Energy-Efficient High Performance Computing

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In this work, the unique power measurement capabilities of the Cray XT architecture were exploited to gain an understanding of power and energy use, and the effects of tuning both CPU and network bandwidth. Modifications were made to deterministically halt cores when idle. Additionally, capabilities were added to alter operating P-state. At the application level, an understanding of the power requirements of a range of important DOE/NNSA production scientific computing applications running at large scale is gained by simultaneously collecting current and voltage measurements on the hosting nodes. The effects of both CPU and network bandwidth tuning are examined, and energy savings opportunities without impact on run-time performance are demonstrated. This research suggests that next-generation large-scale platforms should not only approach CPU frequency scaling differently, but could also benefit from the capability to tune other platform components to achieve more energy-efficient performance.

Examines the power requirements of a range of important DOE/NNSA production scientific computing applications running at large scale Demonstrates how CPU and network bandwidth tuning can result in energy savings with little or no impact on run-time performance Discusses how next-generation large-scale platforms could benefit from the capability to tune platform components to achieve more energy-efficient performance Includes supplementary material: sn.pub/extras

Klappentext

Recognition of the importance of power and energy in the field of high performance computing (HPC) has never been greater. Research has been conducted in a number of areas related to power and energy, but little existing research has focused on large-scale HPC. Part of the reason is the lack of measurement capability currently available on small or large platforms. Typically, research is conducted using coarse methods of measurement such as inserting a power meter between the power source and the platform, or fine grained measurements using custom instrumented boards (with obvious limitations in scale). To analyze real scientific computing applications at large scale, an in situ measurement capability is necessary that scales to the size of the platform.

In response to this challenge, the unique power measurement capabilities of the Cray XT architecture were exploited to gain an understanding of power and energy use and the effects of tuning both CPU and network bandwidth. Modifications were made at the operating system level to deterministically halt cores when idle. Additionally, capabilities were added to alter operating P-state. At the application level, an understanding of the power requirements of a range of important DOE/NNSA production scientific computing applications running at large scale (thousands of nodes) is gained by simultaneously collecting current and voltage measurements on the hosting nodes. The effects of both CPU and network bandwidth tuning are examined and energy savings opportunities of up to 39% with little or no impact on run-time performance is demonstrated. Capturing scale effects was key. This research provides strong evidence that next generation large-scale platforms should not only approach CPU frequency scaling differently, as we will demonstrate, but could also benefit from the capability to tune other platform components, such as the network, to achieve more energy efficient performance.


Inhalt

Introduction.- Platforms.- Measuring Power.- Applications.- Reducing Power During Idle Cycles.- Tuning CPU Power During Application Run-Time.- Network Bandwidth Tuning During Application Run-Time.- Energy Delay Product.- Conclusions.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09781447144915
    • Anzahl Seiten 84
    • Lesemotiv Verstehen
    • Genre Allgemein & Lexika
    • Auflage 2013
    • Schöpfer James H. Laros, Kevin Pedretti, Sue Kelly
    • Herausgeber Springer London
    • Gewicht 143g
    • Untertitel Measurement and Tuning
    • Größe H235mm x B155mm x T6mm
    • Jahr 2012
    • EAN 9781447144915
    • Format Kartonierter Einband
    • ISBN 1447144910
    • Veröffentlichung 04.09.2012
    • Titel Energy-Efficient High Performance Computing
    • Autor James H. Laros III , Kevin Pedretti , Suzanne M. Kelly , Courtenay Vaughan , Kurt Ferreira , John Van Dyke , Wei Shu
    • Sprache Englisch

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