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A Resource Reservation Algorithm for Power-Aware Scheduling of Periodic and Aperiodic Real-Time Tasks

机译:周期性和非周期性实时任务的功耗感知调度的资源预留算法

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Power consumption is an important issue in the design of real-time embedded systems. As many embedded systems are powered by batteries, the goal is to extend the autonomy of the system as much as possible. To reduce power consumption, modern processors can change their voltage and frequency at runtime. A power-aware scheduling algorithm can exploit this capability to reduce power consumption while preserving the timing constraints of real-time tasks. In this paper, we present GRUB-PA, a novel power-aware scheduling algorithm based on a resource reservation technique. In addition to providing temporal isolation and time guarantees and, unlike most of the power-aware algorithms proposed in the literature, GRUB-PA can efficiently handle systems consisting of both hard and soft, aperiodic, sporadic, and periodic tasks. We compared our algorithm with existing power-aware scheduling algorithms on an extensive set of simulation experiments on synthetic task sets. The results show that the performance of our algorithm is in line with the state-of-the-art power-aware algorithms. We also present the implementation of our algorithm in the Linux operating system and discuss practical implementation issues like switching overhead and power models. Finally, we show the results of experiments performed on a real testbed application
机译:功耗是实时嵌入式系统设计中的重要问题。由于许多嵌入式系统均由电池供电,因此目标是尽可能扩大系统的自治性。为了降低功耗,现代处理器可以在运行时更改其电压和频率。具有功耗意识的调度算法可以利用此功能来减少功耗,同时保留实时任务的时序约束。在本文中,我们提出了GRUB-PA,这是一种基于资源保留技术的新型功耗感知调度算法。除了提供时间隔离和时间保证之外,与文献中提出的大多数功耗感知算法不同,GRUB-PA可以有效处理由硬任务和软任务,非周期性任务,零星任务和周期性任务组成的系统。我们在综合任务集的大量模拟实验中将我们的算法与现有的功耗感知调度算法进行了比较。结果表明,我们的算法的性能与最新的功率感知算法相符。我们还将介绍在Linux操作系统中算法的实现,并讨论实际的实现问题,例如切换开销和功耗模型。最后,我们展示了在真实测试平台应用程序上执行的实验结果

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