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Spatial and Temporal Channel Characteristics of 5G 3D Channel Model with Beamforming for User Mobility Investigations

机译:用于用户移动性调查的具有波束成形的5G 3D信道模型的时空信道特性

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High carrier frequencies are an integral part of the upcoming 5G mobile networks due to the available larger transmission bandwidths that offer high data rates and increase the quality of experience. To compensate for the high path loss at these frequencies, beamforming is applied, resulting in users connecting and switching between beams of the same or different cells. The current 3D channel models proposed for 5G are complex and have high computational complexity when used in user mobility investigations, which typically require long simulation time for collecting a statistically sufficient number of mobility events. From that perspective, simplified and computationally efficient channel models need to be developed that capture the relevant spatial and temporal correlations. Hence, the characteristics of the channel at these frequencies are investigated in this article for 28 GHz with respect to fast fading power envelope distribution, temporal variations, and spatial correlations among beams of the same cell. The investigations are carried out by simulating the 3GPP channel model defined in TR 38.901. Results reveal that for non-line-of-sight scenarios the beam signals follow, to some extent, similar statistical distribution and properties as conventional channel models (e.g., Jakes Doppler spectrum and Chi-square distribution for fast fading power envelope [1, 2]). Nevertheless, the distribution of the fast fading power envelope and autocorrelation function need to be adapted to consider the diversity gain resulting from multi-path and the increase in coherence time. The latter is caused by applying sectorization and beamforming that distort the uniform distribution of angle of arrival for the received ray, which may result in a reduced Doppler spread. Moreover, it has been shown that there is a spatial correlation between beams of the same cell, especially among those that are candidates for serving a user.
机译:高载波频率是即将到来的5G移动网络不可或缺的一部分,这是因为可用的较大传输带宽可提供高数据速率并提高体验质量。为了补偿这些频率下的高路径损耗,应用了波束成形,导致用户在相同或不同小区的波束之间进行连接和切换。当用于用户移动性调查时,为5G提出的当前3D信道模型很复杂并且具有很高的计算复杂性,通常需要很长的仿真时间来收集统计上足够数量的移动性事件。从这个角度来看,需要开发简化的且计算效率高的通道模型,以捕获相关的空间和时间相关性。因此,本文针对28 GHz在这些频率下的信道特性进行了研究,涉及的是快速衰落功率包络分布,时间变化以及同一小区波束之间的空间相关性。通过模拟TR 38.901中定义的3GPP信道模型来进行研究。结果表明,对于非视线场景,波束信号在某种程度上遵循与常规信道模型相似的统计分布和属性(例如,用于快速衰落功率包络的Jakes Doppler频谱和卡方分布[1、2 ])。然而,需要调整快速衰落功率包络和自相关函数的分布,以考虑多径导致的分集增益和相干时间的增加。后者是由应用扇区化和波束成形导致的,该扇区化和波束成形使接收到的射线的入射角的均匀分布变形,这可能导致多普勒扩散减小。此外,已经表明,在同一小区的波束之间,特别是在为用户服务的候选波束之间,存在空间相关性。

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