首页> 外文期刊>European food research and technology =: Zeitschrift fur Lebensmittel-Untersuchung und -Forschung. A >Fast determination of anthocyanins in red grape musts by Fourier transform mid-infrared spectroscopy and partial least squares regression
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Fast determination of anthocyanins in red grape musts by Fourier transform mid-infrared spectroscopy and partial least squares regression

机译:通过傅里叶变换中红外光谱和偏最小二乘回归的红葡萄中的快速测定红葡萄中的花青素

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The viability of using the Fourier transform mid-infrared spectroscopy matched with partial least squares regression (PLS-R) for the determination of 12 anthocyanins (five non-acylated, three acetylated, three p-coumaroylated and one caffeoylated 3-O-glucosides) in red grapes musts has been studied. Four different PLS regression models were built using 257 samples of grape musts of three harvests, and the prediction of the anthocyanin concentrations using these models was evaluated by internal and external validation sample sets. Cross-validation errors between 9.4 and 30.6 % were attained for major anthocyanins. The major one, malvidin-3-O-glucoside (range of concentrations between 58.78 and 202.76 mg/L), showed standard errors of calibration between 9.01 and 21.12 mg/L. Standard prediction errors for an external validation set including must samples of a new harvest were quite high (between 9.55 and 56.16 %), but somewhat lower (14.91-40.75 %) when considering the regression model including musts of the three harvest. However, good efficiency was observed when using predicted values to order the different musts according to increasing anthocyanin concentration. A correction of FT-IR predicted values should be introduced in order to have more exact absolute values. The proposed method is quick and simple and can be easily implemented for routine winery control of musts and to be used as a quality parameter of harvested grape in terms of their potential contribution to wine color.
机译:使用傅里叶变换中红外光谱的可行性与部分最小二乘回归(PLS-R)相匹配,用于测定12个花青素(五个非酰化,三个乙酰化,三种p-香豆酰化和一种咖啡酸酯的3-O-葡糖苷)在红葡萄中已经研究过。使用257个葡萄样品三种不同的PLS回归模型建造了三个收获的257个样本,并且通过内部和外部验证样本集评估了使用这些模型的花青素浓度的预测。主要花青素达到9.4至30.6%之间的交叉验证误差。主要的麦类-3-O-葡糖苷(58.78和202.76 mg / L之间的浓度范围),显示出9.01和21.12 mg / L之间的标准校准误差。外部验证集的标准预测误差包括新收获的必须样本相当高(在9.55和56.16%之间),但在考虑包括三个收获的必须的回归模型时,略低(14.91-40.75%)。然而,根据增加的花青素浓度,使用预测值时,观察到良好的效率。应该引入FT-IR预测值的校正,以便具有更精确的绝对值。所提出的方法是快速简单的,可以很容易地实现用于必须的常规酿酒厂控制,并用作其对葡萄酒颜色的潜在贡献的收获葡萄的质量参数。

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