[1] 吴伟仁, 李海涛. 中国深空探测网现状与展望[J]. 中国科学: 信息科学, 2020, 50(1): 87-108. doi:  10.1360/SSI-2019-0242

Wu Weiren, Li Haitao, Li Zan, et al. Status and prospect of China's deep space TT&C network [J]. Scientia Sinica Informationis, 2020, 50(1): 87-108. (in Chinese) doi:  10.1360/SSI-2019-0242
[2] 叶叔华, 黄 珹. 天文地球动力学[M]. 济南: 山东科学技术出版社, 2000: 101-104.

Ye Shuhua, Huang Cheng. Astrogeodynamics[M]. Jinan: Shandong Science and Technology Press, 2000: 101-104. (in Chinese)
[3] Turyshev S G, Williams J G, Folkner W M, et al. Corner-cube retro-reflector instrument for advanced lunar laser ranging [J]. Experimental Astronomy, 2013, 36(1/2): 105-135. doi:  10.1007/s10686-012-9324-z
[4] 李语强, 伏红林, 李荣旺, 等. 云南天文台月球激光测距研究与实验[J]. 中国激光, 2019, 46(1): 0104004. doi:  10.3788/CJL201946.0104004

Li Yuqiang, Fu Honglin, Li Rongwang, et al. Research and experiment of lunar laser ranging in yunnan observatories [J]. Chinese Journal of Lasers, 2019, 46(1): 0104004. (in Chinese) doi:  10.3788/CJL201946.0104004
[5] Otsubo T, Kunimori H, Noda H, et al. Simulation of optical response of retroreflectors for future lunar laser ranging [J]. Advances in Space Research, 2010, 45(6): 733-740. doi:  10.1016/j.asr.2009.12.003
[6] 倪迎雪. 空间激光通信 APT 系统中快速反射镜关键技术研究[D]. 中国科学院大学. 2018

Ni Yingxue. The study of fast steering mirror in the acquisition, pointing and tracking system of the space laser com-munication[D]. Beijing: Chinese Academy of Sciences, 2018. (in Chinese)
[7] 丁永超, 王德恩, 等. 利用倾斜镜技术实现2.4 m 望远镜的高精度跟踪I: 原理样机设计及测试[J]. 激光与光电子学进展, 2018, 55(7): 071104. doi:  10.3788/LOP55.071104

Ding Yongchao, Wang Deen, Lun Baoli, et al. Realization of high tracking precision using tip-tilt mirror for the 2.4-meter telescope-Part Ⅰ: prototype design and test [J]. Laser & Optoelectronics Progress, 2018, 55(7): 071104. (in Chinese) doi:  10.3788/LOP55.071104
[8] 于陶然, 王超, 等. 基于ZEMAX的二维变焦扩束光学系统设计[J]. 激光与红外, 2016(46), 747-751. doi:  10.3969/j.issn.1001-5078.2016.06.020

Yu Taoran, Wang Chao, Tang Xiaojun, et al. Design of two-dimensional zoom beam expander optical system based on ZEMAX [J]. Laser & Infrared, 2016, 46(6): 747-751. (in Chinese) doi:  10.3969/j.issn.1001-5078.2016.06.020
[9] 孙崇尚. 基于快速反射镜的高精度、宽频带扫描像移补偿技术研究[D]. 中国科学院大学. 2016

Sun Chongshang. Research on the scanning image motion compensation technology based on fast steering mirrors with high precision and wide frequency range[D]. Beijing: Chinese Academy of Sciences, 2016. (in Chinese)
[10] 汤儒峰, 李语强, 李荣旺. GEO 暗弱空间碎片目标搜索策略分析[J]. 天文研究与技术, 2017, 14(3): 304-309.

Tang Rufeng, Li Yuqiang, Li Rongwang. The strategic analysis for searching faint space debris in the GEO region [J]. Astronomical Research and Technology, 2017, 14(3): 304-309. (in Chinese)