Ingeniería ISSN Impreso: 1409-2441 ISSN electrónico: 2215-2652

OAI: https://revistas.ucr.ac.cr/index.php/ingenieria/oai
Using the network of SIRGAS stations of Costa Rica for quantifying the discrepancies regarding PPP online processing
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Keywords

Networks (geodetic)
artificial satellites-navigation
geodetic
global positioning system
coordinates.
Procesamiento PPP
GNSS
SIRGAS
Costa Rica
Helmert
velocidad
Velmic

How to Cite

Moya Zamora, J. (2017). Using the network of SIRGAS stations of Costa Rica for quantifying the discrepancies regarding PPP online processing. Ingeniería, 27(1), 39–55. https://doi.org/10.15517/jte.v27i1.25429

Abstract

Discrepancies in geocentric coordinates [X,Y,Z] obtained between GPS solutions processed online with the software of the Canadian Space Reference System (CSRS) in the form of Precise Point Positioning (PPP) and weekly solutions obtained were quantified by a scientific postprocessing generated by the geocentric system for the Americas (SIRGAS). The network has 10 stations SIRGAS-CON, network of Costa Rica, which used a year of daily data between weeks 1803 (July 2014) of and 1854 (July 2015). The implemented methodology processed 3614 online rinex files of 24 hours with the CSRS service. The results allowed to quantify the PPP discrepancies between the coordinates daily, average weekly discrepancies PPP solution and finally the average solution discrepancies regarding the final weekly SIRGAS solution. These discrepancies were used to make a national estimate by an interpolation with IDW method. The results of the PPP and SIRGAS solutions were used to determine the six transformation parameters for each week included in the study. The results were significant with values of -58.5 ± 17.5 mm, -34.3 mm ± 6.2 mm and 26.2 mm ± -161.6 mm for translations at [X,Y,Z] respectively and average rotations in the three axes of 0.003600” ± 0.000341”. These results showed a translation in the north-south direction of the PPP solution regarding SIRGAS. PPP results obtained were used to estimate the components of the geocentric speed of each station and are compared to the values given by SIRGAS.
https://doi.org/10.15517/jte.v27i1.25429
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References

Hoffmann-Wellenhof, B., H. Lichtenegger y E. Wasle. GNSS Global Navigation Satellite Systems GPS, GLONASS, Galileo & more. New York: Springer Wein; 2008. 568 p.

SIRGAS. Sistema de Referencia Geocéntrico para las Américas (SIRGAS). 2016. Disponible en: http://www.sirgas.org

Kouba, J. y P. Héroux. Precise Point Positioning Using IGS Orbit and Clock Products. GPS Solutions. 2001;5(19):12-28.

NRCAN. Natural Resources Canada. 2016. Disponible en: http://www.nrcan.gc.ca/home

Alves Costa, S.M., A. Da Silva, N. J. De Moura, M. Gende y C. Brunin. Differential and Precise Point Positioning in the South American Region with Ionosphere maps. Observing our

Changing Earth. International Association of Geodesy Symposia 133. 2009:605-613.

Mireault, Y., P. Tétreault, F. Lahaye, P. Hëroux y J. Kouba. Online Precise Point Positioning. A New, Timely Service from Natural Resources Canada. GPS World. 2008;19(9):59-64.

Guo, Q. Precision comparison and analysis of four online free PPP services in static positioning and tropospheric delay estimation. GPS Solutions. 2015;19:537-44.

Bosque, J. Sistemas de información geográfica. Madrid, Riallp. 1992. 451 p.

Cressie, N. Geostatistical: a tool for environmental modelers, environmental modelling with GIS. Nueva York, Oxford University Press. 1993;414-421.

Haining, J. Spatial data analysis. Cambridge, Cambridge University Press. 2003. 393 p.

Moreno, A. Sistemas y Análisis de la Información Geográfica. Editorial Rama. Madrid. 2005. 895 p.

Villatoro, M, C. Henriquez, F. Sancho. Comparación de los interporladores IDW y Kriging en la variación espacial de pH, Ca, CICE y P del suelo. Revista Agronomia Costarricense. 2008.32(1):95-105.

Gotway C.A., R. B. Ferguson, G. W. Hergert, T. A. Peterson. Comparison of Kriging and Inverse Distance Methods for mapping soil parameters. Soil Science Society of American Journal. 1996;60:1237-47.

Moya, J. Desarrollo, Implementación y Análisis de un Modelo Cinemático Local de Velocidades para Costa Rica Basado en la Integración y Homogenización de Datos de Estaciones GNSS Continuas. [Tesis Doctoral]. Universidad Politécnica de Madrid, España. 2015:129 p.

Moya, J., S. Bastos. Procesamientos GNSS en línea como potenciales alternativas a diferentes aplicaciones geodésicas. Revista UNICIENCIA. 2015;29(2):1-14.

Moya, J., Bastos, S., Rivas, M. J. y Gamboa, G. Evaluación del comportamiento cinemático de una serie de estaciones del Sistema Geocéntrico para las Américas procesadas con Precise Point Positioning en línea. Revista UNICIENCIA. 2014;28(1):2-19.

Moya, J., S. Bastos, M. J. Rivas. Cálculo, mediante la aplicación del algoritmo de ajuste por mínimos cuadrados, de los componentes de velocidad para estaciones GNSS continuas. Revista UNICIENCIA. Universidad Nacional. 2014;28(2):1-14.

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