A Reduced-Order TS Fuzzy Observer Scheme with Application to Actuator Faults Reconstruction

Joint Authors

Filasová, Anna
Krokavec, Dušan

Source

Mathematical Problems in Engineering

Issue

Vol. 2012, Issue 2012 (31 Dec. 2012), pp.1-25, 25 p.

Publisher

Hindawi Publishing Corporation

Publication Date

2012-12-02

Country of Publication

Egypt

No. of Pages

25

Main Subjects

Civil Engineering

Abstract EN

This paper focuses on the principle for designing reduced-order fuzzy-observer-based actuator fault reconstruction for a class of nonlinear systems.

The problem addressed can be indicated as an approach for a kind of reduced-order fuzzy observer design with special gain matrix structure that depends on a given matching condition specification.

Using the Lyapunov theory, the stability conditions are obtained and expressed in terms of linear matrix inequalities, and the conditions for asymptotic estimation of actuator faults are derived.

Simulation results illustrate the observer design procedure and demonstrate the actuator fault reconstruction effectiveness and performance.

American Psychological Association (APA)

Krokavec, Dušan& Filasová, Anna. 2012. A Reduced-Order TS Fuzzy Observer Scheme with Application to Actuator Faults Reconstruction. Mathematical Problems in Engineering،Vol. 2012, no. 2012, pp.1-25.
https://search.emarefa.net/detail/BIM-1002271

Modern Language Association (MLA)

Krokavec, Dušan& Filasová, Anna. A Reduced-Order TS Fuzzy Observer Scheme with Application to Actuator Faults Reconstruction. Mathematical Problems in Engineering No. 2012 (2012), pp.1-25.
https://search.emarefa.net/detail/BIM-1002271

American Medical Association (AMA)

Krokavec, Dušan& Filasová, Anna. A Reduced-Order TS Fuzzy Observer Scheme with Application to Actuator Faults Reconstruction. Mathematical Problems in Engineering. 2012. Vol. 2012, no. 2012, pp.1-25.
https://search.emarefa.net/detail/BIM-1002271

Data Type

Journal Articles

Language

English

Notes

Includes bibliographical references

Record ID

BIM-1002271