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首页> 外文期刊>Statistics in medicine >A non-parametric method for the comparison of partial areas under ROC curves and its application to large health care data sets.
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A non-parametric method for the comparison of partial areas under ROC curves and its application to large health care data sets.

机译:一种非参数方法,用于比较ROC曲线下的局部区域,并将其应用于大型医疗数据集。

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摘要

The receiver operating characteristic (ROC) curve is a statistical tool for evaluating the accuracy of diagnostic tests. Investigators often compare the validity of two tests based on the estimated areas under the respective ROC curves. However, the traditional way of comparing entire areas under two ROC curves is not sensitive when two ROC curves cross each other. Also, there are some cutpoints on the ROC curves that are not considered in practice because their corresponding sensitivities or specificities are unacceptable. For the purpose of comparing the partial area under the curve (AUC) within a specific range of specificity for two correlated ROC curves, a non-parametric method based on Mann-Whitney U-statistics has been developed. The estimation of AUC along with its estimated variance and covariance is simplified by a method of grouping the observations according to their cutpoint values. The method is used to evaluate alternative logistic regression models that predict whether a subject has incident breast cancer based on information in Medicare claims data. Copyright 2002 John Wiley & Sons, Ltd.
机译:接收器工作特性(ROC)曲线是用于评估诊断测试准确性的统计工具。研究人员经常根据各自ROC曲线下的估计面积比较两种测试的有效性。但是,当两条ROC曲线相互交叉时,比较两条ROC曲线下的整个区域的传统方法并不敏感。另外,ROC曲线上有一些切点在实践中没有考虑,因为它们相应的敏感性或特异性是不可接受的。为了比较在两条特定的ROC曲线的特定范围内的曲线下的局部面积(AUC),已开发了一种基于Mann-Whitney U统计的非参数方法。通过根据观察值的切点对观察值进行分组的方法,可以简化AUC的估计以及估计的方差和协方差。该方法用于评估可替代的逻辑回归模型,该模型可根据Medicare索赔数据中的信息预测受试者是否患有乳腺癌。版权所有2002 John Wiley&Sons,Ltd.

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