DocumentCode
3225220
Title
Classification and representation of networks from satellite images
Author
Prinet, Véronique ; Ma, Siwei ; Monga, Olivier
Author_Institution
Inst. of Autom., Acad. Sinica, Beijing, China
fYear
1999
fDate
1999
Firstpage
816
Lastpage
821
Abstract
Classification is one of the major issue in image analysis and processing for remote sensing applications. Though classification based on texture analysis-landuse, forests, cities, etc.-is the purpose of numerous works, classification of curvilinear networks is hardly processed. However, it is of major interest, in particular for image indexing and image matching, because it is a main feature whose global shape does not change with sensors nor point of view. This paper introduces a new approach aiming at: (i) building the networks from extracted curvilinear-like features; and (ii) classifying them into roads, highways, rivers. The main idea is to use a decision tree taking into account a priori knowledge. Classification and graph building are achieved simultaneously using a hypothesis generation/propagation scheme. The resulting network is encoded as a graph with a multi-scale description. Illustrations given on satellite optical SPOT images show encouraging results
Keywords
cartography; feature extraction; graph theory; heuristic programming; image classification; image matching; image representation; image resolution; indexing; remote sensing; a priori knowledge; curvilinear networks; decision tree; feature extraction; graph building; highways; hypothesis generation/propagation; image analysis; image classification; image indexing; image matching; image representation; multi-scale description; network encoding; optical SPOT images; remote sensing; rivers; roads; satellite images; Cities and towns; Feature extraction; Image matching; Image sensors; Image texture analysis; Indexing; Remote sensing; Roads; Satellites; Shape;
fLanguage
English
Publisher
ieee
Conference_Titel
Image Analysis and Processing, 1999. Proceedings. International Conference on
Conference_Location
Venice
Print_ISBN
0-7695-0040-4
Type
conf
DOI
10.1109/ICIAP.1999.797696
Filename
797696
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