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A Stochastic Geometry Analysis of Energy Harvesting in Large Scale Wireless Networks

机译:大规模无线网络中能量收集的随机几何分析

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In this paper, the theoretical sustainable capacity of wireless networks with radio frequency (RF) energy harvesting is analytically studied. Specifically, we consider a large scale wireless network where base stations (BSs) and low power wireless devices are deployed by homogeneous Poisson point process (PPP) with different spatial densities. Wireless devices exploit the downlink transmissions from the BSs for either information delivery or energy harvesting. Generally, a BS schedules downlink transmission to wireless devices. The scheduled device receives the data information while other devices harvest energy from the downlink signals. The data information can be successfully received by the scheduled device only if the device has sufficient energy for data processing, i.e., the harvested energy is larger than a threshold. Given the densities of BSs and users, we apply stochastic geometry to analyze the expected number of users per cell and the successful information delivery probability of a wireless device, based on which the total network throughput can be derived. It is shown that the maximum network throughput per cell can be achieved under the optimal density of BSs. Extensive simulations validate the analysis.
机译:在本文中,对具有射频(RF)能量收集功能的无线网络的理论可持续容量进行了分析研究。具体来说,我们考虑一个大型无线网络,其中基站(BS)和低功率无线设备通过具有不同空间密度的同构Poisson点过程(PPP)进行部署。无线设备利用来自BS的下行链路传输来进行信息传递或能量收集。通常,BS调度到无线设备的下行链路传输。被调度的设备接收数据信息,而其他设备则从下行链路信号中获取能量。仅当设备具有足够的数据处理能量,即所收集的能量大于阈值时,调度的设备才能成功接收数据信息。给定BS和用户的密度,我们采用随机几何结构来分析每个小区的预期用户数和无线设备成功的信息传递概率,从而可以得出总的网络吞吐量。结果表明,在BS的最佳密度下,可以实现每个小区的最大网络吞吐量。广泛的仿真验证了分析。

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