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dc.contributor.authorLiyanage, Himanshi
dc.contributor.authorLipnicka, Marta
dc.contributor.authorKaźmierczak, Szymon
dc.date.accessioned2025-12-17T10:41:04Z
dc.date.available2025-12-17T10:41:04Z
dc.date.issued2025-12-17
dc.identifier.citationLiyanage H., Lipnicka M., Kaźmierczak S., A Stacked Meta Neural Network with Adaptive Nonlinear Decision Fusion for Cardiovascular Disease Prediction, [w:] Synergy of Diversity: Data, Modeling and Decisions, Spodzieja S. (red.), Wydawnictwo Uniwersytetu Łódzkiego, Lodz 2025, s. 31-39, https://doi.org/10.18778/8331-969-8-03pl
dc.identifier.urihttp://hdl.handle.net/11089/57008
dc.description.abstractCardiovascular disease (CVD) remains a leading global cause of mortality, emphasizing the need for reliable early prediction systems. This study proposes a Stacked Meta Neural Network (SMNN) that integrates multiple machine learning classifers through nonlinear decision fusion. In the frst stage, six base models generate probabilistic outputs using a k-fold out-of-fold (OOF) strategy. These are then combined by a shallow Artifcial Neural Network (ANN) meta-learner to capture hidden nonlinear interactions. Experimental evaluation on a dataset of over 66,000 records achieved strong performance, with high recall and balanced ROCAUC, demonstrating the SMNN’s efectiveness as a robust and generalizable tool for CVD risk prediction.pl
dc.language.isopl
dc.publisherWydawnictwo Uniwersytetu Łódzkiegopl
dc.relation.ispartofSpodzieja S. (red.), Synergy of Diversity: Data, Modeling and Decisions, Wydawnictwo Uniwersytetu Łódzkiego, Lodz 2025;pl
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/
dc.titleA Stacked Meta Neural Network with Adaptive Nonlinear Decision Fusion for Cardiovascular Disease Predictionpl
dc.typeBook chapter
dc.page.number31-39
dc.contributor.authorAffiliationLipnicka, Marta - University of Lodz Faculty of Mathematics and Computer Science, Department of Analytic Functions and Differential Equations, Faculty of Mathematics and Computer Sciencepl
dc.contributor.authorAffiliationKaźmierczak, Szymon - Wolski Hospital, Warsaw, Polandpl
dc.identifier.eisbn978-83-8331-969-8
dc.identifier.doi10.18778/8331-969-8-03


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