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Various Approaches for Predicting Land Cover in Mountain Areas

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Various Approaches for Predicting Land Cover in Mountain Areas
Id. 25657016
Titulo Various Approaches for Predicting Land Cover in Mountain Areas
Autor(es) Villa, Nathalie
Paegelow, Martin
Olmedo, Maria T. Camacho
Cornez, Laurence
Ferraty, Frédéric
Ferré, Louis
Sarda, Pascal
Localización http://arxiv.org/abs/0705.0418
Communication in Statistics- Simulation and Computation / Communications in Statistics Simulation and Computation 36, 1 (01/2007) 73-86
doi:10.1080/03610910601096379
Versión 1.0
Estado Final
Descripción Using former maps, geographers intend to study the evolution of the land cover in order to have a prospective approach on the future landscape; predictions of the future land cover, by the use of older maps and environmental variables, are usually done through the GIS (Geographic Information System). We propose here to confront this classical geographical approach with statistical approaches: a linear parametric model (polychotomous regression modeling) and a nonparametric one (multilayer perceptron). These methodologies have been tested on two real areas on which the land cover is known at various dates; this allows us to emphasize the benefit of these two statistical approaches compared to GIS and to discuss the way GIS could be improved by the use of statistical models.
Palabras clave Statistics - Applications
Tipo de recurso Texto Narrativo
Tipo de Interactividad Expositivo
Nivel de Interactividad muy bajo
Audiencia Estudiante
Profesor
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Estructura Atomic
Coste no
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Requerimientos técnicos Browser: Any
Fecha de contribución 26-jun-2007
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