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System Performance Analysis for an Energy Harvesting IoT System Using a DF/AF UAV-Enabled Relay with Downlink NOMA under Nakagami-

机译:使用DF / AF UV的中继与Nakagami下的下行链路NOMA的能量收集IOT系统的系统性能分析 -

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摘要

This paper investigates system performance in the Internet of Things (IoT) with an energy harvesting (EH) unmanned aerial vehicle (UAV)-enabled relay under Nakagami-m fading, where the time switching (TS) and adaptive power splitting (APS) protocols are applied for the UAV. Our proposed system model consists of a base station (BS), two IoT device (ID) clusters (i.e., a far cluster and a near cluster), and a multiantenna UAV-enabled relay (UR). We adopt a UR-aided TS and APS (U-TSAPS) protocol, in which the UR can dynamically optimize the respective power splitting ratio (PSR) according to the channel conditions. To improve the throughput, the nonorthogonal multiple access (NOMA) technique is applied in the transmission of both hops (i.e., from the BS to the UR and from the UR to the ID clusters). The U-TSAPS protocol is divided into two phases. In the first phase, the BS transmits a signal to the UR. The UR then splits the received signal into two streams for information processing and EH using the APS scheme. In the second phase, the selected antenna of the UR forwards the received signal to the best far ID (BFID) in the far cluster and the best near ID (BNID) in the near cluster using the decode-and-forward (DF) or amplify-and-forward (AF) NOMA scheme. We derive closed-form expressions for the outage probabilities (OPs) at the BFID and BNID with the APS ratio under imperfect channel state information (ICSI) to evaluate the system performance. Based on these derivations, the throughputs of the considered system are also evaluated. Moreover, we propose an algorithm for determining the nearly optimal EH time for the system to minimize the OP. In addition, Monte Carlo simulation results are presented to confirm the accuracy of our analysis based on simulations of the system performance under various system parameters, such as the EH time, the height and position of the UR, the number of UR antennas, and the number of IDs in each cluster.
机译:本文通过在Nakagami-M褪色下,通过能量收集(EOT)中的信息(EOT)中的系统性能(IOT),在NAKAGAMI-M衰落下,其中时间切换(TS)和自适应电源分裂(APS)协议适用于无人机。我们所提出的系统模型包括基站(BS),两个物联网设备(ID)集群(即,远端和近群),以及支持多个中的继电器(UR)。我们采用UR-Aided TS和AP(U-TSAPS)协议,其中您可以根据信道条件动态地优化各个功率分割比(PSR)。为了提高吞吐量,非正常的多次访问(NOMA)技术应用于跳跃(即,从BS到UR和UR到ID集群的传输)。 U-TSAPS协议分为两个阶段。在第一阶段中,BS将信号发送到UR。然后,使用APS方案将接收信号分成两个流,以用于信息处理和EH。在第二阶段中,UR的所选天线将接收的信号转发到远端中的最佳远端ID(BFID)和近簇中的最佳近ID(BNID)使用解码和转发(DF)或扩增和向前(AF)NOMA方案。我们在BFID处的中断概率(OPS)的封闭式表达式,并在不完美的信道状态信息(ICSI)下具有APS比率的BNID,以评估系统性能。基于这些衍生,还评估了所考虑的系统的吞吐量。此外,我们提出了一种确定用于确定系统最小化OP的近最佳EH时间的算法。此外,蒙特卡罗仿真结果表明,根据各种系统参数下的系统性能模拟,确认我们分析的准确性,例如EH时间,UR的高度和位置,UR天线的数量,以及每个群集中的ID数量。

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