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An Inspection Method of Rice Milling Degree Based on Machine Vision and Gray-Gradient Co-occurrence Matrix

机译:基于机器视觉和灰度共生矩阵的碾米程度检测方法

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A detection method of the rice milling degree was proposed based on machine vision with gray-gradient co-occurrence matrix. Using an experimental mill machine, different milling degree samples of rice were prepared. The rice kernel image of the different milling degree was get by a machine vision detecting system, then the texture features of the rice image were obtained by using gray-gradient co-occurrence matrix, at last the Fisher discriminate functions constructed using stepwise discriminate analysis were used to detect the milling degree of the rice samples. The testing results show that the average accuracy rate of the different milling degree detected using the method of 4 rice samples is 94.00%.
机译:提出了一种基于机器视觉和灰度共生矩阵的碾米程度检测方法。使用实验研磨机,制备了不同研磨度的大米样品。通过机器视觉检测系统获得不同碾磨度的米粒图像,然后使用灰度梯度共生矩阵获得米图像的纹理特征,最后通过逐步判别分析构造了Fisher判别函数。用于检测大米样品的研磨度。测试结果表明,用4种大米样品测得的不同碾磨度的平均准确率为94.00%。

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