Indoor Deterministic Simulations and Statistical Modeling at Sub-THz Frequencies for Future Wireless Networks

IF 3.5 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC
Nektarios Moraitis;Konstantina S. Nikita
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Abstract

Next generation wireless networks will necessitate new and wide spectrum swaths able to accommodate and support Tb/s applications and services. In this regard, frequencies above 100 GHz are anticipated to be allocated, which requires a thorough analysis of the propagation characteristics at those segments. This article presents a detailed analysis of the indoor channel at sub-THz frequencies, modeling its temporal and spatial characteristics for line-of-sight (LOS) and non-line-of-sight (NLOS) conditions, relying on extensive deterministic simulations. According to the results, frequency selective characteristics are revealed. The obtained root-mean-square delay spread is in the range of 4.4–10.3 ns for LOS, and 6.9–18.8 ns for NLOS scenarios, respectively. A high spatial degree of freedom is also observed based on the increased azimuth spreads with a mean value of 57.4° for LOS, and 88.1° for NLOS locations, which is associated with the environment geometry. All the large-scale features of the channel exhibit a linear variation with distance, whereas according to the Gini Index and K-factor analysis, a channel with limited sparsity is encountered, especially in NLOS scenarios. Furthermore, the spatial coherence of the channels’ attributes is also assessed and modeled using an exponential decaying sinusoid relationship. A faster channel decoherence is observed in NLOS locations. Finally, the temporal and spatial properties of the channel are modeled statistically, delivering its related features that include the ray and cluster decaying rates, the inter-arrival delays, the azimuth and elevation angle-of-arrivals, and the cluster and ray occurrence.
未来无线网络在次太赫兹频率下的室内确定性模拟和统计建模
下一代无线网络将需要能够容纳和支持Tb/s应用和服务的新型宽频谱。在这方面,预计将分配100千兆赫以上的频率,这需要对这些频段的传播特性进行彻底分析。本文对亚太赫兹频率下的室内信道进行了详细分析,并基于广泛的确定性模拟,对其视距(LOS)和非视距(NLOS)条件下的时空特征进行了建模。根据结果,揭示了频率选择特性。得到的均方根延迟扩展在LOS场景下为4.4-10.3 ns,在NLOS场景下为6.9-18.8 ns。基于方位角扩展的增加,还观察到高空间自由度,LOS位置的平均值为57.4°,NLOS位置的平均值为88.1°,这与环境几何形状有关。通道的所有大尺度特征都随距离呈线性变化,而根据基尼指数和k因子分析,通道的稀疏度有限,特别是在NLOS场景中。此外,通道属性的空间相干性也被评估,并使用指数衰减正弦波关系建模。在NLOS位置观察到更快的信道退相干。最后,对通道的时间和空间特性进行统计建模,提供相关特征,包括射线和簇的衰减率、到达间延迟、到达的方位角和仰角以及簇和射线的出现。
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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来源期刊
CiteScore
6.50
自引率
12.50%
发文量
90
审稿时长
8 weeks
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