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Efficient Blind Spectral Unmixing of Fluorescently Labeled Samples Using Multi-Layer Non-Negative Matrix Factorization

机译:使用多层非负矩阵分解的荧光标记样品的高效盲光谱解混

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摘要

The ample variety of labeling dyes and staining methods available in fluorescence microscopy has enabled biologists to advance in the understanding of living organisms at cellular and molecular level. When two or more fluorescent dyes are used in the same preparation, or one dye is used in the presence of autofluorescence, the separation of the fluorescent emissions can become problematic. Various approaches have been recently proposed to solve this problem. Among them, blind non-negative matrix factorization is gaining interest since it requires little assumptions about the spectra and concentration of the fluorochromes. In this paper, we propose a novel algorithm for blind spectral separation that addresses some of the shortcomings of existing solutions: namely, their dependency on the initialization and their slow convergence. We apply this new algorithm to two relevant problems in fluorescence microscopy: autofluorescence elimination and spectral unmixing of multi-labeled samples. Our results show that our new algorithm performs well when compared with the state-of-the-art approaches for a much faster implementation.
机译:荧光显微镜中可用的多种标记染料和染色方法使生物学家能够在细胞和分子水平上进一步了解活生物体。当在相同的制剂中使用两种或多种荧光染料,或在自发荧光的情况下使用一种染料时,荧光发射的分离会成为问题。最近已经提出了各种方法来解决这个问题。其中,盲非负矩阵分解已引起人们的兴趣,因为它几乎不需要对荧光染料的光谱和浓度进行假设。在本文中,我们提出了一种用于盲光谱分离的新颖算法,该算法解决了现有解决方案的一些缺点:即它们对初始化的依赖性以及它们的缓慢收敛。我们将此新算法应用于荧光显微镜中的两个相关问题:自体荧光消除和多标记样品的光谱解混。我们的结果表明,与最新方法相比,我们的新算法性能更好,实现速度更快。

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