Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data
Descripción del Articulo
Dry forests are home to large amounts of biodiversity, are providers of ecosystem services, and control the advance of deserts. However, globally, these ecosystems are being threatened by various factors such as climate change, deforestation, and land use and land cover (LULC). The objective of this...
Autores: | , , , , , , , , |
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Formato: | objeto de conferencia |
Fecha de Publicación: | 2022 |
Institución: | Instituto Nacional de Innovación Agraria |
Repositorio: | INIA-Institucional |
Lenguaje: | español |
OAI Identifier: | oai:null:20.500.12955/2076 |
Enlace del recurso: | https://hdl.handle.net/20.500.12955/2076 https://doi.org/10.3390/IECF2022-13095 |
Nivel de acceso: | acceso abierto |
Materia: | Forest remote sensing Random Forest (RF) Temporal series Biodiversity https://purl.org/pe-repo/ocde/ford#4.04.00 forest biodiversity biodiversity |
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dc.title.en.fl_str_mv |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data |
title |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data |
spellingShingle |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data Barboza Castillo, Elgar Forest remote sensing Random Forest (RF) Temporal series Biodiversity https://purl.org/pe-repo/ocde/ford#4.04.00 forest biodiversity biodiversity |
title_short |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data |
title_full |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data |
title_fullStr |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data |
title_full_unstemmed |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data |
title_sort |
Cover and land use changes in the dry forest of Tumbes (Peru) using sentinel-2 and google earth engine data |
author |
Barboza Castillo, Elgar |
author_facet |
Barboza Castillo, Elgar Salazar Coronel, Wilian Gálvez Paucar, David Valqui Valqui, Lamberto Saravia Navarro, David Gonzales, Jhony Aldana, Wiliam Vásquez Pérez, Héctor Vladimir Arbizu Berrocal, Carlos Irvin |
author_role |
author |
author2 |
Salazar Coronel, Wilian Gálvez Paucar, David Valqui Valqui, Lamberto Saravia Navarro, David Gonzales, Jhony Aldana, Wiliam Vásquez Pérez, Héctor Vladimir Arbizu Berrocal, Carlos Irvin |
author2_role |
author author author author author author author author |
dc.contributor.author.fl_str_mv |
Barboza Castillo, Elgar Salazar Coronel, Wilian Gálvez Paucar, David Valqui Valqui, Lamberto Saravia Navarro, David Gonzales, Jhony Aldana, Wiliam Vásquez Pérez, Héctor Vladimir Arbizu Berrocal, Carlos Irvin |
dc.subject.en.fl_str_mv |
Forest remote sensing Random Forest (RF) Temporal series |
topic |
Forest remote sensing Random Forest (RF) Temporal series Biodiversity https://purl.org/pe-repo/ocde/ford#4.04.00 forest biodiversity biodiversity |
dc.subject.dc.fl_str_mv |
Biodiversity |
dc.subject.ocde.none.fl_str_mv |
https://purl.org/pe-repo/ocde/ford#4.04.00 |
dc.subject.agrovoc.en.fl_str_mv |
forest biodiversity biodiversity |
description |
Dry forests are home to large amounts of biodiversity, are providers of ecosystem services, and control the advance of deserts. However, globally, these ecosystems are being threatened by various factors such as climate change, deforestation, and land use and land cover (LULC). The objective of this study was to identify the dynamics of LULC changes and the factors associated with the transformations of the dry forest in the Tumbes region (Peru) using Google Earth Engine (GEE). For this, the annual collection of Sentinel 2 (S2) satellite images of 2017 and 2021 was analyzed. Six types of LULC were identified, namely urban area (AU), agricultural land (AL), land without or with little vegetation (LW), water body (WB), dense dry forest (DDF), and open dry forest (ODF). Subsequently, we applied the Random Forest (RF) method for the classification. LULC maps reported accuracies greater than 89%. In turn, the rates of DDF and ODF between 2017 and 2021 remained unchanged at around 82%. Likewise, the largest net change occurred in the areas of WB, AL, and UA, at 51, 22, and 21%, respectively. Meanwhile, forest cover reported a loss of 4% (165.09 km2 ) of the total area in the analyzed period (2017–2021). The application of GEE allowed for an evaluation of the changes in forest cover and land use in the dry forest, and from this, it provided important information for the sustainable management of this ecosystem |
publishDate |
2022 |
dc.date.accessioned.none.fl_str_mv |
2023-02-17T16:01:52Z |
dc.date.available.none.fl_str_mv |
2023-02-17T16:01:52Z |
dc.date.issued.fl_str_mv |
2022-10-21 |
dc.type.none.fl_str_mv |
info:eu-repo/semantics/conferenceObject |
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conferenceObject |
dc.identifier.citation.es_PE.fl_str_mv |
Barboza, E.; Salazar, W.; Gálvez-Paucar, D.; Valqui-Valqui, L.; Saravia, D.; Gonzales, J.; Aldana, W.; Vásquez, H.V.; Arbizuri, C.I (2022). Cover and land use changes in the dry forest of tumbes (Peru) using sentinel-2 and google earth engine data. Environmental.Sciences.Proceeding. 22,2. doi: 10.3390/IECF2022-13095. |
dc.identifier.issn.none.fl_str_mv |
2673-4931 |
dc.identifier.uri.none.fl_str_mv |
https://hdl.handle.net/20.500.12955/2076 |
dc.identifier.doi.none.fl_str_mv |
https://doi.org/10.3390/IECF2022-13095 |
identifier_str_mv |
Barboza, E.; Salazar, W.; Gálvez-Paucar, D.; Valqui-Valqui, L.; Saravia, D.; Gonzales, J.; Aldana, W.; Vásquez, H.V.; Arbizuri, C.I (2022). Cover and land use changes in the dry forest of tumbes (Peru) using sentinel-2 and google earth engine data. Environmental.Sciences.Proceeding. 22,2. doi: 10.3390/IECF2022-13095. 2673-4931 |
url |
https://hdl.handle.net/20.500.12955/2076 https://doi.org/10.3390/IECF2022-13095 |
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Environmental Sciences Proceedings |
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openAccess |
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Barboza Castillo, ElgarSalazar Coronel, WilianGálvez Paucar, DavidValqui Valqui, LambertoSaravia Navarro, DavidGonzales, JhonyAldana, WiliamVásquez Pérez, Héctor VladimirArbizu Berrocal, Carlos Irvin2023-02-17T16:01:52Z2023-02-17T16:01:52Z2022-10-21Barboza, E.; Salazar, W.; Gálvez-Paucar, D.; Valqui-Valqui, L.; Saravia, D.; Gonzales, J.; Aldana, W.; Vásquez, H.V.; Arbizuri, C.I (2022). Cover and land use changes in the dry forest of tumbes (Peru) using sentinel-2 and google earth engine data. Environmental.Sciences.Proceeding. 22,2. doi: 10.3390/IECF2022-13095.2673-4931https://hdl.handle.net/20.500.12955/2076https://doi.org/10.3390/IECF2022-13095Dry forests are home to large amounts of biodiversity, are providers of ecosystem services, and control the advance of deserts. However, globally, these ecosystems are being threatened by various factors such as climate change, deforestation, and land use and land cover (LULC). The objective of this study was to identify the dynamics of LULC changes and the factors associated with the transformations of the dry forest in the Tumbes region (Peru) using Google Earth Engine (GEE). For this, the annual collection of Sentinel 2 (S2) satellite images of 2017 and 2021 was analyzed. Six types of LULC were identified, namely urban area (AU), agricultural land (AL), land without or with little vegetation (LW), water body (WB), dense dry forest (DDF), and open dry forest (ODF). Subsequently, we applied the Random Forest (RF) method for the classification. LULC maps reported accuracies greater than 89%. In turn, the rates of DDF and ODF between 2017 and 2021 remained unchanged at around 82%. Likewise, the largest net change occurred in the areas of WB, AL, and UA, at 51, 22, and 21%, respectively. Meanwhile, forest cover reported a loss of 4% (165.09 km2 ) of the total area in the analyzed period (2017–2021). 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La información contenida en este registro es de entera responsabilidad de la institución que gestiona el repositorio institucional donde esta contenido este documento o set de datos. El CONCYTEC no se hace responsable por los contenidos (publicaciones y/o datos) accesibles a través del Repositorio Nacional Digital de Ciencia, Tecnología e Innovación de Acceso Abierto (ALICIA).
La información contenida en este registro es de entera responsabilidad de la institución que gestiona el repositorio institucional donde esta contenido este documento o set de datos. El CONCYTEC no se hace responsable por los contenidos (publicaciones y/o datos) accesibles a través del Repositorio Nacional Digital de Ciencia, Tecnología e Innovación de Acceso Abierto (ALICIA).