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Near infrared spectroscopy (NIRS) technology applied in millet feature extraction and variety identification

机译:近红外光谱(NIRS)技术在小米特征提取和品种识别中的应用

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Near infrared spectroscopy (NIRS) technology is widely used on agricultural products for quality detection, classification and variety identification due to its rapid speed and high-efficiency. NIRS experiments were conducted to identify varieties of DUN millet, JIN 21 millet and 5 other types of millet. The NIRS characteristic curves and data of millet samples were collected. The spectroscopic data on different types of millet were analyzed by discriminant analysis, principal component analysis and neural network technology. The calibration set correct classification was 98.9%. A BP neural network prediction model for millet was also built. It was found that the forecast results of original wave spectrum prediction model were best, with its correlation coefficient of validation (Rv) at 0.9999, the standard error of prediction (SEP) was 0.0191 and the root mean square error of prediction (RMSEP) was 0.0189. Moreover, the Rv of first derivative spectra was 0.9976, the SEP and RMSEP were 0.1043 and 0.1437, respectively, and the Rv, SEP and RMSEP of second derivative spectra were 0.9835, 0.28735 and 0.2720 respectively. This study laid the foundation for identification of millet varieties by NIRS.
机译:近红外光谱(NIRS)技术因其快速,高效而被广泛用于农产品的质量检测,分类和品种识别。进行了NIRS实验,以确定DUN小米,JIN 21小米和其他5种小米的品种。收集了NIRS特征曲线和小米样品的数据。通过判别分析,主成分分析和神经网络技术分析了不同类型小米的光谱数据。校准集正确分类为98.9%。还建立了小米的BP神经网络预测模型。发现原始波谱预测模型的预测结果最好,其验证的相关系数(Rv)为0.9999,预测的标准误差(SEP)为0.0191,预测的均方根误差(RMSEP)为。 0.0189。此外,一阶导数光谱的Rv为0.9976,SEP和RMSEP分别为0.1043和0.1437,二阶导数光谱的Rv,SEP和RMSEP分别为0.9835、0.28735和0.2720。该研究为利用近红外光谱技术鉴定小米品种奠定了基础。

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