基于sdn的星地综合回程网络弹性改进业务工程

Fabian Mendoza, R. Ferrús, O. Sallent
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引用次数: 10

摘要

弹性和高可用性被认为是5G网络的基本要求。为了满足这些要求,在移动回程网络中集成卫星组件是一项引人注目的提议,它可以为关键小区站点提供备份连接,并从拥挤地区分流流量,以便在高峰时间补充地面链路的有限容量,甚至在全部/部分故障或维护的情况下进行替换。这对于可能需要快速部署网络容量的偏远/农村地区的公共保护和救灾(PPDR)通信以及在地面回程基础设施可能遭受破坏的贫困地区尤为重要。本文首先描述了一个架构框架,该框架能够将卫星容量作为基于软件定义网络(SDN)的流量工程移动回程网络的组成部分进行集成和管理。然后,提出了一个基于sdn的流量工程(TE)应用程序来管理一定数量的动态可控制的卫星容量,以提供弹性目的,以最大化地面链路在故障和非故障条件下的网络效用功能。给出了数值结果来评估所提出的TE应用程序的优势,并将其性能与传统的溢出解决方案进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SDN-based traffic engineering for improved resilience in integrated satellite-terrestrial backhaul networks
Resilience and high availability are considered as essential requirements in 5G networks. To fullfil these requirements, the integration of a satellite component within mobile backhaul networks arises as a compelling proposition to provide backup connectivity to critical cell sites and divert traffic from congested areas so that a limited capacity in their terrestrial links could be supplemented during peak-time or even replaced in case of total/partial failure or maintenance. This is especially of interest for public protection and disaster relief (PPDR) communications in remote/rural areas that might require the fast deployment of nework capacity as well as in distressed areas where the terrestrial backhaul infrastructure might have suffered damages. This paper first describes an architectural framework that enables the integration and management of the satellite capacity as a constituent part of a Software Defined Networking (SDN)-based traffic engineered mobile backhaul network. Then, a SDN-based Traffic Engineering (TE) application is proposed to manage some amount of dynamically steerable satellite capacity provisioned for resilience purposes to maximize a network utility function under both failure and non-failure conditions in the terrestrial links. Numerical results are presented to assess the benefits of the proposed TE application and its performance is compared to that of a traditional overflow solution.
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