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首页> 外文期刊>Biometrics: Journal of the Biometric Society : An International Society Devoted to the Mathematical and Statistical Aspects of Biology >Random effects modeling approaches for estimating ROC curves from repeated ordinal tests without a gold standard
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Random effects modeling approaches for estimating ROC curves from repeated ordinal tests without a gold standard

机译:在没有黄金标准的情况下,通过重复的有序检验来估计ROC曲线的随机效应建模方法

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摘要

Estimating diagnostic accuracy without a gold standard is an important problem in medical testing. Although there is a fairly large literature on this problem for the case of repeated binary tests, there is substantially less work for the case of ordinal tests. A noted exception is the work by Zhou, Castelluccio, and Zhou (2005, Biometrics 61, 600-609), which proposed a methodology for estimating receiver operating characteristic (ROC) curves without a gold standard from multiple ordinal tests. A key assumption in their work was that the test results are independent conditional on the true test result. I propose random effects modeling approaches that incorporate dependence between the ordinal tests, and I show through asymptotic results and simulations the importance of correctly accounting for the dependence between tests. These modeling approaches, along with the importance of accounting for the dependence between tests, are illustrated by analyzing the uterine cancer pathology data analyzed by Zhou et al. (2005).
机译:在没有金标准的情况下估计诊断准确性是医学测试中的重要问题。尽管对于重复的二进制测试,关于此问题的文献很多,但对于序数测试的工作却少得多。一个值得注意的例外是Zhou,Castelluccio和Zhou(2005,Biometrics 61,600-609)的工作,该工作提出了一种方法,该方法可通过多次试验在没有黄金标准的情况下估算接收器工作特性(ROC)曲线。他们工作中的一个关键假设是测试结果是独立于真实测试结果的条件。我提出了随机效应建模方法,该方法结合了有序测试之间的依赖性,并且通过渐近结果和模拟显示了正确考虑测试之间依赖性的重要性。通过分析Zhou等人分析的子宫癌病理数据,说明了这些建模方法以及考虑测试之间依赖性的重要性。 (2005)。

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