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Independent Component Analysis-Based Algorithm for Automatic Identification of Raman Spectra Applied to Artistic Pigments and Pigment Mixtures

机译:基于独立成分分析的艺术颜料和颜料混合物拉曼光谱自动识别算法

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摘要

A new method has been developed to automatically identify Raman spectra, whether they correspond to single- or multicomponent spectra. The method requires no user input or judgment. There are thus no parameters to be tweaked. Furthermore, it provides a reliability factor on the resulting identification, with the aim of becoming a useful support tool for the analyst in the decision-making process. The method relies on the multivariate techniques of principal component analysis (PCA) and independent component analysis (ICA), and on some metrics. It has been developed for the application of automated spectral analysis, where the analyzed spectrum is provided by a spectrometer that has no previous knowledge of the analyzed sample, meaning that the number of components in the sample is unknown. We describe the details of this method and demonstrate its efficiency by identifying both simulated spectra and real spectra. The method has been applied to artistic pigment identification. The reliable and consistent results that were obtained make the methodology a helpful tool suitable for the identification of pigments in artwork or in paint in general.
机译:已经开发出一种新方法来自动识别拉曼光谱,无论它们是对应于单组分光谱还是多组分光谱。该方法不需要用户输入或判断。因此,没有要调整的参数。此外,它提供了结果识别的可靠性因素,目的是成为决策者分析人员的有用支持工具。该方法依赖于主成分分析(PCA)和独立成分分析(ICA)的多元技术以及某些指标。它是为自动光谱分析的应用而开发的,其中分析光谱是由不了解被分析样品的光谱仪提供的,这意味着样品中的组分数是未知的。我们描述这种方法的细节,并通过识别模拟光谱和真实光谱来证明其效率。该方法已应用于艺术性颜料识别。所获得的可靠且一致的结果使该方法成为一种有用的工具,适用于鉴定艺术品或一般涂料中的颜料。

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