Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR

The lack of precise methods for estimating forest biomass results in both economic losses and incorrect decisions in the management of forest plantations. In response to this issue, this study evaluated the effectiveness of using the DJI Zenmuse L1 LiDAR, mounted on a DJI Matrice 300 RTK UAV, to pro...

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Main Authors: Enriquez Pinedo, Lucía, Ortega Quispe, Kevin, Ccopi Trucios, Dennis, Urquizo Barrera, Julio, Rios Chavarría, Claudia, Pizarro Carcausto, Samuel, Matos Calderon, Diana, Patricio Rosales, Solanch, Rodríguez Cerrón, Mauro, Ore Aquino, Zoila, Paz Monge, Michel, Castañeda Tinco, Italo
Format: Artículo
Language:Inglés
Published: Elsevier B.V. 2025
Subjects:
Online Access:http://hdl.handle.net/20.500.12955/2675
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author Enriquez Pinedo, Lucía
Ortega Quispe, Kevin
Ccopi Trucios, Dennis
Urquizo Barrera, Julio
Rios Chavarría, Claudia
Pizarro Carcausto, Samuel
Matos Calderon, Diana
Patricio Rosales, Solanch
Rodríguez Cerrón, Mauro
Ore Aquino, Zoila
Paz Monge, Michel
Castañeda Tinco, Italo
author_browse Castañeda Tinco, Italo
Ccopi Trucios, Dennis
Enriquez Pinedo, Lucía
Matos Calderon, Diana
Ore Aquino, Zoila
Ortega Quispe, Kevin
Patricio Rosales, Solanch
Paz Monge, Michel
Pizarro Carcausto, Samuel
Rios Chavarría, Claudia
Rodríguez Cerrón, Mauro
Urquizo Barrera, Julio
author_facet Enriquez Pinedo, Lucía
Ortega Quispe, Kevin
Ccopi Trucios, Dennis
Urquizo Barrera, Julio
Rios Chavarría, Claudia
Pizarro Carcausto, Samuel
Matos Calderon, Diana
Patricio Rosales, Solanch
Rodríguez Cerrón, Mauro
Ore Aquino, Zoila
Paz Monge, Michel
Castañeda Tinco, Italo
author_sort Enriquez Pinedo, Lucía
collection Repositorio INIA
description The lack of precise methods for estimating forest biomass results in both economic losses and incorrect decisions in the management of forest plantations. In response to this issue, this study evaluated the effectiveness of using the DJI Zenmuse L1 LiDAR, mounted on a DJI Matrice 300 RTK UAV, to provide three-dimensional measurements of canopy structure and estimate the aboveground biomass of Eucalyptus globulus. Various LiDAR metrics were employed alongside field measurements to calibrate predictive models using multiple regression and machine learning algorithms. The results at the individual tree level show that RF is the most accurate model, with a coefficient of determination (R²) of 0.76 in the training set and 0.66 in the test set, outperforming Elastic Net (R² of 0.58 and 0.57, respectively). At the plot level, a multiple regression model achieved an R² of 0.647, highlighting LiDAR-derived metrics as key predictors. The findings revealed that the combination of LiDAR with advanced statistical techniques, such as multiple regression and Random Forest, significantly improves the accuracy of biomass estimation, surpassing traditional methods based on allometric equations. Therefore, the use of LiDAR in conjunction with machine learning represents an effective alternative for biomasss estimation, with great potential in such plantations and contribute to more sustainable exploitation of timber resources.
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spelling INIA26752025-03-24T05:08:20Z Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR Enriquez Pinedo, Lucía Ortega Quispe, Kevin Ccopi Trucios, Dennis Urquizo Barrera, Julio Rios Chavarría, Claudia Pizarro Carcausto, Samuel Matos Calderon, Diana Patricio Rosales, Solanch Rodríguez Cerrón, Mauro Ore Aquino, Zoila Paz Monge, Michel Castañeda Tinco, Italo Forest biomass Remote sensors LiDAR Eucalyptus globulus UAV https://purl.org/pe-repo/ocde/ford#4.01.02 biomasa forestal | sensores remotos | LIDAR | Eucalyptus globulus | vehículos aéreos no tripulados The lack of precise methods for estimating forest biomass results in both economic losses and incorrect decisions in the management of forest plantations. In response to this issue, this study evaluated the effectiveness of using the DJI Zenmuse L1 LiDAR, mounted on a DJI Matrice 300 RTK UAV, to provide three-dimensional measurements of canopy structure and estimate the aboveground biomass of Eucalyptus globulus. Various LiDAR metrics were employed alongside field measurements to calibrate predictive models using multiple regression and machine learning algorithms. The results at the individual tree level show that RF is the most accurate model, with a coefficient of determination (R²) of 0.76 in the training set and 0.66 in the test set, outperforming Elastic Net (R² of 0.58 and 0.57, respectively). At the plot level, a multiple regression model achieved an R² of 0.647, highlighting LiDAR-derived metrics as key predictors. The findings revealed that the combination of LiDAR with advanced statistical techniques, such as multiple regression and Random Forest, significantly improves the accuracy of biomass estimation, surpassing traditional methods based on allometric equations. Therefore, the use of LiDAR in conjunction with machine learning represents an effective alternative for biomasss estimation, with great potential in such plantations and contribute to more sustainable exploitation of timber resources. Project "Creation of the precision agriculture service in the Departments of Lambayeque, Huancavelica, Ucayali and San Martín" CUI 2449640 of the National Institute of Agrarian Innovation (INIA) through the Ministry of Agrarian Development and Irrigation (MIDAGRI) of the Government of Peru. 1. Introduction 2. Materials and methods o 2.1. Study site o 2.2. Methodological framework o 2.3. Sampling design and field data collection  2.3.1. Tree position  2.3.2. Dendrometric variables o 2.4. UAV-LIDAR remote sensing data acquisition o 2.5. Data processing and statistical analysis  2.5.1. Point cloud generation  2.5.2. Processing of the point cloud  2.5.3. Extraction of metrics o 2.6. Forest biomass estimation  2.6.1. Area-based approach (ABA) with statistical regression models  2.6.2. Individual tree-based approach (ITD) with machine learning algorithms 3. Results o 3.1. Coefficient of determination in estimating maximum height o 3.2. Correlation analysis between LiDAR metrics and biomass o 3.3. Estimation of biomass at the individual tree level o 3.4. Estimation of maximum height at the individual tree level o 3.5. Multiple linear regression model at the plot level 4. Discussion 5. Conclusions Declaration of competing interest Acknowledgments References 2025-03-24T05:08:19Z 2025-03-24T05:08:19Z 2024-12-22 info:eu-repo/semantics/article Lucia Enriquez Pinedo, Kevin Ortega Quispe, Dennis Ccopi Trucios, Julio Urquizo Barrera, Claudia Rios Chavarría, Samuel Pizarro Carcausto, Diana Matos Calderon, Solanch Patricio Rosales, Mauro Rodríguez Cerrón, Zoila Ore Aquino, Michel Paz Monge, Italo Castañeda Tinco, Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR, Trees, Forests and People, Volume 19, 2025, 100763, ISSN 2666-7193, https://doi.org/10.1016/j.tfp.2024.100763 http://hdl.handle.net/20.500.12955/2675 10.1016/j.tfp.2024.100763 eng 2666-7193 Trees, Forests and People info:eu-repo/semantics/openAccess https://creativecommons.org/licenses/by/4.0/ application/pdf application/pdf Elsevier B.V. NL Instituto Nacional de Innovación Agraria Repositorio Institucional - INIA
spellingShingle Forest biomass
Remote sensors
LiDAR
Eucalyptus globulus
UAV
https://purl.org/pe-repo/ocde/ford#4.01.02
biomasa forestal | sensores remotos | LIDAR | Eucalyptus globulus | vehículos aéreos no tripulados
Enriquez Pinedo, Lucía
Ortega Quispe, Kevin
Ccopi Trucios, Dennis
Urquizo Barrera, Julio
Rios Chavarría, Claudia
Pizarro Carcausto, Samuel
Matos Calderon, Diana
Patricio Rosales, Solanch
Rodríguez Cerrón, Mauro
Ore Aquino, Zoila
Paz Monge, Michel
Castañeda Tinco, Italo
Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR
title Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR
title_full Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR
title_fullStr Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR
title_full_unstemmed Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR
title_short Estimation of height and aerial biomass in Eucalyptus globulus plantations using UAV-LiDAR
title_sort estimation of height and aerial biomass in eucalyptus globulus plantations using uav lidar
topic Forest biomass
Remote sensors
LiDAR
Eucalyptus globulus
UAV
https://purl.org/pe-repo/ocde/ford#4.01.02
biomasa forestal | sensores remotos | LIDAR | Eucalyptus globulus | vehículos aéreos no tripulados
url http://hdl.handle.net/20.500.12955/2675
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