Title :
Capacity analysis of dual amplify-and-forward relayed free-space optical communication systems over turbulence channels with pointing errors
Author :
Peppas, Kostas P. ; Stassinakis, A.N. ; Nistazakis, H.E. ; Tombras, G.S.
Author_Institution :
Lab. of Mobile Commun., Nat. Centre for Sci. Res.-Demokritos, Agia Paraskevi, Greece
Abstract :
This paper elaborates on the end-to-end capacity of dual-hop free-space optical (FSO) communication systems employing amplify-and-forward (AF) relaying, assuming channel state information is only known at the receiving terminals. The relay is assumed to either possess perfect channel state information or have a fixed gain. The performance of the considered system is affected by the combined effects of atmospheric turbulence-induced fading, pointing errors (i.e., misalignment fading), and path loss. Atmospheric turbulence conditions are modeled using the gamma-gamma distribution. For the system under consideration, accurate analytical approximations as well as upper bounds to the ergodic capacity are derived. In addition, bound approximations in the high signal-to-noise ratio regime are deduced that provide valuable insights into the impact of model parameters on the capacity of AF FSO dual-hop relaying systems. Numerically evaluated and computer simulation results are further provided to demonstrate the validity of the proposed mathematical analysis.
Keywords :
amplify and forward communication; approximation theory; fading channels; gamma distribution; optical communication; AF FSO dual-hop relaying systems; amplify-and-forward relaying; atmospheric turbulence-induced fading; bound approximations; capacity analysis; channel state information; computer simulation; dual amplify-and-forward relayed free-space optical communication systems; dual-hop free-space optical communication systems; gamma-gamma distribution; mathematical analysis; misalignment fading; model parameters; path loss; pointing errors; signal-to-noise ratio regime; turbulence channels; Adaptive optics; Approximation methods; Atmospheric modeling; Fading; Receivers; Relays; Signal to noise ratio; Amplify-and-forward; Atmospheric turbulence; Average channel capacity; Dual-hop systems; Free-space optics; Gamma-gamma distribution; Misalignment fading; Pointing errors;
Journal_Title :
Optical Communications and Networking, IEEE/OSA Journal of
DOI :
10.1364/JOCN.5.001032