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A control-theoretic energy management for fault-tolerant hard real-time systems

机译:用于容错硬实时系统的控制理论能源管理

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Recently, the tradeoff between low energy consumption and high fault-tolerance has attracted a lot of attention as a key issue in the design of real-time embedded systems. Dynamic Voltage Scaling (DVS) is known as one of the most effective low energy techniques for real-time systems. It has been observed that the use of control-theoretic methods can improve the effectiveness of DVS-enabled systems. In this paper, we have investigated reducing the energy consumption of fault-tolerant hard real-time systems using feedback control theory. Our proposed feedback-based DVS method makes the system capable of selecting the proper frequency and voltage settings in order to reduce the energy consumption while guaranteeing hard real-time requirements in the presence of unpredictable workload fluctuations and faults. In the proposed method, the available slack-time is exploited by a feedback-based DVS at runtime to reduce the energy consumption. Furthermore, some slack-time is reserved for re-execution in case of faults. Simulation results show that, as compared with traditional DVS methods without fault-tolerance, our proposed approach not only significantly reduces energy consumption, but also it satisfies hard real-time constraints in the presence of faults. The transition overhead (both time and energy), caused by changing the system supply voltage, are also taken into account in our simulation experiments.
机译:最近,低能耗和高容错之间的权衡在实时嵌入式系统设计中引起了很多关键问题。动态电压缩放(DVS)被称为实时系统最有效的低能量技术之一。已经观察到使用控制 - 理论方法可以提高支持DVS的系统的有效性。在本文中,我们研究了利用反馈控制理论来降低容错硬实时系统的能耗。我们所提出的基于反馈的DVS方法使系统能够选择适当的频率和电压设置,以降低能量消耗,同时保证在存在不可预测的工作量波动和故障时的硬实时要求。在该方法中,可用的松弛时间由运行时在运行时利用基于反馈的DVS来降低能量消耗。此外,在故障的情况下,保留一些松弛时间以重新执行。仿真结果表明,与传统DVS方法相比,没有容错的方法,我们提出的方法不仅显着降低了能量消耗,而且还满足了故障存在下的硬实时约束。在我们的仿真实验中也考虑了通过改变系统电源电压而导致的过渡开销(两次和能量)。

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