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Detection of Suicidality in Adolescents with Autism Spectrum Disorders: Developing a Natural Language Processing Approach for Use in Electronic Health Records

机译:自闭症谱系障碍青少年的自杀倾向检测:开发用于电子健康记录的自然语言处理方法

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摘要

Over 15% of young people with autism spectrum disorders (ASD) will contemplate or attempt suicide during adolescence. Yet, there is limited evidence concerning risk factors for suicidality in childhood ASD. Electronic health records (EHRs) can be used to create retrospective clinical cohort data for large samples of children with ASD. However systems to accurately extract suicidality-related concepts need to be developed so that putative models of suicide risk in ASD can be explored. We present a systematic approach to 1) adapt Natural Language Processing (NLP) solutions to screen with high sensitivity for reference to suicidal constructs in a large clinical ASD EHR corpus (230,465 documents), and 2) evaluate within a screened subset of 500 patients, the performance of an NLP classification tool for positive and negated suicidal mentions within clinical text. When evaluated, the NLP classification tool showed high system performance for positive suicidality with precision, recall, and F1 scores all > 0.85 at a document and patient level. The application therefore provides accurate output for epidemiological research into the factors contributing to the onset and recurrence of suicidality, and potential utility within clinical settings as an automated surveillance or risk prediction tool for specialist ASD services.
机译:超过15%的患有自闭症谱系障碍(ASD)的年轻人会在青春期考虑或自杀。然而,关于儿童自闭症自杀倾向的危险因素的证据有限。电子健康记录(EHR)可用于为ASD儿童的大量样本创建回顾性临床队列数据。然而,需要开发能够准确提取与自杀有关的概念的系统,以便可以探索ASD中自杀风险的推定模型。我们提供一种系统的方法,以:1)使自然语言处理(NLP)解决方案适应高灵敏度筛查,以参考大型临床ASD EHR语料库(230,465文档)中的自杀构造,以及2)在500名患者的筛查子集中进行评估, NLP分类工具在临床文本中对阳性和阴性自杀提及的性能。经过评估,NLP分类工具显示出较高的系统性能,具有积极的自杀倾向,且准确性,召回率高,并且在文档和患者水平上,F1分数均≥0.85。因此,该应用程序可为流行病学研究提供准确的输出,以分析导致自杀的因素的发生和复发,以及在临床环境中作为专门ASD服务的自动监视或风险预测工具的潜在效用。

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