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Influence of the inhomogeneous troposphere on GNSS positioning and integer ambiguity resolution

机译:非均匀对流层对GNSS定位和整数模糊分辨率的影响

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摘要

The tropospheric delay is one of many error sources that affect the Global Navigation Satellite System (GNSS) positioning solutions. The widely used troposphere models assume a homogeneous atmosphere so that only the zenith delay needs to be determined and is mapped through an elevation-dependent mapping function. This procedure is to reduce the computational burden and keep the positioning model full-rank. However, this assumption fails for a realistic description of the troposphere, which is always asymmetrical at a certain elevation angle, especially during a weather event when the weather conditions are very complex. These imperfectly modelled tropospheric delays may influence the positioning accuracy and integer ambiguity resolution performance. In this case, this contribution aims to investigate the effects of the model errors due to the asymmetrical troposphere on GNSS estimations. The Numerical Weather Prediction (NWP) model is applied to generate the actual ray-tracing tropospheric delay in Western Europe, and the tropospheric model errors are calculated in a normal weather condition and a weather event condition by comparing the slant delay calculated from the NWP model and the mapping function. Case studies on the same GNSS station are conducted in two weather conditions: a normal troposphere condition and a weather event with heavy rainfall. The results based on the case studies show that the troposphere in the normal weather condition is nearly homogeneous that the azimuthal-dependent discrepancies of the tropospheric delay are less than 1cm at a very low elevation angle; meanwhile, the discrepancies between different azimuthal angles can reach to more than 25cm in the weather event. A single-frequency Single Point Positioning (SPP) model and a Precise Point Positioning (PPP) model that preserves the integer property of ambiguity are chosen for studying the estimation biases caused by the troposphere model errors. It turns out that almost all horizontal positioning biases of SPP and PPP are less than lcm in the normal weather condition; however, the scales of the horizontal and 3D biases are concentrated in 1 to 10cm in the weather event for these two models. This contribution also contains the study of the actual integer ambiguity resolution success rate in the presence of the tropospheric model errors by applying the Monte Carlo simulation, and the success rates of PPP in the normal weather condition are consistent with the theoretical values calculated with the ideal troposphere which is totally symmetrical. However, the actual success rates in the weather event are extremely low at some epochs due to the tropospheric model errors, which means that wrong fixing may occur since the theoretical values cannot take into account these model errors. Note that the horizontal tropospheric gradients are not involved in the processing, which means that an optimistic performance might be expected if the gradients are considered.
机译:对流层延迟是影响全球导航卫星系统(GNSS)定位解决方案的许多错误源之一。广泛使用的对流层模型假设一个均匀的气氛,使得只需要确定Zenith延迟并且通过高程依赖的映射函数映射。此程序是减少计算负担并保持定位模型全级。然而,这种假设失败了对流层的实际描述,这在一定的仰角上总是不对称,特别是在天气条件非常复杂的天气事件期间。这些不完全模型的对流层延迟可能影响定位精度和整数模糊分辨率性能。在这种情况下,该贡献旨在探讨模型误差由于GNSS估计上的不对称对流层。应用数值天气预报(NWP)模型应用于在西欧的实际追踪对流层延迟,通过比较来自NWP模型计算的倾斜延迟,在正常的天气状况和天气事件条件下计算了对流层模型误差和映射函数。对同一GNSS站的案例研究在两个天气条件下进行:正常的对流层条件和暴雨的天气事件。基于案例研究的结果表明,正常天气条件下的对流层几乎均匀地,在极低的仰角处,对流层延迟的方位依赖性差异小于1cm;同时,不同方位角之间的差异可以在天气事件中达到超过25厘米。选择单频单点定位(SPP)模型和保留模糊性整数的精确点定位(PPP)模型,用于研究由对流层模型误差引起的估计偏差。事实证明,SPP和PPP的几乎所有水平定位偏差在正常的天气条件下都小于LCM;然而,在这两个模型的天气事件中,水平和3D偏置的尺度集中在1到10cm中。该贡献还包含通过应用蒙特卡罗模拟存在对流层模型误差存在的实际整数模糊分辨率成功率的研究,并且PPP在普通天气状况下的成功率与理想计算的理论值一致。对流层完全对称。然而,由于对流层模型错误,一些时期,天气事件中的实际成功率在一些时期非常低,这意味着可能发生错误的修复,因为理论值无法考虑这些模型错误。请注意,水平的对流层梯度不参与处理,这意味着如果考虑梯度,则可以预期乐观的性能。

著录项

  • 来源
    《Advances in space research 》 |2021年第6期| 1914-1928| 共15页
  • 作者单位

    GNSS Research Center Wuhan University Wuhan 430079 China Department of Geoscience and Remote Sensing Delft University of Technology Delft 2600 AA the Netherlands;

    Department of Geoscience and Remote Sensing Delft University of Technology Delft 2600 AA the Netherlands Fugro Innovation & Technology B. V. Leidschendam 2631 RT the Netherlands;

    Hainan Meteorological Service Center Haikou 570203 China;

    GNSS Research Center Wuhan University Wuhan 430079 China;

    Department of Geoscience and Remote Sensing Delft University of Technology Delft 2600 AA the Netherlands;

    Fugro Innovation & Technology B. V. Leidschendam 2631 RT the Netherlands;

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

    GNSS; Tropospheric delay; PPP; PPP-AR; Integer ambiguity resolution; Monte Carlo simulation; Model errors;

    机译:GNSS;对流层延迟;PPP;PPP-AR;整数歧义分辨率;蒙特卡罗模拟;模型错误;
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