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  4. First investigations on detection of stationary vehicles in airborne decimeter resolution SAR data by supervised learning
 
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2012
Conference Paper
Title

First investigations on detection of stationary vehicles in airborne decimeter resolution SAR data by supervised learning

Abstract
In this work we investigate the automatic detection of stationary vehicles in SAR images by supervised learning algorithms. This implies the description of the vehicles by a set of representative features. We combine several classes of features including subspace projection based on clustering mechanisms (NMF, PCA), statistical features (image moments), spectral features (gabor wavelets) as well as boundary (shape analysis) and region descriptors (HOG). We further use two different learning algorithms: Support Vector Machines (SVM) and Random Forests.
Author(s)
Maksymiuk, O.
Schmitt, M.
Brenner, A.R.
Stilla, U.
Mainwork
IGARSS 2012, IEEE International Geoscience and Remote Sensing Symposium  
Conference
International Geoscience and Remote Sensing Symposium (IGARSS) 2012  
DOI
10.1109/IGARSS.2012.6350642
Language
English
Fraunhofer-Institut für Hochfrequenzphysik und Radartechnik FHR  
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