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Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data

BACKGROUND: LiDAR remote sensing is a rapidly evolving technology for quantifying a variety of forest attributes, including aboveground carbon (AGC). Pulse density influences the acquisition cost of LiDAR, and grid cell size influences AGC prediction using plot-based methods; however, little work ha...

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Autores principales: Silva, Carlos Alberto, Hudak, Andrew Thomas, Klauberg, Carine, Vierling, Lee Alexandre, Gonzalez-Benecke, Carlos, de Padua Chaves Carvalho, Samuel, Rodriguez, Luiz Carlos Estraviz, Cardil, Adrián
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer International Publishing 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5462670/
https://www.ncbi.nlm.nih.gov/pubmed/28593558
http://dx.doi.org/10.1186/s13021-017-0081-1
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author Silva, Carlos Alberto
Hudak, Andrew Thomas
Klauberg, Carine
Vierling, Lee Alexandre
Gonzalez-Benecke, Carlos
de Padua Chaves Carvalho, Samuel
Rodriguez, Luiz Carlos Estraviz
Cardil, Adrián
author_facet Silva, Carlos Alberto
Hudak, Andrew Thomas
Klauberg, Carine
Vierling, Lee Alexandre
Gonzalez-Benecke, Carlos
de Padua Chaves Carvalho, Samuel
Rodriguez, Luiz Carlos Estraviz
Cardil, Adrián
author_sort Silva, Carlos Alberto
collection PubMed
description BACKGROUND: LiDAR remote sensing is a rapidly evolving technology for quantifying a variety of forest attributes, including aboveground carbon (AGC). Pulse density influences the acquisition cost of LiDAR, and grid cell size influences AGC prediction using plot-based methods; however, little work has evaluated the effects of LiDAR pulse density and cell size for predicting and mapping AGC in fast-growing Eucalyptus forest plantations. The aim of this study was to evaluate the effect of LiDAR pulse density and grid cell size on AGC prediction accuracy at plot and stand-levels using airborne LiDAR and field data. We used the Random Forest (RF) machine learning algorithm to model AGC using LiDAR-derived metrics from LiDAR collections of 5 and 10 pulses m(−2) (RF5 and RF10) and grid cell sizes of 5, 10, 15 and 20 m. RESULTS: The results show that LiDAR pulse density of 5 pulses m(−2) provides metrics with similar prediction accuracy for AGC as when using a dataset with 10 pulses m(−2) in these fast-growing plantations. Relative root mean square errors (RMSEs) for the RF5 and RF10 were 6.14 and 6.01%, respectively. Equivalence tests showed that the predicted AGC from the training and validation models were equivalent to the observed AGC measurements. The grid cell sizes for mapping ranging from 5 to 20 also did not significantly affect the prediction accuracy of AGC at stand level in this system. CONCLUSION: LiDAR measurements can be used to predict and map AGC across variable-age Eucalyptus plantations with adequate levels of precision and accuracy using 5 pulses m(−2) and a grid cell size of 5 m. The promising results for AGC modeling in this study will allow for greater confidence in comparing AGC estimates with varying LiDAR sampling densities for Eucalyptus plantations and assist in decision making towards more cost effective and efficient forest inventory.
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spelling pubmed-54626702017-06-22 Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data Silva, Carlos Alberto Hudak, Andrew Thomas Klauberg, Carine Vierling, Lee Alexandre Gonzalez-Benecke, Carlos de Padua Chaves Carvalho, Samuel Rodriguez, Luiz Carlos Estraviz Cardil, Adrián Carbon Balance Manag Research BACKGROUND: LiDAR remote sensing is a rapidly evolving technology for quantifying a variety of forest attributes, including aboveground carbon (AGC). Pulse density influences the acquisition cost of LiDAR, and grid cell size influences AGC prediction using plot-based methods; however, little work has evaluated the effects of LiDAR pulse density and cell size for predicting and mapping AGC in fast-growing Eucalyptus forest plantations. The aim of this study was to evaluate the effect of LiDAR pulse density and grid cell size on AGC prediction accuracy at plot and stand-levels using airborne LiDAR and field data. We used the Random Forest (RF) machine learning algorithm to model AGC using LiDAR-derived metrics from LiDAR collections of 5 and 10 pulses m(−2) (RF5 and RF10) and grid cell sizes of 5, 10, 15 and 20 m. RESULTS: The results show that LiDAR pulse density of 5 pulses m(−2) provides metrics with similar prediction accuracy for AGC as when using a dataset with 10 pulses m(−2) in these fast-growing plantations. Relative root mean square errors (RMSEs) for the RF5 and RF10 were 6.14 and 6.01%, respectively. Equivalence tests showed that the predicted AGC from the training and validation models were equivalent to the observed AGC measurements. The grid cell sizes for mapping ranging from 5 to 20 also did not significantly affect the prediction accuracy of AGC at stand level in this system. CONCLUSION: LiDAR measurements can be used to predict and map AGC across variable-age Eucalyptus plantations with adequate levels of precision and accuracy using 5 pulses m(−2) and a grid cell size of 5 m. The promising results for AGC modeling in this study will allow for greater confidence in comparing AGC estimates with varying LiDAR sampling densities for Eucalyptus plantations and assist in decision making towards more cost effective and efficient forest inventory. Springer International Publishing 2017-06-07 /pmc/articles/PMC5462670/ /pubmed/28593558 http://dx.doi.org/10.1186/s13021-017-0081-1 Text en © The Author(s) 2017 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Research
Silva, Carlos Alberto
Hudak, Andrew Thomas
Klauberg, Carine
Vierling, Lee Alexandre
Gonzalez-Benecke, Carlos
de Padua Chaves Carvalho, Samuel
Rodriguez, Luiz Carlos Estraviz
Cardil, Adrián
Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data
title Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data
title_full Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data
title_fullStr Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data
title_full_unstemmed Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data
title_short Combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing Eucalyptus forest plantation using airborne LiDAR data
title_sort combined effect of pulse density and grid cell size on predicting and mapping aboveground carbon in fast-growing eucalyptus forest plantation using airborne lidar data
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5462670/
https://www.ncbi.nlm.nih.gov/pubmed/28593558
http://dx.doi.org/10.1186/s13021-017-0081-1
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