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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Identification of soybean varieties by terahertz spectroscopy and integrated learning method
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Identification of soybean varieties by terahertz spectroscopy and integrated learning method

机译:太赫兹光谱和综合学习方法鉴定大豆品种

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Terahertz (THz) spectroscopy and integrated learning method were utilized to identify ten types of soybean seeds in this work. Before soybean seeds were identified, seed sample of nine thicknesses were tested to verify THz spectra of soybeans prepared by grinding and polishing is feasible, and a statistical method of single factor variance was calculated to prove THz spectra have significant influence on soybean varieties. Then, the integrated learning method (DT_A) based on adaboost algorithm and decision tree (DT) was studied to identify soybean varieties by five pretreatment methods, thirty basic integrated classifiers and three compared methods. DT_A method combined with Savitzky Golay smoothing (SGS) and kernel principal component analysis (KPCA) obtained the best result of 99.24%. The best average accuracy of the proposed method was 89.29% for THz time-domain spectrum. The improved accuracy shows THz spectroscopy combined with integrated learning method may be an effective candidate technology for soybean detection.
机译:利用太赫兹(Thz)光谱和综合学习方法来鉴定这项工作中的十种类型的大豆种子。在鉴定大豆种子之前,测试了九个厚度的种子样品以验证通过研磨和抛光制备的大豆的THz光谱是可行的,并且计算单因素方差的统计方法以证明ZZ谱对大豆品种具有显着影响。然后,研究了基于AdaBoost算法和决策树(DT)的综合学习方法(DT_A),以鉴定五种预处理方法,三十个基本的综合分类器和三种比较方法鉴定大豆品种。 DT_A方法与Savitzky Golay平滑(SGS)和内核主成分分析(KPCA)相结合,获得了99.24%的最佳结果。该方法的最佳平均精度为THz时域谱的89.29%。提高的精度显示了与综合学习方法结合的THz光谱可以是用于大豆检测的有效候选技术。

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