Optimization of clinical decision support based on Pearson correlation of attributes

Clinical decision support is very important especially in such a wide-spread disease as a coronary artery disease. A large variety of prediction methods can potentially solve the classification problem to support clinical decisions. However, not all of them provide similar efficiency for the classif...

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Hauptverfasser: Dudchenko, Aleksei (VerfasserIn) , Ganzinger, Matthias (VerfasserIn) , Kopanitsa, Georgy (VerfasserIn)
Dokumenttyp: Kapitel/Artikel Konferenzschrift
Sprache:Englisch
Veröffentlicht: 2019
In: Phealth 2019
Year: 2019, Pages: 199-204
DOI:10.3233/978-1-61499-975-1-199
Online-Zugang:Verlag: https://doi.org/10.3233/978-1-61499-975-1-199
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Verfasserangaben:Aleksei Dudchenko, Matthias Ganzinger, Georgy Kopanitsa

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520 |a Clinical decision support is very important especially in such a wide-spread disease as a coronary artery disease. A large variety of prediction methods can potentially solve the classification problem to support clinical decisions. However, not all of them provide similar efficiency for the classification of patients with coronary artery disease. We have analyzed prediction the efficiency of classifiers (Ridge Classifier, XGB Classifier and Logistic Regression) depending on the number and combination of features. We have tested 24 sets of features on 4 classifiers to proof the hypothesis that using optimized features sets with a higher Pearson ratio results in more efficient classifiers than using all available data. 
650 4 |a Algorithms 
650 4 |a classifiers 
650 4 |a coronary artery disease 
650 4 |a Coronary Artery Disease 
650 4 |a correlation 
650 4 |a Decision support 
650 4 |a Decision Support Systems, Clinical 
650 4 |a Humans 
650 4 |a Logistic Models 
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