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Dynamic fractional resource scheduling for HPC workloads

机译:HPC工作负载的动态部分资源调度

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摘要

We propose a novel job scheduling approach for homogeneous cluster computing platforms. Its key feature is the use of virtual machine technology for sharing resources in a precise and controlled manner. We justify our approach and propose several job scheduling algorithms. We present results obtained in simulations for synthetic and real-world High Performance Computing (HPC) workloads, in which we compare our proposed algorithms with standard batch scheduling algorithms. We find that our approach widely outperforms batch scheduling. We also identify a few promising algorithms that perform well across most experimental scenarios. Our results demonstrate that virtualization technology coupled with lightweight scheduling strategies affords dramatic improvements in performance for HPC workloads.
机译:我们为同类集群计算平台提出了一种新颖的作业调度方法。它的关键功能是使用虚拟机技术以精确和受控的方式共享资源。我们证明我们的方法是合理的,并提出了几种作业调度算法。我们介绍了在合成和现实世界中高性能计算(HPC)工作负载的仿真中获得的结果,在这些结果中,我们将我们提出的算法与标准批处理调度算法进行了比较。我们发现我们的方法大大优于批处理调度。我们还确定了一些有希望的算法,它们在大多数实验场景中都能很好地发挥作用。我们的结果表明,虚拟化技术与轻量级调度策略相结合,可显着提高HPC工作负载的性能。

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