首页> 外文期刊>Vibrational Spectroscopy: An International Journal devoted to Applications of Infrared and Raman Spectroscopy >Application of a data fusion strategy combined with multivariate statistical analysis for quantification of puerarin in Radix puerariae
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Application of a data fusion strategy combined with multivariate statistical analysis for quantification of puerarin in Radix puerariae

机译:数据融合策略结合多元统计分析对葛根虫葛根素定量的应用

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摘要

Motivated by the wide use of Radix puerariae (RP) in the food and pharmaceutical industries, a reliable approach was developed for the quantitative analysis of puerarin from RP. Data fusion strategy based on near infrared (NIR) and ultraviolet (UV) spectra is proposed herein to establish a reliable partial least squares (PLS) regression model for predicting the puerarin content, with critical variables being selected by iPLS algorithm. The developed PLS model performed better than that established only using NIR or UV spectra. Compared with an independent NIR or UV spectra model, low-level data fusion (LLDF) reduced the predicted error to a lower root mean square error of prediction (RMSEP) of 0.418, and a higher R-p value of 0.974 and RPD value of 4.295, indicating that there was a synergistic effect between the NIR and UV spectra for determination of puerarin. It was shown that the data fusion strategy coupled with chemometric methods effectively enhanced the model performance, and this combination could be a promising tool for accurate determination of components that cannot easily be quantified with individual spectral data.
机译:在食品和制药行业中广泛使用的葛根(RP)的激励,开发了一种可靠的方法,用于从RP的葛根素定量分析。本文提出了基于近红外(NIR)和紫外(UV)光谱的数据融合策略,以建立用于预测葛根素含量的可靠的局部最小二乘(PLS)回归模型,通过IPLS算法选择临界变量。开发的PLS模型比仅使用NIR或UV光谱建立的更好。与独立的NIR或UV光谱模型相比,低电平数据融合(LLDF)将预测误差降低到预测(RMSEP)的较低根均方误差为0.418,较高的RP值为0.974,RPD值为4.295,表明葛根和紫外光谱之间存在协同效应,用于测定葛根素。结果表明,与化学计量方法相结合的数据融合策略有效增强了模型性能,并且这种组合可以是有希望的工具,用于精确确定不能用单独的光谱数据容易地量化的组件。

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