Spatiotemporal

Spatiotemporal dynamics in the land cover and land use in a river basin in southern Brazil: analysis based on remote sensing and big data

Authors

DOI:

https://doi.org/10.21680/2447-3359.2024v10n1ID34886

Abstract

The exploitation of natural resources is of concern because economic growth results in negative impacts on environmental balance. This study analyzed the spatio-temporal changes in land cover and land use (LULC) in the Araranguá River Watershed (ARW), southern of Santa Catarina state, south Brazil, in the period of 2016-2023. Images from the Sentinel-2A satellite were used, the RGB, NIR and SWIR 1 bands were selected and the EVI2, MNDWI, NDBI indices were applied, which resulted in the selection of eight LULC classes. The orbital images were classified using programming routines in Google Earth Engine (GEE) and validation was performed by obtaining data generated by the platform. The overall accuracy was 93% for both years assessed. The Native Forest class was the most representative and increased by 1.62% in the last seven years. The Built Area class grew the most, and Pasture/Herbaceous Vegetation class decreased by 5.6%. The results revealed slight changes in the landscape, with areas with native forests being maintained and urban expansion occurring. These data can help public policy makers and decision makers to manage the basin territory with a bias towards the conservation and preservation of natural resources.

Keywords: environmental degradation; machine learning; decision trees.

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Author Biographies

Sylvia Christina de Lima, Institute of Energy and Environment at the University of São Paulo, Postgraduate Program in Environmental Science - São Paulo - SP, Brazil.

Special student at the Institute of Energy and Environment at the University of São Paulo, Postgraduate Program in Environmental Science - São Paulo - SP, Brazil.

Amanda Letícia de Meneses Mendes, Postgraduate Program in Environmental Sciences at Universidade Estadual Paulista Júlio de Mesquita Filho, Sorocaba - SP

Master's student of the Postgraduate Program in Environmental Sciences at Universidade Estadual Paulista Júlio de Mesquita Filho, Sorocaba - SP

Marina Barros Santander, Faculty of Philosophy, Letters and Human Sciences of the University of São Paulo, Department of Geography - São Paulo - SP, Brazil.

Bachelor's and Degree student in Geography - Faculty of Philosophy, Letters and Human Sciences of the University of São Paulo, Department of Geography - São Paulo - SP, Brazil.

Anderson Targino da Silva Ferreira, São Paulo State Technological College of Jahu, Technology in Environment and Water Resources, Jaú 17212-8 599, Brazil

- Professor at São Paulo State Technological College of Jahu, Technology in Environment and Water Resources, Jaú 17212-8 599, Brazil;

- Professor at Department of Geoenvironmental Analyses, University of Guarulhos, Guarulhos 07023-070, Brazil;

- Collaborating Researcher at Oceanographic Institute of the University of São Paulo, São Paulo 05508-120, Brazil;

- Post-doc Researcher at Center for Lasers and Applications, Institute of Energy and Nuclear Research, São Paulo, São Paulo 05508-000, Brazi

Jairo José Zocche, Postgraduate Program in Environmental Sciences (PPGCA), Criciúma (SC), Brazil.

- Full Professor at the University of the Far South of Santa Catarina (UNESC)

- Permanent Professor of the Postgraduate Program in Environmental Sciences (PPGCA), Criciúma (SC), Brazil.

Carlos Henrique Grohmann, University of São Paulo, Institute of Energy and Environment

Prof. Associate 2 at the University of São Paulo, Institute of Energy and Environment, São Paulo, SP, Brazil

José Alberto Quintanilha, University of São Paulo, Institute of Energy and Environment

Senior Associate Professor at the University of São Paulo/Institute of Energy and Environment

Published

08-03-2024

How to Cite

SCUSSEL, C. .; DE LIMA, S. C. .; DE MENESES MENDES, A. L. .; BARROS SANTANDER, M. .; TARGINO DA SILVA FERREIRA, A. .; ZOCCHE, J. J. .; GROHMANN, C. H. .; QUINTANILHA, J. A. . Spatiotemporal : Spatiotemporal dynamics in the land cover and land use in a river basin in southern Brazil: analysis based on remote sensing and big data. Notheast Geoscience Journal, [S. l.], v. 10, n. 1, p. 124–137, 2024. DOI: 10.21680/2447-3359.2024v10n1ID34886. Disponível em: https://periodicos.ufrn.br/revistadoregne/article/view/34886. Acesso em: 24 aug. 2024.

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