Suppr超能文献

探索用于双频全球导航卫星系统精密单点定位的L5/E5a/B2a信号

Exploring Signals on L5/E5a/B2a for Dual-Frequency GNSS Precise Point Positioning.

作者信息

Naciri Nacer, Hauschild André, Bisnath Sunil

机构信息

Department of Earth and Space Science and Engineering, York University, Toronto, ON M3J 1P3, Canada.

German Aerospace Center (DLR), German Space Operations Center (GSOC), 82234 Wessling, Germany.

出版信息

Sensors (Basel). 2021 Mar 14;21(6):2046. doi: 10.3390/s21062046.

Abstract

Due to its nature, Precise Point Positioning (PPP) depends on the GNSS measurements and quality of satellite correction products used to relatively quickly provide precise and accurate positions. With the rapid evolution of Global Navigation Satellite Systems (GNSSs), new frequencies and signals are being broadcast, which have a positive impact on PPP performance. This paper presents, for the first time, a comprehensive analysis of PPP performance from these new GPS, Galileo and BeiDou-2/3 signals, which are not yet commonly used for PPP, with correct mitigation of errors such as the estimation of GPS Block-IIF L5 variations. Satellite orbits and clocks, as well as GPS Block-IIF L5 corrections, are estimated in real-time using DLR's RETICLE engine, while the user processing is performed with York University's PPP engine. First, as a reference, PPP performance is assessed on widely used signals: GPS L1/L2, Galileo E1/E5a, and BeiDou-2/3 B1-2/B3. Horizontal and vertical rms of 2.3 and 2.6 cm, respectively, are achieved in static processing and 5.4 and 7.5 cm in kinematic processing after 1 h of processing using real-time satellite correction products. The compatibility of BeiDou-2 and BeiDou-3 on the shared B1-2/B3 frequencies is analyzed and discrepancies in the receiver clock are found. Next, since all three constellations share two common frequencies, the paper focuses on analyzing PPP performance of GPS, Galileo and BeiDou-3 on [L1, E1, B1] at 1575.42 MHz and [L5, E5a, B2a] at 1176.45 MHz. Horizontal and vertical rms of 6.9 and 7.1 cm are achieved in kinematic processing. The effect of the known GPS Block-IIF L5 biases is studied as well, as it is shown to affect the receiver position and clock, as well as the ionospheric estimates and ambiguities. Average improvements of 15% and 20% in the horizontal and vertical rms, respectively, are observed when these biases are mitigated.

摘要

由于其特性,精密单点定位(PPP)依赖于全球导航卫星系统(GNSS)测量以及用于相对快速地提供精确位置的卫星校正产品的质量。随着全球导航卫星系统(GNSS)的迅速发展,新的频率和信号正在广播,这对PPP性能产生了积极影响。本文首次对这些尚未普遍用于PPP的新GPS、伽利略和北斗二号/三号信号的PPP性能进行了全面分析,并正确减轻了诸如GPS Block-IIF L5变化估计等误差。使用德国航空航天中心(DLR)的REticle引擎实时估计卫星轨道和时钟以及GPS Block-IIF L5校正,而用户处理则使用约克大学的PPP引擎进行。首先,作为参考,在广泛使用的信号上评估PPP性能:GPS L1/L2、伽利略E1/E5a和北斗二号/三号B1-2/B3。使用实时卫星校正产品处理1小时后,静态处理中水平和垂直均方根误差(rms)分别达到2.3厘米和2.6厘米,动态处理中分别为5.4厘米和7.5厘米。分析了北斗二号和北斗三号在共享的B1-2/B3频率上的兼容性,并发现了接收机时钟的差异。接下来,由于所有三个星座共享两个共同频率,本文重点分析了GPS、伽利略和北斗三号在1575.42兆赫兹的[L1、E1、B1]以及1176.45兆赫兹的[L5、E5a、B2a]上的PPP性能。动态处理中水平和垂直rms分别达到6.9厘米和7.1厘米。还研究了已知的GPS Block-IIF L5偏差的影响,因为它被证明会影响接收机位置和时钟以及电离层估计和模糊度。减轻这些偏差后,水平和垂直rms分别平均提高了15%和20%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0d6/8001032/659f1d6b442b/sensors-21-02046-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验