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首页> 外文期刊>Journal of innovative optical health sciences >Geographical classification of Nanfeng mandarin by near infrared spectroscopy coupled with chemometrics methods
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Geographical classification of Nanfeng mandarin by near infrared spectroscopy coupled with chemometrics methods

机译:近红外光谱结合化学计量学对南丰柑的地理分类

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摘要

Near infrared spectroscopy (NIRS), coupled with principal component analysis and wavelength selection techniques, has been used to develop a robust and reliable reduced-spectrum classification model for determining the geographical origins of Nanfeng mandarins. The application of the changeable size moving window principal component analysis (CSMWPCA) provided a notably improved classification model, with correct classification rates of 92.00%, 100.00%, 90.00%, 100.00%, 100.00%, 100.00% and 100.00% for Fujian, Guangxi, Hunan, Baishe, Baofeng, Qiawan, Sanxi samples, respectively, as well as, a total classification rate of 97.52% in the wavelength range from 1007 to 1296 nm. To test and apply the proposed method, the procedure was applied to the analysis of 59 samples in an independent test set. Good identification results (correct rate of 96.61%) were also received. The improvement achieved by the application of CSMWPCA method was particularly remarkable when taking the low complexities of the final model ...
机译:近红外光谱(NIRS)结合主成分分析和波长选择技术,已被用于开发可靠而可靠的减光谱分类模型,以确定南丰柑的地理起源。可变大小移动窗口主成分分析(CSMWPCA)的应用提供了明显改进的分类模型,福建,广西的正确分类率为92.00%,100.00%,90.00%,100.00%,100.00%,100.00%和100.00%在1007至1296 nm的波长范围内,分别对湖南,白社,宝峰,恰湾,三溪进行了采样,总分类率为97.52%。为了测试和应用所提出的方法,该程序被应用于独立测试集中的59个样品的分析。鉴定结果良好(正确率96.61%)。当采用最终模型的低复杂度时,通过使用CSMWPCA方法实现的改进特别显着。

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