A Node-Regulated Deflection Routing Framework for Contention Minimization

Optical Burst Switching (OBS) paradigm coupled with Dense Wavelength Division Multiplexing (DWDM) has become a practical candidate solution for the next-generation optical backbone networks. In its practical deployment only the edge nodes are provisioned with buffering capabilities, whereas all inte...

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Main Authors: Bakhe Nleya, Andrew Mutsvangwa
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Journal of Computer Networks and Communications
Online Access:http://dx.doi.org/10.1155/2020/2708357
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spelling doaj-878343a298ac4ee9a7d4e8a393770d912020-11-25T03:14:56ZengHindawi LimitedJournal of Computer Networks and Communications2090-71412090-715X2020-01-01202010.1155/2020/27083572708357A Node-Regulated Deflection Routing Framework for Contention MinimizationBakhe Nleya0Andrew Mutsvangwa1Department of Electronic Engineering, DUT, Durban 4001, South AfricaFaculty of Education, NWU, Potchefstroom, South AfricaOptical Burst Switching (OBS) paradigm coupled with Dense Wavelength Division Multiplexing (DWDM) has become a practical candidate solution for the next-generation optical backbone networks. In its practical deployment only the edge nodes are provisioned with buffering capabilities, whereas all interior (core) nodes remain buffer-less. In that way the implementation becomes quite simple as well as cost effective as there will be no need for optical buffers in the interior. However, the buffer-less nature of the interior nodes makes such networks prone to data burst contention occurrences that lead to a degradation in overall network performance as a result of sporadic heavy burst losses. Such drawbacks can be partly countered by appropriately dimensioning available network resources and reactively by way of deflecting excess as well as contending data bursts to available least-cost alternate paths. However, the deflected data bursts (traffic) must not cause network performance degradations in the deflection routes. Because minimizing contention occurrences is key to provisioning a consistent Quality of Service (QoS), we therefore in this paper propose and analyze a framework (scheme) that seeks to intelligently deflect traffic in the core network such that QoS degradations caused by contention occurrences are minimized. This is by way of regulated deflection routing (rDr) in which neural network agents are utilized in reinforcing the deflection route choices at core nodes. The framework primarily relies on both reactive and proactive regulated deflection routing approaches in order to prevent or resolve data burst contentions. Simulation results show that the scheme does effectively improve overall network performance when compared with existing contention resolution approaches. Notably, the scheme minimizes burst losses, end-to-end delays, frequency of contention occurrences, and burst deflections.http://dx.doi.org/10.1155/2020/2708357
collection DOAJ
language English
format Article
sources DOAJ
author Bakhe Nleya
Andrew Mutsvangwa
spellingShingle Bakhe Nleya
Andrew Mutsvangwa
A Node-Regulated Deflection Routing Framework for Contention Minimization
Journal of Computer Networks and Communications
author_facet Bakhe Nleya
Andrew Mutsvangwa
author_sort Bakhe Nleya
title A Node-Regulated Deflection Routing Framework for Contention Minimization
title_short A Node-Regulated Deflection Routing Framework for Contention Minimization
title_full A Node-Regulated Deflection Routing Framework for Contention Minimization
title_fullStr A Node-Regulated Deflection Routing Framework for Contention Minimization
title_full_unstemmed A Node-Regulated Deflection Routing Framework for Contention Minimization
title_sort node-regulated deflection routing framework for contention minimization
publisher Hindawi Limited
series Journal of Computer Networks and Communications
issn 2090-7141
2090-715X
publishDate 2020-01-01
description Optical Burst Switching (OBS) paradigm coupled with Dense Wavelength Division Multiplexing (DWDM) has become a practical candidate solution for the next-generation optical backbone networks. In its practical deployment only the edge nodes are provisioned with buffering capabilities, whereas all interior (core) nodes remain buffer-less. In that way the implementation becomes quite simple as well as cost effective as there will be no need for optical buffers in the interior. However, the buffer-less nature of the interior nodes makes such networks prone to data burst contention occurrences that lead to a degradation in overall network performance as a result of sporadic heavy burst losses. Such drawbacks can be partly countered by appropriately dimensioning available network resources and reactively by way of deflecting excess as well as contending data bursts to available least-cost alternate paths. However, the deflected data bursts (traffic) must not cause network performance degradations in the deflection routes. Because minimizing contention occurrences is key to provisioning a consistent Quality of Service (QoS), we therefore in this paper propose and analyze a framework (scheme) that seeks to intelligently deflect traffic in the core network such that QoS degradations caused by contention occurrences are minimized. This is by way of regulated deflection routing (rDr) in which neural network agents are utilized in reinforcing the deflection route choices at core nodes. The framework primarily relies on both reactive and proactive regulated deflection routing approaches in order to prevent or resolve data burst contentions. Simulation results show that the scheme does effectively improve overall network performance when compared with existing contention resolution approaches. Notably, the scheme minimizes burst losses, end-to-end delays, frequency of contention occurrences, and burst deflections.
url http://dx.doi.org/10.1155/2020/2708357
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