1109/TAC.2010.2051067