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Multi-GNSS precise point positioning with raw single-frequency and dual-frequency measurement models

机译:具有原始单频和双频测量模型的Multi-GNSS精确点定位

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摘要

The emergence of multiple satellite navigation systems, including BDS, Galileo, modernized GPS, and GLONASS, brings great opportunities and challenges for precise point positioning (PPP). We study the contributions of various GNSS combinations to PPP performance based on undifferenced or raw observations, in which the signal delays and ionospheric delays must be considered. A priori ionospheric knowledge, such as regional or global corrections, strengthens the estimation of ionospheric delay parameters. The undifferenced models are generally more suitable for single-, dual-, or multi-frequency data processing for single or combined GNSS constellations. Another advantage over ionospheric-free PPP models is that undifferenced models avoid noise amplification by linear combinations. Extensive performance evaluations are conducted with multi-GNSS data sets collected from 105 MGEX stations in July 2014. Dual-frequency PPP results from each single constellation show that the convergence time of undifferenced PPP solution is usually shorter than that of ionospheric-free PPP solutions, while the positioning accuracy of undifferenced PPP shows more improvement for the GLONASS system. In addition, the GLONASS undifferenced PPP results demonstrate performance advantages in high latitude areas, while this impact is less obvious in the GPS/GLONASS combined configuration. The results have also indicated that the BDS GEO satellites have negative impacts on the undifferenced PPP performance given the current "poor" orbit and clock knowledge of GEO satellites. More generally, the multi-GNSS undifferenced PPP results have shown improvements in the convergence time by more than 60 % in both the single- and dual-frequency PPP results, while the positioning accuracy after convergence indicates no significant improvements for the dual-frequency PPP solutions, but an improvement of about 25 % on average for the single-frequency PPP solutions.
机译:包括BDS,伽利略,现代化GPS和GLONASS在内的多种卫星导航系统的出现,为精确点定位(PPP)带来了巨大的机遇和挑战。我们基于无差异或原始观测研究了各种GNSS组合对PPP性能的贡献,其中必须考虑信号延迟和电离层延迟。先验的电离层知识,例如区域或全局校正,可加强对电离层延迟参数的估计。无差异模型通常更适合于单个或组合GNSS星座图的单频,双频或多频数据处理。优于无电离层的PPP模型的另一个优势是,无差异的模型避免了线性组合带来的噪声放大。使用2014年7月从105个MGEX台站收集的多个GNSS数据集进行了广泛的性能评估。每个星座的双频PPP结果表明,无差异PPP解决方案的收敛时间通常比无电离层PPP解决方案的收敛时间短,而无差异PPP的定位精度显示了GLONASS系统的更多改进。此外,GLONASS无差异的PPP结果证明了在高纬度地区的性能优势,而在GPS / GLONASS组合配置中这种影响不太明显。结果还表明,考虑到当前对GEO卫星的“差”轨道和时钟知识,BDS GEO卫星对无差异的PPP性能具有负面影响。更一般而言,多GNSS无差异PPP结果在单频和双频PPP结果中都显示出收敛时间改善了60%以上,而收敛后的定位精度表明,双频PPP没有明显改善解决方案,但单频PPP解决方案平均可提高25%。

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