Disease-course adapting machine learning prognostication models in elderly patients critically ill with COVID-19: multicenter cohort study with external validation

Jung, C. orcid.org/0000-0001-8325-250X, Mamandipoor, B. orcid.org/0000-0001-9441-3815, Fjølner, J. orcid.org/0000-0003-3371-0503 et al. (25 more authors) (2022) Disease-course adapting machine learning prognostication models in elderly patients critically ill with COVID-19: multicenter cohort study with external validation. JMIR Medical Informatics, 10 (3). e32949. ISSN 2291-9694

Abstract

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Authors/Creators:
Copyright, Publisher and Additional Information: ©Christian Jung, Behrooz Mamandipoor, Jesper Fjølner, Raphael Romano Bruno, Bernhard Wernly, Antonio Artigas, Bernardo Bollen Pinto, Joerg C Schefold, Georg Wolff, Malte Kelm, Michael Beil, Sigal Sviri, Peter V van Heerden, Wojciech Szczeklik, Miroslaw Czuczwar, Muhammed Elhadi, Michael Joannidis, Sandra Oeyen, Tilemachos Zafeiridis, Brian Marsh, Finn H Andersen, Rui Moreno, Maurizio Cecconi, Susannah Leaver, Dylan W De Lange, Bertrand Guidet, Hans Flaatten, Venet Osmani. This is an open-access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Keywords: COVID-19; clinical informatics; elderly population; machine learning; machine-based learning; outcome prediction; pandemic; patient data; prediction models
Dates:
  • Accepted: 4 December 2021
  • Published (online): 31 March 2022
  • Published: March 2022
Institution: The University of Sheffield
Academic Units: The University of Sheffield > Faculty of Social Sciences (Sheffield) > Information School (Sheffield)
Depositing User: Symplectic Sheffield
Date Deposited: 12 Apr 2023 10:53
Last Modified: 12 Apr 2023 10:53
Status: Published
Publisher: JMIR Publications Inc.
Refereed: Yes
Identification Number: https://doi.org/10.2196/32949
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