利用 NS3 网络功能虚拟化 (NFV) 技术虚拟化 4G 演进分组核心网,用于企业和教育目的

Tonye Emmanuel, Deussom Djomadji Eric Michel, Ebai Oben Brolynes Agbor
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摘要

目前,许多运营商的网络采用了越来越多的专用、垂直整合和供应商锁定的硬件设备。这就很难轻松地扩展其无线接入和核心网络,因为这需要另一种设备,从而导致上市时间延长和资源利用效率低下。此外,网络设备的采购和升级成本高昂(增加了 CAPEX),而且难以针对新服务进行调整和编程(增加了 OPEX)。最近,这些趋势促使人们努力重新设计移动网络的各种组件,特别是 4G 演进分组核心网(EPC)。为此,本研究提出了一种基于网络功能虚拟化(NFV)的解决方案,可用于教育或企业目的,如数据中心或具有细粒度 QoS 的网络节点,同时保持虚拟化网络功能实体的可扩展性和最佳资源利用率。实际工作开发的移动网络模拟模块以 4G 核心网络为中心,包括其主要组成部分:MME、SGW 和 PGW(vEPC),以及这些实体之间的联网、核心网络相关方面,如与增强型无线接入网(E-UTRAN)和分组数据网络服务(互联网)之间的互动。该解决方案为核心网工程师和 EPC 网络代理提供了设计、分析和测试各种类型网络场景的可能性。该解决方案还可集成到工程学校和学院的实验室实践工作或任何电子实验室计划中,让学生在虚拟环境中分析信令、修改网络配置并更好地理解课程中教授的一些理论概念。在网络的最终部署阶段,本工作所获得的结果可为运营商网络工程师的全面生产提供极大帮助,或提高学术领域对核心网络的工程理解。有鉴于此,该网络可以很容易地进行扩展,在商业化服务的时间内进行虚拟调整,以减少运营商或企业的解决方案,或在电子实验室中进行测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Virtualization of a 4G Evolved Packet Core Network Using Network Function Virtualization (NFV) Technology with NS3 for Enterprise and Educational Purpose
The current networks of many operators dispose an increasing variety of purpose built, vertically integrated, and vendor-locked hardware equipment. This makes it difficult to easily scale their radio access and core networks as it requires yet another variety of equipment, leading to increased Time-to-Market and inefficient resource utilization. Furthermore, network equipment are expensive to procure and upgrade (increased CAPEX), and are difficult to adapt and program for new services (increased OPEX). These trends have recently spurred several efforts to redesign various components of mobile networks, notably the 4G Evolved Packet Core (EPC). With regards to this, the present work proposes a solution based on Network Function Virtualization (NFV), which can be deployed for educational or enterprises purpose like in Data Centers, or network nodes with a fine-grained QoS, while maintaining the scalability of the virtualized network function entities, and optimum resource utilization. The actual work develops a mobile network simulation module centered on the 4G Core network comprising its major components; MME, SGW, and PGW (vEPC), as well as the networking amongst these entities, core network related aspects such as its interaction with the Enhanced Radio Access Network (E-UTRAN) and the Packet Data Network Services (Internet). This solution gives to core network engineers and EPC network agents the possibility to design, analyze and test variable types of network scenarios. The solution can be also integrated in engineering schools and college for labs’ practical work or to any e-laboratory initiative to allow students in virtual environment to analyze signaling, modify the network configuration and better understand some theoretical concepts taught during the courses. The results obtained from the present work can be of great help during the final deployment phase of the network for full production for engineers of carriers’ network or improve the engineering understanding of core network in academic domain. In this light, the network can easily be scaled, adjust virtually for the time to commercialize a service reduced for carrier or enterprises’ solutions or for testing in e-laboratories.
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