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地面植被茂密的橄榄树林冠自动检测。

Automatic Detection of Olive Tree Canopies for Groves with Thick Plant Cover on the Ground.

机构信息

Robotics, Automation and Computer Vision Group, Electronic and Automation Engineering Department, University of Jaén, 23071 Jaén, Spain.

Institute for Olive Orchards and Olive Oils, University of Jaén, 23071 Jaén, Spain.

出版信息

Sensors (Basel). 2022 Aug 19;22(16):6219. doi: 10.3390/s22166219.

Abstract

Marking the tree canopies is an unavoidable step in any study working with high-resolution aerial images taken by a UAV in any fruit tree crop, such as olive trees, as the extraction of pixel features from these canopies is the first step to build the models whose predictions are compared with the ground truth obtained by measurements made with other types of sensors. Marking these canopies manually is an arduous and tedious process that is replaced by automatic methods that rarely work well for groves with a thick plant cover on the ground. This paper develops a standard method for the detection of olive tree canopies from high-resolution aerial images taken by a multispectral camera, regardless of the plant cover density between canopies. The method is based on the relative spatial information between canopies.The planting pattern used by the grower is computed and extrapolated using Delaunay triangulation in order to fuse this knowledge with that previously obtained from spectral information. It is shown that the minimisation of a certain function provides an optimal fit of the parameters that define the marking of the trees, yielding promising results of 77.5% recall and 70.9% precision.

摘要

在任何使用无人机拍摄的高分辨率航空图像进行的研究中,标记树冠都是不可避免的步骤,例如在橄榄树等果树上,因为从这些树冠中提取像素特征是构建模型的第一步,这些模型的预测结果与使用其他类型传感器获得的地面实况进行比较。手动标记这些树冠是一项艰巨而乏味的过程,现在已经被自动方法所取代,但这些自动方法对于地面植被覆盖率较高的果园效果不佳。本文开发了一种从多光谱相机拍摄的高分辨率航空图像中检测橄榄树冠的标准方法,无论树冠之间的植被覆盖率如何。该方法基于树冠之间的相对空间信息。利用 Delaunay 三角剖分计算和外推种植者使用的种植模式,以便将该知识与之前从光谱信息中获得的知识融合。结果表明,最小化某个函数可以提供定义树木标记的参数的最佳拟合,得到了 77.5%召回率和 70.9%精确率的有前景的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5119/9414240/8f236cdf4930/sensors-22-06219-g001.jpg

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