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首页> 外文期刊>BMC Medical Research Methodology >Overcoming the problems caused by collinearity in mixed-effects logistic model: determining the contribution of various types of violence on depression in pregnant women
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Overcoming the problems caused by collinearity in mixed-effects logistic model: determining the contribution of various types of violence on depression in pregnant women

机译:克服混合效应物流模型中的共同性引起的问题:确定各种类型暴力对孕妇抑郁症的贡献

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摘要

Collinearity is a common and problematic phenomenon in studies on public health. It leads to inflation in variance of estimator and reduces test power. This phenomenon can occur in any model. In this study, a new ridge mixed-effects logistic model (RMELM) is proposed to overcome consequences of collinearity in correlated binary responses. Parameters were estimated through penalized log-likelihood with combining expectation maximization (EM) algorithm, gradient ascent, and Fisher-scoring methods. A simulation study was performed to compare new model with mixed-effects logistic model(MELM). Mean square error, relative bias, empirical power, and variance of random effects were used to evaluate RMELM. Also, contribution of various types of violence, and intervention on depression among pregnant women experiencing intimate partner violence(IPV) were analyzed by new and previous models. Simulation study showed that mean square errors of fixed effects were decreased for RMELM than MELM and empirical power were increased. Inflation in variance of estimators due to collinearity was clearly shown in the MELM in data on IPV and RMELM adjusted the variances. According to simulation results and analyzing IPV data, this new estimator is appropriate to deal with collinearity problems in the modelling of correlated binary responses.
机译:共同性是公共卫生研究中的常见而有问题的现象。它导致估计方差的通货膨胀并降低了测试能力。这种现象可以发生在任何模型中。在该研究中,提出了一种新的脊混合效应物流模型(RMELM)以克服相关二元响应中的共同性的后果。通过惩罚的日志似然估计参数,这些罚款最大化(EM)算法,梯度上升和渔夫评分方法。进行了模拟研究以比较混合效应物流模型(MelM)的新模型。使用均方误差,相对偏差,经验功率和随机效应的方差来评估RMELM。此外,通过新的和以前的模型分析了各种类型的暴力行为的贡献,以及患有亲密伴侣暴力(IPV)的孕妇的抑郁症。仿真研究表明,对于RMELM而不是梅尔数,并且经验功率增加了均线的平均方差。在IPV和RMELM的数据中,清楚地显示了引起的估计因子的差异变化的变化,RMELM调整了差异。根据仿真结果和分析IPV数据,这种新的估算器适合处理相关二进制响应的建模中的共同性问题。

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