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Application of electronic trigger tools to identify targets for improving diagnostic safety

机译:应用电子触发工具确定目标以提高诊断安全性

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摘要

Progress in reducing diagnostic errors remains slow partly due to poorly defined methods to identify errors, high-risk situations, and adverse events. Electronic trigger (e-trigger) tools, which mine vast amounts of patient data to identify signals indicative of a likely error or adverse event, offer a promising method to efficiently identify errors. The increasing amounts of longitudinal electronic data and maturing data warehousing techniques and infrastructure offer an unprecedented opportunity to implement new types of e-trigger tools that use algorithms to identify risks and events related to the diagnostic process. We present a knowledge discovery framework, the Safer Dx Trigger Tools Framework, that enables health systems to develop and implement e-trigger tools to identify and measure diagnostic errors using comprehensive electronic health record (EHR) data. Safer Dx e-trigger tools detect potential diagnostic events, allowing health systems to monitor event rates, study contributory factors and identify targets for improving diagnostic safety. In addition to promoting organisational learning, some e-triggers can monitor data prospectively and help identify patients at high-risk for a future adverse event, enabling clinicians, patients or safety personnel to take preventive actions proactively. Successful application of electronic algorithms requires health systems to invest in clinical informaticists, information technology professionals, patient safety professionals and clinicians, all of who work closely together to overcome development and implementation challenges. We outline key future research, including advances in natural language processing and machine learning, needed to improve effectiveness of e-triggers. Integrating diagnostic safety e-triggers in institutional patient safety strategies can accelerate progress in reducing preventable harm from diagnostic errors.
机译:减少诊断错误的进展仍然很缓慢,部分原因是识别错误,高风险情况和不良事件的方法定义不明确。电子触发器(e-trigger)工具可挖掘大量患者数据以识别表示可能的错误或不良事件的信号,为有效识别错误提供了一种有前途的方法。纵向电子数据数量的增加以及成熟的数据仓库技术和基础设施为实施新型电子触发工具提供了前所未有的机会,这些工具使用算法来识别与诊断过程相关的风险和事件。我们提出了一个知识发现框架,即Safer Dx触发工具框架,该框架使卫生系统能够开发和实施电子触发工具,以使用综合电子健康记录(EHR)数据来识别和测量诊断错误。更安全的Dx电子触发工具可以检测潜在的诊断事件,使卫生系统可以监视事件发生率,研究影响因素并确定提高诊断安全性的目标。除了促进组织学习之外,一些电子触发器还可以前瞻性地监视数据,并帮助确定将来可能发生不良事件的高风险患者,从而使临床医生,患者或安全人员可以主动采取预防措施。电子算法的成功应用要求卫生系统对临床信息学家,信息技术专业人员,患者安全专业人员和临床医生进行投资,所有这些人密切合作以克服开发和实施方面的挑战。我们概述了未来关键的研究,包括自然语言处理和机器学习方面的进步,这些进步对于提高电子触发器的有效性是必需的。将诊断安全电子触发器集成到机构患者安全策略中可加快减少诊断错误可预防的危害的进展。

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