Computation of Zenith Total Delay Correction Fields Using Ground-Based GNSS

被引:7
作者
Pace, B. [1 ]
Pacione, R. [1 ]
Sciarretta, C. [1 ]
Bianco, G. [2 ]
机构
[1] E GEOS SpA, CGS, I-75100 Matera, Italy
[2] Agenzia Spaziale Italiana, CGS, I-75100 Matera, Italy
来源
VIII HOTINE-MARUSSI SYMPOSIUM ON MATHEMATICAL GEODESY | 2016年 / 142卷
关键词
Augmentation; GNSS positioning; Ordinary Kriging; Tropospheric model; Zenith Total Delay; GPS; RADIOSONDE; SERVICE; MODEL; IGS;
D O I
10.1007/1345_2015_144
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Tropospheric refraction is one of the major error sources in satellite-based positioning. The delay of radio signals caused by the troposphere ranges from 2 m at the zenith to 20 m at low elevation angles, depending on pressure, temperature and humidity along the path of the signal transmission. If the delay is not properly modelled, positioning accuracy can degrade significantly. Empirical tropospheric models, with or without meteorological observations, are used to correct these delays but they cannot model tropospheric variations exactly since they are limited in accuracy and spatial resolution resulting in up to a few decimetres error in positioning solutions. The present availability of dense ground based Global Navigation Satellite System (GNSS) networks and the state of the art GNSS processing techniques enable precise estimation of Zenith Tropospheric Delays (ZTD) with different latency ranging from Near Real-Time (NRT) to post-processing. We describe a method for computing ZTD correction fields interpolating, through Ordinary Kriging, the residuals between GNSS-derived and model-computed ZTD at continuously operating GNSS stations. At a known user location, the correction which is added to the modelled-ZTD value can be obtained through a bi-linear interpolation with the four nearest grid points surrounding it. The performance of the method has been evaluated over a 1-year period at 25 European stations belonging to the EUREF and IGS network. It is found that such an empirical tropospheric model can be improved when considering tropospheric corrections coming from ground based GNSS network.
引用
收藏
页码:131 / 137
页数:7
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