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Towards A Task Taxonomy of Visual Analysis of Electronic Health or Medical Record Data

机译:迈向电子健康或医疗记录数据的视觉分析的任务分类

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We integrate literature- and data-driven task analysis methods to derive an initial task taxonomy for electronic health record (EHR) and electronic medical record (EMR) data analysis. An EHR (EMR) is a digital and longitudinal version of a patients health(medical) information and may include all key clinical events relevant to that persons health (medical) history, such as provider, demographics, progress notes, medicine, diagnosis, etc. Our goal is to arrive a task taxonomy for analyzing EHR (EMR) datasets because tasks play an important role in the design and evaluation of visualization techniques. Our method has three stages: data collection, task modelling, and task taxonomy summary. In data collection, we first survey related literature from the past two decades and extract typical tasks and corresponding data by extracting goals and scenarios of the particular work. We introduce multiple continuous relations to describe specific binary or multiple continuous relation-seeking tasks. Finally, we arrive an initial set of task types for EHR/EMR analysis that guide the design and evaluation of visualization techniques.
机译:我们整合了文学和数据驱动的任务分析方法,以获得电子健康记录(EHR)和电子医疗记录(EMR)数据分析的初始任务分类。 EHR(EMR)是患者健康(医疗)信息的数字和纵向版本,并可能包括与该人员健康(医疗)历史相关的所有关键临床事件,例如提供者,人口统计学,进展说明,医学,诊断等。我们的目标是到达任务分类,用于分析EHR(EMR)数据集,因为任务在可视化技术的设计和评估中发挥着重要作用。我们的方法有三个阶段:数据收集,任务建模和任务分类摘要。在数据收集中,我们首先从过去二十年来调查相关文献,并通过提取特定工作的目标和场景来提取典型任务和相应数据。我们介绍多次持续关系,以描述特定的二进制或多个连续的寻求任务。最后,我们向EHR / EMR分析到达了一组初始任务类型,指导了可视化技术的设计和评估。

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