Iso-Energy-Efficiency: An Approach to Power-Constrained Parallel Computation

S. Song, Chun-Yi Su, Rong Ge, Abhinav Vishnu, K. Cameron
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引用次数: 54

Abstract

Future large scale high performance supercomputer systems require high energy efficiency to achieve exaflops computational power and beyond. Despite the need to understand energy efficiency in high-performance systems, there are few techniques to evaluate energy efficiency at scale. In this paper, we propose a system-level iso-energy-efficiency model to analyze, evaluate and predict energy-performance of data intensive parallel applications with various execution patterns running on large scale power-aware clusters. Our analytical model can help users explore the effects of machine and application dependent characteristics on system energy efficiency and isolate efficient ways to scale system parameters (e.g. processor count, CPU power/frequency, workload size and network bandwidth) to balance energy use and performance. We derive our iso-energy-efficiency model and apply it to the NAS Parallel Benchmarks on two power-aware clusters. Our results indicate that the model accurately predicts total system energy consumption within 5\% error on average for parallel applications with various execution and communication patterns. We demonstrate effective use of the model for various application contexts and in scalability decision-making.
等能源效率:一种功率受限的并行计算方法
未来的大规模高性能超级计算机系统需要高能效才能实现百亿次浮点运算甚至更高的计算能力。尽管需要了解高性能系统的能源效率,但很少有技术可以大规模评估能源效率。在本文中,我们提出了一个系统级等能效模型,用于分析、评估和预测在大规模功率感知集群上运行的具有各种执行模式的数据密集型并行应用程序的能源性能。我们的分析模型可以帮助用户探索机器和应用程序依赖特性对系统能源效率的影响,并隔离有效的方法来扩展系统参数(例如处理器数量,CPU功率/频率,工作负载大小和网络带宽),以平衡能源使用和性能。我们推导了我们的等能效模型,并将其应用于两个功率感知集群上的NAS并行基准测试。我们的结果表明,该模型准确地预测了具有各种执行和通信模式的并行应用程序的总系统能耗,平均误差在5%以内。我们演示了该模型在各种应用程序上下文和可伸缩性决策中的有效使用。
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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