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Empirical likelihood inference for area under the receiver operating characteristic curve using ranked set samples

机译:使用排序集样本对受试者工作特征曲线下面积进行经验似然推断

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摘要

Abstract The area under a receiver operating characteristic curve (AUC) is a useful tool to assess the performance of continuous‐scale diagnostic tests on binary classification. In this article, we propose an empirical likelihood (EL) method to construct confidence intervals for the AUC from data collected by ranked set sampling (RSS). The proposed EL‐based method enables inferences without assumptions required in existing nonparametric methods and takes advantage of the sampling efficiency of RSS. We show that for both balanced and unbalanced RSS, the EL‐based point estimate is the Mann–Whitney statistic, and confidence intervals can be obtained from a scaled chi‐square distribution. Simulation studies and two case studies on diabetes and chronic kidney disease data suggest that using the proposed method and RSS enables more efficient inference on the AUC.
机译:摘要 受试者工作特征曲线下面积(AUC)是评估连续尺度诊断测试二元分类性能的有用工具。在本文中,我们提出了一种经验似然 (EL) 方法,用于根据排名集抽样 (RSS) 收集的数据构建 AUC 的置信区间。所提出的基于EL的方法可以在没有现有非参数方法中需要假设的情况下进行推理,并利用RSS的采样效率。我们表明,对于平衡和非平衡 RSS,基于 EL 的点估计是 Mann-Whitney 统计量,并且置信区间可以从缩放卡方分布中获得。对糖尿病和慢性肾脏病数据的模拟研究和两个案例研究表明,使用所提出的方法和RSS可以更有效地推断AUC。

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