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Statistical analysis of airborne LiDAR data for forest classification in the Strzelecki Ranges, Victoria, Australia

机译:澳大利亚维多利亚维多利亚州森林分类空气传播森林分类统计分析

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摘要

Although remotely sensed data have been widely explored for forest applications, passive remote sensing techniques are limited in their ability to capture forest structural complexity, particularly in uneven-aged, mixed species forests with multiple canopy layers. Generally, these techniques are only able to provide information on horizontal (two-dimensional) forest extent. The vertical forest structure (or the interior of the canopy and understorey vegetation) cannot be mapped using these passive remote sensing techniques. Fortunately, it has been shown that active remote sensing techniques via airborne LiDAR (light detection and ranging) with capability of canopy penetration yields such high density sampling that detailed description of the forest structure in three-dimensions can be obtained. Accordingly, much interest is attached to exploring the application of this approach for identifying the distribution of designated vegetationcommunities. However, the suitability of LiDAR data for the classification of forests with complex structures, particularly for cool temperate rainforest and neighbouring uneven-aged mixed forests in a severely disturbed landscape has hitherto remained untested. This study applied airborne LiDAR data for the classification of cool temperate rainforest dominated by Myrtle Beech (Nothofagus cunninghamii) and adjacent forests including naturally regenerated Mountain Ash (Eucalyptus regnans), mixed forest consisting of overstorey Mountain Ash and understorey Myrtle Beech, Silver Wattle (Acacia dealbata), and hardwood plantation dominated by Shining Gum (Eucalyptus nitens) inthe Strzelecki Ranges, Victoria, Australia. LiDAR data were extracted within each of the forest plots. Nonground laser returns were used to generate forest height profiles for the analysis of the spatial distribution of vertical forest structure for the plots dominated by different forest types. The k-means clustering algorithm was performed on each of the plots to stratify the vertical forest structure into three layers, representing the overstorey, mid-storey and lower storey of the plot-level forests. Variables were then calculated from the LiDAR data based on the three-layered structure for each plot. The statistical analyses, which included oneway ANOVA (analysis of variance) and the post hoc tests, identified effective variables for forest type classifications. Linear discriminant analysis with cross-validation was carried out to classify the forest types and assess the classification accuracy using error matrixes. This study demonstrated the applicability ofairborne LiDAR for the classification of the Australian cool temperate rainforest and adjacent forests in the study area.
机译:尽管已经为森林应用广泛地探索了遥感数据,但是被动遥感技术捕获森林结构复杂性的能力受到限制,特别是在具有多个冠层的不均一年龄,混合物种森林中。通常,这些技术只能提供有关水平(二维)森林范围的信息。无法使用这些被动遥感技术绘制垂直森林结构(或树冠内部和下层植被)的地图。幸运的是,已经显示出通过机载LiDAR的主动遥感技术(光检测和测距)具有树冠穿透能力,可以产生如此高的密度采样,从而可以对森林结构进行三维描述。因此,人们非常关注探索这种方法在确定指定植被群落分布中的应用。但是,迄今为止,LiDAR数据是否适用于对结构复杂的森林进行分类,特别是对于在严重受干扰的景观中的凉爽温带雨林和邻近的不均匀年龄混交林进行分类的测试。这项研究应用机载LiDAR数据对以桃金娘山毛榉(Nothofagus cunninghamii)为主的凉爽温带雨林以及包括天然再生的山灰(Eucalyptus regnans),由上层山灰和下层桃金娘山毛榉,银荆树(Acacia)组成的混合林进行了分类在澳大利亚维多利亚州的Strzelecki山脉中,由Shining Gum(Eucalyptus nitens)主导的硬木种植园。 LiDAR数据是在每个森林地块中提取的。非地面激光返回被用于生成森林高度剖面,以分析由不同森林类型主导的样地的垂直森林结构的空间分布。在每个样地上执行k均值聚类算法,以将垂直森林结构分为三层,分别代表样地级森林的上层,中层和下层。然后根据每个图的三层结构从LiDAR数据中计算出变量。包括单向方差分析(ANOVA)和事后检验在内的统计分析确定了森林类型分类的有效变量。进行了带有交叉验证的线性判别分析,以对森林类型进行分类并使用误差矩阵评估分类准确性。这项研究证明了机载LiDAR在研究区域澳大利亚凉爽的温带雨林和邻近森林的分类中的适用性。

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