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Raman spectroscopy-based label-free cell identification using wavelet transform and support vector machine

机译:基于拉曼的基于光谱的无标记单元识别使用小波变换和支持向量机

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摘要

Wavelet transform is a powerful mathematical tool for signal processing. Its high capabilities including signal decomposition, compressing and de-noising make it useful for numerous applications, especially for processing weak signals such as in Raman spectra. Raman spectroscopy is a highly accurate and non-destructive method to identify materials, so it can be an appropriate mechanism for the analysis of circulating tumor cells (CTCs). In this paper we present a method comprising of Raman spectroscopy and wavelet transform to distinguish between different types of leukocytes and CTCs derived from breast cancer (MCF7). All types of leukocytes are isolated from the peripheral blood of healthy donors while CTCs are provided from cell cultures. All of the cells are dried on quartz discs. Raman spectra are collected from cells that are excited with a 785 nm laser. Wavelet transform is used for signal preprocessing such as background correction and signal de-noising. Then a discrete wavelet transform is used as a feature extraction tool. At the end of the process, support vector machine (SVM) is used to classify the spectra into two groups including leukocytes and CTCs. Distinguishing between the cells is achieved with an accuracy of more than 98.99%.
机译:小波变换是一种用于信号处理的强大数学工具。其高能力包括信号分解,压缩和去噪,使其可用于许多应用,特别是用于处理弱信号,例如拉曼光谱。拉曼光谱是一种高度准确和无损的方法来识别材料,因此可以是分析循环肿瘤细胞(CTC)的适当机制。在本文中,我们提出了一种方法,包括拉曼光谱和小波变换,以区分不同类型的白细胞和来自乳腺癌(MCF7)的CTC。所有类型的白细胞都与健康供体的外周血分离,而CTC由细胞培养物提供。所有细胞都在石英盘上干燥。从用785nm激光激发的细胞收集拉曼光谱。小波变换用于信号预处理,例如背景校正和信号去噪。然后将离散小波变换用作特征提取工具。在该过程结束时,支持向量机(SVM)用于将光谱分为两组,包括白细胞和CTC。通过高度为98.99%的精度实现细胞之间的区分。

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  • 来源
    《RSC Advances》 |2016年第55期|共7页
  • 作者单位

    Amirkabir Univ Technol Photon Engn Grp 424 Hafez Ave Tehran Iran;

    Amirkabir Univ Technol Photon Engn Grp 424 Hafez Ave Tehran Iran;

    Univ Tehran Med Sci Res Ctr Mol &

    Cellular Imaging Tehran Iran;

    Univ Tehran Med Sci Inst Canc Canc Models Res Ctr Tehran Iran;

    Amirkabir Univ Technol Dept Elect Engn 424 Hafez Ave Tehran Iran;

    Univ Tehran Med Sci RCBTR Tehran Iran;

    Univ Tehran Med Sci Inst Canc Canc Models Res Ctr Tehran Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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