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Dense SDM (12-Core 3-Mode) Transmission Over 527 km With 33.2-ns Mode-Dispersion Employing Low-Complexity Parallel MIMO Frequency-Domain Equalization

机译:采用低复杂度并行MIMO频域均衡技术,在33.2 ns模式色散下,在527 km上进行密集SDM(12核3模式)传输

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摘要

We propose long-haul space-division-multiplexing (SDM) transmission systems employing parallel multiple-input multiple-output (MIMO) frequency-domain equalization (FDE) and transmission fiber with low differential mode delay (DMD). We first discuss the advantages of parallel MIMO FDE technique in long-haul SDM transmission systems in terms of the computational complexity, and then, compare the complexity required for parallel MIMO FDE as well as the conventional time-domain equalization techniques. Proposed parallel MIMO FDE that employs low baud rate multicarrier signal transmission with a receiver-side FDE enables us to compensate for 33.2-ns DMD with considerably low-computational complexity. Next, we describe in detail the newly developed fiber and devices we used in the conducted experiments. A graded-index (GI) multicore few-mode fiber (MC-FMF) suppressed the accumulation of DMD as well as intercore crosstalk. Mode dependent loss/gain effect was also mitigated by employing both a ring-core FM erbium-doped fiber amplifier and a free-space optics type gain equalizer. By combining these advanced techniques together, we finally demonstrate 12-core 3-mode dense SDM transmission over 527-km GI MC-FMF without optical DMD management.
机译:我们提出了采用并行多输入多输出(MIMO)频域均衡(FDE)和低差模延迟(DMD)的传输光纤的长距离空分复用(SDM)传输系统。我们首先从计算复杂度的角度讨论了远程MIMO FDE技术在远程SDM传输系统中的优势,然后比较了并行MIMO FDE和传统的时域均衡技术所需的复杂性。提议的并行MIMO FDE采用低波特率多载波信号传输和接收器侧FDE,使我们能够以相当低的计算复杂度补偿33.2 ns DMD。接下来,我们将详细介绍我们在进行的实验中使用的新开发的光纤和设备。渐变指数(GI)多芯少模光纤(MC-FMF)抑制了DMD的积累以及芯间串扰。通过使用环形芯FM掺b光纤放大器和自由空间光学类型的增益均衡器,还可以减轻与模式有关的损耗/增益效应。通过将这些先进技术结合在一起,我们最终展示了在没有光学DMD管理的情况下,通过527公里GI MC-FMF进行的12核3模式密集SDM传输。

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