2022
DOI: 10.1117/1.jrs.16.044501
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Evaluation of machine learning approaches for surface water monitoring using Sentinel-1 data

Abstract: .The monitoring of mosquito breeding habitats requires the production of surface water maps on a regular basis and at a high-resolution using mapping algorithms. To map surface water, several machine learning (ML) algorithms were evaluated, taking advantage of frequently available synthetic aperture radar imagery from the Sentinel-1 mission with a 10-m spatial resolution and a large dataset of field observations of the water state (inundated/dry) in rice paddies and wetlands. One-class support vector machine, … Show more

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