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Outdoor color rating of sweet cherries using computer vision

机译:使用计算机视觉对甜樱桃的室外颜色评级

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摘要

In this paper, we report the results of an exploration study of the feasibility of using computer vision to conduct accurate color rating of sweet cherry in outdoor orchard environments. Pre-harvest color rating of cherry is important to growers in determining the optimal harvest time. Currently, the in-field rating relies heavily on the manual comparison between the color of cherry fruits and standard color charts, which is both labor intensive and subjective. It is not uncommon to have one or two grades of deviation. A computer vision-based color rating system was developed in an attempt to provide an automatic and objective way to achieve more consistent and accurate color ratings. This system successfully used a camera flash to reduce the effects of two major obstacles in outdoor color rating: (1) inconsistent ambient light; and (2) glaring reflections on cherry skin. To mimic the manual color rating practice that is widely accepted by sweet cherry growers today, a task-oriented image processing algorithm was developed to remove the glaring reflections and to classify the color of cherries into seven levels. Field tests showed that the overall accuracy of the rating exceeded 85% based on 660 samples from three field tests under natural, outdoor lighting conditions. The tests validated the feasibility of using a computer vision system to achieve accurate and objective color ratings of sweet cherry under outdoor natural light conditions for actual in-orchard use.
机译:在本文中,我们报告了一项探索性研究的结果,该探索性研究涉及在室外果园环境中使用计算机视觉对甜樱桃进行准确的颜色评级。樱桃的收获前颜色评级对确定最佳收获时间的种植者很重要。当前,现场评级主要依靠手工比较樱桃果实的颜色和标准色表,这既费力又主观。一到两个等级的偏差并不少见。开发了基于计算机视觉的颜色评级系统,以试图提供一种自动,客观的方式来实现更一致和准确的颜色评级。该系统成功地使用了相机闪光灯来减少户外色彩等级中的两个主要障碍的影响:(1)环境光线不一致; (2)樱桃皮上有明显的反射。为了模仿当今甜樱桃种植者普遍接受的手动颜色评级实践,开发了一种面向任务的图像处理算法,以消除明显的反射并将樱桃的颜色分为七个级别。现场测试表明,基于在自然,室外照明条件下进行的三个现场测试的660个样本,该等级的总体准确度超过了85%。这些测试验证了使用计算机视觉系统在室外自然采光条件下为果园实际使用提供准确和客观的甜樱桃颜色评级的可行性。

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