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Automatic expert system based on images for accuracy crop row detection in maize fields

机译:基于图像的自动专家系统,用于玉米田中作物行的准确检测

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摘要

This paper proposes an automatic expert system for accuracy crop row detection in maize fields based on images acquired from a vision system. Different applications in maize, particularly those based on site specific treatments, require the identification of the crop rows. The vision system is designed with a defined geometry and installed onboard a mobile agricultural vehicle, i.e. submitted to vibrations, gyros or uncontrolled movements. Crop rows can be estimated by applying geometrical parameters under image perspective projection. Because of the above undesired effects, most often, the estimation results inaccurate as compared to the real crop rows. The proposed expert system exploits the human knowledge which is mapped into two modules based on image processing techniques. The first one is intended for separating green plants (crops and weeds) from the rest (soil, stones and others). The second one is based on the system geometry where the expected crop lines are mapped onto the image and then a correction is applied through the well-tested and robust Theil-Sen estimator in order to adjust them to the real ones. Its performance is favorably compared against the classical Pearson product-moment correlation coefficient.
机译:本文提出了一种自动专家系统,用于基于从视觉系统获取的图像的玉米田中农作物行的准确检测。玉米中的不同应用,尤其是基于特定地点处理的应用,需要确定作物行。视觉系统的设计具有确定的几何形状,并安装在移动式农用车上,即受到振动,陀螺仪或不受控制的运动的影响。可以通过在图像透视投影下应用几何参数来估计作物行数。由于上述不良影响,通常,与实际农作物行相比,估算结果不准确。所提出的专家系统利用基于图像处理技术的人类知识,将其映射到两个模块中。第一个用于将绿色植物(作物和杂草)与其余(土壤,石头等)分开。第二种是基于系统几何结构的,其中将预期的裁切线映射到图像上,然后通过经过充分测试和鲁棒的Theil-Sen估计器进行校正,以将其调整为真实的。与经典的Pearson积矩相关系数相比,它的性能得到了很好的比较。

著录项

  • 来源
    《Expert Systems with Application》 |2013年第2期|656-664|共9页
  • 作者单位

    Dept. Software Engineering and Artificial Intelligence, Faculty of Computer Science, Complutense University, 28040 Madrid, Spain;

    Dept. Software Engineering and Artificial Intelligence, Faculty of Computer Science, Complutense University, 28040 Madrid, Spain;

    Dept. Computer Architecture and Automatic Control, Faculty of Computer Science, Complutense University, 28040 Madrid, Spain;

    Dept. Software Engineering and Artificial Intelligence, Faculty of Computer Science, Complutense University, 28040 Madrid, Spain;

    Center for Automation and Robotics (CAR), CSIC-UPM, Arganda del Rey, Spain;

    Center for Automation and Robotics (CAR), CSIC-UPM, Arganda del Rey, Spain;

    Dept. Software Engineering and Artificial Intelligence, Faculty of Computer Science, Complutense University, 28040 Madrid, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    expert system; crop row detection in maize fields; image thresholding; theil-sen estimator; machine vision; image segmentation; linear regression;

    机译:专业系统;玉米田中的作物行检测;图像阈值;泰尔森估计器机器视觉图像分割线性回归;

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