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Despite the growing number of satellites in multi-constellation GNSS positioning systems, the issue of signal availability and quality persists in urban and forest areas. Additionally, obstacles such as high buildings or dense vegetation can lead to severe multipath problems. Various methods have been developed to mitigate the impact of multipath on measurement results, including optimizing antenna placement, antenna type, receiver type, and employing measurement post processing techniques. However, despite these efforts, multipath interference cannot be completely eliminated and can significantly impact positioning accuracy. To tackle this challenge, a tool GNSS MPD for predicting satellite signal obstruction was developed. This tool considers Line of Sight (LOS) vectors between specific locations and satellite positions, as well as obstacle models derived from airborne LiDAR data. The LiDAR data is automatically acquired from geoportal.gov.pl, and an approximate terrain cover model is generated. Satellite obstructions are then validated using a ray casting method. The authors of the study outlined the platform’s design and implementation. Subsequently, two experiments were conducted. The first experiment consisted in comparing the obtained satellite visibility scenarios with the results obtained from hemispherical photography. The second study involved performing five daily satellite observations in an area characterized by severe terrain obstacles. Based on the receiver’s approximate position, satellite visibility scenarios were generated using the developed platform. Static positioning was performed as part of the experiment, producing two sets of results: one using raw receiver observations without modifications, and the other incorporating visibility scenarios from the platform to adjust observation files. The tests were performed in 5 research scenarios. In each of the cases results demonstrated improvements in both accuracy and the success rate of position determination. For success rate, an increase of more than 20% was achieved. In many cases, positioning accuracy improved by more than 50%.
Słowa kluczowe
Rocznik
Tom
Strony
409--428
Opis fizyczny
Bibliogr. 33 poz., il., rys., wykr.
Twórcy
autor
- Katedra Geodezji, Wydział Geoinżynierii, Uniwersytet Warmińsko-Mazurski, ul. Oczapowskiego 1, 10-719 Olsztyn, dariusz.tomaszewski@uwm.edu.pl
autor
- Katedra Geodezji, Wydział Geoinżynierii, Uniwersytet Warmińsko-Mazurski, ul. Oczapowskiego 1, 10-719 Olsztyn
autor
- Katedra Geodezji, Wydział Geoinżynierii, Uniwersytet Warmińsko-Mazurski, ul. Oczapowskiego 1, 10-719 Olsztyn
Bibliografia
- DANSKIN S., BETTINGER P., JORDAN T. 2009. Multipath mitigation under forest canopies: A choke ring antenna solution. Forest Science, 55(2): 109-116.
- GARIN L., ROUSSEAU J.-M. 1997. Enhanced strobe correlator multipath rejection for code & carrier. Proceedings of the 10th International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GPS 1997), p. 559-568.
- GARIN L., VAN DIGGELEN F., ROUSSEAU J.-M. 1996. Strobe & edge correlator multipath mitigation for code. Proceedings of the 9th International Technical Meeting of the Satellite Division of the Institute of Navigation (ION GPS 1996), p. 657-664.
- GROVES P.D. 2013. Future trends in integrated navigation. Inside GNSs, 8(2): 44-49.
- HATCH R.R., KEEGAN R.G., STANSELL T.A. 1997. Leica’s code and phase multipath mitigation techniques. Proceedings of the 1997 National Technical Meeting of The Institute of Navigation, p. 217-225.
- HOFMANN-WELLENHOF B., LICHTENEGGER H., COLLINS J. 2012. Global positioning system: theory and practice. Springer Science & Business Media.
- HUNEGNAW A., DUMAN H., EJIGU Y.G., BALTACI H., DOUŠA J., TEFERLE F.N. 2023. On the impact of GPS multipath correction maps and post-fit residuals on slant wet delays for tracking severe weather events. Atmosphere, 14(2): 219.
- IRSIGLER M. 2010. Characterization of multipath phase rates in different multipath environments. GPS Solutions, 14(4): 305-317.
- IRSIGLER M., EISSFELLER B. 2003. Comparison of multipath mitigation techniques with consideration of future signal structures. Proceedings of the 16th International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GPS/GNSS 2003), p. 2584-2592.
- KAVAK A., XU G., VOGEL W.J. 1996. GPS multipath fade measurements to determine l-band ground reflectivity properties. Proceedings of the 20th NASA Propagation Experimenters Meeting.
- KUBO N., KOBAYASHI K., FURUKAWA R. 2020. GNSS multipath detection using continuous time-series c/n0. Sensors, 20(14): 4059.
- KUNYSZ W. 2000a. High performance GPS pinwheel antenna. Proceedings of the 13th International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GPS 2000), p. 2506-2511.
- KUNYSZ W. 2000b. A novel GPS survey antenna. Proceedings of the 2000 National Technical Meeting of The Institute of Navigation, p. 698-705.
- KUNYSZ W. 2003. A three dimensional choke ring ground plane antenna. Proceedings of the 16th International Technical Meeting of The Satellite Division of The Institute of Navigation (ION GPS/GNSS 2003), p. 1883-1888.
- PAONNI M., AVILA-RODRIGUEZ J.-A., PANY T., HEIN G.W., EISSFELLER B. 2008. Looking for an optimum S-curve shaping of the different MBOC implementations. Navigation, 55(4): 255-266.
- PARK K.-D., NEREM R., SCHENEWERK M., DAVIS J. 2004. Site-specific multipath characteristics of global IGS and CORS GPS sites. Journal of Geodesy, 77: 799-803.
- PAZIEWSKI J. 2022. Multi-constellation single-frequency ionospheric-free precise point positioning with low-cost receivers. GPS Solutions, 26(1): 23.
- PELC-MIECZKOWSKA R., JANICKA J., BEDNARCZYK M., TOMASZEWSKI D. 2015. Comparison of selected data acquisition methods for GNSS terrain obstacles modeling. Acta Geodynamica et Geomaterialia, 12(3): 307- 315.
- PELC-MIECZKOWSKA R., TOMASZEWSKI D., BEDNARCZYK M. 2019. GNSS obstacle mapping as a data preprocessing tool for positioning in a multipath environment. Measurement Science and Technology, 31(1): 015017.
- RAPIŃSKI J., TOMASZEWSKI D., PELC-MIECZKOWSKA R. 2024. Analysis of multipath changes in the polish permanent GNSS stations network. Remote Sensing, 16(9): 1617.
- RAY J., CANNON M., FENTON P. 2001. GPS code and carrier multipath mitigation using a multiantenna system. IEEE Transactions on Aerospace and Electronic Systems, 37(1): 183-195.
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- ROBUSTELLI U., PUGLIANO G. 2019. Code multipath analysis of Galileo FOC satellites by time-frequency representation. Applied Geomatics, 11(1): 69-80.
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- SMYRNAIOS M., SCHN S., LISO M., JIN S. 2013. Multipath propagation, characterization and modeling in GNSS. Geodetic Sciences Observations, Modeling and Applications, p. 99-125. https://doi.org/10.5772/54567
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- TOMASZEWSKI D., PELC-MIECZKOWSKA R., RAPIŃSKI J. 2024. On the GPS signal multipath at ASG-EUPOS stations. Journal of Applied Geodesy, 18(3): 553-571. https://doi.org/10.1515/jag-2023-0090
- TRANQUILLA J.M., CARR J., AL-RIZZO H.M. 1994. Analysis of a choke ring groundplane for multipath control in global positioning system (GPS) applications. IEEE Transactions on antennas and propagation, 42(7): 905-911.
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- WEILL L. R. 1998. Application of superresolution concepts to the GPS multipath mitigation problem. Proceedings of the 1998 National Technical Meeting of The Institute of Navigation, p. 673-682.
- XIE P., PETOVELLO M.G. 2014. Measuring GNSS multipath distributions in urban canyon environments. IEEE Transactions on Instrumentation and Measurement, 64(2): 366-377.
Typ dokumentu
Bibliografia
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Identyfikator YADDA
bwmeta1.element.baztech-4382b0c6-e726-473b-aa7b-f923a7b49537