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MACHINE VISION-BASED CITRUS YIELD MAPPING SYSTEM

机译:基于机器视觉的柑橘产量映射系统

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The variability of yield in citrus groves is important for growers to know to make correct management decisions. Current citrus yield mapping systems require hand harvesting which is labor intensive. In computer vision-based agricultural applicationsfor yield mapping, detecting occluded and non-occluded fruit from acquired images of trees is one of the major problems. Since there are no completely robust and efficient methods, detecting occluded fruit from acquired images has received much attentionin computer vision-based agricultural applications. This paper presents an automatic machine vision system with two charge coupled device (CCD) cameras, ultrasonic sensors, an encoder and a differential Global Positioning System (GPS) receiver to estimate citrus yield. An alternative computer vision algorithm was proposed to recognize visible and partially occluded citrus fruit from trees. The average fruit size was determined from images using ultrasonic sensors measuring a distance between the cameras and the fruit laden trees. Finally, a citrus yield map was created to show yield variability for site-specific crop management.
机译:柑橘树丛中产量的变化对于种植者来说,柑橘树丛中的变化很重要。目前的柑橘产量映射系统需要手工收获,这是劳动密集型的。在基于计算机视觉的农业应用程序中,从屈服映射,检测来自获取的树木图像的封闭和非闭塞果是主要问题之一。由于没有完全稳健和有效的方法,从获取的图像中检测到遮挡果实已经接受了许多关注的计算机视觉基础的农业应用。本文介绍了一种带有两个电荷耦合器件(CCD)摄像机,超声波传感器,编码器和差分全球定位系统(GPS)接收器的自动机器视觉系统,以估算柑橘产量。提出了一种替代的计算机视觉算法,以识别树木的可见和部分闭塞的柑橘类果实。使用超声波传感器测量相机和水果载花树之间的距离的图像确定平均果实尺寸。最后,创建了柑橘产量图以显示特异性作物管理的产量变异性。

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