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Estimation of maize yield and effects of variable-rate nitrogen application using UAV-based RGB imagery

机译:基于UAV的RGB图像估计玉米产量和可变速率氮应用的影响

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Accurate crop yield estimation is important for agronomic and economic decision-making. This study evaluated the performance of imagery data acquired using a unmanned aerial vehicle (UAV)-based imaging system for estimating yield of maize (Zea mays L.) and the effects of variable-rate nitrogen (N) application on crops. Images of a 27-ha maize field were captured using a UAV with a consumer-grade RGB camera flying at similar to 100 m above ground level at three maize growth stages. The collected sequential images were stitched and the Excess Green (ExG) colour feature was extracted to develop prediction models for maize yield and to examine the effect of the variable-rate N application. Various linear regression models between ExG and maize yield were developed for three sample area sizes (21, 106, and 1058 m(2)). The model performance was evaluated using coefficient of determination (R-2), F-test and the mean absolute percentage error (MAPE) between estimated and actual yield. All linear regression models between ExG and yield were significant (p <= 0.05). The MAPE ranged from 6.2 to 15.1% at the three sample sizes, although R-2 values were all <0.5. Prediction error was lower at the later growth stages, as the crop approached maturity, and at the largest sample level. The ExG image feature showed potential for evaluating the effect of variable-rate N application on crop growth. Overall, the low-cost UAV imaging system provided useful information for field management. (C) 2019 IAgrE. Published by Elsevier Ltd. All rights reserved.
机译:准确的作物产量估算对于农艺和经济决策是重要的。该研究评估了使用无人驾驶飞行器(UAV)的成像系统获得的图像数据的性能,以估计玉米(ZEA mays L.)的产率和可变率氮(N)在作物中的效应。使用UAV与消费者级RGB相机飞行在三种玉米生长阶段以上的地上级别的级RGB相机飞行的UAV捕获了27-HA玉米领域。缝合所收集的顺序图像,提取过量的绿色(epg)颜色特征以开发用于玉米产量的预测模型,并检查可变率n应用的效果。为三个样品区域尺寸(21,106和1058米(2))开发了EXG和玉米产量之间的各种线性回归模型。使用估计和实际产量之间的测定系数(R-2),F检验和平均绝对百分比误差(MAPE)评估模型性能。 EXG和产量之间的所有线性回归模型都很显着(P <= 0.05)。 MAPE在三个样本尺寸下的6.2至15.1%,尽管R-2值均为<0.5。在后期生长阶段预测误差较低,因为作物接近成熟度,并在最大的样品水平。 EXG图像特征显示评估可变率n应用对作物生长的影响的可能性。总的来说,低成本的UAV成像系统为现场管理提供了有用的信息。 (c)2019年IAGRE。 elsevier有限公司出版。保留所有权利。

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