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A methodology for interactive mining and visual analysis of clinical event patterns using electronic health record data

机译:一种使用电子健康记录数据的互动挖掘和视觉分析的方法论

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摘要

Patients' medical conditions often evolve in complex and seemingly unpredictable ways. Even within a relatively narrow and well-defined episode of care, variations between patients in both their progression and eventual outcome can be dramatic. Understanding the patterns of events observed within a population that most correlate with differences in outcome is therefore an important task in many types of studies using retrospective electronic health data. In this paper, we present a method for interactive pattern mining and analysis that supports ad hoc visual exploration of patterns mined from retrospective clinical patient data. Our approach combines (1) visual query capabilities to interactively specify episode definitions, (2) pattern mining techniques to help discover important intermediate events within an episode, and (3) interactive visualization techniques that help uncover event patterns that most impact outcome and how those associations change over time. In addition to presenting our methodology, we describe a prototype implementation and present use cases highlighting the types of insights or hypotheses that our approach can help uncover.
机译:患者的医疗状况往往以复杂和看似不可预测的方式发展。即使在相对狭隘和明确的护理发作内,患者在其进展和最终结果中的变化也可能是显着的。理解在人口中观察到的事件模式,因此与结果的差异相关是在许多类型的研究中使用回顾性电子健康数据的重要任务。在本文中,我们提出了一种互动模式挖掘和分析方法,支持从回顾性临床患者数据中开采的模式的特设视觉探索。我们的方法组合(1)视觉查询功能以交互方式指定集发作定义,(2)模式挖掘技术,以帮助发现集中的重要中间事件,(3)有助于发现大多数影响结果的事件模式以及如何解决最重要的可视化技术关联随着时间的推移而变化。除了呈现我们的方法外,我们还描述了一个原型实现和现在使用案例,突出显示我们的方法可以帮助揭示的洞察或假设的类型。

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