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Overpayment models for medical audits: multiple scenarios

机译:医疗审计的超额支付模型:多种方案

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Comprehensive auditing in Medicare programs is infeasible due to the large number of claims, therefore, the use of statistical sampling and estimation methods is crucial. We introduce super-population models to understand the overpayment phenomena within the claims population. The zero- and one-inflated mixture-based models can capture various overpayment patterns including the fully legitimate or fraudulent cases. We compare them with the existing models for symmetric and mixed payment populations that have different overpayment patterns. The distributional fit between the actual and estimated overpayments is assessed. We also provide comparisons of models with respect to their conformance with Centers for Medicare and Medicaid Services (CMS) guidelines. In addition to estimating the dollar amount of recovery, the proposed models can help the investigators to detect overpayment patterns.
机译:由于索赔众多,在Medicare计划中进行全面审核是不可行的,因此,使用统计抽样和估算方法至关重要。我们引入超级人口模型来了解索赔人群中的多付现象。基于零和一膨胀的混合模型可以捕获各种超额支付模式,包括完全合法或欺诈的案例。我们将它们与具有不同超额支付模式的对称和混合支付人口的现有模型进行比较。评估实际多付款和估计多付款之间的分配契合度。我们还比较了模型是否符合医疗保险和医疗补助中心(CMS)准则。除了估计回收的美元金额外,建议的模型还可以帮助调查人员检测多付模式。

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