DocumentCode :
249602
Title :
A unified framework for land-cover database update and enrichment using satellite imagery
Author :
Gressin, Adrien ; Vincent, Nicole ; Mallet, Clement ; Paparoditis, Nicolas
Author_Institution :
IGN/MATIS Lab., Univ. Paris Est, Paris, France
fYear :
2014
fDate :
27-30 Oct. 2014
Firstpage :
5057
Lastpage :
5061
Abstract :
2D land-cover databases (LC-DB) have been established at various levels (global, national or regional scales), various spatial samplings and for various themes of interest (forest, agriculture, urban areas, etc.). However, they exhibit many flaws (limited geometric accuracy, low coverage) and require to be updated with automatic algorithms. Very High Resolution satellite imagery offers a suitable solution for setting up such on-purpose algorithms, and a large body of literature has tackled this topic. This paper proposes a framework that is able to deal with both LC-DB update of any kind and their enrichment in case of incomplete DB. The supervised classification-based solution integrates an efficient learning strategy that allows to capture the heterogeneity of the appearances of the various themes of interest. The proposed framework is favorably compared with two state-of-the-art methods, on a reconstructed dataset, composed of sub-metric satellite image patches.
Keywords :
feature extraction; geophysical image processing; image classification; image reconstruction; land cover; remote sensing; 2D land-cover databases; LC-DB update; land-cover database update; on-purpose algorithms; reconstructed dataset; satellite imagery; state-of-the-art methods; sub-metric satellite image patches; supervised classification-based solution; unified framework; very high resolution satellite imagery; Accuracy; Databases; Image resolution; Radio frequency; Remote sensing; Satellites; Support vector machines; Remote sensing; change detection; land cover; satellite imagery;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Image Processing (ICIP), 2014 IEEE International Conference on
Conference_Location :
Paris
Type :
conf
DOI :
10.1109/ICIP.2014.7026024
Filename :
7026024
Link To Document :
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