DocumentCode :
805510
Title :
Soil Moisture Estimates From AMSR-E Brightness Temperatures by Using a Dual-Frequency Algorithm
Author :
Paloscia, Simonetta ; Macelloni, Giovanni ; Santi, Emanuele
Author_Institution :
Inst. of Appl. Phys., Nat. Res. Council (CNR), Florence
Volume :
44
Issue :
11
fYear :
2006
Firstpage :
3135
Lastpage :
3144
Abstract :
This paper investigates the possibility of estimating the soil moisture content (SMC) on a global scale from dual-frequency (C- and X-bands) microwave data of the Advanced Microwave Scanning Radiometer for the Earth Observing System (AMSR-E). Because some anomalous behavior was occasionally found in AMSR-E C- and X-band data, a calibration check compared the AMSR-E data with measurements from the SSM/I sensor over two reference targets, namely a Russian evergreen forest and the sea surface, both of which have already been studied in the past. The algorithm for retrieving soil moisture uses both the brightness temperature at C-band in horizontal polarization and the polarization index at X-band for correcting the effects of vegetation. This algorithm is based on a simplified radiative transfer (tau-omega) model, which has been inverted by using the Nelder-Mead iterative minimization method. The algorithm was validated with microwave data collected on two sites during the Microwave Alpine Soil Moisture Experiment 2002 (MASMEx02) and the Soil Moisture Experiment 2002 (SMEX02), respectively. The first site, in Italy, was characterized by natural vegetation covers, whereas the second site, in Iowa (U.S.), was covered primarily in agricultural crops. In general, the soil moisture estimated by the algorithm from AMSR-E data and the SMC measured on the ground were in good agreement with each other in both sites, and five classes of soil moisture were easily identified
Keywords :
agriculture; geophysical techniques; iterative methods; minimisation; moisture; radiometers; remote sensing; soil; vegetation; Advanced Microwave Scanning Radiometer for the Earth Observing System; C-band; Iowa; Italy; Microwave Alpine Soil Moisture Experiment 2002; Nelder-Mead iterative minimization method; Russian evergreen forest; SSM/I sensor; US; X-band; agricultural crops; brightness temperatures; natural vegetation covers; polarization index; radiative transfer model; sea surface; soil moisture content; tau-omega model; vegetation effects; Brightness temperature; Earth Observing System; Iterative algorithms; Microwave radiometry; Polarization; Sea measurements; Sliding mode control; Soil measurements; Soil moisture; Vegetation; AMSR-E brightness temperatures; Advanced Microwave Scanning Radiometer for the Earth Observing System (AMSR-E); C- and X-band emission; polarization index (PI); soil moisture content (SMC) retrieval; tau–omega model;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2006.881714
Filename :
1717703
Link To Document :
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