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Joint Two-Tier Network Function Parallelization on Multicore Platform

机译:多核平台上联合双层网络功能并行化

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As network function virtualization (NFV) is realized based on general-purpose processors for avoiding proprietary hardware, its benefits of flexibility and agility could be compromised by the increased packet latency and reduced throughput. An effective approach for improving the latency and throughput performance is to exploit new network function (NF) processing framework on general purpose processors. In this paper, we propose a new joint two-tier NF parallelization (TNP) framework, which can agilely and flexibly organize parallel NF processing to greatly improve the latency and throughput performance of service function chain (SFC) which is constituted by a set of NFs. In TNP, we jointly organize the parallelization of multiple NFs at the service tier and perform multicore mapping of individual NFs at the substrate network tier. We formulate the optimal TNP design problem as minimizing link bandwidth consumption subject to end-to-end latency and computing resource constraints. We solve the problem by decomposing it into two easier subproblems: 1) subproblem 1 (SP1) is to solve the optimal SFC parallelization graph design in conjunction with link mapping problem and 2) subproblem 2 (SP2) is to jointly solve computing resource allocation in conjunction with node mapping problem. The global optimal solution is accomplished by searching in a set of feasible regions in sequence. Numerical results demonstrate that our proposed TNP can significantly decrease service latency and improve network throughput compared with known single layer NF parallelization schemes. Moreover, the link bandwidth utilization and SFC request acceptance rate in the substrate network can also be greatly improved.
机译:随着网络功能虚拟化(NFV)是基于通用处理器实现的,用于避免专有硬件,灵活性和敏捷性的好处可能会受到增加的数据包延迟和降低吞吐量的影响。改善延迟和吞吐量性能的有效方法是利用通用处理器上的新网络功能(NF)处理框架。在本文中,我们提出了一种新的联合双层NF并行化(TNP)框架,它可以防止和灵活地组织并行NF处理,从而大大提高由一组构成的服务功能链(SFC)的延迟和吞吐量性能NFS。在TNP中,我们共同组织在服务层的多个NFS的并行化,并在基板网络层执行各个NFS的多核映射。我们制定最佳TNP设计问题,以最小化对端到端延迟和计算资源约束的链路带宽消耗。我们通过将其分解成两个更轻松的子问题:1)子问题1(SP1)是为了解决与链路映射问题的最佳SFC并行化图设计,2)子问题2(SP2)是共同解决计算资源分配与节点映射问题的结合。全局最佳解决方案是通过依次搜索一组可行的区域来实现的。数值结果表明,与已知的单层NF并行化方案相比,我们所提出的TNP可以显着降低服务延迟并提高网络吞吐量。此外,还可以大大提高基板网络中的链路带宽利用率和SFC请求接受率。

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