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Blind decomposition of infrared spectra using flexible component analysis

机译:灵活成分分析法盲分解红外光谱

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The paper presents flexible component analysis-based blind decomposition of the mixtures of Fourier transform of infrared spectral (FT-IR) data into pure components, wherein the number of mixtures is less than number of pure components. The novelty of the proposed approach to blind FT-IR spectra decomposition is in use of hierarchical or local alternating least square nonnegative matrix factorization (HALS NMF) method with smoothness and sparseness constraints simultaneously imposed on the pure components. In contrast to many existing blind decomposition methods no a priori information about the number of pure components is required. It is estimated from the mixtures using robust data clustering algorithm in the wavelet domain. The HALS NMF method is compared favorably against three sparse component analysis algorithms on experimental data with the known pure component spectra. Proposed methodology can be implemented as a part of software packages used for the analysis of FT-IR spectra and identification of chemical compounds.
机译:本文提出了基于柔性成分分析的将红外光谱(FT-IR)数据的傅里叶变换的混合物盲分解为纯组分的方法,其中混合物的数量少于纯组分的数量。提出的盲FT-IR光谱分解方法的新颖之处在于,使用了层次或局部交替最小二乘非负矩阵分解(HALS NMF)方法,同时对纯组分施加了平滑度和稀疏度约束。与许多现有的盲分解方法相反,不需要关于纯组分数量的先验信息。使用小波域中的鲁棒数据聚类算法从混合物中进行估计。在已知纯组分光谱的实验数据上,HALS NMF方法与三种稀疏组分分析算法相比具有优势。提议的方法可以作为用于FT-IR光谱分析和化合物鉴定的软件包的一部分来实施。

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