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Vector Transition Classes Generation from Fuzzy Overlapping Classes

机译:模糊重叠类生成矢量过渡类

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We present in this paper a way to create transition classes and to represent them with vector structures. These classes are obtained using a supervised classification algorithm based on fuzzy decision trees. This method is useful to classify data which have a space evolution following a gradient such as forest, where transitions are spread over hundreds of meter, or other natural phenomenon. The vector representation is well adapted for integration in Geographical Information Systems because it is a more flexible structure than the raster representation. The method detailed takes into account local environmental conditions and leads to non regular gradient and fuzzy structures. It allows adding classes, called transition classes, when transition areas are too spread instead of fixing an arbitrary border between classes.
机译:我们在本文中介绍了一种创建过渡类并用向量结构表示它们的方法。这些类别是使用基于模糊决策树的监督分类算法获得的。此方法可用于对具有遵循梯度的空间演化的数据进行分类,例如森林,其中过渡分布在数百米或其他自然现象上。矢量表示非常适合集成到地理信息系统中,因为它比栅格表示具有更灵活的结构。详细的方法考虑了当地的环境条件,导致不规则的梯度和模糊的结构。当过渡区域过于分散时,它允许添加称为过渡类的类,而不是在类之间固定任意边界。

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