Stochastic modeling of a thermally-managed multi-core system

Hwisung Jung, Peng Rong, Massoud Pedram
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引用次数: 41

Abstract

Achieving high performance under a peak temperature limit is a first-order concern for VLSI designers. This paper presents a new abstract model of a thermally-managed system, where a stochastic process model is employed to capture the system performance and thermal behavior. We formulate the problem of dynamic thermal management (DTM) as the problem of minimizing the energy cost of the system for a given level of performance under a peak temperature constraint by using a controllable Markovian decision process (MDP) model. The key rationale for utilizing MDP for solving the DTM problem is to manage the stochastic behavior of the temperature states of the system under online re-configuration of its micro-architecture and/or dynamic voltage-frequency scaling. Experimental results demonstrate the effectiveness of the modeling framework and the proposed DTM technique.
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热管理多核系统的随机建模
在峰值温度限制下实现高性能是VLSI设计人员最关心的问题。本文提出了一种新的热管理系统的抽象模型,其中采用随机过程模型来捕捉系统的性能和热行为。本文利用可控马尔可夫决策过程(MDP)模型,将动态热管理(DTM)问题表述为在峰值温度约束下,在给定性能水平下,系统能量成本最小化的问题。利用MDP解决DTM问题的关键原理是管理系统在微结构在线重新配置和/或动态电压频率缩放下温度状态的随机行为。实验结果验证了该建模框架和DTM技术的有效性。
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