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Extracting Clinical Information from Electronic Medical Records

机译:从电子医疗记录中提取临床信息

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As the adoption of Electronic Medical Records (EMRs) rises in the healthcare institutions, these resources' importance increases because of the clinical information they contain about patients. However, the unstructured information in the form of the narrative present in those records makes it hard to extract and structure useful clinical information. This limits the potential of the EMRs, because the clinical information these records contain, can be used to perform important operations inside healthcare institutions such as searching, summarization, decision support and statistical analysis, as well as be used to support management decisions or serve for research. These operations can only be done if the clinical information from the narratives is properly extracted and structured. Usually, this extraction is made manually by healthcare practitioners, what is not efficient and is error-prone. This research uses Natural Language Processing (NLP) and Information Extraction (IE) techniques in order to develop a pipeline system that can extract and structure clinical information directly from the clinical narratives present in Portuguese EMRs, in an automated way, in order to help EMRs to fulfil their potential.
机译:由于电子医疗记录(EMRS)在医疗机构上升,因此这些资源的重要性增加,因为它们含有关于患者的临床信息。然而,这些记录中存在的叙述形式的非结构化信息使得难以提取和结构有用的临床信息。这限制了EMR的潜力,因为这些记录包含的临床信息可以用于在医疗机构中进行重要操作,例如搜索,摘要,决策支持和统计分析,以及用于支持管理决策或服务研究。只有在叙述的临床信息被正确提取和结构化,只能完成这些操作。通常,这种提取由医疗保健从业者手动制作,什么是不高效的,并且易于出错。本研究使用自然语言处理(NLP)和信息提取(即)技术,以开发一种管道系统,可以直接从葡萄牙EMRS中存在的临床信息提取和结构临床信息,以自动化方式,以帮助EMRS履行他们的潜力。

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