Robust H∞ sliding-mode control for Markovian jump systems subject to intermittent observations and partially known transition probabilities
In this paper, we exploit the robust H∞ sliding-mode controller design problem for discrete-time Markovian jump linear systems which are subject to intermittent observations and partially known transition probabilities. The intermittent measurements are described by a Bernoulli process and the pheno...
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Published in | Systems & control letters Vol. 62; no. 12; pp. 1114 - 1124 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
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Elsevier B.V
01.12.2013
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Abstract | In this paper, we exploit the robust H∞ sliding-mode controller design problem for discrete-time Markovian jump linear systems which are subject to intermittent observations and partially known transition probabilities. The intermittent measurements are described by a Bernoulli process and the phenomenon of the partially known transition probabilities is modeled by employing the polytopic uncertainties. A robust mode-dependent estimator is firstly designed to estimate the system states with the intermittent observations. In order to achieve a good transient performance, the circular region is used to constrain the eigenvalues of the filtering error system’s system matrix. With the estimated state vector and the derived observer gain, we propose the design method for the sliding-mode controller with a disturbance predictor and analyze the stability of the closed-loop system. Two numerical examples are provided to illustrate the advantages and the efficacy of the proposed method when simultaneously considering the intermittent observations, the system uncertainty, and the external disturbance. |
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AbstractList | In this paper, we exploit the robust H∞ sliding-mode controller design problem for discrete-time Markovian jump linear systems which are subject to intermittent observations and partially known transition probabilities. The intermittent measurements are described by a Bernoulli process and the phenomenon of the partially known transition probabilities is modeled by employing the polytopic uncertainties. A robust mode-dependent estimator is firstly designed to estimate the system states with the intermittent observations. In order to achieve a good transient performance, the circular region is used to constrain the eigenvalues of the filtering error system’s system matrix. With the estimated state vector and the derived observer gain, we propose the design method for the sliding-mode controller with a disturbance predictor and analyze the stability of the closed-loop system. Two numerical examples are provided to illustrate the advantages and the efficacy of the proposed method when simultaneously considering the intermittent observations, the system uncertainty, and the external disturbance. |
Author | Zhang, Hui Wang, Junmin Shi, Yang |
Author_xml | – sequence: 1 givenname: Hui surname: Zhang fullname: Zhang, Hui email: huizhang285@gmail.com organization: Department of Mechanical and Aerospace Engineering, The Ohio State University, Columbus, OH 43210, USA – sequence: 2 givenname: Junmin surname: Wang fullname: Wang, Junmin organization: Department of Mechanical and Aerospace Engineering, The Ohio State University, Columbus, OH 43210, USA – sequence: 3 givenname: Yang surname: Shi fullname: Shi, Yang organization: Department of Mechanical Engineering, University of Victoria, PO Box 3055, STN CSC, Victoria, BC, V8W 3P6, Canada |
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Copyright | 2013 Elsevier B.V. |
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Keywords | Sliding-mode control (SMC) Markovian jump systems Partially known transition probabilities H∞ control |
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Snippet | In this paper, we exploit the robust H∞ sliding-mode controller design problem for discrete-time Markovian jump linear systems which are subject to... |
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SubjectTerms | [formula omitted] control Markovian jump systems Partially known transition probabilities Sliding-mode control (SMC) |
Title | Robust H∞ sliding-mode control for Markovian jump systems subject to intermittent observations and partially known transition probabilities |
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