Bit error rate in free-space optical communication systems with a partially coherent transmitting beam
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L. C. Andrews, R. L. Phillips, and C. Y. Hopen, Laser Beam Scintillation with Applications (SPIE Press, Bellingham; Washington, DC, 2001).
A. K. Majumdar, “Free-Space Laser Communication Performance in the Atmospheric Channel,” J. Opt. Fiber. Commun. Rep. 2(4), 345–396 (2005).
J. C. Ricklin and F. M. Davidson, “Atmospheric Optical Communication with a Gaussian Schell Beam,” J. Opt. Soc. Amer., A 20(5), 856–866 (2003).
O. Korotkova, L. C. Andrews, and R. L. Phillips, “Model for a Partially Coherent Gaussian Beam in Atmospheric Turbulence with Application in Lasercom,” Opt. Eng. 43(2), 330–341 (2004).
J. C. Ricklin, S. M. Hammel, F. D. Eaton, and S. L. Lachinova, “Atmospheric Channel Effects on Free-Space Laser Communication,” J. Opt. Fiber. Commun. Rep. 3(2), 111–158 (2006).
P. Polynkin, A. Peleg, L. Klein, T. Rhoadarmer, and J. Moloney, “Optimized Multiemitter Beams for Free-Space Optical Communications through Turbulent Atmosphere,” Opt. Lett. 32(8), 885–887 (2007).
D. G. Voelz and X. Xiao, “A Brief Review of Spatially Partially Coherent Beams for FSO Communications,” Proc. SPIE. 7200, 72000 (2009).
X. Xiao and D. G. Voelz, “On-Axis Probability Density Function and Fade Behavior of Partially Coherent Beams Propagating Through Turbulence,” Appl. Opt. 48(2), 167–175 (2009).
D. G. Voelz and X. Xiao, “Metric for Optimizing Spatially Partially Coherent Beams for Propagation through Turbulence,” Opt. Eng. 48(3), 036001 (2009).
C. Chen, H. Yang, X. Feng, and H. Wang, “Optimization Criterion for Initial Coherence Degree of Lasers in Free-Space Optical Links through Atmospheric Turbulence,” Opt. Lett. 34(4), 419–421 (2009).
D. K. Borah and D. G. Voelz, “Spatially Partially Coherent Beam Parameter Optimization for Free Space Optical Communications,” Opt. Exp. 18(20) (2010).
M. A. Al-Habash, L. C. Andrews, and R. L. Phillips, “Mathematical Model for the Irradiance Probability Density Function of a Laser Beam Propagating through Turbulent Media,” Opt. Eng. 40(8), 1554–1562 (2001).
B. Sklyar, Digital Communications. Theoretical Grounds and Practical Applications (Izdatel’skii dom “Vil’yams”, Moscow, 2007) [in Russian].
J. Proakis, Digital Communications (McGraw-Hill, New York, 1995), 3rd ed.
R. K. Tyson, “Bit-Error Rate for Free-Space Adaptive Optics Laser Communications,” J. Opt. Soc. Amer., A 19(4), 753–758 (2002).
S. M. Flatte, C. Bracher, and G.-Y. Wang, “Probability Density Functions of Irradiance for Waves in Atmospheric Turbulence Calculated by Numerical Simulation,” J. Opt. Soc. Amer., A 11(7), 2080–2092 (1994).
J. H. Churnside and R. J. Hill, “Probability Density of Irradiance Scintillations for Strong Path-Integrated Refractive Turbulence,” J. Opt. Soc. Amer., A 4(4), 727–733 (1987).
R. J. Hill and R. G. Frehlich, “Probability Distribution of Irradiance for the Onset of Strong Scintillation,” J. Opt. Soc. Amer., A 14(7), 1530–1540 (1997).
L. C. Andrews, R. L. Phillips, and C. Y. Hopen, Laser Beam Scintillation with Applications (SPIE Press, Bellingham; Washington, DC, 2001).
M. Nakagami, The M Distribution—a General Formula of Intensity Distribution of Rapid Fading, Statistical Methods in Radio Wave Propagation, Ed. by W. C. Hoffman (Pergamon, New York, 1960).
http://ru.wikipedia.org/wiki/Gamma-raspredelenie .
R. V. Hogg and A. T. Craig, Introduction to Mathematical Statistics (Macmillan, New York, 1978).
M. H. Mahdieh and M. Pournoury, “Atmospheric Turbulence and Numerical Evaluation of Bit Error Rate (BER) in Free-Space Communication,” Opt. & Laser Technol. 42(1), 55–60 (2010).
V. V. Kolosov and A. V. Kuzikovskii, “Phase Compensation of Refraction Distortions of Partly Coherent Beams,” Kvant. Elektron. 8(3), 490–494 (1981).
M. A. Vorontsov and V. V. Kolosov, “Target-in-the-Loop Beam Control: Basic Considerations for Analysis and Wavefront Sensing,” J. Opt. Soc. Amer., A 22(1), 126–141 (2005).
P. A. Konyaev, E. A. Tartakovskii, and G. A. Filimonov, “Computer Simulation of Optical Wave Propagation with the Use of Parallel Programming,” Atmos. Ocean. Opt. 24(5), 425–431 (2011).
V. A. Banakh, I. N. Smalikho, and A. V. Falits, “Effectiveness of the Subharmonic Method in Problems of Computer Simulation of Laser Beam Propagation in a Turbulent Atmosphere,” Atmos. Ocean. Opt. 25(2), 106–109 (2012).
D. A. Marakasov and D. S. Rychkov, “Method for Calculating Moments of the Wigner Distribution Function of Laser Beams in a Turbulent Atmosphere,” Atmos. Ocean. Opt. 25(2), 127–129 (2012).
A. S. Gurvich, A. I. Kon, V. L. Mironov, and S. S. Khmelevtsov, Laser Radiation in Turbulent Atmosphere (Nauka, Moscow, 1976) [in Russian].
V. E. Zuev, V. A. Banakh, and V. V. Pokasov, Modern Problems of Atmospheric Optics. Optics of Turbulent Atmosphere, Ed. by V. E. Zuev (Gidrometeoizdat, Leningrad, 1988) [in Russian].
