Title :
Optimizing the FEC Overhead in a 100 GbE PDM-QPSK Digital Coherent Transmission System
Author :
Desbruslais, Stephen R. ; Savory, Seb J.
Author_Institution :
Opt. Networks Group, Univ. Coll. London (UCL), London, UK
fDate :
4/15/2011 12:00:00 AM
Abstract :
The finite electrical bandwidth of digital coherent transceivers together with limited wavelength division multiplexing (WDM) channel spacing constrains the maximum forward error correction (FEC) overhead that can be advantageously applied to fiber optic transmission systems. We investigate through simulations of a 100 GbE system employing coherent polarization division multiplexed quaternary phase shift keying, the impact of these bandwidth constraints on the optimal code rate thereby minimizing the required optical signal-to-noise ratio (OSNR) at the receiver. The optimum FEC overhead is found to increase linearly with available bandwidth and the required OSNR is found to reduce for lower order transponder filters. Fabrication of transmitters with a broader spectral response than their receiver counterpart is found to be advantageous. The optimum electrical bandwidth is found to be approximately half the WDM channel spacing for nonreturn to zero (NRZ) transmission and slightly less for return to zero (RZ). There is shown to be no performance advantage in using RZ over NRZ modulation formats when the optimum FEC overhead and filter bandwidth is employed in each case. Nonlinear simulations demonstrate that transpacific transmission is attainable with a margin that increases as the spectral efficiency is relaxed.
Keywords :
forward error correction; light transmission; optical fibre communication; optical transceivers; quadrature phase shift keying; wavelength division multiplexing; PDM-QPSK digital coherent transmission system; WDM channel spacing; bandwidth constraints; coherent polarization division multiplexed quaternary phase shift keying; digital coherent transceivers; fiber optic transmission systems; finite electrical bandwidth; limited wavelength division multiplexing channel spacing; maximum forward error correction overhead; nonlinear simulations; nonreturn to zero transmission; optical signal-to-noise ratio; optimal code rate; optimum FEC overhead; optimum electrical bandwidth; spectral efficiency; spectral response; transpacific transmission; transponder filters; Bandwidth; Bit error rate; Decoding; Forward error correction; Optical noise; Receivers; Signal to noise ratio; Coherent receivers; forward error correction (FEC); optical communication; polarization division multiplexed quaternary phase-shift keying (QPSK); polarization multiplexing;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2011.2122243