Temperature-constrained power control for chip multiprocessors with online model estimation

Yefu Wang, Kai Ma, Xiaorui Wang
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引用次数: 217

Abstract

As chip multiprocessors (CMP) become the main trend in processor development, various power and thermal management strategies have recently been proposed to optimize system performance while controlling the power or temperature of a CMP chip to stay below a constraint. The availability of per-core DVFS (dynamic voltage and frequency scaling) also makes it possible to develop advanced management strategies. However, most existing solutions rely on open-loop search or optimization with the assumption that power can be estimated accurately, while others adopt oversimplified feedback control strategies to control power and temperature separately, without any theoretical guarantees. In this paper, we propose a chip-level power control algorithm that is systematically designed based on optimal control theory. Our algorithm can precisely control the power of a CMP chip to the desired set point while maintaining the temperature of each core below a specified threshold. Furthermore, an online model estimator is designed to achieve analytical assurance of control accuracy and system stability, even in the face of significant workload variations or unpredictable chip or core variations. Empirical results on a physical testbed show that our controller outperforms two state-of-the-art control algorithms by having better SPEC benchmark performance and more precise power control. In addition, extensive simulation results demonstrate the efficacy of our algorithm for various CMP configurations.
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基于在线模型估计的芯片多处理器温度约束功率控制
随着芯片多处理器(CMP)成为处理器发展的主要趋势,最近提出了各种功耗和热管理策略,以优化系统性能,同时控制CMP芯片的功耗或温度低于限制。每核DVFS(动态电压和频率缩放)的可用性也使得开发高级管理策略成为可能。然而,现有的大多数解决方案依赖于开环搜索或优化,并假设可以准确估计功率,而其他解决方案则采用过于简化的反馈控制策略,将功率和温度分开控制,没有任何理论保证。本文提出了一种基于最优控制理论系统设计的芯片级功率控制算法。我们的算法可以精确地控制CMP芯片的功率到所需的设定点,同时保持每个核心的温度低于指定的阈值。此外,设计了一个在线模型估计器,以实现控制精度和系统稳定性的分析保证,即使面对显著的工作负载变化或不可预测的芯片或核心变化。在物理测试台上的经验结果表明,我们的控制器具有更好的SPEC基准性能和更精确的功率控制,优于两种最先进的控制算法。此外,大量的仿真结果证明了该算法对各种CMP配置的有效性。
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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ISCA '22: The 49th Annual International Symposium on Computer Architecture, New York, New York, USA, June 18 - 22, 2022 Special-purpose and future architectures Computer memory systems Basics of the central processing unit FRONT MATTER
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