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Robust and non-fragile static output feedback control for continuous-time semi-Markovian jump systems

  • Yanling Wei*
  • , Xiuyan Peng
  • , Jianbin Qiu
  • *Corresponding author for this work
  • Harbin Engineering University

Research output: Contribution to journalArticlepeer-review

Abstract

This paper investigates the problem of robust and non-fragile H ∞ static output feedback (SOF) controller design for a class of continuous-time semi-Markovian jump linear systems (S-MJLSs) with norm-bounded uncertainties. The systems under consideration are subject to a semi-Markov stochastic process with time-varying transition rates (TRs), which relax the traditional assumption on Markovian jump linear systems (MJLSs) that all of the TRs are constant. Based on a semi-Markovian Lyapunov function together with the property of cumulative distribution function, a sufficient condition for robust H ∞ performance analysis is first derived. Then via some matrix inequality linearization procedures combined with sojourn-time decomposition idea, two approaches, namely, the convex linearization approach and iterative approach, are developed to solve the robust and non-fragile SOF controller synthesis problem. It is shown that the controller gains can be obtained by solving a set of strict linear matrix inequalities (LMIs) or a sequential minimization problem subject to LMI constraints. Finally, illustrative examples are provided to illustrate the effectiveness of the proposed approaches.

Original languageEnglish
Pages (from-to)1136-1150
Number of pages15
JournalTransactions of the Institute of Measurement and Control
Volume38
Issue number9
DOIs
StatePublished - 1 Sep 2016

Keywords

  • non-fragile static output feedback control
  • norm-bounded uncertainties
  • semi-Markovian jump systems
  • sojourn-time decomposition
  • time-varying transition rates

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