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Electronic health records in IS research: Quality issues, essential thresholds and remedial actions

机译:IS研究中的电子健康记录:质量问题,基本阈值和补救措施

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The increase in adoption of Electronic Health Record (EHR) systems by healthcare organizations has led to the proliferation of the use of EHR as a secondary data source in both IS and supporting fields. It is imperative that EHR data is exploited appropriately, which would lead to high quality results and enhanced reproducibility. However, the quality of the EHR data being used can vary significantly and can have repercussions for research outcomes. In this paper, we first discuss four major data quality issues present in EHR data. These issues are: (a) non-standard coding schemes, (b) missing data, (c) inconsistencies and (d) aggregation and augmentation of EHR data. Then, we discuss quality thresholds that need to be met in order to avoid the negative impacts of quality issues. Lastly, we discuss some remedial actions that researchers can take to enhance the quality of EHR data to meet the quality thresholds. The discussed issues, thresholds and remedial actions can also apply to a much wider set of data sources when used as secondary data in research.
机译:医疗保健组织对电子病历(EHR)系统采用的增加,导致电子病历作为IS和支持领域中的辅助数据源的使用激增。必须正确利用EHR数据,这将导致高质量的结果和增强的可重复性。但是,所使用的EHR数据的质量可能会有很大差异,并且可能会对研究结果产生影响。在本文中,我们首先讨论EHR数据中存在的四个主要数据质量问题。这些问题是:(a)非标准编码方案,(b)丢失数据,(c)不一致,以及(d)EHR数据的汇总和扩充。然后,我们讨论了需要避免的质量阈值,以避免质量问题的负面影响。最后,我们讨论了研究人员可以采取的一些补救措施,以提高EHR数据的质量以满足质量阈值。当用作研究中的辅助数据时,所讨论的问题,阈值和补救措施也可以应用于更广泛的数据源集。

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