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Automated implementation of rule-based expert systems with neural networks for time-critical applicationsIn fault diagnosis, control and real-time monitoring, both timing and accuracy are critical for operators or machines to reach proper solutions or appropriate actions. Expert systems are becoming more popular in the manufacturing community for dealing with such problems. In recent years, neural networks have revived and their applications have spread to many areas of science and engineering. A method of using neural networks to implement rule-based expert systems for time-critical applications is discussed here. This method can convert a given rule-based system into a neural network with fixed weights and thresholds. The rules governing the translation are presented along with some examples. We also present the results of automated machine implementation of such networks from the given rule-base. This significantly simplifies the translation process to neural network expert systems from conventional rule-based systems. Results comparing the performance of the proposed approach based on neural networks vs. the classical approach are given. The possibility of very large scale integration (VLSI) realization of such neural network expert systems is also discussed.
Document ID
19920005452
Acquisition Source
Legacy CDMS
Document Type
Other
Authors
Ramamoorthy, P. A.
(Cincinnati Univ. OH, United States)
Huang, Song
(Cincinnati Univ. OH, United States)
Govind, Girish
(Cincinnati Univ. OH, United States)
Date Acquired
September 6, 2013
Publication Date
September 25, 1991
Publication Information
Publication: A Neural Network Architecture for Implementation of Expert Systems for Real Time Monitoring
Subject Category
Cybernetics
Accession Number
92N14670
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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