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contributor authorHua-Tzu Fan
contributor authorS. M. Wu
date accessioned2017-05-08T23:47:43Z
date available2017-05-08T23:47:43Z
date copyrightAugust, 1995
date issued1995
identifier issn1087-1357
identifier otherJMSEFK-27781#412_1.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/115615
description abstractThe modeling capability of an artificial neural network is studied through three different manufacturing processes. The first case study is a linear separable pattern classification problem in manufacturing process diagnosis. The performance between the neural network and the probability voting classifier is compared. The second case study uses a design of experiment to study an SMC compression molding process. Modeling and predicting performances between a regression model and a neural network model are compared in linear as well as nonlinear cases. The third case study investigates correlation models between the operating conditions and product quality defects of an automotive painting process. Results from a neural network model are compared with those of a probability voting classifier. An ad hoc modification named focused learning paradigm on the back-propagation algorithm is also introduced to speed up network learning.
publisherThe American Society of Mechanical Engineers (ASME)
titleCase Studies on Modeling Manufacturing Processes Using Artificial Neural Networks
typeJournal Paper
journal volume117
journal issue3
journal titleJournal of Manufacturing Science and Engineering
identifier doi10.1115/1.2804348
journal fristpage412
journal lastpage417
identifier eissn1528-8935
keywordsManufacturing
keywordsModeling
keywordsArtificial neural networks
keywordsNeural network models
keywordsProbability
keywordsProduct quality
keywordsRegression models
keywordsSurface mount components
keywordsPainting
keywordsParticle filtering (numerical methods)
keywordsPatient diagnosis
keywordsCompression molding
keywordsNetworks
keywordsSheet molding compound (Plastics)
keywordsSliding mode control
keywordsAlgorithms AND Design
treeJournal of Manufacturing Science and Engineering:;1995:;volume( 117 ):;issue: 003
contenttypeFulltext


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