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Is rigorous retrospective harmonization possible? Application of the DataSHaPER approach across 53 large studies

机译:是否可以进行严格的追溯协调? DataSHaPER方法在53个大型研究中的应用

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摘要

>Background Proper understanding of the roles of, and interactions between genetic, lifestyle, environmental and psycho-social factors in determining the risk of development and/or progression of chronic diseases requires access to very large high-quality databases. Because of the financial, technical and time burdens related to developing and maintaining very large studies, the scientific community is increasingly synthesizing data from multiple studies to construct large databases. However, the data items collected by individual studies must be inferentially equivalent to be meaningfully synthesized. The DataSchema and Harmonization Platform for Epidemiological Research (DataSHaPER; ) was developed to enable the rigorous assessment of the inferential equivalence, i.e. the potential for harmonization, of selected information from individual studies.>Methods This article examines the value of using the DataSHaPER for retrospective harmonization of established studies. Using the DataSHaPER approach, the potential to generate 148 harmonized variables from the questionnaires and physical measures collected in 53 large population-based studies (6.9 million participants) was assessed. Variable and study characteristics that might influence the potential for data synthesis were also explored.>Results Out of all assessment items evaluated (148 variables for each of the 53 studies), 38% could be harmonized. Certain characteristics of variables (i.e. relative importance, individual targeted, reference period) and of studies (i.e. observational units, data collection start date and mode of questionnaire administration) were associated with the potential for harmonization. For example, for variables deemed to be essential, 62% of assessment items paired could be harmonized.>Conclusion The current article shows that the DataSHaPER provides an effective and flexible approach for the retrospective harmonization of information across studies. To implement data synthesis, some additional scientific, ethico-legal and technical considerations must be addressed. The success of the DataSHaPER as a harmonization approach will depend on its continuing development and on the rigour and extent of its use. The DataSHaPER has the potential to take us closer to a truly collaborative epidemiology and offers the promise of enhanced research potential generated through synthesized databases.
机译:>背景要正确了解遗传,生活方式,环境和心理社会因素在确定慢性疾病发展和/或进展风险中的作用及其之间的相互作用,需要访问非常庞大的高质量数据库。由于与开发和维护大量研究相关的财务,技术和时间负担,科学界越来越多地将来自多项研究的数据合成以构建大型数据库。但是,由单个研究收集的数据项必须在推断上等效,才能有意义地进行综合。开发了用于流行病学研究的DataSchema和统一平台(DataSHaPER;),以能够严格评估各个研究中所选信息的推论等效性,即协调的潜力。>方法使用DataSHaPER进行既定研究的回顾性协调。使用DataSHaPER方法,评估了从53项基于人口的大型研究(690万参与者)中收集的问卷和身体测量结果中产生148个统一变量的潜力。 >结果在评估的所有评估项目(53项研究中的每项148个变量)中,有38%可以统一。变量的某些特征(即相对重要性,个人针对性,参考期)和研究的某些特征(即观察单位,数据收集开始日期和问卷的管理方式)与协调的潜力有关。例如,对于被认为是必不可少的变量,可以配对62%的评估项目。>结论当前文章显示,DataSHaPER提供了一种有效而灵活的方法,用于跨研究回顾性地协调信息。为了实现数据综合,必须解决一些其他的科学,伦理法律和技术方面的考虑。 DataSHaPER作为一种统一方法的成功取决于它的不断发展以及其使用的严格性和程度。 DataSHaPER有可能使我们更接近真正的协作流行病学,并有望通过合成数据库增强研究潜力。

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