Dissipativity-based static output feedback design for discrete-time LTI systems with time-varying input delays
Abstract
This note is concerned with the presentation of new delay-dependent dissipativity-based convex conditions (expressed in the form of linear matrix inequalities) for the design of static output feedback (SOF) stabilizing gains for open-loop unstable discrete-time systems with input time-varying delays. A modified definition of QSR-dissipativity combined with the use of Lyapunov-Krasovskii functionals as storage functions and the application of Finsler's Lemma lead to the gathering of non-interactive design conditions. We show that, differently from most works dealing with controller design for time-delayed systems, the developed conditions present very small conservatism compared to stability analysis conditions derived with the same strategy. Due to being a particular case of SOF with an identity output matrix, static state feedback (SSF) gains can also trivially be computed from the conditions.
Cite
@article{arxiv.2107.01138,
title = {Dissipativity-based static output feedback design for discrete-time LTI systems with time-varying input delays},
author = {Thiago Alves Lima and Diego de S. Madeira},
journal= {arXiv preprint arXiv:2107.01138},
year = {2021}
}
Comments
Preprint submitted to Automatica