【24h】

Footprint-Aware Power Capping for Hybrid Memory Based Systems

机译:基于混合内存的系统的足迹感知功率上限

获取原文

摘要

High Performance Computing (HPC) systems are facing severe limitations in both power and memory bandwidth/capacity. By now, these limitations have been addressed individually: to improve performance under a strict power constraint, power capping, which sets power limits to componentsodes/jobs, is an indispensable feature; and for memory bandwidth/capacity increase, the industry has begun to support hybrid main memory designs that comprise multiple different technologies including emerging memories (e.g., 3D stacked DRAM or Non-Volatile RAM) in one compute node. However, few works look at the combination of both trends.This paper explicitly targets power managements on hybrid memory based HPC systems and is based on the following observation: in spite of the system software's efforts to optimize data allocations on such a system, the effective memory bandwidth can decrease considerably when we scale the problem size of applications. As a result, the performance bottleneck component changes in accordance with the footprint (or data) size, which then also changes the optimal power cap settings in a node. Motivated by this observation, we propose a power management concept called footprint-aware power capping (FPCAP) and a profile-driven software framework to realize it. Our experimental result on a real system using HPC benchmarks shows that our approach is successful in correctly setting power caps depending on the footprint size while keeping around 93/96% of performance/power-efficiency compared to the best settings.
机译:高性能计算(HPC)系统在功耗和内存带宽/容量上都面临着严格的限制。到目前为止,这些限制已得到单独解决:为了在严格的功率约束下提高性能,功率上限是必不可少的功能,功率上限设置了组件/节点/作业的功率限制。随着存储器带宽/容量的增加,业界已经开始支持混合主存储器设计,该设计包括多种不同技术,包括在一个计算节点中的新兴存储器(例如3D堆叠DRAM或非易失性RAM)。但是,很少有研究结合这两种趋势。本文明确指出了基于混合内存的HPC系统的电源管理,并且基于以下观察:尽管系统软件已在优化此类系统上的数据分配方面做出了努力,但有效的解决方案还是有效的。当我们扩展应用程序的问题大小时,内存带宽会大大减少。结果,性能瓶颈组件根据占用空间(或数据)的大小而变化,然后还改变了节点中的最佳功率限额设置。受此观察的启发,我们提出了一种电源管理概念,即占位面积感知功率上限(FPCAP),以及一个由配置文件驱动的软件框架来实现该概念。我们在使用HPC基准的真实系统上的实验结果表明,我们的方法成功地根据占位面积大小正确设置了功率上限,而与最佳设置相比,其性能/功率效率保持在93/96%左右。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号