Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon

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Forest volume modeling plays a fundamental role in forest inventory, biomass estimation, and the sustainable management of timber resources. In the Amazon region of Peru, native species such as Calycophyllum spruceanum and Cedrelinga cateniformis hold high ecological and commercial value, yet remain...

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Detalles Bibliográficos
Autores: Koch Duarte, Christian, del Aguila Piña, Carlos Francisco, Fernández Sandoval, Andrés, Cárdenas Rengifo, Gloria Patricia, Santillán Gonzáles, Manuel Dante, Salazar Hinostroza, Evelin Judith, Castedo Dorado, Fernando, Álvarez Álvarez, Pedro, Goycochea Casas, Gianmarco, Baselly Villanueva, Juan Rodrigo
Formato: artículo
Fecha de Publicación:2025
Institución:Instituto Nacional de Innovación Agraria
Repositorio:INIA-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorio.inia.gob.pe:20.500.12955/2950
Enlace del recurso:http://hdl.handle.net/20.500.12955/2950
https://doi.org/10.1016/j.tfp.2025.101085
Nivel de acceso:acceso abierto
Materia:Allometric volume functions
Forest inventory
Tropical silviculture
Regression
Funciones alométricas de volumen
Inventario forestal
Silvicultura tropical
Regresión
https://purl.org/pe-repo/ocde/ford#4.01.00
Inventario forestal; Forest inventories; Silvicultura; Silviculture; Modelo matemático; Mathematical models; Medio ambiente; Environment; Bosque tropical; Tropical forests; Ordenación forestal; Forest management.
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dc.title.none.fl_str_mv Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
title Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
spellingShingle Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
Koch Duarte, Christian
Allometric volume functions
Forest inventory
Tropical silviculture
Regression
Funciones alométricas de volumen
Inventario forestal
Silvicultura tropical
Regresión
https://purl.org/pe-repo/ocde/ford#4.01.00
Inventario forestal; Forest inventories; Silvicultura; Silviculture; Modelo matemático; Mathematical models; Medio ambiente; Environment; Bosque tropical; Tropical forests; Ordenación forestal; Forest management.
title_short Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
title_full Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
title_fullStr Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
title_full_unstemmed Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
title_sort Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon
author Koch Duarte, Christian
author_facet Koch Duarte, Christian
del Aguila Piña, Carlos Francisco
Fernández Sandoval, Andrés
Cárdenas Rengifo, Gloria Patricia
Santillán Gonzáles, Manuel Dante
Salazar Hinostroza, Evelin Judith
Castedo Dorado, Fernando
Álvarez Álvarez, Pedro
Goycochea Casas, Gianmarco
Baselly Villanueva, Juan Rodrigo
author_role author
author2 del Aguila Piña, Carlos Francisco
Fernández Sandoval, Andrés
Cárdenas Rengifo, Gloria Patricia
Santillán Gonzáles, Manuel Dante
Salazar Hinostroza, Evelin Judith
Castedo Dorado, Fernando
Álvarez Álvarez, Pedro
Goycochea Casas, Gianmarco
Baselly Villanueva, Juan Rodrigo
author2_role author
author
author
author
author
author
author
author
author
dc.contributor.author.fl_str_mv Koch Duarte, Christian
del Aguila Piña, Carlos Francisco
Fernández Sandoval, Andrés
Cárdenas Rengifo, Gloria Patricia
Santillán Gonzáles, Manuel Dante
Salazar Hinostroza, Evelin Judith
Castedo Dorado, Fernando
Álvarez Álvarez, Pedro
Goycochea Casas, Gianmarco
Baselly Villanueva, Juan Rodrigo
dc.subject.none.fl_str_mv Allometric volume functions
Forest inventory
Tropical silviculture
Regression
Funciones alométricas de volumen
Inventario forestal
Silvicultura tropical
Regresión
topic Allometric volume functions
Forest inventory
Tropical silviculture
Regression
Funciones alométricas de volumen
Inventario forestal
Silvicultura tropical
Regresión
https://purl.org/pe-repo/ocde/ford#4.01.00
Inventario forestal; Forest inventories; Silvicultura; Silviculture; Modelo matemático; Mathematical models; Medio ambiente; Environment; Bosque tropical; Tropical forests; Ordenación forestal; Forest management.
dc.subject.ocde.none.fl_str_mv https://purl.org/pe-repo/ocde/ford#4.01.00
dc.subject.agrovoc.none.fl_str_mv Inventario forestal; Forest inventories; Silvicultura; Silviculture; Modelo matemático; Mathematical models; Medio ambiente; Environment; Bosque tropical; Tropical forests; Ordenación forestal; Forest management.
description Forest volume modeling plays a fundamental role in forest inventory, biomass estimation, and the sustainable management of timber resources. In the Amazon region of Peru, native species such as Calycophyllum spruceanum and Cedrelinga cateniformis hold high ecological and commercial value, yet remain understudied in terms of volumetric estimation. This study aimed to develop and evaluate volumetric models for both species across three ecological zones—humid forest, very humid forest, and dry forest—representing the environmental diversity of the northeastern Peruvian Amazon. A total of 18 volumetric models were fitted for each species and site condition using linear regression techniques. Model performance was assessed through adjusted coefficient of determination (R²adj), root mean square error (RMSE), mean absolute error (MAE), Akaike Information Criterion (AIC), and diagnostic analyses including residual plots and relative error histograms. The results revealed that model performance varied by ecological zone, with the dry forest models showing the highest precision and lowest residual dispersion. Models M3 (Spurr), M4 (Schumacher & Hall), and M9 (Meyer) consistently achieved strong predictive accuracy. Prediction errors were higher in small-volume classes, suggesting the need for caution when applying models to young or small-diameter trees. The developed models are statistically reliable, requiring minimal input variables for the accurate estimation of the timber volume of the two species across various Amazonian environments. It is recommended to adopt zone-specific models for operational use and to continue expanding regional forest databases to improve future model calibration and validation.
publishDate 2025
dc.date.accessioned.none.fl_str_mv 2025-12-03T14:56:01Z
dc.date.available.none.fl_str_mv 2025-12-03T14:56:01Z
dc.date.issued.fl_str_mv 2025-11-08
dc.type.none.fl_str_mv info:eu-repo/semantics/article
format article
dc.identifier.citation.none.fl_str_mv Koch Duarte, C., del Aguila Piña, C. F., Fernández-Sandoval, A., Cárdenas-Rengifo, G. P., Santillán Gonzales, M. D., Salazar Hinostroza, E. J., Castedo-Dorado, F., Álvarez-Álvarez, P., Goycochea Casas, G., & Baselly-Villanueva, J. R. (2025). Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon. Trees, Forests and People, 22, 101085. https://doi.org/10.1016/j.tfp.2025.101085
dc.identifier.issn.none.fl_str_mv 2666-7193
dc.identifier.uri.none.fl_str_mv http://hdl.handle.net/20.500.12955/2950
dc.identifier.doi.none.fl_str_mv https://doi.org/10.1016/j.tfp.2025.101085
identifier_str_mv Koch Duarte, C., del Aguila Piña, C. F., Fernández-Sandoval, A., Cárdenas-Rengifo, G. P., Santillán Gonzales, M. D., Salazar Hinostroza, E. J., Castedo-Dorado, F., Álvarez-Álvarez, P., Goycochea Casas, G., & Baselly-Villanueva, J. R. (2025). Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon. Trees, Forests and People, 22, 101085. https://doi.org/10.1016/j.tfp.2025.101085
2666-7193
url http://hdl.handle.net/20.500.12955/2950
https://doi.org/10.1016/j.tfp.2025.101085
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language eng
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eu_rights_str_mv openAccess
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dc.publisher.none.fl_str_mv Elsevier B.V.
dc.publisher.country.none.fl_str_mv NL
publisher.none.fl_str_mv Elsevier B.V.
dc.source.none.fl_str_mv Instituto Nacional de Innovación Agraria
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spelling Koch Duarte, Christiandel Aguila Piña, Carlos FranciscoFernández Sandoval, AndrésCárdenas Rengifo, Gloria PatriciaSantillán Gonzáles, Manuel DanteSalazar Hinostroza, Evelin JudithCastedo Dorado, FernandoÁlvarez Álvarez, PedroGoycochea Casas, GianmarcoBaselly Villanueva, Juan Rodrigo2025-12-03T14:56:01Z2025-12-03T14:56:01Z2025-11-08Koch Duarte, C., del Aguila Piña, C. F., Fernández-Sandoval, A., Cárdenas-Rengifo, G. P., Santillán Gonzales, M. D., Salazar Hinostroza, E. J., Castedo-Dorado, F., Álvarez-Álvarez, P., Goycochea Casas, G., & Baselly-Villanueva, J. R. (2025). Ecological zone-based volume estimation of Calycophyllum spruceanum and Cedrelinga cateniformis in the Northeastern Peruvian Amazon. Trees, Forests and People, 22, 101085. https://doi.org/10.1016/j.tfp.2025.1010852666-7193http://hdl.handle.net/20.500.12955/2950https://doi.org/10.1016/j.tfp.2025.101085Forest volume modeling plays a fundamental role in forest inventory, biomass estimation, and the sustainable management of timber resources. In the Amazon region of Peru, native species such as Calycophyllum spruceanum and Cedrelinga cateniformis hold high ecological and commercial value, yet remain understudied in terms of volumetric estimation. This study aimed to develop and evaluate volumetric models for both species across three ecological zones—humid forest, very humid forest, and dry forest—representing the environmental diversity of the northeastern Peruvian Amazon. A total of 18 volumetric models were fitted for each species and site condition using linear regression techniques. Model performance was assessed through adjusted coefficient of determination (R²adj), root mean square error (RMSE), mean absolute error (MAE), Akaike Information Criterion (AIC), and diagnostic analyses including residual plots and relative error histograms. The results revealed that model performance varied by ecological zone, with the dry forest models showing the highest precision and lowest residual dispersion. Models M3 (Spurr), M4 (Schumacher & Hall), and M9 (Meyer) consistently achieved strong predictive accuracy. Prediction errors were higher in small-volume classes, suggesting the need for caution when applying models to young or small-diameter trees. The developed models are statistically reliable, requiring minimal input variables for the accurate estimation of the timber volume of the two species across various Amazonian environments. 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