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Computer-aided classification for remote sensing in agriculture and forestry in Northern ItalyA set of results concerning the processing and analysis of data from LANDSAT satellite and airborne scanner is presented. The possibility of performing inventories of irrigated crops-rice, planted groves-poplars, and natural forests in the mountians-beeches and chestnuts, is investigated in the Po valley and in an alphine site of Northern Italy. Accuracies around 95% or better, 70% and 60% respectively are achieved by using LANDSAT data and supervised classification. Discrimination of rice varieties is proved with 8 channels data from airborne scanner, processed after correction of the atmospheric effect due to the scanning angle, with and without linear feature selection of the data. The accuracies achieved range from 65% to more than 80%. The best results are obtained with the maximum likelihood classifier for normal parameters but rather close results are derived by using a modified version of the weighted euclidian distance between points, with consequent decrease in computing time around a factor 3.
Document ID
19780006630
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Dejace, J.
(Joint Research Centre of the European Communities Ispra, Italy)
Megier, J.
(Joint Research Centre of the European Communities Ispra, Italy)
Mehl, W.
(Joint Research Centre of the European Communities Ispra, Italy)
Date Acquired
August 9, 2013
Publication Date
January 1, 1977
Publication Information
Publication: ERIM Proc. of the 11th Intern. Symp. on Remote Sensing of Environment, Vol. 2
Subject Category
Earth Resources And Remote Sensing
Accession Number
78N14573
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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