The radiative transfer equations for a coupled atmosphere and canopy are solved numerically by an improved Gause-Seidel iteration algorithm. The radiation field is decomposed into three components: unscattered sunlight, single scattering, and multiple scattering radiance for which the corresponding equations and boundary conditions are set up and their analytical or iterational solutions are explicitly derived. The classic Guass-Seidel algorithm has been widely applied in atomospheric research. This is its first application for calculating the multiple scattering radiance of a coupled atmosphere and canopy. This algorithm enables us to obtain the internal radiation field as well as radiances at boundaries. Any form of bidirectional reflecta...
The SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate th...
The SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate th...
A technique for computing the spectral and angular (both the zenith and azimuthal) distribution of t...
Radiative transfer modeling of the bidirectional reflectance distribution function (BRDF) of leaf ca...
This paper applies plane parallel radiance transport techniques to scattering from vegetation. The l...
This paper applies plane parallel radiance transport techniques to scattering from vegetation. The ...
A radiative transfer model for a homogeneous plane parallel vegetative canopy is developed. A method...
A new method of calculating accurate visible radiance values in the solar aureole region is derived ...
A new model for computing radiative transfer in a spherically symmetric atmosphere has been develope...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
A new spherical-shell radiative transfer model has been developed, with particular emphasis on the a...
The SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate th...
The SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate th...
A technique for computing the spectral and angular (both the zenith and azimuthal) distribution of t...
Radiative transfer modeling of the bidirectional reflectance distribution function (BRDF) of leaf ca...
This paper applies plane parallel radiance transport techniques to scattering from vegetation. The l...
This paper applies plane parallel radiance transport techniques to scattering from vegetation. The ...
A radiative transfer model for a homogeneous plane parallel vegetative canopy is developed. A method...
A new method of calculating accurate visible radiance values in the solar aureole region is derived ...
A new model for computing radiative transfer in a spherically symmetric atmosphere has been develope...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
he SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate the...
A new spherical-shell radiative transfer model has been developed, with particular emphasis on the a...
The SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate th...
The SAIL model (proposed by Verhoef) is largely used in the remote sensing community to calculate th...
A technique for computing the spectral and angular (both the zenith and azimuthal) distribution of t...