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Rapid Quantitative Analysis of Corn Starch Adulteration in Konjac Glucomannan by Chemometrics-Assisted FT-NIR Spectroscopy

机译:化学计量学-傅立叶变换近红外光谱法快速定量分析魔芋葡甘露聚糖中玉米淀粉掺假现象

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摘要

Konjac glucomannan (KGM) adulterated with cheaper starch cannot easily be identified by visual inspection. This study proposed a rapid and simple method to quantitatively analyze corn starch adulteration in KGM by a Fourier transform near-infrared (FT-NIR) coupled with chemometrics. The partial least-squares (PLS) regression calibration models based on the FT-NIR were designed using 90 samples. Coefficient of determination (R (c) (2)) and root-mean-square error of PLS regression models in calibration set were found to be 0.982-0.990 and 3.596-2.693 % depending on the pretreatments of spectral data, respectively. The other 45 samples were used in the validation (30 samples) and external validation (15 samples) sets. Model 3 (using first derivative with 7 smoothing points) in the validation set yielded satisfactory performance with an R (v) (2) value and root-mean-square error of prediction of 0.989 and 4.890 %, respectively. The overall results indicate that FT-NIR spectroscopy could be a simple and efficient tool for the detection and quantification of the KGM adulterated with corn starch.
机译:掺入廉价淀粉的魔芋葡甘露聚糖(KGM)不能通过目视检查轻易识别。这项研究提出了一种快速,简单的方法,通过傅里叶变换近红外(FT-NIR)结合化学计量学来定量分析KGM中的玉米淀粉掺假。使用90个样本设计了基于FT-NIR的偏最小二乘(PLS)回归校准模型。根据光谱数据的预处理,在校准集中的PLS回归模型的测定系数(R(c)(2))和均方根误差分别为0.982-0.990和3.596-2.693%。其他45个样本用于验证(30个样本)和外部验证(15个样本)集。验证集中的模型3(使用具有7个平滑点的一阶导数)产生了令人满意的性能,R(v)(2)值和预测的均方根误差分别为0.989和4.890%。总体结果表明,FT-NIR光谱法可以是一种简单有效的工具,用于检测和定量掺入玉米淀粉的KGM。

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