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Quantifying pine processionary moth defoliation in a pine-oak mixed forest using unmanned aerial systems and multispectral imagery

机译:使用无人航空系统和多光谱图像对松栎混交林中的松树行进飞蛾落叶进行量化

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摘要

Pine processionary moth (PPM) feeds on conifer foliage and periodically result in outbreaks leading to large scale defoliation, causing decreased tree growth, vitality and tree reproduction capacity. Multispectral high-resolution imagery acquired from a UAS platform was successfully used to assess pest tree damage at the tree level in a pine-oak mixed forest. We generated point clouds and multispectral orthomosaics from UAS through photogrammetric processes. These were used to automatically delineate individual tree crowns and calculate vegetation indices such as the normalized difference vegetation index (NDVI) and excess green index (ExG) to objectively quantify defoliation of trees previously identified. Overall, our research suggests that UAS imagery and its derived products enable robust estimation of tree crowns with acceptable accuracy and the assessment of tree defoliation by classifying trees along a gradient from completely defoliated to non-defoliated automatically with 81.8% overall accuracy. The promising results presented in this work should inspire further research and applications involving a combination of methods allowing the scaling up of the results on multispectral imagery by integrating satellite remote sensing information in the assessments over large spatial scales.
机译:松树前进蛾(PPM)以针叶树的叶子为食,并定期爆发,导致大规模落叶,导致树木生长,活力和树木繁殖能力下降。从UAS平台获取的多光谱高分辨率图像已成功用于评估松橡混交林中树木一级的害虫树损害。我们通过摄影测量过程从UAS生成了点云和多光谱正马赛克。这些用于自动描绘单个树冠并计算植被指数,例如归一化差异植被指数(NDVI)和过量绿色指数(ExG),以客观地量化先前确定的树木的落叶。总体而言,我们的研究表明,UAS图像及其派生产品可通过沿从完全脱叶到未脱叶的梯度自动对树木进行分类,以81.8%的总体准确度对树冠进行鲁棒的估计,并评估树木的脱叶。这项工作中提出的令人鼓舞的结果应该会激发进一步的研究和应用,这些方法包括通过将卫星遥感信息整合到大空间尺度的评估中来扩大多光谱图像结果的方法的组合。

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