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Spectral discrimination of serum from liver cancer and liver cirrhosis using Raman spectroscopy

机译:用拉曼光谱法对肝癌和肝硬化血清的光谱鉴别

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In this paper, Raman spectra of human serum were measured using Raman spectroscopy, then the spectra was analyzed by multivariate statistical methods of principal component analysis (PCA). Then linear discriminant analysis (LDA) was utilized to differentiate the loading score of different diseases as the diagnosing algorithm. Artificial neural network (ANN) was used for cross-validation. The diagnosis sensitivity and specificity by PCA-LDA are 88% and 79%, while that of the PCA-ANN are 89% and 95%. It can be seen that modern analyzing method is a useful tool for the analysis of serum spectra for diagnosing diseases.
机译:本文采用拉曼光谱法测定人血清的拉曼光谱,然后采用主成分分析(PCA)的多元统计方法对光谱进行分析。然后利用线性判别分析(LDA)来区分不同疾病的负荷评分作为诊断算法。人工神经网络(ANN)用于交叉验证。 PCA-LDA的诊断敏感性和特异性分别为88%和79%,而PCA-ANN的诊断敏感性和特异性分别为89%和95%。可以看出,现代分析方法是用于分析血清谱以诊断疾病的有用工具。

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