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A Disaggregated Packet Processing Architecture for Network Function Virtualization

机译:用于网络功能虚拟化的分组数据包处理架构

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Network Function Virtualization (NFV) promises to reduce the capital and operational expenditure for network operators by moving packet processing from purpose-built hardware to software running on commodity servers. However, the state-of-the-art in NFV is merely replacing monolithic hardware with monolithic Virtual Network Functions (VNFs), i.e., software that realizes different network functions. This is a good first step towards transitioning to NFV, however, common functionality is repeatedly implemented in monolithic VNFs. Repeated execution of such redundant functionality is particularly common when VNFs are chained to realize Service Function Chains (SFCs) and results in wasted infrastructure resources. This stresses the need for re-architecting the NFV ecosystem, through modular VNF design and flexible service composition. From this perspective, we propose MicroNF (mu NF in short), a disaggregated packet processing architecture facilitating the deployment of VNFs and SFCs using reusable, loosely-coupled, and independently deployable components. We have implemented the proposed system, including the different architecture components and optimizations for improving packet processing throughput and latency. Extensive experiments on a testbed demonstrate that: (i) compared to monolithic VNF based SFCs, those composed of mu NFs achieve the same packet processing throughput while using less CPU cycles per packet on average; and (ii) mu NF-based SFCs can sustain the same packet processing throughput as those based on state-of-the-art run-to-completion VNF architecture while using lesser number of CPU cores.
机译:网络功能虚拟化(NFV)承诺通过将数据包处理从专用硬件移动到商品服务器上运行的软件,减少网络运营商的资本和运营支出。然而,NFV中的最先进的是用单片虚拟网络功能(VNFS),即实现不同网络功能的软件来替换单片硬件。这是一个促进到NFV转换的良好第一步,但是,在单片VNF中反复实现常见功能。当链接VNF以实现服务功能链(SFC)并导致浪费基础设施资源时,重复执行这种冗余功能特别常见。这强调了通过模块化VNF设计和灵活的服务组合来重新构建NFV生态系统的需求。从这个角度来看,我们提出了微米(简称MU NF),一个分类的分组处理架构,促进了使用可重用,松散耦合和可独立可展开的组件进行VNF和SFC的部署。我们已经实现了所提出的系统,包括不同的架构组件和优化,用于提高数据包处理吞吐量和延迟。在测试平台上进行广泛的实验表明:(i)与基于单片VNF的SFC相比,由MU NFS组成的那些,同时使用平均数据包使用较少的CPU周期来实现相同的数据包处理吞吐量; (ii)基于NF的SFC可以维持与使用较少数量的CPU内核的基于最先进的运行完成VNF体系结构相同的分组处理吞吐量。

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