[1] TORGE W, MULLER J. Geodesy[M]. Berlin:Walter de Gruyter, 2012:162-170. [2] MULLER A, BURKI B, KAHLE H G, et al. First results from new high-precision measurements of deflections of the vertical in Switzerland[C]//Proceedings of 2004 GGSM IAG International Symposium. Porto, Portugal:[s.n.], 2004, 129:143-148. [3] HIRT C, SEEBER G. Accuracy analysis of vertical deflection data observed with the Hannover digital zenith camera system TZK2-D[J]. Journal of Geodesy, 2008, 82(6):347-356. [4] HIRT C, BURKI B, SOMIESKI A, et al. Modern determination of vertical deflections using digital zenith cameras[J]. Journal Surveying Engineering, 2010, 136(1):1-12. DOI:10.1061/(ASCE)SU.1943-5428.0000009. [5] WANG Y M, BECKER C, MADER G, et al. The geoid slope validation survey 2014 and GRAV-D airborne gravity enhanced geoid comparison results in Iowa[J]. Journal of Geodesy, 2017, 91:1261-1276. DOI:10.1007/s00190-017-1022-1. [6] 张超,詹银虎,王若璞,等.光学天文大地测量技术发展评述[J].测绘科学技术学报,2021,38(4):331-342. ZHANG Chao, ZHAN Yinhu, WANG Ruopu, et al. Review of the development of optical astro-geodetic technology[J]. Journal of Geomatics Science and Technology,2021,38(4):331-342. [7] 郭金运, 宋来勇, 常晓涛, 等. 数字天顶摄影仪确定垂线偏差及其精度分析[J]. 武汉大学学报(信息科学版), 2011, 36(9):1085-1088. GUO Jinyun, SONG Laiyong, CHANG Xiaotao, et al. Vertical deflection measure with digital zenith camera and accuracy analysis[J]. Geomatics and Information Science of Wuhan University, 2011, 36(9):1085-1088. [8] 田立丽, 郭金运, 韩延本, 等. 我国的数字化天顶望远镜样机[J].科学通报, 2014, 59(12):1094-1099. TIAN Lili, GUO Jinyun, HAN Yanben, et al. Digital zenith telescope prototype of China (DZT-1)[J]. Chinese Science Bulletin, 2014, 59(12):1094-1099. [9] 艾贵斌, 龚建, 张华伟等. 数字天顶摄影定位原理与方法[M]. 北京:解放军出版社, 2014:1-5. AI Guibin, GONG Jian, ZHANG Huawei, et al. Principle and method of digital zenith camera positioning[M]. Beijing:PLA Press, 2014:1-5. [10] 张志利, 刘先一, 周召发, 等. 转台误差对数字天顶仪轴系误差的影响[J]. 光学精密工程, 2015, 23(11):3090-3096. ZHANG Zhili, LIU Xianyi, ZHOU Zhaofa, et al. Influence of turntable error on axis error in digital zenith camera[J]. Optics and Precision Engineering, 2015, 23(11):3090-3096. [11] HIRT C, BURKI B. Status of geodetic astronomy at the beginning of the 21st century[J]. Geodäsie und Geoinformatik der Universität Hannover, 2006, 258:81-99. [12] 张超, 郑勇, 夏治国. 多星近似等高法同时测定天文经纬度的研究[J]. 测绘通报, 2006(11):3-5. ZHANG Chao, ZHENG Yong, XIA Zhiguo. Research on simultaneous determination of astronomical longitude and latitude with multi-star approximate equal altitudes method[J]. Bulletin of Surveying and Mapping, 2006(11):3-5. [13] 张超. 基于电子经纬仪的天文测量系统及应用研究[D]. 郑州:信息工程大学, 2009. ZHANG Chao. System-level development and application research on astronomic surveying based on electronic theodolites[D]. Zhengzhou:Information Engineering University, 2009. [14] BURKI B, GUILLAUME S, SORBER P, et al. DAEDALUS:a versatile usable digital clip-on measuring system for total stations[C]//Proceedings of 2010 International Conference on Indoor Positioning and Indoor Navigation (IPIN). Zürich, Switzerland:IEEE, 2010:1-10. [15] GUILLAUME S, BURKI B, GRIFFET S, et al. QDaedalus:augmentation of total stations by CCD sensor for automated contactless high-precision metrology[C]//Proceedings of 2012 FIG Working Week. Rome, Italy:[s.n.], 2012:1-15. [16] HAUK M, HIRT C, ACKERMANN C. Experiences with the QDaedalus system for astrogeodetic determination of deflections of the vertical[J]. Survey Review, 2016, 48(34):1-15. DOI:10.1080/00396265.2016.1171960. [17] SCHACK P, HIRT C, HAUK M, et al. A high-precision digital astrogeodetic traverse in an area of steep geoid gradients close to the coast of Perth, Western Australia[J]. Journal of Geodesy, 2018, 92(10):1143-1153. DOI:10.1007/s00190-017-1107-x. [18] 时春霖, 张超, 陈长远, 等. 测量机器人小视场星图一维最大熵星点图像分割算法[J]. 测绘学报, 2018, 47(4):446-454. DOI:10.11947/j.AGCS.2018.20170202. SHI Chunlin, ZHANG Chao, CHEN Changyuan, et al. One dimensional maximum entropy image segmentation algorithm based on the small field of view of measuring robot star map[J]. Acta Geodaetica et Cartographica Sinica, 2018, 47(4):446-454. DOI:10.11947/j.AGCS.2018.20170202. [19] 陈张雷, 李崇辉, 郑勇, 等. 天文定位中几何精度衰减因子最小值分析[J]. 测绘学报, 2019, 48(7):879-888. DOI:10.11947/j.AGCS.2019.20180479. CHEN Zhanglei, LI Chonghui, ZHENG Yong, et al. The minimum analysis of geometric dilution of precision in celestial positioning[J]. Acta Geodaetica et Cartographica Sinica, 2019, 48(7):879-888. DOI:10.11947/j.AGCS.2019.20180479. [20] 叶凯, 张超, 时春霖, 等. 视频测量机器人星识别算法在自动天文定向中的应用[J]. 测绘通报, 2019(2):17-21. YE Kai, ZHANG Chao, SHI Chunlin, et al. Application of star recognition algorithm based on video measuring robot in automatic astronomical orientation[J]. Bulletin of surveying and mapping, 2019(2):17-21. [21] SHI C L, ZHANG C, DU L, et al. Automatic astronomical survey method based on video measurement robot[J]. Journal of Surveying Engineering, 2020, 146(2):1-12. DOI:10.1061/(ASCE)SU.1943-5428.0000300. [22] 时春霖. 基于视频测量机器人的自动天文测量技术研究[D]. 郑州:信息工程大学, 2018. SHI Chunlin. Research on automatic astronomical measure-ment technology of robot based on video measurement[D]. Zhengzhou:Information Engineering University, 2018. [23] 周玟龙, 詹银虎, 张鹤,等. 基于GDOP贡献值递推的自动天文选星算法[J]. 测绘科学技术学报, 2021, 38(3):240-245. ZHOU Wenlong, ZHAN Yinhu, ZHANG He, et al. Automatic astronomical star selection algorithm based on GDOP contribution value recursion[J]. Journal of Geomatics Science and Technology, 2021, 38(3):240-245. [24] 李海, 王若璞, 陈勇,等. 图像全站仪星点质心快速提取方法研究[J]. 测绘科学技术学报, 2019, 36(5):46-50. DOI:10.3969/j.issn.1673-6338.2019.05.008. LI Hai, WANG Ruopu, CHEN Yong, et al. Fast star centroid extraction method for image total station[J]. Journal of Geomatics Science and Technology, 2019, 36(5):46-50. DOI:10.3969/j.issn.1673-6338.2019.05.008. [25] 国家质量技术监督局. 大地天文测量规范:GB/T 17943-2000[S].北京:中国标准出版社,2000. State Bureau of Quality and Technology Supervision. Specification for the geodetic astronomy:GB/T 17943-2000[S]. Beijing:Standards Press of China, 2000. [26] 米科峰, 张超, 李崇辉,等. 图像全站仪拍照时延的标定方法及对天文定向的影响分析[J]. 测绘科学技术学报, 2019, 36(4):359-363. MI Kefeng, ZHANG Chao, LI Chonghui, et al. A method for calibrating the time delay of images total station and its effect on astronomical orientation[J]. Journal of Geomatics Science and Technology, 2019, 36(4):359-363. |