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Multisensor Characterization of the Incandescent Jet Region of Lava Fountain-Fed Tephra Plumes.

, , , , and . Remote. Sens., 12 (21): 3629 (2020)

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Multisatellite Multisensor Observations of a Sub-Plinian Volcanic Eruption: The 2015 Calbuco Explosive Event in Chile., , , , , , , and . IEEE Trans. Geosci. Remote. Sens., 56 (5): 2597-2612 (2018)Microwave and optical active remote sensing signatures of volcanic ash clouds from ground., , , , , and . TyWRRS, page 330-337. IEEE, (2012)Tephra Mass Eruption Rate From Ground-Based X-Band and L-Band Microwave Radars During the November 23, 2013, Etna Paroxysm., , , , and . IEEE Trans. Geosci. Remote. Sens., 58 (5): 3314-3327 (2020)Satellite-Based Detection of Volcanic Plumes: Sinergy Between Thermal Infrared and Millimeter Wave Radiometric Data During the 2014 Kelud Event., , , , and . IGARSS, page 922-925. IEEE, (2021)Multisensor Characterization of the Incandescent Jet Region of Lava Fountain-Fed Tephra Plumes., , , , and . Remote. Sens., 12 (21): 3629 (2020)Atmospheric precipitation impact on synthetic aperture radar imagery: Numerical model at X and KA bands., , , , , , and . IGARSS, page 1582-1585. IEEE, (2015)Maximum-Likelihood Retrieval of Volcanic Ash Concentration and Particle Size From Ground-Based Scanning Lidar., , , , , and . IEEE Trans. Geosci. Remote. Sens., 56 (10): 5824-5842 (2018)Dual-Wavelength Polarimetric Lidar Observations of the Volcanic Ash Cloud Produced during the 2016 Etna Eruption., , , , , , and . Remote. Sens., 13 (9): 1728 (2021)