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A network-based analysis of medical information extracted from electronic medical records

机译:电子医疗记录提取的基于网络的医学信息分析

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Clinical notes constitute a rich source of medical information that could be useful in identifying graphs of patients with similar characteristics. Network-based approaches permit to visualize associations between medical entities and to infer medical knowledge. This paper aims to apply such an approach to identify the graphs of obesity patients as well as relationships between diseases and treatments extracted from discharge summaries. Two experiments were designed. In the first experiment, a 412-node graph representing patients was constructed to identify patient groups. Graphs were obtained with the modularity function. In the second, some bipartite graphs were constructed to identify disease-treatment relationships from patient graphs. The results were congruent in both experiments. Patient graphs corresponding to obese patients with diseases derived from a metabolic problem were identified; some had infectious diseases, while others had diseases derived from a mechanical problem. Furthermore, graphs of diseases and treatments related to obesity could be observed. This work identified obesity-patient graphs and relationships between diseases and treatments based on a network approach, which took into account information extracted from clinical notes.
机译:临床票据构成了丰富的医疗信息来源,可用于识别具有相似特征的患者的图表。基于网络的方法允许可视化医疗实体之间的关联和推断医学知识。本文旨在应用这种方法来确定肥胖患者的图表以及从排放摘要中提取的疾病与治疗之间的关系。设计了两个实验。在第一次实验中,构建代表患者的412节点图以鉴定患者组。用模块化函数获得图表。在第二中,构建了一些二分形图以鉴定患者图表的疾病治疗关系。两种实验中的结果都是一致的。鉴定了患有来自代谢问题的肥胖患者的患者图表;有些人有传染病,而其他人患有来自机械问题的疾病。此外,可以观察到与肥胖有关的疾病和治疗图。这项工作确定了基于网络方法的疾病和治疗之间的肥胖患者图和关系,这考虑了从临床笔记中提取的信息。

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