Title :
Improved full spectrum cloudy scene simulation
Author :
Sundberg, Robert ; Richtsmeier, Steven ; Haren, Raymond
Author_Institution :
Spectral Sci., Inc., Burlington, MA, USA
Abstract :
This paper will discuss recent improvements made to the MCScene code, a high fidelity model for full optical spectrum (UV through LWIR) hyperspectral image (HSI) simulation. MCScene provides an accurate, robust, and efficient means to generate HSI scenes for algorithm validation. MCScene utilizes a Direct Simulation Monte Carlo approach for modeling 3D atmospheric radiative transfer (RT) including full treatment of molecular absorption and Rayleigh scattering, aerosol absorption and scattering, and multiple scattering and adjacency effects, as well as scattering from spatially inhomogeneous surfaces, including surface BRDF effects. The model includes treatment of land and ocean surfaces, 3D terrain, 3D surface objects, and effects of finite clouds with surface shadowing. This paper will provide an overview of how RT elements are incorporated into the Monte Carlo engine. Several new examples of the capabilities of MCScene to simulate 3-dimensional cloud fields will also be discussed, and sample calculations will be presented.
Keywords :
Monte Carlo methods; Rayleigh scattering; aerosols; atmospheric optics; clouds; geophysics computing; radiative transfer; remote sensing; simulation; 3D atmospheric radiative transfer; 3D cloud fields; 3D surface objects; 3D terrain; MCScene code; Rayleigh scattering; adjacency effects; aerosol absorption; aerosol scattering; algorithm validation; cloud surface shadowing; direct simulation Monte Carlo approach; finite cloud effects; full optical spectrum hyperspectral image simulation; full spectrum cloudy scene simulation; high fidelity model; land surfaces; molecular absorption; multiple scattering effects; ocean surfaces; spatially inhomogeneous surfaces; surface BRDF effects; Atmospheric modeling; Clouds; Electromagnetic wave absorption; Land surface; Layout; Monte Carlo methods; Optical scattering; Rayleigh scattering; Sea surface; Surface treatment; Algorithm; Hyperspectral; Infrared; Multispectral; Scene; Sensor; Simulation; Visible;
Conference_Titel :
Geoscience and Remote Sensing Symposium,2009 IEEE International,IGARSS 2009
Conference_Location :
Cape Town
Print_ISBN :
978-1-4244-3394-0
Electronic_ISBN :
978-1-4244-3395-7
DOI :
10.1109/IGARSS.2009.5416907