DocumentCode
1068439
Title
DSP for Coherent Single-Carrier Receivers
Author
Kuschnerov, Maxim ; Hauske, Fabian N. ; Piyawanno, Kittipong ; Spinnler, Bernhard ; Alfiad, Mohammad S. ; Napoli, Antonio ; Lankl, Berthold
Author_Institution
Univ. of the Fed. Armed Forces, Neubiberg, Germany
Volume
27
Issue
16
fYear
2009
Firstpage
3614
Lastpage
3622
Abstract
In this paper, we outline the design of signal processing (DSP) algorithms with blind estimation for 100-G coherent optical polarization-diversity receivers in single-carrier systems. As main degrading optical propagation effects, we considered chromatic dispersion (CD), polarization-mode dispersion (PMD), polarization-dependent loss (PDL), and cross-phase modulation (XPM). In the context of this work, we developed algorithms to increase the robustness of the single DSP receiver modules against the aforesaid propagation effects. In particular, we first present a new and fast algorithm to perform blind adaptive CD compensation through frequency-domain equalization. This low complexity equalizer component inherits a highly precise estimation of residual dispersion independent from previous or subsequent blocks. Next, we introduce an original dispersion-tolerant timing recovery and illustrate the derivation of blind polarization demultiplexing, capable to operate also in condition of high PDL. At last, we propose an XPM-mitigating carrier phase recovery as an extension of the standard Viterbi-Viterbi algorithm.
Keywords
Viterbi detection; blind equalisers; light polarisation; radio receivers; signal processing; Viterbi-Viterbi algorithm; blind estimation; blind polarization demultiplexing; chromatic dispersion; coherent single carrier receivers; cross-phase modulation; diversity receivers; frequency domain equalization; optical polarization; optical propagation effects; polarization dependent loss; polarization mode dispersion; signal processing; timing recovery; Blind adaptation; carrier phase recovery; coherent detection; digital receiver; equalization; fiber optic communication; timing recovery;
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2009.2024963
Filename
5071205
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