2016
DOI: 10.1364/jocn.9.000a35
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Virtual Network Topology Adaptability Based on Data Analytics for Traffic Prediction

Abstract: Abstract-The introduction of new services requiring large and dynamic bitrate connectivity can cause changes in the direction of the traffic in metro and even core network segments along the day. This leads to large overprovisioning in statically managed virtual network topologies (VNT), designed to cope with the traffic forecast. To reduce expenses while ensuring the required grade of service, in this paper we propose the VNT reconfiguration approach based on data analytics for traffic prediction (VENTURE); i… Show more

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Cited by 109 publications
(72 citation statements)
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References 11 publications
(11 reference statements)
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“…Once these models are available, the VENTURE problem is executed at regular intervals (e.g. hourly) to adapt the VNT to the future traffic conditions [5].…”
Section: Core Od Traffic Predictionmentioning
confidence: 99%
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“…Once these models are available, the VENTURE problem is executed at regular intervals (e.g. hourly) to adapt the VNT to the future traffic conditions [5].…”
Section: Core Od Traffic Predictionmentioning
confidence: 99%
“…Limiting the model evaluation to the mean and the variance as presented in Table II discards other interesting estimations such as the maximum bitrate, important to re-optimize the VNT [5]. Although this estimation is not directly provided by the algorithm, we can obtain it in a later stage by applying results from probability theory involving μ and σ 2 .…”
Section: B Od Pair Traffic Modellingmentioning
confidence: 99%
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