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contributor authorB. R. Pramod
contributor authorS. C. Bose
date accessioned2017-05-08T23:41:49Z
date available2017-05-08T23:41:49Z
date copyrightNovember, 1993
date issued1993
identifier issn1087-1357
identifier otherJMSEFK-27768#487_1.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/112219
description abstractStochastic system identification is an important tool for control of discrete dynamic systems. Among the modeling strategies developed for this purpose, Auto Regressive Moving Average (ARMA for discrete systems) models offer an accurate identification technique. The disadvantage with these models are that they are extremely complicated to implement on-line, especially for nonlinear time-variant systems. This paper utilizes a Neural Network structure for identification of stochastic processes and tracks system dynamics by on-line adjustments of network parameters. Neural dynamics is based on impulse responses and an iterative learning algorithm is derived using conventional principles of gradient descent and backpropagation. The learning algorithm is analyzed and shown to be fast and accurate in the identification of parameters for stochastic processes in both time-invariant and time-variant cases.
publisherThe American Society of Mechanical Engineers (ASME)
titleSystem Identification Using ARMA Modeling and Neural Networks
typeJournal Paper
journal volume115
journal issue4
journal titleJournal of Manufacturing Science and Engineering
identifier doi10.1115/1.2901794
journal fristpage487
journal lastpage491
identifier eissn1528-8935
keywordsModeling
keywordsArtificial neural networks
keywordsAlgorithms
keywordsStochastic processes
keywordsStochastic systems
keywordsTime-varying systems
keywordsDynamic systems
keywordsDynamics (Mechanics)
keywordsSystem dynamics
keywordsImpulse (Physics)
keywordsAutomobiles
keywordsDiscrete systems
keywordsGradients AND Networks
treeJournal of Manufacturing Science and Engineering:;1993:;volume( 115 ):;issue: 004
contenttypeFulltext


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