Por favor, use este identificador para citar o enlazar este ítem: http://www.alice.cnptia.embrapa.br/alice/handle/doc/17038
Título: Detecting Amazonian deforestation using multitemporal thematic mapper imageries and spectral mixture analysis.
Autor: LU, D.
BATISTELLA, M.
MORAN, E.
Afiliación: 1: Indiana University-CIPEC; 2: Embrapa Monitoramento por Satélite; 3: Indiana University-ACT.
Año: 2003
Referencia: In: ASPRS ANNUAL CONFERENCE, 2003, Anchorage, Alaska-EUA. Proceedings... [S.l.]: ASPRS, 2003.
Páginas: 12 p.
Descripción: Linear spectral mixture analysis (LSMA) and multitemporal Thematic Mapper (TM) data were used to detect deforestation in Altamira and Machadinho, Brazilian Amazon. Standardized principal component analysis was used to transform TM data into uncorrelated principal components (PCs). Three endmembers were selected and an unconstrained least root-mean squared error solution was used to unmix the first four PCs into three fraction images. Mature forest classification was implemented using thresholds and deforestation detection using binary image overlay. This study indicates that LSMA is an effective method to identify mature forest and detect deforested areas with high accuracies.
Thesagro: Floresta
Satélite
NAL Thesaurus: Amazonia
Palabras clave: Mapeamento
Altamira
Machadinho d´Oeste
Rondônia
Amazonas
Brasil
Tipo de Material: Artigo em anais e proceedings
Acceso: openAccess
Aparece en las colecciones:Artigo em anais de congresso (CNPM)

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