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Flexible three-dimensional modeling of plants using low- resolution cameras and visual odometry

机译:使用低分辨率相机和视觉里程表对植物进行灵活的三维建模

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摘要

The three-dimensional reconstruction of plants using computer vision methods is a promising alternative to non-destructive metrology in plant phenotyping. However, diversity in plants form and size, different surrounding environments (laboratory, greenhouse or field), and occlusions impose challenging issues. We propose the use of state-of-the-art methods for visual odometry to accurately recover camera pose and preliminary three-dimensional models on image acquisition time. Specimens of maize and sunflower were imaged using a single free-moving camera and a software tool with visual odometry capabilities. Multiple-view stereo was employed to produce dense point clouds sampling the plant surfaces. The produced three-dimensional models are accurate snapshots of the shoot state and plant measurements can be recovered in a non-invasive way. The results show a free-moving low-resolution camera is able to handle occlusions and variations in plant size and form, allowing the reconstruction of different species, and specimens in different stages of development. It is also a cheap and flexible method, suitable for different phenotyping needs. Plant traits were computed from the point clouds and compared to manually measured reference, showing millimeter accuracy. All data, including images, camera calibration, pose, and three-dimensional models are publicly available.
机译:使用计算机视觉方法对植物进行三维重建是植物表型测定中非破坏性计量学的有希望的替代方法。但是,植物形式和大小的多样性,周围环境(实验室,温室或田地)的不同以及遮挡物带来了具有挑战性的问题。我们建议使用最先进的视觉测距方法来准确恢复相机的姿态和图像采集时间的初步三维模型。玉米和向日葵的标本使用一个自由移动的相机和具有可视里程功能的软件工具进行成像。采用多视图立体声来生成对植物表面采样的密集点云。生成的三维模型是枝条状态的准确快照,并且可以以非侵入方式恢复植物测量值。结果表明,自由移动的低分辨率相机能够处理植物大小和形式的遮挡和变化,从而可以重建不同物种以及处于不同发育阶段的标本。这也是一种便宜且灵活的方法,适用于不同的表型需求。从点云计算植物性状,并将其与手动测量的参考值进行比较,显示出毫米精度。所有数据,包括图像,相机校准,姿势和三维模型,都是公开可用的。

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