Managing NFV using SDN and control theory

Nabeel Akhtar, I. Matta, Yuefeng Wang
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引用次数: 8

Abstract

Control theory and SDN (Software Defined Networking) are key components for NFV (Network Function Virtualization) deployment. However little has been done to use a control-theoretic approach for SDN and NFV management. In this paper, we describe a use case for NFV management using control theory and SDN. We use the management architecture of RINA (a clean-slate Recursive InterNetwork Architecture) to manage Virtual Network Function (VNF) instances over the GENI testbed. We deploy Snort, an Intrusion Detection System (IDS) as the VNF. Our network topology has source and destination hosts, multiple IDSes, an Open vSwitch (OVS) and an OpenFlow controller. A distributed management application running on RINA measures the state of the VNF instances and communicates this information to a Proportional Integral (PI) controller, which then provides load balancing information to the OpenFlow controller. The latter controller in turn updates traffic flow forwarding rules on the OVS switch, thus balancing load across the VNF instances. This paper demonstrates the benefits of using such a control-theoretic load balancing approach and the RINA management architecture in virtualized environments for NFV management. It also illustrates that GENI can easily support a wide range of SDN and NFV related experiments.
使用SDN和控制理论管理NFV
控制理论和软件定义网络(SDN)是网络功能虚拟化(NFV)部署的关键组成部分。然而,在SDN和NFV管理中使用控制理论方法的研究很少。在本文中,我们描述了一个使用控制理论和SDN的NFV管理用例。我们使用RINA(一种全新的递归网络架构)的管理架构来管理GENI测试平台上的虚拟网络功能(VNF)实例。我们部署Snort,一种入侵检测系统(IDS)作为VNF。我们的网络拓扑有源主机和目标主机、多个ids、一个Open vSwitch (OVS)和一个OpenFlow控制器。运行在RINA上的分布式管理应用程序测量VNF实例的状态,并将此信息传递给比例积分(PI)控制器,该控制器随后向OpenFlow控制器提供负载平衡信息。OVS控制器负责更新OVS交换机上的流量转发规则,从而实现VNF实例间的负载均衡。本文演示了在NFV管理的虚拟化环境中使用这种控制理论负载平衡方法和RINA管理体系结构的好处。这也说明了GENI可以很容易地支持广泛的SDN和NFV相关实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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