A TRIAL MULTILAYER PERCEPTRON NEURAL NETWORK FOR ATM CONNECTION ADMISSION CONTROL

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Future broadband ATM networks are expected to accommodate various kinds of multi-media services with different traffic characteristics and quality of service (QOS) requirements. However, it is very difficult to control traffic by conventional mechanisms in this complex traffic environment. As an alternative approach, a multilayer perceptron neural network model is proposed as an intelligent control mechanism like ''a traffic control policeman'' in order to perform ATM connection admission control. This proposed neural control model is analyzed by computer simulations in a homogeneous and heterogeneous traffic environment and the result shows the effectiveness of this intelligent control mechanism, compared with that of an analytical method.
Publisher
IEICE-INST ELECTRON INFO COMMUN ENG
Issue Date
1993-03
Language
English
Article Type
Article
Citation

IEICE TRANSACTIONS ON COMMUNICATIONS, v.E76B, no.3, pp.258 - 262

ISSN
0916-8516
URI
http://hdl.handle.net/10203/57042
Appears in Collection
EE-Journal Papers(저널논문)
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