DocumentCode :
3010557
Title :
Integration of neural networks with diagnostic expert systems
Author :
Hornig, D. ; Aschenbrenner, Rex ; Enand, Rajiv
Author_Institution :
Carnegie Group Inc., Pittsburgh, PA, USA
fYear :
1991
fDate :
24-26 Sep 1991
Firstpage :
253
Lastpage :
257
Abstract :
The integration of expert system and neural network technologies is a promising approach to solving diagnostic and field service problems. A hybrid system has shown the feasibility of integrating these two technologies. It uses a neural network to perform an initial diagnosis via acoustic signal recognition, and uses an expert system to perform follow-up tests leading to a specific diagnosis. The hybrid successfully diagnoses a simulated mechanical fault using acoustic information and expert-level knowledge, demonstrating that a standard low-cost platform can support a combination of neural network, expert system, and data acquisition software. This hybrid technology has potential applications in diagnostics and prognostics applications where the available diagnostic evidence includes both signal and symbolic information. The hybrid technology is particularly appropriate for situations that require rapid development and cost-effective maintenance of the diagnostic system
Keywords :
automatic test equipment; automatic testing; expert systems; maintenance engineering; neural nets; acoustic information; acoustic signal recognition; cost-effective maintenance; data acquisition software; diagnostic expert systems; field service; hybrid system; integration; neural networks; simulated mechanical fault; Acoustic testing; Application software; Data acquisition; Diagnostic expert systems; Feature extraction; Neural networks; Performance evaluation; Software standards; System testing; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
AUTOTESTCON '91. IEEE Systems Readiness Technology Conference. Improving Systems Effectiveness in the Changing Environment of the '90s, Conference Record.
Conference_Location :
Anaheim, CA
Print_ISBN :
0-87942-576-8
Type :
conf
DOI :
10.1109/AUTEST.1991.197555
Filename :
197555
Link To Document :
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