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DECISION TREES ON LIDAR TO CLASSIFY LAND USES AND COVERS

机译:LIDAR上的决策树分类土地使用和封面

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The area of Huelva, in the South of Spain, is a well-known case of human pressure on the natural environment. In Huelva, National Parks, like Donana, and industrial and tourist zones coexist in difficult balance. The Regional Ministry of Andalusia is commissioned to assure the preservation of the natural resources in this part of Spain although its cost can be high in time and money. Remote sensing is a very suitable tool to carry out this task and automatic land use and cover detection can be a key factor to reduce costs. In addition, Light Detection and Ranging (LIDAR) has the advantage of being able to create elevation surfaces that are in 3D, while also having information on LIDAR intensity values. Many measures based on its intensity, density and its capacity for describing third dimension have been used previously with other purposes and outstanding results. In this paper, a new approach to identify land cover at high resolution is proposed selecting the most interesting attributes from a set of LIDAR measures. Our approach is based on data mining principles to take advantage on intelligent techniques (attribute selection and C4.5 algorithm decision tree) to classify quickly and efficiently without the need for manipulating multiespectral images. Seven types of land cover have been classified in a very interesting zone at the mouth of the River Tinto and Odiel with results of accuracy between 71percent and 100percent. An overall accuracy of 85percent has been reached for a resolution of 4 m~(2).
机译:在西班牙南部的韦尔瓦地区是对自然环境的众所周知的人类压力的情况。在韦尔瓦,国家公园,像Donana,工业和旅游区的艰难平衡时共存。安达卢西亚区域部委托确保保存西班牙这一部分的自然资源,尽管其成本可以高涨和金钱。遥感是一个非常合适的工具来执行这项任务,自动土地使用和覆盖检测可以是降低成本的关键因素。另外,光检测和测距(LIDAR)具有能够产生3D的高度表面的优点,同时还具有关于LIDAR强度值的信息。以前使用了基于其强度,密度和其描述第三尺寸的能力的许多措施,以外使用了其他目的和出色的结果。在本文中,提出了一种以高分辨率识别陆地覆盖的新方法,从一套激光雷达措施中选择最有趣的属性。我们的方法是基于数据挖掘原则利用智能技术(属性选择和C4.5算法决策树)来快速有效地对其进行分类,而无需操纵多级光谱图像。七种类型的陆地封面已经在河流河口和奥迪尔河口的一个非常有趣的区域中被分类为71平方和100%之间的精度。已经达到了85平方的总精确度,分辨率为4米〜(2)。

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