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Patient Flow Management Combining Analytical and Observational Data to Uncover Flow Patterns

机译:患者流动管理将分析和观测数据组合以揭示流动模式

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Background: Hospitals must improve patient flow to achieve better efficiency and improve patients' outcomes. Recent advancements in real time monitoring have provided immediate feedback for clinicians to address any bottlenecks. However, root causes of delays remain embedded in the details of clinicians' activities. This work presents an observational study of a clinical pathway within a heart unit at a community hospital in North America. Observational data is correlated with multiple sources to uncover flow patterns. Materials and Methods: We observe heart patients as they arrive in at the heart unit and throughout their care up until their discharge. Data is correlated with electronic healthcare records and paper trails to enhance data reliability and accuracy. Results: Single data source alone is not sufficient to uncover process patterns. In our study, we discovered a negative correlation between the number of patients arriving at the hospital, and the total wait time each patient has experienced. We also identified key inefficiencies in the first and last hours of work shifts. Conclusion: Correlating multiple data sources can provide insights into details of process activities and uncover patterns and inefficiencies.
机译:背景:医院必须改善患者流动以实现更好的效率,并改善患者的结果。最近的实时监测的进步已经为临床医生提供了立即反馈,以解决任何瓶颈。但是,延迟的根本原因仍然嵌入了临床医生活动的细节。这项工作提出了在北美社区医院的心脏单位内临床途径的观察研究。观察数据与多个来源相关,以发现流模式。材料和方法:我们观察心脏病患者,因为他们在内心单位和整个小心中到达直到他们的排放。数据与电子医疗保健记录和纸张跟踪相关联,以提高数据可靠性和准确性。结果:单独的单个数据源不足以揭示流程模式。在我们的研究中,我们发现到达医院的患者数量之间的负相关性,每位患者经历的总等待时间。我们还在工作班次的第一个和最后一小时内确定了关键效率。结论:关联多个数据源可以详细说明过程活动和揭示模式和效率低下的见解。

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