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首页> 外文期刊>American Journal of Epidemiology >Adjusting for Partial Verification or Workup Bias in Meta-Analyses of Diagnostic Accuracy Studies
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Adjusting for Partial Verification or Workup Bias in Meta-Analyses of Diagnostic Accuracy Studies

机译:调整诊断准确性研究的荟萃分析中的部分验证或工作偏差

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摘要

A key requirement in the design of diagnostic accuracy studies is that all study participants receive both the test under evaluation and the reference standard test. For a variety of practical and ethical reasons, sometimes only a proportion of patients receive the reference standard, which can bias the accuracy estimates. Numerous methods have been described for correcting this partial verification bias or workup bias in individual studies. In this article, the authors describe a Bayesian method for obtaining adjusted results from a diagnostic meta-analysis when partial verification or workup bias is present in a subset of the primary studies. The method corrects for verification bias without having to exclude primary studies with verification bias, thus preserving the main advantages of a meta-analysis: increased precision and better generalizability. The results of this method are compared with the existing methods for dealing with verification bias in diagnostic meta-analyses. For illustration, the authors use empirical data from a systematic review of studies of the accuracy of the immunohistochemistry test for diagnosis of human epidermal growth factor receptor 2 status in breast cancer patients.
机译:诊断准确性研究设计的关键要求是,所有研究参与者均应接受评估中的测试和参考标准测试。由于各种实际和道德原因,有时只有一小部分患者获得参考标准,这可能会使准确性估计值产生偏差。在个别研究中,已经描述了许多方法来纠正这种部分验证偏差或后处理偏差。在本文中,作者描述了一种贝叶斯方法,当在主要研究的子集中存在部分验证或检查偏倚时,可从诊断荟萃分析中获得调整后的结果。该方法纠正了验证偏差,而不必排除具有验证偏差的基础研究,从而保留了荟萃分析的主要优点:提高了准确性和更好的通用性。将这种方法的结果与现有的用于处理诊断性荟萃分析中验证偏差的方法进行比较。为说明起见,作者使用来自免疫组化测试准确性的系统评价研究的经验数据来诊断乳腺癌患者中人表皮生长因子受体2的状态。

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