图形用户界面
拉曼光谱
计算机科学
MATLAB语言
可视化
生物系统
接口(物质)
用户友好型
模式识别(心理学)
人工智能
数据挖掘
光学
物理
生物
操作系统
最大气泡压力法
气泡
并行计算
程序设计语言
作者
Yajuan Liu,Michelle Kyne,Shuang Wang,Sheng Wang,Xiyong Yu,Cheng Wang
标识
DOI:10.1016/j.saa.2022.121686
摘要
The optimization of Raman instruments greatly expands our understanding of single-cell Raman spectroscopy. The improvement in the speed and sensitivity of the instrument and the implementation of advanced data mining methods help to reveal the complex chemical and biological information within the Raman spectral data. Here we introduce a new Matlab Graphical User-Friendly Interface (GUI), named “CELL IMAGE” for the analysis of cellular Raman spectroscopy data. The three main steps of data analysis embedded in the GUI include spectral processing, pattern recognition and model validation. Various well-known methods are available to the user of the GUI at each step of the analysis. Herein, a new subsampling optimization method is integrated into the GUI to estimate the minimum number of spectral collection points. The introduction of the signal-to-noise ratio (SNR) of the analyte in the binomial statistical model means the new subsampling model is more sophisticated and suitable for complicated Raman cell data. These embedded methods allow “CELL IMAGE” to transform spectral information into biological information, including single-cell visualization, cell classification and biomolecular/ drug quantification.
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