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Various Approaches for Predicting Land Cover in Mountain Areas

机译:山区土地覆盖率的多种预测方法

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摘要

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.
机译:地理学家打算使用以前的地图来研究土地覆盖的演变,以便对未来的景观有一个前瞻性的认识。通过使用旧地图和环境变量来预测未来土地覆盖率,通常是通过GIS(地理信息系统)进行的。我们在这里建议用统计方法来面对这种经典的地理方法:线性参数模型(多项回归建模)和非参数模型(多层感知器)。这些方法论已在两个实际地区进行了测试,这些地区在不同的日期已知土地覆盖。这使我们可以强调这两种统计方法与GIS相比的好处,并讨论了可以通过使用统计模型来改进GIS的方式。

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