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Augmenting size models for Pinus strobiformis seedlings using dimensional estimates from unmanned aircraft systems1

机译:使用无人机系统的尺寸估计(Unmaned Factor Systems 1 )增强尺寸模型 Pinus Strobiformis 幼苗

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In forestry, common garden experiments traditionally require manual measurements and visual inspections. Unmanned aircraft systems (UAS) are a newer method of monitoring plants that is potentially more efficient than traditional techniques. This study had two objectives: to assess the size and mortality of Pinus strobiformis Engelm. seedlings using UAS and to predict the second-year seedling size using manual measurements from the first year and from UAS size estimates. Raised boxes containing 150 seedlings were surveyed twice, one year apart, using multispectral UAS. Seedling heights and diameters at root collar (DRC) were measured manually in both years. We found that size estimates made using a vegetation mask were suitable predictors for size, while spectral indices were not. Furthermore, we provided evidence that inclusion of UAS size estimates as predictors improves the fit of the models. Our study suggests that common variables used in forest monitoring are not necessarily best suited for seedlings. Therefore, we created a new variable, called the longitudinal area (height × DRC), which proved to be a significant predictor for both height and DRC. Finally, we demonstrate that seedling mortality can be effectively measured from remotely sensed data, which is useful for common garden and regeneration studies.
机译:在林业中,共同的园林实验传统上需要手动测量和目视检查。无人驾驶飞机系统(UAS)是一种较新的监测工厂的方法,这些方法可能比传统技术更有效。本研究有两个目的:评估 Pinus Strobiformis Engelm的大小和死亡率。使用UAS的幼苗并预测使用第一年的手动测量和UAS大小估计的手动测量。使用多光谱UAS调查含有150个幼苗的凸起盒两次。在两年内手动测量根衣领(DRC)的幼苗高度和直径。我们发现使用植被面膜制造的尺寸估计是尺寸的合适预测因子,而光谱指数则不是。此外,我们提供了纳入UAS规模估计作为预测因子的证据,提高了模型的拟合。我们的研究表明,森林监测中使用的常见变量不一定最适合幼苗。因此,我们创建了一个名为纵向区域(高度×DRC)的新变量,这被证明是高度和DRC的重要预测因子。最后,我们证明可以从远程感测的数据有效地测量幼苗死亡率,这对于共同的庭院和再生研究是有用的。

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