[en] In this article, we derive Rytov variance of Adaptive optics (AO) applied to atmospheric turbulence. We chose the modified von-Karman power spectrum, which covers the atmosphere's inner and outer scales. After analytical derivations, we plot Rytov variance against propagation distance and spatial frequency. We organize the plots to see the effect of atmospheric turbulence, scaling factor, and type of correction. Rytov variance is directly proportional to the propagation distance. On the other hand, it has an inverse relation between the ratio of spatial frequencies. Our results show that Rytov variance in adaptive optics corrected spectrum is low for a low turbulent regime. Moreover, we calculate the scintillation index using derived Rytov variance. We believe our results will be used to model adaptive optics corrected random phase screen approach, a model for turbulent channels in wave optics. This way, performance measurements for adaptive optics corrections could be more accurate.
Disciplines :
Ingénierie électrique & électronique
Auteur, co-auteur :
BAYRAKTAR, Mert ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > SigCom
Garces-Socarras, Luis Manuel; Interdisciplinary Centre For Security, Reliability And Trust (SnT), University Of Luxembourg, Luxembourg
Duncan, Juan Carlos Merlano; Interdisciplinary Centre For Security, Reliability And Trust (SnT), University Of Luxembourg, Luxembourg
CHATZINOTAS, Symeon ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > SigCom
Co-auteurs externes :
no
Langue du document :
Anglais
Titre :
Rytov Variance of Adaptive Optics Applied Modified Von-Karman Spectrum
Date de publication/diffusion :
2024
Nom de la manifestation :
2024 IEEE Wireless Communications and Networking Conference (WCNC)
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