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Determining the refractivity at the bottom of the atmosphere using radio occultation.

, , , , and . IGARSS, page 4433-4436. IEEE, (2017)

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The GPS Occultation Sensor for NPOESS., , , , , , and . IGARSS, page 553-555. IEEE, (2002)Sea Surface Roughness Determination from Grazing Angle GPS Ocean Observations and Scatterometry Simulations., and . Remote. Sens., 15 (15): 3794 (August 2023)Supervised Detection of Ionospheric Scintillation in Low-Latitude Radio Occultation Measurements., , , , , and . Remote. Sens., 13 (9): 1690 (2021)Image Retrieval Simulations for the GEO Atmospheric Sounder (GAS)., , , and . IGARSS (2), page 1168-1171. IEEE, (2008)GAS: the Geostationary Atmospheric Sounder., , , , , , and . IGARSS, page 223-226. IEEE, (2007)A microwave backscattering model for deformed first-year sea ice and comparisons with SAR data.. IEEE Trans. Geosci. Remote. Sens., 35 (2): 378-391 (1997)C-band backscatter signatures of old sea ice in the central Arctic during freeze-up., and . IEEE Trans. Geosci. Remote. Sens., 31 (4): 819-829 (1993)Determining the refractivity at the bottom of the atmosphere using radio occultation., , , , and . IGARSS, page 4433-4436. IEEE, (2017)The effect of inhomogeneous roughness on radar backscattering from slightly deformed sea ice., , and . IEEE Trans. Geosci. Remote. Sens., 35 (1): 147-159 (1997)GNSS Radio Occultation Simulation Using Multiple Phase Screen Orbit Sampling., , , , and . IEEE Geosci. Remote. Sens. Lett., 17 (8): 1323-1327 (2020)