DocumentCode :
143363
Title :
Quantifying uncertainties in land surface temperature due to atmospheric correction: Application to Landsat-7 data over a Mediterranean agricultural region
Author :
Mira, Maria ; Olioso, Albert ; Rivalland, Vincent ; Courault, Dominique ; Marloie, Olivier ; Guillevic, Pierre
Author_Institution :
EMMAH, INRA, Avignon, France
fYear :
2014
fDate :
13-18 July 2014
Firstpage :
2375
Lastpage :
2378
Abstract :
The impact of using non-coincident radiosoundings to remove atmosphere effect from thermal radiances is analyzed here. We considered 27 Landsat-7 ETM+ images acquired over a Mediterranean agricultural region, benefiting from nearby radiosoundings launched almost 2 hours later, and from the availability of a network of ground stations deployed over different types of ecosystems. We observed that, in the conditions of our images, surface temperature estimates slightly improved when considering one atmospheric profile interpolated to our particular date, time and location, in comparison with the use of non-coincident radiosoundings. However, it may imply an error up to ±2.5 K for brightness temperatures (in particular for very high temperatures and during summer when the atmosphere was warmer and the vapor pressure was higher), leading to important errors in the derivation of surface energy fluxes. The characterization of the lowest atmosphere layer appeared to be essential to improve the estimates of brightness temperatures.
Keywords :
atmospheric pressure; atmospheric radiation; ecology; land surface temperature; Landsat-7 ETM+ image; Landsat-7 data application; Mediterranean agricultural region; atmosphere effect removal; atmospheric correction; atmospheric profile interpolation; brightness temperature error; brightness temperature estimation; ecosystem type; ground station network availability; higher vapor pressure; image condition; land surface temperature uncertainty quantification; lowest atmosphere layer characterization; noncoincident radiosounding impact; summer very high temperature; surface energy flux derivation error; surface temperature estimation; thermal radiance; warmer atmosphere; Atmospheric measurements; Land surface temperature; Ocean temperature; Remote sensing; Satellites; Temperature measurement; Temperature sensors; Land surface temperature; Landsat; atmospheric effect; remote sensing; thermal infrared;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2014 IEEE International
Conference_Location :
Quebec City, QC
Type :
conf
DOI :
10.1109/IGARSS.2014.6946949
Filename :
6946949
Link To Document :
بازگشت