首页> 外文会议>Next-generation optical communication: components, sub-systems, and systems VI >Rigorous study of low-complexity adaptive space-time block-coded MIMO receivers in high-speed mode multiplexed fiberoptic transmission links using few-mode fibers
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Rigorous study of low-complexity adaptive space-time block-coded MIMO receivers in high-speed mode multiplexed fiberoptic transmission links using few-mode fibers

机译:在使用少模光纤的高速模式复用光纤传输链路中对低复杂度自适应空时块编码MIMO接收机的严格研究

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Spatial-division multiplexing (SDM) techniques have been purposed to increase the capacity of optical fiber transmission links by utilizing multicore fibers or few-mode fibers (FMF). The most challenging impairments of SDM-based long-haul optical links mainly include modal dispersion and mode-dependent loss (MDL), whereas MDL arises from inline component imperfections, and breaks modal orthogonality thus degrading the capacity of multiple-input-multiple-output (MIMO) receivers. To reduce MDL, optical approaches include mode scramblers and specialty fiber designs, yet these methods were burdened with high cost, yet cannot completely remove the accumulated MDL in the link. Besides, space-time trellis codes (STTC) were purposed to lessen MDL, but suffered from high complexity. In this work, we investigated the performance of space-time block-coding (STBC) scheme to mitigate MDL in SDM-based optical communication by exploiting space and delay diversity, whereas weight matrices of frequency-domain equalization (FDE) were updated heuristically using decision-directed recursive-least-squares (RLS) algorithm for convergence and channel estimation. The STBC was evaluated in a six-mode multiplexed system over 30-km FMF via 6×6 MIMO FDE, with modal gain offset 3 dB, core refractive index 1.49, numerical aperture 0.5. Results show that optical-signal-to-noise ratio (OSNR) tolerance can be improved via STBC by approximately 3.1, 4.9, 7.8 dB for QPSK, 16- and 64-QAM with respective bit-error-rates (BER) and minimum-mean-square-error (MMSE). Besides, we also evaluate the complexity optimization of STBC decoding scheme with zero-forcing decision feedback (ZFDF) equalizer by shortening the coding slot length, which is robust to frequency-selective fading channels, and can be scaled up for SDM systems with more dynamic channels.
机译:空分复用(SDM)技术的目的是通过利用多芯光纤或少模光纤(FMF)来增加光纤传输链路的容量。基于SDM的长途光链路最具挑战性的损害主要包括模态色散和模态相关损耗(MDL),而MDL源自内联组件缺陷,并破坏了模态正交性,从而降低了多输入多输出的容量(MIMO)接收器。为了减少MDL,光学方法包括模式加扰器和专用光纤设计,但是这些方法的成本很高,但不能完全删除链路中累积的MDL。此外,空时网格码(STTC)旨在减少MDL,但存在很高的复杂性。在这项工作中,我们研究了空时分组编码(STBC)方案通过利用空间和延迟分集来减轻基于SDM的光通信中的MDL的性能,而频域均衡(FDE)权重矩阵则使用启发式更新用于收敛和信道估计的决策导向递推最小二乘(RLS)算法。 STBC是在六公里多路复用系统中通过6×6 MIMO FDE在30公里FMF上进行评估的,模态增益偏移为3 dB,纤芯折射率为1.49,数值孔径为0.5。结果表明,对于QPSK,16-QAM和64-QAM分别采用误码率(BER)和最小误码率,通过STBC可以将光信噪比(OSNR)容差提高约3.1、4.9、7.8 dB。均方误差(MMSE)。此外,我们还通过缩短编码时隙长度来评估带有零强制判决反馈(ZFDF)均衡器的STBC解码方案的复杂度优化,这对于频率选择性衰落信道具有鲁棒性,并且可以扩展到具有更高动态性的SDM系统渠道。

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