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Detecting hospital fraud and claim abuse through diabetic outpatient services

机译:通过糖尿病门诊服务发现医院欺诈并索赔滥用

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摘要

Hospitals and health care providers tend to get involved in exaggerated and fraudulent medical claims initiated by national insurance schemes. The present study applies data mining techniques to detect fraudulent or abusive reporting by healthcare providers using their invoices for diabetic outpatient services. This research is pursued in the context of Taiwan’s National Health Insurance system. We compare the identification accuracy of three algorithms: logistic regression, neural network, and classification trees. While all three are quite accurate, the classification tree model performs the best with an overall correct identification rate of 99%. It is followed by the neural network (96%) and the logistic regression model (92%).
机译:医院和医疗保健提供者倾向于卷入由国家保险计划提出的夸大和欺诈性医疗索赔。本研究应用数据挖掘技术来检测医疗保健提供者使用其糖尿病门诊服务发票的欺诈或滥用举报。这项研究是在台湾国民健康保险制度的背景下进行的。我们比较了三种算法的识别精度:逻辑回归,神经网络和分类树。虽然这三个都非常准确,但是分类树模型的最佳表现是总正确识别率为99%。其次是神经网络(96%)和逻辑回归模型(92%)。

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