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Online Measuring and Size Sorting for Perillae Based on Machine Vision

机译:基于机器视觉的紫苏在线测量和尺寸

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Perillae has attracted an increasing interest of study due to its wide usage for medicine and food. Estimating quality and maturity of a perillae requires the information with respect to its size. At present, measuring and sorting the size of perillae mainly depend on manual work, which is limited by low efficiency and unsatisfied accuracy. To address this issue, in this study, we develop an approach based on the machine vision (MV) technique for online measuring and size sorting. The geometrical model and the corresponding mathematical model are built for perillae and imaging, respectively. Based on the built models, the measuring and size sorting method is proposed, including image binarization, key point determination, information matching, and parameter estimation. Experimental results demonstrate that the average time consumption for a captured image, the average measuring error, the variance of measuring error, and the overall sorting accuracy are 204.175?ms, 1.48?mm, 0.07?mm, and 93%, respectively, implying the feasibility and satisfied accuracy of the proposed approach.
机译:由于其对药物和食物的广泛使用,佩里塞拉引起了越来越多的研究。估计紫苏的质量和成熟需要关于其规模的信息。目前,测量和分类紫苏尺寸主要取决于手工工作,这受到低效率和不满足的准确性的限制。为了解决这个问题,在本研究中,我们开发了一种基于机器视觉(MV)技术的方法,用于在线测量和尺寸排序。几何模型和相应的数学模型分别用于紫苏术和成像。基于内置模型,提出了测量和尺寸排序方法,包括图像二值化,关键点确定,信息匹配和参数估计。实验结果表明,捕获图像的平均时间消耗,平均测量误差,测量误差的方差以及整体分选精度分别为204.175?ms,1.48?mm,0.07Ωmm,93%,暗示拟议方法的可行性和满意的准确性。

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