提高ns-3 IEEE 802.11ad模型保真度:波束码本、多天线波束成形训练和准确定性毫米波信道

Hany Assasa, Joerg Widmer, T. Ropitault, N. Golmie
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引用次数: 22

摘要

预计下一代无线局域网将服务于具有异构功能和服务需求的大量设备。毫米波技术有望满足这些需求,并补充在6 GHz以下频段运行的高度拥塞的无线网络。然而,由于所需的大量资源及其相关成本,使用毫米波通信的实际实验并不总是可行的。由于这些原因,研究人员求助于高保真系统级模拟器,它提供了高度的灵活性,可以在物理层以合理的抽象级别测试复杂的网络部署。ns-3 IEEE 802.11ad模型允许研究人员研究在60ghz频段运行的大规模无线网络,同时考虑到该标准支持的所有基本功能。然而,目前实现的波束形成能力仍然缺乏商用货架设备所提供的灵活性和敏捷性。此外,该模型依赖于简化的信道模型,该模型不能准确反映毫米波信道的特性。在本文中,我们用新特性增强了ns-3 IEEE 802.11ad模型,增强了其保真度,并为用户提供了对802.11ad设备的物理和MAC层方面的细粒度控制。这些特性包括波束码本、多天线波束形成训练、波束细化和波束跟踪能力,以及准确定性信道模型。我们的工作为下一代无线千兆标准IEEE 802.11ay的未来实现铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing the ns-3 IEEE 802.11ad Model Fidelity: Beam Codebooks, Multi-antenna Beamforming Training, and Quasi-deterministic mmWave Channel
Next generation wireless local area networks are envisioned to serve a high number of devices with heterogeneous capabilities and service requirements. Millimeter-wave technology is expected to be able to satisfy these demands and complement the highly congested wireless networks operating in the sub-6 GHz band. However, real-world experimentation with millimeter-wave communications is not always feasible due to the significant amount of resources required and its associated costs. For these reasons, researchers resort to high fidelity system-level simulators which provide a high degree of flexibility to test complex network deployments with a reasonable level of abstraction at the physical layer. The ns-3 IEEE 802.11ad model allows researchers to study large-scale wireless networks operating in the 60 GHz band, taking into account all of the essential features supported by the standard. However, the beamforming capabilities in the current implementation still lack both the flexibility and the agility that commercial of-the-shelf devices offer. Additionally, the model relies on a simplified channel model that does not accurately reflect the characteristics of a millimeter-wave channel. In this paper, we augment our ns-3 IEEE 802.11ad model with novel features that enhance its fidelity and provide the user fine grained control over physical and MAC layer aspects of 802.11ad devices. These features include beam codebooks, multi-antenna beamforming training, beam refinement and beam tracking capabilities, and a quasi-deterministic channel model. Our work paves the way for a future implementation of the next generation wireless gigabit standard, IEEE 802.11ay.
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