Detection of Coastal Erosion and Progradation in the Colombian ‘Atrato River’ Delta by Using Sentinel-1 Synthetic Aperture Radar Data

Author:

Vásquez-Salazar Rubén Darío1ORCID,Cardona-Mesa Ahmed Alejandro2ORCID,Valdés-Quintero Juan1ORCID,Olmos-Severiche César1ORCID,Gómez Luis3ORCID,Travieso-González Carlos M.4ORCID,Díaz-Paz Jean Pierre1ORCID,Espinosa-Ovideo Jorge Ernesto1ORCID,Diez-Rendón Lorena1ORCID,Garavito-González Andrés F.1ORCID,Vásquez-Cano Esteban1ORCID

Affiliation:

1. Faculty of Engineering, Politécnico Colombiano Jaime Isaza Cadavid, 48th Av. 7-151, Medellín 050021, Colombia

2. Faculty of Engineering, Institución Universitaria Digital de Antioquia, 55th Av. 42-90, Medellín 050028, Colombia

3. Electronic Engineering and Automatic Department, IUCES, Universidad de Las Palmas de Gran Canaria, 35019 Las Palmas de Gran Canaria, Spain

4. Signals and Communications Department, IDeTIC, Universidad de Las Palmas de Gran Canaria, 35017 Las Palmas de Gran Canaria, Spain

Abstract

This paper presents a methodology to detect the coastal erosion and progradation effects in the ‘Atrato River’ delta, located in the Gulf of Urabá in Colombia, using SAR (Synthetic Aperture Radar) images. Erosion is the physical–mechanical loss of the soil that affects its functions and ecosystem services while producing a reduction in its productive capacity. Progradation is the deposition of layers in the basinward direction while moving coastward. Other studies have investigated these two phenomena using optical images, encountering difficulties due to the persistent presence of clouds in this region. In order to avoid the cloud effects, in this study, we used 16 Sentinel 1 SAR images with two different polarizations between 2016 and 2023. First, each image was rescaled from 0 to 255, then the image was despeckled by a deep learning (DL) model. Afterwards, a single RGB image was composed with the filtered polarizations. Next, a classifier with 99% accuracy based on Otsu’s method was used to determine whether each pixel was water or not. Then, the classified image was registered to a reference one using Oriented FAST and Rotated BRIEF (ORB) descriptor. Finally, a multitemporal analysis was performed by comparing every image to the previous one to identify the studied phenomena, calculating areas. Also, all images were integrated to obtain a heatmap that showed the overall changes across eight years (2016–2023) in a single image. The multitemporal analysis performed found that the newly created mouth is the most active area for these processes, coinciding with other studies. In addition, a comparison of these findings with the Oceanic Niño Index (ONI) showed a relative delayed coupling to the erosion process and a coupling of progradation with dry and wet seasons.

Funder

Politécnico Colombiano Jaime Isaza Cadavid

Publisher

MDPI AG

Reference35 articles.

1. IDEAM (2023, November 28). Atlas Climatológico de Colombia, Available online: http://www.ideam.gov.co/AtlasWeb/index.html.

2. Instituto de Hidrología Meteorología y Estudios Ambientales IDEAM (2023, November 28). La Variabilidad Climática y el Cambio Climático en Colombia. Available online: https://www.andi.com.co/Uploads/variabilidad.pdf.

3. Velez, J., Betancurth, L., and Cañón-Barriga, J. (2020). Erosion and Progradation in the Atrato River Delta: A Spatiotemporal Analysis with Google Earth Engine, Revista Facultad de Ingeniería Universidad de Antioquia.

4. Court, C.C. (2023, November 28). Expediente T-5.016.242, Available online: https://www.corteconstitucional.gov.co/relatoria/2016/t-622-16.htm.

5. Instituto de Hidrología Meteorología y Estudios Ambientales IDEAM (2024, January 04). Erosión, Available online: http://www.ideam.gov.co/web/siac/erosion.

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