NB-IoT的两层架构:改善覆盖和负载均衡

Pol Serra i Lidón, G. Caso, L. D. Nardis, Alireza Mohammadpour, Eljona Zanaj, Maria-Gabriella Di Benedetto
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引用次数: 2

摘要

在大规模机器类型通信(mMTC)的背景下,3GPP在第13版中引入了窄带物联网(NB-IoT)标准,该标准似乎特别适合上行链路、容忍延迟的低速率通信。一方面,为了与现有的4G蜂窝系统兼容,同时也被设想为下一个5G的主要参与者,NB-IoT是在现有的异构架构上开发的,由多个重叠的层(HetNets)组成,例如宏蜂窝和小蜂窝。另一方面,为了提高恶劣环境下的覆盖和连接可靠性,NB-IoT采用了自己的覆盖增强(CE)技术,主要基于信号重复程序,从而质疑在这种新的通信场景中是否需要低级层。本文分析了NB-IoT在HetNets系统中的性能,考虑了其具体特性,以及它们如何与多层架构相结合。通过适当调整ns-3模拟器以适应NB-IoT场景,通过仿真进行了分析。结果表明,使用两层专用架构与NB-IoT CE技术很好地结合在一起,提高了系统效率和覆盖范围,同时还触发了改进的负载平衡。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Two-tier Architecture for NB-IoT: Improving Coverage and Load Balancing
In the context of massive Machine Type Communication (mMTC), 3GPP has introduced in Release 13 the Narrowband-IoT (NB-IoT) standard, that appears particularly suitable for uplink, delay-tolerant low-rate communications. On the one hand, being compatible with the existing 4G cellular systems, and also envisioned as a primary player in next 5G, NB-IoT is developed upon the existing heterogeneous architecture, formed by several overlapping tiers (HetNets), e.g. macro and small cells. On the other hand, in order to improve coverage and connection reliability in harsh environments, NB-IoT adopts its own coverage enhancement (CE) techniques, mainly based on signal repetition procedures, thus questioning the need of low-level tiers in such new communication scenario. This paper analyzes the performance of NB-IoT in a HetNets system, taking into account its specific features, and how they combine with a multi-tier architecture. The analysis is carried out by simulation, via proper adaptation of ns-3 simulator to the NB-IoT scenario. Results show that the use of a 2-tier dedicated architecture nicely combines with the NB-IoT CE technique, boosting system efficiency and coverage, while also triggering improved load balancing.
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