Title :
A finite memory observer approach to the design of fault detection algorithms
Author :
Kratz, F. ; Bousghiri, S. ; Mourot, G.
Author_Institution :
Centre de Recherche en Autom. de Nancy, Vandoeuvre, France
fDate :
29 June-1 July 1994
Abstract :
Modelling uncertainty is inevitable for most systems. Residual robustness with respect to modelling uncertainty is one of the most important issues in any practical fault diagnosis scheme. A significant class of model-based fault detection and isolation structure uses observers to generate residuals. Infinite dynamic observer memory inflicts a phenomenon generally referred as divergence. To overcome this drawback, a structure which intrinsically has finite process memory is proposed. Observer residuals give a possibility to check up explicitly how the more recent measurements which are suspected to be provided by a faulty sensor fit the process history. This paper presents extensions and improvements on the finite memory observer. The main contribution is to incorporate the parity relation design and observer into a diagnosis scheme. The application of the finite memory observer to the sensor fault detection problem is illustrated by a numerical example.
Keywords :
discrete time systems; fault diagnosis; matrix algebra; observers; discrete time state; fault detection algorithms; fault diagnosis; finite memory observer; finite process memory; residual robustness; sensor fault detection; Algorithm design and analysis; Content addressable storage; Equations; Fault detection; History; Observers; Performance evaluation; State estimation;
Conference_Titel :
American Control Conference, 1994
Print_ISBN :
0-7803-1783-1
DOI :
10.1109/ACC.1994.735250