Channel Propagation Characteristics on the Performance of 4G Cellular Systems from High Altitude Platforms (HAPs)

Kabiru Yusuf, D. S. Shuaibu, S. A. Babale
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Abstract

In this paper, we investigated the effect of different channel propagation characteristics on the performance of 4G systems from high altitude platforms (HAPs). The use of High-Altitude Platforms for communication purpose in the past focused mostly on the assumption that the platform is quasi stationary. The technical limitation of the assumption was that of ensuring stability in the positioning of the platform in space. The use of antenna steering and other approaches were proposed as a solution to the said problem. In this paper, we proposed a channel model which account for the motion of the platform. This was done by investigating the effect of Doppler shift on the carrier frequency as the signals propagate between the transmitter and receiver while the High-Altitude Platform is in motion. The basic free space model was used and subjected to the frequency variation caused by the continuous random shift due to the motion of the HAPs. The trajectory path greatly affects the system performance. A trajectory of 30km, 100km and 500km radii were simulated. An acute elevation angle was used in the simulation. The proposed model was also compared to two other channel models to illustrate its performance. The results show that the proposed model behave similar to the existing models except at base station ID 35 and 45 where the highest deviation of 20dBm was observed. Other stations that deviated were less than 2dBm.
信道传播特性对高原4G蜂窝系统性能的影响
在本文中,我们研究了不同信道传播特性对来自高空平台(HAPs)的4G系统性能的影响。过去使用高空平台进行通信主要集中在假定平台是准静止的。这一假设的技术限制在于无法确保平台在空间中的定位稳定性。提出了利用天线转向和其他方法来解决上述问题。在本文中,我们提出了一个考虑平台运动的通道模型。这是通过研究信号在发射机和接收机之间传播时多普勒频移对载波频率的影响来完成的,而高空平台处于运动状态。采用基本自由空间模型,并对其运动引起的连续随机位移引起的频率变化进行了分析。弹道路径对系统性能影响很大。模拟了半径为30公里、100公里和500公里的弹道。仿真中采用锐角俯仰角。本文还将该模型与另外两种信道模型进行了比较,以说明其性能。结果表明,除了在基地台ID 35和基地台ID 45处观测到的最大偏差为20dBm外,所提模型的性能与现有模型相似。其他电台的偏差小于2dBm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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