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Journal ArticleDOI

Homogeneous reprocessing of GPS, GLONASS and SLR observations

TLDR
In this paper, a combined reprocessing of GPS and GLONASS observations was performed to estimate combined GPS+GLONASS satellite clocks, with first results presented in this paper.
Abstract
The International GNSS Service (IGS) provides operational products for the GPS and GLONASS constellation. Homogeneously processed time series of parameters from the IGS are only available for GPS. Reprocessed GLONASS series are provided only by individual Analysis Centers (i. e. CODE and ESA), making it difficult to fully include the GLONASS system into a rigorous GNSS analysis. In view of the increasing number of active GLONASS satellites and a steadily growing number of GPS+GLONASS-tracking stations available over the past few years, Technische Universitat Dresden, Technische Universitat Munchen, Universitat Bern and Eidgenossische Technische Hochschule Zurich performed a combined reprocessing of GPS and GLONASS observations. Also, SLR observations to GPS and GLONASS are included in this reprocessing effort. Here, we show only SLR results from a GNSS orbit validation. In total, 18 years of data (1994–2011) have been processed from altogether 340 GNSS and 70 SLR stations. The use of GLONASS observations in addition to GPS has no impact on the estimated linear terrestrial reference frame parameters. However, daily station positions show an RMS reduction of 0.3 mm on average for the height component when additional GLONASS observations can be used for the time series determination. Analyzing satellite orbit overlaps, the rigorous combination of GPS and GLONASS neither improves nor degrades the GPS orbit precision. For GLONASS, however, the quality of the microwave-derived GLONASS orbits improves due to the combination. These findings are confirmed using independent SLR observations for a GNSS orbit validation. In comparison to previous studies, mean SLR biases for satellites GPS-35 and GPS-36 could be reduced in magnitude from $$-35$$ and $$-38$$  mm to $$-12$$ and $$-13$$  mm, respectively. Our results show that remaining SLR biases depend on the satellite type and the use of coated or uncoated retro-reflectors. For Earth rotation parameters, the increasing number of GLONASS satellites and tracking stations over the past few years leads to differences between GPS-only and GPS+GLONASS combined solutions which are most pronounced in the pole rate estimates with maximum 0.2 mas/day in magnitude. At the same time, the difference between GLONASS-only and combined solutions decreases. Derived GNSS orbits are used to estimate combined GPS+GLONASS satellite clocks, with first results presented in this paper. Phase observation residuals from a precise point positioning are at the level of 2 mm and particularly reveal poorly modeled yaw maneuver periods.

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Citations
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Journal ArticleDOI

CODE’s new solar radiation pressure model for GNSS orbit determination

TL;DR: A new extended ECOM is presented which substantially reduces the spurious signals in the geocenter coordinate $$z$$z, reduces the orbit misclosures at the day boundaries by about 10 %, slightly improves the consistency of the estimated ERPs with those of the IERS 08 C04 Earth rotation series, and significantly reduces the systematics in the SLR validation of the GNSS orbits.
Journal ArticleDOI

Quality assessment of multi-GNSS orbits and clocks for real-time precise point positioning

TL;DR: A comprehensive evaluation of the availability and the quality of multi-GNSS real-time orbit and clock products is provided through the comparison to the final Center for Orbit Determination in Europe (CODE) orbits, fitting long continuous orbital arcs, as well as the assessment of clock stability using modified Allan deviation diagrams.
Journal ArticleDOI

Satellite laser ranging to GPS and GLONASS

TL;DR: In this article, the authors study the effect of the satellite signature effect on the mean residual of a single-photon SLR station in the context of the GPS-GLONASS co-location.
Journal ArticleDOI

Reducing the draconitic errors in GNSS geodetic products

TL;DR: In this article, three GPS+GLONASS solutions of 8 years (2004-2011) were computed which differ only in the solar radiation pressure (SRP) and satellite attitude models, and they showed that part of the draconitic errors currently found in GNSS geodetic products are definitely induced by the CODE radiation pressure orbit modeling deficiencies.
References
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Journal ArticleDOI

Precise GLONASS orbit determination within the IGS/IGLOS – Pilot Project

TL;DR: The IGS GLONASS Pilot Project as discussed by the authors has been established to support the generation and consistency of precise GNSS orbits based on microwave and laser tracking data, which can pave the way for handling data from a multi-system GNSS system, taking into consideration the upcoming GALILEO system.

Precise GLONASS orbit determination within the IGS/IGLOS Pilot Project

TL;DR: Taking into consideration the upcoming GALILEO system, IGLOS can pave the way for handling data from a multi-system GNSS, and the procedure for generating the more robust combined precise GLONASS orbits is explained.
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