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急诊科中的机器学习与晕厥管理:未来已来。

Machine Learning and Syncope Management in the ED: The Future Is Coming.

作者信息

Dipaola Franca, Shiffer Dana, Gatti Mauro, Menè Roberto, Solbiati Monica, Furlan Raffaello

机构信息

Department of Biomedical Sciences, Humanitas University, Pieve Emanuele, 20090 Milan, Italy.

Internal Medicine, Humanitas Clinical and Research Center-IRCCS, Rozzano, 20089 Milan, Italy.

出版信息

Medicina (Kaunas). 2021 Apr 6;57(4):351. doi: 10.3390/medicina57040351.

Abstract

In recent years, machine learning (ML) has been promisingly applied in many fields of clinical medicine, both for diagnosis and prognosis prediction. Aims of this narrative review were to summarize the basic concepts of ML applied to clinical medicine and explore its main applications in the emergency department (ED) setting, with a particular focus on syncope management. Through an extensive literature search in PubMed and Embase, we found increasing evidence suggesting that the use of ML algorithms can improve ED triage, diagnosis, and risk stratification of many diseases. However, the lacks of external validation and reliable diagnostic standards currently limit their implementation in clinical practice. Syncope represents a challenging problem for the emergency physician both because its diagnosis is not supported by specific tests and the available prognostic tools proved to be inefficient. ML algorithms have the potential to overcome these limitations and, in the future, they could support the clinician in managing syncope patients more efficiently. However, at present only few studies have addressed this issue, albeit with encouraging results.

摘要

近年来,机器学习(ML)已被成功应用于临床医学的许多领域,用于诊断和预后预测。本叙述性综述的目的是总结应用于临床医学的机器学习的基本概念,并探讨其在急诊科(ED)环境中的主要应用,特别关注晕厥管理。通过在PubMed和Embase上进行广泛的文献检索,我们发现越来越多的证据表明,使用机器学习算法可以改善许多疾病的急诊科分诊、诊断和风险分层。然而,目前缺乏外部验证和可靠的诊断标准限制了它们在临床实践中的应用。晕厥对急诊医生来说是一个具有挑战性的问题,这既是因为其诊断缺乏特定的检查支持,而且现有的预后工具也被证明效率低下。机器学习算法有潜力克服这些局限性,并且在未来,它们可以支持临床医生更有效地管理晕厥患者。然而,目前只有少数研究涉及这个问题,尽管结果令人鼓舞。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae36/8067452/be2f7890bd4a/medicina-57-00351-g001.jpg

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