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Joint Workload Distribution and Capacity Augmentation in Hybrid Datacenter Networks

机译:混合数据中心网络中的联合工作量分布和容量增强

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In hybrid datacenter networks, wired connections are augmented with wireless links to facilitate data transfers between racks. The usage of mmWave/FSO wireless links enables dynamic bandwidth/capacity allocation with extremely small reconfiguration delay. Also, on-demand workload distribution, where the workload of a job is divided into multiple tasks that can be distributed/routed to different racks to be processed in parallel, allows better utilization of computational resources in data centers. In prior work, the dynamic wireless capacity augmentation and workload distribution decisions were mostly made independently and in a heuristic manner for serving distributed and parallel computing jobs. In this paper, we propose a novel analytical framework and algorithms to jointly optimize both the wireless capacity augmentation and the workload distribution, to minimize the job completion time. We consider workload that is not amenable to pipelining, fully amenable to pipelining, and partially amenable to pipelining. With extensive simulation studies, we show that the gain (in terms of the reduction in the job completion time) can be very substantial when allowing such joint optimization.
机译:在混合数据中心网络中,有线连接使用无线链路增强,以促进机架之间的数据传输。 MMWAVE / FSO无线链路的使用使得具有极小的重新配置延迟的动态带宽/容量分配。此外,按需工作负载分布,其中作业的工作量被分成多个任务,该任务可以分布到要并行处理的不同机架,允许更好地利用数据中心中的计算资源。在现有工作中,动态无线容量增强和工作负载分布决策主要是独立的,并且以服务于分布式和并行计算作业的启发式方式。在本文中,我们提出了一种新颖的分析框架和算法,共同优化无线容量增强和工作负载分布,以最小化工作完成时间。我们考虑工作负载,不适合流水线,完全适合流水线,并部分适用于流水线。通过广泛的仿真研究,我们表明,在允许这种联合优化时,增益(在工作完成时间的减少)可能是非常重要的。

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