Title :
L-Band Radar Estimation of Forest Attenuation for Active/Passive Soil Moisture Inversion
Author :
Kurum, Mehmet ; Lang, Roger H. ; Neill, Peggy E O´ ; Joseph, Alicia T. ; Jackson, Thomas J. ; Cosh, Michael H.
Author_Institution :
Dept. of Electr. & Comput. Eng., George Washington Univ., Washington, DC, USA
Abstract :
In the radiometric sensing of soil moisture through a forest canopy, knowledge of canopy attenuation is required. Active sensors have the potential of providing this information since the backscatter signals are more sensitive to forest structure. In this paper, a new radar technique is presented for estimating canopy attenuation. The technique employs details found in a transient solution where the canopy (volume-scattering) and the tree-ground (double-interaction) effects appear at different times in the return signal. The influence that these effects have on the expected time-domain response of a forest stand is characterized through numerical simulations. A coherent forest scattering model, based on a Monte Carlo simulation, is developed to calculate the transient response from distributed scatterers over a rough surface. The forest transient-response model for linear copolarized cases is validated with the microwave deciduous tree data acquired by the Combined Radar/Radiometer (ComRAD) system. The attenuation algorithm is applicable when the forest height is sufficient to separate the components of the radar backscatter transient response. The frequency correlation functions of double-interaction and volume-scattering returns are normalized after being separated in the time domain. This ratio simply provides a physically based system of equations with reduced parameterizations for the forest canopy. Finally, the technique is used with ComRAD L-band stepped-frequency data to evaluate its performance under various physical conditions.
Keywords :
Monte Carlo methods; backscatter; hydrological techniques; moisture; radiometry; remote sensing by radar; soil; vegetation; ComRAD system; Combined Radar-Radiometer system; L-band radar forest attenuation estimation; Monte Carlo simulation; active sensors; active soil moisture inversion; attenuation algorithm; backscatter signals; canopy attenuation; double interaction effects; forest canopy; forest height; forest transient response; frequency correlation functions; linear copolarized cases; passive soil moisture inversion; soil moisture radiometric sensing; time domain response; volume scattering effects; Attenuation; frequency correlation function (FCF); microwave transient response; soil moisture; vegetation;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2009.2026641