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Vocabulary Development To Support Information Extraction of Substance Abuse from Psychiatry Notes

机译:词汇开发以支持从精神病学笔记中提取药物滥用信息

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Extracting information from mental health records can be useful for large-scale clinical studies (e.g., to predict medication adherence or to understand medication effects) in this clinical specialty largely un-derserved by the Natural Language Processing (NLP) community. Vocabularies that contain medical terms for specific clinical use-cases, such as signs, symptoms, histories, social risk factors, are valuable resources for the development of NLP systems that aid clinicians in extracting information from text. Substance abuse is an important variable for many clinical use-cases, but, to our knowledge, there are no publicly available vocabularies that cover these types of terms. In this study, we apply and combine three methods for generating vocabularies related to substance abuse. We propose a simple and systematic method to generate highly relevant vocabularies and evaluate these vocabularies with respect to size and content, as well as coverage and relevance when applied to authentic psychiatric notes.
机译:从心理健康记录中提取信息可用于在很大程度上不受自然语言处理(NLP)社区支持的这一临床专业中的大规模临床研究(例如,预测药物依从性或了解药物作用)。包含特定临床用例医学术语(例如体征,症状,历史,社会危险因素)的词汇表对于开发NLP系统非常有用,可帮助临床医生从文本中提取信息。物质滥用是许多临床用例的重要变量,但是据我们所知,没有公开可用的词汇涵盖这些类型的术语。在这项研究中,我们应用并结合了三种方法来生成与药物滥用相关的词汇。我们提出了一种简单且系统的方法来生成高度相关的词汇表,并评估这些词汇表的大小和内容以及应用于真实的精神病学笔记时的覆盖范围和相关性。

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