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Machine vision system for inspecting characteristics of hybrid rice seed

机译:杂交水稻种子检测特征的机器视觉系统

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Obtaining clear images advantaged of improving the classification accuracy involves many factors, light source, lens extender and background were discussed in this paper. The analysis of rice seed reflectance curves showed that the wavelength of light source for discrimination of the diseased seeds from normal rice seeds in the monochromic image recognition mode was about 815nm for jinyou402 and shanyou10.To determine optimizing conditions for acquiring digital images of rice seed using a computer vision system, an adjustable color machine vision system was developed. The machine vision system with 20mm to 25mm lens extender produce close-up images which made it easy to object recognition of characteristics in hybrid rice seeds. White background was proved to be better than black background for inspecting rice seeds infected by disease and using the algorithms based on shape. Experimental results indicated good classification for most of the characteristics with the machine vision system. The same algorithm yielded better results in optimizing condition for quality inspection of rice seed. Specifically, the image processing can correct for details such as fine fissure with the machine vision system.
机译:获得清晰的图像优点,提高了分类精度涉及本文涉及许多因素,光源,镜头扩展器和背景。稻种反射率曲线的分析表明,光源的在单色图像识别模式从正常水稻种子患病种子歧视的波长为约815nm为jinyou402和shanyou10.To确定使用获取稻种的数字图像优化条件一种电脑视觉系统,开发了可调节的彩色机视觉系统。该机器视觉系统具有20mm至25mm镜头扩展器产生特写图像,使其易于对象识别杂交水稻种子的特性。被证明,白色背景比黑色背景更好,用于检查受疾病感染的稻米种子,并使用基于形状的算法。实验结果表明,机器视觉系统的大多数特性表明了良好的分类。同一算法在优化水稻种子质量检验条件下产生了更好的结果。具体地,图像处理可以校正与机器视觉系统的细裂纹等细节。

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