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Quantifying Efficacy and Limits of Unmanned Aerial Vehicle (UAV) Technology for Weed Seedling Detection as Affected by Sensor Resolution

机译:受传感器分辨率影响的杂草苗检测的无人飞行器(UAV)技术的功效和极限

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摘要

In order to optimize the application of herbicides in weed-crop systems, accurate and timely weed maps of the crop-field are required. In this context, this investigation quantified the efficacy and limitations of remote images collected with an unmanned aerial vehicle (UAV) for early detection of weed seedlings. The ability to discriminate weeds was significantly affected by the imagery spectral (type of camera), spatial (flight altitude) and temporal (the date of the study) resolutions. The colour-infrared images captured at 40 m and 50 days after sowing (date 2), when plants had 5–6 true leaves, had the highest weed detection accuracy (up to 91%). At this flight altitude, the images captured before date 2 had slightly better results than the images captured later. However, this trend changed in the visible-light images captured at 60 m and higher, which had notably better results on date 3 (57 days after sowing) because of the larger size of the weed plants. Our results showed the requirements on spectral and spatial resolutions needed to generate a suitable weed map early in the growing season, as well as the best moment for the UAV image acquisition, with the ultimate objective of applying site-specific weed management operations.
机译:为了优化除草剂在杂草作物系统中的应用,需要准确,及时的作物田杂草图。在这种情况下,这项研究量化了用无人飞行器(UAV)收集的远程图像用于早期检测杂草幼苗的功效和局限性。辨别杂草的能力受成像光谱(相机类型),空间(飞行高度)和时间(研究日期)分辨率的影响很大。播种后40 m和50天(第2天)捕获的彩色红外图像具有5–6片真叶,具有最高的杂草检测精度(高达91%)。在此飞行高度下,日期2之前拍摄的图像比稍后拍摄的图像稍好。但是,这种趋势在60 m和更高的距离处捕获的可见光图像中发生了变化,由于杂草植物的体积较大,在第3天(播种后57天)的结果明显更好。我们的结果表明,在生长期早期生成合适的杂草图所需的光谱和空间分辨率要求,以及获取无人机图像的最佳时机,其最终目的是应用特定地点的杂草管理操作。

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