Spectroscopic determination of leaf biochemistry using band-depth analysis of absorption features and stepwise multiple linear regression

被引:806
作者
Kokaly, RF [1 ]
Clark, RN [1 ]
机构
[1] US Geol Survey, Lakewood, CO 80225 USA
基金
美国国家航空航天局;
关键词
D O I
10.1016/S0034-4257(98)00084-4
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We develop a new method for estimating the biochemistry of plant material using spectroscopy. Normalized band depths calculated from the continuum-removed reflectance spectra of dried and ground leaves were used to estimate their concentrations of nitrogen, lignin, and cellulose. Stepwise multiple linear regression was used to select wavelengths in the broad absorption features cen tered at 1.73 mu m, 2.10 mu m, and 2.30 mu m that were highly correlated with the chemistry of samples from eastern U.S. forests. Band depths of absorption features at these wavelengths were found to also be highly correlated with the chemistry of four other sites. A subset of data from the eastern U.S, forest sites was used to derive linear equations that rc;ere applied to the remaining data to successfully estimate their nitrogen, lignin, and cellulose concentrations. Correlations were highest for nitrogen (R-2 from 0.75 to 0.94). The consistent results indicate the possibility of establishing a single equation capable of estimating the chemical concentrations in a wide variety of species front the reflectance spectra of dried leaves. The extension of this method to remote sensing was investigated. The effects of leaf water content, sensor signal-to-noise and bandpass, atmospheric effects, and background soil exposure were examined. Leaf water was found to be the greatest challenge to extending this empirical method to the analysis of fresh whole leaves and complete vegetation canopies. The influence of leaf water on reflectance spectra must be removed to within 10%. Other effects were reduced by continuum removal and normalization of band depths. If the effects of leaf water can be compensated for, it might be possible to extend this method to remote sensing data acquired by imaging spectrometers to give estimates of nitrogen, lignin, and cellulose concentrations over large areas for use in ecosystem studies. Published by Elsevier Science Inc.
引用
收藏
页码:267 / 287
页数:21
相关论文
共 40 条
[1]   A GENERALIZED, LUMPED-PARAMETER MODEL OF PHOTOSYNTHESIS, EVAPOTRANSPIRATION AND NET PRIMARY PRODUCTION IN TEMPERATE AND BOREAL FOREST ECOSYSTEMS [J].
ABER, JD ;
FEDERER, CA .
OECOLOGIA, 1992, 92 (04) :463-474
[2]  
ABER JD, 1994, J NEAR INFRARED SPEC, V2, P15
[3]  
*ACCP, 1994, ACC CAN CHEMPROGR FI
[4]  
Afifi AA, 1971, STAT ANAL COMPUTER A
[5]   INTERACTION OF ISOTROPIC LIGHT WITH A COMPACT PLANT LEAF [J].
ALLEN, WA ;
GAUSMAN, HW ;
RICHARDSON, AJ ;
THOMAS, JR .
JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1969, 59 (10) :1376-+
[6]  
BERK A, 1989, GLTR0122 AFGL
[7]   Determination of carbon fraction and nitrogen concentration in tree foliage by near infrared reflectance: A comparison of statistical methods [J].
Bolster, KL ;
Martin, ME ;
Aber, JD .
CANADIAN JOURNAL OF FOREST RESEARCH, 1996, 26 (04) :590-600
[8]   NONLINEAR SPECTRAL MIXING MODELS FOR VEGETATIVE AND SOIL SURFACES [J].
BOREL, CC ;
GERSTL, SAW .
REMOTE SENSING OF ENVIRONMENT, 1994, 47 (03) :403-416
[9]   PREDICTION OF LEAF CHEMISTRY BY THE USE OF VISIBLE AND NEAR-INFRARED REFLECTANCE SPECTROSCOPY [J].
CARD, DH ;
PETERSON, DL ;
MATSON, PA ;
ABER, JD .
REMOTE SENSING OF ENVIRONMENT, 1988, 26 (02) :123-147
[10]   REFLECTANCE SPECTROSCOPY - QUANTITATIVE-ANALYSIS TECHNIQUES FOR REMOTE-SENSING APPLICATIONS [J].
CLARK, RN ;
ROUSH, TL .
JOURNAL OF GEOPHYSICAL RESEARCH, 1984, 89 (NB7) :6329-6340