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On Data Center Network Architectures for Interconnecting Dual-Port Servers

机译:关于用于互连双端口服务器的数据中心网络体系结构

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摘要

During the past decade, various novel data center network (DCN) architectures have been proposed to meet various requirements of large scale data centers. In existing works that consider server-centric DCN architectures, the lengths of a server-to-server-direct hop and a server-to-server-via-a-switch hop are assumed to be equal. We propose the concept of Normalized Switch Delay (NSD) to distinguish a server-to-server-direct hop and a server-to-server-via-a-switch hop, to unify the design and analysis of server-centric DCN architectures for interconnecting servers with two network interface cards. In , the authors claim that BCN is the largest known architecture to interconnect dual-port servers, with diameter 7, given a switch port number. We notice that the existing DPillar architecture accommodates more servers than BCN does under the same configurations. Motivated by this fact, we consider a fundamental problem: maximizing the number of dual-port servers, given network diameter and switch port number; and give an upper bound on this maximum number. Then, we propose three novel architectures that try to achieve this upper bound: SWCube, SWKautz, and SWdBruijn, based on the generalized hypercube, Kautz graph, and de Bruijn graph, respectively. The number of servers that SWCube can accommodate is comparable to that of DPillar. The number of servers that SWKautz and SWdBruijn can accommodate is generally greater than that of DPillar. Compared with three existing architectures, the three proposed architectures, SWCube, SWKautz and SWdBruijn demonstrate various advantages. Analysis and simulations on the newly proposed architectures also show that they have nice properties for DCNs, such as low diameter, high bisection width, good fault-tolerance, and the capability of efficiently handling network congestion.
机译:在过去的十年中,已经提出了各种新颖的数据中心网络(DCN)架构来满足大型数据中心的各种要求。在考虑了以服务器为中心的DCN架构的现有工作中,服务器到服务器直接跃点和服务器到服务器通过交换机跃点的长度被假定为相等。我们提出了标准化交换延迟(NSD)的概念,以区分服务器到服务器的直接跳和服务器到服务器的通过交换机的跳,从而统一了以服务器为中心的DCN架构的设计和分析,用两个网络接口卡将服务器互连。在中,作者声称BCN是互连直径为7(给定交换机端口号)的双端口服务器互连的最大已知体系结构。我们注意到,在相同的配置下,现有的DPillar体系结构比BCN可以容纳更多的服务器。出于这一事实,我们考虑了一个基本问题:在给定网络直径和交换机端口号的情况下,最大化双端口服务器的数量;并给出此最大数字的上限。然后,我们分别基于广义超立方体,Kautz图和de Bruijn图,提出了三种尝试达到此上限的新颖体系结构:SWCube,SWKautz和SWdBruijn。 SWCube可以容纳的服务器数量与DPillar相当。 SWKautz和SWdBruijn可以容纳的服务器数量通常大于DPillar。与现有的三种体系结构相比,三种提议的体系结构SWCube,SWKautz和SWdBruijn表现出各种优势。对新提出的体系结构的分析和仿真还表明,它们对于DCN具有良好的性能,例如小直径,高二等分宽度,良好的容错能力以及有效处理网络拥塞的能力。

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