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Green citrus detection using hyperspectral imaging

机译:使用高光谱成像检测绿色柑橘

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The goal of this study was to develop an image processing method to detect green Citrus fruit in individual trees. This technology can be applied for crop yield estimation at a Much earlier stage of growth, providing many benefits to citrus growers. A hyperspectral camera of 369-1042 nm was employed to acquire hyperspectral images of green fruits of three different citrus varieties (Tangelo, Valencia, and Hamlin). First, a pixel discrimination function was generated based upon a linear discriminant analysis and applied to all pixels in a hyperspectral image for image segmentation of fruit and other objects. Then, spatial image processing steps (noise reduction filtering, labeling, and area thresholding) were applied to the segmented image, and green citrus fruits were detected. The results of pixel identification tests showed that detection success rates were 70-85%, depending on citrus varieties. The fruit detection tests revealed that 80-89% of the fruit in the foreground of the validation set were identified correctly, though many Occluded or highly contrasted fruits were identified incorrectly.
机译:这项研究的目的是开发一种图像处理方法,以检测单个树木中的绿色柑橘类水果。这项技术可以在生长的较早阶段用于作物产量的估算,为柑橘种植者提供许多好处。使用369-1042 nm的高光谱相机获取三种不同柑橘品种(Tangelo,Valencia和Hamlin)的绿色水果的高光谱图像。首先,基于线性判别分析生成像素判别函数,并将其应用于高光谱图像中的所有像素,以对水果和其他对象进行图像分割。然后,将空间图像处理步骤(降噪过滤,标记和面积阈值化)应用于分割后的图像,并检测出绿色柑橘类水果。像素识别测试的结果表明,根据柑橘品种的不同,检测成功率为70-85%。水果检测测试表明,正确识别了验证集中前景中80-89%的水果,尽管错误识别了许多被遮挡或高度对比的水果。

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