Document details

ATM call control by neural networks

Author(s): Neves, Joaquim E. cv logo 1 ; Almeida, Luís B. cv logo 2 ; Leitão, Mário J. cv logo 3

Date: 1993

Persistent ID: http://hdl.handle.net/1822/2174

Origin: RepositóriUM - Universidade do Minho

Subject(s): ATM call control; Traffic prediction


Description
The resource allocation in the Broadband Integrated Services Digital Network (B-ISDN) must guarantee the quality of service negotiated with new and existing calls, taking into account the Asynchronous Transfer Mode (ATM) statistical characteristics. A quality of operation function, characterizing the overall network performance, is proposed, and based on this function, it is introduced a new strategy for the admission control and routing of the ATM call connections. As it is shown by simulation results, feedforword Neural Networks trained with the backpropagation algorithm, can learn the traffic patterns in previous traffic situations, and can be used to predict the quality of operation changes caused by each new call.
Document Type Conference Object
Language English
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Fundação para a Ciência e a Tecnologia Universidade do Minho   Governo Português Ministério da Educação e Ciência Programa Operacional da Sociedade do Conhecimento EU