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Early Experiences with Saving Energy in Direct Interconnection Networks

机译:直接互连网络中节能的早期经验

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摘要

Energy is emerging to become one of the most crucial factors in design decisions for future large scale computing systems. Especially Exascale-installations will have to operate within hard power and energy constraints. Besides economical reasons, power consumption is also limited by a limited power distribution, cooling capabilities, and minimization of carbon footprints. While other components, such as processors, become more and more energy-proportional, interconnects are still highly energy-disproportional. Although interconnection networks are contributing only about 10-20% to the overall power consumption of High-Performance Computing (HPC) or Cloud systems, this fraction is likely to increase significantly in the near future. Therefore, power saving strategies are mandatory for improving energy efficiency and thereby performance within hard power constraints. In this work, we introduce a simple energy saving strategy, which switches links on and off, depending on the user's performance constraints. Therefore, we adapted an existing OMNeT++ network simulator by adding new energy features. This simulator allows us to run traces of real world applications, including LULESH, NAMD, and Graph500 with different configurations. We show that this policy enables possible energy savings of up to 39% in interconnection networks. Furthermore, we demonstrate the impact of hardware design parameters, such as transition time, on possible power saving strategies.
机译:能源正在成为未来大型计算系统设计决策中最关键的因素之一。尤其是百亿亿美元级的安装将不得不在硬功率和能源约束下运行。除经济原因外,功耗还受到有限的配电,冷却能力和碳足迹最小化的限制。尽管其他组件(例如处理器)的能耗越来越高,但是互连仍然是能耗极高的。尽管互连网络仅占高性能计算(HPC)或云系统总体功耗的10-20%,但这一比例在不久的将来可能会显着增加。因此,节电策略是强制性的,可提高能效,从而在硬限电范围内提高性能。在这项工作中,我们介绍了一种简单的节能策略,该策略根据用户的性能约束来打开和关闭链接。因此,我们通过添加新的能源功能来改编现有的OMNeT ++网络模拟器。该模拟器使我们能够运行具有不同配置的真实应用程序,包括LULESH,NAMD和Graph500。我们证明了该策略可以使互连网络中的能源节省高达39%。此外,我们演示了硬件设计参数(例如过渡时间)对可能的节能策略的影响。

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