Performance assessment of RTPPP positioning with SSR corrections and PPP-AR positioning with FCB for multi-GNSS from MADOCA products

被引:7
作者
Yu, Deying [1 ]
Ji, Bing [1 ]
Liu, Yi [1 ]
Wu, Shuguang [1 ]
Li, Houpu [1 ]
Bian, Shaofeng [2 ]
机构
[1] Naval Univ Engn, Sch Elect Engn, Wuhan 430033, Peoples R China
[2] China Univ Geosci Wuhan, Key Lab Geol Survey & Evaluat, Minist Educ, Wuhan 430074, Peoples R China
基金
中国国家自然科学基金; 美国国家科学基金会;
关键词
QZSS; MADOCA product; RTPPP; SSR correction; PPP-AR; FCB; PRECISE; RESOLUTION;
D O I
10.1016/j.asr.2022.11.039
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The state-space representation (SSR) product of satellite orbit and clock is one of the most essential corrections for real-time precise point positioning (RTPPP). When it comes to PPP ambiguity resolution (PPP-AR), the fractional cycle bias (FCB) matters. The Japan Aerospace Exploration Agency (JAXA) has developed a multi-GNSS (i.e., global navigation satellite system) advanced demonstration tool for orbit and clock analysis (MADOCA), providing free and precise orbit and clock products. Because of the shortage of relevant studies on performance evaluation, this paper focuses on the performance assessment of RTPPP and PPP-AR by real-time and of pine MADOCA products. To begin with, the real-time MADOCA products are evaluated by comparing orbit and clock with JAXA final products, which gives an objective impression of the correction. Second, PPP tests in static and simulated kinematic mode are conducted to further verify the quality of real-time MADOCA products. Finally, the of pine MADOCA products are assessed by PPP and PPP-AR comparisons. The results are as follows: (1) Orbit comparisons produced an average error of about 0.04-0.13 m for the global positioning system (GPS), 0.14-0.16 m for the global navigation satellite system (GLONASS), and 0.07-0.08 m for the quasi-zenith satellite system (QZSS). The G15 satellite had the most accurate orbit, with a difference of 0.04 m between the JAXA orbit products and MADOCA's counterpart, while the R07 satellite had the least accurate orbit with a difference of 0.16 m. Clock products had an accuracy of 0.4-1.3 ns for GPS, 1.4-1.6 ns for GLONASS, and 0.7-0.8 ns for QZSS in general. The G15 satellite had the most accurate clock with a difference of only 0.40 ns between the JAXA clock products and MADOCA products, and the R07 satellite had the least accurate clock with a difference of 1.55 ns. The orbit and clock products for GLONASS performed worse than those of GPS and QZSS. (2) After convergence, the positioning accuracy was 3.0-8.1 cm for static PPP and 8.1-13.7 cm for kinematic PPP when using multi-GNSS observations and precise orbit and clock products. The PFRR station performed the good performance both in static and kinematic mode with an accu-racy of 2.99 cm and 8.08 cm, respectively, whereas the CPNM station produced the worst static performance with an error of 8.09 cm, and the ANMG station produced the worst kinematic performance with a counterpart of 13.69 cm. (3) The PPP-AR solution was supe-rior to the PPP solution, given that, with respect to PPP, post-processing PPP-AR improved the positioning accuracy and convergence time by 13-32 % (3-89 %) in GPS-only mode by 2-15 % (5-60 %) in GPS/QZSS mode. Thus, we conclude that the current MADOCA products can provide SSR corrections and FCB products with positioning accuracy at the decimeter or even centimeter level, which could meet the demands of the RTPPP and PPP-AR solutions. (c) 2022 COSPAR. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:2924 / 2937
页数:14
相关论文
共 43 条
[21]  
Julien O., 2003, P EUROPEAN NAVIGATIO, P1
[22]   PPP and PPP-AR Kinematic Post-Processed Performance of GPS-Only, Galileo-Only and Multi-GNSS [J].
Katsigianni, Georgia ;
Loyer, Sylvain ;
Perosanz, Felix .
REMOTE SENSING, 2019, 11 (21)
[23]   Weighting of Multi-GNSS Observations in Real-Time Precise Point Positioning [J].
Kazmierski, Kamil ;
Hadas, Tomasz ;
Sosnica, Krzysztof .
REMOTE SENSING, 2018, 10 (01)
[24]  
Laurichesse Denis, 2009, Navigation. Journal of the Institute of Navigation, V56, P135
[25]   Precise Point Positioning with Almost Fully Deployed BDS-3, BDS-2, GPS, GLONASS, Galileo and QZSS Using Precise Products from Different Analysis Centers [J].
Li, Xuanping ;
Pan, Lin .
REMOTE SENSING, 2021, 13 (19)
[26]   Modeling and Assessment of GPS/Galileo/BDS Precise Point Positioning with Ambiguity Resolution [J].
Liu, Xuexi ;
Chen, Hua ;
Jiang, Weiping ;
Xi, Ruijie ;
Zhao, Wen ;
Song, Chuanfeng ;
Zhou, Xingyu .
REMOTE SENSING, 2019, 11 (22)
[27]   Real-Time Phase Bias Estimation for BeiDou Satellites Based on Consideration of Orbit Errors [J].
Liu, Yanyan ;
Zhu, Jiasong ;
Ye, Shirong ;
Song, Weiwei .
REMOTE SENSING, 2018, 10 (07)
[28]   Impact and mitigation of neglecting PPP-RTK correctional uncertainty [J].
Psychas, Dimitrios ;
Khodabandeh, Amir ;
Teunissen, Peter J. G. .
GPS SOLUTIONS, 2022, 26 (01)
[29]   Performance Assessment of BDS Real-Time Precise Point Positioning Based on SSR Corrections [J].
Shi, Yishuai ;
Hao, Jinming ;
Liu, Weiping ;
Jiao, Bo ;
Zhang, Hui ;
Song, Baofeng .
JOURNAL OF SURVEYING ENGINEERING, 2019, 145 (04)
[30]   PWV Retrieval over the Ocean Using Shipborne GNSS Receivers with MADOCA Real-Time Orbits [J].
Shoji, Yoshinori ;
Sato, Kazutoshi ;
Yabuki, Masanori ;
Tsuda, Toshitaka .
SOLA, 2016, 12 :265-271