立交桥:一种具有成本效益和横向扩展的数据中心网络架构

Sheng Xu, Binzhang Fu, Mingyu Chen, Lixin Zhang
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引用次数: 1

摘要

Torus结构简单,可逐步扩展,可以完美地适应当前大规模计算系统(如数据中心)的向外扩展模型。然而,在不利方面,环面受到其长网络直径的影响。解决这个问题的一种方法是使用随机捷径。但是,这种方法没有考虑到数据中心流量的多样性,导致网络性能严重不均匀。为了解决这个问题,我们提出了Flyover,它利用光电路交换的灵活性来添加按需捷径,作为dcn的成本效益和扩展网络架构。以下三个特点保证了Flyover的良好性能。首先,优先定义了一个新的蛇形流,而不是象形流。与大象流不同,大象流的规模很大,而蛇流的规模和距离都很大。这样可以最大限度地缓解电环网的压力,优化网络的整体性能。其次,Flyover生成区域到区域的快捷方式,而不是点到点的快捷方式。因此,可以充分利用有价值的光捷径。第三,提出了一种半随机启发式算法,实现了减少计算时间和提高网络性能的双重优势。此外,讨论和评估了几种扩展Flyover的方法,以确保Flyover具有高度可扩展性。最后,利用仿真和原型对Flyover进行了广泛的分析和比较。结果表明,Flyover可以最大限度地提高135%的网络吞吐量和277%的延迟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flyover: A Cost-Efficient and Scale-Out Data Center Network Architecture
Torus, which is simple and incrementally expandable, could perfectly fit the scale-out model of current large scale computing systems, such as data centers. However, on the downside, torus suffers from its long network diameter. One way to address this problem is using random shortcuts. However, this approach does not consider the variety of data center traffic, and leads to severe non-uniform network performance. To address this problem, we propose the Flyover, which exploits the flexibility of optical circuit switching to add on-demand shortcuts, as a cost-efficient and scale-out network architecture for DCNs. The following three features guarantee Flyover a good performance. First, a new defined serpent flow instead of the elephant flow is prioritized. Unlike the elephant flow, which is big in size, the serpent flow is big in both size and distance. Through this, the electrical torus network could be maximally relieved and the overall network performance is optimized. Second, Flyover generates region-to-region instead of the point-to-point shortcuts. Therefore, the valuable optical shortcuts could be fully utilized. Third, a semi-random heuristic algorithm is proposed to achieve the advantages of both reducing computation time and improving network performance. Furthermore, several ways to expand Flyover are discussed and evaluated to make sure that Flyover is highly scalable. Finally, Flyover is extensively analyzed and compared with its counterparts using both simulations and prototypes. The results show that Flyover could maximally improve the network throughput by 135% and latency by 277%.
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