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Rice Morphogenesis and Plant Architecture: Measurement Specification and the Reconstruction of Structural Development by 3D Architectural Modelling

机译:水稻形态发生与植物结构:3D建筑模型的测量规范和结构发展的重建

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摘要

• Background and Aims The morphogenesis and architecture of a rice plant, Oryza sativa, are critical factors in the yield equation, but they are not well studied because of the lack of appropriate tools for 3D measurement. The architecture of rice plants is characterized by a large number of tillers and leaves. The aims of this study were to specify rice plant architecture and to find appropriate functions to represent the 3D growth across all growth stages.• Methods A japonica type rice, ‘Namaga’, was grown in pots under outdoor conditions. A 3D digitizer was used to measure the rice plant structure at intervals from the young seedling stage to maturity. The L-system formalism was applied to create ‘3D virtual rice’ plants, incorporating models of phenological development and leaf emergence period as a function of temperature and photoperiod, which were used to determine the timing of tiller emergence.• Key Results The relationships between the nodal positions and leaf lengths, leaf angles and tiller angles were analysed and used to determine growth functions for the models. The ‘3D virtual rice’ reproduces the structural development of isolated plants and provides a good estimation of the tillering process, and of the accumulation of leaves.• Conclusions The results indicated that the ‘3D virtual rice’ has a possibility to demonstrate the differences in the structure and development between cultivars and under different environmental conditions. Future work, necessary to reflect both cultivar and environmental effects on the model performance, and to link with physiological models, is proposed in the discussion.
机译:•背景和目的水稻Oryza sativa的形态发生和结构是产量方程式的关键因素,但由于缺乏适用于3D测量的工具,因此对其进行了深入的研究。水稻植株的结构特点是大量的分till和叶片。这项研究的目的是指定水稻植物的结构,并找到合适的功能来代表所有生长阶段的3D生长。•方法在室外条件下,在盆中种植粳稻类型的“ Namaga”。使用3D数字化仪来测量从幼苗期到成熟的间隔内的水稻植株结构。应用L系统形式主义来创建“ 3D虚拟水稻”植物,并结合物候发育和叶片出苗期作为温度和光周期的函数,从而确定分er出苗的时间。•关键结果分析节点位置和叶片长度,叶片角度和分and角度,并用于确定模型的生长函数。 “ 3D虚拟稻米”再现了离体植物的结构发育,并为分,过程和叶片的积累提供了良好的估计。•结论结果表明,“ 3D虚拟稻米”有可能证明其差异。不同环境条件下品种之间的结构和发育。讨论中提出了未来的工作,这些工作需要反映品种和环境对模型性能的影响以及与生理模型的联系。

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