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Performance Analysis of UAV Enabled Disaster Recovery Network: A Stochastic Geometric Framework based on Matern Cluster Processes

机译:无人机启用灾难恢复网络的性能分析:基于matern聚类过程的随机几何框架

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摘要

Drones will be employed by Facebook and Google for capacity off-loading in front/back hauling scenarios utilizing drone-empowered autonomous heterogeneous networks. But in another application, drone-based, post-disaster recovery of communication networks will also be of crucial importance in the design of future smart cities. So, in order to address the design issues of these latter networks, we present (from a stochastic geometric perspective) a comprehensive statistical framework for the spatial distribution of these hybrid user-centric drone/micro cellular networks. We introduce the novel idea of using a Stenien’s cell (with variable radius) to model the region over which the drones will be distributed and the drones will effectively form a Matern cluster process (MCP) across the original network space. We then employ this newly developed framework to investigate the impact of changing several parameters on the performance of the new drone small-cell clustered networks (DSCCNs) and we develop appropriate closed-form expressions that model the performance (later validated via Monte Carlo simulations).
机译:Facebook和Google将聘用无人机,以利用无人机授权的自主异构网络在前向/后向运输方案中卸载容量。但是在另一个应用中,基于无人机的通信网络的灾后恢复在未来智能城市的设计中也将至关重要。因此,为了解决后面这些网络的设计问题,我们(从随机几何角度)提出了一个综合的统计框架,用于这些以用户为中心的混合无人机/微蜂窝网络的空间分布。我们介绍了一种新颖的想法,即使用Stenien的小室(半径可变)对无人机分布区域进行建模,这些无人机将有效地在原始网络空间上形成Matern集群过程(MCP)。然后,我们使用这个新开发的框架来研究更改几个参数对新型无人机小蜂窝集群网络(DSCCN)性能的影响,并开发出合适的封闭形式表达式来对性能进行建模(后来通过蒙特卡洛模拟进行了验证) 。

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