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Interconnection Networks in Petascale Computer Systems: A Survey

机译:Petascale计算机系统中的互连网络:一项调查

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This article provides background information about interconnection networks, an analysis of previous developments, and an overview of the state of the art. The main contribution of this article is to highlight the importance of the interpolation and extrapolation of technological changes and physical constraints in order to predict the optimum future interconnection network. The technological changes are related to three of the most important attributes of interconnection networks: topology, routing, and flow-control algorithms. On the other hand, the physical constraints, that is, port counts, number of communication nodes, and communication speed, determine the realistic properties of the network. We present the state-of-the-art technology for the most commonly used interconnection networks and some background related to often-used network topologies. The interconnection networks of the best-performing petascale parallel computers from past and present Top500 lists are analyzed. The lessons learned from this analysis indicate that computer networks need better performance in future exascale computers. Such an approach leads to the conclusion that a high-radix topology with optical connections for longer links is set to become the optimum interconnect for a number of relevant application domains.
机译:本文提供有关互连网络的背景信息,对以前的发展的分析以及最新技术的概述。本文的主要贡献是强调技术变化和物理约束的内插和外推的重要性,以预测最佳的未来互连网络。技术变化与互连网络的三个最重要属性有关:拓扑,路由和流控制算法。另一方面,物理限制(即端口数,通信节点数和通信速度)决定了网络的实际属性。我们介绍了最常用的互连网络的最新技术以及与常用网络拓扑相关的一些背景知识。分析了过去和现在的Top500列表中性能最佳的千万亿次并行计算机的互连网络。从该分析中学到的经验教训表明,计算机网络在未来的百亿亿次计算机中需要更好的性能。这种方法得出的结论是,具有用于较长链路的光连接的高基数拓扑被设置为成为多个相关应用程序域的最佳互连。

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