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Pattern Recognition Methods Combined with Raman Spectra Applied to Distinguish Serums from Lung Cancer Patients and Healthy People

机译:模式识别方法与拉曼光谱相结合,以区分肺癌患者和健康人群的血清

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Raman spectroscopy was used to distinguish the serums from lung cancer patients and healthy people, through spectral pretreatment method combined with pattern recognition methods including principal component analysis (PCA), partial least squares-discriminant analysis (PLS-DA), un-correlated linear discriminant analysis (ULDA), etc. Through the comparisons of the results, it can be found that ULDA and LDA combined with multiple scatter correction (MSC) pretreatment method successfully distinguish the patients of lung cancer and healthy people. The method has academic significance and promising clinical application value.
机译:通过光谱预处理方法与包括主成分分析(PCA),局部最小二乘判别分析(PLS-DA),不相关的线性判别(PLS-DA),不相关的线性判别(PLS-DA),与模式识别方法结合的模式识别方法,将肺癌患者和健康人群区分血清血清。分析(ULDA)等通过结果的比较,可以发现ULDA和LDA结合多次散射校正(MSC)预处理方法成功区分肺癌和健康人的患者。该方法具有学术意义和有前途的临床应用价值。

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