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Automated ongoing data validation and quality control of multi-institutional studies

机译:自动化的正在进行的数据验证和多机构研究的质量控制

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This paper addresses the problem of ensuring the validity and quality of data in ongoing multi-disciplinary studies where data acquisition spans several geographical sites. It describes an automated validation and quality control procedure that requires no user supervision and monitors data acquired from different locations before analysis. The procedure is illustrated for the Automated Prediction of Extubation readiness (APEX) project in preterm infants, where acquisition of clinical and cardiorespiratory data occurs at 6 sites using different equipment and personnel. We have identified more than 40 problems with clinical information and 25 possible problems with the cardiorespiratory signals. Our validation and quality control procedure identifies these problems in an ongoing manner so that they can be timely addressed and corrected throughout this long-term collaborative study.
机译:本文探讨了在正在进行的跨学科研究中确保数据有效性和质量的问题,在这些研究中,数据采集跨越多个地理位置。它描述了一种无需用户监督的自动验证和质量控制程序,并在分析之前监视从不同位置获取的数据。在早产儿的拔管准备自动预测(APEX)项目中说明了该程序,在该项目中,使用不同的设备和人员在6个地点采集了临床和心肺数据。我们已经确定了40多个临床信息问题和25个可能的心肺信号问题。我们的验证和质量控制程序不断地发现这些问题,以便在长期的合作研究中可以及时解决和纠正这些问题。

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