[1] 李征航,黄劲松. GPS测量与数据处理[M].武汉:武汉大学出版社, 2016. LI Zhenghang, HUANG Jinsong. GPS surveying and data processing[M]. Wuhan:Wuhan University Press, 2016. [2] HOPFIELD H S. Two-quartic tropospheric refractivity profile for correcting satellite data[J]. Journal of Geophysical Research, 1969, 74(18):4487-4499. DOI:10.1029/JC074i018p04487. [3] SAASTAMOINEN J. Atmospheric correction for the troposphere and stratosphere in radio ranging satellites[J]. The Use of Artificial Satellites for Geodesy, 1972, 15:247-251. DOI:10.1029/GM015p0247. [4] BLACK H D. An easily implemented algorithm for the tropospheric range correction[J]. Journal of Geophysical Research:Solid Earth, 1978, 83(B4):1825-1828. DOI:10.1029/JB083iB04p01825. [5] ASKNE J, NORDIUS H. Estimation of tropospheric delay for microwaves from surface weather data[J]. Radio Science, 1987, 22(3):379-386. DOI:10.1029/RS022i003p00379. [6] LEANDRO R, SANTOS M, LANGLEY R. UNB neutral atmosphere models:development and performance[C]//Proceedings of 2006 National Technical Meeting of the Institute of Navigation. Monterey, CA, USA:[s.n.], 2006:564-573. DOI:10.1142/9789812701626_0034. [7] LEANDRO R F, LANGLEY R B, SANTOS M C. UNB3m_pack:a neutral atmosphere delay package for radiometric space techniques[J]. GPS Solutions, 2008, 12(1):65-70. DOI:10.1007/s10291-007-0077-5. [8] 黄良珂,刘立龙,文鸿雁,等.亚洲地区EGNOS天顶对流层延迟模型单站修正与精度分析[J].测绘学报, 2014, 43(8):808-817. DOI:10.13485/j.cnki.11G2089.2014.0126. HUANG Liangke, LIU Lilong, WEN Hongyan, et al.Single-site improvement and accuracy analysis for zenith tropospheric delay of EGNOS model over Asia area[J]. Acta Geodaetica et Cartographica Sinica, 2014, 43(8):808-817. DOI:10.13485/j.cnki.11-2089.2014.0126. [9] BÖHM J, HEINKELMANN R, SCHUH H. Short note:a global model of pressure and temperature for geodetic applications[J]. Journal of Geodesy, 2007, 81(10):679-683. DOI:10.1007/s00190-007-0135-3. [10] BÖHM J, MÖLLER G, SCHINDELEGGER M, et al. Development of an improved empirical model for slant delays in the troposphere (GPT2w)[J]. GPS Solutions, 2015, 19(3):433-441. DOI:10.1007/s10291-014-0403-7. [11] 孔建,姚宜斌,单路路,等. GPT2w模型在南极地区精度分析[J].测绘学报, 2018, 47(10):1316-1325. DOI:10.11947/j.AGCS.2018.20170487. KONG Jian, YAO Yibin, SHAN Lulu, et al. The accuracy analysis of GPT2w at the antarctic area[J]. Acta Geodaetica et Cartographica Sinica, 2018, 47(10):1316-1325. DOI:10.11947/j.AGCS.2018.20170487. [12] LANDSKRON D, BÖHM J. VMF3/GPT3:refined discrete and empirical troposphere mapping functions[J]. Journal of Geodesy, 2018, 92(4):349-360. DOI:10.1007/s00190-017-1066-2. [13] 姚宜斌,何畅勇,张豹,等.一种新的全球对流层天顶延迟模型GZTD[J].地球物理学报,2013,56(7):2218-2227. DOI:10.6038/cjg20130709. YAO Yibin, HE Changyong, ZHANG Bao, et al. A new global zenith tropospheric delay model GZTD[J]. Chinese Journal of Geophysics, 2013, 56(7):2218-2227. DOI:10.6038/cjg20130709. [14] LI Wei, YUAN Yunbin, OU Jikun, et al. A new global zenith tropospheric delay model IGGtrop for GNSS applications[J]. Chinese Science Bulletin, 2012, 57(17):2132-2139. DOI:10.1007/s11434-012-5010-9. [15] LI Wei, YUAN Yunbin, OU Jikun, et al. IGGtrop_SH and IGGtrop_rH:two improved empirical tropospheric delay models based on vertical reduction functions[J]. IEEE Transactions on Geoscience and Remote Sensing, 2018, 56(9):5276-5288. DOI:10.1109/TGRS.2018.2812850. [16] KATSOUGIANNOPOULO S, PIKRIDAS C. Prediction of zenith tropospheric delay by multi-layer perceptron[J]. Journal of Applied Geodesy, 2009, 3(4):223-229. DOI:10.1515/JAG.2009.022. [17] SUPARTA W, ALHASA K M. Modeling of tropospheric delays using ANFIS[M].[S.l.]:Springer International Publishing, 2016. DOI:10.1007/978-3-319-28437-8. [18] 王勇,张立辉,杨晶.基于BP神经网络的对流层延迟预测研究[J].大地测量与地球动力学, 2011, 31(3):134-137. DOI:10.3969/j.issn.1671-5942.2011.03.029. WANG Yong, ZHANG Lihui, YANG Jing. Study on prediction of zenith tropospheric delay by use of BP neural network[J]. Journal of Geodesy and Geodynamics, 2011, 31(3):134-137. DOI:10.3969/j.issn.1671-5942.2011.03.029. [19] 肖恭伟,欧吉坤,刘国林,等.基于改进的BP神经网络构建区域精密对流层延迟模型[J].地球物理学报, 2018, 61(8):3139-3148. DOI:10.6038/cjg2018L0565. XIAO Gongwei, OU Jikun, LIU Guolin, et al. Construction of a regional precise tropospheric delay model based on improved BP neural network[J]. Chinese Journal of Geophysics, 2018, 61(8):3139-3148. DOI:10.6038/cjg2018L0565. [20] 马健武,陶庭叶,尹为松.基于RBF神经网络的GPS对流层延迟插值模型[J].金属矿山, 2017(10):33-35. DOI:10.3969/j.issn.1001-1250.2017.10.008. MA Jianwu, TAO Tingye, YIN Weisong. GPS tropospheric delay interpolation model based on RBF neural network[J]. Metal Mine, 2017(10):33-35. DOI:10.3969/j.issn.1001-1250.2017.10.008. [21] ZHANG Q, LI F, ZHANG S, et al. Modeling and forecasting the GPS zenith troposphere delay in West Antarctica based on different blind source separation methods and deep learning[J]. Sensors, 2020, 20(8):2343. DOI:10.3390/s20082343. [22] 陈阳,胡伍生,严宇翔,等.基于神经网络模型误差补偿技术的对流层延迟模型研究[J].大地测量与地球动力学, 2018, 38(6):577-580. DOI:10.14075/j.jgg.2018.06.006. CHEN Yang, HU Wusheng, YAN Yuxiang, et al. Research on tropospheric delay model based on neural network model error compensation technique[J]. Journal of Geodesy and Geodynamics, 2018, 38(6):577-580. DOI:10.14075/j.jgg.2018.06.006. [23] 杨慧君,冯克明,谢淑香,等.基于BP神经网络的GPT2w改进模型及全球精度分析[J].系统工程与电子技术, 2019, 41(3):500-508. DOI:10.3969/j.issn.1001-506X.2019.03.06. YANG Huijun, FENG Keming, XIE Shuxiang, et al. Improved GPT2w model based on BP neural network and its global precision analysis[J]. Journal of Systems Engineering and Electronics, 2019, 41(3):500-508. DOI:10.3969/j.issn.1001-506X.2019.03.06. [24] LI Song, XU Tianhe, JIANG Nan, et al. Regional zenith tropospheric delay modeling based on least squares support vector machine using GNSS and ERA5 data[J]. Remote Sensing, 2021, 13(5):1004. DOI:10.3390/rs13051004. [25] YAO Chaolong, LUO Zhicai, HU Yueming, et al. Detecting droughts in Southwest China from GPS vertical position displacements[J]. Journal of Geodesy and Geoinformation Science, 2020, 3(3):50-58. DOI:10.11947/j.AGCS.2019.20180308. [26] ZHANG Zhen, XU Tianhe, GAO Fan, et al. Analysis of COSMIC-2 atmospheric boundary layer detection ability[C]//Proceedings of 2021 China Satellite Navigation Conference. Singapore:Springer, 2021:43-53. DOI:10.1007/978-981-16-3138-2_5. [27] 赵庆志.地基GNSS水汽反演关键技术研究及其应用[J].测绘学报, 2018, 47(3):424. DOI:101.1947/j.AGCS.2018.20170427. ZHAO Qingzhi. Studies on the key technologies in water vapor inversion using ground-based GNSS and its applications[J]. Acta Geodaetica et Cartographica Sinica, 2018, 47(3):424. DOI:101.1947/j.AGCS.2018.20170427. [28] 章传银,郭春喜,陈俊勇. EGM2008地球重力场模型在中国大陆适用性分析[J].测绘学报,2009,38(4):283-289. DOI:10.3321/j.issn:1001-1595.2009.04.001. ZHANG Chuanyin, GUO Chunxi, CHEN Junyong, et al. EGM 2008 and its application analysis in Chinese Mainland[J]. Acta Geodaetica et Cartographica Sinica, 2009,38(4):283-289. DOI:10.3321/j.issn:1001-1595.2009.04.001. [29] PAVLIS N, HOLMES, S, KENYON, S, et al. The development and evaluation of the earth gravitational model 2008(EGM2008)[J]. Journal of Geophysical Research, 2012,117(B4):148-227. B04406. DOI:10.1029/2011JB008916. [30] YAO Yibin, SUN Zhangyu, XU Chaoqian. Applicability of Bevis formula at different height levels and global weighted mean temperature model based on near-earth atmospheric temperature[J]. Journal of Geodesy and Geoinformation Science, 2020, 3(1):1-11. DOI:10.11947/j.JGGS.2020.0101. [31] HUANG L, MO Z, XIE S, et al. Spatiotemporal characteristics of GNSS-derived precipitable water vapor during heavy rainfall events in Guilin, China[J]. Satellite Navigation, 2021, 2(1):1-17. DOI:10.1186/s43020-021-00046-y. [32] JIANG Chunhua, XU Tianhe, WANG Shuaimin, et al. Evaluation of zenith tropospheric delay derived from ERA5 data over China using GNSS observations[J]. Remote Sensing, 2020, 12(4):663. DOI:10.3390/rs12040663. [33] BROOMHEAD D S, LOWE D. Multivariable functional interpolation and adaptive networks[J]. Complex Systems, 1988(2):321-355. [34] MENENTI M,JIA Li, MANCINI M, et al. High elevation energy and water balance:the roles of surface albedo and temperature[J]. Journal of Geodesy and Geoinformation Science, 2020, 3(4):70-78. DOI:10.11947/j. JGGS.2020.0407. |