首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >All-photonic 20-MHz clock for latency monitoring in a 5G network at 10 Gbps over optical fiber
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All-photonic 20-MHz clock for latency monitoring in a 5G network at 10 Gbps over optical fiber

机译:All-Photic 20-MHz时钟,用于延迟监测5G网络中的10 Gbps在光纤下

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Innovation and advancement in technologies such as self-driving cars, machine learning, remote health and factory floor automation have led to extremely stringent next-generation communication requirements. For instance, in a self-driving car, sensor data may be streamed to a cloud-based computer. Decentralized machine learning relying on augmented data may be used to control the vehicle. Large amounts of sensor data, along with the real-time nature of the applications, demand requirements on the 5G networks needed to support applications such as this. Specifications for 5G networks require extremely low end-end latency <1 ms. This latency requirement is tenfold more stringent than the 4G requirement of <10 ms. In this paper, we present a novel clock method for tracking and monitoring 5G latency. The method is all-optical, can accurately track <1 ms latency, and is spectrally efficient. We experimentally demonstrate generation of a 10 Gbps intensity-modulated data signal with 12.3 GHz carrier frequency, embedded with 20 MHz phase-modulated clock. The signal is successfully transmitted over 26.6 km of nonzero dispersion shifted fiber (NZDSF) single-mode fiber at 1550 nm. Error-free forward error correction data transmission was archived with 12.05 dB receiver penalty. Phase noise of 40.55 dBc/Hz and 77.84 dBc/Hz were attained at 1Hz and 1 kHz offsets, respectively, for the clock. (C) 2020 Optical Society of America
机译:自动驾驶汽车、机器学习、远程健康和工厂地面自动化等技术的创新和进步导致了极其严格的下一代通信要求。例如,在自动驾驶汽车中,传感器数据可以流式传输到基于云的计算机。基于增强数据的分散式机器学习可用于控制车辆。大量传感器数据以及应用程序的实时性,要求支持此类应用程序所需的5G网络。5G网络的规范要求极低的终端延迟<1毫秒。这种延迟要求比4G<10毫秒的要求严格十倍。在本文中,我们提出了一种跟踪和监测5G延迟的新时钟方法。该方法是全光的,能够准确跟踪<1ms的延迟,并且光谱效率高。我们在实验上演示了一种10 Gbps强度调制数据信号的产生,该信号的载波频率为12.3 GHz,嵌入了20 MHz的相位调制时钟。该信号在1550 nm的非零色散位移光纤(NZDSF)单模光纤上成功传输。无差错前向纠错数据传输以12.05 dB的接收机代价存档。在1Hz和1kHz偏移下,时钟的相位噪声分别达到40.55dBc/Hz和77.84dBc/Hz。(C) 2020美国光学学会

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