Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/90428
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Type: Journal article
Title: Robust finite-time H∞ control for uncertain discrete-time singular systems with Markovian jumps
Other Titles: Robust finite-time H-infinity control for uncertain discrete-time singular systems with Markovian jumps
Author: Zhang, Y.
Shi, P.
Nguang, S.
Song, Y.
Citation: IET Control Theory and Applications, 2014; 8(12):1105-1111
Publisher: Institution of Engineering and Technology
Issue Date: 2014
ISSN: 1751-8644
1751-8652
Statement of
Responsibility: 
Yingqi Zhang, Peng Shi, Sing Kiong Nguang, Yongduan Song
Abstract: This study is concerned with the finite-time H∞ control problem for uncertain discrete-time Markovian jump singular systems with time-varying norm-bounded disturbance. Firstly, the concepts of singular finite-time stability, singular finite-time boundedness and singular H∞ finite-time stabilisation are given. Then, sufficient conditions of singular finite-time boundedness and singular H∞ finite-time stability are derived for the class of discrete-time Markovian jump singular systems. The main contribution of the study is to propose a numerical efficient and reliable controller design process for state feedback finite-time H∞ control of discrete-time Markovian jump singular systems. By applying the descriptor system technique presented by Fridman and Shaked, sufficient criteria are presented for the solvability of the problems, which can be reduced to feasibility problems in terms of linear matrix inequalities. Finally, numerical examples are included to illustrate the validity of the presented results.
Rights: © The Institution of Engineering and Technology 2014
DOI: 10.1049/iet-cta.2013.1013
Published version: http://dx.doi.org/10.1049/iet-cta.2013.1013
Appears in Collections:Aurora harvest 7
Electrical and Electronic Engineering publications

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