DocumentCode
3601738
Title
A Semidefinite Relaxation Procedure for Fault-Tolerant Observer Design
Author
Segundo Sevilla, Felix Rafael ; Jaimoukha, Imad M. ; Chaudhuri, Balarko ; Korba, Petr
Author_Institution
Zurich Univ. of Appl. Sci. ZHAW, Winterthur, Switzerland
Volume
60
Issue
12
fYear
2015
Firstpage
3332
Lastpage
3337
Abstract
A fault-tolerant observer design methodology is proposed. The aim is to guarantee a minimum level of closed-loop performance under all possible sensor fault combinations while optimizing performance under the nominal, fault-free condition. A novel approach is proposed to tackle the combinatorial nature of the problem, which is computationally intractable even for a moderate number of sensors, by recasting the problem as a robust performance problem, where the uncertainty set is composed of all combinations of a set of binary variables. A procedure based on an elimination lemma and an extension of a semidefinite relaxation procedure for binary variables is then used to derive sufficient conditions (necessary and sufficient in the case of one binary variable) for the solution of the problem which significantly reduces the number of matrix inequalities needed to solve the problem. The procedure is illustrated by considering a fault-tolerant observer switching scheme in which the observer outputs track the actual sensor fault condition. A numerical example from an electric power application is presented to illustrate the effectiveness of the design.
Keywords
closed loop systems; fault tolerance; linear matrix inequalities; observers; closed-loop performance; elimination lemma; fault-tolerant observer design; matrix inequalities; semidefinite relaxation procedure; Estimation error; Linear matrix inequalities; Observers; Power system stability; Robustness; Switches; Uncertainty; Estimation; LMIs; fault–tolerant systems; fault-tolerant systems; semidefinite relaxation; sensor failure;
fLanguage
English
Journal_Title
Automatic Control, IEEE Transactions on
Publisher
ieee
ISSN
0018-9286
Type
jour
DOI
10.1109/TAC.2015.2418681
Filename
7076600
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