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PLoS One ; 17(7): e0271331, 2022.
Article in English | MEDLINE | ID: mdl-35839222

ABSTRACT

Unplanned hospital readmissions mean a significant burden for health systems. Accurately estimating the patient's readmission risk could help to optimise the discharge decision-making process by smartly ordering patients based on a severity score, thus helping to improve the usage of clinical resources. A great number of heterogeneous factors can influence the readmission risk, which makes it highly difficult to be estimated by a human agent. However, this score could be achieved with the help of AI models, acting as aiding tools for decision support systems. In this paper, we propose a machine learning classification and risk stratification approach to assess the readmission problem and provide a decision support system based on estimated patient risk scores.


Subject(s)
Patient Discharge , Patient Readmission , Hospitals , Humans , Machine Learning , Retrospective Studies , Risk Factors
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