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Evaluating record linkage of birth registration and notification records to Hospital Episode Statistics: Singleton births in 2005 and 2006 across England

机译:评估出生登记和通知记录对医院统计的记录联系:2005年和2006年在英格兰出生时出生

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Background with rationaleLinked administrative datasets are particularly useful within the field of perinatal epidemiology. By linking multiple datasets, researchers can create longitudinal datasets, which allow them to explore research questions relating to early exposures and outcomes later in life.Main AimThe aims of this study were to describe the methods used to deal with duplicate hospital admission records, assess the quality of linkage between babies birth registration records and subsequent hospital admissions, and to evaluate the potential bias that may be introduced as a result of these methods.MethodsThree routinely collected datasets were linked for use within this study and included data from birth registration, NHS Numbers for Babies (NN4B) and Hospital Episode Statistics (HES) for babies born in England between 1st January 2005 and 31st December 2006. A number of stages to cleaning were undertaken, including dealing with duplicate HES records and assessing the quality of the linkage using a deterministic algorithm. Internal and external validity was also assessed.ResultsThere were a total of 1,170,970 live, singleton births, occurring in NHS hospitals, to mothers who normally reside in England in 2005 and 2006 combined. Of these, approximately 92% were successfully linked with a HES birth record. Data quality was somewhat poorer in HES birth records compared to birth registration and NN4B. The quality assurance algorithms identified 1,456 incorrect linkages (1%) and examination of external validity identified children that were not linked were slightly more likely to be born to mothers who were older and of higher socio-economic status.ConclusionIt is possible to create valuable longitudinal datasets allowing researchers to explore important questions about exposures and childhood outcomes using administrative datasets, however, missing data and coding errors and inconsistencies mean it is important that the quality of linkage is assessed prior to analysis.
机译:与rationalelinked的行政数据集的背景在围产期流行病学领域中特别有用。通过链接多个数据集,研究人员可以创造纵向数据集,这使得他们探讨了与早期暴露和结果有关的研究问题。本研究的目标目的是描述用于处理重复的医院入学记录的方法,评估婴儿出生登记记录和随后的医院录取之间的联系质量,并评估可能由于这些方法而引入的潜在偏见。方法是常规收集的数据集在本研究中链接,并包括来自出生登记的数据,NHS号码对于在2005年1月1日至2006年12月31日之间出生的英格兰出生的婴儿的婴儿(NN4B)和医院统计(HES)。进行了许多阶段进行清洁,包括处理重复的HES记录并使用A评估联动质量确定性算法。还评估了内部和外部有效性。审查中心共有1,170,970个直播,单身诞生,在NHS医院发生,母亲在2005年和2006年综合地居住在英格兰。其中,大约92%的人与他的出生记录成功联系起来。与出生登记和NN4B相比,数据质量在HER出生记录中有点差。质量保证算法确定了1,456个不正确的联系(<1%)和对未被联系的儿童的审查略有可能出生于年龄较大的母亲和更高社会经济地位的母亲.Conclusionit可以创造有价值纵向数据集允许研究人员使用行政数据集探索有关暴露和童年结果的重要问题,但是,缺少数据和编码错误以及不一致意味着在分析之前评估联动质量是重要的。

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