具有动态电压和频率缩放的电池感知稳压器调度同步优化

Youngjin Cho, Younghyun Kim, Yongsoo Joo, Kyungsoo Lee, N. Chang
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引用次数: 14

摘要

能量感知任务调度通过动态改变CPU运行时的时钟频率和电源电压,显著降低了系统执行特定作业所需的总能量。但这会导致从电源引出的电流有很大的波动,因此没有一个稳压器可以在整个工作电流范围内达到令人满意的效率。我们介绍了一种新的高级电源管理方法,称为动态稳压器调度(DRS),它克服了使用单个稳压器的基本限制。在配备DRS的系统中,异质电压调节器通过多路复用器型MOSFET开关连接到CPU。随着CPU的工作频率和供电电压的变化,采用最有效的稳压器供电。我们首先描述了实现DRS的贪心方法,然后我们进展到整数线性规划(ILP)公式,该公式同时优化DRS和动态电压和频率缩放(DVFS)。我们评估了贪婪DRS和最优DRS的性能。与传统DVFS相比,贪婪DRS可额外节省系统总能量的5.4%至14.6%;而最优的DRS可额外节省11.5%至15.5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simultaneous optimization of battery-aware voltage regulator scheduling with dynamic voltage and frequency scaling
Energy-aware task scheduling significantly reduces the total energy required by a system to perform a particular job, by dynamically changing the clock frequency and supply voltage at which the CPU operates. But this causes significant fluctuation of the current drawn from the power source, so that no single voltage regulator can achieve satisfactory efficiency over the entire range of operating currents. We introduce a new method of high-level power management called dynamic voltage regulator scheduling (DRS), which overcomes the fundamental limitation of using a single voltage regulator. In a system equipped with DRS, heterogeneous voltage regulators are connected to a CPU through a multiplexer-type MOSFET switch. As the operating frequency and the supply voltage of the CPU vary, the most efficient voltage regulator is used to supply the power. We first describe a greedy method of achieving DRS, and then we progress to an integer linear programming (ILP) formulation, which simultaneously optimizes DRS together with dynamic voltage and frequency scaling (DVFS). We evaluate the performance of both greedy DRS and optimal DRS. Compared to conventional DVFS, greedy DRS saves an additional 5.4% to 14.6% of the total system energy; and optimal DRS saves an additional 11.5% to 15.5%.
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