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首页> 外文期刊>IEEE Transactions on Communications >Grant-Free Opportunistic Uplink Transmission in Wireless-Powered IoT: A Spatio-Temporal Model
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Grant-Free Opportunistic Uplink Transmission in Wireless-Powered IoT: A Spatio-Temporal Model

机译:无线动力IOT中无授予的机会性上行链路传输:一个时空模型

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摘要

Ambient radio frequency (RF) energy harvesting is widely promoted as an enabler for wireless-power Internet of Things (IoT) networks. This article jointly characterizes energy harvesting and packet transmissions in grant-free opportunistic uplink IoT networks energized via harvesting downlink energy. To do that, a joint queuing theory and stochastic geometry model is utilized to develop a spatio-temporal analytical model. Particularly, the harvested energy and packet transmission success probability are characterized using tools from stochastic geometry. Moreover, each device is modeled using a two-dimensional discrete-time Markov chain (DTMC). Such two dimensions are utilized to jointly track the scavenged/depleted energy to/from the batteries along with the arrival/departure of packets to/from devices buffers over time. Consequently, the adopted queuing model represents the devices as spatially interacting queues. To that end, the network performance is assessed in light of the packet throughput, the average delay, and the average buffer size. The effect of base stations (BSs) densification is discussed and several design insights are provided. The results show that the parameters for uplink power control and opportunistic channel access should be jointly optimized to maximize average network packet throughput, and hence, minimize delay.
机译:环境射频(RF)能量收集被广泛推广为无线电源的互联网(物联网)网络的启动器。本文共同特征在于通过收获下行链路能量来引用无资料机会上行链路IOT网络中的能量收集和数据包传输。为此,利用联合排队理论和随机几何模型来开发一种时空分析模型。特别地,采集的能量和分组传输成功概率使用来自随机几何形状的工具的特征表征。此外,每个设备使用二维离散时间马尔可夫链(DTMC)进行建模。这种两种尺寸用于共同跟踪可清除/耗尽的能量以及从电池到达/从设备的到达/偏离随着时间的推移。因此,所采用的排队模型表示在空间交互队列中的设备。为此,根据数据包吞吐量,平均延迟和平均缓冲区大小评估网络性能。讨论了基站(BSS)致密化的效果,提供了几种设计见解。结果表明,应联合优化上行链路功率控制和机会渠道访问的参数,以最大限度地提高平均网络包吞吐量,从而最大限度地减少延迟。

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