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Multivariate modeling and prediction of cerebral physiology in acute traumatic neural injury: A scoping review.
Vakitbilir, Nuray; Bergmann, Tobias; Froese, Logan; Gomez, Alwyn; Sainbhi, Amanjyot Singh; Stein, Kevin Y; Islam, Abrar; Zeiler, Frederick A.
Afiliación
  • Vakitbilir N; Biomedical Engineering, Price Faculty of Engineering, University of Manitoba, Winnipeg, Canada. Electronic address: vakitbir@myumanitoba.ca.
  • Bergmann T; Undergraduate Engineering, Price Faculty of Engineering, University of Manitoba, Winnipeg, Canada.
  • Froese L; Biomedical Engineering, Price Faculty of Engineering, University of Manitoba, Winnipeg, Canada.
  • Gomez A; Section of Neurosurgery, Department of Surgery, Rady Faculty of Health Sciences, University of Manitoba, Winnipeg, Canada; Department of Human Anatomy and Cell Science, Rady Faculty of Health Sciences, University of Manitoba, Winnipeg, Canada.
  • Sainbhi AS; Biomedical Engineering, Price Faculty of Engineering, University of Manitoba, Winnipeg, Canada.
  • Stein KY; Biomedical Engineering, Price Faculty of Engineering, University of Manitoba, Winnipeg, Canada.
  • Islam A; Biomedical Engineering, Price Faculty of Engineering, University of Manitoba, Winnipeg, Canada.
  • Zeiler FA; Biomedical Engineering, Price Faculty of Engineering, University of Manitoba, Winnipeg, Canada; Section of Neurosurgery, Department of Surgery, Rady Faculty of Health Sciences, University of Manitoba, Winnipeg, Canada; Department of Clinical Neuroscience, Karolinska Institutet, Stockholm, Sweden; Di
Comput Biol Med ; 178: 108766, 2024 Aug.
Article en En | MEDLINE | ID: mdl-38905893
ABSTRACT
Traumatic brain injury (TBI) poses a significant global public health challenge necessitating a profound understanding of cerebral physiology. The dynamic nature of TBI demands sophisticated methodologies for modeling and predicting cerebral signals to unravel intricate pathophysiology and predict secondary injury mechanisms prior to their occurrence. In this comprehensive scoping review, we focus specifically on multivariate cerebral physiologic signal analysis in the context of multi-modal monitoring (MMM) in TBI, exploring a range of techniques including multivariate statistical time-series models and machine learning algorithms. Conducting a comprehensive search across databases yielded 7 studies for evaluation, encompassing diverse cerebral physiologic signals and parameters from TBI patients. Among these, five studies concentrated on modeling cerebral physiologic signals using statistical time-series models, while the remaining two studies primarily delved into intracranial pressure (ICP) prediction through machine learning models. Autoregressive models were predominantly utilized in the modeling studies. In the context of prediction studies, logistic regression and Gaussian processes (GP) emerged as the predominant choice in both research endeavors, with their performance being evaluated against each other in one study and other models such as random forest, and decision tree in the other study. Notably among these models, random forest model, an ensemble learning approach, demonstrated superior performance across various metrics. Additionally, a notable gap was identified concerning the absence of studies focusing on prediction for multivariate outcomes. This review addresses existing knowledge gaps and sets the stage for future research in advancing cerebral physiologic signal analysis for neurocritical care improvement.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Aprendizaje Automático / Lesiones Traumáticas del Encéfalo Límite: Humans Idioma: En Revista: Comput Biol Med Año: 2024 Tipo del documento: Article Pais de publicación: Estados Unidos

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Asunto principal: Aprendizaje Automático / Lesiones Traumáticas del Encéfalo Límite: Humans Idioma: En Revista: Comput Biol Med Año: 2024 Tipo del documento: Article Pais de publicación: Estados Unidos