Separating physiologically and directionally induced changes in PRI using BRDF models

被引:160
作者
Hilker, Thomas [1 ]
Coops, Nicholas C. [1 ]
Hall, Forrest G. [2 ]
Black, T. Andrew [3 ]
Wulder, Michael A. [4 ]
Nesic, Zoran [3 ]
Krishnan, Praveena [3 ]
机构
[1] Univ British Columbia, Fac Forest Resources Management, Vancouver, BC V6T 1Z4, Canada
[2] Univ Maryland, Joint Ctr Earth Syst Technol, Baltimore Cty Goddard Space Flight Ctr, Greenbelt, MD 20771 USA
[3] Univ British Columbia, Fac Land & Food Syst, Vancouver, BC V6T 1Z4, Canada
[4] Nat Resources Canada, Pacific Forestry Ctr, Canadian Forest Serv, Victoria, BC V8Z 1M5, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
BDRF; PRI; photosynthesis; remote sensing; Douglas-fir; canopy stress; reflectance;
D O I
10.1016/j.rse.2008.01.011
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Monitoring of photosynthetic efficiency (epsilon) over space and time is a critical component of climate change research as it is a major determinant of the amount of carbon accumulated by terrestrial ecosystems. While the past decade has seen progress in the remote estimation of c at the leaf, canopy and stand level using the photochemical reflectance index PRI (based on the normalized difference of reflectance at 531 and 570 nm), little is known about the temporal and spatial requirements for up-scaling PRI to landscape and global levels using satellite observations. One potential way to investigate these requirements is using automated tower-based remote sensing platforms, which observe stand level reflectance with high spatial, temporal, and spectral resolution. Prediction of epsilon from PRI diurnally or over a full year requires observations of canopy reflectance over multiple view and sun-angles. As a result, these observations are subject to directional reflectance effects which can be interpreted in terms of the bidirectional reflectance distribution function (BRDF) using semi-empirical kernel driven models. These semi-empirical models use a combination of physically based BRDF shapes and empirical observations to standardize rnulti-angular observations to a common viewing and illumination geometry. Directional reflectance effects are thereby modeled as a linear superposition of mathematical kernels, representing the bi-direction variation in reflectance from isotropic, geometric, and volumetric scattering components of the vegetation canopy. However, because variations in plant physiological conditions can also introduce bidirectional reflectance variations, we introduce an approach to separate bidirectional effects arising purely from plant physiological status from other effects by stratifying PRI observations into categories based on environmental conditions for which the expected physiological variability is low. Within each of these PRI strata, the derived physically based BRDF shapes were used to standardize multi-angular PRI measurements to a common viewing and illumination geometry. The method significantly enhanced the relationship found between PRI and epsilon (from r(2)=0.38 for the directionally uncorrected case to r(2)=0.82 for the directionally corrected case) from data measured continuously over the course of 1 year over an evergreen conifer forest using an automated platform. Results show that isotropic PRI scattering is highly correlated to changes in epsilon, while geometric scattering can be related to canopy level shading. Instrumentation and approaches such as the one demonstrated in this study may be integrated into current efforts aiming at predicting epsilon at global scales using satellite observations. (C) 2008 Elsevier Inc. All rights reserved.
引用
收藏
页码:2777 / 2788
页数:12
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