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A Multispectral 3-D Vision System for Invertebrate Detection on Crops

机译:用于作物无脊椎动物检测的多光谱3-D视觉系统

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Real-time detection and identification of invertebrates on crops is a necessary capability for integrated pest management, however, this challenging task has not been well-solved. Multispectral or hyperspectral machine vision systems have shown advantages for efficient and accurate detection and identification of certain invertebrate pests. However, only using spectral information has limited the capability for detection, especially for some camouflaged pests on host plants. Three-dimensional (3-D) object representations are being intensively studied for multiview object recognition and scene understanding in many fields. However, because of the lack of proper data collection methods and robust algorithms, 3-D technologies have not yet attained applications for detecting invertebrates. We have developed a multispectral 3-D vision system, which can create denser point clouds of plants and pests using the multispectral images of ultraviolet, blue, green, red, and near-infrared. An algorithm named local variance of normals was designed, which can distinguish broad leaves from relatively larger pests in noisy point clouds. The vision system could aid integrated pest management systems for pest monitoring, or could be used as a sensor of an automatic pesticide sprayer.
机译:作物无脊椎动物的实时检测和识别是病虫害综合治理的必要能力,但是,这一具有挑战性的任务尚未得到很好解决。多光谱或高光谱机器视觉系统已显示出有效,准确地检测和识别某些无脊椎动物有害生物的优势。但是,仅使用光谱信息会限制检测能力,尤其是对于宿主植物上一些伪装的害虫。人们正在深入研究三维(3-D)对象表示,以在许多领域中实现多视图对象识别和场景理解。但是,由于缺乏适当的数据收集方法和强大的算法,因此3D技术尚未获得检测无脊椎动物的应用。我们已经开发了多光谱3-D视觉系统,该系统可以使用紫外线,蓝色,绿色,红色和近红外的多光谱图像来创建植物和害虫的密集点云。设计了一种称为法线局部方差的算法,该算法可以区分嘈杂的点云中的阔叶和相对较大的害虫。视觉系统可以辅助有害生物监测的综合有害生物管理系统,或者可以用作自动农药喷雾器的传感器。

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