RADIATIVE-TRANSFER IN SHRUB SAVANNA SITES IN NIGER - PRELIMINARY-RESULTS FROM HAPEX-SAHEL .1. MODELING SURFACE REFLECTANCE USING A GEOMETRIC-OPTICAL APPROACH

被引:5
作者
FRANKLIN, J
DUNCAN, J
HUETE, AR
VANLEEUWEN, WJD
LI, XW
BEGUE, A
机构
[1] UNIV ARIZONA, DEPT SOIL & WATER SCI, TUCSON, AZ 85721 USA
[2] BOSTON UNIV, CTR REMOTE SENSING, BOSTON, MA 02215 USA
[3] UNIV MARYLAND, DEPT GEOG, College Pk, MD 20742 USA
基金
美国国家科学基金会; 美国国家航空航天局;
关键词
D O I
10.1016/0168-1923(94)90027-2
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
To use optical remote sensing to monitor land surface-climate interactions over large areas, algorithms must be developed to relate multispectral measurements to key variables controlling the exchange of matter (water, carbon dioxide) and energy between the land surface and the atmosphere. The proportion of the ground covered by vegetation and the interception of photosynthetically active radiation (PAR) by vegetation are examples of two variables related to evapotranspiration and primary production, respectively. An areal-proportion model of the multispectral reflectance of shrub savanna, composed of scattered shrubs with a grass, forb or soil understory, predicted the reflectance of two 0.5 km2 sites as the area-weighted average of the shrub and understory or 'background' reflectances. Although the shaded crown and shaded background have darker reflectances, ignoring them in the area-weighted model is not serious when shrub cover is low and solar zenith angle is small. A submodel predicted the reflectance of the shrub crown as a function of the foliage reflectance and amount of plant material within the crown, and the background reflectance scattered or transmitted through canopy gaps (referred to as a soil-plant 'spectral interaction' term). One may be able to combine these two models to estimate both the fraction of vegetation cover and interception of PAR by green vegetation in a shrub savanna.
引用
收藏
页码:223 / 245
页数:23
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