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估计高分辨率对流层梯度对多全球导航卫星系统精密定位的影响

The Impact of Estimating High-Resolution Tropospheric Gradients on Multi-GNSS Precise Positioning.

作者信息

Zhou Feng, Li Xingxing, Li Weiwei, Chen Wen, Dong Danan, Wickert Jens, Schuh Harald

机构信息

Engineering Center of SHMEC for Space Information and GNSS, East China Normal University, No. 500 Dongchuan Road, Shanghai 200241, China.

Shanghai Key Laboratory of Multidimensional Information Processing, East China Normal University, No. 500 Dongchuan Road, Shanghai 200241, China.

出版信息

Sensors (Basel). 2017 Apr 3;17(4):756. doi: 10.3390/s17040756.

Abstract

Benefits from the modernized US Global Positioning System (GPS), the revitalized Russian GLObal NAvigation Satellite System (GLONASS), and the newly-developed Chinese BeiDou Navigation Satellite System (BDS) and European Galileo, multi-constellation Global Navigation Satellite System (GNSS) has emerged as a powerful tool not only in positioning, navigation, and timing (PNT), but also in remote sensing of the atmosphere and ionosphere. Both precise positioning and the derivation of atmospheric parameters can benefit from multi-GNSS observations. In this contribution, extensive evaluations are conducted with multi-GNSS datasets collected from 134 globally-distributed ground stations of the International GNSS Service (IGS) Multi-GNSS Experiment (MGEX) network in July 2016. The datasets are processed in six different constellation combinations, i.e., GPS-, GLONASS-, BDS-only, GPS + GLONASS, GPS + BDS, and GPS + GLONASS + BDS + Galileo precise point positioning (PPP). Tropospheric gradients are estimated with eight different temporal resolutions, from 1 h to 24 h, to investigate the impact of estimating high-resolution gradients on position estimates. The standard deviation (STD) is used as an indicator of positioning repeatability. The results show that estimating tropospheric gradients with high temporal resolution can achieve better positioning performance than the traditional strategy in which tropospheric gradients are estimated on a daily basis. Moreover, the impact of estimating tropospheric gradients with different temporal resolutions at various elevation cutoff angles (from 3° to 20°) is investigated. It can be observed that with increasing elevation cutoff angles, the improvement in positioning repeatability is decreased.

摘要

受益于现代化的美国全球定位系统(GPS)、复兴的俄罗斯全球导航卫星系统(GLONASS)、新开发的中国北斗导航卫星系统(BDS)以及欧洲伽利略系统,多星座全球导航卫星系统(GNSS)已成为一种强大工具,不仅用于定位、导航和授时(PNT),还用于大气和电离层的遥感。精确的定位和大气参数的推导都能从多GNSS观测中受益。在本论文中,利用2016年7月从国际GNSS服务(IGS)多GNSS实验(MGEX)网络的134个全球分布地面站收集的多GNSS数据集进行了广泛评估。这些数据集以六种不同的星座组合进行处理,即仅GPS、仅GLONASS、仅BDS、GPS + GLONASS、GPS + BDS以及GPS + GLONASS + BDS + 伽利略精密单点定位(PPP)。对流层梯度以从1小时到24小时的八种不同时间分辨率进行估计,以研究估计高分辨率梯度对位置估计的影响。标准偏差(STD)用作定位重复性的指标。结果表明,与每天估计对流层梯度的传统策略相比,以高时间分辨率估计对流层梯度可以实现更好的定位性能。此外,还研究了在不同仰角截止角(从3°到20°)下以不同时间分辨率估计对流层梯度的影响。可以观察到,随着仰角截止角的增加,定位重复性的改善程度会降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2aa0/5421716/778ce93a90d0/sensors-17-00756-g001.jpg

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