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UAVS FOR FINE-SCALE OPEN-SOURCE LANDFILL MAPPING

Authors :
Eric Hallot
Benjamin Beaumont
Stefanos Georganos
Coraline Wyard
Taïs Grippa
Source :
IGARSS
Publication Year :
2021

Abstract

Landfill managers are subject to obligations which include the regular monitoring of the topographical and land cover (LC) evolution of the site. This research aims at developing a cost-effective non-intrusive methodology for mapping landfill LC features. To this end, a state-of-the-art OBIA open-source workflow based on an integration of GRASS GIS and Python programming environment was adapted and applied to 3-cm optical UAV image acquired over the landfill site of Hallembaye (Belgium). The results of this 8-class supervised classification are promising with an overall accuracy of 80.5%. This study shows that existing open-source processing chain can be adapted to UAV imagery. In addition, the added value of feature selection and of textural information provided by very high-resolution optical data is also highlighted. Finally, this study illustrates the potential of machine learning for the monitoring of landfill sites.

Details

Language :
French
Database :
OpenAIRE
Journal :
IGARSS
Accession number :
edsair.doi.dedup.....b0976de477ccfb0bfa9829ba40ef2e6c