On the Accuracy of the GN-Model and on Analytical Correction Terms to Improve It
arXiv:1401.6946
Abstract
The GN-model has been proposed as an approximate but sufficiently accurate tool for predicting uncompensated optical coherent transmission system performance, in realistic scenarios. For this specific use, the GN-model has enjoyed substantial validation, both simulative and experimental. Recently, however, it has been pointed out that its predictions, when used to obtain a detailed picture of non-linear interference (NLI) noise accumulation along a link, may be affected by a substantial NLI overestimation error, especially in the first spans of the link. In this paper we analyze in detail the GN-model errors. We discuss recently proposed formulas for correcting such errors and show that they neglect several contributions to NLI, so that they may substantially underestimate NLI in specific situations, especially over low-dispersion fibers. We derive a complete set of formulas accounting for all single, cross, and multi-channel effects, this set constitutes what we have called the enhanced GN-model (EGN-model). We extensively validate the EGN model by comparison with accurate simulations in several different system scenarios. The overall EGN model accuracy is found to be very good when assessing detailed span-by-span NLI accumulation and excellent when estimating realistic system maximum reach. The computational complexity vs. accuracy trade-offs of the various versions of the GN and EGN models are extensively discussed.
This paper has been accepted for publication on OSA Optics Express, with the title: "The EGN model of nonlinear fiber propagation"
References in corpus (3)
Cited by in corpus (10)
- Accumulation of nonlinear interference noise in fiber-optic systems
- Temporal Energy Analysis of Symbol Sequences for Fiber Nonlinear Interference Modelling via Energy Dispersion Index
- Analytical Model of Nonlinear Fiber Propagation for General Dual-Polarization Four-Dimensional Modulation Format
- Extending fibre nonlinear interference power modelling to account for general dual-polarisation 4D modulation formats
- Analytical Modeling of Nonlinear Fiber Propagation for Four Dimensional Symmetric Constellations
- An Improved Model of Nonlinear Fiber Propagation in the Presence of Kerr Nonlinearity and Stimulated Raman Scattering
- On the Impact of Non-Linear Phase-Noise on the Assessment of Long-Haul Uncompensated Coherent Systems Performance
- List-encoding CCDM: A Nonlinearity-tolerant Shaper Aided by Energy Dispersion Index
- Impact of Low-OSNR Operation on the Performance of Advanced Coherent Optical Transmission Systems
- Electronic Dispersion Pre-Compensation in PM-QPSK Systems over Mixed-Fiber Links