室内小小区毫米波频谱5G NR-U (New Radio unlicensing)共存概述及机制

Rony Kumer Saha
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引用次数: 2

摘要

在本文中,我们首先概述了蜂窝与IEEE 802.11技术在未授权频段中的共存。然后,我们提出了位于建筑物内的第五代(5G)无牌新无线电(NR-U)小基站的共存机制,以与IEEE 802.11ad/ay共存,也称为无线千兆(WiGig)。小型蜂窝在60 GHz未授权和28 GHz授权毫米波(mmW)频段中启用双频。我们开发了一种时域干扰避免方案,以避免建筑内NR-U小单元和WiGig接入点(ap)之间的共信道干扰(CCI)。然后,我们得出平均容量,频谱效率(SE),和能源效率(EE)性能指标的建筑内的小细胞。广泛的系统级数值和模拟结果以及对NR- u的多种变体进行了分析,包括NR独立、NR- u独立和NR- u锚定。我们还用WiGig算子分析了多个NR-U锚定算子的两个毫米波频谱空间重用的影响。结果表明,NR-U锚定提供了最佳的平均容量和EE性能,而NR-U独立提供了最佳的SE性能。此外,NR-U锚定小单元毫米波频谱的垂直空间复用水平和水平空间复用水平都能提高其SE和EE性能。最后,通过选择合适的垂直和水平空间重用因子值,所提出的共存机制可以实现未来第六代(6G)移动网络的预期SE和EE需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Overview and Mechanism for the Coexistence of 5G NR-U (New Radio Unlicensed) in the Millimeter-Wave Spectrum for Indoor Small Cells
In this paper, we first give an overview of the coexistence of cellular with IEEE 802.11 technologies in the unlicensed bands. We then present a coexistence mechanism for Fifth-Generation (5G) New Radio on Unlicensed (NR-U) small cells located within buildings to coexist with the IEEE 802.11ad/ay, also termed as Wireless Gigabit (WiGig). Small cells are dual-band enabled operating in the 60 GHz unlicensed and 28 GHz licensed millimeter-wave (mmW) bands. We develop an interference avoidance scheme in the time domain to avoid cochannel interference (CCI) between in-building NR-U small cells and WiGig access points (APs). We then derive average capacity, spectral efficiency (SE), and energy efficiency (EE) performance metrics of in-building small cells. Extensive system-level numerical and simulation results and analyses are carried out for a number of variants of NR-U, including NR standalone, NR-U standalone, and NR-U anchored. We also analyze the impact of the spatial reuse of both mmW spectra of multiple NR-U anchored operators with a WiGig operator. It is shown that NR-U anchored provides the best average capacity and EE performances, whereas NR-U standalone provides the best SE performance. Moreover, both vertical spatial reuse intrabuilding level and horizontal spatial reuse interbuilding level of mmW spectra in small cells of an NR-U anchored can improve its SE and EE performances. Finally, we show that by choosing appropriate values of vertical and horizontal spatial reuse factors, the proposed coexistence mechanism can achieve the expected SE and EE requirements for the future Sixth-Generation (6G) mobile networks.
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