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Plant Identification in Mosaicked Crop Row Images for Automatic Emerged Corn Plant Spacing Measurement

机译:用于自动萌芽玉米植株间距测量的马赛克作物行图像中的植物识别

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摘要

Image processing algorithms for individual corn plant and plant stem center identification were developed. These algorithms were applied to mosaicked crop row image for automatically measuring corn plant spacing at early growth stages. These algorithms utilized multiple sources of information for corn plant detection and plant center location estimation including plant color, plant morphological features, and the crop row centerline. The algorithm was tested over two 41 m (134.5 ft) long corn rows using video acquired two times in both directions. The system had a mean plant misidentification ratio of 3.7%. When compared with manual plant spacing measurements, the system achieved an overall spacing error (RMSE) of 1.7 cm and an overall R super(2) of 0.96 between manual plant spacing measurement and the system estimates. The developed image processing algorithms were effective in automated corn plant spacing measurement at early growth stages. Interplant spacing errors were mainly due to crop damage and sampling platform vibration that caused mosaicking errors.
机译:开发了用于单个玉米植物和植物茎中心识别的图像处理算法。将这些算法应用于镶嵌的农作物行图像,以自动测量玉米在早期生长阶段的间距。这些算法利用多种信息源进行玉米植物检测和植物中心位置估计,包括植物颜色,植物形态特征和农作物行中心线。使用在两个方向上两次采集的视频在两个41 m(134.5 ft)长的玉米行上对该算法进行了测试。该系统的平均工厂错误识别率为3.7%。与手动工厂间距测量相比,系统在手动工厂间距测量与系统估计值之间的总间距误差(RMSE)为1.7 cm,总R super(2)为0.96。所开发的图像处理算法可有效地自动检测玉米生长早期的株距。种间间距误差主要是由于作物受损和采样平台振动导致镶嵌误差。

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