首页> 外文会议>2008 International Conference on Machine Learning and Cybernetics(2008机器学习与控制论国际会议)论文集 >NONDESTRUCTIVE PREDICTION OF ACETOLACTATE SYNTHASE OF OILSEED RAPE LEAVES USING VISIBLE/NEAR-INFRARED SPECTROSCOPY AND BP NEURAL NETWORKS
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NONDESTRUCTIVE PREDICTION OF ACETOLACTATE SYNTHASE OF OILSEED RAPE LEAVES USING VISIBLE/NEAR-INFRARED SPECTROSCOPY AND BP NEURAL NETWORKS

机译:基于可见/近红外光谱和BP神经网络的油菜叶片乙酰乳酸合酶无损预测

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A new acetolactate synthase (ALS)-inhibiting herbicide of Pyribambenz-propyl (PP) was applied to oilseed rape leaves with different positions. ALS could reflect the growing states of oilseed rape. Visible and near-infrared (Vis/NIR) spectroscopy was investigated for fast and non-destructive determination of ALS in rapeseed leaves. Partial least squares (PLS) analysis was the calibration method with different spectral preprocessing methods. The best PLS models were obtained by first-derivative spectra for ALS, Simultaneously, certain latent variables were used as the inputs of back propagation neural networks (BPNN) models with sigmoid function. The results demonstrated that BPNN method outperformed PLS method. The correlation coefficient, RMSEP and bias in validation set by BPNN were 0.994, 2.460 and -1.536 for ALS, respectively. The results indicated that Vis/NIR spectroscopy combined with BPNN could be successfully applied for the determination of ALS of rapeseed leaves. The results would be helpful for further on field analysis of using Vis/NIR spectroscopy to monitor the growing states and biological properties of oilseed rape.
机译:将一种新的抑制乙酰乳酸合酶(ALS)的吡喃苯甲酸丙基(PP)除草剂施用到不同位置的油菜油菜叶片上。 ALS可能反映了油菜的生长状态。对可见和近红外(Vis / NIR)光谱进行了研究,以快速,无损地测定油菜叶片中的ALS。偏最小二乘(PLS)分析是具有不同光谱预处理方法的校准方法。通过ALS的一阶导数光谱获得了最佳的PLS模型,同时,将某些潜在变量用作具有S形函数的反向传播神经网络(BPNN)模型的输入。结果表明,BPNN方法优于PLS方法。 BPNN的相关系数,RMSEP和验证偏差由ALS分别设置为0.994、2.460和-1.53​​6。结果表明,Vis / NIR光谱结合BPNN可以成功地用于测定油菜叶片的ALS。该结果将有助于进一步使用Vis / NIR光谱法监测油菜的生长状况和生物学特性的田间分析。

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