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  4. Detection of Floods In Sar Images with Non-Linear Kernel Clustering and Topographic Prior
 
conference paper

Detection of Floods In Sar Images with Non-Linear Kernel Clustering and Topographic Prior

De Morsier, Frank  
•
Rasamimalala, Mampionona
•
Tuia, Devis  
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2013
21st European Signal Processing Conference (EUSIPCO 2013)
European Signal Processing Conference (EUSIPCO)

After a major flood catastrophe, a precious information is the delineation of the affected areas. Remote sensing imagery, especially synthetic aperture radar, allows to obtain a global and complete view of the situation. However, the detection of the flooded areas remains a challenge, especially since the reaction time for ground teams is very short. This makes the application of automatic detection routines appealing. Such methods must avoid complex parametrization, heavy computational time and long intervention by the operator. We propose an automatic three steps strategy, starting by rebalancing the different types of pixels (non-water, permanent water and flooded) using digital elevation model information, then isolating water pixels and finally separating flooded from permanent water pixels using non-linear clustering in dedicated feature spaces. Experiments on two sets of ASAR images show the effectiveness of the method competing with supervised standard log-ratio thresholding.

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Type
conference paper
Author(s)
De Morsier, Frank  
Rasamimalala, Mampionona
Tuia, Devis  
Borgeaud, Maurice
Rakotoniaina, Solofoarisoa  
Rakotondraompiana, Solofo
Thiran, Jean-Philippe  
Date Issued

2013

Published in
21st European Signal Processing Conference (EUSIPCO 2013)
Subjects

log-ratio

•

feature space

•

LTS5

•

flood detection

•

synthetic aperture radar

•

kernel methods

•

change detection

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LTS5  
LASIG  
Event nameEvent placeEvent date
European Signal Processing Conference (EUSIPCO)

Marrakech, Morocco

September 9-13, 2013

Available on Infoscience
March 27, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/90589
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