Title :
Non-concurrent fault identification in discrete event systems using encoded Petri net states
Author :
Wu, Yingquan ; Hadjicostis, Christoforos N.
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Champaign, IL, USA
Abstract :
In this paper we extend a previously developed coding-based methodology for monitoring faults in discrete event systems that are described by Petri nets. We present a systematic design that enables us to non-concurrently detect and identify a maximum of 2k-1 transition faults and a maximum of k place faults that may occur at various instants during the operation of the system. Using an encoded Petri net model with 2k redundant places (and the connections and tokens associated with them) the worst-case complexity of the detection and identification procedure is O(k2(m+n)), where n and m are respectively the number of places and transitions in the given Petri net model. The proposed fault detection and identification approach does not need to explicitly track or reconstruct the system state evolution and is well-suited for non-concurrent diagnosis.
Keywords :
Petri nets; computational complexity; discrete event systems; fault diagnosis; identification; monitoring; coding based methodology; discrete event systems; encoded Petri net states; fault monitoring; nonconcurrent fault diagnosis; nonconcurrent fault identification; operational complexity; systematic design; transition fault detection; Computerized monitoring; Degradation; Discrete event systems; Electrical fault detection; Fault detection; Fault diagnosis; Large-scale systems; Parity check codes; Petri nets; Redundancy;
Conference_Titel :
Decision and Control, 2002, Proceedings of the 41st IEEE Conference on
Print_ISBN :
0-7803-7516-5
DOI :
10.1109/CDC.2002.1184995