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Monitoring the Growth and Yield of Fruit Vegetables in a Greenhouse Using a Three-Dimensional Scanner

机译:使用三维扫描仪监测温室中水果蔬菜的生长和产量

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摘要

Monitoring the growth of fruit vegetables is essential for the automation of cultivation management, and harvest. The objective of this study is to demonstrate that the current sensor technology can monitor the growth and yield of fruit vegetables such as tomato, cucumber, and paprika. We estimated leaf area, leaf area index (LAI), and plant height using coordinates of polygon vertices from plant and canopy surface models constructed using a three-dimensional (3D) scanner. A significant correlation was observed between the measured and estimated leaf area, LAI, and plant height (R2 > 0.8, except for tomato LAI). The canopy structure of each fruit vegetable was predicted by integrating the estimated leaf area at each height of the canopy surface models. A linear relationship was observed between the measured total leaf area and the total dry weight of each fruit vegetable; thus, the dry weight of the plant can be predicted using the estimated leaf area. The fruit weights of tomato and paprika were estimated using the fruit solid model constructed by the fruit point cloud data extracted using the RGB value. A significant correlation was observed between the measured and estimated fruit weights (tomato: R2 = 0.739, paprika: R2 = 0.888). Therefore, it was possible to estimate the growth parameters (leaf area, plant height, canopy structure, and yield) of different fruit vegetables non-destructively using a 3D scanner.
机译:监测水果蔬菜的生长对于培养管理自动化和收获至关重要。本研究的目的是表明,目前的传感器技术可以监测番茄,黄瓜和辣椒粉等水果蔬菜的生长和产量。我们估计了使用三维(3D)扫描仪构造的植物和冠层表面型号的多边形顶点的坐标,叶面积指数(LAI)和植物高度。在测量和估计的叶面积,含叶和植物高度(除番茄LAI除外)之间观察到显着的相关性。通过将估计的叶面积与遮篷表面模型的每个高度集成在一起来预测每个果蔬的冠层结构。在测量的总叶面积和每个水果蔬菜的总干重之间观察到线性关系;因此,可以使用估计的叶面积预测植物的干重。使用由使用RGB值提取的果点云数据构造的果实固体模型估计番茄和辣椒粉的果实重量。在测量和估计的水果重中观察到显着的相关性(番茄:R2 = 0.739,辣椒粉:R2 = 0.888)。因此,可以使用3D扫描仪估计不同水果蔬菜的生长参数(叶面积,植物高度,冠层)和产量。

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