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Link Scheduling in Rechargeable Wireless Sensor Networks with Harvesting Time and Battery Capacity Constraints

机译:具有收获时间和电池容量约束的可再充电无线传感器网络中的链路调度

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A link scheduler ensures the transmissions in rechargeable Wireless Sensor Networks (rWSNs) are collision-free. Hence, it plays a critical role in ensuring high network capacity and the energy used for transmission/reception is not wasted due to collisions. This paper proposes a scheduler that generates a Time Division Multiple Access link schedule for use in a rWSN. Different from most prior works, our scheduler considers the time required by each node to harvest sufficient energy to transmit/receive a packet. Further, it utilizes the more efficient Harvest-Use-Store (HUS) model and considers sensor nodes with finite battery capacity. We present a greedy heuristic that activates links according to the earliest time in which their end nodes have sufficient energy to transmit/receive a packet. Our simulation results show that the time to recharge a sensor node significantly increases the link schedule or superframe lengths; i.e., by up to 563.9% as compared to the case where sensor nodes have no energy constraint. Further, in comparison to the Harvest-Store-Use (HSU) model, using HUS can reduce superframe lengths by up to 45.3%. Our experiments also show that increasing battery capacity does not effect the superframe length significantly; i.e., it reduces the length only by up to 2.5%. Finally, our proposed heuristic can generate superframe lengths that are on average 23% longer as compared to the lower bound on the superframe length when nodes have energy constraint.
机译:链接调度程序可确保可充电无线传感器网络(RWSN)中的传输无碰撞。因此,在确保高网络容量中起着关键作用,并且由于碰撞而不会浪费用于传输/接收的能量。本文提出了一个调度程序,它生成用于RWSN的时分多址链接计划。我们的调度程序与大多数事先有关不同,我们的调度程序考虑每个节点收获足够的能量来传输/接收数据包所需的时间。此外,它利用更有效的收获 - 使用 - 商店(HUS)模型,并考虑具有有限电池容量的传感器节点。我们提出了一种贪婪的启发式,根据最早的时间激活链接,其中他们的终点节点具有足够的能量来传输/接收数据包。我们的仿真结果表明,充电传感器节点的时间显着增加了链路时间表或超帧长;即,与传感器节点没有能量约束的情况相比,高达563.9 %。此外,与收获储存使用(HSU)模型相比,使用HUS可以将超帧长度降低至45.3 %。我们的实验还表明,增加电池容量不会显着影响超框架;即,它只需将长度降低到2.5 %。最后,当节点具有能量约束时,我们提出的启发式可以生成平均23 %更长的超帧长。

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