High-performance flat data center network architecture based on scalable and flow-controlled optical switching system

SPIE OPTO Pub Date : 2016-03-15 DOI:10.1117/12.2205231
N. Calabretta, W. Miao, H. Dorren
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引用次数: 1

Abstract

Traffic in data centers networks (DCNs) is steadily growing to support various applications and virtualization technologies. Multi-tenancy enabling efficient resource utilization is considered as a key requirement for the next generation DCs resulting from the growing demands for services and applications. Virtualization mechanisms and technologies can leverage statistical multiplexing and fast switch reconfiguration to further extend the DC efficiency and agility. We present a novel high performance flat DCN employing bufferless and distributed fast (sub-microsecond) optical switches with wavelength, space, and time switching operation. The fast optical switches can enhance the performance of the DCNs by providing large-capacity switching capability and efficiently sharing the data plane resources by exploiting statistical multiplexing. Benefiting from the Software-Defined Networking (SDN) control of the optical switches, virtual DCNs can be flexibly created and reconfigured by the DCN provider. Numerical and experimental investigations of the DCN based on the fast optical switches show the successful setup of virtual network slices for intra-data center interconnections. Experimental results to assess the DCN performance in terms of latency and packet loss show less than 10^-5 packet loss and 640ns end-to-end latency with 0.4 load and 16- packet size buffer. Numerical investigation on the performance of the systems when the port number of the optical switch is scaled to 32x32 system indicate that more than 1000 ToRs each with Terabit/s interface can be interconnected providing a Petabit/s capacity. The roadmap to photonic integration of large port optical switches will be also presented.
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基于可扩展流控光交换系统的高性能扁平数据中心网络架构
为了支持各种应用程序和虚拟化技术,数据中心网络(dcn)中的流量正在稳步增长。由于对服务和应用程序的需求不断增长,支持高效资源利用的多租户被认为是下一代数据中心的关键需求。虚拟化机制和技术可以利用统计复用和快速交换机重新配置来进一步扩展数据中心的效率和敏捷性。我们提出了一种新型的高性能平面DCN,采用无缓冲和分布式快速(亚微秒)光开关,具有波长,空间和时间切换操作。快速光交换机可以提供大容量交换能力,并利用统计复用技术有效地共享数据平面资源,从而提高DCNs的性能。得益于光交换机的SDN (Software-Defined Networking)控制,DCN提供商可以灵活地创建和重新配置虚拟DCN。对基于快速光交换的DCN进行了数值和实验研究,成功地建立了用于数据中心内互连的虚拟网络切片。从延迟和丢包方面评估DCN性能的实验结果表明,在0.4负载和16包大小的缓冲区下,丢包量小于10^-5,端到端延迟小于640ns。通过对光交换端口号扩展到32x32系统时系统性能的数值研究表明,可以实现1000多个具有tb /s接口的tor互连,提供Petabit/s容量。并提出了大端口光交换机光子集成的发展路线。
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