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- W2043485331 abstract "The main objective of this work is to develop machine learning models for the prediction of patient outcome in nephrology care as well as to validate and optimize the models with a feature selection approach. Cardiovascular events are a major cause of morbidity and mortality in hemodialysis (HD) patients and have an incidence of 20% in the first year of renal replacement therapy. Real data routinely collected during HD administration were extracted from the Fresenius Medical Care database EuCliD (39 independent variables) and used to develop a random forest predictive model to forecast cardiovascular events in the first year of HD treatment. Two feature selection methods were applied. Results of these models in an independent cohort of patients showed a significant predictive ability. The authors’ results were obtained with a random forest built on 6 variables only (AUC: 77.1% ± 2.9%; MCE: 31.6% ± 3.5%), identified by the variable importance out of bag (OOB) estimate." @default.
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- W2043485331 date "2011-10-01" @default.
- W2043485331 modified "2023-10-14" @default.
- W2043485331 title "Mining Medical Data to Develop Clinical Decision Making Tools in Hemodialysis" @default.
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- W2043485331 doi "https://doi.org/10.4018/jkdb.2011100101" @default.
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