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Applying geographic object-based image analysis (GEOBIA) and data mining to identify secondary forests succession on Santarem Region, Para, Brazil

机译:应用基于地理对象的图像分析(Geobia)和数据挖掘来识别Santarem Region,巴西帕拉的次要森林连续

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The secondary forest has a low diversity of species, however, they have major importance for the reestablishment of ecosystem functions and nutrient stocks lost from the original forests, as well as higher carbon absorption rate of the mature forests. In this study, we developed an approach using geographic object-based image analysis (GEOBIA) to classify the forest succession stages in a study area with 11,124 km2around Santare?m (Para? State, Brazil). Among the results, we did 19 different classifications covering 1984 to 2016, having identified a variable pattern in the extension of two secondary succession classes (5 to 15 years, >30 years). Another relevant result was the modeling of a decision tree applicable to surface reflectance images collected by the LANDSAT satellites, processing these classifications attributes in a data mining software.
机译:二次森林具有低多样性的物种,但是,他们对从原始森林中丧失的生态系统功能和营养股的重建具有重大重视,以及成熟森林的碳吸收率高。在这项研究中,我们开发了一种使用基于地理对象的图像分析(Geobia)的方法,将森林继承阶段分类在Santare?M周围11,124 km 2 (帕拉) 。在结果中,我们做了19个不同的分类,涵盖了1984年至2016年的分类,在两个二级继任课程(5至15年,> 30年)的延伸中确定了一种可变模式。另一个相关结果是适用于由Landsat卫星收集的表面反射率图像的决策树的建模,在数据挖掘软件中处理这些分类属性。

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