350 rub
Journal Radioengineering №7 for 2014 г.
Article in number:
Precise point positioning with ground network-based estimates of coordinates and clocks from navigation satellites
Authors:
M.A. Mironov - Dr.Sc. (Eng.), Professor
A.V. Veitsel - Ph.D. (Eng.), Associate Professor
A.V. Bashaev - Ph.D. (Eng.), Associate Professor
Abstract:
A mathematical description of coupled algorithms for generating corrections to a time scale of navigation satellites has been given based on the information from a network of ground base stations; application of such corrections for user receivers providing high-precision positioning of a single receiver using accurate estimates of satellite coordinates and integer ambiguity resolution of phase measurements combinations free of ionosphere effects was also presented. General stages of solving the mentioned tasks have been described that related to generation of corresponding linear combinations of primary measurements of pseudo-ranges and full phases, single and double differences of these combinations needed for obtaining corrections and specifying coordinates of ground stations. It has been shown that the method of obtaining corrections leads to a need of generating the same measurement combinations as for the network by the user (or, otherwise, the use of some measurement combinations for high-precision positioning results in generating the corresponding corrections). Such a situation is typical for differential systems and reflects the fact that the use of some or other corrections is tightly connected to the method of their generation. A presentation of the information is given similarly and closely connected to RTK differential phase mode that has already had implemented program solutions.
Pages: 47-54
References

  1. Kouba J. A Guide to Using International GNSS Service (IGS) Products. May. 2009. http://igscb.jpl.nasa.gov/ components/usage.html.
  2. Héroux P., Caissy M., Gallace J. Canadian Active Control System Data Acquisition and Validation. Proceedings of the 1993 IGS (International GPS Service for Geodynamics) Workshop, University of Bern. 1993.
  3. Héroux P., Kouba J., Collins P., Lahaye F. GPS Carrier-Phase Point Positioning with Precise Orbit Products // Proceedings of the KIS 2001, Banff, Alberta, Canada, June 5-8. 2001.
  4. Collins P. et al. Accessing and Processing Real-Time GPS Corrections for Precise Point Positioning - Some User Considerations. ION GNSS 2005, Long Beach, CA, 13-16 September. 2005.
  5. Laurichesse D., Mercier F. Integer ambiguity resolution on undifferenced GPS phase measurements and its application to PPP. ION GNSS 2007, Fort Worth, TE. 25-28 September.
  6. Collins P. Isolating and Estimating Undifferenced GPS Integer Ambiguities. ION NTM 2008. San Diego. CA. 28-30 January.
  7. Collins P., Lahaye F., Héroux P., Bisnath S. Precise Point Positioning with Ambiguity Resolution using the Decoupled Clock Model. ION GNSS 2008. Savannah, GE, 16-19 September. 2008.
  8. Laurichesse D. et al. Integer Ambiguity Resolution on Undifferenced GPS Phase Measurements and Its Application to PPP and Satellite Precise Orbit Determination. // Navigation: Journal of the Institute of Navigation. 2009. V. 56. № 2.
  9. Collins P. et al. Precise Point Positioning for Real-Time Determination of Co-Seismic Crustal Motion. ION GNSS 2009, Savannah. GE. 22-25. September.
  10. Collins P., Bisnath S., Lahaye F., Héroux P. Undifferenced GPS Ambiguity Resolution Using the Decoupled Clock Model and Ambiguity Datum Fixing // Navigation: Journal of the Institute of Navigation. 2010. V. 57. № 2.
  11. Collins P., Bisnath S. Issues in Ambiguity Resolution for Precise Point Positioning. ION GNSS 2011. 19-23 September. Portland. OR.
  12. Collins P., Lahaye F., Bisnath S. External Ionospheric Constraints for Improved PPP-AR Initialisation and a Generalized Local Augmentation Concept. Proc. of the ION GNSS 2012. September 17-21. 2012. Nashville. TN.
  13. Dvorkin V. V., Karutin S. N., Gluxov P. B., Podkory'tov A.N. Perspektivny'j vy'sokotochny'j kompleks funkczional'nogo dopolneniya global'ny'x navigaczionny'x sistem na baze sistemy' differenczial'noj korrekczii i monitoringa // Uspexi sovremennoj radioe'lektroniki. 2013. № 1.
  14. Povalyaev A. A., Podkory'tov A. N. Zadacha vy'sokotochnogo opredeleniya absolyutny'x koordinat v global'ny'x navigaczionny'x sputnikovy'x sistemax // Radiotexnika. 2014. № 1.
  15. Melbourne W.G. The Case for Ranging in GPS Based Geodetic Systems // Proceedings of the 1st International Symposium on Precise Positioning with the Global Positioning System, edited by Clyde Goad, 1985, US Department of Commerce, Rockville, Maryland.
  16. Wübbena G. Software Developments for Geodetic Positioning with GPS Using TI 4100 Code and Carrier Measurements // Proceedings of the 1st International Symposium on Precise Positioning with the Global Positioning System, edited by Clyde Goad. 1985. US Department of Commerce, Rockville, Maryland.
  17. Jarly'kov M.S., Mironov M.A. Markovskaya teoriya oczenivaniya sluchajny'x proczessov. M.: Radio i svyaz'. 1993.
  18. Monikes R., Wendel J., Trommer G.F. A Modified Lambda Method for Ambiguity Resolution in the Presence of Position Domain Constraints / ION GNSS 18th International Technical Meeting of the Satellite Division, 13-16 September 2005, Long Beach, CA.