Multi-GNSS fractional cycle bias products generation for GNSS ambiguity-fixed PPP at Wuhan University

被引:0
作者
Jiahuan Hu
Xiaohong Zhang
Pan Li
Fujian Ma
Lin Pan
机构
[1] Wuhan University,School of Geodesy and Geomatics
[2] Collaborative Innovation Center for Geospatial Technology,School of Geosciences and Info
[3] German Research Centre for Geosciences (GFZ),Physics
[4] Central South University,undefined
来源
GPS Solutions | 2020年 / 24卷
关键词
Multi-GNSS; Fractional cycle bias; Precise point positioning; Ambiguity resolution;
D O I
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中图分类号
学科分类号
摘要
The School of Geodesy and Geomatics (SGG) at Wuhan University has been generating GPS fractional cycle bias (FCB) products for users to realize ambiguity-fixed precise point positioning (PPP) since 2015. Along with the development of multiple Global Navigation Satellite Systems (GNSS), there is an urgent need to provide multi-GNSS FCB products for the PPP ambiguity resolution (AR) with multi-constellation observations. This study focuses on the multi-GNSS FCB estimation, in which the FCB products of GPS, Galileo, BDS and QZSS are generated. We describe here the detailed estimation method and the significant improvements to the new service. The FCB quality, as well as the PPP AR performance, is evaluated. The mean standard deviations of wide-lane FCBs relative to CODE are 0.019, 0.005, 0.015 and 0.008 cycles, while those of narrow-lane are 0.021, 0.021, 0.057 and 0.010 cycles for GPS, Galileo, BDS and QZSS, respectively. The comparison with CNES GPS and Galileo FCBs indicates their good consistency with the corresponding FCBs. Compared with GPS-only PPP AR, the convergence time and time to first fix of the four-system PPP AR can be reduced by 27.3 and 29.4% in the static mode, respectively, while the corresponding improvements are 42.6 and 51.9% in the kinematic mode, respectively. These results demonstrate that our SGG FCB service can provide high-precision and reliable four-system FCB corrections for worldwide users to conduct ambiguity-fixed PPP processing.
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[1]  
Chen S(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 2648-2659
[2]  
Wang J(2007)On the link between GPS pseudorange noise and day-boundary discontinuities in geodetic time transfer solutions GPS Solut 11 239-249
[3]  
Peng W(2008)GPS RTK performance characteristics and analysis J Glob Position Syst 7 1-8
[4]  
Defraigne P(2015)Improving ambiguity resolution for medium baselines using combined GPS and BDS dual/triple-frequency observations Sensors 15 27525-27542
[5]  
Bruyninx C(2008)Resolution of GPS carrier-phase ambiguities in precise point positioning (PPP) with daily observations J Geod 82 389-399
[6]  
Feng Y(2009)Integer ambiguity resolution on undifferenced GPS phase measurements and its application to PPP and satellite precise orbit determination Navigation 56 135-149
[7]  
Wang J(2014)Integrating GPS and GLONASS to accelerate convergence and initialization times of precise point positioning GPS Solut 18 461-471
[8]  
Gao W(2015)Retrieving of atmospheric parameters from multi-GNSS in real time: validation with water vapor radiometer and numerical weather model J Geophys Res-Atmos 120 7189-7204
[9]  
Gao C(2016)Generating GPS satellite fractional cycle bias for ambiguity-fixed precise point positioning GPS Solut 20 771-782
[10]  
Pan S(2017)Ambiguity resolved precise point positioning with GPS and BeiDou J Geod 91 25-40