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Development of an Unmanned Aerial Vehicle-Borne Crop-Growth Monitoring System

机译:无人机飞行作物生长监测系统的开发

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摘要

In view of the demand for a low-cost, high-throughput method for the continuous acquisition of crop growth information, this study describes a crop-growth monitoring system which uses an unmanned aerial vehicle (UAV) as an operating platform. The system is capable of real-time online acquisition of various major indexes, e.g., the normalized difference vegetation index (NDVI) of the crop canopy, ratio vegetation index (RVI), leaf nitrogen accumulation (LNA), leaf area index (LAI), and leaf dry weight (LDW). By carrying out three-dimensional numerical simulations based on computational fluid dynamics, spatial distributions were obtained for the UAV down-wash flow fields on the surface of the crop canopy. Based on the flow-field characteristics and geometrical dimensions, a UAV-borne crop-growth sensor was designed. Our field experiments show that the monitoring system has good dynamic stability and measurement accuracy over the range of operating altitudes of the sensor. The linear fitting determination coefficients (R2) for the output RVI value with respect to LNA, LAI, and LDW are 0.63, 0.69, and 0.66, respectively, and the Root-mean-square errors (RMSEs) are 1.42, 1.02 and 3.09, respectively. The equivalent figures for the output NDVI value are 0.60, 0.65, and 0.62 (LNA, LAI, and LDW, respectively) and the RMSEs are 1.44, 1.01 and 3.01, respectively.
机译:考虑到对连续获取作物生长信息的低成本,高通量方法的需求,本研究描述了一种以无人飞行器(UAV)为操作平台的作物生长监测系统。该系统能够实时在线获取各种主要指标,例如农作物冠层的标准化差异植被指数(NDVI),比率植被指数(RVI),叶氮累积量(LNA),叶面积指数(LAI)和叶片干重(LDW)。通过基于计算流体动力学的三维数值模拟,获得了农作物冠层表面无人机向下冲洗流场的空间分布。基于流场特征和几何尺寸,设计了无人机载作物生长传感器。我们的现场实验表明,该监控系统在传感器的工作高度范围内具有良好的动态稳定性和测量精度。输出RVI值相对于LNA,LAI和LDW的线性拟合确定系数(R 2 )分别为0.63、0.69和0.66,均方根误差(RMSEs) )分别为1.42、1.02和3.09。输出NDVI值的等效数字分别为0.60、0.65和0.62(分别为LNA,LAI和LDW),RMSE分别为1.44、1.01和3.01。

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