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Study on discrimination of white tea and albino tea based on near-infrared spectroscopy and chemometrics.

机译:基于近红外光谱和化学计量学的白茶和白化茶鉴别研究。

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摘要

Background. White tea and albino tea have their own nutritional characteristics, but from the appearance they are quite similar to each other. It is not easy to distinguish them with existing analytical tools or by visual inspection. The current study proposed a rapid method to discriminate them based on near-infrared (NIR) spectroscopy associated with supervised pattern recognition methods. Results. For this purpose, discriminant partial least-squares (DPLS) and discriminant analysis (DA) were employed to build classification models on the basis of a reduced subset of wavenumbers and different pretreatment methods. A completely independent validation set was also used to test the model performance. The results of the DA model showed that with the SNV Karl Norris derivative spectral pre-treatment samples from the two different origins could be 100% correctly discriminated. Similarly, for the DPLS model, the best classification results were obtained with the multiplicative scattering correction (MSC) + first derivative spectral pre-treatments; the accuracy of identification was 98.48% for the calibration set and 100% for the validation set. Conclusion. The overall results demonstrated that NIR spectroscopy with pattern recognition could be successfully applied to discriminate white tea and albino tea quickly and non-destructively without the need for various analytical determinations
机译:背景。白茶和白化茶有其自身的营养特征,但从外观上看它们非常相似。用现有的分析工具或目视检查来区分它们并不容易。当前的研究提出了一种基于监督模式识别方法的基于近红外(NIR)光谱的鉴别方法。结果。为此,在减少的波数子集和不同的预处理方法的基础上,采用判别偏最小二乘(DPLS)和判别分析(DA)来建立分类模型。完全独立的验证集也用于测试模型性能。 DA模型的结果表明,使用SNV的Karl Norris导数光谱预处理样品可以正确区分两个不同来源的样品。类似地,对于DPLS模型,通过乘积散射校正(MSC)+一阶导数光谱预处理可获得最佳分类结果。校准集的识别准确率为98.48%,验证集的识别准确率为100%。结论。总体结果表明,具有模式识别功能的NIR光谱可以成功地快速,无损地鉴别白茶和白化茶,而无需进行各种分析测定。

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