[头痛诊断和治疗中的数字化]。

Dagny Holle-Lee
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引用次数: 0

摘要

近年来,机器学习(尤其是自然语言处理)已成为分析非结构化健康数据(如头痛病历)的重要工具。研究表明,算法可以识别特定模式并自动诊断头痛。多项研究还表明,机器学习算法在区分头痛类型(包括偏头痛和丛集性头痛)方面具有很高的诊断准确性。此外,机器学习模型还可用于预测潜在的诱发因素、治疗反应,甚至头痛疾病的发展。数字头痛日记和诱发因素分析应用程序在治疗中正变得越来越重要。通过数字健康应用,可为头痛和偏头痛治疗提供新的可扩展的非药物选择。
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[Digitization in the diagnosis and treatment of headache].

In recent years, machine learning, particularly Natural Language Processing, has emerged as a valuable tool for analyzing unstructured health data, such as headache anamneses. Studies demonstrate that algorithms can identify specific patterns and automate headache diagnoses. Various studies have also shown that machine learning algorithms achieve high diagnostic accuracy in distinguishing between headache types, including migraine and cluster headaches. Additionally, machine learning models are being used to predict potential triggers, treatment responses, and even the progression of headache disorders. Digital headache diaries and trigger-analysis apps are becoming increasingly important in therapy. Through digital health applications, new scalable non-drug options for headache and migraine therapy are available.

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来源期刊
MMW - Fortschritte der Medizin
MMW - Fortschritte der Medizin Medicine-Medicine (all)
CiteScore
0.20
自引率
0.00%
发文量
931
期刊介绍: Die MMW ist ein crossmediales medizinisches Fortbildungsorgan für niedergelassene Ärzte. Siebietet in Print und Online wissenschaftlich seriöse, kompetent und lesefreundlich aufbereitete aktuelleMedizininhalte mit hohem Praxisnutzen. Rund 50 renommierte Herausgeber garantieren die hohefachliche Qualität. Die MMW bietet 30 bis 40 CME-Fortbildungen mit über 70 000 Teilnahmen jährlich.
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