Author:
Li Pan,Jiang Xinyuan,Zhang Xiaohong,Ge Maorong,Schuh Harald
Abstract
AbstractAlong with the rapid development of GNSS, not only BeiDou, but also Galileo, and the newly launched GPS satellites can provide signals on three frequencies at present. To fully take advantage of the multi-frequency multi-system GNSS observations on precise point positioning (PPP) technology, this study aims to implement the triple-frequency ambiguity resolution (AR) for GPS, Galileo, and BeiDou-2 combined PPP using the raw observation model. The processing of inter-frequency clock bias (IFCB) estimation and correction in the context of triple-frequency PPP AR has been addressed, with which the triple-frequency uncalibrated phase delay (UPD) estimation is realized for real GPS observations for the first time. In addition, the GPS extra-wide-line UPD quality is significantly improved with the IFCB correction. Because of not being contaminated by the IFCB, the raw UPD estimation method is directly employed for Galileo which currently has 24 satellites in operation. An interesting phenomenon is found that all Galileo satellites except E24 have a zero extra-wide-lane UPD value. With the multi-GNSS observations provided by MGEX covering 15 days, the positioning solutions of GPS + Galileo + BeiDou triple-frequency PPP AR have been conducted and analyzed. The triple-frequency kinematic GNSS PPP AR can achieve an averaged 3D positioning error of 2.2 cm, and an averaged convergence time of 10.8 min. The average convergence time can be reduced by triple-frequency GNSS PPP AR by 15.6% compared with dual-frequency GNSS PPP AR, respectively. However, the additional third frequency has only a marginal contribution to positioning accuracy after convergence.
Funder
China National Funds for Distinguished Young Scientists
Publisher
Springer Science and Business Media LLC
Subject
General Earth and Planetary Sciences
Reference43 articles.
1. Boehm J, Niell A, Tregoning P, Schuh H (2006) Global Mapping Functions (GMF): a new empirical mapping function based on numerical weather model data. Geophys Res Lett 33:L07304. https://doi.org/10.1029/2005GL025546
2. Cetin S, Aydin C, Dogan U (2019) Comparing GPS positioning errors derived from GAMIT/GLOBK and Bernese GNSS software packages: a case study in CORS-TR in Turkey. Surv Rev 51(369):533–543
3. Cheng S, Wang J, Peng W (2017) Statistical analysis and quality control for GPS fractional cycle bias and integer recovery clock estimation with raw and combined observation models. Adv Space Res 60(12):2648–2659
4. Collins P, Lahaye F, Héroux P, Bisnath S (2008) Precise point positioning with ambiguity resolution using the decoupled clock model. In: Proceedings of ION GNSS 2008, Institute of Navigation, Savannah, Georgia, USA, September 16–19, pp 1315–1322
5. Deng Z, Zhao Q, Springer T, Prange L, Uhlemann M (2014) Orbit and clock determination-BeiDou. In: IGS workshop, Pasadena, USA, 23–27 June 2014
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