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Self-Sustainable Communications With RF Energy Harvesting: Ginibre Point Process Modeling and Analysis

机译:具有射频能量收集功能的自我可持续通信:吉尼伯雷点过程建模和分析

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RF-enabled wireless power transfer and energy harvesting has recently emerged as a promising technique to provision perpetual energy replenishment for low-power wireless networks. The network devices are replenished by the RF energy harvested from the transmission of ambient RF transmitters, which offers a practical and promising solution to enable self-sustainable communications. This paper adopts a stochastic geometry framework based on the Ginibre model to analyze the performance of self-sustainable communications over cellular networks with general fading channels. Specifically, we consider the point-to-point downlink transmission between an access point and a battery-free device in the cellular networks, where the ambient RF transmitters are randomly distributed following a repulsive point process, called Ginibre -determinantal point process (DPP). Two practical RF energy harvesting receiver architectures, namely time-switching and power-splitting, are investigated. We perform an analytical study on the RF-powered device and derive the expectation of the RF energy harvesting rate, the energy outage probability and the transmission outage probability over Nakagami- fading channels. These are expressed in terms of so-called Fredholm determinants, which we compute efficiently with modern techniques from numerical analysis. Our analytical results are corroborated by the numerical simulations, and the efficiency of our approximations is demonstrated. In practice, the accurate simulation of any of the Fredholm determinant appearing in the manuscript is a matter of seconds. An interesting finding is that a smaller value of (corresponding to larger repulsion) yields a better transmission outage performance when the density of the ambient R- transmitters is small. However, it yields a lower transmission outage probability when the density of the ambient RF transmitters is large. We also show analytically that the power-splitting architecture outperforms the time-switching architecture in terms of transmission outage performances. Lastly, our analysis provides guidelines for setting the time-switching and power-splitting coefficients at their optimal values.
机译:启用射频的无线电力传输和能量收集最近成为一种有前途的技术,可以为低功率无线网络提供永久的能量补充。网络设备通过从周围RF发射机的传输中获取的RF能量进行补充,这为实现自我可持续的通信提供了一种实用且有希望的解决方案。本文采用基于Ginibre模型的随机几何框架,以分析具有一般衰落信道的蜂窝网络上的自持通信性能。具体来说,我们考虑了蜂窝网络中接入点和无电池设备之间的点对点下行链路传输,其中环境RF发射器是在称为Ginibre点决定点过程(DPP)的排斥点过程之后随机分布的。研究了两种实用的射频能量采集接收机架构,即时间切换和功率分配。我们对射频供电的设备进行了分析研究,并得出了对中波衰落信道上射频能量采集速率,能量中断概率和传输中断概率的期望。这些用所谓的Fredholm行列式表示,我们可以使用现代技术通过数值分析有效地进行计算。数值模拟证实了我们的分析结果,并证明了逼近的效率。在实践中,稿件中出现的任何Fredholm行列式的精确模拟仅需几秒钟。一个有趣的发现是,当环境R-发射器的密度较小时,较小的值(对应于较大的斥力)会产生更好的传输中断性能。然而,当周围RF发射器的密度大时,产生较低的发射中断概率。我们还分析地表明,就传输中断性能而言,功率分配架构的性能优于时间切换架构。最后,我们的分析为将时间切换和功率分解系数设置为最佳值提供了指导。

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