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Low-Cost Three-Dimensional Modeling of Crop Plants

Sensors · 28 Jun 2019 · 10.3390/s19132883

Abstract

Plant modeling can provide a more detailed overview regarding the basis of plant development throughout the life cycle. Three-dimensional processing algorithms are rapidly expanding in plant phenotyping programmes and in decision-making for agronomic management. Several methods have already been tested, but for practical implementations the trade-off between equipment cost, computational resources needed and the fidelity and accuracy in the reconstruction of the end-details needs to be assessed and quantified. This study examined the suitability of two low-cost systems for plant reconstruction. A low-cost Structure from Motion (SfM) technique was used to create 3D models for plant crop reconstruction. In the second method, an acquisition and reconstruction algorithm using an RGB-Depth Kinect v2 sensor was tested following a similar image acquisition procedure. The information was processed to create a dense point cloud, which allowed the creation of a 3D-polygon mesh representing every scanned plant. The selected crop plants corresponded to three different crops (maize, sugar beet and sunflower) that have structural and biological differences. The parameters measured from the model were validated with ground truth data of plant height, leaf area index and plant dry biomass using regression methods. The results showed strong consistency with good correlations between the calculated values in the models and the ground truth information. Although, the values obtained were always accurately estimated, differences between the methods and among the crops were found. The SfM method showed a slightly better result with regard to the reconstruction the end-details and the accuracy of the height estimation. Although the use of the processing algorithm is relatively fast, the use of RGB-D information is faster during the creation of the 3D models. Thus, both methods demonstrated robust results and provided great potential for use in both for indoor and outdoor scenarios. Consequently, these low-cost systems for 3D modeling are suitable for several situations where there is a need for model generation and also provide a favourable time-cost relationship.

Plant phenotyping relevance

低コストSfMおよびRGB-Dによる植物3D再構成手法を開発・比較し、草丈、葉面積指数、乾物バイオマスを実測値で検証しており、表現型取得手法が研究の中心である。

abstractThis study examined the suitability of two low-cost systems for plant reconstruction.
abstractA low-cost Structure from Motion (SfM) technique was used to create 3D models for plant crop reconstruction.
abstractThe parameters measured from the model were validated with ground truth data of plant height, leaf area index and plant dry biomass using regression methods.

Code and data availability

The supplied blocks describe SfM and Kinect v2 3D plant reconstruction with phenotype measurements, but contain no public dataset, image, code, or model deposit. The only URL present is the CC BY license link, which is not a paper-specific asset. No availability statements or author URLs appear.

No evidence-backed public reproduction asset is currently recorded.

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