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Estimating diagnostic accuracy of raters without a gold standard by exploiting a group of experts

机译:通过利用一组专家估算没有金标准的评级的诊断准确性

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摘要

In diagnostic medicine, estimating the diagnostic accuracy of a group of raters or medical tests relative to the gold standard is often the primary goal. When a gold standard is absent, latent class models where the unknown gold standard test is treated as a latent variable are often used. However, these models have been criticized in the literature from both a conceptual and a robustness perspective. As an alternative, we propose an approach where we exploit an imperfect reference standard with unknown diagnostic accuracy and conduct sensitivity analysis by varying this accuracy over scientifically reasonable ranges. In this article, a latent class model with crossed random effects is proposed for estimating the diagnostic accuracy of regional obstetrics and gynaecological (OB/GYN) physicians in diagnosing endometriosis. To avoid the pitfalls of models without a gold standard, we exploit the diagnostic results of a group of OB/GYN physicians with an international reputation for the diagnosis of endometriosis. We construct an ordinal reference standard based on the discordance among these international experts and propose a mechanism for conducting sensitivity analysis relative to the unknown diagnostic accuracy among them. A Monte-Carlo EM algorithm is proposed for parameter estimation and a BIC-type model selection procedure is presented. Through simulations and data analysis we show that this new approach provides a useful alternative to traditional latent class modeling approaches used in this setting.
机译:在诊断医学中,相对于黄金标准,估计一组评估者或医学测试的诊断准确性通常是主要目标。如果没有黄金标准,则经常使用将未知的黄金标准测试视为潜在变量的潜在类模型。但是,这些模型从概念和健壮性的角度都受到了文献的批评。作为替代方案,我们提出了一种方法,其中我们利用诊断准确度未知的不完善参考标准,并通过在科学合理范围内改变此准确度来进行敏感性分析。在本文中,提出了一种具有交叉随机效应的潜在类模型,以评估区域妇产科医师对子宫内膜异位症的诊断准确性。为了避免没有黄金标准的模型的弊端,我们利用一群在子宫内膜异位症诊断方面享有国际声誉的OB / GYN医生的诊断结果。我们根据这些国际专家之间的分歧构建了序贯的参考标准,并提出了一种针对未知诊断准确度进行敏感性分析的机制。提出了一种蒙特卡洛EM算法用于参数估计,并提出了一种BIC类型的模型选择程序。通过仿真和数据分析,我们证明了这种新方法为该环境中使用的传统潜在类建模方法提供了有用的替代方法。

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