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Assessing inter- and intra-agreement for dependent binary data: a Bayesian hierarchical correlation approach

机译:评估相关二进制数据的协议间和协议内:贝叶斯层次相关方法

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Agreement measures are designed to assess consistency between different instruments rating measurements of interest. When the individual responses are correlated with multilevel structure of nestings and clusters, traditional approaches are not readily available to estimate the inter- and intra-agreement for such complex multilevel settings. Our research stems from conformity evaluation between optometric devices with measurements on both eyes, equality tests of agreement in high myopic status between monozygous twins and dizygous twins, and assessment of reliability for different pathologists in dysplasia. In this paper, we focus on applying a Bayesian hierarchical correlation model incorporating adjustment for explanatory variables and nesting correlation structures to assess the inter- and intra-agreement through correlations of random effects for various sources. This Bayesian generalized linear mixed-effects model (GLMM) is further compared with the approximate intra-class correlation coefficients and kappa measures by the traditional Cohen's kappa statistic and the generalized estimating equations (GEE) approach. The results of comparison studies reveal that the Bayesian GLMM provides a reliable and stable procedure in estimating inter- and intra-agreement simultaneously after adjusting for covariates and correlation structures, in marked contrast to Cohen's kappa and the GEE approach.
机译:协议度量旨在评估感兴趣的不同工具评级度量之间的一致性。当单个响应与嵌套和聚类的多层次结构相关时,传统方法不容易获得,以估计这种复杂的多层次设置的内部协议和内部协议。我们的研究源自双眼测量的验光设备之间的一致性评估,单卵双胞胎和双卵双胞胎在高度近视状态下的一致性一致性测试,以及对异型增生的不同病理学家的可靠性评估。在本文中,我们专注于应用贝叶斯层次相关模型,该模型包含对解释变量的调整和嵌套相关结构,以通过各种来源的随机效应的相关性来评估协议间和协议内。通过传统的Cohen的kappa统计量和广义估计方程(GEE)方法,将该贝叶斯广义线性混合效应模型(GLMM)与近似的组内相关系数和kappa度量进行比较。比较研究的结果表明,在调整协变量和相关结构之后,贝叶斯GLMM提供了一种可靠且稳定的程序,可以同时估计内部和内部协议,这与Cohen的kappa和GEE方法形成了鲜明的对比。

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