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Automated detection of herbicide drift effects on crops

机译:自动检测除草剂对作物的影响

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Drift can be an undesirable effect of herbicide spraying. Remote detection would be a beneficial step towards effectively monitoring herbicide drift. The goal of this study is to investigate the use of hyperspectral reflectance imagery for remote detection of herbicide drift. Spectral reflectance data for corn and soybean collected with a handheld ASD Spectroradiometer is used in this study. Four different rates of herbicide drift were simulated during the experiment stage, viz. 1/2 (maximum drift), 1/8, 1/32, and 1/64 (minimum drift) as well as no drift. Reflectance values of the 5 best spectral bands were used as features where optimization was conducted using ROC analysis. The features were subjected to linear discriminant analysis to increase drift detection accuracy. Classification was then performed using a maximum-likelihood decision. The methods were tested on the experimental data using cross-validation methods.
机译:漂移可能是除草剂喷涂的不希望的影响。远程检测将是有效监测除草剂漂移的有益步骤。本研究的目标是调查高光谱反射图像的使用以进行远程检测除草剂漂移。本研究使用用手持式ASD光谱辐射器收集玉米和大豆的光谱反射数据。在实验阶段,Ziz期间模拟了四种不同的除草剂漂移率。 1/2(最大漂移),1 / 8,1 / 32和1/64(最小漂移)以及无漂移。使用5个最佳光谱带的反射值用作使用ROC分析进行优化的特征。对该特征进行线性判别分析以增加漂移检测精度。然后使用最大可能性决定进行分类。使用交叉验证方法对实验数据进行测试。

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