Institute of Sugar Beet Research (IfZ), Göttingen 37079, Germany.
Institute for Geodesy and Geoinformation (IGG), University of Bonn, Bonn 53115, Germany.
Gigascience. 2024 Jan 2;13. doi: 10.1093/gigascience/giae035.
This study addresses the importance of precise referencing in 3-dimensional (3D) plant phenotyping, which is crucial for advancing plant breeding and improving crop production. Traditionally, reference data in plant phenotyping rely on invasive methods. Recent advancements in 3D sensing technologies offer the possibility to collect parameters that cannot be referenced by manual measurements. This work focuses on evaluating a 3D printed sugar beet plant model as a referencing tool.
Fused deposition modeling has turned out to be a suitable 3D printing technique for creating reference objects in 3D plant phenotyping. Production deviations of the created reference model were in a low and acceptable range. We were able to achieve deviations ranging from -10 mm to +5 mm. In parallel, we demonstrated a high-dimensional stability of the reference model, reaching only ±4 mm deformation over the course of 1 year. Detailed print files, assembly descriptions, and benchmark parameters are provided, facilitating replication and benefiting the research community.
Consumer-grade 3D printing was utilized to create a stable and reproducible 3D reference model of a sugar beet plant, addressing challenges in referencing morphological parameters in 3D plant phenotyping. The reference model is applicable in 3 demonstrated use cases: evaluating and comparing 3D sensor systems, investigating the potential accuracy of parameter extraction algorithms, and continuously monitoring these algorithms in practical experiments in greenhouse and field experiments. Using this approach, it is possible to monitor the extraction of a nonverifiable parameter and create reference data. The process serves as a model for developing reference models for other agricultural crops.
本研究强调了精确参照在三维(3D)植物表型分析中的重要性,这对于推进植物育种和提高作物产量至关重要。传统上,植物表型分析中的参照数据依赖于有创方法。最近的 3D 传感技术进步为收集无法通过手动测量进行参照的参数提供了可能性。本工作重点评估了 3D 打印的甜菜植株模型作为参照工具的性能。
熔融沉积建模已被证明是一种适用于在 3D 植物表型分析中创建参照物体的 3D 打印技术。所创建的参照模型的生产偏差处于低且可接受的范围内。我们能够实现从-10mm 到+5mm 的偏差。同时,我们证明了参照模型具有很高的维度稳定性,在 1 年内仅发生了±4mm 的变形。详细的打印文件、组装说明和基准参数也一并提供,便于复制并使研究团体受益。
利用消费级 3D 打印技术创建了一个稳定且可重复的甜菜植株 3D 参照模型,解决了在 3D 植物表型分析中参照形态参数的挑战。该参照模型可应用于 3 个已证明的用途:评估和比较 3D 传感器系统,研究参数提取算法的潜在准确性,以及在温室和田间试验中的实际实验中持续监测这些算法。通过这种方法,可以监测不可验证参数的提取并创建参照数据。该过程为开发其他农业作物的参照模型提供了模型。