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A Baseband Wireless Spectrum Hypervisor for Multiplexing Concurrent OFDM Signals

机译:用于复用并行OFDM信号的基带无线频谱管理程序

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摘要

The next generation of wireless and mobile networks will have to handle a significant increase in traffic load compared to the current ones. This situation calls for novel ways to increase the spectral efficiency. Therefore, in this paper, we propose a wireless spectrum hypervisor architecture that abstracts a radio frequency (RF) front-end into a configurable number of virtual RF front ends. The proposed architecture has the ability to enable flexible spectrum access in existing wireless and mobile networks, which is a challenging task due to the limited spectrum programmability, i.e., the capability a system has to change the spectral properties of a given signal to fit an arbitrary frequency allocation. The proposed architecture is a non-intrusive and highly optimized wireless hypervisor that multiplexes the signals of several different and concurrent multi-carrier-based radio access technologies with numerologies that are multiple integers of one another, which are also referred in our work as radio access technologies with correlated numerology. For example, the proposed architecture can multiplex the signals of several Wi-Fi access points, several LTE base stations, several WiMAX base stations, etc. As it able to multiplex the signals of radio access technologies with correlated numerology, it can, for instance, multiplex the signals of LTE, 5G-NR and NB-IoT base stations. It abstracts a radio frequency front-end into a configurable number of virtual RF front ends, making it possible for such different technologies to share the same RF front-end and consequently reduce the costs and increasing the spectral efficiency by employing densification, once several networks share the same infrastructure or by dynamically accessing free chunks of spectrum. Therefore, the main goal of the proposed approach is to improve spectral efficiency by efficiently using vacant gaps in congested spectrum bandwidths or adopting network densification through infrastructure sharing. We demonstrate mathematically how our proposed approach works and present several simulation results proving its functionality and efficiency. Additionally, we designed and implemented an open-source and free proof of concept prototype of the proposed architecture, which can be used by researchers and developers to run experiments or extend the concept to other applications. We present several experimental results used to validate the proposed prototype. We demonstrate that the prototype can easily handle up to 12 concurrent physical layers.
机译:与当前的无线和移动网络相比,下一代无线和移动网络将不得不处理流量负载的显着增加。这种情况需要新颖的方法来提高频谱效率。因此,在本文中,我们提出了一种无线频谱管理程序体系结构,该体系结构将射频(RF)前端抽象为可配置数量的虚拟RF前端。所提出的架构具有在现有无线和移动网络中实现灵活频谱访问的能力,由于有限的频谱可编程性,这是一项艰巨的任务,即系统必须更改给定信号的频谱特性以适应任意频谱的能力。频率分配。所提出的架构是一种非侵入性且经过高度优化的无线管理程序,可将几种不同的并发的基于多载波的无线电接入技术的信号与彼此为多个整数的数字多路复用,在我们的工作中也称为无线电接入与命理相关的技术。例如,所提出的架构可以多路复用多个Wi-Fi接入点,多个LTE基站,多个WiMAX基站等的信号。由于它能够多路复用具有相关命理学的无线电接入技术的信号,因此例如,复用LTE,5G-NR和NB-IoT基站的信号。它可以将射频前端抽象为可配置数量的虚拟RF前端,从而使这些不同的技术可以共享同一RF前端,从而通过使用多个网络(通过密集化)来降低成本并提高频谱效率共享相同的基础架构或通过动态访问频谱的免费块。因此,提出的方法的主要目标是通过有效利用拥挤的频谱带宽中的空白或通过基础架构共享采取网络密集化来提高频谱效率。我们用数学方法论证了我们提出的方法是如何工作的,并给出了一些仿真结果证明了其功能和效率。此外,我们设计并实现了所提议体系结构的开源免费概念证明原型,研究人员和开发人员可以使用该原型来进行实验或将该概念扩展到其他应用程序。我们提出了一些实验结果来验证所提出的原型。我们证明了该原型可以轻松处理多达12个并发的物理层。

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