The effect of different tropospheric models on precise point positioning in kinematic mode

被引:19
|
作者
Jensen, A. B. O. [1 ]
Ovstedal, O. [2 ]
机构
[1] Tech Univ Denmark, DK-2800 Lyngby, Denmark
[2] Norwegian Univ Life Sci, Dept Math Sci & Technol, As, Norway
关键词
tropospheric models; precise positioning; kinematic mode; delay models;
D O I
10.1179/003962608X290979
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Precise Point Positioning, based on undifferenced dual frequency GPS carrier phase observations, is a relatively new data processing technique for high accuracy kinematic GPS applications. No reference station data is necessary making the technique applicable e.g. for airborne high accuracy GPS positioning in remote areas where the distance to the nearest GPS reference station otherwise would be hundreds of kin. High accuracy kinematic GPS positioning is used, for instance, for airborne remote sensing with gravimetry, In SAR, or lidar equipment, where data is collected for various geophysical applications.]it the remote areas of Greenland, Northern Canada and the Northern parts of Scandinavia airborne remote sensing is carried out by various professional groups every summer, and most of these groups would like improved and more reliable high accuracy GPS positioning algorithms. The atmospheric effects on GPS satellite signals are significant. The dispersive effect of the ionosphere can be sufficiently addressed by the use of dual frequency observations. To mitigate the non-dispersive atmospheric effects, tropospheric a priori models are normally used. When observing for extended periods of time, additional tropospheric parameters can also be estimated as part of the adjustment process. In a differential mode and operating not too far from the reference receiver, most of the residual errors are eliminated in the differencing process. For Precise Point Positioning, however, and especially when processing shorter time spans of data in a kinematic mode, the accuracy of estimated positions heavily depends on the a priori models. This paper investigates the use of the Saastamoinen and the UNB3 global tropospheric delay models as well as the use of tropospheric delay estimates derived from numerical weather predictions. The various tropospheric correction approaches are tested for precise point positioning, and the positioning results are evaluated by comparison with known station coordinates. With the data and test scenario used the evaluation show similar standard deviations for all three approaches, but the Saastamoinen model performs with the smallest bias when the position results are compared to the known position. The tests are based on GPS data collected at 14 different sites in Denmark and Southern Sweden, and the numerical weather predictions available are from the HIRLAM system implemented at the Danish Meteorological Institute. The data processing is carried out using the ABSPOS software developed at the Norwegian University ofLife Sciences.
引用
收藏
页码:173 / 187
页数:15
相关论文
共 50 条
  • [31] Kinematic precise point positioning using GPS and GLONASS measurements in marine environments
    Alkan, Reha Metin
    Saka, M. Halis
    Ozulu, I. Murat
    Ilci, Veli
    MEASUREMENT, 2017, 109 : 36 - 43
  • [32] BDS/GPS Combined Kinematic Precise Point Positioning Based on Zone Corrections
    Wang A.
    Chen J.
    Zhang Y.
    Wang J.
    Wang B.
    Tongji Daxue Xuebao/Journal of Tongji University, 2020, 48 (03): : 447 - 455
  • [34] Galileo millimeter-level kinematic precise point positioning with ambiguity resolution
    Georgia Katsigianni
    Felix Perosanz
    Sylvain Loyer
    Mini Gupta
    Earth, Planets and Space, 71
  • [35] NovAtel CORRECT with Precise Point Positioning (PPP) for high accuracy kinematic applications
    Jokinen, Altti
    Ellum, Cameron
    Webster, Lain
    Masterson, Sara
    Morley, Thomas
    PROCEEDINGS OF THE 28TH INTERNATIONAL TECHNICAL MEETING OF THE SATELLITE DIVISION OF THE INSTITUTE OF NAVIGATION (ION GNSS+ 2015), 2015, : 1123 - 1152
  • [36] The improvement in integer ambiguity resolution with INS aiding for kinematic precise point positioning
    Zhang, Xiaohong
    Zhu, Feng
    Zhang, Yuxi
    Mohamed, Freeshah
    Zhou, Wuxing
    JOURNAL OF GEODESY, 2019, 93 (07) : 993 - 1010
  • [37] Flight-Test Evaluation of Kinematic Precise Point Positioning of Small UAVs
    Gross, Jason N.
    Watson, Ryan M.
    D'Urso, Stephane
    Gu, Yu
    INTERNATIONAL JOURNAL OF AEROSPACE ENGINEERING, 2016, 2016
  • [38] The improvement in integer ambiguity resolution with INS aiding for kinematic precise point positioning
    Xiaohong Zhang
    Feng Zhu
    Yuxi Zhang
    Freeshah Mohamed
    Wuxing Zhou
    Journal of Geodesy, 2019, 93 : 993 - 1010
  • [39] Galileo millimeter-level kinematic precise point positioning with ambiguity resolution
    Katsigianni, Georgia
    Perosanz, Felix
    Loyer, Sylvain
    Gupta, Mini
    EARTH PLANETS AND SPACE, 2019, 71 (1):
  • [40] The Impact of Different Mapping Function Models and Meteorological Parameter Calculation Methods on the Calculation Results of Single-Frequency Precise Point Positioning with Increased Tropospheric Gradient
    Liu, Ying
    Wang, Ren
    Gao, Jingxiang
    Zhu, Peng
    MATHEMATICAL PROBLEMS IN ENGINEERING, 2020, 2020