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A Novel Auto-Sorting System for Chinese Cabbage Seeds

机译:新型大白菜种子自动分选系统

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摘要

This paper presents a novel machine vision-based auto-sorting system for Chinese cabbage seeds. The system comprises an inlet-outlet mechanism, machine vision hardware and software, and control system for sorting seed quality. The proposed method can estimate the shape, color, and textural features of seeds that are provided as input neurons of neural networks in order to classify seeds as “good” and “not good” (NG). The results show the accuracies of classification to be 91.53% and 88.95% for good and NG seeds, respectively. The experimental results indicate that Chinese cabbage seeds can be sorted efficiently using the developed system.
机译:本文提出了一种基于机器视觉的大白菜种子自动分选系统。该系统包括进出口机制,机器视觉硬件和软件以及用于对种子质量进行分类的控制系统。所提出的方法可以估计作为神经网络的输入神经元提供的种子的形状,颜色和纹理特征,以便将种子分类为“好”和“不好”(NG)。结果表明,良种和NG种子的分类准确度分别为91.53%和88.95%。实验结果表明,利用该系统可以对白菜种子进行有效的分选。

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