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Wake-up Stroke Outcome Prediction by Interpretable Decision Tree Model

Ajcevic M.
•
Miladinovic A.
•
Furlanis G.
altro
Accardo A.
2022
  • conference object

Abstract
Outcome prediction in wake-up ischemic stroke (WUS) is important for guiding treatment strategies, in order to improve recovery and minimize disability. We aimed at producing an interpretable model to predict a good outcome (NIHSS 7-day<5) in thrombolysis treated WUS patients by using Classification and Regression Tree (CART) method. The study encompassed 104 WUS patients and we used a dataset consisting of demographic, clinical and neuroimaging features. The model was produced by CART with Gini split criterion and evaluated by using 5-fold cross-validation. The produced decision tree model was based on NIHSS at admission, ischemic core volume and age features. The predictive accuracy of model was 86.5% and the AUC-ROC was 0.88. In conclusion, in this preliminary study we identified interpretable model based on clinical and neuroimaging features to predict clinical outcome in thrombolysis treated wake-up stroke patients.
DOI
10.3233/SHTI220527
Archivio
http://hdl.handle.net/11368/3030679
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85131106211
https://ebooks.iospress.nl/doi/10.3233/SHTI220527
Diritti
open access
license:creative commons
license uri:http://creativecommons.org/licenses/by-nc/4.0/
FVG url
https://arts.units.it/bitstream/11368/3030679/1/SHTI-294-SHTI220527.pdf
Soggetti
  • Classification and Re...

  • Clinical outcome

  • Predictive modeling

  • Wake-up stroke

  • Decision Tree

  • Human

  • Prognosi

  • Treatment Outcome

  • Ischemic Stroke

  • Stroke

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