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Random forest and Bayesian prediction for Hepatitis B virus reactivation

机译:乙型肝炎病毒重新激活的随机森林和贝叶斯预测

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This paper established the random forest and Bayesian classification prediction models and aims to find out the risk factors of Hepatitis B virus (HBV) reactivation after the precise radiotherapy in patients with primary liver cancer (PLC). Using the identified risk factors we can provide the reference to the doctor to reduce the incidence of the disease. Firstly, we proposed random forest method to select key features and then establish classification prediction models with the key subset. All the features are sorted according to the importance. We select 5 most important features which would be combined into a brand new feature subset and with the new subset we establish random forest and Bayesian classification prediction model. We find that HBV DNA level, TNM tumor staging, V10, V20, outer margin of radiotherapy is the risk factors of HBV reactivation. The classification accuracy of random forest can be reached to 85.15% by using 5 fold cross validation under 200 decision trees, meanwhile, the accuracy of Bayesian classifier reached to 84.57% by using 10 fold cross validation. The experimental results showed that the random forest can be used to evaluate the importance of variables and select the key features. And also, it is a better method to solve the classification prediction problem of HBV reactivation.
机译:本文建立了随机森林和贝叶斯分类预测模型,旨在找出精确放疗后原发性肝癌(PLC)患者中乙型肝炎病毒(HBV)活化的危险因素。使用确定的危险因素,我们可以为医生减少疾病的发生提供参考。首先,我们提出了随机森林方法来选择关键特征,然后建立具有关键子集的分类预测模型。所有功能均根据重要性进行排序。我们选择了5个最重要的特征,这些特征将被组合成一个全新的特征子集,并使用新的子集建立随机森林和贝叶斯分类预测模型。我们发现HBV DNA水平,TNM肿瘤分期,V10,V20,放射治疗的外缘是HBV激活的危险因素。通过在200个决策树下进行5倍交叉验证,可以使随机森林的分类精度达到85.15%,而通过10倍交叉验证,贝叶斯分类器的分类精度可以达到84.57%。实验结果表明,随机森林可用于评估变量的重要性并选择关键特征。而且,它是解决HBV激活分类预测问题的一种更好的方法。

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