Validation of anorexia nervosa and Bulimia nervosa diagnosis coding in Danish hospitals assisted by a natural language processing model

IF 3.7 2区 医学 Q1 PSYCHIATRY Journal of psychiatric research Pub Date : 2024-09-14 DOI:10.1016/j.jpsychires.2024.09.018
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Abstract

Introduction

The Danish Health Care Registers rely on the International Statistical Classification of Diseases and Related Health Problems (ICD)-classification and stand as a widely utilized resource for health epidemiological research. Eating disorders are multifaceted syndromes where two distinctive diagnoses are defined, anorexia nervosa (AN) and bulimia nervosa (BN). However, the validity of the registered diagnoses remains to be verified. Manuel chart review is often the method for validation of diagnosis codes, but there is limited research on how natural language processing (NLP) models could enhance this process.

Objective

To investigate the accuracy of the clinical use of ICD-10 diagnosis codes F50.0, F50.1, F50.2, and F50.3 in the Danish Health Care Registers, using a manual chart review assisted by NLP.

Method

From a cohort of all individuals attending hospitals in Region of Southern Denmark with registered electronic health information, we extracted medical information from the electronic health journal on 100 individuals with each of the four diagnosis codes. After extraction, an NLP model with regular expression search patterns identified relevant text passages for manual chart review.

Results

Overall, 372 of the 400 diagnosis codes (93%) were correct. A diagnosis code for AN was correct in 90% of instances, 96% for atypical AN, 96% for BN and 90% for an atypical BN diagnosis code.

Conclusion

We found that the accuracy of a diagnosis code F50.0, F50.1, F50.2, and F50.3 to be high. This confirms that the generally well-documented validity of the Danish health care registers also applies to the eating disorder diagnoses.
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在自然语言处理模型的辅助下验证丹麦医院的神经性厌食症和神经性贪食症诊断编码
导言:丹麦医疗保健登记册以《国际疾病和相关健康问题统计分类》(ICD)分类为基础,是广泛用于健康流行病学研究的资源。进食障碍是一种多方面的综合症,有两种不同的诊断,即神经性厌食症(AN)和神经性贪食症(BN)。然而,登记诊断的有效性仍有待验证。曼努埃尔病历审查通常是验证诊断代码的方法,但关于自然语言处理(NLP)模型如何加强这一过程的研究却很有限。方法我们从丹麦南部地区所有已注册电子健康信息的就诊医院中,提取了电子健康期刊中 100 名患者的医疗信息,每名患者都有四个诊断代码。提取完成后,使用正则表达式搜索模式的 NLP 模型识别出相关文本段落,以便进行人工病历审查。结果总的来说,400 个诊断代码中有 372 个(93%)是正确的。AN 诊断代码的正确率为 90%,非典型 AN 诊断代码的正确率为 96%,BN 诊断代码的正确率为 96%,非典型 BN 诊断代码的正确率为 90%。这证明,丹麦医疗登记册的有效性已得到广泛证实,它也适用于饮食失调的诊断。
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来源期刊
Journal of psychiatric research
Journal of psychiatric research 医学-精神病学
CiteScore
7.30
自引率
2.10%
发文量
622
审稿时长
130 days
期刊介绍: Founded in 1961 to report on the latest work in psychiatry and cognate disciplines, the Journal of Psychiatric Research is dedicated to innovative and timely studies of four important areas of research: (1) clinical studies of all disciplines relating to psychiatric illness, as well as normal human behaviour, including biochemical, physiological, genetic, environmental, social, psychological and epidemiological factors; (2) basic studies pertaining to psychiatry in such fields as neuropsychopharmacology, neuroendocrinology, electrophysiology, genetics, experimental psychology and epidemiology; (3) the growing application of clinical laboratory techniques in psychiatry, including imagery and spectroscopy of the brain, molecular biology and computer sciences;
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