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Use of neuro-fuzzy system to time domain electrode circuits fault diagnosis

  • Silesian University of Technology

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

4 Citations (Scopus)

Abstract

This paper presents a new concept to analog fault diagnosis. Problem of distinguishing between healthy or faulty analog circuit has always been very complicated. The most common approach based on pattern recognition, especially on mean square error measure, can not distinguish all faulty circuits from the healthy one. Normally, the dictionary has to include thousands of patterns and even then, the level of fault detection is not satisfactory. A neural network classifier has been proposed to solve the problem. Its generalization ability allows to reduce the dictionary size significantly. This paper shows how to create a neural dictionary for fault location. Moreover, at the first stage of classification, the fuzzy logic is utilized to transform a measurement vector into a zero - one range. The information from the Circuit Under Test (CUT) has to be as high as it is possible but at the same time the stimuli has to be as simple as possible. The most common AC and DC tests don't give the best solution. Therefore, the time domain testing with pulse stimuli has been utilized. his paper presents a new concept to analog fault diagnosis.

Original languageEnglish
Title of host publication2005 ICSC Congress on Computational Intelligence Methods and Applications
Publication statusPublished - 2005
Event2005 ICSC Congress on Computational Intelligence Methods and Applications - Istanbul, Turkey
Duration: 15 Dec 200517 Dec 2005

Publication series

Name2005 ICSC Congress on Computational Intelligence Methods and Applications
Volume2005

Conference

Conference2005 ICSC Congress on Computational Intelligence Methods and Applications
Country/TerritoryTurkey
CityIstanbul
Period15/12/0517/12/05

ASJC Scopus subject areas

  • General Engineering

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