基于持久沙漏时钟的网络同步精度研究

Eren Çürük, K. Yıldırım, P. Pawełczak, Josiah D. Hester
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引用次数: 4

摘要

无电池传感器节点仅使用从环境中获取的能量进行计算、感知和通信。这些设备承诺在难以部署的情况下长期免维护运行,使其成为电池供电无线传感器网络的有吸引力的替代品。然而,由于环境能量不可预测而导致的频繁电力故障的复杂性阻碍了网络的稳健运行。与连续供电的系统不同,间歇供电的无电池节点在每次重新启动时都会丢失时间,以及所有易失性内存,这使得同步和协调变得困难。在本文中,我们考虑的情况下,每个无电池传感器配备一个沙漏电容器,以估计电力故障之间的经过时间。与之前专注于为单个无电池传感器提供连续时间概念的工作相反,我们考虑了一个无电池传感器网络,并探索如何提供一个网络范围的、连续的和同步的时间概念。首先,我们建立了一个数学模型,用沙漏电容表示估计的停电间隔时间。这使我们能够模拟单个无电池节点的本地(和连续)时间。其次,我们通过模拟展示了沙漏电容器的影响,以及在无电池设备网络中无线传感器网络中最先进的同步协议的性能下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the Accuracy of Network Synchronization Using Persistent Hourglass Clocks
Batteryless sensor nodes compute, sense, and communicate using only energy harvested from the ambient. These devices promise long maintenance free operation in hard to deploy scenarios, making them an attractive alternative to battery-powered wireless sensor networks. However, complications from frequent power failures due to unpredictable ambient energy stand in the way of robust network operation. Unlike continuously-powered systems, intermittently-powered batteryless nodes lose their time upon each reboot, along with all volatile memory, making synchronization and coordination difficult. In this paper, we consider the case where each batteryless sensor is equipped with a hourglass capacitor to estimate the elapsed time between power failures. Contrary to prior work that focused on providing a continuous notion of time for a single batteryless sensor, we consider a network of batteryless sensors and explore how to provide a network-wide, continuous, and synchronous notion of time. First, we build a mathematical model that represents the estimated time between power failures by using hourglass capacitors. This allowed us to simulate the local (and continuous) time of a single batteryless node. Second, we show--through simulations--the effect of hourglass capacitors and in turn the performance degradation of the state of the art synchronization protocol in wireless sensor networks in a network of batteryless devices.
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