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用于增强下一代无人机辅助物联网网络的定制毫米波信道模型

Customized Millimeter Wave Channel Model for Enhancement of Next-Generation UAV-Aided Internet of Things Networks.

作者信息

Altheeb Faisal, Elshafiey Ibrahim, Altamimi Majid, Sheta Abdel-Fattah A

机构信息

Electrical Engineering Department, King Saud University, Riyadh 12372, Saudi Arabia.

出版信息

Sensors (Basel). 2024 Feb 27;24(5):1528. doi: 10.3390/s24051528.

Abstract

The success of next-generation Internet of Things (IoT) applications could be boosted with state-of-the-art communication technologies, including the operation of millimeter-wave (mmWave) bands and the implementation of three-dimensional (3D) networks. With some access points (APs) mounted on unmanned aerial vehicles (UAVs), the probability of line-of-sight (LoS) connectivity to IoT nodes could be augmented to address the high path loss at mmWave bands. Nevertheless, system optimization is essential to maintaining reliable communication in 3D IoT networks, particularly in dense urban areas with elevated buildings. This research adopts the implementation of a geometry-based stochastic channel model. The model customizes the standard clustered delay line (CDL) channel profile based on the environmental geometry of the site to obtain realistic performance and optimize system design. Simulation validation is conducted based on the actual maps of highly dense urban areas to demonstrate that the proposed approach is comprehensive. The results reveal that the use of standard channel models in the analysis introduces errors in the channel quality indicator (CQI) that can exceed 50% due to the effect of the environmental geometry on the channel profile. The results also quantify accuracy improvements in the wireless channel and network performance in terms of the CQI and downlink (DL) throughput.

摘要

采用包括毫米波(mmWave)频段运行和三维(3D)网络实施在内的先进通信技术,可以推动下一代物联网(IoT)应用的成功。通过在无人驾驶飞行器(UAV)上安装一些接入点(AP),可以增加与物联网节点视距(LoS)连接的概率,以解决毫米波频段的高路径损耗问题。然而,系统优化对于在3D物联网网络中维持可靠通信至关重要,特别是在建筑物林立的密集城市地区。本研究采用基于几何的随机信道模型。该模型根据站点的环境几何结构定制标准的聚类延迟线(CDL)信道剖面,以获得实际性能并优化系统设计。基于高度密集城市地区的实际地图进行仿真验证,以证明所提出的方法具有全面性。结果表明,由于环境几何结构对信道剖面的影响,在分析中使用标准信道模型会在信道质量指标(CQI)中引入超过50%的误差。结果还从CQI和下行链路(DL)吞吐量方面量化了无线信道和网络性能的精度提升。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b335/10935234/ffc5e62a195e/sensors-24-01528-g001.jpg

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