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Multi-band supervised classification for polarimetric SAR

Domaine:

geospatial

Type de record:

paper
Créateur:
DupWasAlaDub
Éditeur:
DEMDTITot
Éditeur:
CCSDIEEE
Hôte:avatar
International audience This work addresses the potential of multi-band polarimetric SAR imaging for terrains and vegetation classification. A classic supervised Wishart classifier is adapted to polarimetric multi-band datasets, and is applied on the X-, Land UHF-band acquisitions done during the NAOMI campaign (ONERA-Total) in Gabon (Africa) in 2015. The contributions of the different frequencies are shown and discussed. It is shown that the use of the multi-band dataset improves significantly the classification result.

Visit

hal.science

Tasks

computer visionimage classification

Languages

Sar

Tags

MULTI BANDCLASSIFICATIONSAR[SPI]Engineering Sciences [physics][PHYS]Physics [physics]

Licenses

info:eu-repo/semantics/OpenAccess