AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
PDF (359.5 KB)
Collect
Submit Manuscript AI Chat Paper
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline
Open Access

Geodesy Discipline: Progress and Perspective

Yibin YAO1Yuanxi YANG2( )Heping SUN3Jiancheng LI1
School of Geodesy and Geomatics, Wuhan University, Wuhan 430079, China
State Key Laboratory of Geo-Information Engineering, Xi’an 710054, China
Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences, Wuhan 430074, China
Show Author Information

Abstract

The geodesy discipline has been evolving and constantly intersecting and merging with other disciplines in the last 50 years, due to the continuous progress of geodetic observation techniques and expansion of application fields. This paper first introduces the development and roles of geodesy and its formation. Secondly, the development status of geodesy discipline is analyzed from the progress of observation techniques and cross-discipline formation is analyzed from the expansion of application fields. Furthermore,the development trend of geodesy is stated from the perspective of national requirements and scientific developments. Finally, the sub-disciplines for geodesy are suggested at the present stage, based on the requirements of the National Natural Science Foundation of China and development status of geodesy itself, which can provide references for topic selection and fund application of geodetic scientific research.

References

[1]

NING Jinsheng, CHEN Junyong, LI Deren, et al. Introduction to geomatics[M]. 2nd ed. Wuhan:Wuhan University Press, 2008.

[2]

CHEN Junyong. On the development of modern geodesy[J]. Science of Surveying and Mapping, 2003, 28(2):1-5.

[3]

KONG Xiangyuan, GUO Jiming, LIU Zongquan. Foundation of geodesy[M]. 2nd ed. Wuhan:Wuhan University Press, 2010.

[4]

HU Mingcheng. The theory and the application of contemporary geodesy[M]. Beijing:Surveying and Mapping Press, 2003.

[5]

SUN Heping. Temporal variation of gravity field and geodynamics[J]. Bulletin of the Chinese Academy of Sciences, 2004, 19(3):189-193.

[6]

DU Ruilin, XU Jusheng, QIAO Xuejun. Introduction to seismogeodesy[M]. Beijing:Science Press, 2016.

[7]

REIGBER C, LÜHR H, SCHWINTZER P. CHAMP mission status[J]. Advances in Space Research, 2002, 30(2):129-134.

[8]

TAPLEY B D, BETTADPUR S, RIES J C, et al. GRACE measurements of mass variability in the earth system[J]. Science, 2004, 305(5683):503-505.

[9]

FLOBERGHAGEN R, FEHRINGER M, LAMARRE D, et al. Mission design, operation and exploitation of the gravity field and steady-state ocean circulation explorer mission[J]. Journal of Geodesy, 2011, 85(11):749-758.

[10]

ZHAO Lihua, YANG Yuanxi, WANG Qingliang. Collocation model based on regional tectonic features in crustal deformation analysis[J]. Acta Geodaetica et Cartographica Sinica, 2011, 40(4):435-441.

[11]

NING Jinsheng. Research on the data processing methods of airborne vector gravimetry using SINS/GNSS[J]. Engineering Science, 2014(3):4-13.

[12]

JIN Taoyong, LI Jiancheng, WANG Zhengtao, et al. Global ocean mass variation in recent four years and its spatial and temporal characteristics[J]. Chinese Journal of Geophysics, 2010, 53(1):49-56.

[13]

TORGE H W. The international association of geodesy (IAG)-more than 130 years of international cooperation[J]. Journal of Geodesy, 1996, 70(12):840-845.

[14]

YANG Yuanxi. New organizations of IAG and some considerations in geodetic development of China[J]. Bulletin of Surveying and Mapping, 2003(6):8-10, 19.

[15]

RUMMEL R, ROTHACHER M, BEUTLER G. Integrated global geodetic observing system (IGGOS) -science rationale[J]. Journal of Geodynamics, 2005, 40(4-5):357-362.

[16]
MONTENBRUCK O, STEIGENBERGER P, KHACHIKYAN R, et al. IGS-MGEX:preparing the ground for multi-constellation GNSS Science[C]//Proceedings of the 4th International Colloquium on Scientific and Fundamental Aspects of the Galileo System. Prague, 2013:42-49.
[17]

JIAO Wenhai, DING Qun, LI Jianwen, et al. Monitoring and assessment of GNSS Open Services[J]. Scientia Sinica Physica, Mechanica & Astronomica, 2011, 41(5):521-527.

[18]

KAULA W M. Theory of satellite geodesy:applications of satellites to geodesy[M]. New York:Courier Dover Publications, 2000.

[19]

LI Deren. From geomatics to geospatial intelligent service science[J]. Acta Geodaetica et Cartographica Sinica, 2017, 46(10):1207-1212. DOI:10.11947/j.AGCS.2017.20170263.

[20]

LI Deren. Towards geospatial information technology in 5G/6G era[J]. Acta Geodaetica et Cartographica Sinica, 2019, 48(12):1475-1481. DOI:10.11947/j.AGCS.2019.20190437.

[21]

HUANG Dingfa, DING Jianwei, XIA Jie. On construction of continuous operation reference system for differential GPS satellite navigation and positioning[J]. Journal of Southwest Jiaotong University, 2000, 35(4):375-378.

[22]

CHEN Ming, WU Junli, LI Zhicai. Construction of the national GNSS continuous operation reference stations[J]. Geomatics World, 2018, 25(1):42-46.

[23]

SUZUKI T, KITAMURA M, AMANO Y, et al. Autonomous navigation of a mobile robot based on GNSS/DR integration in outdoor environments[J]. Journal of Robotics and Mechatronics, 2014, 26(2):214-224.

[24]

CHEN Lian, ZHOU Weijun, YU De, et al. Application progress and prospect of GIS in precision agriculture[J]. Journal of Anhui Agricultural Sciences, 2015, 43(22):352-354.

[25]

ZEBKER H A, GOLDSTEIN R M. Topographic mapping from interferometric synthetic aperture radar observations[J]. Journal of Geophysical Research, 1986, 91(B5):4993-4999.

[26]

LI Qingquan, MAO Qingzhou. Progress on dynamic and precise engineering surveying for pavement and track[J]. Acta Geodaetica et Cartographica Sinica, 2017, 46(10):1734-1741. DOI:10.11947/j.AGCS.2017.20170323.

[27]

LI Qi, BAI Zhengdong, CHEN Bobo, et al. A novel track measurement system based on GNSS/INS and multisensor for high-speed railway[J]. Acta Geodaetica et Cartographica Sinica, 2020, 49(5):569-579. DOI:10.11947/j.AGCS.2020.20190344.

[28]

XU Caijun, HE Ping, WEN Yangmao, et al. Crustal deformation monitoring of Xianshuihe fault by CR-InSAR[J]. Geomatics and Information Science of Wuhan University, 2012, 37(3):302-305.

[29]

AO Meng, ZHANG Qin, ZHAO Chaoying, et al. An improved CR-InSAR technology used for deformation monitoring in Jiaju landslide, Sichuan[J]. Geomatics and Information Science of Wuhan University, 2017, 42(3):377-383.

[30]

SUN He, CHEN Weiran, NIU Yufen, et al. Monitoring and analysis of dynamic change of mining subsidence center based on InSAR[J]. Journal of Geodesy and Geodynamics, 2020, 40(3):276-280.

[31]

XIAO Ruya, HE Xiufeng. Deformation monitoring of reservoirs and dams using time-series InSAR[J]. Geomatics and Information Science of Wuhan University, 2019, 44(9):1334-1341.

[32]

ZHANG Tieqin, HE Qisheng, JING Chenlin, et al. Dynamic monitoring of groundwater in the plain area of Beijing based on InSAR[J]. Science Technology and Engineering, 2019, 19(12):16-22.

[33]

YANG Yuanxi, TANG Jing. BeiDou satellite navigation system for smart city[J]. Satellite Application, 2014(2):7-10.

[34]

FUCHS M J, HOOPER A, BROERSE T, et al. Distributed fault slip model for the 2011 Tohoku-Oki earthquake from GNSS and GRACE/GOCE satellite gravimetry[J]. Journal of Geophysical Research, 2016, 121(2):1114-1130.

[35]

CHEN Wei, QIAO Xuejun, LIU Gang, et al. Study on the coseismic slip model and Coulomb stress of the 2017 Jiuzhaigou Ms 7.0 earthquake constrained by GNSS and InSAR measurements[J]. Chinese Journal of Geophysics, 2018, 61(5):2122-2132.

[36]

FOTI G, GOMMENGINGER C, JALES P, et al. Spaceborne GNSS reflectometry for ocean winds:first results from the UK TechDemoSat-1 mission[J]. Geophysical Research Letters, 2015, 42(13):5435-5441.

[37]
GLEASON S. Remote sensing of ocean, ice and land surfaces using bistatically scattered GNSS signals from low earth orbit[D]. Guildford:University of Surrey, 2006.
[38]
MOTTE E, EGIDO A, ROUSSEL N, et al. Applications of GNSS-R in continental hydrology[M]//BAGHDADI N, ZRIBI M. Land Surface Remote Sensing in Continental Hydrology. Amsterdam:Elsevier, 2016:281-322.
[39]

CHEN Junyong. Terrestrial reference system, geodetic constants and their realization[J]. Journal of Geodesy and Geodynamics, 2005, 25(3):1-6.

[40]

PAIL R, GOIGINGER H, SCHUH W D, et al. Combined satellite gravity field model GOCO01S derived from GOCE and GRACE[J]. Geophysical Research Letters, 2010, 37(20):L20314.

[41]

YAO Yibin, SHAN Lulu, ZHAO Qingzhi. Establishing a method of short-term rainfall forecasting based on GNSS-derived PWV and its application[J]. Scientific Reports, 2017, 7(1):12465.

[42]

LIU Jingnan, SHAO Lianjun, ZHANG Xunxie. Advances in GNSS-R studies and key technologies[J]. Geomatics and Information Science of Wuhan University, 2007, 32(11):955-960.

[43]

WANG Xiaoya, ZHU Wenyao, FU Yang, et al. Present-time crustal deformation in China and its surrounding regions by GPS[J]. Chinese Journal of Geophysics, 2002, 45(2):198-209.

[44]

ZHANG Bao, LIU Lin, KHAN S A, et al. Geodetic and model data reveal different spatio-temporal patterns of transient mass changes over Greenland from 2007 to 2017[J]. Earth and Planetary Science Letters, 2019(515):154-163.

[45]

SANDWELL D T, SMITH W H F. Marine gravity anomaly from Geosat and ERS 1 satellite altimetry[J]. Journal of Geophysical Research, 1997, 102(B5):10039-10054.

[46]

ANDERSEN O B, KNUDSEN P, BERRY P A M. The DNSC08GRA global marine gravity field from double retracked satellite altimetry[J]. Journal of Geodesy, 2010, 84(3):191-199.

[47]

LI Jiancheng, NING Jinsheng, CHAO Dingbo, et al. The applications and progress of satellite altimetry in geodesy[J]. Science of Surveying and Mapping, 2006, 31(6):19-23. DOI:10.3771/j.issn.1009-2307.2006.06.003.

[48]

FRAPPART F, DO MINH K, L’HERMITTE J, et al. Water volume change in the lower Mekong from satellite altimetry and imagery data[J]. Geophysical Journal International, 2006, 167(2):570-584.

[49]

LI Wanqiu, WANG Wei, ZHANG Chuanyin, et al. Monitoring groundwater storage variations in the Guanzhong area using GRACE satellite gravity data[J]. Chinese Journal of Geophysics, 2018, 61(6):2237-2245.

[50]

KE Linghong, DING Xiaoli, SONG Chunqiao. Heterogeneous changes of glaciers over the western Kunlun Mountains based on ICESat and Landsat-8 derived glacier inventory[J]. Remote Sensing of Environment, 2015, 168:13-23.

[51]

HU Minzhang, LI Jiancheng, JIN Taoyong, et al. Recovery of bathymetry over China Sea and its adjacent areas by combination of multi-source data[J]. Geomatics and Information Science of Wuhan University, 2015, 40(9):1266-1273.

[52]

DENG Mingli, SUN Heping, XU Jianqiao. A sectionalized fault model of Kunlun Ms8.1 earthquake in constraint of GPS data[J]. Journal of Geodesy and Geodynamics, 2008, 28(4):31-37.

[53]

LI Jiancheng, NING Jinsheng, CHEN Junyong, et al. Geoid determination in China sea areas[J]. Acta Geodaetica et Cartographica Sinica, 2003, 32(2):114-119.

[54]

JIN Taoyong, LI Jiancheng. Calibration of the linear drift of mean sea level change from satellite altimetry using tide gauge observations[J]. Geomatics and Information Science of Wuhan University, 2012, 37(10):1194-1197.

[55]

JIANG Tao, LI Jiancheng, WANG Zhengtao, et al. Global sea level variations from combined Jason-1 and GRACE data[J]. Acta Geodaetica et Cartographica Sinica, 2010, 39(2):135-140.

[56]

ZHAO Jianhu, WANG Aixue. Precise marine surveying and data processing technology and their progress of application[J]. Hydrographic Surveying and Charting, 2015, 35(6):1-7.

[57]

YANG Yuanxi, XU Tianhe, XUE Shuqiang. Progresses and prospects in developing marine geodetic datum and marine navigation of China[J]. Acta Geodaetica et Cartographica Sinica, 2017, 46(1):1-8. DOI:10.11947/j.AGCS.2017.20160519.

[58]

YANG Yuanxi, LIU Yanxiong, SUN Dajun, et al. Seafloor geodetic network establishment and key technologies[J]. Science China Earth Sciences, 2020, 50(7):936-945.

[59]

ZHOU Shuoyu, WU Yun, YAO Yunsheng, et al. Research of earthquake geodesy[J]. Journal of Geodesy and Geodynamics, 2008, 28(6):77-82.

[60]

NING Jinsheng. A brief introduction of the modern geodesy[J]. Geospatial Information, 2003, 1(1):7-9.

[61]
SANSO F, TSCHERNING C C. The inverse gravimetric problem in gravity modelling[J]. 1989, 2(3):108-119.
[62]

HEISKANEN W A, MORITZ H. Physical geodesy[J]. San Francisco:WH Freeman, 1967, 3(2):236-249.

[63]

LI Fei. A research on density of null external potential[J]. Chinese Journal of Geophysics, 1996, 39(4):512-521.

[64]
KOSTELECKÝ J, PESEK I. Determination of station coordinates and EOP from combination of different techniques[M]//RICHTER B, SCHWEGMANN W, DICK W R. IERS Technical Note No. 30. Germany:Verlag des Bundesamts für Kartographie und Geodäsie, 2003:214-215.
[65]

GU Zhennian. Analyses of irregular variation of the earth’s rotation[J]. Annals of Shanghai Observatory Academia Sinica, 1986(8):99-104.

[66]

XU Xueqing, ZHOU Yonghong. High precision prediction method of earth orientation parameters[J]. Journal of Spacecraft TT & C Technology, 2010, 29(2):70-76.

[67]

LI Jiancheng, JIN Taoyong. On the main progress of satellite altimetry and its applications[J]. Journal of Geomatics, 2013, 38(4):1-8.

[68]

YANG Yuanxi, XU Tianhe, XUE Shuqiang. Progresses and prospects in developing marine geodetic datum and marine navigation of China[J]. Acta Geodaetica et Cartographica Sinica, 2017, 46(1):1-8. DOI:10.11947/j.AGCS.2017.20160519.

[69]

JIN Shuanggen, ZHANG Qinyun, QIAN Xiaodong. New progress and application prospects of global navigation satellite system reflectometry (GNSS+R)[J]. Acta Geodaetica et Cartographica Sinica, 2017, 46(10):1389-1398. DOI:10.11947/j.AGCS.2017.20170282.

[70]

GUAN Zelin, NING Jinsheng. Earth shape and external gravity field[M]. Beijing:Surveying and Mapping Press, 1981.

[71]

WILL C M. Gravitational red-shift measurements as tests of nonmetric theories of gravity[J]. Physical Review D, 1974, 10(8):2330-2337.

[72]

SCHILLER S, TINO G M, GILL P, et al. Einstein Gravity Explorer-a medium-class fundamental physics mission[J]. Experimental Astronomy, 2009, 23(2):573-610.

[73]

BJERHAMMAR A. On a relativistic geodesy[J]. Bulletin Géodésique, 1985, 59(3):207-220.

[74]

SHEN W B, CHAO D, JIN B. On the relativistic geoid[J]. Bollettino di Geodesia e Scienze Affini, 1993(52):207-216.

[75]

YANG Yuanxi. Resilient PNT concept frame[J]. Journal of Geodesy and Geoinformation Science, 2019, 2(3):1-7.DOI:10.11947/j.JGGS.2019.0301.

[76]

YAO Yibin. 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.

Journal of Geodesy and Geoinformation Science
Pages 1-10
Cite this article:
YAO Y, YANG Y, SUN H, et al. Geodesy Discipline: Progress and Perspective. Journal of Geodesy and Geoinformation Science, 2021, 4(4): 1-10. https://doi.org/10.11947/j.JGGS.2021.0401

488

Views

13

Downloads

0

Crossref

12

Scopus

6

CSCD

Altmetrics

Received: 28 February 2021
Accepted: 30 August 2021
Published: 20 December 2021
© 2021 Journal of Geodesy and Geoinformation Science
Return