Temperature-aware Task Partitioning for Real-Time Scheduling in Embedded Systems

Zhe Wang, S. Ranka, P. Mishra
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引用次数: 9

Abstract

Both power and heat density of on-chip systems are in- creasing exponentially with Moore's Law. High temperature negatively affects reliability as well the costs of cooling and packaging. In this paper, we propose task partitioning as an effective way to reduce the peak temperature in embedded systems running either a set of periodic heterogeneous tasks with common period or periodic heterogeneous tasks with individual period. For task sets with common period, experimental results show that our task partitioning algorithms is able to reduce the peak temperature by as much as 5.8°C as compared to algorithms that only use task sequencing. For task sets with individual period, EDF scheduling with task partitioning can also lower the peak temperature, as compared to simple EDF scheduling, by as much as 6°C. Our analysis indicates that the numbers of additional context switches (overhead) is less than 2 per task, which is tolerable in many practical scenarios.
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基于温度感知的嵌入式系统实时调度任务分配
片上系统的功率和热密度都按照摩尔定律呈指数增长。高温对可靠性以及冷却和包装成本产生负面影响。在本文中,我们提出任务划分作为一种有效的方法来降低嵌入式系统运行一组具有共同周期的周期性异构任务或具有单个周期的周期性异构任务时的峰值温度。对于具有共同周期的任务集,实验结果表明,与仅使用任务排序的算法相比,我们的任务划分算法可以将峰值温度降低5.8°C。对于具有单独周期的任务集,与简单的EDF调度相比,具有任务分区的EDF调度还可以将峰值温度降低多达6°C。我们的分析表明,每个任务的额外上下文切换(开销)少于2个,这在许多实际场景中是可以忍受的。
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