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Determination and Visualization of Peimine and Peiminine Content in Fritillaria thunbergii Bulbi Treated by Sulfur Fumigation Using Hyperspectral Imaging with Chemometrics

机译:用高光谱成像与化学计量学用硫熏蒸治疗Fritillaria Thunbergii藜霉菌培米米和北美嘌呤含量的测定与可视化

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摘要

Rapid, non-destructive, and accurate quantitative determination of the effective components in traditional Chinese medicine (TCM) is required by industries, planters, and regulators. In this study, near-infrared hyperspectral imaging was applied for determining the peimine and peiminine content in Fritillaria thunbergii bulbi under sulfur fumigation. Spectral data were extracted from the hyperspectral images. High-performance liquid chromatography (HPLC) was conducted to determine the reference peimine and peiminine content. The successive projection algorithm (SPA), weighted regression coefficient (Bw), competitive adaptive reweighted sampling (CARS), and random frog (RF) were used to select optimal wavelengths, while the partial least squares (PLS), least-square support vector machine (LS-SVM) and extreme learning machine (ELM) were used to build regression models. Regression models using the full spectra and optimal wavelengths obtained satisfactory results with the correlation coefficient of calibration (r(c)), cross-validation (r(cv)) and prediction (r(p)) of most models being over 0.8. Prediction maps of peimine and peiminine content in Fritillaria thunbergii bulbi were formed by applying regression models to the hyperspectral images. The overall results indicated that hyperspectral imaging combined with regression models and optimal wavelength selection methods were effective in determining peimine and peiminine content in Fritillaria thunbergii bulbi, which will help in the development of an online detection system for real-world quality control of Fritillaria thunbergii bulbi under sulfur fumigation.
机译:行业,播种机和监管机构需要快速,无损性和准确的中药(TCM)中有效成分的定量测定。在该研究中,应用近红外高光谱成像用于在硫熏蒸下测定贝母幼虫霉菌的北菊和北美敏氨酰含量。从高光谱图像中提取光谱数据。进行高效液相色谱(HPLC)以确定参考培米菊和北美胺含量。连续投影算法(SPA),加权回归系数(BW),竞争性自适应重新重量采样(CARS)以及随机青蛙(RF)选择最佳波长,而部分最小二乘(PL),最小二乘支持向量机器(LS-SVM)和极端学习机(ELM)用于构建回归模型。使用全光谱和最佳波长的回归模型获得满意的结果,校准系数(R(C)),大多数模型的交叉验证(R(CV))和预测(R(P))超过0.8。通过将回归模型应用于高光谱图像来形成贝母培斯塔氏菌毒蕈族培米米和北美敏氨松含量的预测地图。总体结果表明,高光谱成像与回归模型和最佳波长选择方法相结合,可有效地确定贝斯蒂利疟原虫群岛培霉和北美尼霉素含量,这将有助于开发用于现实世界质量控制的在线检测系统,为贝母斯坦伯格谷族硫磺熏蒸。

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