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Weighted spectral reconstruction method for discrimination of bacterial species with low signal-to-noise ratio Raman measurements

机译:具有低信噪比拉曼测量的细菌种类的加权光谱重构方法

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摘要

Raman spectroscopy is a label-free and non-destructive spectroscopic technique that has been explored for bacterial identification. However, noise often interferes with the interesting Raman peaks because the Raman signal is inherently weak, especially for bacterial samples. Although this problem can be solved by increasing the exposure time or the power of the excitation laser, a longer acquisition time is required or the risk of sample damage is increased. In contrast, short exposure time and low laser power often lead to inadequate acquisition of Raman scattering, in which the Raman spectra with low signal-to-noise ratio (SNR) is difficult to be further analyzed. In order to quickly and accurately characterize biological samples by using low SNR Raman measurements, a weighted spectral reconstruction based method was developed and tested on Raman spectra with low SNR from 20 bacterial samples of two species. Principal component analysis followed by support vector machine was applied on the reference Raman spectra and the spectra recovered from the low SNR Raman measurements by the proposed method, the traditional spectral reconstruction method, and four other commonly used de-noising methods for the discrimination of bacterial species. The results showed that a classification accuracy of 90% was achieved based on our method, which was comparable to that of the reference Raman spectra and showed significant advantages over other spectral recovery methods. Therefore, the weighted spectral reconstruction method can preserve the most biochemical information for the bacterial species' identification while removing the noise from the low SNR Raman spectra, in which the advantages of lesser sample damage and shorter acquisition time would promote wider biomedical applications of Raman spectroscopy.
机译:拉曼光谱是一种无标签和非破坏性的光谱技术,已被探索用于细菌鉴定。然而,噪声通常会干扰有趣的拉曼峰,因为拉曼信号固有弱,特别是对于细菌样本。尽管通过增加激发激光的曝光时间或功率可以解决这个问题,但是需要更长的采集时间或者样品损坏的风险增加。相反,短曝光时间和低激光功率通常导致拉曼散射的采集不足,其中难以进一步分析具有低信噪比(SNR)的拉曼光谱。为了通过使用低SNR拉曼测量来快速和准确地表征生物样本,在具有低SNR的拉曼光谱上开发并测试了一种基于加权的谱重建的方法,从20种的20种细菌样品。主要成分分析,然后施加支持向量机的参考拉曼光谱,并通过所提出的方法,传统光谱重建方法和四种其他常用的去噪方法,从低SNR拉曼测量中恢复的光谱。物种。结果表明,基于我们的方法实现了90%的分类精度,其与参考拉曼光谱的方法相当,并且呈现出与其他光谱回收方法的显着优势。因此,加权光谱重建方法可以保留细菌种类的最大生化信息,同时从低SNR拉曼光谱去除噪声,其中样品损伤较小和更短的采集时间将促进拉曼光谱的更广泛的生物医学应用。

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  • 来源
    《RSC Advances》 |2019年第17期|共9页
  • 作者单位

    Northeastern Univ Sino Dutch Biomed &

    Informat Engn Sch Shenyang 110169 Liaoning Peoples R China;

    Northeastern Univ Sino Dutch Biomed &

    Informat Engn Sch Shenyang 110169 Liaoning Peoples R China;

    Sci &

    Technol Opt Radiat Lab Beijing 110854 Peoples R China;

    Northeastern Univ Sino Dutch Biomed &

    Informat Engn Sch Shenyang 110169 Liaoning Peoples R China;

    Univ Texas El Paso Coll Engn El Paso TX 79968 USA;

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