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A hybrid approach to fuzzy land cover classification

Academic Article
Publication Date:
1996
abstract:
We propose here a fuzzy hybrid methodology for the classification, conceived as a cognitive process, of remote sensing images. The salient aspect of the approach is the combined use of different techniques: the linear mixture model, a supervised fuzzy statistical classifier and a fuzzy labeling technique, An application for the identification of rice crops in a Landsat Thematic Mapper image has been developed with the aim of experimentally evaluating the performance of the overall strategy in a real domain where fuzzy membership to classes are essential in class discrimination, The results have then been compared with those obtained by means of the Maximum Likelihood classifier.
Iris type:
01.01 Articolo in rivista
Keywords:
remote sensing image classification; fuzzy supervised classification; linear mixture model; fuzzy labeling
List of contributors:
Brivio, PIETRO ALESSANDRO; Rampini, Anna
Authors of the University:
BRIVIO PIETRO ALESSANDRO
Handle:
https://iris.cnr.it/handle/20.500.14243/215062
Published in:
PATTERN RECOGNITION LETTERS
Journal
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