Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected Radiation

The paper introduces a three-dimensional model to derive the spatial patterns of photosynthetically active radiation (PAR) reflected and absorbed by a non-uniform forest canopy with a multi-species structure, as well as a model algorithm application to retrieve forest canopy composition from reflect...

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Main Authors: Natalia Levashova, Dmitry Lukyanenko, Yulia Mukhartova, Alexander Olchev
Format: Article
Language:English
Published: MDPI AG 2018-10-01
Series:Remote Sensing
Subjects:
Online Access:http://www.mdpi.com/2072-4292/10/10/1661
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spelling doaj-96eea461985d4f7a8eeb04aa5171de6a2020-11-25T00:55:51ZengMDPI AGRemote Sensing2072-42922018-10-011010166110.3390/rs10101661rs10101661Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected RadiationNatalia Levashova0Dmitry Lukyanenko1Yulia Mukhartova2Alexander Olchev3Department of Mathematics, Faculty of Physics, Lomonosov Moscow State University, Moscow 119991, RussiaDepartment of Mathematics, Faculty of Physics, Lomonosov Moscow State University, Moscow 119991, RussiaDepartment of Mathematics, Faculty of Physics, Lomonosov Moscow State University, Moscow 119991, RussiaDepartment of Meteorology and Climatology, Faculty of Geography, Lomonosov Moscow State University, Moscow 119991, RussiaThe paper introduces a three-dimensional model to derive the spatial patterns of photosynthetically active radiation (PAR) reflected and absorbed by a non-uniform forest canopy with a multi-species structure, as well as a model algorithm application to retrieve forest canopy composition from reflected PAR measured along some trajectory above the forest stand. This radiative transfer model is based on steady-state transport equations, initially suggested by Ross, and considers the radiative transfer as a function of the structure of individual trees and forest canopy, optical properties of photosynthesizing and non-photosynthesizing parts of the different tree species, soil reflection, and the ratio of incoming direct and diffuse solar radiation. Numerical experiments showed that reflected solar radiation of a typical mixed forest stand consisting of coniferous and deciduous tree species was strongly governed by canopy structure, soil properties and sun elevation. The suggested algorithm based on the developed model allows for retrieving the proportion of different tree species in a mixed forest stand from measured canopy reflection coefficients. The method accuracy strictly depends on the number of points for canopy reflection measurements.http://www.mdpi.com/2072-4292/10/10/1661radiative transferthree-dimensional modelcanopy reflectionmixed forestinverse problem
collection DOAJ
language English
format Article
sources DOAJ
author Natalia Levashova
Dmitry Lukyanenko
Yulia Mukhartova
Alexander Olchev
spellingShingle Natalia Levashova
Dmitry Lukyanenko
Yulia Mukhartova
Alexander Olchev
Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected Radiation
Remote Sensing
radiative transfer
three-dimensional model
canopy reflection
mixed forest
inverse problem
author_facet Natalia Levashova
Dmitry Lukyanenko
Yulia Mukhartova
Alexander Olchev
author_sort Natalia Levashova
title Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected Radiation
title_short Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected Radiation
title_full Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected Radiation
title_fullStr Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected Radiation
title_full_unstemmed Application of a Three-Dimensional Radiative Transfer Model to Retrieve the Species Composition of a Mixed Forest Stand from Canopy Reflected Radiation
title_sort application of a three-dimensional radiative transfer model to retrieve the species composition of a mixed forest stand from canopy reflected radiation
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2018-10-01
description The paper introduces a three-dimensional model to derive the spatial patterns of photosynthetically active radiation (PAR) reflected and absorbed by a non-uniform forest canopy with a multi-species structure, as well as a model algorithm application to retrieve forest canopy composition from reflected PAR measured along some trajectory above the forest stand. This radiative transfer model is based on steady-state transport equations, initially suggested by Ross, and considers the radiative transfer as a function of the structure of individual trees and forest canopy, optical properties of photosynthesizing and non-photosynthesizing parts of the different tree species, soil reflection, and the ratio of incoming direct and diffuse solar radiation. Numerical experiments showed that reflected solar radiation of a typical mixed forest stand consisting of coniferous and deciduous tree species was strongly governed by canopy structure, soil properties and sun elevation. The suggested algorithm based on the developed model allows for retrieving the proportion of different tree species in a mixed forest stand from measured canopy reflection coefficients. The method accuracy strictly depends on the number of points for canopy reflection measurements.
topic radiative transfer
three-dimensional model
canopy reflection
mixed forest
inverse problem
url http://www.mdpi.com/2072-4292/10/10/1661
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