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Improving the Accuracy of the Hyperspectral Model for Apple Canopy Water Content Prediction using the Equidistant Sampling Method

机译:利用等距采样法提高苹果冠层含水量预测的高光谱模型的准确性

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摘要

The influence of the equidistant sampling method was explored in a hyperspectral model for the accurate prediction of the water content of apple tree canopy. The relationship between spectral reflectance and water content was explored using the sample partition methods of equidistant sampling and random sampling, and a stepwise regression model of the apple canopy water content was established. The results showed that the random sampling model was Y = 0.4797 − 721787.3883 × Z3 − 766567.1103 × Z5 − 771392.9030 × Z6; the equidistant sampling model was Y = 0.4613 − 480610.4213 × Z2 − 552189.0450 × Z5 − 1006181.8358 × Z6. After verification, the equidistant sampling method was verified to offer a superior prediction ability. The calibration set coefficient of determination of 0.6599 and validation set coefficient of determination of 0.8221 were higher than that of the random sampling model by 9.20% and 10.90%, respectively. The root mean square error (RMSE) of 0.0365 and relative error (RE) of 0.0626 were lower than that of the random sampling model by 17.23% and 17.09%, respectively. Dividing the calibration set and validation set by the equidistant sampling method can improve the prediction accuracy of the hyperspectral model of apple canopy water content.
机译:在高光谱模型中探索了等距采样方法的影响,以准确预测苹果树冠层的含水量。利用等距采样和随机采样的样本分配方法,探索了光谱反射率与含水量的关系,建立了苹果冠层含水量的逐步回归模型。结果表明,随机抽样模型为Y = 0.4797 − 721787.3883×Z3 − 766567.1103×Z5 − 771392.9030×Z6;等距采样模型为Y = 0.4613 − 480610.4213×Z2 − 552189.0450×Z5 − 1006181.8358×Z6。经过验证,等距采样方法经过验证可提供出色的预测能力。校准集确定系数0.6599和验证集确定系数0.8221分别比随机抽样模型高9.20%和10.90%。均方根误差(RMSE)为0.0365,相对误差(RE)为0.0626,分别比随机抽样模型低17.23%和17.09%。用等距采样方法将校准集和验证集分开可以提高苹果冠层含水量的高光谱模型的预测准确性。

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