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Performance of Selected Ionospheric Models in Multi-Global Navigation Satellite System Single-Frequency Positioning over China

机译:选定电离层模型在中国多全球导航卫星系统单频定位中的性能

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Ionospheric delay as the major error source needs to be properly handled in multi-GNSS (Global Navigation Satellite System) single-frequency positioning and the different ionospheric models exhibit apparent performance difference. In this study, two single-frequency positioning solutions with different ionospheric corrections are utilized to comprehensively analyze the ionospheric delay effects on multi-frequency and multi-constellation positioning performance, including standard point positioning (SPP) and ionosphere-constrained precise point positioning (PPP). The four ionospheric models studied are the GPS broadcast ionospheric model (GPS-Klo), the BDS (BeiDou Navigation Satellite System) broadcast ionospheric model (BDS-Klo), the BDS ionospheric grid model (BDS-Grid) and the Global Ionosphere Maps (GIM) model. Datasets are collected from 10 stations over one month in 2019. The solar remained calm and the ionosphere was stable during the test period. The experimental results show that for single-frequency SPP, the GIM model achieves the best accuracy, and the positioning accuracy of the BDS-Klo and BDS-Grid model is much better than the solution with GPS-Klo model in the N and U components. For the single-frequency PPP performance, the average convergence time of the ionosphere-constrained PPP is much reduced compared with the traditional PPP approach, where the improvements are of 11.2%, 11.9%, 21.3% and 39.6% in the GPS-Klo-, BDS-Klo-, BDS-Grid- and GIM-constrained GPS + GLONASS + BDS single-frequency PPP solutions, respectively. Furthermore, the positioning accuracy of the BDS-Grid- and GIM-constrained PPP is generally the same as the ionosphere-free combined single-frequency PPP. Through the combination of GPS, GLONASS and BDS, the positioning accuracy and convergence performance for all single-system single-frequency SPP/PPP solutions can be effectively improved.
机译:电离层延迟是主要的误差源,需要在多GNSS(全球导航卫星系统)单频定位中得到适当处理,并且不同的电离层模型表现出明显的性能差异。在这项研究中,利用两个具有不同电离层校正的单频定位解决方案来全面分析电离层延迟对多频和多星座定位性能的影响,包括标准点定位(SPP)和电离层约束精确点定位(PPP) )。研究的四个电离层模型是GPS广播电离层模型(GPS-Klo),BDS(北斗导航卫星系统)广播电离层模型(BDS-Klo),BDS电离层网格模型(BDS-Grid)和全球电离层地图( GIM)模型。在2019年的一个月内,从10个站点收集了数据集。在测试期间,太阳保持平静,电离层保持稳定。实验结果表明,对于单频SPP,GIM模型达到了最佳精度,在N和U分量上,BDS-Klo和BDS-Grid模型的定位精度远优于GPS-Klo模型的解决方案。对于单频PPP性能,与传统PPP方法相比,电离层约束PPP的平均收敛时间大大缩短,传统方法在GPS-Klo-GPS中分别提高了11.2%,11.9%,21.3%和39.6%。 ,BDS-Klo-,BDS-Grid-和GIM约束的GPS + GLONASS + BDS单频PPP解决方案。此外,受BDS-Grid和GIM约束的PPP的定位精度通常与无电离层组合单频PPP相同。通过GPS,GLONASS和BDS的组合,可以有效地提高所有单系统单频SPP / PPP解决方案的定位精度和收敛性能。

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