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Mapping Land Cover Types in Amazon Basin Using 1km JERS-1 MosaicIn this paper, the 100 meter JERS-1 Amazon mosaic image was used in a new classifier to generate a I km resolution land cover map. The inputs to the classifier were 1 km resolution mean backscatter and seven first order texture measures derived from the 100 m data by using a 10 x 10 independent sampling window. The classification approach included two interdependent stages: 1) a supervised maximum a posteriori Bayesian approach to classify the mean backscatter image into 5 general land cover categories of forest, savannah, inundated, white sand, and anthropogenic vegetation classes, and 2) a texture measure decision rule approach to further discriminate subcategory classes based on taxonomic information and biomass levels. Fourteen classes were successfully separated at 1 km scale. The results were verified by examining the accuracy of the approach by comparison with the IBGE and the AVHRR 1 km resolution land cover maps.
Document ID
20000055582
Acquisition Source
Headquarters
Document Type
Other
Authors
Saatchi, Sassan S.
(Jet Propulsion Lab., California Inst. of Tech. Pasadena, CA United States)
Nelson, Bruce
(Instituto Nacional de Pesquisas da Amazonia Manaus, Brazil)
Podest, Erika
(Jet Propulsion Lab., California Inst. of Tech. Pasadena, CA United States)
Holt, John
(Jet Propulsion Lab., California Inst. of Tech. Pasadena, CA United States)
Date Acquired
September 7, 2013
Publication Date
January 1, 2000
Subject Category
Earth Resources And Remote Sensing
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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