Laser & Optoelectronics Progress, Volume. 60, Issue 21, 2101003(2023)
Inversion Calculation of Atmospheric Refractive Index Structure Constant Based on Atmospheric Coherence Length and Isoplanatic Angle Measured in Nanshan, Xinjiang
[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).
Get Citation
Copy Citation Text
Yuxi Cao, Haifeng Yao, Heng Zhang, Lei Zhang, Shuai Chang, Shoufeng Tong, Xiaoke Tao. Inversion Calculation of Atmospheric Refractive Index Structure Constant Based on Atmospheric Coherence Length and Isoplanatic Angle Measured in Nanshan, Xinjiang[J]. Laser & Optoelectronics Progress, 2023, 60(21): 2101003
Category: Atmospheric Optics and Oceanic Optics
Received: Oct. 31, 2022
Accepted: Nov. 23, 2022
Published Online: Oct. 26, 2023
The Author Email: Haifeng Yao (custfeng@outlook.com), Lei Zhang (zl1980@cust.edu.cn), Shoufeng Tong (cust0888@163.com)