Dynamic Power Management under Uncertain Information

Hwisung Jung, Massoud Pedram
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引用次数: 24

Abstract

This paper tackles the problem of dynamic power management (DPM) in nanoscale CMOS design technologies that are typically affected by increasing levels of process, voltage, and temperature (PVT) variations and fluctuations. This uncertainty significantly undermines the accuracy and effectiveness of traditional DPM approaches. More specifically, a stochastic framework was propose to improve the accuracy of decision making in power management, while considering the manufacturing process and/or design induced uncertainties. A key characteristic of the framework is that uncertainties are effectively captured by a partially observable semi-Markov decision process. As a result, the proposed framework brings the underlying probabilistic PVT effects to the forefront of power management policy determination. Experimental results with a RISC processor demonstrate the effectiveness of the technique and show that the proposed variability-aware power management technique ensures robust system-wide energy savings under probabilistic variations
不确定信息下的动态电源管理
本文解决了纳米级CMOS设计技术中动态电源管理(DPM)的问题,该问题通常受到工艺、电压和温度(PVT)变化和波动的影响。这种不确定性极大地破坏了传统DPM方法的准确性和有效性。更具体地说,在考虑制造过程和/或设计引起的不确定性的情况下,提出了一个随机框架来提高电源管理决策的准确性。该框架的一个关键特征是通过部分可观察的半马尔可夫决策过程有效地捕获不确定性。因此,所提出的框架将潜在的概率PVT效应带到电源管理策略确定的前沿。在RISC处理器上的实验结果证明了该技术的有效性,并表明所提出的可变感知电源管理技术确保了在概率变化下系统范围内的鲁棒节能
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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