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Dynamic Network Function Instance Scaling Based on Traffic Forecasting and VNF Placement in Operator Data Centers

机译:运营商数据中心基于流量预测和VNF放置的动态网络功能实例扩展

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摘要

Traffic in operator networks is time varying. Conventional network functions implemented by black-boxes should satisfy the peak traffic requirement, and hence result in low resource utilization. Thanks to the emergence of Virtual Network Function (VNF), which is realized by running networking software on Virtual Machines (VMs), the operator can dynamically scale in or scale out the VNF instances and hence save the required resources. In this paper, we introduce how the dynamic VNF scaling is implemented in practical operator Data Center Networks (DCNs). First, we analyze the traffic characteristics in our operator networks, and introduce how the VNFs are organized in a common operator DCN. Based on these backgrounds, we not only propose a traffic forecasting method, but also design two VNF placement algorithms to guide the dynamic VNF instance scaling. Through both the implementation in a real operator network and extensive real trace driven simulations, we demonstrate that our dynamic VNF instance scaling system can achieve higher service availability and save the VNF resources (e.g., CPU and memory) by up to 30 percent.
机译:运营商网络中的流量随时间变化。由黑匣子实现的常规网络功能应满足峰值流量需求,因此导致资源利用率低。由于虚拟网络功能(VNF)的出现(通过在虚拟机(VM)上运行联网软件来实现),操作员可以动态扩展或扩展VNF实例,从而节省所需的资源。在本文中,我们介绍了如何在实际的运营商数据中心网络(DCN)中实现动态VNF缩放。首先,我们分析运营商网络中的流量特性,并介绍如何在通用运营商DCN中组织VNF。基于这些背景,我们不仅提出了流量预测方法,还设计了两种VNF布局算法来指导动态VNF实例缩放。通过在实际运营商网络中的实施以及广泛的实际跟踪驱动的仿真,我们证明了我们的动态VNF实例扩展系统可以实现更高的服务可用性,并节省多达30%的VNF资源(例如,CPU和内存)。

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