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Learning-Based Power Management for Multicore Processors via Idle Period Manipulation

机译:通过空闲周期操纵对多核处理器进行基于学习的电源管理

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Learning-based dynamic power management (DPM) techniques, being able to adapt to varying system conditions and workloads, have attracted a lot of research attention recently. To the best of our knowledge, however, none of the existing learning-based DPM solutions are dedicated to power reduction in multicore processors, although they can be utilized by treating each processor core as a standalone entity and conducting DPM for them separately. In this paper, by including task allocation into our learning-based DPM framework for multicore processors, we are able to manipulate idle periods on processor cores to achieve a better tradeoff between power consumption and system performance. Experimental results show that the proposed solution significantly outperforms existing DPM techniques.
机译:基于学习的动态电源管理(DPM)技术能够适应变化的系统条件和工作负载,最近引起了很多研究关注。据我们所知,现有的基于学习的DPM解决方案中没有一个专门用于降低多核处理器的功耗,尽管可以通过将每个处理器内核视为一个独立的实体并对其进行DPM来利用它们。在本文中,通过将任务分配包括在我们基于学习的多核处理器DPM框架中,我们能够操纵处理器内核上的空闲时间,从而在功耗与系统性能之间取得更好的平衡。实验结果表明,提出的解决方案明显优于现有的DPM技术。

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