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Experimental analysis and simulative validation of dynamic spectrum access for coexistence of 4G and future 5G systems

机译:4G和未来5G系统共存的动态频谱接入的实验分析和仿真验证

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5G mobile networks will very likely include features that allow for a dynamic spectrum access (DSA) in order to exploit spectrum holes of a primary system. The efficient utilization of spectrum holes with minimum impairment of the primary system requires a waveform with a very low adjacent channel leakage ratio as well as robustness to time and frequency offsets. One of the approaches for new waveforms is Generalized Frequency Division Multiplexing (GFDM), a digital multi-carrier transceiver concept that employs pulse shaping filters to provide control over the transmitted signal's spectral properties. In this paper we present experimental results that evaluate the impact of the new GFDM waveform on an existing 4G system. The 4G system was based on Eurecom's OpenAirInterface for the eNB and a commercial UE. The 5G system was emulated using the LabVIEW/PXI platform with corresponding RF adapter modules from National Instruments and TUD's GFDM implementation. The experimental results show that GFDM can be used with about 5 dB higher transmit power than a corresponding orthogonal frequency division multiplexing (OFDM) system, before any impact on the primary system is noticeable. The results from our real-time measurements were validated by simulations.
机译:5G移动网络很可能会包含允许动态频谱访问(DSA)的功能,以便利用主系统的频谱漏洞。为了有效利用频谱空洞,并且对主要系统的损害最小,需要具有非常低的相邻信道泄漏率以及对时间和频率偏移的鲁棒性的波形。新波形的一种方法是通用频分复用(GFDM),它是一种数字多载波收发器概念,它采用脉冲整形滤波器来提供对发射信号频谱特性的控制。在本文中,我们介绍了评估新GFDM波形对现有4G系统的影响的实验结果。 4G系统基于Eurecom的OpenAirInterface,用于eNB和商用UE。 5G系统是使用LabVIEW / PXI平台以及National Instruments和TUD的GFDM实现的相应RF适配器模块进行仿真的。实验结果表明,与对相应的正交频分复用(OFDM)系统相比,GFDM可以使用大约5 dB高的发射功率,而对主系统的影响并不明显。我们的实时测量结果已通过仿真验证。

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