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Contribution analysis of QZSS to single-frequency PPP of GPS/BDS/GLONASS/Galileo

机译:QZSS对GPS / BDS / Glonass / Galileo单频PPP的贡献分析

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摘要

The Quasi-Zenith Satellite System (QZSS) established by the Japan Aerospace Exploration Agency mainly serves the Asia-Pacific region and its surrounding areas. Currently, four in-orbit satellites provide services. Most users of GNSS in the mass market use single-frequency (SF) receivers owing to the low cost. Therefore, it is meaningful to analyze and evaluate the contribution of the QZSS to SF precise point positioning (PPP) of GPS/BDS/GLONASS/Galileo systems with the emergence of GNSS and QZSS. This study compares the performances of three SF PPP models, namely the GRoup and PHase Ionospheric Correction (GRAPHIC) model, GRA-PHIC with code observation model, and an ionosphere-constrained model, and evaluated the contribution of the QZSS to the SF PPP of GPS/BDS/GLONASS/Galileo systems. Moreover, the influence of code bias on the SF PPP of the BDS system is also analyzed. A two-week dataset (DOY 013-026, 2019) from 10 stations of the MGEX network is selected for validation, and the results show that: (1) For cut-off elevation angles of 15, 20, and 25°, the convergence times for the static SF PPP of GLONASS + QZSS are reduced by 4.3, 30.8, and 12.7%, respectively, and the positioning accuracy is similar compared with that of the GLONASS system. Compared with the BDS single system, the convergence times for the static SF PPP of BDS + QZSS under 15 and 25° are reduced by 37.6 and 39.2%, the hor-izontal positioning accuracies are improved by 18.6 and 14.1%, and the vertical components are improved by 13.9 and 21.4%, respec-tively. At cut-off elevation angles of 15, 20, and 25°, the positioning accuracy and precision of GPS/BDS/GLONASS/Galileo + QZSS is similar to that of GPS/BDS/GLONASS/Galileo. And the convergence times are reduced by 7.4 and 4.3% at cut-off elevation angles of 20 and 25°, respectively. In imitating dynamic PPP, the QZSS significantly improves the positioning accuracy of BDS and GLONASS. However, QZSS has little effect on the GPS-only, Galileo-only and GPS/BDS/GLONASS/Galileo. (2) The code bias of BDS IGSO and MEO cannot be ignored in SF PPP. In static SF PPP, taking the frequency band of B1I whose multipath combination is the largest among the frequency bands as an example, the vertical component has a systematic bias of approximately 0.4-1.0 m. After correcting the code bias, the positioning error in the vertical component is lower than 0.2 m, and the positioning accuracy in the hor-izontal component are improved accordingly. (3) The SF PPP model with ionosphere constraints has a better convergence speed, while the positioning accuracy of the three models is nearly equal. Therefore the GRAPHIC model can be used to get good positioning accu-racy in the absence of external ionosphere products, but its convergence speed is slower.
机译:日本航空航天勘探机构建立的准七星卫星系统(QZS)主要供应亚太地区及其周边地区。目前,四个轨道卫星提供服务。大众市场的大多数用户在大众市场中使用单频(SF)接收器,由于成本低。因此,分析和评估QZSS对GPS / BDS / GLONASS / GALILEO系统的SF精确点定位(PPP)的贡献是有意义的,随着GNSS和QZS的出现。该研究比较了三个SF PPP模型的性能,即组和相位电离层校正(图形)模型,GRA-PHIC与代码观察模型,以及离子层受限的模型,并评估了QZS对SF PPP的贡献GPS / BDS / GLONASS / GALILEO系统。此外,还分析了代码偏差对BDS系统的SF PPP的影响。选择从MGEx网络的10个站的两周数据集(DOY 013-026,2019)进行验证,结果表明:(1)用于15,20和25°的截止高度角度, Glonass + QZSS的静态SF PPP的收敛时间分别降低了4.3,30.8和12.7%,与Glonass系统相比,定位精度类似。与BDS单系统相比,15和25°下BDS + QZS的静态SF PPP的收敛时间减少了37.6%和39.2%,潜冲定位精度降低了18.6%和14.1%,垂直部件重新分析13.9%和21.4%。在15,20和25°的切断高度角度下,GPS / BDS / GLONASS / GALILEO + QZS的定位精度和精度类似于GPS / BDS / GLONASS / GALILEO。在截止升高角度为20和25°,收敛时间分别降低7.4和4.3%。在模仿动态PPP时,QZSS显着提高了BDS和Glonass的定位精度。然而,QZS对仅限GPS,伽利略和GPS / BDS / GLONASS / GALILEO影响不大。 (2)BDS IGSO和MEO的代码偏差不能在SF PPP中忽略。在静态SF PPP中,取频多径组合是频带中最大的B1i的频带,作为示例,垂直分量的系统偏置约为0.4-1.0μm。在纠正代码偏置之后,垂直分量中的定位误差低于0.2μm,因此垂直部件中的定位精度相应地改善。 (3)具有电离层约束的SF PPP模型具有更好的收敛速度,而三种型号的定位精度几乎相等。因此,在没有外部电离层产品的情况下,图形模型可用于在不存在外部电离层产品的情况下获得良好的定位抵御依次rency,但其会聚速度较慢。

著录项

  • 来源
    《Advances in space research》 |2020年第7期|1803-1817|共15页
  • 作者单位

    National Time Service Center Chinese Academy of Sciences Shu Yuan Road 710600 Xi'an China Key Laboratory of Precision Navigation and Timing Technology Chinese Academy of Sciences Xi'an 710600 China;

    National Time Service Center Chinese Academy of Sciences Shu Yuan Road 710600 Xi'an China Key Laboratory of Precision Navigation and Timing Technology Chinese Academy of Sciences Xi'an 710600 China University of Chinese Academy of Sciences Yu Quan Road Beijing 100049 China;

    National Time Service Center Chinese Academy of Sciences Shu Yuan Road 710600 Xi'an. China University of Chinese Academy of Sciences Yu Quan Road Beijing 100049 China;

    National Time Service Center Chinese Academy of Sciences Shu Yuan Road 710600 Xi'an China University of Chinese Academy of Sciences Yu Quan Road Beijing 100049 China;

    National Time Service Center Chinese Academy of Sciences Shu Yuan Road 710600 Xi'an China University of Chinese Academy of Sciences Yu Quan Road Beijing 100049 China;

    National Time Service Center Chinese Academy of Sciences Shu Yuan Road 710600 Xi'an China University of Chinese Academy of Sciences Yu Quan Road Beijing 100049 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Quasi-Zenith satellite system; Single-frequency precise point positioning; GNSS; Analysis of multipath; Ionospheric correction;

    机译:准Zenith卫星系统;单频精确点定位;GNSS;多径分析;电离层矫正;

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