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基于连续小波变换的偏最小二乘回归用于拉曼光谱的定量分析。

Continuous wavelet transform based partial least squares regression for quantitative analysis of Raman spectrum.

出版信息

IEEE Trans Nanobioscience. 2013 Sep;12(3):214-21. doi: 10.1109/TNB.2013.2278288. Epub 2013 Aug 15.

Abstract

Quantitative analysis of Raman spectra using surface-enhanced Raman scattering (SERS) nanoparticles has shown the potential and promising trend of development in in vivo molecular imaging. Partial least square regression (PLSR) methods have been reported as state-of-the-art methods. However, the approaches fully rely on the intensities of Raman spectra and can not avoid the influences of the unstable background. In this paper we design a new continuous wavelet transform based PLSR (CWT-PLSR) algorithm that uses mixing concentrations and the average CWT coefficients of Raman spectra to carry out PLSR. We elaborate and prove how the average CWT coefficients with a Mexican hat mother wavelet are robust representations of Raman peaks, and the method can reduce the influences of unstable baseline and random noises during the prediction process. The algorithm was tested using three Raman spectra data sets with three cross-validation methods in comparison with current leading methods, and the results show its robustness and effectiveness.

摘要

基于表面增强拉曼散射(SERS)纳米粒子的拉曼光谱定量分析显示了其在体内分子成像中的潜在发展趋势。偏最小二乘法回归(PLSR)方法已被报道为最先进的方法。然而,这些方法完全依赖于拉曼光谱的强度,无法避免不稳定背景的影响。在本文中,我们设计了一种新的基于连续小波变换的 PLSR(CWT-PLSR)算法,该算法使用混合浓度和拉曼光谱的平均 CWT 系数来进行 PLSR。我们详细阐述并证明了使用墨西哥草帽母波的平均 CWT 系数如何成为拉曼峰的稳健表示,并且该方法可以在预测过程中减少不稳定基线和随机噪声的影响。该算法使用三个具有三种交叉验证方法的拉曼光谱数据集进行了测试,并与当前领先的方法进行了比较,结果表明其具有稳健性和有效性。

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