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Empirical Likelihood-Based Confidence Intervals for the Sensitivity of a Continuous-Scale Diagnostic Test with Missing Data

机译:基于经验似然的置信区间,用于缺失数据的连续诊断测试的敏感性

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摘要

In a continuous-scale diagnostic test, the receiver operating characteristic (ROC) curve is useful to evaluate the range of the sensitivity at the cut-off point that yields a desired specificity. Many current studies on inference of the ROC curve focus on the complete data case. In this paper, an imputation-based profile empirical likelihood ratio for the sensitivity, which is free of bandwidth selection, is defined and shown to follow an asymptotically scaled Chi-square distribution. Two new confidence intervals are proposed for the sensitivity with missing data. Simulation studies are conducted to evaluate the finite sample performance of the proposed intervals in terms of coverage probability. A real example is used to illustrate the new methods.
机译:在连续尺度诊断测试中,接收器操作特性(ROC)曲线可用于评估产生所需特异性的截止点处的灵敏度范围。许多目前关于推断ROC曲线的研究专注于完整的数据案例。在本文中,定义并示出了无带宽选择的敏感性的基于估计的型材的经验似然比,并示出了沿着渐近缩放的Chi-Square分布。提出了两种新的置信区间,用于缺失数据的敏感性。进行仿真研究以评估覆盖概率方面提出的间隔的有限样本性能。真实的例子用于说明新方法。

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