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Sentinel: Breaking the Bottleneck of Energy Utilization Efficiency in RF-Powered Devices

机译:前哨:突破射频供电设备能源利用效率的瓶颈

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摘要

As a result of the limited available energy, radio frequency (RF)-powered devices must be capable of efficiently utilizing scarce energy by planning task execution according to the current harvested energy. However, the energy utilization efficiency is challenging to be improved in RF-powered devices, since sensing the harvested energy consumes a significant amount of energy that should be used for task execution. In this paper, we propose Sentinel, a novel low power method to sense the harvested energy. Sentinel is fully delegated to detect the energy for the device, while the device does not participate in the energy sensing. By this means, the computing overhead of the device is reduced. Sentinel works with low energy consumption, and functions as a trigger to activate the device when, and only when, the energy reaches an expected energy threshold. We also present a lightweight scheme to set the desired thresholds so that Sentinel achieves detecting any expected thresholds. We implement Sentinel by off-the-shelf components and conduct experiments to show that Sentinel consumes only 5.2% of energy overhead of the general energy sensing technique. With Sentinel, we show that the energy utilization efficiency can be improved up to 94.9%, outperforming the best existing works at 64.7% in the WISP platform.
机译:由于可用能量有限,通过射频(RF)供电的设备必须能够通过根据当前收集的能量计划任务执行来有效利用稀缺的能量。但是,在射频供电的设备中,提高能量利用效率具有挑战性,因为感测收集到的能量会消耗大量的能量,这些能量应用于任务执行。在本文中,我们提出了Sentinel,这是一种新型的低功耗方法,用于感测收获的能量。 Sentinel被完全委派以检测设备的能量,而设备不参与能量感测。通过这种方式,减少了设备的计算开销。 Sentinel的能耗很低,并且仅在能量达到预期的能量阈值时才用作激活设备的触发器。我们还提出了一种轻量级方案来设置所需的阈值,以便Sentinel实现检测任何预期的阈值。我们通过现成的组件实现Sentinel并进行实验,以表明Sentinel仅消耗常规能量传感技术的5.2%的能量开销。通过Sentinel,我们证明了能源利用率可以提高到94.9%,胜过WISP平台中64.7%的最佳现有工作。

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