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Bias in population oral health research: longitudinal studies

机译:人口口腔健康研究中的偏见:纵向研究

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Bias in longitudinal studies have been well described and the longer the follow-up, the higher the proportion of drop-outs. Here, I present some key issues related to selection bias, time-varying confounders, solutions to bias and challenges in longitudinal studies in dental research. Selection bias creates distortions in measures of disease frequency or association due to losses of follow-up or use of specific population groups. It is shown that even if losses are not associated with baseline values, measures such as odds ratios may be seriously distorted. Such problems can be understood by directed acyclic graphs, identifying the collider bias, or by missing data theory. Time-varying confounding occurs when an exposure varies over time and is affected by past exposure of other time-varying covariates, creating a complex scenario to adjustment in multiple regression. Under some assumptions, missing information may be informed by other variables in the dataset, and techniques such as multiple imputation or inverse probability weighting can be helpful, but the best solution is to prevent losses of follow-up as much as possible. Finally, I present challenges for longitudinal studies that use electronic health records and the need to incorporate area-based contextual measures. The first allows linkage of dental records with other information systems to create longitudinal (big) data. The second allows evaluation longitudinally of the effect of contextual factors, including social and health policies, on oral health.
机译:纵向研究中的偏差得到了很好的描述,随访越长,辍学比例越高。在这里,我提出了一些与选择偏差,时变混件,牙齿研究中纵向研究中的偏差和挑战的解决方案有关的一些关键问题。选择偏差在疾病频率或关联措施中产生扭曲,这是由于特定人群的后续或使用的损失。结果表明,即使损耗与基线值没有相关,即使与基线值无关,也可能严重扭曲诸如优势比的措施。通过有向非循环图,识别碰撞器偏压或缺少数据理论,可以理解这些问题。当曝光随着时间的变化时发生时变的混淆并且受到过去曝光的其他时变协变的影响,创建复杂的方案来调整多元回归。在一些假设下,可以通过数据集中的其他变量通知缺少的信息,以及多重归纳或反概率加权的技术可以有所帮助,但最佳解决方案是尽可能地防止跟进的损失。最后,我对使用电子健康记录的纵向研究呈现挑战,并需要加入基于面积的上下文措施。首先允许将牙科记录与其他信息系统联系起来创建纵向(大)数据。第二次允许在口腔健康方面纵向评价上下文因素,包括社会和健康政策的影响。

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