Applying Multidimensional Geometry to Basic Data Centre Designs

P. Roig, S. Alcaraz, K. Gilly, C. Juiz
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引用次数: 1

Abstract

Fog computing deployments are catching up by the day due to their advantages on latency and bandwidth compared to cloud implementations. Furthermore, the number of required hosts is usually far smaller, and so are the amount of switches needed to make the interconnections among them. In this paper, an approach based on multidimensional geometry is proposed for building up basic switching architectures for Data Centres, in a way that the most common convex regular N-polytopes are first introduced, where N is treated in an incremental manner in order to reach a generic high-dimensional N, and in turn, those resulting shapes are associated with their corresponding switching topologies. This way, N-simplex is related to a full mesh pattern, N-orthoplex is linked to a quasi full mesh structure and N-hypercube is referred to as a certain type of partial mesh layout. In each of those three contexts, a model is to be built up, where switches are first identified, afterwards, their downlink ports leading to the end hosts are exposed, along with those host identifiers, as well as their uplink ports leading to their neighboring switches, and eventually, a pseudocode algorithm is designed, exposing how a packet coming in from any given port of a switch is to be forwarded through the proper outgoing port on its way to the destination host by using the appropriate arithmetic expressions in each particular case. Therefore, all those algorithmic models represent how their corresponding switches may work when dealing with user data traffic within a Data Centre, guiding it towards its destination.
多维几何在基本数据中心设计中的应用
与云实现相比,雾计算部署由于其在延迟和带宽方面的优势正在迎头赶上。此外,所需的主机数量通常要少得多,在它们之间进行互连所需的交换机数量也要少得多。在本文中,提出了一种基于多维几何的方法来构建数据中心的基本交换体系结构,首先引入了最常见的凸规则N-多面体,其中N以增量方式处理,以达到一般的高维N,反过来,这些生成的形状与其相应的交换拓扑相关联。通过这种方式,n -单纯形与全网格模式相关,n -正交形与准全网格结构相关,n -超立方体被称为某种类型的部分网格布局。在这三种情况下,都要建立一个模型,首先识别交换机,然后,它们通向终端主机的下行端口,以及这些主机标识符,以及它们通向相邻交换机的上行端口,最后,设计一个伪代码算法,通过在每种特定情况下使用适当的算术表达式,公开从交换机的任何给定端口进入的数据包如何在其到达目标主机的途中通过适当的出端口转发。因此,所有这些算法模型都代表了它们对应的交换机在处理数据中心内的用户数据流量时如何工作,并将其引导到目的地。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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