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Invited Commentary: Quantifying the Added Value of Repeated Measurements

机译:邀请评论:量化重复测量的附加值

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摘要

Meaningful inference in epidemiology relies on accurate exposure measurement. In longitudinal observational studies, having more exposure data in the form of repeated measurements in the same individuals adds useful information. But exactly how much do repeated measurements add, incremental to the information provided by baseline measurements? In this issue of the Journal, Paige et al. (Am J Epidemiol. 2017;186(8):899–907 have quantified the value of adding repeated cholesterol and blood pressure measurements to baseline measurements in a meta-analysis of individual participant data from 38 longitudinal cohort studies. Repeated measurements improve prediction significantly, but the magnitude of this gain in information may be less than expected. In research studies and clinical practice, quality of measurement is more important than quantity.
机译:流行病学的有意义推断依赖于准确的曝光测量。 在纵向观察性研究中,在同一个人中具有更多的曝光数据,增加了相同的重复测量的形式增加了有用的信息。 但是,重复测量的准确性增加了多少,以基线测量提供的信息增量? 在这个问题上,Paige等人。 (AM Jiedemiol。2017; 186(8):899-907已经量化了从38个纵向队列研究的个体参与者数据中添加重复胆固醇和血压测量的值,从38个纵向队列研究中的个人参与者数据中的荟萃测量。重复测量显着提高预测 ,但信息的幅度可以少于预期。在研究研究和临床实践中,测量质量比数量更重要。

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