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Reliability-oriented scheduling for static-priority real-time tasks in standby-sparing systems

机译:备用系统中静态优先级实时任务的面向可靠性的调度

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摘要

The advent of complicated embedded systems with regard to relentless technology scaling and integration of more components into a single chip, have caused these systems to be less reliable. Moreover, these advancements have accompanied with a drastic increase in energy consumption. However, using energy management techniques such as Dynamic Voltage and Frequency Scaling (DVFS) has made reliability issues to be exacerbated. Hence, energy efficiency and fault-tolerance are two conflicting key objectives in the design of efficient real-time embedded systems. In this paper by considering periodic real-time tasks in standby-sparing system, we propose a novel online scheduling technique, which tackles this problem. The aim of this paper is twofold: (1) to show that scheduling primary and backup tasks in different processors in a moderate speed for static-priority real-time tasks will lead to better energy savings; (2) to explore the effectiveness of this technique for mixed-criticality tasks. Our simulation results reveal a significant energy saving (up to 25%) in comparison with the state-of-the-art scheme based on standby-sparing system, while preserving system's original reliability. (C) 2016 Published by Elsevier B.V.
机译:关于无休止的技术扩展以及将更多组件集成到单个芯片中的复杂嵌入式系统的出现,导致这些系统的可靠性降低。此外,这些进步伴随着能量消耗的急剧增加。但是,使用诸如动态电压和频率缩放(DVFS)之类的能量管理技术使可靠性问题更加严重。因此,能效和容错是高效实时嵌入式系统设计中两个相互冲突的关键目标。本文通过考虑备用系统中的周期性实时任务,提出了一种新颖的在线调度技术来解决这一问题。本文的目的有两个方面:(1)表明以中等速度在不同处理器中调度主要任务和备份任务以实现静态优先级实时任务将带来更好的节能效果; (2)探索该技术对混合临界任务的有效性。我们的仿真结果表明,与基于备用分配系统的最新方案相比,该方案显着节省了能源(高达25%),同时保留了系统的原始可靠性。 (C)2016由Elsevier B.V.发布

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