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Color image segmentation with genetic algorithm in a raisin sorting system based on machine vision in variable conditions

机译:基于遗传算法的葡萄干分类系统中可变条件下的彩色图像分割

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This study was undertaken to develop machine vision-based raisin detection technology for various lighting conditions. Supervised color image segmentation using a permutation-coded genetic algorithm (GA) identifying regions in hue-saturation-intensity (HS1) color space (GAHSI) for desired and undesired raisin detection in various conditions was successfully implemented. Images from two extreme intensity lighting and dense conditions: under weak lighting and high-density product and under suitable lighting and low-density product, were mosaicked to explore the possibility of using GAHSI to locate desired raisin and undesired raisin regions in color space when these two extremes were presented simultaneously. The GAHSI results provided evidence for the existence and separability of such regions. In the experiment, GAHSI performance was measured by comparing the GAHSI-segmented image with a corresponding hand-segmented reference image. When compared with cluster analysis-based segmentation results, the GAHSI method showed no significant difference.
机译:进行这项研究是为了开发针对各种照明条件的基于机器视觉的葡萄干检测技术。使用排列编码的遗传算法(GA)识别颜色饱和度强度(HS1)色彩空间(GAHSI)中的区域的监督彩色图像分割已成功实现,用于在各种条件下进行所需的葡萄干检测。拼接了两种极端强度照明和密集条件下的图像:在弱照明和高密度产品下,在适当的照明和低密度产品下,探索了使用GAHSI在颜色空间中定位所需的葡萄干和不需要的葡萄干区域时的可能性同时出现了两个极端。 GAHSI结果为此类区域的存在和可分离性提供了证据。在实验中,通过将GAHSI分割的图像与相应的手分割的参考图像进行比较来测量GAHSI性能。与基于聚类分析的分割结果相比,GAHSI方法没有显着差异。

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