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Nonparametric and Semiparametric Group Sequential Methods for Comparing Accuracy of Diagnostic Tests

机译:比较诊断测试准确性的非参数和半参数群序方法

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摘要

Comparison of the accuracy of two diagnostic tests using the receiver operating characteristic (ROC) curves from two diagnostic tests has been typically conducted using fixed sample designs. On the other hand, the human experimentation inherent in a comparison of diagnostic modalities argues for periodic monitoring of the accruing data to address many issues related to the ethics and efficiency of the medical study. To date, very little research has been done in the use of sequential sampling plans for comparative ROC studies, even when these studies may use expensive and unsafe diagnostic procedures. In this paper, we propose a nonparametric group sequential design plan. The nonparametric sequential method adapts a nonparametric family of weighted area under the ROC curve statistics (Wieand et al., Biometrika, 76: 585-592, 1989) and a group sequential sampling plan. We illustrate the implementation of this nonparametric approach for sequentially comparing ROC curves in the context of diagnostic screening for non-small cell lung cancer. We also describe a semiparametric sequential method based on proportional hazard models. We compare the statistical properties of the nonparametric approach to alternative semiparametric and parametric analyses in simulation studies. The results show the nonparametric approach is robust to model misspecification and has excellent finite sample performance.
机译:通常,使用固定样本设计来进行两次诊断测试的接收器工作特性(ROC)曲线对两次诊断测试准确性的比较。另一方面,诊断方式比较中固有的人体实验要求定期监控累积数据,以解决与医学研究的道德和效率有关的许多问题。迄今为止,即使采用顺序采样计划进行可比较的ROC研究,也很少进行研究,即使这些研究可能使用昂贵且不安全的诊断程序也是如此。在本文中,我们提出了一种非参数群序设计方案。非参数顺序方法适用于ROC曲线统计数据下的非参数加权区域族(Wieand等人,Biometrika,76:585-592,1989)和组顺序采样计划。我们说明了在非小细胞肺癌诊断筛查的背景下依次比较ROC曲线的这种非参数方法的实现。我们还描述了基于比例风险模型的半参数顺序方法。我们将非参数方法的统计属性与模拟研究中的替代半参数和参数分析进行比较。结果表明,非参数方法对于错误指定模型具有鲁棒性,并且具有出色的有限样本性能。

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