Optimizing checkpoint intervals for reduced energy use in exascale systems

D. Dauwe, Rohan Jhaveri, S. Pasricha, A. A. Maciejewski, H. Siegel
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引用次数: 18

Abstract

In today's high performance computing (HPC) systems, the probability of applications experiencing failures has increased significantly with the increase in the number of system nodes. It is expected that exascale-sized systems are likely to operate with mean time between failures (MTBF) of as little as a few minutes, causing frequent interrupts in application execution as well as substantially greater energy costs in a system that will already consume large amounts of energy. State-of-the-art HPC resilience techniques proposed for use in these future systems complicate the energy problem further as the overhead associated with utilizing these techniques also further increases energy use. While work has been done that attempts to analyze and improve the energy use of systems utilizing resilience techniques, our work offers a new approach through the optimization of checkpoint interval lengths that allows a system designer the freedom to choose between intervals that optimize for application performance efficiency or energy use in both a traditional checkpoint and multilevel checkpoint approach to resilience. We create a set of equations able to optimize for either performance efficiency or energy use, demonstrate that distinct intervals exist when optimizing for either one metric or the other, and examine the sensitivity of this phenomena to changes in several system parameters and application characteristics.
优化检查点间隔,以减少百亿亿级系统的能源使用
在当今的高性能计算(HPC)系统中,随着系统节点数量的增加,应用程序出现故障的概率显著增加。预计百亿亿级系统的平均故障间隔时间(MTBF)可能只有几分钟,这将导致应用程序执行频繁中断,并且在已经消耗大量能源的系统中大幅增加能源成本。在这些未来的系统中使用的最先进的高性能计算弹性技术使能源问题进一步复杂化,因为与使用这些技术相关的开销也进一步增加了能源使用。虽然已经完成了利用弹性技术分析和改进系统能源使用的工作,但我们的工作提供了一种通过优化检查点间隔长度的新方法,该方法允许系统设计者在传统检查点和多层检查点弹性方法中自由选择优化应用程序性能效率或能源使用的间隔。我们创建了一组能够优化性能效率或能源使用的方程,证明了在优化一个度量或另一个度量时存在不同的间隔,并检查了这种现象对几个系统参数和应用特性变化的敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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