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New approach to generalized two-dimensional correlation spectroscopy. 1: Combination of principal component analysis and two-dimensional correlation spectroscopy

机译:广义二维相关光谱的新方法。 1:主成分分析和二维相关光谱法的结合

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摘要

The direct combination of chemometrics and two-dimensional (2D) correlation spectroscopy is considered. The use of a reconstructed data matrix based on the significant scores and loading vectors obtained from the principal component analysis (PCA) of raw spectral data is proposed as a method to improve the data quality for 2D correlation analysis. The synthetic noisy spectra were analyzed to explore the novel possibility of the use of PCA-reconstructed spectra, which are highly noise suppressed, 2D correlation analysis of this reconstructed data matrix, instead of the raw data matrix, can significantly reduce the contribution of the noise component to the resulting 2D correlation spectra.
机译:考虑化学计量学和二维(2D)相关光谱法的直接结合。提出了使用基于从原始光谱数据的主成分分析(PCA)获得的有效分数和负荷向量的重构数据矩阵作为提高2D相关性分析数据质量的方法。分析了合成噪声谱,以探索使用PCA重建谱的新可能性,该谱具有很高的噪声抑制能力,此重建数据矩阵(而不是原始数据矩阵)的2D相关分析可以显着降低噪声的影响分量到生成的2D相关光谱中。

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