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Biomarker Identification and Rule Extraction from Mass Spectral Serum Profiles

机译:来自质谱血清型材的生物标志物鉴定和规则提取

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In this paper, we introduce a novel feature selection method that combines ant colony optimization (AGO) with support vector machine (SVM) to identify candidate biomarkers from mass spectral serum profiles. In addition, we present an innovative rule extraction algorithm that uses ACO to select accurate IF-THEN rules for the classification of mass spectra. We applied the proposed feature selection and rule extraction methods to identify candidate biomarkers and extract IF-THEN classification rules from MALDI-TOF spectra of enriched serum. The candidate biomarkers and the associated rules distinguished hepatocellular carcinoma patients from matched controls with high sensitivity and specificity.
机译:在本文中,我们介绍了一种新颖的特征选择方法,将蚁群优化(前)与支持向量机(SVM)结合起来识别来自质谱血清型材的候选生物标志物。此外,我们提出了一种创新的规则提取算法,它使用ACO为质谱分类选择准确的IF-DON-DOTE规则。我们应用了所提出的特征选择和规则提取方法,以确定来自富集血清的MALDI-TOF光谱的候选生物标志物和提取IF-DOT分类规则。候选生物标志物和相关规则与匹配对照的肝细胞癌患者具有高敏感性和特异性。

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