Title :
Pseudo-predictor feedback stabilization of linear systems with time-varying input delays
Author_Institution :
Center for Control Theor. & Guidance Technol., Harbin Inst. of Technol., Harbin, China
Abstract :
This paper is concerned with stabilization of (time-varying) linear systems with a single time-varying input delay by using the predictor based delay compensation approach. Differently from the traditional predictor feedback which uses the open-loop system dynamics to predict the future state and will result in an infinite dimensional controller, we propose in this paper a pseudo-predictor feedback (PPF) approach which uses the (artificial) closed-loop system dynamics to predict the future state and the resulting controller is finite dimensional and is thus easy to implement. Necessary and sufficient conditions guaranteeing the stability of the closed-loop system under the PPF are obtained in terms of the stability of a class of integral delay operators (systems). Moreover, it is shown that the PPF can compensate arbitrarily large yet bounded input delays provided the open-loop (time-varying linear) system is only polynomially unstable and the feedback gain is well designed. Comparison of the proposed PPF approach with the existing results are well explored. Numerical examples demonstrate the effectiveness of the proposed approaches.
Keywords :
closed loop systems; compensation; delay systems; linear systems; open loop systems; predictive control; stability; state feedback; time-varying systems; PPF approach; bounded input delays; closed-loop system dynamics; feedback gain; finite dimensional controller; infinite dimensional controller; integral delay operators; linear system stabilization; necessary conditions; open-loop system; open-loop system dynamics; predictor based delay compensation approach; pseudopredictor feedback stabilization; sufficient conditions; time-varying input delays; time-varying system stabilization; Asymptotic stability; Closed loop systems; Delay systems; Delays; Linear systems; Stability analysis; Time-varying systems; Delay compensation; Integral delay systems; Pseudo-predictor feedback; Time-varying delay;
Conference_Titel :
Control Conference (CCC), 2014 33rd Chinese
Conference_Location :
Nanjing
DOI :
10.1109/ChiCC.2014.6895964