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Automatic sea squirt sorting algorithm based on the HSV color model and weight estimation

机译:基于HSV彩色模型的自动海分类分类算法及重量估计

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摘要

Sea squirts are cultivated mainly in Korea, Japan, and China. Sea squirt sorting during the harvesting process is labor-intensive and time-consuming as there is no automatic sorting technology for sea squirts. In this study, we developed and evaluated an automatic sea squirt sorting algorithm based on sea squirt color information analyzed using the hue-saturation-value (HSV) color model and the regression equation of the projected area and weight of the sea squirt. The developed algorithm recognizes sea squirts during the sorting process based on the threshold range of sea squirt color values and their weight based on measurements of the projected area. In 100 repeated experiments conducted with mixed products containing sea squirts, mussels, and Styela clava, the average sea squirt recognition rate of the developed algorithm was 98.5%, and the sorting performance based on animal weight and grade was = 95.5% at an average speed of 1,050 kg/h.
机译:海喷在韩国,日本和中国的海喷射。 收获过程中的海喷射分类是劳动密集型和耗时,因为海喷没有自动分拣技术。 在这项研究中,我们开发并评估了使用Hue饱和度值(HSV)颜色模型分析的基于SEA Squirt颜色信息的自动Sea Squirt分类算法,以及海喷射区域的重量和重量的回归方程。 该算法在分类过程中识别出海喷射,基于海喷射颜色值的阈值范围及其基于预计区域的测量值。 在100个用含有海喷射的混合产品进行的重复实验中,贻贝和斯蒂拉克拉瓦的平均海水扫描识别率为98.5%,基于动物重量和等级的分拣性能为& = 95.5% 平均速度为1,050 kg / h。

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