Classification of tree species based on longwave hyperspectral data from leaves, a case study for a tropical dry forest

被引:43
作者
Harrison, D. [1 ]
Rivard, B. [1 ]
Sanchez-Azofeifa, A. [1 ]
机构
[1] Univ Alberta, Ctr Earth Observat Sci, Dept Earth & Atmospher Sci, Edmonton, AB, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Long wave infrared; Wavelet analysis; Species discrimination; Random forest boot-strapping analysis; Cuticle and cell wall compounds; Spectral feature identification; FT-IR SPECTROSCOPY; CELL-WALL; MU-M; SPECTRAL REFLECTANCE; PLANT; POLYSACCHARIDES; IDENTIFICATION; VARIABILITY; FEATURES;
D O I
10.1016/j.jag.2017.11.009
中图分类号
TP7 [遥感技术];
学科分类号
081102 ; 0816 ; 081602 ; 083002 ; 1404 ;
摘要
Remote sensing of the environment has utilized the visible, near and short-wave infrared (IR) regions of the electromagnetic (EM) spectrum to characterize vegetation health, vigor and distribution. However, relatively little research has focused on the use of the longwave infrared (LWIR, 8.0-12.5 mu m) region for studies of vegetation. In this study LWIR leaf reflectance spectra were collected in the wet seasons (May through December) of 2013 and 2014 from twenty-six tree species located in a high species diversity environment, a tropical dry forest in Costa Rica. A continuous wavelet transformation (CWT) was applied to all spectra to minimize noise and broad amplitude variations attributable to non-compositional effects. Species discrimination was then explored with Random Forest classification and accuracy improved was observed with preprocessing of reflectance spectra with continuous wavelet transformation. Species were found to share common spectral features that formed the basis for five spectral types that were corroborated with linear discriminate analysis. The source of most of the observed spectral features is attributed to cell wall or cuticle compounds (cellulose, cutin, matrix glycan, silica and oleanolic acid). Spectral types could be advantageous for the analysis of airborne hyperspectral data because cavity effects will lower the spectral contrast thus increasing the reliance of classification efforts on dominant spectral features. Spectral types specifically derived from leaf level data are expected to support the labeling of spectral classes derived from imagery. The results of this study and that of Ribeiro Da Luz (2006), Ribeiro Da Luz and Crowley (2007, 2010), Ullah et al. (2012) and Rock et al. (2016) have now illustrated success in tree species discrimination across a range of ecosystems using leaf-level spectral observations. With advances in LWIR sensors and concurrent improvements in their signal to noise, applications to large-scale species detection from airborne imagery appear feasible.
引用
收藏
页码:93 / 105
页数:13
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