[1] Chen Hongbin. An overview of the space-based observations for upper atmospheric research[J]. Advances in Earth Science, 2009, 24(3):229-241. (in Chinese)陈洪滨. 中高层大气研究的空间探测[J]. 地球科学进展, 2009, 24(3):229-241.
[2] Chandra H, Sharma S, Acharya Y B, et. al. A Rayleigh lidar study of the atmospheric temperature structure over Mt. Abu, India[J]. Journal of Indian Geophysical Union, 2005, 9(4):279-298.
[3] Lv Daren, Wang Yingjian. Recent advances of middle atmosphere in China[J]. Acta Geophysica Sinica, 1994, 37(S1):74-84. (in Chinese)吕达仁, 王英鉴. 中国中层大气研究的近期进展[J]. 地球物理学报, 1994, 37(S1):74-84.
[4] Schoch A, Baumgarten G, Fiedler J. Polar middle atmosphere temperature climatology from Rayleigh lidar measurements at ALOMAR(69N)[J]. Ann Geophys, 2008, 26:1681-1698.
[5] Argall P S, Sica R J. A comparison of Rayleigh and sodium lidar temperature climatologies[J]. Ann Geophys, 2007, 25:27-35.
[6] Thierry L, Philippe K, She C Y, et al. Temperature climatology of the middle atmosphere from long-term lidar measurement at middle and low latitudes[J]. Journal of Geophysical Research, 1998, 103(D14):17191-17204. (in Chinese)
[7] Wang Guocheng, Dou Xiankang, Xia Haiyun et al. Performance of a Rayleigh Doppler lidar for middle atmosphere wind measurement[J]. Infrared and Laser Engineering, 2012, 41(9):2351-2357. (in Chinese)
[8] Tang Lei, Wu Haibin, Sun Dongsong, et al. Analysis of system accuracy for Rayleigh backscattering Doppler wind lidar[J]. Infrared and Laser Engineering, 2014, 43(11):3570-3576. (in Chinese)唐磊, 吴海滨, 孙东松, 等. 瑞利散射多普勒测风激光雷达系统误差分析[J]. 红外与激光工程, 2014, 43(11):3570-3576.
[9] Deng Pan, Zhang Tianshu, Chen Wei, et al. Estimating noise scale factor and SNR of atmospheric lidar[J]. Infrared and Laser Engineering, 2016, 45(S1):S130003-1-S130003-6. (in Chinese)
[10] Liou Kuonan. An Introduction To Atmospheric Radiation[M]. Beijing:China Meteorological Press, 2004:91-99. (in Chinese)