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Understanding the bottlenecks in virtualizing cellular core network functions

机译:了解虚拟化蜂窝核心网络功能的瓶颈

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Network function virtualization (NFV) promises significant cost savings, flexibility and ease of deployment. However, potential challenges in implementing virtualized network elements that can support real-world performance requirements are still an open question. For example, traditional telecom networks have a lot of complex interdependencies that can affect performance. In this paper, we study the potential bottlenecks in virtualizing cellular core network functions. Using a combination of analysis and experimentation, we quantify the impact of software-based EPC elements on various metrics including physical processing, memory, IO, and bandwidth resource requirements. We use production grade, software-based cellular network elements running on general purpose Linux servers, driven by a variety of realistic workloads derived from a realworld cellular network, to examine the combined effects of control and data planes on an LTE enhanced packet core (EPC). In particular, we discover that the SGW handles about 33% of the control plane transactions and is a potential source for performance bottlenecks as a result of the interdependencies between control and data plane processing. Our results indicate that simply replacing existing EPC elements with virtualized equivalents can have severe performance bottlenecks and that virtualized EPC elements need to be carefully designed.
机译:网络功能虚拟化(NFV)承诺显着的成本节约,灵活性和易于部署。然而,实现可以支持真实世界性能要求的虚拟化网络元素的潜在挑战仍然是一个开放的问题。例如,传统电信网络具有很多可能影响性能的复杂相互依赖性。在本文中,我们研究了虚拟化蜂窝核心网络功能的潜在瓶颈。使用分析和实验的组合,我们量化了基于软件的EPC元素对各种度量的影响,包括物理处理,内存,IO和带宽资源要求。我们使用在通用Linux服务器上运行的生产级,基于软件的蜂窝网络元件,由来自RealWorld蜂窝网络的各种现实工作负载驱动,检查控制和数据平面对LTE增强分组核心的组合效果(EPC )。特别是,我们发现SGW处理约33%的控制平面事务,并且是由于控制和数据平面处理之间的相互依存性的性能瓶颈的潜在来源。我们的结果表明,只需用虚拟化等价物更换现有的EPC元素,可以具有严重的性能瓶颈,并且需要精心设计虚拟化的EPC元素。

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