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用于亚单位水平医学诊断试验评估的加权广义估计方程方法。

The weighted generalized estimating equations approach for the evaluation of medical diagnostic test at subunit level.

作者信息

Lin Carol Y, Barnhart Huiman X, Kosinski Andrzej S

机构信息

Department of Biostatistics, Rollins School of Public Health, Emory University, 1518 Clifton Road NE, Atlanta, GA 30322, USA.

出版信息

Biom J. 2006 Aug;48(5):758-71. doi: 10.1002/bimj.200510199.

Abstract

Sensitivity and specificity are common measures used to evaluate the performance of a diagnostic test. A diagnostic test is often administrated at a subunit level, e.g. at the level of vessel, ear or eye of a patient so that the treatment can be targeted at the specific subunit. Therefore, it is essential to evaluate the diagnostic test at the subunit level. Often patients with more negative subunit test results are less likely to receive the gold standard tests than patients with more positive subunit test results. To account for this type of missing data and correlation between subunit test results, we proposed a weighted generalized estimating equations (WGEE) approach to evaluate subunit sensitivities and specificities. A simulation study was conducted to evaluate the performance of the WGEE estimators and the weighted least squares (WLS) estimators (Barnhart and Kosinski, 2003) under a missing at random assumption. The results suggested that WGEE estimator is consistent under various scenarios of percentage of missing data and sample size, while the WLS approach could yield biased estimators due to a misspecified missing data mechanism. We illustrate the methodology with a cardiology example.

摘要

敏感性和特异性是用于评估诊断测试性能的常用指标。诊断测试通常在亚单位水平进行,例如在患者的血管、耳朵或眼睛水平,以便治疗能够针对特定的亚单位。因此,在亚单位水平评估诊断测试至关重要。通常,亚单位测试结果为阴性的患者比亚单位测试结果为阳性的患者接受金标准测试的可能性更小。为了考虑这类缺失数据以及亚单位测试结果之间的相关性,我们提出了一种加权广义估计方程(WGEE)方法来评估亚单位的敏感性和特异性。我们进行了一项模拟研究,以评估在随机缺失假设下WGEE估计器和加权最小二乘法(WLS)估计器(Barnhart和Kosinski,2003年)的性能。结果表明,在各种缺失数据百分比和样本量的情况下,WGEE估计器都是一致的,而由于缺失数据机制指定错误,WLS方法可能会产生有偏差的估计器。我们用一个心脏病学的例子来说明该方法。

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