能量收集系统的混合临界调度

Kankan Wang, Qingxu Deng
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引用次数: 0

摘要

能量收集是一种很有前途的方法,可以为部署在不可能或不实际充电的地方的实时嵌入式设备供电。由于能量收集的随机性,使得能量收集实时系统难以同时保证时间和能量约束,因此在分析系统可调度性时,最坏情况性能分析变得更加重要。本文研究了能量感知自适应的能量收集混合临界(EHMC)系统的性能分析问题。特别地,我们提出了一种新的方法,可用于导出混合临界任务集的时间需求界限,该方法可以在给定大小的任何时间间隔内满足任务集的处理器和能量需求所需的总时间上限。此外,我们还计算了使我们的可调度性测试有效的电容器的最小尺寸。实验结果表明,我们的方法比以前的能量收集混合临界系统的方法强大得多。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mixed-Criticality Scheduling of Energy-Harvesting Systems
Energy harvesting is a promising approach to powering real-time embedded devices which are deployed wherever it is not possible or practical to recharge. Since the stochastic nature of harvested energy makes it challenging to simultaneously guarantee both timing and energy constraints of energy-harvesting real-time systems, the worst-case performance analysis becomes more crucial when analyzing the system schedulability. In this paper, we study the performance analysis problem of energy-harvesting mixed-criticality (EHMC) systems scheduled by an energy-aware adaptation of EDF. In particular, we propose a new method that can be used to derive time demand bounds for a mixed-criticality task set, which upper-bound the total amount of time required to satisfy both the processor and energy demand of the task set in any time interval of a given size for each criticality mode. Moreover, we calculate the minimum size of the capacitor for our schedulability test to be valid. Experiment results show that our approach is significantly more powerful than previous approaches to energy harvesting mixed-criticality systems.
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