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Recurrence Quantification as Potential Bio-markers for Diagnosis of Pre-Cancer

机译:复发量化作为诊断癌症前期的潜在生物标志物

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In this paper, the spectroscopy signals have been analyzed in recurrence plots (RP), and extract recurrence quantification analysis (RQA) parameters from the RP in order to classify the tissues into normal and different precancerous grades. Three RQA parameters have been quantified in order to extract the important features in the spectroscopy data. These features have been fed to different classifiers for classification. Simulation results validate the efficacy of the recurrence quantification as potential bio-markers for diagnosis of pre-cancer.
机译:在本文中,已在递归图(RP)中分析了光谱信号,并从RP中提取了递归定量分析(RQA)参数,以将组织分为正常和不同的癌前级别。为了提取光谱数据中的重要特征,已经量化了三个RQA参数。这些功能已馈入不同的分类器进行分类。仿真结果验证了复发量化作为诊断癌症前期潜在生物标志物的功效。

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