Temporal Analysis of Mangrove Forest Extent in Restoration Initiatives: A Remote Sensing Approach Using Sentinel-2 Imagery

Author:

Farzanmanesh Raheleh1,Khoshelham Kourosh2ORCID,Volkova Liubov1ORCID,Thomas Sebastian34ORCID,Ravelonjatovo Jaona5,Weston Christopher J.1ORCID

Affiliation:

1. School of Agriculture, Food and Ecosystem Sciences, University of Melbourne, Melbourne 3010, Australia

2. Department of Infrastructure Engineering, University of Melbourne, Melbourne 3010, Australia

3. Sustainable Engineering Group, Curtin University, Perth 6102, Australia

4. Blue Praxis Pty Ltd., Melbourne 3044, Australia

5. Blue Ventures Conservation, Antananarivo 101, Madagascar

Abstract

The significance of mangroves and the associated risks they face have prompted government and the private sector to invest in projects aimed at conserving and restoring mangroves. Despite this interest, there is currently little information available on the effectiveness of these investments in mangrove conservation and restoration efforts. Therefore, this study aimed to use Sentinel-2 imagery with 10-m resolution through the Google Earth Engine to evaluate the effectiveness of these projects in mangrove areas in two regions: the Tahiry Honko project in Madagascar and the Abu Dhabi Blue Carbon Demonstration Project in the United Arab Emirates. The study compared the U-Net and SVM for mangrove classification. The U-Net model demonstrated superior performance, achieving an accuracy of 90%, with a Kappa coefficient value of 0.84. In contrast, the SVM had an overall accuracy of 86% and Kappa coefficient of 0.78. The analysis of changes in the mangrove area using U-Net model revealed a decline of 355 ha over four years in the Tahiry Honko project, while in the Abu Dhabi Project, the mangrove area increased by 5857 ha over 5 years. These findings can provide valuable information for policy-makers and management strategies.

Publisher

MDPI AG

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