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reMinMin: A novel static energy-centric list scheduling approach based on real measurements

机译:reMinMin:一种基于实际测量的新颖的以静态能量为中心的列表调度方法

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Heterogeneous compute nodes in form of CPUs with attached GPU and FPGA accelerators have strongly gained interested in the last years. Applications differ in their execution characteristics and can therefore benefit from such heterogeneous resources in terms of performance or energy consumption. While performance optimization has been the only goal for a long time, nowadays research is more and more focusing on techniques to minimize energy consumption due to rising electricity costs. This paper presents reMinMin, a novel static list scheduling approach for optimizing the total energy consumption for a set of tasks executed on a heterogeneous compute node. reMinMin bases on a new energy model that differentiates between static and dynamic energy components and covers effects of accelerator tasks on the host CPU. The required energy values are retrieved by measurements on the real computing system. In order to evaluate reMinMin, we compare it with two reference implementations on three task sets with different degrees of heterogeneity. In our experiments, MinMin is consistently better than a scheduler optimizing for dynamic energy only, which requires up to 19.43% more energy, and very close to optimal schedules.
机译:在过去的几年中,带有连接的GPU和FPGA加速器的CPU形式的异构计算节点引起了人们的极大兴趣。应用程序的执行特征不同,因此可以从性能或能耗方面受益于此类异构资源。尽管长期以来,性能优化一直是唯一的目标,但如今的研究越来越关注于将因电费上涨而导致的能耗降至最低的技术。本文介绍了reMinMin,这是一种新颖的静态列表调度方法,用于优化在异构计算节点上执行的一组任务的总能耗。 reMinMin基于新的能源模型,该模型可以区分静态和动态能源成分,并涵盖加速器任务对主机CPU的影响。通过在实际计算系统上的测量来检索所需的能量值。为了评估reMinMin,我们将其与具有不同异构度的三个任务集上的两个参考实现进行了比较。在我们的实验中,MinMin始终优于仅针对动态能量进行优化的调度程序,后者需要多出19.43%的能量,并且非常接近最佳调度。

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