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IPro: An approach for intelligent SDN monitoring

机译:IPro:一种用于智能SDN监视的方法

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Traffic Monitoring assists in achieving network stability by observing and quantifying its behavior. A proper traffic monitoring solution requires the accurate and timely collection of flow statistics. Many approaches have been proposed to monitor Software-Defined Networks. However, these approaches have some disadvantages. First, they are unconcerned about the trade-offbetween probing interval and Monitoring Accuracy (MA). Second, they lack intelligent mechanisms intended to optimize this trade-offby learning from network behavior. This paper introduces an approach, called IPro, to address these shortcomings. Our approach comprises an architecture based on the Knowledge-Defined Networking paradigm, an algorithm based on Reinforcement Learning, and an IPro prototype. In particular, IPro uses Reinforcement Learning to determine the probing interval that keeps Control Channel Overhead (CCO) and the Extra CPU Usage of the Controller (CUC) within thresholds. An extensive quantitative evaluation corroborates that IPro is an efficient approach for SDN Monitoring regarding CCO, CCU, and MA. (C) 2020 Published by Elsevier B.V.
机译:流量监控通过观察和量化其行为来帮助实现网络稳定性。正确的流量监控解决方案需要准确,及时地收集流量统计信息。已经提出了许多方法来监视软件定义的网络。但是,这些方法有一些缺点。首先,他们不关心探测间隔和监视精度(MA)之间的折衷。其次,它们缺乏旨在通过从网络行为中学习来优化此折衷的智能机制。本文介绍了一种称为IPro的方法来解决这些缺点。我们的方法包括基于知识定义网络范例的体系结构,基于强化学习的算法和IPro原型。特别是,IPro使用强化学习来确定使控制通道开销(CCO)和控制器的额外CPU使用率(CUC)保持在阈值内的探测间隔。广泛的定量评估证实了IPro是有关CCO,CCU和MA的SDN监视的有效方法。 (C)2020由Elsevier B.V.发布

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