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Generalized Confidence Interval Estimation for the Difference in Paired Areas Under the ROC Curves in the Absence of a Gold Standard

机译:黄金标准下ROC曲线下成对区域差异的广义置信区间估计

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Receiver operating characteristic (ROC) curves can be used to assess the accuracy of tests measured on ordinal or continuous scales. The most commonly used measure for the overall diagnostic accuracy of diagnostic tests is the area under the ROC curve (AUC). A gold standard (GS) test on the true disease status is required to estimate the AUC. However, a GS test may be too expensive or infeasible. In many medical researches, the true disease status of the subjects may remain unknown. Under the normality assumption on test results from each disease group of subjects, we propose a heuristic method of estimating confidence intervals for the difference in paired AUCs of two diagnostic tests in the absence of a GS reference. This heuristic method is a three-stage method by combining the expectation-maximization (EM) algorithm, bootstrap method, and an estimation based on asymptotic generalized pivotal quantities (GPQs) to construct generalized confidence intervals for the difference in paired AUCs in the absence of a GS. Simulation results show that the proposed interval estimation procedure yields satisfactory coverage probabilities and expected interval lengths. The numerical example using a published dataset illustrates the proposed method.
机译:接收器工作特性(ROC)曲线可用于评估按序或连续刻度测量的测试的准确性。诊断测试的总体诊断准确性最常用的度量是ROC曲线(AUC)下的面积。需要使用真实疾病状态的金标准(GS)测试来估计AUC。但是,GS测试可能过于昂贵或不可行。在许多医学研究中,受试者的真实疾病状况可能仍然未知。在对每个疾病组的测试结果进行正态假设的基础上,我们提出了一种启发式方法,可以在没有GS参考的情况下,估计两个诊断测试的配对AUC的差异的置信区间。这种启发式方法是一种三阶段方法,它将期望最大化(EM)算法,引导程序方法和基于渐近广义枢纽量(GPQ)的估计相结合,以构造成对的AUC差的广义置信区间,而无需GS。仿真结果表明,所提出的区间估计程序能够产生令人满意的覆盖概率和预期的区间长度。使用已发布的数据集的数值示例说明了所提出的方法。

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