A correction method for mitigating absorbance discrepancies between near-infrared spectrometers through the incorporation of blended carbon-titanium dioxide powder

IF 2.7 3区 化学 Q2 CHEMISTRY, ANALYTICAL Vibrational Spectroscopy Pub Date : 2024-04-02 DOI:10.1016/j.vibspec.2024.103686
Zhixiang Zhang , Guimin Cai , Jiachen Li , Hubin Liu , Tiancheng Huang , Longlian Zhao , Junhui Li
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Abstract

In near-infrared spectroscopy analysis, ensuring the accurate transfer of models between different instruments relies on maintaining the accuracy of instrument wavelengths and absorbance. To mitigate absorbance drift at different wavelength points, this paper proposes a near-infrared spectroscopy point-by-point quadratic polynomial correction method based on carbon-titanium dioxide powder samples. The method establishes a quadratic polynomial relationship model for the absorbance of each wavelength point between the main instrument and slave instruments. The study utilized two S450 grating-based diffuse reflection near-infrared spectroscopy instruments, with one serving as the main instrument and the other as the slave instrument. The point-by-point quadratic polynomial was employed to correct wheat spectra collected by the slave instruments, and a crude protein content prediction model for wheat was established, comparing it with linear regression correction. After correction, the average Euclidean distance of wheat spectra decreased by 66.71%, from 0.0937 to 0.0321, and the average peak-valley Euclidean distance decreased by 72.28%, from 0.0203 to 0.0056. The standard deviation of the predicted results decreased by 90.69%, from 1.4372 to 0.1338. The correction effect of the method combined with traditional preprocessing methods was superior to using preprocessing methods alone. Overall, the near-infrared spectroscopy point-by-point quadratic polynomial correction method based on carbon-titanium dioxide powder samples significantly reduces spectral differences between different instruments, enhances spectral consistency, and diminishes prediction errors, achieving improved model sharing between instruments.

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通过加入混合碳二氧化钛粉末减少近红外光谱仪吸光度差异的校正方法
在近红外光谱仪分析中,确保不同仪器之间模型的准确转移有赖于保持仪器波长和吸光度的准确性。为了减轻不同波长点的吸光度漂移,本文提出了一种基于碳钛二氧化物粉末样品的近红外光谱仪逐点二次多项式校正方法。该方法为主仪器和从仪器之间每个波长点的吸光度建立了二次多项式关系模型。研究使用了两台基于 S450 光栅的漫反射近红外光谱仪,其中一台为主仪器,另一台为从仪器。采用逐点二次多项式对从属仪器采集的小麦光谱进行校正,建立了小麦粗蛋白含量预测模型,并与线性回归校正进行了比较。校正后,小麦光谱的平均欧氏距离从 0.0937 减小到 0.0321,减少了 66.71%;峰谷平均欧氏距离从 0.0203 减小到 0.0056,减少了 72.28%。预测结果的标准偏差降低了 90.69%,从 1.4372 降至 0.1338。该方法与传统预处理方法相结合的校正效果优于单独使用预处理方法。总之,基于碳-二氧化钛粉末样品的近红外光谱逐点二次多项式校正方法显著减少了不同仪器之间的光谱差异,提高了光谱一致性,减小了预测误差,实现了仪器之间更好的模型共享。
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来源期刊
Vibrational Spectroscopy
Vibrational Spectroscopy 化学-分析化学
CiteScore
4.70
自引率
4.00%
发文量
103
审稿时长
52 days
期刊介绍: Vibrational Spectroscopy provides a vehicle for the publication of original research that focuses on vibrational spectroscopy. This covers infrared, near-infrared and Raman spectroscopies and publishes papers dealing with developments in applications, theory, techniques and instrumentation. The topics covered by the journal include: Sampling techniques, Vibrational spectroscopy coupled with separation techniques, Instrumentation (Fourier transform, conventional and laser based), Data manipulation, Spectra-structure correlation and group frequencies. The application areas covered include: Analytical chemistry, Bio-organic and bio-inorganic chemistry, Organic chemistry, Inorganic chemistry, Catalysis, Environmental science, Industrial chemistry, Materials science, Physical chemistry, Polymer science, Process control, Specialized problem solving.
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