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Exploiting spectral and spatial information in hyperspectral urban data with high resolution

Academic Article
Publication Date:
2004
abstract:
Very high resolution hyperspectral data should be very useful to provide detailed maps of urban land cover. In order to provide such maps, both accurate and precise classification tools need, however, to be developed. In this letter, new methods for classification of hyperspectral remote sensing data are investigated, with the primary focus on multiple classifications and spatial analysis to improve mapping accuracy in urban areas. In particular, we compare spatial reclassification and mathematical morphology approaches. We show results for classification of DAIS data over the town of Pavia, in northern Italy. Classification maps of two test areas are given, and the overall and individual class accuracies are analyzed with respect to the parameters of the proposed classification procedures.
Iris type:
1.1 Articolo in rivista
Keywords:
REMOTE SENSING; HYPERSPECTRAL; LAND COVER
List of contributors:
Dell'Acqua, Fabio; Gamba, PAOLO ETTORE; A., Ferrari; J. A., Palmason; J. A., Benediktsson; K., Arnasson
Authors of the University:
DELL'ACQUA FABIO
GAMBA PAOLO ETTORE
Handle:
https://iris.unipv.it/handle/11571/132873
Published in:
IEEE GEOSCIENCE AND REMOTE SENSING LETTERS
Journal
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URL

http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=1347132
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