在重叠频率上组合 GPS/Galileo/BDS-3 信号,绘制可互操作的多径半球地图

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Jianghui Geng, Pengbo Li, Guangcai Li
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引用次数: 0

摘要

多径仍然是高精度全球导航卫星系统定位的主要挑战之一。以卫星在空间的位置重复性为基础的多径半球图(MHM)是减缓全球导航卫星系统多径效应的常用方法,但其性能取决于天图中是否有足够的卫星轨道。例如,BDS-3 中地球轨道器和伽利略卫星的轨道重复时间分别为 7 天和 10 天,如果仅使用几天的观测数据来构建 MHM,那么其轨道轨迹的天图将过于稀疏,无法覆盖随后几天的轨道轨迹变化。在这项研究中,我们利用 GPS、伽利略和 BDS-3 的重叠频率信号(即 GPS L1/L5、伽利略 E1/E5a 和 BDS-3 B1C/B2a)建立了可互操作的 MHM。我们比较了 GPS/Galileo/BDS-3 MHM(即 MP_GEC)和单一星座 MHM(即 MP_G、MP_E 和 MP_C)的性能。应用于 GPS、伽利略和 BDS-3 的 MP_GEC 的 L1/E1/B1C 和 L5/E5a/B2a 载波相位残差的平均减少率分别为 36% 和 48%,比 MP_G、MP_E 和 MP_C 大 10-30 个百分点。使用 4 天观测数据构建的 MP_GEC,在东、北和上分量上将伽利略 RMS 定位误差分别减少了 26%、31% 和 29%,与 MP_E 相比分别提高了约 16、18 和 17 个百分点,甚至接近使用 10 天观测数据构建的 MP_E 的 RMS 误差。结果表明,可互操作的 GPS/Galileo/BDS-3 MHM 能够提高空间分辨率、建模效率和校正性能,减轻多径效应对高精度 GNSS 定位的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Combining the GPS/Galileo/BDS-3 signals on overlap frequencies for interoperable multipath hemispherical maps

Combining the GPS/Galileo/BDS-3 signals on overlap frequencies for interoperable multipath hemispherical maps

Multipath remains one of the major challenges in high-precision GNSS positioning. The multipath hemispherical map (MHM) based on satellites’ location repeatability in space is a popular method to mitigate GNSS multipath effects, but its performance depends on the availability of sufficient satellite orbital tracks in the skyplot. For instance, for BDS-3 medium Earth orbiters and Galileo satellites with 7-day and 10-day orbital repeat times, respectively, the skyplot of their orbital tracks will be too sparse to cover the shifting orbital tracks on the succeeding days, if only a few days of observations are used to construct MHMs. In this study, we establish an interoperable MHM using the overlap frequency signals of GPS, Galileo and BDS-3 (i.e., GPS L1/L5, Galileo E1/E5a and BDS-3 B1C/B2a). We compared the performance of GPS/Galileo/BDS-3 MHM (i.e., MP_GEC) and single-constellation MHMs (i.e., MP_G, MP_E and MP_C). The mean reduction rates of the L1/E1/B1C and L5/E5a/B2a carrier-phase residuals for the MP_GEC applied to GPS, Galileo and BDS-3 are 36% and 48%, respectively, which are 10–30% points larger compared to the MP_G, MP_E and MP_C. The MP_GEC constructed using 4 days of observations reduced the Galileo RMS positioning errors by 26%, 31% and 29% for the east, north, and up components, respectively, showing improvements of about 16, 18 and 17% points compared to the MP_E, and even approaching the RMS errors of the MP_E constructed using 10 days of observations. The results show that the interoperable GPS/Galileo/BDS-3 MHM is able to improve the spatial resolution, modeling efficiency and correction performance in mitigating multipath effects for high-precision GNSS positioning.

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来源期刊
Journal of Geodesy
Journal of Geodesy 地学-地球化学与地球物理
CiteScore
8.60
自引率
9.10%
发文量
85
审稿时长
9 months
期刊介绍: The Journal of Geodesy is an international journal concerned with the study of scientific problems of geodesy and related interdisciplinary sciences. Peer-reviewed papers are published on theoretical or modeling studies, and on results of experiments and interpretations. Besides original research papers, the journal includes commissioned review papers on topical subjects and special issues arising from chosen scientific symposia or workshops. The journal covers the whole range of geodetic science and reports on theoretical and applied studies in research areas such as: -Positioning -Reference frame -Geodetic networks -Modeling and quality control -Space geodesy -Remote sensing -Gravity fields -Geodynamics
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