DocumentCode :
1892230
Title :
Synergic use of EO, NWP and ground based measurements for the mitigation of vapour artefacts in SAR interferometry
Author :
Pierdicca, N. ; Rocca, F. ; Basili, P. ; Bonafoni, S. ; Carlesimo, G. ; Cimini, D. ; Ciotti, P. ; Ferretti, R. ; Marzano, F.S. ; Mattioli, V. ; Montopoli, M. ; Notarpietro, R. ; Perissin, D. ; Pichelli, E. ; Rommen, B. ; Venuti, G.
Author_Institution :
DIET, Sapienza Univ. of Rome, Rome, Italy
fYear :
2011
fDate :
24-29 July 2011
Firstpage :
2566
Lastpage :
2569
Abstract :
Spaceborne Interferometric Synthetic Aperture Radar (InSAR) is a well established technique useful in many land applications, such as tectonic movements, landslide monitoring and digital elevation model extraction. One of its major limitation is the atmospheric effect, and in particular the high water vapour spatial and temporal variability which introduces an unknown delay in the signal propagation. This paper describes the general approach and some results achieved in the framework of an ESA funded project devoted to the mapping of the water vapour with the aim to mitigate its effect in InSAR applications. Ground based (microwave radiometers, radiosoundings, GPS) and spaceborne observations (AMSR-E, MERIS, MODIS) of columnar water vapour were compared with Numerical Weather Prediction model runs in Central Italy during a 15-day experiment. A dense network of GPS receivers was deployed close to Como, in Northern Italy, to complement the operational network in order to derive Zenith Total Delay as well as Slant Delay which can support InSAR processing. A comparison with Atmospheric Phase Screens (APS) derived from a sequence of Envisat multi pass interferometric acquisitions processed using the Permanent Scatters technique on the two test sites has been also performed. The acquired experimental data and their comparison give a valuable idea of what can be done to gather information on water vapour, which, besides InSAR applications, plays a fundamental role in weather prediction and radio propagation studies. The work has been carried out in the framework of an ESA funded project, named "Mitigation of Electromagnetic Transmission errors induced by Atmospheric Water Vapour Effects" (METAWAVE). This paper presents the general approach an the various methodologies exploited in the project, together with the overall intercomparison of the results. In deep details on the comparison with the InSAR APS maps derived by the PS technique, as well as on GPS receiver processing- - and water vapour tomography are reported in two companion papers.
Keywords :
Global Positioning System; atmospheric electromagnetic wave propagation; atmospheric humidity; atmospheric techniques; backscatter; data acquisition; radar interferometry; radar signal processing; radiometry; radiowave propagation; remote sensing by radar; spaceborne radar; synthetic aperture radar; weather forecasting; AMSR-E; Central Italy; Como; ESA funded project; Envisat multipass interferometric acquisition; GPS receiver network; GPS receiver processing; InSAR application; InSAR processing; MERIS; METAWAVE project; MODIS; Mitigation of Electromagnetic Transmission errors induced by Atmospheric Water Vapour Effects; NWP; Northern Italy; SAR interferometry; atmospheric effect; atmospheric phase screen; columnar water vapour; digital elevation model extraction; ground based measurements; ground based observation; land application; landslide monitoring; microwave radiometers; numerical weather prediction model; permanent scatters technique; radio propagation; radiosoundings; signal propagation delay; slant delay; spaceborne interferometric synthetic aperture radar; spaceborne observation; tectonic movement; temporal variability; time 15 day; vapour artefact mitigation; water vapour mapping; water vapour spatial variability; water vapour tomography; zenith total delay; Atmospheric modeling; Delay; Global Positioning System; Microwave radiometry; Microwave theory and techniques; Radiometers; Spatial resolution; Atmospheric Phase Screen; SAR interferometry; atmospheric corrections; water vapour;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2011 IEEE International
Conference_Location :
Vancouver, BC
ISSN :
2153-6996
Print_ISBN :
978-1-4577-1003-2
Type :
conf
DOI :
10.1109/IGARSS.2011.6049765
Filename :
6049765
Link To Document :
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