2023
DOI: 10.4258/hir.2023.29.4.301
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Machine Learning for Benchmarking Critical Care Outcomes

Louis Atallah,
Mohsen Nabian,
Ludmila Brochini
et al.

Abstract: Objectives: Enhancing critical care efficacy involves evaluating and improving system functioning. Benchmarking, a retrospective comparison of results against standards, aids risk-adjusted assessment and helps healthcare providers identify areas for improvement based on observed and predicted outcomes. The last two decades have seen the development of several models using machine learning (ML) for clinical outcome prediction. ML is a field of artificial intelligence focused on creating algorithms that enable c… Show more

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