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Estimation of Ground Surface and Accuracy Assessments of Growth Parameters for a Sweet Potato Community in Ridge Cultivation

机译:垄作甘薯群落地表估算和生长参数精度评估。

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There are only a few studies that have been made on accuracy assessments of Leaf Area Index (LAI) and biomass estimation using three-dimensional (3D) models generated by structure from motion (SfM) image processing. In this study, sweet potato was grown with different amounts of nitrogen fertilization in ridge cultivation at an experimental farm. Three-dimensional dense point cloud models were constructed from a series of two-dimensional (2D) color images measured by a small unmanned aerial vehicle (UAV) paired with SfM image processing. Although it was in the early stage of cultivation, a complex ground surface model for ridge cultivation with vegetation was generated, and the uneven ground surface could be estimated with an accuracy of 1.4 cm. Furthermore, in order to accurately estimate growth parameters from the early growth to the harvest period, a 3D model was constructed using a root mean square error (RMSE) of 3.3 cm for plant height estimation. By using a color index, voxel models were generated and LAIs were estimated using a regression model with an RMSE accuracy of 0.123. Further, regression models were used to estimate above-ground and below-ground biomass, or tuberous root weights, based on estimated LAIs.
机译:关于使用通过运动(SfM)图像处理结构生成的三维(3D)模型对叶面积指数(LAI)和生物量估计进行准确性评估的研究很少。在这项研究中,在试验农场的垄作栽培中,甘薯种植了不同量的氮肥。由一系列二维(2D)彩色图像构建三维密集点云模型,这些图像是由小型无人飞行器(UAV)与SfM图像处理配对测得的。尽管它处于耕种的初期,但仍生成了一个复杂的地垄模型,用于植被种植,可以估算出不平坦的地面,精度为1.4厘米。此外,为了准确地估计从早期生长到收获期的生长参数,使用3.3 cm的均方根误差(RMSE)构造了3D模型用于植物高度估计。通过使用颜色指数,生成体素模型,并使用回归模型(RMSE精度为0.123)估计LAI。此外,基于估计的LAI,使用回归模型来估计地上和地下生物量或块根重量。

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