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An open-source approach to characterizing Chihuahuan Desert vegetation communities using object-based image analysis

机译:用基于对象的图像分析来表征奇瓦华沙漠植被社区的开源方法

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Methods: for quantifying vegetative cover across landscapes have, until recently, been limited to ground-based surveys or remote sensing via satellites or aircraft, both of which can limit the spatial scale of resulting data. Unmanned Aircraft Systems (UAS) can efficiently collect high-resolution sub-decimeter imagery of landscapes; geographic, object-based image analysis (GEOBIA) of the collected imagery can then be used to estimate vegetation cover. To date, few researchers have utilized open-source programs for GEOBIA. We developed GEOBIA methods in the open-source Program R to analyze visible spectrum UAS imagery from four sites in the Chihuahuan Desert of North America. These desert grasslands are difficult to quantify due to the patchiness of ground cover at small scales (e.g. 1 m) and the rarity of shrubs on the landscape. We used site-specific training data and multiple segmentation parameters to create vegetative and shrub cover data layers at a 15 cm resolution. We report overall accuracies of 77.2%-88.8% for vegetation classification and 95.7%-99.2% for shrub classification. Our work is some of the first to use open-source GEOBIA in grasslands and provides objective, reproducible data layers of desert vegetation, particularly shrubs, at the spatial scale necessary to inform management and conservation of Chihuahuan Desert grassland communities.
机译:方法:为了通过卫星或飞机量化景观的植物覆盖物,直到最近,卫星或飞机的基于地面调查或遥感,这两者都可以限制所得到的数据的空间尺度。无人驾驶飞机系统(UAS)可以有效地收集景观的高分辨率分级图像;然后可以使用收集图像的基于对象的对象的图像分析(Geobia)来估计植被覆盖物。迄今为止,很少有研究人员利用了弥撒的开源计划。我们在开源计划R中开发了地桥方法,分析了北美奇瓦华沙漠沙漠的四个地点的可见谱UAS图像。由于小鳞片(例如<1米)的地面盖的斑点和植物上的灌木的稀有性,这些沙漠草原难以量化。我们使用特定于站点的培训数据和多个分段参数以在15厘米的分辨率下创建植物和灌木覆盖数据层。我们向植被分类报告了77.2%-88.8%的总体准确性,灌木分类为95.7%-99.2%。我们的工作是第一个在草地上使用开源桥面的一些,并提供客观,可再现的沙漠植被数据层,特别是灌木,以便为吉娃川沙漠草原社区提供信息和保护。

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