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Performance analysis of high-speed optical packet switching in high performance computing and datacentre networks

机译:高性能计算和数据中心网络中高速光分组交换的性能分析

摘要

The massive growth in datacentre traffic, due to a huge increase in the deployment of data-intensive applications, is forcing datacentre infrastructure to migrate away from conventional electronic packet-switched networks, where capacity scaling imposes significant financial and technical constraints, and to evolve towards more advanced architectures. Motivated by this, new optical switching technologies and networking architectures, capable of providing very large bandwidth capacity, high scalability, high switching speed and high energy efficiency, are being targeted for building next-generation high-performance datacentre and High Performance Computing (HPC) networks.udOptical packet switching technology is considered to be a long-term solution to meet these design challenges, as it can exploit fully the enormous potential capacity enabled by optics and support high switching flexibility at packet level.udIn this thesis, new wavelength-routed optical packet switching architectures, which exploit the functionalities of key optical switching components such as Tunable Wavelength Converters (TWCs), Arrayed Waveguide Gratings (AWGs) and Wavelength Selective Switches (WSSs), to realise all-optical switching, are proposed for use as next-generation datacentre and HPC networks. To maximise the efficiency of the proposed optical switching architecture, a dynamic bandwidth provisioning algorithm, which allocates switch resources to traffic demands based on application requirements, is developed to further enhance network flexibility, resource utilisation and network performance. Moreover, based on the proposed switch architectures, a large-scale high-performance datacentre network with flexible central control is modelled, with a view of determining the optimal network topology and traffic scheduling methods. This flexible network architecture employs a modular design and combines transparent optical packet switches, based on Arrayed Waveguide Grating (AWG) routers, and a hybrid congestion control scheme using recirculating Fibre Delay Lines (FDLs) along with novel packet retransmission schemes. The work carried out in this thesis indicates that the proposed network structure not only provides high scalability, capable of hosting hundreds of thousands of severs, but also delivers high bandwidth utilisation and network provisioning flexibility. The network offers a promising and viable networking solution to address current and future application needs in datacentre and HPC environments.
机译:由于数据密集型应用程序部署的大量增加,数据中心流量的大量增长,迫使数据中心基础架构从传统的电子分组交换网络迁移出去,在传统的电子分组交换网络中,容量扩展会带来严重的财务和技术约束,并朝着未来的方向发展更高级的架构。因此,能够提供超大带宽容量,高可扩展性,高交换速度和高能效的新型光交换技术和网络体系结构正成为构建下一代高性能数据中心和高性能计算(HPC)的目标。 ud光学分组交换技术被认为是解决这些设计挑战的长期解决方案,因为它可以充分利用光学器件带来的巨大潜在容量并支持分组级的高交换灵活性。 ud本文提出了新的波长建议使用路由光分组交换体系结构,该体系结构利用关键的光交换组件(例如可调波长转换器(TWC),阵列波导光栅(AWG)和波长选择开关(WSS))的功能来实现全光交换作为下一代数据中心和HPC网络。为了最大化所提出的光交换体系结构的效率,开发了一种动态带宽供应算法,该算法根据应用程序的需求将交换器资源分配给流量需求,以进一步提高网络灵活性,资源利用率和网络性能。此外,基于所提出的交换机体系结构,为确定最佳的网络拓扑和流量调度方法,对具有灵活中央控制的大规模高性能数据中心网络进行了建模。这种灵活的网络体系结构采用模块化设计,并结合了基于阵列波导光栅(AWG)路由器的透明光分组交换机和使用循环光纤延迟线(FDL)以及新型分组重传方案的混合拥塞控制方案。本文的工作表明,所提出的网络结构不仅具有很高的可扩展性,能够承载数十万个服务器,而且还具有很高的带宽利用率和网络配置灵活性。该网络提供了一种有前途且可行的网络解决方案,可满足数据中心和HPC环境中当前和将来的应用需求。

著录项

  • 作者

    Jingyan Wang;

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  • 年度 2016
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  • 原文格式 PDF
  • 正文语种 en
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