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Power capping of CPU-GPU heterogeneous systems through coordinating DVFS and task mapping

机译:通过协调DVFS和任务映射来限制CPU-GPU异构系统的功率

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Future computer systems are built under much stringent power budget due to the limitation of power delivery and cooling systems. To this end, sophisticated power management techniques are required. Power capping is a technique to limit the power consumption of a system to the predetermined level, and has been extensively studied in homogeneous systems. However, few studies about the power capping of CPU-GPU heterogeneous systems have been done yet. In this paper, we propose an efficient power capping technique through coordinating DVFS and task mapping in a single computing node equipped with GPUs. In CPU-GPU heterogeneous systems, settings of the device frequencies have to be considered with task mapping between the CPUs and the GPUs because the frequency scaling can incurs load imbalance between them. To guide the settings of DVFS and task mapping for avoiding power violation and the load imbalance, we develop new empirical models of the performance and the maximum power consumption of a CPU-GPU heterogeneous system. The models enable us to set near-optimal settings of the device frequencies and the task mapping in advance of the application execution. We evaluate the proposed technique with five data-parallel applications on a machine equipped with a single CPU and a single GPU. The experimental result shows that the performance achieved by the proposed power capping technique is comparable to the ideal one.
机译:由于电力输送和冷却系统的局限性,未来的计算机系统将以非常严格的电力预算来构建。为此,需要复杂的电源管理技术。功率上限是一种将系统的功耗限制到预定水平的技术,并且已经在同类系统中进行了广泛的研究。但是,关于CPU-GPU异构系统的功率限制的研究很少。在本文中,我们通过在配备GPU的单个计算节点中协调DVFS和任务映射,提出了一种有效的功率限制技术。在CPU-GPU异构系统中,必须通过CPU和GPU之间的任务映射来考虑设备频率的设置,因为频率缩放会导致它们之间的负载不平衡。为了指导DVFS和任务映射的设置以避免功率违规和负载不平衡,我们开发了CPU-GPU异构系统的性能和最大功耗的新经验模型。这些模型使我们能够在应用程序执行之前设置设备频率和任务映射的最佳设置。我们在配备有单个CPU和单个GPU的计算机上使用五个数据并行应用程序评估了提出的技术。实验结果表明,所提出的功率封顶技术所实现的性能与理想的性能相当。

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