Applicability of machine learning technique in the screening of patients with mild traumatic brain injury

Author:

Terabe Miriam LeikoORCID,Massago Miyoko,Iora Pedro Henrique,Hernandes Rocha Thiago Augusto,de Souza João Vitor PerezORCID,Huo Lily,Massago Mamoru,Senda Dalton Makoto,Kobayashi Elisabete Mitiko,Vissoci João Ricardo,Staton Catherine Ann,de Andrade Luciano

Abstract

Even though the demand of head computed tomography (CT) in patients with mild traumatic brain injury (TBI) has progressively increased worldwide, only a small number of individuals have intracranial lesions that require neurosurgical intervention. As such, this study aims to evaluate the applicability of a machine learning (ML) technique in the screening of patients with mild TBI in the Regional University Hospital of Maringá, Paraná state, Brazil. This is an observational, descriptive, cross-sectional, and retrospective study using ML technique to develop a protocol that predicts which patients with an initial diagnosis of mild TBI should be recommended for a head CT. Among the tested models, he linear extreme gradient boosting was the best algorithm, with the highest sensitivity (0.70 ± 0.06). Our predictive model can assist in the screening of mild TBI patients, assisting health professionals to manage the resource utilization, and improve the quality and safety of patient care.

Publisher

Public Library of Science (PLoS)

Subject

Multidisciplinary

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