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Learning Machines Applied to Potential Forest

机译:学习机应用于潜在森林

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The clearing of forests to obtain land for pasture and agriculture and the replacement of autochthonous species by other faster-growing varieties of trees for timber have both led to the loss of vast areas of forest worldwide. At present, many developed countries are attempting to reverse these effects, establishing policies for the restoration of older woodland systems. Reforestation is a complex matter, planned and carried out by experts who need objective information regarding the type of forest that can be sustained in each area. This information is obtained by drawing up feasibility models constructed using statistical methods that make use of the information provided by morphological and environmental variables (height, gradient, rainfall, etc.) that partially condition the presence or absence of a specific kind of forestation in an area. The aim of this work is to construct a set of feasibility models for woodland located in the basin of the River Liebana (NW Spain), to serve as a support tool for the experts entrusted with carrying out the reforestation project. The techniques used are multilayer perceptron neural networks and support vector machines. Their results will be compared to the results obtained by traditional techniques (such as discriminant analysis and logistic regression) by measuring the degree of fit between each model and the existing distribution of woodlands. The interpretation and problems of the feasibility models are commented on in the Discussion section.
机译:砍伐森林以获取牧场和农业用地,以及用其他较快生长的木材树木替代本地种,都导致了全世界大片森林的流失。目前,许多发达国家正试图扭转这些影响,制定恢复旧林地系统的政策。植树造林是一个复杂的事情,由需要有关每个地区可以维持的森林类型的客观信息的专家计划和执行。该信息是通过绘制使用统计方法构建的可行性模型而获得的,这些方法利用了形态学和环境变量(高度,坡度,降雨等)提供的信息,这些信息部分地调节了森林中是否存在特定类型的森林。区域。这项工作的目的是为位于利比亚纳河(西班牙西北部)流域的林地建立一套可行性模型,以作为受托开展植树造林项目的专家的支持工具。使用的技术是多层感知器神经网络和支持向量机。他们的结果将通过测量每个模型与林地现有分布之间的拟合程度,与通过传统技术(例如判别分析和逻辑回归)获得的结果进行比较。讨论部分中对可行性模型的解释和问题进行了评论。

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