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Stream: Decentralized opportunistic inter-coflow scheduling for datacenter networks

机译:流:用于数据中心网络的分散式机会同流调度

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Coflow scheduling can improve application-level communication performance for data-parallel clusters. However, most prior coflow scheduling schemes are based on the centralized approach, which achieve good performance but suffers from high control overhead and scalability issue. On the other hand, state of the art decentralized solution requires switch modification, which makes it hard to implement. In this paper, we present Stream, the decentralized and readilyimplementable solution for coflow scheduling. The key idea of Stream is to opportunistically take advantage of many-to-one and many-to-many coflow patterns to coordinate coflows without resorting to the centralized controller, and then emulate shortest coflow first scheduling to minimize the average coflow completion time (CCT). We implement Stream with existing commodity switches and show its performance using both testbed experiments and large-scale simulations. Our evaluation results show that Stream's performance is comparable to the centralized solution, and outperforms the state of the art decentralized scheme by 1.77x on average.
机译:同流调度可以提高数据并行集群的应用程序级通信性能。但是,大多数现有的同流调度方案都是基于集中式方法的,虽然实现了良好的性能,但存在较高的控制开销和可伸缩性问题。另一方面,现有技术的分散式解决方案需要对开关进行修改,这使其难以实施。在本文中,我们提出了Stream,这是一种用于coflow调度的分散且易于实现的解决方案。 Stream的关键思想是机会地利用多对一和多对多同流模式来协调同流,而无需借助集中控制器,然后模拟最短的同流优先调度以最小化平均同流完成时间(CCT) )。我们使用现有的商用交换机来实现Stream,并通过测试平台实验和大规模仿真来展示其性能。我们的评估结果表明,Stream的性能与集中式解决方案相当,并且平均比先进的分散方案高出1.77倍。

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