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在有序样本中估计 ROC 曲线下的面积。

On estimating the area under the ROC curve in ranked set sampling.

机构信息

Department of Statistics, 185150Hakim Sabzevari University, Sabzevar, Iran.

Department of Statistics, Faculty of Mathematics and Statistics, 48437University of Isfahan, Isfahan Iran.

出版信息

Stat Methods Med Res. 2022 Aug;31(8):1500-1514. doi: 10.1177/09622802221097211. Epub 2022 May 12.

Abstract

In medical research, the receiver operating characteristic curve is widely used to evaluate accuracy of a continuous biomarker. The area under this curve is known as an index for overall performance of the biomarker. This article develops three new estimators of the area under the receiver operating characteristic curve in ranked set sampling. The first estimator is obtained under normality assumption. The two other estimators are constructed by applying a Box-Cox transformation on data, and then using either a parametric estimator or a kernel-density-based estimator. A simulation study is carried out to compare the proposed estimators with those available in the literature. It emerges that the new estimators offer some advantages in specific situations. Application of the methods is demonstrated using real data in the context of medicine.

摘要

在医学研究中,接收者操作特性曲线被广泛用于评估连续生物标志物的准确性。该曲线下的面积被称为生物标志物整体性能的指标。本文在有序集抽样中开发了三个新的接收器操作特性曲线下面积的估计量。第一个估计量是在正态性假设下得到的。另外两个估计量是通过对数据进行 Box-Cox 变换,然后使用参数估计量或核密度估计量构建的。进行了模拟研究,以比较所提出的估计量与文献中可用的估计量。结果表明,新的估计量在特定情况下具有一些优势。该方法在医学背景下的真实数据中得到了应用。

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