DocumentCode
1147507
Title
: A Modified Sun-Canopy-Sensor Topographic Correction in Forested Terrain
Author
Soenen, Scott A. ; Peddle, Derek R. ; Coburn, Craig A.
Author_Institution
Dept. of Geogr., Univ. of Lethbridge, Alta., Canada
Volume
43
Issue
9
fYear
2005
Firstpage
2148
Lastpage
2159
Abstract
Topographic correction based on sun-canopy-sensor (SCS) geometry is more appropriate than terrain-based corrections in forested areas since SCS preserves the geotropic nature of trees (vertical growth) regardless of terrain, view, and illumination angles. However, in some terrain orientations, SCS experiences an overcorrection problem similar to other simple photometric functions. To address this problem, we propose a new
correction that accounts for diffuse atmospheric irradiance based on the
-correction. A rigorous, comprehensive, and flexible method for independent validation based on canopy geometric optical reflectance models is also introduced as an improvement over previous validation approaches, and forms a secondary contribution of this paper. Results for a full range of slopes, aspects, and crown closures showed
provided improved corrections compared to the SCS and four other photometric approaches (cosine,
, Minnaert, statistical-empirical) for a Rocky Mountain forest setting in western Canada. It was concluded that
should be considered for topographic correction of remote sensing imagery in forested terrain.
correction that accounts for diffuse atmospheric irradiance based on the
-correction. A rigorous, comprehensive, and flexible method for independent validation based on canopy geometric optical reflectance models is also introduced as an improvement over previous validation approaches, and forms a secondary contribution of this paper. Results for a full range of slopes, aspects, and crown closures showed
provided improved corrections compared to the SCS and four other photometric approaches (cosine,
, Minnaert, statistical-empirical) for a Rocky Mountain forest setting in western Canada. It was concluded that
should be considered for topographic correction of remote sensing imagery in forested terrain.Keywords
forestry; radiometry; topography (Earth); vegetation mapping; Rocky Mountains; SCS+C; canopy geometric optical reflectance models; canopy reflectance model; crown closures; diffuse atmospheric irradiance; forested terrain; forests; illumination angles; photometric functions; radiometric processing; remote sensing imagery; sun-canopy-sensor with C-correction; terrain orientations; topographic correction; Atmospheric modeling; Geometrical optics; Geometry; Lighting; Optical sensors; Optical variables control; Photometry; Reflectivity; Remote sensing; Solid modeling; Canopy reflectance model; Rocky Mountains; forests; radiometric processing; sun-canopy-sensor (SCS), SCS with C-correction (SCS+C); topographic correction;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2005.852480
Filename
1499030
Link To Document