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V. Tesmer, J. Böhm, R. Heinkelmann, and H. Schuh. Effect of different tropospheric mapping
functions on the TRF, CRF and position time-series estimated from VLBI. J. Geodesy , 81(6-8):
409-421, 2007. doi: 10.1007/s00190-006-0126-9.
G. D. Thayer. A rapid and accurate ray tracing algorithm for a horizontally stratified atmosphere.
Radio Sci. , 1(2):249-252, 1967.
G. D. Thayer. An improved equation for the radio refractive index of air. Radio Sci. , 9(10):803-807,
1974. doi: 10.1029/RS009i010p00803.
R. N. Thessin. Atmospheric signal delay affecting GPS measurements made by space vehicles
during launch, orbit and reentry. Master's thesis, Massachusetts Institute of Technology, Dept.
of Aeronautics and Astronautics, Cambridge, Mass., 2005. URL http://hdl.handle.net/1721.1/
33211.
D. M. Tralli and S. M. Lichten. Stochastic estimation of tropospheric path delays in global position-
ing system geodetic measurements. Bull. Geod. , 64:127-159, 1990. doi : 10.1007/BF02520642.
P. Tregoning and T.A. Herring. Impact of a priori zenith hydrostatic delay errors on GPS estimates
of station heights and zenith total delays. Geophys. Res. Lett. , 33(L23303), 2006. doi: 10.1029/
2006GL027706.
K. E. Trenberth, A. Dai, R.M. Rasmussen, andD.B. Parsons. The changing character of precipitation.
Bull. Amer. Meteor. Soc. , 84(9):12051217, 2003. doi: 10.1175/BAMS-84-9-1205.
R. N. Treuhaft and G. E. Lanyi. The effect of the dynamic wet troposphere on radio interferometric
measurements. Radio Sci ., 22(2):251-265, 1987. doi: 10.1029/RS022i002p00251.
M. Troller, A. Geiger, E. Brockmann, J.-M. Bettems, B. Bürki, and H.-G. Kahle. Tomographic
determination of the spatial distribution of water vapor using GPS observations. Adv. Space Res. ,
37(12):2211-2217, 2006. doi: 10.1016/j.asr.2005.07.002.
H. Vedel. Targeting optimal use of GPS humidity measurements in meteorology: Final report of the
TOUGH project, 2006. URL http://web.dmi.dk/pub/tough/.
H. Vedel and X.-Y. Huang. Impact of ground based GPS data on numerical weather prediction.
J. Met. Soc. Japan , 82(1B):459-472, 2004. doi: 10.2151/jmsj.2004.459 .
J. Wang, L. Zhang, and A. Dai. Global estimates of water-vapor-weighted mean temperature
of the atmosphere for GPS applications. J. Geophys. Res. , 110(D21101), 2005. doi: 10.1029/
2005JD006215.
R. Ware, C. Rocken, F. Solheim, T. van Hove, C. Alber, and J. Johnson. Pointed water vapor
radiometer corrections for accurate global positioning system surveying. Geophys. Res. Lett. ,
20(23): 2635-2638, 1993. doi: 10.1029/93GL02936.
E. R. Westwater, M. J. Falls, and I. A. Popa-Fotin. Ground-based microwave radiometric observa-
tions of precipitable water vapor: A comparison with ground truth from two radiosonde observing
systems. J. Atmos. Oceanic Technol. , 6(4):724-730, 1989. doi: 10.1175/1520-0426(1989)006.
A. D. Wheelon. Electromagnetic scintillation: Geometrical optics . Cambridge University Press,
2001.
D. D. Wijaya. Atmospheric correction formulae for space geodetic techniques . PhD thesis, Graz
University of Technology, Institute of Engineering Geodesy and Measurements Systems, Graz,
Austria, 2010.
D. D. Wijaya, J. Böhm, M. Karbon, and H. Schuh. Atmospheric pressure loading. In Atmospheric
Effects in Space Geodesy . Springer-Verlag, 2013. this topic.
D.D.Wijaya andF.K. Brunner. Atmospheric range correction for two-frequencySLRmeasurements.
J. Geodesy , 85(9):623-635, 2011. doi : 10.1007/s00190-011-0469-8.
S.-C. Wu. Optimum frequencies of a passive microwave radiometer for tropospheric path-length
correction. IEEE Trans. Antennas Propagat. , 27:233-239, 1979. doi: 10.1109/TAP.1979.1142066.
 
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