Assessing the Tropospheric Impacts on Positioning Accuracy Using IGS02 Real-Time Service Data Versus Long-Convergence Static PPP in Gwagwalada, Abuja, Nigeria

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Atoki, Lucas Olu.
Ono, Matthew N.
Ono, Matthew N.
Ibraheem, Sikiru Temitope

Abstract: The International Association of Geodesy (IAG) has established the International GNSS Service-Real Time Service (IGS-RTS) as a service provider, offering real-time access to precise products like orbits, clock corrections, and code biases regarding satellite navigation and positioning system. These products serve as an alternative to ultra-rapid products in real-time applications. The performance of these products is assessed through daily statistics from Analysis Centres, which compare them to IGS rapid products. However, the accuracy of GPS real-time corrections for satellites during eclipsing periods was slightly reduced, attributed to the impact of environmental factors on the services. The speed of GNSS signals can be impacted by various atmospheric factors, including troposphere, temperature, pressure, and humidity, resulting in positioning inaccuracies and even giving rooms for signal jamming and hijacking. However, the unique weather conditions prevalent in the African continent are often overlooked during the development of error mitigation parameters and algorithms, which can lead to reduced accuracy in GNSS positioning in a region like Nigeria. The purpose of this study is to estimate the tropospheric impact on positioning with IGS02 Real Time Service data compared to long convergence Static-PPP in Gwagwalada Area Council, Abuja, Nigeria. The study adopts the determination of the GNSS Static observations (minimum of two hours per session) on the chosen stations as standard, determination of the IGS-RTS data observations using RTKLIB software; observations were done with IGS-RTS data stream of IGS02 and statistical tests were performed. The GNSS Static coordinates and IGS-RTS coordinates were validated from error due to troposphere, temperature, pressure, etc., with the computation of their mean horizontal and vertical uncertainties which have a similar level of accuracy but slightly differ at centimeter levels. The result shows the Root Mean Square (RMS) Error discrepancy of IGS02 at the Wet and Dry season, as compared with the Static-PPP was within 0.065(m) and 0.046(m) respectively.

Assessing the Tropospheric Impacts on Positioning Accuracy Using IGS02 Real-Time Service Data Versus Long-Convergence Static PPP in Gwagwalada, Abuja, Nigeria. (2024). International Journal of Latest Technology in Engineering Management & Applied Science, 13(8), 142-150. https://doi.org/10.51583/IJLTEMAS.2024.130817

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References

Abdelazeem, M., Celik, R. N. and El-Rabbany, A., (2015), An Enhanced Real-Time Regional Ionospheric Model Using IGS-Real Time Service (IGS-RTS) Products. DOI: https://doi.org/10.1017/S0373463315000740

Altamimi, Z., P. Rebischung, L. Métivier, and X. Collilieux (2016). “ITRF2014: A new release of the International Terrestrial Reference Frame modelling nonlinear station motions”, J. Geophys. Res. Solid Earth, 121, 6109–6131, doi:10.1002/2016JB013098. DOI: https://doi.org/10.1002/2016JB013098

AUSPOS (cited 2023). (http://www.ga.gov.au/geodesy/sgc/wwwgps/)

Bahadur, B. and Nohutcu, M. (2020). Impact of observation sampling rate on Multi-GNSS static PPP performance. Survey Review, Volume 53, http://dx.doi.org/10.1080/00396265.2019.1711346. DOI: https://doi.org/10.1080/00396265.2019.1711346

Bingbing, D., Urs, H., Junping, C., Inga, S. and Jiexian W. (2019). Prediction versus real-time orbit determination for GNSS satellites, GPS Solutions, Article number: 39, volume 23. DOI: https://doi.org/10.1007/s10291-019-0834-2

Byung, K. C., Kyung, M. R. and Sang, J. L. (2013). Analysis of the Combined Positioning Accuracy Using GPS and GPS/GLONASS Navigation Satellite. JKGS Journal of Korean GNSS Society, pp131 -137. DOI: https://doi.org/10.11003/JKGS.2013.2.2.131

Cai, C. and Gao, Y. (2013). Modeling and assessment of combined GPS/GLONASS precise point positioning. GPS Solution, http://dx.doi.org/10.1007/s10291-012-0273-9. DOI: https://doi.org/10.1007/s10291-012-0273-9

Charles, D. G. (2022), Elementary Surveying: An Introduction to Geomatics, Sixteenth Edition, e-Text ISBN: 9780136822912, 0136822916.

El-Diasty, M. and Elsobeiey, M., (2015) Precise Point Positioning Technique with IGS Real Time Service (RTS) for Maritime Applications. Positioning, 6, 71-80. http://www.scirp.org/journal/pos. DOI: https://doi.org/10.4236/pos.2015.64008

El-Mowafy, A (2011) Analysis of Web-Based GNSS Post-Processing Services for Static and Kinematic Positioning Using Short Data Spans. Survey Review, 43, 535-549. ttp://dx.doi.org/10.1179/003962611x13117748892074. DOI: https://doi.org/10.1179/003962611X13117748892074

El-Mowafy, A., Deo, M. and Kubo, N. (2019). Maintaining real-time precise point positioning during outages of orbit and clock corrections. GPS Solution, Volume21, https://link.springer.com/article/10.1007/s10291-016-0583-4. DOI: https://doi.org/10.1007/s10291-016-0583-4

Faruna, S. O. and Ono, M. N. (2019). An Assessment of Dry Tropospheric Delay Using Saastamoinen Model Over the Nigerian Permanent GNSS Network (NIGNET). Nigerian Journal of Geodesy, pp. 77-86.

Hadas, T. and Bosy, J., (2015). “IGS RTS precise orbits and clocks verification and quality degradation over time”. GPS Solutions 19:93–105 DOI 10.1007/s10291- 014-0369-5. DOI: https://doi.org/10.1007/s10291-014-0369-5

Hesselbarth, A. and Wanninger, L. (2008). Short-term stability of GNSS satellite clocks and its effects on Precise Point Positioning. Institute of Navigation, Savannah, GA, USA, pp 1855–1863

Ibrahim, U. S., Dodo, J. D. and Ojigi, L. M. (2018). Evaluation of the Effect of Tropospheric Delay on GNSS Antenna Height Variation in the Position Domain, Conference Paper.

IGS (2023) IGS Real Time Service. (www.rts.igs.org).

Kazmierski, K., Sośnica, K. and Hadas, T. (2017). Quality assessment of multi‑GNSS orbits and clocks for real‑time precise point positioning. GPS Solution, https://doi.org/10.1007/s10291-017-0678-6. DOI: https://doi.org/10.1007/s10291-017-0678-6

Kim, M. and Kim, J.,(2015), Predicting IGS RTS Corrections Using ARMA Neural Networks, Mathematical Problems in Engineering, Vol. 2015 School of

Aerospace and Mechanical Engineering, Korea Aerospace University, Goyang- City 412-791, Republic of Korea. http://dx.doi.org/10.1155/2015/851761. DOI: https://doi.org/10.1155/2015/851761

Kouba, J. and Heroux, P. (2001). Precise Point Positioning Using IGS Orbit and Clock Products. GPS Solutions, 5, 12-28. http://dx.doi.org/10.1007/PL00012883. DOI: https://doi.org/10.1007/PL00012883

Laurichesse, D., Cerri, L., Berthias, J.P. and Mercier, F. (2013). Real time precise GPS constellation and clocks estimation by means of a Kalman filter. Institute of Navigation, Nashville, TN, USA, pp 1155–1163.

Mervart, L. and Weber, G. (2011). Real-time combination of GNSS orbit and clock correction streams using a Kalman filter approach. Institute of Navigation, Portland, OR, USA, pp707

Nzelibe, I. U., Tata, H. and Idowu T. O. (2023). Assessment of GNSS zenith tropospheric delay responses to atmospheric variables derived from ERA5 data over Nigeria, Satellite Navigation, volume 4, Article number 15. DOI: https://doi.org/10.1186/s43020-023-00104-7

Olushola, G. O., Dahir, M. O., Chukwuma, J. O., Olagoke, E. D. and Tosin, J. S. (2021). Comparative accuracy assessment of the Bowring, Chord and Power series models for direct and indirect determination of geodetic coordinates, South African Journal of Geomatics, Volume 10, Number 2. DOI: https://doi.org/10.4314/sajg.v10i2.9

Seeber, G (2003). Satellite Geodesy. 2nd ed. Walter de Gruyter • Berlin. New York. DOI: https://doi.org/10.1515/9783110200089

Wenju, F., Jin, W., Lei, W. and Ruizhi C., (2022). A Kalman filter-based online fractional cycle bias determination method for real-time ambiguity-fixing GPS satellite clock estimation. https://doi.org/10.1016/j.measurement.2022.112207. DOI: https://doi.org/10.1016/j.measurement.2022.112207

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Assessing the Tropospheric Impacts on Positioning Accuracy Using IGS02 Real-Time Service Data Versus Long-Convergence Static PPP in Gwagwalada, Abuja, Nigeria. (2024). International Journal of Latest Technology in Engineering Management & Applied Science, 13(8), 142-150. https://doi.org/10.51583/IJLTEMAS.2024.130817

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