Assessment of the Impact of GNSS Processing Strategies on the Long-Term Parameters of 20 Years IWV Time Series
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Zofia Baldysz | Grzegorz Nykiel | Mariusz Figurski | Andrzej Araszkiewicz | M. Figurski | A. Araszkiewicz | Z. Baldysz | G. Nykiel
[1] Galina Dick,et al. The uncertainty of the atmospheric integrated water vapour estimated from GNSS observations , 2015 .
[2] Eric Pottiaux,et al. Review of the state of the art and future prospects of the ground-based GNSS meteorology in Europe , 2016 .
[3] David LaVallee,et al. Higher‐order ionospheric effects on the GPS reference frame and velocities , 2009 .
[4] R. Eskridge,et al. Analyses of Inhomogeneities in Radiosonde Temperature and Humidity Time Series , 1996 .
[5] T. Nilsson,et al. GPT2: Empirical slant delay model for radio space geodetic techniques , 2013, Geophysical research letters.
[6] P. Steigenberger,et al. On the homogeneity and interpretation of precipitable water time series derived from global GPS observations , 2009 .
[7] Gunnar Elgered,et al. Trends in the Atmospheric Water Vapor Content From Ground-Based GPS: The Impact of the Elevation Cutoff Angle , 2012, IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing.
[8] Pascal Willis,et al. A high‐quality, homogenized, global, long‐term (1993–2008) DORIS precipitable water data set for climate monitoring and model verification , 2014 .
[9] H. Schuh,et al. Troposphere mapping functions for GPS and very long baseline interferometry from European Centre for Medium‐Range Weather Forecasts operational analysis data , 2006 .
[10] Junhong Wang,et al. Climate applications of a global, 2-hourly atmospheric precipitable water dataset derived from IGS tropospheric products , 2009 .
[11] I. Shapiro,et al. Geodesy by radio interferometry: Effects of atmospheric modeling errors on estimates of baseline length , 1985 .
[12] Andrzej Araszkiewicz,et al. EPN-Repro2: A reference GNSS tropospheric data set over Europe , 2016 .
[13] A. E. Niell,et al. Improved atmospheric mapping functions for VLBI and GPS , 2000 .
[14] Christian Mätzler,et al. Tropospheric water vapour above Switzerland over the last 12 years , 2009 .
[15] H. Schuh,et al. Short Note: A global model of pressure and temperature for geodetic applications , 2007 .
[16] Zofia Baldysz,et al. Comparison of GPS tropospheric delays derived from two consecutive EPN reprocessing campaigns from the point of view of climate monitoring , 2016 .
[17] Hans van der Marel,et al. Integrated atmospheric water vapor estimates from a regional GPS network , 2002 .
[18] K. Szafranek,et al. Investigation of the 16-year and 18-year ZTD Time Series Derived from GPS Data Processing , 2015, Acta Geophysica.
[19] Peter J. Clarke,et al. Precipitable water vapor estimates from homogeneously reprocessed GPS data: An intertechnique comparison in Antarctica , 2011 .
[20] M. Rothacher. Estimation of Station Heights with GPS , 2002 .
[21] M. Hernández‐Pajares,et al. Second-order ionospheric term in GPS : Implementation and impact on geodetic estimates , 2007 .
[22] Gerd Gendt,et al. On the determination of atmospheric water vapor from GPS measurements , 2003 .
[23] Peter Steigenberger,et al. Generation of a consistent absolute phase-center correction model for GPS receiver and satellite antennas , 2007 .
[24] A. Niell. Global mapping functions for the atmosphere delay at radio wavelengths , 1996 .
[25] J. Thepaut,et al. The ERA‐Interim reanalysis: configuration and performance of the data assimilation system , 2011 .
[26] Tobias Nilsson,et al. Long-term trends in the atmospheric water vapor content estimated from ground-based GPS data , 2008 .
[27] Gunnar Elgered,et al. Evaluation of the atmospheric water vapor content in a regional climate model using ground‐based GPS measurements , 2013 .
[28] Junhong Wang,et al. A near-global, 2-hourly data set of atmospheric precipitable water from ground-based GPS measurements , 2007 .
[29] Atmospheric opacity estimation based on IWV derived from GNSS observations for VLBI applications , 2017, GPS Solutions.
[30] Steven Businger,et al. GPS Meteorology: Mapping Zenith Wet Delays onto Precipitable Water , 1994 .
[31] Jan Douša,et al. Tropospheric products of the second GOP European GNSS reprocessing (1996–2014) , 2017 .
[32] C. Matzler,et al. Assimilation of the GPS-derived integrated water vapour (IWV) in the MeteoSwiss numerical weather prediction model––a first experiment , 2004 .
[33] N. Lomb. Least-squares frequency analysis of unequally spaced data , 1976 .
[34] Peter Steigenberger,et al. Influence of mapping function parameters on global GPS network analyses: Comparisons between NMF and IMF , 2006 .
[35] H. Schuh,et al. Global Mapping Function (GMF): A new empirical mapping function based on numerical weather model data , 2006 .
[36] Thomas A. Herring,et al. Impact of a priori zenith hydrostatic delay errors on GPS estimates of station heights and zenith total delays , 2006 .
[37] T. Herring,et al. GPS Meteorology: Remote Sensing of Atmospheric Water Vapor Using the Global Positioning System , 1992 .
[38] Peter Steigenberger,et al. Comparison of GMF/GPT with VMF1/ECMWF and implications for atmospheric loading , 2009 .
[39] A. Sterl,et al. The ERA‐40 re‐analysis , 2005 .
[40] Pedro Elosegui,et al. Geodesy Using the Global Positioning System: The Effects of Signal Scattering , 1995 .
[41] Assessment of ECMWF-derived tropospheric delay models within the EUREF Permanent Network , 2011 .
[42] Yong Wang,et al. Zenith Tropospheric Delay from GPS Monitoring Climate Change of Chinese Mainland , 2008, 2008 International Workshop on Education Technology and Training & 2008 International Workshop on Geoscience and Remote Sensing.
[43] Thomas A. Herring,et al. Effects of atmospheric azimuthal asymmetry on the analysis of space geodetic data , 1997 .
[44] Carine Bruyninx,et al. Enhancement of the EUREF Permanent Network Services and Products , 2012 .