Performance evaluation of free space optical link using mid and far infrared wavelengths in turbulent atmospheric conditions
暂无分享,去创建一个
[1] E. Jakeman,et al. Significance of K Distributions in Scattering Experiments , 1978 .
[2] L. Andrews,et al. Laser Beam Scintillation with Applications , 2001 .
[3] J. Wallace,et al. Atmospheric Science: An Introductory Survey , 1977 .
[4] Anna Consortini,et al. Laser beam propagation in the atmosphere , 1967 .
[5] R. B. McQuistan,et al. Elements of infrared technology: generation, transmission, and detection , 1962 .
[6] Hervé Sizun,et al. Fog attenuation prediction for optical and infrared waves , 2004 .
[7] L. Andrews,et al. Mathematical model for the irradiance probability density function of a laser beam propagating through turbulent media , 2001 .
[8] R. Redington. Elements of infrared technology: Generation, transmission and detection , 1962 .
[9] Larry C. Andrews,et al. Aperture averaging of optical scintillations: power fluctuations and the temporal spectrum , 2000 .
[10] Joseph M. Kahn,et al. Free-space optical communication through atmospheric turbulence channels , 2002, IEEE Trans. Commun..
[11] Isaac I. Kim,et al. Comparison of laser beam propagation at 785 nm and 1550 nm in fog and haze for optical wireless communications , 2001, SPIE Optics East.
[12] L. Andrews. Field guide to atmospheric optics , 2004 .
[13] E. J. Mccartney. Optics of the atmosphere , 1976 .
[14] Isaac I. Kim,et al. Debunking the recurring myth of a magic wavelength for free-space optics , 2002, SPIE ITCom.
[15] Zabih Ghassemlooy,et al. Terrestrial Free-Space Optical Communications , 2010 .
[16] L. Andrews,et al. Theory of optical scintillation , 1999 .