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Towards Image-Based Measurement of Accurate Apple Size and Yield Using Stereo Vision Cameras

机译:朝着基于图像的准确苹果尺寸和使用立体视觉相机的屈服测量

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Accurate measurement of fruit size in apple orchards before harvest can have important implications on profits and management practices. Obtaining a distribution of fruit size can be labor intensive for a large orchard and therefore requires an automated system that can quickly and accurately size fruit on every tree. This study proposes an automated imaging system that uses stereo vision for finding the metric surface area of apples. Deep convolutional neural network models were utilized to classifyapples as ideal candidates for sizing based on their orientation and visibility in an image. The results produced a correlation of apple size to apple weight of R2=0.69 making the system capable of capturing variability in fruit diameter distribution that ranges by Jem (or equivalently 60 grams). There was also an improvement in correlation to yield when combining fruit size with fruit count than when utilizing fruit count alone.
机译:在收获之前,精确测量苹果园中的果实大小可能对利润和管理实践具有重要意义。 获得果实尺寸的分布可以是大型果园的劳动密集,因此需要一种自动化系统,可以在每棵树上快速准确地粗糙。 本研究提出了一种自动成像系统,它使用立体声视觉来查找苹果的度量表面区域。 深度卷积神经网络模型用于基于图像中的方向和可见性的尺寸尺寸的理想候选。 结果产生了苹果尺寸与苹果重量的相关性R2 = 0.69的相关性,使得系统能够捕获由JEM(或等效60克等效60克)范围的果直径分布的可变性。 当将果实尺寸与单独使用水果数量相结合时,相关与产量相关的相关性也有所改善。

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