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Remote sensing with unmanned aircraft systems for precision agriculture applications

机译:无人机技术在精准农业中的遥感

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The Federal Aviation Administration is revising regulations for using unmanned aircraft systems (UAS) in the national airspace. An important potential application of UAS may be as a remote-sensing platform for precision agriculture, but simply down-scaling remote sensing methodologies developed using satellite and high-altitude aircraft platforms will create problems for data analysis. We simulated UAS image acquisition using both commercial and modified digital cameras mounted on an extension pole. The modified digital camera did not have an internal hot-mirror filter and had a red-cut filter to produce blue, green and near-infrared digital images. Green Normalized Difference Vegetation Indices from the modified camera was best for biomass and cover, whereas the blue, green and red digital cameras were better for estimating leaf chlorophyll content and nitrogen deficiency symptoms. The very small pixel sizes possible with UAS provide considerable information, but spectral methods of analysis are inadequate to extract the information.
机译:美国联邦航空管理局(Federal Aviation Administration)正在修订在国家领空使用无人飞机系统(UAS)的法规。 UAS的重要潜在应用可能是作为精密农业的遥感平台,但是使用卫星和高空飞机平台开发的缩小尺度的遥感方法仅会为数据分析带来问题。我们使用安装在延长杆上的商用和经改进的数码相机模拟了UAS图像采集。修改后的数码相机没有内部热镜滤镜,而是使用了红色截止滤镜来生成蓝色,绿色和近红外的数字图像。改良相机的绿色归一化差异植被指数最适合生物量和覆盖率,而蓝色,绿色和红色数码相机更适合估计叶片叶绿素含量和氮缺乏症状。 UAS可能会提供非常小的像素大小,但可提供大量信息,但光谱分析方法不足以提取该信息。

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