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REAP: Runtime Energy-Accuracy Optimization for Energy Harvesting IoT Devices

机译:REAP:能量收集物联网设备的运行时能量准确度优化

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The use of wearable and mobile devices for health and activity monitoring is growing rapidly. These devices need to maximize their accuracy and active time under a tight energy budget imposed by battery and form-factor constraints. This paper considers energy harvesting devices that run on a limited energy budget to recognize user activities over a given period. We propose a technique to co-optimize the accuracy and active time by utilizing multiple design points with different energy-accuracy trade-offs. The proposed technique switches between these design points at runtime to maximize a generalized objective function under tight harvested energy budget constraints. We evaluate our approach experimentally using a custom hardware prototype and 14 user studies. It achieves 46% higher expected accuracy and 66% longer active time compared to the highest performance design point.
机译:使用可穿戴和移动设备的健康和活动监测正在迅速增长。这些设备需要在电池和形状因子约束所施加的紧密能量预算下最大化其准确性和活跃时间。本文考虑了在有限的能源预算上运行的能源收集设备,以识别给定期的用户活动。我们提出了一种通过利用具有不同能量准确性折衷的多种设计点来共同优化精度和活性时间的技术。所提出的技术在运行时在这些设计点之间切换,以最大化在紧密收获的能量预算限制下的广义目标函数。我们使用自定义硬件原型和14个用户研究通过实验评估我们的方法。与最高性能设计点相比,它达到了预期的预期精度和66%的活动时间66%。

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