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Determination of Chlorogenic Acid in Plant Samples by Using Near-Infrared Spectrum with Wavelet Transform Preprocessing

机译:小波变换近红外光谱法测定植物样品中的绿原酸

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By theoretical analysis, it is found that wavelet transform (WT) with a wavelet function can be regarded as a smoothing and a differentiation process, and that the order of differentiation is determined by the vanishing moment, which is an important property of a wavelet function. Therefore, a method based on the continuous wavelet transform (CWT) for removing the background in the near-infrared (NIR) spectrum is proposed, and it is used in the determination of the chlorogenic acid in plant samples as a preprocessing tool for partial least square (PLS) modeling. It is shown that the benefit of the proposed method lies not only in its performance to improve the quality of PLS model and the prediction precision, but also in its simplicity and practicability. It may become a convenient and efficient tool for preprocessing NIR spectral data sets in multivariate calibration.
机译:通过理论分析,发现具有小波函数的小波变换(WT)可以看作是平滑和微分过程,并且微分的阶由消失矩决定,这是小波函数的重要特性。 。因此,提出了一种基于连续小波变换(CWT)去除近红外(NIR)光谱背景的方法,并将其用于植物样品中绿原酸的测定,作为偏最小二乘的预处理工具。平方(PLS)建模。结果表明,该方法的优点不仅在于提高PLS模型质量和预测精度的性能,还在于其简便性和实用性。它可能成为在多元校准中预处理NIR光谱数据集的便捷有效工具。

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