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Optimal Sleep-Wake Scheduling for Energy Harvesting Smart Mobile Devices

机译:能量收集智能移动设备的最佳睡眠唤醒计划

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摘要

In this paper, we develop optimal sleep/wake scheduling algorithms for smart mobile devices that are powered by batteries and are capable of harvesting energy from the environment. Using a novel combination of the two-timescale Lyapunov optimization approach and weight perturbation, we first design the Optimal Sleep/wake scheduling Algorithm (OSA), which does not require any knowledge of the harvestable energy process. We prove that OSA is able to achieve any system performance that is within O(ϵ) of the optimal, and explicitly compute the required battery size, which is O(1/ϵ) . We then extend our results to incorporate system information into algorithm design. Specifically, we develop the Information-aided OSA algorithm (IOSA) by introducing a novel drift augmenting idea in Lyapunov optimization. We show that IOSA is able to achieve the O(ϵ) close-to-optimal utility performance and ensures that the required traffic buffer and energy storage size are O(log(1/ϵ)2) with high probability.
机译:在本文中,我们为电池供电的智能移动设备开发了最佳的睡眠/唤醒调度算法,并且能够从环境中获取能量。通过使用两时尺度Lyapunov优化方法和权重扰动的新颖组合,我们首先设计了最佳睡眠/唤醒调度算法(OSA),该算法不需要任何关于可收获能量过程的知识。我们证明OSA可以达到最佳O(ϵ)以内的任何系统性能,并显式计算所需的电池大小,即O(1 / ϵ)。然后,我们扩展结果以将系统信息纳入算法设计。具体来说,我们通过在Lyapunov优化中引入新颖的漂移增强思想来开发信息辅助OSA算法(IOSA)。我们表明,IOSA能够实现接近最佳效用的O(ϵ),并确保所需的流量缓冲区和能量存储大小具有很高的概率为O(log(1 / ϵ)2)。

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