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Computerized Medication Alerts and Prescriber Mental Models: Observing Routine Patient Care

机译:计算机化药物警报和处方心理模型:观察常规病人护理

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Computerized medication alerts (e.g., drug-drug interactions, drug-allergy interactions), which are intended to protect patient safety, need to match the mental models of medication prescribers in order to aid medication ordering. To maximally protect patient safety, the programmer mental model, system image, and prescriber mental model should work seamlessly together to fully support prescriber decision-making. In this study, we examined prescribing processes in the context of routine patient care to understand how the design of medication alerts can be enhanced for prescribers. We shadowed prescribers, including physicians, pharmacists, and nurse practitioners, across five outpatient primary care clinics at a large Veterans Affairs Medical Center (VAMC). In addition, prescribers were opportunistically interviewed as they ordered mediations via a computerized order entry system and resolved any subsequent medication alerts. This investigation is one of the few to examine medication alerts by directly observing prescribers during patient care. Altogether, 191 medication alerts occurred across 63.5 total hrs of observation, 19 prescribers, and 86 patients during routine patient care tasks. Results reveal problematic system images and mismatches between programmer and prescriber mental models. Findings can help inform medication alert redesigns, which may promote safer, more effective prescribing practices.
机译:计算机化药物警报(例如,药物 - 药物相互作用,药物过敏的相互作用)旨在保护患者安全性,需要匹配药物前列人的心理模型,以援助药物排序。为了最大限度地保护患者安全,程序员心理模型,系统图像和售前心理模型应该无缝地工作,以完全支持处方性决策。在这项研究中,我们在常规患者护理的背景下检查了处方过程,了解如何为处方提高药物警报的设计。我们在大型退伍军人事务医疗中心(VAMC)的五个门诊初级保健诊所遮蔽了处方,包括医生,药剂师和护士从业人员。此外,在通过计算机化订单进入系统订购调解并解决任何后续药物警报时,该处方机会受访。该调查是通过直接观察患者护理期间的患者进行药物警报的少数人。总共,191例医疗警报发生在63.5家庭HRS的63.5个常规患者护理任务期间的63.5个常规HRS和86名患者。结果显示了有问题的系统图像和程序员与处方心理模型之间的不匹配。调查结果可以帮助通知药物警报重新设计,这可能促进更安全,更有效的处方实践。

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