基于可靠性的双处理器实时嵌入式系统电源管理

R. Sridharan, R. Mahapatra
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引用次数: 21

摘要

主备(PB)模型是双处理器实时系统中广泛使用的可靠性模型。在最近的文献中,已经有一些工作集中于最小化在这样的系统上执行的周期性任务集的能量消耗。这些工作的主要缺点之一是它们忽略了频率尺度对故障到达率的影响。本文提出了一种改进的双处理器系统主备模型,该模型旨在采用电源管理技术以最大限度地降低总体能耗时保持系统的可靠性。此外,该方法利用实时任务执行时间的不确定性,更好地预测可用空闲时间,用于能量管理。在同构和异构双处理器系统上,采用综合任务集测试了改进的基于pb的可靠性感知电源管理(RAPM)方法。仿真结果表明,在异构双处理器系统中,该方法在不降低可靠性的情况下,对低利用率任务集可节省高达67%的预期能耗,对高利用率任务集可节省高达32%的预期能耗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reliability aware power management for dual-processor real-time embedded systems
Primary-Backup (PB) model has been a widely used model for reliability in dual-processor real-time systems. In recent literature, there have been a few works focussing on minimizing energy consumption of periodic task sets executing on such systems. One of the major drawbacks of these works is that they ignore the effects of frequency-scaling on fault arrival rates. In this paper, we present a modified Primary-Backup model for dual-processor systems that aims to maintain the reliability when employing power management techniques to minimize the overall energy consumption. Furthermore, the proposed approach exploits the uncertainties in the execution time of real-time tasks to better predict the available slack for energy management. The proposed modified PB-based Reliability-Aware Power Management (RAPM) approach was tested with synthetic task sets on both homogeneous and heterogeneous dual-processor systems. Simulation results show that it can achieve up to 67 % savings in expected energy consumption for low utilization task sets and up to 32 % savings for high utilization task sets without any loss in reliability in heterogeneous dual-processor systems.
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