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Study on Detection Method of External Defects of Potato Image in Visible Light Environment

机译:可见光环境下薯片外缺陷的检测方法研究

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Potato as the fourth largest staple food in China, The external defect detection directly affects the industrialization of potato and deep processing. As the currently domestic testing method are mostly based on specific circumstances, specific light, which does not satisfy the testing requirements of actual environment. Therefore, this paper presents a non-destructive method for the study of green, germination and lesion of potatoes in the visible environment, which has a great significance for the deep processing and commercialization of potato. In this paper, firstly, we studied the segmentation method of potato image in visible light environment and proposed a new method to split the potato target area, subsequently, we respectively studied the detection method of defect area. For the green skin region, a new detection method based on RGB, HSV and LAB multi-color model was proposed. A method based on Laplace operator's gray variance is proposed for the germination and lesion area. The experimental results showed that the proposed method is effective for our study.
机译:马铃薯作为中国第四大主食,外部缺陷检测直接影响到土豆和深加工的产业化。由于目前国内的检测方法大多是基于具体情况,具体的光,这不符合实际环境的测试要求。因此,本文提出了绿色,发芽和土豆的病变可见的环境,这对深加工和土豆的商业化具有重要的意义研究的非破坏性的方法。在本文中,首先,我们在可见光环境研究马铃薯图像的分割方法,并提出分裂马铃薯目标区域的新方法,随后,我们分别研究缺陷区域的检测方法。对于绿色的皮肤区域,提出了一种基于RGB,HSV和LAB多色模型的新的检测方法。拟为萌发和病变区域基于拉普拉斯算子的灰色方差的方法。实验结果表明,该方法是有效的为我们的学习。

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