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Dynamic Frequency Scaling and Energy Saving in Quantum Chemistry Applications

机译:量子化学应用中动态频率缩放与节能

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Modern high-performance computing system design is becoming increasingly aware of the energy proportional computing to lower the operational costs and raise reliability. At the same time, high-performance application developers are taking pro-active steps towards less energy consumption without a significant performance loss. One way to accomplish this is to change the processor frequency dynamically during application execution. In this paper, a representative computationally-intensive HPC application GAMESS is considered with the aim to investigate the energy saving potential of its various stages. GAMESS is a quantum chemistry software package used worldwide to perform ab initio electronic structure calculations. This paper presents energy consumption characteristics of two Self-Consistent Field method implementations in GAMESS, which radically differ in their computer resource usages. The dynamic frequency scaling optimization is applied to these implementations and serves as verification for the proposed general energy savings model. The developed model provides the minimum of on the compute node energy consumption under a given performance loss tolerance for various processor frequencies.
机译:现代高性能计算系统设计越来越意识到能源比例计算,以降低运营成本并提高可靠性。与此同时,高性能应用开发人员在没有显着性能损失的情况下对能源消耗较少进行积极主动步骤。实现这一点的一种方法是在应用程序执行期间动态地改变处理器频率。在本文中,考虑了一种代表性的计算密集型HPC应用游戏,其目的是研究其各个阶段的节能潜力。 Gamess是一个全球使用的量子化学软件包,以执行AB Initio电子结构计算。本文介绍了Gamess中的两个自我一致的现场方法的能量消耗特征,在其计算机资源使用情况下差别不同。动态频率缩放优化应用于这些实现,并用作所提出的一般节能模型的验证。开发的模型在给定的各种处理器频率的给定性能损耗公差下提供了对计算节点能量消耗的最小值。

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