Predicting Heart Diseases through Feature Selection and Ensemble Classifiers

Heart diseases or Cardiovascular Diseases are the leading cause of death globally. Amid the Covid-19 pandemic, the toll has further increased and is prevalent among all age groups. The reasons are associated with various side effects of lockdown or socio-economic affairs. It becomes extremely import...

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Veröffentlicht in:Journal of physics. Conference series 2022-05, Vol.2273 (1), p.12027
Hauptverfasser: Diwan, Shivangi, Thakur, Gajendra Singh, Sahu, Sunil K., Sahu, Mridu, Swamy, N. K.
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Sprache:eng
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Zusammenfassung:Heart diseases or Cardiovascular Diseases are the leading cause of death globally. Amid the Covid-19 pandemic, the toll has further increased and is prevalent among all age groups. The reasons are associated with various side effects of lockdown or socio-economic affairs. It becomes extremely important to strengthen our research on diagnosis systems to timely and accurately identify the disease. This paper is an attempt to predict a healthy or heart patient using ensemble machine learning methods depending on selected features. The proposed model shows that after performing feature selection the ensemble models give optimum accuracy with significantly lesser features.
ISSN:1742-6588
1742-6596
DOI:10.1088/1742-6596/2273/1/012027