DocumentCode
1893622
Title
Land cover discrimination at Brazilian Amazon using region based classifier and stochastic distance
Author
Silva, Wagner B. ; Pereira, Luciana O. ; Sant´Anna, Sidnei J S ; Freitas, Corina C. ; Guimarães, Ricardo J P S ; Frery, Alejandro C.
Author_Institution
Inst. Nac. de Pesquisas Espaciais - INPE, Sao Jose dos Campos, Brazil
fYear
2011
fDate
24-29 July 2011
Firstpage
2900
Lastpage
2903
Abstract
Given the different nature of optical and radar data, it is reasonable the idea that each type of data can contribute in complementary ways for different applications. This paper aims at analyzing the potential joint usage of optical and Synthetic Aperture Radar (SAR) data for land use and land cover classification in a region located in the Brazilian Amazon. To achieve this objective, we evaluated region-based classifications using separated and fused optical and SAR data. Data were images from the Landsat 5/TM sensor and amplitude multipolarized images from the ALOS/PALSAR sensor. The images were classified using a region-based classifier based on the Bhattacharyya distance between Gaussian distributions. The TM data alone is better for classify land cover classes with occurrence of trees or shrubs, while SAR data contribute to improve the classification results in low vegetated areas.
Keywords
Gaussian distribution; geophysical image processing; image classification; stochastic processes; synthetic aperture radar; terrain mapping; vegetation mapping; ALOS/PALSAR sensor; Bhattacharyya distance; Brazilian Amazon; Gaussian distributions; Landsat 5 sensor; SAR data; TM sensor; amplitude multipolarized images; land cover classes; land cover classification; land cover discrimination; land use; low vegetated areas; optical data; radar data; region-based classifications; region-based classifier; stochastic distances; synthetic aperture radar data; Adaptive optics; Biomedical optical imaging; Integrated optics; Laser radar; Optical imaging; Optical sensors; Remote sensing; Brazilian Amazon; Fusion; Region-based classification; SAR; Stochastic Distances;
fLanguage
English
Publisher
ieee
Conference_Titel
Geoscience and Remote Sensing Symposium (IGARSS), 2011 IEEE International
Conference_Location
Vancouver, BC
ISSN
2153-6996
Print_ISBN
978-1-4577-1003-2
Type
conf
DOI
10.1109/IGARSS.2011.6049821
Filename
6049821
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