带宽压缩多载波信号的实验验证

T. Xu, I. Darwazeh
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引用次数: 3

摘要

我们全面总结了用于未来第五代(5G)应用的带宽压缩多载波波形的实验验证1。所提出的波形来源于现有的非正交多载波概念,称为频谱高效频分复用(SEFDM),其中子载波在低于符号速率的频率上非正交填充。这提高了频谱效率,但代价是自产生载波间干扰(ICI)。在这项工作中,报告了实验并在三种场景下进行了测试,包括长期演进(LTE)无线链路;毫米波光纤无线链路和光纤链路。在第一个场景中,对于给定的25 MHz带宽,SEFDM测试平台可以提供70 Mbit/s的总数据速率,而占用相同带宽的OFDM系统只能达到50 Mbit/s。在毫米波实验中,OFDM的总比特率为2.25 Gbit/s,占用1.125 GHz的带宽,在40%的带宽压缩下,SEFDM的总比特率为3.75 Gbit/s。本文介绍了两种实验光纤链路;10gbit /s直接检测光学SEFDM系统和24gbit /s相干检测SEFDM系统。类lte信号和毫米波技术非常适合为最终用户提供最后一英里通信,因为两者都可以支持无线环境中的移动性。光纤传输的光波信号将提供更高的数据速率,并支持长途通信。报告的技术,单独使用或组合使用,将对未来的无线系统设计人员感兴趣,其中带宽节省很重要,例如在5G网络中,旨在提供高容量和高移动性,同时节省频谱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental validations of bandwidth compressed multicarrier signals
We comprehensively summarize experimental validations 1 of bandwidth compressed multicarrier waveforms for future 5th generation (5G) applications. The proposed waveforms are derived from an existing non-orthogonal multicarrier concept termed spectrally efficient frequency division multiplexing (SEFDM) where sub-carriers are non-orthogonally packed at frequencies below the symbol rate. This improves the spectral efficiency at the cost of self-created inter carrier interference (ICI). In this work, experiments are reported and testing is carried out in three scenarios including long term evolution (LTE)-like wireless link; millimeter wave radio-over-fiber (RoF) link and optical fiber link. In the first scenario, for a given 25 MHz bandwidth, the SEFDM testbed can provide 70 Mbit/s gross data rate while only 50 Mbit/s can be achieved for an OFDM system occupying the same bandwidth. For the millimeter wave experiment, occupying a 1.125 GHz bandwidth, the gross bit rate for OFDM is 2.25 Gbit/s and with 40% bandwidth compression, 3.75 Gbit/s can be achieved for SEFDM. Two experimental optical fiber links are described in this work; a 10 Gbit/s direct detection optical SEFDM system and a 24 Gbit/s coherent detection SEFDM system. The LTE-like signals and millimeter wave technologies are well suited to provide last mile communications to end users as both can support mobility in wireless environments. The lightwave signals delivered by optical fibers would offer higher data rates and support long-haul communications. The reported techniques, used individually or combined, would be of interest to future wireless system designers, where bandwidth saving is of importance, such as in 5G networks, aiming to provide high capacity and high mobility, simultaneously while saving spectrum.
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