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首页> 外文期刊>Journal of near infrared spectroscopy >A data-driven near infrared calibration process including near infrared spectral thumbprints
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A data-driven near infrared calibration process including near infrared spectral thumbprints

机译:近红外校准过程的数据驱动,包括近红外光谱指纹

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Near infrared spectra are highly correlated, complex and noisy, and potentially have many more predictor variables than are required to estimate a parsimonious calibration equation. It is difficult to appreciate the implication of pre-processing choices that are made during calibration, especially in connection with the relationship between the transformed data and the reference values. Graphical methods can be used to understand these relationships better and decisions made during the calibration process can be based on the data alone. In this paper, new graphical tools are introduced to help the researcher better understand these complex relationships in the data. When combined with the proposed algorithm to explore spectra in relation to calibration, these tools enable a parsimonious calibration model to be formed. The results from two different (diesel and wheat) near infrared spectra show that it is possible to form successful calibration equations based on the proposed algorithm, which includes the two new graphical tools. There is a high level of correlation between the results of the different transformations considered, suggesting that in terms of parsimony, developing a calibration using the raw spectra could provide the most judicious outcome.
机译:近红外光谱具有高度相关性、复杂性和噪声,并且可能具有比估计简约校准方程所需的更多的预测变量。很难理解校准过程中进行的预处理选择的含义,尤其是与转换数据和参考值之间的关系有关的选择。可以使用图形化方法更好地理解这些关系,校准过程中的决策可以仅基于数据。本文介绍了新的图形工具,以帮助研究人员更好地理解数据中的这些复杂关系。当结合所提出的算法来探索与校准相关的光谱时,这些工具可以形成一个简洁的校准模型。两种不同的近红外光谱(柴油和小麦)的结果表明,基于所提出的算法,包括两种新的图形工具,可以成功地建立标定方程。所考虑的不同转换的结果之间存在高度的相关性,这表明在节约方面,使用原始光谱进行校准可以提供最明智的结果。

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