DocumentCode
71336
Title
Brief Paper - Optimal Hi/H∞ fault-detection filter design for uncertain linear time-invariant systems: an iterative linear matrix inequality approach
Author
Wei Li ; Zhencai Zhu ; Gongbo Zhou ; Guoan Chen
Author_Institution
Sch. of Mechatron. Eng., China Univ. of Min. & Technol., Xuzhou, China
Volume
7
Issue
8
fYear
2013
fDate
May 16 2013
Firstpage
1160
Lastpage
1167
Abstract
An iterative linear matrix inequality (LMI) approach is proposed to design fault-detection filters (FDFs) of uncertain linear time-invariant (LTI) systems. The obtained FDF is the optimal solution for the Hi/H∞ (with H∞/H∞ and H-/H∞ being two extreme cases) optimisation problem of FDF design and can achieve the best trade-off between robustness against unknown disturbances and sensitivity to system faults. The authors first derive the theoretical optimal Hi/H∞ FDFs for uncertain LTI systems based on the co-inner-outer factorisation technique. Then a new optimisation problem is formulated to obtain the optimal FDFs that can approach the theoretical optimal ones as much as possible. An iterative LMI approach is presented to find the solution in the state-space form. The effectiveness of the proposed approach is illustrated by a numerical example.
Keywords
H∞ filters; control system synthesis; fault diagnosis; iterative methods; linear matrix inequalities; linear systems; matrix decomposition; optimal control; optimisation; state-space methods; uncertain systems; FDF; LTI; co-inner-outer factorisation technique; iterative LMI approach; iterative linear matrix inequality approach; optimal Hi-H∞ fault-detection filter design; optimisation problem; state-space form; uncertain linear time-invariant systems;
fLanguage
English
Journal_Title
Control Theory & Applications, IET
Publisher
iet
ISSN
1751-8644
Type
jour
DOI
10.1049/iet-cta.2012.0954
Filename
6574936
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