DocumentCode
18765
Title
Maximum Likelihood Sequence Detection for Mitigating Nonlinear Effects
Author
Marsella, Domenico ; Secondini, Marco ; Forestieri, Enrico
Author_Institution
dell Inf. e della Percezione, Ist. di Tecnol. della Comun., Pisa, Italy
Volume
32
Issue
5
fYear
2014
fDate
1-Mar-14
Firstpage
908
Lastpage
916
Abstract
Coherent detection allows for a more effective compensation of transmission impairments in the electrical domain. However, in order to be effective, a detection strategy should be based on an accurate channel model capable of providing sufficiently accurate signal statistics. While in the linear regime such a model is available and linear impairments such as chromatic dispersion and polarization-mode dispersion can be almost fully compensated by adaptive equalizers, this is not the case for nonlinear impairments, whose mitigation is essentially based on heuristic strategies. One of the most considered strategies is the back-propagation (BP) technique, based on channel inversion. It is shown that BP is most effective only in dispersion-unmanaged links, while a low-complexity Viterbi detector with proper metrics can achieve better results in the case of dispersion-managed links. It is also shown that, in the cases where it is effective, BP is far from approaching optimal performance. Indeed, proper processing after BP can significantly increase performance.
Keywords
Viterbi detection; adaptive equalisers; maximum likelihood sequence estimation; nonlinear optics; optical fibre communication; optical fibre dispersion; optical fibre polarisation; optical information processing; optical links; optical signal detection; adaptive equalizers; back-propagation technique; channel inversion; channel model; chromatic dispersion; dispersion-managed links; dispersion-unmanaged links; electrical domain; low-complexity Viterbi detector; maximum likelihood sequence detection; nonlinear effects; polarization-mode dispersion; signal statistics; transmission impairment compensation; Approximation methods; Dispersion; Measurement; Noise; Nonlinear optics; Optical polarization; Vectors; Fiber nonlinearity; Viterbi detection; maximum likelihood detection; optical fiber communication;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2013.2294457
Filename
6680652
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