[1] Sun J, Huang P M, Yao Z S. Diversity reception technology in coherent optical communication over gamma-gamma atmospheric turbulence channel[J]. Acta Optica Sinica, 38, 0706002(2018).
[2] Mai V V, Thang T C, Pham A T. Performance of TCP over free-space optical atmospheric turbulence channels[J]. Journal of Optical Communications and Networking, 5, 1168-1177(2013).
[3] Ni X L, Yao H F, Liu Z et al. Experimental study of the atmospheric turbulence influence on FSO communication system[C], Su2A.232(2018).
[4] Liu X C, Li H G, Sun S L et al. Bit error analysis and optimization of optical quantum communication system under turbulent channel[J]. Acta Optica Sinica, 42, 0327018(2022).
[5] Wang H S, Yao Y Q, Qian X et al. The method of modeling atmospheric optical turbulence[J]. Acta Astronomica Sinica, 53, 527-537(2012).
[6] Wu X Q, Fang Q, Rao R Z. Optical turbulence measurements on the coast with balloon-borne thermosonde and comparison with model[J]. High Power Laser and Particle Beams, 18, 1605-1609(2006).
[7] Sadibekova T, Vernin J, Sarazin M et al. Generalized SCIDAR measurements at La Silla observatory[J]. Proceedings of SPIE, 6267, 62671P(2006).
[8] Kornilov V, Tokovinin A A, Vozyakova O et al. MASS: a monitor of the vertical turbulence distribution[J]. Proceedings of SPIE, 4839, 837-845(2003).
[9] Zhang S C, Wu Y, Hou Z H et al. Lidar measurement of atmospheric turbulence vertical profiles[J]. High Power Laser and Particle Beams, 21, 1795-1798(2009).
[10] Bai S C, Wu Y, Hou Z H et al. Measurement of turbulence profile with lidar[J]. Journal of Atmospheric and Environmental Optics, 2, 195-198(2007).
[11] Wang C Y, Yuan K E, Shi D F et al. Atmospheric optical turbulence profile measurement: a review[J]. Journal of Atmospheric and Environmental Optics, 16, 2-17(2021).
[12] Tyson R K. Adaptive optics and ground-to-space laser communications[J]. Applied Optics, 35, 3640-3646(1996).
[13] Cheng Z, Hou Z H, Jing X et al. High-precision and real-time inversion method of Hufnagel-Valley turbulence profile[J]. Infrared and Laser Engineering, 42, 1562-1567(2013).
[14] Wang Y, Basu S. Using an artificial neural network approach to estimate surface-layer optical turbulence at Mauna Loa, Hawaii[J]. Optics Letters, 41, 2334-2337(2016).
[15] Chen X W, Zhu W Y, Qian X M et al. Estimation of surface layer optical turbulence using artificial neural network[J]. Acta Optica Sinica, 40, 2401002(2020).
[16] Zhu L M, Sun G, Chen D L et al. Atmospheric optical turbulence profile estimation using support vector machine[J]. Acta Optica Sinica, 42, 0101001(2022).
[17] Huang K T. Research on the inversion method of turbulence intensity profile based on generalized HufnageL-Valley model[D], 41-46(2014).
[18] Cheng Z. Hufnagel-Valley model and its generalized turbulence profile inversion[D], 43-64(2013).
[19] Hardy J W[M]. Adaptive optics for astronomical telescopes(1998).
[20] Fried D L. Optical resolution through a randomly inhomogeneous medium for very long and very short exposures[J]. Journal of the Optical Society of America, 56, 1372-1379(1966).
[21] Tyson R K[M]. Introduction to adaptive optics(2000).
[22] Geng Y R. Using gamma function for integration[J]. Studies in College Mathematics, 16, 36-37(2013).
[23] Qiang X W, Wu M, Zong F et al. High-precision measurement technique of isoplanatic angle[J]. High Power Laser and Particle Beams, 33, 081008(2021).
[24] Gao H. Statistical analysis of meteorological parameters and turbulence model in different regions of China[D](2012).
[25] Liu H, Shao F B, Gong X. Comparison of classical correlation coefficients and statistical power[J]. Journal of Qingdao University of Science and Technology (Natural Science Edition), 43, 111-119(2022).