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自适应小波变换可抑制背景和噪声,实现拉曼光谱定量分析。

Adaptive wavelet transform suppresses background and noise for quantitative analysis by Raman spectrometry.

机构信息

State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University, Tianjin 300072, China.

出版信息

Anal Bioanal Chem. 2011 Apr;400(2):625-34. doi: 10.1007/s00216-011-4761-5. Epub 2011 Feb 18.

Abstract

Discrete wavelet transform (DWT) provides a well-established means for spectral denoising and baseline elimination to enhance resolution and improve the performance of calibration and classification models. However, the limitation of a fixed filter bank can prevent the optimal application of conventional DWT for the multiresolution analysis of spectra of arbitrarily varying noise and background. This paper presents a novel methodology based on an improved, second-generation adaptive wavelet transform (AWT) algorithm. This AWT methodology uses a spectrally adapted lifting scheme to generate an infinite basis of wavelet filters from a single conventional wavelet, and then finds the optimal one. Such pretreatment combined with a multivariate calibration approach such as partial least squares can greatly enhance the utility of Raman spectroscopy for quantitative analysis. The present work demonstrates this methodology using two dispersive Raman spectral data sets, incorporating lactic acid and melamine in pure water and in milk solutions. The results indicate that AWT can separate spectral background and noise from signals of interest more efficiently than conventional DWT, thus improving the effectiveness of Raman spectroscopy for quantitative analysis and classification.

摘要

离散小波变换 (DWT) 为光谱去噪和基线消除提供了一种成熟的方法,可提高分辨率并改善校准和分类模型的性能。然而,固定滤波器组的局限性可能会阻止常规 DWT 对任意变化的噪声和背景的光谱进行最佳的多分辨率分析。本文提出了一种基于改进的第二代自适应小波变换 (AWT) 算法的新方法。该 AWT 方法使用光谱自适应提升方案从单个常规小波中生成无限的小波滤波器基础,并找到最佳的滤波器。这种预处理与多元校准方法(如偏最小二乘法)相结合,可以极大地提高拉曼光谱在定量分析中的实用性。本工作使用两个分散拉曼光谱数据集演示了该方法,其中包含在纯水中和牛奶溶液中的乳酸和三聚氰胺。结果表明,AWT 比常规 DWT 更有效地将光谱背景和噪声与感兴趣的信号分离,从而提高了拉曼光谱在定量分析和分类中的有效性。

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