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System design of the physical layer for Loon's high-altitude platform

机译:LOON高空平台物理层的系统设计

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This paper describes several aspects of the physical layer and over the air interface of Loon. Loon utilizes stratospheric balloon-based high-altitude platforms (HAPs) that use Long-Term Evolution (LTE) to connect people with standard User Equipment (UEs) to the Internet. In particular, topics covered include the Loon prototype eNodeB (eNB) antenna pattern, the observed channel, UE battery life, and coexistence with terrestrial networks using the same spectrum. While channel models from a HAP to the ground have been well studied in the past, the use of polarization diversity to establish Multi-Input Multi-Output (MIMO) communication to real UEs below 1 GHz has not. In addition, a theoretical analysis of terrestrial coexistence and an analysis of the estimated impact on UE battery life when communicating with HAPs are presented. Finally, results from several measurement campaigns and from experiments with polarization diversity are presented as a spot check of theory.
机译:本文介绍了物理层的几个方面以及LOON的空中界面。 Loon利用基于地段气球的高空平台(HAPS),该平台使用长期演进(LTE)将带标准用户设备(UE)的人们连接到Internet。 特别是,覆盖的主题包括Loon原型eNodeB(eNB)天线图案,观察到的通道,UE电池寿命和使用相同光谱与地面网络共存。 虽然从HAP到地面的频道模型已经很好地研究了过去,但是使用偏振变化来建立多输入多输出(MIMO)通信到1 GHz以下的真实UE。 此外,介绍了陆地共存的理论分析及对与哈普郡通信时对UE电池寿命的估计影响的理论分析。 最后,通过几种测量活动和极化分集的实验结果作为理论的点检查。

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