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Suppression of Intrachannel Nonlinear Effects in High-Speed WDM Systems

机译:高速WDM系统中通道内非线性效应的抑制

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High-speed optical transmission systems operating at 40 Gb/s or higher are severely limited by intrachannel nonlinearities such as intrachannel four-wave mixing (IFWM) and intrachannel cross-phase modulation (IXPM). Approaches to deal with intrachannel nonlinearities may be classified into three broad categories: modulation formats, constrained (or line) coding, and equalization techniques. The IFWM is a phase-sensitive effect, and the aim of the first approach is to remove the phase short-term coherence of the pulses emitted in a given neighborhood. The role of constrained coding is to avoid those waveforms in the transmitted signal that are most likely to be received incorrectly. In this paper we describe two alternative techniques for suppression of intrachannel nolinearities: (ⅰ) constrained coding techniques, and (ⅱ) combined nonlinear ISI cancellation and error control. Three different constrained coding techniques will be presented: (a) the use of constrained encoding itself, (b) combined constrained and error control coding and (c) deliberate error insertion. The nonlinear ISI cancellation scheme employs the maximum a posteriori probability (MAP) symbol decoding based on Bahl-Cocke-Jelinek-Raviv (BCJR) algorithm, while the forward error correction is based on low-density parity-check (LDPC) codes. The nonlinear ISI channel is modeled by a finite state machine (FSM) whose transition and output functions describe the dependency of the channel statistics and the ISI on transmitted patterns. The BCJR algorithm operates on a trellis of the corresponding FSM, and creates the soft information (detected bit likelihoods) used in the iterative decoder. To improve the BER performance of nonlinear BCJR equalizer further, a noise-predictive BCJR equalizer is introduced. The main feature of these schemes is that they can operate in the regime of very strong intrachannel nonlinearities where FEC schemes such as turbo or LDPC codes are not designed to operate.
机译:以40 Gb / s或更高速度运行的高速光传输系统受到通道内非线性的严重限制,例如通道内四波混频(IFWM)和通道内交叉相位调制(IXPM)。处理信道内非线性的方法可以分为三大类:调制格式,约束(或线路)编码和均衡技术。 IFWM是一种对相位敏感的效应,第一种方法的目的是消除给定邻域中发射的脉冲的相位短期相干性。约束编码的作用是避免发射信号中最有可能被错误接收的波形。在本文中,我们描述了两种抑制通道内非线性的替代技术:(ⅰ)约束编码技术,以及(ⅱ)组合的非线性ISI抵消和误差控制。将介绍三种不同的约束编码技术:(a)约束编码本身的使用;(b)约束编码和差错控制编码的组合;以及(c)故意插入错误。非线性ISI消除方案采用基于Bahl-Cocke-Jelinek-Raviv(BCJR)算法的最大后验概率(MAP)符号解码,而前向纠错则基于低密度奇偶校验(LDPC)码。非线性ISI信道由有限状态机(FSM)建模,其过渡和输出函数描述了信道统计信息和ISI对传输模式的依赖性。 BCJR算法在相应FSM的网格上进行操作,并创建在迭代解码器中使用的软信息(检测到的比特似然性)。为了进一步提高非线性BCJR均衡器的BER性能,引入了一种可预测噪声的BCJR均衡器。这些方案的主要特征是,它们可以在非常强的通道内非线性情况下工作,而在这种情况下,FEC方案(例如,turbo或LDPC码)并未设计为可以工作。

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