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Utility-based resource management in an oversubscribed energy-constrained heterogeneous environment executing parallel applications

机译:在超额订购的能源受限异构环境中执行并行应用程序的基于实用程序的资源管理

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摘要

The worth of completing parallel tasks is modeled using utility functions, which monotonically-decrease with time and represent the importance and urgency of a task. These functions define the utility earned by a task at the time of its completion. The performance of a computing system is measured as the total utility earned by all completed tasks over some interval of time (e.g., 24 h). We have designed, analyzed, and compared the performance of a set of heuristic techniques to maximize system performance when scheduling dynamically arriving parallel tasks onto a high performance computing (HPC) system that is oversubscribed and energy constrained. We consider six utility-aware heuristics and four existing heuristics for comparison. A new concept of temporary place holders is compared with scheduling using permanent reservations. We also present a novel energy filtering technique that constrains the maximum energy-per-resource used by each task. We conducted a simulation study to evaluate the performance of these heuristics and techniques in multiple energy-constrained oversubscribed HPC environments. We conduct an experiment with a subset of the heuristics on a physical testbed system for one scheduling scenario. We demonstrate that our proposed utility-aware resource management heuristics are able to significantly outperform existing techniques. (C) 2017 Elsevier B.V. All rights reserved.
机译:使用实用程序函数可以完成并行任务的价值,这些实用函数会随时间单调减少,并代表任务的重要性和紧迫性。这些功能定义了任务完成时获得的实用程序。计算系统的性能是将所有已完成任务在某个时间间隔(例如24小时)内获得的总效用来衡量的。我们已经设计,分析和比较了一套启发式技术的性能,以在将动态到达的并行任务调度到已超额订购且能耗受限的高性能计算(HPC)系统上时,最大限度地提高系统性能。我们考虑了六个实用程序启发式算法和四个现有启发式算法进行比较。将临时占位符的新概念与使用永久保留的计划进行了比较。我们还提出了一种新颖的能量过滤技术,该技术可以限制每个任务使用的最大每资源能量。我们进行了仿真研究,以评估这些启发式方法和技术在多个能量受限的超额订购HPC环境中的性能。我们针对一个调度方案在物理测试平台系统上使用启发式方法的子集进行了实验。我们证明了我们提出的实用程序感知资源管理启发法能够显着优于现有技术。 (C)2017 Elsevier B.V.保留所有权利。

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