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Contention Tree-Based Access for Wireless Machine-to-Machine Networks With Energy Harvesting

机译:具有能量收集功能的无线机器对机器网络基于竞争树的访问

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In this paper, we consider a wireless machine-to-machine network composed of end-devices with energy harvesters that periodically transmit data to a gateway. While energy harvesting allows for perpetual operation, the uncertain amount of harvested energy may not guarantee fully continuous operation due to temporary energy shortages. This fact needs to be addressed at the medium access control layer. We thus investigate the performance of an energy harvesting-aware contention tree-based access (EH-CTA) protocol, which uses a tree-splitting algorithm to resolve collisions and takes energy availability into account. We derive a theoretical model to compute the probability of delivery and the time efficiency. In addition, we conduct a performance comparison of EH-CTA using an EH-aware dynamic frame slotted-ALOHA (EH-DFSA) as a benchmark. We determine the parameters that maximize performance and analyze how it is influenced by the amount of harvested energy and the number of end-devices. Results reveal the superior performance of EH-CTA over EH-DFSA. While EH-DFSA requires an estimate of the number of contending end-devices per frame to adapt the frame length, EH-CTA uses short and fixed frame lengths, which enables scalability and facilitates synchronization as the network density increases.
机译:在本文中,我们考虑了由终端设备和能量收集器组成的无线机器对机器网络,这些能量收集器会定期将数据传输到网关。虽然能量收集允许永久运行,但是由于暂时的能量短缺,不确定的收集能量数量可能无法保证完全连续运行。这个事实需要在媒体访问控制层解决。因此,我们研究了基于能量收集的基于竞争树的访问(EH-CTA)协议的性能,该协议使用树分解算法来解决冲突并考虑了能量可用性。我们导出一个理论模型来计算交付的可能性和时间效率。此外,我们以感知EH的动态帧时隙ALOHA(EH-DFSA)作为基准,对EH-CTA进行了性能比较。我们确定使性能最大化的参数,并分析其如何受到收集的能量数量和终端设备数量的影响。结果表明,EH-CTA优于EH-DFSA。虽然EH-DFSA需要估算每帧竞争终端设备的数量以适应帧长度,但是EH-CTA使用短和固定的帧长度,这可以实现可伸缩性并随着网络密度的增加而促进同步。

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