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Publication | Open Access

Machine learning approach for hemorrhagic transformation prediction: Capturing predictors' interaction

18

Citations

42

References

2022

Year

Abstract

Cerebral microbleeds, NIHSS, and infarction size were identified as HT predictors. The best predicting models were RFC and GBC capable of capturing nonlinear interaction between predictors. Predictor interaction suggests a dynamic, rather than, fixed cutoff risk value for any of these predictors.

References

YearCitations

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