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Statistical properties of single-mode fiber coupling of satellite-to-ground laser links partially corrected by adaptive optics
Author(s) -
L. Canuet,
Nicolas Védrenne,
Jean-Marc Conan,
Cyril Petit,
G. Artaud,
Angélique Rissons,
Jérôme Lacan
Publication year - 2017
Publication title -
journal of the optical society of america a
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.803
H-Index - 158
eISSN - 1520-8532
pISSN - 1084-7529
DOI - 10.1364/josaa.35.000148
Subject(s) - fading , geosynchronous orbit , wavefront , cumulative distribution function , satellite , strehl ratio , adaptive optics , probability density function , coupling (piping) , mode (computer interface) , free space optical communication , optics , physics , laser , computer science , telecommunications , mathematics , statistics , engineering , mechanical engineering , decoding methods , astronomy , operating system
In the framework of satellite-to-ground laser downlinks, an analytical model describing the variations of the instantaneous coupled flux into a single-mode fiber after correction of the incoming wavefront by partial adaptive optics (AO) is presented. Expressions for the probability density function and the cumulative distribution function as well as for the average fading duration and fading duration distribution of the corrected coupled flux are given. These results are of prime interest for the computation of metrics related to coded transmissions over correlated channels, and they are confronted by end-to-end wave-optics simulations in the case of a geosynchronous satellite (GEO)-to-ground and a low earth orbit satellite (LEO)-to-ground scenario. Eventually, the impact of different AO performances on the aforementioned fading duration distribution is analytically investigated for both scenarios.

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