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Time Expressions in Mental Health Records for Symptom Onset Extraction

机译:心理健康记录中症状发作提取的时间表达

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For psychiatric disorders such as schizophrenia, longer durations of untreated psychosis are associated with worse intervention outcomes. Data included in electronic health records (EHRs) can be useful for retrospective clinical studies, but much of this is stored as unstructured text which cannot be directly used in computation. Natural Language Processing (NLP) methods can be used to extract this data, in order to identify symptoms and treatments from mental health records, and temporally anchor the first emergence of these. We are developing an EHR corpus annotated with time expressions, clinical entities and their relations, to be used for NLP development. In this study, we focus on the first step, identifying time expressions in EHRs for patients with schizophrenia. We developed a gold standard corpus, compared this corpus to other related corpora in terms of content and time expression prevalence, and adapted two NLP systems for extracting time expressions. To the best of our knowledge, this is the first resource annotated for temporal entities in the mental health domain.
机译:对于精神分裂症等精神疾病,较长的未治疗精神病持续时间与较差的干预结果有关。电子健康记录(EHR)中包含的数据可用于回顾性临床研究,但其中很多都存储为非结构化文本,不能直接用于计算。可以使用自然语言处理(NLP)方法来提取此数据,以便从心理健康记录中识别症状和治疗方法,并暂时锚定这些方法的首次出现。我们正在开发一个带有时间表达,临床实体及其关系的EHR语料库,用于NLP开发。在这项研究中,我们专注于第一步,确定精神分裂症患者的EHR中的时间表达。我们开发了黄金标准语料库,将该语料库与其他相关语料库的内容和时间表达发生率进行了比较,并采用了两个NLP系统来提取时间表达。据我们所知,这是为精神卫生领域中的时态实体提供注释的第一个资源。

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