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AuthorDaroogheh, N.
AuthorMeskin, Nader
AuthorKhorasani, K.
Available date2022-04-14T08:45:45Z
Publication Date2013
Publication NameProceedings of the American Control Conference
ResourceScopus
Identifierhttp://dx.doi.org/10.1109/acc.2013.6580508
URIhttp://hdl.handle.net/10576/29829
AbstractIn this paper, a novel method for a time-varying parameter estimation technique using particle filters is proposed based on the concept of Recursive Prediction Error (RPE). According to the proposed method, a parallel structure for both state and parameter estimation in a nonlinear non-Gaussian system is developed. The performance of the developed framework is evaluated in an application to the gas turbine engine state and health parameters estimation by using different scenarios. The developed method is identified to be applicable for fault diagnosis of an engine system while it is subjected to concurrent and simultaneous loss of effectiveness faults in the system components. 2013 AACC American Automatic Control Council.
SponsorQatar National Research Fund
Languageen
PublisherInstitute of Electrical and Electronics Engineers Inc.
SubjectAircraft propulsion
Gas turbines
Monte Carlo methods
Health parameters
Non-linear non-Gaussian
Parallel structures
Particle Filtering
Recursive prediction errors
State and parameter estimations
System components
Time-varying parameter estimation
Parameter estimation
TitleParticle filtering for state and parameter estimation in gas turbine engine fault diagnostics
TypeConference Paper
Pagination4343-4349


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