Title :
Training-Aided Coherent Optical Single-Carrier System With Improved Nonlinearity Tolerance
Author :
Chen Zhu ; Tran, A.V. ; Du, Liang B. ; Lowery, Arthur J.
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Melbourne, Parkville, VIC, Australia
Abstract :
In this letter, we propose a nonlinearity-tolerant channel estimation technique for training-aided single-carrier polarization-division-multiplexed (PDM) coherent optical systems. Simply by compensating the effects of fiber nonlinearity on the received training sequence, linear channel estimation and equalization can be improved; this approach is very efficient, which requires a negligible computational effort since training only occupies a very small portion of the total data. The concept is verified using simulations for both QPSK and 64-quadrature amplitude modulation (QAM) systems and experimental measurements for a 120-Gb/s PDM 64-QAM system with 800-km erbium-doped fiber amplifier (EDFA)-only transmission. The experimental results show that the system performance is improved by 0.4 dB at the optimal launched power and 1.6 dB in the highly nonlinear region, compared with conventional training-aided channel estimation approaches.
Keywords :
channel estimation; erbium; multiplexing; nonlinear optics; optical fibre amplifiers; optical fibre networks; optical fibre polarisation; optical modulation; quadrature amplitude modulation; quadrature phase shift keying; 64-quadrature amplitude modulation systems; EDFA-only transmission; PDM 64-QAM system; QPSK; bit rate 120 Gbit/s; distance 800 km; erbium-doped fiber amplifier-only transmission; fiber nonlinearity; linear channel equalization; linear channel estimation; nonlinearity-tolerant channel estimation technique; training-aided coherent optical single-carrier system; training-aided single-carrier polarization-division-multiplexed coherent optical systems; Blind equalizers; Fiber nonlinear optics; Optical fibers; Optical filters; Optical polarization; 64-QAM; Coherent optical system; MIMO equalization; nonlinearity compensation; training sequence;
Journal_Title :
Photonics Technology Letters, IEEE
DOI :
10.1109/LPT.2014.2319235