Performance assessment of real-time multi-GNSS integrated PPP with uncombined and ionospheric-free combined observables |
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Authors: | Lin Pan Xiao Gao Jiahuan Hu Fujian Ma Zhiyu Zhang Weiwang Wu |
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Affiliation: | 1. School of Geosciences and Info-Physics, Central South University, Changsha, China;2. Guangxi Key Laboratory of Spatial Information and Geomatics, Guilin, China;3. Hunan Institute of Surveying and Mapping Technology, Changsha, China;4. College of Geological Engineering and Geomatics, Chang’an University, Xi’an, China;5. Northwest Electric Power Design Institute Co., LTD. of China Power Engineering Consulting Group, Xi’an, China;6. School of Geodesy and Geomatics, Wuhan University, 129 Luoyu Road, Wuhan, China |
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Abstract: | For precise position services, the real-time precise point positioning (PPP) is a promising technology. The real-time PPP performance is expected to be improved by multi-system combination. The performance of real-time multi-system PPP needs to be periodically investigated, with the increasing number of available satellites and the continuously improved quality of real-time precise products of satellite clocks and orbits. In this study, a comprehensive performance assessment is conducted for the four-system integrated real-time PPP (FSIRT-PPP) with GPS, BDS, Galileo and GLONASS in both static and kinematic modes. The datasets from 118 stations spanning approximately a month are used for analysis, and the real-time stream CLK93 is employed. The superior performance of FSIRT-PPP is validated by comparing with the results of GPS/BDS, GPS/Galileo, GPS/GLONASS, GPS-only, BDS-only, Galileo-only and GLONASS-only cases. The FSIRT-PPP using ionospheric-free (IF) combined observables can achieve a convergence time of 10.9, 4.8 and 11.8 min and a positioning accuracy of 0.4, 0.5 and 0.7 cm in the static mode in the east, north and up directions, respectively, while the derived statistic is 15.4, 7.0 and 16.4 min, and 1.6, 1.2 and 3.4 cm in the kinematic mode in the three directions, respectively. Moreover, we also compare the position solutions of real-time PPP adopting IF combined and uncombined (UC) observables, and prove the mathematical equivalence between the two PPP models in the converged stage, provided that there are no external ionospheric corrections or constraints given to the estimated ionospheric delays in the UC model. The difference between the fully converged positioning accuracy of IF-based and UC-based real-time PPP is marginal, but the UC-based real-time PPP has longer convergence time due to the influence of the significant unmodeled time-varying errors in the real-time precise products as well as the different parameterization between them. For completeness, the real-time kinematic PPP results in harsh environments and the post-processed PPP results are also presented. |
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Keywords: | Precise point positioning (PPP) Multi-system Performance assessment Uncombined observable Ionospheric-free combined observable Real-time |
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