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UAV-based crop and weed classification for smart farming

机译:智能农业的无人机作物和杂草分类

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Unmanned aerial vehicles (UAVs) and other robots in smart farming applications offer the potential to monitor farm land on a per-plant basis, which in turn can reduce the amount of herbicides and pesticides that must be applied. A central information for the farmer as well as for autonomous agriculture robots is the knowledge about the type and distribution of the weeds in the field. In this regard, UAVs offer excellent survey capabilities at low cost. In this paper, we address the problem of detecting value crops such as sugar beets as well as typical weeds using a camera installed on a light-weight UAV. We propose a system that performs vegetation detection, plant-tailored feature extraction, and classification to obtain an estimate of the distribution of crops and weeds in the field. We implemented and evaluated our system using UAVs on two farms, one in Germany and one in Switzerland and demonstrate that our approach allows for analyzing the field and classifying individual plants.
机译:无人驾驶航空公司(无人机)和智能农业应用中的其他机器人提供了在每植物基础上监控农业土地的潜力,这反过来可以减少必须应用的除草剂和农药。农民以及自治农业机器人的核心信息是了解杂草在该领域的类型和分配。在这方面,无人机以低成本提供出色的调查能力。在本文中,我们解决了使用安装在轻质上安装的相机检测糖甜菜和典型杂草等价值作物的问题。我们提出了一种系统,该系统进行植被检测,植物量身定制的特征提取和分类,以获得田野中作物和杂草分布的估计。我们在德国的两个农场和一个在瑞士的一个农场实施和评估了我们的系统,并证明了我们的方法允许分析该领域并分类个体植物。

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