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A Novel System for the Automatic Extraction of a Patient Problem Summary

机译:一种用于自动提取患者问题摘要的新系统

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Clinical summarization means the collection and synthesis of a patient's significant data, undertaken in order to support health-care providers in the process of patient care. Considering that medical information comes from multiple sources, a system for the automatic generation of problem lists could prove to be very effective in terms of saving time in the analysis of large amounts of medical data. In this paper, we propose a system able to acquire and present relevant references to medical disorders from a patient's history, producing a subject-oriented summary. The implemented system relies on an NLP pipeline, for the extraction of relevant medical entities contained in narrative health records, and on several queries, necessary for the scanning of structured documents. The tool aggregates any medical problems, performed procedures, and prescribed medications, providing the healthcare practitioner with a visual summary of the patient's data.
机译:临床摘要是指患者的重要数据的收集和综合,以支持患者护理过程中的医疗保健提供者。考虑到医疗信息来自多个来源,在分析大量医疗数据的节省时间方面,用于自动生成问题列表的系统可以非常有效。在本文中,我们提出了一种能够从患者的历史中获取和呈现对医学障碍的相关参考的系统,产生主题导向的摘要。实施的系统依赖于NLP管道,用于提取叙事健康记录中所载的相关医疗实体,以及扫描结构性文件所需的几个查询。该刀具汇总了任何医疗问题,执行程序和规定的药物,为医疗保健从业者提供了患者数据的视觉摘要。

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