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Exploring performance and power properties of modern multi-core chips via simple machine models

机译:通过简单的机器模型探索现代多核芯片的性能和功率特性

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Modern multi-core chips show complex behavior with respect to performance and power. Starting with the Intel Sandy Bridge processor, it has become possible to directly measure the power dissipation of a CPU chip and correlate this data with the performance properties of the running code. Going beyond a simple bottleneck analysis, we employ the recently published Execution-Cache-Memory (ECM) model to describe the single-core and multi-core performance of streaming kernels. The model refines the well-known roofline model, because it can predict the scaling and the saturation behavior of bandwidth-limited loop kernels on a multi-core chip. The saturation point is especially relevant for considerations of energy consumption. From power dissipation measurements of benchmark programs with vastly different requirements to the hardware, we derive a simple, phenomenological power model for the Sandy Bridge processor. Together with the ECM model, we are able to explain many peculiarities in the performance and power behavior of multi-core processors and derive guidelines for energy-efficient execution of parallel programs. Finally, we show that the ECM and power models can be successfully used to describe the scaling and power behavior of a lattice Boltzmann flow solver code. Copyright © 2013 John Wiley & Sons, Ltd.
机译:现代多核芯片在性能和功耗方面表现出复杂的行为。从Intel Sandy Bridge处理器开始,直接测量CPU芯片的功耗并将该数据与正在运行的代码的性能属性相关联成为可能。除了进行简单的瓶颈分析之外,我们还使用最近发布的执行缓存内存(ECM)模型来描述流内核的单核和多核性能。该模型完善了众所周知的Roofline模型,因为它可以预测多核芯片上带宽受限的循环内核的缩放比例和饱和行为。饱和点对于能耗的考虑尤其重要。从对硬件有很大不同要求的基准程序的功耗测量中,我们得出了Sandy Bridge处理器的简单的现象学功率模型。与ECM模型一起,我们能够解释多核处理器在性能和功耗行为方面的许多特殊性,并得出高效执行并行程序的准则。最后,我们证明了ECM和功率模型可以成功地描述晶格Boltzmann流求解器代码的缩放和功率行为。版权所有©2013 John Wiley&Sons,Ltd.

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