Affiliation:
1. College of Geological Engineering and Geomatics, Chang’an University, Xi’an 710054, China
Abstract
For real-time (RT) precise point positioning (PPP), the state space representation (SSR) information is often delayed due to possible communication delays and specific broadcast intervals. In this case, the positioning results will diverge and re-converge due to the increase of SSR products extrapolation errors. In addition, RT orbit and clock offset accuracy, as well as their extrapolation errors, will vary in different systems and satellites. We propose a PPP with ambiguity resolution (PPP-AR) method that combines a time-differenced carrier phase (TDCP) model, in which the characteristics of the orbit and clock are considered. Under normal communication, the PPP-AR solution is obtained by fixing satellites with small SSR product errors. When the communication is abnormal, the TDCP model is utilized to extrapolate user coordinates by considering different extrapolation error characteristics of satellites. The experimental results show that GPS and Galileo SSR products have better accuracy than BDS, with signal-in-space user ranger errors (SISREs) of 2.7, 2.2, and 8.6 cm, respectively. Optimizing the PPP stochastic model based on SISREs can effectively reduce the convergence time. Under 5 min SSR delay, SISREs caused by clock and orbit extrapolation for GPS/Galileo/BDS are 3.5, 1.4, and 2.6 cm, respectively. After optimizing the TDCP stochastic model based on extrapolation errors, the horizontal and vertical positioning accuracies can be maintained at 0.7 cm and 5.0 cm. For multi-GNSS, the combination of the TDCP and PPP-AR can overcome the influence of short delay. After optimizing the stochastic model, the GPS/Galileo/BDS positioning accuracy can be maintained at about 2.4 cm under 3 min delay, showing an accuracy improvement rate of 59.3% compared with the traditional method using only PPP. Additionally, the rapid PPP convergence results can be obtained by inheriting previous filter state information when the communication recovers normally.
Funder
National Key R&D Program of China
the National Natural Science Foundation of China
Reference39 articles.
1. Review of GNSS PPP and its application;Zhang;Acta Geod. Cartogr. Sin.,2017
2. Study on the characteristics of current crustal activity in the southern Sichuan-Yunnan block using dense GNSS data and focal mechanism solution;Zhuang;J. Geod. Geodyn.,2021
3. Precise point positioning for the efficient and robust analysis of GPS data from large networks;Zumberge;J. Geophys. Res.,1997
4. Multi-GNSS precise point positioning (MGPPP) using raw observations;Liu;J. Geod.,2017
5. Real-time high-rate co-seismic displacement from ambiguity-fixed precise point positioning: Application to earthquake early warning;Li;Geophys. Res. Lett.,2013
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献