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首页> 外文期刊>International journal of applied earth observation and geoinformation >Characterization of the horizontal structure of the tropical forest canopy using object-based LiDAR and multispectral image analysis
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Characterization of the horizontal structure of the tropical forest canopy using object-based LiDAR and multispectral image analysis

机译:基于对象的LiDAR和多光谱图像分析对热带雨林冠层水平结构的表征

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This article's goal is to explore the benefits of using Digital Surface Model (DSM) and Digital Terrain Model (DTM) derived from LiDAR acquisitions for characterizing the horizontal structure of different facies in forested areas (primary forests vs. secondary forests) within the framework of an object-oriented classification. The area under study is the island of Mayotte in the western Indian Ocean. The LiDAR data were the data originally acquired by an airborne small-footprint discrete-return LiDAR for the "Litto3D" coastline mapping project. They were used to create a Digital Elevation Model (DEM) at a spatial resolution of 1 m and a Digital Canopy Model (DCM) using median filtering. The use of two successive segmentations at different scales allowed us to adjust the segmentation parameters to the local structure of the landscape and of the cover. Working in object-oriented mode with LiDAR allowed us to discriminate six vegetation classes based on canopy height and horizontal heterogeneity. This heterogeneity was assessed using a texture index calculated from the height-transition co-occurrence matrix. Overall accuracy exceeds 90%. The resulting product is the first vegetation map of Mayotte which emphasizes the structure over the composition.
机译:本文的目的是探索使用从LiDAR采集而来的数字表面模型(DSM)和数字地形模型(DTM)来描述林区框架内林区(主要森林与次要森林)不同相的水平结构的特征。面向对象的分类。研究区域是印度洋西部的马约特岛。 LiDAR数据是最初由机载小尺寸离散返回LiDAR为“ Litto3D”海岸线测绘项目获取的数据。它们被用来创建空间分辨率为1 m的数字高程模型(DEM)和使用中值滤波的数字冠层模型(DCM)。使用两个不同比例的连续分割允许我们将分割参数调整为景观和封面的局部结构。使用LiDAR以面向对象的模式进行工作,使我们能够根据冠层高度和水平异质性区分六种植被类型。使用从高度过渡共生矩阵计算出的纹理指数来评估这种异质性。总体精度超过90%。生成的产品是Mayotte的第一个植被图,该图强调了整个组成部分的结构。

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