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Towards Energy Efficient LPWANs through Learning-based Multi-hop Routing

机译:通过基于学习的多跳路由来实现节能LPWANS

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Low-power wide area networks (LPWANs) have been identified as one of the top emerging wireless technologies due to their autonomy and wide range of applications. Yet, the limited energy resources of battery-powered sensor nodes is a top constraint, especially in single-hop topologies, where nodes located far from the base station must conduct uplink (UL) communications in high power levels. On this point, multi-hop routings in the UL are starting to gain attention due to their capability of reducing energy consumption by enabling transmissions to closer hops. Nonetheless, a priori identifying energy efficient multi-hop routings is not trivial due to the unpredictable factors affecting the communication links in large LPWAN areas. In this paper, we propose epsilon multi-hop (EMH), a simple reinforcement learning (RL) algorithm based on epsilon-greedy to enable reliable and low consumption LPWAN multi-hop topologies. Results from a real testbed show that multi-hop topologies based on EMH achieve significant energy savings with respect to the default single-hop approach, which are accentuated as the network operation progresses.
机译:由于其自主性和广泛的应用,低功耗广域网(LPWANS)已被识别为顶级新兴无线技术之一。然而,电池供电的传感器节点的有限能量资源是顶部约束,特别是在单跳拓扑中,其中位于远离基站的节点必须在高功率水平中传导上行链路(UL)通信。在这一点上,UL中的多跳路线由于它们通过使传输到较近的啤酒花而减少能量消耗而开始引起的注意。尽管如此,由于影响大型LPWAN地区的通信链路的不可预测因素,因此先验识别节能多跳路线并不琐碎。在本文中,我们提出了一种基于epsilon-roley的简单强化学习(RL)算法的epsilon多跳(EMH),以实现可靠和低消耗LPWAN多跳拓扑。 Real Test Bed的结果表明,基于EMH的多跳拓扑相对于默认单跳方法,可以节省显着的节能,随着网络运行进展而被突出。

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