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Combining GPS and GLONASS in all-in-view for time transfer

机译:结合GPS和GLONASS进行全视角显示

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摘要

GPS code measurements have been used for three decades for remote clock comparison, also called Time Transfer. Initially based on a technique using common-view (CV) single-frequency measurements, GPS time transfer now mostly uses dual-frequency measurements from geodetic receivers processed in all-in-view (AV). With the completion of the GLONASS constellation, it has been possible to readily use it in the CV single-frequency mode, providing results similar to GPS for short-distance time links. However GLONASS results are not readily equivalent to GPS in the dual-frequency AV mode, necessary for any moderate- to long-distance link, and this paper shows how to achieve this. We first present the GLONASS upgrade of the R2CGGTTS software, a tool to provide dual-frequency measurements in a format dedicated to time transfer named CGGTTS (Common GPS GLONASS Time Transfer Standard). The GLONASS navigation files are used to determine satellite clocks and positions, and dual-frequency pseudorange measurements are linearly combined to compute the CGGTTS results in a similar way as for GPS. In a second part, we present the combination of GPS and GLONASS into one unique time transfer solution based on AV. The results are first corrected using precise satellite orbit and clock products delivered by the IGS analysis centre ESOC, and characterized by the same reference for the GPS and GLONASS satellite clocks. Then, the need to introduce satellite-dependent hardware delays in GLONASS results is emphasized, and a procedure is proposed for their determination. The time transfer solutions obtained for GPS-only and GPS+GLONASS are then compared. The combination of GPS and GLONASS results in AV provides a time transfer solution having the same quality as GPS only. Furthermore, comparisons show that even when increasing the number of observations in CV thanks to the combination of the two constellations, the AV remains superior to the CV solution in terms of noise and short term stability, especially for long baselines.
机译:GPS代码测量已经用于远程时钟比较了三十年,也称为时间传递。最初基于使用共视(CV)单频测量的技术,GPS时间传输现在主要使用来自以全视(AV)处理的大地测量接收机的双频测量。随着GLONASS星座的完成,可以很容易地在CV单频模式下使用它,从而为短距离时间链路提供类似于GPS的结果。但是,GLONASS的结果在双频AV模式下并不容易等同于GPS,这对于任何中长距离链路都是必需的,并且本文说明了如何实现这一点。我们首先介绍R2CGGTTS软件的GLONASS升级,它是一种名为CGGTTS(通用GPS GLONASS时间传输标准)的用于以时间传输专用格式提供双频测量的工具。 GLONASS导航文件用于确定卫星时钟和位置,并且将双频伪距测量值线性组合以计算CGGTTS结果,其方法与GPS相似。在第二部分中,我们将GPS和GLONASS的组合展示为一个基于AV的独特时间传输解决方案。首先使用IGS分析中心ESOC提供的精确卫星轨道和时钟产品对结果进行校正,并以GPS和GLONASS卫星时钟的相同参考为特征。然后,强调了在GLONASS结果中引入与卫星有关的硬件延迟的必要性,并提出了确定它们的程序。然后比较仅GPS和GPS + GLONASS获得的时间传递解决方案。 GPS和GLONASS的结合产生了AV,提供了一种与仅GPS相同质量的时间传输解决方案。此外,比较结果表明,即使由于两个星座的结合而增加CV中的观测次数,AV仍然在噪声和短期稳定性方面优于CV解决方案,尤其是对于长基线而言。

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