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All-optical flexible 5G signal generation and transmission for spectrum resource optimization

机译:全光柔性5G信号产生和频谱资源优化的传输

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As available spectrum gets congested by different applications, spectral efficiency can be enhanced through spectrum sharing and coexistence. In this paper, we demonstrate the idea of spectrum sharing and coexistence by using optical heterodyning as a flex-spectrum photonic RF transmitter. Flexibility was achieved by tuning the RF carrier frequency from 1-5 GHz, frequencies around two spectra from a commercial telecom antenna and from a radio astronomy observatory area. We compared the spectrum of our adopted flex-spectrum photonic RF transmitter with these two practical spectra. This allowed us to demonstrate the feasibility of our adopted photonic RF transmitter to coexist with these distinct spectra. Results indicated that it is feasible to use these adopted photonic transmitters in different application environments for coexistence and spectrum sharing. Error-free 26 km fiber transmission was achieved at 2.1 Gbps and 8.5 Gbps. This further showed the feasibility of these photonic RF transmitters for controlled transfer of different data signals relating to different applications using the same RF channel. (C) 2020 Optical Society of America
机译:随着可用频谱因不同应用而变得拥挤,可以通过频谱共享和共存来提高频谱效率。在本文中,我们通过使用光外差作为柔性光谱光子射频发射机来演示频谱共享和共存的思想。灵活性是通过从1-5 GHz调谐射频载波频率实现的,频率约为商用电信天线和射电天文观测区域的两个频谱。我们将所采用的flex光谱光子射频发射机的频谱与这两种实际频谱进行了比较。这使我们能够证明我们采用的光子射频发射机与这些不同光谱共存的可行性。结果表明,在不同的应用环境下,采用这些光子发射机实现共存和频谱共享是可行的。以2.1 Gbps和8.5 Gbps的速率实现了26公里的无差错光纤传输。这进一步证明了这些光子射频发射机在使用同一射频信道控制传输与不同应用相关的不同数据信号方面的可行性。(C) 2020美国光学学会

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